1 //===--- CGCall.cpp - Encapsulate calling convention details --------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // These classes wrap the information about a call or function 11 // definition used to handle ABI compliancy. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "CGCall.h" 16 #include "ABIInfo.h" 17 #include "CGBlocks.h" 18 #include "CGCXXABI.h" 19 #include "CGCleanup.h" 20 #include "CodeGenFunction.h" 21 #include "CodeGenModule.h" 22 #include "TargetInfo.h" 23 #include "clang/AST/Decl.h" 24 #include "clang/AST/DeclCXX.h" 25 #include "clang/AST/DeclObjC.h" 26 #include "clang/Basic/TargetBuiltins.h" 27 #include "clang/Basic/TargetInfo.h" 28 #include "clang/CodeGen/CGFunctionInfo.h" 29 #include "clang/CodeGen/SwiftCallingConv.h" 30 #include "clang/Frontend/CodeGenOptions.h" 31 #include "llvm/ADT/StringExtras.h" 32 #include "llvm/IR/Attributes.h" 33 #include "llvm/IR/CallingConv.h" 34 #include "llvm/IR/CallSite.h" 35 #include "llvm/IR/DataLayout.h" 36 #include "llvm/IR/InlineAsm.h" 37 #include "llvm/IR/Intrinsics.h" 38 #include "llvm/IR/IntrinsicInst.h" 39 #include "llvm/Transforms/Utils/Local.h" 40 using namespace clang; 41 using namespace CodeGen; 42 43 /***/ 44 45 unsigned CodeGenTypes::ClangCallConvToLLVMCallConv(CallingConv CC) { 46 switch (CC) { 47 default: return llvm::CallingConv::C; 48 case CC_X86StdCall: return llvm::CallingConv::X86_StdCall; 49 case CC_X86FastCall: return llvm::CallingConv::X86_FastCall; 50 case CC_X86ThisCall: return llvm::CallingConv::X86_ThisCall; 51 case CC_X86_64Win64: return llvm::CallingConv::X86_64_Win64; 52 case CC_X86_64SysV: return llvm::CallingConv::X86_64_SysV; 53 case CC_AAPCS: return llvm::CallingConv::ARM_AAPCS; 54 case CC_AAPCS_VFP: return llvm::CallingConv::ARM_AAPCS_VFP; 55 case CC_IntelOclBicc: return llvm::CallingConv::Intel_OCL_BI; 56 // TODO: Add support for __pascal to LLVM. 57 case CC_X86Pascal: return llvm::CallingConv::C; 58 // TODO: Add support for __vectorcall to LLVM. 59 case CC_X86VectorCall: return llvm::CallingConv::X86_VectorCall; 60 case CC_SpirFunction: return llvm::CallingConv::SPIR_FUNC; 61 case CC_OpenCLKernel: return CGM.getTargetCodeGenInfo().getOpenCLKernelCallingConv(); 62 case CC_PreserveMost: return llvm::CallingConv::PreserveMost; 63 case CC_PreserveAll: return llvm::CallingConv::PreserveAll; 64 case CC_Swift: return llvm::CallingConv::Swift; 65 } 66 } 67 68 /// Derives the 'this' type for codegen purposes, i.e. ignoring method 69 /// qualification. 70 /// FIXME: address space qualification? 71 static CanQualType GetThisType(ASTContext &Context, const CXXRecordDecl *RD) { 72 QualType RecTy = Context.getTagDeclType(RD)->getCanonicalTypeInternal(); 73 return Context.getPointerType(CanQualType::CreateUnsafe(RecTy)); 74 } 75 76 /// Returns the canonical formal type of the given C++ method. 77 static CanQual<FunctionProtoType> GetFormalType(const CXXMethodDecl *MD) { 78 return MD->getType()->getCanonicalTypeUnqualified() 79 .getAs<FunctionProtoType>(); 80 } 81 82 /// Returns the "extra-canonicalized" return type, which discards 83 /// qualifiers on the return type. Codegen doesn't care about them, 84 /// and it makes ABI code a little easier to be able to assume that 85 /// all parameter and return types are top-level unqualified. 86 static CanQualType GetReturnType(QualType RetTy) { 87 return RetTy->getCanonicalTypeUnqualified().getUnqualifiedType(); 88 } 89 90 /// Arrange the argument and result information for a value of the given 91 /// unprototyped freestanding function type. 92 const CGFunctionInfo & 93 CodeGenTypes::arrangeFreeFunctionType(CanQual<FunctionNoProtoType> FTNP) { 94 // When translating an unprototyped function type, always use a 95 // variadic type. 96 return arrangeLLVMFunctionInfo(FTNP->getReturnType().getUnqualifiedType(), 97 /*instanceMethod=*/false, 98 /*chainCall=*/false, None, 99 FTNP->getExtInfo(), {}, RequiredArgs(0)); 100 } 101 102 /// Adds the formal paramaters in FPT to the given prefix. If any parameter in 103 /// FPT has pass_object_size attrs, then we'll add parameters for those, too. 104 static void appendParameterTypes(const CodeGenTypes &CGT, 105 SmallVectorImpl<CanQualType> &prefix, 106 SmallVectorImpl<FunctionProtoType::ExtParameterInfo> ¶mInfos, 107 CanQual<FunctionProtoType> FPT, 108 const FunctionDecl *FD) { 109 // Fill out paramInfos. 110 if (FPT->hasExtParameterInfos() || !paramInfos.empty()) { 111 assert(paramInfos.size() <= prefix.size()); 112 auto protoParamInfos = FPT->getExtParameterInfos(); 113 paramInfos.reserve(prefix.size() + protoParamInfos.size()); 114 paramInfos.resize(prefix.size()); 115 paramInfos.append(protoParamInfos.begin(), protoParamInfos.end()); 116 } 117 118 // Fast path: unknown target. 119 if (FD == nullptr) { 120 prefix.append(FPT->param_type_begin(), FPT->param_type_end()); 121 return; 122 } 123 124 // In the vast majority cases, we'll have precisely FPT->getNumParams() 125 // parameters; the only thing that can change this is the presence of 126 // pass_object_size. So, we preallocate for the common case. 127 prefix.reserve(prefix.size() + FPT->getNumParams()); 128 129 assert(FD->getNumParams() == FPT->getNumParams()); 130 for (unsigned I = 0, E = FPT->getNumParams(); I != E; ++I) { 131 prefix.push_back(FPT->getParamType(I)); 132 if (FD->getParamDecl(I)->hasAttr<PassObjectSizeAttr>()) 133 prefix.push_back(CGT.getContext().getSizeType()); 134 } 135 } 136 137 /// Arrange the LLVM function layout for a value of the given function 138 /// type, on top of any implicit parameters already stored. 139 static const CGFunctionInfo & 140 arrangeLLVMFunctionInfo(CodeGenTypes &CGT, bool instanceMethod, 141 SmallVectorImpl<CanQualType> &prefix, 142 CanQual<FunctionProtoType> FTP, 143 const FunctionDecl *FD) { 144 SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos; 145 RequiredArgs Required = 146 RequiredArgs::forPrototypePlus(FTP, prefix.size(), FD); 147 // FIXME: Kill copy. 148 appendParameterTypes(CGT, prefix, paramInfos, FTP, FD); 149 CanQualType resultType = FTP->getReturnType().getUnqualifiedType(); 150 151 return CGT.arrangeLLVMFunctionInfo(resultType, instanceMethod, 152 /*chainCall=*/false, prefix, 153 FTP->getExtInfo(), paramInfos, 154 Required); 155 } 156 157 /// Arrange the argument and result information for a value of the 158 /// given freestanding function type. 159 const CGFunctionInfo & 160 CodeGenTypes::arrangeFreeFunctionType(CanQual<FunctionProtoType> FTP, 161 const FunctionDecl *FD) { 162 SmallVector<CanQualType, 16> argTypes; 163 return ::arrangeLLVMFunctionInfo(*this, /*instanceMethod=*/false, argTypes, 164 FTP, FD); 165 } 166 167 static CallingConv getCallingConventionForDecl(const Decl *D, bool IsWindows) { 168 // Set the appropriate calling convention for the Function. 169 if (D->hasAttr<StdCallAttr>()) 170 return CC_X86StdCall; 171 172 if (D->hasAttr<FastCallAttr>()) 173 return CC_X86FastCall; 174 175 if (D->hasAttr<ThisCallAttr>()) 176 return CC_X86ThisCall; 177 178 if (D->hasAttr<VectorCallAttr>()) 179 return CC_X86VectorCall; 180 181 if (D->hasAttr<PascalAttr>()) 182 return CC_X86Pascal; 183 184 if (PcsAttr *PCS = D->getAttr<PcsAttr>()) 185 return (PCS->getPCS() == PcsAttr::AAPCS ? CC_AAPCS : CC_AAPCS_VFP); 186 187 if (D->hasAttr<IntelOclBiccAttr>()) 188 return CC_IntelOclBicc; 189 190 if (D->hasAttr<MSABIAttr>()) 191 return IsWindows ? CC_C : CC_X86_64Win64; 192 193 if (D->hasAttr<SysVABIAttr>()) 194 return IsWindows ? CC_X86_64SysV : CC_C; 195 196 if (D->hasAttr<PreserveMostAttr>()) 197 return CC_PreserveMost; 198 199 if (D->hasAttr<PreserveAllAttr>()) 200 return CC_PreserveAll; 201 202 return CC_C; 203 } 204 205 /// Arrange the argument and result information for a call to an 206 /// unknown C++ non-static member function of the given abstract type. 207 /// (Zero value of RD means we don't have any meaningful "this" argument type, 208 /// so fall back to a generic pointer type). 209 /// The member function must be an ordinary function, i.e. not a 210 /// constructor or destructor. 211 const CGFunctionInfo & 212 CodeGenTypes::arrangeCXXMethodType(const CXXRecordDecl *RD, 213 const FunctionProtoType *FTP, 214 const CXXMethodDecl *MD) { 215 SmallVector<CanQualType, 16> argTypes; 216 217 // Add the 'this' pointer. 218 if (RD) 219 argTypes.push_back(GetThisType(Context, RD)); 220 else 221 argTypes.push_back(Context.VoidPtrTy); 222 223 return ::arrangeLLVMFunctionInfo( 224 *this, true, argTypes, 225 FTP->getCanonicalTypeUnqualified().getAs<FunctionProtoType>(), MD); 226 } 227 228 /// Arrange the argument and result information for a declaration or 229 /// definition of the given C++ non-static member function. The 230 /// member function must be an ordinary function, i.e. not a 231 /// constructor or destructor. 232 const CGFunctionInfo & 233 CodeGenTypes::arrangeCXXMethodDeclaration(const CXXMethodDecl *MD) { 234 assert(!isa<CXXConstructorDecl>(MD) && "wrong method for constructors!"); 235 assert(!isa<CXXDestructorDecl>(MD) && "wrong method for destructors!"); 236 237 CanQual<FunctionProtoType> prototype = GetFormalType(MD); 238 239 if (MD->isInstance()) { 240 // The abstract case is perfectly fine. 241 const CXXRecordDecl *ThisType = TheCXXABI.getThisArgumentTypeForMethod(MD); 242 return arrangeCXXMethodType(ThisType, prototype.getTypePtr(), MD); 243 } 244 245 return arrangeFreeFunctionType(prototype, MD); 246 } 247 248 bool CodeGenTypes::inheritingCtorHasParams( 249 const InheritedConstructor &Inherited, CXXCtorType Type) { 250 // Parameters are unnecessary if we're constructing a base class subobject 251 // and the inherited constructor lives in a virtual base. 252 return Type == Ctor_Complete || 253 !Inherited.getShadowDecl()->constructsVirtualBase() || 254 !Target.getCXXABI().hasConstructorVariants(); 255 } 256 257 const CGFunctionInfo & 258 CodeGenTypes::arrangeCXXStructorDeclaration(const CXXMethodDecl *MD, 259 StructorType Type) { 260 261 SmallVector<CanQualType, 16> argTypes; 262 SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos; 263 argTypes.push_back(GetThisType(Context, MD->getParent())); 264 265 bool PassParams = true; 266 267 GlobalDecl GD; 268 if (auto *CD = dyn_cast<CXXConstructorDecl>(MD)) { 269 GD = GlobalDecl(CD, toCXXCtorType(Type)); 270 271 // A base class inheriting constructor doesn't get forwarded arguments 272 // needed to construct a virtual base (or base class thereof). 273 if (auto Inherited = CD->getInheritedConstructor()) 274 PassParams = inheritingCtorHasParams(Inherited, toCXXCtorType(Type)); 275 } else { 276 auto *DD = dyn_cast<CXXDestructorDecl>(MD); 277 GD = GlobalDecl(DD, toCXXDtorType(Type)); 278 } 279 280 CanQual<FunctionProtoType> FTP = GetFormalType(MD); 281 282 // Add the formal parameters. 283 if (PassParams) 284 appendParameterTypes(*this, argTypes, paramInfos, FTP, MD); 285 286 TheCXXABI.buildStructorSignature(MD, Type, argTypes); 287 288 RequiredArgs required = 289 (PassParams && MD->isVariadic() ? RequiredArgs(argTypes.size()) 290 : RequiredArgs::All); 291 292 FunctionType::ExtInfo extInfo = FTP->getExtInfo(); 293 CanQualType resultType = TheCXXABI.HasThisReturn(GD) 294 ? argTypes.front() 295 : TheCXXABI.hasMostDerivedReturn(GD) 296 ? CGM.getContext().VoidPtrTy 297 : Context.VoidTy; 298 return arrangeLLVMFunctionInfo(resultType, /*instanceMethod=*/true, 299 /*chainCall=*/false, argTypes, extInfo, 300 paramInfos, required); 301 } 302 303 static SmallVector<CanQualType, 16> 304 getArgTypesForCall(ASTContext &ctx, const CallArgList &args) { 305 SmallVector<CanQualType, 16> argTypes; 306 for (auto &arg : args) 307 argTypes.push_back(ctx.getCanonicalParamType(arg.Ty)); 308 return argTypes; 309 } 310 311 static SmallVector<CanQualType, 16> 312 getArgTypesForDeclaration(ASTContext &ctx, const FunctionArgList &args) { 313 SmallVector<CanQualType, 16> argTypes; 314 for (auto &arg : args) 315 argTypes.push_back(ctx.getCanonicalParamType(arg->getType())); 316 return argTypes; 317 } 318 319 static void addExtParameterInfosForCall( 320 llvm::SmallVectorImpl<FunctionProtoType::ExtParameterInfo> ¶mInfos, 321 const FunctionProtoType *proto, 322 unsigned prefixArgs, 323 unsigned totalArgs) { 324 assert(proto->hasExtParameterInfos()); 325 assert(paramInfos.size() <= prefixArgs); 326 assert(proto->getNumParams() + prefixArgs <= totalArgs); 327 328 // Add default infos for any prefix args that don't already have infos. 329 paramInfos.resize(prefixArgs); 330 331 // Add infos for the prototype. 332 auto protoInfos = proto->getExtParameterInfos(); 333 paramInfos.append(protoInfos.begin(), protoInfos.end()); 334 335 // Add default infos for the variadic arguments. 336 paramInfos.resize(totalArgs); 337 } 338 339 static llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16> 340 getExtParameterInfosForCall(const FunctionProtoType *proto, 341 unsigned prefixArgs, unsigned totalArgs) { 342 llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16> result; 343 if (proto->hasExtParameterInfos()) { 344 addExtParameterInfosForCall(result, proto, prefixArgs, totalArgs); 345 } 346 return result; 347 } 348 349 /// Arrange a call to a C++ method, passing the given arguments. 350 const CGFunctionInfo & 351 CodeGenTypes::arrangeCXXConstructorCall(const CallArgList &args, 352 const CXXConstructorDecl *D, 353 CXXCtorType CtorKind, 354 unsigned ExtraArgs) { 355 // FIXME: Kill copy. 356 SmallVector<CanQualType, 16> ArgTypes; 357 for (const auto &Arg : args) 358 ArgTypes.push_back(Context.getCanonicalParamType(Arg.Ty)); 359 360 CanQual<FunctionProtoType> FPT = GetFormalType(D); 361 RequiredArgs Required = RequiredArgs::forPrototypePlus(FPT, 1 + ExtraArgs, D); 362 GlobalDecl GD(D, CtorKind); 363 CanQualType ResultType = TheCXXABI.HasThisReturn(GD) 364 ? ArgTypes.front() 365 : TheCXXABI.hasMostDerivedReturn(GD) 366 ? CGM.getContext().VoidPtrTy 367 : Context.VoidTy; 368 369 FunctionType::ExtInfo Info = FPT->getExtInfo(); 370 auto ParamInfos = getExtParameterInfosForCall(FPT.getTypePtr(), 1 + ExtraArgs, 371 ArgTypes.size()); 372 return arrangeLLVMFunctionInfo(ResultType, /*instanceMethod=*/true, 373 /*chainCall=*/false, ArgTypes, Info, 374 ParamInfos, Required); 375 } 376 377 /// Arrange the argument and result information for the declaration or 378 /// definition of the given function. 379 const CGFunctionInfo & 380 CodeGenTypes::arrangeFunctionDeclaration(const FunctionDecl *FD) { 381 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) 382 if (MD->isInstance()) 383 return arrangeCXXMethodDeclaration(MD); 384 385 CanQualType FTy = FD->getType()->getCanonicalTypeUnqualified(); 386 387 assert(isa<FunctionType>(FTy)); 388 389 // When declaring a function without a prototype, always use a 390 // non-variadic type. 391 if (isa<FunctionNoProtoType>(FTy)) { 392 CanQual<FunctionNoProtoType> noProto = FTy.getAs<FunctionNoProtoType>(); 393 return arrangeLLVMFunctionInfo( 394 noProto->getReturnType(), /*instanceMethod=*/false, 395 /*chainCall=*/false, None, noProto->getExtInfo(), {},RequiredArgs::All); 396 } 397 398 assert(isa<FunctionProtoType>(FTy)); 399 return arrangeFreeFunctionType(FTy.getAs<FunctionProtoType>(), FD); 400 } 401 402 /// Arrange the argument and result information for the declaration or 403 /// definition of an Objective-C method. 404 const CGFunctionInfo & 405 CodeGenTypes::arrangeObjCMethodDeclaration(const ObjCMethodDecl *MD) { 406 // It happens that this is the same as a call with no optional 407 // arguments, except also using the formal 'self' type. 408 return arrangeObjCMessageSendSignature(MD, MD->getSelfDecl()->getType()); 409 } 410 411 /// Arrange the argument and result information for the function type 412 /// through which to perform a send to the given Objective-C method, 413 /// using the given receiver type. The receiver type is not always 414 /// the 'self' type of the method or even an Objective-C pointer type. 415 /// This is *not* the right method for actually performing such a 416 /// message send, due to the possibility of optional arguments. 417 const CGFunctionInfo & 418 CodeGenTypes::arrangeObjCMessageSendSignature(const ObjCMethodDecl *MD, 419 QualType receiverType) { 420 SmallVector<CanQualType, 16> argTys; 421 argTys.push_back(Context.getCanonicalParamType(receiverType)); 422 argTys.push_back(Context.getCanonicalParamType(Context.getObjCSelType())); 423 // FIXME: Kill copy? 424 for (const auto *I : MD->parameters()) { 425 argTys.push_back(Context.getCanonicalParamType(I->getType())); 426 } 427 428 FunctionType::ExtInfo einfo; 429 bool IsWindows = getContext().getTargetInfo().getTriple().isOSWindows(); 430 einfo = einfo.withCallingConv(getCallingConventionForDecl(MD, IsWindows)); 431 432 if (getContext().getLangOpts().ObjCAutoRefCount && 433 MD->hasAttr<NSReturnsRetainedAttr>()) 434 einfo = einfo.withProducesResult(true); 435 436 RequiredArgs required = 437 (MD->isVariadic() ? RequiredArgs(argTys.size()) : RequiredArgs::All); 438 439 return arrangeLLVMFunctionInfo( 440 GetReturnType(MD->getReturnType()), /*instanceMethod=*/false, 441 /*chainCall=*/false, argTys, einfo, {}, required); 442 } 443 444 const CGFunctionInfo & 445 CodeGenTypes::arrangeUnprototypedObjCMessageSend(QualType returnType, 446 const CallArgList &args) { 447 auto argTypes = getArgTypesForCall(Context, args); 448 FunctionType::ExtInfo einfo; 449 450 return arrangeLLVMFunctionInfo( 451 GetReturnType(returnType), /*instanceMethod=*/false, 452 /*chainCall=*/false, argTypes, einfo, {}, RequiredArgs::All); 453 } 454 455 const CGFunctionInfo & 456 CodeGenTypes::arrangeGlobalDeclaration(GlobalDecl GD) { 457 // FIXME: Do we need to handle ObjCMethodDecl? 458 const FunctionDecl *FD = cast<FunctionDecl>(GD.getDecl()); 459 460 if (const CXXConstructorDecl *CD = dyn_cast<CXXConstructorDecl>(FD)) 461 return arrangeCXXStructorDeclaration(CD, getFromCtorType(GD.getCtorType())); 462 463 if (const CXXDestructorDecl *DD = dyn_cast<CXXDestructorDecl>(FD)) 464 return arrangeCXXStructorDeclaration(DD, getFromDtorType(GD.getDtorType())); 465 466 return arrangeFunctionDeclaration(FD); 467 } 468 469 /// Arrange a thunk that takes 'this' as the first parameter followed by 470 /// varargs. Return a void pointer, regardless of the actual return type. 471 /// The body of the thunk will end in a musttail call to a function of the 472 /// correct type, and the caller will bitcast the function to the correct 473 /// prototype. 474 const CGFunctionInfo & 475 CodeGenTypes::arrangeMSMemberPointerThunk(const CXXMethodDecl *MD) { 476 assert(MD->isVirtual() && "only virtual memptrs have thunks"); 477 CanQual<FunctionProtoType> FTP = GetFormalType(MD); 478 CanQualType ArgTys[] = { GetThisType(Context, MD->getParent()) }; 479 return arrangeLLVMFunctionInfo(Context.VoidTy, /*instanceMethod=*/false, 480 /*chainCall=*/false, ArgTys, 481 FTP->getExtInfo(), {}, RequiredArgs(1)); 482 } 483 484 const CGFunctionInfo & 485 CodeGenTypes::arrangeMSCtorClosure(const CXXConstructorDecl *CD, 486 CXXCtorType CT) { 487 assert(CT == Ctor_CopyingClosure || CT == Ctor_DefaultClosure); 488 489 CanQual<FunctionProtoType> FTP = GetFormalType(CD); 490 SmallVector<CanQualType, 2> ArgTys; 491 const CXXRecordDecl *RD = CD->getParent(); 492 ArgTys.push_back(GetThisType(Context, RD)); 493 if (CT == Ctor_CopyingClosure) 494 ArgTys.push_back(*FTP->param_type_begin()); 495 if (RD->getNumVBases() > 0) 496 ArgTys.push_back(Context.IntTy); 497 CallingConv CC = Context.getDefaultCallingConvention( 498 /*IsVariadic=*/false, /*IsCXXMethod=*/true); 499 return arrangeLLVMFunctionInfo(Context.VoidTy, /*instanceMethod=*/true, 500 /*chainCall=*/false, ArgTys, 501 FunctionType::ExtInfo(CC), {}, 502 RequiredArgs::All); 503 } 504 505 /// Arrange a call as unto a free function, except possibly with an 506 /// additional number of formal parameters considered required. 507 static const CGFunctionInfo & 508 arrangeFreeFunctionLikeCall(CodeGenTypes &CGT, 509 CodeGenModule &CGM, 510 const CallArgList &args, 511 const FunctionType *fnType, 512 unsigned numExtraRequiredArgs, 513 bool chainCall) { 514 assert(args.size() >= numExtraRequiredArgs); 515 516 llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos; 517 518 // In most cases, there are no optional arguments. 519 RequiredArgs required = RequiredArgs::All; 520 521 // If we have a variadic prototype, the required arguments are the 522 // extra prefix plus the arguments in the prototype. 523 if (const FunctionProtoType *proto = dyn_cast<FunctionProtoType>(fnType)) { 524 if (proto->isVariadic()) 525 required = RequiredArgs(proto->getNumParams() + numExtraRequiredArgs); 526 527 if (proto->hasExtParameterInfos()) 528 addExtParameterInfosForCall(paramInfos, proto, numExtraRequiredArgs, 529 args.size()); 530 531 // If we don't have a prototype at all, but we're supposed to 532 // explicitly use the variadic convention for unprototyped calls, 533 // treat all of the arguments as required but preserve the nominal 534 // possibility of variadics. 535 } else if (CGM.getTargetCodeGenInfo() 536 .isNoProtoCallVariadic(args, 537 cast<FunctionNoProtoType>(fnType))) { 538 required = RequiredArgs(args.size()); 539 } 540 541 // FIXME: Kill copy. 542 SmallVector<CanQualType, 16> argTypes; 543 for (const auto &arg : args) 544 argTypes.push_back(CGT.getContext().getCanonicalParamType(arg.Ty)); 545 return CGT.arrangeLLVMFunctionInfo(GetReturnType(fnType->getReturnType()), 546 /*instanceMethod=*/false, chainCall, 547 argTypes, fnType->getExtInfo(), paramInfos, 548 required); 549 } 550 551 /// Figure out the rules for calling a function with the given formal 552 /// type using the given arguments. The arguments are necessary 553 /// because the function might be unprototyped, in which case it's 554 /// target-dependent in crazy ways. 555 const CGFunctionInfo & 556 CodeGenTypes::arrangeFreeFunctionCall(const CallArgList &args, 557 const FunctionType *fnType, 558 bool chainCall) { 559 return arrangeFreeFunctionLikeCall(*this, CGM, args, fnType, 560 chainCall ? 1 : 0, chainCall); 561 } 562 563 /// A block function is essentially a free function with an 564 /// extra implicit argument. 565 const CGFunctionInfo & 566 CodeGenTypes::arrangeBlockFunctionCall(const CallArgList &args, 567 const FunctionType *fnType) { 568 return arrangeFreeFunctionLikeCall(*this, CGM, args, fnType, 1, 569 /*chainCall=*/false); 570 } 571 572 const CGFunctionInfo & 573 CodeGenTypes::arrangeBlockFunctionDeclaration(const FunctionProtoType *proto, 574 const FunctionArgList ¶ms) { 575 auto paramInfos = getExtParameterInfosForCall(proto, 1, params.size()); 576 auto argTypes = getArgTypesForDeclaration(Context, params); 577 578 return arrangeLLVMFunctionInfo( 579 GetReturnType(proto->getReturnType()), 580 /*instanceMethod*/ false, /*chainCall*/ false, argTypes, 581 proto->getExtInfo(), paramInfos, 582 RequiredArgs::forPrototypePlus(proto, 1, nullptr)); 583 } 584 585 const CGFunctionInfo & 586 CodeGenTypes::arrangeBuiltinFunctionCall(QualType resultType, 587 const CallArgList &args) { 588 // FIXME: Kill copy. 589 SmallVector<CanQualType, 16> argTypes; 590 for (const auto &Arg : args) 591 argTypes.push_back(Context.getCanonicalParamType(Arg.Ty)); 592 return arrangeLLVMFunctionInfo( 593 GetReturnType(resultType), /*instanceMethod=*/false, 594 /*chainCall=*/false, argTypes, FunctionType::ExtInfo(), 595 /*paramInfos=*/ {}, RequiredArgs::All); 596 } 597 598 const CGFunctionInfo & 599 CodeGenTypes::arrangeBuiltinFunctionDeclaration(QualType resultType, 600 const FunctionArgList &args) { 601 auto argTypes = getArgTypesForDeclaration(Context, args); 602 603 return arrangeLLVMFunctionInfo( 604 GetReturnType(resultType), /*instanceMethod=*/false, /*chainCall=*/false, 605 argTypes, FunctionType::ExtInfo(), {}, RequiredArgs::All); 606 } 607 608 const CGFunctionInfo & 609 CodeGenTypes::arrangeBuiltinFunctionDeclaration(CanQualType resultType, 610 ArrayRef<CanQualType> argTypes) { 611 return arrangeLLVMFunctionInfo( 612 resultType, /*instanceMethod=*/false, /*chainCall=*/false, 613 argTypes, FunctionType::ExtInfo(), {}, RequiredArgs::All); 614 } 615 616 /// Arrange a call to a C++ method, passing the given arguments. 617 const CGFunctionInfo & 618 CodeGenTypes::arrangeCXXMethodCall(const CallArgList &args, 619 const FunctionProtoType *proto, 620 RequiredArgs required) { 621 unsigned numRequiredArgs = 622 (proto->isVariadic() ? required.getNumRequiredArgs() : args.size()); 623 unsigned numPrefixArgs = numRequiredArgs - proto->getNumParams(); 624 auto paramInfos = 625 getExtParameterInfosForCall(proto, numPrefixArgs, args.size()); 626 627 // FIXME: Kill copy. 628 auto argTypes = getArgTypesForCall(Context, args); 629 630 FunctionType::ExtInfo info = proto->getExtInfo(); 631 return arrangeLLVMFunctionInfo( 632 GetReturnType(proto->getReturnType()), /*instanceMethod=*/true, 633 /*chainCall=*/false, argTypes, info, paramInfos, required); 634 } 635 636 const CGFunctionInfo &CodeGenTypes::arrangeNullaryFunction() { 637 return arrangeLLVMFunctionInfo( 638 getContext().VoidTy, /*instanceMethod=*/false, /*chainCall=*/false, 639 None, FunctionType::ExtInfo(), {}, RequiredArgs::All); 640 } 641 642 const CGFunctionInfo & 643 CodeGenTypes::arrangeCall(const CGFunctionInfo &signature, 644 const CallArgList &args) { 645 assert(signature.arg_size() <= args.size()); 646 if (signature.arg_size() == args.size()) 647 return signature; 648 649 SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos; 650 auto sigParamInfos = signature.getExtParameterInfos(); 651 if (!sigParamInfos.empty()) { 652 paramInfos.append(sigParamInfos.begin(), sigParamInfos.end()); 653 paramInfos.resize(args.size()); 654 } 655 656 auto argTypes = getArgTypesForCall(Context, args); 657 658 assert(signature.getRequiredArgs().allowsOptionalArgs()); 659 return arrangeLLVMFunctionInfo(signature.getReturnType(), 660 signature.isInstanceMethod(), 661 signature.isChainCall(), 662 argTypes, 663 signature.getExtInfo(), 664 paramInfos, 665 signature.getRequiredArgs()); 666 } 667 668 /// Arrange the argument and result information for an abstract value 669 /// of a given function type. This is the method which all of the 670 /// above functions ultimately defer to. 671 const CGFunctionInfo & 672 CodeGenTypes::arrangeLLVMFunctionInfo(CanQualType resultType, 673 bool instanceMethod, 674 bool chainCall, 675 ArrayRef<CanQualType> argTypes, 676 FunctionType::ExtInfo info, 677 ArrayRef<FunctionProtoType::ExtParameterInfo> paramInfos, 678 RequiredArgs required) { 679 assert(std::all_of(argTypes.begin(), argTypes.end(), 680 std::mem_fun_ref(&CanQualType::isCanonicalAsParam))); 681 682 // Lookup or create unique function info. 683 llvm::FoldingSetNodeID ID; 684 CGFunctionInfo::Profile(ID, instanceMethod, chainCall, info, paramInfos, 685 required, resultType, argTypes); 686 687 void *insertPos = nullptr; 688 CGFunctionInfo *FI = FunctionInfos.FindNodeOrInsertPos(ID, insertPos); 689 if (FI) 690 return *FI; 691 692 unsigned CC = ClangCallConvToLLVMCallConv(info.getCC()); 693 694 // Construct the function info. We co-allocate the ArgInfos. 695 FI = CGFunctionInfo::create(CC, instanceMethod, chainCall, info, 696 paramInfos, resultType, argTypes, required); 697 FunctionInfos.InsertNode(FI, insertPos); 698 699 bool inserted = FunctionsBeingProcessed.insert(FI).second; 700 (void)inserted; 701 assert(inserted && "Recursively being processed?"); 702 703 // Compute ABI information. 704 if (info.getCC() != CC_Swift) { 705 getABIInfo().computeInfo(*FI); 706 } else { 707 swiftcall::computeABIInfo(CGM, *FI); 708 } 709 710 // Loop over all of the computed argument and return value info. If any of 711 // them are direct or extend without a specified coerce type, specify the 712 // default now. 713 ABIArgInfo &retInfo = FI->getReturnInfo(); 714 if (retInfo.canHaveCoerceToType() && retInfo.getCoerceToType() == nullptr) 715 retInfo.setCoerceToType(ConvertType(FI->getReturnType())); 716 717 for (auto &I : FI->arguments()) 718 if (I.info.canHaveCoerceToType() && I.info.getCoerceToType() == nullptr) 719 I.info.setCoerceToType(ConvertType(I.type)); 720 721 bool erased = FunctionsBeingProcessed.erase(FI); (void)erased; 722 assert(erased && "Not in set?"); 723 724 return *FI; 725 } 726 727 CGFunctionInfo *CGFunctionInfo::create(unsigned llvmCC, 728 bool instanceMethod, 729 bool chainCall, 730 const FunctionType::ExtInfo &info, 731 ArrayRef<ExtParameterInfo> paramInfos, 732 CanQualType resultType, 733 ArrayRef<CanQualType> argTypes, 734 RequiredArgs required) { 735 assert(paramInfos.empty() || paramInfos.size() == argTypes.size()); 736 737 void *buffer = 738 operator new(totalSizeToAlloc<ArgInfo, ExtParameterInfo>( 739 argTypes.size() + 1, paramInfos.size())); 740 741 CGFunctionInfo *FI = new(buffer) CGFunctionInfo(); 742 FI->CallingConvention = llvmCC; 743 FI->EffectiveCallingConvention = llvmCC; 744 FI->ASTCallingConvention = info.getCC(); 745 FI->InstanceMethod = instanceMethod; 746 FI->ChainCall = chainCall; 747 FI->NoReturn = info.getNoReturn(); 748 FI->ReturnsRetained = info.getProducesResult(); 749 FI->Required = required; 750 FI->HasRegParm = info.getHasRegParm(); 751 FI->RegParm = info.getRegParm(); 752 FI->ArgStruct = nullptr; 753 FI->ArgStructAlign = 0; 754 FI->NumArgs = argTypes.size(); 755 FI->HasExtParameterInfos = !paramInfos.empty(); 756 FI->getArgsBuffer()[0].type = resultType; 757 for (unsigned i = 0, e = argTypes.size(); i != e; ++i) 758 FI->getArgsBuffer()[i + 1].type = argTypes[i]; 759 for (unsigned i = 0, e = paramInfos.size(); i != e; ++i) 760 FI->getExtParameterInfosBuffer()[i] = paramInfos[i]; 761 return FI; 762 } 763 764 /***/ 765 766 namespace { 767 // ABIArgInfo::Expand implementation. 768 769 // Specifies the way QualType passed as ABIArgInfo::Expand is expanded. 770 struct TypeExpansion { 771 enum TypeExpansionKind { 772 // Elements of constant arrays are expanded recursively. 773 TEK_ConstantArray, 774 // Record fields are expanded recursively (but if record is a union, only 775 // the field with the largest size is expanded). 776 TEK_Record, 777 // For complex types, real and imaginary parts are expanded recursively. 778 TEK_Complex, 779 // All other types are not expandable. 780 TEK_None 781 }; 782 783 const TypeExpansionKind Kind; 784 785 TypeExpansion(TypeExpansionKind K) : Kind(K) {} 786 virtual ~TypeExpansion() {} 787 }; 788 789 struct ConstantArrayExpansion : TypeExpansion { 790 QualType EltTy; 791 uint64_t NumElts; 792 793 ConstantArrayExpansion(QualType EltTy, uint64_t NumElts) 794 : TypeExpansion(TEK_ConstantArray), EltTy(EltTy), NumElts(NumElts) {} 795 static bool classof(const TypeExpansion *TE) { 796 return TE->Kind == TEK_ConstantArray; 797 } 798 }; 799 800 struct RecordExpansion : TypeExpansion { 801 SmallVector<const CXXBaseSpecifier *, 1> Bases; 802 803 SmallVector<const FieldDecl *, 1> Fields; 804 805 RecordExpansion(SmallVector<const CXXBaseSpecifier *, 1> &&Bases, 806 SmallVector<const FieldDecl *, 1> &&Fields) 807 : TypeExpansion(TEK_Record), Bases(std::move(Bases)), 808 Fields(std::move(Fields)) {} 809 static bool classof(const TypeExpansion *TE) { 810 return TE->Kind == TEK_Record; 811 } 812 }; 813 814 struct ComplexExpansion : TypeExpansion { 815 QualType EltTy; 816 817 ComplexExpansion(QualType EltTy) : TypeExpansion(TEK_Complex), EltTy(EltTy) {} 818 static bool classof(const TypeExpansion *TE) { 819 return TE->Kind == TEK_Complex; 820 } 821 }; 822 823 struct NoExpansion : TypeExpansion { 824 NoExpansion() : TypeExpansion(TEK_None) {} 825 static bool classof(const TypeExpansion *TE) { 826 return TE->Kind == TEK_None; 827 } 828 }; 829 } // namespace 830 831 static std::unique_ptr<TypeExpansion> 832 getTypeExpansion(QualType Ty, const ASTContext &Context) { 833 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(Ty)) { 834 return llvm::make_unique<ConstantArrayExpansion>( 835 AT->getElementType(), AT->getSize().getZExtValue()); 836 } 837 if (const RecordType *RT = Ty->getAs<RecordType>()) { 838 SmallVector<const CXXBaseSpecifier *, 1> Bases; 839 SmallVector<const FieldDecl *, 1> Fields; 840 const RecordDecl *RD = RT->getDecl(); 841 assert(!RD->hasFlexibleArrayMember() && 842 "Cannot expand structure with flexible array."); 843 if (RD->isUnion()) { 844 // Unions can be here only in degenerative cases - all the fields are same 845 // after flattening. Thus we have to use the "largest" field. 846 const FieldDecl *LargestFD = nullptr; 847 CharUnits UnionSize = CharUnits::Zero(); 848 849 for (const auto *FD : RD->fields()) { 850 // Skip zero length bitfields. 851 if (FD->isBitField() && FD->getBitWidthValue(Context) == 0) 852 continue; 853 assert(!FD->isBitField() && 854 "Cannot expand structure with bit-field members."); 855 CharUnits FieldSize = Context.getTypeSizeInChars(FD->getType()); 856 if (UnionSize < FieldSize) { 857 UnionSize = FieldSize; 858 LargestFD = FD; 859 } 860 } 861 if (LargestFD) 862 Fields.push_back(LargestFD); 863 } else { 864 if (const auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) { 865 assert(!CXXRD->isDynamicClass() && 866 "cannot expand vtable pointers in dynamic classes"); 867 for (const CXXBaseSpecifier &BS : CXXRD->bases()) 868 Bases.push_back(&BS); 869 } 870 871 for (const auto *FD : RD->fields()) { 872 // Skip zero length bitfields. 873 if (FD->isBitField() && FD->getBitWidthValue(Context) == 0) 874 continue; 875 assert(!FD->isBitField() && 876 "Cannot expand structure with bit-field members."); 877 Fields.push_back(FD); 878 } 879 } 880 return llvm::make_unique<RecordExpansion>(std::move(Bases), 881 std::move(Fields)); 882 } 883 if (const ComplexType *CT = Ty->getAs<ComplexType>()) { 884 return llvm::make_unique<ComplexExpansion>(CT->getElementType()); 885 } 886 return llvm::make_unique<NoExpansion>(); 887 } 888 889 static int getExpansionSize(QualType Ty, const ASTContext &Context) { 890 auto Exp = getTypeExpansion(Ty, Context); 891 if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) { 892 return CAExp->NumElts * getExpansionSize(CAExp->EltTy, Context); 893 } 894 if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) { 895 int Res = 0; 896 for (auto BS : RExp->Bases) 897 Res += getExpansionSize(BS->getType(), Context); 898 for (auto FD : RExp->Fields) 899 Res += getExpansionSize(FD->getType(), Context); 900 return Res; 901 } 902 if (isa<ComplexExpansion>(Exp.get())) 903 return 2; 904 assert(isa<NoExpansion>(Exp.get())); 905 return 1; 906 } 907 908 void 909 CodeGenTypes::getExpandedTypes(QualType Ty, 910 SmallVectorImpl<llvm::Type *>::iterator &TI) { 911 auto Exp = getTypeExpansion(Ty, Context); 912 if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) { 913 for (int i = 0, n = CAExp->NumElts; i < n; i++) { 914 getExpandedTypes(CAExp->EltTy, TI); 915 } 916 } else if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) { 917 for (auto BS : RExp->Bases) 918 getExpandedTypes(BS->getType(), TI); 919 for (auto FD : RExp->Fields) 920 getExpandedTypes(FD->getType(), TI); 921 } else if (auto CExp = dyn_cast<ComplexExpansion>(Exp.get())) { 922 llvm::Type *EltTy = ConvertType(CExp->EltTy); 923 *TI++ = EltTy; 924 *TI++ = EltTy; 925 } else { 926 assert(isa<NoExpansion>(Exp.get())); 927 *TI++ = ConvertType(Ty); 928 } 929 } 930 931 static void forConstantArrayExpansion(CodeGenFunction &CGF, 932 ConstantArrayExpansion *CAE, 933 Address BaseAddr, 934 llvm::function_ref<void(Address)> Fn) { 935 CharUnits EltSize = CGF.getContext().getTypeSizeInChars(CAE->EltTy); 936 CharUnits EltAlign = 937 BaseAddr.getAlignment().alignmentOfArrayElement(EltSize); 938 939 for (int i = 0, n = CAE->NumElts; i < n; i++) { 940 llvm::Value *EltAddr = 941 CGF.Builder.CreateConstGEP2_32(nullptr, BaseAddr.getPointer(), 0, i); 942 Fn(Address(EltAddr, EltAlign)); 943 } 944 } 945 946 void CodeGenFunction::ExpandTypeFromArgs( 947 QualType Ty, LValue LV, SmallVectorImpl<llvm::Value *>::iterator &AI) { 948 assert(LV.isSimple() && 949 "Unexpected non-simple lvalue during struct expansion."); 950 951 auto Exp = getTypeExpansion(Ty, getContext()); 952 if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) { 953 forConstantArrayExpansion(*this, CAExp, LV.getAddress(), 954 [&](Address EltAddr) { 955 LValue LV = MakeAddrLValue(EltAddr, CAExp->EltTy); 956 ExpandTypeFromArgs(CAExp->EltTy, LV, AI); 957 }); 958 } else if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) { 959 Address This = LV.getAddress(); 960 for (const CXXBaseSpecifier *BS : RExp->Bases) { 961 // Perform a single step derived-to-base conversion. 962 Address Base = 963 GetAddressOfBaseClass(This, Ty->getAsCXXRecordDecl(), &BS, &BS + 1, 964 /*NullCheckValue=*/false, SourceLocation()); 965 LValue SubLV = MakeAddrLValue(Base, BS->getType()); 966 967 // Recurse onto bases. 968 ExpandTypeFromArgs(BS->getType(), SubLV, AI); 969 } 970 for (auto FD : RExp->Fields) { 971 // FIXME: What are the right qualifiers here? 972 LValue SubLV = EmitLValueForFieldInitialization(LV, FD); 973 ExpandTypeFromArgs(FD->getType(), SubLV, AI); 974 } 975 } else if (isa<ComplexExpansion>(Exp.get())) { 976 auto realValue = *AI++; 977 auto imagValue = *AI++; 978 EmitStoreOfComplex(ComplexPairTy(realValue, imagValue), LV, /*init*/ true); 979 } else { 980 assert(isa<NoExpansion>(Exp.get())); 981 EmitStoreThroughLValue(RValue::get(*AI++), LV); 982 } 983 } 984 985 void CodeGenFunction::ExpandTypeToArgs( 986 QualType Ty, RValue RV, llvm::FunctionType *IRFuncTy, 987 SmallVectorImpl<llvm::Value *> &IRCallArgs, unsigned &IRCallArgPos) { 988 auto Exp = getTypeExpansion(Ty, getContext()); 989 if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) { 990 forConstantArrayExpansion(*this, CAExp, RV.getAggregateAddress(), 991 [&](Address EltAddr) { 992 RValue EltRV = 993 convertTempToRValue(EltAddr, CAExp->EltTy, SourceLocation()); 994 ExpandTypeToArgs(CAExp->EltTy, EltRV, IRFuncTy, IRCallArgs, IRCallArgPos); 995 }); 996 } else if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) { 997 Address This = RV.getAggregateAddress(); 998 for (const CXXBaseSpecifier *BS : RExp->Bases) { 999 // Perform a single step derived-to-base conversion. 1000 Address Base = 1001 GetAddressOfBaseClass(This, Ty->getAsCXXRecordDecl(), &BS, &BS + 1, 1002 /*NullCheckValue=*/false, SourceLocation()); 1003 RValue BaseRV = RValue::getAggregate(Base); 1004 1005 // Recurse onto bases. 1006 ExpandTypeToArgs(BS->getType(), BaseRV, IRFuncTy, IRCallArgs, 1007 IRCallArgPos); 1008 } 1009 1010 LValue LV = MakeAddrLValue(This, Ty); 1011 for (auto FD : RExp->Fields) { 1012 RValue FldRV = EmitRValueForField(LV, FD, SourceLocation()); 1013 ExpandTypeToArgs(FD->getType(), FldRV, IRFuncTy, IRCallArgs, 1014 IRCallArgPos); 1015 } 1016 } else if (isa<ComplexExpansion>(Exp.get())) { 1017 ComplexPairTy CV = RV.getComplexVal(); 1018 IRCallArgs[IRCallArgPos++] = CV.first; 1019 IRCallArgs[IRCallArgPos++] = CV.second; 1020 } else { 1021 assert(isa<NoExpansion>(Exp.get())); 1022 assert(RV.isScalar() && 1023 "Unexpected non-scalar rvalue during struct expansion."); 1024 1025 // Insert a bitcast as needed. 1026 llvm::Value *V = RV.getScalarVal(); 1027 if (IRCallArgPos < IRFuncTy->getNumParams() && 1028 V->getType() != IRFuncTy->getParamType(IRCallArgPos)) 1029 V = Builder.CreateBitCast(V, IRFuncTy->getParamType(IRCallArgPos)); 1030 1031 IRCallArgs[IRCallArgPos++] = V; 1032 } 1033 } 1034 1035 /// Create a temporary allocation for the purposes of coercion. 1036 static Address CreateTempAllocaForCoercion(CodeGenFunction &CGF, llvm::Type *Ty, 1037 CharUnits MinAlign) { 1038 // Don't use an alignment that's worse than what LLVM would prefer. 1039 auto PrefAlign = CGF.CGM.getDataLayout().getPrefTypeAlignment(Ty); 1040 CharUnits Align = std::max(MinAlign, CharUnits::fromQuantity(PrefAlign)); 1041 1042 return CGF.CreateTempAlloca(Ty, Align); 1043 } 1044 1045 /// EnterStructPointerForCoercedAccess - Given a struct pointer that we are 1046 /// accessing some number of bytes out of it, try to gep into the struct to get 1047 /// at its inner goodness. Dive as deep as possible without entering an element 1048 /// with an in-memory size smaller than DstSize. 1049 static Address 1050 EnterStructPointerForCoercedAccess(Address SrcPtr, 1051 llvm::StructType *SrcSTy, 1052 uint64_t DstSize, CodeGenFunction &CGF) { 1053 // We can't dive into a zero-element struct. 1054 if (SrcSTy->getNumElements() == 0) return SrcPtr; 1055 1056 llvm::Type *FirstElt = SrcSTy->getElementType(0); 1057 1058 // If the first elt is at least as large as what we're looking for, or if the 1059 // first element is the same size as the whole struct, we can enter it. The 1060 // comparison must be made on the store size and not the alloca size. Using 1061 // the alloca size may overstate the size of the load. 1062 uint64_t FirstEltSize = 1063 CGF.CGM.getDataLayout().getTypeStoreSize(FirstElt); 1064 if (FirstEltSize < DstSize && 1065 FirstEltSize < CGF.CGM.getDataLayout().getTypeStoreSize(SrcSTy)) 1066 return SrcPtr; 1067 1068 // GEP into the first element. 1069 SrcPtr = CGF.Builder.CreateStructGEP(SrcPtr, 0, CharUnits(), "coerce.dive"); 1070 1071 // If the first element is a struct, recurse. 1072 llvm::Type *SrcTy = SrcPtr.getElementType(); 1073 if (llvm::StructType *SrcSTy = dyn_cast<llvm::StructType>(SrcTy)) 1074 return EnterStructPointerForCoercedAccess(SrcPtr, SrcSTy, DstSize, CGF); 1075 1076 return SrcPtr; 1077 } 1078 1079 /// CoerceIntOrPtrToIntOrPtr - Convert a value Val to the specific Ty where both 1080 /// are either integers or pointers. This does a truncation of the value if it 1081 /// is too large or a zero extension if it is too small. 1082 /// 1083 /// This behaves as if the value were coerced through memory, so on big-endian 1084 /// targets the high bits are preserved in a truncation, while little-endian 1085 /// targets preserve the low bits. 1086 static llvm::Value *CoerceIntOrPtrToIntOrPtr(llvm::Value *Val, 1087 llvm::Type *Ty, 1088 CodeGenFunction &CGF) { 1089 if (Val->getType() == Ty) 1090 return Val; 1091 1092 if (isa<llvm::PointerType>(Val->getType())) { 1093 // If this is Pointer->Pointer avoid conversion to and from int. 1094 if (isa<llvm::PointerType>(Ty)) 1095 return CGF.Builder.CreateBitCast(Val, Ty, "coerce.val"); 1096 1097 // Convert the pointer to an integer so we can play with its width. 1098 Val = CGF.Builder.CreatePtrToInt(Val, CGF.IntPtrTy, "coerce.val.pi"); 1099 } 1100 1101 llvm::Type *DestIntTy = Ty; 1102 if (isa<llvm::PointerType>(DestIntTy)) 1103 DestIntTy = CGF.IntPtrTy; 1104 1105 if (Val->getType() != DestIntTy) { 1106 const llvm::DataLayout &DL = CGF.CGM.getDataLayout(); 1107 if (DL.isBigEndian()) { 1108 // Preserve the high bits on big-endian targets. 1109 // That is what memory coercion does. 1110 uint64_t SrcSize = DL.getTypeSizeInBits(Val->getType()); 1111 uint64_t DstSize = DL.getTypeSizeInBits(DestIntTy); 1112 1113 if (SrcSize > DstSize) { 1114 Val = CGF.Builder.CreateLShr(Val, SrcSize - DstSize, "coerce.highbits"); 1115 Val = CGF.Builder.CreateTrunc(Val, DestIntTy, "coerce.val.ii"); 1116 } else { 1117 Val = CGF.Builder.CreateZExt(Val, DestIntTy, "coerce.val.ii"); 1118 Val = CGF.Builder.CreateShl(Val, DstSize - SrcSize, "coerce.highbits"); 1119 } 1120 } else { 1121 // Little-endian targets preserve the low bits. No shifts required. 1122 Val = CGF.Builder.CreateIntCast(Val, DestIntTy, false, "coerce.val.ii"); 1123 } 1124 } 1125 1126 if (isa<llvm::PointerType>(Ty)) 1127 Val = CGF.Builder.CreateIntToPtr(Val, Ty, "coerce.val.ip"); 1128 return Val; 1129 } 1130 1131 1132 1133 /// CreateCoercedLoad - Create a load from \arg SrcPtr interpreted as 1134 /// a pointer to an object of type \arg Ty, known to be aligned to 1135 /// \arg SrcAlign bytes. 1136 /// 1137 /// This safely handles the case when the src type is smaller than the 1138 /// destination type; in this situation the values of bits which not 1139 /// present in the src are undefined. 1140 static llvm::Value *CreateCoercedLoad(Address Src, llvm::Type *Ty, 1141 CodeGenFunction &CGF) { 1142 llvm::Type *SrcTy = Src.getElementType(); 1143 1144 // If SrcTy and Ty are the same, just do a load. 1145 if (SrcTy == Ty) 1146 return CGF.Builder.CreateLoad(Src); 1147 1148 uint64_t DstSize = CGF.CGM.getDataLayout().getTypeAllocSize(Ty); 1149 1150 if (llvm::StructType *SrcSTy = dyn_cast<llvm::StructType>(SrcTy)) { 1151 Src = EnterStructPointerForCoercedAccess(Src, SrcSTy, DstSize, CGF); 1152 SrcTy = Src.getType()->getElementType(); 1153 } 1154 1155 uint64_t SrcSize = CGF.CGM.getDataLayout().getTypeAllocSize(SrcTy); 1156 1157 // If the source and destination are integer or pointer types, just do an 1158 // extension or truncation to the desired type. 1159 if ((isa<llvm::IntegerType>(Ty) || isa<llvm::PointerType>(Ty)) && 1160 (isa<llvm::IntegerType>(SrcTy) || isa<llvm::PointerType>(SrcTy))) { 1161 llvm::Value *Load = CGF.Builder.CreateLoad(Src); 1162 return CoerceIntOrPtrToIntOrPtr(Load, Ty, CGF); 1163 } 1164 1165 // If load is legal, just bitcast the src pointer. 1166 if (SrcSize >= DstSize) { 1167 // Generally SrcSize is never greater than DstSize, since this means we are 1168 // losing bits. However, this can happen in cases where the structure has 1169 // additional padding, for example due to a user specified alignment. 1170 // 1171 // FIXME: Assert that we aren't truncating non-padding bits when have access 1172 // to that information. 1173 Src = CGF.Builder.CreateBitCast(Src, llvm::PointerType::getUnqual(Ty)); 1174 return CGF.Builder.CreateLoad(Src); 1175 } 1176 1177 // Otherwise do coercion through memory. This is stupid, but simple. 1178 Address Tmp = CreateTempAllocaForCoercion(CGF, Ty, Src.getAlignment()); 1179 Address Casted = CGF.Builder.CreateBitCast(Tmp, CGF.Int8PtrTy); 1180 Address SrcCasted = CGF.Builder.CreateBitCast(Src, CGF.Int8PtrTy); 1181 CGF.Builder.CreateMemCpy(Casted, SrcCasted, 1182 llvm::ConstantInt::get(CGF.IntPtrTy, SrcSize), 1183 false); 1184 return CGF.Builder.CreateLoad(Tmp); 1185 } 1186 1187 // Function to store a first-class aggregate into memory. We prefer to 1188 // store the elements rather than the aggregate to be more friendly to 1189 // fast-isel. 1190 // FIXME: Do we need to recurse here? 1191 static void BuildAggStore(CodeGenFunction &CGF, llvm::Value *Val, 1192 Address Dest, bool DestIsVolatile) { 1193 // Prefer scalar stores to first-class aggregate stores. 1194 if (llvm::StructType *STy = 1195 dyn_cast<llvm::StructType>(Val->getType())) { 1196 const llvm::StructLayout *Layout = 1197 CGF.CGM.getDataLayout().getStructLayout(STy); 1198 1199 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 1200 auto EltOffset = CharUnits::fromQuantity(Layout->getElementOffset(i)); 1201 Address EltPtr = CGF.Builder.CreateStructGEP(Dest, i, EltOffset); 1202 llvm::Value *Elt = CGF.Builder.CreateExtractValue(Val, i); 1203 CGF.Builder.CreateStore(Elt, EltPtr, DestIsVolatile); 1204 } 1205 } else { 1206 CGF.Builder.CreateStore(Val, Dest, DestIsVolatile); 1207 } 1208 } 1209 1210 /// CreateCoercedStore - Create a store to \arg DstPtr from \arg Src, 1211 /// where the source and destination may have different types. The 1212 /// destination is known to be aligned to \arg DstAlign bytes. 1213 /// 1214 /// This safely handles the case when the src type is larger than the 1215 /// destination type; the upper bits of the src will be lost. 1216 static void CreateCoercedStore(llvm::Value *Src, 1217 Address Dst, 1218 bool DstIsVolatile, 1219 CodeGenFunction &CGF) { 1220 llvm::Type *SrcTy = Src->getType(); 1221 llvm::Type *DstTy = Dst.getType()->getElementType(); 1222 if (SrcTy == DstTy) { 1223 CGF.Builder.CreateStore(Src, Dst, DstIsVolatile); 1224 return; 1225 } 1226 1227 uint64_t SrcSize = CGF.CGM.getDataLayout().getTypeAllocSize(SrcTy); 1228 1229 if (llvm::StructType *DstSTy = dyn_cast<llvm::StructType>(DstTy)) { 1230 Dst = EnterStructPointerForCoercedAccess(Dst, DstSTy, SrcSize, CGF); 1231 DstTy = Dst.getType()->getElementType(); 1232 } 1233 1234 // If the source and destination are integer or pointer types, just do an 1235 // extension or truncation to the desired type. 1236 if ((isa<llvm::IntegerType>(SrcTy) || isa<llvm::PointerType>(SrcTy)) && 1237 (isa<llvm::IntegerType>(DstTy) || isa<llvm::PointerType>(DstTy))) { 1238 Src = CoerceIntOrPtrToIntOrPtr(Src, DstTy, CGF); 1239 CGF.Builder.CreateStore(Src, Dst, DstIsVolatile); 1240 return; 1241 } 1242 1243 uint64_t DstSize = CGF.CGM.getDataLayout().getTypeAllocSize(DstTy); 1244 1245 // If store is legal, just bitcast the src pointer. 1246 if (SrcSize <= DstSize) { 1247 Dst = CGF.Builder.CreateBitCast(Dst, llvm::PointerType::getUnqual(SrcTy)); 1248 BuildAggStore(CGF, Src, Dst, DstIsVolatile); 1249 } else { 1250 // Otherwise do coercion through memory. This is stupid, but 1251 // simple. 1252 1253 // Generally SrcSize is never greater than DstSize, since this means we are 1254 // losing bits. However, this can happen in cases where the structure has 1255 // additional padding, for example due to a user specified alignment. 1256 // 1257 // FIXME: Assert that we aren't truncating non-padding bits when have access 1258 // to that information. 1259 Address Tmp = CreateTempAllocaForCoercion(CGF, SrcTy, Dst.getAlignment()); 1260 CGF.Builder.CreateStore(Src, Tmp); 1261 Address Casted = CGF.Builder.CreateBitCast(Tmp, CGF.Int8PtrTy); 1262 Address DstCasted = CGF.Builder.CreateBitCast(Dst, CGF.Int8PtrTy); 1263 CGF.Builder.CreateMemCpy(DstCasted, Casted, 1264 llvm::ConstantInt::get(CGF.IntPtrTy, DstSize), 1265 false); 1266 } 1267 } 1268 1269 static Address emitAddressAtOffset(CodeGenFunction &CGF, Address addr, 1270 const ABIArgInfo &info) { 1271 if (unsigned offset = info.getDirectOffset()) { 1272 addr = CGF.Builder.CreateElementBitCast(addr, CGF.Int8Ty); 1273 addr = CGF.Builder.CreateConstInBoundsByteGEP(addr, 1274 CharUnits::fromQuantity(offset)); 1275 addr = CGF.Builder.CreateElementBitCast(addr, info.getCoerceToType()); 1276 } 1277 return addr; 1278 } 1279 1280 namespace { 1281 1282 /// Encapsulates information about the way function arguments from 1283 /// CGFunctionInfo should be passed to actual LLVM IR function. 1284 class ClangToLLVMArgMapping { 1285 static const unsigned InvalidIndex = ~0U; 1286 unsigned InallocaArgNo; 1287 unsigned SRetArgNo; 1288 unsigned TotalIRArgs; 1289 1290 /// Arguments of LLVM IR function corresponding to single Clang argument. 1291 struct IRArgs { 1292 unsigned PaddingArgIndex; 1293 // Argument is expanded to IR arguments at positions 1294 // [FirstArgIndex, FirstArgIndex + NumberOfArgs). 1295 unsigned FirstArgIndex; 1296 unsigned NumberOfArgs; 1297 1298 IRArgs() 1299 : PaddingArgIndex(InvalidIndex), FirstArgIndex(InvalidIndex), 1300 NumberOfArgs(0) {} 1301 }; 1302 1303 SmallVector<IRArgs, 8> ArgInfo; 1304 1305 public: 1306 ClangToLLVMArgMapping(const ASTContext &Context, const CGFunctionInfo &FI, 1307 bool OnlyRequiredArgs = false) 1308 : InallocaArgNo(InvalidIndex), SRetArgNo(InvalidIndex), TotalIRArgs(0), 1309 ArgInfo(OnlyRequiredArgs ? FI.getNumRequiredArgs() : FI.arg_size()) { 1310 construct(Context, FI, OnlyRequiredArgs); 1311 } 1312 1313 bool hasInallocaArg() const { return InallocaArgNo != InvalidIndex; } 1314 unsigned getInallocaArgNo() const { 1315 assert(hasInallocaArg()); 1316 return InallocaArgNo; 1317 } 1318 1319 bool hasSRetArg() const { return SRetArgNo != InvalidIndex; } 1320 unsigned getSRetArgNo() const { 1321 assert(hasSRetArg()); 1322 return SRetArgNo; 1323 } 1324 1325 unsigned totalIRArgs() const { return TotalIRArgs; } 1326 1327 bool hasPaddingArg(unsigned ArgNo) const { 1328 assert(ArgNo < ArgInfo.size()); 1329 return ArgInfo[ArgNo].PaddingArgIndex != InvalidIndex; 1330 } 1331 unsigned getPaddingArgNo(unsigned ArgNo) const { 1332 assert(hasPaddingArg(ArgNo)); 1333 return ArgInfo[ArgNo].PaddingArgIndex; 1334 } 1335 1336 /// Returns index of first IR argument corresponding to ArgNo, and their 1337 /// quantity. 1338 std::pair<unsigned, unsigned> getIRArgs(unsigned ArgNo) const { 1339 assert(ArgNo < ArgInfo.size()); 1340 return std::make_pair(ArgInfo[ArgNo].FirstArgIndex, 1341 ArgInfo[ArgNo].NumberOfArgs); 1342 } 1343 1344 private: 1345 void construct(const ASTContext &Context, const CGFunctionInfo &FI, 1346 bool OnlyRequiredArgs); 1347 }; 1348 1349 void ClangToLLVMArgMapping::construct(const ASTContext &Context, 1350 const CGFunctionInfo &FI, 1351 bool OnlyRequiredArgs) { 1352 unsigned IRArgNo = 0; 1353 bool SwapThisWithSRet = false; 1354 const ABIArgInfo &RetAI = FI.getReturnInfo(); 1355 1356 if (RetAI.getKind() == ABIArgInfo::Indirect) { 1357 SwapThisWithSRet = RetAI.isSRetAfterThis(); 1358 SRetArgNo = SwapThisWithSRet ? 1 : IRArgNo++; 1359 } 1360 1361 unsigned ArgNo = 0; 1362 unsigned NumArgs = OnlyRequiredArgs ? FI.getNumRequiredArgs() : FI.arg_size(); 1363 for (CGFunctionInfo::const_arg_iterator I = FI.arg_begin(); ArgNo < NumArgs; 1364 ++I, ++ArgNo) { 1365 assert(I != FI.arg_end()); 1366 QualType ArgType = I->type; 1367 const ABIArgInfo &AI = I->info; 1368 // Collect data about IR arguments corresponding to Clang argument ArgNo. 1369 auto &IRArgs = ArgInfo[ArgNo]; 1370 1371 if (AI.getPaddingType()) 1372 IRArgs.PaddingArgIndex = IRArgNo++; 1373 1374 switch (AI.getKind()) { 1375 case ABIArgInfo::Extend: 1376 case ABIArgInfo::Direct: { 1377 // FIXME: handle sseregparm someday... 1378 llvm::StructType *STy = dyn_cast<llvm::StructType>(AI.getCoerceToType()); 1379 if (AI.isDirect() && AI.getCanBeFlattened() && STy) { 1380 IRArgs.NumberOfArgs = STy->getNumElements(); 1381 } else { 1382 IRArgs.NumberOfArgs = 1; 1383 } 1384 break; 1385 } 1386 case ABIArgInfo::Indirect: 1387 IRArgs.NumberOfArgs = 1; 1388 break; 1389 case ABIArgInfo::Ignore: 1390 case ABIArgInfo::InAlloca: 1391 // ignore and inalloca doesn't have matching LLVM parameters. 1392 IRArgs.NumberOfArgs = 0; 1393 break; 1394 case ABIArgInfo::CoerceAndExpand: 1395 IRArgs.NumberOfArgs = AI.getCoerceAndExpandTypeSequence().size(); 1396 break; 1397 case ABIArgInfo::Expand: 1398 IRArgs.NumberOfArgs = getExpansionSize(ArgType, Context); 1399 break; 1400 } 1401 1402 if (IRArgs.NumberOfArgs > 0) { 1403 IRArgs.FirstArgIndex = IRArgNo; 1404 IRArgNo += IRArgs.NumberOfArgs; 1405 } 1406 1407 // Skip over the sret parameter when it comes second. We already handled it 1408 // above. 1409 if (IRArgNo == 1 && SwapThisWithSRet) 1410 IRArgNo++; 1411 } 1412 assert(ArgNo == ArgInfo.size()); 1413 1414 if (FI.usesInAlloca()) 1415 InallocaArgNo = IRArgNo++; 1416 1417 TotalIRArgs = IRArgNo; 1418 } 1419 } // namespace 1420 1421 /***/ 1422 1423 bool CodeGenModule::ReturnTypeUsesSRet(const CGFunctionInfo &FI) { 1424 return FI.getReturnInfo().isIndirect(); 1425 } 1426 1427 bool CodeGenModule::ReturnSlotInterferesWithArgs(const CGFunctionInfo &FI) { 1428 return ReturnTypeUsesSRet(FI) && 1429 getTargetCodeGenInfo().doesReturnSlotInterfereWithArgs(); 1430 } 1431 1432 bool CodeGenModule::ReturnTypeUsesFPRet(QualType ResultType) { 1433 if (const BuiltinType *BT = ResultType->getAs<BuiltinType>()) { 1434 switch (BT->getKind()) { 1435 default: 1436 return false; 1437 case BuiltinType::Float: 1438 return getTarget().useObjCFPRetForRealType(TargetInfo::Float); 1439 case BuiltinType::Double: 1440 return getTarget().useObjCFPRetForRealType(TargetInfo::Double); 1441 case BuiltinType::LongDouble: 1442 return getTarget().useObjCFPRetForRealType(TargetInfo::LongDouble); 1443 } 1444 } 1445 1446 return false; 1447 } 1448 1449 bool CodeGenModule::ReturnTypeUsesFP2Ret(QualType ResultType) { 1450 if (const ComplexType *CT = ResultType->getAs<ComplexType>()) { 1451 if (const BuiltinType *BT = CT->getElementType()->getAs<BuiltinType>()) { 1452 if (BT->getKind() == BuiltinType::LongDouble) 1453 return getTarget().useObjCFP2RetForComplexLongDouble(); 1454 } 1455 } 1456 1457 return false; 1458 } 1459 1460 llvm::FunctionType *CodeGenTypes::GetFunctionType(GlobalDecl GD) { 1461 const CGFunctionInfo &FI = arrangeGlobalDeclaration(GD); 1462 return GetFunctionType(FI); 1463 } 1464 1465 llvm::FunctionType * 1466 CodeGenTypes::GetFunctionType(const CGFunctionInfo &FI) { 1467 1468 bool Inserted = FunctionsBeingProcessed.insert(&FI).second; 1469 (void)Inserted; 1470 assert(Inserted && "Recursively being processed?"); 1471 1472 llvm::Type *resultType = nullptr; 1473 const ABIArgInfo &retAI = FI.getReturnInfo(); 1474 switch (retAI.getKind()) { 1475 case ABIArgInfo::Expand: 1476 llvm_unreachable("Invalid ABI kind for return argument"); 1477 1478 case ABIArgInfo::Extend: 1479 case ABIArgInfo::Direct: 1480 resultType = retAI.getCoerceToType(); 1481 break; 1482 1483 case ABIArgInfo::InAlloca: 1484 if (retAI.getInAllocaSRet()) { 1485 // sret things on win32 aren't void, they return the sret pointer. 1486 QualType ret = FI.getReturnType(); 1487 llvm::Type *ty = ConvertType(ret); 1488 unsigned addressSpace = Context.getTargetAddressSpace(ret); 1489 resultType = llvm::PointerType::get(ty, addressSpace); 1490 } else { 1491 resultType = llvm::Type::getVoidTy(getLLVMContext()); 1492 } 1493 break; 1494 1495 case ABIArgInfo::Indirect: 1496 case ABIArgInfo::Ignore: 1497 resultType = llvm::Type::getVoidTy(getLLVMContext()); 1498 break; 1499 1500 case ABIArgInfo::CoerceAndExpand: 1501 resultType = retAI.getUnpaddedCoerceAndExpandType(); 1502 break; 1503 } 1504 1505 ClangToLLVMArgMapping IRFunctionArgs(getContext(), FI, true); 1506 SmallVector<llvm::Type*, 8> ArgTypes(IRFunctionArgs.totalIRArgs()); 1507 1508 // Add type for sret argument. 1509 if (IRFunctionArgs.hasSRetArg()) { 1510 QualType Ret = FI.getReturnType(); 1511 llvm::Type *Ty = ConvertType(Ret); 1512 unsigned AddressSpace = Context.getTargetAddressSpace(Ret); 1513 ArgTypes[IRFunctionArgs.getSRetArgNo()] = 1514 llvm::PointerType::get(Ty, AddressSpace); 1515 } 1516 1517 // Add type for inalloca argument. 1518 if (IRFunctionArgs.hasInallocaArg()) { 1519 auto ArgStruct = FI.getArgStruct(); 1520 assert(ArgStruct); 1521 ArgTypes[IRFunctionArgs.getInallocaArgNo()] = ArgStruct->getPointerTo(); 1522 } 1523 1524 // Add in all of the required arguments. 1525 unsigned ArgNo = 0; 1526 CGFunctionInfo::const_arg_iterator it = FI.arg_begin(), 1527 ie = it + FI.getNumRequiredArgs(); 1528 for (; it != ie; ++it, ++ArgNo) { 1529 const ABIArgInfo &ArgInfo = it->info; 1530 1531 // Insert a padding type to ensure proper alignment. 1532 if (IRFunctionArgs.hasPaddingArg(ArgNo)) 1533 ArgTypes[IRFunctionArgs.getPaddingArgNo(ArgNo)] = 1534 ArgInfo.getPaddingType(); 1535 1536 unsigned FirstIRArg, NumIRArgs; 1537 std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo); 1538 1539 switch (ArgInfo.getKind()) { 1540 case ABIArgInfo::Ignore: 1541 case ABIArgInfo::InAlloca: 1542 assert(NumIRArgs == 0); 1543 break; 1544 1545 case ABIArgInfo::Indirect: { 1546 assert(NumIRArgs == 1); 1547 // indirect arguments are always on the stack, which is addr space #0. 1548 llvm::Type *LTy = ConvertTypeForMem(it->type); 1549 ArgTypes[FirstIRArg] = LTy->getPointerTo(); 1550 break; 1551 } 1552 1553 case ABIArgInfo::Extend: 1554 case ABIArgInfo::Direct: { 1555 // Fast-isel and the optimizer generally like scalar values better than 1556 // FCAs, so we flatten them if this is safe to do for this argument. 1557 llvm::Type *argType = ArgInfo.getCoerceToType(); 1558 llvm::StructType *st = dyn_cast<llvm::StructType>(argType); 1559 if (st && ArgInfo.isDirect() && ArgInfo.getCanBeFlattened()) { 1560 assert(NumIRArgs == st->getNumElements()); 1561 for (unsigned i = 0, e = st->getNumElements(); i != e; ++i) 1562 ArgTypes[FirstIRArg + i] = st->getElementType(i); 1563 } else { 1564 assert(NumIRArgs == 1); 1565 ArgTypes[FirstIRArg] = argType; 1566 } 1567 break; 1568 } 1569 1570 case ABIArgInfo::CoerceAndExpand: { 1571 auto ArgTypesIter = ArgTypes.begin() + FirstIRArg; 1572 for (auto EltTy : ArgInfo.getCoerceAndExpandTypeSequence()) { 1573 *ArgTypesIter++ = EltTy; 1574 } 1575 assert(ArgTypesIter == ArgTypes.begin() + FirstIRArg + NumIRArgs); 1576 break; 1577 } 1578 1579 case ABIArgInfo::Expand: 1580 auto ArgTypesIter = ArgTypes.begin() + FirstIRArg; 1581 getExpandedTypes(it->type, ArgTypesIter); 1582 assert(ArgTypesIter == ArgTypes.begin() + FirstIRArg + NumIRArgs); 1583 break; 1584 } 1585 } 1586 1587 bool Erased = FunctionsBeingProcessed.erase(&FI); (void)Erased; 1588 assert(Erased && "Not in set?"); 1589 1590 return llvm::FunctionType::get(resultType, ArgTypes, FI.isVariadic()); 1591 } 1592 1593 llvm::Type *CodeGenTypes::GetFunctionTypeForVTable(GlobalDecl GD) { 1594 const CXXMethodDecl *MD = cast<CXXMethodDecl>(GD.getDecl()); 1595 const FunctionProtoType *FPT = MD->getType()->getAs<FunctionProtoType>(); 1596 1597 if (!isFuncTypeConvertible(FPT)) 1598 return llvm::StructType::get(getLLVMContext()); 1599 1600 const CGFunctionInfo *Info; 1601 if (isa<CXXDestructorDecl>(MD)) 1602 Info = 1603 &arrangeCXXStructorDeclaration(MD, getFromDtorType(GD.getDtorType())); 1604 else 1605 Info = &arrangeCXXMethodDeclaration(MD); 1606 return GetFunctionType(*Info); 1607 } 1608 1609 static void AddAttributesFromFunctionProtoType(ASTContext &Ctx, 1610 llvm::AttrBuilder &FuncAttrs, 1611 const FunctionProtoType *FPT) { 1612 if (!FPT) 1613 return; 1614 1615 if (!isUnresolvedExceptionSpec(FPT->getExceptionSpecType()) && 1616 FPT->isNothrow(Ctx)) 1617 FuncAttrs.addAttribute(llvm::Attribute::NoUnwind); 1618 } 1619 1620 void CodeGenModule::ConstructAttributeList( 1621 StringRef Name, const CGFunctionInfo &FI, CGCalleeInfo CalleeInfo, 1622 AttributeListType &PAL, unsigned &CallingConv, bool AttrOnCallSite) { 1623 llvm::AttrBuilder FuncAttrs; 1624 llvm::AttrBuilder RetAttrs; 1625 bool HasOptnone = false; 1626 1627 CallingConv = FI.getEffectiveCallingConvention(); 1628 1629 if (FI.isNoReturn()) 1630 FuncAttrs.addAttribute(llvm::Attribute::NoReturn); 1631 1632 // If we have information about the function prototype, we can learn 1633 // attributes form there. 1634 AddAttributesFromFunctionProtoType(getContext(), FuncAttrs, 1635 CalleeInfo.getCalleeFunctionProtoType()); 1636 1637 const Decl *TargetDecl = CalleeInfo.getCalleeDecl(); 1638 1639 bool HasAnyX86InterruptAttr = false; 1640 // FIXME: handle sseregparm someday... 1641 if (TargetDecl) { 1642 if (TargetDecl->hasAttr<ReturnsTwiceAttr>()) 1643 FuncAttrs.addAttribute(llvm::Attribute::ReturnsTwice); 1644 if (TargetDecl->hasAttr<NoThrowAttr>()) 1645 FuncAttrs.addAttribute(llvm::Attribute::NoUnwind); 1646 if (TargetDecl->hasAttr<NoReturnAttr>()) 1647 FuncAttrs.addAttribute(llvm::Attribute::NoReturn); 1648 if (TargetDecl->hasAttr<NoDuplicateAttr>()) 1649 FuncAttrs.addAttribute(llvm::Attribute::NoDuplicate); 1650 1651 if (const FunctionDecl *Fn = dyn_cast<FunctionDecl>(TargetDecl)) { 1652 AddAttributesFromFunctionProtoType( 1653 getContext(), FuncAttrs, Fn->getType()->getAs<FunctionProtoType>()); 1654 // Don't use [[noreturn]] or _Noreturn for a call to a virtual function. 1655 // These attributes are not inherited by overloads. 1656 const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(Fn); 1657 if (Fn->isNoReturn() && !(AttrOnCallSite && MD && MD->isVirtual())) 1658 FuncAttrs.addAttribute(llvm::Attribute::NoReturn); 1659 } 1660 1661 // 'const', 'pure' and 'noalias' attributed functions are also nounwind. 1662 if (TargetDecl->hasAttr<ConstAttr>()) { 1663 FuncAttrs.addAttribute(llvm::Attribute::ReadNone); 1664 FuncAttrs.addAttribute(llvm::Attribute::NoUnwind); 1665 } else if (TargetDecl->hasAttr<PureAttr>()) { 1666 FuncAttrs.addAttribute(llvm::Attribute::ReadOnly); 1667 FuncAttrs.addAttribute(llvm::Attribute::NoUnwind); 1668 } else if (TargetDecl->hasAttr<NoAliasAttr>()) { 1669 FuncAttrs.addAttribute(llvm::Attribute::ArgMemOnly); 1670 FuncAttrs.addAttribute(llvm::Attribute::NoUnwind); 1671 } 1672 if (TargetDecl->hasAttr<RestrictAttr>()) 1673 RetAttrs.addAttribute(llvm::Attribute::NoAlias); 1674 if (TargetDecl->hasAttr<ReturnsNonNullAttr>()) 1675 RetAttrs.addAttribute(llvm::Attribute::NonNull); 1676 1677 HasAnyX86InterruptAttr = TargetDecl->hasAttr<AnyX86InterruptAttr>(); 1678 HasOptnone = TargetDecl->hasAttr<OptimizeNoneAttr>(); 1679 } 1680 1681 // OptimizeNoneAttr takes precedence over -Os or -Oz. No warning needed. 1682 if (!HasOptnone) { 1683 if (CodeGenOpts.OptimizeSize) 1684 FuncAttrs.addAttribute(llvm::Attribute::OptimizeForSize); 1685 if (CodeGenOpts.OptimizeSize == 2) 1686 FuncAttrs.addAttribute(llvm::Attribute::MinSize); 1687 } 1688 1689 if (CodeGenOpts.DisableRedZone) 1690 FuncAttrs.addAttribute(llvm::Attribute::NoRedZone); 1691 if (CodeGenOpts.NoImplicitFloat) 1692 FuncAttrs.addAttribute(llvm::Attribute::NoImplicitFloat); 1693 if (CodeGenOpts.EnableSegmentedStacks && 1694 !(TargetDecl && TargetDecl->hasAttr<NoSplitStackAttr>())) 1695 FuncAttrs.addAttribute("split-stack"); 1696 1697 if (AttrOnCallSite) { 1698 // Attributes that should go on the call site only. 1699 if (!CodeGenOpts.SimplifyLibCalls || 1700 CodeGenOpts.isNoBuiltinFunc(Name.data())) 1701 FuncAttrs.addAttribute(llvm::Attribute::NoBuiltin); 1702 if (!CodeGenOpts.TrapFuncName.empty()) 1703 FuncAttrs.addAttribute("trap-func-name", CodeGenOpts.TrapFuncName); 1704 } else { 1705 // Attributes that should go on the function, but not the call site. 1706 if (!CodeGenOpts.DisableFPElim) { 1707 FuncAttrs.addAttribute("no-frame-pointer-elim", "false"); 1708 } else if (CodeGenOpts.OmitLeafFramePointer) { 1709 FuncAttrs.addAttribute("no-frame-pointer-elim", "false"); 1710 FuncAttrs.addAttribute("no-frame-pointer-elim-non-leaf"); 1711 } else { 1712 FuncAttrs.addAttribute("no-frame-pointer-elim", "true"); 1713 FuncAttrs.addAttribute("no-frame-pointer-elim-non-leaf"); 1714 } 1715 1716 bool DisableTailCalls = 1717 CodeGenOpts.DisableTailCalls || HasAnyX86InterruptAttr || 1718 (TargetDecl && TargetDecl->hasAttr<DisableTailCallsAttr>()); 1719 FuncAttrs.addAttribute( 1720 "disable-tail-calls", 1721 llvm::toStringRef(DisableTailCalls)); 1722 1723 FuncAttrs.addAttribute("less-precise-fpmad", 1724 llvm::toStringRef(CodeGenOpts.LessPreciseFPMAD)); 1725 1726 if (!CodeGenOpts.FPDenormalMode.empty()) 1727 FuncAttrs.addAttribute("denormal-fp-math", 1728 CodeGenOpts.FPDenormalMode); 1729 1730 FuncAttrs.addAttribute("no-trapping-math", 1731 llvm::toStringRef(CodeGenOpts.NoTrappingMath)); 1732 FuncAttrs.addAttribute("no-infs-fp-math", 1733 llvm::toStringRef(CodeGenOpts.NoInfsFPMath)); 1734 FuncAttrs.addAttribute("no-nans-fp-math", 1735 llvm::toStringRef(CodeGenOpts.NoNaNsFPMath)); 1736 FuncAttrs.addAttribute("unsafe-fp-math", 1737 llvm::toStringRef(CodeGenOpts.UnsafeFPMath)); 1738 FuncAttrs.addAttribute("use-soft-float", 1739 llvm::toStringRef(CodeGenOpts.SoftFloat)); 1740 FuncAttrs.addAttribute("stack-protector-buffer-size", 1741 llvm::utostr(CodeGenOpts.SSPBufferSize)); 1742 FuncAttrs.addAttribute("no-signed-zeros-fp-math", 1743 llvm::toStringRef(CodeGenOpts.NoSignedZeros)); 1744 FuncAttrs.addAttribute( 1745 "correctly-rounded-divide-sqrt-fp-math", 1746 llvm::toStringRef(CodeGenOpts.CorrectlyRoundedDivSqrt)); 1747 1748 if (CodeGenOpts.StackRealignment) 1749 FuncAttrs.addAttribute("stackrealign"); 1750 if (CodeGenOpts.Backchain) 1751 FuncAttrs.addAttribute("backchain"); 1752 1753 // Add target-cpu and target-features attributes to functions. If 1754 // we have a decl for the function and it has a target attribute then 1755 // parse that and add it to the feature set. 1756 StringRef TargetCPU = getTarget().getTargetOpts().CPU; 1757 const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(TargetDecl); 1758 if (FD && FD->hasAttr<TargetAttr>()) { 1759 llvm::StringMap<bool> FeatureMap; 1760 getFunctionFeatureMap(FeatureMap, FD); 1761 1762 // Produce the canonical string for this set of features. 1763 std::vector<std::string> Features; 1764 for (llvm::StringMap<bool>::const_iterator it = FeatureMap.begin(), 1765 ie = FeatureMap.end(); 1766 it != ie; ++it) 1767 Features.push_back((it->second ? "+" : "-") + it->first().str()); 1768 1769 // Now add the target-cpu and target-features to the function. 1770 // While we populated the feature map above, we still need to 1771 // get and parse the target attribute so we can get the cpu for 1772 // the function. 1773 const auto *TD = FD->getAttr<TargetAttr>(); 1774 TargetAttr::ParsedTargetAttr ParsedAttr = TD->parse(); 1775 if (ParsedAttr.second != "") 1776 TargetCPU = ParsedAttr.second; 1777 if (TargetCPU != "") 1778 FuncAttrs.addAttribute("target-cpu", TargetCPU); 1779 if (!Features.empty()) { 1780 std::sort(Features.begin(), Features.end()); 1781 FuncAttrs.addAttribute( 1782 "target-features", 1783 llvm::join(Features.begin(), Features.end(), ",")); 1784 } 1785 } else { 1786 // Otherwise just add the existing target cpu and target features to the 1787 // function. 1788 std::vector<std::string> &Features = getTarget().getTargetOpts().Features; 1789 if (TargetCPU != "") 1790 FuncAttrs.addAttribute("target-cpu", TargetCPU); 1791 if (!Features.empty()) { 1792 std::sort(Features.begin(), Features.end()); 1793 FuncAttrs.addAttribute( 1794 "target-features", 1795 llvm::join(Features.begin(), Features.end(), ",")); 1796 } 1797 } 1798 } 1799 1800 if (getLangOpts().CUDA && getLangOpts().CUDAIsDevice) { 1801 // Conservatively, mark all functions and calls in CUDA as convergent 1802 // (meaning, they may call an intrinsically convergent op, such as 1803 // __syncthreads(), and so can't have certain optimizations applied around 1804 // them). LLVM will remove this attribute where it safely can. 1805 FuncAttrs.addAttribute(llvm::Attribute::Convergent); 1806 1807 // Respect -fcuda-flush-denormals-to-zero. 1808 if (getLangOpts().CUDADeviceFlushDenormalsToZero) 1809 FuncAttrs.addAttribute("nvptx-f32ftz", "true"); 1810 } 1811 1812 ClangToLLVMArgMapping IRFunctionArgs(getContext(), FI); 1813 1814 QualType RetTy = FI.getReturnType(); 1815 const ABIArgInfo &RetAI = FI.getReturnInfo(); 1816 switch (RetAI.getKind()) { 1817 case ABIArgInfo::Extend: 1818 if (RetTy->hasSignedIntegerRepresentation()) 1819 RetAttrs.addAttribute(llvm::Attribute::SExt); 1820 else if (RetTy->hasUnsignedIntegerRepresentation()) 1821 RetAttrs.addAttribute(llvm::Attribute::ZExt); 1822 // FALL THROUGH 1823 case ABIArgInfo::Direct: 1824 if (RetAI.getInReg()) 1825 RetAttrs.addAttribute(llvm::Attribute::InReg); 1826 break; 1827 case ABIArgInfo::Ignore: 1828 break; 1829 1830 case ABIArgInfo::InAlloca: 1831 case ABIArgInfo::Indirect: { 1832 // inalloca and sret disable readnone and readonly 1833 FuncAttrs.removeAttribute(llvm::Attribute::ReadOnly) 1834 .removeAttribute(llvm::Attribute::ReadNone); 1835 break; 1836 } 1837 1838 case ABIArgInfo::CoerceAndExpand: 1839 break; 1840 1841 case ABIArgInfo::Expand: 1842 llvm_unreachable("Invalid ABI kind for return argument"); 1843 } 1844 1845 if (const auto *RefTy = RetTy->getAs<ReferenceType>()) { 1846 QualType PTy = RefTy->getPointeeType(); 1847 if (!PTy->isIncompleteType() && PTy->isConstantSizeType()) 1848 RetAttrs.addDereferenceableAttr(getContext().getTypeSizeInChars(PTy) 1849 .getQuantity()); 1850 else if (getContext().getTargetAddressSpace(PTy) == 0) 1851 RetAttrs.addAttribute(llvm::Attribute::NonNull); 1852 } 1853 1854 // Attach return attributes. 1855 if (RetAttrs.hasAttributes()) { 1856 PAL.push_back(llvm::AttributeSet::get( 1857 getLLVMContext(), llvm::AttributeSet::ReturnIndex, RetAttrs)); 1858 } 1859 1860 bool hasUsedSRet = false; 1861 1862 // Attach attributes to sret. 1863 if (IRFunctionArgs.hasSRetArg()) { 1864 llvm::AttrBuilder SRETAttrs; 1865 SRETAttrs.addAttribute(llvm::Attribute::StructRet); 1866 hasUsedSRet = true; 1867 if (RetAI.getInReg()) 1868 SRETAttrs.addAttribute(llvm::Attribute::InReg); 1869 PAL.push_back(llvm::AttributeSet::get( 1870 getLLVMContext(), IRFunctionArgs.getSRetArgNo() + 1, SRETAttrs)); 1871 } 1872 1873 // Attach attributes to inalloca argument. 1874 if (IRFunctionArgs.hasInallocaArg()) { 1875 llvm::AttrBuilder Attrs; 1876 Attrs.addAttribute(llvm::Attribute::InAlloca); 1877 PAL.push_back(llvm::AttributeSet::get( 1878 getLLVMContext(), IRFunctionArgs.getInallocaArgNo() + 1, Attrs)); 1879 } 1880 1881 unsigned ArgNo = 0; 1882 for (CGFunctionInfo::const_arg_iterator I = FI.arg_begin(), 1883 E = FI.arg_end(); 1884 I != E; ++I, ++ArgNo) { 1885 QualType ParamType = I->type; 1886 const ABIArgInfo &AI = I->info; 1887 llvm::AttrBuilder Attrs; 1888 1889 // Add attribute for padding argument, if necessary. 1890 if (IRFunctionArgs.hasPaddingArg(ArgNo)) { 1891 if (AI.getPaddingInReg()) 1892 PAL.push_back(llvm::AttributeSet::get( 1893 getLLVMContext(), IRFunctionArgs.getPaddingArgNo(ArgNo) + 1, 1894 llvm::Attribute::InReg)); 1895 } 1896 1897 // 'restrict' -> 'noalias' is done in EmitFunctionProlog when we 1898 // have the corresponding parameter variable. It doesn't make 1899 // sense to do it here because parameters are so messed up. 1900 switch (AI.getKind()) { 1901 case ABIArgInfo::Extend: 1902 if (ParamType->isSignedIntegerOrEnumerationType()) 1903 Attrs.addAttribute(llvm::Attribute::SExt); 1904 else if (ParamType->isUnsignedIntegerOrEnumerationType()) { 1905 if (getTypes().getABIInfo().shouldSignExtUnsignedType(ParamType)) 1906 Attrs.addAttribute(llvm::Attribute::SExt); 1907 else 1908 Attrs.addAttribute(llvm::Attribute::ZExt); 1909 } 1910 // FALL THROUGH 1911 case ABIArgInfo::Direct: 1912 if (ArgNo == 0 && FI.isChainCall()) 1913 Attrs.addAttribute(llvm::Attribute::Nest); 1914 else if (AI.getInReg()) 1915 Attrs.addAttribute(llvm::Attribute::InReg); 1916 break; 1917 1918 case ABIArgInfo::Indirect: { 1919 if (AI.getInReg()) 1920 Attrs.addAttribute(llvm::Attribute::InReg); 1921 1922 if (AI.getIndirectByVal()) 1923 Attrs.addAttribute(llvm::Attribute::ByVal); 1924 1925 CharUnits Align = AI.getIndirectAlign(); 1926 1927 // In a byval argument, it is important that the required 1928 // alignment of the type is honored, as LLVM might be creating a 1929 // *new* stack object, and needs to know what alignment to give 1930 // it. (Sometimes it can deduce a sensible alignment on its own, 1931 // but not if clang decides it must emit a packed struct, or the 1932 // user specifies increased alignment requirements.) 1933 // 1934 // This is different from indirect *not* byval, where the object 1935 // exists already, and the align attribute is purely 1936 // informative. 1937 assert(!Align.isZero()); 1938 1939 // For now, only add this when we have a byval argument. 1940 // TODO: be less lazy about updating test cases. 1941 if (AI.getIndirectByVal()) 1942 Attrs.addAlignmentAttr(Align.getQuantity()); 1943 1944 // byval disables readnone and readonly. 1945 FuncAttrs.removeAttribute(llvm::Attribute::ReadOnly) 1946 .removeAttribute(llvm::Attribute::ReadNone); 1947 break; 1948 } 1949 case ABIArgInfo::Ignore: 1950 case ABIArgInfo::Expand: 1951 case ABIArgInfo::CoerceAndExpand: 1952 break; 1953 1954 case ABIArgInfo::InAlloca: 1955 // inalloca disables readnone and readonly. 1956 FuncAttrs.removeAttribute(llvm::Attribute::ReadOnly) 1957 .removeAttribute(llvm::Attribute::ReadNone); 1958 continue; 1959 } 1960 1961 if (const auto *RefTy = ParamType->getAs<ReferenceType>()) { 1962 QualType PTy = RefTy->getPointeeType(); 1963 if (!PTy->isIncompleteType() && PTy->isConstantSizeType()) 1964 Attrs.addDereferenceableAttr(getContext().getTypeSizeInChars(PTy) 1965 .getQuantity()); 1966 else if (getContext().getTargetAddressSpace(PTy) == 0) 1967 Attrs.addAttribute(llvm::Attribute::NonNull); 1968 } 1969 1970 switch (FI.getExtParameterInfo(ArgNo).getABI()) { 1971 case ParameterABI::Ordinary: 1972 break; 1973 1974 case ParameterABI::SwiftIndirectResult: { 1975 // Add 'sret' if we haven't already used it for something, but 1976 // only if the result is void. 1977 if (!hasUsedSRet && RetTy->isVoidType()) { 1978 Attrs.addAttribute(llvm::Attribute::StructRet); 1979 hasUsedSRet = true; 1980 } 1981 1982 // Add 'noalias' in either case. 1983 Attrs.addAttribute(llvm::Attribute::NoAlias); 1984 1985 // Add 'dereferenceable' and 'alignment'. 1986 auto PTy = ParamType->getPointeeType(); 1987 if (!PTy->isIncompleteType() && PTy->isConstantSizeType()) { 1988 auto info = getContext().getTypeInfoInChars(PTy); 1989 Attrs.addDereferenceableAttr(info.first.getQuantity()); 1990 Attrs.addAttribute(llvm::Attribute::getWithAlignment(getLLVMContext(), 1991 info.second.getQuantity())); 1992 } 1993 break; 1994 } 1995 1996 case ParameterABI::SwiftErrorResult: 1997 Attrs.addAttribute(llvm::Attribute::SwiftError); 1998 break; 1999 2000 case ParameterABI::SwiftContext: 2001 Attrs.addAttribute(llvm::Attribute::SwiftSelf); 2002 break; 2003 } 2004 2005 if (Attrs.hasAttributes()) { 2006 unsigned FirstIRArg, NumIRArgs; 2007 std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo); 2008 for (unsigned i = 0; i < NumIRArgs; i++) 2009 PAL.push_back(llvm::AttributeSet::get(getLLVMContext(), 2010 FirstIRArg + i + 1, Attrs)); 2011 } 2012 } 2013 assert(ArgNo == FI.arg_size()); 2014 2015 if (FuncAttrs.hasAttributes()) 2016 PAL.push_back(llvm:: 2017 AttributeSet::get(getLLVMContext(), 2018 llvm::AttributeSet::FunctionIndex, 2019 FuncAttrs)); 2020 } 2021 2022 /// An argument came in as a promoted argument; demote it back to its 2023 /// declared type. 2024 static llvm::Value *emitArgumentDemotion(CodeGenFunction &CGF, 2025 const VarDecl *var, 2026 llvm::Value *value) { 2027 llvm::Type *varType = CGF.ConvertType(var->getType()); 2028 2029 // This can happen with promotions that actually don't change the 2030 // underlying type, like the enum promotions. 2031 if (value->getType() == varType) return value; 2032 2033 assert((varType->isIntegerTy() || varType->isFloatingPointTy()) 2034 && "unexpected promotion type"); 2035 2036 if (isa<llvm::IntegerType>(varType)) 2037 return CGF.Builder.CreateTrunc(value, varType, "arg.unpromote"); 2038 2039 return CGF.Builder.CreateFPCast(value, varType, "arg.unpromote"); 2040 } 2041 2042 /// Returns the attribute (either parameter attribute, or function 2043 /// attribute), which declares argument ArgNo to be non-null. 2044 static const NonNullAttr *getNonNullAttr(const Decl *FD, const ParmVarDecl *PVD, 2045 QualType ArgType, unsigned ArgNo) { 2046 // FIXME: __attribute__((nonnull)) can also be applied to: 2047 // - references to pointers, where the pointee is known to be 2048 // nonnull (apparently a Clang extension) 2049 // - transparent unions containing pointers 2050 // In the former case, LLVM IR cannot represent the constraint. In 2051 // the latter case, we have no guarantee that the transparent union 2052 // is in fact passed as a pointer. 2053 if (!ArgType->isAnyPointerType() && !ArgType->isBlockPointerType()) 2054 return nullptr; 2055 // First, check attribute on parameter itself. 2056 if (PVD) { 2057 if (auto ParmNNAttr = PVD->getAttr<NonNullAttr>()) 2058 return ParmNNAttr; 2059 } 2060 // Check function attributes. 2061 if (!FD) 2062 return nullptr; 2063 for (const auto *NNAttr : FD->specific_attrs<NonNullAttr>()) { 2064 if (NNAttr->isNonNull(ArgNo)) 2065 return NNAttr; 2066 } 2067 return nullptr; 2068 } 2069 2070 namespace { 2071 struct CopyBackSwiftError final : EHScopeStack::Cleanup { 2072 Address Temp; 2073 Address Arg; 2074 CopyBackSwiftError(Address temp, Address arg) : Temp(temp), Arg(arg) {} 2075 void Emit(CodeGenFunction &CGF, Flags flags) override { 2076 llvm::Value *errorValue = CGF.Builder.CreateLoad(Temp); 2077 CGF.Builder.CreateStore(errorValue, Arg); 2078 } 2079 }; 2080 } 2081 2082 void CodeGenFunction::EmitFunctionProlog(const CGFunctionInfo &FI, 2083 llvm::Function *Fn, 2084 const FunctionArgList &Args) { 2085 if (CurCodeDecl && CurCodeDecl->hasAttr<NakedAttr>()) 2086 // Naked functions don't have prologues. 2087 return; 2088 2089 // If this is an implicit-return-zero function, go ahead and 2090 // initialize the return value. TODO: it might be nice to have 2091 // a more general mechanism for this that didn't require synthesized 2092 // return statements. 2093 if (const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(CurCodeDecl)) { 2094 if (FD->hasImplicitReturnZero()) { 2095 QualType RetTy = FD->getReturnType().getUnqualifiedType(); 2096 llvm::Type* LLVMTy = CGM.getTypes().ConvertType(RetTy); 2097 llvm::Constant* Zero = llvm::Constant::getNullValue(LLVMTy); 2098 Builder.CreateStore(Zero, ReturnValue); 2099 } 2100 } 2101 2102 // FIXME: We no longer need the types from FunctionArgList; lift up and 2103 // simplify. 2104 2105 ClangToLLVMArgMapping IRFunctionArgs(CGM.getContext(), FI); 2106 // Flattened function arguments. 2107 SmallVector<llvm::Value *, 16> FnArgs; 2108 FnArgs.reserve(IRFunctionArgs.totalIRArgs()); 2109 for (auto &Arg : Fn->args()) { 2110 FnArgs.push_back(&Arg); 2111 } 2112 assert(FnArgs.size() == IRFunctionArgs.totalIRArgs()); 2113 2114 // If we're using inalloca, all the memory arguments are GEPs off of the last 2115 // parameter, which is a pointer to the complete memory area. 2116 Address ArgStruct = Address::invalid(); 2117 const llvm::StructLayout *ArgStructLayout = nullptr; 2118 if (IRFunctionArgs.hasInallocaArg()) { 2119 ArgStructLayout = CGM.getDataLayout().getStructLayout(FI.getArgStruct()); 2120 ArgStruct = Address(FnArgs[IRFunctionArgs.getInallocaArgNo()], 2121 FI.getArgStructAlignment()); 2122 2123 assert(ArgStruct.getType() == FI.getArgStruct()->getPointerTo()); 2124 } 2125 2126 // Name the struct return parameter. 2127 if (IRFunctionArgs.hasSRetArg()) { 2128 auto AI = cast<llvm::Argument>(FnArgs[IRFunctionArgs.getSRetArgNo()]); 2129 AI->setName("agg.result"); 2130 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), AI->getArgNo() + 1, 2131 llvm::Attribute::NoAlias)); 2132 } 2133 2134 // Track if we received the parameter as a pointer (indirect, byval, or 2135 // inalloca). If already have a pointer, EmitParmDecl doesn't need to copy it 2136 // into a local alloca for us. 2137 SmallVector<ParamValue, 16> ArgVals; 2138 ArgVals.reserve(Args.size()); 2139 2140 // Create a pointer value for every parameter declaration. This usually 2141 // entails copying one or more LLVM IR arguments into an alloca. Don't push 2142 // any cleanups or do anything that might unwind. We do that separately, so 2143 // we can push the cleanups in the correct order for the ABI. 2144 assert(FI.arg_size() == Args.size() && 2145 "Mismatch between function signature & arguments."); 2146 unsigned ArgNo = 0; 2147 CGFunctionInfo::const_arg_iterator info_it = FI.arg_begin(); 2148 for (FunctionArgList::const_iterator i = Args.begin(), e = Args.end(); 2149 i != e; ++i, ++info_it, ++ArgNo) { 2150 const VarDecl *Arg = *i; 2151 QualType Ty = info_it->type; 2152 const ABIArgInfo &ArgI = info_it->info; 2153 2154 bool isPromoted = 2155 isa<ParmVarDecl>(Arg) && cast<ParmVarDecl>(Arg)->isKNRPromoted(); 2156 2157 unsigned FirstIRArg, NumIRArgs; 2158 std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo); 2159 2160 switch (ArgI.getKind()) { 2161 case ABIArgInfo::InAlloca: { 2162 assert(NumIRArgs == 0); 2163 auto FieldIndex = ArgI.getInAllocaFieldIndex(); 2164 CharUnits FieldOffset = 2165 CharUnits::fromQuantity(ArgStructLayout->getElementOffset(FieldIndex)); 2166 Address V = Builder.CreateStructGEP(ArgStruct, FieldIndex, FieldOffset, 2167 Arg->getName()); 2168 ArgVals.push_back(ParamValue::forIndirect(V)); 2169 break; 2170 } 2171 2172 case ABIArgInfo::Indirect: { 2173 assert(NumIRArgs == 1); 2174 Address ParamAddr = Address(FnArgs[FirstIRArg], ArgI.getIndirectAlign()); 2175 2176 if (!hasScalarEvaluationKind(Ty)) { 2177 // Aggregates and complex variables are accessed by reference. All we 2178 // need to do is realign the value, if requested. 2179 Address V = ParamAddr; 2180 if (ArgI.getIndirectRealign()) { 2181 Address AlignedTemp = CreateMemTemp(Ty, "coerce"); 2182 2183 // Copy from the incoming argument pointer to the temporary with the 2184 // appropriate alignment. 2185 // 2186 // FIXME: We should have a common utility for generating an aggregate 2187 // copy. 2188 CharUnits Size = getContext().getTypeSizeInChars(Ty); 2189 auto SizeVal = llvm::ConstantInt::get(IntPtrTy, Size.getQuantity()); 2190 Address Dst = Builder.CreateBitCast(AlignedTemp, Int8PtrTy); 2191 Address Src = Builder.CreateBitCast(ParamAddr, Int8PtrTy); 2192 Builder.CreateMemCpy(Dst, Src, SizeVal, false); 2193 V = AlignedTemp; 2194 } 2195 ArgVals.push_back(ParamValue::forIndirect(V)); 2196 } else { 2197 // Load scalar value from indirect argument. 2198 llvm::Value *V = 2199 EmitLoadOfScalar(ParamAddr, false, Ty, Arg->getLocStart()); 2200 2201 if (isPromoted) 2202 V = emitArgumentDemotion(*this, Arg, V); 2203 ArgVals.push_back(ParamValue::forDirect(V)); 2204 } 2205 break; 2206 } 2207 2208 case ABIArgInfo::Extend: 2209 case ABIArgInfo::Direct: { 2210 2211 // If we have the trivial case, handle it with no muss and fuss. 2212 if (!isa<llvm::StructType>(ArgI.getCoerceToType()) && 2213 ArgI.getCoerceToType() == ConvertType(Ty) && 2214 ArgI.getDirectOffset() == 0) { 2215 assert(NumIRArgs == 1); 2216 llvm::Value *V = FnArgs[FirstIRArg]; 2217 auto AI = cast<llvm::Argument>(V); 2218 2219 if (const ParmVarDecl *PVD = dyn_cast<ParmVarDecl>(Arg)) { 2220 if (getNonNullAttr(CurCodeDecl, PVD, PVD->getType(), 2221 PVD->getFunctionScopeIndex())) 2222 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), 2223 AI->getArgNo() + 1, 2224 llvm::Attribute::NonNull)); 2225 2226 QualType OTy = PVD->getOriginalType(); 2227 if (const auto *ArrTy = 2228 getContext().getAsConstantArrayType(OTy)) { 2229 // A C99 array parameter declaration with the static keyword also 2230 // indicates dereferenceability, and if the size is constant we can 2231 // use the dereferenceable attribute (which requires the size in 2232 // bytes). 2233 if (ArrTy->getSizeModifier() == ArrayType::Static) { 2234 QualType ETy = ArrTy->getElementType(); 2235 uint64_t ArrSize = ArrTy->getSize().getZExtValue(); 2236 if (!ETy->isIncompleteType() && ETy->isConstantSizeType() && 2237 ArrSize) { 2238 llvm::AttrBuilder Attrs; 2239 Attrs.addDereferenceableAttr( 2240 getContext().getTypeSizeInChars(ETy).getQuantity()*ArrSize); 2241 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), 2242 AI->getArgNo() + 1, Attrs)); 2243 } else if (getContext().getTargetAddressSpace(ETy) == 0) { 2244 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), 2245 AI->getArgNo() + 1, 2246 llvm::Attribute::NonNull)); 2247 } 2248 } 2249 } else if (const auto *ArrTy = 2250 getContext().getAsVariableArrayType(OTy)) { 2251 // For C99 VLAs with the static keyword, we don't know the size so 2252 // we can't use the dereferenceable attribute, but in addrspace(0) 2253 // we know that it must be nonnull. 2254 if (ArrTy->getSizeModifier() == VariableArrayType::Static && 2255 !getContext().getTargetAddressSpace(ArrTy->getElementType())) 2256 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), 2257 AI->getArgNo() + 1, 2258 llvm::Attribute::NonNull)); 2259 } 2260 2261 const auto *AVAttr = PVD->getAttr<AlignValueAttr>(); 2262 if (!AVAttr) 2263 if (const auto *TOTy = dyn_cast<TypedefType>(OTy)) 2264 AVAttr = TOTy->getDecl()->getAttr<AlignValueAttr>(); 2265 if (AVAttr) { 2266 llvm::Value *AlignmentValue = 2267 EmitScalarExpr(AVAttr->getAlignment()); 2268 llvm::ConstantInt *AlignmentCI = 2269 cast<llvm::ConstantInt>(AlignmentValue); 2270 unsigned Alignment = 2271 std::min((unsigned) AlignmentCI->getZExtValue(), 2272 +llvm::Value::MaximumAlignment); 2273 2274 llvm::AttrBuilder Attrs; 2275 Attrs.addAlignmentAttr(Alignment); 2276 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), 2277 AI->getArgNo() + 1, Attrs)); 2278 } 2279 } 2280 2281 if (Arg->getType().isRestrictQualified()) 2282 AI->addAttr(llvm::AttributeSet::get(getLLVMContext(), 2283 AI->getArgNo() + 1, 2284 llvm::Attribute::NoAlias)); 2285 2286 // LLVM expects swifterror parameters to be used in very restricted 2287 // ways. Copy the value into a less-restricted temporary. 2288 if (FI.getExtParameterInfo(ArgNo).getABI() 2289 == ParameterABI::SwiftErrorResult) { 2290 QualType pointeeTy = Ty->getPointeeType(); 2291 assert(pointeeTy->isPointerType()); 2292 Address temp = 2293 CreateMemTemp(pointeeTy, getPointerAlign(), "swifterror.temp"); 2294 Address arg = Address(V, getContext().getTypeAlignInChars(pointeeTy)); 2295 llvm::Value *incomingErrorValue = Builder.CreateLoad(arg); 2296 Builder.CreateStore(incomingErrorValue, temp); 2297 V = temp.getPointer(); 2298 2299 // Push a cleanup to copy the value back at the end of the function. 2300 // The convention does not guarantee that the value will be written 2301 // back if the function exits with an unwind exception. 2302 EHStack.pushCleanup<CopyBackSwiftError>(NormalCleanup, temp, arg); 2303 } 2304 2305 // Ensure the argument is the correct type. 2306 if (V->getType() != ArgI.getCoerceToType()) 2307 V = Builder.CreateBitCast(V, ArgI.getCoerceToType()); 2308 2309 if (isPromoted) 2310 V = emitArgumentDemotion(*this, Arg, V); 2311 2312 if (const CXXMethodDecl *MD = 2313 dyn_cast_or_null<CXXMethodDecl>(CurCodeDecl)) { 2314 if (MD->isVirtual() && Arg == CXXABIThisDecl) 2315 V = CGM.getCXXABI(). 2316 adjustThisParameterInVirtualFunctionPrologue(*this, CurGD, V); 2317 } 2318 2319 // Because of merging of function types from multiple decls it is 2320 // possible for the type of an argument to not match the corresponding 2321 // type in the function type. Since we are codegening the callee 2322 // in here, add a cast to the argument type. 2323 llvm::Type *LTy = ConvertType(Arg->getType()); 2324 if (V->getType() != LTy) 2325 V = Builder.CreateBitCast(V, LTy); 2326 2327 ArgVals.push_back(ParamValue::forDirect(V)); 2328 break; 2329 } 2330 2331 Address Alloca = CreateMemTemp(Ty, getContext().getDeclAlign(Arg), 2332 Arg->getName()); 2333 2334 // Pointer to store into. 2335 Address Ptr = emitAddressAtOffset(*this, Alloca, ArgI); 2336 2337 // Fast-isel and the optimizer generally like scalar values better than 2338 // FCAs, so we flatten them if this is safe to do for this argument. 2339 llvm::StructType *STy = dyn_cast<llvm::StructType>(ArgI.getCoerceToType()); 2340 if (ArgI.isDirect() && ArgI.getCanBeFlattened() && STy && 2341 STy->getNumElements() > 1) { 2342 auto SrcLayout = CGM.getDataLayout().getStructLayout(STy); 2343 uint64_t SrcSize = CGM.getDataLayout().getTypeAllocSize(STy); 2344 llvm::Type *DstTy = Ptr.getElementType(); 2345 uint64_t DstSize = CGM.getDataLayout().getTypeAllocSize(DstTy); 2346 2347 Address AddrToStoreInto = Address::invalid(); 2348 if (SrcSize <= DstSize) { 2349 AddrToStoreInto = 2350 Builder.CreateBitCast(Ptr, llvm::PointerType::getUnqual(STy)); 2351 } else { 2352 AddrToStoreInto = 2353 CreateTempAlloca(STy, Alloca.getAlignment(), "coerce"); 2354 } 2355 2356 assert(STy->getNumElements() == NumIRArgs); 2357 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 2358 auto AI = FnArgs[FirstIRArg + i]; 2359 AI->setName(Arg->getName() + ".coerce" + Twine(i)); 2360 auto Offset = CharUnits::fromQuantity(SrcLayout->getElementOffset(i)); 2361 Address EltPtr = 2362 Builder.CreateStructGEP(AddrToStoreInto, i, Offset); 2363 Builder.CreateStore(AI, EltPtr); 2364 } 2365 2366 if (SrcSize > DstSize) { 2367 Builder.CreateMemCpy(Ptr, AddrToStoreInto, DstSize); 2368 } 2369 2370 } else { 2371 // Simple case, just do a coerced store of the argument into the alloca. 2372 assert(NumIRArgs == 1); 2373 auto AI = FnArgs[FirstIRArg]; 2374 AI->setName(Arg->getName() + ".coerce"); 2375 CreateCoercedStore(AI, Ptr, /*DestIsVolatile=*/false, *this); 2376 } 2377 2378 // Match to what EmitParmDecl is expecting for this type. 2379 if (CodeGenFunction::hasScalarEvaluationKind(Ty)) { 2380 llvm::Value *V = 2381 EmitLoadOfScalar(Alloca, false, Ty, Arg->getLocStart()); 2382 if (isPromoted) 2383 V = emitArgumentDemotion(*this, Arg, V); 2384 ArgVals.push_back(ParamValue::forDirect(V)); 2385 } else { 2386 ArgVals.push_back(ParamValue::forIndirect(Alloca)); 2387 } 2388 break; 2389 } 2390 2391 case ABIArgInfo::CoerceAndExpand: { 2392 // Reconstruct into a temporary. 2393 Address alloca = CreateMemTemp(Ty, getContext().getDeclAlign(Arg)); 2394 ArgVals.push_back(ParamValue::forIndirect(alloca)); 2395 2396 auto coercionType = ArgI.getCoerceAndExpandType(); 2397 alloca = Builder.CreateElementBitCast(alloca, coercionType); 2398 auto layout = CGM.getDataLayout().getStructLayout(coercionType); 2399 2400 unsigned argIndex = FirstIRArg; 2401 for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) { 2402 llvm::Type *eltType = coercionType->getElementType(i); 2403 if (ABIArgInfo::isPaddingForCoerceAndExpand(eltType)) 2404 continue; 2405 2406 auto eltAddr = Builder.CreateStructGEP(alloca, i, layout); 2407 auto elt = FnArgs[argIndex++]; 2408 Builder.CreateStore(elt, eltAddr); 2409 } 2410 assert(argIndex == FirstIRArg + NumIRArgs); 2411 break; 2412 } 2413 2414 case ABIArgInfo::Expand: { 2415 // If this structure was expanded into multiple arguments then 2416 // we need to create a temporary and reconstruct it from the 2417 // arguments. 2418 Address Alloca = CreateMemTemp(Ty, getContext().getDeclAlign(Arg)); 2419 LValue LV = MakeAddrLValue(Alloca, Ty); 2420 ArgVals.push_back(ParamValue::forIndirect(Alloca)); 2421 2422 auto FnArgIter = FnArgs.begin() + FirstIRArg; 2423 ExpandTypeFromArgs(Ty, LV, FnArgIter); 2424 assert(FnArgIter == FnArgs.begin() + FirstIRArg + NumIRArgs); 2425 for (unsigned i = 0, e = NumIRArgs; i != e; ++i) { 2426 auto AI = FnArgs[FirstIRArg + i]; 2427 AI->setName(Arg->getName() + "." + Twine(i)); 2428 } 2429 break; 2430 } 2431 2432 case ABIArgInfo::Ignore: 2433 assert(NumIRArgs == 0); 2434 // Initialize the local variable appropriately. 2435 if (!hasScalarEvaluationKind(Ty)) { 2436 ArgVals.push_back(ParamValue::forIndirect(CreateMemTemp(Ty))); 2437 } else { 2438 llvm::Value *U = llvm::UndefValue::get(ConvertType(Arg->getType())); 2439 ArgVals.push_back(ParamValue::forDirect(U)); 2440 } 2441 break; 2442 } 2443 } 2444 2445 if (getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()) { 2446 for (int I = Args.size() - 1; I >= 0; --I) 2447 EmitParmDecl(*Args[I], ArgVals[I], I + 1); 2448 } else { 2449 for (unsigned I = 0, E = Args.size(); I != E; ++I) 2450 EmitParmDecl(*Args[I], ArgVals[I], I + 1); 2451 } 2452 } 2453 2454 static void eraseUnusedBitCasts(llvm::Instruction *insn) { 2455 while (insn->use_empty()) { 2456 llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(insn); 2457 if (!bitcast) return; 2458 2459 // This is "safe" because we would have used a ConstantExpr otherwise. 2460 insn = cast<llvm::Instruction>(bitcast->getOperand(0)); 2461 bitcast->eraseFromParent(); 2462 } 2463 } 2464 2465 /// Try to emit a fused autorelease of a return result. 2466 static llvm::Value *tryEmitFusedAutoreleaseOfResult(CodeGenFunction &CGF, 2467 llvm::Value *result) { 2468 // We must be immediately followed the cast. 2469 llvm::BasicBlock *BB = CGF.Builder.GetInsertBlock(); 2470 if (BB->empty()) return nullptr; 2471 if (&BB->back() != result) return nullptr; 2472 2473 llvm::Type *resultType = result->getType(); 2474 2475 // result is in a BasicBlock and is therefore an Instruction. 2476 llvm::Instruction *generator = cast<llvm::Instruction>(result); 2477 2478 SmallVector<llvm::Instruction *, 4> InstsToKill; 2479 2480 // Look for: 2481 // %generator = bitcast %type1* %generator2 to %type2* 2482 while (llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(generator)) { 2483 // We would have emitted this as a constant if the operand weren't 2484 // an Instruction. 2485 generator = cast<llvm::Instruction>(bitcast->getOperand(0)); 2486 2487 // Require the generator to be immediately followed by the cast. 2488 if (generator->getNextNode() != bitcast) 2489 return nullptr; 2490 2491 InstsToKill.push_back(bitcast); 2492 } 2493 2494 // Look for: 2495 // %generator = call i8* @objc_retain(i8* %originalResult) 2496 // or 2497 // %generator = call i8* @objc_retainAutoreleasedReturnValue(i8* %originalResult) 2498 llvm::CallInst *call = dyn_cast<llvm::CallInst>(generator); 2499 if (!call) return nullptr; 2500 2501 bool doRetainAutorelease; 2502 2503 if (call->getCalledValue() == CGF.CGM.getObjCEntrypoints().objc_retain) { 2504 doRetainAutorelease = true; 2505 } else if (call->getCalledValue() == CGF.CGM.getObjCEntrypoints() 2506 .objc_retainAutoreleasedReturnValue) { 2507 doRetainAutorelease = false; 2508 2509 // If we emitted an assembly marker for this call (and the 2510 // ARCEntrypoints field should have been set if so), go looking 2511 // for that call. If we can't find it, we can't do this 2512 // optimization. But it should always be the immediately previous 2513 // instruction, unless we needed bitcasts around the call. 2514 if (CGF.CGM.getObjCEntrypoints().retainAutoreleasedReturnValueMarker) { 2515 llvm::Instruction *prev = call->getPrevNode(); 2516 assert(prev); 2517 if (isa<llvm::BitCastInst>(prev)) { 2518 prev = prev->getPrevNode(); 2519 assert(prev); 2520 } 2521 assert(isa<llvm::CallInst>(prev)); 2522 assert(cast<llvm::CallInst>(prev)->getCalledValue() == 2523 CGF.CGM.getObjCEntrypoints().retainAutoreleasedReturnValueMarker); 2524 InstsToKill.push_back(prev); 2525 } 2526 } else { 2527 return nullptr; 2528 } 2529 2530 result = call->getArgOperand(0); 2531 InstsToKill.push_back(call); 2532 2533 // Keep killing bitcasts, for sanity. Note that we no longer care 2534 // about precise ordering as long as there's exactly one use. 2535 while (llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(result)) { 2536 if (!bitcast->hasOneUse()) break; 2537 InstsToKill.push_back(bitcast); 2538 result = bitcast->getOperand(0); 2539 } 2540 2541 // Delete all the unnecessary instructions, from latest to earliest. 2542 for (auto *I : InstsToKill) 2543 I->eraseFromParent(); 2544 2545 // Do the fused retain/autorelease if we were asked to. 2546 if (doRetainAutorelease) 2547 result = CGF.EmitARCRetainAutoreleaseReturnValue(result); 2548 2549 // Cast back to the result type. 2550 return CGF.Builder.CreateBitCast(result, resultType); 2551 } 2552 2553 /// If this is a +1 of the value of an immutable 'self', remove it. 2554 static llvm::Value *tryRemoveRetainOfSelf(CodeGenFunction &CGF, 2555 llvm::Value *result) { 2556 // This is only applicable to a method with an immutable 'self'. 2557 const ObjCMethodDecl *method = 2558 dyn_cast_or_null<ObjCMethodDecl>(CGF.CurCodeDecl); 2559 if (!method) return nullptr; 2560 const VarDecl *self = method->getSelfDecl(); 2561 if (!self->getType().isConstQualified()) return nullptr; 2562 2563 // Look for a retain call. 2564 llvm::CallInst *retainCall = 2565 dyn_cast<llvm::CallInst>(result->stripPointerCasts()); 2566 if (!retainCall || 2567 retainCall->getCalledValue() != CGF.CGM.getObjCEntrypoints().objc_retain) 2568 return nullptr; 2569 2570 // Look for an ordinary load of 'self'. 2571 llvm::Value *retainedValue = retainCall->getArgOperand(0); 2572 llvm::LoadInst *load = 2573 dyn_cast<llvm::LoadInst>(retainedValue->stripPointerCasts()); 2574 if (!load || load->isAtomic() || load->isVolatile() || 2575 load->getPointerOperand() != CGF.GetAddrOfLocalVar(self).getPointer()) 2576 return nullptr; 2577 2578 // Okay! Burn it all down. This relies for correctness on the 2579 // assumption that the retain is emitted as part of the return and 2580 // that thereafter everything is used "linearly". 2581 llvm::Type *resultType = result->getType(); 2582 eraseUnusedBitCasts(cast<llvm::Instruction>(result)); 2583 assert(retainCall->use_empty()); 2584 retainCall->eraseFromParent(); 2585 eraseUnusedBitCasts(cast<llvm::Instruction>(retainedValue)); 2586 2587 return CGF.Builder.CreateBitCast(load, resultType); 2588 } 2589 2590 /// Emit an ARC autorelease of the result of a function. 2591 /// 2592 /// \return the value to actually return from the function 2593 static llvm::Value *emitAutoreleaseOfResult(CodeGenFunction &CGF, 2594 llvm::Value *result) { 2595 // If we're returning 'self', kill the initial retain. This is a 2596 // heuristic attempt to "encourage correctness" in the really unfortunate 2597 // case where we have a return of self during a dealloc and we desperately 2598 // need to avoid the possible autorelease. 2599 if (llvm::Value *self = tryRemoveRetainOfSelf(CGF, result)) 2600 return self; 2601 2602 // At -O0, try to emit a fused retain/autorelease. 2603 if (CGF.shouldUseFusedARCCalls()) 2604 if (llvm::Value *fused = tryEmitFusedAutoreleaseOfResult(CGF, result)) 2605 return fused; 2606 2607 return CGF.EmitARCAutoreleaseReturnValue(result); 2608 } 2609 2610 /// Heuristically search for a dominating store to the return-value slot. 2611 static llvm::StoreInst *findDominatingStoreToReturnValue(CodeGenFunction &CGF) { 2612 // Check if a User is a store which pointerOperand is the ReturnValue. 2613 // We are looking for stores to the ReturnValue, not for stores of the 2614 // ReturnValue to some other location. 2615 auto GetStoreIfValid = [&CGF](llvm::User *U) -> llvm::StoreInst * { 2616 auto *SI = dyn_cast<llvm::StoreInst>(U); 2617 if (!SI || SI->getPointerOperand() != CGF.ReturnValue.getPointer()) 2618 return nullptr; 2619 // These aren't actually possible for non-coerced returns, and we 2620 // only care about non-coerced returns on this code path. 2621 assert(!SI->isAtomic() && !SI->isVolatile()); 2622 return SI; 2623 }; 2624 // If there are multiple uses of the return-value slot, just check 2625 // for something immediately preceding the IP. Sometimes this can 2626 // happen with how we generate implicit-returns; it can also happen 2627 // with noreturn cleanups. 2628 if (!CGF.ReturnValue.getPointer()->hasOneUse()) { 2629 llvm::BasicBlock *IP = CGF.Builder.GetInsertBlock(); 2630 if (IP->empty()) return nullptr; 2631 llvm::Instruction *I = &IP->back(); 2632 2633 // Skip lifetime markers 2634 for (llvm::BasicBlock::reverse_iterator II = IP->rbegin(), 2635 IE = IP->rend(); 2636 II != IE; ++II) { 2637 if (llvm::IntrinsicInst *Intrinsic = 2638 dyn_cast<llvm::IntrinsicInst>(&*II)) { 2639 if (Intrinsic->getIntrinsicID() == llvm::Intrinsic::lifetime_end) { 2640 const llvm::Value *CastAddr = Intrinsic->getArgOperand(1); 2641 ++II; 2642 if (II == IE) 2643 break; 2644 if (isa<llvm::BitCastInst>(&*II) && (CastAddr == &*II)) 2645 continue; 2646 } 2647 } 2648 I = &*II; 2649 break; 2650 } 2651 2652 return GetStoreIfValid(I); 2653 } 2654 2655 llvm::StoreInst *store = 2656 GetStoreIfValid(CGF.ReturnValue.getPointer()->user_back()); 2657 if (!store) return nullptr; 2658 2659 // Now do a first-and-dirty dominance check: just walk up the 2660 // single-predecessors chain from the current insertion point. 2661 llvm::BasicBlock *StoreBB = store->getParent(); 2662 llvm::BasicBlock *IP = CGF.Builder.GetInsertBlock(); 2663 while (IP != StoreBB) { 2664 if (!(IP = IP->getSinglePredecessor())) 2665 return nullptr; 2666 } 2667 2668 // Okay, the store's basic block dominates the insertion point; we 2669 // can do our thing. 2670 return store; 2671 } 2672 2673 void CodeGenFunction::EmitFunctionEpilog(const CGFunctionInfo &FI, 2674 bool EmitRetDbgLoc, 2675 SourceLocation EndLoc) { 2676 if (CurCodeDecl && CurCodeDecl->hasAttr<NakedAttr>()) { 2677 // Naked functions don't have epilogues. 2678 Builder.CreateUnreachable(); 2679 return; 2680 } 2681 2682 // Functions with no result always return void. 2683 if (!ReturnValue.isValid()) { 2684 Builder.CreateRetVoid(); 2685 return; 2686 } 2687 2688 llvm::DebugLoc RetDbgLoc; 2689 llvm::Value *RV = nullptr; 2690 QualType RetTy = FI.getReturnType(); 2691 const ABIArgInfo &RetAI = FI.getReturnInfo(); 2692 2693 switch (RetAI.getKind()) { 2694 case ABIArgInfo::InAlloca: 2695 // Aggregrates get evaluated directly into the destination. Sometimes we 2696 // need to return the sret value in a register, though. 2697 assert(hasAggregateEvaluationKind(RetTy)); 2698 if (RetAI.getInAllocaSRet()) { 2699 llvm::Function::arg_iterator EI = CurFn->arg_end(); 2700 --EI; 2701 llvm::Value *ArgStruct = &*EI; 2702 llvm::Value *SRet = Builder.CreateStructGEP( 2703 nullptr, ArgStruct, RetAI.getInAllocaFieldIndex()); 2704 RV = Builder.CreateAlignedLoad(SRet, getPointerAlign(), "sret"); 2705 } 2706 break; 2707 2708 case ABIArgInfo::Indirect: { 2709 auto AI = CurFn->arg_begin(); 2710 if (RetAI.isSRetAfterThis()) 2711 ++AI; 2712 switch (getEvaluationKind(RetTy)) { 2713 case TEK_Complex: { 2714 ComplexPairTy RT = 2715 EmitLoadOfComplex(MakeAddrLValue(ReturnValue, RetTy), EndLoc); 2716 EmitStoreOfComplex(RT, MakeNaturalAlignAddrLValue(&*AI, RetTy), 2717 /*isInit*/ true); 2718 break; 2719 } 2720 case TEK_Aggregate: 2721 // Do nothing; aggregrates get evaluated directly into the destination. 2722 break; 2723 case TEK_Scalar: 2724 EmitStoreOfScalar(Builder.CreateLoad(ReturnValue), 2725 MakeNaturalAlignAddrLValue(&*AI, RetTy), 2726 /*isInit*/ true); 2727 break; 2728 } 2729 break; 2730 } 2731 2732 case ABIArgInfo::Extend: 2733 case ABIArgInfo::Direct: 2734 if (RetAI.getCoerceToType() == ConvertType(RetTy) && 2735 RetAI.getDirectOffset() == 0) { 2736 // The internal return value temp always will have pointer-to-return-type 2737 // type, just do a load. 2738 2739 // If there is a dominating store to ReturnValue, we can elide 2740 // the load, zap the store, and usually zap the alloca. 2741 if (llvm::StoreInst *SI = 2742 findDominatingStoreToReturnValue(*this)) { 2743 // Reuse the debug location from the store unless there is 2744 // cleanup code to be emitted between the store and return 2745 // instruction. 2746 if (EmitRetDbgLoc && !AutoreleaseResult) 2747 RetDbgLoc = SI->getDebugLoc(); 2748 // Get the stored value and nuke the now-dead store. 2749 RV = SI->getValueOperand(); 2750 SI->eraseFromParent(); 2751 2752 // If that was the only use of the return value, nuke it as well now. 2753 auto returnValueInst = ReturnValue.getPointer(); 2754 if (returnValueInst->use_empty()) { 2755 if (auto alloca = dyn_cast<llvm::AllocaInst>(returnValueInst)) { 2756 alloca->eraseFromParent(); 2757 ReturnValue = Address::invalid(); 2758 } 2759 } 2760 2761 // Otherwise, we have to do a simple load. 2762 } else { 2763 RV = Builder.CreateLoad(ReturnValue); 2764 } 2765 } else { 2766 // If the value is offset in memory, apply the offset now. 2767 Address V = emitAddressAtOffset(*this, ReturnValue, RetAI); 2768 2769 RV = CreateCoercedLoad(V, RetAI.getCoerceToType(), *this); 2770 } 2771 2772 // In ARC, end functions that return a retainable type with a call 2773 // to objc_autoreleaseReturnValue. 2774 if (AutoreleaseResult) { 2775 #ifndef NDEBUG 2776 // Type::isObjCRetainabletype has to be called on a QualType that hasn't 2777 // been stripped of the typedefs, so we cannot use RetTy here. Get the 2778 // original return type of FunctionDecl, CurCodeDecl, and BlockDecl from 2779 // CurCodeDecl or BlockInfo. 2780 QualType RT; 2781 2782 if (auto *FD = dyn_cast<FunctionDecl>(CurCodeDecl)) 2783 RT = FD->getReturnType(); 2784 else if (auto *MD = dyn_cast<ObjCMethodDecl>(CurCodeDecl)) 2785 RT = MD->getReturnType(); 2786 else if (isa<BlockDecl>(CurCodeDecl)) 2787 RT = BlockInfo->BlockExpression->getFunctionType()->getReturnType(); 2788 else 2789 llvm_unreachable("Unexpected function/method type"); 2790 2791 assert(getLangOpts().ObjCAutoRefCount && 2792 !FI.isReturnsRetained() && 2793 RT->isObjCRetainableType()); 2794 #endif 2795 RV = emitAutoreleaseOfResult(*this, RV); 2796 } 2797 2798 break; 2799 2800 case ABIArgInfo::Ignore: 2801 break; 2802 2803 case ABIArgInfo::CoerceAndExpand: { 2804 auto coercionType = RetAI.getCoerceAndExpandType(); 2805 auto layout = CGM.getDataLayout().getStructLayout(coercionType); 2806 2807 // Load all of the coerced elements out into results. 2808 llvm::SmallVector<llvm::Value*, 4> results; 2809 Address addr = Builder.CreateElementBitCast(ReturnValue, coercionType); 2810 for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) { 2811 auto coercedEltType = coercionType->getElementType(i); 2812 if (ABIArgInfo::isPaddingForCoerceAndExpand(coercedEltType)) 2813 continue; 2814 2815 auto eltAddr = Builder.CreateStructGEP(addr, i, layout); 2816 auto elt = Builder.CreateLoad(eltAddr); 2817 results.push_back(elt); 2818 } 2819 2820 // If we have one result, it's the single direct result type. 2821 if (results.size() == 1) { 2822 RV = results[0]; 2823 2824 // Otherwise, we need to make a first-class aggregate. 2825 } else { 2826 // Construct a return type that lacks padding elements. 2827 llvm::Type *returnType = RetAI.getUnpaddedCoerceAndExpandType(); 2828 2829 RV = llvm::UndefValue::get(returnType); 2830 for (unsigned i = 0, e = results.size(); i != e; ++i) { 2831 RV = Builder.CreateInsertValue(RV, results[i], i); 2832 } 2833 } 2834 break; 2835 } 2836 2837 case ABIArgInfo::Expand: 2838 llvm_unreachable("Invalid ABI kind for return argument"); 2839 } 2840 2841 llvm::Instruction *Ret; 2842 if (RV) { 2843 if (CurCodeDecl && SanOpts.has(SanitizerKind::ReturnsNonnullAttribute)) { 2844 if (auto RetNNAttr = CurCodeDecl->getAttr<ReturnsNonNullAttr>()) { 2845 SanitizerScope SanScope(this); 2846 llvm::Value *Cond = Builder.CreateICmpNE( 2847 RV, llvm::Constant::getNullValue(RV->getType())); 2848 llvm::Constant *StaticData[] = { 2849 EmitCheckSourceLocation(EndLoc), 2850 EmitCheckSourceLocation(RetNNAttr->getLocation()), 2851 }; 2852 EmitCheck(std::make_pair(Cond, SanitizerKind::ReturnsNonnullAttribute), 2853 "nonnull_return", StaticData, None); 2854 } 2855 } 2856 Ret = Builder.CreateRet(RV); 2857 } else { 2858 Ret = Builder.CreateRetVoid(); 2859 } 2860 2861 if (RetDbgLoc) 2862 Ret->setDebugLoc(std::move(RetDbgLoc)); 2863 } 2864 2865 static bool isInAllocaArgument(CGCXXABI &ABI, QualType type) { 2866 const CXXRecordDecl *RD = type->getAsCXXRecordDecl(); 2867 return RD && ABI.getRecordArgABI(RD) == CGCXXABI::RAA_DirectInMemory; 2868 } 2869 2870 static AggValueSlot createPlaceholderSlot(CodeGenFunction &CGF, 2871 QualType Ty) { 2872 // FIXME: Generate IR in one pass, rather than going back and fixing up these 2873 // placeholders. 2874 llvm::Type *IRTy = CGF.ConvertTypeForMem(Ty); 2875 llvm::Value *Placeholder = 2876 llvm::UndefValue::get(IRTy->getPointerTo()->getPointerTo()); 2877 Placeholder = CGF.Builder.CreateDefaultAlignedLoad(Placeholder); 2878 2879 // FIXME: When we generate this IR in one pass, we shouldn't need 2880 // this win32-specific alignment hack. 2881 CharUnits Align = CharUnits::fromQuantity(4); 2882 2883 return AggValueSlot::forAddr(Address(Placeholder, Align), 2884 Ty.getQualifiers(), 2885 AggValueSlot::IsNotDestructed, 2886 AggValueSlot::DoesNotNeedGCBarriers, 2887 AggValueSlot::IsNotAliased); 2888 } 2889 2890 void CodeGenFunction::EmitDelegateCallArg(CallArgList &args, 2891 const VarDecl *param, 2892 SourceLocation loc) { 2893 // StartFunction converted the ABI-lowered parameter(s) into a 2894 // local alloca. We need to turn that into an r-value suitable 2895 // for EmitCall. 2896 Address local = GetAddrOfLocalVar(param); 2897 2898 QualType type = param->getType(); 2899 2900 assert(!isInAllocaArgument(CGM.getCXXABI(), type) && 2901 "cannot emit delegate call arguments for inalloca arguments!"); 2902 2903 // For the most part, we just need to load the alloca, except that 2904 // aggregate r-values are actually pointers to temporaries. 2905 if (type->isReferenceType()) 2906 args.add(RValue::get(Builder.CreateLoad(local)), type); 2907 else 2908 args.add(convertTempToRValue(local, type, loc), type); 2909 } 2910 2911 static bool isProvablyNull(llvm::Value *addr) { 2912 return isa<llvm::ConstantPointerNull>(addr); 2913 } 2914 2915 static bool isProvablyNonNull(llvm::Value *addr) { 2916 return isa<llvm::AllocaInst>(addr); 2917 } 2918 2919 /// Emit the actual writing-back of a writeback. 2920 static void emitWriteback(CodeGenFunction &CGF, 2921 const CallArgList::Writeback &writeback) { 2922 const LValue &srcLV = writeback.Source; 2923 Address srcAddr = srcLV.getAddress(); 2924 assert(!isProvablyNull(srcAddr.getPointer()) && 2925 "shouldn't have writeback for provably null argument"); 2926 2927 llvm::BasicBlock *contBB = nullptr; 2928 2929 // If the argument wasn't provably non-null, we need to null check 2930 // before doing the store. 2931 bool provablyNonNull = isProvablyNonNull(srcAddr.getPointer()); 2932 if (!provablyNonNull) { 2933 llvm::BasicBlock *writebackBB = CGF.createBasicBlock("icr.writeback"); 2934 contBB = CGF.createBasicBlock("icr.done"); 2935 2936 llvm::Value *isNull = 2937 CGF.Builder.CreateIsNull(srcAddr.getPointer(), "icr.isnull"); 2938 CGF.Builder.CreateCondBr(isNull, contBB, writebackBB); 2939 CGF.EmitBlock(writebackBB); 2940 } 2941 2942 // Load the value to writeback. 2943 llvm::Value *value = CGF.Builder.CreateLoad(writeback.Temporary); 2944 2945 // Cast it back, in case we're writing an id to a Foo* or something. 2946 value = CGF.Builder.CreateBitCast(value, srcAddr.getElementType(), 2947 "icr.writeback-cast"); 2948 2949 // Perform the writeback. 2950 2951 // If we have a "to use" value, it's something we need to emit a use 2952 // of. This has to be carefully threaded in: if it's done after the 2953 // release it's potentially undefined behavior (and the optimizer 2954 // will ignore it), and if it happens before the retain then the 2955 // optimizer could move the release there. 2956 if (writeback.ToUse) { 2957 assert(srcLV.getObjCLifetime() == Qualifiers::OCL_Strong); 2958 2959 // Retain the new value. No need to block-copy here: the block's 2960 // being passed up the stack. 2961 value = CGF.EmitARCRetainNonBlock(value); 2962 2963 // Emit the intrinsic use here. 2964 CGF.EmitARCIntrinsicUse(writeback.ToUse); 2965 2966 // Load the old value (primitively). 2967 llvm::Value *oldValue = CGF.EmitLoadOfScalar(srcLV, SourceLocation()); 2968 2969 // Put the new value in place (primitively). 2970 CGF.EmitStoreOfScalar(value, srcLV, /*init*/ false); 2971 2972 // Release the old value. 2973 CGF.EmitARCRelease(oldValue, srcLV.isARCPreciseLifetime()); 2974 2975 // Otherwise, we can just do a normal lvalue store. 2976 } else { 2977 CGF.EmitStoreThroughLValue(RValue::get(value), srcLV); 2978 } 2979 2980 // Jump to the continuation block. 2981 if (!provablyNonNull) 2982 CGF.EmitBlock(contBB); 2983 } 2984 2985 static void emitWritebacks(CodeGenFunction &CGF, 2986 const CallArgList &args) { 2987 for (const auto &I : args.writebacks()) 2988 emitWriteback(CGF, I); 2989 } 2990 2991 static void deactivateArgCleanupsBeforeCall(CodeGenFunction &CGF, 2992 const CallArgList &CallArgs) { 2993 assert(CGF.getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()); 2994 ArrayRef<CallArgList::CallArgCleanup> Cleanups = 2995 CallArgs.getCleanupsToDeactivate(); 2996 // Iterate in reverse to increase the likelihood of popping the cleanup. 2997 for (const auto &I : llvm::reverse(Cleanups)) { 2998 CGF.DeactivateCleanupBlock(I.Cleanup, I.IsActiveIP); 2999 I.IsActiveIP->eraseFromParent(); 3000 } 3001 } 3002 3003 static const Expr *maybeGetUnaryAddrOfOperand(const Expr *E) { 3004 if (const UnaryOperator *uop = dyn_cast<UnaryOperator>(E->IgnoreParens())) 3005 if (uop->getOpcode() == UO_AddrOf) 3006 return uop->getSubExpr(); 3007 return nullptr; 3008 } 3009 3010 /// Emit an argument that's being passed call-by-writeback. That is, 3011 /// we are passing the address of an __autoreleased temporary; it 3012 /// might be copy-initialized with the current value of the given 3013 /// address, but it will definitely be copied out of after the call. 3014 static void emitWritebackArg(CodeGenFunction &CGF, CallArgList &args, 3015 const ObjCIndirectCopyRestoreExpr *CRE) { 3016 LValue srcLV; 3017 3018 // Make an optimistic effort to emit the address as an l-value. 3019 // This can fail if the argument expression is more complicated. 3020 if (const Expr *lvExpr = maybeGetUnaryAddrOfOperand(CRE->getSubExpr())) { 3021 srcLV = CGF.EmitLValue(lvExpr); 3022 3023 // Otherwise, just emit it as a scalar. 3024 } else { 3025 Address srcAddr = CGF.EmitPointerWithAlignment(CRE->getSubExpr()); 3026 3027 QualType srcAddrType = 3028 CRE->getSubExpr()->getType()->castAs<PointerType>()->getPointeeType(); 3029 srcLV = CGF.MakeAddrLValue(srcAddr, srcAddrType); 3030 } 3031 Address srcAddr = srcLV.getAddress(); 3032 3033 // The dest and src types don't necessarily match in LLVM terms 3034 // because of the crazy ObjC compatibility rules. 3035 3036 llvm::PointerType *destType = 3037 cast<llvm::PointerType>(CGF.ConvertType(CRE->getType())); 3038 3039 // If the address is a constant null, just pass the appropriate null. 3040 if (isProvablyNull(srcAddr.getPointer())) { 3041 args.add(RValue::get(llvm::ConstantPointerNull::get(destType)), 3042 CRE->getType()); 3043 return; 3044 } 3045 3046 // Create the temporary. 3047 Address temp = CGF.CreateTempAlloca(destType->getElementType(), 3048 CGF.getPointerAlign(), 3049 "icr.temp"); 3050 // Loading an l-value can introduce a cleanup if the l-value is __weak, 3051 // and that cleanup will be conditional if we can't prove that the l-value 3052 // isn't null, so we need to register a dominating point so that the cleanups 3053 // system will make valid IR. 3054 CodeGenFunction::ConditionalEvaluation condEval(CGF); 3055 3056 // Zero-initialize it if we're not doing a copy-initialization. 3057 bool shouldCopy = CRE->shouldCopy(); 3058 if (!shouldCopy) { 3059 llvm::Value *null = 3060 llvm::ConstantPointerNull::get( 3061 cast<llvm::PointerType>(destType->getElementType())); 3062 CGF.Builder.CreateStore(null, temp); 3063 } 3064 3065 llvm::BasicBlock *contBB = nullptr; 3066 llvm::BasicBlock *originBB = nullptr; 3067 3068 // If the address is *not* known to be non-null, we need to switch. 3069 llvm::Value *finalArgument; 3070 3071 bool provablyNonNull = isProvablyNonNull(srcAddr.getPointer()); 3072 if (provablyNonNull) { 3073 finalArgument = temp.getPointer(); 3074 } else { 3075 llvm::Value *isNull = 3076 CGF.Builder.CreateIsNull(srcAddr.getPointer(), "icr.isnull"); 3077 3078 finalArgument = CGF.Builder.CreateSelect(isNull, 3079 llvm::ConstantPointerNull::get(destType), 3080 temp.getPointer(), "icr.argument"); 3081 3082 // If we need to copy, then the load has to be conditional, which 3083 // means we need control flow. 3084 if (shouldCopy) { 3085 originBB = CGF.Builder.GetInsertBlock(); 3086 contBB = CGF.createBasicBlock("icr.cont"); 3087 llvm::BasicBlock *copyBB = CGF.createBasicBlock("icr.copy"); 3088 CGF.Builder.CreateCondBr(isNull, contBB, copyBB); 3089 CGF.EmitBlock(copyBB); 3090 condEval.begin(CGF); 3091 } 3092 } 3093 3094 llvm::Value *valueToUse = nullptr; 3095 3096 // Perform a copy if necessary. 3097 if (shouldCopy) { 3098 RValue srcRV = CGF.EmitLoadOfLValue(srcLV, SourceLocation()); 3099 assert(srcRV.isScalar()); 3100 3101 llvm::Value *src = srcRV.getScalarVal(); 3102 src = CGF.Builder.CreateBitCast(src, destType->getElementType(), 3103 "icr.cast"); 3104 3105 // Use an ordinary store, not a store-to-lvalue. 3106 CGF.Builder.CreateStore(src, temp); 3107 3108 // If optimization is enabled, and the value was held in a 3109 // __strong variable, we need to tell the optimizer that this 3110 // value has to stay alive until we're doing the store back. 3111 // This is because the temporary is effectively unretained, 3112 // and so otherwise we can violate the high-level semantics. 3113 if (CGF.CGM.getCodeGenOpts().OptimizationLevel != 0 && 3114 srcLV.getObjCLifetime() == Qualifiers::OCL_Strong) { 3115 valueToUse = src; 3116 } 3117 } 3118 3119 // Finish the control flow if we needed it. 3120 if (shouldCopy && !provablyNonNull) { 3121 llvm::BasicBlock *copyBB = CGF.Builder.GetInsertBlock(); 3122 CGF.EmitBlock(contBB); 3123 3124 // Make a phi for the value to intrinsically use. 3125 if (valueToUse) { 3126 llvm::PHINode *phiToUse = CGF.Builder.CreatePHI(valueToUse->getType(), 2, 3127 "icr.to-use"); 3128 phiToUse->addIncoming(valueToUse, copyBB); 3129 phiToUse->addIncoming(llvm::UndefValue::get(valueToUse->getType()), 3130 originBB); 3131 valueToUse = phiToUse; 3132 } 3133 3134 condEval.end(CGF); 3135 } 3136 3137 args.addWriteback(srcLV, temp, valueToUse); 3138 args.add(RValue::get(finalArgument), CRE->getType()); 3139 } 3140 3141 void CallArgList::allocateArgumentMemory(CodeGenFunction &CGF) { 3142 assert(!StackBase && !StackCleanup.isValid()); 3143 3144 // Save the stack. 3145 llvm::Function *F = CGF.CGM.getIntrinsic(llvm::Intrinsic::stacksave); 3146 StackBase = CGF.Builder.CreateCall(F, {}, "inalloca.save"); 3147 } 3148 3149 void CallArgList::freeArgumentMemory(CodeGenFunction &CGF) const { 3150 if (StackBase) { 3151 // Restore the stack after the call. 3152 llvm::Value *F = CGF.CGM.getIntrinsic(llvm::Intrinsic::stackrestore); 3153 CGF.Builder.CreateCall(F, StackBase); 3154 } 3155 } 3156 3157 void CodeGenFunction::EmitNonNullArgCheck(RValue RV, QualType ArgType, 3158 SourceLocation ArgLoc, 3159 const FunctionDecl *FD, 3160 unsigned ParmNum) { 3161 if (!SanOpts.has(SanitizerKind::NonnullAttribute) || !FD) 3162 return; 3163 auto PVD = ParmNum < FD->getNumParams() ? FD->getParamDecl(ParmNum) : nullptr; 3164 unsigned ArgNo = PVD ? PVD->getFunctionScopeIndex() : ParmNum; 3165 auto NNAttr = getNonNullAttr(FD, PVD, ArgType, ArgNo); 3166 if (!NNAttr) 3167 return; 3168 SanitizerScope SanScope(this); 3169 assert(RV.isScalar()); 3170 llvm::Value *V = RV.getScalarVal(); 3171 llvm::Value *Cond = 3172 Builder.CreateICmpNE(V, llvm::Constant::getNullValue(V->getType())); 3173 llvm::Constant *StaticData[] = { 3174 EmitCheckSourceLocation(ArgLoc), 3175 EmitCheckSourceLocation(NNAttr->getLocation()), 3176 llvm::ConstantInt::get(Int32Ty, ArgNo + 1), 3177 }; 3178 EmitCheck(std::make_pair(Cond, SanitizerKind::NonnullAttribute), 3179 "nonnull_arg", StaticData, None); 3180 } 3181 3182 void CodeGenFunction::EmitCallArgs( 3183 CallArgList &Args, ArrayRef<QualType> ArgTypes, 3184 llvm::iterator_range<CallExpr::const_arg_iterator> ArgRange, 3185 const FunctionDecl *CalleeDecl, unsigned ParamsToSkip) { 3186 assert((int)ArgTypes.size() == (ArgRange.end() - ArgRange.begin())); 3187 3188 auto MaybeEmitImplicitObjectSize = [&](unsigned I, const Expr *Arg) { 3189 if (CalleeDecl == nullptr || I >= CalleeDecl->getNumParams()) 3190 return; 3191 auto *PS = CalleeDecl->getParamDecl(I)->getAttr<PassObjectSizeAttr>(); 3192 if (PS == nullptr) 3193 return; 3194 3195 const auto &Context = getContext(); 3196 auto SizeTy = Context.getSizeType(); 3197 auto T = Builder.getIntNTy(Context.getTypeSize(SizeTy)); 3198 llvm::Value *V = evaluateOrEmitBuiltinObjectSize(Arg, PS->getType(), T); 3199 Args.add(RValue::get(V), SizeTy); 3200 }; 3201 3202 // We *have* to evaluate arguments from right to left in the MS C++ ABI, 3203 // because arguments are destroyed left to right in the callee. 3204 if (CGM.getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()) { 3205 // Insert a stack save if we're going to need any inalloca args. 3206 bool HasInAllocaArgs = false; 3207 for (ArrayRef<QualType>::iterator I = ArgTypes.begin(), E = ArgTypes.end(); 3208 I != E && !HasInAllocaArgs; ++I) 3209 HasInAllocaArgs = isInAllocaArgument(CGM.getCXXABI(), *I); 3210 if (HasInAllocaArgs) { 3211 assert(getTarget().getTriple().getArch() == llvm::Triple::x86); 3212 Args.allocateArgumentMemory(*this); 3213 } 3214 3215 // Evaluate each argument. 3216 size_t CallArgsStart = Args.size(); 3217 for (int I = ArgTypes.size() - 1; I >= 0; --I) { 3218 CallExpr::const_arg_iterator Arg = ArgRange.begin() + I; 3219 MaybeEmitImplicitObjectSize(I, *Arg); 3220 EmitCallArg(Args, *Arg, ArgTypes[I]); 3221 EmitNonNullArgCheck(Args.back().RV, ArgTypes[I], (*Arg)->getExprLoc(), 3222 CalleeDecl, ParamsToSkip + I); 3223 } 3224 3225 // Un-reverse the arguments we just evaluated so they match up with the LLVM 3226 // IR function. 3227 std::reverse(Args.begin() + CallArgsStart, Args.end()); 3228 return; 3229 } 3230 3231 for (unsigned I = 0, E = ArgTypes.size(); I != E; ++I) { 3232 CallExpr::const_arg_iterator Arg = ArgRange.begin() + I; 3233 assert(Arg != ArgRange.end()); 3234 EmitCallArg(Args, *Arg, ArgTypes[I]); 3235 EmitNonNullArgCheck(Args.back().RV, ArgTypes[I], (*Arg)->getExprLoc(), 3236 CalleeDecl, ParamsToSkip + I); 3237 MaybeEmitImplicitObjectSize(I, *Arg); 3238 } 3239 } 3240 3241 namespace { 3242 3243 struct DestroyUnpassedArg final : EHScopeStack::Cleanup { 3244 DestroyUnpassedArg(Address Addr, QualType Ty) 3245 : Addr(Addr), Ty(Ty) {} 3246 3247 Address Addr; 3248 QualType Ty; 3249 3250 void Emit(CodeGenFunction &CGF, Flags flags) override { 3251 const CXXDestructorDecl *Dtor = Ty->getAsCXXRecordDecl()->getDestructor(); 3252 assert(!Dtor->isTrivial()); 3253 CGF.EmitCXXDestructorCall(Dtor, Dtor_Complete, /*for vbase*/ false, 3254 /*Delegating=*/false, Addr); 3255 } 3256 }; 3257 3258 struct DisableDebugLocationUpdates { 3259 CodeGenFunction &CGF; 3260 bool disabledDebugInfo; 3261 DisableDebugLocationUpdates(CodeGenFunction &CGF, const Expr *E) : CGF(CGF) { 3262 if ((disabledDebugInfo = isa<CXXDefaultArgExpr>(E) && CGF.getDebugInfo())) 3263 CGF.disableDebugInfo(); 3264 } 3265 ~DisableDebugLocationUpdates() { 3266 if (disabledDebugInfo) 3267 CGF.enableDebugInfo(); 3268 } 3269 }; 3270 3271 } // end anonymous namespace 3272 3273 void CodeGenFunction::EmitCallArg(CallArgList &args, const Expr *E, 3274 QualType type) { 3275 DisableDebugLocationUpdates Dis(*this, E); 3276 if (const ObjCIndirectCopyRestoreExpr *CRE 3277 = dyn_cast<ObjCIndirectCopyRestoreExpr>(E)) { 3278 assert(getLangOpts().ObjCAutoRefCount); 3279 assert(getContext().hasSameType(E->getType(), type)); 3280 return emitWritebackArg(*this, args, CRE); 3281 } 3282 3283 assert(type->isReferenceType() == E->isGLValue() && 3284 "reference binding to unmaterialized r-value!"); 3285 3286 if (E->isGLValue()) { 3287 assert(E->getObjectKind() == OK_Ordinary); 3288 return args.add(EmitReferenceBindingToExpr(E), type); 3289 } 3290 3291 bool HasAggregateEvalKind = hasAggregateEvaluationKind(type); 3292 3293 // In the Microsoft C++ ABI, aggregate arguments are destructed by the callee. 3294 // However, we still have to push an EH-only cleanup in case we unwind before 3295 // we make it to the call. 3296 if (HasAggregateEvalKind && 3297 CGM.getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()) { 3298 // If we're using inalloca, use the argument memory. Otherwise, use a 3299 // temporary. 3300 AggValueSlot Slot; 3301 if (args.isUsingInAlloca()) 3302 Slot = createPlaceholderSlot(*this, type); 3303 else 3304 Slot = CreateAggTemp(type, "agg.tmp"); 3305 3306 const CXXRecordDecl *RD = type->getAsCXXRecordDecl(); 3307 bool DestroyedInCallee = 3308 RD && RD->hasNonTrivialDestructor() && 3309 CGM.getCXXABI().getRecordArgABI(RD) != CGCXXABI::RAA_Default; 3310 if (DestroyedInCallee) 3311 Slot.setExternallyDestructed(); 3312 3313 EmitAggExpr(E, Slot); 3314 RValue RV = Slot.asRValue(); 3315 args.add(RV, type); 3316 3317 if (DestroyedInCallee) { 3318 // Create a no-op GEP between the placeholder and the cleanup so we can 3319 // RAUW it successfully. It also serves as a marker of the first 3320 // instruction where the cleanup is active. 3321 pushFullExprCleanup<DestroyUnpassedArg>(EHCleanup, Slot.getAddress(), 3322 type); 3323 // This unreachable is a temporary marker which will be removed later. 3324 llvm::Instruction *IsActive = Builder.CreateUnreachable(); 3325 args.addArgCleanupDeactivation(EHStack.getInnermostEHScope(), IsActive); 3326 } 3327 return; 3328 } 3329 3330 if (HasAggregateEvalKind && isa<ImplicitCastExpr>(E) && 3331 cast<CastExpr>(E)->getCastKind() == CK_LValueToRValue) { 3332 LValue L = EmitLValue(cast<CastExpr>(E)->getSubExpr()); 3333 assert(L.isSimple()); 3334 if (L.getAlignment() >= getContext().getTypeAlignInChars(type)) { 3335 args.add(L.asAggregateRValue(), type, /*NeedsCopy*/true); 3336 } else { 3337 // We can't represent a misaligned lvalue in the CallArgList, so copy 3338 // to an aligned temporary now. 3339 Address tmp = CreateMemTemp(type); 3340 EmitAggregateCopy(tmp, L.getAddress(), type, L.isVolatile()); 3341 args.add(RValue::getAggregate(tmp), type); 3342 } 3343 return; 3344 } 3345 3346 args.add(EmitAnyExprToTemp(E), type); 3347 } 3348 3349 QualType CodeGenFunction::getVarArgType(const Expr *Arg) { 3350 // System headers on Windows define NULL to 0 instead of 0LL on Win64. MSVC 3351 // implicitly widens null pointer constants that are arguments to varargs 3352 // functions to pointer-sized ints. 3353 if (!getTarget().getTriple().isOSWindows()) 3354 return Arg->getType(); 3355 3356 if (Arg->getType()->isIntegerType() && 3357 getContext().getTypeSize(Arg->getType()) < 3358 getContext().getTargetInfo().getPointerWidth(0) && 3359 Arg->isNullPointerConstant(getContext(), 3360 Expr::NPC_ValueDependentIsNotNull)) { 3361 return getContext().getIntPtrType(); 3362 } 3363 3364 return Arg->getType(); 3365 } 3366 3367 // In ObjC ARC mode with no ObjC ARC exception safety, tell the ARC 3368 // optimizer it can aggressively ignore unwind edges. 3369 void 3370 CodeGenFunction::AddObjCARCExceptionMetadata(llvm::Instruction *Inst) { 3371 if (CGM.getCodeGenOpts().OptimizationLevel != 0 && 3372 !CGM.getCodeGenOpts().ObjCAutoRefCountExceptions) 3373 Inst->setMetadata("clang.arc.no_objc_arc_exceptions", 3374 CGM.getNoObjCARCExceptionsMetadata()); 3375 } 3376 3377 /// Emits a call to the given no-arguments nounwind runtime function. 3378 llvm::CallInst * 3379 CodeGenFunction::EmitNounwindRuntimeCall(llvm::Value *callee, 3380 const llvm::Twine &name) { 3381 return EmitNounwindRuntimeCall(callee, None, name); 3382 } 3383 3384 /// Emits a call to the given nounwind runtime function. 3385 llvm::CallInst * 3386 CodeGenFunction::EmitNounwindRuntimeCall(llvm::Value *callee, 3387 ArrayRef<llvm::Value*> args, 3388 const llvm::Twine &name) { 3389 llvm::CallInst *call = EmitRuntimeCall(callee, args, name); 3390 call->setDoesNotThrow(); 3391 return call; 3392 } 3393 3394 /// Emits a simple call (never an invoke) to the given no-arguments 3395 /// runtime function. 3396 llvm::CallInst * 3397 CodeGenFunction::EmitRuntimeCall(llvm::Value *callee, 3398 const llvm::Twine &name) { 3399 return EmitRuntimeCall(callee, None, name); 3400 } 3401 3402 // Calls which may throw must have operand bundles indicating which funclet 3403 // they are nested within. 3404 static void 3405 getBundlesForFunclet(llvm::Value *Callee, llvm::Instruction *CurrentFuncletPad, 3406 SmallVectorImpl<llvm::OperandBundleDef> &BundleList) { 3407 // There is no need for a funclet operand bundle if we aren't inside a 3408 // funclet. 3409 if (!CurrentFuncletPad) 3410 return; 3411 3412 // Skip intrinsics which cannot throw. 3413 auto *CalleeFn = dyn_cast<llvm::Function>(Callee->stripPointerCasts()); 3414 if (CalleeFn && CalleeFn->isIntrinsic() && CalleeFn->doesNotThrow()) 3415 return; 3416 3417 BundleList.emplace_back("funclet", CurrentFuncletPad); 3418 } 3419 3420 /// Emits a simple call (never an invoke) to the given runtime function. 3421 llvm::CallInst * 3422 CodeGenFunction::EmitRuntimeCall(llvm::Value *callee, 3423 ArrayRef<llvm::Value*> args, 3424 const llvm::Twine &name) { 3425 SmallVector<llvm::OperandBundleDef, 1> BundleList; 3426 getBundlesForFunclet(callee, CurrentFuncletPad, BundleList); 3427 3428 llvm::CallInst *call = Builder.CreateCall(callee, args, BundleList, name); 3429 call->setCallingConv(getRuntimeCC()); 3430 return call; 3431 } 3432 3433 /// Emits a call or invoke to the given noreturn runtime function. 3434 void CodeGenFunction::EmitNoreturnRuntimeCallOrInvoke(llvm::Value *callee, 3435 ArrayRef<llvm::Value*> args) { 3436 SmallVector<llvm::OperandBundleDef, 1> BundleList; 3437 getBundlesForFunclet(callee, CurrentFuncletPad, BundleList); 3438 3439 if (getInvokeDest()) { 3440 llvm::InvokeInst *invoke = 3441 Builder.CreateInvoke(callee, 3442 getUnreachableBlock(), 3443 getInvokeDest(), 3444 args, 3445 BundleList); 3446 invoke->setDoesNotReturn(); 3447 invoke->setCallingConv(getRuntimeCC()); 3448 } else { 3449 llvm::CallInst *call = Builder.CreateCall(callee, args, BundleList); 3450 call->setDoesNotReturn(); 3451 call->setCallingConv(getRuntimeCC()); 3452 Builder.CreateUnreachable(); 3453 } 3454 } 3455 3456 /// Emits a call or invoke instruction to the given nullary runtime function. 3457 llvm::CallSite 3458 CodeGenFunction::EmitRuntimeCallOrInvoke(llvm::Value *callee, 3459 const Twine &name) { 3460 return EmitRuntimeCallOrInvoke(callee, None, name); 3461 } 3462 3463 /// Emits a call or invoke instruction to the given runtime function. 3464 llvm::CallSite 3465 CodeGenFunction::EmitRuntimeCallOrInvoke(llvm::Value *callee, 3466 ArrayRef<llvm::Value*> args, 3467 const Twine &name) { 3468 llvm::CallSite callSite = EmitCallOrInvoke(callee, args, name); 3469 callSite.setCallingConv(getRuntimeCC()); 3470 return callSite; 3471 } 3472 3473 /// Emits a call or invoke instruction to the given function, depending 3474 /// on the current state of the EH stack. 3475 llvm::CallSite 3476 CodeGenFunction::EmitCallOrInvoke(llvm::Value *Callee, 3477 ArrayRef<llvm::Value *> Args, 3478 const Twine &Name) { 3479 llvm::BasicBlock *InvokeDest = getInvokeDest(); 3480 SmallVector<llvm::OperandBundleDef, 1> BundleList; 3481 getBundlesForFunclet(Callee, CurrentFuncletPad, BundleList); 3482 3483 llvm::Instruction *Inst; 3484 if (!InvokeDest) 3485 Inst = Builder.CreateCall(Callee, Args, BundleList, Name); 3486 else { 3487 llvm::BasicBlock *ContBB = createBasicBlock("invoke.cont"); 3488 Inst = Builder.CreateInvoke(Callee, ContBB, InvokeDest, Args, BundleList, 3489 Name); 3490 EmitBlock(ContBB); 3491 } 3492 3493 // In ObjC ARC mode with no ObjC ARC exception safety, tell the ARC 3494 // optimizer it can aggressively ignore unwind edges. 3495 if (CGM.getLangOpts().ObjCAutoRefCount) 3496 AddObjCARCExceptionMetadata(Inst); 3497 3498 return llvm::CallSite(Inst); 3499 } 3500 3501 /// \brief Store a non-aggregate value to an address to initialize it. For 3502 /// initialization, a non-atomic store will be used. 3503 static void EmitInitStoreOfNonAggregate(CodeGenFunction &CGF, RValue Src, 3504 LValue Dst) { 3505 if (Src.isScalar()) 3506 CGF.EmitStoreOfScalar(Src.getScalarVal(), Dst, /*init=*/true); 3507 else 3508 CGF.EmitStoreOfComplex(Src.getComplexVal(), Dst, /*init=*/true); 3509 } 3510 3511 void CodeGenFunction::deferPlaceholderReplacement(llvm::Instruction *Old, 3512 llvm::Value *New) { 3513 DeferredReplacements.push_back(std::make_pair(Old, New)); 3514 } 3515 3516 RValue CodeGenFunction::EmitCall(const CGFunctionInfo &CallInfo, 3517 llvm::Value *Callee, 3518 ReturnValueSlot ReturnValue, 3519 const CallArgList &CallArgs, 3520 CGCalleeInfo CalleeInfo, 3521 llvm::Instruction **callOrInvoke) { 3522 // FIXME: We no longer need the types from CallArgs; lift up and simplify. 3523 3524 // Handle struct-return functions by passing a pointer to the 3525 // location that we would like to return into. 3526 QualType RetTy = CallInfo.getReturnType(); 3527 const ABIArgInfo &RetAI = CallInfo.getReturnInfo(); 3528 3529 llvm::FunctionType *IRFuncTy = 3530 cast<llvm::FunctionType>( 3531 cast<llvm::PointerType>(Callee->getType())->getElementType()); 3532 3533 // If we're using inalloca, insert the allocation after the stack save. 3534 // FIXME: Do this earlier rather than hacking it in here! 3535 Address ArgMemory = Address::invalid(); 3536 const llvm::StructLayout *ArgMemoryLayout = nullptr; 3537 if (llvm::StructType *ArgStruct = CallInfo.getArgStruct()) { 3538 ArgMemoryLayout = CGM.getDataLayout().getStructLayout(ArgStruct); 3539 llvm::Instruction *IP = CallArgs.getStackBase(); 3540 llvm::AllocaInst *AI; 3541 if (IP) { 3542 IP = IP->getNextNode(); 3543 AI = new llvm::AllocaInst(ArgStruct, "argmem", IP); 3544 } else { 3545 AI = CreateTempAlloca(ArgStruct, "argmem"); 3546 } 3547 auto Align = CallInfo.getArgStructAlignment(); 3548 AI->setAlignment(Align.getQuantity()); 3549 AI->setUsedWithInAlloca(true); 3550 assert(AI->isUsedWithInAlloca() && !AI->isStaticAlloca()); 3551 ArgMemory = Address(AI, Align); 3552 } 3553 3554 // Helper function to drill into the inalloca allocation. 3555 auto createInAllocaStructGEP = [&](unsigned FieldIndex) -> Address { 3556 auto FieldOffset = 3557 CharUnits::fromQuantity(ArgMemoryLayout->getElementOffset(FieldIndex)); 3558 return Builder.CreateStructGEP(ArgMemory, FieldIndex, FieldOffset); 3559 }; 3560 3561 ClangToLLVMArgMapping IRFunctionArgs(CGM.getContext(), CallInfo); 3562 SmallVector<llvm::Value *, 16> IRCallArgs(IRFunctionArgs.totalIRArgs()); 3563 3564 // If the call returns a temporary with struct return, create a temporary 3565 // alloca to hold the result, unless one is given to us. 3566 Address SRetPtr = Address::invalid(); 3567 size_t UnusedReturnSize = 0; 3568 if (RetAI.isIndirect() || RetAI.isInAlloca() || RetAI.isCoerceAndExpand()) { 3569 if (!ReturnValue.isNull()) { 3570 SRetPtr = ReturnValue.getValue(); 3571 } else { 3572 SRetPtr = CreateMemTemp(RetTy); 3573 if (HaveInsertPoint() && ReturnValue.isUnused()) { 3574 uint64_t size = 3575 CGM.getDataLayout().getTypeAllocSize(ConvertTypeForMem(RetTy)); 3576 if (EmitLifetimeStart(size, SRetPtr.getPointer())) 3577 UnusedReturnSize = size; 3578 } 3579 } 3580 if (IRFunctionArgs.hasSRetArg()) { 3581 IRCallArgs[IRFunctionArgs.getSRetArgNo()] = SRetPtr.getPointer(); 3582 } else if (RetAI.isInAlloca()) { 3583 Address Addr = createInAllocaStructGEP(RetAI.getInAllocaFieldIndex()); 3584 Builder.CreateStore(SRetPtr.getPointer(), Addr); 3585 } 3586 } 3587 3588 Address swiftErrorTemp = Address::invalid(); 3589 Address swiftErrorArg = Address::invalid(); 3590 3591 assert(CallInfo.arg_size() == CallArgs.size() && 3592 "Mismatch between function signature & arguments."); 3593 unsigned ArgNo = 0; 3594 CGFunctionInfo::const_arg_iterator info_it = CallInfo.arg_begin(); 3595 for (CallArgList::const_iterator I = CallArgs.begin(), E = CallArgs.end(); 3596 I != E; ++I, ++info_it, ++ArgNo) { 3597 const ABIArgInfo &ArgInfo = info_it->info; 3598 RValue RV = I->RV; 3599 3600 // Insert a padding argument to ensure proper alignment. 3601 if (IRFunctionArgs.hasPaddingArg(ArgNo)) 3602 IRCallArgs[IRFunctionArgs.getPaddingArgNo(ArgNo)] = 3603 llvm::UndefValue::get(ArgInfo.getPaddingType()); 3604 3605 unsigned FirstIRArg, NumIRArgs; 3606 std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo); 3607 3608 switch (ArgInfo.getKind()) { 3609 case ABIArgInfo::InAlloca: { 3610 assert(NumIRArgs == 0); 3611 assert(getTarget().getTriple().getArch() == llvm::Triple::x86); 3612 if (RV.isAggregate()) { 3613 // Replace the placeholder with the appropriate argument slot GEP. 3614 llvm::Instruction *Placeholder = 3615 cast<llvm::Instruction>(RV.getAggregatePointer()); 3616 CGBuilderTy::InsertPoint IP = Builder.saveIP(); 3617 Builder.SetInsertPoint(Placeholder); 3618 Address Addr = createInAllocaStructGEP(ArgInfo.getInAllocaFieldIndex()); 3619 Builder.restoreIP(IP); 3620 deferPlaceholderReplacement(Placeholder, Addr.getPointer()); 3621 } else { 3622 // Store the RValue into the argument struct. 3623 Address Addr = createInAllocaStructGEP(ArgInfo.getInAllocaFieldIndex()); 3624 unsigned AS = Addr.getType()->getPointerAddressSpace(); 3625 llvm::Type *MemType = ConvertTypeForMem(I->Ty)->getPointerTo(AS); 3626 // There are some cases where a trivial bitcast is not avoidable. The 3627 // definition of a type later in a translation unit may change it's type 3628 // from {}* to (%struct.foo*)*. 3629 if (Addr.getType() != MemType) 3630 Addr = Builder.CreateBitCast(Addr, MemType); 3631 LValue argLV = MakeAddrLValue(Addr, I->Ty); 3632 EmitInitStoreOfNonAggregate(*this, RV, argLV); 3633 } 3634 break; 3635 } 3636 3637 case ABIArgInfo::Indirect: { 3638 assert(NumIRArgs == 1); 3639 if (RV.isScalar() || RV.isComplex()) { 3640 // Make a temporary alloca to pass the argument. 3641 Address Addr = CreateMemTemp(I->Ty, ArgInfo.getIndirectAlign()); 3642 IRCallArgs[FirstIRArg] = Addr.getPointer(); 3643 3644 LValue argLV = MakeAddrLValue(Addr, I->Ty); 3645 EmitInitStoreOfNonAggregate(*this, RV, argLV); 3646 } else { 3647 // We want to avoid creating an unnecessary temporary+copy here; 3648 // however, we need one in three cases: 3649 // 1. If the argument is not byval, and we are required to copy the 3650 // source. (This case doesn't occur on any common architecture.) 3651 // 2. If the argument is byval, RV is not sufficiently aligned, and 3652 // we cannot force it to be sufficiently aligned. 3653 // 3. If the argument is byval, but RV is located in an address space 3654 // different than that of the argument (0). 3655 Address Addr = RV.getAggregateAddress(); 3656 CharUnits Align = ArgInfo.getIndirectAlign(); 3657 const llvm::DataLayout *TD = &CGM.getDataLayout(); 3658 const unsigned RVAddrSpace = Addr.getType()->getAddressSpace(); 3659 const unsigned ArgAddrSpace = 3660 (FirstIRArg < IRFuncTy->getNumParams() 3661 ? IRFuncTy->getParamType(FirstIRArg)->getPointerAddressSpace() 3662 : 0); 3663 if ((!ArgInfo.getIndirectByVal() && I->NeedsCopy) || 3664 (ArgInfo.getIndirectByVal() && Addr.getAlignment() < Align && 3665 llvm::getOrEnforceKnownAlignment(Addr.getPointer(), 3666 Align.getQuantity(), *TD) 3667 < Align.getQuantity()) || 3668 (ArgInfo.getIndirectByVal() && (RVAddrSpace != ArgAddrSpace))) { 3669 // Create an aligned temporary, and copy to it. 3670 Address AI = CreateMemTemp(I->Ty, ArgInfo.getIndirectAlign()); 3671 IRCallArgs[FirstIRArg] = AI.getPointer(); 3672 EmitAggregateCopy(AI, Addr, I->Ty, RV.isVolatileQualified()); 3673 } else { 3674 // Skip the extra memcpy call. 3675 IRCallArgs[FirstIRArg] = Addr.getPointer(); 3676 } 3677 } 3678 break; 3679 } 3680 3681 case ABIArgInfo::Ignore: 3682 assert(NumIRArgs == 0); 3683 break; 3684 3685 case ABIArgInfo::Extend: 3686 case ABIArgInfo::Direct: { 3687 if (!isa<llvm::StructType>(ArgInfo.getCoerceToType()) && 3688 ArgInfo.getCoerceToType() == ConvertType(info_it->type) && 3689 ArgInfo.getDirectOffset() == 0) { 3690 assert(NumIRArgs == 1); 3691 llvm::Value *V; 3692 if (RV.isScalar()) 3693 V = RV.getScalarVal(); 3694 else 3695 V = Builder.CreateLoad(RV.getAggregateAddress()); 3696 3697 // Implement swifterror by copying into a new swifterror argument. 3698 // We'll write back in the normal path out of the call. 3699 if (CallInfo.getExtParameterInfo(ArgNo).getABI() 3700 == ParameterABI::SwiftErrorResult) { 3701 assert(!swiftErrorTemp.isValid() && "multiple swifterror args"); 3702 3703 QualType pointeeTy = I->Ty->getPointeeType(); 3704 swiftErrorArg = 3705 Address(V, getContext().getTypeAlignInChars(pointeeTy)); 3706 3707 swiftErrorTemp = 3708 CreateMemTemp(pointeeTy, getPointerAlign(), "swifterror.temp"); 3709 V = swiftErrorTemp.getPointer(); 3710 cast<llvm::AllocaInst>(V)->setSwiftError(true); 3711 3712 llvm::Value *errorValue = Builder.CreateLoad(swiftErrorArg); 3713 Builder.CreateStore(errorValue, swiftErrorTemp); 3714 } 3715 3716 // We might have to widen integers, but we should never truncate. 3717 if (ArgInfo.getCoerceToType() != V->getType() && 3718 V->getType()->isIntegerTy()) 3719 V = Builder.CreateZExt(V, ArgInfo.getCoerceToType()); 3720 3721 // If the argument doesn't match, perform a bitcast to coerce it. This 3722 // can happen due to trivial type mismatches. 3723 if (FirstIRArg < IRFuncTy->getNumParams() && 3724 V->getType() != IRFuncTy->getParamType(FirstIRArg)) 3725 V = Builder.CreateBitCast(V, IRFuncTy->getParamType(FirstIRArg)); 3726 3727 IRCallArgs[FirstIRArg] = V; 3728 break; 3729 } 3730 3731 // FIXME: Avoid the conversion through memory if possible. 3732 Address Src = Address::invalid(); 3733 if (RV.isScalar() || RV.isComplex()) { 3734 Src = CreateMemTemp(I->Ty, "coerce"); 3735 LValue SrcLV = MakeAddrLValue(Src, I->Ty); 3736 EmitInitStoreOfNonAggregate(*this, RV, SrcLV); 3737 } else { 3738 Src = RV.getAggregateAddress(); 3739 } 3740 3741 // If the value is offset in memory, apply the offset now. 3742 Src = emitAddressAtOffset(*this, Src, ArgInfo); 3743 3744 // Fast-isel and the optimizer generally like scalar values better than 3745 // FCAs, so we flatten them if this is safe to do for this argument. 3746 llvm::StructType *STy = 3747 dyn_cast<llvm::StructType>(ArgInfo.getCoerceToType()); 3748 if (STy && ArgInfo.isDirect() && ArgInfo.getCanBeFlattened()) { 3749 llvm::Type *SrcTy = Src.getType()->getElementType(); 3750 uint64_t SrcSize = CGM.getDataLayout().getTypeAllocSize(SrcTy); 3751 uint64_t DstSize = CGM.getDataLayout().getTypeAllocSize(STy); 3752 3753 // If the source type is smaller than the destination type of the 3754 // coerce-to logic, copy the source value into a temp alloca the size 3755 // of the destination type to allow loading all of it. The bits past 3756 // the source value are left undef. 3757 if (SrcSize < DstSize) { 3758 Address TempAlloca 3759 = CreateTempAlloca(STy, Src.getAlignment(), 3760 Src.getName() + ".coerce"); 3761 Builder.CreateMemCpy(TempAlloca, Src, SrcSize); 3762 Src = TempAlloca; 3763 } else { 3764 Src = Builder.CreateBitCast(Src, llvm::PointerType::getUnqual(STy)); 3765 } 3766 3767 auto SrcLayout = CGM.getDataLayout().getStructLayout(STy); 3768 assert(NumIRArgs == STy->getNumElements()); 3769 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 3770 auto Offset = CharUnits::fromQuantity(SrcLayout->getElementOffset(i)); 3771 Address EltPtr = Builder.CreateStructGEP(Src, i, Offset); 3772 llvm::Value *LI = Builder.CreateLoad(EltPtr); 3773 IRCallArgs[FirstIRArg + i] = LI; 3774 } 3775 } else { 3776 // In the simple case, just pass the coerced loaded value. 3777 assert(NumIRArgs == 1); 3778 IRCallArgs[FirstIRArg] = 3779 CreateCoercedLoad(Src, ArgInfo.getCoerceToType(), *this); 3780 } 3781 3782 break; 3783 } 3784 3785 case ABIArgInfo::CoerceAndExpand: { 3786 auto coercionType = ArgInfo.getCoerceAndExpandType(); 3787 auto layout = CGM.getDataLayout().getStructLayout(coercionType); 3788 3789 llvm::Value *tempSize = nullptr; 3790 Address addr = Address::invalid(); 3791 if (RV.isAggregate()) { 3792 addr = RV.getAggregateAddress(); 3793 } else { 3794 assert(RV.isScalar()); // complex should always just be direct 3795 3796 llvm::Type *scalarType = RV.getScalarVal()->getType(); 3797 auto scalarSize = CGM.getDataLayout().getTypeAllocSize(scalarType); 3798 auto scalarAlign = CGM.getDataLayout().getPrefTypeAlignment(scalarType); 3799 3800 tempSize = llvm::ConstantInt::get(CGM.Int64Ty, scalarSize); 3801 3802 // Materialize to a temporary. 3803 addr = CreateTempAlloca(RV.getScalarVal()->getType(), 3804 CharUnits::fromQuantity(std::max(layout->getAlignment(), 3805 scalarAlign))); 3806 EmitLifetimeStart(scalarSize, addr.getPointer()); 3807 3808 Builder.CreateStore(RV.getScalarVal(), addr); 3809 } 3810 3811 addr = Builder.CreateElementBitCast(addr, coercionType); 3812 3813 unsigned IRArgPos = FirstIRArg; 3814 for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) { 3815 llvm::Type *eltType = coercionType->getElementType(i); 3816 if (ABIArgInfo::isPaddingForCoerceAndExpand(eltType)) continue; 3817 Address eltAddr = Builder.CreateStructGEP(addr, i, layout); 3818 llvm::Value *elt = Builder.CreateLoad(eltAddr); 3819 IRCallArgs[IRArgPos++] = elt; 3820 } 3821 assert(IRArgPos == FirstIRArg + NumIRArgs); 3822 3823 if (tempSize) { 3824 EmitLifetimeEnd(tempSize, addr.getPointer()); 3825 } 3826 3827 break; 3828 } 3829 3830 case ABIArgInfo::Expand: 3831 unsigned IRArgPos = FirstIRArg; 3832 ExpandTypeToArgs(I->Ty, RV, IRFuncTy, IRCallArgs, IRArgPos); 3833 assert(IRArgPos == FirstIRArg + NumIRArgs); 3834 break; 3835 } 3836 } 3837 3838 if (ArgMemory.isValid()) { 3839 llvm::Value *Arg = ArgMemory.getPointer(); 3840 if (CallInfo.isVariadic()) { 3841 // When passing non-POD arguments by value to variadic functions, we will 3842 // end up with a variadic prototype and an inalloca call site. In such 3843 // cases, we can't do any parameter mismatch checks. Give up and bitcast 3844 // the callee. 3845 unsigned CalleeAS = 3846 cast<llvm::PointerType>(Callee->getType())->getAddressSpace(); 3847 Callee = Builder.CreateBitCast( 3848 Callee, getTypes().GetFunctionType(CallInfo)->getPointerTo(CalleeAS)); 3849 } else { 3850 llvm::Type *LastParamTy = 3851 IRFuncTy->getParamType(IRFuncTy->getNumParams() - 1); 3852 if (Arg->getType() != LastParamTy) { 3853 #ifndef NDEBUG 3854 // Assert that these structs have equivalent element types. 3855 llvm::StructType *FullTy = CallInfo.getArgStruct(); 3856 llvm::StructType *DeclaredTy = cast<llvm::StructType>( 3857 cast<llvm::PointerType>(LastParamTy)->getElementType()); 3858 assert(DeclaredTy->getNumElements() == FullTy->getNumElements()); 3859 for (llvm::StructType::element_iterator DI = DeclaredTy->element_begin(), 3860 DE = DeclaredTy->element_end(), 3861 FI = FullTy->element_begin(); 3862 DI != DE; ++DI, ++FI) 3863 assert(*DI == *FI); 3864 #endif 3865 Arg = Builder.CreateBitCast(Arg, LastParamTy); 3866 } 3867 } 3868 assert(IRFunctionArgs.hasInallocaArg()); 3869 IRCallArgs[IRFunctionArgs.getInallocaArgNo()] = Arg; 3870 } 3871 3872 if (!CallArgs.getCleanupsToDeactivate().empty()) 3873 deactivateArgCleanupsBeforeCall(*this, CallArgs); 3874 3875 // If the callee is a bitcast of a function to a varargs pointer to function 3876 // type, check to see if we can remove the bitcast. This handles some cases 3877 // with unprototyped functions. 3878 if (llvm::ConstantExpr *CE = dyn_cast<llvm::ConstantExpr>(Callee)) 3879 if (llvm::Function *CalleeF = dyn_cast<llvm::Function>(CE->getOperand(0))) { 3880 llvm::PointerType *CurPT=cast<llvm::PointerType>(Callee->getType()); 3881 llvm::FunctionType *CurFT = 3882 cast<llvm::FunctionType>(CurPT->getElementType()); 3883 llvm::FunctionType *ActualFT = CalleeF->getFunctionType(); 3884 3885 if (CE->getOpcode() == llvm::Instruction::BitCast && 3886 ActualFT->getReturnType() == CurFT->getReturnType() && 3887 ActualFT->getNumParams() == CurFT->getNumParams() && 3888 ActualFT->getNumParams() == IRCallArgs.size() && 3889 (CurFT->isVarArg() || !ActualFT->isVarArg())) { 3890 bool ArgsMatch = true; 3891 for (unsigned i = 0, e = ActualFT->getNumParams(); i != e; ++i) 3892 if (ActualFT->getParamType(i) != CurFT->getParamType(i)) { 3893 ArgsMatch = false; 3894 break; 3895 } 3896 3897 // Strip the cast if we can get away with it. This is a nice cleanup, 3898 // but also allows us to inline the function at -O0 if it is marked 3899 // always_inline. 3900 if (ArgsMatch) 3901 Callee = CalleeF; 3902 } 3903 } 3904 3905 assert(IRCallArgs.size() == IRFuncTy->getNumParams() || IRFuncTy->isVarArg()); 3906 for (unsigned i = 0; i < IRCallArgs.size(); ++i) { 3907 // Inalloca argument can have different type. 3908 if (IRFunctionArgs.hasInallocaArg() && 3909 i == IRFunctionArgs.getInallocaArgNo()) 3910 continue; 3911 if (i < IRFuncTy->getNumParams()) 3912 assert(IRCallArgs[i]->getType() == IRFuncTy->getParamType(i)); 3913 } 3914 3915 unsigned CallingConv; 3916 CodeGen::AttributeListType AttributeList; 3917 CGM.ConstructAttributeList(Callee->getName(), CallInfo, CalleeInfo, 3918 AttributeList, CallingConv, 3919 /*AttrOnCallSite=*/true); 3920 llvm::AttributeSet Attrs = llvm::AttributeSet::get(getLLVMContext(), 3921 AttributeList); 3922 3923 bool CannotThrow; 3924 if (currentFunctionUsesSEHTry()) { 3925 // SEH cares about asynchronous exceptions, everything can "throw." 3926 CannotThrow = false; 3927 } else if (isCleanupPadScope() && 3928 EHPersonality::get(*this).isMSVCXXPersonality()) { 3929 // The MSVC++ personality will implicitly terminate the program if an 3930 // exception is thrown. An unwind edge cannot be reached. 3931 CannotThrow = true; 3932 } else { 3933 // Otherwise, nowunind callsites will never throw. 3934 CannotThrow = Attrs.hasAttribute(llvm::AttributeSet::FunctionIndex, 3935 llvm::Attribute::NoUnwind); 3936 } 3937 llvm::BasicBlock *InvokeDest = CannotThrow ? nullptr : getInvokeDest(); 3938 3939 SmallVector<llvm::OperandBundleDef, 1> BundleList; 3940 getBundlesForFunclet(Callee, CurrentFuncletPad, BundleList); 3941 3942 llvm::CallSite CS; 3943 if (!InvokeDest) { 3944 CS = Builder.CreateCall(Callee, IRCallArgs, BundleList); 3945 } else { 3946 llvm::BasicBlock *Cont = createBasicBlock("invoke.cont"); 3947 CS = Builder.CreateInvoke(Callee, Cont, InvokeDest, IRCallArgs, 3948 BundleList); 3949 EmitBlock(Cont); 3950 } 3951 if (callOrInvoke) 3952 *callOrInvoke = CS.getInstruction(); 3953 3954 if (CurCodeDecl && CurCodeDecl->hasAttr<FlattenAttr>() && 3955 !CS.hasFnAttr(llvm::Attribute::NoInline)) 3956 Attrs = 3957 Attrs.addAttribute(getLLVMContext(), llvm::AttributeSet::FunctionIndex, 3958 llvm::Attribute::AlwaysInline); 3959 3960 // Disable inlining inside SEH __try blocks. 3961 if (isSEHTryScope()) 3962 Attrs = 3963 Attrs.addAttribute(getLLVMContext(), llvm::AttributeSet::FunctionIndex, 3964 llvm::Attribute::NoInline); 3965 3966 CS.setAttributes(Attrs); 3967 CS.setCallingConv(static_cast<llvm::CallingConv::ID>(CallingConv)); 3968 3969 // Insert instrumentation or attach profile metadata at indirect call sites. 3970 // For more details, see the comment before the definition of 3971 // IPVK_IndirectCallTarget in InstrProfData.inc. 3972 if (!CS.getCalledFunction()) 3973 PGO.valueProfile(Builder, llvm::IPVK_IndirectCallTarget, 3974 CS.getInstruction(), Callee); 3975 3976 // In ObjC ARC mode with no ObjC ARC exception safety, tell the ARC 3977 // optimizer it can aggressively ignore unwind edges. 3978 if (CGM.getLangOpts().ObjCAutoRefCount) 3979 AddObjCARCExceptionMetadata(CS.getInstruction()); 3980 3981 // If the call doesn't return, finish the basic block and clear the 3982 // insertion point; this allows the rest of IRgen to discard 3983 // unreachable code. 3984 if (CS.doesNotReturn()) { 3985 if (UnusedReturnSize) 3986 EmitLifetimeEnd(llvm::ConstantInt::get(Int64Ty, UnusedReturnSize), 3987 SRetPtr.getPointer()); 3988 3989 Builder.CreateUnreachable(); 3990 Builder.ClearInsertionPoint(); 3991 3992 // FIXME: For now, emit a dummy basic block because expr emitters in 3993 // generally are not ready to handle emitting expressions at unreachable 3994 // points. 3995 EnsureInsertPoint(); 3996 3997 // Return a reasonable RValue. 3998 return GetUndefRValue(RetTy); 3999 } 4000 4001 llvm::Instruction *CI = CS.getInstruction(); 4002 if (!CI->getType()->isVoidTy()) 4003 CI->setName("call"); 4004 4005 // Perform the swifterror writeback. 4006 if (swiftErrorTemp.isValid()) { 4007 llvm::Value *errorResult = Builder.CreateLoad(swiftErrorTemp); 4008 Builder.CreateStore(errorResult, swiftErrorArg); 4009 } 4010 4011 // Emit any writebacks immediately. Arguably this should happen 4012 // after any return-value munging. 4013 if (CallArgs.hasWritebacks()) 4014 emitWritebacks(*this, CallArgs); 4015 4016 // The stack cleanup for inalloca arguments has to run out of the normal 4017 // lexical order, so deactivate it and run it manually here. 4018 CallArgs.freeArgumentMemory(*this); 4019 4020 if (llvm::CallInst *Call = dyn_cast<llvm::CallInst>(CI)) { 4021 const Decl *TargetDecl = CalleeInfo.getCalleeDecl(); 4022 if (TargetDecl && TargetDecl->hasAttr<NotTailCalledAttr>()) 4023 Call->setTailCallKind(llvm::CallInst::TCK_NoTail); 4024 } 4025 4026 RValue Ret = [&] { 4027 switch (RetAI.getKind()) { 4028 case ABIArgInfo::CoerceAndExpand: { 4029 auto coercionType = RetAI.getCoerceAndExpandType(); 4030 auto layout = CGM.getDataLayout().getStructLayout(coercionType); 4031 4032 Address addr = SRetPtr; 4033 addr = Builder.CreateElementBitCast(addr, coercionType); 4034 4035 assert(CI->getType() == RetAI.getUnpaddedCoerceAndExpandType()); 4036 bool requiresExtract = isa<llvm::StructType>(CI->getType()); 4037 4038 unsigned unpaddedIndex = 0; 4039 for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) { 4040 llvm::Type *eltType = coercionType->getElementType(i); 4041 if (ABIArgInfo::isPaddingForCoerceAndExpand(eltType)) continue; 4042 Address eltAddr = Builder.CreateStructGEP(addr, i, layout); 4043 llvm::Value *elt = CI; 4044 if (requiresExtract) 4045 elt = Builder.CreateExtractValue(elt, unpaddedIndex++); 4046 else 4047 assert(unpaddedIndex == 0); 4048 Builder.CreateStore(elt, eltAddr); 4049 } 4050 // FALLTHROUGH 4051 } 4052 4053 case ABIArgInfo::InAlloca: 4054 case ABIArgInfo::Indirect: { 4055 RValue ret = convertTempToRValue(SRetPtr, RetTy, SourceLocation()); 4056 if (UnusedReturnSize) 4057 EmitLifetimeEnd(llvm::ConstantInt::get(Int64Ty, UnusedReturnSize), 4058 SRetPtr.getPointer()); 4059 return ret; 4060 } 4061 4062 case ABIArgInfo::Ignore: 4063 // If we are ignoring an argument that had a result, make sure to 4064 // construct the appropriate return value for our caller. 4065 return GetUndefRValue(RetTy); 4066 4067 case ABIArgInfo::Extend: 4068 case ABIArgInfo::Direct: { 4069 llvm::Type *RetIRTy = ConvertType(RetTy); 4070 if (RetAI.getCoerceToType() == RetIRTy && RetAI.getDirectOffset() == 0) { 4071 switch (getEvaluationKind(RetTy)) { 4072 case TEK_Complex: { 4073 llvm::Value *Real = Builder.CreateExtractValue(CI, 0); 4074 llvm::Value *Imag = Builder.CreateExtractValue(CI, 1); 4075 return RValue::getComplex(std::make_pair(Real, Imag)); 4076 } 4077 case TEK_Aggregate: { 4078 Address DestPtr = ReturnValue.getValue(); 4079 bool DestIsVolatile = ReturnValue.isVolatile(); 4080 4081 if (!DestPtr.isValid()) { 4082 DestPtr = CreateMemTemp(RetTy, "agg.tmp"); 4083 DestIsVolatile = false; 4084 } 4085 BuildAggStore(*this, CI, DestPtr, DestIsVolatile); 4086 return RValue::getAggregate(DestPtr); 4087 } 4088 case TEK_Scalar: { 4089 // If the argument doesn't match, perform a bitcast to coerce it. This 4090 // can happen due to trivial type mismatches. 4091 llvm::Value *V = CI; 4092 if (V->getType() != RetIRTy) 4093 V = Builder.CreateBitCast(V, RetIRTy); 4094 return RValue::get(V); 4095 } 4096 } 4097 llvm_unreachable("bad evaluation kind"); 4098 } 4099 4100 Address DestPtr = ReturnValue.getValue(); 4101 bool DestIsVolatile = ReturnValue.isVolatile(); 4102 4103 if (!DestPtr.isValid()) { 4104 DestPtr = CreateMemTemp(RetTy, "coerce"); 4105 DestIsVolatile = false; 4106 } 4107 4108 // If the value is offset in memory, apply the offset now. 4109 Address StorePtr = emitAddressAtOffset(*this, DestPtr, RetAI); 4110 CreateCoercedStore(CI, StorePtr, DestIsVolatile, *this); 4111 4112 return convertTempToRValue(DestPtr, RetTy, SourceLocation()); 4113 } 4114 4115 case ABIArgInfo::Expand: 4116 llvm_unreachable("Invalid ABI kind for return argument"); 4117 } 4118 4119 llvm_unreachable("Unhandled ABIArgInfo::Kind"); 4120 } (); 4121 4122 const Decl *TargetDecl = CalleeInfo.getCalleeDecl(); 4123 4124 if (Ret.isScalar() && TargetDecl) { 4125 if (const auto *AA = TargetDecl->getAttr<AssumeAlignedAttr>()) { 4126 llvm::Value *OffsetValue = nullptr; 4127 if (const auto *Offset = AA->getOffset()) 4128 OffsetValue = EmitScalarExpr(Offset); 4129 4130 llvm::Value *Alignment = EmitScalarExpr(AA->getAlignment()); 4131 llvm::ConstantInt *AlignmentCI = cast<llvm::ConstantInt>(Alignment); 4132 EmitAlignmentAssumption(Ret.getScalarVal(), AlignmentCI->getZExtValue(), 4133 OffsetValue); 4134 } 4135 } 4136 4137 return Ret; 4138 } 4139 4140 /* VarArg handling */ 4141 4142 Address CodeGenFunction::EmitVAArg(VAArgExpr *VE, Address &VAListAddr) { 4143 VAListAddr = VE->isMicrosoftABI() 4144 ? EmitMSVAListRef(VE->getSubExpr()) 4145 : EmitVAListRef(VE->getSubExpr()); 4146 QualType Ty = VE->getType(); 4147 if (VE->isMicrosoftABI()) 4148 return CGM.getTypes().getABIInfo().EmitMSVAArg(*this, VAListAddr, Ty); 4149 return CGM.getTypes().getABIInfo().EmitVAArg(*this, VAListAddr, Ty); 4150 } 4151