1 //===--- SemaLambda.cpp - Semantic Analysis for C++11 Lambdas -------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 //  This file implements semantic analysis for C++ lambda expressions.
10 //
11 //===----------------------------------------------------------------------===//
12 #include "clang/Sema/DeclSpec.h"
13 #include "TypeLocBuilder.h"
14 #include "clang/AST/ASTLambda.h"
15 #include "clang/AST/ExprCXX.h"
16 #include "clang/Basic/TargetInfo.h"
17 #include "clang/Sema/Initialization.h"
18 #include "clang/Sema/Lookup.h"
19 #include "clang/Sema/Scope.h"
20 #include "clang/Sema/ScopeInfo.h"
21 #include "clang/Sema/SemaInternal.h"
22 #include "clang/Sema/SemaLambda.h"
23 #include "llvm/ADT/STLExtras.h"
24 using namespace clang;
25 using namespace sema;
26 
27 /// Examines the FunctionScopeInfo stack to determine the nearest
28 /// enclosing lambda (to the current lambda) that is 'capture-ready' for
29 /// the variable referenced in the current lambda (i.e. \p VarToCapture).
30 /// If successful, returns the index into Sema's FunctionScopeInfo stack
31 /// of the capture-ready lambda's LambdaScopeInfo.
32 ///
33 /// Climbs down the stack of lambdas (deepest nested lambda - i.e. current
34 /// lambda - is on top) to determine the index of the nearest enclosing/outer
35 /// lambda that is ready to capture the \p VarToCapture being referenced in
36 /// the current lambda.
37 /// As we climb down the stack, we want the index of the first such lambda -
38 /// that is the lambda with the highest index that is 'capture-ready'.
39 ///
40 /// A lambda 'L' is capture-ready for 'V' (var or this) if:
41 ///  - its enclosing context is non-dependent
42 ///  - and if the chain of lambdas between L and the lambda in which
43 ///    V is potentially used (i.e. the lambda at the top of the scope info
44 ///    stack), can all capture or have already captured V.
45 /// If \p VarToCapture is 'null' then we are trying to capture 'this'.
46 ///
47 /// Note that a lambda that is deemed 'capture-ready' still needs to be checked
48 /// for whether it is 'capture-capable' (see
49 /// getStackIndexOfNearestEnclosingCaptureCapableLambda), before it can truly
50 /// capture.
51 ///
52 /// \param FunctionScopes - Sema's stack of nested FunctionScopeInfo's (which a
53 ///  LambdaScopeInfo inherits from).  The current/deepest/innermost lambda
54 ///  is at the top of the stack and has the highest index.
55 /// \param VarToCapture - the variable to capture.  If NULL, capture 'this'.
56 ///
57 /// \returns An Optional<unsigned> Index that if evaluates to 'true' contains
58 /// the index (into Sema's FunctionScopeInfo stack) of the innermost lambda
59 /// which is capture-ready.  If the return value evaluates to 'false' then
60 /// no lambda is capture-ready for \p VarToCapture.
61 
62 static inline Optional<unsigned>
63 getStackIndexOfNearestEnclosingCaptureReadyLambda(
64     ArrayRef<const clang::sema::FunctionScopeInfo *> FunctionScopes,
65     VarDecl *VarToCapture) {
66   // Label failure to capture.
67   const Optional<unsigned> NoLambdaIsCaptureReady;
68 
69   // Ignore all inner captured regions.
70   unsigned CurScopeIndex = FunctionScopes.size() - 1;
71   while (CurScopeIndex > 0 && isa<clang::sema::CapturedRegionScopeInfo>(
72                                   FunctionScopes[CurScopeIndex]))
73     --CurScopeIndex;
74   assert(
75       isa<clang::sema::LambdaScopeInfo>(FunctionScopes[CurScopeIndex]) &&
76       "The function on the top of sema's function-info stack must be a lambda");
77 
78   // If VarToCapture is null, we are attempting to capture 'this'.
79   const bool IsCapturingThis = !VarToCapture;
80   const bool IsCapturingVariable = !IsCapturingThis;
81 
82   // Start with the current lambda at the top of the stack (highest index).
83   DeclContext *EnclosingDC =
84       cast<sema::LambdaScopeInfo>(FunctionScopes[CurScopeIndex])->CallOperator;
85 
86   do {
87     const clang::sema::LambdaScopeInfo *LSI =
88         cast<sema::LambdaScopeInfo>(FunctionScopes[CurScopeIndex]);
89     // IF we have climbed down to an intervening enclosing lambda that contains
90     // the variable declaration - it obviously can/must not capture the
91     // variable.
92     // Since its enclosing DC is dependent, all the lambdas between it and the
93     // innermost nested lambda are dependent (otherwise we wouldn't have
94     // arrived here) - so we don't yet have a lambda that can capture the
95     // variable.
96     if (IsCapturingVariable &&
97         VarToCapture->getDeclContext()->Equals(EnclosingDC))
98       return NoLambdaIsCaptureReady;
99 
100     // For an enclosing lambda to be capture ready for an entity, all
101     // intervening lambda's have to be able to capture that entity. If even
102     // one of the intervening lambda's is not capable of capturing the entity
103     // then no enclosing lambda can ever capture that entity.
104     // For e.g.
105     // const int x = 10;
106     // [=](auto a) {    #1
107     //   [](auto b) {   #2 <-- an intervening lambda that can never capture 'x'
108     //    [=](auto c) { #3
109     //       f(x, c);  <-- can not lead to x's speculative capture by #1 or #2
110     //    }; }; };
111     // If they do not have a default implicit capture, check to see
112     // if the entity has already been explicitly captured.
113     // If even a single dependent enclosing lambda lacks the capability
114     // to ever capture this variable, there is no further enclosing
115     // non-dependent lambda that can capture this variable.
116     if (LSI->ImpCaptureStyle == sema::LambdaScopeInfo::ImpCap_None) {
117       if (IsCapturingVariable && !LSI->isCaptured(VarToCapture))
118         return NoLambdaIsCaptureReady;
119       if (IsCapturingThis && !LSI->isCXXThisCaptured())
120         return NoLambdaIsCaptureReady;
121     }
122     EnclosingDC = getLambdaAwareParentOfDeclContext(EnclosingDC);
123 
124     assert(CurScopeIndex);
125     --CurScopeIndex;
126   } while (!EnclosingDC->isTranslationUnit() &&
127            EnclosingDC->isDependentContext() &&
128            isLambdaCallOperator(EnclosingDC));
129 
130   assert(CurScopeIndex < (FunctionScopes.size() - 1));
131   // If the enclosingDC is not dependent, then the immediately nested lambda
132   // (one index above) is capture-ready.
133   if (!EnclosingDC->isDependentContext())
134     return CurScopeIndex + 1;
135   return NoLambdaIsCaptureReady;
136 }
137 
138 /// Examines the FunctionScopeInfo stack to determine the nearest
139 /// enclosing lambda (to the current lambda) that is 'capture-capable' for
140 /// the variable referenced in the current lambda (i.e. \p VarToCapture).
141 /// If successful, returns the index into Sema's FunctionScopeInfo stack
142 /// of the capture-capable lambda's LambdaScopeInfo.
143 ///
144 /// Given the current stack of lambdas being processed by Sema and
145 /// the variable of interest, to identify the nearest enclosing lambda (to the
146 /// current lambda at the top of the stack) that can truly capture
147 /// a variable, it has to have the following two properties:
148 ///  a) 'capture-ready' - be the innermost lambda that is 'capture-ready':
149 ///     - climb down the stack (i.e. starting from the innermost and examining
150 ///       each outer lambda step by step) checking if each enclosing
151 ///       lambda can either implicitly or explicitly capture the variable.
152 ///       Record the first such lambda that is enclosed in a non-dependent
153 ///       context. If no such lambda currently exists return failure.
154 ///  b) 'capture-capable' - make sure the 'capture-ready' lambda can truly
155 ///  capture the variable by checking all its enclosing lambdas:
156 ///     - check if all outer lambdas enclosing the 'capture-ready' lambda
157 ///       identified above in 'a' can also capture the variable (this is done
158 ///       via tryCaptureVariable for variables and CheckCXXThisCapture for
159 ///       'this' by passing in the index of the Lambda identified in step 'a')
160 ///
161 /// \param FunctionScopes - Sema's stack of nested FunctionScopeInfo's (which a
162 /// LambdaScopeInfo inherits from).  The current/deepest/innermost lambda
163 /// is at the top of the stack.
164 ///
165 /// \param VarToCapture - the variable to capture.  If NULL, capture 'this'.
166 ///
167 ///
168 /// \returns An Optional<unsigned> Index that if evaluates to 'true' contains
169 /// the index (into Sema's FunctionScopeInfo stack) of the innermost lambda
170 /// which is capture-capable.  If the return value evaluates to 'false' then
171 /// no lambda is capture-capable for \p VarToCapture.
172 
173 Optional<unsigned> clang::getStackIndexOfNearestEnclosingCaptureCapableLambda(
174     ArrayRef<const sema::FunctionScopeInfo *> FunctionScopes,
175     VarDecl *VarToCapture, Sema &S) {
176 
177   const Optional<unsigned> NoLambdaIsCaptureCapable;
178 
179   const Optional<unsigned> OptionalStackIndex =
180       getStackIndexOfNearestEnclosingCaptureReadyLambda(FunctionScopes,
181                                                         VarToCapture);
182   if (!OptionalStackIndex)
183     return NoLambdaIsCaptureCapable;
184 
185   const unsigned IndexOfCaptureReadyLambda = OptionalStackIndex.getValue();
186   assert(((IndexOfCaptureReadyLambda != (FunctionScopes.size() - 1)) ||
187           S.getCurGenericLambda()) &&
188          "The capture ready lambda for a potential capture can only be the "
189          "current lambda if it is a generic lambda");
190 
191   const sema::LambdaScopeInfo *const CaptureReadyLambdaLSI =
192       cast<sema::LambdaScopeInfo>(FunctionScopes[IndexOfCaptureReadyLambda]);
193 
194   // If VarToCapture is null, we are attempting to capture 'this'
195   const bool IsCapturingThis = !VarToCapture;
196   const bool IsCapturingVariable = !IsCapturingThis;
197 
198   if (IsCapturingVariable) {
199     // Check if the capture-ready lambda can truly capture the variable, by
200     // checking whether all enclosing lambdas of the capture-ready lambda allow
201     // the capture - i.e. make sure it is capture-capable.
202     QualType CaptureType, DeclRefType;
203     const bool CanCaptureVariable =
204         !S.tryCaptureVariable(VarToCapture,
205                               /*ExprVarIsUsedInLoc*/ SourceLocation(),
206                               clang::Sema::TryCapture_Implicit,
207                               /*EllipsisLoc*/ SourceLocation(),
208                               /*BuildAndDiagnose*/ false, CaptureType,
209                               DeclRefType, &IndexOfCaptureReadyLambda);
210     if (!CanCaptureVariable)
211       return NoLambdaIsCaptureCapable;
212   } else {
213     // Check if the capture-ready lambda can truly capture 'this' by checking
214     // whether all enclosing lambdas of the capture-ready lambda can capture
215     // 'this'.
216     const bool CanCaptureThis =
217         !S.CheckCXXThisCapture(
218              CaptureReadyLambdaLSI->PotentialThisCaptureLocation,
219              /*Explicit*/ false, /*BuildAndDiagnose*/ false,
220              &IndexOfCaptureReadyLambda);
221     if (!CanCaptureThis)
222       return NoLambdaIsCaptureCapable;
223   }
224   return IndexOfCaptureReadyLambda;
225 }
226 
227 static inline TemplateParameterList *
228 getGenericLambdaTemplateParameterList(LambdaScopeInfo *LSI, Sema &SemaRef) {
229   if (!LSI->GLTemplateParameterList && !LSI->TemplateParams.empty()) {
230     LSI->GLTemplateParameterList = TemplateParameterList::Create(
231         SemaRef.Context,
232         /*Template kw loc*/ SourceLocation(),
233         /*L angle loc*/ LSI->ExplicitTemplateParamsRange.getBegin(),
234         LSI->TemplateParams,
235         /*R angle loc*/LSI->ExplicitTemplateParamsRange.getEnd(),
236         LSI->RequiresClause.get());
237   }
238   return LSI->GLTemplateParameterList;
239 }
240 
241 CXXRecordDecl *Sema::createLambdaClosureType(SourceRange IntroducerRange,
242                                              TypeSourceInfo *Info,
243                                              bool KnownDependent,
244                                              LambdaCaptureDefault CaptureDefault) {
245   DeclContext *DC = CurContext;
246   while (!(DC->isFunctionOrMethod() || DC->isRecord() || DC->isFileContext()))
247     DC = DC->getParent();
248   bool IsGenericLambda = getGenericLambdaTemplateParameterList(getCurLambda(),
249                                                                *this);
250   // Start constructing the lambda class.
251   CXXRecordDecl *Class = CXXRecordDecl::CreateLambda(Context, DC, Info,
252                                                      IntroducerRange.getBegin(),
253                                                      KnownDependent,
254                                                      IsGenericLambda,
255                                                      CaptureDefault);
256   DC->addDecl(Class);
257 
258   return Class;
259 }
260 
261 /// Determine whether the given context is or is enclosed in an inline
262 /// function.
263 static bool isInInlineFunction(const DeclContext *DC) {
264   while (!DC->isFileContext()) {
265     if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(DC))
266       if (FD->isInlined())
267         return true;
268 
269     DC = DC->getLexicalParent();
270   }
271 
272   return false;
273 }
274 
275 std::tuple<MangleNumberingContext *, Decl *>
276 Sema::getCurrentMangleNumberContext(const DeclContext *DC) {
277   // Compute the context for allocating mangling numbers in the current
278   // expression, if the ABI requires them.
279   Decl *ManglingContextDecl = ExprEvalContexts.back().ManglingContextDecl;
280 
281   enum ContextKind {
282     Normal,
283     DefaultArgument,
284     DataMember,
285     StaticDataMember,
286     InlineVariable,
287     VariableTemplate
288   } Kind = Normal;
289 
290   // Default arguments of member function parameters that appear in a class
291   // definition, as well as the initializers of data members, receive special
292   // treatment. Identify them.
293   if (ManglingContextDecl) {
294     if (ParmVarDecl *Param = dyn_cast<ParmVarDecl>(ManglingContextDecl)) {
295       if (const DeclContext *LexicalDC
296           = Param->getDeclContext()->getLexicalParent())
297         if (LexicalDC->isRecord())
298           Kind = DefaultArgument;
299     } else if (VarDecl *Var = dyn_cast<VarDecl>(ManglingContextDecl)) {
300       if (Var->getDeclContext()->isRecord())
301         Kind = StaticDataMember;
302       else if (Var->getMostRecentDecl()->isInline())
303         Kind = InlineVariable;
304       else if (Var->getDescribedVarTemplate())
305         Kind = VariableTemplate;
306       else if (auto *VTS = dyn_cast<VarTemplateSpecializationDecl>(Var)) {
307         if (!VTS->isExplicitSpecialization())
308           Kind = VariableTemplate;
309       }
310     } else if (isa<FieldDecl>(ManglingContextDecl)) {
311       Kind = DataMember;
312     }
313   }
314 
315   // Itanium ABI [5.1.7]:
316   //   In the following contexts [...] the one-definition rule requires closure
317   //   types in different translation units to "correspond":
318   bool IsInNonspecializedTemplate =
319       inTemplateInstantiation() || CurContext->isDependentContext();
320   switch (Kind) {
321   case Normal: {
322     //  -- the bodies of non-exported nonspecialized template functions
323     //  -- the bodies of inline functions
324     if ((IsInNonspecializedTemplate &&
325          !(ManglingContextDecl && isa<ParmVarDecl>(ManglingContextDecl))) ||
326         isInInlineFunction(CurContext)) {
327       while (auto *CD = dyn_cast<CapturedDecl>(DC))
328         DC = CD->getParent();
329       return std::make_tuple(&Context.getManglingNumberContext(DC), nullptr);
330     }
331 
332     return std::make_tuple(nullptr, nullptr);
333   }
334 
335   case StaticDataMember:
336     //  -- the initializers of nonspecialized static members of template classes
337     if (!IsInNonspecializedTemplate)
338       return std::make_tuple(nullptr, ManglingContextDecl);
339     // Fall through to get the current context.
340     LLVM_FALLTHROUGH;
341 
342   case DataMember:
343     //  -- the in-class initializers of class members
344   case DefaultArgument:
345     //  -- default arguments appearing in class definitions
346   case InlineVariable:
347     //  -- the initializers of inline variables
348   case VariableTemplate:
349     //  -- the initializers of templated variables
350     return std::make_tuple(
351         &Context.getManglingNumberContext(ASTContext::NeedExtraManglingDecl,
352                                           ManglingContextDecl),
353         ManglingContextDecl);
354   }
355 
356   llvm_unreachable("unexpected context");
357 }
358 
359 CXXMethodDecl *Sema::startLambdaDefinition(CXXRecordDecl *Class,
360                                            SourceRange IntroducerRange,
361                                            TypeSourceInfo *MethodTypeInfo,
362                                            SourceLocation EndLoc,
363                                            ArrayRef<ParmVarDecl *> Params,
364                                            ConstexprSpecKind ConstexprKind,
365                                            Expr *TrailingRequiresClause) {
366   QualType MethodType = MethodTypeInfo->getType();
367   TemplateParameterList *TemplateParams =
368       getGenericLambdaTemplateParameterList(getCurLambda(), *this);
369   // If a lambda appears in a dependent context or is a generic lambda (has
370   // template parameters) and has an 'auto' return type, deduce it to a
371   // dependent type.
372   if (Class->isDependentContext() || TemplateParams) {
373     const FunctionProtoType *FPT = MethodType->castAs<FunctionProtoType>();
374     QualType Result = FPT->getReturnType();
375     if (Result->isUndeducedType()) {
376       Result = SubstAutoType(Result, Context.DependentTy);
377       MethodType = Context.getFunctionType(Result, FPT->getParamTypes(),
378                                            FPT->getExtProtoInfo());
379     }
380   }
381 
382   // C++11 [expr.prim.lambda]p5:
383   //   The closure type for a lambda-expression has a public inline function
384   //   call operator (13.5.4) whose parameters and return type are described by
385   //   the lambda-expression's parameter-declaration-clause and
386   //   trailing-return-type respectively.
387   DeclarationName MethodName
388     = Context.DeclarationNames.getCXXOperatorName(OO_Call);
389   DeclarationNameLoc MethodNameLoc =
390       DeclarationNameLoc::makeCXXOperatorNameLoc(IntroducerRange);
391   CXXMethodDecl *Method = CXXMethodDecl::Create(
392       Context, Class, EndLoc,
393       DeclarationNameInfo(MethodName, IntroducerRange.getBegin(),
394                           MethodNameLoc),
395       MethodType, MethodTypeInfo, SC_None,
396       /*isInline=*/true, ConstexprKind, EndLoc, TrailingRequiresClause);
397   Method->setAccess(AS_public);
398   if (!TemplateParams)
399     Class->addDecl(Method);
400 
401   // Temporarily set the lexical declaration context to the current
402   // context, so that the Scope stack matches the lexical nesting.
403   Method->setLexicalDeclContext(CurContext);
404   // Create a function template if we have a template parameter list
405   FunctionTemplateDecl *const TemplateMethod = TemplateParams ?
406             FunctionTemplateDecl::Create(Context, Class,
407                                          Method->getLocation(), MethodName,
408                                          TemplateParams,
409                                          Method) : nullptr;
410   if (TemplateMethod) {
411     TemplateMethod->setAccess(AS_public);
412     Method->setDescribedFunctionTemplate(TemplateMethod);
413     Class->addDecl(TemplateMethod);
414     TemplateMethod->setLexicalDeclContext(CurContext);
415   }
416 
417   // Add parameters.
418   if (!Params.empty()) {
419     Method->setParams(Params);
420     CheckParmsForFunctionDef(Params,
421                              /*CheckParameterNames=*/false);
422 
423     for (auto P : Method->parameters())
424       P->setOwningFunction(Method);
425   }
426 
427   return Method;
428 }
429 
430 void Sema::handleLambdaNumbering(
431     CXXRecordDecl *Class, CXXMethodDecl *Method,
432     Optional<std::tuple<unsigned, bool, Decl *>> Mangling) {
433   if (Mangling) {
434     unsigned ManglingNumber;
435     bool HasKnownInternalLinkage;
436     Decl *ManglingContextDecl;
437     std::tie(ManglingNumber, HasKnownInternalLinkage, ManglingContextDecl) =
438         Mangling.getValue();
439     Class->setLambdaMangling(ManglingNumber, ManglingContextDecl,
440                              HasKnownInternalLinkage);
441     return;
442   }
443 
444   auto getMangleNumberingContext =
445       [this](CXXRecordDecl *Class,
446              Decl *ManglingContextDecl) -> MangleNumberingContext * {
447     // Get mangle numbering context if there's any extra decl context.
448     if (ManglingContextDecl)
449       return &Context.getManglingNumberContext(
450           ASTContext::NeedExtraManglingDecl, ManglingContextDecl);
451     // Otherwise, from that lambda's decl context.
452     auto DC = Class->getDeclContext();
453     while (auto *CD = dyn_cast<CapturedDecl>(DC))
454       DC = CD->getParent();
455     return &Context.getManglingNumberContext(DC);
456   };
457 
458   MangleNumberingContext *MCtx;
459   Decl *ManglingContextDecl;
460   std::tie(MCtx, ManglingContextDecl) =
461       getCurrentMangleNumberContext(Class->getDeclContext());
462   bool HasKnownInternalLinkage = false;
463   if (!MCtx && getLangOpts().CUDA) {
464     // Force lambda numbering in CUDA/HIP as we need to name lambdas following
465     // ODR. Both device- and host-compilation need to have a consistent naming
466     // on kernel functions. As lambdas are potential part of these `__global__`
467     // function names, they needs numbering following ODR.
468     MCtx = getMangleNumberingContext(Class, ManglingContextDecl);
469     assert(MCtx && "Retrieving mangle numbering context failed!");
470     HasKnownInternalLinkage = true;
471   }
472   if (MCtx) {
473     unsigned ManglingNumber = MCtx->getManglingNumber(Method);
474     Class->setLambdaMangling(ManglingNumber, ManglingContextDecl,
475                              HasKnownInternalLinkage);
476   }
477 }
478 
479 void Sema::buildLambdaScope(LambdaScopeInfo *LSI,
480                                         CXXMethodDecl *CallOperator,
481                                         SourceRange IntroducerRange,
482                                         LambdaCaptureDefault CaptureDefault,
483                                         SourceLocation CaptureDefaultLoc,
484                                         bool ExplicitParams,
485                                         bool ExplicitResultType,
486                                         bool Mutable) {
487   LSI->CallOperator = CallOperator;
488   CXXRecordDecl *LambdaClass = CallOperator->getParent();
489   LSI->Lambda = LambdaClass;
490   if (CaptureDefault == LCD_ByCopy)
491     LSI->ImpCaptureStyle = LambdaScopeInfo::ImpCap_LambdaByval;
492   else if (CaptureDefault == LCD_ByRef)
493     LSI->ImpCaptureStyle = LambdaScopeInfo::ImpCap_LambdaByref;
494   LSI->CaptureDefaultLoc = CaptureDefaultLoc;
495   LSI->IntroducerRange = IntroducerRange;
496   LSI->ExplicitParams = ExplicitParams;
497   LSI->Mutable = Mutable;
498 
499   if (ExplicitResultType) {
500     LSI->ReturnType = CallOperator->getReturnType();
501 
502     if (!LSI->ReturnType->isDependentType() &&
503         !LSI->ReturnType->isVoidType()) {
504       if (RequireCompleteType(CallOperator->getBeginLoc(), LSI->ReturnType,
505                               diag::err_lambda_incomplete_result)) {
506         // Do nothing.
507       }
508     }
509   } else {
510     LSI->HasImplicitReturnType = true;
511   }
512 }
513 
514 void Sema::finishLambdaExplicitCaptures(LambdaScopeInfo *LSI) {
515   LSI->finishedExplicitCaptures();
516 }
517 
518 void Sema::ActOnLambdaExplicitTemplateParameterList(SourceLocation LAngleLoc,
519                                                     ArrayRef<NamedDecl *> TParams,
520                                                     SourceLocation RAngleLoc,
521                                                     ExprResult RequiresClause) {
522   LambdaScopeInfo *LSI = getCurLambda();
523   assert(LSI && "Expected a lambda scope");
524   assert(LSI->NumExplicitTemplateParams == 0 &&
525          "Already acted on explicit template parameters");
526   assert(LSI->TemplateParams.empty() &&
527          "Explicit template parameters should come "
528          "before invented (auto) ones");
529   assert(!TParams.empty() &&
530          "No template parameters to act on");
531   LSI->TemplateParams.append(TParams.begin(), TParams.end());
532   LSI->NumExplicitTemplateParams = TParams.size();
533   LSI->ExplicitTemplateParamsRange = {LAngleLoc, RAngleLoc};
534   LSI->RequiresClause = RequiresClause;
535 }
536 
537 void Sema::addLambdaParameters(
538     ArrayRef<LambdaIntroducer::LambdaCapture> Captures,
539     CXXMethodDecl *CallOperator, Scope *CurScope) {
540   // Introduce our parameters into the function scope
541   for (unsigned p = 0, NumParams = CallOperator->getNumParams();
542        p < NumParams; ++p) {
543     ParmVarDecl *Param = CallOperator->getParamDecl(p);
544 
545     // If this has an identifier, add it to the scope stack.
546     if (CurScope && Param->getIdentifier()) {
547       bool Error = false;
548       // Resolution of CWG 2211 in C++17 renders shadowing ill-formed, but we
549       // retroactively apply it.
550       for (const auto &Capture : Captures) {
551         if (Capture.Id == Param->getIdentifier()) {
552           Error = true;
553           Diag(Param->getLocation(), diag::err_parameter_shadow_capture);
554           Diag(Capture.Loc, diag::note_var_explicitly_captured_here)
555               << Capture.Id << true;
556         }
557       }
558       if (!Error)
559         CheckShadow(CurScope, Param);
560 
561       PushOnScopeChains(Param, CurScope);
562     }
563   }
564 }
565 
566 /// If this expression is an enumerator-like expression of some type
567 /// T, return the type T; otherwise, return null.
568 ///
569 /// Pointer comparisons on the result here should always work because
570 /// it's derived from either the parent of an EnumConstantDecl
571 /// (i.e. the definition) or the declaration returned by
572 /// EnumType::getDecl() (i.e. the definition).
573 static EnumDecl *findEnumForBlockReturn(Expr *E) {
574   // An expression is an enumerator-like expression of type T if,
575   // ignoring parens and parens-like expressions:
576   E = E->IgnoreParens();
577 
578   //  - it is an enumerator whose enum type is T or
579   if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) {
580     if (EnumConstantDecl *D
581           = dyn_cast<EnumConstantDecl>(DRE->getDecl())) {
582       return cast<EnumDecl>(D->getDeclContext());
583     }
584     return nullptr;
585   }
586 
587   //  - it is a comma expression whose RHS is an enumerator-like
588   //    expression of type T or
589   if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) {
590     if (BO->getOpcode() == BO_Comma)
591       return findEnumForBlockReturn(BO->getRHS());
592     return nullptr;
593   }
594 
595   //  - it is a statement-expression whose value expression is an
596   //    enumerator-like expression of type T or
597   if (StmtExpr *SE = dyn_cast<StmtExpr>(E)) {
598     if (Expr *last = dyn_cast_or_null<Expr>(SE->getSubStmt()->body_back()))
599       return findEnumForBlockReturn(last);
600     return nullptr;
601   }
602 
603   //   - it is a ternary conditional operator (not the GNU ?:
604   //     extension) whose second and third operands are
605   //     enumerator-like expressions of type T or
606   if (ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E)) {
607     if (EnumDecl *ED = findEnumForBlockReturn(CO->getTrueExpr()))
608       if (ED == findEnumForBlockReturn(CO->getFalseExpr()))
609         return ED;
610     return nullptr;
611   }
612 
613   // (implicitly:)
614   //   - it is an implicit integral conversion applied to an
615   //     enumerator-like expression of type T or
616   if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) {
617     // We can sometimes see integral conversions in valid
618     // enumerator-like expressions.
619     if (ICE->getCastKind() == CK_IntegralCast)
620       return findEnumForBlockReturn(ICE->getSubExpr());
621 
622     // Otherwise, just rely on the type.
623   }
624 
625   //   - it is an expression of that formal enum type.
626   if (const EnumType *ET = E->getType()->getAs<EnumType>()) {
627     return ET->getDecl();
628   }
629 
630   // Otherwise, nope.
631   return nullptr;
632 }
633 
634 /// Attempt to find a type T for which the returned expression of the
635 /// given statement is an enumerator-like expression of that type.
636 static EnumDecl *findEnumForBlockReturn(ReturnStmt *ret) {
637   if (Expr *retValue = ret->getRetValue())
638     return findEnumForBlockReturn(retValue);
639   return nullptr;
640 }
641 
642 /// Attempt to find a common type T for which all of the returned
643 /// expressions in a block are enumerator-like expressions of that
644 /// type.
645 static EnumDecl *findCommonEnumForBlockReturns(ArrayRef<ReturnStmt*> returns) {
646   ArrayRef<ReturnStmt*>::iterator i = returns.begin(), e = returns.end();
647 
648   // Try to find one for the first return.
649   EnumDecl *ED = findEnumForBlockReturn(*i);
650   if (!ED) return nullptr;
651 
652   // Check that the rest of the returns have the same enum.
653   for (++i; i != e; ++i) {
654     if (findEnumForBlockReturn(*i) != ED)
655       return nullptr;
656   }
657 
658   // Never infer an anonymous enum type.
659   if (!ED->hasNameForLinkage()) return nullptr;
660 
661   return ED;
662 }
663 
664 /// Adjust the given return statements so that they formally return
665 /// the given type.  It should require, at most, an IntegralCast.
666 static void adjustBlockReturnsToEnum(Sema &S, ArrayRef<ReturnStmt*> returns,
667                                      QualType returnType) {
668   for (ArrayRef<ReturnStmt*>::iterator
669          i = returns.begin(), e = returns.end(); i != e; ++i) {
670     ReturnStmt *ret = *i;
671     Expr *retValue = ret->getRetValue();
672     if (S.Context.hasSameType(retValue->getType(), returnType))
673       continue;
674 
675     // Right now we only support integral fixup casts.
676     assert(returnType->isIntegralOrUnscopedEnumerationType());
677     assert(retValue->getType()->isIntegralOrUnscopedEnumerationType());
678 
679     ExprWithCleanups *cleanups = dyn_cast<ExprWithCleanups>(retValue);
680 
681     Expr *E = (cleanups ? cleanups->getSubExpr() : retValue);
682     E = ImplicitCastExpr::Create(S.Context, returnType, CK_IntegralCast, E,
683                                  /*base path*/ nullptr, VK_RValue,
684                                  FPOptionsOverride());
685     if (cleanups) {
686       cleanups->setSubExpr(E);
687     } else {
688       ret->setRetValue(E);
689     }
690   }
691 }
692 
693 void Sema::deduceClosureReturnType(CapturingScopeInfo &CSI) {
694   assert(CSI.HasImplicitReturnType);
695   // If it was ever a placeholder, it had to been deduced to DependentTy.
696   assert(CSI.ReturnType.isNull() || !CSI.ReturnType->isUndeducedType());
697   assert((!isa<LambdaScopeInfo>(CSI) || !getLangOpts().CPlusPlus14) &&
698          "lambda expressions use auto deduction in C++14 onwards");
699 
700   // C++ core issue 975:
701   //   If a lambda-expression does not include a trailing-return-type,
702   //   it is as if the trailing-return-type denotes the following type:
703   //     - if there are no return statements in the compound-statement,
704   //       or all return statements return either an expression of type
705   //       void or no expression or braced-init-list, the type void;
706   //     - otherwise, if all return statements return an expression
707   //       and the types of the returned expressions after
708   //       lvalue-to-rvalue conversion (4.1 [conv.lval]),
709   //       array-to-pointer conversion (4.2 [conv.array]), and
710   //       function-to-pointer conversion (4.3 [conv.func]) are the
711   //       same, that common type;
712   //     - otherwise, the program is ill-formed.
713   //
714   // C++ core issue 1048 additionally removes top-level cv-qualifiers
715   // from the types of returned expressions to match the C++14 auto
716   // deduction rules.
717   //
718   // In addition, in blocks in non-C++ modes, if all of the return
719   // statements are enumerator-like expressions of some type T, where
720   // T has a name for linkage, then we infer the return type of the
721   // block to be that type.
722 
723   // First case: no return statements, implicit void return type.
724   ASTContext &Ctx = getASTContext();
725   if (CSI.Returns.empty()) {
726     // It's possible there were simply no /valid/ return statements.
727     // In this case, the first one we found may have at least given us a type.
728     if (CSI.ReturnType.isNull())
729       CSI.ReturnType = Ctx.VoidTy;
730     return;
731   }
732 
733   // Second case: at least one return statement has dependent type.
734   // Delay type checking until instantiation.
735   assert(!CSI.ReturnType.isNull() && "We should have a tentative return type.");
736   if (CSI.ReturnType->isDependentType())
737     return;
738 
739   // Try to apply the enum-fuzz rule.
740   if (!getLangOpts().CPlusPlus) {
741     assert(isa<BlockScopeInfo>(CSI));
742     const EnumDecl *ED = findCommonEnumForBlockReturns(CSI.Returns);
743     if (ED) {
744       CSI.ReturnType = Context.getTypeDeclType(ED);
745       adjustBlockReturnsToEnum(*this, CSI.Returns, CSI.ReturnType);
746       return;
747     }
748   }
749 
750   // Third case: only one return statement. Don't bother doing extra work!
751   if (CSI.Returns.size() == 1)
752     return;
753 
754   // General case: many return statements.
755   // Check that they all have compatible return types.
756 
757   // We require the return types to strictly match here.
758   // Note that we've already done the required promotions as part of
759   // processing the return statement.
760   for (const ReturnStmt *RS : CSI.Returns) {
761     const Expr *RetE = RS->getRetValue();
762 
763     QualType ReturnType =
764         (RetE ? RetE->getType() : Context.VoidTy).getUnqualifiedType();
765     if (Context.getCanonicalFunctionResultType(ReturnType) ==
766           Context.getCanonicalFunctionResultType(CSI.ReturnType)) {
767       // Use the return type with the strictest possible nullability annotation.
768       auto RetTyNullability = ReturnType->getNullability(Ctx);
769       auto BlockNullability = CSI.ReturnType->getNullability(Ctx);
770       if (BlockNullability &&
771           (!RetTyNullability ||
772            hasWeakerNullability(*RetTyNullability, *BlockNullability)))
773         CSI.ReturnType = ReturnType;
774       continue;
775     }
776 
777     // FIXME: This is a poor diagnostic for ReturnStmts without expressions.
778     // TODO: It's possible that the *first* return is the divergent one.
779     Diag(RS->getBeginLoc(),
780          diag::err_typecheck_missing_return_type_incompatible)
781         << ReturnType << CSI.ReturnType << isa<LambdaScopeInfo>(CSI);
782     // Continue iterating so that we keep emitting diagnostics.
783   }
784 }
785 
786 QualType Sema::buildLambdaInitCaptureInitialization(
787     SourceLocation Loc, bool ByRef, SourceLocation EllipsisLoc,
788     Optional<unsigned> NumExpansions, IdentifierInfo *Id, bool IsDirectInit,
789     Expr *&Init) {
790   // Create an 'auto' or 'auto&' TypeSourceInfo that we can use to
791   // deduce against.
792   QualType DeductType = Context.getAutoDeductType();
793   TypeLocBuilder TLB;
794   AutoTypeLoc TL = TLB.push<AutoTypeLoc>(DeductType);
795   TL.setNameLoc(Loc);
796   if (ByRef) {
797     DeductType = BuildReferenceType(DeductType, true, Loc, Id);
798     assert(!DeductType.isNull() && "can't build reference to auto");
799     TLB.push<ReferenceTypeLoc>(DeductType).setSigilLoc(Loc);
800   }
801   if (EllipsisLoc.isValid()) {
802     if (Init->containsUnexpandedParameterPack()) {
803       Diag(EllipsisLoc, getLangOpts().CPlusPlus20
804                             ? diag::warn_cxx17_compat_init_capture_pack
805                             : diag::ext_init_capture_pack);
806       DeductType = Context.getPackExpansionType(DeductType, NumExpansions,
807                                                 /*ExpectPackInType=*/false);
808       TLB.push<PackExpansionTypeLoc>(DeductType).setEllipsisLoc(EllipsisLoc);
809     } else {
810       // Just ignore the ellipsis for now and form a non-pack variable. We'll
811       // diagnose this later when we try to capture it.
812     }
813   }
814   TypeSourceInfo *TSI = TLB.getTypeSourceInfo(Context, DeductType);
815 
816   // Deduce the type of the init capture.
817   QualType DeducedType = deduceVarTypeFromInitializer(
818       /*VarDecl*/nullptr, DeclarationName(Id), DeductType, TSI,
819       SourceRange(Loc, Loc), IsDirectInit, Init);
820   if (DeducedType.isNull())
821     return QualType();
822 
823   // Are we a non-list direct initialization?
824   ParenListExpr *CXXDirectInit = dyn_cast<ParenListExpr>(Init);
825 
826   // Perform initialization analysis and ensure any implicit conversions
827   // (such as lvalue-to-rvalue) are enforced.
828   InitializedEntity Entity =
829       InitializedEntity::InitializeLambdaCapture(Id, DeducedType, Loc);
830   InitializationKind Kind =
831       IsDirectInit
832           ? (CXXDirectInit ? InitializationKind::CreateDirect(
833                                  Loc, Init->getBeginLoc(), Init->getEndLoc())
834                            : InitializationKind::CreateDirectList(Loc))
835           : InitializationKind::CreateCopy(Loc, Init->getBeginLoc());
836 
837   MultiExprArg Args = Init;
838   if (CXXDirectInit)
839     Args =
840         MultiExprArg(CXXDirectInit->getExprs(), CXXDirectInit->getNumExprs());
841   QualType DclT;
842   InitializationSequence InitSeq(*this, Entity, Kind, Args);
843   ExprResult Result = InitSeq.Perform(*this, Entity, Kind, Args, &DclT);
844 
845   if (Result.isInvalid())
846     return QualType();
847 
848   Init = Result.getAs<Expr>();
849   return DeducedType;
850 }
851 
852 VarDecl *Sema::createLambdaInitCaptureVarDecl(SourceLocation Loc,
853                                               QualType InitCaptureType,
854                                               SourceLocation EllipsisLoc,
855                                               IdentifierInfo *Id,
856                                               unsigned InitStyle, Expr *Init) {
857   // FIXME: Retain the TypeSourceInfo from buildLambdaInitCaptureInitialization
858   // rather than reconstructing it here.
859   TypeSourceInfo *TSI = Context.getTrivialTypeSourceInfo(InitCaptureType, Loc);
860   if (auto PETL = TSI->getTypeLoc().getAs<PackExpansionTypeLoc>())
861     PETL.setEllipsisLoc(EllipsisLoc);
862 
863   // Create a dummy variable representing the init-capture. This is not actually
864   // used as a variable, and only exists as a way to name and refer to the
865   // init-capture.
866   // FIXME: Pass in separate source locations for '&' and identifier.
867   VarDecl *NewVD = VarDecl::Create(Context, CurContext, Loc,
868                                    Loc, Id, InitCaptureType, TSI, SC_Auto);
869   NewVD->setInitCapture(true);
870   NewVD->setReferenced(true);
871   // FIXME: Pass in a VarDecl::InitializationStyle.
872   NewVD->setInitStyle(static_cast<VarDecl::InitializationStyle>(InitStyle));
873   NewVD->markUsed(Context);
874   NewVD->setInit(Init);
875   if (NewVD->isParameterPack())
876     getCurLambda()->LocalPacks.push_back(NewVD);
877   return NewVD;
878 }
879 
880 void Sema::addInitCapture(LambdaScopeInfo *LSI, VarDecl *Var) {
881   assert(Var->isInitCapture() && "init capture flag should be set");
882   LSI->addCapture(Var, /*isBlock*/false, Var->getType()->isReferenceType(),
883                   /*isNested*/false, Var->getLocation(), SourceLocation(),
884                   Var->getType(), /*Invalid*/false);
885 }
886 
887 void Sema::ActOnStartOfLambdaDefinition(LambdaIntroducer &Intro,
888                                         Declarator &ParamInfo,
889                                         Scope *CurScope) {
890   LambdaScopeInfo *const LSI = getCurLambda();
891   assert(LSI && "LambdaScopeInfo should be on stack!");
892 
893   // Determine if we're within a context where we know that the lambda will
894   // be dependent, because there are template parameters in scope.
895   bool KnownDependent;
896   if (LSI->NumExplicitTemplateParams > 0) {
897     auto *TemplateParamScope = CurScope->getTemplateParamParent();
898     assert(TemplateParamScope &&
899            "Lambda with explicit template param list should establish a "
900            "template param scope");
901     assert(TemplateParamScope->getParent());
902     KnownDependent = TemplateParamScope->getParent()
903                                        ->getTemplateParamParent() != nullptr;
904   } else {
905     KnownDependent = CurScope->getTemplateParamParent() != nullptr;
906   }
907 
908   // Determine the signature of the call operator.
909   TypeSourceInfo *MethodTyInfo;
910   bool ExplicitParams = true;
911   bool ExplicitResultType = true;
912   bool ContainsUnexpandedParameterPack = false;
913   SourceLocation EndLoc;
914   SmallVector<ParmVarDecl *, 8> Params;
915   if (ParamInfo.getNumTypeObjects() == 0) {
916     // C++11 [expr.prim.lambda]p4:
917     //   If a lambda-expression does not include a lambda-declarator, it is as
918     //   if the lambda-declarator were ().
919     FunctionProtoType::ExtProtoInfo EPI(Context.getDefaultCallingConvention(
920         /*IsVariadic=*/false, /*IsCXXMethod=*/true));
921     EPI.HasTrailingReturn = true;
922     EPI.TypeQuals.addConst();
923     LangAS AS = getDefaultCXXMethodAddrSpace();
924     if (AS != LangAS::Default)
925       EPI.TypeQuals.addAddressSpace(AS);
926 
927     // C++1y [expr.prim.lambda]:
928     //   The lambda return type is 'auto', which is replaced by the
929     //   trailing-return type if provided and/or deduced from 'return'
930     //   statements
931     // We don't do this before C++1y, because we don't support deduced return
932     // types there.
933     QualType DefaultTypeForNoTrailingReturn =
934         getLangOpts().CPlusPlus14 ? Context.getAutoDeductType()
935                                   : Context.DependentTy;
936     QualType MethodTy =
937         Context.getFunctionType(DefaultTypeForNoTrailingReturn, None, EPI);
938     MethodTyInfo = Context.getTrivialTypeSourceInfo(MethodTy);
939     ExplicitParams = false;
940     ExplicitResultType = false;
941     EndLoc = Intro.Range.getEnd();
942   } else {
943     assert(ParamInfo.isFunctionDeclarator() &&
944            "lambda-declarator is a function");
945     DeclaratorChunk::FunctionTypeInfo &FTI = ParamInfo.getFunctionTypeInfo();
946 
947     // C++11 [expr.prim.lambda]p5:
948     //   This function call operator is declared const (9.3.1) if and only if
949     //   the lambda-expression's parameter-declaration-clause is not followed
950     //   by mutable. It is neither virtual nor declared volatile. [...]
951     if (!FTI.hasMutableQualifier()) {
952       FTI.getOrCreateMethodQualifiers().SetTypeQual(DeclSpec::TQ_const,
953                                                     SourceLocation());
954     }
955 
956     MethodTyInfo = GetTypeForDeclarator(ParamInfo, CurScope);
957     assert(MethodTyInfo && "no type from lambda-declarator");
958     EndLoc = ParamInfo.getSourceRange().getEnd();
959 
960     ExplicitResultType = FTI.hasTrailingReturnType();
961 
962     if (FTIHasNonVoidParameters(FTI)) {
963       Params.reserve(FTI.NumParams);
964       for (unsigned i = 0, e = FTI.NumParams; i != e; ++i)
965         Params.push_back(cast<ParmVarDecl>(FTI.Params[i].Param));
966     }
967 
968     // Check for unexpanded parameter packs in the method type.
969     if (MethodTyInfo->getType()->containsUnexpandedParameterPack())
970       DiagnoseUnexpandedParameterPack(Intro.Range.getBegin(), MethodTyInfo,
971                                       UPPC_DeclarationType);
972   }
973 
974   CXXRecordDecl *Class = createLambdaClosureType(Intro.Range, MethodTyInfo,
975                                                  KnownDependent, Intro.Default);
976   CXXMethodDecl *Method =
977       startLambdaDefinition(Class, Intro.Range, MethodTyInfo, EndLoc, Params,
978                             ParamInfo.getDeclSpec().getConstexprSpecifier(),
979                             ParamInfo.getTrailingRequiresClause());
980   if (ExplicitParams)
981     CheckCXXDefaultArguments(Method);
982 
983   // This represents the function body for the lambda function, check if we
984   // have to apply optnone due to a pragma.
985   AddRangeBasedOptnone(Method);
986 
987   // code_seg attribute on lambda apply to the method.
988   if (Attr *A = getImplicitCodeSegOrSectionAttrForFunction(Method, /*IsDefinition=*/true))
989     Method->addAttr(A);
990 
991   // Attributes on the lambda apply to the method.
992   ProcessDeclAttributes(CurScope, Method, ParamInfo);
993 
994   // CUDA lambdas get implicit host and device attributes.
995   if (getLangOpts().CUDA)
996     CUDASetLambdaAttrs(Method);
997 
998   // OpenMP lambdas might get assumumption attributes.
999   if (LangOpts.OpenMP)
1000     ActOnFinishedFunctionDefinitionInOpenMPAssumeScope(Method);
1001 
1002   // Number the lambda for linkage purposes if necessary.
1003   handleLambdaNumbering(Class, Method);
1004 
1005   // Introduce the function call operator as the current declaration context.
1006   PushDeclContext(CurScope, Method);
1007 
1008   // Build the lambda scope.
1009   buildLambdaScope(LSI, Method, Intro.Range, Intro.Default, Intro.DefaultLoc,
1010                    ExplicitParams, ExplicitResultType, !Method->isConst());
1011 
1012   // C++11 [expr.prim.lambda]p9:
1013   //   A lambda-expression whose smallest enclosing scope is a block scope is a
1014   //   local lambda expression; any other lambda expression shall not have a
1015   //   capture-default or simple-capture in its lambda-introducer.
1016   //
1017   // For simple-captures, this is covered by the check below that any named
1018   // entity is a variable that can be captured.
1019   //
1020   // For DR1632, we also allow a capture-default in any context where we can
1021   // odr-use 'this' (in particular, in a default initializer for a non-static
1022   // data member).
1023   if (Intro.Default != LCD_None && !Class->getParent()->isFunctionOrMethod() &&
1024       (getCurrentThisType().isNull() ||
1025        CheckCXXThisCapture(SourceLocation(), /*Explicit*/true,
1026                            /*BuildAndDiagnose*/false)))
1027     Diag(Intro.DefaultLoc, diag::err_capture_default_non_local);
1028 
1029   // Distinct capture names, for diagnostics.
1030   llvm::SmallSet<IdentifierInfo*, 8> CaptureNames;
1031 
1032   // Handle explicit captures.
1033   SourceLocation PrevCaptureLoc
1034     = Intro.Default == LCD_None? Intro.Range.getBegin() : Intro.DefaultLoc;
1035   for (auto C = Intro.Captures.begin(), E = Intro.Captures.end(); C != E;
1036        PrevCaptureLoc = C->Loc, ++C) {
1037     if (C->Kind == LCK_This || C->Kind == LCK_StarThis) {
1038       if (C->Kind == LCK_StarThis)
1039         Diag(C->Loc, !getLangOpts().CPlusPlus17
1040                              ? diag::ext_star_this_lambda_capture_cxx17
1041                              : diag::warn_cxx14_compat_star_this_lambda_capture);
1042 
1043       // C++11 [expr.prim.lambda]p8:
1044       //   An identifier or this shall not appear more than once in a
1045       //   lambda-capture.
1046       if (LSI->isCXXThisCaptured()) {
1047         Diag(C->Loc, diag::err_capture_more_than_once)
1048             << "'this'" << SourceRange(LSI->getCXXThisCapture().getLocation())
1049             << FixItHint::CreateRemoval(
1050                    SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc));
1051         continue;
1052       }
1053 
1054       // C++2a [expr.prim.lambda]p8:
1055       //  If a lambda-capture includes a capture-default that is =,
1056       //  each simple-capture of that lambda-capture shall be of the form
1057       //  "&identifier", "this", or "* this". [ Note: The form [&,this] is
1058       //  redundant but accepted for compatibility with ISO C++14. --end note ]
1059       if (Intro.Default == LCD_ByCopy && C->Kind != LCK_StarThis)
1060         Diag(C->Loc, !getLangOpts().CPlusPlus20
1061                          ? diag::ext_equals_this_lambda_capture_cxx20
1062                          : diag::warn_cxx17_compat_equals_this_lambda_capture);
1063 
1064       // C++11 [expr.prim.lambda]p12:
1065       //   If this is captured by a local lambda expression, its nearest
1066       //   enclosing function shall be a non-static member function.
1067       QualType ThisCaptureType = getCurrentThisType();
1068       if (ThisCaptureType.isNull()) {
1069         Diag(C->Loc, diag::err_this_capture) << true;
1070         continue;
1071       }
1072 
1073       CheckCXXThisCapture(C->Loc, /*Explicit=*/true, /*BuildAndDiagnose*/ true,
1074                           /*FunctionScopeIndexToStopAtPtr*/ nullptr,
1075                           C->Kind == LCK_StarThis);
1076       if (!LSI->Captures.empty())
1077         LSI->ExplicitCaptureRanges[LSI->Captures.size() - 1] = C->ExplicitRange;
1078       continue;
1079     }
1080 
1081     assert(C->Id && "missing identifier for capture");
1082 
1083     if (C->Init.isInvalid())
1084       continue;
1085 
1086     VarDecl *Var = nullptr;
1087     if (C->Init.isUsable()) {
1088       Diag(C->Loc, getLangOpts().CPlusPlus14
1089                        ? diag::warn_cxx11_compat_init_capture
1090                        : diag::ext_init_capture);
1091 
1092       // If the initializer expression is usable, but the InitCaptureType
1093       // is not, then an error has occurred - so ignore the capture for now.
1094       // for e.g., [n{0}] { }; <-- if no <initializer_list> is included.
1095       // FIXME: we should create the init capture variable and mark it invalid
1096       // in this case.
1097       if (C->InitCaptureType.get().isNull())
1098         continue;
1099 
1100       if (C->Init.get()->containsUnexpandedParameterPack() &&
1101           !C->InitCaptureType.get()->getAs<PackExpansionType>())
1102         DiagnoseUnexpandedParameterPack(C->Init.get(), UPPC_Initializer);
1103 
1104       unsigned InitStyle;
1105       switch (C->InitKind) {
1106       case LambdaCaptureInitKind::NoInit:
1107         llvm_unreachable("not an init-capture?");
1108       case LambdaCaptureInitKind::CopyInit:
1109         InitStyle = VarDecl::CInit;
1110         break;
1111       case LambdaCaptureInitKind::DirectInit:
1112         InitStyle = VarDecl::CallInit;
1113         break;
1114       case LambdaCaptureInitKind::ListInit:
1115         InitStyle = VarDecl::ListInit;
1116         break;
1117       }
1118       Var = createLambdaInitCaptureVarDecl(C->Loc, C->InitCaptureType.get(),
1119                                            C->EllipsisLoc, C->Id, InitStyle,
1120                                            C->Init.get());
1121       // C++1y [expr.prim.lambda]p11:
1122       //   An init-capture behaves as if it declares and explicitly
1123       //   captures a variable [...] whose declarative region is the
1124       //   lambda-expression's compound-statement
1125       if (Var)
1126         PushOnScopeChains(Var, CurScope, false);
1127     } else {
1128       assert(C->InitKind == LambdaCaptureInitKind::NoInit &&
1129              "init capture has valid but null init?");
1130 
1131       // C++11 [expr.prim.lambda]p8:
1132       //   If a lambda-capture includes a capture-default that is &, the
1133       //   identifiers in the lambda-capture shall not be preceded by &.
1134       //   If a lambda-capture includes a capture-default that is =, [...]
1135       //   each identifier it contains shall be preceded by &.
1136       if (C->Kind == LCK_ByRef && Intro.Default == LCD_ByRef) {
1137         Diag(C->Loc, diag::err_reference_capture_with_reference_default)
1138             << FixItHint::CreateRemoval(
1139                 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc));
1140         continue;
1141       } else if (C->Kind == LCK_ByCopy && Intro.Default == LCD_ByCopy) {
1142         Diag(C->Loc, diag::err_copy_capture_with_copy_default)
1143             << FixItHint::CreateRemoval(
1144                 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc));
1145         continue;
1146       }
1147 
1148       // C++11 [expr.prim.lambda]p10:
1149       //   The identifiers in a capture-list are looked up using the usual
1150       //   rules for unqualified name lookup (3.4.1)
1151       DeclarationNameInfo Name(C->Id, C->Loc);
1152       LookupResult R(*this, Name, LookupOrdinaryName);
1153       LookupName(R, CurScope);
1154       if (R.isAmbiguous())
1155         continue;
1156       if (R.empty()) {
1157         // FIXME: Disable corrections that would add qualification?
1158         CXXScopeSpec ScopeSpec;
1159         DeclFilterCCC<VarDecl> Validator{};
1160         if (DiagnoseEmptyLookup(CurScope, ScopeSpec, R, Validator))
1161           continue;
1162       }
1163 
1164       Var = R.getAsSingle<VarDecl>();
1165       if (Var && DiagnoseUseOfDecl(Var, C->Loc))
1166         continue;
1167     }
1168 
1169     // C++11 [expr.prim.lambda]p8:
1170     //   An identifier or this shall not appear more than once in a
1171     //   lambda-capture.
1172     if (!CaptureNames.insert(C->Id).second) {
1173       if (Var && LSI->isCaptured(Var)) {
1174         Diag(C->Loc, diag::err_capture_more_than_once)
1175             << C->Id << SourceRange(LSI->getCapture(Var).getLocation())
1176             << FixItHint::CreateRemoval(
1177                    SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc));
1178       } else
1179         // Previous capture captured something different (one or both was
1180         // an init-cpature): no fixit.
1181         Diag(C->Loc, diag::err_capture_more_than_once) << C->Id;
1182       continue;
1183     }
1184 
1185     // C++11 [expr.prim.lambda]p10:
1186     //   [...] each such lookup shall find a variable with automatic storage
1187     //   duration declared in the reaching scope of the local lambda expression.
1188     // Note that the 'reaching scope' check happens in tryCaptureVariable().
1189     if (!Var) {
1190       Diag(C->Loc, diag::err_capture_does_not_name_variable) << C->Id;
1191       continue;
1192     }
1193 
1194     // Ignore invalid decls; they'll just confuse the code later.
1195     if (Var->isInvalidDecl())
1196       continue;
1197 
1198     if (!Var->hasLocalStorage()) {
1199       Diag(C->Loc, diag::err_capture_non_automatic_variable) << C->Id;
1200       Diag(Var->getLocation(), diag::note_previous_decl) << C->Id;
1201       continue;
1202     }
1203 
1204     // C++11 [expr.prim.lambda]p23:
1205     //   A capture followed by an ellipsis is a pack expansion (14.5.3).
1206     SourceLocation EllipsisLoc;
1207     if (C->EllipsisLoc.isValid()) {
1208       if (Var->isParameterPack()) {
1209         EllipsisLoc = C->EllipsisLoc;
1210       } else {
1211         Diag(C->EllipsisLoc, diag::err_pack_expansion_without_parameter_packs)
1212             << (C->Init.isUsable() ? C->Init.get()->getSourceRange()
1213                                    : SourceRange(C->Loc));
1214 
1215         // Just ignore the ellipsis.
1216       }
1217     } else if (Var->isParameterPack()) {
1218       ContainsUnexpandedParameterPack = true;
1219     }
1220 
1221     if (C->Init.isUsable()) {
1222       addInitCapture(LSI, Var);
1223     } else {
1224       TryCaptureKind Kind = C->Kind == LCK_ByRef ? TryCapture_ExplicitByRef :
1225                                                    TryCapture_ExplicitByVal;
1226       tryCaptureVariable(Var, C->Loc, Kind, EllipsisLoc);
1227     }
1228     if (!LSI->Captures.empty())
1229       LSI->ExplicitCaptureRanges[LSI->Captures.size() - 1] = C->ExplicitRange;
1230   }
1231   finishLambdaExplicitCaptures(LSI);
1232 
1233   LSI->ContainsUnexpandedParameterPack |= ContainsUnexpandedParameterPack;
1234 
1235   // Add lambda parameters into scope.
1236   addLambdaParameters(Intro.Captures, Method, CurScope);
1237 
1238   // Enter a new evaluation context to insulate the lambda from any
1239   // cleanups from the enclosing full-expression.
1240   PushExpressionEvaluationContext(
1241       LSI->CallOperator->isConsteval()
1242           ? ExpressionEvaluationContext::ConstantEvaluated
1243           : ExpressionEvaluationContext::PotentiallyEvaluated);
1244 }
1245 
1246 void Sema::ActOnLambdaError(SourceLocation StartLoc, Scope *CurScope,
1247                             bool IsInstantiation) {
1248   LambdaScopeInfo *LSI = cast<LambdaScopeInfo>(FunctionScopes.back());
1249 
1250   // Leave the expression-evaluation context.
1251   DiscardCleanupsInEvaluationContext();
1252   PopExpressionEvaluationContext();
1253 
1254   // Leave the context of the lambda.
1255   if (!IsInstantiation)
1256     PopDeclContext();
1257 
1258   // Finalize the lambda.
1259   CXXRecordDecl *Class = LSI->Lambda;
1260   Class->setInvalidDecl();
1261   SmallVector<Decl*, 4> Fields(Class->fields());
1262   ActOnFields(nullptr, Class->getLocation(), Class, Fields, SourceLocation(),
1263               SourceLocation(), ParsedAttributesView());
1264   CheckCompletedCXXClass(nullptr, Class);
1265 
1266   PopFunctionScopeInfo();
1267 }
1268 
1269 template <typename Func>
1270 static void repeatForLambdaConversionFunctionCallingConvs(
1271     Sema &S, const FunctionProtoType &CallOpProto, Func F) {
1272   CallingConv DefaultFree = S.Context.getDefaultCallingConvention(
1273       CallOpProto.isVariadic(), /*IsCXXMethod=*/false);
1274   CallingConv DefaultMember = S.Context.getDefaultCallingConvention(
1275       CallOpProto.isVariadic(), /*IsCXXMethod=*/true);
1276   CallingConv CallOpCC = CallOpProto.getCallConv();
1277 
1278   /// Implement emitting a version of the operator for many of the calling
1279   /// conventions for MSVC, as described here:
1280   /// https://devblogs.microsoft.com/oldnewthing/20150220-00/?p=44623.
1281   /// Experimentally, we determined that cdecl, stdcall, fastcall, and
1282   /// vectorcall are generated by MSVC when it is supported by the target.
1283   /// Additionally, we are ensuring that the default-free/default-member and
1284   /// call-operator calling convention are generated as well.
1285   /// NOTE: We intentionally generate a 'thiscall' on Win32 implicitly from the
1286   /// 'member default', despite MSVC not doing so. We do this in order to ensure
1287   /// that someone who intentionally places 'thiscall' on the lambda call
1288   /// operator will still get that overload, since we don't have the a way of
1289   /// detecting the attribute by the time we get here.
1290   if (S.getLangOpts().MSVCCompat) {
1291     CallingConv Convs[] = {
1292         CC_C,        CC_X86StdCall, CC_X86FastCall, CC_X86VectorCall,
1293         DefaultFree, DefaultMember, CallOpCC};
1294     llvm::sort(Convs);
1295     llvm::iterator_range<CallingConv *> Range(
1296         std::begin(Convs), std::unique(std::begin(Convs), std::end(Convs)));
1297     const TargetInfo &TI = S.getASTContext().getTargetInfo();
1298 
1299     for (CallingConv C : Range) {
1300       if (TI.checkCallingConvention(C) == TargetInfo::CCCR_OK)
1301         F(C);
1302     }
1303     return;
1304   }
1305 
1306   if (CallOpCC == DefaultMember && DefaultMember != DefaultFree) {
1307     F(DefaultFree);
1308     F(DefaultMember);
1309   } else {
1310     F(CallOpCC);
1311   }
1312 }
1313 
1314 // Returns the 'standard' calling convention to be used for the lambda
1315 // conversion function, that is, the 'free' function calling convention unless
1316 // it is overridden by a non-default calling convention attribute.
1317 static CallingConv
1318 getLambdaConversionFunctionCallConv(Sema &S,
1319                                     const FunctionProtoType *CallOpProto) {
1320   CallingConv DefaultFree = S.Context.getDefaultCallingConvention(
1321       CallOpProto->isVariadic(), /*IsCXXMethod=*/false);
1322   CallingConv DefaultMember = S.Context.getDefaultCallingConvention(
1323       CallOpProto->isVariadic(), /*IsCXXMethod=*/true);
1324   CallingConv CallOpCC = CallOpProto->getCallConv();
1325 
1326   // If the call-operator hasn't been changed, return both the 'free' and
1327   // 'member' function calling convention.
1328   if (CallOpCC == DefaultMember && DefaultMember != DefaultFree)
1329     return DefaultFree;
1330   return CallOpCC;
1331 }
1332 
1333 QualType Sema::getLambdaConversionFunctionResultType(
1334     const FunctionProtoType *CallOpProto, CallingConv CC) {
1335   const FunctionProtoType::ExtProtoInfo CallOpExtInfo =
1336       CallOpProto->getExtProtoInfo();
1337   FunctionProtoType::ExtProtoInfo InvokerExtInfo = CallOpExtInfo;
1338   InvokerExtInfo.ExtInfo = InvokerExtInfo.ExtInfo.withCallingConv(CC);
1339   InvokerExtInfo.TypeQuals = Qualifiers();
1340   assert(InvokerExtInfo.RefQualifier == RQ_None &&
1341          "Lambda's call operator should not have a reference qualifier");
1342   return Context.getFunctionType(CallOpProto->getReturnType(),
1343                                  CallOpProto->getParamTypes(), InvokerExtInfo);
1344 }
1345 
1346 /// Add a lambda's conversion to function pointer, as described in
1347 /// C++11 [expr.prim.lambda]p6.
1348 static void addFunctionPointerConversion(Sema &S, SourceRange IntroducerRange,
1349                                          CXXRecordDecl *Class,
1350                                          CXXMethodDecl *CallOperator,
1351                                          QualType InvokerFunctionTy) {
1352   // This conversion is explicitly disabled if the lambda's function has
1353   // pass_object_size attributes on any of its parameters.
1354   auto HasPassObjectSizeAttr = [](const ParmVarDecl *P) {
1355     return P->hasAttr<PassObjectSizeAttr>();
1356   };
1357   if (llvm::any_of(CallOperator->parameters(), HasPassObjectSizeAttr))
1358     return;
1359 
1360   // Add the conversion to function pointer.
1361   QualType PtrToFunctionTy = S.Context.getPointerType(InvokerFunctionTy);
1362 
1363   // Create the type of the conversion function.
1364   FunctionProtoType::ExtProtoInfo ConvExtInfo(
1365       S.Context.getDefaultCallingConvention(
1366       /*IsVariadic=*/false, /*IsCXXMethod=*/true));
1367   // The conversion function is always const and noexcept.
1368   ConvExtInfo.TypeQuals = Qualifiers();
1369   ConvExtInfo.TypeQuals.addConst();
1370   ConvExtInfo.ExceptionSpec.Type = EST_BasicNoexcept;
1371   QualType ConvTy =
1372       S.Context.getFunctionType(PtrToFunctionTy, None, ConvExtInfo);
1373 
1374   SourceLocation Loc = IntroducerRange.getBegin();
1375   DeclarationName ConversionName
1376     = S.Context.DeclarationNames.getCXXConversionFunctionName(
1377         S.Context.getCanonicalType(PtrToFunctionTy));
1378   // Construct a TypeSourceInfo for the conversion function, and wire
1379   // all the parameters appropriately for the FunctionProtoTypeLoc
1380   // so that everything works during transformation/instantiation of
1381   // generic lambdas.
1382   // The main reason for wiring up the parameters of the conversion
1383   // function with that of the call operator is so that constructs
1384   // like the following work:
1385   // auto L = [](auto b) {                <-- 1
1386   //   return [](auto a) -> decltype(a) { <-- 2
1387   //      return a;
1388   //   };
1389   // };
1390   // int (*fp)(int) = L(5);
1391   // Because the trailing return type can contain DeclRefExprs that refer
1392   // to the original call operator's variables, we hijack the call
1393   // operators ParmVarDecls below.
1394   TypeSourceInfo *ConvNamePtrToFunctionTSI =
1395       S.Context.getTrivialTypeSourceInfo(PtrToFunctionTy, Loc);
1396   DeclarationNameLoc ConvNameLoc =
1397       DeclarationNameLoc::makeNamedTypeLoc(ConvNamePtrToFunctionTSI);
1398 
1399   // The conversion function is a conversion to a pointer-to-function.
1400   TypeSourceInfo *ConvTSI = S.Context.getTrivialTypeSourceInfo(ConvTy, Loc);
1401   FunctionProtoTypeLoc ConvTL =
1402       ConvTSI->getTypeLoc().getAs<FunctionProtoTypeLoc>();
1403   // Get the result of the conversion function which is a pointer-to-function.
1404   PointerTypeLoc PtrToFunctionTL =
1405       ConvTL.getReturnLoc().getAs<PointerTypeLoc>();
1406   // Do the same for the TypeSourceInfo that is used to name the conversion
1407   // operator.
1408   PointerTypeLoc ConvNamePtrToFunctionTL =
1409       ConvNamePtrToFunctionTSI->getTypeLoc().getAs<PointerTypeLoc>();
1410 
1411   // Get the underlying function types that the conversion function will
1412   // be converting to (should match the type of the call operator).
1413   FunctionProtoTypeLoc CallOpConvTL =
1414       PtrToFunctionTL.getPointeeLoc().getAs<FunctionProtoTypeLoc>();
1415   FunctionProtoTypeLoc CallOpConvNameTL =
1416     ConvNamePtrToFunctionTL.getPointeeLoc().getAs<FunctionProtoTypeLoc>();
1417 
1418   // Wire up the FunctionProtoTypeLocs with the call operator's parameters.
1419   // These parameter's are essentially used to transform the name and
1420   // the type of the conversion operator.  By using the same parameters
1421   // as the call operator's we don't have to fix any back references that
1422   // the trailing return type of the call operator's uses (such as
1423   // decltype(some_type<decltype(a)>::type{} + decltype(a){}) etc.)
1424   // - we can simply use the return type of the call operator, and
1425   // everything should work.
1426   SmallVector<ParmVarDecl *, 4> InvokerParams;
1427   for (unsigned I = 0, N = CallOperator->getNumParams(); I != N; ++I) {
1428     ParmVarDecl *From = CallOperator->getParamDecl(I);
1429 
1430     InvokerParams.push_back(ParmVarDecl::Create(
1431         S.Context,
1432         // Temporarily add to the TU. This is set to the invoker below.
1433         S.Context.getTranslationUnitDecl(), From->getBeginLoc(),
1434         From->getLocation(), From->getIdentifier(), From->getType(),
1435         From->getTypeSourceInfo(), From->getStorageClass(),
1436         /*DefArg=*/nullptr));
1437     CallOpConvTL.setParam(I, From);
1438     CallOpConvNameTL.setParam(I, From);
1439   }
1440 
1441   CXXConversionDecl *Conversion = CXXConversionDecl::Create(
1442       S.Context, Class, Loc,
1443       DeclarationNameInfo(ConversionName, Loc, ConvNameLoc), ConvTy, ConvTSI,
1444       /*isInline=*/true, ExplicitSpecifier(),
1445       S.getLangOpts().CPlusPlus17 ? ConstexprSpecKind::Constexpr
1446                                   : ConstexprSpecKind::Unspecified,
1447       CallOperator->getBody()->getEndLoc());
1448   Conversion->setAccess(AS_public);
1449   Conversion->setImplicit(true);
1450 
1451   if (Class->isGenericLambda()) {
1452     // Create a template version of the conversion operator, using the template
1453     // parameter list of the function call operator.
1454     FunctionTemplateDecl *TemplateCallOperator =
1455             CallOperator->getDescribedFunctionTemplate();
1456     FunctionTemplateDecl *ConversionTemplate =
1457                   FunctionTemplateDecl::Create(S.Context, Class,
1458                                       Loc, ConversionName,
1459                                       TemplateCallOperator->getTemplateParameters(),
1460                                       Conversion);
1461     ConversionTemplate->setAccess(AS_public);
1462     ConversionTemplate->setImplicit(true);
1463     Conversion->setDescribedFunctionTemplate(ConversionTemplate);
1464     Class->addDecl(ConversionTemplate);
1465   } else
1466     Class->addDecl(Conversion);
1467   // Add a non-static member function that will be the result of
1468   // the conversion with a certain unique ID.
1469   DeclarationName InvokerName = &S.Context.Idents.get(
1470                                                  getLambdaStaticInvokerName());
1471   // FIXME: Instead of passing in the CallOperator->getTypeSourceInfo()
1472   // we should get a prebuilt TrivialTypeSourceInfo from Context
1473   // using FunctionTy & Loc and get its TypeLoc as a FunctionProtoTypeLoc
1474   // then rewire the parameters accordingly, by hoisting up the InvokeParams
1475   // loop below and then use its Params to set Invoke->setParams(...) below.
1476   // This would avoid the 'const' qualifier of the calloperator from
1477   // contaminating the type of the invoker, which is currently adjusted
1478   // in SemaTemplateDeduction.cpp:DeduceTemplateArguments.  Fixing the
1479   // trailing return type of the invoker would require a visitor to rebuild
1480   // the trailing return type and adjusting all back DeclRefExpr's to refer
1481   // to the new static invoker parameters - not the call operator's.
1482   CXXMethodDecl *Invoke = CXXMethodDecl::Create(
1483       S.Context, Class, Loc, DeclarationNameInfo(InvokerName, Loc),
1484       InvokerFunctionTy, CallOperator->getTypeSourceInfo(), SC_Static,
1485       /*isInline=*/true, ConstexprSpecKind::Unspecified,
1486       CallOperator->getBody()->getEndLoc());
1487   for (unsigned I = 0, N = CallOperator->getNumParams(); I != N; ++I)
1488     InvokerParams[I]->setOwningFunction(Invoke);
1489   Invoke->setParams(InvokerParams);
1490   Invoke->setAccess(AS_private);
1491   Invoke->setImplicit(true);
1492   if (Class->isGenericLambda()) {
1493     FunctionTemplateDecl *TemplateCallOperator =
1494             CallOperator->getDescribedFunctionTemplate();
1495     FunctionTemplateDecl *StaticInvokerTemplate = FunctionTemplateDecl::Create(
1496                           S.Context, Class, Loc, InvokerName,
1497                           TemplateCallOperator->getTemplateParameters(),
1498                           Invoke);
1499     StaticInvokerTemplate->setAccess(AS_private);
1500     StaticInvokerTemplate->setImplicit(true);
1501     Invoke->setDescribedFunctionTemplate(StaticInvokerTemplate);
1502     Class->addDecl(StaticInvokerTemplate);
1503   } else
1504     Class->addDecl(Invoke);
1505 }
1506 
1507 /// Add a lambda's conversion to function pointers, as described in
1508 /// C++11 [expr.prim.lambda]p6. Note that in most cases, this should emit only a
1509 /// single pointer conversion. In the event that the default calling convention
1510 /// for free and member functions is different, it will emit both conventions.
1511 static void addFunctionPointerConversions(Sema &S, SourceRange IntroducerRange,
1512                                           CXXRecordDecl *Class,
1513                                           CXXMethodDecl *CallOperator) {
1514   const FunctionProtoType *CallOpProto =
1515       CallOperator->getType()->castAs<FunctionProtoType>();
1516 
1517   repeatForLambdaConversionFunctionCallingConvs(
1518       S, *CallOpProto, [&](CallingConv CC) {
1519         QualType InvokerFunctionTy =
1520             S.getLambdaConversionFunctionResultType(CallOpProto, CC);
1521         addFunctionPointerConversion(S, IntroducerRange, Class, CallOperator,
1522                                      InvokerFunctionTy);
1523       });
1524 }
1525 
1526 /// Add a lambda's conversion to block pointer.
1527 static void addBlockPointerConversion(Sema &S,
1528                                       SourceRange IntroducerRange,
1529                                       CXXRecordDecl *Class,
1530                                       CXXMethodDecl *CallOperator) {
1531   const FunctionProtoType *CallOpProto =
1532       CallOperator->getType()->castAs<FunctionProtoType>();
1533   QualType FunctionTy = S.getLambdaConversionFunctionResultType(
1534       CallOpProto, getLambdaConversionFunctionCallConv(S, CallOpProto));
1535   QualType BlockPtrTy = S.Context.getBlockPointerType(FunctionTy);
1536 
1537   FunctionProtoType::ExtProtoInfo ConversionEPI(
1538       S.Context.getDefaultCallingConvention(
1539           /*IsVariadic=*/false, /*IsCXXMethod=*/true));
1540   ConversionEPI.TypeQuals = Qualifiers();
1541   ConversionEPI.TypeQuals.addConst();
1542   QualType ConvTy = S.Context.getFunctionType(BlockPtrTy, None, ConversionEPI);
1543 
1544   SourceLocation Loc = IntroducerRange.getBegin();
1545   DeclarationName Name
1546     = S.Context.DeclarationNames.getCXXConversionFunctionName(
1547         S.Context.getCanonicalType(BlockPtrTy));
1548   DeclarationNameLoc NameLoc = DeclarationNameLoc::makeNamedTypeLoc(
1549       S.Context.getTrivialTypeSourceInfo(BlockPtrTy, Loc));
1550   CXXConversionDecl *Conversion = CXXConversionDecl::Create(
1551       S.Context, Class, Loc, DeclarationNameInfo(Name, Loc, NameLoc), ConvTy,
1552       S.Context.getTrivialTypeSourceInfo(ConvTy, Loc),
1553       /*isInline=*/true, ExplicitSpecifier(), ConstexprSpecKind::Unspecified,
1554       CallOperator->getBody()->getEndLoc());
1555   Conversion->setAccess(AS_public);
1556   Conversion->setImplicit(true);
1557   Class->addDecl(Conversion);
1558 }
1559 
1560 ExprResult Sema::BuildCaptureInit(const Capture &Cap,
1561                                   SourceLocation ImplicitCaptureLoc,
1562                                   bool IsOpenMPMapping) {
1563   // VLA captures don't have a stored initialization expression.
1564   if (Cap.isVLATypeCapture())
1565     return ExprResult();
1566 
1567   // An init-capture is initialized directly from its stored initializer.
1568   if (Cap.isInitCapture())
1569     return Cap.getVariable()->getInit();
1570 
1571   // For anything else, build an initialization expression. For an implicit
1572   // capture, the capture notionally happens at the capture-default, so use
1573   // that location here.
1574   SourceLocation Loc =
1575       ImplicitCaptureLoc.isValid() ? ImplicitCaptureLoc : Cap.getLocation();
1576 
1577   // C++11 [expr.prim.lambda]p21:
1578   //   When the lambda-expression is evaluated, the entities that
1579   //   are captured by copy are used to direct-initialize each
1580   //   corresponding non-static data member of the resulting closure
1581   //   object. (For array members, the array elements are
1582   //   direct-initialized in increasing subscript order.) These
1583   //   initializations are performed in the (unspecified) order in
1584   //   which the non-static data members are declared.
1585 
1586   // C++ [expr.prim.lambda]p12:
1587   //   An entity captured by a lambda-expression is odr-used (3.2) in
1588   //   the scope containing the lambda-expression.
1589   ExprResult Init;
1590   IdentifierInfo *Name = nullptr;
1591   if (Cap.isThisCapture()) {
1592     QualType ThisTy = getCurrentThisType();
1593     Expr *This = BuildCXXThisExpr(Loc, ThisTy, ImplicitCaptureLoc.isValid());
1594     if (Cap.isCopyCapture())
1595       Init = CreateBuiltinUnaryOp(Loc, UO_Deref, This);
1596     else
1597       Init = This;
1598   } else {
1599     assert(Cap.isVariableCapture() && "unknown kind of capture");
1600     VarDecl *Var = Cap.getVariable();
1601     Name = Var->getIdentifier();
1602     Init = BuildDeclarationNameExpr(
1603       CXXScopeSpec(), DeclarationNameInfo(Var->getDeclName(), Loc), Var);
1604   }
1605 
1606   // In OpenMP, the capture kind doesn't actually describe how to capture:
1607   // variables are "mapped" onto the device in a process that does not formally
1608   // make a copy, even for a "copy capture".
1609   if (IsOpenMPMapping)
1610     return Init;
1611 
1612   if (Init.isInvalid())
1613     return ExprError();
1614 
1615   Expr *InitExpr = Init.get();
1616   InitializedEntity Entity = InitializedEntity::InitializeLambdaCapture(
1617       Name, Cap.getCaptureType(), Loc);
1618   InitializationKind InitKind =
1619       InitializationKind::CreateDirect(Loc, Loc, Loc);
1620   InitializationSequence InitSeq(*this, Entity, InitKind, InitExpr);
1621   return InitSeq.Perform(*this, Entity, InitKind, InitExpr);
1622 }
1623 
1624 ExprResult Sema::ActOnLambdaExpr(SourceLocation StartLoc, Stmt *Body,
1625                                  Scope *CurScope) {
1626   LambdaScopeInfo LSI = *cast<LambdaScopeInfo>(FunctionScopes.back());
1627   ActOnFinishFunctionBody(LSI.CallOperator, Body);
1628   return BuildLambdaExpr(StartLoc, Body->getEndLoc(), &LSI);
1629 }
1630 
1631 static LambdaCaptureDefault
1632 mapImplicitCaptureStyle(CapturingScopeInfo::ImplicitCaptureStyle ICS) {
1633   switch (ICS) {
1634   case CapturingScopeInfo::ImpCap_None:
1635     return LCD_None;
1636   case CapturingScopeInfo::ImpCap_LambdaByval:
1637     return LCD_ByCopy;
1638   case CapturingScopeInfo::ImpCap_CapturedRegion:
1639   case CapturingScopeInfo::ImpCap_LambdaByref:
1640     return LCD_ByRef;
1641   case CapturingScopeInfo::ImpCap_Block:
1642     llvm_unreachable("block capture in lambda");
1643   }
1644   llvm_unreachable("Unknown implicit capture style");
1645 }
1646 
1647 bool Sema::CaptureHasSideEffects(const Capture &From) {
1648   if (From.isInitCapture()) {
1649     Expr *Init = From.getVariable()->getInit();
1650     if (Init && Init->HasSideEffects(Context))
1651       return true;
1652   }
1653 
1654   if (!From.isCopyCapture())
1655     return false;
1656 
1657   const QualType T = From.isThisCapture()
1658                          ? getCurrentThisType()->getPointeeType()
1659                          : From.getCaptureType();
1660 
1661   if (T.isVolatileQualified())
1662     return true;
1663 
1664   const Type *BaseT = T->getBaseElementTypeUnsafe();
1665   if (const CXXRecordDecl *RD = BaseT->getAsCXXRecordDecl())
1666     return !RD->isCompleteDefinition() || !RD->hasTrivialCopyConstructor() ||
1667            !RD->hasTrivialDestructor();
1668 
1669   return false;
1670 }
1671 
1672 bool Sema::DiagnoseUnusedLambdaCapture(SourceRange CaptureRange,
1673                                        const Capture &From) {
1674   if (CaptureHasSideEffects(From))
1675     return false;
1676 
1677   if (From.isVLATypeCapture())
1678     return false;
1679 
1680   auto diag = Diag(From.getLocation(), diag::warn_unused_lambda_capture);
1681   if (From.isThisCapture())
1682     diag << "'this'";
1683   else
1684     diag << From.getVariable();
1685   diag << From.isNonODRUsed();
1686   diag << FixItHint::CreateRemoval(CaptureRange);
1687   return true;
1688 }
1689 
1690 /// Create a field within the lambda class or captured statement record for the
1691 /// given capture.
1692 FieldDecl *Sema::BuildCaptureField(RecordDecl *RD,
1693                                    const sema::Capture &Capture) {
1694   SourceLocation Loc = Capture.getLocation();
1695   QualType FieldType = Capture.getCaptureType();
1696 
1697   TypeSourceInfo *TSI = nullptr;
1698   if (Capture.isVariableCapture()) {
1699     auto *Var = Capture.getVariable();
1700     if (Var->isInitCapture())
1701       TSI = Capture.getVariable()->getTypeSourceInfo();
1702   }
1703 
1704   // FIXME: Should we really be doing this? A null TypeSourceInfo seems more
1705   // appropriate, at least for an implicit capture.
1706   if (!TSI)
1707     TSI = Context.getTrivialTypeSourceInfo(FieldType, Loc);
1708 
1709   // Build the non-static data member.
1710   FieldDecl *Field =
1711       FieldDecl::Create(Context, RD, /*StartLoc=*/Loc, /*IdLoc=*/Loc,
1712                         /*Id=*/nullptr, FieldType, TSI, /*BW=*/nullptr,
1713                         /*Mutable=*/false, ICIS_NoInit);
1714   // If the variable being captured has an invalid type, mark the class as
1715   // invalid as well.
1716   if (!FieldType->isDependentType()) {
1717     if (RequireCompleteSizedType(Loc, FieldType,
1718                                  diag::err_field_incomplete_or_sizeless)) {
1719       RD->setInvalidDecl();
1720       Field->setInvalidDecl();
1721     } else {
1722       NamedDecl *Def;
1723       FieldType->isIncompleteType(&Def);
1724       if (Def && Def->isInvalidDecl()) {
1725         RD->setInvalidDecl();
1726         Field->setInvalidDecl();
1727       }
1728     }
1729   }
1730   Field->setImplicit(true);
1731   Field->setAccess(AS_private);
1732   RD->addDecl(Field);
1733 
1734   if (Capture.isVLATypeCapture())
1735     Field->setCapturedVLAType(Capture.getCapturedVLAType());
1736 
1737   return Field;
1738 }
1739 
1740 ExprResult Sema::BuildLambdaExpr(SourceLocation StartLoc, SourceLocation EndLoc,
1741                                  LambdaScopeInfo *LSI) {
1742   // Collect information from the lambda scope.
1743   SmallVector<LambdaCapture, 4> Captures;
1744   SmallVector<Expr *, 4> CaptureInits;
1745   SourceLocation CaptureDefaultLoc = LSI->CaptureDefaultLoc;
1746   LambdaCaptureDefault CaptureDefault =
1747       mapImplicitCaptureStyle(LSI->ImpCaptureStyle);
1748   CXXRecordDecl *Class;
1749   CXXMethodDecl *CallOperator;
1750   SourceRange IntroducerRange;
1751   bool ExplicitParams;
1752   bool ExplicitResultType;
1753   CleanupInfo LambdaCleanup;
1754   bool ContainsUnexpandedParameterPack;
1755   bool IsGenericLambda;
1756   {
1757     CallOperator = LSI->CallOperator;
1758     Class = LSI->Lambda;
1759     IntroducerRange = LSI->IntroducerRange;
1760     ExplicitParams = LSI->ExplicitParams;
1761     ExplicitResultType = !LSI->HasImplicitReturnType;
1762     LambdaCleanup = LSI->Cleanup;
1763     ContainsUnexpandedParameterPack = LSI->ContainsUnexpandedParameterPack;
1764     IsGenericLambda = Class->isGenericLambda();
1765 
1766     CallOperator->setLexicalDeclContext(Class);
1767     Decl *TemplateOrNonTemplateCallOperatorDecl =
1768         CallOperator->getDescribedFunctionTemplate()
1769         ? CallOperator->getDescribedFunctionTemplate()
1770         : cast<Decl>(CallOperator);
1771 
1772     // FIXME: Is this really the best choice? Keeping the lexical decl context
1773     // set as CurContext seems more faithful to the source.
1774     TemplateOrNonTemplateCallOperatorDecl->setLexicalDeclContext(Class);
1775 
1776     PopExpressionEvaluationContext();
1777 
1778     // True if the current capture has a used capture or default before it.
1779     bool CurHasPreviousCapture = CaptureDefault != LCD_None;
1780     SourceLocation PrevCaptureLoc = CurHasPreviousCapture ?
1781         CaptureDefaultLoc : IntroducerRange.getBegin();
1782 
1783     for (unsigned I = 0, N = LSI->Captures.size(); I != N; ++I) {
1784       const Capture &From = LSI->Captures[I];
1785 
1786       if (From.isInvalid())
1787         return ExprError();
1788 
1789       assert(!From.isBlockCapture() && "Cannot capture __block variables");
1790       bool IsImplicit = I >= LSI->NumExplicitCaptures;
1791       SourceLocation ImplicitCaptureLoc =
1792           IsImplicit ? CaptureDefaultLoc : SourceLocation();
1793 
1794       // Use source ranges of explicit captures for fixits where available.
1795       SourceRange CaptureRange = LSI->ExplicitCaptureRanges[I];
1796 
1797       // Warn about unused explicit captures.
1798       bool IsCaptureUsed = true;
1799       if (!CurContext->isDependentContext() && !IsImplicit &&
1800           !From.isODRUsed()) {
1801         // Initialized captures that are non-ODR used may not be eliminated.
1802         // FIXME: Where did the IsGenericLambda here come from?
1803         bool NonODRUsedInitCapture =
1804             IsGenericLambda && From.isNonODRUsed() && From.isInitCapture();
1805         if (!NonODRUsedInitCapture) {
1806           bool IsLast = (I + 1) == LSI->NumExplicitCaptures;
1807           SourceRange FixItRange;
1808           if (CaptureRange.isValid()) {
1809             if (!CurHasPreviousCapture && !IsLast) {
1810               // If there are no captures preceding this capture, remove the
1811               // following comma.
1812               FixItRange = SourceRange(CaptureRange.getBegin(),
1813                                        getLocForEndOfToken(CaptureRange.getEnd()));
1814             } else {
1815               // Otherwise, remove the comma since the last used capture.
1816               FixItRange = SourceRange(getLocForEndOfToken(PrevCaptureLoc),
1817                                        CaptureRange.getEnd());
1818             }
1819           }
1820 
1821           IsCaptureUsed = !DiagnoseUnusedLambdaCapture(FixItRange, From);
1822         }
1823       }
1824 
1825       if (CaptureRange.isValid()) {
1826         CurHasPreviousCapture |= IsCaptureUsed;
1827         PrevCaptureLoc = CaptureRange.getEnd();
1828       }
1829 
1830       // Map the capture to our AST representation.
1831       LambdaCapture Capture = [&] {
1832         if (From.isThisCapture()) {
1833           // Capturing 'this' implicitly with a default of '[=]' is deprecated,
1834           // because it results in a reference capture. Don't warn prior to
1835           // C++2a; there's nothing that can be done about it before then.
1836           if (getLangOpts().CPlusPlus20 && IsImplicit &&
1837               CaptureDefault == LCD_ByCopy) {
1838             Diag(From.getLocation(), diag::warn_deprecated_this_capture);
1839             Diag(CaptureDefaultLoc, diag::note_deprecated_this_capture)
1840                 << FixItHint::CreateInsertion(
1841                        getLocForEndOfToken(CaptureDefaultLoc), ", this");
1842           }
1843           return LambdaCapture(From.getLocation(), IsImplicit,
1844                                From.isCopyCapture() ? LCK_StarThis : LCK_This);
1845         } else if (From.isVLATypeCapture()) {
1846           return LambdaCapture(From.getLocation(), IsImplicit, LCK_VLAType);
1847         } else {
1848           assert(From.isVariableCapture() && "unknown kind of capture");
1849           VarDecl *Var = From.getVariable();
1850           LambdaCaptureKind Kind =
1851               From.isCopyCapture() ? LCK_ByCopy : LCK_ByRef;
1852           return LambdaCapture(From.getLocation(), IsImplicit, Kind, Var,
1853                                From.getEllipsisLoc());
1854         }
1855       }();
1856 
1857       // Form the initializer for the capture field.
1858       ExprResult Init = BuildCaptureInit(From, ImplicitCaptureLoc);
1859 
1860       // FIXME: Skip this capture if the capture is not used, the initializer
1861       // has no side-effects, the type of the capture is trivial, and the
1862       // lambda is not externally visible.
1863 
1864       // Add a FieldDecl for the capture and form its initializer.
1865       BuildCaptureField(Class, From);
1866       Captures.push_back(Capture);
1867       CaptureInits.push_back(Init.get());
1868 
1869       if (LangOpts.CUDA)
1870         CUDACheckLambdaCapture(CallOperator, From);
1871     }
1872 
1873     Class->setCaptures(Context, Captures);
1874 
1875     // C++11 [expr.prim.lambda]p6:
1876     //   The closure type for a lambda-expression with no lambda-capture
1877     //   has a public non-virtual non-explicit const conversion function
1878     //   to pointer to function having the same parameter and return
1879     //   types as the closure type's function call operator.
1880     if (Captures.empty() && CaptureDefault == LCD_None)
1881       addFunctionPointerConversions(*this, IntroducerRange, Class,
1882                                     CallOperator);
1883 
1884     // Objective-C++:
1885     //   The closure type for a lambda-expression has a public non-virtual
1886     //   non-explicit const conversion function to a block pointer having the
1887     //   same parameter and return types as the closure type's function call
1888     //   operator.
1889     // FIXME: Fix generic lambda to block conversions.
1890     if (getLangOpts().Blocks && getLangOpts().ObjC && !IsGenericLambda)
1891       addBlockPointerConversion(*this, IntroducerRange, Class, CallOperator);
1892 
1893     // Finalize the lambda class.
1894     SmallVector<Decl*, 4> Fields(Class->fields());
1895     ActOnFields(nullptr, Class->getLocation(), Class, Fields, SourceLocation(),
1896                 SourceLocation(), ParsedAttributesView());
1897     CheckCompletedCXXClass(nullptr, Class);
1898   }
1899 
1900   Cleanup.mergeFrom(LambdaCleanup);
1901 
1902   LambdaExpr *Lambda = LambdaExpr::Create(Context, Class, IntroducerRange,
1903                                           CaptureDefault, CaptureDefaultLoc,
1904                                           ExplicitParams, ExplicitResultType,
1905                                           CaptureInits, EndLoc,
1906                                           ContainsUnexpandedParameterPack);
1907   // If the lambda expression's call operator is not explicitly marked constexpr
1908   // and we are not in a dependent context, analyze the call operator to infer
1909   // its constexpr-ness, suppressing diagnostics while doing so.
1910   if (getLangOpts().CPlusPlus17 && !CallOperator->isInvalidDecl() &&
1911       !CallOperator->isConstexpr() &&
1912       !isa<CoroutineBodyStmt>(CallOperator->getBody()) &&
1913       !Class->getDeclContext()->isDependentContext()) {
1914     CallOperator->setConstexprKind(
1915         CheckConstexprFunctionDefinition(CallOperator,
1916                                          CheckConstexprKind::CheckValid)
1917             ? ConstexprSpecKind::Constexpr
1918             : ConstexprSpecKind::Unspecified);
1919   }
1920 
1921   // Emit delayed shadowing warnings now that the full capture list is known.
1922   DiagnoseShadowingLambdaDecls(LSI);
1923 
1924   if (!CurContext->isDependentContext()) {
1925     switch (ExprEvalContexts.back().Context) {
1926     // C++11 [expr.prim.lambda]p2:
1927     //   A lambda-expression shall not appear in an unevaluated operand
1928     //   (Clause 5).
1929     case ExpressionEvaluationContext::Unevaluated:
1930     case ExpressionEvaluationContext::UnevaluatedList:
1931     case ExpressionEvaluationContext::UnevaluatedAbstract:
1932     // C++1y [expr.const]p2:
1933     //   A conditional-expression e is a core constant expression unless the
1934     //   evaluation of e, following the rules of the abstract machine, would
1935     //   evaluate [...] a lambda-expression.
1936     //
1937     // This is technically incorrect, there are some constant evaluated contexts
1938     // where this should be allowed.  We should probably fix this when DR1607 is
1939     // ratified, it lays out the exact set of conditions where we shouldn't
1940     // allow a lambda-expression.
1941     case ExpressionEvaluationContext::ConstantEvaluated:
1942       // We don't actually diagnose this case immediately, because we
1943       // could be within a context where we might find out later that
1944       // the expression is potentially evaluated (e.g., for typeid).
1945       ExprEvalContexts.back().Lambdas.push_back(Lambda);
1946       break;
1947 
1948     case ExpressionEvaluationContext::DiscardedStatement:
1949     case ExpressionEvaluationContext::PotentiallyEvaluated:
1950     case ExpressionEvaluationContext::PotentiallyEvaluatedIfUsed:
1951       break;
1952     }
1953   }
1954 
1955   return MaybeBindToTemporary(Lambda);
1956 }
1957 
1958 ExprResult Sema::BuildBlockForLambdaConversion(SourceLocation CurrentLocation,
1959                                                SourceLocation ConvLocation,
1960                                                CXXConversionDecl *Conv,
1961                                                Expr *Src) {
1962   // Make sure that the lambda call operator is marked used.
1963   CXXRecordDecl *Lambda = Conv->getParent();
1964   CXXMethodDecl *CallOperator
1965     = cast<CXXMethodDecl>(
1966         Lambda->lookup(
1967           Context.DeclarationNames.getCXXOperatorName(OO_Call)).front());
1968   CallOperator->setReferenced();
1969   CallOperator->markUsed(Context);
1970 
1971   ExprResult Init = PerformCopyInitialization(
1972       InitializedEntity::InitializeLambdaToBlock(ConvLocation, Src->getType(),
1973                                                  /*NRVO=*/false),
1974       CurrentLocation, Src);
1975   if (!Init.isInvalid())
1976     Init = ActOnFinishFullExpr(Init.get(), /*DiscardedValue*/ false);
1977 
1978   if (Init.isInvalid())
1979     return ExprError();
1980 
1981   // Create the new block to be returned.
1982   BlockDecl *Block = BlockDecl::Create(Context, CurContext, ConvLocation);
1983 
1984   // Set the type information.
1985   Block->setSignatureAsWritten(CallOperator->getTypeSourceInfo());
1986   Block->setIsVariadic(CallOperator->isVariadic());
1987   Block->setBlockMissingReturnType(false);
1988 
1989   // Add parameters.
1990   SmallVector<ParmVarDecl *, 4> BlockParams;
1991   for (unsigned I = 0, N = CallOperator->getNumParams(); I != N; ++I) {
1992     ParmVarDecl *From = CallOperator->getParamDecl(I);
1993     BlockParams.push_back(ParmVarDecl::Create(
1994         Context, Block, From->getBeginLoc(), From->getLocation(),
1995         From->getIdentifier(), From->getType(), From->getTypeSourceInfo(),
1996         From->getStorageClass(),
1997         /*DefArg=*/nullptr));
1998   }
1999   Block->setParams(BlockParams);
2000 
2001   Block->setIsConversionFromLambda(true);
2002 
2003   // Add capture. The capture uses a fake variable, which doesn't correspond
2004   // to any actual memory location. However, the initializer copy-initializes
2005   // the lambda object.
2006   TypeSourceInfo *CapVarTSI =
2007       Context.getTrivialTypeSourceInfo(Src->getType());
2008   VarDecl *CapVar = VarDecl::Create(Context, Block, ConvLocation,
2009                                     ConvLocation, nullptr,
2010                                     Src->getType(), CapVarTSI,
2011                                     SC_None);
2012   BlockDecl::Capture Capture(/*variable=*/CapVar, /*byRef=*/false,
2013                              /*nested=*/false, /*copy=*/Init.get());
2014   Block->setCaptures(Context, Capture, /*CapturesCXXThis=*/false);
2015 
2016   // Add a fake function body to the block. IR generation is responsible
2017   // for filling in the actual body, which cannot be expressed as an AST.
2018   Block->setBody(new (Context) CompoundStmt(ConvLocation));
2019 
2020   // Create the block literal expression.
2021   Expr *BuildBlock = new (Context) BlockExpr(Block, Conv->getConversionType());
2022   ExprCleanupObjects.push_back(Block);
2023   Cleanup.setExprNeedsCleanups(true);
2024 
2025   return BuildBlock;
2026 }
2027