1 //===--- CGCall.cpp - Encapsulate calling convention details --------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // These classes wrap the information about a call or function
10 // definition used to handle ABI compliancy.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "CGCall.h"
15 #include "ABIInfo.h"
16 #include "CGBlocks.h"
17 #include "CGCXXABI.h"
18 #include "CGCleanup.h"
19 #include "CodeGenFunction.h"
20 #include "CodeGenModule.h"
21 #include "TargetInfo.h"
22 #include "clang/AST/Attr.h"
23 #include "clang/AST/Decl.h"
24 #include "clang/AST/DeclCXX.h"
25 #include "clang/AST/DeclObjC.h"
26 #include "clang/Basic/CodeGenOptions.h"
27 #include "clang/Basic/TargetBuiltins.h"
28 #include "clang/Basic/TargetInfo.h"
29 #include "clang/CodeGen/CGFunctionInfo.h"
30 #include "clang/CodeGen/SwiftCallingConv.h"
31 #include "llvm/ADT/StringExtras.h"
32 #include "llvm/Analysis/ValueTracking.h"
33 #include "llvm/IR/Attributes.h"
34 #include "llvm/IR/CallingConv.h"
35 #include "llvm/IR/DataLayout.h"
36 #include "llvm/IR/InlineAsm.h"
37 #include "llvm/IR/IntrinsicInst.h"
38 #include "llvm/IR/Intrinsics.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_X86RegCall: return llvm::CallingConv::X86_RegCall;
51   case CC_X86ThisCall: return llvm::CallingConv::X86_ThisCall;
52   case CC_Win64: return llvm::CallingConv::Win64;
53   case CC_X86_64SysV: return llvm::CallingConv::X86_64_SysV;
54   case CC_AAPCS: return llvm::CallingConv::ARM_AAPCS;
55   case CC_AAPCS_VFP: return llvm::CallingConv::ARM_AAPCS_VFP;
56   case CC_IntelOclBicc: return llvm::CallingConv::Intel_OCL_BI;
57   // TODO: Add support for __pascal to LLVM.
58   case CC_X86Pascal: return llvm::CallingConv::C;
59   // TODO: Add support for __vectorcall to LLVM.
60   case CC_X86VectorCall: return llvm::CallingConv::X86_VectorCall;
61   case CC_AArch64VectorCall: return llvm::CallingConv::AArch64_VectorCall;
62   case CC_SpirFunction: return llvm::CallingConv::SPIR_FUNC;
63   case CC_OpenCLKernel: return CGM.getTargetCodeGenInfo().getOpenCLKernelCallingConv();
64   case CC_PreserveMost: return llvm::CallingConv::PreserveMost;
65   case CC_PreserveAll: return llvm::CallingConv::PreserveAll;
66   case CC_Swift: return llvm::CallingConv::Swift;
67   }
68 }
69 
70 /// Derives the 'this' type for codegen purposes, i.e. ignoring method CVR
71 /// qualification. Either or both of RD and MD may be null. A null RD indicates
72 /// that there is no meaningful 'this' type, and a null MD can occur when
73 /// calling a method pointer.
74 CanQualType CodeGenTypes::DeriveThisType(const CXXRecordDecl *RD,
75                                          const CXXMethodDecl *MD) {
76   QualType RecTy;
77   if (RD)
78     RecTy = Context.getTagDeclType(RD)->getCanonicalTypeInternal();
79   else
80     RecTy = Context.VoidTy;
81 
82   if (MD)
83     RecTy = Context.getAddrSpaceQualType(RecTy, MD->getMethodQualifiers().getAddressSpace());
84   return Context.getPointerType(CanQualType::CreateUnsafe(RecTy));
85 }
86 
87 /// Returns the canonical formal type of the given C++ method.
88 static CanQual<FunctionProtoType> GetFormalType(const CXXMethodDecl *MD) {
89   return MD->getType()->getCanonicalTypeUnqualified()
90            .getAs<FunctionProtoType>();
91 }
92 
93 /// Returns the "extra-canonicalized" return type, which discards
94 /// qualifiers on the return type.  Codegen doesn't care about them,
95 /// and it makes ABI code a little easier to be able to assume that
96 /// all parameter and return types are top-level unqualified.
97 static CanQualType GetReturnType(QualType RetTy) {
98   return RetTy->getCanonicalTypeUnqualified().getUnqualifiedType();
99 }
100 
101 /// Arrange the argument and result information for a value of the given
102 /// unprototyped freestanding function type.
103 const CGFunctionInfo &
104 CodeGenTypes::arrangeFreeFunctionType(CanQual<FunctionNoProtoType> FTNP) {
105   // When translating an unprototyped function type, always use a
106   // variadic type.
107   return arrangeLLVMFunctionInfo(FTNP->getReturnType().getUnqualifiedType(),
108                                  /*instanceMethod=*/false,
109                                  /*chainCall=*/false, None,
110                                  FTNP->getExtInfo(), {}, RequiredArgs(0));
111 }
112 
113 static void addExtParameterInfosForCall(
114          llvm::SmallVectorImpl<FunctionProtoType::ExtParameterInfo> &paramInfos,
115                                         const FunctionProtoType *proto,
116                                         unsigned prefixArgs,
117                                         unsigned totalArgs) {
118   assert(proto->hasExtParameterInfos());
119   assert(paramInfos.size() <= prefixArgs);
120   assert(proto->getNumParams() + prefixArgs <= totalArgs);
121 
122   paramInfos.reserve(totalArgs);
123 
124   // Add default infos for any prefix args that don't already have infos.
125   paramInfos.resize(prefixArgs);
126 
127   // Add infos for the prototype.
128   for (const auto &ParamInfo : proto->getExtParameterInfos()) {
129     paramInfos.push_back(ParamInfo);
130     // pass_object_size params have no parameter info.
131     if (ParamInfo.hasPassObjectSize())
132       paramInfos.emplace_back();
133   }
134 
135   assert(paramInfos.size() <= totalArgs &&
136          "Did we forget to insert pass_object_size args?");
137   // Add default infos for the variadic and/or suffix arguments.
138   paramInfos.resize(totalArgs);
139 }
140 
141 /// Adds the formal parameters in FPT to the given prefix. If any parameter in
142 /// FPT has pass_object_size attrs, then we'll add parameters for those, too.
143 static void appendParameterTypes(const CodeGenTypes &CGT,
144                                  SmallVectorImpl<CanQualType> &prefix,
145               SmallVectorImpl<FunctionProtoType::ExtParameterInfo> &paramInfos,
146                                  CanQual<FunctionProtoType> FPT) {
147   // Fast path: don't touch param info if we don't need to.
148   if (!FPT->hasExtParameterInfos()) {
149     assert(paramInfos.empty() &&
150            "We have paramInfos, but the prototype doesn't?");
151     prefix.append(FPT->param_type_begin(), FPT->param_type_end());
152     return;
153   }
154 
155   unsigned PrefixSize = prefix.size();
156   // In the vast majority of cases, we'll have precisely FPT->getNumParams()
157   // parameters; the only thing that can change this is the presence of
158   // pass_object_size. So, we preallocate for the common case.
159   prefix.reserve(prefix.size() + FPT->getNumParams());
160 
161   auto ExtInfos = FPT->getExtParameterInfos();
162   assert(ExtInfos.size() == FPT->getNumParams());
163   for (unsigned I = 0, E = FPT->getNumParams(); I != E; ++I) {
164     prefix.push_back(FPT->getParamType(I));
165     if (ExtInfos[I].hasPassObjectSize())
166       prefix.push_back(CGT.getContext().getSizeType());
167   }
168 
169   addExtParameterInfosForCall(paramInfos, FPT.getTypePtr(), PrefixSize,
170                               prefix.size());
171 }
172 
173 /// Arrange the LLVM function layout for a value of the given function
174 /// type, on top of any implicit parameters already stored.
175 static const CGFunctionInfo &
176 arrangeLLVMFunctionInfo(CodeGenTypes &CGT, bool instanceMethod,
177                         SmallVectorImpl<CanQualType> &prefix,
178                         CanQual<FunctionProtoType> FTP) {
179   SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos;
180   RequiredArgs Required = RequiredArgs::forPrototypePlus(FTP, prefix.size());
181   // FIXME: Kill copy.
182   appendParameterTypes(CGT, prefix, paramInfos, FTP);
183   CanQualType resultType = FTP->getReturnType().getUnqualifiedType();
184 
185   return CGT.arrangeLLVMFunctionInfo(resultType, instanceMethod,
186                                      /*chainCall=*/false, prefix,
187                                      FTP->getExtInfo(), paramInfos,
188                                      Required);
189 }
190 
191 /// Arrange the argument and result information for a value of the
192 /// given freestanding function type.
193 const CGFunctionInfo &
194 CodeGenTypes::arrangeFreeFunctionType(CanQual<FunctionProtoType> FTP) {
195   SmallVector<CanQualType, 16> argTypes;
196   return ::arrangeLLVMFunctionInfo(*this, /*instanceMethod=*/false, argTypes,
197                                    FTP);
198 }
199 
200 static CallingConv getCallingConventionForDecl(const Decl *D, bool IsWindows) {
201   // Set the appropriate calling convention for the Function.
202   if (D->hasAttr<StdCallAttr>())
203     return CC_X86StdCall;
204 
205   if (D->hasAttr<FastCallAttr>())
206     return CC_X86FastCall;
207 
208   if (D->hasAttr<RegCallAttr>())
209     return CC_X86RegCall;
210 
211   if (D->hasAttr<ThisCallAttr>())
212     return CC_X86ThisCall;
213 
214   if (D->hasAttr<VectorCallAttr>())
215     return CC_X86VectorCall;
216 
217   if (D->hasAttr<PascalAttr>())
218     return CC_X86Pascal;
219 
220   if (PcsAttr *PCS = D->getAttr<PcsAttr>())
221     return (PCS->getPCS() == PcsAttr::AAPCS ? CC_AAPCS : CC_AAPCS_VFP);
222 
223   if (D->hasAttr<AArch64VectorPcsAttr>())
224     return CC_AArch64VectorCall;
225 
226   if (D->hasAttr<IntelOclBiccAttr>())
227     return CC_IntelOclBicc;
228 
229   if (D->hasAttr<MSABIAttr>())
230     return IsWindows ? CC_C : CC_Win64;
231 
232   if (D->hasAttr<SysVABIAttr>())
233     return IsWindows ? CC_X86_64SysV : CC_C;
234 
235   if (D->hasAttr<PreserveMostAttr>())
236     return CC_PreserveMost;
237 
238   if (D->hasAttr<PreserveAllAttr>())
239     return CC_PreserveAll;
240 
241   return CC_C;
242 }
243 
244 /// Arrange the argument and result information for a call to an
245 /// unknown C++ non-static member function of the given abstract type.
246 /// (A null RD means we don't have any meaningful "this" argument type,
247 ///  so fall back to a generic pointer type).
248 /// The member function must be an ordinary function, i.e. not a
249 /// constructor or destructor.
250 const CGFunctionInfo &
251 CodeGenTypes::arrangeCXXMethodType(const CXXRecordDecl *RD,
252                                    const FunctionProtoType *FTP,
253                                    const CXXMethodDecl *MD) {
254   SmallVector<CanQualType, 16> argTypes;
255 
256   // Add the 'this' pointer.
257   argTypes.push_back(DeriveThisType(RD, MD));
258 
259   return ::arrangeLLVMFunctionInfo(
260       *this, true, argTypes,
261       FTP->getCanonicalTypeUnqualified().getAs<FunctionProtoType>());
262 }
263 
264 /// Set calling convention for CUDA/HIP kernel.
265 static void setCUDAKernelCallingConvention(CanQualType &FTy, CodeGenModule &CGM,
266                                            const FunctionDecl *FD) {
267   if (FD->hasAttr<CUDAGlobalAttr>()) {
268     const FunctionType *FT = FTy->getAs<FunctionType>();
269     CGM.getTargetCodeGenInfo().setCUDAKernelCallingConvention(FT);
270     FTy = FT->getCanonicalTypeUnqualified();
271   }
272 }
273 
274 /// Arrange the argument and result information for a declaration or
275 /// definition of the given C++ non-static member function.  The
276 /// member function must be an ordinary function, i.e. not a
277 /// constructor or destructor.
278 const CGFunctionInfo &
279 CodeGenTypes::arrangeCXXMethodDeclaration(const CXXMethodDecl *MD) {
280   assert(!isa<CXXConstructorDecl>(MD) && "wrong method for constructors!");
281   assert(!isa<CXXDestructorDecl>(MD) && "wrong method for destructors!");
282 
283   CanQualType FT = GetFormalType(MD).getAs<Type>();
284   setCUDAKernelCallingConvention(FT, CGM, MD);
285   auto prototype = FT.getAs<FunctionProtoType>();
286 
287   if (MD->isInstance()) {
288     // The abstract case is perfectly fine.
289     const CXXRecordDecl *ThisType = TheCXXABI.getThisArgumentTypeForMethod(MD);
290     return arrangeCXXMethodType(ThisType, prototype.getTypePtr(), MD);
291   }
292 
293   return arrangeFreeFunctionType(prototype);
294 }
295 
296 bool CodeGenTypes::inheritingCtorHasParams(
297     const InheritedConstructor &Inherited, CXXCtorType Type) {
298   // Parameters are unnecessary if we're constructing a base class subobject
299   // and the inherited constructor lives in a virtual base.
300   return Type == Ctor_Complete ||
301          !Inherited.getShadowDecl()->constructsVirtualBase() ||
302          !Target.getCXXABI().hasConstructorVariants();
303 }
304 
305 const CGFunctionInfo &
306 CodeGenTypes::arrangeCXXStructorDeclaration(GlobalDecl GD) {
307   auto *MD = cast<CXXMethodDecl>(GD.getDecl());
308 
309   SmallVector<CanQualType, 16> argTypes;
310   SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos;
311   argTypes.push_back(DeriveThisType(MD->getParent(), MD));
312 
313   bool PassParams = true;
314 
315   if (auto *CD = dyn_cast<CXXConstructorDecl>(MD)) {
316     // A base class inheriting constructor doesn't get forwarded arguments
317     // needed to construct a virtual base (or base class thereof).
318     if (auto Inherited = CD->getInheritedConstructor())
319       PassParams = inheritingCtorHasParams(Inherited, GD.getCtorType());
320   }
321 
322   CanQual<FunctionProtoType> FTP = GetFormalType(MD);
323 
324   // Add the formal parameters.
325   if (PassParams)
326     appendParameterTypes(*this, argTypes, paramInfos, FTP);
327 
328   CGCXXABI::AddedStructorArgs AddedArgs =
329       TheCXXABI.buildStructorSignature(GD, argTypes);
330   if (!paramInfos.empty()) {
331     // Note: prefix implies after the first param.
332     if (AddedArgs.Prefix)
333       paramInfos.insert(paramInfos.begin() + 1, AddedArgs.Prefix,
334                         FunctionProtoType::ExtParameterInfo{});
335     if (AddedArgs.Suffix)
336       paramInfos.append(AddedArgs.Suffix,
337                         FunctionProtoType::ExtParameterInfo{});
338   }
339 
340   RequiredArgs required =
341       (PassParams && MD->isVariadic() ? RequiredArgs(argTypes.size())
342                                       : RequiredArgs::All);
343 
344   FunctionType::ExtInfo extInfo = FTP->getExtInfo();
345   CanQualType resultType = TheCXXABI.HasThisReturn(GD)
346                                ? argTypes.front()
347                                : TheCXXABI.hasMostDerivedReturn(GD)
348                                      ? CGM.getContext().VoidPtrTy
349                                      : Context.VoidTy;
350   return arrangeLLVMFunctionInfo(resultType, /*instanceMethod=*/true,
351                                  /*chainCall=*/false, argTypes, extInfo,
352                                  paramInfos, required);
353 }
354 
355 static SmallVector<CanQualType, 16>
356 getArgTypesForCall(ASTContext &ctx, const CallArgList &args) {
357   SmallVector<CanQualType, 16> argTypes;
358   for (auto &arg : args)
359     argTypes.push_back(ctx.getCanonicalParamType(arg.Ty));
360   return argTypes;
361 }
362 
363 static SmallVector<CanQualType, 16>
364 getArgTypesForDeclaration(ASTContext &ctx, const FunctionArgList &args) {
365   SmallVector<CanQualType, 16> argTypes;
366   for (auto &arg : args)
367     argTypes.push_back(ctx.getCanonicalParamType(arg->getType()));
368   return argTypes;
369 }
370 
371 static llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16>
372 getExtParameterInfosForCall(const FunctionProtoType *proto,
373                             unsigned prefixArgs, unsigned totalArgs) {
374   llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16> result;
375   if (proto->hasExtParameterInfos()) {
376     addExtParameterInfosForCall(result, proto, prefixArgs, totalArgs);
377   }
378   return result;
379 }
380 
381 /// Arrange a call to a C++ method, passing the given arguments.
382 ///
383 /// ExtraPrefixArgs is the number of ABI-specific args passed after the `this`
384 /// parameter.
385 /// ExtraSuffixArgs is the number of ABI-specific args passed at the end of
386 /// args.
387 /// PassProtoArgs indicates whether `args` has args for the parameters in the
388 /// given CXXConstructorDecl.
389 const CGFunctionInfo &
390 CodeGenTypes::arrangeCXXConstructorCall(const CallArgList &args,
391                                         const CXXConstructorDecl *D,
392                                         CXXCtorType CtorKind,
393                                         unsigned ExtraPrefixArgs,
394                                         unsigned ExtraSuffixArgs,
395                                         bool PassProtoArgs) {
396   // FIXME: Kill copy.
397   SmallVector<CanQualType, 16> ArgTypes;
398   for (const auto &Arg : args)
399     ArgTypes.push_back(Context.getCanonicalParamType(Arg.Ty));
400 
401   // +1 for implicit this, which should always be args[0].
402   unsigned TotalPrefixArgs = 1 + ExtraPrefixArgs;
403 
404   CanQual<FunctionProtoType> FPT = GetFormalType(D);
405   RequiredArgs Required = PassProtoArgs
406                               ? RequiredArgs::forPrototypePlus(
407                                     FPT, TotalPrefixArgs + ExtraSuffixArgs)
408                               : RequiredArgs::All;
409 
410   GlobalDecl GD(D, CtorKind);
411   CanQualType ResultType = TheCXXABI.HasThisReturn(GD)
412                                ? ArgTypes.front()
413                                : TheCXXABI.hasMostDerivedReturn(GD)
414                                      ? CGM.getContext().VoidPtrTy
415                                      : Context.VoidTy;
416 
417   FunctionType::ExtInfo Info = FPT->getExtInfo();
418   llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16> ParamInfos;
419   // If the prototype args are elided, we should only have ABI-specific args,
420   // which never have param info.
421   if (PassProtoArgs && FPT->hasExtParameterInfos()) {
422     // ABI-specific suffix arguments are treated the same as variadic arguments.
423     addExtParameterInfosForCall(ParamInfos, FPT.getTypePtr(), TotalPrefixArgs,
424                                 ArgTypes.size());
425   }
426   return arrangeLLVMFunctionInfo(ResultType, /*instanceMethod=*/true,
427                                  /*chainCall=*/false, ArgTypes, Info,
428                                  ParamInfos, Required);
429 }
430 
431 /// Arrange the argument and result information for the declaration or
432 /// definition of the given function.
433 const CGFunctionInfo &
434 CodeGenTypes::arrangeFunctionDeclaration(const FunctionDecl *FD) {
435   if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD))
436     if (MD->isInstance())
437       return arrangeCXXMethodDeclaration(MD);
438 
439   CanQualType FTy = FD->getType()->getCanonicalTypeUnqualified();
440 
441   assert(isa<FunctionType>(FTy));
442   setCUDAKernelCallingConvention(FTy, CGM, FD);
443 
444   // When declaring a function without a prototype, always use a
445   // non-variadic type.
446   if (CanQual<FunctionNoProtoType> noProto = FTy.getAs<FunctionNoProtoType>()) {
447     return arrangeLLVMFunctionInfo(
448         noProto->getReturnType(), /*instanceMethod=*/false,
449         /*chainCall=*/false, None, noProto->getExtInfo(), {},RequiredArgs::All);
450   }
451 
452   return arrangeFreeFunctionType(FTy.castAs<FunctionProtoType>());
453 }
454 
455 /// Arrange the argument and result information for the declaration or
456 /// definition of an Objective-C method.
457 const CGFunctionInfo &
458 CodeGenTypes::arrangeObjCMethodDeclaration(const ObjCMethodDecl *MD) {
459   // It happens that this is the same as a call with no optional
460   // arguments, except also using the formal 'self' type.
461   return arrangeObjCMessageSendSignature(MD, MD->getSelfDecl()->getType());
462 }
463 
464 /// Arrange the argument and result information for the function type
465 /// through which to perform a send to the given Objective-C method,
466 /// using the given receiver type.  The receiver type is not always
467 /// the 'self' type of the method or even an Objective-C pointer type.
468 /// This is *not* the right method for actually performing such a
469 /// message send, due to the possibility of optional arguments.
470 const CGFunctionInfo &
471 CodeGenTypes::arrangeObjCMessageSendSignature(const ObjCMethodDecl *MD,
472                                               QualType receiverType) {
473   SmallVector<CanQualType, 16> argTys;
474   SmallVector<FunctionProtoType::ExtParameterInfo, 4> extParamInfos(2);
475   argTys.push_back(Context.getCanonicalParamType(receiverType));
476   argTys.push_back(Context.getCanonicalParamType(Context.getObjCSelType()));
477   // FIXME: Kill copy?
478   for (const auto *I : MD->parameters()) {
479     argTys.push_back(Context.getCanonicalParamType(I->getType()));
480     auto extParamInfo = FunctionProtoType::ExtParameterInfo().withIsNoEscape(
481         I->hasAttr<NoEscapeAttr>());
482     extParamInfos.push_back(extParamInfo);
483   }
484 
485   FunctionType::ExtInfo einfo;
486   bool IsWindows = getContext().getTargetInfo().getTriple().isOSWindows();
487   einfo = einfo.withCallingConv(getCallingConventionForDecl(MD, IsWindows));
488 
489   if (getContext().getLangOpts().ObjCAutoRefCount &&
490       MD->hasAttr<NSReturnsRetainedAttr>())
491     einfo = einfo.withProducesResult(true);
492 
493   RequiredArgs required =
494     (MD->isVariadic() ? RequiredArgs(argTys.size()) : RequiredArgs::All);
495 
496   return arrangeLLVMFunctionInfo(
497       GetReturnType(MD->getReturnType()), /*instanceMethod=*/false,
498       /*chainCall=*/false, argTys, einfo, extParamInfos, required);
499 }
500 
501 const CGFunctionInfo &
502 CodeGenTypes::arrangeUnprototypedObjCMessageSend(QualType returnType,
503                                                  const CallArgList &args) {
504   auto argTypes = getArgTypesForCall(Context, args);
505   FunctionType::ExtInfo einfo;
506 
507   return arrangeLLVMFunctionInfo(
508       GetReturnType(returnType), /*instanceMethod=*/false,
509       /*chainCall=*/false, argTypes, einfo, {}, RequiredArgs::All);
510 }
511 
512 const CGFunctionInfo &
513 CodeGenTypes::arrangeGlobalDeclaration(GlobalDecl GD) {
514   // FIXME: Do we need to handle ObjCMethodDecl?
515   const FunctionDecl *FD = cast<FunctionDecl>(GD.getDecl());
516 
517   if (isa<CXXConstructorDecl>(GD.getDecl()) ||
518       isa<CXXDestructorDecl>(GD.getDecl()))
519     return arrangeCXXStructorDeclaration(GD);
520 
521   return arrangeFunctionDeclaration(FD);
522 }
523 
524 /// Arrange a thunk that takes 'this' as the first parameter followed by
525 /// varargs.  Return a void pointer, regardless of the actual return type.
526 /// The body of the thunk will end in a musttail call to a function of the
527 /// correct type, and the caller will bitcast the function to the correct
528 /// prototype.
529 const CGFunctionInfo &
530 CodeGenTypes::arrangeUnprototypedMustTailThunk(const CXXMethodDecl *MD) {
531   assert(MD->isVirtual() && "only methods have thunks");
532   CanQual<FunctionProtoType> FTP = GetFormalType(MD);
533   CanQualType ArgTys[] = {DeriveThisType(MD->getParent(), MD)};
534   return arrangeLLVMFunctionInfo(Context.VoidTy, /*instanceMethod=*/false,
535                                  /*chainCall=*/false, ArgTys,
536                                  FTP->getExtInfo(), {}, RequiredArgs(1));
537 }
538 
539 const CGFunctionInfo &
540 CodeGenTypes::arrangeMSCtorClosure(const CXXConstructorDecl *CD,
541                                    CXXCtorType CT) {
542   assert(CT == Ctor_CopyingClosure || CT == Ctor_DefaultClosure);
543 
544   CanQual<FunctionProtoType> FTP = GetFormalType(CD);
545   SmallVector<CanQualType, 2> ArgTys;
546   const CXXRecordDecl *RD = CD->getParent();
547   ArgTys.push_back(DeriveThisType(RD, CD));
548   if (CT == Ctor_CopyingClosure)
549     ArgTys.push_back(*FTP->param_type_begin());
550   if (RD->getNumVBases() > 0)
551     ArgTys.push_back(Context.IntTy);
552   CallingConv CC = Context.getDefaultCallingConvention(
553       /*IsVariadic=*/false, /*IsCXXMethod=*/true);
554   return arrangeLLVMFunctionInfo(Context.VoidTy, /*instanceMethod=*/true,
555                                  /*chainCall=*/false, ArgTys,
556                                  FunctionType::ExtInfo(CC), {},
557                                  RequiredArgs::All);
558 }
559 
560 /// Arrange a call as unto a free function, except possibly with an
561 /// additional number of formal parameters considered required.
562 static const CGFunctionInfo &
563 arrangeFreeFunctionLikeCall(CodeGenTypes &CGT,
564                             CodeGenModule &CGM,
565                             const CallArgList &args,
566                             const FunctionType *fnType,
567                             unsigned numExtraRequiredArgs,
568                             bool chainCall) {
569   assert(args.size() >= numExtraRequiredArgs);
570 
571   llvm::SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos;
572 
573   // In most cases, there are no optional arguments.
574   RequiredArgs required = RequiredArgs::All;
575 
576   // If we have a variadic prototype, the required arguments are the
577   // extra prefix plus the arguments in the prototype.
578   if (const FunctionProtoType *proto = dyn_cast<FunctionProtoType>(fnType)) {
579     if (proto->isVariadic())
580       required = RequiredArgs::forPrototypePlus(proto, numExtraRequiredArgs);
581 
582     if (proto->hasExtParameterInfos())
583       addExtParameterInfosForCall(paramInfos, proto, numExtraRequiredArgs,
584                                   args.size());
585 
586   // If we don't have a prototype at all, but we're supposed to
587   // explicitly use the variadic convention for unprototyped calls,
588   // treat all of the arguments as required but preserve the nominal
589   // possibility of variadics.
590   } else if (CGM.getTargetCodeGenInfo()
591                 .isNoProtoCallVariadic(args,
592                                        cast<FunctionNoProtoType>(fnType))) {
593     required = RequiredArgs(args.size());
594   }
595 
596   // FIXME: Kill copy.
597   SmallVector<CanQualType, 16> argTypes;
598   for (const auto &arg : args)
599     argTypes.push_back(CGT.getContext().getCanonicalParamType(arg.Ty));
600   return CGT.arrangeLLVMFunctionInfo(GetReturnType(fnType->getReturnType()),
601                                      /*instanceMethod=*/false, chainCall,
602                                      argTypes, fnType->getExtInfo(), paramInfos,
603                                      required);
604 }
605 
606 /// Figure out the rules for calling a function with the given formal
607 /// type using the given arguments.  The arguments are necessary
608 /// because the function might be unprototyped, in which case it's
609 /// target-dependent in crazy ways.
610 const CGFunctionInfo &
611 CodeGenTypes::arrangeFreeFunctionCall(const CallArgList &args,
612                                       const FunctionType *fnType,
613                                       bool chainCall) {
614   return arrangeFreeFunctionLikeCall(*this, CGM, args, fnType,
615                                      chainCall ? 1 : 0, chainCall);
616 }
617 
618 /// A block function is essentially a free function with an
619 /// extra implicit argument.
620 const CGFunctionInfo &
621 CodeGenTypes::arrangeBlockFunctionCall(const CallArgList &args,
622                                        const FunctionType *fnType) {
623   return arrangeFreeFunctionLikeCall(*this, CGM, args, fnType, 1,
624                                      /*chainCall=*/false);
625 }
626 
627 const CGFunctionInfo &
628 CodeGenTypes::arrangeBlockFunctionDeclaration(const FunctionProtoType *proto,
629                                               const FunctionArgList &params) {
630   auto paramInfos = getExtParameterInfosForCall(proto, 1, params.size());
631   auto argTypes = getArgTypesForDeclaration(Context, params);
632 
633   return arrangeLLVMFunctionInfo(GetReturnType(proto->getReturnType()),
634                                  /*instanceMethod*/ false, /*chainCall*/ false,
635                                  argTypes, proto->getExtInfo(), paramInfos,
636                                  RequiredArgs::forPrototypePlus(proto, 1));
637 }
638 
639 const CGFunctionInfo &
640 CodeGenTypes::arrangeBuiltinFunctionCall(QualType resultType,
641                                          const CallArgList &args) {
642   // FIXME: Kill copy.
643   SmallVector<CanQualType, 16> argTypes;
644   for (const auto &Arg : args)
645     argTypes.push_back(Context.getCanonicalParamType(Arg.Ty));
646   return arrangeLLVMFunctionInfo(
647       GetReturnType(resultType), /*instanceMethod=*/false,
648       /*chainCall=*/false, argTypes, FunctionType::ExtInfo(),
649       /*paramInfos=*/ {}, RequiredArgs::All);
650 }
651 
652 const CGFunctionInfo &
653 CodeGenTypes::arrangeBuiltinFunctionDeclaration(QualType resultType,
654                                                 const FunctionArgList &args) {
655   auto argTypes = getArgTypesForDeclaration(Context, args);
656 
657   return arrangeLLVMFunctionInfo(
658       GetReturnType(resultType), /*instanceMethod=*/false, /*chainCall=*/false,
659       argTypes, FunctionType::ExtInfo(), {}, RequiredArgs::All);
660 }
661 
662 const CGFunctionInfo &
663 CodeGenTypes::arrangeBuiltinFunctionDeclaration(CanQualType resultType,
664                                               ArrayRef<CanQualType> argTypes) {
665   return arrangeLLVMFunctionInfo(
666       resultType, /*instanceMethod=*/false, /*chainCall=*/false,
667       argTypes, FunctionType::ExtInfo(), {}, RequiredArgs::All);
668 }
669 
670 /// Arrange a call to a C++ method, passing the given arguments.
671 ///
672 /// numPrefixArgs is the number of ABI-specific prefix arguments we have. It
673 /// does not count `this`.
674 const CGFunctionInfo &
675 CodeGenTypes::arrangeCXXMethodCall(const CallArgList &args,
676                                    const FunctionProtoType *proto,
677                                    RequiredArgs required,
678                                    unsigned numPrefixArgs) {
679   assert(numPrefixArgs + 1 <= args.size() &&
680          "Emitting a call with less args than the required prefix?");
681   // Add one to account for `this`. It's a bit awkward here, but we don't count
682   // `this` in similar places elsewhere.
683   auto paramInfos =
684     getExtParameterInfosForCall(proto, numPrefixArgs + 1, args.size());
685 
686   // FIXME: Kill copy.
687   auto argTypes = getArgTypesForCall(Context, args);
688 
689   FunctionType::ExtInfo info = proto->getExtInfo();
690   return arrangeLLVMFunctionInfo(
691       GetReturnType(proto->getReturnType()), /*instanceMethod=*/true,
692       /*chainCall=*/false, argTypes, info, paramInfos, required);
693 }
694 
695 const CGFunctionInfo &CodeGenTypes::arrangeNullaryFunction() {
696   return arrangeLLVMFunctionInfo(
697       getContext().VoidTy, /*instanceMethod=*/false, /*chainCall=*/false,
698       None, FunctionType::ExtInfo(), {}, RequiredArgs::All);
699 }
700 
701 const CGFunctionInfo &
702 CodeGenTypes::arrangeCall(const CGFunctionInfo &signature,
703                           const CallArgList &args) {
704   assert(signature.arg_size() <= args.size());
705   if (signature.arg_size() == args.size())
706     return signature;
707 
708   SmallVector<FunctionProtoType::ExtParameterInfo, 16> paramInfos;
709   auto sigParamInfos = signature.getExtParameterInfos();
710   if (!sigParamInfos.empty()) {
711     paramInfos.append(sigParamInfos.begin(), sigParamInfos.end());
712     paramInfos.resize(args.size());
713   }
714 
715   auto argTypes = getArgTypesForCall(Context, args);
716 
717   assert(signature.getRequiredArgs().allowsOptionalArgs());
718   return arrangeLLVMFunctionInfo(signature.getReturnType(),
719                                  signature.isInstanceMethod(),
720                                  signature.isChainCall(),
721                                  argTypes,
722                                  signature.getExtInfo(),
723                                  paramInfos,
724                                  signature.getRequiredArgs());
725 }
726 
727 namespace clang {
728 namespace CodeGen {
729 void computeSPIRKernelABIInfo(CodeGenModule &CGM, CGFunctionInfo &FI);
730 }
731 }
732 
733 /// Arrange the argument and result information for an abstract value
734 /// of a given function type.  This is the method which all of the
735 /// above functions ultimately defer to.
736 const CGFunctionInfo &
737 CodeGenTypes::arrangeLLVMFunctionInfo(CanQualType resultType,
738                                       bool instanceMethod,
739                                       bool chainCall,
740                                       ArrayRef<CanQualType> argTypes,
741                                       FunctionType::ExtInfo info,
742                      ArrayRef<FunctionProtoType::ExtParameterInfo> paramInfos,
743                                       RequiredArgs required) {
744   assert(llvm::all_of(argTypes,
745                       [](CanQualType T) { return T.isCanonicalAsParam(); }));
746 
747   // Lookup or create unique function info.
748   llvm::FoldingSetNodeID ID;
749   CGFunctionInfo::Profile(ID, instanceMethod, chainCall, info, paramInfos,
750                           required, resultType, argTypes);
751 
752   void *insertPos = nullptr;
753   CGFunctionInfo *FI = FunctionInfos.FindNodeOrInsertPos(ID, insertPos);
754   if (FI)
755     return *FI;
756 
757   unsigned CC = ClangCallConvToLLVMCallConv(info.getCC());
758 
759   // Construct the function info.  We co-allocate the ArgInfos.
760   FI = CGFunctionInfo::create(CC, instanceMethod, chainCall, info,
761                               paramInfos, resultType, argTypes, required);
762   FunctionInfos.InsertNode(FI, insertPos);
763 
764   bool inserted = FunctionsBeingProcessed.insert(FI).second;
765   (void)inserted;
766   assert(inserted && "Recursively being processed?");
767 
768   // Compute ABI information.
769   if (CC == llvm::CallingConv::SPIR_KERNEL) {
770     // Force target independent argument handling for the host visible
771     // kernel functions.
772     computeSPIRKernelABIInfo(CGM, *FI);
773   } else if (info.getCC() == CC_Swift) {
774     swiftcall::computeABIInfo(CGM, *FI);
775   } else {
776     getABIInfo().computeInfo(*FI);
777   }
778 
779   // Loop over all of the computed argument and return value info.  If any of
780   // them are direct or extend without a specified coerce type, specify the
781   // default now.
782   ABIArgInfo &retInfo = FI->getReturnInfo();
783   if (retInfo.canHaveCoerceToType() && retInfo.getCoerceToType() == nullptr)
784     retInfo.setCoerceToType(ConvertType(FI->getReturnType()));
785 
786   for (auto &I : FI->arguments())
787     if (I.info.canHaveCoerceToType() && I.info.getCoerceToType() == nullptr)
788       I.info.setCoerceToType(ConvertType(I.type));
789 
790   bool erased = FunctionsBeingProcessed.erase(FI); (void)erased;
791   assert(erased && "Not in set?");
792 
793   return *FI;
794 }
795 
796 CGFunctionInfo *CGFunctionInfo::create(unsigned llvmCC,
797                                        bool instanceMethod,
798                                        bool chainCall,
799                                        const FunctionType::ExtInfo &info,
800                                        ArrayRef<ExtParameterInfo> paramInfos,
801                                        CanQualType resultType,
802                                        ArrayRef<CanQualType> argTypes,
803                                        RequiredArgs required) {
804   assert(paramInfos.empty() || paramInfos.size() == argTypes.size());
805   assert(!required.allowsOptionalArgs() ||
806          required.getNumRequiredArgs() <= argTypes.size());
807 
808   void *buffer =
809     operator new(totalSizeToAlloc<ArgInfo,             ExtParameterInfo>(
810                                   argTypes.size() + 1, paramInfos.size()));
811 
812   CGFunctionInfo *FI = new(buffer) CGFunctionInfo();
813   FI->CallingConvention = llvmCC;
814   FI->EffectiveCallingConvention = llvmCC;
815   FI->ASTCallingConvention = info.getCC();
816   FI->InstanceMethod = instanceMethod;
817   FI->ChainCall = chainCall;
818   FI->NoReturn = info.getNoReturn();
819   FI->ReturnsRetained = info.getProducesResult();
820   FI->NoCallerSavedRegs = info.getNoCallerSavedRegs();
821   FI->NoCfCheck = info.getNoCfCheck();
822   FI->Required = required;
823   FI->HasRegParm = info.getHasRegParm();
824   FI->RegParm = info.getRegParm();
825   FI->ArgStruct = nullptr;
826   FI->ArgStructAlign = 0;
827   FI->NumArgs = argTypes.size();
828   FI->HasExtParameterInfos = !paramInfos.empty();
829   FI->getArgsBuffer()[0].type = resultType;
830   for (unsigned i = 0, e = argTypes.size(); i != e; ++i)
831     FI->getArgsBuffer()[i + 1].type = argTypes[i];
832   for (unsigned i = 0, e = paramInfos.size(); i != e; ++i)
833     FI->getExtParameterInfosBuffer()[i] = paramInfos[i];
834   return FI;
835 }
836 
837 /***/
838 
839 namespace {
840 // ABIArgInfo::Expand implementation.
841 
842 // Specifies the way QualType passed as ABIArgInfo::Expand is expanded.
843 struct TypeExpansion {
844   enum TypeExpansionKind {
845     // Elements of constant arrays are expanded recursively.
846     TEK_ConstantArray,
847     // Record fields are expanded recursively (but if record is a union, only
848     // the field with the largest size is expanded).
849     TEK_Record,
850     // For complex types, real and imaginary parts are expanded recursively.
851     TEK_Complex,
852     // All other types are not expandable.
853     TEK_None
854   };
855 
856   const TypeExpansionKind Kind;
857 
858   TypeExpansion(TypeExpansionKind K) : Kind(K) {}
859   virtual ~TypeExpansion() {}
860 };
861 
862 struct ConstantArrayExpansion : TypeExpansion {
863   QualType EltTy;
864   uint64_t NumElts;
865 
866   ConstantArrayExpansion(QualType EltTy, uint64_t NumElts)
867       : TypeExpansion(TEK_ConstantArray), EltTy(EltTy), NumElts(NumElts) {}
868   static bool classof(const TypeExpansion *TE) {
869     return TE->Kind == TEK_ConstantArray;
870   }
871 };
872 
873 struct RecordExpansion : TypeExpansion {
874   SmallVector<const CXXBaseSpecifier *, 1> Bases;
875 
876   SmallVector<const FieldDecl *, 1> Fields;
877 
878   RecordExpansion(SmallVector<const CXXBaseSpecifier *, 1> &&Bases,
879                   SmallVector<const FieldDecl *, 1> &&Fields)
880       : TypeExpansion(TEK_Record), Bases(std::move(Bases)),
881         Fields(std::move(Fields)) {}
882   static bool classof(const TypeExpansion *TE) {
883     return TE->Kind == TEK_Record;
884   }
885 };
886 
887 struct ComplexExpansion : TypeExpansion {
888   QualType EltTy;
889 
890   ComplexExpansion(QualType EltTy) : TypeExpansion(TEK_Complex), EltTy(EltTy) {}
891   static bool classof(const TypeExpansion *TE) {
892     return TE->Kind == TEK_Complex;
893   }
894 };
895 
896 struct NoExpansion : TypeExpansion {
897   NoExpansion() : TypeExpansion(TEK_None) {}
898   static bool classof(const TypeExpansion *TE) {
899     return TE->Kind == TEK_None;
900   }
901 };
902 }  // namespace
903 
904 static std::unique_ptr<TypeExpansion>
905 getTypeExpansion(QualType Ty, const ASTContext &Context) {
906   if (const ConstantArrayType *AT = Context.getAsConstantArrayType(Ty)) {
907     return std::make_unique<ConstantArrayExpansion>(
908         AT->getElementType(), AT->getSize().getZExtValue());
909   }
910   if (const RecordType *RT = Ty->getAs<RecordType>()) {
911     SmallVector<const CXXBaseSpecifier *, 1> Bases;
912     SmallVector<const FieldDecl *, 1> Fields;
913     const RecordDecl *RD = RT->getDecl();
914     assert(!RD->hasFlexibleArrayMember() &&
915            "Cannot expand structure with flexible array.");
916     if (RD->isUnion()) {
917       // Unions can be here only in degenerative cases - all the fields are same
918       // after flattening. Thus we have to use the "largest" field.
919       const FieldDecl *LargestFD = nullptr;
920       CharUnits UnionSize = CharUnits::Zero();
921 
922       for (const auto *FD : RD->fields()) {
923         if (FD->isZeroLengthBitField(Context))
924           continue;
925         assert(!FD->isBitField() &&
926                "Cannot expand structure with bit-field members.");
927         CharUnits FieldSize = Context.getTypeSizeInChars(FD->getType());
928         if (UnionSize < FieldSize) {
929           UnionSize = FieldSize;
930           LargestFD = FD;
931         }
932       }
933       if (LargestFD)
934         Fields.push_back(LargestFD);
935     } else {
936       if (const auto *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
937         assert(!CXXRD->isDynamicClass() &&
938                "cannot expand vtable pointers in dynamic classes");
939         for (const CXXBaseSpecifier &BS : CXXRD->bases())
940           Bases.push_back(&BS);
941       }
942 
943       for (const auto *FD : RD->fields()) {
944         if (FD->isZeroLengthBitField(Context))
945           continue;
946         assert(!FD->isBitField() &&
947                "Cannot expand structure with bit-field members.");
948         Fields.push_back(FD);
949       }
950     }
951     return std::make_unique<RecordExpansion>(std::move(Bases),
952                                               std::move(Fields));
953   }
954   if (const ComplexType *CT = Ty->getAs<ComplexType>()) {
955     return std::make_unique<ComplexExpansion>(CT->getElementType());
956   }
957   return std::make_unique<NoExpansion>();
958 }
959 
960 static int getExpansionSize(QualType Ty, const ASTContext &Context) {
961   auto Exp = getTypeExpansion(Ty, Context);
962   if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) {
963     return CAExp->NumElts * getExpansionSize(CAExp->EltTy, Context);
964   }
965   if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) {
966     int Res = 0;
967     for (auto BS : RExp->Bases)
968       Res += getExpansionSize(BS->getType(), Context);
969     for (auto FD : RExp->Fields)
970       Res += getExpansionSize(FD->getType(), Context);
971     return Res;
972   }
973   if (isa<ComplexExpansion>(Exp.get()))
974     return 2;
975   assert(isa<NoExpansion>(Exp.get()));
976   return 1;
977 }
978 
979 void
980 CodeGenTypes::getExpandedTypes(QualType Ty,
981                                SmallVectorImpl<llvm::Type *>::iterator &TI) {
982   auto Exp = getTypeExpansion(Ty, Context);
983   if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) {
984     for (int i = 0, n = CAExp->NumElts; i < n; i++) {
985       getExpandedTypes(CAExp->EltTy, TI);
986     }
987   } else if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) {
988     for (auto BS : RExp->Bases)
989       getExpandedTypes(BS->getType(), TI);
990     for (auto FD : RExp->Fields)
991       getExpandedTypes(FD->getType(), TI);
992   } else if (auto CExp = dyn_cast<ComplexExpansion>(Exp.get())) {
993     llvm::Type *EltTy = ConvertType(CExp->EltTy);
994     *TI++ = EltTy;
995     *TI++ = EltTy;
996   } else {
997     assert(isa<NoExpansion>(Exp.get()));
998     *TI++ = ConvertType(Ty);
999   }
1000 }
1001 
1002 static void forConstantArrayExpansion(CodeGenFunction &CGF,
1003                                       ConstantArrayExpansion *CAE,
1004                                       Address BaseAddr,
1005                                       llvm::function_ref<void(Address)> Fn) {
1006   CharUnits EltSize = CGF.getContext().getTypeSizeInChars(CAE->EltTy);
1007   CharUnits EltAlign =
1008     BaseAddr.getAlignment().alignmentOfArrayElement(EltSize);
1009 
1010   for (int i = 0, n = CAE->NumElts; i < n; i++) {
1011     llvm::Value *EltAddr =
1012       CGF.Builder.CreateConstGEP2_32(nullptr, BaseAddr.getPointer(), 0, i);
1013     Fn(Address(EltAddr, EltAlign));
1014   }
1015 }
1016 
1017 void CodeGenFunction::ExpandTypeFromArgs(
1018     QualType Ty, LValue LV, SmallVectorImpl<llvm::Value *>::iterator &AI) {
1019   assert(LV.isSimple() &&
1020          "Unexpected non-simple lvalue during struct expansion.");
1021 
1022   auto Exp = getTypeExpansion(Ty, getContext());
1023   if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) {
1024     forConstantArrayExpansion(
1025         *this, CAExp, LV.getAddress(*this), [&](Address EltAddr) {
1026           LValue LV = MakeAddrLValue(EltAddr, CAExp->EltTy);
1027           ExpandTypeFromArgs(CAExp->EltTy, LV, AI);
1028         });
1029   } else if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) {
1030     Address This = LV.getAddress(*this);
1031     for (const CXXBaseSpecifier *BS : RExp->Bases) {
1032       // Perform a single step derived-to-base conversion.
1033       Address Base =
1034           GetAddressOfBaseClass(This, Ty->getAsCXXRecordDecl(), &BS, &BS + 1,
1035                                 /*NullCheckValue=*/false, SourceLocation());
1036       LValue SubLV = MakeAddrLValue(Base, BS->getType());
1037 
1038       // Recurse onto bases.
1039       ExpandTypeFromArgs(BS->getType(), SubLV, AI);
1040     }
1041     for (auto FD : RExp->Fields) {
1042       // FIXME: What are the right qualifiers here?
1043       LValue SubLV = EmitLValueForFieldInitialization(LV, FD);
1044       ExpandTypeFromArgs(FD->getType(), SubLV, AI);
1045     }
1046   } else if (isa<ComplexExpansion>(Exp.get())) {
1047     auto realValue = *AI++;
1048     auto imagValue = *AI++;
1049     EmitStoreOfComplex(ComplexPairTy(realValue, imagValue), LV, /*init*/ true);
1050   } else {
1051     // Call EmitStoreOfScalar except when the lvalue is a bitfield to emit a
1052     // primitive store.
1053     assert(isa<NoExpansion>(Exp.get()));
1054     if (LV.isBitField())
1055       EmitStoreThroughLValue(RValue::get(*AI++), LV);
1056     else
1057       EmitStoreOfScalar(*AI++, LV);
1058   }
1059 }
1060 
1061 void CodeGenFunction::ExpandTypeToArgs(
1062     QualType Ty, CallArg Arg, llvm::FunctionType *IRFuncTy,
1063     SmallVectorImpl<llvm::Value *> &IRCallArgs, unsigned &IRCallArgPos) {
1064   auto Exp = getTypeExpansion(Ty, getContext());
1065   if (auto CAExp = dyn_cast<ConstantArrayExpansion>(Exp.get())) {
1066     Address Addr = Arg.hasLValue() ? Arg.getKnownLValue().getAddress(*this)
1067                                    : Arg.getKnownRValue().getAggregateAddress();
1068     forConstantArrayExpansion(
1069         *this, CAExp, Addr, [&](Address EltAddr) {
1070           CallArg EltArg = CallArg(
1071               convertTempToRValue(EltAddr, CAExp->EltTy, SourceLocation()),
1072               CAExp->EltTy);
1073           ExpandTypeToArgs(CAExp->EltTy, EltArg, IRFuncTy, IRCallArgs,
1074                            IRCallArgPos);
1075         });
1076   } else if (auto RExp = dyn_cast<RecordExpansion>(Exp.get())) {
1077     Address This = Arg.hasLValue() ? Arg.getKnownLValue().getAddress(*this)
1078                                    : Arg.getKnownRValue().getAggregateAddress();
1079     for (const CXXBaseSpecifier *BS : RExp->Bases) {
1080       // Perform a single step derived-to-base conversion.
1081       Address Base =
1082           GetAddressOfBaseClass(This, Ty->getAsCXXRecordDecl(), &BS, &BS + 1,
1083                                 /*NullCheckValue=*/false, SourceLocation());
1084       CallArg BaseArg = CallArg(RValue::getAggregate(Base), BS->getType());
1085 
1086       // Recurse onto bases.
1087       ExpandTypeToArgs(BS->getType(), BaseArg, IRFuncTy, IRCallArgs,
1088                        IRCallArgPos);
1089     }
1090 
1091     LValue LV = MakeAddrLValue(This, Ty);
1092     for (auto FD : RExp->Fields) {
1093       CallArg FldArg =
1094           CallArg(EmitRValueForField(LV, FD, SourceLocation()), FD->getType());
1095       ExpandTypeToArgs(FD->getType(), FldArg, IRFuncTy, IRCallArgs,
1096                        IRCallArgPos);
1097     }
1098   } else if (isa<ComplexExpansion>(Exp.get())) {
1099     ComplexPairTy CV = Arg.getKnownRValue().getComplexVal();
1100     IRCallArgs[IRCallArgPos++] = CV.first;
1101     IRCallArgs[IRCallArgPos++] = CV.second;
1102   } else {
1103     assert(isa<NoExpansion>(Exp.get()));
1104     auto RV = Arg.getKnownRValue();
1105     assert(RV.isScalar() &&
1106            "Unexpected non-scalar rvalue during struct expansion.");
1107 
1108     // Insert a bitcast as needed.
1109     llvm::Value *V = RV.getScalarVal();
1110     if (IRCallArgPos < IRFuncTy->getNumParams() &&
1111         V->getType() != IRFuncTy->getParamType(IRCallArgPos))
1112       V = Builder.CreateBitCast(V, IRFuncTy->getParamType(IRCallArgPos));
1113 
1114     IRCallArgs[IRCallArgPos++] = V;
1115   }
1116 }
1117 
1118 /// Create a temporary allocation for the purposes of coercion.
1119 static Address CreateTempAllocaForCoercion(CodeGenFunction &CGF, llvm::Type *Ty,
1120                                            CharUnits MinAlign) {
1121   // Don't use an alignment that's worse than what LLVM would prefer.
1122   auto PrefAlign = CGF.CGM.getDataLayout().getPrefTypeAlignment(Ty);
1123   CharUnits Align = std::max(MinAlign, CharUnits::fromQuantity(PrefAlign));
1124 
1125   return CGF.CreateTempAlloca(Ty, Align);
1126 }
1127 
1128 /// EnterStructPointerForCoercedAccess - Given a struct pointer that we are
1129 /// accessing some number of bytes out of it, try to gep into the struct to get
1130 /// at its inner goodness.  Dive as deep as possible without entering an element
1131 /// with an in-memory size smaller than DstSize.
1132 static Address
1133 EnterStructPointerForCoercedAccess(Address SrcPtr,
1134                                    llvm::StructType *SrcSTy,
1135                                    uint64_t DstSize, CodeGenFunction &CGF) {
1136   // We can't dive into a zero-element struct.
1137   if (SrcSTy->getNumElements() == 0) return SrcPtr;
1138 
1139   llvm::Type *FirstElt = SrcSTy->getElementType(0);
1140 
1141   // If the first elt is at least as large as what we're looking for, or if the
1142   // first element is the same size as the whole struct, we can enter it. The
1143   // comparison must be made on the store size and not the alloca size. Using
1144   // the alloca size may overstate the size of the load.
1145   uint64_t FirstEltSize =
1146     CGF.CGM.getDataLayout().getTypeStoreSize(FirstElt);
1147   if (FirstEltSize < DstSize &&
1148       FirstEltSize < CGF.CGM.getDataLayout().getTypeStoreSize(SrcSTy))
1149     return SrcPtr;
1150 
1151   // GEP into the first element.
1152   SrcPtr = CGF.Builder.CreateStructGEP(SrcPtr, 0, "coerce.dive");
1153 
1154   // If the first element is a struct, recurse.
1155   llvm::Type *SrcTy = SrcPtr.getElementType();
1156   if (llvm::StructType *SrcSTy = dyn_cast<llvm::StructType>(SrcTy))
1157     return EnterStructPointerForCoercedAccess(SrcPtr, SrcSTy, DstSize, CGF);
1158 
1159   return SrcPtr;
1160 }
1161 
1162 /// CoerceIntOrPtrToIntOrPtr - Convert a value Val to the specific Ty where both
1163 /// are either integers or pointers.  This does a truncation of the value if it
1164 /// is too large or a zero extension if it is too small.
1165 ///
1166 /// This behaves as if the value were coerced through memory, so on big-endian
1167 /// targets the high bits are preserved in a truncation, while little-endian
1168 /// targets preserve the low bits.
1169 static llvm::Value *CoerceIntOrPtrToIntOrPtr(llvm::Value *Val,
1170                                              llvm::Type *Ty,
1171                                              CodeGenFunction &CGF) {
1172   if (Val->getType() == Ty)
1173     return Val;
1174 
1175   if (isa<llvm::PointerType>(Val->getType())) {
1176     // If this is Pointer->Pointer avoid conversion to and from int.
1177     if (isa<llvm::PointerType>(Ty))
1178       return CGF.Builder.CreateBitCast(Val, Ty, "coerce.val");
1179 
1180     // Convert the pointer to an integer so we can play with its width.
1181     Val = CGF.Builder.CreatePtrToInt(Val, CGF.IntPtrTy, "coerce.val.pi");
1182   }
1183 
1184   llvm::Type *DestIntTy = Ty;
1185   if (isa<llvm::PointerType>(DestIntTy))
1186     DestIntTy = CGF.IntPtrTy;
1187 
1188   if (Val->getType() != DestIntTy) {
1189     const llvm::DataLayout &DL = CGF.CGM.getDataLayout();
1190     if (DL.isBigEndian()) {
1191       // Preserve the high bits on big-endian targets.
1192       // That is what memory coercion does.
1193       uint64_t SrcSize = DL.getTypeSizeInBits(Val->getType());
1194       uint64_t DstSize = DL.getTypeSizeInBits(DestIntTy);
1195 
1196       if (SrcSize > DstSize) {
1197         Val = CGF.Builder.CreateLShr(Val, SrcSize - DstSize, "coerce.highbits");
1198         Val = CGF.Builder.CreateTrunc(Val, DestIntTy, "coerce.val.ii");
1199       } else {
1200         Val = CGF.Builder.CreateZExt(Val, DestIntTy, "coerce.val.ii");
1201         Val = CGF.Builder.CreateShl(Val, DstSize - SrcSize, "coerce.highbits");
1202       }
1203     } else {
1204       // Little-endian targets preserve the low bits. No shifts required.
1205       Val = CGF.Builder.CreateIntCast(Val, DestIntTy, false, "coerce.val.ii");
1206     }
1207   }
1208 
1209   if (isa<llvm::PointerType>(Ty))
1210     Val = CGF.Builder.CreateIntToPtr(Val, Ty, "coerce.val.ip");
1211   return Val;
1212 }
1213 
1214 
1215 
1216 /// CreateCoercedLoad - Create a load from \arg SrcPtr interpreted as
1217 /// a pointer to an object of type \arg Ty, known to be aligned to
1218 /// \arg SrcAlign bytes.
1219 ///
1220 /// This safely handles the case when the src type is smaller than the
1221 /// destination type; in this situation the values of bits which not
1222 /// present in the src are undefined.
1223 static llvm::Value *CreateCoercedLoad(Address Src, llvm::Type *Ty,
1224                                       CodeGenFunction &CGF) {
1225   llvm::Type *SrcTy = Src.getElementType();
1226 
1227   // If SrcTy and Ty are the same, just do a load.
1228   if (SrcTy == Ty)
1229     return CGF.Builder.CreateLoad(Src);
1230 
1231   uint64_t DstSize = CGF.CGM.getDataLayout().getTypeAllocSize(Ty);
1232 
1233   if (llvm::StructType *SrcSTy = dyn_cast<llvm::StructType>(SrcTy)) {
1234     Src = EnterStructPointerForCoercedAccess(Src, SrcSTy, DstSize, CGF);
1235     SrcTy = Src.getType()->getElementType();
1236   }
1237 
1238   uint64_t SrcSize = CGF.CGM.getDataLayout().getTypeAllocSize(SrcTy);
1239 
1240   // If the source and destination are integer or pointer types, just do an
1241   // extension or truncation to the desired type.
1242   if ((isa<llvm::IntegerType>(Ty) || isa<llvm::PointerType>(Ty)) &&
1243       (isa<llvm::IntegerType>(SrcTy) || isa<llvm::PointerType>(SrcTy))) {
1244     llvm::Value *Load = CGF.Builder.CreateLoad(Src);
1245     return CoerceIntOrPtrToIntOrPtr(Load, Ty, CGF);
1246   }
1247 
1248   // If load is legal, just bitcast the src pointer.
1249   if (SrcSize >= DstSize) {
1250     // Generally SrcSize is never greater than DstSize, since this means we are
1251     // losing bits. However, this can happen in cases where the structure has
1252     // additional padding, for example due to a user specified alignment.
1253     //
1254     // FIXME: Assert that we aren't truncating non-padding bits when have access
1255     // to that information.
1256     Src = CGF.Builder.CreateBitCast(Src,
1257                                     Ty->getPointerTo(Src.getAddressSpace()));
1258     return CGF.Builder.CreateLoad(Src);
1259   }
1260 
1261   // Otherwise do coercion through memory. This is stupid, but simple.
1262   Address Tmp = CreateTempAllocaForCoercion(CGF, Ty, Src.getAlignment());
1263   Address Casted = CGF.Builder.CreateElementBitCast(Tmp,CGF.Int8Ty);
1264   Address SrcCasted = CGF.Builder.CreateElementBitCast(Src,CGF.Int8Ty);
1265   CGF.Builder.CreateMemCpy(Casted, SrcCasted,
1266       llvm::ConstantInt::get(CGF.IntPtrTy, SrcSize),
1267       false);
1268   return CGF.Builder.CreateLoad(Tmp);
1269 }
1270 
1271 // Function to store a first-class aggregate into memory.  We prefer to
1272 // store the elements rather than the aggregate to be more friendly to
1273 // fast-isel.
1274 // FIXME: Do we need to recurse here?
1275 static void BuildAggStore(CodeGenFunction &CGF, llvm::Value *Val,
1276                           Address Dest, bool DestIsVolatile) {
1277   // Prefer scalar stores to first-class aggregate stores.
1278   if (llvm::StructType *STy =
1279         dyn_cast<llvm::StructType>(Val->getType())) {
1280     for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
1281       Address EltPtr = CGF.Builder.CreateStructGEP(Dest, i);
1282       llvm::Value *Elt = CGF.Builder.CreateExtractValue(Val, i);
1283       CGF.Builder.CreateStore(Elt, EltPtr, DestIsVolatile);
1284     }
1285   } else {
1286     CGF.Builder.CreateStore(Val, Dest, DestIsVolatile);
1287   }
1288 }
1289 
1290 /// CreateCoercedStore - Create a store to \arg DstPtr from \arg Src,
1291 /// where the source and destination may have different types.  The
1292 /// destination is known to be aligned to \arg DstAlign bytes.
1293 ///
1294 /// This safely handles the case when the src type is larger than the
1295 /// destination type; the upper bits of the src will be lost.
1296 static void CreateCoercedStore(llvm::Value *Src,
1297                                Address Dst,
1298                                bool DstIsVolatile,
1299                                CodeGenFunction &CGF) {
1300   llvm::Type *SrcTy = Src->getType();
1301   llvm::Type *DstTy = Dst.getType()->getElementType();
1302   if (SrcTy == DstTy) {
1303     CGF.Builder.CreateStore(Src, Dst, DstIsVolatile);
1304     return;
1305   }
1306 
1307   uint64_t SrcSize = CGF.CGM.getDataLayout().getTypeAllocSize(SrcTy);
1308 
1309   if (llvm::StructType *DstSTy = dyn_cast<llvm::StructType>(DstTy)) {
1310     Dst = EnterStructPointerForCoercedAccess(Dst, DstSTy, SrcSize, CGF);
1311     DstTy = Dst.getType()->getElementType();
1312   }
1313 
1314   llvm::PointerType *SrcPtrTy = llvm::dyn_cast<llvm::PointerType>(SrcTy);
1315   llvm::PointerType *DstPtrTy = llvm::dyn_cast<llvm::PointerType>(DstTy);
1316   if (SrcPtrTy && DstPtrTy &&
1317       SrcPtrTy->getAddressSpace() != DstPtrTy->getAddressSpace()) {
1318     Src = CGF.Builder.CreatePointerBitCastOrAddrSpaceCast(Src, DstTy);
1319     CGF.Builder.CreateStore(Src, Dst, DstIsVolatile);
1320     return;
1321   }
1322 
1323   // If the source and destination are integer or pointer types, just do an
1324   // extension or truncation to the desired type.
1325   if ((isa<llvm::IntegerType>(SrcTy) || isa<llvm::PointerType>(SrcTy)) &&
1326       (isa<llvm::IntegerType>(DstTy) || isa<llvm::PointerType>(DstTy))) {
1327     Src = CoerceIntOrPtrToIntOrPtr(Src, DstTy, CGF);
1328     CGF.Builder.CreateStore(Src, Dst, DstIsVolatile);
1329     return;
1330   }
1331 
1332   uint64_t DstSize = CGF.CGM.getDataLayout().getTypeAllocSize(DstTy);
1333 
1334   // If store is legal, just bitcast the src pointer.
1335   if (SrcSize <= DstSize) {
1336     Dst = CGF.Builder.CreateElementBitCast(Dst, SrcTy);
1337     BuildAggStore(CGF, Src, Dst, DstIsVolatile);
1338   } else {
1339     // Otherwise do coercion through memory. This is stupid, but
1340     // simple.
1341 
1342     // Generally SrcSize is never greater than DstSize, since this means we are
1343     // losing bits. However, this can happen in cases where the structure has
1344     // additional padding, for example due to a user specified alignment.
1345     //
1346     // FIXME: Assert that we aren't truncating non-padding bits when have access
1347     // to that information.
1348     Address Tmp = CreateTempAllocaForCoercion(CGF, SrcTy, Dst.getAlignment());
1349     CGF.Builder.CreateStore(Src, Tmp);
1350     Address Casted = CGF.Builder.CreateElementBitCast(Tmp,CGF.Int8Ty);
1351     Address DstCasted = CGF.Builder.CreateElementBitCast(Dst,CGF.Int8Ty);
1352     CGF.Builder.CreateMemCpy(DstCasted, Casted,
1353         llvm::ConstantInt::get(CGF.IntPtrTy, DstSize),
1354         false);
1355   }
1356 }
1357 
1358 static Address emitAddressAtOffset(CodeGenFunction &CGF, Address addr,
1359                                    const ABIArgInfo &info) {
1360   if (unsigned offset = info.getDirectOffset()) {
1361     addr = CGF.Builder.CreateElementBitCast(addr, CGF.Int8Ty);
1362     addr = CGF.Builder.CreateConstInBoundsByteGEP(addr,
1363                                              CharUnits::fromQuantity(offset));
1364     addr = CGF.Builder.CreateElementBitCast(addr, info.getCoerceToType());
1365   }
1366   return addr;
1367 }
1368 
1369 namespace {
1370 
1371 /// Encapsulates information about the way function arguments from
1372 /// CGFunctionInfo should be passed to actual LLVM IR function.
1373 class ClangToLLVMArgMapping {
1374   static const unsigned InvalidIndex = ~0U;
1375   unsigned InallocaArgNo;
1376   unsigned SRetArgNo;
1377   unsigned TotalIRArgs;
1378 
1379   /// Arguments of LLVM IR function corresponding to single Clang argument.
1380   struct IRArgs {
1381     unsigned PaddingArgIndex;
1382     // Argument is expanded to IR arguments at positions
1383     // [FirstArgIndex, FirstArgIndex + NumberOfArgs).
1384     unsigned FirstArgIndex;
1385     unsigned NumberOfArgs;
1386 
1387     IRArgs()
1388         : PaddingArgIndex(InvalidIndex), FirstArgIndex(InvalidIndex),
1389           NumberOfArgs(0) {}
1390   };
1391 
1392   SmallVector<IRArgs, 8> ArgInfo;
1393 
1394 public:
1395   ClangToLLVMArgMapping(const ASTContext &Context, const CGFunctionInfo &FI,
1396                         bool OnlyRequiredArgs = false)
1397       : InallocaArgNo(InvalidIndex), SRetArgNo(InvalidIndex), TotalIRArgs(0),
1398         ArgInfo(OnlyRequiredArgs ? FI.getNumRequiredArgs() : FI.arg_size()) {
1399     construct(Context, FI, OnlyRequiredArgs);
1400   }
1401 
1402   bool hasInallocaArg() const { return InallocaArgNo != InvalidIndex; }
1403   unsigned getInallocaArgNo() const {
1404     assert(hasInallocaArg());
1405     return InallocaArgNo;
1406   }
1407 
1408   bool hasSRetArg() const { return SRetArgNo != InvalidIndex; }
1409   unsigned getSRetArgNo() const {
1410     assert(hasSRetArg());
1411     return SRetArgNo;
1412   }
1413 
1414   unsigned totalIRArgs() const { return TotalIRArgs; }
1415 
1416   bool hasPaddingArg(unsigned ArgNo) const {
1417     assert(ArgNo < ArgInfo.size());
1418     return ArgInfo[ArgNo].PaddingArgIndex != InvalidIndex;
1419   }
1420   unsigned getPaddingArgNo(unsigned ArgNo) const {
1421     assert(hasPaddingArg(ArgNo));
1422     return ArgInfo[ArgNo].PaddingArgIndex;
1423   }
1424 
1425   /// Returns index of first IR argument corresponding to ArgNo, and their
1426   /// quantity.
1427   std::pair<unsigned, unsigned> getIRArgs(unsigned ArgNo) const {
1428     assert(ArgNo < ArgInfo.size());
1429     return std::make_pair(ArgInfo[ArgNo].FirstArgIndex,
1430                           ArgInfo[ArgNo].NumberOfArgs);
1431   }
1432 
1433 private:
1434   void construct(const ASTContext &Context, const CGFunctionInfo &FI,
1435                  bool OnlyRequiredArgs);
1436 };
1437 
1438 void ClangToLLVMArgMapping::construct(const ASTContext &Context,
1439                                       const CGFunctionInfo &FI,
1440                                       bool OnlyRequiredArgs) {
1441   unsigned IRArgNo = 0;
1442   bool SwapThisWithSRet = false;
1443   const ABIArgInfo &RetAI = FI.getReturnInfo();
1444 
1445   if (RetAI.getKind() == ABIArgInfo::Indirect) {
1446     SwapThisWithSRet = RetAI.isSRetAfterThis();
1447     SRetArgNo = SwapThisWithSRet ? 1 : IRArgNo++;
1448   }
1449 
1450   unsigned ArgNo = 0;
1451   unsigned NumArgs = OnlyRequiredArgs ? FI.getNumRequiredArgs() : FI.arg_size();
1452   for (CGFunctionInfo::const_arg_iterator I = FI.arg_begin(); ArgNo < NumArgs;
1453        ++I, ++ArgNo) {
1454     assert(I != FI.arg_end());
1455     QualType ArgType = I->type;
1456     const ABIArgInfo &AI = I->info;
1457     // Collect data about IR arguments corresponding to Clang argument ArgNo.
1458     auto &IRArgs = ArgInfo[ArgNo];
1459 
1460     if (AI.getPaddingType())
1461       IRArgs.PaddingArgIndex = IRArgNo++;
1462 
1463     switch (AI.getKind()) {
1464     case ABIArgInfo::Extend:
1465     case ABIArgInfo::Direct: {
1466       // FIXME: handle sseregparm someday...
1467       llvm::StructType *STy = dyn_cast<llvm::StructType>(AI.getCoerceToType());
1468       if (AI.isDirect() && AI.getCanBeFlattened() && STy) {
1469         IRArgs.NumberOfArgs = STy->getNumElements();
1470       } else {
1471         IRArgs.NumberOfArgs = 1;
1472       }
1473       break;
1474     }
1475     case ABIArgInfo::Indirect:
1476       IRArgs.NumberOfArgs = 1;
1477       break;
1478     case ABIArgInfo::Ignore:
1479     case ABIArgInfo::InAlloca:
1480       // ignore and inalloca doesn't have matching LLVM parameters.
1481       IRArgs.NumberOfArgs = 0;
1482       break;
1483     case ABIArgInfo::CoerceAndExpand:
1484       IRArgs.NumberOfArgs = AI.getCoerceAndExpandTypeSequence().size();
1485       break;
1486     case ABIArgInfo::Expand:
1487       IRArgs.NumberOfArgs = getExpansionSize(ArgType, Context);
1488       break;
1489     }
1490 
1491     if (IRArgs.NumberOfArgs > 0) {
1492       IRArgs.FirstArgIndex = IRArgNo;
1493       IRArgNo += IRArgs.NumberOfArgs;
1494     }
1495 
1496     // Skip over the sret parameter when it comes second.  We already handled it
1497     // above.
1498     if (IRArgNo == 1 && SwapThisWithSRet)
1499       IRArgNo++;
1500   }
1501   assert(ArgNo == ArgInfo.size());
1502 
1503   if (FI.usesInAlloca())
1504     InallocaArgNo = IRArgNo++;
1505 
1506   TotalIRArgs = IRArgNo;
1507 }
1508 }  // namespace
1509 
1510 /***/
1511 
1512 bool CodeGenModule::ReturnTypeUsesSRet(const CGFunctionInfo &FI) {
1513   const auto &RI = FI.getReturnInfo();
1514   return RI.isIndirect() || (RI.isInAlloca() && RI.getInAllocaSRet());
1515 }
1516 
1517 bool CodeGenModule::ReturnSlotInterferesWithArgs(const CGFunctionInfo &FI) {
1518   return ReturnTypeUsesSRet(FI) &&
1519          getTargetCodeGenInfo().doesReturnSlotInterfereWithArgs();
1520 }
1521 
1522 bool CodeGenModule::ReturnTypeUsesFPRet(QualType ResultType) {
1523   if (const BuiltinType *BT = ResultType->getAs<BuiltinType>()) {
1524     switch (BT->getKind()) {
1525     default:
1526       return false;
1527     case BuiltinType::Float:
1528       return getTarget().useObjCFPRetForRealType(TargetInfo::Float);
1529     case BuiltinType::Double:
1530       return getTarget().useObjCFPRetForRealType(TargetInfo::Double);
1531     case BuiltinType::LongDouble:
1532       return getTarget().useObjCFPRetForRealType(TargetInfo::LongDouble);
1533     }
1534   }
1535 
1536   return false;
1537 }
1538 
1539 bool CodeGenModule::ReturnTypeUsesFP2Ret(QualType ResultType) {
1540   if (const ComplexType *CT = ResultType->getAs<ComplexType>()) {
1541     if (const BuiltinType *BT = CT->getElementType()->getAs<BuiltinType>()) {
1542       if (BT->getKind() == BuiltinType::LongDouble)
1543         return getTarget().useObjCFP2RetForComplexLongDouble();
1544     }
1545   }
1546 
1547   return false;
1548 }
1549 
1550 llvm::FunctionType *CodeGenTypes::GetFunctionType(GlobalDecl GD) {
1551   const CGFunctionInfo &FI = arrangeGlobalDeclaration(GD);
1552   return GetFunctionType(FI);
1553 }
1554 
1555 llvm::FunctionType *
1556 CodeGenTypes::GetFunctionType(const CGFunctionInfo &FI) {
1557 
1558   bool Inserted = FunctionsBeingProcessed.insert(&FI).second;
1559   (void)Inserted;
1560   assert(Inserted && "Recursively being processed?");
1561 
1562   llvm::Type *resultType = nullptr;
1563   const ABIArgInfo &retAI = FI.getReturnInfo();
1564   switch (retAI.getKind()) {
1565   case ABIArgInfo::Expand:
1566     llvm_unreachable("Invalid ABI kind for return argument");
1567 
1568   case ABIArgInfo::Extend:
1569   case ABIArgInfo::Direct:
1570     resultType = retAI.getCoerceToType();
1571     break;
1572 
1573   case ABIArgInfo::InAlloca:
1574     if (retAI.getInAllocaSRet()) {
1575       // sret things on win32 aren't void, they return the sret pointer.
1576       QualType ret = FI.getReturnType();
1577       llvm::Type *ty = ConvertType(ret);
1578       unsigned addressSpace = Context.getTargetAddressSpace(ret);
1579       resultType = llvm::PointerType::get(ty, addressSpace);
1580     } else {
1581       resultType = llvm::Type::getVoidTy(getLLVMContext());
1582     }
1583     break;
1584 
1585   case ABIArgInfo::Indirect:
1586   case ABIArgInfo::Ignore:
1587     resultType = llvm::Type::getVoidTy(getLLVMContext());
1588     break;
1589 
1590   case ABIArgInfo::CoerceAndExpand:
1591     resultType = retAI.getUnpaddedCoerceAndExpandType();
1592     break;
1593   }
1594 
1595   ClangToLLVMArgMapping IRFunctionArgs(getContext(), FI, true);
1596   SmallVector<llvm::Type*, 8> ArgTypes(IRFunctionArgs.totalIRArgs());
1597 
1598   // Add type for sret argument.
1599   if (IRFunctionArgs.hasSRetArg()) {
1600     QualType Ret = FI.getReturnType();
1601     llvm::Type *Ty = ConvertType(Ret);
1602     unsigned AddressSpace = Context.getTargetAddressSpace(Ret);
1603     ArgTypes[IRFunctionArgs.getSRetArgNo()] =
1604         llvm::PointerType::get(Ty, AddressSpace);
1605   }
1606 
1607   // Add type for inalloca argument.
1608   if (IRFunctionArgs.hasInallocaArg()) {
1609     auto ArgStruct = FI.getArgStruct();
1610     assert(ArgStruct);
1611     ArgTypes[IRFunctionArgs.getInallocaArgNo()] = ArgStruct->getPointerTo();
1612   }
1613 
1614   // Add in all of the required arguments.
1615   unsigned ArgNo = 0;
1616   CGFunctionInfo::const_arg_iterator it = FI.arg_begin(),
1617                                      ie = it + FI.getNumRequiredArgs();
1618   for (; it != ie; ++it, ++ArgNo) {
1619     const ABIArgInfo &ArgInfo = it->info;
1620 
1621     // Insert a padding type to ensure proper alignment.
1622     if (IRFunctionArgs.hasPaddingArg(ArgNo))
1623       ArgTypes[IRFunctionArgs.getPaddingArgNo(ArgNo)] =
1624           ArgInfo.getPaddingType();
1625 
1626     unsigned FirstIRArg, NumIRArgs;
1627     std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo);
1628 
1629     switch (ArgInfo.getKind()) {
1630     case ABIArgInfo::Ignore:
1631     case ABIArgInfo::InAlloca:
1632       assert(NumIRArgs == 0);
1633       break;
1634 
1635     case ABIArgInfo::Indirect: {
1636       assert(NumIRArgs == 1);
1637       // indirect arguments are always on the stack, which is alloca addr space.
1638       llvm::Type *LTy = ConvertTypeForMem(it->type);
1639       ArgTypes[FirstIRArg] = LTy->getPointerTo(
1640           CGM.getDataLayout().getAllocaAddrSpace());
1641       break;
1642     }
1643 
1644     case ABIArgInfo::Extend:
1645     case ABIArgInfo::Direct: {
1646       // Fast-isel and the optimizer generally like scalar values better than
1647       // FCAs, so we flatten them if this is safe to do for this argument.
1648       llvm::Type *argType = ArgInfo.getCoerceToType();
1649       llvm::StructType *st = dyn_cast<llvm::StructType>(argType);
1650       if (st && ArgInfo.isDirect() && ArgInfo.getCanBeFlattened()) {
1651         assert(NumIRArgs == st->getNumElements());
1652         for (unsigned i = 0, e = st->getNumElements(); i != e; ++i)
1653           ArgTypes[FirstIRArg + i] = st->getElementType(i);
1654       } else {
1655         assert(NumIRArgs == 1);
1656         ArgTypes[FirstIRArg] = argType;
1657       }
1658       break;
1659     }
1660 
1661     case ABIArgInfo::CoerceAndExpand: {
1662       auto ArgTypesIter = ArgTypes.begin() + FirstIRArg;
1663       for (auto EltTy : ArgInfo.getCoerceAndExpandTypeSequence()) {
1664         *ArgTypesIter++ = EltTy;
1665       }
1666       assert(ArgTypesIter == ArgTypes.begin() + FirstIRArg + NumIRArgs);
1667       break;
1668     }
1669 
1670     case ABIArgInfo::Expand:
1671       auto ArgTypesIter = ArgTypes.begin() + FirstIRArg;
1672       getExpandedTypes(it->type, ArgTypesIter);
1673       assert(ArgTypesIter == ArgTypes.begin() + FirstIRArg + NumIRArgs);
1674       break;
1675     }
1676   }
1677 
1678   bool Erased = FunctionsBeingProcessed.erase(&FI); (void)Erased;
1679   assert(Erased && "Not in set?");
1680 
1681   return llvm::FunctionType::get(resultType, ArgTypes, FI.isVariadic());
1682 }
1683 
1684 llvm::Type *CodeGenTypes::GetFunctionTypeForVTable(GlobalDecl GD) {
1685   const CXXMethodDecl *MD = cast<CXXMethodDecl>(GD.getDecl());
1686   const FunctionProtoType *FPT = MD->getType()->getAs<FunctionProtoType>();
1687 
1688   if (!isFuncTypeConvertible(FPT))
1689     return llvm::StructType::get(getLLVMContext());
1690 
1691   return GetFunctionType(GD);
1692 }
1693 
1694 static void AddAttributesFromFunctionProtoType(ASTContext &Ctx,
1695                                                llvm::AttrBuilder &FuncAttrs,
1696                                                const FunctionProtoType *FPT) {
1697   if (!FPT)
1698     return;
1699 
1700   if (!isUnresolvedExceptionSpec(FPT->getExceptionSpecType()) &&
1701       FPT->isNothrow())
1702     FuncAttrs.addAttribute(llvm::Attribute::NoUnwind);
1703 }
1704 
1705 void CodeGenModule::ConstructDefaultFnAttrList(StringRef Name, bool HasOptnone,
1706                                                bool AttrOnCallSite,
1707                                                llvm::AttrBuilder &FuncAttrs) {
1708   // OptimizeNoneAttr takes precedence over -Os or -Oz. No warning needed.
1709   if (!HasOptnone) {
1710     if (CodeGenOpts.OptimizeSize)
1711       FuncAttrs.addAttribute(llvm::Attribute::OptimizeForSize);
1712     if (CodeGenOpts.OptimizeSize == 2)
1713       FuncAttrs.addAttribute(llvm::Attribute::MinSize);
1714   }
1715 
1716   if (CodeGenOpts.DisableRedZone)
1717     FuncAttrs.addAttribute(llvm::Attribute::NoRedZone);
1718   if (CodeGenOpts.IndirectTlsSegRefs)
1719     FuncAttrs.addAttribute("indirect-tls-seg-refs");
1720   if (CodeGenOpts.NoImplicitFloat)
1721     FuncAttrs.addAttribute(llvm::Attribute::NoImplicitFloat);
1722 
1723   if (AttrOnCallSite) {
1724     // Attributes that should go on the call site only.
1725     if (!CodeGenOpts.SimplifyLibCalls ||
1726         CodeGenOpts.isNoBuiltinFunc(Name.data()))
1727       FuncAttrs.addAttribute(llvm::Attribute::NoBuiltin);
1728     if (!CodeGenOpts.TrapFuncName.empty())
1729       FuncAttrs.addAttribute("trap-func-name", CodeGenOpts.TrapFuncName);
1730   } else {
1731     StringRef FpKind;
1732     switch (CodeGenOpts.getFramePointer()) {
1733     case CodeGenOptions::FramePointerKind::None:
1734       FpKind = "none";
1735       break;
1736     case CodeGenOptions::FramePointerKind::NonLeaf:
1737       FpKind = "non-leaf";
1738       break;
1739     case CodeGenOptions::FramePointerKind::All:
1740       FpKind = "all";
1741       break;
1742     }
1743     FuncAttrs.addAttribute("frame-pointer", FpKind);
1744 
1745     FuncAttrs.addAttribute("less-precise-fpmad",
1746                            llvm::toStringRef(CodeGenOpts.LessPreciseFPMAD));
1747 
1748     if (CodeGenOpts.NullPointerIsValid)
1749       FuncAttrs.addAttribute("null-pointer-is-valid", "true");
1750 
1751     // TODO: Omit attribute when the default is IEEE.
1752     if (CodeGenOpts.FPDenormalMode != llvm::DenormalMode::Invalid)
1753       FuncAttrs.addAttribute("denormal-fp-math",
1754                              llvm::denormalModeName(CodeGenOpts.FPDenormalMode));
1755 
1756     if (CodeGenOpts.FP32DenormalMode != llvm::DenormalMode::Invalid)
1757       FuncAttrs.addAttribute(
1758           "denormal-fp-math-f32",
1759           llvm::denormalModeName(CodeGenOpts.FP32DenormalMode));
1760 
1761     FuncAttrs.addAttribute("no-trapping-math",
1762                            llvm::toStringRef(CodeGenOpts.NoTrappingMath));
1763 
1764     // Strict (compliant) code is the default, so only add this attribute to
1765     // indicate that we are trying to workaround a problem case.
1766     if (!CodeGenOpts.StrictFloatCastOverflow)
1767       FuncAttrs.addAttribute("strict-float-cast-overflow", "false");
1768 
1769     // TODO: Are these all needed?
1770     // unsafe/inf/nan/nsz are handled by instruction-level FastMathFlags.
1771     FuncAttrs.addAttribute("no-infs-fp-math",
1772                            llvm::toStringRef(CodeGenOpts.NoInfsFPMath));
1773     FuncAttrs.addAttribute("no-nans-fp-math",
1774                            llvm::toStringRef(CodeGenOpts.NoNaNsFPMath));
1775     FuncAttrs.addAttribute("unsafe-fp-math",
1776                            llvm::toStringRef(CodeGenOpts.UnsafeFPMath));
1777     FuncAttrs.addAttribute("use-soft-float",
1778                            llvm::toStringRef(CodeGenOpts.SoftFloat));
1779     FuncAttrs.addAttribute("stack-protector-buffer-size",
1780                            llvm::utostr(CodeGenOpts.SSPBufferSize));
1781     FuncAttrs.addAttribute("no-signed-zeros-fp-math",
1782                            llvm::toStringRef(CodeGenOpts.NoSignedZeros));
1783     FuncAttrs.addAttribute(
1784         "correctly-rounded-divide-sqrt-fp-math",
1785         llvm::toStringRef(CodeGenOpts.CorrectlyRoundedDivSqrt));
1786 
1787     // TODO: Reciprocal estimate codegen options should apply to instructions?
1788     const std::vector<std::string> &Recips = CodeGenOpts.Reciprocals;
1789     if (!Recips.empty())
1790       FuncAttrs.addAttribute("reciprocal-estimates",
1791                              llvm::join(Recips, ","));
1792 
1793     if (!CodeGenOpts.PreferVectorWidth.empty() &&
1794         CodeGenOpts.PreferVectorWidth != "none")
1795       FuncAttrs.addAttribute("prefer-vector-width",
1796                              CodeGenOpts.PreferVectorWidth);
1797 
1798     if (CodeGenOpts.StackRealignment)
1799       FuncAttrs.addAttribute("stackrealign");
1800     if (CodeGenOpts.Backchain)
1801       FuncAttrs.addAttribute("backchain");
1802 
1803     if (CodeGenOpts.SpeculativeLoadHardening)
1804       FuncAttrs.addAttribute(llvm::Attribute::SpeculativeLoadHardening);
1805   }
1806 
1807   if (getLangOpts().assumeFunctionsAreConvergent()) {
1808     // Conservatively, mark all functions and calls in CUDA and OpenCL as
1809     // convergent (meaning, they may call an intrinsically convergent op, such
1810     // as __syncthreads() / barrier(), and so can't have certain optimizations
1811     // applied around them).  LLVM will remove this attribute where it safely
1812     // can.
1813     FuncAttrs.addAttribute(llvm::Attribute::Convergent);
1814   }
1815 
1816   if (getLangOpts().CUDA && getLangOpts().CUDAIsDevice) {
1817     // Exceptions aren't supported in CUDA device code.
1818     FuncAttrs.addAttribute(llvm::Attribute::NoUnwind);
1819   }
1820 
1821   for (StringRef Attr : CodeGenOpts.DefaultFunctionAttrs) {
1822     StringRef Var, Value;
1823     std::tie(Var, Value) = Attr.split('=');
1824     FuncAttrs.addAttribute(Var, Value);
1825   }
1826 }
1827 
1828 void CodeGenModule::AddDefaultFnAttrs(llvm::Function &F) {
1829   llvm::AttrBuilder FuncAttrs;
1830   ConstructDefaultFnAttrList(F.getName(), F.hasOptNone(),
1831                              /* AttrOnCallSite = */ false, FuncAttrs);
1832   F.addAttributes(llvm::AttributeList::FunctionIndex, FuncAttrs);
1833 }
1834 
1835 void CodeGenModule::ConstructAttributeList(
1836     StringRef Name, const CGFunctionInfo &FI, CGCalleeInfo CalleeInfo,
1837     llvm::AttributeList &AttrList, unsigned &CallingConv, bool AttrOnCallSite) {
1838   llvm::AttrBuilder FuncAttrs;
1839   llvm::AttrBuilder RetAttrs;
1840 
1841   CallingConv = FI.getEffectiveCallingConvention();
1842   if (FI.isNoReturn())
1843     FuncAttrs.addAttribute(llvm::Attribute::NoReturn);
1844 
1845   // If we have information about the function prototype, we can learn
1846   // attributes from there.
1847   AddAttributesFromFunctionProtoType(getContext(), FuncAttrs,
1848                                      CalleeInfo.getCalleeFunctionProtoType());
1849 
1850   const Decl *TargetDecl = CalleeInfo.getCalleeDecl().getDecl();
1851 
1852   bool HasOptnone = false;
1853   // FIXME: handle sseregparm someday...
1854   if (TargetDecl) {
1855     if (TargetDecl->hasAttr<ReturnsTwiceAttr>())
1856       FuncAttrs.addAttribute(llvm::Attribute::ReturnsTwice);
1857     if (TargetDecl->hasAttr<NoThrowAttr>())
1858       FuncAttrs.addAttribute(llvm::Attribute::NoUnwind);
1859     if (TargetDecl->hasAttr<NoReturnAttr>())
1860       FuncAttrs.addAttribute(llvm::Attribute::NoReturn);
1861     if (TargetDecl->hasAttr<ColdAttr>())
1862       FuncAttrs.addAttribute(llvm::Attribute::Cold);
1863     if (TargetDecl->hasAttr<NoDuplicateAttr>())
1864       FuncAttrs.addAttribute(llvm::Attribute::NoDuplicate);
1865     if (TargetDecl->hasAttr<ConvergentAttr>())
1866       FuncAttrs.addAttribute(llvm::Attribute::Convergent);
1867 
1868     if (const FunctionDecl *Fn = dyn_cast<FunctionDecl>(TargetDecl)) {
1869       AddAttributesFromFunctionProtoType(
1870           getContext(), FuncAttrs, Fn->getType()->getAs<FunctionProtoType>());
1871       const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(Fn);
1872       const bool IsVirtualCall = MD && MD->isVirtual();
1873       // Don't use [[noreturn]], _Noreturn or [[no_builtin]] for a call to a
1874       // virtual function. These attributes are not inherited by overloads.
1875       if (!(AttrOnCallSite && IsVirtualCall)) {
1876         if (Fn->isNoReturn())
1877           FuncAttrs.addAttribute(llvm::Attribute::NoReturn);
1878 
1879         const auto *NBA = Fn->getAttr<NoBuiltinAttr>();
1880         bool HasWildcard = NBA && llvm::is_contained(NBA->builtinNames(), "*");
1881         if (getLangOpts().NoBuiltin || HasWildcard)
1882           FuncAttrs.addAttribute("no-builtins");
1883         else {
1884           auto AddNoBuiltinAttr = [&FuncAttrs](StringRef BuiltinName) {
1885             SmallString<32> AttributeName;
1886             AttributeName += "no-builtin-";
1887             AttributeName += BuiltinName;
1888             FuncAttrs.addAttribute(AttributeName);
1889           };
1890           llvm::for_each(getLangOpts().NoBuiltinFuncs, AddNoBuiltinAttr);
1891           if (NBA)
1892             llvm::for_each(NBA->builtinNames(), AddNoBuiltinAttr);
1893         }
1894       }
1895     }
1896 
1897     // 'const', 'pure' and 'noalias' attributed functions are also nounwind.
1898     if (TargetDecl->hasAttr<ConstAttr>()) {
1899       FuncAttrs.addAttribute(llvm::Attribute::ReadNone);
1900       FuncAttrs.addAttribute(llvm::Attribute::NoUnwind);
1901     } else if (TargetDecl->hasAttr<PureAttr>()) {
1902       FuncAttrs.addAttribute(llvm::Attribute::ReadOnly);
1903       FuncAttrs.addAttribute(llvm::Attribute::NoUnwind);
1904     } else if (TargetDecl->hasAttr<NoAliasAttr>()) {
1905       FuncAttrs.addAttribute(llvm::Attribute::ArgMemOnly);
1906       FuncAttrs.addAttribute(llvm::Attribute::NoUnwind);
1907     }
1908     if (TargetDecl->hasAttr<RestrictAttr>())
1909       RetAttrs.addAttribute(llvm::Attribute::NoAlias);
1910     if (TargetDecl->hasAttr<ReturnsNonNullAttr>() &&
1911         !CodeGenOpts.NullPointerIsValid)
1912       RetAttrs.addAttribute(llvm::Attribute::NonNull);
1913     if (TargetDecl->hasAttr<AnyX86NoCallerSavedRegistersAttr>())
1914       FuncAttrs.addAttribute("no_caller_saved_registers");
1915     if (TargetDecl->hasAttr<AnyX86NoCfCheckAttr>())
1916       FuncAttrs.addAttribute(llvm::Attribute::NoCfCheck);
1917 
1918     HasOptnone = TargetDecl->hasAttr<OptimizeNoneAttr>();
1919     if (auto *AllocSize = TargetDecl->getAttr<AllocSizeAttr>()) {
1920       Optional<unsigned> NumElemsParam;
1921       if (AllocSize->getNumElemsParam().isValid())
1922         NumElemsParam = AllocSize->getNumElemsParam().getLLVMIndex();
1923       FuncAttrs.addAllocSizeAttr(AllocSize->getElemSizeParam().getLLVMIndex(),
1924                                  NumElemsParam);
1925     }
1926   }
1927 
1928   ConstructDefaultFnAttrList(Name, HasOptnone, AttrOnCallSite, FuncAttrs);
1929 
1930   // This must run after constructing the default function attribute list
1931   // to ensure that the speculative load hardening attribute is removed
1932   // in the case where the -mspeculative-load-hardening flag was passed.
1933   if (TargetDecl) {
1934     if (TargetDecl->hasAttr<NoSpeculativeLoadHardeningAttr>())
1935       FuncAttrs.removeAttribute(llvm::Attribute::SpeculativeLoadHardening);
1936     if (TargetDecl->hasAttr<SpeculativeLoadHardeningAttr>())
1937       FuncAttrs.addAttribute(llvm::Attribute::SpeculativeLoadHardening);
1938   }
1939 
1940   if (CodeGenOpts.EnableSegmentedStacks &&
1941       !(TargetDecl && TargetDecl->hasAttr<NoSplitStackAttr>()))
1942     FuncAttrs.addAttribute("split-stack");
1943 
1944   // Add NonLazyBind attribute to function declarations when -fno-plt
1945   // is used.
1946   if (TargetDecl && CodeGenOpts.NoPLT) {
1947     if (auto *Fn = dyn_cast<FunctionDecl>(TargetDecl)) {
1948       if (!Fn->isDefined() && !AttrOnCallSite) {
1949         FuncAttrs.addAttribute(llvm::Attribute::NonLazyBind);
1950       }
1951     }
1952   }
1953 
1954   if (TargetDecl && TargetDecl->hasAttr<OpenCLKernelAttr>()) {
1955     if (getLangOpts().OpenCLVersion <= 120) {
1956       // OpenCL v1.2 Work groups are always uniform
1957       FuncAttrs.addAttribute("uniform-work-group-size", "true");
1958     } else {
1959       // OpenCL v2.0 Work groups may be whether uniform or not.
1960       // '-cl-uniform-work-group-size' compile option gets a hint
1961       // to the compiler that the global work-size be a multiple of
1962       // the work-group size specified to clEnqueueNDRangeKernel
1963       // (i.e. work groups are uniform).
1964       FuncAttrs.addAttribute("uniform-work-group-size",
1965                              llvm::toStringRef(CodeGenOpts.UniformWGSize));
1966     }
1967   }
1968 
1969   if (!AttrOnCallSite) {
1970     bool DisableTailCalls = false;
1971 
1972     if (CodeGenOpts.DisableTailCalls)
1973       DisableTailCalls = true;
1974     else if (TargetDecl) {
1975       if (TargetDecl->hasAttr<DisableTailCallsAttr>() ||
1976           TargetDecl->hasAttr<AnyX86InterruptAttr>())
1977         DisableTailCalls = true;
1978       else if (CodeGenOpts.NoEscapingBlockTailCalls) {
1979         if (const auto *BD = dyn_cast<BlockDecl>(TargetDecl))
1980           if (!BD->doesNotEscape())
1981             DisableTailCalls = true;
1982       }
1983     }
1984 
1985     FuncAttrs.addAttribute("disable-tail-calls",
1986                            llvm::toStringRef(DisableTailCalls));
1987     GetCPUAndFeaturesAttributes(CalleeInfo.getCalleeDecl(), FuncAttrs);
1988   }
1989 
1990   ClangToLLVMArgMapping IRFunctionArgs(getContext(), FI);
1991 
1992   QualType RetTy = FI.getReturnType();
1993   const ABIArgInfo &RetAI = FI.getReturnInfo();
1994   switch (RetAI.getKind()) {
1995   case ABIArgInfo::Extend:
1996     if (RetAI.isSignExt())
1997       RetAttrs.addAttribute(llvm::Attribute::SExt);
1998     else
1999       RetAttrs.addAttribute(llvm::Attribute::ZExt);
2000     LLVM_FALLTHROUGH;
2001   case ABIArgInfo::Direct:
2002     if (RetAI.getInReg())
2003       RetAttrs.addAttribute(llvm::Attribute::InReg);
2004     break;
2005   case ABIArgInfo::Ignore:
2006     break;
2007 
2008   case ABIArgInfo::InAlloca:
2009   case ABIArgInfo::Indirect: {
2010     // inalloca and sret disable readnone and readonly
2011     FuncAttrs.removeAttribute(llvm::Attribute::ReadOnly)
2012       .removeAttribute(llvm::Attribute::ReadNone);
2013     break;
2014   }
2015 
2016   case ABIArgInfo::CoerceAndExpand:
2017     break;
2018 
2019   case ABIArgInfo::Expand:
2020     llvm_unreachable("Invalid ABI kind for return argument");
2021   }
2022 
2023   if (const auto *RefTy = RetTy->getAs<ReferenceType>()) {
2024     QualType PTy = RefTy->getPointeeType();
2025     if (!PTy->isIncompleteType() && PTy->isConstantSizeType())
2026       RetAttrs.addDereferenceableAttr(getContext().getTypeSizeInChars(PTy)
2027                                         .getQuantity());
2028     else if (getContext().getTargetAddressSpace(PTy) == 0 &&
2029              !CodeGenOpts.NullPointerIsValid)
2030       RetAttrs.addAttribute(llvm::Attribute::NonNull);
2031   }
2032 
2033   bool hasUsedSRet = false;
2034   SmallVector<llvm::AttributeSet, 4> ArgAttrs(IRFunctionArgs.totalIRArgs());
2035 
2036   // Attach attributes to sret.
2037   if (IRFunctionArgs.hasSRetArg()) {
2038     llvm::AttrBuilder SRETAttrs;
2039     SRETAttrs.addAttribute(llvm::Attribute::StructRet);
2040     hasUsedSRet = true;
2041     if (RetAI.getInReg())
2042       SRETAttrs.addAttribute(llvm::Attribute::InReg);
2043     ArgAttrs[IRFunctionArgs.getSRetArgNo()] =
2044         llvm::AttributeSet::get(getLLVMContext(), SRETAttrs);
2045   }
2046 
2047   // Attach attributes to inalloca argument.
2048   if (IRFunctionArgs.hasInallocaArg()) {
2049     llvm::AttrBuilder Attrs;
2050     Attrs.addAttribute(llvm::Attribute::InAlloca);
2051     ArgAttrs[IRFunctionArgs.getInallocaArgNo()] =
2052         llvm::AttributeSet::get(getLLVMContext(), Attrs);
2053   }
2054 
2055   unsigned ArgNo = 0;
2056   for (CGFunctionInfo::const_arg_iterator I = FI.arg_begin(),
2057                                           E = FI.arg_end();
2058        I != E; ++I, ++ArgNo) {
2059     QualType ParamType = I->type;
2060     const ABIArgInfo &AI = I->info;
2061     llvm::AttrBuilder Attrs;
2062 
2063     // Add attribute for padding argument, if necessary.
2064     if (IRFunctionArgs.hasPaddingArg(ArgNo)) {
2065       if (AI.getPaddingInReg()) {
2066         ArgAttrs[IRFunctionArgs.getPaddingArgNo(ArgNo)] =
2067             llvm::AttributeSet::get(
2068                 getLLVMContext(),
2069                 llvm::AttrBuilder().addAttribute(llvm::Attribute::InReg));
2070       }
2071     }
2072 
2073     // 'restrict' -> 'noalias' is done in EmitFunctionProlog when we
2074     // have the corresponding parameter variable.  It doesn't make
2075     // sense to do it here because parameters are so messed up.
2076     switch (AI.getKind()) {
2077     case ABIArgInfo::Extend:
2078       if (AI.isSignExt())
2079         Attrs.addAttribute(llvm::Attribute::SExt);
2080       else
2081         Attrs.addAttribute(llvm::Attribute::ZExt);
2082       LLVM_FALLTHROUGH;
2083     case ABIArgInfo::Direct:
2084       if (ArgNo == 0 && FI.isChainCall())
2085         Attrs.addAttribute(llvm::Attribute::Nest);
2086       else if (AI.getInReg())
2087         Attrs.addAttribute(llvm::Attribute::InReg);
2088       break;
2089 
2090     case ABIArgInfo::Indirect: {
2091       if (AI.getInReg())
2092         Attrs.addAttribute(llvm::Attribute::InReg);
2093 
2094       if (AI.getIndirectByVal())
2095         Attrs.addByValAttr(getTypes().ConvertTypeForMem(ParamType));
2096 
2097       CharUnits Align = AI.getIndirectAlign();
2098 
2099       // In a byval argument, it is important that the required
2100       // alignment of the type is honored, as LLVM might be creating a
2101       // *new* stack object, and needs to know what alignment to give
2102       // it. (Sometimes it can deduce a sensible alignment on its own,
2103       // but not if clang decides it must emit a packed struct, or the
2104       // user specifies increased alignment requirements.)
2105       //
2106       // This is different from indirect *not* byval, where the object
2107       // exists already, and the align attribute is purely
2108       // informative.
2109       assert(!Align.isZero());
2110 
2111       // For now, only add this when we have a byval argument.
2112       // TODO: be less lazy about updating test cases.
2113       if (AI.getIndirectByVal())
2114         Attrs.addAlignmentAttr(Align.getQuantity());
2115 
2116       // byval disables readnone and readonly.
2117       FuncAttrs.removeAttribute(llvm::Attribute::ReadOnly)
2118         .removeAttribute(llvm::Attribute::ReadNone);
2119       break;
2120     }
2121     case ABIArgInfo::Ignore:
2122     case ABIArgInfo::Expand:
2123     case ABIArgInfo::CoerceAndExpand:
2124       break;
2125 
2126     case ABIArgInfo::InAlloca:
2127       // inalloca disables readnone and readonly.
2128       FuncAttrs.removeAttribute(llvm::Attribute::ReadOnly)
2129           .removeAttribute(llvm::Attribute::ReadNone);
2130       continue;
2131     }
2132 
2133     if (const auto *RefTy = ParamType->getAs<ReferenceType>()) {
2134       QualType PTy = RefTy->getPointeeType();
2135       if (!PTy->isIncompleteType() && PTy->isConstantSizeType())
2136         Attrs.addDereferenceableAttr(getContext().getTypeSizeInChars(PTy)
2137                                        .getQuantity());
2138       else if (getContext().getTargetAddressSpace(PTy) == 0 &&
2139                !CodeGenOpts.NullPointerIsValid)
2140         Attrs.addAttribute(llvm::Attribute::NonNull);
2141     }
2142 
2143     switch (FI.getExtParameterInfo(ArgNo).getABI()) {
2144     case ParameterABI::Ordinary:
2145       break;
2146 
2147     case ParameterABI::SwiftIndirectResult: {
2148       // Add 'sret' if we haven't already used it for something, but
2149       // only if the result is void.
2150       if (!hasUsedSRet && RetTy->isVoidType()) {
2151         Attrs.addAttribute(llvm::Attribute::StructRet);
2152         hasUsedSRet = true;
2153       }
2154 
2155       // Add 'noalias' in either case.
2156       Attrs.addAttribute(llvm::Attribute::NoAlias);
2157 
2158       // Add 'dereferenceable' and 'alignment'.
2159       auto PTy = ParamType->getPointeeType();
2160       if (!PTy->isIncompleteType() && PTy->isConstantSizeType()) {
2161         auto info = getContext().getTypeInfoInChars(PTy);
2162         Attrs.addDereferenceableAttr(info.first.getQuantity());
2163         Attrs.addAttribute(llvm::Attribute::getWithAlignment(
2164             getLLVMContext(), info.second.getAsAlign()));
2165       }
2166       break;
2167     }
2168 
2169     case ParameterABI::SwiftErrorResult:
2170       Attrs.addAttribute(llvm::Attribute::SwiftError);
2171       break;
2172 
2173     case ParameterABI::SwiftContext:
2174       Attrs.addAttribute(llvm::Attribute::SwiftSelf);
2175       break;
2176     }
2177 
2178     if (FI.getExtParameterInfo(ArgNo).isNoEscape())
2179       Attrs.addAttribute(llvm::Attribute::NoCapture);
2180 
2181     if (Attrs.hasAttributes()) {
2182       unsigned FirstIRArg, NumIRArgs;
2183       std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo);
2184       for (unsigned i = 0; i < NumIRArgs; i++)
2185         ArgAttrs[FirstIRArg + i] =
2186             llvm::AttributeSet::get(getLLVMContext(), Attrs);
2187     }
2188   }
2189   assert(ArgNo == FI.arg_size());
2190 
2191   AttrList = llvm::AttributeList::get(
2192       getLLVMContext(), llvm::AttributeSet::get(getLLVMContext(), FuncAttrs),
2193       llvm::AttributeSet::get(getLLVMContext(), RetAttrs), ArgAttrs);
2194 }
2195 
2196 /// An argument came in as a promoted argument; demote it back to its
2197 /// declared type.
2198 static llvm::Value *emitArgumentDemotion(CodeGenFunction &CGF,
2199                                          const VarDecl *var,
2200                                          llvm::Value *value) {
2201   llvm::Type *varType = CGF.ConvertType(var->getType());
2202 
2203   // This can happen with promotions that actually don't change the
2204   // underlying type, like the enum promotions.
2205   if (value->getType() == varType) return value;
2206 
2207   assert((varType->isIntegerTy() || varType->isFloatingPointTy())
2208          && "unexpected promotion type");
2209 
2210   if (isa<llvm::IntegerType>(varType))
2211     return CGF.Builder.CreateTrunc(value, varType, "arg.unpromote");
2212 
2213   return CGF.Builder.CreateFPCast(value, varType, "arg.unpromote");
2214 }
2215 
2216 /// Returns the attribute (either parameter attribute, or function
2217 /// attribute), which declares argument ArgNo to be non-null.
2218 static const NonNullAttr *getNonNullAttr(const Decl *FD, const ParmVarDecl *PVD,
2219                                          QualType ArgType, unsigned ArgNo) {
2220   // FIXME: __attribute__((nonnull)) can also be applied to:
2221   //   - references to pointers, where the pointee is known to be
2222   //     nonnull (apparently a Clang extension)
2223   //   - transparent unions containing pointers
2224   // In the former case, LLVM IR cannot represent the constraint. In
2225   // the latter case, we have no guarantee that the transparent union
2226   // is in fact passed as a pointer.
2227   if (!ArgType->isAnyPointerType() && !ArgType->isBlockPointerType())
2228     return nullptr;
2229   // First, check attribute on parameter itself.
2230   if (PVD) {
2231     if (auto ParmNNAttr = PVD->getAttr<NonNullAttr>())
2232       return ParmNNAttr;
2233   }
2234   // Check function attributes.
2235   if (!FD)
2236     return nullptr;
2237   for (const auto *NNAttr : FD->specific_attrs<NonNullAttr>()) {
2238     if (NNAttr->isNonNull(ArgNo))
2239       return NNAttr;
2240   }
2241   return nullptr;
2242 }
2243 
2244 namespace {
2245   struct CopyBackSwiftError final : EHScopeStack::Cleanup {
2246     Address Temp;
2247     Address Arg;
2248     CopyBackSwiftError(Address temp, Address arg) : Temp(temp), Arg(arg) {}
2249     void Emit(CodeGenFunction &CGF, Flags flags) override {
2250       llvm::Value *errorValue = CGF.Builder.CreateLoad(Temp);
2251       CGF.Builder.CreateStore(errorValue, Arg);
2252     }
2253   };
2254 }
2255 
2256 void CodeGenFunction::EmitFunctionProlog(const CGFunctionInfo &FI,
2257                                          llvm::Function *Fn,
2258                                          const FunctionArgList &Args) {
2259   if (CurCodeDecl && CurCodeDecl->hasAttr<NakedAttr>())
2260     // Naked functions don't have prologues.
2261     return;
2262 
2263   // If this is an implicit-return-zero function, go ahead and
2264   // initialize the return value.  TODO: it might be nice to have
2265   // a more general mechanism for this that didn't require synthesized
2266   // return statements.
2267   if (const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(CurCodeDecl)) {
2268     if (FD->hasImplicitReturnZero()) {
2269       QualType RetTy = FD->getReturnType().getUnqualifiedType();
2270       llvm::Type* LLVMTy = CGM.getTypes().ConvertType(RetTy);
2271       llvm::Constant* Zero = llvm::Constant::getNullValue(LLVMTy);
2272       Builder.CreateStore(Zero, ReturnValue);
2273     }
2274   }
2275 
2276   // FIXME: We no longer need the types from FunctionArgList; lift up and
2277   // simplify.
2278 
2279   ClangToLLVMArgMapping IRFunctionArgs(CGM.getContext(), FI);
2280   // Flattened function arguments.
2281   SmallVector<llvm::Value *, 16> FnArgs;
2282   FnArgs.reserve(IRFunctionArgs.totalIRArgs());
2283   for (auto &Arg : Fn->args()) {
2284     FnArgs.push_back(&Arg);
2285   }
2286   assert(FnArgs.size() == IRFunctionArgs.totalIRArgs());
2287 
2288   // If we're using inalloca, all the memory arguments are GEPs off of the last
2289   // parameter, which is a pointer to the complete memory area.
2290   Address ArgStruct = Address::invalid();
2291   if (IRFunctionArgs.hasInallocaArg()) {
2292     ArgStruct = Address(FnArgs[IRFunctionArgs.getInallocaArgNo()],
2293                         FI.getArgStructAlignment());
2294 
2295     assert(ArgStruct.getType() == FI.getArgStruct()->getPointerTo());
2296   }
2297 
2298   // Name the struct return parameter.
2299   if (IRFunctionArgs.hasSRetArg()) {
2300     auto AI = cast<llvm::Argument>(FnArgs[IRFunctionArgs.getSRetArgNo()]);
2301     AI->setName("agg.result");
2302     AI->addAttr(llvm::Attribute::NoAlias);
2303   }
2304 
2305   // Track if we received the parameter as a pointer (indirect, byval, or
2306   // inalloca).  If already have a pointer, EmitParmDecl doesn't need to copy it
2307   // into a local alloca for us.
2308   SmallVector<ParamValue, 16> ArgVals;
2309   ArgVals.reserve(Args.size());
2310 
2311   // Create a pointer value for every parameter declaration.  This usually
2312   // entails copying one or more LLVM IR arguments into an alloca.  Don't push
2313   // any cleanups or do anything that might unwind.  We do that separately, so
2314   // we can push the cleanups in the correct order for the ABI.
2315   assert(FI.arg_size() == Args.size() &&
2316          "Mismatch between function signature & arguments.");
2317   unsigned ArgNo = 0;
2318   CGFunctionInfo::const_arg_iterator info_it = FI.arg_begin();
2319   for (FunctionArgList::const_iterator i = Args.begin(), e = Args.end();
2320        i != e; ++i, ++info_it, ++ArgNo) {
2321     const VarDecl *Arg = *i;
2322     const ABIArgInfo &ArgI = info_it->info;
2323 
2324     bool isPromoted =
2325       isa<ParmVarDecl>(Arg) && cast<ParmVarDecl>(Arg)->isKNRPromoted();
2326     // We are converting from ABIArgInfo type to VarDecl type directly, unless
2327     // the parameter is promoted. In this case we convert to
2328     // CGFunctionInfo::ArgInfo type with subsequent argument demotion.
2329     QualType Ty = isPromoted ? info_it->type : Arg->getType();
2330     assert(hasScalarEvaluationKind(Ty) ==
2331            hasScalarEvaluationKind(Arg->getType()));
2332 
2333     unsigned FirstIRArg, NumIRArgs;
2334     std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo);
2335 
2336     switch (ArgI.getKind()) {
2337     case ABIArgInfo::InAlloca: {
2338       assert(NumIRArgs == 0);
2339       auto FieldIndex = ArgI.getInAllocaFieldIndex();
2340       Address V =
2341           Builder.CreateStructGEP(ArgStruct, FieldIndex, Arg->getName());
2342       ArgVals.push_back(ParamValue::forIndirect(V));
2343       break;
2344     }
2345 
2346     case ABIArgInfo::Indirect: {
2347       assert(NumIRArgs == 1);
2348       Address ParamAddr = Address(FnArgs[FirstIRArg], ArgI.getIndirectAlign());
2349 
2350       if (!hasScalarEvaluationKind(Ty)) {
2351         // Aggregates and complex variables are accessed by reference.  All we
2352         // need to do is realign the value, if requested.
2353         Address V = ParamAddr;
2354         if (ArgI.getIndirectRealign()) {
2355           Address AlignedTemp = CreateMemTemp(Ty, "coerce");
2356 
2357           // Copy from the incoming argument pointer to the temporary with the
2358           // appropriate alignment.
2359           //
2360           // FIXME: We should have a common utility for generating an aggregate
2361           // copy.
2362           CharUnits Size = getContext().getTypeSizeInChars(Ty);
2363           auto SizeVal = llvm::ConstantInt::get(IntPtrTy, Size.getQuantity());
2364           Address Dst = Builder.CreateBitCast(AlignedTemp, Int8PtrTy);
2365           Address Src = Builder.CreateBitCast(ParamAddr, Int8PtrTy);
2366           Builder.CreateMemCpy(Dst, Src, SizeVal, false);
2367           V = AlignedTemp;
2368         }
2369         ArgVals.push_back(ParamValue::forIndirect(V));
2370       } else {
2371         // Load scalar value from indirect argument.
2372         llvm::Value *V =
2373             EmitLoadOfScalar(ParamAddr, false, Ty, Arg->getBeginLoc());
2374 
2375         if (isPromoted)
2376           V = emitArgumentDemotion(*this, Arg, V);
2377         ArgVals.push_back(ParamValue::forDirect(V));
2378       }
2379       break;
2380     }
2381 
2382     case ABIArgInfo::Extend:
2383     case ABIArgInfo::Direct: {
2384 
2385       // If we have the trivial case, handle it with no muss and fuss.
2386       if (!isa<llvm::StructType>(ArgI.getCoerceToType()) &&
2387           ArgI.getCoerceToType() == ConvertType(Ty) &&
2388           ArgI.getDirectOffset() == 0) {
2389         assert(NumIRArgs == 1);
2390         llvm::Value *V = FnArgs[FirstIRArg];
2391         auto AI = cast<llvm::Argument>(V);
2392 
2393         if (const ParmVarDecl *PVD = dyn_cast<ParmVarDecl>(Arg)) {
2394           if (getNonNullAttr(CurCodeDecl, PVD, PVD->getType(),
2395                              PVD->getFunctionScopeIndex()) &&
2396               !CGM.getCodeGenOpts().NullPointerIsValid)
2397             AI->addAttr(llvm::Attribute::NonNull);
2398 
2399           QualType OTy = PVD->getOriginalType();
2400           if (const auto *ArrTy =
2401               getContext().getAsConstantArrayType(OTy)) {
2402             // A C99 array parameter declaration with the static keyword also
2403             // indicates dereferenceability, and if the size is constant we can
2404             // use the dereferenceable attribute (which requires the size in
2405             // bytes).
2406             if (ArrTy->getSizeModifier() == ArrayType::Static) {
2407               QualType ETy = ArrTy->getElementType();
2408               uint64_t ArrSize = ArrTy->getSize().getZExtValue();
2409               if (!ETy->isIncompleteType() && ETy->isConstantSizeType() &&
2410                   ArrSize) {
2411                 llvm::AttrBuilder Attrs;
2412                 Attrs.addDereferenceableAttr(
2413                   getContext().getTypeSizeInChars(ETy).getQuantity()*ArrSize);
2414                 AI->addAttrs(Attrs);
2415               } else if (getContext().getTargetAddressSpace(ETy) == 0 &&
2416                          !CGM.getCodeGenOpts().NullPointerIsValid) {
2417                 AI->addAttr(llvm::Attribute::NonNull);
2418               }
2419             }
2420           } else if (const auto *ArrTy =
2421                      getContext().getAsVariableArrayType(OTy)) {
2422             // For C99 VLAs with the static keyword, we don't know the size so
2423             // we can't use the dereferenceable attribute, but in addrspace(0)
2424             // we know that it must be nonnull.
2425             if (ArrTy->getSizeModifier() == VariableArrayType::Static &&
2426                 !getContext().getTargetAddressSpace(ArrTy->getElementType()) &&
2427                 !CGM.getCodeGenOpts().NullPointerIsValid)
2428               AI->addAttr(llvm::Attribute::NonNull);
2429           }
2430 
2431           const auto *AVAttr = PVD->getAttr<AlignValueAttr>();
2432           if (!AVAttr)
2433             if (const auto *TOTy = dyn_cast<TypedefType>(OTy))
2434               AVAttr = TOTy->getDecl()->getAttr<AlignValueAttr>();
2435           if (AVAttr && !SanOpts.has(SanitizerKind::Alignment)) {
2436             // If alignment-assumption sanitizer is enabled, we do *not* add
2437             // alignment attribute here, but emit normal alignment assumption,
2438             // so the UBSAN check could function.
2439             llvm::Value *AlignmentValue =
2440               EmitScalarExpr(AVAttr->getAlignment());
2441             llvm::ConstantInt *AlignmentCI =
2442               cast<llvm::ConstantInt>(AlignmentValue);
2443             unsigned Alignment = std::min((unsigned)AlignmentCI->getZExtValue(),
2444                                           +llvm::Value::MaximumAlignment);
2445             AI->addAttrs(llvm::AttrBuilder().addAlignmentAttr(Alignment));
2446           }
2447         }
2448 
2449         if (Arg->getType().isRestrictQualified())
2450           AI->addAttr(llvm::Attribute::NoAlias);
2451 
2452         // LLVM expects swifterror parameters to be used in very restricted
2453         // ways.  Copy the value into a less-restricted temporary.
2454         if (FI.getExtParameterInfo(ArgNo).getABI()
2455               == ParameterABI::SwiftErrorResult) {
2456           QualType pointeeTy = Ty->getPointeeType();
2457           assert(pointeeTy->isPointerType());
2458           Address temp =
2459             CreateMemTemp(pointeeTy, getPointerAlign(), "swifterror.temp");
2460           Address arg = Address(V, getContext().getTypeAlignInChars(pointeeTy));
2461           llvm::Value *incomingErrorValue = Builder.CreateLoad(arg);
2462           Builder.CreateStore(incomingErrorValue, temp);
2463           V = temp.getPointer();
2464 
2465           // Push a cleanup to copy the value back at the end of the function.
2466           // The convention does not guarantee that the value will be written
2467           // back if the function exits with an unwind exception.
2468           EHStack.pushCleanup<CopyBackSwiftError>(NormalCleanup, temp, arg);
2469         }
2470 
2471         // Ensure the argument is the correct type.
2472         if (V->getType() != ArgI.getCoerceToType())
2473           V = Builder.CreateBitCast(V, ArgI.getCoerceToType());
2474 
2475         if (isPromoted)
2476           V = emitArgumentDemotion(*this, Arg, V);
2477 
2478         // Because of merging of function types from multiple decls it is
2479         // possible for the type of an argument to not match the corresponding
2480         // type in the function type. Since we are codegening the callee
2481         // in here, add a cast to the argument type.
2482         llvm::Type *LTy = ConvertType(Arg->getType());
2483         if (V->getType() != LTy)
2484           V = Builder.CreateBitCast(V, LTy);
2485 
2486         ArgVals.push_back(ParamValue::forDirect(V));
2487         break;
2488       }
2489 
2490       Address Alloca = CreateMemTemp(Ty, getContext().getDeclAlign(Arg),
2491                                      Arg->getName());
2492 
2493       // Pointer to store into.
2494       Address Ptr = emitAddressAtOffset(*this, Alloca, ArgI);
2495 
2496       // Fast-isel and the optimizer generally like scalar values better than
2497       // FCAs, so we flatten them if this is safe to do for this argument.
2498       llvm::StructType *STy = dyn_cast<llvm::StructType>(ArgI.getCoerceToType());
2499       if (ArgI.isDirect() && ArgI.getCanBeFlattened() && STy &&
2500           STy->getNumElements() > 1) {
2501         uint64_t SrcSize = CGM.getDataLayout().getTypeAllocSize(STy);
2502         llvm::Type *DstTy = Ptr.getElementType();
2503         uint64_t DstSize = CGM.getDataLayout().getTypeAllocSize(DstTy);
2504 
2505         Address AddrToStoreInto = Address::invalid();
2506         if (SrcSize <= DstSize) {
2507           AddrToStoreInto = Builder.CreateElementBitCast(Ptr, STy);
2508         } else {
2509           AddrToStoreInto =
2510             CreateTempAlloca(STy, Alloca.getAlignment(), "coerce");
2511         }
2512 
2513         assert(STy->getNumElements() == NumIRArgs);
2514         for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
2515           auto AI = FnArgs[FirstIRArg + i];
2516           AI->setName(Arg->getName() + ".coerce" + Twine(i));
2517           Address EltPtr = Builder.CreateStructGEP(AddrToStoreInto, i);
2518           Builder.CreateStore(AI, EltPtr);
2519         }
2520 
2521         if (SrcSize > DstSize) {
2522           Builder.CreateMemCpy(Ptr, AddrToStoreInto, DstSize);
2523         }
2524 
2525       } else {
2526         // Simple case, just do a coerced store of the argument into the alloca.
2527         assert(NumIRArgs == 1);
2528         auto AI = FnArgs[FirstIRArg];
2529         AI->setName(Arg->getName() + ".coerce");
2530         CreateCoercedStore(AI, Ptr, /*DstIsVolatile=*/false, *this);
2531       }
2532 
2533       // Match to what EmitParmDecl is expecting for this type.
2534       if (CodeGenFunction::hasScalarEvaluationKind(Ty)) {
2535         llvm::Value *V =
2536             EmitLoadOfScalar(Alloca, false, Ty, Arg->getBeginLoc());
2537         if (isPromoted)
2538           V = emitArgumentDemotion(*this, Arg, V);
2539         ArgVals.push_back(ParamValue::forDirect(V));
2540       } else {
2541         ArgVals.push_back(ParamValue::forIndirect(Alloca));
2542       }
2543       break;
2544     }
2545 
2546     case ABIArgInfo::CoerceAndExpand: {
2547       // Reconstruct into a temporary.
2548       Address alloca = CreateMemTemp(Ty, getContext().getDeclAlign(Arg));
2549       ArgVals.push_back(ParamValue::forIndirect(alloca));
2550 
2551       auto coercionType = ArgI.getCoerceAndExpandType();
2552       alloca = Builder.CreateElementBitCast(alloca, coercionType);
2553 
2554       unsigned argIndex = FirstIRArg;
2555       for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) {
2556         llvm::Type *eltType = coercionType->getElementType(i);
2557         if (ABIArgInfo::isPaddingForCoerceAndExpand(eltType))
2558           continue;
2559 
2560         auto eltAddr = Builder.CreateStructGEP(alloca, i);
2561         auto elt = FnArgs[argIndex++];
2562         Builder.CreateStore(elt, eltAddr);
2563       }
2564       assert(argIndex == FirstIRArg + NumIRArgs);
2565       break;
2566     }
2567 
2568     case ABIArgInfo::Expand: {
2569       // If this structure was expanded into multiple arguments then
2570       // we need to create a temporary and reconstruct it from the
2571       // arguments.
2572       Address Alloca = CreateMemTemp(Ty, getContext().getDeclAlign(Arg));
2573       LValue LV = MakeAddrLValue(Alloca, Ty);
2574       ArgVals.push_back(ParamValue::forIndirect(Alloca));
2575 
2576       auto FnArgIter = FnArgs.begin() + FirstIRArg;
2577       ExpandTypeFromArgs(Ty, LV, FnArgIter);
2578       assert(FnArgIter == FnArgs.begin() + FirstIRArg + NumIRArgs);
2579       for (unsigned i = 0, e = NumIRArgs; i != e; ++i) {
2580         auto AI = FnArgs[FirstIRArg + i];
2581         AI->setName(Arg->getName() + "." + Twine(i));
2582       }
2583       break;
2584     }
2585 
2586     case ABIArgInfo::Ignore:
2587       assert(NumIRArgs == 0);
2588       // Initialize the local variable appropriately.
2589       if (!hasScalarEvaluationKind(Ty)) {
2590         ArgVals.push_back(ParamValue::forIndirect(CreateMemTemp(Ty)));
2591       } else {
2592         llvm::Value *U = llvm::UndefValue::get(ConvertType(Arg->getType()));
2593         ArgVals.push_back(ParamValue::forDirect(U));
2594       }
2595       break;
2596     }
2597   }
2598 
2599   if (getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()) {
2600     for (int I = Args.size() - 1; I >= 0; --I)
2601       EmitParmDecl(*Args[I], ArgVals[I], I + 1);
2602   } else {
2603     for (unsigned I = 0, E = Args.size(); I != E; ++I)
2604       EmitParmDecl(*Args[I], ArgVals[I], I + 1);
2605   }
2606 }
2607 
2608 static void eraseUnusedBitCasts(llvm::Instruction *insn) {
2609   while (insn->use_empty()) {
2610     llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(insn);
2611     if (!bitcast) return;
2612 
2613     // This is "safe" because we would have used a ConstantExpr otherwise.
2614     insn = cast<llvm::Instruction>(bitcast->getOperand(0));
2615     bitcast->eraseFromParent();
2616   }
2617 }
2618 
2619 /// Try to emit a fused autorelease of a return result.
2620 static llvm::Value *tryEmitFusedAutoreleaseOfResult(CodeGenFunction &CGF,
2621                                                     llvm::Value *result) {
2622   // We must be immediately followed the cast.
2623   llvm::BasicBlock *BB = CGF.Builder.GetInsertBlock();
2624   if (BB->empty()) return nullptr;
2625   if (&BB->back() != result) return nullptr;
2626 
2627   llvm::Type *resultType = result->getType();
2628 
2629   // result is in a BasicBlock and is therefore an Instruction.
2630   llvm::Instruction *generator = cast<llvm::Instruction>(result);
2631 
2632   SmallVector<llvm::Instruction *, 4> InstsToKill;
2633 
2634   // Look for:
2635   //  %generator = bitcast %type1* %generator2 to %type2*
2636   while (llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(generator)) {
2637     // We would have emitted this as a constant if the operand weren't
2638     // an Instruction.
2639     generator = cast<llvm::Instruction>(bitcast->getOperand(0));
2640 
2641     // Require the generator to be immediately followed by the cast.
2642     if (generator->getNextNode() != bitcast)
2643       return nullptr;
2644 
2645     InstsToKill.push_back(bitcast);
2646   }
2647 
2648   // Look for:
2649   //   %generator = call i8* @objc_retain(i8* %originalResult)
2650   // or
2651   //   %generator = call i8* @objc_retainAutoreleasedReturnValue(i8* %originalResult)
2652   llvm::CallInst *call = dyn_cast<llvm::CallInst>(generator);
2653   if (!call) return nullptr;
2654 
2655   bool doRetainAutorelease;
2656 
2657   if (call->getCalledValue() == CGF.CGM.getObjCEntrypoints().objc_retain) {
2658     doRetainAutorelease = true;
2659   } else if (call->getCalledValue() == CGF.CGM.getObjCEntrypoints()
2660                                           .objc_retainAutoreleasedReturnValue) {
2661     doRetainAutorelease = false;
2662 
2663     // If we emitted an assembly marker for this call (and the
2664     // ARCEntrypoints field should have been set if so), go looking
2665     // for that call.  If we can't find it, we can't do this
2666     // optimization.  But it should always be the immediately previous
2667     // instruction, unless we needed bitcasts around the call.
2668     if (CGF.CGM.getObjCEntrypoints().retainAutoreleasedReturnValueMarker) {
2669       llvm::Instruction *prev = call->getPrevNode();
2670       assert(prev);
2671       if (isa<llvm::BitCastInst>(prev)) {
2672         prev = prev->getPrevNode();
2673         assert(prev);
2674       }
2675       assert(isa<llvm::CallInst>(prev));
2676       assert(cast<llvm::CallInst>(prev)->getCalledValue() ==
2677                CGF.CGM.getObjCEntrypoints().retainAutoreleasedReturnValueMarker);
2678       InstsToKill.push_back(prev);
2679     }
2680   } else {
2681     return nullptr;
2682   }
2683 
2684   result = call->getArgOperand(0);
2685   InstsToKill.push_back(call);
2686 
2687   // Keep killing bitcasts, for sanity.  Note that we no longer care
2688   // about precise ordering as long as there's exactly one use.
2689   while (llvm::BitCastInst *bitcast = dyn_cast<llvm::BitCastInst>(result)) {
2690     if (!bitcast->hasOneUse()) break;
2691     InstsToKill.push_back(bitcast);
2692     result = bitcast->getOperand(0);
2693   }
2694 
2695   // Delete all the unnecessary instructions, from latest to earliest.
2696   for (auto *I : InstsToKill)
2697     I->eraseFromParent();
2698 
2699   // Do the fused retain/autorelease if we were asked to.
2700   if (doRetainAutorelease)
2701     result = CGF.EmitARCRetainAutoreleaseReturnValue(result);
2702 
2703   // Cast back to the result type.
2704   return CGF.Builder.CreateBitCast(result, resultType);
2705 }
2706 
2707 /// If this is a +1 of the value of an immutable 'self', remove it.
2708 static llvm::Value *tryRemoveRetainOfSelf(CodeGenFunction &CGF,
2709                                           llvm::Value *result) {
2710   // This is only applicable to a method with an immutable 'self'.
2711   const ObjCMethodDecl *method =
2712     dyn_cast_or_null<ObjCMethodDecl>(CGF.CurCodeDecl);
2713   if (!method) return nullptr;
2714   const VarDecl *self = method->getSelfDecl();
2715   if (!self->getType().isConstQualified()) return nullptr;
2716 
2717   // Look for a retain call.
2718   llvm::CallInst *retainCall =
2719     dyn_cast<llvm::CallInst>(result->stripPointerCasts());
2720   if (!retainCall ||
2721       retainCall->getCalledValue() != CGF.CGM.getObjCEntrypoints().objc_retain)
2722     return nullptr;
2723 
2724   // Look for an ordinary load of 'self'.
2725   llvm::Value *retainedValue = retainCall->getArgOperand(0);
2726   llvm::LoadInst *load =
2727     dyn_cast<llvm::LoadInst>(retainedValue->stripPointerCasts());
2728   if (!load || load->isAtomic() || load->isVolatile() ||
2729       load->getPointerOperand() != CGF.GetAddrOfLocalVar(self).getPointer())
2730     return nullptr;
2731 
2732   // Okay!  Burn it all down.  This relies for correctness on the
2733   // assumption that the retain is emitted as part of the return and
2734   // that thereafter everything is used "linearly".
2735   llvm::Type *resultType = result->getType();
2736   eraseUnusedBitCasts(cast<llvm::Instruction>(result));
2737   assert(retainCall->use_empty());
2738   retainCall->eraseFromParent();
2739   eraseUnusedBitCasts(cast<llvm::Instruction>(retainedValue));
2740 
2741   return CGF.Builder.CreateBitCast(load, resultType);
2742 }
2743 
2744 /// Emit an ARC autorelease of the result of a function.
2745 ///
2746 /// \return the value to actually return from the function
2747 static llvm::Value *emitAutoreleaseOfResult(CodeGenFunction &CGF,
2748                                             llvm::Value *result) {
2749   // If we're returning 'self', kill the initial retain.  This is a
2750   // heuristic attempt to "encourage correctness" in the really unfortunate
2751   // case where we have a return of self during a dealloc and we desperately
2752   // need to avoid the possible autorelease.
2753   if (llvm::Value *self = tryRemoveRetainOfSelf(CGF, result))
2754     return self;
2755 
2756   // At -O0, try to emit a fused retain/autorelease.
2757   if (CGF.shouldUseFusedARCCalls())
2758     if (llvm::Value *fused = tryEmitFusedAutoreleaseOfResult(CGF, result))
2759       return fused;
2760 
2761   return CGF.EmitARCAutoreleaseReturnValue(result);
2762 }
2763 
2764 /// Heuristically search for a dominating store to the return-value slot.
2765 static llvm::StoreInst *findDominatingStoreToReturnValue(CodeGenFunction &CGF) {
2766   // Check if a User is a store which pointerOperand is the ReturnValue.
2767   // We are looking for stores to the ReturnValue, not for stores of the
2768   // ReturnValue to some other location.
2769   auto GetStoreIfValid = [&CGF](llvm::User *U) -> llvm::StoreInst * {
2770     auto *SI = dyn_cast<llvm::StoreInst>(U);
2771     if (!SI || SI->getPointerOperand() != CGF.ReturnValue.getPointer())
2772       return nullptr;
2773     // These aren't actually possible for non-coerced returns, and we
2774     // only care about non-coerced returns on this code path.
2775     assert(!SI->isAtomic() && !SI->isVolatile());
2776     return SI;
2777   };
2778   // If there are multiple uses of the return-value slot, just check
2779   // for something immediately preceding the IP.  Sometimes this can
2780   // happen with how we generate implicit-returns; it can also happen
2781   // with noreturn cleanups.
2782   if (!CGF.ReturnValue.getPointer()->hasOneUse()) {
2783     llvm::BasicBlock *IP = CGF.Builder.GetInsertBlock();
2784     if (IP->empty()) return nullptr;
2785     llvm::Instruction *I = &IP->back();
2786 
2787     // Skip lifetime markers
2788     for (llvm::BasicBlock::reverse_iterator II = IP->rbegin(),
2789                                             IE = IP->rend();
2790          II != IE; ++II) {
2791       if (llvm::IntrinsicInst *Intrinsic =
2792               dyn_cast<llvm::IntrinsicInst>(&*II)) {
2793         if (Intrinsic->getIntrinsicID() == llvm::Intrinsic::lifetime_end) {
2794           const llvm::Value *CastAddr = Intrinsic->getArgOperand(1);
2795           ++II;
2796           if (II == IE)
2797             break;
2798           if (isa<llvm::BitCastInst>(&*II) && (CastAddr == &*II))
2799             continue;
2800         }
2801       }
2802       I = &*II;
2803       break;
2804     }
2805 
2806     return GetStoreIfValid(I);
2807   }
2808 
2809   llvm::StoreInst *store =
2810       GetStoreIfValid(CGF.ReturnValue.getPointer()->user_back());
2811   if (!store) return nullptr;
2812 
2813   // Now do a first-and-dirty dominance check: just walk up the
2814   // single-predecessors chain from the current insertion point.
2815   llvm::BasicBlock *StoreBB = store->getParent();
2816   llvm::BasicBlock *IP = CGF.Builder.GetInsertBlock();
2817   while (IP != StoreBB) {
2818     if (!(IP = IP->getSinglePredecessor()))
2819       return nullptr;
2820   }
2821 
2822   // Okay, the store's basic block dominates the insertion point; we
2823   // can do our thing.
2824   return store;
2825 }
2826 
2827 void CodeGenFunction::EmitFunctionEpilog(const CGFunctionInfo &FI,
2828                                          bool EmitRetDbgLoc,
2829                                          SourceLocation EndLoc) {
2830   if (FI.isNoReturn()) {
2831     // Noreturn functions don't return.
2832     EmitUnreachable(EndLoc);
2833     return;
2834   }
2835 
2836   if (CurCodeDecl && CurCodeDecl->hasAttr<NakedAttr>()) {
2837     // Naked functions don't have epilogues.
2838     Builder.CreateUnreachable();
2839     return;
2840   }
2841 
2842   // Functions with no result always return void.
2843   if (!ReturnValue.isValid()) {
2844     Builder.CreateRetVoid();
2845     return;
2846   }
2847 
2848   llvm::DebugLoc RetDbgLoc;
2849   llvm::Value *RV = nullptr;
2850   QualType RetTy = FI.getReturnType();
2851   const ABIArgInfo &RetAI = FI.getReturnInfo();
2852 
2853   switch (RetAI.getKind()) {
2854   case ABIArgInfo::InAlloca:
2855     // Aggregrates get evaluated directly into the destination.  Sometimes we
2856     // need to return the sret value in a register, though.
2857     assert(hasAggregateEvaluationKind(RetTy));
2858     if (RetAI.getInAllocaSRet()) {
2859       llvm::Function::arg_iterator EI = CurFn->arg_end();
2860       --EI;
2861       llvm::Value *ArgStruct = &*EI;
2862       llvm::Value *SRet = Builder.CreateStructGEP(
2863           nullptr, ArgStruct, RetAI.getInAllocaFieldIndex());
2864       RV = Builder.CreateAlignedLoad(SRet, getPointerAlign(), "sret");
2865     }
2866     break;
2867 
2868   case ABIArgInfo::Indirect: {
2869     auto AI = CurFn->arg_begin();
2870     if (RetAI.isSRetAfterThis())
2871       ++AI;
2872     switch (getEvaluationKind(RetTy)) {
2873     case TEK_Complex: {
2874       ComplexPairTy RT =
2875         EmitLoadOfComplex(MakeAddrLValue(ReturnValue, RetTy), EndLoc);
2876       EmitStoreOfComplex(RT, MakeNaturalAlignAddrLValue(&*AI, RetTy),
2877                          /*isInit*/ true);
2878       break;
2879     }
2880     case TEK_Aggregate:
2881       // Do nothing; aggregrates get evaluated directly into the destination.
2882       break;
2883     case TEK_Scalar:
2884       EmitStoreOfScalar(Builder.CreateLoad(ReturnValue),
2885                         MakeNaturalAlignAddrLValue(&*AI, RetTy),
2886                         /*isInit*/ true);
2887       break;
2888     }
2889     break;
2890   }
2891 
2892   case ABIArgInfo::Extend:
2893   case ABIArgInfo::Direct:
2894     if (RetAI.getCoerceToType() == ConvertType(RetTy) &&
2895         RetAI.getDirectOffset() == 0) {
2896       // The internal return value temp always will have pointer-to-return-type
2897       // type, just do a load.
2898 
2899       // If there is a dominating store to ReturnValue, we can elide
2900       // the load, zap the store, and usually zap the alloca.
2901       if (llvm::StoreInst *SI =
2902               findDominatingStoreToReturnValue(*this)) {
2903         // Reuse the debug location from the store unless there is
2904         // cleanup code to be emitted between the store and return
2905         // instruction.
2906         if (EmitRetDbgLoc && !AutoreleaseResult)
2907           RetDbgLoc = SI->getDebugLoc();
2908         // Get the stored value and nuke the now-dead store.
2909         RV = SI->getValueOperand();
2910         SI->eraseFromParent();
2911 
2912       // Otherwise, we have to do a simple load.
2913       } else {
2914         RV = Builder.CreateLoad(ReturnValue);
2915       }
2916     } else {
2917       // If the value is offset in memory, apply the offset now.
2918       Address V = emitAddressAtOffset(*this, ReturnValue, RetAI);
2919 
2920       RV = CreateCoercedLoad(V, RetAI.getCoerceToType(), *this);
2921     }
2922 
2923     // In ARC, end functions that return a retainable type with a call
2924     // to objc_autoreleaseReturnValue.
2925     if (AutoreleaseResult) {
2926 #ifndef NDEBUG
2927       // Type::isObjCRetainabletype has to be called on a QualType that hasn't
2928       // been stripped of the typedefs, so we cannot use RetTy here. Get the
2929       // original return type of FunctionDecl, CurCodeDecl, and BlockDecl from
2930       // CurCodeDecl or BlockInfo.
2931       QualType RT;
2932 
2933       if (auto *FD = dyn_cast<FunctionDecl>(CurCodeDecl))
2934         RT = FD->getReturnType();
2935       else if (auto *MD = dyn_cast<ObjCMethodDecl>(CurCodeDecl))
2936         RT = MD->getReturnType();
2937       else if (isa<BlockDecl>(CurCodeDecl))
2938         RT = BlockInfo->BlockExpression->getFunctionType()->getReturnType();
2939       else
2940         llvm_unreachable("Unexpected function/method type");
2941 
2942       assert(getLangOpts().ObjCAutoRefCount &&
2943              !FI.isReturnsRetained() &&
2944              RT->isObjCRetainableType());
2945 #endif
2946       RV = emitAutoreleaseOfResult(*this, RV);
2947     }
2948 
2949     break;
2950 
2951   case ABIArgInfo::Ignore:
2952     break;
2953 
2954   case ABIArgInfo::CoerceAndExpand: {
2955     auto coercionType = RetAI.getCoerceAndExpandType();
2956 
2957     // Load all of the coerced elements out into results.
2958     llvm::SmallVector<llvm::Value*, 4> results;
2959     Address addr = Builder.CreateElementBitCast(ReturnValue, coercionType);
2960     for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) {
2961       auto coercedEltType = coercionType->getElementType(i);
2962       if (ABIArgInfo::isPaddingForCoerceAndExpand(coercedEltType))
2963         continue;
2964 
2965       auto eltAddr = Builder.CreateStructGEP(addr, i);
2966       auto elt = Builder.CreateLoad(eltAddr);
2967       results.push_back(elt);
2968     }
2969 
2970     // If we have one result, it's the single direct result type.
2971     if (results.size() == 1) {
2972       RV = results[0];
2973 
2974     // Otherwise, we need to make a first-class aggregate.
2975     } else {
2976       // Construct a return type that lacks padding elements.
2977       llvm::Type *returnType = RetAI.getUnpaddedCoerceAndExpandType();
2978 
2979       RV = llvm::UndefValue::get(returnType);
2980       for (unsigned i = 0, e = results.size(); i != e; ++i) {
2981         RV = Builder.CreateInsertValue(RV, results[i], i);
2982       }
2983     }
2984     break;
2985   }
2986 
2987   case ABIArgInfo::Expand:
2988     llvm_unreachable("Invalid ABI kind for return argument");
2989   }
2990 
2991   llvm::Instruction *Ret;
2992   if (RV) {
2993     EmitReturnValueCheck(RV);
2994     Ret = Builder.CreateRet(RV);
2995   } else {
2996     Ret = Builder.CreateRetVoid();
2997   }
2998 
2999   if (RetDbgLoc)
3000     Ret->setDebugLoc(std::move(RetDbgLoc));
3001 }
3002 
3003 void CodeGenFunction::EmitReturnValueCheck(llvm::Value *RV) {
3004   // A current decl may not be available when emitting vtable thunks.
3005   if (!CurCodeDecl)
3006     return;
3007 
3008   ReturnsNonNullAttr *RetNNAttr = nullptr;
3009   if (SanOpts.has(SanitizerKind::ReturnsNonnullAttribute))
3010     RetNNAttr = CurCodeDecl->getAttr<ReturnsNonNullAttr>();
3011 
3012   if (!RetNNAttr && !requiresReturnValueNullabilityCheck())
3013     return;
3014 
3015   // Prefer the returns_nonnull attribute if it's present.
3016   SourceLocation AttrLoc;
3017   SanitizerMask CheckKind;
3018   SanitizerHandler Handler;
3019   if (RetNNAttr) {
3020     assert(!requiresReturnValueNullabilityCheck() &&
3021            "Cannot check nullability and the nonnull attribute");
3022     AttrLoc = RetNNAttr->getLocation();
3023     CheckKind = SanitizerKind::ReturnsNonnullAttribute;
3024     Handler = SanitizerHandler::NonnullReturn;
3025   } else {
3026     if (auto *DD = dyn_cast<DeclaratorDecl>(CurCodeDecl))
3027       if (auto *TSI = DD->getTypeSourceInfo())
3028         if (auto FTL = TSI->getTypeLoc().castAs<FunctionTypeLoc>())
3029           AttrLoc = FTL.getReturnLoc().findNullabilityLoc();
3030     CheckKind = SanitizerKind::NullabilityReturn;
3031     Handler = SanitizerHandler::NullabilityReturn;
3032   }
3033 
3034   SanitizerScope SanScope(this);
3035 
3036   // Make sure the "return" source location is valid. If we're checking a
3037   // nullability annotation, make sure the preconditions for the check are met.
3038   llvm::BasicBlock *Check = createBasicBlock("nullcheck");
3039   llvm::BasicBlock *NoCheck = createBasicBlock("no.nullcheck");
3040   llvm::Value *SLocPtr = Builder.CreateLoad(ReturnLocation, "return.sloc.load");
3041   llvm::Value *CanNullCheck = Builder.CreateIsNotNull(SLocPtr);
3042   if (requiresReturnValueNullabilityCheck())
3043     CanNullCheck =
3044         Builder.CreateAnd(CanNullCheck, RetValNullabilityPrecondition);
3045   Builder.CreateCondBr(CanNullCheck, Check, NoCheck);
3046   EmitBlock(Check);
3047 
3048   // Now do the null check.
3049   llvm::Value *Cond = Builder.CreateIsNotNull(RV);
3050   llvm::Constant *StaticData[] = {EmitCheckSourceLocation(AttrLoc)};
3051   llvm::Value *DynamicData[] = {SLocPtr};
3052   EmitCheck(std::make_pair(Cond, CheckKind), Handler, StaticData, DynamicData);
3053 
3054   EmitBlock(NoCheck);
3055 
3056 #ifndef NDEBUG
3057   // The return location should not be used after the check has been emitted.
3058   ReturnLocation = Address::invalid();
3059 #endif
3060 }
3061 
3062 static bool isInAllocaArgument(CGCXXABI &ABI, QualType type) {
3063   const CXXRecordDecl *RD = type->getAsCXXRecordDecl();
3064   return RD && ABI.getRecordArgABI(RD) == CGCXXABI::RAA_DirectInMemory;
3065 }
3066 
3067 static AggValueSlot createPlaceholderSlot(CodeGenFunction &CGF,
3068                                           QualType Ty) {
3069   // FIXME: Generate IR in one pass, rather than going back and fixing up these
3070   // placeholders.
3071   llvm::Type *IRTy = CGF.ConvertTypeForMem(Ty);
3072   llvm::Type *IRPtrTy = IRTy->getPointerTo();
3073   llvm::Value *Placeholder = llvm::UndefValue::get(IRPtrTy->getPointerTo());
3074 
3075   // FIXME: When we generate this IR in one pass, we shouldn't need
3076   // this win32-specific alignment hack.
3077   CharUnits Align = CharUnits::fromQuantity(4);
3078   Placeholder = CGF.Builder.CreateAlignedLoad(IRPtrTy, Placeholder, Align);
3079 
3080   return AggValueSlot::forAddr(Address(Placeholder, Align),
3081                                Ty.getQualifiers(),
3082                                AggValueSlot::IsNotDestructed,
3083                                AggValueSlot::DoesNotNeedGCBarriers,
3084                                AggValueSlot::IsNotAliased,
3085                                AggValueSlot::DoesNotOverlap);
3086 }
3087 
3088 void CodeGenFunction::EmitDelegateCallArg(CallArgList &args,
3089                                           const VarDecl *param,
3090                                           SourceLocation loc) {
3091   // StartFunction converted the ABI-lowered parameter(s) into a
3092   // local alloca.  We need to turn that into an r-value suitable
3093   // for EmitCall.
3094   Address local = GetAddrOfLocalVar(param);
3095 
3096   QualType type = param->getType();
3097 
3098   if (isInAllocaArgument(CGM.getCXXABI(), type)) {
3099     CGM.ErrorUnsupported(param, "forwarded non-trivially copyable parameter");
3100   }
3101 
3102   // GetAddrOfLocalVar returns a pointer-to-pointer for references,
3103   // but the argument needs to be the original pointer.
3104   if (type->isReferenceType()) {
3105     args.add(RValue::get(Builder.CreateLoad(local)), type);
3106 
3107   // In ARC, move out of consumed arguments so that the release cleanup
3108   // entered by StartFunction doesn't cause an over-release.  This isn't
3109   // optimal -O0 code generation, but it should get cleaned up when
3110   // optimization is enabled.  This also assumes that delegate calls are
3111   // performed exactly once for a set of arguments, but that should be safe.
3112   } else if (getLangOpts().ObjCAutoRefCount &&
3113              param->hasAttr<NSConsumedAttr>() &&
3114              type->isObjCRetainableType()) {
3115     llvm::Value *ptr = Builder.CreateLoad(local);
3116     auto null =
3117       llvm::ConstantPointerNull::get(cast<llvm::PointerType>(ptr->getType()));
3118     Builder.CreateStore(null, local);
3119     args.add(RValue::get(ptr), type);
3120 
3121   // For the most part, we just need to load the alloca, except that
3122   // aggregate r-values are actually pointers to temporaries.
3123   } else {
3124     args.add(convertTempToRValue(local, type, loc), type);
3125   }
3126 
3127   // Deactivate the cleanup for the callee-destructed param that was pushed.
3128   if (hasAggregateEvaluationKind(type) && !CurFuncIsThunk &&
3129       type->castAs<RecordType>()->getDecl()->isParamDestroyedInCallee() &&
3130       param->needsDestruction(getContext())) {
3131     EHScopeStack::stable_iterator cleanup =
3132         CalleeDestructedParamCleanups.lookup(cast<ParmVarDecl>(param));
3133     assert(cleanup.isValid() &&
3134            "cleanup for callee-destructed param not recorded");
3135     // This unreachable is a temporary marker which will be removed later.
3136     llvm::Instruction *isActive = Builder.CreateUnreachable();
3137     args.addArgCleanupDeactivation(cleanup, isActive);
3138   }
3139 }
3140 
3141 static bool isProvablyNull(llvm::Value *addr) {
3142   return isa<llvm::ConstantPointerNull>(addr);
3143 }
3144 
3145 /// Emit the actual writing-back of a writeback.
3146 static void emitWriteback(CodeGenFunction &CGF,
3147                           const CallArgList::Writeback &writeback) {
3148   const LValue &srcLV = writeback.Source;
3149   Address srcAddr = srcLV.getAddress(CGF);
3150   assert(!isProvablyNull(srcAddr.getPointer()) &&
3151          "shouldn't have writeback for provably null argument");
3152 
3153   llvm::BasicBlock *contBB = nullptr;
3154 
3155   // If the argument wasn't provably non-null, we need to null check
3156   // before doing the store.
3157   bool provablyNonNull = llvm::isKnownNonZero(srcAddr.getPointer(),
3158                                               CGF.CGM.getDataLayout());
3159   if (!provablyNonNull) {
3160     llvm::BasicBlock *writebackBB = CGF.createBasicBlock("icr.writeback");
3161     contBB = CGF.createBasicBlock("icr.done");
3162 
3163     llvm::Value *isNull =
3164       CGF.Builder.CreateIsNull(srcAddr.getPointer(), "icr.isnull");
3165     CGF.Builder.CreateCondBr(isNull, contBB, writebackBB);
3166     CGF.EmitBlock(writebackBB);
3167   }
3168 
3169   // Load the value to writeback.
3170   llvm::Value *value = CGF.Builder.CreateLoad(writeback.Temporary);
3171 
3172   // Cast it back, in case we're writing an id to a Foo* or something.
3173   value = CGF.Builder.CreateBitCast(value, srcAddr.getElementType(),
3174                                     "icr.writeback-cast");
3175 
3176   // Perform the writeback.
3177 
3178   // If we have a "to use" value, it's something we need to emit a use
3179   // of.  This has to be carefully threaded in: if it's done after the
3180   // release it's potentially undefined behavior (and the optimizer
3181   // will ignore it), and if it happens before the retain then the
3182   // optimizer could move the release there.
3183   if (writeback.ToUse) {
3184     assert(srcLV.getObjCLifetime() == Qualifiers::OCL_Strong);
3185 
3186     // Retain the new value.  No need to block-copy here:  the block's
3187     // being passed up the stack.
3188     value = CGF.EmitARCRetainNonBlock(value);
3189 
3190     // Emit the intrinsic use here.
3191     CGF.EmitARCIntrinsicUse(writeback.ToUse);
3192 
3193     // Load the old value (primitively).
3194     llvm::Value *oldValue = CGF.EmitLoadOfScalar(srcLV, SourceLocation());
3195 
3196     // Put the new value in place (primitively).
3197     CGF.EmitStoreOfScalar(value, srcLV, /*init*/ false);
3198 
3199     // Release the old value.
3200     CGF.EmitARCRelease(oldValue, srcLV.isARCPreciseLifetime());
3201 
3202   // Otherwise, we can just do a normal lvalue store.
3203   } else {
3204     CGF.EmitStoreThroughLValue(RValue::get(value), srcLV);
3205   }
3206 
3207   // Jump to the continuation block.
3208   if (!provablyNonNull)
3209     CGF.EmitBlock(contBB);
3210 }
3211 
3212 static void emitWritebacks(CodeGenFunction &CGF,
3213                            const CallArgList &args) {
3214   for (const auto &I : args.writebacks())
3215     emitWriteback(CGF, I);
3216 }
3217 
3218 static void deactivateArgCleanupsBeforeCall(CodeGenFunction &CGF,
3219                                             const CallArgList &CallArgs) {
3220   ArrayRef<CallArgList::CallArgCleanup> Cleanups =
3221     CallArgs.getCleanupsToDeactivate();
3222   // Iterate in reverse to increase the likelihood of popping the cleanup.
3223   for (const auto &I : llvm::reverse(Cleanups)) {
3224     CGF.DeactivateCleanupBlock(I.Cleanup, I.IsActiveIP);
3225     I.IsActiveIP->eraseFromParent();
3226   }
3227 }
3228 
3229 static const Expr *maybeGetUnaryAddrOfOperand(const Expr *E) {
3230   if (const UnaryOperator *uop = dyn_cast<UnaryOperator>(E->IgnoreParens()))
3231     if (uop->getOpcode() == UO_AddrOf)
3232       return uop->getSubExpr();
3233   return nullptr;
3234 }
3235 
3236 /// Emit an argument that's being passed call-by-writeback.  That is,
3237 /// we are passing the address of an __autoreleased temporary; it
3238 /// might be copy-initialized with the current value of the given
3239 /// address, but it will definitely be copied out of after the call.
3240 static void emitWritebackArg(CodeGenFunction &CGF, CallArgList &args,
3241                              const ObjCIndirectCopyRestoreExpr *CRE) {
3242   LValue srcLV;
3243 
3244   // Make an optimistic effort to emit the address as an l-value.
3245   // This can fail if the argument expression is more complicated.
3246   if (const Expr *lvExpr = maybeGetUnaryAddrOfOperand(CRE->getSubExpr())) {
3247     srcLV = CGF.EmitLValue(lvExpr);
3248 
3249   // Otherwise, just emit it as a scalar.
3250   } else {
3251     Address srcAddr = CGF.EmitPointerWithAlignment(CRE->getSubExpr());
3252 
3253     QualType srcAddrType =
3254       CRE->getSubExpr()->getType()->castAs<PointerType>()->getPointeeType();
3255     srcLV = CGF.MakeAddrLValue(srcAddr, srcAddrType);
3256   }
3257   Address srcAddr = srcLV.getAddress(CGF);
3258 
3259   // The dest and src types don't necessarily match in LLVM terms
3260   // because of the crazy ObjC compatibility rules.
3261 
3262   llvm::PointerType *destType =
3263     cast<llvm::PointerType>(CGF.ConvertType(CRE->getType()));
3264 
3265   // If the address is a constant null, just pass the appropriate null.
3266   if (isProvablyNull(srcAddr.getPointer())) {
3267     args.add(RValue::get(llvm::ConstantPointerNull::get(destType)),
3268              CRE->getType());
3269     return;
3270   }
3271 
3272   // Create the temporary.
3273   Address temp = CGF.CreateTempAlloca(destType->getElementType(),
3274                                       CGF.getPointerAlign(),
3275                                       "icr.temp");
3276   // Loading an l-value can introduce a cleanup if the l-value is __weak,
3277   // and that cleanup will be conditional if we can't prove that the l-value
3278   // isn't null, so we need to register a dominating point so that the cleanups
3279   // system will make valid IR.
3280   CodeGenFunction::ConditionalEvaluation condEval(CGF);
3281 
3282   // Zero-initialize it if we're not doing a copy-initialization.
3283   bool shouldCopy = CRE->shouldCopy();
3284   if (!shouldCopy) {
3285     llvm::Value *null =
3286       llvm::ConstantPointerNull::get(
3287         cast<llvm::PointerType>(destType->getElementType()));
3288     CGF.Builder.CreateStore(null, temp);
3289   }
3290 
3291   llvm::BasicBlock *contBB = nullptr;
3292   llvm::BasicBlock *originBB = nullptr;
3293 
3294   // If the address is *not* known to be non-null, we need to switch.
3295   llvm::Value *finalArgument;
3296 
3297   bool provablyNonNull = llvm::isKnownNonZero(srcAddr.getPointer(),
3298                                               CGF.CGM.getDataLayout());
3299   if (provablyNonNull) {
3300     finalArgument = temp.getPointer();
3301   } else {
3302     llvm::Value *isNull =
3303       CGF.Builder.CreateIsNull(srcAddr.getPointer(), "icr.isnull");
3304 
3305     finalArgument = CGF.Builder.CreateSelect(isNull,
3306                                    llvm::ConstantPointerNull::get(destType),
3307                                              temp.getPointer(), "icr.argument");
3308 
3309     // If we need to copy, then the load has to be conditional, which
3310     // means we need control flow.
3311     if (shouldCopy) {
3312       originBB = CGF.Builder.GetInsertBlock();
3313       contBB = CGF.createBasicBlock("icr.cont");
3314       llvm::BasicBlock *copyBB = CGF.createBasicBlock("icr.copy");
3315       CGF.Builder.CreateCondBr(isNull, contBB, copyBB);
3316       CGF.EmitBlock(copyBB);
3317       condEval.begin(CGF);
3318     }
3319   }
3320 
3321   llvm::Value *valueToUse = nullptr;
3322 
3323   // Perform a copy if necessary.
3324   if (shouldCopy) {
3325     RValue srcRV = CGF.EmitLoadOfLValue(srcLV, SourceLocation());
3326     assert(srcRV.isScalar());
3327 
3328     llvm::Value *src = srcRV.getScalarVal();
3329     src = CGF.Builder.CreateBitCast(src, destType->getElementType(),
3330                                     "icr.cast");
3331 
3332     // Use an ordinary store, not a store-to-lvalue.
3333     CGF.Builder.CreateStore(src, temp);
3334 
3335     // If optimization is enabled, and the value was held in a
3336     // __strong variable, we need to tell the optimizer that this
3337     // value has to stay alive until we're doing the store back.
3338     // This is because the temporary is effectively unretained,
3339     // and so otherwise we can violate the high-level semantics.
3340     if (CGF.CGM.getCodeGenOpts().OptimizationLevel != 0 &&
3341         srcLV.getObjCLifetime() == Qualifiers::OCL_Strong) {
3342       valueToUse = src;
3343     }
3344   }
3345 
3346   // Finish the control flow if we needed it.
3347   if (shouldCopy && !provablyNonNull) {
3348     llvm::BasicBlock *copyBB = CGF.Builder.GetInsertBlock();
3349     CGF.EmitBlock(contBB);
3350 
3351     // Make a phi for the value to intrinsically use.
3352     if (valueToUse) {
3353       llvm::PHINode *phiToUse = CGF.Builder.CreatePHI(valueToUse->getType(), 2,
3354                                                       "icr.to-use");
3355       phiToUse->addIncoming(valueToUse, copyBB);
3356       phiToUse->addIncoming(llvm::UndefValue::get(valueToUse->getType()),
3357                             originBB);
3358       valueToUse = phiToUse;
3359     }
3360 
3361     condEval.end(CGF);
3362   }
3363 
3364   args.addWriteback(srcLV, temp, valueToUse);
3365   args.add(RValue::get(finalArgument), CRE->getType());
3366 }
3367 
3368 void CallArgList::allocateArgumentMemory(CodeGenFunction &CGF) {
3369   assert(!StackBase);
3370 
3371   // Save the stack.
3372   llvm::Function *F = CGF.CGM.getIntrinsic(llvm::Intrinsic::stacksave);
3373   StackBase = CGF.Builder.CreateCall(F, {}, "inalloca.save");
3374 }
3375 
3376 void CallArgList::freeArgumentMemory(CodeGenFunction &CGF) const {
3377   if (StackBase) {
3378     // Restore the stack after the call.
3379     llvm::Function *F = CGF.CGM.getIntrinsic(llvm::Intrinsic::stackrestore);
3380     CGF.Builder.CreateCall(F, StackBase);
3381   }
3382 }
3383 
3384 void CodeGenFunction::EmitNonNullArgCheck(RValue RV, QualType ArgType,
3385                                           SourceLocation ArgLoc,
3386                                           AbstractCallee AC,
3387                                           unsigned ParmNum) {
3388   if (!AC.getDecl() || !(SanOpts.has(SanitizerKind::NonnullAttribute) ||
3389                          SanOpts.has(SanitizerKind::NullabilityArg)))
3390     return;
3391 
3392   // The param decl may be missing in a variadic function.
3393   auto PVD = ParmNum < AC.getNumParams() ? AC.getParamDecl(ParmNum) : nullptr;
3394   unsigned ArgNo = PVD ? PVD->getFunctionScopeIndex() : ParmNum;
3395 
3396   // Prefer the nonnull attribute if it's present.
3397   const NonNullAttr *NNAttr = nullptr;
3398   if (SanOpts.has(SanitizerKind::NonnullAttribute))
3399     NNAttr = getNonNullAttr(AC.getDecl(), PVD, ArgType, ArgNo);
3400 
3401   bool CanCheckNullability = false;
3402   if (SanOpts.has(SanitizerKind::NullabilityArg) && !NNAttr && PVD) {
3403     auto Nullability = PVD->getType()->getNullability(getContext());
3404     CanCheckNullability = Nullability &&
3405                           *Nullability == NullabilityKind::NonNull &&
3406                           PVD->getTypeSourceInfo();
3407   }
3408 
3409   if (!NNAttr && !CanCheckNullability)
3410     return;
3411 
3412   SourceLocation AttrLoc;
3413   SanitizerMask CheckKind;
3414   SanitizerHandler Handler;
3415   if (NNAttr) {
3416     AttrLoc = NNAttr->getLocation();
3417     CheckKind = SanitizerKind::NonnullAttribute;
3418     Handler = SanitizerHandler::NonnullArg;
3419   } else {
3420     AttrLoc = PVD->getTypeSourceInfo()->getTypeLoc().findNullabilityLoc();
3421     CheckKind = SanitizerKind::NullabilityArg;
3422     Handler = SanitizerHandler::NullabilityArg;
3423   }
3424 
3425   SanitizerScope SanScope(this);
3426   assert(RV.isScalar());
3427   llvm::Value *V = RV.getScalarVal();
3428   llvm::Value *Cond =
3429       Builder.CreateICmpNE(V, llvm::Constant::getNullValue(V->getType()));
3430   llvm::Constant *StaticData[] = {
3431       EmitCheckSourceLocation(ArgLoc), EmitCheckSourceLocation(AttrLoc),
3432       llvm::ConstantInt::get(Int32Ty, ArgNo + 1),
3433   };
3434   EmitCheck(std::make_pair(Cond, CheckKind), Handler, StaticData, None);
3435 }
3436 
3437 void CodeGenFunction::EmitCallArgs(
3438     CallArgList &Args, ArrayRef<QualType> ArgTypes,
3439     llvm::iterator_range<CallExpr::const_arg_iterator> ArgRange,
3440     AbstractCallee AC, unsigned ParamsToSkip, EvaluationOrder Order) {
3441   assert((int)ArgTypes.size() == (ArgRange.end() - ArgRange.begin()));
3442 
3443   // We *have* to evaluate arguments from right to left in the MS C++ ABI,
3444   // because arguments are destroyed left to right in the callee. As a special
3445   // case, there are certain language constructs that require left-to-right
3446   // evaluation, and in those cases we consider the evaluation order requirement
3447   // to trump the "destruction order is reverse construction order" guarantee.
3448   bool LeftToRight =
3449       CGM.getTarget().getCXXABI().areArgsDestroyedLeftToRightInCallee()
3450           ? Order == EvaluationOrder::ForceLeftToRight
3451           : Order != EvaluationOrder::ForceRightToLeft;
3452 
3453   auto MaybeEmitImplicitObjectSize = [&](unsigned I, const Expr *Arg,
3454                                          RValue EmittedArg) {
3455     if (!AC.hasFunctionDecl() || I >= AC.getNumParams())
3456       return;
3457     auto *PS = AC.getParamDecl(I)->getAttr<PassObjectSizeAttr>();
3458     if (PS == nullptr)
3459       return;
3460 
3461     const auto &Context = getContext();
3462     auto SizeTy = Context.getSizeType();
3463     auto T = Builder.getIntNTy(Context.getTypeSize(SizeTy));
3464     assert(EmittedArg.getScalarVal() && "We emitted nothing for the arg?");
3465     llvm::Value *V = evaluateOrEmitBuiltinObjectSize(Arg, PS->getType(), T,
3466                                                      EmittedArg.getScalarVal(),
3467                                                      PS->isDynamic());
3468     Args.add(RValue::get(V), SizeTy);
3469     // If we're emitting args in reverse, be sure to do so with
3470     // pass_object_size, as well.
3471     if (!LeftToRight)
3472       std::swap(Args.back(), *(&Args.back() - 1));
3473   };
3474 
3475   // Insert a stack save if we're going to need any inalloca args.
3476   bool HasInAllocaArgs = false;
3477   if (CGM.getTarget().getCXXABI().isMicrosoft()) {
3478     for (ArrayRef<QualType>::iterator I = ArgTypes.begin(), E = ArgTypes.end();
3479          I != E && !HasInAllocaArgs; ++I)
3480       HasInAllocaArgs = isInAllocaArgument(CGM.getCXXABI(), *I);
3481     if (HasInAllocaArgs) {
3482       assert(getTarget().getTriple().getArch() == llvm::Triple::x86);
3483       Args.allocateArgumentMemory(*this);
3484     }
3485   }
3486 
3487   // Evaluate each argument in the appropriate order.
3488   size_t CallArgsStart = Args.size();
3489   for (unsigned I = 0, E = ArgTypes.size(); I != E; ++I) {
3490     unsigned Idx = LeftToRight ? I : E - I - 1;
3491     CallExpr::const_arg_iterator Arg = ArgRange.begin() + Idx;
3492     unsigned InitialArgSize = Args.size();
3493     // If *Arg is an ObjCIndirectCopyRestoreExpr, check that either the types of
3494     // the argument and parameter match or the objc method is parameterized.
3495     assert((!isa<ObjCIndirectCopyRestoreExpr>(*Arg) ||
3496             getContext().hasSameUnqualifiedType((*Arg)->getType(),
3497                                                 ArgTypes[Idx]) ||
3498             (isa<ObjCMethodDecl>(AC.getDecl()) &&
3499              isObjCMethodWithTypeParams(cast<ObjCMethodDecl>(AC.getDecl())))) &&
3500            "Argument and parameter types don't match");
3501     EmitCallArg(Args, *Arg, ArgTypes[Idx]);
3502     // In particular, we depend on it being the last arg in Args, and the
3503     // objectsize bits depend on there only being one arg if !LeftToRight.
3504     assert(InitialArgSize + 1 == Args.size() &&
3505            "The code below depends on only adding one arg per EmitCallArg");
3506     (void)InitialArgSize;
3507     // Since pointer argument are never emitted as LValue, it is safe to emit
3508     // non-null argument check for r-value only.
3509     if (!Args.back().hasLValue()) {
3510       RValue RVArg = Args.back().getKnownRValue();
3511       EmitNonNullArgCheck(RVArg, ArgTypes[Idx], (*Arg)->getExprLoc(), AC,
3512                           ParamsToSkip + Idx);
3513       // @llvm.objectsize should never have side-effects and shouldn't need
3514       // destruction/cleanups, so we can safely "emit" it after its arg,
3515       // regardless of right-to-leftness
3516       MaybeEmitImplicitObjectSize(Idx, *Arg, RVArg);
3517     }
3518   }
3519 
3520   if (!LeftToRight) {
3521     // Un-reverse the arguments we just evaluated so they match up with the LLVM
3522     // IR function.
3523     std::reverse(Args.begin() + CallArgsStart, Args.end());
3524   }
3525 }
3526 
3527 namespace {
3528 
3529 struct DestroyUnpassedArg final : EHScopeStack::Cleanup {
3530   DestroyUnpassedArg(Address Addr, QualType Ty)
3531       : Addr(Addr), Ty(Ty) {}
3532 
3533   Address Addr;
3534   QualType Ty;
3535 
3536   void Emit(CodeGenFunction &CGF, Flags flags) override {
3537     QualType::DestructionKind DtorKind = Ty.isDestructedType();
3538     if (DtorKind == QualType::DK_cxx_destructor) {
3539       const CXXDestructorDecl *Dtor = Ty->getAsCXXRecordDecl()->getDestructor();
3540       assert(!Dtor->isTrivial());
3541       CGF.EmitCXXDestructorCall(Dtor, Dtor_Complete, /*for vbase*/ false,
3542                                 /*Delegating=*/false, Addr, Ty);
3543     } else {
3544       CGF.callCStructDestructor(CGF.MakeAddrLValue(Addr, Ty));
3545     }
3546   }
3547 };
3548 
3549 struct DisableDebugLocationUpdates {
3550   CodeGenFunction &CGF;
3551   bool disabledDebugInfo;
3552   DisableDebugLocationUpdates(CodeGenFunction &CGF, const Expr *E) : CGF(CGF) {
3553     if ((disabledDebugInfo = isa<CXXDefaultArgExpr>(E) && CGF.getDebugInfo()))
3554       CGF.disableDebugInfo();
3555   }
3556   ~DisableDebugLocationUpdates() {
3557     if (disabledDebugInfo)
3558       CGF.enableDebugInfo();
3559   }
3560 };
3561 
3562 } // end anonymous namespace
3563 
3564 RValue CallArg::getRValue(CodeGenFunction &CGF) const {
3565   if (!HasLV)
3566     return RV;
3567   LValue Copy = CGF.MakeAddrLValue(CGF.CreateMemTemp(Ty), Ty);
3568   CGF.EmitAggregateCopy(Copy, LV, Ty, AggValueSlot::DoesNotOverlap,
3569                         LV.isVolatile());
3570   IsUsed = true;
3571   return RValue::getAggregate(Copy.getAddress(CGF));
3572 }
3573 
3574 void CallArg::copyInto(CodeGenFunction &CGF, Address Addr) const {
3575   LValue Dst = CGF.MakeAddrLValue(Addr, Ty);
3576   if (!HasLV && RV.isScalar())
3577     CGF.EmitStoreOfScalar(RV.getScalarVal(), Dst, /*isInit=*/true);
3578   else if (!HasLV && RV.isComplex())
3579     CGF.EmitStoreOfComplex(RV.getComplexVal(), Dst, /*init=*/true);
3580   else {
3581     auto Addr = HasLV ? LV.getAddress(CGF) : RV.getAggregateAddress();
3582     LValue SrcLV = CGF.MakeAddrLValue(Addr, Ty);
3583     // We assume that call args are never copied into subobjects.
3584     CGF.EmitAggregateCopy(Dst, SrcLV, Ty, AggValueSlot::DoesNotOverlap,
3585                           HasLV ? LV.isVolatileQualified()
3586                                 : RV.isVolatileQualified());
3587   }
3588   IsUsed = true;
3589 }
3590 
3591 void CodeGenFunction::EmitCallArg(CallArgList &args, const Expr *E,
3592                                   QualType type) {
3593   DisableDebugLocationUpdates Dis(*this, E);
3594   if (const ObjCIndirectCopyRestoreExpr *CRE
3595         = dyn_cast<ObjCIndirectCopyRestoreExpr>(E)) {
3596     assert(getLangOpts().ObjCAutoRefCount);
3597     return emitWritebackArg(*this, args, CRE);
3598   }
3599 
3600   assert(type->isReferenceType() == E->isGLValue() &&
3601          "reference binding to unmaterialized r-value!");
3602 
3603   if (E->isGLValue()) {
3604     assert(E->getObjectKind() == OK_Ordinary);
3605     return args.add(EmitReferenceBindingToExpr(E), type);
3606   }
3607 
3608   bool HasAggregateEvalKind = hasAggregateEvaluationKind(type);
3609 
3610   // In the Microsoft C++ ABI, aggregate arguments are destructed by the callee.
3611   // However, we still have to push an EH-only cleanup in case we unwind before
3612   // we make it to the call.
3613   if (HasAggregateEvalKind &&
3614       type->castAs<RecordType>()->getDecl()->isParamDestroyedInCallee()) {
3615     // If we're using inalloca, use the argument memory.  Otherwise, use a
3616     // temporary.
3617     AggValueSlot Slot;
3618     if (args.isUsingInAlloca())
3619       Slot = createPlaceholderSlot(*this, type);
3620     else
3621       Slot = CreateAggTemp(type, "agg.tmp");
3622 
3623     bool DestroyedInCallee = true, NeedsEHCleanup = true;
3624     if (const auto *RD = type->getAsCXXRecordDecl())
3625       DestroyedInCallee = RD->hasNonTrivialDestructor();
3626     else
3627       NeedsEHCleanup = needsEHCleanup(type.isDestructedType());
3628 
3629     if (DestroyedInCallee)
3630       Slot.setExternallyDestructed();
3631 
3632     EmitAggExpr(E, Slot);
3633     RValue RV = Slot.asRValue();
3634     args.add(RV, type);
3635 
3636     if (DestroyedInCallee && NeedsEHCleanup) {
3637       // Create a no-op GEP between the placeholder and the cleanup so we can
3638       // RAUW it successfully.  It also serves as a marker of the first
3639       // instruction where the cleanup is active.
3640       pushFullExprCleanup<DestroyUnpassedArg>(EHCleanup, Slot.getAddress(),
3641                                               type);
3642       // This unreachable is a temporary marker which will be removed later.
3643       llvm::Instruction *IsActive = Builder.CreateUnreachable();
3644       args.addArgCleanupDeactivation(EHStack.getInnermostEHScope(), IsActive);
3645     }
3646     return;
3647   }
3648 
3649   if (HasAggregateEvalKind && isa<ImplicitCastExpr>(E) &&
3650       cast<CastExpr>(E)->getCastKind() == CK_LValueToRValue) {
3651     LValue L = EmitLValue(cast<CastExpr>(E)->getSubExpr());
3652     assert(L.isSimple());
3653     args.addUncopiedAggregate(L, type);
3654     return;
3655   }
3656 
3657   args.add(EmitAnyExprToTemp(E), type);
3658 }
3659 
3660 QualType CodeGenFunction::getVarArgType(const Expr *Arg) {
3661   // System headers on Windows define NULL to 0 instead of 0LL on Win64. MSVC
3662   // implicitly widens null pointer constants that are arguments to varargs
3663   // functions to pointer-sized ints.
3664   if (!getTarget().getTriple().isOSWindows())
3665     return Arg->getType();
3666 
3667   if (Arg->getType()->isIntegerType() &&
3668       getContext().getTypeSize(Arg->getType()) <
3669           getContext().getTargetInfo().getPointerWidth(0) &&
3670       Arg->isNullPointerConstant(getContext(),
3671                                  Expr::NPC_ValueDependentIsNotNull)) {
3672     return getContext().getIntPtrType();
3673   }
3674 
3675   return Arg->getType();
3676 }
3677 
3678 // In ObjC ARC mode with no ObjC ARC exception safety, tell the ARC
3679 // optimizer it can aggressively ignore unwind edges.
3680 void
3681 CodeGenFunction::AddObjCARCExceptionMetadata(llvm::Instruction *Inst) {
3682   if (CGM.getCodeGenOpts().OptimizationLevel != 0 &&
3683       !CGM.getCodeGenOpts().ObjCAutoRefCountExceptions)
3684     Inst->setMetadata("clang.arc.no_objc_arc_exceptions",
3685                       CGM.getNoObjCARCExceptionsMetadata());
3686 }
3687 
3688 /// Emits a call to the given no-arguments nounwind runtime function.
3689 llvm::CallInst *
3690 CodeGenFunction::EmitNounwindRuntimeCall(llvm::FunctionCallee callee,
3691                                          const llvm::Twine &name) {
3692   return EmitNounwindRuntimeCall(callee, None, name);
3693 }
3694 
3695 /// Emits a call to the given nounwind runtime function.
3696 llvm::CallInst *
3697 CodeGenFunction::EmitNounwindRuntimeCall(llvm::FunctionCallee callee,
3698                                          ArrayRef<llvm::Value *> args,
3699                                          const llvm::Twine &name) {
3700   llvm::CallInst *call = EmitRuntimeCall(callee, args, name);
3701   call->setDoesNotThrow();
3702   return call;
3703 }
3704 
3705 /// Emits a simple call (never an invoke) to the given no-arguments
3706 /// runtime function.
3707 llvm::CallInst *CodeGenFunction::EmitRuntimeCall(llvm::FunctionCallee callee,
3708                                                  const llvm::Twine &name) {
3709   return EmitRuntimeCall(callee, None, name);
3710 }
3711 
3712 // Calls which may throw must have operand bundles indicating which funclet
3713 // they are nested within.
3714 SmallVector<llvm::OperandBundleDef, 1>
3715 CodeGenFunction::getBundlesForFunclet(llvm::Value *Callee) {
3716   SmallVector<llvm::OperandBundleDef, 1> BundleList;
3717   // There is no need for a funclet operand bundle if we aren't inside a
3718   // funclet.
3719   if (!CurrentFuncletPad)
3720     return BundleList;
3721 
3722   // Skip intrinsics which cannot throw.
3723   auto *CalleeFn = dyn_cast<llvm::Function>(Callee->stripPointerCasts());
3724   if (CalleeFn && CalleeFn->isIntrinsic() && CalleeFn->doesNotThrow())
3725     return BundleList;
3726 
3727   BundleList.emplace_back("funclet", CurrentFuncletPad);
3728   return BundleList;
3729 }
3730 
3731 /// Emits a simple call (never an invoke) to the given runtime function.
3732 llvm::CallInst *CodeGenFunction::EmitRuntimeCall(llvm::FunctionCallee callee,
3733                                                  ArrayRef<llvm::Value *> args,
3734                                                  const llvm::Twine &name) {
3735   llvm::CallInst *call = Builder.CreateCall(
3736       callee, args, getBundlesForFunclet(callee.getCallee()), name);
3737   call->setCallingConv(getRuntimeCC());
3738   return call;
3739 }
3740 
3741 /// Emits a call or invoke to the given noreturn runtime function.
3742 void CodeGenFunction::EmitNoreturnRuntimeCallOrInvoke(
3743     llvm::FunctionCallee callee, ArrayRef<llvm::Value *> args) {
3744   SmallVector<llvm::OperandBundleDef, 1> BundleList =
3745       getBundlesForFunclet(callee.getCallee());
3746 
3747   if (getInvokeDest()) {
3748     llvm::InvokeInst *invoke =
3749       Builder.CreateInvoke(callee,
3750                            getUnreachableBlock(),
3751                            getInvokeDest(),
3752                            args,
3753                            BundleList);
3754     invoke->setDoesNotReturn();
3755     invoke->setCallingConv(getRuntimeCC());
3756   } else {
3757     llvm::CallInst *call = Builder.CreateCall(callee, args, BundleList);
3758     call->setDoesNotReturn();
3759     call->setCallingConv(getRuntimeCC());
3760     Builder.CreateUnreachable();
3761   }
3762 }
3763 
3764 /// Emits a call or invoke instruction to the given nullary runtime function.
3765 llvm::CallBase *
3766 CodeGenFunction::EmitRuntimeCallOrInvoke(llvm::FunctionCallee callee,
3767                                          const Twine &name) {
3768   return EmitRuntimeCallOrInvoke(callee, None, name);
3769 }
3770 
3771 /// Emits a call or invoke instruction to the given runtime function.
3772 llvm::CallBase *
3773 CodeGenFunction::EmitRuntimeCallOrInvoke(llvm::FunctionCallee callee,
3774                                          ArrayRef<llvm::Value *> args,
3775                                          const Twine &name) {
3776   llvm::CallBase *call = EmitCallOrInvoke(callee, args, name);
3777   call->setCallingConv(getRuntimeCC());
3778   return call;
3779 }
3780 
3781 /// Emits a call or invoke instruction to the given function, depending
3782 /// on the current state of the EH stack.
3783 llvm::CallBase *CodeGenFunction::EmitCallOrInvoke(llvm::FunctionCallee Callee,
3784                                                   ArrayRef<llvm::Value *> Args,
3785                                                   const Twine &Name) {
3786   llvm::BasicBlock *InvokeDest = getInvokeDest();
3787   SmallVector<llvm::OperandBundleDef, 1> BundleList =
3788       getBundlesForFunclet(Callee.getCallee());
3789 
3790   llvm::CallBase *Inst;
3791   if (!InvokeDest)
3792     Inst = Builder.CreateCall(Callee, Args, BundleList, Name);
3793   else {
3794     llvm::BasicBlock *ContBB = createBasicBlock("invoke.cont");
3795     Inst = Builder.CreateInvoke(Callee, ContBB, InvokeDest, Args, BundleList,
3796                                 Name);
3797     EmitBlock(ContBB);
3798   }
3799 
3800   // In ObjC ARC mode with no ObjC ARC exception safety, tell the ARC
3801   // optimizer it can aggressively ignore unwind edges.
3802   if (CGM.getLangOpts().ObjCAutoRefCount)
3803     AddObjCARCExceptionMetadata(Inst);
3804 
3805   return Inst;
3806 }
3807 
3808 void CodeGenFunction::deferPlaceholderReplacement(llvm::Instruction *Old,
3809                                                   llvm::Value *New) {
3810   DeferredReplacements.push_back(std::make_pair(Old, New));
3811 }
3812 
3813 RValue CodeGenFunction::EmitCall(const CGFunctionInfo &CallInfo,
3814                                  const CGCallee &Callee,
3815                                  ReturnValueSlot ReturnValue,
3816                                  const CallArgList &CallArgs,
3817                                  llvm::CallBase **callOrInvoke,
3818                                  SourceLocation Loc) {
3819   // FIXME: We no longer need the types from CallArgs; lift up and simplify.
3820 
3821   assert(Callee.isOrdinary() || Callee.isVirtual());
3822 
3823   // Handle struct-return functions by passing a pointer to the
3824   // location that we would like to return into.
3825   QualType RetTy = CallInfo.getReturnType();
3826   const ABIArgInfo &RetAI = CallInfo.getReturnInfo();
3827 
3828   llvm::FunctionType *IRFuncTy = getTypes().GetFunctionType(CallInfo);
3829 
3830   const Decl *TargetDecl = Callee.getAbstractInfo().getCalleeDecl().getDecl();
3831   if (const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(TargetDecl))
3832     // We can only guarantee that a function is called from the correct
3833     // context/function based on the appropriate target attributes,
3834     // so only check in the case where we have both always_inline and target
3835     // since otherwise we could be making a conditional call after a check for
3836     // the proper cpu features (and it won't cause code generation issues due to
3837     // function based code generation).
3838     if (TargetDecl->hasAttr<AlwaysInlineAttr>() &&
3839         TargetDecl->hasAttr<TargetAttr>())
3840       checkTargetFeatures(Loc, FD);
3841 
3842 #ifndef NDEBUG
3843   if (!(CallInfo.isVariadic() && CallInfo.getArgStruct())) {
3844     // For an inalloca varargs function, we don't expect CallInfo to match the
3845     // function pointer's type, because the inalloca struct a will have extra
3846     // fields in it for the varargs parameters.  Code later in this function
3847     // bitcasts the function pointer to the type derived from CallInfo.
3848     //
3849     // In other cases, we assert that the types match up (until pointers stop
3850     // having pointee types).
3851     llvm::Type *TypeFromVal;
3852     if (Callee.isVirtual())
3853       TypeFromVal = Callee.getVirtualFunctionType();
3854     else
3855       TypeFromVal =
3856           Callee.getFunctionPointer()->getType()->getPointerElementType();
3857     assert(IRFuncTy == TypeFromVal);
3858   }
3859 #endif
3860 
3861   // 1. Set up the arguments.
3862 
3863   // If we're using inalloca, insert the allocation after the stack save.
3864   // FIXME: Do this earlier rather than hacking it in here!
3865   Address ArgMemory = Address::invalid();
3866   if (llvm::StructType *ArgStruct = CallInfo.getArgStruct()) {
3867     const llvm::DataLayout &DL = CGM.getDataLayout();
3868     llvm::Instruction *IP = CallArgs.getStackBase();
3869     llvm::AllocaInst *AI;
3870     if (IP) {
3871       IP = IP->getNextNode();
3872       AI = new llvm::AllocaInst(ArgStruct, DL.getAllocaAddrSpace(),
3873                                 "argmem", IP);
3874     } else {
3875       AI = CreateTempAlloca(ArgStruct, "argmem");
3876     }
3877     auto Align = CallInfo.getArgStructAlignment();
3878     AI->setAlignment(Align.getAsAlign());
3879     AI->setUsedWithInAlloca(true);
3880     assert(AI->isUsedWithInAlloca() && !AI->isStaticAlloca());
3881     ArgMemory = Address(AI, Align);
3882   }
3883 
3884   ClangToLLVMArgMapping IRFunctionArgs(CGM.getContext(), CallInfo);
3885   SmallVector<llvm::Value *, 16> IRCallArgs(IRFunctionArgs.totalIRArgs());
3886 
3887   // If the call returns a temporary with struct return, create a temporary
3888   // alloca to hold the result, unless one is given to us.
3889   Address SRetPtr = Address::invalid();
3890   Address SRetAlloca = Address::invalid();
3891   llvm::Value *UnusedReturnSizePtr = nullptr;
3892   if (RetAI.isIndirect() || RetAI.isInAlloca() || RetAI.isCoerceAndExpand()) {
3893     if (!ReturnValue.isNull()) {
3894       SRetPtr = ReturnValue.getValue();
3895     } else {
3896       SRetPtr = CreateMemTemp(RetTy, "tmp", &SRetAlloca);
3897       if (HaveInsertPoint() && ReturnValue.isUnused()) {
3898         uint64_t size =
3899             CGM.getDataLayout().getTypeAllocSize(ConvertTypeForMem(RetTy));
3900         UnusedReturnSizePtr = EmitLifetimeStart(size, SRetAlloca.getPointer());
3901       }
3902     }
3903     if (IRFunctionArgs.hasSRetArg()) {
3904       IRCallArgs[IRFunctionArgs.getSRetArgNo()] = SRetPtr.getPointer();
3905     } else if (RetAI.isInAlloca()) {
3906       Address Addr =
3907           Builder.CreateStructGEP(ArgMemory, RetAI.getInAllocaFieldIndex());
3908       Builder.CreateStore(SRetPtr.getPointer(), Addr);
3909     }
3910   }
3911 
3912   Address swiftErrorTemp = Address::invalid();
3913   Address swiftErrorArg = Address::invalid();
3914 
3915   // When passing arguments using temporary allocas, we need to add the
3916   // appropriate lifetime markers. This vector keeps track of all the lifetime
3917   // markers that need to be ended right after the call.
3918   SmallVector<CallLifetimeEnd, 2> CallLifetimeEndAfterCall;
3919 
3920   // Translate all of the arguments as necessary to match the IR lowering.
3921   assert(CallInfo.arg_size() == CallArgs.size() &&
3922          "Mismatch between function signature & arguments.");
3923   unsigned ArgNo = 0;
3924   CGFunctionInfo::const_arg_iterator info_it = CallInfo.arg_begin();
3925   for (CallArgList::const_iterator I = CallArgs.begin(), E = CallArgs.end();
3926        I != E; ++I, ++info_it, ++ArgNo) {
3927     const ABIArgInfo &ArgInfo = info_it->info;
3928 
3929     // Insert a padding argument to ensure proper alignment.
3930     if (IRFunctionArgs.hasPaddingArg(ArgNo))
3931       IRCallArgs[IRFunctionArgs.getPaddingArgNo(ArgNo)] =
3932           llvm::UndefValue::get(ArgInfo.getPaddingType());
3933 
3934     unsigned FirstIRArg, NumIRArgs;
3935     std::tie(FirstIRArg, NumIRArgs) = IRFunctionArgs.getIRArgs(ArgNo);
3936 
3937     switch (ArgInfo.getKind()) {
3938     case ABIArgInfo::InAlloca: {
3939       assert(NumIRArgs == 0);
3940       assert(getTarget().getTriple().getArch() == llvm::Triple::x86);
3941       if (I->isAggregate()) {
3942         // Replace the placeholder with the appropriate argument slot GEP.
3943         Address Addr = I->hasLValue()
3944                            ? I->getKnownLValue().getAddress(*this)
3945                            : I->getKnownRValue().getAggregateAddress();
3946         llvm::Instruction *Placeholder =
3947             cast<llvm::Instruction>(Addr.getPointer());
3948         CGBuilderTy::InsertPoint IP = Builder.saveIP();
3949         Builder.SetInsertPoint(Placeholder);
3950         Addr =
3951             Builder.CreateStructGEP(ArgMemory, ArgInfo.getInAllocaFieldIndex());
3952         Builder.restoreIP(IP);
3953         deferPlaceholderReplacement(Placeholder, Addr.getPointer());
3954       } else {
3955         // Store the RValue into the argument struct.
3956         Address Addr =
3957             Builder.CreateStructGEP(ArgMemory, ArgInfo.getInAllocaFieldIndex());
3958         unsigned AS = Addr.getType()->getPointerAddressSpace();
3959         llvm::Type *MemType = ConvertTypeForMem(I->Ty)->getPointerTo(AS);
3960         // There are some cases where a trivial bitcast is not avoidable.  The
3961         // definition of a type later in a translation unit may change it's type
3962         // from {}* to (%struct.foo*)*.
3963         if (Addr.getType() != MemType)
3964           Addr = Builder.CreateBitCast(Addr, MemType);
3965         I->copyInto(*this, Addr);
3966       }
3967       break;
3968     }
3969 
3970     case ABIArgInfo::Indirect: {
3971       assert(NumIRArgs == 1);
3972       if (!I->isAggregate()) {
3973         // Make a temporary alloca to pass the argument.
3974         Address Addr = CreateMemTempWithoutCast(
3975             I->Ty, ArgInfo.getIndirectAlign(), "indirect-arg-temp");
3976         IRCallArgs[FirstIRArg] = Addr.getPointer();
3977 
3978         I->copyInto(*this, Addr);
3979       } else {
3980         // We want to avoid creating an unnecessary temporary+copy here;
3981         // however, we need one in three cases:
3982         // 1. If the argument is not byval, and we are required to copy the
3983         //    source.  (This case doesn't occur on any common architecture.)
3984         // 2. If the argument is byval, RV is not sufficiently aligned, and
3985         //    we cannot force it to be sufficiently aligned.
3986         // 3. If the argument is byval, but RV is not located in default
3987         //    or alloca address space.
3988         Address Addr = I->hasLValue()
3989                            ? I->getKnownLValue().getAddress(*this)
3990                            : I->getKnownRValue().getAggregateAddress();
3991         llvm::Value *V = Addr.getPointer();
3992         CharUnits Align = ArgInfo.getIndirectAlign();
3993         const llvm::DataLayout *TD = &CGM.getDataLayout();
3994 
3995         assert((FirstIRArg >= IRFuncTy->getNumParams() ||
3996                 IRFuncTy->getParamType(FirstIRArg)->getPointerAddressSpace() ==
3997                     TD->getAllocaAddrSpace()) &&
3998                "indirect argument must be in alloca address space");
3999 
4000         bool NeedCopy = false;
4001 
4002         if (Addr.getAlignment() < Align &&
4003             llvm::getOrEnforceKnownAlignment(V, Align.getQuantity(), *TD) <
4004                 Align.getQuantity()) {
4005           NeedCopy = true;
4006         } else if (I->hasLValue()) {
4007           auto LV = I->getKnownLValue();
4008           auto AS = LV.getAddressSpace();
4009 
4010           if (!ArgInfo.getIndirectByVal() ||
4011               (LV.getAlignment() < getContext().getTypeAlignInChars(I->Ty))) {
4012             NeedCopy = true;
4013           }
4014           if (!getLangOpts().OpenCL) {
4015             if ((ArgInfo.getIndirectByVal() &&
4016                 (AS != LangAS::Default &&
4017                  AS != CGM.getASTAllocaAddressSpace()))) {
4018               NeedCopy = true;
4019             }
4020           }
4021           // For OpenCL even if RV is located in default or alloca address space
4022           // we don't want to perform address space cast for it.
4023           else if ((ArgInfo.getIndirectByVal() &&
4024                     Addr.getType()->getAddressSpace() != IRFuncTy->
4025                       getParamType(FirstIRArg)->getPointerAddressSpace())) {
4026             NeedCopy = true;
4027           }
4028         }
4029 
4030         if (NeedCopy) {
4031           // Create an aligned temporary, and copy to it.
4032           Address AI = CreateMemTempWithoutCast(
4033               I->Ty, ArgInfo.getIndirectAlign(), "byval-temp");
4034           IRCallArgs[FirstIRArg] = AI.getPointer();
4035 
4036           // Emit lifetime markers for the temporary alloca.
4037           uint64_t ByvalTempElementSize =
4038               CGM.getDataLayout().getTypeAllocSize(AI.getElementType());
4039           llvm::Value *LifetimeSize =
4040               EmitLifetimeStart(ByvalTempElementSize, AI.getPointer());
4041 
4042           // Add cleanup code to emit the end lifetime marker after the call.
4043           if (LifetimeSize) // In case we disabled lifetime markers.
4044             CallLifetimeEndAfterCall.emplace_back(AI, LifetimeSize);
4045 
4046           // Generate the copy.
4047           I->copyInto(*this, AI);
4048         } else {
4049           // Skip the extra memcpy call.
4050           auto *T = V->getType()->getPointerElementType()->getPointerTo(
4051               CGM.getDataLayout().getAllocaAddrSpace());
4052           IRCallArgs[FirstIRArg] = getTargetHooks().performAddrSpaceCast(
4053               *this, V, LangAS::Default, CGM.getASTAllocaAddressSpace(), T,
4054               true);
4055         }
4056       }
4057       break;
4058     }
4059 
4060     case ABIArgInfo::Ignore:
4061       assert(NumIRArgs == 0);
4062       break;
4063 
4064     case ABIArgInfo::Extend:
4065     case ABIArgInfo::Direct: {
4066       if (!isa<llvm::StructType>(ArgInfo.getCoerceToType()) &&
4067           ArgInfo.getCoerceToType() == ConvertType(info_it->type) &&
4068           ArgInfo.getDirectOffset() == 0) {
4069         assert(NumIRArgs == 1);
4070         llvm::Value *V;
4071         if (!I->isAggregate())
4072           V = I->getKnownRValue().getScalarVal();
4073         else
4074           V = Builder.CreateLoad(
4075               I->hasLValue() ? I->getKnownLValue().getAddress(*this)
4076                              : I->getKnownRValue().getAggregateAddress());
4077 
4078         // Implement swifterror by copying into a new swifterror argument.
4079         // We'll write back in the normal path out of the call.
4080         if (CallInfo.getExtParameterInfo(ArgNo).getABI()
4081               == ParameterABI::SwiftErrorResult) {
4082           assert(!swiftErrorTemp.isValid() && "multiple swifterror args");
4083 
4084           QualType pointeeTy = I->Ty->getPointeeType();
4085           swiftErrorArg =
4086             Address(V, getContext().getTypeAlignInChars(pointeeTy));
4087 
4088           swiftErrorTemp =
4089             CreateMemTemp(pointeeTy, getPointerAlign(), "swifterror.temp");
4090           V = swiftErrorTemp.getPointer();
4091           cast<llvm::AllocaInst>(V)->setSwiftError(true);
4092 
4093           llvm::Value *errorValue = Builder.CreateLoad(swiftErrorArg);
4094           Builder.CreateStore(errorValue, swiftErrorTemp);
4095         }
4096 
4097         // We might have to widen integers, but we should never truncate.
4098         if (ArgInfo.getCoerceToType() != V->getType() &&
4099             V->getType()->isIntegerTy())
4100           V = Builder.CreateZExt(V, ArgInfo.getCoerceToType());
4101 
4102         // If the argument doesn't match, perform a bitcast to coerce it.  This
4103         // can happen due to trivial type mismatches.
4104         if (FirstIRArg < IRFuncTy->getNumParams() &&
4105             V->getType() != IRFuncTy->getParamType(FirstIRArg))
4106           V = Builder.CreateBitCast(V, IRFuncTy->getParamType(FirstIRArg));
4107 
4108         IRCallArgs[FirstIRArg] = V;
4109         break;
4110       }
4111 
4112       // FIXME: Avoid the conversion through memory if possible.
4113       Address Src = Address::invalid();
4114       if (!I->isAggregate()) {
4115         Src = CreateMemTemp(I->Ty, "coerce");
4116         I->copyInto(*this, Src);
4117       } else {
4118         Src = I->hasLValue() ? I->getKnownLValue().getAddress(*this)
4119                              : I->getKnownRValue().getAggregateAddress();
4120       }
4121 
4122       // If the value is offset in memory, apply the offset now.
4123       Src = emitAddressAtOffset(*this, Src, ArgInfo);
4124 
4125       // Fast-isel and the optimizer generally like scalar values better than
4126       // FCAs, so we flatten them if this is safe to do for this argument.
4127       llvm::StructType *STy =
4128             dyn_cast<llvm::StructType>(ArgInfo.getCoerceToType());
4129       if (STy && ArgInfo.isDirect() && ArgInfo.getCanBeFlattened()) {
4130         llvm::Type *SrcTy = Src.getType()->getElementType();
4131         uint64_t SrcSize = CGM.getDataLayout().getTypeAllocSize(SrcTy);
4132         uint64_t DstSize = CGM.getDataLayout().getTypeAllocSize(STy);
4133 
4134         // If the source type is smaller than the destination type of the
4135         // coerce-to logic, copy the source value into a temp alloca the size
4136         // of the destination type to allow loading all of it. The bits past
4137         // the source value are left undef.
4138         if (SrcSize < DstSize) {
4139           Address TempAlloca
4140             = CreateTempAlloca(STy, Src.getAlignment(),
4141                                Src.getName() + ".coerce");
4142           Builder.CreateMemCpy(TempAlloca, Src, SrcSize);
4143           Src = TempAlloca;
4144         } else {
4145           Src = Builder.CreateBitCast(Src,
4146                                       STy->getPointerTo(Src.getAddressSpace()));
4147         }
4148 
4149         assert(NumIRArgs == STy->getNumElements());
4150         for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
4151           Address EltPtr = Builder.CreateStructGEP(Src, i);
4152           llvm::Value *LI = Builder.CreateLoad(EltPtr);
4153           IRCallArgs[FirstIRArg + i] = LI;
4154         }
4155       } else {
4156         // In the simple case, just pass the coerced loaded value.
4157         assert(NumIRArgs == 1);
4158         IRCallArgs[FirstIRArg] =
4159           CreateCoercedLoad(Src, ArgInfo.getCoerceToType(), *this);
4160       }
4161 
4162       break;
4163     }
4164 
4165     case ABIArgInfo::CoerceAndExpand: {
4166       auto coercionType = ArgInfo.getCoerceAndExpandType();
4167       auto layout = CGM.getDataLayout().getStructLayout(coercionType);
4168 
4169       llvm::Value *tempSize = nullptr;
4170       Address addr = Address::invalid();
4171       Address AllocaAddr = Address::invalid();
4172       if (I->isAggregate()) {
4173         addr = I->hasLValue() ? I->getKnownLValue().getAddress(*this)
4174                               : I->getKnownRValue().getAggregateAddress();
4175 
4176       } else {
4177         RValue RV = I->getKnownRValue();
4178         assert(RV.isScalar()); // complex should always just be direct
4179 
4180         llvm::Type *scalarType = RV.getScalarVal()->getType();
4181         auto scalarSize = CGM.getDataLayout().getTypeAllocSize(scalarType);
4182         auto scalarAlign = CGM.getDataLayout().getPrefTypeAlignment(scalarType);
4183 
4184         // Materialize to a temporary.
4185         addr = CreateTempAlloca(
4186             RV.getScalarVal()->getType(),
4187             CharUnits::fromQuantity(std::max(
4188                 (unsigned)layout->getAlignment().value(), scalarAlign)),
4189             "tmp",
4190             /*ArraySize=*/nullptr, &AllocaAddr);
4191         tempSize = EmitLifetimeStart(scalarSize, AllocaAddr.getPointer());
4192 
4193         Builder.CreateStore(RV.getScalarVal(), addr);
4194       }
4195 
4196       addr = Builder.CreateElementBitCast(addr, coercionType);
4197 
4198       unsigned IRArgPos = FirstIRArg;
4199       for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) {
4200         llvm::Type *eltType = coercionType->getElementType(i);
4201         if (ABIArgInfo::isPaddingForCoerceAndExpand(eltType)) continue;
4202         Address eltAddr = Builder.CreateStructGEP(addr, i);
4203         llvm::Value *elt = Builder.CreateLoad(eltAddr);
4204         IRCallArgs[IRArgPos++] = elt;
4205       }
4206       assert(IRArgPos == FirstIRArg + NumIRArgs);
4207 
4208       if (tempSize) {
4209         EmitLifetimeEnd(tempSize, AllocaAddr.getPointer());
4210       }
4211 
4212       break;
4213     }
4214 
4215     case ABIArgInfo::Expand:
4216       unsigned IRArgPos = FirstIRArg;
4217       ExpandTypeToArgs(I->Ty, *I, IRFuncTy, IRCallArgs, IRArgPos);
4218       assert(IRArgPos == FirstIRArg + NumIRArgs);
4219       break;
4220     }
4221   }
4222 
4223   const CGCallee &ConcreteCallee = Callee.prepareConcreteCallee(*this);
4224   llvm::Value *CalleePtr = ConcreteCallee.getFunctionPointer();
4225 
4226   // If we're using inalloca, set up that argument.
4227   if (ArgMemory.isValid()) {
4228     llvm::Value *Arg = ArgMemory.getPointer();
4229     if (CallInfo.isVariadic()) {
4230       // When passing non-POD arguments by value to variadic functions, we will
4231       // end up with a variadic prototype and an inalloca call site.  In such
4232       // cases, we can't do any parameter mismatch checks.  Give up and bitcast
4233       // the callee.
4234       unsigned CalleeAS = CalleePtr->getType()->getPointerAddressSpace();
4235       CalleePtr =
4236           Builder.CreateBitCast(CalleePtr, IRFuncTy->getPointerTo(CalleeAS));
4237     } else {
4238       llvm::Type *LastParamTy =
4239           IRFuncTy->getParamType(IRFuncTy->getNumParams() - 1);
4240       if (Arg->getType() != LastParamTy) {
4241 #ifndef NDEBUG
4242         // Assert that these structs have equivalent element types.
4243         llvm::StructType *FullTy = CallInfo.getArgStruct();
4244         llvm::StructType *DeclaredTy = cast<llvm::StructType>(
4245             cast<llvm::PointerType>(LastParamTy)->getElementType());
4246         assert(DeclaredTy->getNumElements() == FullTy->getNumElements());
4247         for (llvm::StructType::element_iterator DI = DeclaredTy->element_begin(),
4248                                                 DE = DeclaredTy->element_end(),
4249                                                 FI = FullTy->element_begin();
4250              DI != DE; ++DI, ++FI)
4251           assert(*DI == *FI);
4252 #endif
4253         Arg = Builder.CreateBitCast(Arg, LastParamTy);
4254       }
4255     }
4256     assert(IRFunctionArgs.hasInallocaArg());
4257     IRCallArgs[IRFunctionArgs.getInallocaArgNo()] = Arg;
4258   }
4259 
4260   // 2. Prepare the function pointer.
4261 
4262   // If the callee is a bitcast of a non-variadic function to have a
4263   // variadic function pointer type, check to see if we can remove the
4264   // bitcast.  This comes up with unprototyped functions.
4265   //
4266   // This makes the IR nicer, but more importantly it ensures that we
4267   // can inline the function at -O0 if it is marked always_inline.
4268   auto simplifyVariadicCallee = [](llvm::FunctionType *CalleeFT,
4269                                    llvm::Value *Ptr) -> llvm::Function * {
4270     if (!CalleeFT->isVarArg())
4271       return nullptr;
4272 
4273     // Get underlying value if it's a bitcast
4274     if (llvm::ConstantExpr *CE = dyn_cast<llvm::ConstantExpr>(Ptr)) {
4275       if (CE->getOpcode() == llvm::Instruction::BitCast)
4276         Ptr = CE->getOperand(0);
4277     }
4278 
4279     llvm::Function *OrigFn = dyn_cast<llvm::Function>(Ptr);
4280     if (!OrigFn)
4281       return nullptr;
4282 
4283     llvm::FunctionType *OrigFT = OrigFn->getFunctionType();
4284 
4285     // If the original type is variadic, or if any of the component types
4286     // disagree, we cannot remove the cast.
4287     if (OrigFT->isVarArg() ||
4288         OrigFT->getNumParams() != CalleeFT->getNumParams() ||
4289         OrigFT->getReturnType() != CalleeFT->getReturnType())
4290       return nullptr;
4291 
4292     for (unsigned i = 0, e = OrigFT->getNumParams(); i != e; ++i)
4293       if (OrigFT->getParamType(i) != CalleeFT->getParamType(i))
4294         return nullptr;
4295 
4296     return OrigFn;
4297   };
4298 
4299   if (llvm::Function *OrigFn = simplifyVariadicCallee(IRFuncTy, CalleePtr)) {
4300     CalleePtr = OrigFn;
4301     IRFuncTy = OrigFn->getFunctionType();
4302   }
4303 
4304   // 3. Perform the actual call.
4305 
4306   // Deactivate any cleanups that we're supposed to do immediately before
4307   // the call.
4308   if (!CallArgs.getCleanupsToDeactivate().empty())
4309     deactivateArgCleanupsBeforeCall(*this, CallArgs);
4310 
4311   // Assert that the arguments we computed match up.  The IR verifier
4312   // will catch this, but this is a common enough source of problems
4313   // during IRGen changes that it's way better for debugging to catch
4314   // it ourselves here.
4315 #ifndef NDEBUG
4316   assert(IRCallArgs.size() == IRFuncTy->getNumParams() || IRFuncTy->isVarArg());
4317   for (unsigned i = 0; i < IRCallArgs.size(); ++i) {
4318     // Inalloca argument can have different type.
4319     if (IRFunctionArgs.hasInallocaArg() &&
4320         i == IRFunctionArgs.getInallocaArgNo())
4321       continue;
4322     if (i < IRFuncTy->getNumParams())
4323       assert(IRCallArgs[i]->getType() == IRFuncTy->getParamType(i));
4324   }
4325 #endif
4326 
4327   // Update the largest vector width if any arguments have vector types.
4328   for (unsigned i = 0; i < IRCallArgs.size(); ++i) {
4329     if (auto *VT = dyn_cast<llvm::VectorType>(IRCallArgs[i]->getType()))
4330       LargestVectorWidth = std::max((uint64_t)LargestVectorWidth,
4331                                    VT->getPrimitiveSizeInBits().getFixedSize());
4332   }
4333 
4334   // Compute the calling convention and attributes.
4335   unsigned CallingConv;
4336   llvm::AttributeList Attrs;
4337   CGM.ConstructAttributeList(CalleePtr->getName(), CallInfo,
4338                              Callee.getAbstractInfo(), Attrs, CallingConv,
4339                              /*AttrOnCallSite=*/true);
4340 
4341   if (const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(CurFuncDecl))
4342     if (FD->usesFPIntrin())
4343       // All calls within a strictfp function are marked strictfp
4344       Attrs =
4345         Attrs.addAttribute(getLLVMContext(), llvm::AttributeList::FunctionIndex,
4346                            llvm::Attribute::StrictFP);
4347 
4348   // Apply some call-site-specific attributes.
4349   // TODO: work this into building the attribute set.
4350 
4351   // Apply always_inline to all calls within flatten functions.
4352   // FIXME: should this really take priority over __try, below?
4353   if (CurCodeDecl && CurCodeDecl->hasAttr<FlattenAttr>() &&
4354       !(TargetDecl && TargetDecl->hasAttr<NoInlineAttr>())) {
4355     Attrs =
4356         Attrs.addAttribute(getLLVMContext(), llvm::AttributeList::FunctionIndex,
4357                            llvm::Attribute::AlwaysInline);
4358   }
4359 
4360   // Disable inlining inside SEH __try blocks.
4361   if (isSEHTryScope()) {
4362     Attrs =
4363         Attrs.addAttribute(getLLVMContext(), llvm::AttributeList::FunctionIndex,
4364                            llvm::Attribute::NoInline);
4365   }
4366 
4367   // Decide whether to use a call or an invoke.
4368   bool CannotThrow;
4369   if (currentFunctionUsesSEHTry()) {
4370     // SEH cares about asynchronous exceptions, so everything can "throw."
4371     CannotThrow = false;
4372   } else if (isCleanupPadScope() &&
4373              EHPersonality::get(*this).isMSVCXXPersonality()) {
4374     // The MSVC++ personality will implicitly terminate the program if an
4375     // exception is thrown during a cleanup outside of a try/catch.
4376     // We don't need to model anything in IR to get this behavior.
4377     CannotThrow = true;
4378   } else {
4379     // Otherwise, nounwind call sites will never throw.
4380     CannotThrow = Attrs.hasAttribute(llvm::AttributeList::FunctionIndex,
4381                                      llvm::Attribute::NoUnwind);
4382   }
4383 
4384   // If we made a temporary, be sure to clean up after ourselves. Note that we
4385   // can't depend on being inside of an ExprWithCleanups, so we need to manually
4386   // pop this cleanup later on. Being eager about this is OK, since this
4387   // temporary is 'invisible' outside of the callee.
4388   if (UnusedReturnSizePtr)
4389     pushFullExprCleanup<CallLifetimeEnd>(NormalEHLifetimeMarker, SRetAlloca,
4390                                          UnusedReturnSizePtr);
4391 
4392   llvm::BasicBlock *InvokeDest = CannotThrow ? nullptr : getInvokeDest();
4393 
4394   SmallVector<llvm::OperandBundleDef, 1> BundleList =
4395       getBundlesForFunclet(CalleePtr);
4396 
4397   if (const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(CurFuncDecl))
4398     if (FD->usesFPIntrin())
4399       // All calls within a strictfp function are marked strictfp
4400       Attrs =
4401         Attrs.addAttribute(getLLVMContext(), llvm::AttributeList::FunctionIndex,
4402                            llvm::Attribute::StrictFP);
4403 
4404   // Emit the actual call/invoke instruction.
4405   llvm::CallBase *CI;
4406   if (!InvokeDest) {
4407     CI = Builder.CreateCall(IRFuncTy, CalleePtr, IRCallArgs, BundleList);
4408   } else {
4409     llvm::BasicBlock *Cont = createBasicBlock("invoke.cont");
4410     CI = Builder.CreateInvoke(IRFuncTy, CalleePtr, Cont, InvokeDest, IRCallArgs,
4411                               BundleList);
4412     EmitBlock(Cont);
4413   }
4414   if (callOrInvoke)
4415     *callOrInvoke = CI;
4416 
4417   // If this is within a function that has the guard(nocf) attribute and is an
4418   // indirect call, add the "guard_nocf" attribute to this call to indicate that
4419   // Control Flow Guard checks should not be added, even if the call is inlined.
4420   if (const auto *FD = dyn_cast_or_null<FunctionDecl>(CurFuncDecl)) {
4421     if (const auto *A = FD->getAttr<CFGuardAttr>()) {
4422       if (A->getGuard() == CFGuardAttr::GuardArg::nocf && !CI->getCalledFunction())
4423         Attrs = Attrs.addAttribute(
4424             getLLVMContext(), llvm::AttributeList::FunctionIndex, "guard_nocf");
4425     }
4426   }
4427 
4428   // Apply the attributes and calling convention.
4429   CI->setAttributes(Attrs);
4430   CI->setCallingConv(static_cast<llvm::CallingConv::ID>(CallingConv));
4431 
4432   // Apply various metadata.
4433 
4434   if (!CI->getType()->isVoidTy())
4435     CI->setName("call");
4436 
4437   // Update largest vector width from the return type.
4438   if (auto *VT = dyn_cast<llvm::VectorType>(CI->getType()))
4439     LargestVectorWidth = std::max((uint64_t)LargestVectorWidth,
4440                                   VT->getPrimitiveSizeInBits().getFixedSize());
4441 
4442   // Insert instrumentation or attach profile metadata at indirect call sites.
4443   // For more details, see the comment before the definition of
4444   // IPVK_IndirectCallTarget in InstrProfData.inc.
4445   if (!CI->getCalledFunction())
4446     PGO.valueProfile(Builder, llvm::IPVK_IndirectCallTarget,
4447                      CI, CalleePtr);
4448 
4449   // In ObjC ARC mode with no ObjC ARC exception safety, tell the ARC
4450   // optimizer it can aggressively ignore unwind edges.
4451   if (CGM.getLangOpts().ObjCAutoRefCount)
4452     AddObjCARCExceptionMetadata(CI);
4453 
4454   // Suppress tail calls if requested.
4455   if (llvm::CallInst *Call = dyn_cast<llvm::CallInst>(CI)) {
4456     if (TargetDecl && TargetDecl->hasAttr<NotTailCalledAttr>())
4457       Call->setTailCallKind(llvm::CallInst::TCK_NoTail);
4458   }
4459 
4460   // Add metadata for calls to MSAllocator functions
4461   if (getDebugInfo() && TargetDecl &&
4462       TargetDecl->hasAttr<MSAllocatorAttr>())
4463     getDebugInfo()->addHeapAllocSiteMetadata(CI, RetTy, Loc);
4464 
4465   // 4. Finish the call.
4466 
4467   // If the call doesn't return, finish the basic block and clear the
4468   // insertion point; this allows the rest of IRGen to discard
4469   // unreachable code.
4470   if (CI->doesNotReturn()) {
4471     if (UnusedReturnSizePtr)
4472       PopCleanupBlock();
4473 
4474     // Strip away the noreturn attribute to better diagnose unreachable UB.
4475     if (SanOpts.has(SanitizerKind::Unreachable)) {
4476       // Also remove from function since CallBase::hasFnAttr additionally checks
4477       // attributes of the called function.
4478       if (auto *F = CI->getCalledFunction())
4479         F->removeFnAttr(llvm::Attribute::NoReturn);
4480       CI->removeAttribute(llvm::AttributeList::FunctionIndex,
4481                           llvm::Attribute::NoReturn);
4482 
4483       // Avoid incompatibility with ASan which relies on the `noreturn`
4484       // attribute to insert handler calls.
4485       if (SanOpts.hasOneOf(SanitizerKind::Address |
4486                            SanitizerKind::KernelAddress)) {
4487         SanitizerScope SanScope(this);
4488         llvm::IRBuilder<>::InsertPointGuard IPGuard(Builder);
4489         Builder.SetInsertPoint(CI);
4490         auto *FnType = llvm::FunctionType::get(CGM.VoidTy, /*isVarArg=*/false);
4491         llvm::FunctionCallee Fn =
4492             CGM.CreateRuntimeFunction(FnType, "__asan_handle_no_return");
4493         EmitNounwindRuntimeCall(Fn);
4494       }
4495     }
4496 
4497     EmitUnreachable(Loc);
4498     Builder.ClearInsertionPoint();
4499 
4500     // FIXME: For now, emit a dummy basic block because expr emitters in
4501     // generally are not ready to handle emitting expressions at unreachable
4502     // points.
4503     EnsureInsertPoint();
4504 
4505     // Return a reasonable RValue.
4506     return GetUndefRValue(RetTy);
4507   }
4508 
4509   // Perform the swifterror writeback.
4510   if (swiftErrorTemp.isValid()) {
4511     llvm::Value *errorResult = Builder.CreateLoad(swiftErrorTemp);
4512     Builder.CreateStore(errorResult, swiftErrorArg);
4513   }
4514 
4515   // Emit any call-associated writebacks immediately.  Arguably this
4516   // should happen after any return-value munging.
4517   if (CallArgs.hasWritebacks())
4518     emitWritebacks(*this, CallArgs);
4519 
4520   // The stack cleanup for inalloca arguments has to run out of the normal
4521   // lexical order, so deactivate it and run it manually here.
4522   CallArgs.freeArgumentMemory(*this);
4523 
4524   // Extract the return value.
4525   RValue Ret = [&] {
4526     switch (RetAI.getKind()) {
4527     case ABIArgInfo::CoerceAndExpand: {
4528       auto coercionType = RetAI.getCoerceAndExpandType();
4529 
4530       Address addr = SRetPtr;
4531       addr = Builder.CreateElementBitCast(addr, coercionType);
4532 
4533       assert(CI->getType() == RetAI.getUnpaddedCoerceAndExpandType());
4534       bool requiresExtract = isa<llvm::StructType>(CI->getType());
4535 
4536       unsigned unpaddedIndex = 0;
4537       for (unsigned i = 0, e = coercionType->getNumElements(); i != e; ++i) {
4538         llvm::Type *eltType = coercionType->getElementType(i);
4539         if (ABIArgInfo::isPaddingForCoerceAndExpand(eltType)) continue;
4540         Address eltAddr = Builder.CreateStructGEP(addr, i);
4541         llvm::Value *elt = CI;
4542         if (requiresExtract)
4543           elt = Builder.CreateExtractValue(elt, unpaddedIndex++);
4544         else
4545           assert(unpaddedIndex == 0);
4546         Builder.CreateStore(elt, eltAddr);
4547       }
4548       // FALLTHROUGH
4549       LLVM_FALLTHROUGH;
4550     }
4551 
4552     case ABIArgInfo::InAlloca:
4553     case ABIArgInfo::Indirect: {
4554       RValue ret = convertTempToRValue(SRetPtr, RetTy, SourceLocation());
4555       if (UnusedReturnSizePtr)
4556         PopCleanupBlock();
4557       return ret;
4558     }
4559 
4560     case ABIArgInfo::Ignore:
4561       // If we are ignoring an argument that had a result, make sure to
4562       // construct the appropriate return value for our caller.
4563       return GetUndefRValue(RetTy);
4564 
4565     case ABIArgInfo::Extend:
4566     case ABIArgInfo::Direct: {
4567       llvm::Type *RetIRTy = ConvertType(RetTy);
4568       if (RetAI.getCoerceToType() == RetIRTy && RetAI.getDirectOffset() == 0) {
4569         switch (getEvaluationKind(RetTy)) {
4570         case TEK_Complex: {
4571           llvm::Value *Real = Builder.CreateExtractValue(CI, 0);
4572           llvm::Value *Imag = Builder.CreateExtractValue(CI, 1);
4573           return RValue::getComplex(std::make_pair(Real, Imag));
4574         }
4575         case TEK_Aggregate: {
4576           Address DestPtr = ReturnValue.getValue();
4577           bool DestIsVolatile = ReturnValue.isVolatile();
4578 
4579           if (!DestPtr.isValid()) {
4580             DestPtr = CreateMemTemp(RetTy, "agg.tmp");
4581             DestIsVolatile = false;
4582           }
4583           BuildAggStore(*this, CI, DestPtr, DestIsVolatile);
4584           return RValue::getAggregate(DestPtr);
4585         }
4586         case TEK_Scalar: {
4587           // If the argument doesn't match, perform a bitcast to coerce it.  This
4588           // can happen due to trivial type mismatches.
4589           llvm::Value *V = CI;
4590           if (V->getType() != RetIRTy)
4591             V = Builder.CreateBitCast(V, RetIRTy);
4592           return RValue::get(V);
4593         }
4594         }
4595         llvm_unreachable("bad evaluation kind");
4596       }
4597 
4598       Address DestPtr = ReturnValue.getValue();
4599       bool DestIsVolatile = ReturnValue.isVolatile();
4600 
4601       if (!DestPtr.isValid()) {
4602         DestPtr = CreateMemTemp(RetTy, "coerce");
4603         DestIsVolatile = false;
4604       }
4605 
4606       // If the value is offset in memory, apply the offset now.
4607       Address StorePtr = emitAddressAtOffset(*this, DestPtr, RetAI);
4608       CreateCoercedStore(CI, StorePtr, DestIsVolatile, *this);
4609 
4610       return convertTempToRValue(DestPtr, RetTy, SourceLocation());
4611     }
4612 
4613     case ABIArgInfo::Expand:
4614       llvm_unreachable("Invalid ABI kind for return argument");
4615     }
4616 
4617     llvm_unreachable("Unhandled ABIArgInfo::Kind");
4618   } ();
4619 
4620   // Emit the assume_aligned check on the return value.
4621   if (Ret.isScalar() && TargetDecl) {
4622     if (const auto *AA = TargetDecl->getAttr<AssumeAlignedAttr>()) {
4623       llvm::Value *OffsetValue = nullptr;
4624       if (const auto *Offset = AA->getOffset())
4625         OffsetValue = EmitScalarExpr(Offset);
4626 
4627       llvm::Value *Alignment = EmitScalarExpr(AA->getAlignment());
4628       llvm::ConstantInt *AlignmentCI = cast<llvm::ConstantInt>(Alignment);
4629       EmitAlignmentAssumption(Ret.getScalarVal(), RetTy, Loc, AA->getLocation(),
4630                               AlignmentCI, OffsetValue);
4631     } else if (const auto *AA = TargetDecl->getAttr<AllocAlignAttr>()) {
4632       llvm::Value *AlignmentVal = CallArgs[AA->getParamIndex().getLLVMIndex()]
4633                                       .getRValue(*this)
4634                                       .getScalarVal();
4635       EmitAlignmentAssumption(Ret.getScalarVal(), RetTy, Loc, AA->getLocation(),
4636                               AlignmentVal);
4637     }
4638   }
4639 
4640   // Explicitly call CallLifetimeEnd::Emit just to re-use the code even though
4641   // we can't use the full cleanup mechanism.
4642   for (CallLifetimeEnd &LifetimeEnd : CallLifetimeEndAfterCall)
4643     LifetimeEnd.Emit(*this, /*Flags=*/{});
4644 
4645   return Ret;
4646 }
4647 
4648 CGCallee CGCallee::prepareConcreteCallee(CodeGenFunction &CGF) const {
4649   if (isVirtual()) {
4650     const CallExpr *CE = getVirtualCallExpr();
4651     return CGF.CGM.getCXXABI().getVirtualFunctionPointer(
4652         CGF, getVirtualMethodDecl(), getThisAddress(), getVirtualFunctionType(),
4653         CE ? CE->getBeginLoc() : SourceLocation());
4654   }
4655 
4656   return *this;
4657 }
4658 
4659 /* VarArg handling */
4660 
4661 Address CodeGenFunction::EmitVAArg(VAArgExpr *VE, Address &VAListAddr) {
4662   VAListAddr = VE->isMicrosoftABI()
4663                  ? EmitMSVAListRef(VE->getSubExpr())
4664                  : EmitVAListRef(VE->getSubExpr());
4665   QualType Ty = VE->getType();
4666   if (VE->isMicrosoftABI())
4667     return CGM.getTypes().getABIInfo().EmitMSVAArg(*this, VAListAddr, Ty);
4668   return CGM.getTypes().getABIInfo().EmitVAArg(*this, VAListAddr, Ty);
4669 }
4670