1 //===--- SemaLambda.cpp - Semantic Analysis for C++11 Lambdas -------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements semantic analysis for C++ lambda expressions. 11 // 12 //===----------------------------------------------------------------------===// 13 #include "clang/Sema/DeclSpec.h" 14 #include "TypeLocBuilder.h" 15 #include "clang/AST/ASTLambda.h" 16 #include "clang/AST/ExprCXX.h" 17 #include "clang/Basic/TargetInfo.h" 18 #include "clang/Sema/Initialization.h" 19 #include "clang/Sema/Lookup.h" 20 #include "clang/Sema/Scope.h" 21 #include "clang/Sema/ScopeInfo.h" 22 #include "clang/Sema/SemaInternal.h" 23 #include "clang/Sema/SemaLambda.h" 24 using namespace clang; 25 using namespace sema; 26 27 /// \brief 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 assert( 70 isa<clang::sema::LambdaScopeInfo>( 71 FunctionScopes[FunctionScopes.size() - 1]) && 72 "The function on the top of sema's function-info stack must be a lambda"); 73 74 // If VarToCapture is null, we are attempting to capture 'this'. 75 const bool IsCapturingThis = !VarToCapture; 76 const bool IsCapturingVariable = !IsCapturingThis; 77 78 // Start with the current lambda at the top of the stack (highest index). 79 unsigned CurScopeIndex = FunctionScopes.size() - 1; 80 DeclContext *EnclosingDC = 81 cast<sema::LambdaScopeInfo>(FunctionScopes[CurScopeIndex])->CallOperator; 82 83 do { 84 const clang::sema::LambdaScopeInfo *LSI = 85 cast<sema::LambdaScopeInfo>(FunctionScopes[CurScopeIndex]); 86 // IF we have climbed down to an intervening enclosing lambda that contains 87 // the variable declaration - it obviously can/must not capture the 88 // variable. 89 // Since its enclosing DC is dependent, all the lambdas between it and the 90 // innermost nested lambda are dependent (otherwise we wouldn't have 91 // arrived here) - so we don't yet have a lambda that can capture the 92 // variable. 93 if (IsCapturingVariable && 94 VarToCapture->getDeclContext()->Equals(EnclosingDC)) 95 return NoLambdaIsCaptureReady; 96 97 // For an enclosing lambda to be capture ready for an entity, all 98 // intervening lambda's have to be able to capture that entity. If even 99 // one of the intervening lambda's is not capable of capturing the entity 100 // then no enclosing lambda can ever capture that entity. 101 // For e.g. 102 // const int x = 10; 103 // [=](auto a) { #1 104 // [](auto b) { #2 <-- an intervening lambda that can never capture 'x' 105 // [=](auto c) { #3 106 // f(x, c); <-- can not lead to x's speculative capture by #1 or #2 107 // }; }; }; 108 // If they do not have a default implicit capture, check to see 109 // if the entity has already been explicitly captured. 110 // If even a single dependent enclosing lambda lacks the capability 111 // to ever capture this variable, there is no further enclosing 112 // non-dependent lambda that can capture this variable. 113 if (LSI->ImpCaptureStyle == sema::LambdaScopeInfo::ImpCap_None) { 114 if (IsCapturingVariable && !LSI->isCaptured(VarToCapture)) 115 return NoLambdaIsCaptureReady; 116 if (IsCapturingThis && !LSI->isCXXThisCaptured()) 117 return NoLambdaIsCaptureReady; 118 } 119 EnclosingDC = getLambdaAwareParentOfDeclContext(EnclosingDC); 120 121 assert(CurScopeIndex); 122 --CurScopeIndex; 123 } while (!EnclosingDC->isTranslationUnit() && 124 EnclosingDC->isDependentContext() && 125 isLambdaCallOperator(EnclosingDC)); 126 127 assert(CurScopeIndex < (FunctionScopes.size() - 1)); 128 // If the enclosingDC is not dependent, then the immediately nested lambda 129 // (one index above) is capture-ready. 130 if (!EnclosingDC->isDependentContext()) 131 return CurScopeIndex + 1; 132 return NoLambdaIsCaptureReady; 133 } 134 135 /// \brief Examines the FunctionScopeInfo stack to determine the nearest 136 /// enclosing lambda (to the current lambda) that is 'capture-capable' for 137 /// the variable referenced in the current lambda (i.e. \p VarToCapture). 138 /// If successful, returns the index into Sema's FunctionScopeInfo stack 139 /// of the capture-capable lambda's LambdaScopeInfo. 140 /// 141 /// Given the current stack of lambdas being processed by Sema and 142 /// the variable of interest, to identify the nearest enclosing lambda (to the 143 /// current lambda at the top of the stack) that can truly capture 144 /// a variable, it has to have the following two properties: 145 /// a) 'capture-ready' - be the innermost lambda that is 'capture-ready': 146 /// - climb down the stack (i.e. starting from the innermost and examining 147 /// each outer lambda step by step) checking if each enclosing 148 /// lambda can either implicitly or explicitly capture the variable. 149 /// Record the first such lambda that is enclosed in a non-dependent 150 /// context. If no such lambda currently exists return failure. 151 /// b) 'capture-capable' - make sure the 'capture-ready' lambda can truly 152 /// capture the variable by checking all its enclosing lambdas: 153 /// - check if all outer lambdas enclosing the 'capture-ready' lambda 154 /// identified above in 'a' can also capture the variable (this is done 155 /// via tryCaptureVariable for variables and CheckCXXThisCapture for 156 /// 'this' by passing in the index of the Lambda identified in step 'a') 157 /// 158 /// \param FunctionScopes - Sema's stack of nested FunctionScopeInfo's (which a 159 /// LambdaScopeInfo inherits from). The current/deepest/innermost lambda 160 /// is at the top of the stack. 161 /// 162 /// \param VarToCapture - the variable to capture. If NULL, capture 'this'. 163 /// 164 /// 165 /// \returns An Optional<unsigned> Index that if evaluates to 'true' contains 166 /// the index (into Sema's FunctionScopeInfo stack) of the innermost lambda 167 /// which is capture-capable. If the return value evaluates to 'false' then 168 /// no lambda is capture-capable for \p VarToCapture. 169 170 Optional<unsigned> clang::getStackIndexOfNearestEnclosingCaptureCapableLambda( 171 ArrayRef<const sema::FunctionScopeInfo *> FunctionScopes, 172 VarDecl *VarToCapture, Sema &S) { 173 174 const Optional<unsigned> NoLambdaIsCaptureCapable; 175 176 const Optional<unsigned> OptionalStackIndex = 177 getStackIndexOfNearestEnclosingCaptureReadyLambda(FunctionScopes, 178 VarToCapture); 179 if (!OptionalStackIndex) 180 return NoLambdaIsCaptureCapable; 181 182 const unsigned IndexOfCaptureReadyLambda = OptionalStackIndex.getValue(); 183 assert(((IndexOfCaptureReadyLambda != (FunctionScopes.size() - 1)) || 184 S.getCurGenericLambda()) && 185 "The capture ready lambda for a potential capture can only be the " 186 "current lambda if it is a generic lambda"); 187 188 const sema::LambdaScopeInfo *const CaptureReadyLambdaLSI = 189 cast<sema::LambdaScopeInfo>(FunctionScopes[IndexOfCaptureReadyLambda]); 190 191 // If VarToCapture is null, we are attempting to capture 'this' 192 const bool IsCapturingThis = !VarToCapture; 193 const bool IsCapturingVariable = !IsCapturingThis; 194 195 if (IsCapturingVariable) { 196 // Check if the capture-ready lambda can truly capture the variable, by 197 // checking whether all enclosing lambdas of the capture-ready lambda allow 198 // the capture - i.e. make sure it is capture-capable. 199 QualType CaptureType, DeclRefType; 200 const bool CanCaptureVariable = 201 !S.tryCaptureVariable(VarToCapture, 202 /*ExprVarIsUsedInLoc*/ SourceLocation(), 203 clang::Sema::TryCapture_Implicit, 204 /*EllipsisLoc*/ SourceLocation(), 205 /*BuildAndDiagnose*/ false, CaptureType, 206 DeclRefType, &IndexOfCaptureReadyLambda); 207 if (!CanCaptureVariable) 208 return NoLambdaIsCaptureCapable; 209 } else { 210 // Check if the capture-ready lambda can truly capture 'this' by checking 211 // whether all enclosing lambdas of the capture-ready lambda can capture 212 // 'this'. 213 const bool CanCaptureThis = 214 !S.CheckCXXThisCapture( 215 CaptureReadyLambdaLSI->PotentialThisCaptureLocation, 216 /*Explicit*/ false, /*BuildAndDiagnose*/ false, 217 &IndexOfCaptureReadyLambda); 218 if (!CanCaptureThis) 219 return NoLambdaIsCaptureCapable; 220 } 221 return IndexOfCaptureReadyLambda; 222 } 223 224 static inline TemplateParameterList * 225 getGenericLambdaTemplateParameterList(LambdaScopeInfo *LSI, Sema &SemaRef) { 226 if (LSI->GLTemplateParameterList) 227 return LSI->GLTemplateParameterList; 228 229 if (!LSI->AutoTemplateParams.empty()) { 230 SourceRange IntroRange = LSI->IntroducerRange; 231 SourceLocation LAngleLoc = IntroRange.getBegin(); 232 SourceLocation RAngleLoc = IntroRange.getEnd(); 233 LSI->GLTemplateParameterList = TemplateParameterList::Create( 234 SemaRef.Context, 235 /*Template kw loc*/ SourceLocation(), LAngleLoc, 236 llvm::makeArrayRef((NamedDecl *const *)LSI->AutoTemplateParams.data(), 237 LSI->AutoTemplateParams.size()), 238 RAngleLoc, nullptr); 239 } 240 return LSI->GLTemplateParameterList; 241 } 242 243 CXXRecordDecl *Sema::createLambdaClosureType(SourceRange IntroducerRange, 244 TypeSourceInfo *Info, 245 bool KnownDependent, 246 LambdaCaptureDefault CaptureDefault) { 247 DeclContext *DC = CurContext; 248 while (!(DC->isFunctionOrMethod() || DC->isRecord() || DC->isFileContext())) 249 DC = DC->getParent(); 250 bool IsGenericLambda = getGenericLambdaTemplateParameterList(getCurLambda(), 251 *this); 252 // Start constructing the lambda class. 253 CXXRecordDecl *Class = CXXRecordDecl::CreateLambda(Context, DC, Info, 254 IntroducerRange.getBegin(), 255 KnownDependent, 256 IsGenericLambda, 257 CaptureDefault); 258 DC->addDecl(Class); 259 260 return Class; 261 } 262 263 /// \brief Determine whether the given context is or is enclosed in an inline 264 /// function. 265 static bool isInInlineFunction(const DeclContext *DC) { 266 while (!DC->isFileContext()) { 267 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(DC)) 268 if (FD->isInlined()) 269 return true; 270 271 DC = DC->getLexicalParent(); 272 } 273 274 return false; 275 } 276 277 MangleNumberingContext * 278 Sema::getCurrentMangleNumberContext(const DeclContext *DC, 279 Decl *&ManglingContextDecl) { 280 // Compute the context for allocating mangling numbers in the current 281 // expression, if the ABI requires them. 282 ManglingContextDecl = ExprEvalContexts.back().ManglingContextDecl; 283 284 enum ContextKind { 285 Normal, 286 DefaultArgument, 287 DataMember, 288 StaticDataMember 289 } Kind = Normal; 290 291 // Default arguments of member function parameters that appear in a class 292 // definition, as well as the initializers of data members, receive special 293 // treatment. Identify them. 294 if (ManglingContextDecl) { 295 if (ParmVarDecl *Param = dyn_cast<ParmVarDecl>(ManglingContextDecl)) { 296 if (const DeclContext *LexicalDC 297 = Param->getDeclContext()->getLexicalParent()) 298 if (LexicalDC->isRecord()) 299 Kind = DefaultArgument; 300 } else if (VarDecl *Var = dyn_cast<VarDecl>(ManglingContextDecl)) { 301 if (Var->getDeclContext()->isRecord()) 302 Kind = StaticDataMember; 303 } else if (isa<FieldDecl>(ManglingContextDecl)) { 304 Kind = DataMember; 305 } 306 } 307 308 // Itanium ABI [5.1.7]: 309 // In the following contexts [...] the one-definition rule requires closure 310 // types in different translation units to "correspond": 311 bool IsInNonspecializedTemplate = 312 !ActiveTemplateInstantiations.empty() || CurContext->isDependentContext(); 313 switch (Kind) { 314 case Normal: 315 // -- the bodies of non-exported nonspecialized template functions 316 // -- the bodies of inline functions 317 if ((IsInNonspecializedTemplate && 318 !(ManglingContextDecl && isa<ParmVarDecl>(ManglingContextDecl))) || 319 isInInlineFunction(CurContext)) { 320 ManglingContextDecl = nullptr; 321 return &Context.getManglingNumberContext(DC); 322 } 323 324 ManglingContextDecl = nullptr; 325 return nullptr; 326 327 case StaticDataMember: 328 // -- the initializers of nonspecialized static members of template classes 329 if (!IsInNonspecializedTemplate) { 330 ManglingContextDecl = nullptr; 331 return nullptr; 332 } 333 // Fall through to get the current context. 334 335 case DataMember: 336 // -- the in-class initializers of class members 337 case DefaultArgument: 338 // -- default arguments appearing in class definitions 339 return &ExprEvalContexts.back().getMangleNumberingContext(Context); 340 } 341 342 llvm_unreachable("unexpected context"); 343 } 344 345 MangleNumberingContext & 346 Sema::ExpressionEvaluationContextRecord::getMangleNumberingContext( 347 ASTContext &Ctx) { 348 assert(ManglingContextDecl && "Need to have a context declaration"); 349 if (!MangleNumbering) 350 MangleNumbering = Ctx.createMangleNumberingContext(); 351 return *MangleNumbering; 352 } 353 354 CXXMethodDecl *Sema::startLambdaDefinition(CXXRecordDecl *Class, 355 SourceRange IntroducerRange, 356 TypeSourceInfo *MethodTypeInfo, 357 SourceLocation EndLoc, 358 ArrayRef<ParmVarDecl *> Params, 359 const bool IsConstexprSpecified) { 360 QualType MethodType = MethodTypeInfo->getType(); 361 TemplateParameterList *TemplateParams = 362 getGenericLambdaTemplateParameterList(getCurLambda(), *this); 363 // If a lambda appears in a dependent context or is a generic lambda (has 364 // template parameters) and has an 'auto' return type, deduce it to a 365 // dependent type. 366 if (Class->isDependentContext() || TemplateParams) { 367 const FunctionProtoType *FPT = MethodType->castAs<FunctionProtoType>(); 368 QualType Result = FPT->getReturnType(); 369 if (Result->isUndeducedType()) { 370 Result = SubstAutoType(Result, Context.DependentTy); 371 MethodType = Context.getFunctionType(Result, FPT->getParamTypes(), 372 FPT->getExtProtoInfo()); 373 } 374 } 375 376 // C++11 [expr.prim.lambda]p5: 377 // The closure type for a lambda-expression has a public inline function 378 // call operator (13.5.4) whose parameters and return type are described by 379 // the lambda-expression's parameter-declaration-clause and 380 // trailing-return-type respectively. 381 DeclarationName MethodName 382 = Context.DeclarationNames.getCXXOperatorName(OO_Call); 383 DeclarationNameLoc MethodNameLoc; 384 MethodNameLoc.CXXOperatorName.BeginOpNameLoc 385 = IntroducerRange.getBegin().getRawEncoding(); 386 MethodNameLoc.CXXOperatorName.EndOpNameLoc 387 = IntroducerRange.getEnd().getRawEncoding(); 388 CXXMethodDecl *Method 389 = CXXMethodDecl::Create(Context, Class, EndLoc, 390 DeclarationNameInfo(MethodName, 391 IntroducerRange.getBegin(), 392 MethodNameLoc), 393 MethodType, MethodTypeInfo, 394 SC_None, 395 /*isInline=*/true, 396 IsConstexprSpecified, 397 EndLoc); 398 Method->setAccess(AS_public); 399 400 // Temporarily set the lexical declaration context to the current 401 // context, so that the Scope stack matches the lexical nesting. 402 Method->setLexicalDeclContext(CurContext); 403 // Create a function template if we have a template parameter list 404 FunctionTemplateDecl *const TemplateMethod = TemplateParams ? 405 FunctionTemplateDecl::Create(Context, Class, 406 Method->getLocation(), MethodName, 407 TemplateParams, 408 Method) : nullptr; 409 if (TemplateMethod) { 410 TemplateMethod->setLexicalDeclContext(CurContext); 411 TemplateMethod->setAccess(AS_public); 412 Method->setDescribedFunctionTemplate(TemplateMethod); 413 } 414 415 // Add parameters. 416 if (!Params.empty()) { 417 Method->setParams(Params); 418 CheckParmsForFunctionDef(Params, 419 /*CheckParameterNames=*/false); 420 421 for (auto P : Method->parameters()) 422 P->setOwningFunction(Method); 423 } 424 425 Decl *ManglingContextDecl; 426 if (MangleNumberingContext *MCtx = 427 getCurrentMangleNumberContext(Class->getDeclContext(), 428 ManglingContextDecl)) { 429 unsigned ManglingNumber = MCtx->getManglingNumber(Method); 430 Class->setLambdaMangling(ManglingNumber, ManglingContextDecl); 431 } 432 433 return Method; 434 } 435 436 void Sema::buildLambdaScope(LambdaScopeInfo *LSI, 437 CXXMethodDecl *CallOperator, 438 SourceRange IntroducerRange, 439 LambdaCaptureDefault CaptureDefault, 440 SourceLocation CaptureDefaultLoc, 441 bool ExplicitParams, 442 bool ExplicitResultType, 443 bool Mutable) { 444 LSI->CallOperator = CallOperator; 445 CXXRecordDecl *LambdaClass = CallOperator->getParent(); 446 LSI->Lambda = LambdaClass; 447 if (CaptureDefault == LCD_ByCopy) 448 LSI->ImpCaptureStyle = LambdaScopeInfo::ImpCap_LambdaByval; 449 else if (CaptureDefault == LCD_ByRef) 450 LSI->ImpCaptureStyle = LambdaScopeInfo::ImpCap_LambdaByref; 451 LSI->CaptureDefaultLoc = CaptureDefaultLoc; 452 LSI->IntroducerRange = IntroducerRange; 453 LSI->ExplicitParams = ExplicitParams; 454 LSI->Mutable = Mutable; 455 456 if (ExplicitResultType) { 457 LSI->ReturnType = CallOperator->getReturnType(); 458 459 if (!LSI->ReturnType->isDependentType() && 460 !LSI->ReturnType->isVoidType()) { 461 if (RequireCompleteType(CallOperator->getLocStart(), LSI->ReturnType, 462 diag::err_lambda_incomplete_result)) { 463 // Do nothing. 464 } 465 } 466 } else { 467 LSI->HasImplicitReturnType = true; 468 } 469 } 470 471 void Sema::finishLambdaExplicitCaptures(LambdaScopeInfo *LSI) { 472 LSI->finishedExplicitCaptures(); 473 } 474 475 void Sema::addLambdaParameters(CXXMethodDecl *CallOperator, Scope *CurScope) { 476 // Introduce our parameters into the function scope 477 for (unsigned p = 0, NumParams = CallOperator->getNumParams(); 478 p < NumParams; ++p) { 479 ParmVarDecl *Param = CallOperator->getParamDecl(p); 480 481 // If this has an identifier, add it to the scope stack. 482 if (CurScope && Param->getIdentifier()) { 483 CheckShadow(CurScope, Param); 484 485 PushOnScopeChains(Param, CurScope); 486 } 487 } 488 } 489 490 /// If this expression is an enumerator-like expression of some type 491 /// T, return the type T; otherwise, return null. 492 /// 493 /// Pointer comparisons on the result here should always work because 494 /// it's derived from either the parent of an EnumConstantDecl 495 /// (i.e. the definition) or the declaration returned by 496 /// EnumType::getDecl() (i.e. the definition). 497 static EnumDecl *findEnumForBlockReturn(Expr *E) { 498 // An expression is an enumerator-like expression of type T if, 499 // ignoring parens and parens-like expressions: 500 E = E->IgnoreParens(); 501 502 // - it is an enumerator whose enum type is T or 503 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) { 504 if (EnumConstantDecl *D 505 = dyn_cast<EnumConstantDecl>(DRE->getDecl())) { 506 return cast<EnumDecl>(D->getDeclContext()); 507 } 508 return nullptr; 509 } 510 511 // - it is a comma expression whose RHS is an enumerator-like 512 // expression of type T or 513 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) { 514 if (BO->getOpcode() == BO_Comma) 515 return findEnumForBlockReturn(BO->getRHS()); 516 return nullptr; 517 } 518 519 // - it is a statement-expression whose value expression is an 520 // enumerator-like expression of type T or 521 if (StmtExpr *SE = dyn_cast<StmtExpr>(E)) { 522 if (Expr *last = dyn_cast_or_null<Expr>(SE->getSubStmt()->body_back())) 523 return findEnumForBlockReturn(last); 524 return nullptr; 525 } 526 527 // - it is a ternary conditional operator (not the GNU ?: 528 // extension) whose second and third operands are 529 // enumerator-like expressions of type T or 530 if (ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E)) { 531 if (EnumDecl *ED = findEnumForBlockReturn(CO->getTrueExpr())) 532 if (ED == findEnumForBlockReturn(CO->getFalseExpr())) 533 return ED; 534 return nullptr; 535 } 536 537 // (implicitly:) 538 // - it is an implicit integral conversion applied to an 539 // enumerator-like expression of type T or 540 if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) { 541 // We can sometimes see integral conversions in valid 542 // enumerator-like expressions. 543 if (ICE->getCastKind() == CK_IntegralCast) 544 return findEnumForBlockReturn(ICE->getSubExpr()); 545 546 // Otherwise, just rely on the type. 547 } 548 549 // - it is an expression of that formal enum type. 550 if (const EnumType *ET = E->getType()->getAs<EnumType>()) { 551 return ET->getDecl(); 552 } 553 554 // Otherwise, nope. 555 return nullptr; 556 } 557 558 /// Attempt to find a type T for which the returned expression of the 559 /// given statement is an enumerator-like expression of that type. 560 static EnumDecl *findEnumForBlockReturn(ReturnStmt *ret) { 561 if (Expr *retValue = ret->getRetValue()) 562 return findEnumForBlockReturn(retValue); 563 return nullptr; 564 } 565 566 /// Attempt to find a common type T for which all of the returned 567 /// expressions in a block are enumerator-like expressions of that 568 /// type. 569 static EnumDecl *findCommonEnumForBlockReturns(ArrayRef<ReturnStmt*> returns) { 570 ArrayRef<ReturnStmt*>::iterator i = returns.begin(), e = returns.end(); 571 572 // Try to find one for the first return. 573 EnumDecl *ED = findEnumForBlockReturn(*i); 574 if (!ED) return nullptr; 575 576 // Check that the rest of the returns have the same enum. 577 for (++i; i != e; ++i) { 578 if (findEnumForBlockReturn(*i) != ED) 579 return nullptr; 580 } 581 582 // Never infer an anonymous enum type. 583 if (!ED->hasNameForLinkage()) return nullptr; 584 585 return ED; 586 } 587 588 /// Adjust the given return statements so that they formally return 589 /// the given type. It should require, at most, an IntegralCast. 590 static void adjustBlockReturnsToEnum(Sema &S, ArrayRef<ReturnStmt*> returns, 591 QualType returnType) { 592 for (ArrayRef<ReturnStmt*>::iterator 593 i = returns.begin(), e = returns.end(); i != e; ++i) { 594 ReturnStmt *ret = *i; 595 Expr *retValue = ret->getRetValue(); 596 if (S.Context.hasSameType(retValue->getType(), returnType)) 597 continue; 598 599 // Right now we only support integral fixup casts. 600 assert(returnType->isIntegralOrUnscopedEnumerationType()); 601 assert(retValue->getType()->isIntegralOrUnscopedEnumerationType()); 602 603 ExprWithCleanups *cleanups = dyn_cast<ExprWithCleanups>(retValue); 604 605 Expr *E = (cleanups ? cleanups->getSubExpr() : retValue); 606 E = ImplicitCastExpr::Create(S.Context, returnType, CK_IntegralCast, 607 E, /*base path*/ nullptr, VK_RValue); 608 if (cleanups) { 609 cleanups->setSubExpr(E); 610 } else { 611 ret->setRetValue(E); 612 } 613 } 614 } 615 616 void Sema::deduceClosureReturnType(CapturingScopeInfo &CSI) { 617 assert(CSI.HasImplicitReturnType); 618 // If it was ever a placeholder, it had to been deduced to DependentTy. 619 assert(CSI.ReturnType.isNull() || !CSI.ReturnType->isUndeducedType()); 620 assert((!isa<LambdaScopeInfo>(CSI) || !getLangOpts().CPlusPlus14) && 621 "lambda expressions use auto deduction in C++14 onwards"); 622 623 // C++ core issue 975: 624 // If a lambda-expression does not include a trailing-return-type, 625 // it is as if the trailing-return-type denotes the following type: 626 // - if there are no return statements in the compound-statement, 627 // or all return statements return either an expression of type 628 // void or no expression or braced-init-list, the type void; 629 // - otherwise, if all return statements return an expression 630 // and the types of the returned expressions after 631 // lvalue-to-rvalue conversion (4.1 [conv.lval]), 632 // array-to-pointer conversion (4.2 [conv.array]), and 633 // function-to-pointer conversion (4.3 [conv.func]) are the 634 // same, that common type; 635 // - otherwise, the program is ill-formed. 636 // 637 // C++ core issue 1048 additionally removes top-level cv-qualifiers 638 // from the types of returned expressions to match the C++14 auto 639 // deduction rules. 640 // 641 // In addition, in blocks in non-C++ modes, if all of the return 642 // statements are enumerator-like expressions of some type T, where 643 // T has a name for linkage, then we infer the return type of the 644 // block to be that type. 645 646 // First case: no return statements, implicit void return type. 647 ASTContext &Ctx = getASTContext(); 648 if (CSI.Returns.empty()) { 649 // It's possible there were simply no /valid/ return statements. 650 // In this case, the first one we found may have at least given us a type. 651 if (CSI.ReturnType.isNull()) 652 CSI.ReturnType = Ctx.VoidTy; 653 return; 654 } 655 656 // Second case: at least one return statement has dependent type. 657 // Delay type checking until instantiation. 658 assert(!CSI.ReturnType.isNull() && "We should have a tentative return type."); 659 if (CSI.ReturnType->isDependentType()) 660 return; 661 662 // Try to apply the enum-fuzz rule. 663 if (!getLangOpts().CPlusPlus) { 664 assert(isa<BlockScopeInfo>(CSI)); 665 const EnumDecl *ED = findCommonEnumForBlockReturns(CSI.Returns); 666 if (ED) { 667 CSI.ReturnType = Context.getTypeDeclType(ED); 668 adjustBlockReturnsToEnum(*this, CSI.Returns, CSI.ReturnType); 669 return; 670 } 671 } 672 673 // Third case: only one return statement. Don't bother doing extra work! 674 SmallVectorImpl<ReturnStmt*>::iterator I = CSI.Returns.begin(), 675 E = CSI.Returns.end(); 676 if (I+1 == E) 677 return; 678 679 // General case: many return statements. 680 // Check that they all have compatible return types. 681 682 // We require the return types to strictly match here. 683 // Note that we've already done the required promotions as part of 684 // processing the return statement. 685 for (; I != E; ++I) { 686 const ReturnStmt *RS = *I; 687 const Expr *RetE = RS->getRetValue(); 688 689 QualType ReturnType = 690 (RetE ? RetE->getType() : Context.VoidTy).getUnqualifiedType(); 691 if (Context.getCanonicalFunctionResultType(ReturnType) == 692 Context.getCanonicalFunctionResultType(CSI.ReturnType)) 693 continue; 694 695 // FIXME: This is a poor diagnostic for ReturnStmts without expressions. 696 // TODO: It's possible that the *first* return is the divergent one. 697 Diag(RS->getLocStart(), 698 diag::err_typecheck_missing_return_type_incompatible) 699 << ReturnType << CSI.ReturnType 700 << isa<LambdaScopeInfo>(CSI); 701 // Continue iterating so that we keep emitting diagnostics. 702 } 703 } 704 705 QualType Sema::buildLambdaInitCaptureInitialization(SourceLocation Loc, 706 bool ByRef, 707 IdentifierInfo *Id, 708 bool IsDirectInit, 709 Expr *&Init) { 710 // Create an 'auto' or 'auto&' TypeSourceInfo that we can use to 711 // deduce against. 712 QualType DeductType = Context.getAutoDeductType(); 713 TypeLocBuilder TLB; 714 TLB.pushTypeSpec(DeductType).setNameLoc(Loc); 715 if (ByRef) { 716 DeductType = BuildReferenceType(DeductType, true, Loc, Id); 717 assert(!DeductType.isNull() && "can't build reference to auto"); 718 TLB.push<ReferenceTypeLoc>(DeductType).setSigilLoc(Loc); 719 } 720 TypeSourceInfo *TSI = TLB.getTypeSourceInfo(Context, DeductType); 721 722 // Deduce the type of the init capture. 723 QualType DeducedType = deduceVarTypeFromInitializer( 724 /*VarDecl*/nullptr, DeclarationName(Id), DeductType, TSI, 725 SourceRange(Loc, Loc), IsDirectInit, Init); 726 if (DeducedType.isNull()) 727 return QualType(); 728 729 // Are we a non-list direct initialization? 730 ParenListExpr *CXXDirectInit = dyn_cast<ParenListExpr>(Init); 731 732 // Perform initialization analysis and ensure any implicit conversions 733 // (such as lvalue-to-rvalue) are enforced. 734 InitializedEntity Entity = 735 InitializedEntity::InitializeLambdaCapture(Id, DeducedType, Loc); 736 InitializationKind Kind = 737 IsDirectInit 738 ? (CXXDirectInit ? InitializationKind::CreateDirect( 739 Loc, Init->getLocStart(), Init->getLocEnd()) 740 : InitializationKind::CreateDirectList(Loc)) 741 : InitializationKind::CreateCopy(Loc, Init->getLocStart()); 742 743 MultiExprArg Args = Init; 744 if (CXXDirectInit) 745 Args = 746 MultiExprArg(CXXDirectInit->getExprs(), CXXDirectInit->getNumExprs()); 747 QualType DclT; 748 InitializationSequence InitSeq(*this, Entity, Kind, Args); 749 ExprResult Result = InitSeq.Perform(*this, Entity, Kind, Args, &DclT); 750 751 if (Result.isInvalid()) 752 return QualType(); 753 Init = Result.getAs<Expr>(); 754 755 // The init-capture initialization is a full-expression that must be 756 // processed as one before we enter the declcontext of the lambda's 757 // call-operator. 758 Result = ActOnFinishFullExpr(Init, Loc, /*DiscardedValue*/ false, 759 /*IsConstexpr*/ false, 760 /*IsLambdaInitCaptureInitalizer*/ true); 761 if (Result.isInvalid()) 762 return QualType(); 763 764 Init = Result.getAs<Expr>(); 765 return DeducedType; 766 } 767 768 VarDecl *Sema::createLambdaInitCaptureVarDecl(SourceLocation Loc, 769 QualType InitCaptureType, 770 IdentifierInfo *Id, 771 unsigned InitStyle, Expr *Init) { 772 TypeSourceInfo *TSI = Context.getTrivialTypeSourceInfo(InitCaptureType, 773 Loc); 774 // Create a dummy variable representing the init-capture. This is not actually 775 // used as a variable, and only exists as a way to name and refer to the 776 // init-capture. 777 // FIXME: Pass in separate source locations for '&' and identifier. 778 VarDecl *NewVD = VarDecl::Create(Context, CurContext, Loc, 779 Loc, Id, InitCaptureType, TSI, SC_Auto); 780 NewVD->setInitCapture(true); 781 NewVD->setReferenced(true); 782 // FIXME: Pass in a VarDecl::InitializationStyle. 783 NewVD->setInitStyle(static_cast<VarDecl::InitializationStyle>(InitStyle)); 784 NewVD->markUsed(Context); 785 NewVD->setInit(Init); 786 return NewVD; 787 } 788 789 FieldDecl *Sema::buildInitCaptureField(LambdaScopeInfo *LSI, VarDecl *Var) { 790 FieldDecl *Field = FieldDecl::Create( 791 Context, LSI->Lambda, Var->getLocation(), Var->getLocation(), 792 nullptr, Var->getType(), Var->getTypeSourceInfo(), nullptr, false, 793 ICIS_NoInit); 794 Field->setImplicit(true); 795 Field->setAccess(AS_private); 796 LSI->Lambda->addDecl(Field); 797 798 LSI->addCapture(Var, /*isBlock*/false, Var->getType()->isReferenceType(), 799 /*isNested*/false, Var->getLocation(), SourceLocation(), 800 Var->getType(), Var->getInit()); 801 return Field; 802 } 803 804 void Sema::ActOnStartOfLambdaDefinition(LambdaIntroducer &Intro, 805 Declarator &ParamInfo, 806 Scope *CurScope) { 807 // Determine if we're within a context where we know that the lambda will 808 // be dependent, because there are template parameters in scope. 809 bool KnownDependent = false; 810 LambdaScopeInfo *const LSI = getCurLambda(); 811 assert(LSI && "LambdaScopeInfo should be on stack!"); 812 813 // The lambda-expression's closure type might be dependent even if its 814 // semantic context isn't, if it appears within a default argument of a 815 // function template. 816 if (CurScope->getTemplateParamParent()) 817 KnownDependent = true; 818 819 // Determine the signature of the call operator. 820 TypeSourceInfo *MethodTyInfo; 821 bool ExplicitParams = true; 822 bool ExplicitResultType = true; 823 bool ContainsUnexpandedParameterPack = false; 824 SourceLocation EndLoc; 825 SmallVector<ParmVarDecl *, 8> Params; 826 if (ParamInfo.getNumTypeObjects() == 0) { 827 // C++11 [expr.prim.lambda]p4: 828 // If a lambda-expression does not include a lambda-declarator, it is as 829 // if the lambda-declarator were (). 830 FunctionProtoType::ExtProtoInfo EPI(Context.getDefaultCallingConvention( 831 /*IsVariadic=*/false, /*IsCXXMethod=*/true)); 832 EPI.HasTrailingReturn = true; 833 EPI.TypeQuals |= DeclSpec::TQ_const; 834 // C++1y [expr.prim.lambda]: 835 // The lambda return type is 'auto', which is replaced by the 836 // trailing-return type if provided and/or deduced from 'return' 837 // statements 838 // We don't do this before C++1y, because we don't support deduced return 839 // types there. 840 QualType DefaultTypeForNoTrailingReturn = 841 getLangOpts().CPlusPlus14 ? Context.getAutoDeductType() 842 : Context.DependentTy; 843 QualType MethodTy = 844 Context.getFunctionType(DefaultTypeForNoTrailingReturn, None, EPI); 845 MethodTyInfo = Context.getTrivialTypeSourceInfo(MethodTy); 846 ExplicitParams = false; 847 ExplicitResultType = false; 848 EndLoc = Intro.Range.getEnd(); 849 } else { 850 assert(ParamInfo.isFunctionDeclarator() && 851 "lambda-declarator is a function"); 852 DeclaratorChunk::FunctionTypeInfo &FTI = ParamInfo.getFunctionTypeInfo(); 853 854 // C++11 [expr.prim.lambda]p5: 855 // This function call operator is declared const (9.3.1) if and only if 856 // the lambda-expression's parameter-declaration-clause is not followed 857 // by mutable. It is neither virtual nor declared volatile. [...] 858 if (!FTI.hasMutableQualifier()) 859 FTI.TypeQuals |= DeclSpec::TQ_const; 860 861 MethodTyInfo = GetTypeForDeclarator(ParamInfo, CurScope); 862 assert(MethodTyInfo && "no type from lambda-declarator"); 863 EndLoc = ParamInfo.getSourceRange().getEnd(); 864 865 ExplicitResultType = FTI.hasTrailingReturnType(); 866 867 if (FTIHasNonVoidParameters(FTI)) { 868 Params.reserve(FTI.NumParams); 869 for (unsigned i = 0, e = FTI.NumParams; i != e; ++i) 870 Params.push_back(cast<ParmVarDecl>(FTI.Params[i].Param)); 871 } 872 873 // Check for unexpanded parameter packs in the method type. 874 if (MethodTyInfo->getType()->containsUnexpandedParameterPack()) 875 ContainsUnexpandedParameterPack = true; 876 } 877 878 CXXRecordDecl *Class = createLambdaClosureType(Intro.Range, MethodTyInfo, 879 KnownDependent, Intro.Default); 880 881 CXXMethodDecl *Method = 882 startLambdaDefinition(Class, Intro.Range, MethodTyInfo, EndLoc, Params, 883 ParamInfo.getDeclSpec().isConstexprSpecified()); 884 if (ExplicitParams) 885 CheckCXXDefaultArguments(Method); 886 887 // Attributes on the lambda apply to the method. 888 ProcessDeclAttributes(CurScope, Method, ParamInfo); 889 890 // CUDA lambdas get implicit attributes based on the scope in which they're 891 // declared. 892 if (getLangOpts().CUDA) 893 CUDASetLambdaAttrs(Method); 894 895 // Introduce the function call operator as the current declaration context. 896 PushDeclContext(CurScope, Method); 897 898 // Build the lambda scope. 899 buildLambdaScope(LSI, Method, Intro.Range, Intro.Default, Intro.DefaultLoc, 900 ExplicitParams, ExplicitResultType, !Method->isConst()); 901 902 // C++11 [expr.prim.lambda]p9: 903 // A lambda-expression whose smallest enclosing scope is a block scope is a 904 // local lambda expression; any other lambda expression shall not have a 905 // capture-default or simple-capture in its lambda-introducer. 906 // 907 // For simple-captures, this is covered by the check below that any named 908 // entity is a variable that can be captured. 909 // 910 // For DR1632, we also allow a capture-default in any context where we can 911 // odr-use 'this' (in particular, in a default initializer for a non-static 912 // data member). 913 if (Intro.Default != LCD_None && !Class->getParent()->isFunctionOrMethod() && 914 (getCurrentThisType().isNull() || 915 CheckCXXThisCapture(SourceLocation(), /*Explicit*/true, 916 /*BuildAndDiagnose*/false))) 917 Diag(Intro.DefaultLoc, diag::err_capture_default_non_local); 918 919 // Distinct capture names, for diagnostics. 920 llvm::SmallSet<IdentifierInfo*, 8> CaptureNames; 921 922 // Handle explicit captures. 923 SourceLocation PrevCaptureLoc 924 = Intro.Default == LCD_None? Intro.Range.getBegin() : Intro.DefaultLoc; 925 for (auto C = Intro.Captures.begin(), E = Intro.Captures.end(); C != E; 926 PrevCaptureLoc = C->Loc, ++C) { 927 if (C->Kind == LCK_This || C->Kind == LCK_StarThis) { 928 if (C->Kind == LCK_StarThis) 929 Diag(C->Loc, !getLangOpts().CPlusPlus1z 930 ? diag::ext_star_this_lambda_capture_cxx1z 931 : diag::warn_cxx14_compat_star_this_lambda_capture); 932 933 // C++11 [expr.prim.lambda]p8: 934 // An identifier or this shall not appear more than once in a 935 // lambda-capture. 936 if (LSI->isCXXThisCaptured()) { 937 Diag(C->Loc, diag::err_capture_more_than_once) 938 << "'this'" << SourceRange(LSI->getCXXThisCapture().getLocation()) 939 << FixItHint::CreateRemoval( 940 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc)); 941 continue; 942 } 943 944 // C++1z [expr.prim.lambda]p8: 945 // If a lambda-capture includes a capture-default that is =, each 946 // simple-capture of that lambda-capture shall be of the form "& 947 // identifier" or "* this". [ Note: The form [&,this] is redundant but 948 // accepted for compatibility with ISO C++14. --end note ] 949 if (Intro.Default == LCD_ByCopy && C->Kind != LCK_StarThis) { 950 Diag(C->Loc, diag::err_this_capture_with_copy_default) 951 << FixItHint::CreateRemoval( 952 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc)); 953 continue; 954 } 955 956 // C++11 [expr.prim.lambda]p12: 957 // If this is captured by a local lambda expression, its nearest 958 // enclosing function shall be a non-static member function. 959 QualType ThisCaptureType = getCurrentThisType(); 960 if (ThisCaptureType.isNull()) { 961 Diag(C->Loc, diag::err_this_capture) << true; 962 continue; 963 } 964 965 CheckCXXThisCapture(C->Loc, /*Explicit=*/true, /*BuildAndDiagnose*/ true, 966 /*FunctionScopeIndexToStopAtPtr*/ nullptr, 967 C->Kind == LCK_StarThis); 968 continue; 969 } 970 971 assert(C->Id && "missing identifier for capture"); 972 973 if (C->Init.isInvalid()) 974 continue; 975 976 VarDecl *Var = nullptr; 977 if (C->Init.isUsable()) { 978 Diag(C->Loc, getLangOpts().CPlusPlus14 979 ? diag::warn_cxx11_compat_init_capture 980 : diag::ext_init_capture); 981 982 if (C->Init.get()->containsUnexpandedParameterPack()) 983 ContainsUnexpandedParameterPack = true; 984 // If the initializer expression is usable, but the InitCaptureType 985 // is not, then an error has occurred - so ignore the capture for now. 986 // for e.g., [n{0}] { }; <-- if no <initializer_list> is included. 987 // FIXME: we should create the init capture variable and mark it invalid 988 // in this case. 989 if (C->InitCaptureType.get().isNull()) 990 continue; 991 992 unsigned InitStyle; 993 switch (C->InitKind) { 994 case LambdaCaptureInitKind::NoInit: 995 llvm_unreachable("not an init-capture?"); 996 case LambdaCaptureInitKind::CopyInit: 997 InitStyle = VarDecl::CInit; 998 break; 999 case LambdaCaptureInitKind::DirectInit: 1000 InitStyle = VarDecl::CallInit; 1001 break; 1002 case LambdaCaptureInitKind::ListInit: 1003 InitStyle = VarDecl::ListInit; 1004 break; 1005 } 1006 Var = createLambdaInitCaptureVarDecl(C->Loc, C->InitCaptureType.get(), 1007 C->Id, InitStyle, C->Init.get()); 1008 // C++1y [expr.prim.lambda]p11: 1009 // An init-capture behaves as if it declares and explicitly 1010 // captures a variable [...] whose declarative region is the 1011 // lambda-expression's compound-statement 1012 if (Var) 1013 PushOnScopeChains(Var, CurScope, false); 1014 } else { 1015 assert(C->InitKind == LambdaCaptureInitKind::NoInit && 1016 "init capture has valid but null init?"); 1017 1018 // C++11 [expr.prim.lambda]p8: 1019 // If a lambda-capture includes a capture-default that is &, the 1020 // identifiers in the lambda-capture shall not be preceded by &. 1021 // If a lambda-capture includes a capture-default that is =, [...] 1022 // each identifier it contains shall be preceded by &. 1023 if (C->Kind == LCK_ByRef && Intro.Default == LCD_ByRef) { 1024 Diag(C->Loc, diag::err_reference_capture_with_reference_default) 1025 << FixItHint::CreateRemoval( 1026 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc)); 1027 continue; 1028 } else if (C->Kind == LCK_ByCopy && Intro.Default == LCD_ByCopy) { 1029 Diag(C->Loc, diag::err_copy_capture_with_copy_default) 1030 << FixItHint::CreateRemoval( 1031 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc)); 1032 continue; 1033 } 1034 1035 // C++11 [expr.prim.lambda]p10: 1036 // The identifiers in a capture-list are looked up using the usual 1037 // rules for unqualified name lookup (3.4.1) 1038 DeclarationNameInfo Name(C->Id, C->Loc); 1039 LookupResult R(*this, Name, LookupOrdinaryName); 1040 LookupName(R, CurScope); 1041 if (R.isAmbiguous()) 1042 continue; 1043 if (R.empty()) { 1044 // FIXME: Disable corrections that would add qualification? 1045 CXXScopeSpec ScopeSpec; 1046 if (DiagnoseEmptyLookup(CurScope, ScopeSpec, R, 1047 llvm::make_unique<DeclFilterCCC<VarDecl>>())) 1048 continue; 1049 } 1050 1051 Var = R.getAsSingle<VarDecl>(); 1052 if (Var && DiagnoseUseOfDecl(Var, C->Loc)) 1053 continue; 1054 } 1055 1056 // C++11 [expr.prim.lambda]p8: 1057 // An identifier or this shall not appear more than once in a 1058 // lambda-capture. 1059 if (!CaptureNames.insert(C->Id).second) { 1060 if (Var && LSI->isCaptured(Var)) { 1061 Diag(C->Loc, diag::err_capture_more_than_once) 1062 << C->Id << SourceRange(LSI->getCapture(Var).getLocation()) 1063 << FixItHint::CreateRemoval( 1064 SourceRange(getLocForEndOfToken(PrevCaptureLoc), C->Loc)); 1065 } else 1066 // Previous capture captured something different (one or both was 1067 // an init-cpature): no fixit. 1068 Diag(C->Loc, diag::err_capture_more_than_once) << C->Id; 1069 continue; 1070 } 1071 1072 // C++11 [expr.prim.lambda]p10: 1073 // [...] each such lookup shall find a variable with automatic storage 1074 // duration declared in the reaching scope of the local lambda expression. 1075 // Note that the 'reaching scope' check happens in tryCaptureVariable(). 1076 if (!Var) { 1077 Diag(C->Loc, diag::err_capture_does_not_name_variable) << C->Id; 1078 continue; 1079 } 1080 1081 // Ignore invalid decls; they'll just confuse the code later. 1082 if (Var->isInvalidDecl()) 1083 continue; 1084 1085 if (!Var->hasLocalStorage()) { 1086 Diag(C->Loc, diag::err_capture_non_automatic_variable) << C->Id; 1087 Diag(Var->getLocation(), diag::note_previous_decl) << C->Id; 1088 continue; 1089 } 1090 1091 // C++11 [expr.prim.lambda]p23: 1092 // A capture followed by an ellipsis is a pack expansion (14.5.3). 1093 SourceLocation EllipsisLoc; 1094 if (C->EllipsisLoc.isValid()) { 1095 if (Var->isParameterPack()) { 1096 EllipsisLoc = C->EllipsisLoc; 1097 } else { 1098 Diag(C->EllipsisLoc, diag::err_pack_expansion_without_parameter_packs) 1099 << SourceRange(C->Loc); 1100 1101 // Just ignore the ellipsis. 1102 } 1103 } else if (Var->isParameterPack()) { 1104 ContainsUnexpandedParameterPack = true; 1105 } 1106 1107 if (C->Init.isUsable()) { 1108 buildInitCaptureField(LSI, Var); 1109 } else { 1110 TryCaptureKind Kind = C->Kind == LCK_ByRef ? TryCapture_ExplicitByRef : 1111 TryCapture_ExplicitByVal; 1112 tryCaptureVariable(Var, C->Loc, Kind, EllipsisLoc); 1113 } 1114 } 1115 finishLambdaExplicitCaptures(LSI); 1116 1117 LSI->ContainsUnexpandedParameterPack = ContainsUnexpandedParameterPack; 1118 1119 // Add lambda parameters into scope. 1120 addLambdaParameters(Method, CurScope); 1121 1122 // Enter a new evaluation context to insulate the lambda from any 1123 // cleanups from the enclosing full-expression. 1124 PushExpressionEvaluationContext(PotentiallyEvaluated); 1125 } 1126 1127 void Sema::ActOnLambdaError(SourceLocation StartLoc, Scope *CurScope, 1128 bool IsInstantiation) { 1129 LambdaScopeInfo *LSI = cast<LambdaScopeInfo>(FunctionScopes.back()); 1130 1131 // Leave the expression-evaluation context. 1132 DiscardCleanupsInEvaluationContext(); 1133 PopExpressionEvaluationContext(); 1134 1135 // Leave the context of the lambda. 1136 if (!IsInstantiation) 1137 PopDeclContext(); 1138 1139 // Finalize the lambda. 1140 CXXRecordDecl *Class = LSI->Lambda; 1141 Class->setInvalidDecl(); 1142 SmallVector<Decl*, 4> Fields(Class->fields()); 1143 ActOnFields(nullptr, Class->getLocation(), Class, Fields, SourceLocation(), 1144 SourceLocation(), nullptr); 1145 CheckCompletedCXXClass(Class); 1146 1147 PopFunctionScopeInfo(); 1148 } 1149 1150 /// \brief Add a lambda's conversion to function pointer, as described in 1151 /// C++11 [expr.prim.lambda]p6. 1152 static void addFunctionPointerConversion(Sema &S, 1153 SourceRange IntroducerRange, 1154 CXXRecordDecl *Class, 1155 CXXMethodDecl *CallOperator) { 1156 // This conversion is explicitly disabled if the lambda's function has 1157 // pass_object_size attributes on any of its parameters. 1158 auto HasPassObjectSizeAttr = [](const ParmVarDecl *P) { 1159 return P->hasAttr<PassObjectSizeAttr>(); 1160 }; 1161 if (llvm::any_of(CallOperator->parameters(), HasPassObjectSizeAttr)) 1162 return; 1163 1164 // Add the conversion to function pointer. 1165 const FunctionProtoType *CallOpProto = 1166 CallOperator->getType()->getAs<FunctionProtoType>(); 1167 const FunctionProtoType::ExtProtoInfo CallOpExtInfo = 1168 CallOpProto->getExtProtoInfo(); 1169 QualType PtrToFunctionTy; 1170 QualType InvokerFunctionTy; 1171 { 1172 FunctionProtoType::ExtProtoInfo InvokerExtInfo = CallOpExtInfo; 1173 CallingConv CC = S.Context.getDefaultCallingConvention( 1174 CallOpProto->isVariadic(), /*IsCXXMethod=*/false); 1175 InvokerExtInfo.ExtInfo = InvokerExtInfo.ExtInfo.withCallingConv(CC); 1176 InvokerExtInfo.TypeQuals = 0; 1177 assert(InvokerExtInfo.RefQualifier == RQ_None && 1178 "Lambda's call operator should not have a reference qualifier"); 1179 InvokerFunctionTy = 1180 S.Context.getFunctionType(CallOpProto->getReturnType(), 1181 CallOpProto->getParamTypes(), InvokerExtInfo); 1182 PtrToFunctionTy = S.Context.getPointerType(InvokerFunctionTy); 1183 } 1184 1185 // Create the type of the conversion function. 1186 FunctionProtoType::ExtProtoInfo ConvExtInfo( 1187 S.Context.getDefaultCallingConvention( 1188 /*IsVariadic=*/false, /*IsCXXMethod=*/true)); 1189 // The conversion function is always const. 1190 ConvExtInfo.TypeQuals = Qualifiers::Const; 1191 QualType ConvTy = 1192 S.Context.getFunctionType(PtrToFunctionTy, None, ConvExtInfo); 1193 1194 SourceLocation Loc = IntroducerRange.getBegin(); 1195 DeclarationName ConversionName 1196 = S.Context.DeclarationNames.getCXXConversionFunctionName( 1197 S.Context.getCanonicalType(PtrToFunctionTy)); 1198 DeclarationNameLoc ConvNameLoc; 1199 // Construct a TypeSourceInfo for the conversion function, and wire 1200 // all the parameters appropriately for the FunctionProtoTypeLoc 1201 // so that everything works during transformation/instantiation of 1202 // generic lambdas. 1203 // The main reason for wiring up the parameters of the conversion 1204 // function with that of the call operator is so that constructs 1205 // like the following work: 1206 // auto L = [](auto b) { <-- 1 1207 // return [](auto a) -> decltype(a) { <-- 2 1208 // return a; 1209 // }; 1210 // }; 1211 // int (*fp)(int) = L(5); 1212 // Because the trailing return type can contain DeclRefExprs that refer 1213 // to the original call operator's variables, we hijack the call 1214 // operators ParmVarDecls below. 1215 TypeSourceInfo *ConvNamePtrToFunctionTSI = 1216 S.Context.getTrivialTypeSourceInfo(PtrToFunctionTy, Loc); 1217 ConvNameLoc.NamedType.TInfo = ConvNamePtrToFunctionTSI; 1218 1219 // The conversion function is a conversion to a pointer-to-function. 1220 TypeSourceInfo *ConvTSI = S.Context.getTrivialTypeSourceInfo(ConvTy, Loc); 1221 FunctionProtoTypeLoc ConvTL = 1222 ConvTSI->getTypeLoc().getAs<FunctionProtoTypeLoc>(); 1223 // Get the result of the conversion function which is a pointer-to-function. 1224 PointerTypeLoc PtrToFunctionTL = 1225 ConvTL.getReturnLoc().getAs<PointerTypeLoc>(); 1226 // Do the same for the TypeSourceInfo that is used to name the conversion 1227 // operator. 1228 PointerTypeLoc ConvNamePtrToFunctionTL = 1229 ConvNamePtrToFunctionTSI->getTypeLoc().getAs<PointerTypeLoc>(); 1230 1231 // Get the underlying function types that the conversion function will 1232 // be converting to (should match the type of the call operator). 1233 FunctionProtoTypeLoc CallOpConvTL = 1234 PtrToFunctionTL.getPointeeLoc().getAs<FunctionProtoTypeLoc>(); 1235 FunctionProtoTypeLoc CallOpConvNameTL = 1236 ConvNamePtrToFunctionTL.getPointeeLoc().getAs<FunctionProtoTypeLoc>(); 1237 1238 // Wire up the FunctionProtoTypeLocs with the call operator's parameters. 1239 // These parameter's are essentially used to transform the name and 1240 // the type of the conversion operator. By using the same parameters 1241 // as the call operator's we don't have to fix any back references that 1242 // the trailing return type of the call operator's uses (such as 1243 // decltype(some_type<decltype(a)>::type{} + decltype(a){}) etc.) 1244 // - we can simply use the return type of the call operator, and 1245 // everything should work. 1246 SmallVector<ParmVarDecl *, 4> InvokerParams; 1247 for (unsigned I = 0, N = CallOperator->getNumParams(); I != N; ++I) { 1248 ParmVarDecl *From = CallOperator->getParamDecl(I); 1249 1250 InvokerParams.push_back(ParmVarDecl::Create(S.Context, 1251 // Temporarily add to the TU. This is set to the invoker below. 1252 S.Context.getTranslationUnitDecl(), 1253 From->getLocStart(), 1254 From->getLocation(), 1255 From->getIdentifier(), 1256 From->getType(), 1257 From->getTypeSourceInfo(), 1258 From->getStorageClass(), 1259 /*DefaultArg=*/nullptr)); 1260 CallOpConvTL.setParam(I, From); 1261 CallOpConvNameTL.setParam(I, From); 1262 } 1263 1264 CXXConversionDecl *Conversion 1265 = CXXConversionDecl::Create(S.Context, Class, Loc, 1266 DeclarationNameInfo(ConversionName, 1267 Loc, ConvNameLoc), 1268 ConvTy, 1269 ConvTSI, 1270 /*isInline=*/true, /*isExplicit=*/false, 1271 /*isConstexpr=*/false, 1272 CallOperator->getBody()->getLocEnd()); 1273 Conversion->setAccess(AS_public); 1274 Conversion->setImplicit(true); 1275 1276 if (Class->isGenericLambda()) { 1277 // Create a template version of the conversion operator, using the template 1278 // parameter list of the function call operator. 1279 FunctionTemplateDecl *TemplateCallOperator = 1280 CallOperator->getDescribedFunctionTemplate(); 1281 FunctionTemplateDecl *ConversionTemplate = 1282 FunctionTemplateDecl::Create(S.Context, Class, 1283 Loc, ConversionName, 1284 TemplateCallOperator->getTemplateParameters(), 1285 Conversion); 1286 ConversionTemplate->setAccess(AS_public); 1287 ConversionTemplate->setImplicit(true); 1288 Conversion->setDescribedFunctionTemplate(ConversionTemplate); 1289 Class->addDecl(ConversionTemplate); 1290 } else 1291 Class->addDecl(Conversion); 1292 // Add a non-static member function that will be the result of 1293 // the conversion with a certain unique ID. 1294 DeclarationName InvokerName = &S.Context.Idents.get( 1295 getLambdaStaticInvokerName()); 1296 // FIXME: Instead of passing in the CallOperator->getTypeSourceInfo() 1297 // we should get a prebuilt TrivialTypeSourceInfo from Context 1298 // using FunctionTy & Loc and get its TypeLoc as a FunctionProtoTypeLoc 1299 // then rewire the parameters accordingly, by hoisting up the InvokeParams 1300 // loop below and then use its Params to set Invoke->setParams(...) below. 1301 // This would avoid the 'const' qualifier of the calloperator from 1302 // contaminating the type of the invoker, which is currently adjusted 1303 // in SemaTemplateDeduction.cpp:DeduceTemplateArguments. Fixing the 1304 // trailing return type of the invoker would require a visitor to rebuild 1305 // the trailing return type and adjusting all back DeclRefExpr's to refer 1306 // to the new static invoker parameters - not the call operator's. 1307 CXXMethodDecl *Invoke 1308 = CXXMethodDecl::Create(S.Context, Class, Loc, 1309 DeclarationNameInfo(InvokerName, Loc), 1310 InvokerFunctionTy, 1311 CallOperator->getTypeSourceInfo(), 1312 SC_Static, /*IsInline=*/true, 1313 /*IsConstexpr=*/false, 1314 CallOperator->getBody()->getLocEnd()); 1315 for (unsigned I = 0, N = CallOperator->getNumParams(); I != N; ++I) 1316 InvokerParams[I]->setOwningFunction(Invoke); 1317 Invoke->setParams(InvokerParams); 1318 Invoke->setAccess(AS_private); 1319 Invoke->setImplicit(true); 1320 if (Class->isGenericLambda()) { 1321 FunctionTemplateDecl *TemplateCallOperator = 1322 CallOperator->getDescribedFunctionTemplate(); 1323 FunctionTemplateDecl *StaticInvokerTemplate = FunctionTemplateDecl::Create( 1324 S.Context, Class, Loc, InvokerName, 1325 TemplateCallOperator->getTemplateParameters(), 1326 Invoke); 1327 StaticInvokerTemplate->setAccess(AS_private); 1328 StaticInvokerTemplate->setImplicit(true); 1329 Invoke->setDescribedFunctionTemplate(StaticInvokerTemplate); 1330 Class->addDecl(StaticInvokerTemplate); 1331 } else 1332 Class->addDecl(Invoke); 1333 } 1334 1335 /// \brief Add a lambda's conversion to block pointer. 1336 static void addBlockPointerConversion(Sema &S, 1337 SourceRange IntroducerRange, 1338 CXXRecordDecl *Class, 1339 CXXMethodDecl *CallOperator) { 1340 const FunctionProtoType *Proto = 1341 CallOperator->getType()->getAs<FunctionProtoType>(); 1342 1343 // The function type inside the block pointer type is the same as the call 1344 // operator with some tweaks. The calling convention is the default free 1345 // function convention, and the type qualifications are lost. 1346 FunctionProtoType::ExtProtoInfo BlockEPI = Proto->getExtProtoInfo(); 1347 BlockEPI.ExtInfo = 1348 BlockEPI.ExtInfo.withCallingConv(S.Context.getDefaultCallingConvention( 1349 Proto->isVariadic(), /*IsCXXMethod=*/false)); 1350 BlockEPI.TypeQuals = 0; 1351 QualType FunctionTy = S.Context.getFunctionType( 1352 Proto->getReturnType(), Proto->getParamTypes(), BlockEPI); 1353 QualType BlockPtrTy = S.Context.getBlockPointerType(FunctionTy); 1354 1355 FunctionProtoType::ExtProtoInfo ConversionEPI( 1356 S.Context.getDefaultCallingConvention( 1357 /*IsVariadic=*/false, /*IsCXXMethod=*/true)); 1358 ConversionEPI.TypeQuals = Qualifiers::Const; 1359 QualType ConvTy = S.Context.getFunctionType(BlockPtrTy, None, ConversionEPI); 1360 1361 SourceLocation Loc = IntroducerRange.getBegin(); 1362 DeclarationName Name 1363 = S.Context.DeclarationNames.getCXXConversionFunctionName( 1364 S.Context.getCanonicalType(BlockPtrTy)); 1365 DeclarationNameLoc NameLoc; 1366 NameLoc.NamedType.TInfo = S.Context.getTrivialTypeSourceInfo(BlockPtrTy, Loc); 1367 CXXConversionDecl *Conversion 1368 = CXXConversionDecl::Create(S.Context, Class, Loc, 1369 DeclarationNameInfo(Name, Loc, NameLoc), 1370 ConvTy, 1371 S.Context.getTrivialTypeSourceInfo(ConvTy, Loc), 1372 /*isInline=*/true, /*isExplicit=*/false, 1373 /*isConstexpr=*/false, 1374 CallOperator->getBody()->getLocEnd()); 1375 Conversion->setAccess(AS_public); 1376 Conversion->setImplicit(true); 1377 Class->addDecl(Conversion); 1378 } 1379 1380 static ExprResult performLambdaVarCaptureInitialization( 1381 Sema &S, LambdaScopeInfo::Capture &Capture, 1382 FieldDecl *Field, 1383 SmallVectorImpl<VarDecl *> &ArrayIndexVars, 1384 SmallVectorImpl<unsigned> &ArrayIndexStarts) { 1385 assert(Capture.isVariableCapture() && "not a variable capture"); 1386 1387 auto *Var = Capture.getVariable(); 1388 SourceLocation Loc = Capture.getLocation(); 1389 1390 // C++11 [expr.prim.lambda]p21: 1391 // When the lambda-expression is evaluated, the entities that 1392 // are captured by copy are used to direct-initialize each 1393 // corresponding non-static data member of the resulting closure 1394 // object. (For array members, the array elements are 1395 // direct-initialized in increasing subscript order.) These 1396 // initializations are performed in the (unspecified) order in 1397 // which the non-static data members are declared. 1398 1399 // C++ [expr.prim.lambda]p12: 1400 // An entity captured by a lambda-expression is odr-used (3.2) in 1401 // the scope containing the lambda-expression. 1402 ExprResult RefResult = S.BuildDeclarationNameExpr( 1403 CXXScopeSpec(), DeclarationNameInfo(Var->getDeclName(), Loc), Var); 1404 if (RefResult.isInvalid()) 1405 return ExprError(); 1406 Expr *Ref = RefResult.get(); 1407 1408 QualType FieldType = Field->getType(); 1409 1410 // When the variable has array type, create index variables for each 1411 // dimension of the array. We use these index variables to subscript 1412 // the source array, and other clients (e.g., CodeGen) will perform 1413 // the necessary iteration with these index variables. 1414 // 1415 // FIXME: This is dumb. Add a proper AST representation for array 1416 // copy-construction and use it here. 1417 SmallVector<VarDecl *, 4> IndexVariables; 1418 QualType BaseType = FieldType; 1419 QualType SizeType = S.Context.getSizeType(); 1420 ArrayIndexStarts.push_back(ArrayIndexVars.size()); 1421 while (const ConstantArrayType *Array 1422 = S.Context.getAsConstantArrayType(BaseType)) { 1423 // Create the iteration variable for this array index. 1424 IdentifierInfo *IterationVarName = nullptr; 1425 { 1426 SmallString<8> Str; 1427 llvm::raw_svector_ostream OS(Str); 1428 OS << "__i" << IndexVariables.size(); 1429 IterationVarName = &S.Context.Idents.get(OS.str()); 1430 } 1431 VarDecl *IterationVar = VarDecl::Create( 1432 S.Context, S.CurContext, Loc, Loc, IterationVarName, SizeType, 1433 S.Context.getTrivialTypeSourceInfo(SizeType, Loc), SC_None); 1434 IterationVar->setImplicit(); 1435 IndexVariables.push_back(IterationVar); 1436 ArrayIndexVars.push_back(IterationVar); 1437 1438 // Create a reference to the iteration variable. 1439 ExprResult IterationVarRef = 1440 S.BuildDeclRefExpr(IterationVar, SizeType, VK_LValue, Loc); 1441 assert(!IterationVarRef.isInvalid() && 1442 "Reference to invented variable cannot fail!"); 1443 IterationVarRef = S.DefaultLvalueConversion(IterationVarRef.get()); 1444 assert(!IterationVarRef.isInvalid() && 1445 "Conversion of invented variable cannot fail!"); 1446 1447 // Subscript the array with this iteration variable. 1448 ExprResult Subscript = 1449 S.CreateBuiltinArraySubscriptExpr(Ref, Loc, IterationVarRef.get(), Loc); 1450 if (Subscript.isInvalid()) 1451 return ExprError(); 1452 1453 Ref = Subscript.get(); 1454 BaseType = Array->getElementType(); 1455 } 1456 1457 // Construct the entity that we will be initializing. For an array, this 1458 // will be first element in the array, which may require several levels 1459 // of array-subscript entities. 1460 SmallVector<InitializedEntity, 4> Entities; 1461 Entities.reserve(1 + IndexVariables.size()); 1462 Entities.push_back(InitializedEntity::InitializeLambdaCapture( 1463 Var->getIdentifier(), FieldType, Loc)); 1464 for (unsigned I = 0, N = IndexVariables.size(); I != N; ++I) 1465 Entities.push_back( 1466 InitializedEntity::InitializeElement(S.Context, 0, Entities.back())); 1467 1468 InitializationKind InitKind = InitializationKind::CreateDirect(Loc, Loc, Loc); 1469 InitializationSequence Init(S, Entities.back(), InitKind, Ref); 1470 return Init.Perform(S, Entities.back(), InitKind, Ref); 1471 } 1472 1473 ExprResult Sema::ActOnLambdaExpr(SourceLocation StartLoc, Stmt *Body, 1474 Scope *CurScope) { 1475 LambdaScopeInfo LSI = *cast<LambdaScopeInfo>(FunctionScopes.back()); 1476 ActOnFinishFunctionBody(LSI.CallOperator, Body); 1477 return BuildLambdaExpr(StartLoc, Body->getLocEnd(), &LSI); 1478 } 1479 1480 static LambdaCaptureDefault 1481 mapImplicitCaptureStyle(CapturingScopeInfo::ImplicitCaptureStyle ICS) { 1482 switch (ICS) { 1483 case CapturingScopeInfo::ImpCap_None: 1484 return LCD_None; 1485 case CapturingScopeInfo::ImpCap_LambdaByval: 1486 return LCD_ByCopy; 1487 case CapturingScopeInfo::ImpCap_CapturedRegion: 1488 case CapturingScopeInfo::ImpCap_LambdaByref: 1489 return LCD_ByRef; 1490 case CapturingScopeInfo::ImpCap_Block: 1491 llvm_unreachable("block capture in lambda"); 1492 } 1493 llvm_unreachable("Unknown implicit capture style"); 1494 } 1495 1496 ExprResult Sema::BuildLambdaExpr(SourceLocation StartLoc, SourceLocation EndLoc, 1497 LambdaScopeInfo *LSI) { 1498 // Collect information from the lambda scope. 1499 SmallVector<LambdaCapture, 4> Captures; 1500 SmallVector<Expr *, 4> CaptureInits; 1501 SourceLocation CaptureDefaultLoc = LSI->CaptureDefaultLoc; 1502 LambdaCaptureDefault CaptureDefault = 1503 mapImplicitCaptureStyle(LSI->ImpCaptureStyle); 1504 CXXRecordDecl *Class; 1505 CXXMethodDecl *CallOperator; 1506 SourceRange IntroducerRange; 1507 bool ExplicitParams; 1508 bool ExplicitResultType; 1509 CleanupInfo LambdaCleanup; 1510 bool ContainsUnexpandedParameterPack; 1511 SmallVector<VarDecl *, 4> ArrayIndexVars; 1512 SmallVector<unsigned, 4> ArrayIndexStarts; 1513 { 1514 CallOperator = LSI->CallOperator; 1515 Class = LSI->Lambda; 1516 IntroducerRange = LSI->IntroducerRange; 1517 ExplicitParams = LSI->ExplicitParams; 1518 ExplicitResultType = !LSI->HasImplicitReturnType; 1519 LambdaCleanup = LSI->Cleanup; 1520 ContainsUnexpandedParameterPack = LSI->ContainsUnexpandedParameterPack; 1521 1522 CallOperator->setLexicalDeclContext(Class); 1523 Decl *TemplateOrNonTemplateCallOperatorDecl = 1524 CallOperator->getDescribedFunctionTemplate() 1525 ? CallOperator->getDescribedFunctionTemplate() 1526 : cast<Decl>(CallOperator); 1527 1528 TemplateOrNonTemplateCallOperatorDecl->setLexicalDeclContext(Class); 1529 Class->addDecl(TemplateOrNonTemplateCallOperatorDecl); 1530 1531 PopExpressionEvaluationContext(); 1532 1533 // Translate captures. 1534 auto CurField = Class->field_begin(); 1535 for (unsigned I = 0, N = LSI->Captures.size(); I != N; ++I, ++CurField) { 1536 LambdaScopeInfo::Capture From = LSI->Captures[I]; 1537 assert(!From.isBlockCapture() && "Cannot capture __block variables"); 1538 bool IsImplicit = I >= LSI->NumExplicitCaptures; 1539 1540 // Handle 'this' capture. 1541 if (From.isThisCapture()) { 1542 Captures.push_back( 1543 LambdaCapture(From.getLocation(), IsImplicit, 1544 From.isCopyCapture() ? LCK_StarThis : LCK_This)); 1545 CaptureInits.push_back(From.getInitExpr()); 1546 ArrayIndexStarts.push_back(ArrayIndexVars.size()); 1547 continue; 1548 } 1549 if (From.isVLATypeCapture()) { 1550 Captures.push_back( 1551 LambdaCapture(From.getLocation(), IsImplicit, LCK_VLAType)); 1552 CaptureInits.push_back(nullptr); 1553 ArrayIndexStarts.push_back(ArrayIndexVars.size()); 1554 continue; 1555 } 1556 1557 VarDecl *Var = From.getVariable(); 1558 LambdaCaptureKind Kind = From.isCopyCapture() ? LCK_ByCopy : LCK_ByRef; 1559 Captures.push_back(LambdaCapture(From.getLocation(), IsImplicit, Kind, 1560 Var, From.getEllipsisLoc())); 1561 Expr *Init = From.getInitExpr(); 1562 if (!Init) { 1563 auto InitResult = performLambdaVarCaptureInitialization( 1564 *this, From, *CurField, ArrayIndexVars, ArrayIndexStarts); 1565 if (InitResult.isInvalid()) 1566 return ExprError(); 1567 Init = InitResult.get(); 1568 } else { 1569 ArrayIndexStarts.push_back(ArrayIndexVars.size()); 1570 } 1571 CaptureInits.push_back(Init); 1572 } 1573 1574 // C++11 [expr.prim.lambda]p6: 1575 // The closure type for a lambda-expression with no lambda-capture 1576 // has a public non-virtual non-explicit const conversion function 1577 // to pointer to function having the same parameter and return 1578 // types as the closure type's function call operator. 1579 if (Captures.empty() && CaptureDefault == LCD_None) 1580 addFunctionPointerConversion(*this, IntroducerRange, Class, 1581 CallOperator); 1582 1583 // Objective-C++: 1584 // The closure type for a lambda-expression has a public non-virtual 1585 // non-explicit const conversion function to a block pointer having the 1586 // same parameter and return types as the closure type's function call 1587 // operator. 1588 // FIXME: Fix generic lambda to block conversions. 1589 if (getLangOpts().Blocks && getLangOpts().ObjC1 && 1590 !Class->isGenericLambda()) 1591 addBlockPointerConversion(*this, IntroducerRange, Class, CallOperator); 1592 1593 // Finalize the lambda class. 1594 SmallVector<Decl*, 4> Fields(Class->fields()); 1595 ActOnFields(nullptr, Class->getLocation(), Class, Fields, SourceLocation(), 1596 SourceLocation(), nullptr); 1597 CheckCompletedCXXClass(Class); 1598 } 1599 1600 Cleanup.mergeFrom(LambdaCleanup); 1601 1602 LambdaExpr *Lambda = LambdaExpr::Create(Context, Class, IntroducerRange, 1603 CaptureDefault, CaptureDefaultLoc, 1604 Captures, 1605 ExplicitParams, ExplicitResultType, 1606 CaptureInits, ArrayIndexVars, 1607 ArrayIndexStarts, EndLoc, 1608 ContainsUnexpandedParameterPack); 1609 // If the lambda expression's call operator is not explicitly marked constexpr 1610 // and we are not in a dependent context, analyze the call operator to infer 1611 // its constexpr-ness, supressing diagnostics while doing so. 1612 if (getLangOpts().CPlusPlus1z && !CallOperator->isInvalidDecl() && 1613 !CallOperator->isConstexpr() && 1614 !Class->getDeclContext()->isDependentContext()) { 1615 TentativeAnalysisScope DiagnosticScopeGuard(*this); 1616 CallOperator->setConstexpr( 1617 CheckConstexprFunctionDecl(CallOperator) && 1618 CheckConstexprFunctionBody(CallOperator, CallOperator->getBody())); 1619 } 1620 1621 if (!CurContext->isDependentContext()) { 1622 switch (ExprEvalContexts.back().Context) { 1623 // C++11 [expr.prim.lambda]p2: 1624 // A lambda-expression shall not appear in an unevaluated operand 1625 // (Clause 5). 1626 case Unevaluated: 1627 case UnevaluatedAbstract: 1628 // C++1y [expr.const]p2: 1629 // A conditional-expression e is a core constant expression unless the 1630 // evaluation of e, following the rules of the abstract machine, would 1631 // evaluate [...] a lambda-expression. 1632 // 1633 // This is technically incorrect, there are some constant evaluated contexts 1634 // where this should be allowed. We should probably fix this when DR1607 is 1635 // ratified, it lays out the exact set of conditions where we shouldn't 1636 // allow a lambda-expression. 1637 case ConstantEvaluated: 1638 // We don't actually diagnose this case immediately, because we 1639 // could be within a context where we might find out later that 1640 // the expression is potentially evaluated (e.g., for typeid). 1641 ExprEvalContexts.back().Lambdas.push_back(Lambda); 1642 break; 1643 1644 case DiscardedStatement: 1645 case PotentiallyEvaluated: 1646 case PotentiallyEvaluatedIfUsed: 1647 break; 1648 } 1649 } 1650 1651 return MaybeBindToTemporary(Lambda); 1652 } 1653 1654 ExprResult Sema::BuildBlockForLambdaConversion(SourceLocation CurrentLocation, 1655 SourceLocation ConvLocation, 1656 CXXConversionDecl *Conv, 1657 Expr *Src) { 1658 // Make sure that the lambda call operator is marked used. 1659 CXXRecordDecl *Lambda = Conv->getParent(); 1660 CXXMethodDecl *CallOperator 1661 = cast<CXXMethodDecl>( 1662 Lambda->lookup( 1663 Context.DeclarationNames.getCXXOperatorName(OO_Call)).front()); 1664 CallOperator->setReferenced(); 1665 CallOperator->markUsed(Context); 1666 1667 ExprResult Init = PerformCopyInitialization( 1668 InitializedEntity::InitializeBlock(ConvLocation, 1669 Src->getType(), 1670 /*NRVO=*/false), 1671 CurrentLocation, Src); 1672 if (!Init.isInvalid()) 1673 Init = ActOnFinishFullExpr(Init.get()); 1674 1675 if (Init.isInvalid()) 1676 return ExprError(); 1677 1678 // Create the new block to be returned. 1679 BlockDecl *Block = BlockDecl::Create(Context, CurContext, ConvLocation); 1680 1681 // Set the type information. 1682 Block->setSignatureAsWritten(CallOperator->getTypeSourceInfo()); 1683 Block->setIsVariadic(CallOperator->isVariadic()); 1684 Block->setBlockMissingReturnType(false); 1685 1686 // Add parameters. 1687 SmallVector<ParmVarDecl *, 4> BlockParams; 1688 for (unsigned I = 0, N = CallOperator->getNumParams(); I != N; ++I) { 1689 ParmVarDecl *From = CallOperator->getParamDecl(I); 1690 BlockParams.push_back(ParmVarDecl::Create(Context, Block, 1691 From->getLocStart(), 1692 From->getLocation(), 1693 From->getIdentifier(), 1694 From->getType(), 1695 From->getTypeSourceInfo(), 1696 From->getStorageClass(), 1697 /*DefaultArg=*/nullptr)); 1698 } 1699 Block->setParams(BlockParams); 1700 1701 Block->setIsConversionFromLambda(true); 1702 1703 // Add capture. The capture uses a fake variable, which doesn't correspond 1704 // to any actual memory location. However, the initializer copy-initializes 1705 // the lambda object. 1706 TypeSourceInfo *CapVarTSI = 1707 Context.getTrivialTypeSourceInfo(Src->getType()); 1708 VarDecl *CapVar = VarDecl::Create(Context, Block, ConvLocation, 1709 ConvLocation, nullptr, 1710 Src->getType(), CapVarTSI, 1711 SC_None); 1712 BlockDecl::Capture Capture(/*Variable=*/CapVar, /*ByRef=*/false, 1713 /*Nested=*/false, /*Copy=*/Init.get()); 1714 Block->setCaptures(Context, Capture, /*CapturesCXXThis=*/false); 1715 1716 // Add a fake function body to the block. IR generation is responsible 1717 // for filling in the actual body, which cannot be expressed as an AST. 1718 Block->setBody(new (Context) CompoundStmt(ConvLocation)); 1719 1720 // Create the block literal expression. 1721 Expr *BuildBlock = new (Context) BlockExpr(Block, Conv->getConversionType()); 1722 ExprCleanupObjects.push_back(Block); 1723 Cleanup.setExprNeedsCleanups(true); 1724 1725 return BuildBlock; 1726 } 1727