1 //===--------------------- SemaLookup.cpp - Name Lookup ------------------===// 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 name lookup for C, C++, Objective-C, and 11 // Objective-C++. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/CXXInheritance.h" 17 #include "clang/AST/Decl.h" 18 #include "clang/AST/DeclCXX.h" 19 #include "clang/AST/DeclLookups.h" 20 #include "clang/AST/DeclObjC.h" 21 #include "clang/AST/DeclTemplate.h" 22 #include "clang/AST/Expr.h" 23 #include "clang/AST/ExprCXX.h" 24 #include "clang/Basic/Builtins.h" 25 #include "clang/Basic/LangOptions.h" 26 #include "clang/Lex/HeaderSearch.h" 27 #include "clang/Lex/ModuleLoader.h" 28 #include "clang/Lex/Preprocessor.h" 29 #include "clang/Sema/DeclSpec.h" 30 #include "clang/Sema/Lookup.h" 31 #include "clang/Sema/Overload.h" 32 #include "clang/Sema/Scope.h" 33 #include "clang/Sema/ScopeInfo.h" 34 #include "clang/Sema/Sema.h" 35 #include "clang/Sema/SemaInternal.h" 36 #include "clang/Sema/TemplateDeduction.h" 37 #include "clang/Sema/TypoCorrection.h" 38 #include "llvm/ADT/STLExtras.h" 39 #include "llvm/ADT/SmallPtrSet.h" 40 #include "llvm/ADT/TinyPtrVector.h" 41 #include "llvm/ADT/edit_distance.h" 42 #include "llvm/Support/ErrorHandling.h" 43 #include <algorithm> 44 #include <iterator> 45 #include <list> 46 #include <set> 47 #include <utility> 48 #include <vector> 49 50 using namespace clang; 51 using namespace sema; 52 53 namespace { 54 class UnqualUsingEntry { 55 const DeclContext *Nominated; 56 const DeclContext *CommonAncestor; 57 58 public: 59 UnqualUsingEntry(const DeclContext *Nominated, 60 const DeclContext *CommonAncestor) 61 : Nominated(Nominated), CommonAncestor(CommonAncestor) { 62 } 63 64 const DeclContext *getCommonAncestor() const { 65 return CommonAncestor; 66 } 67 68 const DeclContext *getNominatedNamespace() const { 69 return Nominated; 70 } 71 72 // Sort by the pointer value of the common ancestor. 73 struct Comparator { 74 bool operator()(const UnqualUsingEntry &L, const UnqualUsingEntry &R) { 75 return L.getCommonAncestor() < R.getCommonAncestor(); 76 } 77 78 bool operator()(const UnqualUsingEntry &E, const DeclContext *DC) { 79 return E.getCommonAncestor() < DC; 80 } 81 82 bool operator()(const DeclContext *DC, const UnqualUsingEntry &E) { 83 return DC < E.getCommonAncestor(); 84 } 85 }; 86 }; 87 88 /// A collection of using directives, as used by C++ unqualified 89 /// lookup. 90 class UnqualUsingDirectiveSet { 91 typedef SmallVector<UnqualUsingEntry, 8> ListTy; 92 93 ListTy list; 94 llvm::SmallPtrSet<DeclContext*, 8> visited; 95 96 public: 97 UnqualUsingDirectiveSet() {} 98 99 void visitScopeChain(Scope *S, Scope *InnermostFileScope) { 100 // C++ [namespace.udir]p1: 101 // During unqualified name lookup, the names appear as if they 102 // were declared in the nearest enclosing namespace which contains 103 // both the using-directive and the nominated namespace. 104 DeclContext *InnermostFileDC = InnermostFileScope->getEntity(); 105 assert(InnermostFileDC && InnermostFileDC->isFileContext()); 106 107 for (; S; S = S->getParent()) { 108 // C++ [namespace.udir]p1: 109 // A using-directive shall not appear in class scope, but may 110 // appear in namespace scope or in block scope. 111 DeclContext *Ctx = S->getEntity(); 112 if (Ctx && Ctx->isFileContext()) { 113 visit(Ctx, Ctx); 114 } else if (!Ctx || Ctx->isFunctionOrMethod()) { 115 for (auto *I : S->using_directives()) 116 visit(I, InnermostFileDC); 117 } 118 } 119 } 120 121 // Visits a context and collect all of its using directives 122 // recursively. Treats all using directives as if they were 123 // declared in the context. 124 // 125 // A given context is only every visited once, so it is important 126 // that contexts be visited from the inside out in order to get 127 // the effective DCs right. 128 void visit(DeclContext *DC, DeclContext *EffectiveDC) { 129 if (!visited.insert(DC).second) 130 return; 131 132 addUsingDirectives(DC, EffectiveDC); 133 } 134 135 // Visits a using directive and collects all of its using 136 // directives recursively. Treats all using directives as if they 137 // were declared in the effective DC. 138 void visit(UsingDirectiveDecl *UD, DeclContext *EffectiveDC) { 139 DeclContext *NS = UD->getNominatedNamespace(); 140 if (!visited.insert(NS).second) 141 return; 142 143 addUsingDirective(UD, EffectiveDC); 144 addUsingDirectives(NS, EffectiveDC); 145 } 146 147 // Adds all the using directives in a context (and those nominated 148 // by its using directives, transitively) as if they appeared in 149 // the given effective context. 150 void addUsingDirectives(DeclContext *DC, DeclContext *EffectiveDC) { 151 SmallVector<DeclContext*, 4> queue; 152 while (true) { 153 for (auto UD : DC->using_directives()) { 154 DeclContext *NS = UD->getNominatedNamespace(); 155 if (visited.insert(NS).second) { 156 addUsingDirective(UD, EffectiveDC); 157 queue.push_back(NS); 158 } 159 } 160 161 if (queue.empty()) 162 return; 163 164 DC = queue.pop_back_val(); 165 } 166 } 167 168 // Add a using directive as if it had been declared in the given 169 // context. This helps implement C++ [namespace.udir]p3: 170 // The using-directive is transitive: if a scope contains a 171 // using-directive that nominates a second namespace that itself 172 // contains using-directives, the effect is as if the 173 // using-directives from the second namespace also appeared in 174 // the first. 175 void addUsingDirective(UsingDirectiveDecl *UD, DeclContext *EffectiveDC) { 176 // Find the common ancestor between the effective context and 177 // the nominated namespace. 178 DeclContext *Common = UD->getNominatedNamespace(); 179 while (!Common->Encloses(EffectiveDC)) 180 Common = Common->getParent(); 181 Common = Common->getPrimaryContext(); 182 183 list.push_back(UnqualUsingEntry(UD->getNominatedNamespace(), Common)); 184 } 185 186 void done() { 187 std::sort(list.begin(), list.end(), UnqualUsingEntry::Comparator()); 188 } 189 190 typedef ListTy::const_iterator const_iterator; 191 192 const_iterator begin() const { return list.begin(); } 193 const_iterator end() const { return list.end(); } 194 195 llvm::iterator_range<const_iterator> 196 getNamespacesFor(DeclContext *DC) const { 197 return llvm::make_range(std::equal_range(begin(), end(), 198 DC->getPrimaryContext(), 199 UnqualUsingEntry::Comparator())); 200 } 201 }; 202 } // end anonymous namespace 203 204 // Retrieve the set of identifier namespaces that correspond to a 205 // specific kind of name lookup. 206 static inline unsigned getIDNS(Sema::LookupNameKind NameKind, 207 bool CPlusPlus, 208 bool Redeclaration) { 209 unsigned IDNS = 0; 210 switch (NameKind) { 211 case Sema::LookupObjCImplicitSelfParam: 212 case Sema::LookupOrdinaryName: 213 case Sema::LookupRedeclarationWithLinkage: 214 case Sema::LookupLocalFriendName: 215 IDNS = Decl::IDNS_Ordinary; 216 if (CPlusPlus) { 217 IDNS |= Decl::IDNS_Tag | Decl::IDNS_Member | Decl::IDNS_Namespace; 218 if (Redeclaration) 219 IDNS |= Decl::IDNS_TagFriend | Decl::IDNS_OrdinaryFriend; 220 } 221 if (Redeclaration) 222 IDNS |= Decl::IDNS_LocalExtern; 223 break; 224 225 case Sema::LookupOperatorName: 226 // Operator lookup is its own crazy thing; it is not the same 227 // as (e.g.) looking up an operator name for redeclaration. 228 assert(!Redeclaration && "cannot do redeclaration operator lookup"); 229 IDNS = Decl::IDNS_NonMemberOperator; 230 break; 231 232 case Sema::LookupTagName: 233 if (CPlusPlus) { 234 IDNS = Decl::IDNS_Type; 235 236 // When looking for a redeclaration of a tag name, we add: 237 // 1) TagFriend to find undeclared friend decls 238 // 2) Namespace because they can't "overload" with tag decls. 239 // 3) Tag because it includes class templates, which can't 240 // "overload" with tag decls. 241 if (Redeclaration) 242 IDNS |= Decl::IDNS_Tag | Decl::IDNS_TagFriend | Decl::IDNS_Namespace; 243 } else { 244 IDNS = Decl::IDNS_Tag; 245 } 246 break; 247 248 case Sema::LookupLabel: 249 IDNS = Decl::IDNS_Label; 250 break; 251 252 case Sema::LookupMemberName: 253 IDNS = Decl::IDNS_Member; 254 if (CPlusPlus) 255 IDNS |= Decl::IDNS_Tag | Decl::IDNS_Ordinary; 256 break; 257 258 case Sema::LookupNestedNameSpecifierName: 259 IDNS = Decl::IDNS_Type | Decl::IDNS_Namespace; 260 break; 261 262 case Sema::LookupNamespaceName: 263 IDNS = Decl::IDNS_Namespace; 264 break; 265 266 case Sema::LookupUsingDeclName: 267 assert(Redeclaration && "should only be used for redecl lookup"); 268 IDNS = Decl::IDNS_Ordinary | Decl::IDNS_Tag | Decl::IDNS_Member | 269 Decl::IDNS_Using | Decl::IDNS_TagFriend | Decl::IDNS_OrdinaryFriend | 270 Decl::IDNS_LocalExtern; 271 break; 272 273 case Sema::LookupObjCProtocolName: 274 IDNS = Decl::IDNS_ObjCProtocol; 275 break; 276 277 case Sema::LookupOMPReductionName: 278 IDNS = Decl::IDNS_OMPReduction; 279 break; 280 281 case Sema::LookupAnyName: 282 IDNS = Decl::IDNS_Ordinary | Decl::IDNS_Tag | Decl::IDNS_Member 283 | Decl::IDNS_Using | Decl::IDNS_Namespace | Decl::IDNS_ObjCProtocol 284 | Decl::IDNS_Type; 285 break; 286 } 287 return IDNS; 288 } 289 290 void LookupResult::configure() { 291 IDNS = getIDNS(LookupKind, getSema().getLangOpts().CPlusPlus, 292 isForRedeclaration()); 293 294 // If we're looking for one of the allocation or deallocation 295 // operators, make sure that the implicitly-declared new and delete 296 // operators can be found. 297 switch (NameInfo.getName().getCXXOverloadedOperator()) { 298 case OO_New: 299 case OO_Delete: 300 case OO_Array_New: 301 case OO_Array_Delete: 302 getSema().DeclareGlobalNewDelete(); 303 break; 304 305 default: 306 break; 307 } 308 309 // Compiler builtins are always visible, regardless of where they end 310 // up being declared. 311 if (IdentifierInfo *Id = NameInfo.getName().getAsIdentifierInfo()) { 312 if (unsigned BuiltinID = Id->getBuiltinID()) { 313 if (!getSema().Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID)) 314 AllowHidden = true; 315 } 316 } 317 } 318 319 bool LookupResult::sanity() const { 320 // This function is never called by NDEBUG builds. 321 assert(ResultKind != NotFound || Decls.size() == 0); 322 assert(ResultKind != Found || Decls.size() == 1); 323 assert(ResultKind != FoundOverloaded || Decls.size() > 1 || 324 (Decls.size() == 1 && 325 isa<FunctionTemplateDecl>((*begin())->getUnderlyingDecl()))); 326 assert(ResultKind != FoundUnresolvedValue || sanityCheckUnresolved()); 327 assert(ResultKind != Ambiguous || Decls.size() > 1 || 328 (Decls.size() == 1 && (Ambiguity == AmbiguousBaseSubobjects || 329 Ambiguity == AmbiguousBaseSubobjectTypes))); 330 assert((Paths != nullptr) == (ResultKind == Ambiguous && 331 (Ambiguity == AmbiguousBaseSubobjectTypes || 332 Ambiguity == AmbiguousBaseSubobjects))); 333 return true; 334 } 335 336 // Necessary because CXXBasePaths is not complete in Sema.h 337 void LookupResult::deletePaths(CXXBasePaths *Paths) { 338 delete Paths; 339 } 340 341 /// Get a representative context for a declaration such that two declarations 342 /// will have the same context if they were found within the same scope. 343 static DeclContext *getContextForScopeMatching(Decl *D) { 344 // For function-local declarations, use that function as the context. This 345 // doesn't account for scopes within the function; the caller must deal with 346 // those. 347 DeclContext *DC = D->getLexicalDeclContext(); 348 if (DC->isFunctionOrMethod()) 349 return DC; 350 351 // Otherwise, look at the semantic context of the declaration. The 352 // declaration must have been found there. 353 return D->getDeclContext()->getRedeclContext(); 354 } 355 356 /// \brief Determine whether \p D is a better lookup result than \p Existing, 357 /// given that they declare the same entity. 358 static bool isPreferredLookupResult(Sema &S, Sema::LookupNameKind Kind, 359 NamedDecl *D, NamedDecl *Existing) { 360 // When looking up redeclarations of a using declaration, prefer a using 361 // shadow declaration over any other declaration of the same entity. 362 if (Kind == Sema::LookupUsingDeclName && isa<UsingShadowDecl>(D) && 363 !isa<UsingShadowDecl>(Existing)) 364 return true; 365 366 auto *DUnderlying = D->getUnderlyingDecl(); 367 auto *EUnderlying = Existing->getUnderlyingDecl(); 368 369 // If they have different underlying declarations, prefer a typedef over the 370 // original type (this happens when two type declarations denote the same 371 // type), per a generous reading of C++ [dcl.typedef]p3 and p4. The typedef 372 // might carry additional semantic information, such as an alignment override. 373 // However, per C++ [dcl.typedef]p5, when looking up a tag name, prefer a tag 374 // declaration over a typedef. 375 if (DUnderlying->getCanonicalDecl() != EUnderlying->getCanonicalDecl()) { 376 assert(isa<TypeDecl>(DUnderlying) && isa<TypeDecl>(EUnderlying)); 377 bool HaveTag = isa<TagDecl>(EUnderlying); 378 bool WantTag = Kind == Sema::LookupTagName; 379 return HaveTag != WantTag; 380 } 381 382 // Pick the function with more default arguments. 383 // FIXME: In the presence of ambiguous default arguments, we should keep both, 384 // so we can diagnose the ambiguity if the default argument is needed. 385 // See C++ [over.match.best]p3. 386 if (auto *DFD = dyn_cast<FunctionDecl>(DUnderlying)) { 387 auto *EFD = cast<FunctionDecl>(EUnderlying); 388 unsigned DMin = DFD->getMinRequiredArguments(); 389 unsigned EMin = EFD->getMinRequiredArguments(); 390 // If D has more default arguments, it is preferred. 391 if (DMin != EMin) 392 return DMin < EMin; 393 // FIXME: When we track visibility for default function arguments, check 394 // that we pick the declaration with more visible default arguments. 395 } 396 397 // Pick the template with more default template arguments. 398 if (auto *DTD = dyn_cast<TemplateDecl>(DUnderlying)) { 399 auto *ETD = cast<TemplateDecl>(EUnderlying); 400 unsigned DMin = DTD->getTemplateParameters()->getMinRequiredArguments(); 401 unsigned EMin = ETD->getTemplateParameters()->getMinRequiredArguments(); 402 // If D has more default arguments, it is preferred. Note that default 403 // arguments (and their visibility) is monotonically increasing across the 404 // redeclaration chain, so this is a quick proxy for "is more recent". 405 if (DMin != EMin) 406 return DMin < EMin; 407 // If D has more *visible* default arguments, it is preferred. Note, an 408 // earlier default argument being visible does not imply that a later 409 // default argument is visible, so we can't just check the first one. 410 for (unsigned I = DMin, N = DTD->getTemplateParameters()->size(); 411 I != N; ++I) { 412 if (!S.hasVisibleDefaultArgument( 413 ETD->getTemplateParameters()->getParam(I)) && 414 S.hasVisibleDefaultArgument( 415 DTD->getTemplateParameters()->getParam(I))) 416 return true; 417 } 418 } 419 420 // VarDecl can have incomplete array types, prefer the one with more complete 421 // array type. 422 if (VarDecl *DVD = dyn_cast<VarDecl>(DUnderlying)) { 423 VarDecl *EVD = cast<VarDecl>(EUnderlying); 424 if (EVD->getType()->isIncompleteType() && 425 !DVD->getType()->isIncompleteType()) { 426 // Prefer the decl with a more complete type if visible. 427 return S.isVisible(DVD); 428 } 429 return false; // Avoid picking up a newer decl, just because it was newer. 430 } 431 432 // For most kinds of declaration, it doesn't really matter which one we pick. 433 if (!isa<FunctionDecl>(DUnderlying) && !isa<VarDecl>(DUnderlying)) { 434 // If the existing declaration is hidden, prefer the new one. Otherwise, 435 // keep what we've got. 436 return !S.isVisible(Existing); 437 } 438 439 // Pick the newer declaration; it might have a more precise type. 440 for (Decl *Prev = DUnderlying->getPreviousDecl(); Prev; 441 Prev = Prev->getPreviousDecl()) 442 if (Prev == EUnderlying) 443 return true; 444 return false; 445 } 446 447 /// Determine whether \p D can hide a tag declaration. 448 static bool canHideTag(NamedDecl *D) { 449 // C++ [basic.scope.declarative]p4: 450 // Given a set of declarations in a single declarative region [...] 451 // exactly one declaration shall declare a class name or enumeration name 452 // that is not a typedef name and the other declarations shall all refer to 453 // the same variable, non-static data member, or enumerator, or all refer 454 // to functions and function templates; in this case the class name or 455 // enumeration name is hidden. 456 // C++ [basic.scope.hiding]p2: 457 // A class name or enumeration name can be hidden by the name of a 458 // variable, data member, function, or enumerator declared in the same 459 // scope. 460 // An UnresolvedUsingValueDecl always instantiates to one of these. 461 D = D->getUnderlyingDecl(); 462 return isa<VarDecl>(D) || isa<EnumConstantDecl>(D) || isa<FunctionDecl>(D) || 463 isa<FunctionTemplateDecl>(D) || isa<FieldDecl>(D) || 464 isa<UnresolvedUsingValueDecl>(D); 465 } 466 467 /// Resolves the result kind of this lookup. 468 void LookupResult::resolveKind() { 469 unsigned N = Decls.size(); 470 471 // Fast case: no possible ambiguity. 472 if (N == 0) { 473 assert(ResultKind == NotFound || 474 ResultKind == NotFoundInCurrentInstantiation); 475 return; 476 } 477 478 // If there's a single decl, we need to examine it to decide what 479 // kind of lookup this is. 480 if (N == 1) { 481 NamedDecl *D = (*Decls.begin())->getUnderlyingDecl(); 482 if (isa<FunctionTemplateDecl>(D)) 483 ResultKind = FoundOverloaded; 484 else if (isa<UnresolvedUsingValueDecl>(D)) 485 ResultKind = FoundUnresolvedValue; 486 return; 487 } 488 489 // Don't do any extra resolution if we've already resolved as ambiguous. 490 if (ResultKind == Ambiguous) return; 491 492 llvm::SmallDenseMap<NamedDecl*, unsigned, 16> Unique; 493 llvm::SmallDenseMap<QualType, unsigned, 16> UniqueTypes; 494 495 bool Ambiguous = false; 496 bool HasTag = false, HasFunction = false; 497 bool HasFunctionTemplate = false, HasUnresolved = false; 498 NamedDecl *HasNonFunction = nullptr; 499 500 llvm::SmallVector<NamedDecl*, 4> EquivalentNonFunctions; 501 502 unsigned UniqueTagIndex = 0; 503 504 unsigned I = 0; 505 while (I < N) { 506 NamedDecl *D = Decls[I]->getUnderlyingDecl(); 507 D = cast<NamedDecl>(D->getCanonicalDecl()); 508 509 // Ignore an invalid declaration unless it's the only one left. 510 if (D->isInvalidDecl() && !(I == 0 && N == 1)) { 511 Decls[I] = Decls[--N]; 512 continue; 513 } 514 515 llvm::Optional<unsigned> ExistingI; 516 517 // Redeclarations of types via typedef can occur both within a scope 518 // and, through using declarations and directives, across scopes. There is 519 // no ambiguity if they all refer to the same type, so unique based on the 520 // canonical type. 521 if (TypeDecl *TD = dyn_cast<TypeDecl>(D)) { 522 QualType T = getSema().Context.getTypeDeclType(TD); 523 auto UniqueResult = UniqueTypes.insert( 524 std::make_pair(getSema().Context.getCanonicalType(T), I)); 525 if (!UniqueResult.second) { 526 // The type is not unique. 527 ExistingI = UniqueResult.first->second; 528 } 529 } 530 531 // For non-type declarations, check for a prior lookup result naming this 532 // canonical declaration. 533 if (!ExistingI) { 534 auto UniqueResult = Unique.insert(std::make_pair(D, I)); 535 if (!UniqueResult.second) { 536 // We've seen this entity before. 537 ExistingI = UniqueResult.first->second; 538 } 539 } 540 541 if (ExistingI) { 542 // This is not a unique lookup result. Pick one of the results and 543 // discard the other. 544 if (isPreferredLookupResult(getSema(), getLookupKind(), Decls[I], 545 Decls[*ExistingI])) 546 Decls[*ExistingI] = Decls[I]; 547 Decls[I] = Decls[--N]; 548 continue; 549 } 550 551 // Otherwise, do some decl type analysis and then continue. 552 553 if (isa<UnresolvedUsingValueDecl>(D)) { 554 HasUnresolved = true; 555 } else if (isa<TagDecl>(D)) { 556 if (HasTag) 557 Ambiguous = true; 558 UniqueTagIndex = I; 559 HasTag = true; 560 } else if (isa<FunctionTemplateDecl>(D)) { 561 HasFunction = true; 562 HasFunctionTemplate = true; 563 } else if (isa<FunctionDecl>(D)) { 564 HasFunction = true; 565 } else { 566 if (HasNonFunction) { 567 // If we're about to create an ambiguity between two declarations that 568 // are equivalent, but one is an internal linkage declaration from one 569 // module and the other is an internal linkage declaration from another 570 // module, just skip it. 571 if (getSema().isEquivalentInternalLinkageDeclaration(HasNonFunction, 572 D)) { 573 EquivalentNonFunctions.push_back(D); 574 Decls[I] = Decls[--N]; 575 continue; 576 } 577 578 Ambiguous = true; 579 } 580 HasNonFunction = D; 581 } 582 I++; 583 } 584 585 // C++ [basic.scope.hiding]p2: 586 // A class name or enumeration name can be hidden by the name of 587 // an object, function, or enumerator declared in the same 588 // scope. If a class or enumeration name and an object, function, 589 // or enumerator are declared in the same scope (in any order) 590 // with the same name, the class or enumeration name is hidden 591 // wherever the object, function, or enumerator name is visible. 592 // But it's still an error if there are distinct tag types found, 593 // even if they're not visible. (ref?) 594 if (N > 1 && HideTags && HasTag && !Ambiguous && 595 (HasFunction || HasNonFunction || HasUnresolved)) { 596 NamedDecl *OtherDecl = Decls[UniqueTagIndex ? 0 : N - 1]; 597 if (isa<TagDecl>(Decls[UniqueTagIndex]->getUnderlyingDecl()) && 598 getContextForScopeMatching(Decls[UniqueTagIndex])->Equals( 599 getContextForScopeMatching(OtherDecl)) && 600 canHideTag(OtherDecl)) 601 Decls[UniqueTagIndex] = Decls[--N]; 602 else 603 Ambiguous = true; 604 } 605 606 // FIXME: This diagnostic should really be delayed until we're done with 607 // the lookup result, in case the ambiguity is resolved by the caller. 608 if (!EquivalentNonFunctions.empty() && !Ambiguous) 609 getSema().diagnoseEquivalentInternalLinkageDeclarations( 610 getNameLoc(), HasNonFunction, EquivalentNonFunctions); 611 612 Decls.set_size(N); 613 614 if (HasNonFunction && (HasFunction || HasUnresolved)) 615 Ambiguous = true; 616 617 if (Ambiguous) 618 setAmbiguous(LookupResult::AmbiguousReference); 619 else if (HasUnresolved) 620 ResultKind = LookupResult::FoundUnresolvedValue; 621 else if (N > 1 || HasFunctionTemplate) 622 ResultKind = LookupResult::FoundOverloaded; 623 else 624 ResultKind = LookupResult::Found; 625 } 626 627 void LookupResult::addDeclsFromBasePaths(const CXXBasePaths &P) { 628 CXXBasePaths::const_paths_iterator I, E; 629 for (I = P.begin(), E = P.end(); I != E; ++I) 630 for (DeclContext::lookup_iterator DI = I->Decls.begin(), 631 DE = I->Decls.end(); DI != DE; ++DI) 632 addDecl(*DI); 633 } 634 635 void LookupResult::setAmbiguousBaseSubobjects(CXXBasePaths &P) { 636 Paths = new CXXBasePaths; 637 Paths->swap(P); 638 addDeclsFromBasePaths(*Paths); 639 resolveKind(); 640 setAmbiguous(AmbiguousBaseSubobjects); 641 } 642 643 void LookupResult::setAmbiguousBaseSubobjectTypes(CXXBasePaths &P) { 644 Paths = new CXXBasePaths; 645 Paths->swap(P); 646 addDeclsFromBasePaths(*Paths); 647 resolveKind(); 648 setAmbiguous(AmbiguousBaseSubobjectTypes); 649 } 650 651 void LookupResult::print(raw_ostream &Out) { 652 Out << Decls.size() << " result(s)"; 653 if (isAmbiguous()) Out << ", ambiguous"; 654 if (Paths) Out << ", base paths present"; 655 656 for (iterator I = begin(), E = end(); I != E; ++I) { 657 Out << "\n"; 658 (*I)->print(Out, 2); 659 } 660 } 661 662 LLVM_DUMP_METHOD void LookupResult::dump() { 663 llvm::errs() << "lookup results for " << getLookupName().getAsString() 664 << ":\n"; 665 for (NamedDecl *D : *this) 666 D->dump(); 667 } 668 669 /// \brief Lookup a builtin function, when name lookup would otherwise 670 /// fail. 671 static bool LookupBuiltin(Sema &S, LookupResult &R) { 672 Sema::LookupNameKind NameKind = R.getLookupKind(); 673 674 // If we didn't find a use of this identifier, and if the identifier 675 // corresponds to a compiler builtin, create the decl object for the builtin 676 // now, injecting it into translation unit scope, and return it. 677 if (NameKind == Sema::LookupOrdinaryName || 678 NameKind == Sema::LookupRedeclarationWithLinkage) { 679 IdentifierInfo *II = R.getLookupName().getAsIdentifierInfo(); 680 if (II) { 681 if (S.getLangOpts().CPlusPlus && NameKind == Sema::LookupOrdinaryName) { 682 if (II == S.getASTContext().getMakeIntegerSeqName()) { 683 R.addDecl(S.getASTContext().getMakeIntegerSeqDecl()); 684 return true; 685 } else if (II == S.getASTContext().getTypePackElementName()) { 686 R.addDecl(S.getASTContext().getTypePackElementDecl()); 687 return true; 688 } 689 } 690 691 // If this is a builtin on this (or all) targets, create the decl. 692 if (unsigned BuiltinID = II->getBuiltinID()) { 693 // In C++ and OpenCL (spec v1.2 s6.9.f), we don't have any predefined 694 // library functions like 'malloc'. Instead, we'll just error. 695 if ((S.getLangOpts().CPlusPlus || S.getLangOpts().OpenCL) && 696 S.Context.BuiltinInfo.isPredefinedLibFunction(BuiltinID)) 697 return false; 698 699 if (NamedDecl *D = S.LazilyCreateBuiltin((IdentifierInfo *)II, 700 BuiltinID, S.TUScope, 701 R.isForRedeclaration(), 702 R.getNameLoc())) { 703 R.addDecl(D); 704 return true; 705 } 706 } 707 } 708 } 709 710 return false; 711 } 712 713 /// \brief Determine whether we can declare a special member function within 714 /// the class at this point. 715 static bool CanDeclareSpecialMemberFunction(const CXXRecordDecl *Class) { 716 // We need to have a definition for the class. 717 if (!Class->getDefinition() || Class->isDependentContext()) 718 return false; 719 720 // We can't be in the middle of defining the class. 721 return !Class->isBeingDefined(); 722 } 723 724 void Sema::ForceDeclarationOfImplicitMembers(CXXRecordDecl *Class) { 725 if (!CanDeclareSpecialMemberFunction(Class)) 726 return; 727 728 // If the default constructor has not yet been declared, do so now. 729 if (Class->needsImplicitDefaultConstructor()) 730 DeclareImplicitDefaultConstructor(Class); 731 732 // If the copy constructor has not yet been declared, do so now. 733 if (Class->needsImplicitCopyConstructor()) 734 DeclareImplicitCopyConstructor(Class); 735 736 // If the copy assignment operator has not yet been declared, do so now. 737 if (Class->needsImplicitCopyAssignment()) 738 DeclareImplicitCopyAssignment(Class); 739 740 if (getLangOpts().CPlusPlus11) { 741 // If the move constructor has not yet been declared, do so now. 742 if (Class->needsImplicitMoveConstructor()) 743 DeclareImplicitMoveConstructor(Class); 744 745 // If the move assignment operator has not yet been declared, do so now. 746 if (Class->needsImplicitMoveAssignment()) 747 DeclareImplicitMoveAssignment(Class); 748 } 749 750 // If the destructor has not yet been declared, do so now. 751 if (Class->needsImplicitDestructor()) 752 DeclareImplicitDestructor(Class); 753 } 754 755 /// \brief Determine whether this is the name of an implicitly-declared 756 /// special member function. 757 static bool isImplicitlyDeclaredMemberFunctionName(DeclarationName Name) { 758 switch (Name.getNameKind()) { 759 case DeclarationName::CXXConstructorName: 760 case DeclarationName::CXXDestructorName: 761 return true; 762 763 case DeclarationName::CXXOperatorName: 764 return Name.getCXXOverloadedOperator() == OO_Equal; 765 766 default: 767 break; 768 } 769 770 return false; 771 } 772 773 /// \brief If there are any implicit member functions with the given name 774 /// that need to be declared in the given declaration context, do so. 775 static void DeclareImplicitMemberFunctionsWithName(Sema &S, 776 DeclarationName Name, 777 SourceLocation Loc, 778 const DeclContext *DC) { 779 if (!DC) 780 return; 781 782 switch (Name.getNameKind()) { 783 case DeclarationName::CXXConstructorName: 784 if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(DC)) 785 if (Record->getDefinition() && CanDeclareSpecialMemberFunction(Record)) { 786 CXXRecordDecl *Class = const_cast<CXXRecordDecl *>(Record); 787 if (Record->needsImplicitDefaultConstructor()) 788 S.DeclareImplicitDefaultConstructor(Class); 789 if (Record->needsImplicitCopyConstructor()) 790 S.DeclareImplicitCopyConstructor(Class); 791 if (S.getLangOpts().CPlusPlus11 && 792 Record->needsImplicitMoveConstructor()) 793 S.DeclareImplicitMoveConstructor(Class); 794 } 795 break; 796 797 case DeclarationName::CXXDestructorName: 798 if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(DC)) 799 if (Record->getDefinition() && Record->needsImplicitDestructor() && 800 CanDeclareSpecialMemberFunction(Record)) 801 S.DeclareImplicitDestructor(const_cast<CXXRecordDecl *>(Record)); 802 break; 803 804 case DeclarationName::CXXOperatorName: 805 if (Name.getCXXOverloadedOperator() != OO_Equal) 806 break; 807 808 if (const CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(DC)) { 809 if (Record->getDefinition() && CanDeclareSpecialMemberFunction(Record)) { 810 CXXRecordDecl *Class = const_cast<CXXRecordDecl *>(Record); 811 if (Record->needsImplicitCopyAssignment()) 812 S.DeclareImplicitCopyAssignment(Class); 813 if (S.getLangOpts().CPlusPlus11 && 814 Record->needsImplicitMoveAssignment()) 815 S.DeclareImplicitMoveAssignment(Class); 816 } 817 } 818 break; 819 820 case DeclarationName::CXXDeductionGuideName: 821 S.DeclareImplicitDeductionGuides(Name.getCXXDeductionGuideTemplate(), Loc); 822 break; 823 824 default: 825 break; 826 } 827 } 828 829 // Adds all qualifying matches for a name within a decl context to the 830 // given lookup result. Returns true if any matches were found. 831 static bool LookupDirect(Sema &S, LookupResult &R, const DeclContext *DC) { 832 bool Found = false; 833 834 // Lazily declare C++ special member functions. 835 if (S.getLangOpts().CPlusPlus) 836 DeclareImplicitMemberFunctionsWithName(S, R.getLookupName(), R.getNameLoc(), 837 DC); 838 839 // Perform lookup into this declaration context. 840 DeclContext::lookup_result DR = DC->lookup(R.getLookupName()); 841 for (NamedDecl *D : DR) { 842 if ((D = R.getAcceptableDecl(D))) { 843 R.addDecl(D); 844 Found = true; 845 } 846 } 847 848 if (!Found && DC->isTranslationUnit() && LookupBuiltin(S, R)) 849 return true; 850 851 if (R.getLookupName().getNameKind() 852 != DeclarationName::CXXConversionFunctionName || 853 R.getLookupName().getCXXNameType()->isDependentType() || 854 !isa<CXXRecordDecl>(DC)) 855 return Found; 856 857 // C++ [temp.mem]p6: 858 // A specialization of a conversion function template is not found by 859 // name lookup. Instead, any conversion function templates visible in the 860 // context of the use are considered. [...] 861 const CXXRecordDecl *Record = cast<CXXRecordDecl>(DC); 862 if (!Record->isCompleteDefinition()) 863 return Found; 864 865 for (CXXRecordDecl::conversion_iterator U = Record->conversion_begin(), 866 UEnd = Record->conversion_end(); U != UEnd; ++U) { 867 FunctionTemplateDecl *ConvTemplate = dyn_cast<FunctionTemplateDecl>(*U); 868 if (!ConvTemplate) 869 continue; 870 871 // When we're performing lookup for the purposes of redeclaration, just 872 // add the conversion function template. When we deduce template 873 // arguments for specializations, we'll end up unifying the return 874 // type of the new declaration with the type of the function template. 875 if (R.isForRedeclaration()) { 876 R.addDecl(ConvTemplate); 877 Found = true; 878 continue; 879 } 880 881 // C++ [temp.mem]p6: 882 // [...] For each such operator, if argument deduction succeeds 883 // (14.9.2.3), the resulting specialization is used as if found by 884 // name lookup. 885 // 886 // When referencing a conversion function for any purpose other than 887 // a redeclaration (such that we'll be building an expression with the 888 // result), perform template argument deduction and place the 889 // specialization into the result set. We do this to avoid forcing all 890 // callers to perform special deduction for conversion functions. 891 TemplateDeductionInfo Info(R.getNameLoc()); 892 FunctionDecl *Specialization = nullptr; 893 894 const FunctionProtoType *ConvProto 895 = ConvTemplate->getTemplatedDecl()->getType()->getAs<FunctionProtoType>(); 896 assert(ConvProto && "Nonsensical conversion function template type"); 897 898 // Compute the type of the function that we would expect the conversion 899 // function to have, if it were to match the name given. 900 // FIXME: Calling convention! 901 FunctionProtoType::ExtProtoInfo EPI = ConvProto->getExtProtoInfo(); 902 EPI.ExtInfo = EPI.ExtInfo.withCallingConv(CC_C); 903 EPI.ExceptionSpec = EST_None; 904 QualType ExpectedType 905 = R.getSema().Context.getFunctionType(R.getLookupName().getCXXNameType(), 906 None, EPI); 907 908 // Perform template argument deduction against the type that we would 909 // expect the function to have. 910 if (R.getSema().DeduceTemplateArguments(ConvTemplate, nullptr, ExpectedType, 911 Specialization, Info) 912 == Sema::TDK_Success) { 913 R.addDecl(Specialization); 914 Found = true; 915 } 916 } 917 918 return Found; 919 } 920 921 // Performs C++ unqualified lookup into the given file context. 922 static bool 923 CppNamespaceLookup(Sema &S, LookupResult &R, ASTContext &Context, 924 DeclContext *NS, UnqualUsingDirectiveSet &UDirs) { 925 926 assert(NS && NS->isFileContext() && "CppNamespaceLookup() requires namespace!"); 927 928 // Perform direct name lookup into the LookupCtx. 929 bool Found = LookupDirect(S, R, NS); 930 931 // Perform direct name lookup into the namespaces nominated by the 932 // using directives whose common ancestor is this namespace. 933 for (const UnqualUsingEntry &UUE : UDirs.getNamespacesFor(NS)) 934 if (LookupDirect(S, R, UUE.getNominatedNamespace())) 935 Found = true; 936 937 R.resolveKind(); 938 939 return Found; 940 } 941 942 static bool isNamespaceOrTranslationUnitScope(Scope *S) { 943 if (DeclContext *Ctx = S->getEntity()) 944 return Ctx->isFileContext(); 945 return false; 946 } 947 948 // Find the next outer declaration context from this scope. This 949 // routine actually returns the semantic outer context, which may 950 // differ from the lexical context (encoded directly in the Scope 951 // stack) when we are parsing a member of a class template. In this 952 // case, the second element of the pair will be true, to indicate that 953 // name lookup should continue searching in this semantic context when 954 // it leaves the current template parameter scope. 955 static std::pair<DeclContext *, bool> findOuterContext(Scope *S) { 956 DeclContext *DC = S->getEntity(); 957 DeclContext *Lexical = nullptr; 958 for (Scope *OuterS = S->getParent(); OuterS; 959 OuterS = OuterS->getParent()) { 960 if (OuterS->getEntity()) { 961 Lexical = OuterS->getEntity(); 962 break; 963 } 964 } 965 966 // C++ [temp.local]p8: 967 // In the definition of a member of a class template that appears 968 // outside of the namespace containing the class template 969 // definition, the name of a template-parameter hides the name of 970 // a member of this namespace. 971 // 972 // Example: 973 // 974 // namespace N { 975 // class C { }; 976 // 977 // template<class T> class B { 978 // void f(T); 979 // }; 980 // } 981 // 982 // template<class C> void N::B<C>::f(C) { 983 // C b; // C is the template parameter, not N::C 984 // } 985 // 986 // In this example, the lexical context we return is the 987 // TranslationUnit, while the semantic context is the namespace N. 988 if (!Lexical || !DC || !S->getParent() || 989 !S->getParent()->isTemplateParamScope()) 990 return std::make_pair(Lexical, false); 991 992 // Find the outermost template parameter scope. 993 // For the example, this is the scope for the template parameters of 994 // template<class C>. 995 Scope *OutermostTemplateScope = S->getParent(); 996 while (OutermostTemplateScope->getParent() && 997 OutermostTemplateScope->getParent()->isTemplateParamScope()) 998 OutermostTemplateScope = OutermostTemplateScope->getParent(); 999 1000 // Find the namespace context in which the original scope occurs. In 1001 // the example, this is namespace N. 1002 DeclContext *Semantic = DC; 1003 while (!Semantic->isFileContext()) 1004 Semantic = Semantic->getParent(); 1005 1006 // Find the declaration context just outside of the template 1007 // parameter scope. This is the context in which the template is 1008 // being lexically declaration (a namespace context). In the 1009 // example, this is the global scope. 1010 if (Lexical->isFileContext() && !Lexical->Equals(Semantic) && 1011 Lexical->Encloses(Semantic)) 1012 return std::make_pair(Semantic, true); 1013 1014 return std::make_pair(Lexical, false); 1015 } 1016 1017 namespace { 1018 /// An RAII object to specify that we want to find block scope extern 1019 /// declarations. 1020 struct FindLocalExternScope { 1021 FindLocalExternScope(LookupResult &R) 1022 : R(R), OldFindLocalExtern(R.getIdentifierNamespace() & 1023 Decl::IDNS_LocalExtern) { 1024 R.setFindLocalExtern(R.getIdentifierNamespace() & Decl::IDNS_Ordinary); 1025 } 1026 void restore() { 1027 R.setFindLocalExtern(OldFindLocalExtern); 1028 } 1029 ~FindLocalExternScope() { 1030 restore(); 1031 } 1032 LookupResult &R; 1033 bool OldFindLocalExtern; 1034 }; 1035 } // end anonymous namespace 1036 1037 bool Sema::CppLookupName(LookupResult &R, Scope *S) { 1038 assert(getLangOpts().CPlusPlus && "Can perform only C++ lookup"); 1039 1040 DeclarationName Name = R.getLookupName(); 1041 Sema::LookupNameKind NameKind = R.getLookupKind(); 1042 1043 // If this is the name of an implicitly-declared special member function, 1044 // go through the scope stack to implicitly declare 1045 if (isImplicitlyDeclaredMemberFunctionName(Name)) { 1046 for (Scope *PreS = S; PreS; PreS = PreS->getParent()) 1047 if (DeclContext *DC = PreS->getEntity()) 1048 DeclareImplicitMemberFunctionsWithName(*this, Name, R.getNameLoc(), DC); 1049 } 1050 1051 // Implicitly declare member functions with the name we're looking for, if in 1052 // fact we are in a scope where it matters. 1053 1054 Scope *Initial = S; 1055 IdentifierResolver::iterator 1056 I = IdResolver.begin(Name), 1057 IEnd = IdResolver.end(); 1058 1059 // First we lookup local scope. 1060 // We don't consider using-directives, as per 7.3.4.p1 [namespace.udir] 1061 // ...During unqualified name lookup (3.4.1), the names appear as if 1062 // they were declared in the nearest enclosing namespace which contains 1063 // both the using-directive and the nominated namespace. 1064 // [Note: in this context, "contains" means "contains directly or 1065 // indirectly". 1066 // 1067 // For example: 1068 // namespace A { int i; } 1069 // void foo() { 1070 // int i; 1071 // { 1072 // using namespace A; 1073 // ++i; // finds local 'i', A::i appears at global scope 1074 // } 1075 // } 1076 // 1077 UnqualUsingDirectiveSet UDirs; 1078 bool VisitedUsingDirectives = false; 1079 bool LeftStartingScope = false; 1080 DeclContext *OutsideOfTemplateParamDC = nullptr; 1081 1082 // When performing a scope lookup, we want to find local extern decls. 1083 FindLocalExternScope FindLocals(R); 1084 1085 for (; S && !isNamespaceOrTranslationUnitScope(S); S = S->getParent()) { 1086 DeclContext *Ctx = S->getEntity(); 1087 bool SearchNamespaceScope = true; 1088 // Check whether the IdResolver has anything in this scope. 1089 for (; I != IEnd && S->isDeclScope(*I); ++I) { 1090 if (NamedDecl *ND = R.getAcceptableDecl(*I)) { 1091 if (NameKind == LookupRedeclarationWithLinkage && 1092 !(*I)->isTemplateParameter()) { 1093 // If it's a template parameter, we still find it, so we can diagnose 1094 // the invalid redeclaration. 1095 1096 // Determine whether this (or a previous) declaration is 1097 // out-of-scope. 1098 if (!LeftStartingScope && !Initial->isDeclScope(*I)) 1099 LeftStartingScope = true; 1100 1101 // If we found something outside of our starting scope that 1102 // does not have linkage, skip it. 1103 if (LeftStartingScope && !((*I)->hasLinkage())) { 1104 R.setShadowed(); 1105 continue; 1106 } 1107 } else { 1108 // We found something in this scope, we should not look at the 1109 // namespace scope 1110 SearchNamespaceScope = false; 1111 } 1112 R.addDecl(ND); 1113 } 1114 } 1115 if (!SearchNamespaceScope) { 1116 R.resolveKind(); 1117 if (S->isClassScope()) 1118 if (CXXRecordDecl *Record = dyn_cast_or_null<CXXRecordDecl>(Ctx)) 1119 R.setNamingClass(Record); 1120 return true; 1121 } 1122 1123 if (NameKind == LookupLocalFriendName && !S->isClassScope()) { 1124 // C++11 [class.friend]p11: 1125 // If a friend declaration appears in a local class and the name 1126 // specified is an unqualified name, a prior declaration is 1127 // looked up without considering scopes that are outside the 1128 // innermost enclosing non-class scope. 1129 return false; 1130 } 1131 1132 if (!Ctx && S->isTemplateParamScope() && OutsideOfTemplateParamDC && 1133 S->getParent() && !S->getParent()->isTemplateParamScope()) { 1134 // We've just searched the last template parameter scope and 1135 // found nothing, so look into the contexts between the 1136 // lexical and semantic declaration contexts returned by 1137 // findOuterContext(). This implements the name lookup behavior 1138 // of C++ [temp.local]p8. 1139 Ctx = OutsideOfTemplateParamDC; 1140 OutsideOfTemplateParamDC = nullptr; 1141 } 1142 1143 if (Ctx) { 1144 DeclContext *OuterCtx; 1145 bool SearchAfterTemplateScope; 1146 std::tie(OuterCtx, SearchAfterTemplateScope) = findOuterContext(S); 1147 if (SearchAfterTemplateScope) 1148 OutsideOfTemplateParamDC = OuterCtx; 1149 1150 for (; Ctx && !Ctx->Equals(OuterCtx); Ctx = Ctx->getLookupParent()) { 1151 // We do not directly look into transparent contexts, since 1152 // those entities will be found in the nearest enclosing 1153 // non-transparent context. 1154 if (Ctx->isTransparentContext()) 1155 continue; 1156 1157 // We do not look directly into function or method contexts, 1158 // since all of the local variables and parameters of the 1159 // function/method are present within the Scope. 1160 if (Ctx->isFunctionOrMethod()) { 1161 // If we have an Objective-C instance method, look for ivars 1162 // in the corresponding interface. 1163 if (ObjCMethodDecl *Method = dyn_cast<ObjCMethodDecl>(Ctx)) { 1164 if (Method->isInstanceMethod() && Name.getAsIdentifierInfo()) 1165 if (ObjCInterfaceDecl *Class = Method->getClassInterface()) { 1166 ObjCInterfaceDecl *ClassDeclared; 1167 if (ObjCIvarDecl *Ivar = Class->lookupInstanceVariable( 1168 Name.getAsIdentifierInfo(), 1169 ClassDeclared)) { 1170 if (NamedDecl *ND = R.getAcceptableDecl(Ivar)) { 1171 R.addDecl(ND); 1172 R.resolveKind(); 1173 return true; 1174 } 1175 } 1176 } 1177 } 1178 1179 continue; 1180 } 1181 1182 // If this is a file context, we need to perform unqualified name 1183 // lookup considering using directives. 1184 if (Ctx->isFileContext()) { 1185 // If we haven't handled using directives yet, do so now. 1186 if (!VisitedUsingDirectives) { 1187 // Add using directives from this context up to the top level. 1188 for (DeclContext *UCtx = Ctx; UCtx; UCtx = UCtx->getParent()) { 1189 if (UCtx->isTransparentContext()) 1190 continue; 1191 1192 UDirs.visit(UCtx, UCtx); 1193 } 1194 1195 // Find the innermost file scope, so we can add using directives 1196 // from local scopes. 1197 Scope *InnermostFileScope = S; 1198 while (InnermostFileScope && 1199 !isNamespaceOrTranslationUnitScope(InnermostFileScope)) 1200 InnermostFileScope = InnermostFileScope->getParent(); 1201 UDirs.visitScopeChain(Initial, InnermostFileScope); 1202 1203 UDirs.done(); 1204 1205 VisitedUsingDirectives = true; 1206 } 1207 1208 if (CppNamespaceLookup(*this, R, Context, Ctx, UDirs)) { 1209 R.resolveKind(); 1210 return true; 1211 } 1212 1213 continue; 1214 } 1215 1216 // Perform qualified name lookup into this context. 1217 // FIXME: In some cases, we know that every name that could be found by 1218 // this qualified name lookup will also be on the identifier chain. For 1219 // example, inside a class without any base classes, we never need to 1220 // perform qualified lookup because all of the members are on top of the 1221 // identifier chain. 1222 if (LookupQualifiedName(R, Ctx, /*InUnqualifiedLookup=*/true)) 1223 return true; 1224 } 1225 } 1226 } 1227 1228 // Stop if we ran out of scopes. 1229 // FIXME: This really, really shouldn't be happening. 1230 if (!S) return false; 1231 1232 // If we are looking for members, no need to look into global/namespace scope. 1233 if (NameKind == LookupMemberName) 1234 return false; 1235 1236 // Collect UsingDirectiveDecls in all scopes, and recursively all 1237 // nominated namespaces by those using-directives. 1238 // 1239 // FIXME: Cache this sorted list in Scope structure, and DeclContext, so we 1240 // don't build it for each lookup! 1241 if (!VisitedUsingDirectives) { 1242 UDirs.visitScopeChain(Initial, S); 1243 UDirs.done(); 1244 } 1245 1246 // If we're not performing redeclaration lookup, do not look for local 1247 // extern declarations outside of a function scope. 1248 if (!R.isForRedeclaration()) 1249 FindLocals.restore(); 1250 1251 // Lookup namespace scope, and global scope. 1252 // Unqualified name lookup in C++ requires looking into scopes 1253 // that aren't strictly lexical, and therefore we walk through the 1254 // context as well as walking through the scopes. 1255 for (; S; S = S->getParent()) { 1256 // Check whether the IdResolver has anything in this scope. 1257 bool Found = false; 1258 for (; I != IEnd && S->isDeclScope(*I); ++I) { 1259 if (NamedDecl *ND = R.getAcceptableDecl(*I)) { 1260 // We found something. Look for anything else in our scope 1261 // with this same name and in an acceptable identifier 1262 // namespace, so that we can construct an overload set if we 1263 // need to. 1264 Found = true; 1265 R.addDecl(ND); 1266 } 1267 } 1268 1269 if (Found && S->isTemplateParamScope()) { 1270 R.resolveKind(); 1271 return true; 1272 } 1273 1274 DeclContext *Ctx = S->getEntity(); 1275 if (!Ctx && S->isTemplateParamScope() && OutsideOfTemplateParamDC && 1276 S->getParent() && !S->getParent()->isTemplateParamScope()) { 1277 // We've just searched the last template parameter scope and 1278 // found nothing, so look into the contexts between the 1279 // lexical and semantic declaration contexts returned by 1280 // findOuterContext(). This implements the name lookup behavior 1281 // of C++ [temp.local]p8. 1282 Ctx = OutsideOfTemplateParamDC; 1283 OutsideOfTemplateParamDC = nullptr; 1284 } 1285 1286 if (Ctx) { 1287 DeclContext *OuterCtx; 1288 bool SearchAfterTemplateScope; 1289 std::tie(OuterCtx, SearchAfterTemplateScope) = findOuterContext(S); 1290 if (SearchAfterTemplateScope) 1291 OutsideOfTemplateParamDC = OuterCtx; 1292 1293 for (; Ctx && !Ctx->Equals(OuterCtx); Ctx = Ctx->getLookupParent()) { 1294 // We do not directly look into transparent contexts, since 1295 // those entities will be found in the nearest enclosing 1296 // non-transparent context. 1297 if (Ctx->isTransparentContext()) 1298 continue; 1299 1300 // If we have a context, and it's not a context stashed in the 1301 // template parameter scope for an out-of-line definition, also 1302 // look into that context. 1303 if (!(Found && S->isTemplateParamScope())) { 1304 assert(Ctx->isFileContext() && 1305 "We should have been looking only at file context here already."); 1306 1307 // Look into context considering using-directives. 1308 if (CppNamespaceLookup(*this, R, Context, Ctx, UDirs)) 1309 Found = true; 1310 } 1311 1312 if (Found) { 1313 R.resolveKind(); 1314 return true; 1315 } 1316 1317 if (R.isForRedeclaration() && !Ctx->isTransparentContext()) 1318 return false; 1319 } 1320 } 1321 1322 if (R.isForRedeclaration() && Ctx && !Ctx->isTransparentContext()) 1323 return false; 1324 } 1325 1326 return !R.empty(); 1327 } 1328 1329 void Sema::makeMergedDefinitionVisible(NamedDecl *ND) { 1330 if (auto *M = getCurrentModule()) 1331 Context.mergeDefinitionIntoModule(ND, M); 1332 else 1333 // We're not building a module; just make the definition visible. 1334 ND->setHidden(false); 1335 1336 // If ND is a template declaration, make the template parameters 1337 // visible too. They're not (necessarily) within a mergeable DeclContext. 1338 if (auto *TD = dyn_cast<TemplateDecl>(ND)) 1339 for (auto *Param : *TD->getTemplateParameters()) 1340 makeMergedDefinitionVisible(Param); 1341 } 1342 1343 /// \brief Find the module in which the given declaration was defined. 1344 static Module *getDefiningModule(Sema &S, Decl *Entity) { 1345 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(Entity)) { 1346 // If this function was instantiated from a template, the defining module is 1347 // the module containing the pattern. 1348 if (FunctionDecl *Pattern = FD->getTemplateInstantiationPattern()) 1349 Entity = Pattern; 1350 } else if (CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(Entity)) { 1351 if (CXXRecordDecl *Pattern = RD->getTemplateInstantiationPattern()) 1352 Entity = Pattern; 1353 } else if (EnumDecl *ED = dyn_cast<EnumDecl>(Entity)) { 1354 if (auto *Pattern = ED->getTemplateInstantiationPattern()) 1355 Entity = Pattern; 1356 } else if (VarDecl *VD = dyn_cast<VarDecl>(Entity)) { 1357 if (VarDecl *Pattern = VD->getTemplateInstantiationPattern()) 1358 Entity = Pattern; 1359 } 1360 1361 // Walk up to the containing context. That might also have been instantiated 1362 // from a template. 1363 DeclContext *Context = Entity->getDeclContext(); 1364 if (Context->isFileContext()) 1365 return S.getOwningModule(Entity); 1366 return getDefiningModule(S, cast<Decl>(Context)); 1367 } 1368 1369 llvm::DenseSet<Module*> &Sema::getLookupModules() { 1370 unsigned N = CodeSynthesisContexts.size(); 1371 for (unsigned I = CodeSynthesisContextLookupModules.size(); 1372 I != N; ++I) { 1373 Module *M = getDefiningModule(*this, CodeSynthesisContexts[I].Entity); 1374 if (M && !LookupModulesCache.insert(M).second) 1375 M = nullptr; 1376 CodeSynthesisContextLookupModules.push_back(M); 1377 } 1378 return LookupModulesCache; 1379 } 1380 1381 bool Sema::hasVisibleMergedDefinition(NamedDecl *Def) { 1382 for (Module *Merged : Context.getModulesWithMergedDefinition(Def)) 1383 if (isModuleVisible(Merged)) 1384 return true; 1385 return false; 1386 } 1387 1388 template<typename ParmDecl> 1389 static bool 1390 hasVisibleDefaultArgument(Sema &S, const ParmDecl *D, 1391 llvm::SmallVectorImpl<Module *> *Modules) { 1392 if (!D->hasDefaultArgument()) 1393 return false; 1394 1395 while (D) { 1396 auto &DefaultArg = D->getDefaultArgStorage(); 1397 if (!DefaultArg.isInherited() && S.isVisible(D)) 1398 return true; 1399 1400 if (!DefaultArg.isInherited() && Modules) { 1401 auto *NonConstD = const_cast<ParmDecl*>(D); 1402 Modules->push_back(S.getOwningModule(NonConstD)); 1403 const auto &Merged = S.Context.getModulesWithMergedDefinition(NonConstD); 1404 Modules->insert(Modules->end(), Merged.begin(), Merged.end()); 1405 } 1406 1407 // If there was a previous default argument, maybe its parameter is visible. 1408 D = DefaultArg.getInheritedFrom(); 1409 } 1410 return false; 1411 } 1412 1413 bool Sema::hasVisibleDefaultArgument(const NamedDecl *D, 1414 llvm::SmallVectorImpl<Module *> *Modules) { 1415 if (auto *P = dyn_cast<TemplateTypeParmDecl>(D)) 1416 return ::hasVisibleDefaultArgument(*this, P, Modules); 1417 if (auto *P = dyn_cast<NonTypeTemplateParmDecl>(D)) 1418 return ::hasVisibleDefaultArgument(*this, P, Modules); 1419 return ::hasVisibleDefaultArgument(*this, cast<TemplateTemplateParmDecl>(D), 1420 Modules); 1421 } 1422 1423 template<typename Filter> 1424 static bool hasVisibleDeclarationImpl(Sema &S, const NamedDecl *D, 1425 llvm::SmallVectorImpl<Module *> *Modules, 1426 Filter F) { 1427 for (auto *Redecl : D->redecls()) { 1428 auto *R = cast<NamedDecl>(Redecl); 1429 if (!F(R)) 1430 continue; 1431 1432 if (S.isVisible(R)) 1433 return true; 1434 1435 if (Modules) { 1436 Modules->push_back(R->getOwningModule()); 1437 const auto &Merged = S.Context.getModulesWithMergedDefinition(R); 1438 Modules->insert(Modules->end(), Merged.begin(), Merged.end()); 1439 } 1440 } 1441 1442 return false; 1443 } 1444 1445 bool Sema::hasVisibleExplicitSpecialization( 1446 const NamedDecl *D, llvm::SmallVectorImpl<Module *> *Modules) { 1447 return hasVisibleDeclarationImpl(*this, D, Modules, [](const NamedDecl *D) { 1448 if (auto *RD = dyn_cast<CXXRecordDecl>(D)) 1449 return RD->getTemplateSpecializationKind() == TSK_ExplicitSpecialization; 1450 if (auto *FD = dyn_cast<FunctionDecl>(D)) 1451 return FD->getTemplateSpecializationKind() == TSK_ExplicitSpecialization; 1452 if (auto *VD = dyn_cast<VarDecl>(D)) 1453 return VD->getTemplateSpecializationKind() == TSK_ExplicitSpecialization; 1454 llvm_unreachable("unknown explicit specialization kind"); 1455 }); 1456 } 1457 1458 bool Sema::hasVisibleMemberSpecialization( 1459 const NamedDecl *D, llvm::SmallVectorImpl<Module *> *Modules) { 1460 assert(isa<CXXRecordDecl>(D->getDeclContext()) && 1461 "not a member specialization"); 1462 return hasVisibleDeclarationImpl(*this, D, Modules, [](const NamedDecl *D) { 1463 // If the specialization is declared at namespace scope, then it's a member 1464 // specialization declaration. If it's lexically inside the class 1465 // definition then it was instantiated. 1466 // 1467 // FIXME: This is a hack. There should be a better way to determine this. 1468 // FIXME: What about MS-style explicit specializations declared within a 1469 // class definition? 1470 return D->getLexicalDeclContext()->isFileContext(); 1471 }); 1472 1473 return false; 1474 } 1475 1476 /// \brief Determine whether a declaration is visible to name lookup. 1477 /// 1478 /// This routine determines whether the declaration D is visible in the current 1479 /// lookup context, taking into account the current template instantiation 1480 /// stack. During template instantiation, a declaration is visible if it is 1481 /// visible from a module containing any entity on the template instantiation 1482 /// path (by instantiating a template, you allow it to see the declarations that 1483 /// your module can see, including those later on in your module). 1484 bool LookupResult::isVisibleSlow(Sema &SemaRef, NamedDecl *D) { 1485 assert(D->isHidden() && "should not call this: not in slow case"); 1486 1487 Module *DeclModule = SemaRef.getOwningModule(D); 1488 assert(DeclModule && "hidden decl not from a module"); 1489 1490 // If the owning module is visible, and the decl is not module private, 1491 // then the decl is visible too. (Module private is ignored within the same 1492 // top-level module.) 1493 // FIXME: Check the owning module for module-private declarations rather than 1494 // assuming "same AST file" is the same thing as "same module". 1495 if ((!D->isFromASTFile() || !D->isModulePrivate()) && 1496 (SemaRef.isModuleVisible(DeclModule) || 1497 SemaRef.hasVisibleMergedDefinition(D))) 1498 return true; 1499 1500 // If this declaration is not at namespace scope nor module-private, 1501 // then it is visible if its lexical parent has a visible definition. 1502 DeclContext *DC = D->getLexicalDeclContext(); 1503 if (!D->isModulePrivate() && DC && !DC->isFileContext() && 1504 !isa<LinkageSpecDecl>(DC) && !isa<ExportDecl>(DC)) { 1505 // For a parameter, check whether our current template declaration's 1506 // lexical context is visible, not whether there's some other visible 1507 // definition of it, because parameters aren't "within" the definition. 1508 // 1509 // In C++ we need to check for a visible definition due to ODR merging, 1510 // and in C we must not because each declaration of a function gets its own 1511 // set of declarations for tags in prototype scope. 1512 if ((D->isTemplateParameter() || isa<ParmVarDecl>(D) 1513 || (isa<FunctionDecl>(DC) && !SemaRef.getLangOpts().CPlusPlus)) 1514 ? isVisible(SemaRef, cast<NamedDecl>(DC)) 1515 : SemaRef.hasVisibleDefinition(cast<NamedDecl>(DC))) { 1516 if (SemaRef.CodeSynthesisContexts.empty() && 1517 // FIXME: Do something better in this case. 1518 !SemaRef.getLangOpts().ModulesLocalVisibility) { 1519 // Cache the fact that this declaration is implicitly visible because 1520 // its parent has a visible definition. 1521 D->setHidden(false); 1522 } 1523 return true; 1524 } 1525 return false; 1526 } 1527 1528 // Find the extra places where we need to look. 1529 llvm::DenseSet<Module*> &LookupModules = SemaRef.getLookupModules(); 1530 if (LookupModules.empty()) 1531 return false; 1532 1533 if (!DeclModule) { 1534 DeclModule = SemaRef.getOwningModule(D); 1535 assert(DeclModule && "hidden decl not from a module"); 1536 } 1537 1538 // If our lookup set contains the decl's module, it's visible. 1539 if (LookupModules.count(DeclModule)) 1540 return true; 1541 1542 // If the declaration isn't exported, it's not visible in any other module. 1543 if (D->isModulePrivate()) 1544 return false; 1545 1546 // Check whether DeclModule is transitively exported to an import of 1547 // the lookup set. 1548 return std::any_of(LookupModules.begin(), LookupModules.end(), 1549 [&](Module *M) { return M->isModuleVisible(DeclModule); }); 1550 } 1551 1552 bool Sema::isVisibleSlow(const NamedDecl *D) { 1553 return LookupResult::isVisible(*this, const_cast<NamedDecl*>(D)); 1554 } 1555 1556 bool Sema::shouldLinkPossiblyHiddenDecl(LookupResult &R, const NamedDecl *New) { 1557 for (auto *D : R) { 1558 if (isVisible(D)) 1559 return true; 1560 } 1561 return New->isExternallyVisible(); 1562 } 1563 1564 /// \brief Retrieve the visible declaration corresponding to D, if any. 1565 /// 1566 /// This routine determines whether the declaration D is visible in the current 1567 /// module, with the current imports. If not, it checks whether any 1568 /// redeclaration of D is visible, and if so, returns that declaration. 1569 /// 1570 /// \returns D, or a visible previous declaration of D, whichever is more recent 1571 /// and visible. If no declaration of D is visible, returns null. 1572 static NamedDecl *findAcceptableDecl(Sema &SemaRef, NamedDecl *D) { 1573 assert(!LookupResult::isVisible(SemaRef, D) && "not in slow case"); 1574 1575 for (auto RD : D->redecls()) { 1576 // Don't bother with extra checks if we already know this one isn't visible. 1577 if (RD == D) 1578 continue; 1579 1580 auto ND = cast<NamedDecl>(RD); 1581 // FIXME: This is wrong in the case where the previous declaration is not 1582 // visible in the same scope as D. This needs to be done much more 1583 // carefully. 1584 if (LookupResult::isVisible(SemaRef, ND)) 1585 return ND; 1586 } 1587 1588 return nullptr; 1589 } 1590 1591 bool Sema::hasVisibleDeclarationSlow(const NamedDecl *D, 1592 llvm::SmallVectorImpl<Module *> *Modules) { 1593 assert(!isVisible(D) && "not in slow case"); 1594 return hasVisibleDeclarationImpl(*this, D, Modules, 1595 [](const NamedDecl *) { return true; }); 1596 } 1597 1598 NamedDecl *LookupResult::getAcceptableDeclSlow(NamedDecl *D) const { 1599 if (auto *ND = dyn_cast<NamespaceDecl>(D)) { 1600 // Namespaces are a bit of a special case: we expect there to be a lot of 1601 // redeclarations of some namespaces, all declarations of a namespace are 1602 // essentially interchangeable, all declarations are found by name lookup 1603 // if any is, and namespaces are never looked up during template 1604 // instantiation. So we benefit from caching the check in this case, and 1605 // it is correct to do so. 1606 auto *Key = ND->getCanonicalDecl(); 1607 if (auto *Acceptable = getSema().VisibleNamespaceCache.lookup(Key)) 1608 return Acceptable; 1609 auto *Acceptable = 1610 isVisible(getSema(), Key) ? Key : findAcceptableDecl(getSema(), Key); 1611 if (Acceptable) 1612 getSema().VisibleNamespaceCache.insert(std::make_pair(Key, Acceptable)); 1613 return Acceptable; 1614 } 1615 1616 return findAcceptableDecl(getSema(), D); 1617 } 1618 1619 /// @brief Perform unqualified name lookup starting from a given 1620 /// scope. 1621 /// 1622 /// Unqualified name lookup (C++ [basic.lookup.unqual], C99 6.2.1) is 1623 /// used to find names within the current scope. For example, 'x' in 1624 /// @code 1625 /// int x; 1626 /// int f() { 1627 /// return x; // unqualified name look finds 'x' in the global scope 1628 /// } 1629 /// @endcode 1630 /// 1631 /// Different lookup criteria can find different names. For example, a 1632 /// particular scope can have both a struct and a function of the same 1633 /// name, and each can be found by certain lookup criteria. For more 1634 /// information about lookup criteria, see the documentation for the 1635 /// class LookupCriteria. 1636 /// 1637 /// @param S The scope from which unqualified name lookup will 1638 /// begin. If the lookup criteria permits, name lookup may also search 1639 /// in the parent scopes. 1640 /// 1641 /// @param [in,out] R Specifies the lookup to perform (e.g., the name to 1642 /// look up and the lookup kind), and is updated with the results of lookup 1643 /// including zero or more declarations and possibly additional information 1644 /// used to diagnose ambiguities. 1645 /// 1646 /// @returns \c true if lookup succeeded and false otherwise. 1647 bool Sema::LookupName(LookupResult &R, Scope *S, bool AllowBuiltinCreation) { 1648 DeclarationName Name = R.getLookupName(); 1649 if (!Name) return false; 1650 1651 LookupNameKind NameKind = R.getLookupKind(); 1652 1653 if (!getLangOpts().CPlusPlus) { 1654 // Unqualified name lookup in C/Objective-C is purely lexical, so 1655 // search in the declarations attached to the name. 1656 if (NameKind == Sema::LookupRedeclarationWithLinkage) { 1657 // Find the nearest non-transparent declaration scope. 1658 while (!(S->getFlags() & Scope::DeclScope) || 1659 (S->getEntity() && S->getEntity()->isTransparentContext())) 1660 S = S->getParent(); 1661 } 1662 1663 // When performing a scope lookup, we want to find local extern decls. 1664 FindLocalExternScope FindLocals(R); 1665 1666 // Scan up the scope chain looking for a decl that matches this 1667 // identifier that is in the appropriate namespace. This search 1668 // should not take long, as shadowing of names is uncommon, and 1669 // deep shadowing is extremely uncommon. 1670 bool LeftStartingScope = false; 1671 1672 for (IdentifierResolver::iterator I = IdResolver.begin(Name), 1673 IEnd = IdResolver.end(); 1674 I != IEnd; ++I) 1675 if (NamedDecl *D = R.getAcceptableDecl(*I)) { 1676 if (NameKind == LookupRedeclarationWithLinkage) { 1677 // Determine whether this (or a previous) declaration is 1678 // out-of-scope. 1679 if (!LeftStartingScope && !S->isDeclScope(*I)) 1680 LeftStartingScope = true; 1681 1682 // If we found something outside of our starting scope that 1683 // does not have linkage, skip it. 1684 if (LeftStartingScope && !((*I)->hasLinkage())) { 1685 R.setShadowed(); 1686 continue; 1687 } 1688 } 1689 else if (NameKind == LookupObjCImplicitSelfParam && 1690 !isa<ImplicitParamDecl>(*I)) 1691 continue; 1692 1693 R.addDecl(D); 1694 1695 // Check whether there are any other declarations with the same name 1696 // and in the same scope. 1697 if (I != IEnd) { 1698 // Find the scope in which this declaration was declared (if it 1699 // actually exists in a Scope). 1700 while (S && !S->isDeclScope(D)) 1701 S = S->getParent(); 1702 1703 // If the scope containing the declaration is the translation unit, 1704 // then we'll need to perform our checks based on the matching 1705 // DeclContexts rather than matching scopes. 1706 if (S && isNamespaceOrTranslationUnitScope(S)) 1707 S = nullptr; 1708 1709 // Compute the DeclContext, if we need it. 1710 DeclContext *DC = nullptr; 1711 if (!S) 1712 DC = (*I)->getDeclContext()->getRedeclContext(); 1713 1714 IdentifierResolver::iterator LastI = I; 1715 for (++LastI; LastI != IEnd; ++LastI) { 1716 if (S) { 1717 // Match based on scope. 1718 if (!S->isDeclScope(*LastI)) 1719 break; 1720 } else { 1721 // Match based on DeclContext. 1722 DeclContext *LastDC 1723 = (*LastI)->getDeclContext()->getRedeclContext(); 1724 if (!LastDC->Equals(DC)) 1725 break; 1726 } 1727 1728 // If the declaration is in the right namespace and visible, add it. 1729 if (NamedDecl *LastD = R.getAcceptableDecl(*LastI)) 1730 R.addDecl(LastD); 1731 } 1732 1733 R.resolveKind(); 1734 } 1735 1736 return true; 1737 } 1738 } else { 1739 // Perform C++ unqualified name lookup. 1740 if (CppLookupName(R, S)) 1741 return true; 1742 } 1743 1744 // If we didn't find a use of this identifier, and if the identifier 1745 // corresponds to a compiler builtin, create the decl object for the builtin 1746 // now, injecting it into translation unit scope, and return it. 1747 if (AllowBuiltinCreation && LookupBuiltin(*this, R)) 1748 return true; 1749 1750 // If we didn't find a use of this identifier, the ExternalSource 1751 // may be able to handle the situation. 1752 // Note: some lookup failures are expected! 1753 // See e.g. R.isForRedeclaration(). 1754 return (ExternalSource && ExternalSource->LookupUnqualified(R, S)); 1755 } 1756 1757 /// @brief Perform qualified name lookup in the namespaces nominated by 1758 /// using directives by the given context. 1759 /// 1760 /// C++98 [namespace.qual]p2: 1761 /// Given X::m (where X is a user-declared namespace), or given \::m 1762 /// (where X is the global namespace), let S be the set of all 1763 /// declarations of m in X and in the transitive closure of all 1764 /// namespaces nominated by using-directives in X and its used 1765 /// namespaces, except that using-directives are ignored in any 1766 /// namespace, including X, directly containing one or more 1767 /// declarations of m. No namespace is searched more than once in 1768 /// the lookup of a name. If S is the empty set, the program is 1769 /// ill-formed. Otherwise, if S has exactly one member, or if the 1770 /// context of the reference is a using-declaration 1771 /// (namespace.udecl), S is the required set of declarations of 1772 /// m. Otherwise if the use of m is not one that allows a unique 1773 /// declaration to be chosen from S, the program is ill-formed. 1774 /// 1775 /// C++98 [namespace.qual]p5: 1776 /// During the lookup of a qualified namespace member name, if the 1777 /// lookup finds more than one declaration of the member, and if one 1778 /// declaration introduces a class name or enumeration name and the 1779 /// other declarations either introduce the same object, the same 1780 /// enumerator or a set of functions, the non-type name hides the 1781 /// class or enumeration name if and only if the declarations are 1782 /// from the same namespace; otherwise (the declarations are from 1783 /// different namespaces), the program is ill-formed. 1784 static bool LookupQualifiedNameInUsingDirectives(Sema &S, LookupResult &R, 1785 DeclContext *StartDC) { 1786 assert(StartDC->isFileContext() && "start context is not a file context"); 1787 1788 DeclContext::udir_range UsingDirectives = StartDC->using_directives(); 1789 if (UsingDirectives.begin() == UsingDirectives.end()) return false; 1790 1791 // We have at least added all these contexts to the queue. 1792 llvm::SmallPtrSet<DeclContext*, 8> Visited; 1793 Visited.insert(StartDC); 1794 1795 // We have not yet looked into these namespaces, much less added 1796 // their "using-children" to the queue. 1797 SmallVector<NamespaceDecl*, 8> Queue; 1798 1799 // We have already looked into the initial namespace; seed the queue 1800 // with its using-children. 1801 for (auto *I : UsingDirectives) { 1802 NamespaceDecl *ND = I->getNominatedNamespace()->getOriginalNamespace(); 1803 if (Visited.insert(ND).second) 1804 Queue.push_back(ND); 1805 } 1806 1807 // The easiest way to implement the restriction in [namespace.qual]p5 1808 // is to check whether any of the individual results found a tag 1809 // and, if so, to declare an ambiguity if the final result is not 1810 // a tag. 1811 bool FoundTag = false; 1812 bool FoundNonTag = false; 1813 1814 LookupResult LocalR(LookupResult::Temporary, R); 1815 1816 bool Found = false; 1817 while (!Queue.empty()) { 1818 NamespaceDecl *ND = Queue.pop_back_val(); 1819 1820 // We go through some convolutions here to avoid copying results 1821 // between LookupResults. 1822 bool UseLocal = !R.empty(); 1823 LookupResult &DirectR = UseLocal ? LocalR : R; 1824 bool FoundDirect = LookupDirect(S, DirectR, ND); 1825 1826 if (FoundDirect) { 1827 // First do any local hiding. 1828 DirectR.resolveKind(); 1829 1830 // If the local result is a tag, remember that. 1831 if (DirectR.isSingleTagDecl()) 1832 FoundTag = true; 1833 else 1834 FoundNonTag = true; 1835 1836 // Append the local results to the total results if necessary. 1837 if (UseLocal) { 1838 R.addAllDecls(LocalR); 1839 LocalR.clear(); 1840 } 1841 } 1842 1843 // If we find names in this namespace, ignore its using directives. 1844 if (FoundDirect) { 1845 Found = true; 1846 continue; 1847 } 1848 1849 for (auto I : ND->using_directives()) { 1850 NamespaceDecl *Nom = I->getNominatedNamespace(); 1851 if (Visited.insert(Nom).second) 1852 Queue.push_back(Nom); 1853 } 1854 } 1855 1856 if (Found) { 1857 if (FoundTag && FoundNonTag) 1858 R.setAmbiguousQualifiedTagHiding(); 1859 else 1860 R.resolveKind(); 1861 } 1862 1863 return Found; 1864 } 1865 1866 /// \brief Callback that looks for any member of a class with the given name. 1867 static bool LookupAnyMember(const CXXBaseSpecifier *Specifier, 1868 CXXBasePath &Path, DeclarationName Name) { 1869 RecordDecl *BaseRecord = Specifier->getType()->getAs<RecordType>()->getDecl(); 1870 1871 Path.Decls = BaseRecord->lookup(Name); 1872 return !Path.Decls.empty(); 1873 } 1874 1875 /// \brief Determine whether the given set of member declarations contains only 1876 /// static members, nested types, and enumerators. 1877 template<typename InputIterator> 1878 static bool HasOnlyStaticMembers(InputIterator First, InputIterator Last) { 1879 Decl *D = (*First)->getUnderlyingDecl(); 1880 if (isa<VarDecl>(D) || isa<TypeDecl>(D) || isa<EnumConstantDecl>(D)) 1881 return true; 1882 1883 if (isa<CXXMethodDecl>(D)) { 1884 // Determine whether all of the methods are static. 1885 bool AllMethodsAreStatic = true; 1886 for(; First != Last; ++First) { 1887 D = (*First)->getUnderlyingDecl(); 1888 1889 if (!isa<CXXMethodDecl>(D)) { 1890 assert(isa<TagDecl>(D) && "Non-function must be a tag decl"); 1891 break; 1892 } 1893 1894 if (!cast<CXXMethodDecl>(D)->isStatic()) { 1895 AllMethodsAreStatic = false; 1896 break; 1897 } 1898 } 1899 1900 if (AllMethodsAreStatic) 1901 return true; 1902 } 1903 1904 return false; 1905 } 1906 1907 /// \brief Perform qualified name lookup into a given context. 1908 /// 1909 /// Qualified name lookup (C++ [basic.lookup.qual]) is used to find 1910 /// names when the context of those names is explicit specified, e.g., 1911 /// "std::vector" or "x->member", or as part of unqualified name lookup. 1912 /// 1913 /// Different lookup criteria can find different names. For example, a 1914 /// particular scope can have both a struct and a function of the same 1915 /// name, and each can be found by certain lookup criteria. For more 1916 /// information about lookup criteria, see the documentation for the 1917 /// class LookupCriteria. 1918 /// 1919 /// \param R captures both the lookup criteria and any lookup results found. 1920 /// 1921 /// \param LookupCtx The context in which qualified name lookup will 1922 /// search. If the lookup criteria permits, name lookup may also search 1923 /// in the parent contexts or (for C++ classes) base classes. 1924 /// 1925 /// \param InUnqualifiedLookup true if this is qualified name lookup that 1926 /// occurs as part of unqualified name lookup. 1927 /// 1928 /// \returns true if lookup succeeded, false if it failed. 1929 bool Sema::LookupQualifiedName(LookupResult &R, DeclContext *LookupCtx, 1930 bool InUnqualifiedLookup) { 1931 assert(LookupCtx && "Sema::LookupQualifiedName requires a lookup context"); 1932 1933 if (!R.getLookupName()) 1934 return false; 1935 1936 // Make sure that the declaration context is complete. 1937 assert((!isa<TagDecl>(LookupCtx) || 1938 LookupCtx->isDependentContext() || 1939 cast<TagDecl>(LookupCtx)->isCompleteDefinition() || 1940 cast<TagDecl>(LookupCtx)->isBeingDefined()) && 1941 "Declaration context must already be complete!"); 1942 1943 struct QualifiedLookupInScope { 1944 bool oldVal; 1945 DeclContext *Context; 1946 // Set flag in DeclContext informing debugger that we're looking for qualified name 1947 QualifiedLookupInScope(DeclContext *ctx) : Context(ctx) { 1948 oldVal = ctx->setUseQualifiedLookup(); 1949 } 1950 ~QualifiedLookupInScope() { 1951 Context->setUseQualifiedLookup(oldVal); 1952 } 1953 } QL(LookupCtx); 1954 1955 if (LookupDirect(*this, R, LookupCtx)) { 1956 R.resolveKind(); 1957 if (isa<CXXRecordDecl>(LookupCtx)) 1958 R.setNamingClass(cast<CXXRecordDecl>(LookupCtx)); 1959 return true; 1960 } 1961 1962 // Don't descend into implied contexts for redeclarations. 1963 // C++98 [namespace.qual]p6: 1964 // In a declaration for a namespace member in which the 1965 // declarator-id is a qualified-id, given that the qualified-id 1966 // for the namespace member has the form 1967 // nested-name-specifier unqualified-id 1968 // the unqualified-id shall name a member of the namespace 1969 // designated by the nested-name-specifier. 1970 // See also [class.mfct]p5 and [class.static.data]p2. 1971 if (R.isForRedeclaration()) 1972 return false; 1973 1974 // If this is a namespace, look it up in the implied namespaces. 1975 if (LookupCtx->isFileContext()) 1976 return LookupQualifiedNameInUsingDirectives(*this, R, LookupCtx); 1977 1978 // If this isn't a C++ class, we aren't allowed to look into base 1979 // classes, we're done. 1980 CXXRecordDecl *LookupRec = dyn_cast<CXXRecordDecl>(LookupCtx); 1981 if (!LookupRec || !LookupRec->getDefinition()) 1982 return false; 1983 1984 // If we're performing qualified name lookup into a dependent class, 1985 // then we are actually looking into a current instantiation. If we have any 1986 // dependent base classes, then we either have to delay lookup until 1987 // template instantiation time (at which point all bases will be available) 1988 // or we have to fail. 1989 if (!InUnqualifiedLookup && LookupRec->isDependentContext() && 1990 LookupRec->hasAnyDependentBases()) { 1991 R.setNotFoundInCurrentInstantiation(); 1992 return false; 1993 } 1994 1995 // Perform lookup into our base classes. 1996 CXXBasePaths Paths; 1997 Paths.setOrigin(LookupRec); 1998 1999 // Look for this member in our base classes 2000 bool (*BaseCallback)(const CXXBaseSpecifier *Specifier, CXXBasePath &Path, 2001 DeclarationName Name) = nullptr; 2002 switch (R.getLookupKind()) { 2003 case LookupObjCImplicitSelfParam: 2004 case LookupOrdinaryName: 2005 case LookupMemberName: 2006 case LookupRedeclarationWithLinkage: 2007 case LookupLocalFriendName: 2008 BaseCallback = &CXXRecordDecl::FindOrdinaryMember; 2009 break; 2010 2011 case LookupTagName: 2012 BaseCallback = &CXXRecordDecl::FindTagMember; 2013 break; 2014 2015 case LookupAnyName: 2016 BaseCallback = &LookupAnyMember; 2017 break; 2018 2019 case LookupOMPReductionName: 2020 BaseCallback = &CXXRecordDecl::FindOMPReductionMember; 2021 break; 2022 2023 case LookupUsingDeclName: 2024 // This lookup is for redeclarations only. 2025 2026 case LookupOperatorName: 2027 case LookupNamespaceName: 2028 case LookupObjCProtocolName: 2029 case LookupLabel: 2030 // These lookups will never find a member in a C++ class (or base class). 2031 return false; 2032 2033 case LookupNestedNameSpecifierName: 2034 BaseCallback = &CXXRecordDecl::FindNestedNameSpecifierMember; 2035 break; 2036 } 2037 2038 DeclarationName Name = R.getLookupName(); 2039 if (!LookupRec->lookupInBases( 2040 [=](const CXXBaseSpecifier *Specifier, CXXBasePath &Path) { 2041 return BaseCallback(Specifier, Path, Name); 2042 }, 2043 Paths)) 2044 return false; 2045 2046 R.setNamingClass(LookupRec); 2047 2048 // C++ [class.member.lookup]p2: 2049 // [...] If the resulting set of declarations are not all from 2050 // sub-objects of the same type, or the set has a nonstatic member 2051 // and includes members from distinct sub-objects, there is an 2052 // ambiguity and the program is ill-formed. Otherwise that set is 2053 // the result of the lookup. 2054 QualType SubobjectType; 2055 int SubobjectNumber = 0; 2056 AccessSpecifier SubobjectAccess = AS_none; 2057 2058 for (CXXBasePaths::paths_iterator Path = Paths.begin(), PathEnd = Paths.end(); 2059 Path != PathEnd; ++Path) { 2060 const CXXBasePathElement &PathElement = Path->back(); 2061 2062 // Pick the best (i.e. most permissive i.e. numerically lowest) access 2063 // across all paths. 2064 SubobjectAccess = std::min(SubobjectAccess, Path->Access); 2065 2066 // Determine whether we're looking at a distinct sub-object or not. 2067 if (SubobjectType.isNull()) { 2068 // This is the first subobject we've looked at. Record its type. 2069 SubobjectType = Context.getCanonicalType(PathElement.Base->getType()); 2070 SubobjectNumber = PathElement.SubobjectNumber; 2071 continue; 2072 } 2073 2074 if (SubobjectType 2075 != Context.getCanonicalType(PathElement.Base->getType())) { 2076 // We found members of the given name in two subobjects of 2077 // different types. If the declaration sets aren't the same, this 2078 // lookup is ambiguous. 2079 if (HasOnlyStaticMembers(Path->Decls.begin(), Path->Decls.end())) { 2080 CXXBasePaths::paths_iterator FirstPath = Paths.begin(); 2081 DeclContext::lookup_iterator FirstD = FirstPath->Decls.begin(); 2082 DeclContext::lookup_iterator CurrentD = Path->Decls.begin(); 2083 2084 while (FirstD != FirstPath->Decls.end() && 2085 CurrentD != Path->Decls.end()) { 2086 if ((*FirstD)->getUnderlyingDecl()->getCanonicalDecl() != 2087 (*CurrentD)->getUnderlyingDecl()->getCanonicalDecl()) 2088 break; 2089 2090 ++FirstD; 2091 ++CurrentD; 2092 } 2093 2094 if (FirstD == FirstPath->Decls.end() && 2095 CurrentD == Path->Decls.end()) 2096 continue; 2097 } 2098 2099 R.setAmbiguousBaseSubobjectTypes(Paths); 2100 return true; 2101 } 2102 2103 if (SubobjectNumber != PathElement.SubobjectNumber) { 2104 // We have a different subobject of the same type. 2105 2106 // C++ [class.member.lookup]p5: 2107 // A static member, a nested type or an enumerator defined in 2108 // a base class T can unambiguously be found even if an object 2109 // has more than one base class subobject of type T. 2110 if (HasOnlyStaticMembers(Path->Decls.begin(), Path->Decls.end())) 2111 continue; 2112 2113 // We have found a nonstatic member name in multiple, distinct 2114 // subobjects. Name lookup is ambiguous. 2115 R.setAmbiguousBaseSubobjects(Paths); 2116 return true; 2117 } 2118 } 2119 2120 // Lookup in a base class succeeded; return these results. 2121 2122 for (auto *D : Paths.front().Decls) { 2123 AccessSpecifier AS = CXXRecordDecl::MergeAccess(SubobjectAccess, 2124 D->getAccess()); 2125 R.addDecl(D, AS); 2126 } 2127 R.resolveKind(); 2128 return true; 2129 } 2130 2131 /// \brief Performs qualified name lookup or special type of lookup for 2132 /// "__super::" scope specifier. 2133 /// 2134 /// This routine is a convenience overload meant to be called from contexts 2135 /// that need to perform a qualified name lookup with an optional C++ scope 2136 /// specifier that might require special kind of lookup. 2137 /// 2138 /// \param R captures both the lookup criteria and any lookup results found. 2139 /// 2140 /// \param LookupCtx The context in which qualified name lookup will 2141 /// search. 2142 /// 2143 /// \param SS An optional C++ scope-specifier. 2144 /// 2145 /// \returns true if lookup succeeded, false if it failed. 2146 bool Sema::LookupQualifiedName(LookupResult &R, DeclContext *LookupCtx, 2147 CXXScopeSpec &SS) { 2148 auto *NNS = SS.getScopeRep(); 2149 if (NNS && NNS->getKind() == NestedNameSpecifier::Super) 2150 return LookupInSuper(R, NNS->getAsRecordDecl()); 2151 else 2152 2153 return LookupQualifiedName(R, LookupCtx); 2154 } 2155 2156 /// @brief Performs name lookup for a name that was parsed in the 2157 /// source code, and may contain a C++ scope specifier. 2158 /// 2159 /// This routine is a convenience routine meant to be called from 2160 /// contexts that receive a name and an optional C++ scope specifier 2161 /// (e.g., "N::M::x"). It will then perform either qualified or 2162 /// unqualified name lookup (with LookupQualifiedName or LookupName, 2163 /// respectively) on the given name and return those results. It will 2164 /// perform a special type of lookup for "__super::" scope specifier. 2165 /// 2166 /// @param S The scope from which unqualified name lookup will 2167 /// begin. 2168 /// 2169 /// @param SS An optional C++ scope-specifier, e.g., "::N::M". 2170 /// 2171 /// @param EnteringContext Indicates whether we are going to enter the 2172 /// context of the scope-specifier SS (if present). 2173 /// 2174 /// @returns True if any decls were found (but possibly ambiguous) 2175 bool Sema::LookupParsedName(LookupResult &R, Scope *S, CXXScopeSpec *SS, 2176 bool AllowBuiltinCreation, bool EnteringContext) { 2177 if (SS && SS->isInvalid()) { 2178 // When the scope specifier is invalid, don't even look for 2179 // anything. 2180 return false; 2181 } 2182 2183 if (SS && SS->isSet()) { 2184 NestedNameSpecifier *NNS = SS->getScopeRep(); 2185 if (NNS->getKind() == NestedNameSpecifier::Super) 2186 return LookupInSuper(R, NNS->getAsRecordDecl()); 2187 2188 if (DeclContext *DC = computeDeclContext(*SS, EnteringContext)) { 2189 // We have resolved the scope specifier to a particular declaration 2190 // contex, and will perform name lookup in that context. 2191 if (!DC->isDependentContext() && RequireCompleteDeclContext(*SS, DC)) 2192 return false; 2193 2194 R.setContextRange(SS->getRange()); 2195 return LookupQualifiedName(R, DC); 2196 } 2197 2198 // We could not resolve the scope specified to a specific declaration 2199 // context, which means that SS refers to an unknown specialization. 2200 // Name lookup can't find anything in this case. 2201 R.setNotFoundInCurrentInstantiation(); 2202 R.setContextRange(SS->getRange()); 2203 return false; 2204 } 2205 2206 // Perform unqualified name lookup starting in the given scope. 2207 return LookupName(R, S, AllowBuiltinCreation); 2208 } 2209 2210 /// \brief Perform qualified name lookup into all base classes of the given 2211 /// class. 2212 /// 2213 /// \param R captures both the lookup criteria and any lookup results found. 2214 /// 2215 /// \param Class The context in which qualified name lookup will 2216 /// search. Name lookup will search in all base classes merging the results. 2217 /// 2218 /// @returns True if any decls were found (but possibly ambiguous) 2219 bool Sema::LookupInSuper(LookupResult &R, CXXRecordDecl *Class) { 2220 // The access-control rules we use here are essentially the rules for 2221 // doing a lookup in Class that just magically skipped the direct 2222 // members of Class itself. That is, the naming class is Class, and the 2223 // access includes the access of the base. 2224 for (const auto &BaseSpec : Class->bases()) { 2225 CXXRecordDecl *RD = cast<CXXRecordDecl>( 2226 BaseSpec.getType()->castAs<RecordType>()->getDecl()); 2227 LookupResult Result(*this, R.getLookupNameInfo(), R.getLookupKind()); 2228 Result.setBaseObjectType(Context.getRecordType(Class)); 2229 LookupQualifiedName(Result, RD); 2230 2231 // Copy the lookup results into the target, merging the base's access into 2232 // the path access. 2233 for (auto I = Result.begin(), E = Result.end(); I != E; ++I) { 2234 R.addDecl(I.getDecl(), 2235 CXXRecordDecl::MergeAccess(BaseSpec.getAccessSpecifier(), 2236 I.getAccess())); 2237 } 2238 2239 Result.suppressDiagnostics(); 2240 } 2241 2242 R.resolveKind(); 2243 R.setNamingClass(Class); 2244 2245 return !R.empty(); 2246 } 2247 2248 /// \brief Produce a diagnostic describing the ambiguity that resulted 2249 /// from name lookup. 2250 /// 2251 /// \param Result The result of the ambiguous lookup to be diagnosed. 2252 void Sema::DiagnoseAmbiguousLookup(LookupResult &Result) { 2253 assert(Result.isAmbiguous() && "Lookup result must be ambiguous"); 2254 2255 DeclarationName Name = Result.getLookupName(); 2256 SourceLocation NameLoc = Result.getNameLoc(); 2257 SourceRange LookupRange = Result.getContextRange(); 2258 2259 switch (Result.getAmbiguityKind()) { 2260 case LookupResult::AmbiguousBaseSubobjects: { 2261 CXXBasePaths *Paths = Result.getBasePaths(); 2262 QualType SubobjectType = Paths->front().back().Base->getType(); 2263 Diag(NameLoc, diag::err_ambiguous_member_multiple_subobjects) 2264 << Name << SubobjectType << getAmbiguousPathsDisplayString(*Paths) 2265 << LookupRange; 2266 2267 DeclContext::lookup_iterator Found = Paths->front().Decls.begin(); 2268 while (isa<CXXMethodDecl>(*Found) && 2269 cast<CXXMethodDecl>(*Found)->isStatic()) 2270 ++Found; 2271 2272 Diag((*Found)->getLocation(), diag::note_ambiguous_member_found); 2273 break; 2274 } 2275 2276 case LookupResult::AmbiguousBaseSubobjectTypes: { 2277 Diag(NameLoc, diag::err_ambiguous_member_multiple_subobject_types) 2278 << Name << LookupRange; 2279 2280 CXXBasePaths *Paths = Result.getBasePaths(); 2281 std::set<Decl *> DeclsPrinted; 2282 for (CXXBasePaths::paths_iterator Path = Paths->begin(), 2283 PathEnd = Paths->end(); 2284 Path != PathEnd; ++Path) { 2285 Decl *D = Path->Decls.front(); 2286 if (DeclsPrinted.insert(D).second) 2287 Diag(D->getLocation(), diag::note_ambiguous_member_found); 2288 } 2289 break; 2290 } 2291 2292 case LookupResult::AmbiguousTagHiding: { 2293 Diag(NameLoc, diag::err_ambiguous_tag_hiding) << Name << LookupRange; 2294 2295 llvm::SmallPtrSet<NamedDecl*, 8> TagDecls; 2296 2297 for (auto *D : Result) 2298 if (TagDecl *TD = dyn_cast<TagDecl>(D)) { 2299 TagDecls.insert(TD); 2300 Diag(TD->getLocation(), diag::note_hidden_tag); 2301 } 2302 2303 for (auto *D : Result) 2304 if (!isa<TagDecl>(D)) 2305 Diag(D->getLocation(), diag::note_hiding_object); 2306 2307 // For recovery purposes, go ahead and implement the hiding. 2308 LookupResult::Filter F = Result.makeFilter(); 2309 while (F.hasNext()) { 2310 if (TagDecls.count(F.next())) 2311 F.erase(); 2312 } 2313 F.done(); 2314 break; 2315 } 2316 2317 case LookupResult::AmbiguousReference: { 2318 Diag(NameLoc, diag::err_ambiguous_reference) << Name << LookupRange; 2319 2320 for (auto *D : Result) 2321 Diag(D->getLocation(), diag::note_ambiguous_candidate) << D; 2322 break; 2323 } 2324 } 2325 } 2326 2327 namespace { 2328 struct AssociatedLookup { 2329 AssociatedLookup(Sema &S, SourceLocation InstantiationLoc, 2330 Sema::AssociatedNamespaceSet &Namespaces, 2331 Sema::AssociatedClassSet &Classes) 2332 : S(S), Namespaces(Namespaces), Classes(Classes), 2333 InstantiationLoc(InstantiationLoc) { 2334 } 2335 2336 Sema &S; 2337 Sema::AssociatedNamespaceSet &Namespaces; 2338 Sema::AssociatedClassSet &Classes; 2339 SourceLocation InstantiationLoc; 2340 }; 2341 } // end anonymous namespace 2342 2343 static void 2344 addAssociatedClassesAndNamespaces(AssociatedLookup &Result, QualType T); 2345 2346 static void CollectEnclosingNamespace(Sema::AssociatedNamespaceSet &Namespaces, 2347 DeclContext *Ctx) { 2348 // Add the associated namespace for this class. 2349 2350 // We don't use DeclContext::getEnclosingNamespaceContext() as this may 2351 // be a locally scoped record. 2352 2353 // We skip out of inline namespaces. The innermost non-inline namespace 2354 // contains all names of all its nested inline namespaces anyway, so we can 2355 // replace the entire inline namespace tree with its root. 2356 while (Ctx->isRecord() || Ctx->isTransparentContext() || 2357 Ctx->isInlineNamespace()) 2358 Ctx = Ctx->getParent(); 2359 2360 if (Ctx->isFileContext()) 2361 Namespaces.insert(Ctx->getPrimaryContext()); 2362 } 2363 2364 // \brief Add the associated classes and namespaces for argument-dependent 2365 // lookup that involves a template argument (C++ [basic.lookup.koenig]p2). 2366 static void 2367 addAssociatedClassesAndNamespaces(AssociatedLookup &Result, 2368 const TemplateArgument &Arg) { 2369 // C++ [basic.lookup.koenig]p2, last bullet: 2370 // -- [...] ; 2371 switch (Arg.getKind()) { 2372 case TemplateArgument::Null: 2373 break; 2374 2375 case TemplateArgument::Type: 2376 // [...] the namespaces and classes associated with the types of the 2377 // template arguments provided for template type parameters (excluding 2378 // template template parameters) 2379 addAssociatedClassesAndNamespaces(Result, Arg.getAsType()); 2380 break; 2381 2382 case TemplateArgument::Template: 2383 case TemplateArgument::TemplateExpansion: { 2384 // [...] the namespaces in which any template template arguments are 2385 // defined; and the classes in which any member templates used as 2386 // template template arguments are defined. 2387 TemplateName Template = Arg.getAsTemplateOrTemplatePattern(); 2388 if (ClassTemplateDecl *ClassTemplate 2389 = dyn_cast<ClassTemplateDecl>(Template.getAsTemplateDecl())) { 2390 DeclContext *Ctx = ClassTemplate->getDeclContext(); 2391 if (CXXRecordDecl *EnclosingClass = dyn_cast<CXXRecordDecl>(Ctx)) 2392 Result.Classes.insert(EnclosingClass); 2393 // Add the associated namespace for this class. 2394 CollectEnclosingNamespace(Result.Namespaces, Ctx); 2395 } 2396 break; 2397 } 2398 2399 case TemplateArgument::Declaration: 2400 case TemplateArgument::Integral: 2401 case TemplateArgument::Expression: 2402 case TemplateArgument::NullPtr: 2403 // [Note: non-type template arguments do not contribute to the set of 2404 // associated namespaces. ] 2405 break; 2406 2407 case TemplateArgument::Pack: 2408 for (const auto &P : Arg.pack_elements()) 2409 addAssociatedClassesAndNamespaces(Result, P); 2410 break; 2411 } 2412 } 2413 2414 // \brief Add the associated classes and namespaces for 2415 // argument-dependent lookup with an argument of class type 2416 // (C++ [basic.lookup.koenig]p2). 2417 static void 2418 addAssociatedClassesAndNamespaces(AssociatedLookup &Result, 2419 CXXRecordDecl *Class) { 2420 2421 // Just silently ignore anything whose name is __va_list_tag. 2422 if (Class->getDeclName() == Result.S.VAListTagName) 2423 return; 2424 2425 // C++ [basic.lookup.koenig]p2: 2426 // [...] 2427 // -- If T is a class type (including unions), its associated 2428 // classes are: the class itself; the class of which it is a 2429 // member, if any; and its direct and indirect base 2430 // classes. Its associated namespaces are the namespaces in 2431 // which its associated classes are defined. 2432 2433 // Add the class of which it is a member, if any. 2434 DeclContext *Ctx = Class->getDeclContext(); 2435 if (CXXRecordDecl *EnclosingClass = dyn_cast<CXXRecordDecl>(Ctx)) 2436 Result.Classes.insert(EnclosingClass); 2437 // Add the associated namespace for this class. 2438 CollectEnclosingNamespace(Result.Namespaces, Ctx); 2439 2440 // Add the class itself. If we've already seen this class, we don't 2441 // need to visit base classes. 2442 // 2443 // FIXME: That's not correct, we may have added this class only because it 2444 // was the enclosing class of another class, and in that case we won't have 2445 // added its base classes yet. 2446 if (!Result.Classes.insert(Class)) 2447 return; 2448 2449 // -- If T is a template-id, its associated namespaces and classes are 2450 // the namespace in which the template is defined; for member 2451 // templates, the member template's class; the namespaces and classes 2452 // associated with the types of the template arguments provided for 2453 // template type parameters (excluding template template parameters); the 2454 // namespaces in which any template template arguments are defined; and 2455 // the classes in which any member templates used as template template 2456 // arguments are defined. [Note: non-type template arguments do not 2457 // contribute to the set of associated namespaces. ] 2458 if (ClassTemplateSpecializationDecl *Spec 2459 = dyn_cast<ClassTemplateSpecializationDecl>(Class)) { 2460 DeclContext *Ctx = Spec->getSpecializedTemplate()->getDeclContext(); 2461 if (CXXRecordDecl *EnclosingClass = dyn_cast<CXXRecordDecl>(Ctx)) 2462 Result.Classes.insert(EnclosingClass); 2463 // Add the associated namespace for this class. 2464 CollectEnclosingNamespace(Result.Namespaces, Ctx); 2465 2466 const TemplateArgumentList &TemplateArgs = Spec->getTemplateArgs(); 2467 for (unsigned I = 0, N = TemplateArgs.size(); I != N; ++I) 2468 addAssociatedClassesAndNamespaces(Result, TemplateArgs[I]); 2469 } 2470 2471 // Only recurse into base classes for complete types. 2472 if (!Result.S.isCompleteType(Result.InstantiationLoc, 2473 Result.S.Context.getRecordType(Class))) 2474 return; 2475 2476 // Add direct and indirect base classes along with their associated 2477 // namespaces. 2478 SmallVector<CXXRecordDecl *, 32> Bases; 2479 Bases.push_back(Class); 2480 while (!Bases.empty()) { 2481 // Pop this class off the stack. 2482 Class = Bases.pop_back_val(); 2483 2484 // Visit the base classes. 2485 for (const auto &Base : Class->bases()) { 2486 const RecordType *BaseType = Base.getType()->getAs<RecordType>(); 2487 // In dependent contexts, we do ADL twice, and the first time around, 2488 // the base type might be a dependent TemplateSpecializationType, or a 2489 // TemplateTypeParmType. If that happens, simply ignore it. 2490 // FIXME: If we want to support export, we probably need to add the 2491 // namespace of the template in a TemplateSpecializationType, or even 2492 // the classes and namespaces of known non-dependent arguments. 2493 if (!BaseType) 2494 continue; 2495 CXXRecordDecl *BaseDecl = cast<CXXRecordDecl>(BaseType->getDecl()); 2496 if (Result.Classes.insert(BaseDecl)) { 2497 // Find the associated namespace for this base class. 2498 DeclContext *BaseCtx = BaseDecl->getDeclContext(); 2499 CollectEnclosingNamespace(Result.Namespaces, BaseCtx); 2500 2501 // Make sure we visit the bases of this base class. 2502 if (BaseDecl->bases_begin() != BaseDecl->bases_end()) 2503 Bases.push_back(BaseDecl); 2504 } 2505 } 2506 } 2507 } 2508 2509 // \brief Add the associated classes and namespaces for 2510 // argument-dependent lookup with an argument of type T 2511 // (C++ [basic.lookup.koenig]p2). 2512 static void 2513 addAssociatedClassesAndNamespaces(AssociatedLookup &Result, QualType Ty) { 2514 // C++ [basic.lookup.koenig]p2: 2515 // 2516 // For each argument type T in the function call, there is a set 2517 // of zero or more associated namespaces and a set of zero or more 2518 // associated classes to be considered. The sets of namespaces and 2519 // classes is determined entirely by the types of the function 2520 // arguments (and the namespace of any template template 2521 // argument). Typedef names and using-declarations used to specify 2522 // the types do not contribute to this set. The sets of namespaces 2523 // and classes are determined in the following way: 2524 2525 SmallVector<const Type *, 16> Queue; 2526 const Type *T = Ty->getCanonicalTypeInternal().getTypePtr(); 2527 2528 while (true) { 2529 switch (T->getTypeClass()) { 2530 2531 #define TYPE(Class, Base) 2532 #define DEPENDENT_TYPE(Class, Base) case Type::Class: 2533 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class: 2534 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(Class, Base) case Type::Class: 2535 #define ABSTRACT_TYPE(Class, Base) 2536 #include "clang/AST/TypeNodes.def" 2537 // T is canonical. We can also ignore dependent types because 2538 // we don't need to do ADL at the definition point, but if we 2539 // wanted to implement template export (or if we find some other 2540 // use for associated classes and namespaces...) this would be 2541 // wrong. 2542 break; 2543 2544 // -- If T is a pointer to U or an array of U, its associated 2545 // namespaces and classes are those associated with U. 2546 case Type::Pointer: 2547 T = cast<PointerType>(T)->getPointeeType().getTypePtr(); 2548 continue; 2549 case Type::ConstantArray: 2550 case Type::IncompleteArray: 2551 case Type::VariableArray: 2552 T = cast<ArrayType>(T)->getElementType().getTypePtr(); 2553 continue; 2554 2555 // -- If T is a fundamental type, its associated sets of 2556 // namespaces and classes are both empty. 2557 case Type::Builtin: 2558 break; 2559 2560 // -- If T is a class type (including unions), its associated 2561 // classes are: the class itself; the class of which it is a 2562 // member, if any; and its direct and indirect base 2563 // classes. Its associated namespaces are the namespaces in 2564 // which its associated classes are defined. 2565 case Type::Record: { 2566 CXXRecordDecl *Class = 2567 cast<CXXRecordDecl>(cast<RecordType>(T)->getDecl()); 2568 addAssociatedClassesAndNamespaces(Result, Class); 2569 break; 2570 } 2571 2572 // -- If T is an enumeration type, its associated namespace is 2573 // the namespace in which it is defined. If it is class 2574 // member, its associated class is the member's class; else 2575 // it has no associated class. 2576 case Type::Enum: { 2577 EnumDecl *Enum = cast<EnumType>(T)->getDecl(); 2578 2579 DeclContext *Ctx = Enum->getDeclContext(); 2580 if (CXXRecordDecl *EnclosingClass = dyn_cast<CXXRecordDecl>(Ctx)) 2581 Result.Classes.insert(EnclosingClass); 2582 2583 // Add the associated namespace for this class. 2584 CollectEnclosingNamespace(Result.Namespaces, Ctx); 2585 2586 break; 2587 } 2588 2589 // -- If T is a function type, its associated namespaces and 2590 // classes are those associated with the function parameter 2591 // types and those associated with the return type. 2592 case Type::FunctionProto: { 2593 const FunctionProtoType *Proto = cast<FunctionProtoType>(T); 2594 for (const auto &Arg : Proto->param_types()) 2595 Queue.push_back(Arg.getTypePtr()); 2596 // fallthrough 2597 } 2598 case Type::FunctionNoProto: { 2599 const FunctionType *FnType = cast<FunctionType>(T); 2600 T = FnType->getReturnType().getTypePtr(); 2601 continue; 2602 } 2603 2604 // -- If T is a pointer to a member function of a class X, its 2605 // associated namespaces and classes are those associated 2606 // with the function parameter types and return type, 2607 // together with those associated with X. 2608 // 2609 // -- If T is a pointer to a data member of class X, its 2610 // associated namespaces and classes are those associated 2611 // with the member type together with those associated with 2612 // X. 2613 case Type::MemberPointer: { 2614 const MemberPointerType *MemberPtr = cast<MemberPointerType>(T); 2615 2616 // Queue up the class type into which this points. 2617 Queue.push_back(MemberPtr->getClass()); 2618 2619 // And directly continue with the pointee type. 2620 T = MemberPtr->getPointeeType().getTypePtr(); 2621 continue; 2622 } 2623 2624 // As an extension, treat this like a normal pointer. 2625 case Type::BlockPointer: 2626 T = cast<BlockPointerType>(T)->getPointeeType().getTypePtr(); 2627 continue; 2628 2629 // References aren't covered by the standard, but that's such an 2630 // obvious defect that we cover them anyway. 2631 case Type::LValueReference: 2632 case Type::RValueReference: 2633 T = cast<ReferenceType>(T)->getPointeeType().getTypePtr(); 2634 continue; 2635 2636 // These are fundamental types. 2637 case Type::Vector: 2638 case Type::ExtVector: 2639 case Type::Complex: 2640 break; 2641 2642 // Non-deduced auto types only get here for error cases. 2643 case Type::Auto: 2644 case Type::DeducedTemplateSpecialization: 2645 break; 2646 2647 // If T is an Objective-C object or interface type, or a pointer to an 2648 // object or interface type, the associated namespace is the global 2649 // namespace. 2650 case Type::ObjCObject: 2651 case Type::ObjCInterface: 2652 case Type::ObjCObjectPointer: 2653 Result.Namespaces.insert(Result.S.Context.getTranslationUnitDecl()); 2654 break; 2655 2656 // Atomic types are just wrappers; use the associations of the 2657 // contained type. 2658 case Type::Atomic: 2659 T = cast<AtomicType>(T)->getValueType().getTypePtr(); 2660 continue; 2661 case Type::Pipe: 2662 T = cast<PipeType>(T)->getElementType().getTypePtr(); 2663 continue; 2664 } 2665 2666 if (Queue.empty()) 2667 break; 2668 T = Queue.pop_back_val(); 2669 } 2670 } 2671 2672 /// \brief Find the associated classes and namespaces for 2673 /// argument-dependent lookup for a call with the given set of 2674 /// arguments. 2675 /// 2676 /// This routine computes the sets of associated classes and associated 2677 /// namespaces searched by argument-dependent lookup 2678 /// (C++ [basic.lookup.argdep]) for a given set of arguments. 2679 void Sema::FindAssociatedClassesAndNamespaces( 2680 SourceLocation InstantiationLoc, ArrayRef<Expr *> Args, 2681 AssociatedNamespaceSet &AssociatedNamespaces, 2682 AssociatedClassSet &AssociatedClasses) { 2683 AssociatedNamespaces.clear(); 2684 AssociatedClasses.clear(); 2685 2686 AssociatedLookup Result(*this, InstantiationLoc, 2687 AssociatedNamespaces, AssociatedClasses); 2688 2689 // C++ [basic.lookup.koenig]p2: 2690 // For each argument type T in the function call, there is a set 2691 // of zero or more associated namespaces and a set of zero or more 2692 // associated classes to be considered. The sets of namespaces and 2693 // classes is determined entirely by the types of the function 2694 // arguments (and the namespace of any template template 2695 // argument). 2696 for (unsigned ArgIdx = 0; ArgIdx != Args.size(); ++ArgIdx) { 2697 Expr *Arg = Args[ArgIdx]; 2698 2699 if (Arg->getType() != Context.OverloadTy) { 2700 addAssociatedClassesAndNamespaces(Result, Arg->getType()); 2701 continue; 2702 } 2703 2704 // [...] In addition, if the argument is the name or address of a 2705 // set of overloaded functions and/or function templates, its 2706 // associated classes and namespaces are the union of those 2707 // associated with each of the members of the set: the namespace 2708 // in which the function or function template is defined and the 2709 // classes and namespaces associated with its (non-dependent) 2710 // parameter types and return type. 2711 Arg = Arg->IgnoreParens(); 2712 if (UnaryOperator *unaryOp = dyn_cast<UnaryOperator>(Arg)) 2713 if (unaryOp->getOpcode() == UO_AddrOf) 2714 Arg = unaryOp->getSubExpr(); 2715 2716 UnresolvedLookupExpr *ULE = dyn_cast<UnresolvedLookupExpr>(Arg); 2717 if (!ULE) continue; 2718 2719 for (const auto *D : ULE->decls()) { 2720 // Look through any using declarations to find the underlying function. 2721 const FunctionDecl *FDecl = D->getUnderlyingDecl()->getAsFunction(); 2722 2723 // Add the classes and namespaces associated with the parameter 2724 // types and return type of this function. 2725 addAssociatedClassesAndNamespaces(Result, FDecl->getType()); 2726 } 2727 } 2728 } 2729 2730 NamedDecl *Sema::LookupSingleName(Scope *S, DeclarationName Name, 2731 SourceLocation Loc, 2732 LookupNameKind NameKind, 2733 RedeclarationKind Redecl) { 2734 LookupResult R(*this, Name, Loc, NameKind, Redecl); 2735 LookupName(R, S); 2736 return R.getAsSingle<NamedDecl>(); 2737 } 2738 2739 /// \brief Find the protocol with the given name, if any. 2740 ObjCProtocolDecl *Sema::LookupProtocol(IdentifierInfo *II, 2741 SourceLocation IdLoc, 2742 RedeclarationKind Redecl) { 2743 Decl *D = LookupSingleName(TUScope, II, IdLoc, 2744 LookupObjCProtocolName, Redecl); 2745 return cast_or_null<ObjCProtocolDecl>(D); 2746 } 2747 2748 void Sema::LookupOverloadedOperatorName(OverloadedOperatorKind Op, Scope *S, 2749 QualType T1, QualType T2, 2750 UnresolvedSetImpl &Functions) { 2751 // C++ [over.match.oper]p3: 2752 // -- The set of non-member candidates is the result of the 2753 // unqualified lookup of operator@ in the context of the 2754 // expression according to the usual rules for name lookup in 2755 // unqualified function calls (3.4.2) except that all member 2756 // functions are ignored. 2757 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op); 2758 LookupResult Operators(*this, OpName, SourceLocation(), LookupOperatorName); 2759 LookupName(Operators, S); 2760 2761 assert(!Operators.isAmbiguous() && "Operator lookup cannot be ambiguous"); 2762 Functions.append(Operators.begin(), Operators.end()); 2763 } 2764 2765 Sema::SpecialMemberOverloadResult Sema::LookupSpecialMember(CXXRecordDecl *RD, 2766 CXXSpecialMember SM, 2767 bool ConstArg, 2768 bool VolatileArg, 2769 bool RValueThis, 2770 bool ConstThis, 2771 bool VolatileThis) { 2772 assert(CanDeclareSpecialMemberFunction(RD) && 2773 "doing special member lookup into record that isn't fully complete"); 2774 RD = RD->getDefinition(); 2775 if (RValueThis || ConstThis || VolatileThis) 2776 assert((SM == CXXCopyAssignment || SM == CXXMoveAssignment) && 2777 "constructors and destructors always have unqualified lvalue this"); 2778 if (ConstArg || VolatileArg) 2779 assert((SM != CXXDefaultConstructor && SM != CXXDestructor) && 2780 "parameter-less special members can't have qualified arguments"); 2781 2782 // FIXME: Get the caller to pass in a location for the lookup. 2783 SourceLocation LookupLoc = RD->getLocation(); 2784 2785 llvm::FoldingSetNodeID ID; 2786 ID.AddPointer(RD); 2787 ID.AddInteger(SM); 2788 ID.AddInteger(ConstArg); 2789 ID.AddInteger(VolatileArg); 2790 ID.AddInteger(RValueThis); 2791 ID.AddInteger(ConstThis); 2792 ID.AddInteger(VolatileThis); 2793 2794 void *InsertPoint; 2795 SpecialMemberOverloadResultEntry *Result = 2796 SpecialMemberCache.FindNodeOrInsertPos(ID, InsertPoint); 2797 2798 // This was already cached 2799 if (Result) 2800 return *Result; 2801 2802 Result = BumpAlloc.Allocate<SpecialMemberOverloadResultEntry>(); 2803 Result = new (Result) SpecialMemberOverloadResultEntry(ID); 2804 SpecialMemberCache.InsertNode(Result, InsertPoint); 2805 2806 if (SM == CXXDestructor) { 2807 if (RD->needsImplicitDestructor()) 2808 DeclareImplicitDestructor(RD); 2809 CXXDestructorDecl *DD = RD->getDestructor(); 2810 assert(DD && "record without a destructor"); 2811 Result->setMethod(DD); 2812 Result->setKind(DD->isDeleted() ? 2813 SpecialMemberOverloadResult::NoMemberOrDeleted : 2814 SpecialMemberOverloadResult::Success); 2815 return *Result; 2816 } 2817 2818 // Prepare for overload resolution. Here we construct a synthetic argument 2819 // if necessary and make sure that implicit functions are declared. 2820 CanQualType CanTy = Context.getCanonicalType(Context.getTagDeclType(RD)); 2821 DeclarationName Name; 2822 Expr *Arg = nullptr; 2823 unsigned NumArgs; 2824 2825 QualType ArgType = CanTy; 2826 ExprValueKind VK = VK_LValue; 2827 2828 if (SM == CXXDefaultConstructor) { 2829 Name = Context.DeclarationNames.getCXXConstructorName(CanTy); 2830 NumArgs = 0; 2831 if (RD->needsImplicitDefaultConstructor()) 2832 DeclareImplicitDefaultConstructor(RD); 2833 } else { 2834 if (SM == CXXCopyConstructor || SM == CXXMoveConstructor) { 2835 Name = Context.DeclarationNames.getCXXConstructorName(CanTy); 2836 if (RD->needsImplicitCopyConstructor()) 2837 DeclareImplicitCopyConstructor(RD); 2838 if (getLangOpts().CPlusPlus11 && RD->needsImplicitMoveConstructor()) 2839 DeclareImplicitMoveConstructor(RD); 2840 } else { 2841 Name = Context.DeclarationNames.getCXXOperatorName(OO_Equal); 2842 if (RD->needsImplicitCopyAssignment()) 2843 DeclareImplicitCopyAssignment(RD); 2844 if (getLangOpts().CPlusPlus11 && RD->needsImplicitMoveAssignment()) 2845 DeclareImplicitMoveAssignment(RD); 2846 } 2847 2848 if (ConstArg) 2849 ArgType.addConst(); 2850 if (VolatileArg) 2851 ArgType.addVolatile(); 2852 2853 // This isn't /really/ specified by the standard, but it's implied 2854 // we should be working from an RValue in the case of move to ensure 2855 // that we prefer to bind to rvalue references, and an LValue in the 2856 // case of copy to ensure we don't bind to rvalue references. 2857 // Possibly an XValue is actually correct in the case of move, but 2858 // there is no semantic difference for class types in this restricted 2859 // case. 2860 if (SM == CXXCopyConstructor || SM == CXXCopyAssignment) 2861 VK = VK_LValue; 2862 else 2863 VK = VK_RValue; 2864 } 2865 2866 OpaqueValueExpr FakeArg(LookupLoc, ArgType, VK); 2867 2868 if (SM != CXXDefaultConstructor) { 2869 NumArgs = 1; 2870 Arg = &FakeArg; 2871 } 2872 2873 // Create the object argument 2874 QualType ThisTy = CanTy; 2875 if (ConstThis) 2876 ThisTy.addConst(); 2877 if (VolatileThis) 2878 ThisTy.addVolatile(); 2879 Expr::Classification Classification = 2880 OpaqueValueExpr(LookupLoc, ThisTy, 2881 RValueThis ? VK_RValue : VK_LValue).Classify(Context); 2882 2883 // Now we perform lookup on the name we computed earlier and do overload 2884 // resolution. Lookup is only performed directly into the class since there 2885 // will always be a (possibly implicit) declaration to shadow any others. 2886 OverloadCandidateSet OCS(LookupLoc, OverloadCandidateSet::CSK_Normal); 2887 DeclContext::lookup_result R = RD->lookup(Name); 2888 2889 if (R.empty()) { 2890 // We might have no default constructor because we have a lambda's closure 2891 // type, rather than because there's some other declared constructor. 2892 // Every class has a copy/move constructor, copy/move assignment, and 2893 // destructor. 2894 assert(SM == CXXDefaultConstructor && 2895 "lookup for a constructor or assignment operator was empty"); 2896 Result->setMethod(nullptr); 2897 Result->setKind(SpecialMemberOverloadResult::NoMemberOrDeleted); 2898 return *Result; 2899 } 2900 2901 // Copy the candidates as our processing of them may load new declarations 2902 // from an external source and invalidate lookup_result. 2903 SmallVector<NamedDecl *, 8> Candidates(R.begin(), R.end()); 2904 2905 for (NamedDecl *CandDecl : Candidates) { 2906 if (CandDecl->isInvalidDecl()) 2907 continue; 2908 2909 DeclAccessPair Cand = DeclAccessPair::make(CandDecl, AS_public); 2910 auto CtorInfo = getConstructorInfo(Cand); 2911 if (CXXMethodDecl *M = dyn_cast<CXXMethodDecl>(Cand->getUnderlyingDecl())) { 2912 if (SM == CXXCopyAssignment || SM == CXXMoveAssignment) 2913 AddMethodCandidate(M, Cand, RD, ThisTy, Classification, 2914 llvm::makeArrayRef(&Arg, NumArgs), OCS, true); 2915 else if (CtorInfo) 2916 AddOverloadCandidate(CtorInfo.Constructor, CtorInfo.FoundDecl, 2917 llvm::makeArrayRef(&Arg, NumArgs), OCS, true); 2918 else 2919 AddOverloadCandidate(M, Cand, llvm::makeArrayRef(&Arg, NumArgs), OCS, 2920 true); 2921 } else if (FunctionTemplateDecl *Tmpl = 2922 dyn_cast<FunctionTemplateDecl>(Cand->getUnderlyingDecl())) { 2923 if (SM == CXXCopyAssignment || SM == CXXMoveAssignment) 2924 AddMethodTemplateCandidate( 2925 Tmpl, Cand, RD, nullptr, ThisTy, Classification, 2926 llvm::makeArrayRef(&Arg, NumArgs), OCS, true); 2927 else if (CtorInfo) 2928 AddTemplateOverloadCandidate( 2929 CtorInfo.ConstructorTmpl, CtorInfo.FoundDecl, nullptr, 2930 llvm::makeArrayRef(&Arg, NumArgs), OCS, true); 2931 else 2932 AddTemplateOverloadCandidate( 2933 Tmpl, Cand, nullptr, llvm::makeArrayRef(&Arg, NumArgs), OCS, true); 2934 } else { 2935 assert(isa<UsingDecl>(Cand.getDecl()) && 2936 "illegal Kind of operator = Decl"); 2937 } 2938 } 2939 2940 OverloadCandidateSet::iterator Best; 2941 switch (OCS.BestViableFunction(*this, LookupLoc, Best)) { 2942 case OR_Success: 2943 Result->setMethod(cast<CXXMethodDecl>(Best->Function)); 2944 Result->setKind(SpecialMemberOverloadResult::Success); 2945 break; 2946 2947 case OR_Deleted: 2948 Result->setMethod(cast<CXXMethodDecl>(Best->Function)); 2949 Result->setKind(SpecialMemberOverloadResult::NoMemberOrDeleted); 2950 break; 2951 2952 case OR_Ambiguous: 2953 Result->setMethod(nullptr); 2954 Result->setKind(SpecialMemberOverloadResult::Ambiguous); 2955 break; 2956 2957 case OR_No_Viable_Function: 2958 Result->setMethod(nullptr); 2959 Result->setKind(SpecialMemberOverloadResult::NoMemberOrDeleted); 2960 break; 2961 } 2962 2963 return *Result; 2964 } 2965 2966 /// \brief Look up the default constructor for the given class. 2967 CXXConstructorDecl *Sema::LookupDefaultConstructor(CXXRecordDecl *Class) { 2968 SpecialMemberOverloadResult Result = 2969 LookupSpecialMember(Class, CXXDefaultConstructor, false, false, false, 2970 false, false); 2971 2972 return cast_or_null<CXXConstructorDecl>(Result.getMethod()); 2973 } 2974 2975 /// \brief Look up the copying constructor for the given class. 2976 CXXConstructorDecl *Sema::LookupCopyingConstructor(CXXRecordDecl *Class, 2977 unsigned Quals) { 2978 assert(!(Quals & ~(Qualifiers::Const | Qualifiers::Volatile)) && 2979 "non-const, non-volatile qualifiers for copy ctor arg"); 2980 SpecialMemberOverloadResult Result = 2981 LookupSpecialMember(Class, CXXCopyConstructor, Quals & Qualifiers::Const, 2982 Quals & Qualifiers::Volatile, false, false, false); 2983 2984 return cast_or_null<CXXConstructorDecl>(Result.getMethod()); 2985 } 2986 2987 /// \brief Look up the moving constructor for the given class. 2988 CXXConstructorDecl *Sema::LookupMovingConstructor(CXXRecordDecl *Class, 2989 unsigned Quals) { 2990 SpecialMemberOverloadResult Result = 2991 LookupSpecialMember(Class, CXXMoveConstructor, Quals & Qualifiers::Const, 2992 Quals & Qualifiers::Volatile, false, false, false); 2993 2994 return cast_or_null<CXXConstructorDecl>(Result.getMethod()); 2995 } 2996 2997 /// \brief Look up the constructors for the given class. 2998 DeclContext::lookup_result Sema::LookupConstructors(CXXRecordDecl *Class) { 2999 // If the implicit constructors have not yet been declared, do so now. 3000 if (CanDeclareSpecialMemberFunction(Class)) { 3001 if (Class->needsImplicitDefaultConstructor()) 3002 DeclareImplicitDefaultConstructor(Class); 3003 if (Class->needsImplicitCopyConstructor()) 3004 DeclareImplicitCopyConstructor(Class); 3005 if (getLangOpts().CPlusPlus11 && Class->needsImplicitMoveConstructor()) 3006 DeclareImplicitMoveConstructor(Class); 3007 } 3008 3009 CanQualType T = Context.getCanonicalType(Context.getTypeDeclType(Class)); 3010 DeclarationName Name = Context.DeclarationNames.getCXXConstructorName(T); 3011 return Class->lookup(Name); 3012 } 3013 3014 /// \brief Look up the copying assignment operator for the given class. 3015 CXXMethodDecl *Sema::LookupCopyingAssignment(CXXRecordDecl *Class, 3016 unsigned Quals, bool RValueThis, 3017 unsigned ThisQuals) { 3018 assert(!(Quals & ~(Qualifiers::Const | Qualifiers::Volatile)) && 3019 "non-const, non-volatile qualifiers for copy assignment arg"); 3020 assert(!(ThisQuals & ~(Qualifiers::Const | Qualifiers::Volatile)) && 3021 "non-const, non-volatile qualifiers for copy assignment this"); 3022 SpecialMemberOverloadResult Result = 3023 LookupSpecialMember(Class, CXXCopyAssignment, Quals & Qualifiers::Const, 3024 Quals & Qualifiers::Volatile, RValueThis, 3025 ThisQuals & Qualifiers::Const, 3026 ThisQuals & Qualifiers::Volatile); 3027 3028 return Result.getMethod(); 3029 } 3030 3031 /// \brief Look up the moving assignment operator for the given class. 3032 CXXMethodDecl *Sema::LookupMovingAssignment(CXXRecordDecl *Class, 3033 unsigned Quals, 3034 bool RValueThis, 3035 unsigned ThisQuals) { 3036 assert(!(ThisQuals & ~(Qualifiers::Const | Qualifiers::Volatile)) && 3037 "non-const, non-volatile qualifiers for copy assignment this"); 3038 SpecialMemberOverloadResult Result = 3039 LookupSpecialMember(Class, CXXMoveAssignment, Quals & Qualifiers::Const, 3040 Quals & Qualifiers::Volatile, RValueThis, 3041 ThisQuals & Qualifiers::Const, 3042 ThisQuals & Qualifiers::Volatile); 3043 3044 return Result.getMethod(); 3045 } 3046 3047 /// \brief Look for the destructor of the given class. 3048 /// 3049 /// During semantic analysis, this routine should be used in lieu of 3050 /// CXXRecordDecl::getDestructor(). 3051 /// 3052 /// \returns The destructor for this class. 3053 CXXDestructorDecl *Sema::LookupDestructor(CXXRecordDecl *Class) { 3054 return cast<CXXDestructorDecl>(LookupSpecialMember(Class, CXXDestructor, 3055 false, false, false, 3056 false, false).getMethod()); 3057 } 3058 3059 /// LookupLiteralOperator - Determine which literal operator should be used for 3060 /// a user-defined literal, per C++11 [lex.ext]. 3061 /// 3062 /// Normal overload resolution is not used to select which literal operator to 3063 /// call for a user-defined literal. Look up the provided literal operator name, 3064 /// and filter the results to the appropriate set for the given argument types. 3065 Sema::LiteralOperatorLookupResult 3066 Sema::LookupLiteralOperator(Scope *S, LookupResult &R, 3067 ArrayRef<QualType> ArgTys, 3068 bool AllowRaw, bool AllowTemplate, 3069 bool AllowStringTemplate) { 3070 LookupName(R, S); 3071 assert(R.getResultKind() != LookupResult::Ambiguous && 3072 "literal operator lookup can't be ambiguous"); 3073 3074 // Filter the lookup results appropriately. 3075 LookupResult::Filter F = R.makeFilter(); 3076 3077 bool FoundRaw = false; 3078 bool FoundTemplate = false; 3079 bool FoundStringTemplate = false; 3080 bool FoundExactMatch = false; 3081 3082 while (F.hasNext()) { 3083 Decl *D = F.next(); 3084 if (UsingShadowDecl *USD = dyn_cast<UsingShadowDecl>(D)) 3085 D = USD->getTargetDecl(); 3086 3087 // If the declaration we found is invalid, skip it. 3088 if (D->isInvalidDecl()) { 3089 F.erase(); 3090 continue; 3091 } 3092 3093 bool IsRaw = false; 3094 bool IsTemplate = false; 3095 bool IsStringTemplate = false; 3096 bool IsExactMatch = false; 3097 3098 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) { 3099 if (FD->getNumParams() == 1 && 3100 FD->getParamDecl(0)->getType()->getAs<PointerType>()) 3101 IsRaw = true; 3102 else if (FD->getNumParams() == ArgTys.size()) { 3103 IsExactMatch = true; 3104 for (unsigned ArgIdx = 0; ArgIdx != ArgTys.size(); ++ArgIdx) { 3105 QualType ParamTy = FD->getParamDecl(ArgIdx)->getType(); 3106 if (!Context.hasSameUnqualifiedType(ArgTys[ArgIdx], ParamTy)) { 3107 IsExactMatch = false; 3108 break; 3109 } 3110 } 3111 } 3112 } 3113 if (FunctionTemplateDecl *FD = dyn_cast<FunctionTemplateDecl>(D)) { 3114 TemplateParameterList *Params = FD->getTemplateParameters(); 3115 if (Params->size() == 1) 3116 IsTemplate = true; 3117 else 3118 IsStringTemplate = true; 3119 } 3120 3121 if (IsExactMatch) { 3122 FoundExactMatch = true; 3123 AllowRaw = false; 3124 AllowTemplate = false; 3125 AllowStringTemplate = false; 3126 if (FoundRaw || FoundTemplate || FoundStringTemplate) { 3127 // Go through again and remove the raw and template decls we've 3128 // already found. 3129 F.restart(); 3130 FoundRaw = FoundTemplate = FoundStringTemplate = false; 3131 } 3132 } else if (AllowRaw && IsRaw) { 3133 FoundRaw = true; 3134 } else if (AllowTemplate && IsTemplate) { 3135 FoundTemplate = true; 3136 } else if (AllowStringTemplate && IsStringTemplate) { 3137 FoundStringTemplate = true; 3138 } else { 3139 F.erase(); 3140 } 3141 } 3142 3143 F.done(); 3144 3145 // C++11 [lex.ext]p3, p4: If S contains a literal operator with a matching 3146 // parameter type, that is used in preference to a raw literal operator 3147 // or literal operator template. 3148 if (FoundExactMatch) 3149 return LOLR_Cooked; 3150 3151 // C++11 [lex.ext]p3, p4: S shall contain a raw literal operator or a literal 3152 // operator template, but not both. 3153 if (FoundRaw && FoundTemplate) { 3154 Diag(R.getNameLoc(), diag::err_ovl_ambiguous_call) << R.getLookupName(); 3155 for (LookupResult::iterator I = R.begin(), E = R.end(); I != E; ++I) 3156 NoteOverloadCandidate(*I, (*I)->getUnderlyingDecl()->getAsFunction()); 3157 return LOLR_Error; 3158 } 3159 3160 if (FoundRaw) 3161 return LOLR_Raw; 3162 3163 if (FoundTemplate) 3164 return LOLR_Template; 3165 3166 if (FoundStringTemplate) 3167 return LOLR_StringTemplate; 3168 3169 // Didn't find anything we could use. 3170 Diag(R.getNameLoc(), diag::err_ovl_no_viable_literal_operator) 3171 << R.getLookupName() << (int)ArgTys.size() << ArgTys[0] 3172 << (ArgTys.size() == 2 ? ArgTys[1] : QualType()) << AllowRaw 3173 << (AllowTemplate || AllowStringTemplate); 3174 return LOLR_Error; 3175 } 3176 3177 void ADLResult::insert(NamedDecl *New) { 3178 NamedDecl *&Old = Decls[cast<NamedDecl>(New->getCanonicalDecl())]; 3179 3180 // If we haven't yet seen a decl for this key, or the last decl 3181 // was exactly this one, we're done. 3182 if (Old == nullptr || Old == New) { 3183 Old = New; 3184 return; 3185 } 3186 3187 // Otherwise, decide which is a more recent redeclaration. 3188 FunctionDecl *OldFD = Old->getAsFunction(); 3189 FunctionDecl *NewFD = New->getAsFunction(); 3190 3191 FunctionDecl *Cursor = NewFD; 3192 while (true) { 3193 Cursor = Cursor->getPreviousDecl(); 3194 3195 // If we got to the end without finding OldFD, OldFD is the newer 3196 // declaration; leave things as they are. 3197 if (!Cursor) return; 3198 3199 // If we do find OldFD, then NewFD is newer. 3200 if (Cursor == OldFD) break; 3201 3202 // Otherwise, keep looking. 3203 } 3204 3205 Old = New; 3206 } 3207 3208 void Sema::ArgumentDependentLookup(DeclarationName Name, SourceLocation Loc, 3209 ArrayRef<Expr *> Args, ADLResult &Result) { 3210 // Find all of the associated namespaces and classes based on the 3211 // arguments we have. 3212 AssociatedNamespaceSet AssociatedNamespaces; 3213 AssociatedClassSet AssociatedClasses; 3214 FindAssociatedClassesAndNamespaces(Loc, Args, 3215 AssociatedNamespaces, 3216 AssociatedClasses); 3217 3218 // C++ [basic.lookup.argdep]p3: 3219 // Let X be the lookup set produced by unqualified lookup (3.4.1) 3220 // and let Y be the lookup set produced by argument dependent 3221 // lookup (defined as follows). If X contains [...] then Y is 3222 // empty. Otherwise Y is the set of declarations found in the 3223 // namespaces associated with the argument types as described 3224 // below. The set of declarations found by the lookup of the name 3225 // is the union of X and Y. 3226 // 3227 // Here, we compute Y and add its members to the overloaded 3228 // candidate set. 3229 for (auto *NS : AssociatedNamespaces) { 3230 // When considering an associated namespace, the lookup is the 3231 // same as the lookup performed when the associated namespace is 3232 // used as a qualifier (3.4.3.2) except that: 3233 // 3234 // -- Any using-directives in the associated namespace are 3235 // ignored. 3236 // 3237 // -- Any namespace-scope friend functions declared in 3238 // associated classes are visible within their respective 3239 // namespaces even if they are not visible during an ordinary 3240 // lookup (11.4). 3241 DeclContext::lookup_result R = NS->lookup(Name); 3242 for (auto *D : R) { 3243 // If the only declaration here is an ordinary friend, consider 3244 // it only if it was declared in an associated classes. 3245 if ((D->getIdentifierNamespace() & Decl::IDNS_Ordinary) == 0) { 3246 // If it's neither ordinarily visible nor a friend, we can't find it. 3247 if ((D->getIdentifierNamespace() & Decl::IDNS_OrdinaryFriend) == 0) 3248 continue; 3249 3250 bool DeclaredInAssociatedClass = false; 3251 for (Decl *DI = D; DI; DI = DI->getPreviousDecl()) { 3252 DeclContext *LexDC = DI->getLexicalDeclContext(); 3253 if (isa<CXXRecordDecl>(LexDC) && 3254 AssociatedClasses.count(cast<CXXRecordDecl>(LexDC)) && 3255 isVisible(cast<NamedDecl>(DI))) { 3256 DeclaredInAssociatedClass = true; 3257 break; 3258 } 3259 } 3260 if (!DeclaredInAssociatedClass) 3261 continue; 3262 } 3263 3264 if (isa<UsingShadowDecl>(D)) 3265 D = cast<UsingShadowDecl>(D)->getTargetDecl(); 3266 3267 if (!isa<FunctionDecl>(D) && !isa<FunctionTemplateDecl>(D)) 3268 continue; 3269 3270 if (!isVisible(D) && !(D = findAcceptableDecl(*this, D))) 3271 continue; 3272 3273 Result.insert(D); 3274 } 3275 } 3276 } 3277 3278 //---------------------------------------------------------------------------- 3279 // Search for all visible declarations. 3280 //---------------------------------------------------------------------------- 3281 VisibleDeclConsumer::~VisibleDeclConsumer() { } 3282 3283 bool VisibleDeclConsumer::includeHiddenDecls() const { return false; } 3284 3285 namespace { 3286 3287 class ShadowContextRAII; 3288 3289 class VisibleDeclsRecord { 3290 public: 3291 /// \brief An entry in the shadow map, which is optimized to store a 3292 /// single declaration (the common case) but can also store a list 3293 /// of declarations. 3294 typedef llvm::TinyPtrVector<NamedDecl*> ShadowMapEntry; 3295 3296 private: 3297 /// \brief A mapping from declaration names to the declarations that have 3298 /// this name within a particular scope. 3299 typedef llvm::DenseMap<DeclarationName, ShadowMapEntry> ShadowMap; 3300 3301 /// \brief A list of shadow maps, which is used to model name hiding. 3302 std::list<ShadowMap> ShadowMaps; 3303 3304 /// \brief The declaration contexts we have already visited. 3305 llvm::SmallPtrSet<DeclContext *, 8> VisitedContexts; 3306 3307 friend class ShadowContextRAII; 3308 3309 public: 3310 /// \brief Determine whether we have already visited this context 3311 /// (and, if not, note that we are going to visit that context now). 3312 bool visitedContext(DeclContext *Ctx) { 3313 return !VisitedContexts.insert(Ctx).second; 3314 } 3315 3316 bool alreadyVisitedContext(DeclContext *Ctx) { 3317 return VisitedContexts.count(Ctx); 3318 } 3319 3320 /// \brief Determine whether the given declaration is hidden in the 3321 /// current scope. 3322 /// 3323 /// \returns the declaration that hides the given declaration, or 3324 /// NULL if no such declaration exists. 3325 NamedDecl *checkHidden(NamedDecl *ND); 3326 3327 /// \brief Add a declaration to the current shadow map. 3328 void add(NamedDecl *ND) { 3329 ShadowMaps.back()[ND->getDeclName()].push_back(ND); 3330 } 3331 }; 3332 3333 /// \brief RAII object that records when we've entered a shadow context. 3334 class ShadowContextRAII { 3335 VisibleDeclsRecord &Visible; 3336 3337 typedef VisibleDeclsRecord::ShadowMap ShadowMap; 3338 3339 public: 3340 ShadowContextRAII(VisibleDeclsRecord &Visible) : Visible(Visible) { 3341 Visible.ShadowMaps.emplace_back(); 3342 } 3343 3344 ~ShadowContextRAII() { 3345 Visible.ShadowMaps.pop_back(); 3346 } 3347 }; 3348 3349 } // end anonymous namespace 3350 3351 NamedDecl *VisibleDeclsRecord::checkHidden(NamedDecl *ND) { 3352 unsigned IDNS = ND->getIdentifierNamespace(); 3353 std::list<ShadowMap>::reverse_iterator SM = ShadowMaps.rbegin(); 3354 for (std::list<ShadowMap>::reverse_iterator SMEnd = ShadowMaps.rend(); 3355 SM != SMEnd; ++SM) { 3356 ShadowMap::iterator Pos = SM->find(ND->getDeclName()); 3357 if (Pos == SM->end()) 3358 continue; 3359 3360 for (auto *D : Pos->second) { 3361 // A tag declaration does not hide a non-tag declaration. 3362 if (D->hasTagIdentifierNamespace() && 3363 (IDNS & (Decl::IDNS_Member | Decl::IDNS_Ordinary | 3364 Decl::IDNS_ObjCProtocol))) 3365 continue; 3366 3367 // Protocols are in distinct namespaces from everything else. 3368 if (((D->getIdentifierNamespace() & Decl::IDNS_ObjCProtocol) 3369 || (IDNS & Decl::IDNS_ObjCProtocol)) && 3370 D->getIdentifierNamespace() != IDNS) 3371 continue; 3372 3373 // Functions and function templates in the same scope overload 3374 // rather than hide. FIXME: Look for hiding based on function 3375 // signatures! 3376 if (D->getUnderlyingDecl()->isFunctionOrFunctionTemplate() && 3377 ND->getUnderlyingDecl()->isFunctionOrFunctionTemplate() && 3378 SM == ShadowMaps.rbegin()) 3379 continue; 3380 3381 // A shadow declaration that's created by a resolved using declaration 3382 // is not hidden by the same using declaration. 3383 if (isa<UsingShadowDecl>(ND) && isa<UsingDecl>(D) && 3384 cast<UsingShadowDecl>(ND)->getUsingDecl() == D) 3385 continue; 3386 3387 // We've found a declaration that hides this one. 3388 return D; 3389 } 3390 } 3391 3392 return nullptr; 3393 } 3394 3395 static void LookupVisibleDecls(DeclContext *Ctx, LookupResult &Result, 3396 bool QualifiedNameLookup, 3397 bool InBaseClass, 3398 VisibleDeclConsumer &Consumer, 3399 VisibleDeclsRecord &Visited, 3400 bool IncludeDependentBases = false) { 3401 if (!Ctx) 3402 return; 3403 3404 // Make sure we don't visit the same context twice. 3405 if (Visited.visitedContext(Ctx->getPrimaryContext())) 3406 return; 3407 3408 // Outside C++, lookup results for the TU live on identifiers. 3409 if (isa<TranslationUnitDecl>(Ctx) && 3410 !Result.getSema().getLangOpts().CPlusPlus) { 3411 auto &S = Result.getSema(); 3412 auto &Idents = S.Context.Idents; 3413 3414 // Ensure all external identifiers are in the identifier table. 3415 if (IdentifierInfoLookup *External = Idents.getExternalIdentifierLookup()) { 3416 std::unique_ptr<IdentifierIterator> Iter(External->getIdentifiers()); 3417 for (StringRef Name = Iter->Next(); !Name.empty(); Name = Iter->Next()) 3418 Idents.get(Name); 3419 } 3420 3421 // Walk all lookup results in the TU for each identifier. 3422 for (const auto &Ident : Idents) { 3423 for (auto I = S.IdResolver.begin(Ident.getValue()), 3424 E = S.IdResolver.end(); 3425 I != E; ++I) { 3426 if (S.IdResolver.isDeclInScope(*I, Ctx)) { 3427 if (NamedDecl *ND = Result.getAcceptableDecl(*I)) { 3428 Consumer.FoundDecl(ND, Visited.checkHidden(ND), Ctx, InBaseClass); 3429 Visited.add(ND); 3430 } 3431 } 3432 } 3433 } 3434 3435 return; 3436 } 3437 3438 if (CXXRecordDecl *Class = dyn_cast<CXXRecordDecl>(Ctx)) 3439 Result.getSema().ForceDeclarationOfImplicitMembers(Class); 3440 3441 // Enumerate all of the results in this context. 3442 for (DeclContextLookupResult R : Ctx->lookups()) { 3443 for (auto *D : R) { 3444 if (auto *ND = Result.getAcceptableDecl(D)) { 3445 Consumer.FoundDecl(ND, Visited.checkHidden(ND), Ctx, InBaseClass); 3446 Visited.add(ND); 3447 } 3448 } 3449 } 3450 3451 // Traverse using directives for qualified name lookup. 3452 if (QualifiedNameLookup) { 3453 ShadowContextRAII Shadow(Visited); 3454 for (auto I : Ctx->using_directives()) { 3455 LookupVisibleDecls(I->getNominatedNamespace(), Result, 3456 QualifiedNameLookup, InBaseClass, Consumer, Visited, 3457 IncludeDependentBases); 3458 } 3459 } 3460 3461 // Traverse the contexts of inherited C++ classes. 3462 if (CXXRecordDecl *Record = dyn_cast<CXXRecordDecl>(Ctx)) { 3463 if (!Record->hasDefinition()) 3464 return; 3465 3466 for (const auto &B : Record->bases()) { 3467 QualType BaseType = B.getType(); 3468 3469 RecordDecl *RD; 3470 if (BaseType->isDependentType()) { 3471 if (!IncludeDependentBases) { 3472 // Don't look into dependent bases, because name lookup can't look 3473 // there anyway. 3474 continue; 3475 } 3476 const auto *TST = BaseType->getAs<TemplateSpecializationType>(); 3477 if (!TST) 3478 continue; 3479 TemplateName TN = TST->getTemplateName(); 3480 const auto *TD = 3481 dyn_cast_or_null<ClassTemplateDecl>(TN.getAsTemplateDecl()); 3482 if (!TD) 3483 continue; 3484 RD = TD->getTemplatedDecl(); 3485 } else { 3486 const auto *Record = BaseType->getAs<RecordType>(); 3487 if (!Record) 3488 continue; 3489 RD = Record->getDecl(); 3490 } 3491 3492 // FIXME: It would be nice to be able to determine whether referencing 3493 // a particular member would be ambiguous. For example, given 3494 // 3495 // struct A { int member; }; 3496 // struct B { int member; }; 3497 // struct C : A, B { }; 3498 // 3499 // void f(C *c) { c->### } 3500 // 3501 // accessing 'member' would result in an ambiguity. However, we 3502 // could be smart enough to qualify the member with the base 3503 // class, e.g., 3504 // 3505 // c->B::member 3506 // 3507 // or 3508 // 3509 // c->A::member 3510 3511 // Find results in this base class (and its bases). 3512 ShadowContextRAII Shadow(Visited); 3513 LookupVisibleDecls(RD, Result, QualifiedNameLookup, true, Consumer, 3514 Visited, IncludeDependentBases); 3515 } 3516 } 3517 3518 // Traverse the contexts of Objective-C classes. 3519 if (ObjCInterfaceDecl *IFace = dyn_cast<ObjCInterfaceDecl>(Ctx)) { 3520 // Traverse categories. 3521 for (auto *Cat : IFace->visible_categories()) { 3522 ShadowContextRAII Shadow(Visited); 3523 LookupVisibleDecls(Cat, Result, QualifiedNameLookup, false, 3524 Consumer, Visited); 3525 } 3526 3527 // Traverse protocols. 3528 for (auto *I : IFace->all_referenced_protocols()) { 3529 ShadowContextRAII Shadow(Visited); 3530 LookupVisibleDecls(I, Result, QualifiedNameLookup, false, Consumer, 3531 Visited); 3532 } 3533 3534 // Traverse the superclass. 3535 if (IFace->getSuperClass()) { 3536 ShadowContextRAII Shadow(Visited); 3537 LookupVisibleDecls(IFace->getSuperClass(), Result, QualifiedNameLookup, 3538 true, Consumer, Visited); 3539 } 3540 3541 // If there is an implementation, traverse it. We do this to find 3542 // synthesized ivars. 3543 if (IFace->getImplementation()) { 3544 ShadowContextRAII Shadow(Visited); 3545 LookupVisibleDecls(IFace->getImplementation(), Result, 3546 QualifiedNameLookup, InBaseClass, Consumer, Visited); 3547 } 3548 } else if (ObjCProtocolDecl *Protocol = dyn_cast<ObjCProtocolDecl>(Ctx)) { 3549 for (auto *I : Protocol->protocols()) { 3550 ShadowContextRAII Shadow(Visited); 3551 LookupVisibleDecls(I, Result, QualifiedNameLookup, false, Consumer, 3552 Visited); 3553 } 3554 } else if (ObjCCategoryDecl *Category = dyn_cast<ObjCCategoryDecl>(Ctx)) { 3555 for (auto *I : Category->protocols()) { 3556 ShadowContextRAII Shadow(Visited); 3557 LookupVisibleDecls(I, Result, QualifiedNameLookup, false, Consumer, 3558 Visited); 3559 } 3560 3561 // If there is an implementation, traverse it. 3562 if (Category->getImplementation()) { 3563 ShadowContextRAII Shadow(Visited); 3564 LookupVisibleDecls(Category->getImplementation(), Result, 3565 QualifiedNameLookup, true, Consumer, Visited); 3566 } 3567 } 3568 } 3569 3570 static void LookupVisibleDecls(Scope *S, LookupResult &Result, 3571 UnqualUsingDirectiveSet &UDirs, 3572 VisibleDeclConsumer &Consumer, 3573 VisibleDeclsRecord &Visited) { 3574 if (!S) 3575 return; 3576 3577 if (!S->getEntity() || 3578 (!S->getParent() && 3579 !Visited.alreadyVisitedContext(S->getEntity())) || 3580 (S->getEntity())->isFunctionOrMethod()) { 3581 FindLocalExternScope FindLocals(Result); 3582 // Walk through the declarations in this Scope. 3583 for (auto *D : S->decls()) { 3584 if (NamedDecl *ND = dyn_cast<NamedDecl>(D)) 3585 if ((ND = Result.getAcceptableDecl(ND))) { 3586 Consumer.FoundDecl(ND, Visited.checkHidden(ND), nullptr, false); 3587 Visited.add(ND); 3588 } 3589 } 3590 } 3591 3592 // FIXME: C++ [temp.local]p8 3593 DeclContext *Entity = nullptr; 3594 if (S->getEntity()) { 3595 // Look into this scope's declaration context, along with any of its 3596 // parent lookup contexts (e.g., enclosing classes), up to the point 3597 // where we hit the context stored in the next outer scope. 3598 Entity = S->getEntity(); 3599 DeclContext *OuterCtx = findOuterContext(S).first; // FIXME 3600 3601 for (DeclContext *Ctx = Entity; Ctx && !Ctx->Equals(OuterCtx); 3602 Ctx = Ctx->getLookupParent()) { 3603 if (ObjCMethodDecl *Method = dyn_cast<ObjCMethodDecl>(Ctx)) { 3604 if (Method->isInstanceMethod()) { 3605 // For instance methods, look for ivars in the method's interface. 3606 LookupResult IvarResult(Result.getSema(), Result.getLookupName(), 3607 Result.getNameLoc(), Sema::LookupMemberName); 3608 if (ObjCInterfaceDecl *IFace = Method->getClassInterface()) { 3609 LookupVisibleDecls(IFace, IvarResult, /*QualifiedNameLookup=*/false, 3610 /*InBaseClass=*/false, Consumer, Visited); 3611 } 3612 } 3613 3614 // We've already performed all of the name lookup that we need 3615 // to for Objective-C methods; the next context will be the 3616 // outer scope. 3617 break; 3618 } 3619 3620 if (Ctx->isFunctionOrMethod()) 3621 continue; 3622 3623 LookupVisibleDecls(Ctx, Result, /*QualifiedNameLookup=*/false, 3624 /*InBaseClass=*/false, Consumer, Visited); 3625 } 3626 } else if (!S->getParent()) { 3627 // Look into the translation unit scope. We walk through the translation 3628 // unit's declaration context, because the Scope itself won't have all of 3629 // the declarations if we loaded a precompiled header. 3630 // FIXME: We would like the translation unit's Scope object to point to the 3631 // translation unit, so we don't need this special "if" branch. However, 3632 // doing so would force the normal C++ name-lookup code to look into the 3633 // translation unit decl when the IdentifierInfo chains would suffice. 3634 // Once we fix that problem (which is part of a more general "don't look 3635 // in DeclContexts unless we have to" optimization), we can eliminate this. 3636 Entity = Result.getSema().Context.getTranslationUnitDecl(); 3637 LookupVisibleDecls(Entity, Result, /*QualifiedNameLookup=*/false, 3638 /*InBaseClass=*/false, Consumer, Visited); 3639 } 3640 3641 if (Entity) { 3642 // Lookup visible declarations in any namespaces found by using 3643 // directives. 3644 for (const UnqualUsingEntry &UUE : UDirs.getNamespacesFor(Entity)) 3645 LookupVisibleDecls(const_cast<DeclContext *>(UUE.getNominatedNamespace()), 3646 Result, /*QualifiedNameLookup=*/false, 3647 /*InBaseClass=*/false, Consumer, Visited); 3648 } 3649 3650 // Lookup names in the parent scope. 3651 ShadowContextRAII Shadow(Visited); 3652 LookupVisibleDecls(S->getParent(), Result, UDirs, Consumer, Visited); 3653 } 3654 3655 void Sema::LookupVisibleDecls(Scope *S, LookupNameKind Kind, 3656 VisibleDeclConsumer &Consumer, 3657 bool IncludeGlobalScope) { 3658 // Determine the set of using directives available during 3659 // unqualified name lookup. 3660 Scope *Initial = S; 3661 UnqualUsingDirectiveSet UDirs; 3662 if (getLangOpts().CPlusPlus) { 3663 // Find the first namespace or translation-unit scope. 3664 while (S && !isNamespaceOrTranslationUnitScope(S)) 3665 S = S->getParent(); 3666 3667 UDirs.visitScopeChain(Initial, S); 3668 } 3669 UDirs.done(); 3670 3671 // Look for visible declarations. 3672 LookupResult Result(*this, DeclarationName(), SourceLocation(), Kind); 3673 Result.setAllowHidden(Consumer.includeHiddenDecls()); 3674 VisibleDeclsRecord Visited; 3675 if (!IncludeGlobalScope) 3676 Visited.visitedContext(Context.getTranslationUnitDecl()); 3677 ShadowContextRAII Shadow(Visited); 3678 ::LookupVisibleDecls(Initial, Result, UDirs, Consumer, Visited); 3679 } 3680 3681 void Sema::LookupVisibleDecls(DeclContext *Ctx, LookupNameKind Kind, 3682 VisibleDeclConsumer &Consumer, 3683 bool IncludeGlobalScope, 3684 bool IncludeDependentBases) { 3685 LookupResult Result(*this, DeclarationName(), SourceLocation(), Kind); 3686 Result.setAllowHidden(Consumer.includeHiddenDecls()); 3687 VisibleDeclsRecord Visited; 3688 if (!IncludeGlobalScope) 3689 Visited.visitedContext(Context.getTranslationUnitDecl()); 3690 ShadowContextRAII Shadow(Visited); 3691 ::LookupVisibleDecls(Ctx, Result, /*QualifiedNameLookup=*/true, 3692 /*InBaseClass=*/false, Consumer, Visited, 3693 IncludeDependentBases); 3694 } 3695 3696 /// LookupOrCreateLabel - Do a name lookup of a label with the specified name. 3697 /// If GnuLabelLoc is a valid source location, then this is a definition 3698 /// of an __label__ label name, otherwise it is a normal label definition 3699 /// or use. 3700 LabelDecl *Sema::LookupOrCreateLabel(IdentifierInfo *II, SourceLocation Loc, 3701 SourceLocation GnuLabelLoc) { 3702 // Do a lookup to see if we have a label with this name already. 3703 NamedDecl *Res = nullptr; 3704 3705 if (GnuLabelLoc.isValid()) { 3706 // Local label definitions always shadow existing labels. 3707 Res = LabelDecl::Create(Context, CurContext, Loc, II, GnuLabelLoc); 3708 Scope *S = CurScope; 3709 PushOnScopeChains(Res, S, true); 3710 return cast<LabelDecl>(Res); 3711 } 3712 3713 // Not a GNU local label. 3714 Res = LookupSingleName(CurScope, II, Loc, LookupLabel, NotForRedeclaration); 3715 // If we found a label, check to see if it is in the same context as us. 3716 // When in a Block, we don't want to reuse a label in an enclosing function. 3717 if (Res && Res->getDeclContext() != CurContext) 3718 Res = nullptr; 3719 if (!Res) { 3720 // If not forward referenced or defined already, create the backing decl. 3721 Res = LabelDecl::Create(Context, CurContext, Loc, II); 3722 Scope *S = CurScope->getFnParent(); 3723 assert(S && "Not in a function?"); 3724 PushOnScopeChains(Res, S, true); 3725 } 3726 return cast<LabelDecl>(Res); 3727 } 3728 3729 //===----------------------------------------------------------------------===// 3730 // Typo correction 3731 //===----------------------------------------------------------------------===// 3732 3733 static bool isCandidateViable(CorrectionCandidateCallback &CCC, 3734 TypoCorrection &Candidate) { 3735 Candidate.setCallbackDistance(CCC.RankCandidate(Candidate)); 3736 return Candidate.getEditDistance(false) != TypoCorrection::InvalidDistance; 3737 } 3738 3739 static void LookupPotentialTypoResult(Sema &SemaRef, 3740 LookupResult &Res, 3741 IdentifierInfo *Name, 3742 Scope *S, CXXScopeSpec *SS, 3743 DeclContext *MemberContext, 3744 bool EnteringContext, 3745 bool isObjCIvarLookup, 3746 bool FindHidden); 3747 3748 /// \brief Check whether the declarations found for a typo correction are 3749 /// visible, and if none of them are, convert the correction to an 'import 3750 /// a module' correction. 3751 static void checkCorrectionVisibility(Sema &SemaRef, TypoCorrection &TC) { 3752 if (TC.begin() == TC.end()) 3753 return; 3754 3755 TypoCorrection::decl_iterator DI = TC.begin(), DE = TC.end(); 3756 3757 for (/**/; DI != DE; ++DI) 3758 if (!LookupResult::isVisible(SemaRef, *DI)) 3759 break; 3760 // Nothing to do if all decls are visible. 3761 if (DI == DE) 3762 return; 3763 3764 llvm::SmallVector<NamedDecl*, 4> NewDecls(TC.begin(), DI); 3765 bool AnyVisibleDecls = !NewDecls.empty(); 3766 3767 for (/**/; DI != DE; ++DI) { 3768 NamedDecl *VisibleDecl = *DI; 3769 if (!LookupResult::isVisible(SemaRef, *DI)) 3770 VisibleDecl = findAcceptableDecl(SemaRef, *DI); 3771 3772 if (VisibleDecl) { 3773 if (!AnyVisibleDecls) { 3774 // Found a visible decl, discard all hidden ones. 3775 AnyVisibleDecls = true; 3776 NewDecls.clear(); 3777 } 3778 NewDecls.push_back(VisibleDecl); 3779 } else if (!AnyVisibleDecls && !(*DI)->isModulePrivate()) 3780 NewDecls.push_back(*DI); 3781 } 3782 3783 if (NewDecls.empty()) 3784 TC = TypoCorrection(); 3785 else { 3786 TC.setCorrectionDecls(NewDecls); 3787 TC.setRequiresImport(!AnyVisibleDecls); 3788 } 3789 } 3790 3791 // Fill the supplied vector with the IdentifierInfo pointers for each piece of 3792 // the given NestedNameSpecifier (i.e. given a NestedNameSpecifier "foo::bar::", 3793 // fill the vector with the IdentifierInfo pointers for "foo" and "bar"). 3794 static void getNestedNameSpecifierIdentifiers( 3795 NestedNameSpecifier *NNS, 3796 SmallVectorImpl<const IdentifierInfo*> &Identifiers) { 3797 if (NestedNameSpecifier *Prefix = NNS->getPrefix()) 3798 getNestedNameSpecifierIdentifiers(Prefix, Identifiers); 3799 else 3800 Identifiers.clear(); 3801 3802 const IdentifierInfo *II = nullptr; 3803 3804 switch (NNS->getKind()) { 3805 case NestedNameSpecifier::Identifier: 3806 II = NNS->getAsIdentifier(); 3807 break; 3808 3809 case NestedNameSpecifier::Namespace: 3810 if (NNS->getAsNamespace()->isAnonymousNamespace()) 3811 return; 3812 II = NNS->getAsNamespace()->getIdentifier(); 3813 break; 3814 3815 case NestedNameSpecifier::NamespaceAlias: 3816 II = NNS->getAsNamespaceAlias()->getIdentifier(); 3817 break; 3818 3819 case NestedNameSpecifier::TypeSpecWithTemplate: 3820 case NestedNameSpecifier::TypeSpec: 3821 II = QualType(NNS->getAsType(), 0).getBaseTypeIdentifier(); 3822 break; 3823 3824 case NestedNameSpecifier::Global: 3825 case NestedNameSpecifier::Super: 3826 return; 3827 } 3828 3829 if (II) 3830 Identifiers.push_back(II); 3831 } 3832 3833 void TypoCorrectionConsumer::FoundDecl(NamedDecl *ND, NamedDecl *Hiding, 3834 DeclContext *Ctx, bool InBaseClass) { 3835 // Don't consider hidden names for typo correction. 3836 if (Hiding) 3837 return; 3838 3839 // Only consider entities with identifiers for names, ignoring 3840 // special names (constructors, overloaded operators, selectors, 3841 // etc.). 3842 IdentifierInfo *Name = ND->getIdentifier(); 3843 if (!Name) 3844 return; 3845 3846 // Only consider visible declarations and declarations from modules with 3847 // names that exactly match. 3848 if (!LookupResult::isVisible(SemaRef, ND) && Name != Typo && 3849 !findAcceptableDecl(SemaRef, ND)) 3850 return; 3851 3852 FoundName(Name->getName()); 3853 } 3854 3855 void TypoCorrectionConsumer::FoundName(StringRef Name) { 3856 // Compute the edit distance between the typo and the name of this 3857 // entity, and add the identifier to the list of results. 3858 addName(Name, nullptr); 3859 } 3860 3861 void TypoCorrectionConsumer::addKeywordResult(StringRef Keyword) { 3862 // Compute the edit distance between the typo and this keyword, 3863 // and add the keyword to the list of results. 3864 addName(Keyword, nullptr, nullptr, true); 3865 } 3866 3867 void TypoCorrectionConsumer::addName(StringRef Name, NamedDecl *ND, 3868 NestedNameSpecifier *NNS, bool isKeyword) { 3869 // Use a simple length-based heuristic to determine the minimum possible 3870 // edit distance. If the minimum isn't good enough, bail out early. 3871 StringRef TypoStr = Typo->getName(); 3872 unsigned MinED = abs((int)Name.size() - (int)TypoStr.size()); 3873 if (MinED && TypoStr.size() / MinED < 3) 3874 return; 3875 3876 // Compute an upper bound on the allowable edit distance, so that the 3877 // edit-distance algorithm can short-circuit. 3878 unsigned UpperBound = (TypoStr.size() + 2) / 3 + 1; 3879 unsigned ED = TypoStr.edit_distance(Name, true, UpperBound); 3880 if (ED >= UpperBound) return; 3881 3882 TypoCorrection TC(&SemaRef.Context.Idents.get(Name), ND, NNS, ED); 3883 if (isKeyword) TC.makeKeyword(); 3884 TC.setCorrectionRange(nullptr, Result.getLookupNameInfo()); 3885 addCorrection(TC); 3886 } 3887 3888 static const unsigned MaxTypoDistanceResultSets = 5; 3889 3890 void TypoCorrectionConsumer::addCorrection(TypoCorrection Correction) { 3891 StringRef TypoStr = Typo->getName(); 3892 StringRef Name = Correction.getCorrectionAsIdentifierInfo()->getName(); 3893 3894 // For very short typos, ignore potential corrections that have a different 3895 // base identifier from the typo or which have a normalized edit distance 3896 // longer than the typo itself. 3897 if (TypoStr.size() < 3 && 3898 (Name != TypoStr || Correction.getEditDistance(true) > TypoStr.size())) 3899 return; 3900 3901 // If the correction is resolved but is not viable, ignore it. 3902 if (Correction.isResolved()) { 3903 checkCorrectionVisibility(SemaRef, Correction); 3904 if (!Correction || !isCandidateViable(*CorrectionValidator, Correction)) 3905 return; 3906 } 3907 3908 TypoResultList &CList = 3909 CorrectionResults[Correction.getEditDistance(false)][Name]; 3910 3911 if (!CList.empty() && !CList.back().isResolved()) 3912 CList.pop_back(); 3913 if (NamedDecl *NewND = Correction.getCorrectionDecl()) { 3914 std::string CorrectionStr = Correction.getAsString(SemaRef.getLangOpts()); 3915 for (TypoResultList::iterator RI = CList.begin(), RIEnd = CList.end(); 3916 RI != RIEnd; ++RI) { 3917 // If the Correction refers to a decl already in the result list, 3918 // replace the existing result if the string representation of Correction 3919 // comes before the current result alphabetically, then stop as there is 3920 // nothing more to be done to add Correction to the candidate set. 3921 if (RI->getCorrectionDecl() == NewND) { 3922 if (CorrectionStr < RI->getAsString(SemaRef.getLangOpts())) 3923 *RI = Correction; 3924 return; 3925 } 3926 } 3927 } 3928 if (CList.empty() || Correction.isResolved()) 3929 CList.push_back(Correction); 3930 3931 while (CorrectionResults.size() > MaxTypoDistanceResultSets) 3932 CorrectionResults.erase(std::prev(CorrectionResults.end())); 3933 } 3934 3935 void TypoCorrectionConsumer::addNamespaces( 3936 const llvm::MapVector<NamespaceDecl *, bool> &KnownNamespaces) { 3937 SearchNamespaces = true; 3938 3939 for (auto KNPair : KnownNamespaces) 3940 Namespaces.addNameSpecifier(KNPair.first); 3941 3942 bool SSIsTemplate = false; 3943 if (NestedNameSpecifier *NNS = 3944 (SS && SS->isValid()) ? SS->getScopeRep() : nullptr) { 3945 if (const Type *T = NNS->getAsType()) 3946 SSIsTemplate = T->getTypeClass() == Type::TemplateSpecialization; 3947 } 3948 // Do not transform this into an iterator-based loop. The loop body can 3949 // trigger the creation of further types (through lazy deserialization) and 3950 // invalide iterators into this list. 3951 auto &Types = SemaRef.getASTContext().getTypes(); 3952 for (unsigned I = 0; I != Types.size(); ++I) { 3953 const auto *TI = Types[I]; 3954 if (CXXRecordDecl *CD = TI->getAsCXXRecordDecl()) { 3955 CD = CD->getCanonicalDecl(); 3956 if (!CD->isDependentType() && !CD->isAnonymousStructOrUnion() && 3957 !CD->isUnion() && CD->getIdentifier() && 3958 (SSIsTemplate || !isa<ClassTemplateSpecializationDecl>(CD)) && 3959 (CD->isBeingDefined() || CD->isCompleteDefinition())) 3960 Namespaces.addNameSpecifier(CD); 3961 } 3962 } 3963 } 3964 3965 const TypoCorrection &TypoCorrectionConsumer::getNextCorrection() { 3966 if (++CurrentTCIndex < ValidatedCorrections.size()) 3967 return ValidatedCorrections[CurrentTCIndex]; 3968 3969 CurrentTCIndex = ValidatedCorrections.size(); 3970 while (!CorrectionResults.empty()) { 3971 auto DI = CorrectionResults.begin(); 3972 if (DI->second.empty()) { 3973 CorrectionResults.erase(DI); 3974 continue; 3975 } 3976 3977 auto RI = DI->second.begin(); 3978 if (RI->second.empty()) { 3979 DI->second.erase(RI); 3980 performQualifiedLookups(); 3981 continue; 3982 } 3983 3984 TypoCorrection TC = RI->second.pop_back_val(); 3985 if (TC.isResolved() || TC.requiresImport() || resolveCorrection(TC)) { 3986 ValidatedCorrections.push_back(TC); 3987 return ValidatedCorrections[CurrentTCIndex]; 3988 } 3989 } 3990 return ValidatedCorrections[0]; // The empty correction. 3991 } 3992 3993 bool TypoCorrectionConsumer::resolveCorrection(TypoCorrection &Candidate) { 3994 IdentifierInfo *Name = Candidate.getCorrectionAsIdentifierInfo(); 3995 DeclContext *TempMemberContext = MemberContext; 3996 CXXScopeSpec *TempSS = SS.get(); 3997 retry_lookup: 3998 LookupPotentialTypoResult(SemaRef, Result, Name, S, TempSS, TempMemberContext, 3999 EnteringContext, 4000 CorrectionValidator->IsObjCIvarLookup, 4001 Name == Typo && !Candidate.WillReplaceSpecifier()); 4002 switch (Result.getResultKind()) { 4003 case LookupResult::NotFound: 4004 case LookupResult::NotFoundInCurrentInstantiation: 4005 case LookupResult::FoundUnresolvedValue: 4006 if (TempSS) { 4007 // Immediately retry the lookup without the given CXXScopeSpec 4008 TempSS = nullptr; 4009 Candidate.WillReplaceSpecifier(true); 4010 goto retry_lookup; 4011 } 4012 if (TempMemberContext) { 4013 if (SS && !TempSS) 4014 TempSS = SS.get(); 4015 TempMemberContext = nullptr; 4016 goto retry_lookup; 4017 } 4018 if (SearchNamespaces) 4019 QualifiedResults.push_back(Candidate); 4020 break; 4021 4022 case LookupResult::Ambiguous: 4023 // We don't deal with ambiguities. 4024 break; 4025 4026 case LookupResult::Found: 4027 case LookupResult::FoundOverloaded: 4028 // Store all of the Decls for overloaded symbols 4029 for (auto *TRD : Result) 4030 Candidate.addCorrectionDecl(TRD); 4031 checkCorrectionVisibility(SemaRef, Candidate); 4032 if (!isCandidateViable(*CorrectionValidator, Candidate)) { 4033 if (SearchNamespaces) 4034 QualifiedResults.push_back(Candidate); 4035 break; 4036 } 4037 Candidate.setCorrectionRange(SS.get(), Result.getLookupNameInfo()); 4038 return true; 4039 } 4040 return false; 4041 } 4042 4043 void TypoCorrectionConsumer::performQualifiedLookups() { 4044 unsigned TypoLen = Typo->getName().size(); 4045 for (const TypoCorrection &QR : QualifiedResults) { 4046 for (const auto &NSI : Namespaces) { 4047 DeclContext *Ctx = NSI.DeclCtx; 4048 const Type *NSType = NSI.NameSpecifier->getAsType(); 4049 4050 // If the current NestedNameSpecifier refers to a class and the 4051 // current correction candidate is the name of that class, then skip 4052 // it as it is unlikely a qualified version of the class' constructor 4053 // is an appropriate correction. 4054 if (CXXRecordDecl *NSDecl = NSType ? NSType->getAsCXXRecordDecl() : 4055 nullptr) { 4056 if (NSDecl->getIdentifier() == QR.getCorrectionAsIdentifierInfo()) 4057 continue; 4058 } 4059 4060 TypoCorrection TC(QR); 4061 TC.ClearCorrectionDecls(); 4062 TC.setCorrectionSpecifier(NSI.NameSpecifier); 4063 TC.setQualifierDistance(NSI.EditDistance); 4064 TC.setCallbackDistance(0); // Reset the callback distance 4065 4066 // If the current correction candidate and namespace combination are 4067 // too far away from the original typo based on the normalized edit 4068 // distance, then skip performing a qualified name lookup. 4069 unsigned TmpED = TC.getEditDistance(true); 4070 if (QR.getCorrectionAsIdentifierInfo() != Typo && TmpED && 4071 TypoLen / TmpED < 3) 4072 continue; 4073 4074 Result.clear(); 4075 Result.setLookupName(QR.getCorrectionAsIdentifierInfo()); 4076 if (!SemaRef.LookupQualifiedName(Result, Ctx)) 4077 continue; 4078 4079 // Any corrections added below will be validated in subsequent 4080 // iterations of the main while() loop over the Consumer's contents. 4081 switch (Result.getResultKind()) { 4082 case LookupResult::Found: 4083 case LookupResult::FoundOverloaded: { 4084 if (SS && SS->isValid()) { 4085 std::string NewQualified = TC.getAsString(SemaRef.getLangOpts()); 4086 std::string OldQualified; 4087 llvm::raw_string_ostream OldOStream(OldQualified); 4088 SS->getScopeRep()->print(OldOStream, SemaRef.getPrintingPolicy()); 4089 OldOStream << Typo->getName(); 4090 // If correction candidate would be an identical written qualified 4091 // identifer, then the existing CXXScopeSpec probably included a 4092 // typedef that didn't get accounted for properly. 4093 if (OldOStream.str() == NewQualified) 4094 break; 4095 } 4096 for (LookupResult::iterator TRD = Result.begin(), TRDEnd = Result.end(); 4097 TRD != TRDEnd; ++TRD) { 4098 if (SemaRef.CheckMemberAccess(TC.getCorrectionRange().getBegin(), 4099 NSType ? NSType->getAsCXXRecordDecl() 4100 : nullptr, 4101 TRD.getPair()) == Sema::AR_accessible) 4102 TC.addCorrectionDecl(*TRD); 4103 } 4104 if (TC.isResolved()) { 4105 TC.setCorrectionRange(SS.get(), Result.getLookupNameInfo()); 4106 addCorrection(TC); 4107 } 4108 break; 4109 } 4110 case LookupResult::NotFound: 4111 case LookupResult::NotFoundInCurrentInstantiation: 4112 case LookupResult::Ambiguous: 4113 case LookupResult::FoundUnresolvedValue: 4114 break; 4115 } 4116 } 4117 } 4118 QualifiedResults.clear(); 4119 } 4120 4121 TypoCorrectionConsumer::NamespaceSpecifierSet::NamespaceSpecifierSet( 4122 ASTContext &Context, DeclContext *CurContext, CXXScopeSpec *CurScopeSpec) 4123 : Context(Context), CurContextChain(buildContextChain(CurContext)) { 4124 if (NestedNameSpecifier *NNS = 4125 CurScopeSpec ? CurScopeSpec->getScopeRep() : nullptr) { 4126 llvm::raw_string_ostream SpecifierOStream(CurNameSpecifier); 4127 NNS->print(SpecifierOStream, Context.getPrintingPolicy()); 4128 4129 getNestedNameSpecifierIdentifiers(NNS, CurNameSpecifierIdentifiers); 4130 } 4131 // Build the list of identifiers that would be used for an absolute 4132 // (from the global context) NestedNameSpecifier referring to the current 4133 // context. 4134 for (DeclContext *C : llvm::reverse(CurContextChain)) { 4135 if (auto *ND = dyn_cast_or_null<NamespaceDecl>(C)) 4136 CurContextIdentifiers.push_back(ND->getIdentifier()); 4137 } 4138 4139 // Add the global context as a NestedNameSpecifier 4140 SpecifierInfo SI = {cast<DeclContext>(Context.getTranslationUnitDecl()), 4141 NestedNameSpecifier::GlobalSpecifier(Context), 1}; 4142 DistanceMap[1].push_back(SI); 4143 } 4144 4145 auto TypoCorrectionConsumer::NamespaceSpecifierSet::buildContextChain( 4146 DeclContext *Start) -> DeclContextList { 4147 assert(Start && "Building a context chain from a null context"); 4148 DeclContextList Chain; 4149 for (DeclContext *DC = Start->getPrimaryContext(); DC != nullptr; 4150 DC = DC->getLookupParent()) { 4151 NamespaceDecl *ND = dyn_cast_or_null<NamespaceDecl>(DC); 4152 if (!DC->isInlineNamespace() && !DC->isTransparentContext() && 4153 !(ND && ND->isAnonymousNamespace())) 4154 Chain.push_back(DC->getPrimaryContext()); 4155 } 4156 return Chain; 4157 } 4158 4159 unsigned 4160 TypoCorrectionConsumer::NamespaceSpecifierSet::buildNestedNameSpecifier( 4161 DeclContextList &DeclChain, NestedNameSpecifier *&NNS) { 4162 unsigned NumSpecifiers = 0; 4163 for (DeclContext *C : llvm::reverse(DeclChain)) { 4164 if (auto *ND = dyn_cast_or_null<NamespaceDecl>(C)) { 4165 NNS = NestedNameSpecifier::Create(Context, NNS, ND); 4166 ++NumSpecifiers; 4167 } else if (auto *RD = dyn_cast_or_null<RecordDecl>(C)) { 4168 NNS = NestedNameSpecifier::Create(Context, NNS, RD->isTemplateDecl(), 4169 RD->getTypeForDecl()); 4170 ++NumSpecifiers; 4171 } 4172 } 4173 return NumSpecifiers; 4174 } 4175 4176 void TypoCorrectionConsumer::NamespaceSpecifierSet::addNameSpecifier( 4177 DeclContext *Ctx) { 4178 NestedNameSpecifier *NNS = nullptr; 4179 unsigned NumSpecifiers = 0; 4180 DeclContextList NamespaceDeclChain(buildContextChain(Ctx)); 4181 DeclContextList FullNamespaceDeclChain(NamespaceDeclChain); 4182 4183 // Eliminate common elements from the two DeclContext chains. 4184 for (DeclContext *C : llvm::reverse(CurContextChain)) { 4185 if (NamespaceDeclChain.empty() || NamespaceDeclChain.back() != C) 4186 break; 4187 NamespaceDeclChain.pop_back(); 4188 } 4189 4190 // Build the NestedNameSpecifier from what is left of the NamespaceDeclChain 4191 NumSpecifiers = buildNestedNameSpecifier(NamespaceDeclChain, NNS); 4192 4193 // Add an explicit leading '::' specifier if needed. 4194 if (NamespaceDeclChain.empty()) { 4195 // Rebuild the NestedNameSpecifier as a globally-qualified specifier. 4196 NNS = NestedNameSpecifier::GlobalSpecifier(Context); 4197 NumSpecifiers = 4198 buildNestedNameSpecifier(FullNamespaceDeclChain, NNS); 4199 } else if (NamedDecl *ND = 4200 dyn_cast_or_null<NamedDecl>(NamespaceDeclChain.back())) { 4201 IdentifierInfo *Name = ND->getIdentifier(); 4202 bool SameNameSpecifier = false; 4203 if (std::find(CurNameSpecifierIdentifiers.begin(), 4204 CurNameSpecifierIdentifiers.end(), 4205 Name) != CurNameSpecifierIdentifiers.end()) { 4206 std::string NewNameSpecifier; 4207 llvm::raw_string_ostream SpecifierOStream(NewNameSpecifier); 4208 SmallVector<const IdentifierInfo *, 4> NewNameSpecifierIdentifiers; 4209 getNestedNameSpecifierIdentifiers(NNS, NewNameSpecifierIdentifiers); 4210 NNS->print(SpecifierOStream, Context.getPrintingPolicy()); 4211 SpecifierOStream.flush(); 4212 SameNameSpecifier = NewNameSpecifier == CurNameSpecifier; 4213 } 4214 if (SameNameSpecifier || 4215 std::find(CurContextIdentifiers.begin(), CurContextIdentifiers.end(), 4216 Name) != CurContextIdentifiers.end()) { 4217 // Rebuild the NestedNameSpecifier as a globally-qualified specifier. 4218 NNS = NestedNameSpecifier::GlobalSpecifier(Context); 4219 NumSpecifiers = 4220 buildNestedNameSpecifier(FullNamespaceDeclChain, NNS); 4221 } 4222 } 4223 4224 // If the built NestedNameSpecifier would be replacing an existing 4225 // NestedNameSpecifier, use the number of component identifiers that 4226 // would need to be changed as the edit distance instead of the number 4227 // of components in the built NestedNameSpecifier. 4228 if (NNS && !CurNameSpecifierIdentifiers.empty()) { 4229 SmallVector<const IdentifierInfo*, 4> NewNameSpecifierIdentifiers; 4230 getNestedNameSpecifierIdentifiers(NNS, NewNameSpecifierIdentifiers); 4231 NumSpecifiers = llvm::ComputeEditDistance( 4232 llvm::makeArrayRef(CurNameSpecifierIdentifiers), 4233 llvm::makeArrayRef(NewNameSpecifierIdentifiers)); 4234 } 4235 4236 SpecifierInfo SI = {Ctx, NNS, NumSpecifiers}; 4237 DistanceMap[NumSpecifiers].push_back(SI); 4238 } 4239 4240 /// \brief Perform name lookup for a possible result for typo correction. 4241 static void LookupPotentialTypoResult(Sema &SemaRef, 4242 LookupResult &Res, 4243 IdentifierInfo *Name, 4244 Scope *S, CXXScopeSpec *SS, 4245 DeclContext *MemberContext, 4246 bool EnteringContext, 4247 bool isObjCIvarLookup, 4248 bool FindHidden) { 4249 Res.suppressDiagnostics(); 4250 Res.clear(); 4251 Res.setLookupName(Name); 4252 Res.setAllowHidden(FindHidden); 4253 if (MemberContext) { 4254 if (ObjCInterfaceDecl *Class = dyn_cast<ObjCInterfaceDecl>(MemberContext)) { 4255 if (isObjCIvarLookup) { 4256 if (ObjCIvarDecl *Ivar = Class->lookupInstanceVariable(Name)) { 4257 Res.addDecl(Ivar); 4258 Res.resolveKind(); 4259 return; 4260 } 4261 } 4262 4263 if (ObjCPropertyDecl *Prop = Class->FindPropertyDeclaration( 4264 Name, ObjCPropertyQueryKind::OBJC_PR_query_instance)) { 4265 Res.addDecl(Prop); 4266 Res.resolveKind(); 4267 return; 4268 } 4269 } 4270 4271 SemaRef.LookupQualifiedName(Res, MemberContext); 4272 return; 4273 } 4274 4275 SemaRef.LookupParsedName(Res, S, SS, /*AllowBuiltinCreation=*/false, 4276 EnteringContext); 4277 4278 // Fake ivar lookup; this should really be part of 4279 // LookupParsedName. 4280 if (ObjCMethodDecl *Method = SemaRef.getCurMethodDecl()) { 4281 if (Method->isInstanceMethod() && Method->getClassInterface() && 4282 (Res.empty() || 4283 (Res.isSingleResult() && 4284 Res.getFoundDecl()->isDefinedOutsideFunctionOrMethod()))) { 4285 if (ObjCIvarDecl *IV 4286 = Method->getClassInterface()->lookupInstanceVariable(Name)) { 4287 Res.addDecl(IV); 4288 Res.resolveKind(); 4289 } 4290 } 4291 } 4292 } 4293 4294 /// \brief Add keywords to the consumer as possible typo corrections. 4295 static void AddKeywordsToConsumer(Sema &SemaRef, 4296 TypoCorrectionConsumer &Consumer, 4297 Scope *S, CorrectionCandidateCallback &CCC, 4298 bool AfterNestedNameSpecifier) { 4299 if (AfterNestedNameSpecifier) { 4300 // For 'X::', we know exactly which keywords can appear next. 4301 Consumer.addKeywordResult("template"); 4302 if (CCC.WantExpressionKeywords) 4303 Consumer.addKeywordResult("operator"); 4304 return; 4305 } 4306 4307 if (CCC.WantObjCSuper) 4308 Consumer.addKeywordResult("super"); 4309 4310 if (CCC.WantTypeSpecifiers) { 4311 // Add type-specifier keywords to the set of results. 4312 static const char *const CTypeSpecs[] = { 4313 "char", "const", "double", "enum", "float", "int", "long", "short", 4314 "signed", "struct", "union", "unsigned", "void", "volatile", 4315 "_Complex", "_Imaginary", 4316 // storage-specifiers as well 4317 "extern", "inline", "static", "typedef" 4318 }; 4319 4320 const unsigned NumCTypeSpecs = llvm::array_lengthof(CTypeSpecs); 4321 for (unsigned I = 0; I != NumCTypeSpecs; ++I) 4322 Consumer.addKeywordResult(CTypeSpecs[I]); 4323 4324 if (SemaRef.getLangOpts().C99) 4325 Consumer.addKeywordResult("restrict"); 4326 if (SemaRef.getLangOpts().Bool || SemaRef.getLangOpts().CPlusPlus) 4327 Consumer.addKeywordResult("bool"); 4328 else if (SemaRef.getLangOpts().C99) 4329 Consumer.addKeywordResult("_Bool"); 4330 4331 if (SemaRef.getLangOpts().CPlusPlus) { 4332 Consumer.addKeywordResult("class"); 4333 Consumer.addKeywordResult("typename"); 4334 Consumer.addKeywordResult("wchar_t"); 4335 4336 if (SemaRef.getLangOpts().CPlusPlus11) { 4337 Consumer.addKeywordResult("char16_t"); 4338 Consumer.addKeywordResult("char32_t"); 4339 Consumer.addKeywordResult("constexpr"); 4340 Consumer.addKeywordResult("decltype"); 4341 Consumer.addKeywordResult("thread_local"); 4342 } 4343 } 4344 4345 if (SemaRef.getLangOpts().GNUMode) 4346 Consumer.addKeywordResult("typeof"); 4347 } else if (CCC.WantFunctionLikeCasts) { 4348 static const char *const CastableTypeSpecs[] = { 4349 "char", "double", "float", "int", "long", "short", 4350 "signed", "unsigned", "void" 4351 }; 4352 for (auto *kw : CastableTypeSpecs) 4353 Consumer.addKeywordResult(kw); 4354 } 4355 4356 if (CCC.WantCXXNamedCasts && SemaRef.getLangOpts().CPlusPlus) { 4357 Consumer.addKeywordResult("const_cast"); 4358 Consumer.addKeywordResult("dynamic_cast"); 4359 Consumer.addKeywordResult("reinterpret_cast"); 4360 Consumer.addKeywordResult("static_cast"); 4361 } 4362 4363 if (CCC.WantExpressionKeywords) { 4364 Consumer.addKeywordResult("sizeof"); 4365 if (SemaRef.getLangOpts().Bool || SemaRef.getLangOpts().CPlusPlus) { 4366 Consumer.addKeywordResult("false"); 4367 Consumer.addKeywordResult("true"); 4368 } 4369 4370 if (SemaRef.getLangOpts().CPlusPlus) { 4371 static const char *const CXXExprs[] = { 4372 "delete", "new", "operator", "throw", "typeid" 4373 }; 4374 const unsigned NumCXXExprs = llvm::array_lengthof(CXXExprs); 4375 for (unsigned I = 0; I != NumCXXExprs; ++I) 4376 Consumer.addKeywordResult(CXXExprs[I]); 4377 4378 if (isa<CXXMethodDecl>(SemaRef.CurContext) && 4379 cast<CXXMethodDecl>(SemaRef.CurContext)->isInstance()) 4380 Consumer.addKeywordResult("this"); 4381 4382 if (SemaRef.getLangOpts().CPlusPlus11) { 4383 Consumer.addKeywordResult("alignof"); 4384 Consumer.addKeywordResult("nullptr"); 4385 } 4386 } 4387 4388 if (SemaRef.getLangOpts().C11) { 4389 // FIXME: We should not suggest _Alignof if the alignof macro 4390 // is present. 4391 Consumer.addKeywordResult("_Alignof"); 4392 } 4393 } 4394 4395 if (CCC.WantRemainingKeywords) { 4396 if (SemaRef.getCurFunctionOrMethodDecl() || SemaRef.getCurBlock()) { 4397 // Statements. 4398 static const char *const CStmts[] = { 4399 "do", "else", "for", "goto", "if", "return", "switch", "while" }; 4400 const unsigned NumCStmts = llvm::array_lengthof(CStmts); 4401 for (unsigned I = 0; I != NumCStmts; ++I) 4402 Consumer.addKeywordResult(CStmts[I]); 4403 4404 if (SemaRef.getLangOpts().CPlusPlus) { 4405 Consumer.addKeywordResult("catch"); 4406 Consumer.addKeywordResult("try"); 4407 } 4408 4409 if (S && S->getBreakParent()) 4410 Consumer.addKeywordResult("break"); 4411 4412 if (S && S->getContinueParent()) 4413 Consumer.addKeywordResult("continue"); 4414 4415 if (!SemaRef.getCurFunction()->SwitchStack.empty()) { 4416 Consumer.addKeywordResult("case"); 4417 Consumer.addKeywordResult("default"); 4418 } 4419 } else { 4420 if (SemaRef.getLangOpts().CPlusPlus) { 4421 Consumer.addKeywordResult("namespace"); 4422 Consumer.addKeywordResult("template"); 4423 } 4424 4425 if (S && S->isClassScope()) { 4426 Consumer.addKeywordResult("explicit"); 4427 Consumer.addKeywordResult("friend"); 4428 Consumer.addKeywordResult("mutable"); 4429 Consumer.addKeywordResult("private"); 4430 Consumer.addKeywordResult("protected"); 4431 Consumer.addKeywordResult("public"); 4432 Consumer.addKeywordResult("virtual"); 4433 } 4434 } 4435 4436 if (SemaRef.getLangOpts().CPlusPlus) { 4437 Consumer.addKeywordResult("using"); 4438 4439 if (SemaRef.getLangOpts().CPlusPlus11) 4440 Consumer.addKeywordResult("static_assert"); 4441 } 4442 } 4443 } 4444 4445 std::unique_ptr<TypoCorrectionConsumer> Sema::makeTypoCorrectionConsumer( 4446 const DeclarationNameInfo &TypoName, Sema::LookupNameKind LookupKind, 4447 Scope *S, CXXScopeSpec *SS, 4448 std::unique_ptr<CorrectionCandidateCallback> CCC, 4449 DeclContext *MemberContext, bool EnteringContext, 4450 const ObjCObjectPointerType *OPT, bool ErrorRecovery) { 4451 4452 if (Diags.hasFatalErrorOccurred() || !getLangOpts().SpellChecking || 4453 DisableTypoCorrection) 4454 return nullptr; 4455 4456 // In Microsoft mode, don't perform typo correction in a template member 4457 // function dependent context because it interferes with the "lookup into 4458 // dependent bases of class templates" feature. 4459 if (getLangOpts().MSVCCompat && CurContext->isDependentContext() && 4460 isa<CXXMethodDecl>(CurContext)) 4461 return nullptr; 4462 4463 // We only attempt to correct typos for identifiers. 4464 IdentifierInfo *Typo = TypoName.getName().getAsIdentifierInfo(); 4465 if (!Typo) 4466 return nullptr; 4467 4468 // If the scope specifier itself was invalid, don't try to correct 4469 // typos. 4470 if (SS && SS->isInvalid()) 4471 return nullptr; 4472 4473 // Never try to correct typos during any kind of code synthesis. 4474 if (!CodeSynthesisContexts.empty()) 4475 return nullptr; 4476 4477 // Don't try to correct 'super'. 4478 if (S && S->isInObjcMethodScope() && Typo == getSuperIdentifier()) 4479 return nullptr; 4480 4481 // Abort if typo correction already failed for this specific typo. 4482 IdentifierSourceLocations::iterator locs = TypoCorrectionFailures.find(Typo); 4483 if (locs != TypoCorrectionFailures.end() && 4484 locs->second.count(TypoName.getLoc())) 4485 return nullptr; 4486 4487 // Don't try to correct the identifier "vector" when in AltiVec mode. 4488 // TODO: Figure out why typo correction misbehaves in this case, fix it, and 4489 // remove this workaround. 4490 if ((getLangOpts().AltiVec || getLangOpts().ZVector) && Typo->isStr("vector")) 4491 return nullptr; 4492 4493 // Provide a stop gap for files that are just seriously broken. Trying 4494 // to correct all typos can turn into a HUGE performance penalty, causing 4495 // some files to take minutes to get rejected by the parser. 4496 unsigned Limit = getDiagnostics().getDiagnosticOptions().SpellCheckingLimit; 4497 if (Limit && TyposCorrected >= Limit) 4498 return nullptr; 4499 ++TyposCorrected; 4500 4501 // If we're handling a missing symbol error, using modules, and the 4502 // special search all modules option is used, look for a missing import. 4503 if (ErrorRecovery && getLangOpts().Modules && 4504 getLangOpts().ModulesSearchAll) { 4505 // The following has the side effect of loading the missing module. 4506 getModuleLoader().lookupMissingImports(Typo->getName(), 4507 TypoName.getLocStart()); 4508 } 4509 4510 CorrectionCandidateCallback &CCCRef = *CCC; 4511 auto Consumer = llvm::make_unique<TypoCorrectionConsumer>( 4512 *this, TypoName, LookupKind, S, SS, std::move(CCC), MemberContext, 4513 EnteringContext); 4514 4515 // Perform name lookup to find visible, similarly-named entities. 4516 bool IsUnqualifiedLookup = false; 4517 DeclContext *QualifiedDC = MemberContext; 4518 if (MemberContext) { 4519 LookupVisibleDecls(MemberContext, LookupKind, *Consumer); 4520 4521 // Look in qualified interfaces. 4522 if (OPT) { 4523 for (auto *I : OPT->quals()) 4524 LookupVisibleDecls(I, LookupKind, *Consumer); 4525 } 4526 } else if (SS && SS->isSet()) { 4527 QualifiedDC = computeDeclContext(*SS, EnteringContext); 4528 if (!QualifiedDC) 4529 return nullptr; 4530 4531 LookupVisibleDecls(QualifiedDC, LookupKind, *Consumer); 4532 } else { 4533 IsUnqualifiedLookup = true; 4534 } 4535 4536 // Determine whether we are going to search in the various namespaces for 4537 // corrections. 4538 bool SearchNamespaces 4539 = getLangOpts().CPlusPlus && 4540 (IsUnqualifiedLookup || (SS && SS->isSet())); 4541 4542 if (IsUnqualifiedLookup || SearchNamespaces) { 4543 // For unqualified lookup, look through all of the names that we have 4544 // seen in this translation unit. 4545 // FIXME: Re-add the ability to skip very unlikely potential corrections. 4546 for (const auto &I : Context.Idents) 4547 Consumer->FoundName(I.getKey()); 4548 4549 // Walk through identifiers in external identifier sources. 4550 // FIXME: Re-add the ability to skip very unlikely potential corrections. 4551 if (IdentifierInfoLookup *External 4552 = Context.Idents.getExternalIdentifierLookup()) { 4553 std::unique_ptr<IdentifierIterator> Iter(External->getIdentifiers()); 4554 do { 4555 StringRef Name = Iter->Next(); 4556 if (Name.empty()) 4557 break; 4558 4559 Consumer->FoundName(Name); 4560 } while (true); 4561 } 4562 } 4563 4564 AddKeywordsToConsumer(*this, *Consumer, S, CCCRef, SS && SS->isNotEmpty()); 4565 4566 // Build the NestedNameSpecifiers for the KnownNamespaces, if we're going 4567 // to search those namespaces. 4568 if (SearchNamespaces) { 4569 // Load any externally-known namespaces. 4570 if (ExternalSource && !LoadedExternalKnownNamespaces) { 4571 SmallVector<NamespaceDecl *, 4> ExternalKnownNamespaces; 4572 LoadedExternalKnownNamespaces = true; 4573 ExternalSource->ReadKnownNamespaces(ExternalKnownNamespaces); 4574 for (auto *N : ExternalKnownNamespaces) 4575 KnownNamespaces[N] = true; 4576 } 4577 4578 Consumer->addNamespaces(KnownNamespaces); 4579 } 4580 4581 return Consumer; 4582 } 4583 4584 /// \brief Try to "correct" a typo in the source code by finding 4585 /// visible declarations whose names are similar to the name that was 4586 /// present in the source code. 4587 /// 4588 /// \param TypoName the \c DeclarationNameInfo structure that contains 4589 /// the name that was present in the source code along with its location. 4590 /// 4591 /// \param LookupKind the name-lookup criteria used to search for the name. 4592 /// 4593 /// \param S the scope in which name lookup occurs. 4594 /// 4595 /// \param SS the nested-name-specifier that precedes the name we're 4596 /// looking for, if present. 4597 /// 4598 /// \param CCC A CorrectionCandidateCallback object that provides further 4599 /// validation of typo correction candidates. It also provides flags for 4600 /// determining the set of keywords permitted. 4601 /// 4602 /// \param MemberContext if non-NULL, the context in which to look for 4603 /// a member access expression. 4604 /// 4605 /// \param EnteringContext whether we're entering the context described by 4606 /// the nested-name-specifier SS. 4607 /// 4608 /// \param OPT when non-NULL, the search for visible declarations will 4609 /// also walk the protocols in the qualified interfaces of \p OPT. 4610 /// 4611 /// \returns a \c TypoCorrection containing the corrected name if the typo 4612 /// along with information such as the \c NamedDecl where the corrected name 4613 /// was declared, and any additional \c NestedNameSpecifier needed to access 4614 /// it (C++ only). The \c TypoCorrection is empty if there is no correction. 4615 TypoCorrection Sema::CorrectTypo(const DeclarationNameInfo &TypoName, 4616 Sema::LookupNameKind LookupKind, 4617 Scope *S, CXXScopeSpec *SS, 4618 std::unique_ptr<CorrectionCandidateCallback> CCC, 4619 CorrectTypoKind Mode, 4620 DeclContext *MemberContext, 4621 bool EnteringContext, 4622 const ObjCObjectPointerType *OPT, 4623 bool RecordFailure) { 4624 assert(CCC && "CorrectTypo requires a CorrectionCandidateCallback"); 4625 4626 // Always let the ExternalSource have the first chance at correction, even 4627 // if we would otherwise have given up. 4628 if (ExternalSource) { 4629 if (TypoCorrection Correction = ExternalSource->CorrectTypo( 4630 TypoName, LookupKind, S, SS, *CCC, MemberContext, EnteringContext, OPT)) 4631 return Correction; 4632 } 4633 4634 // Ugly hack equivalent to CTC == CTC_ObjCMessageReceiver; 4635 // WantObjCSuper is only true for CTC_ObjCMessageReceiver and for 4636 // some instances of CTC_Unknown, while WantRemainingKeywords is true 4637 // for CTC_Unknown but not for CTC_ObjCMessageReceiver. 4638 bool ObjCMessageReceiver = CCC->WantObjCSuper && !CCC->WantRemainingKeywords; 4639 4640 IdentifierInfo *Typo = TypoName.getName().getAsIdentifierInfo(); 4641 auto Consumer = makeTypoCorrectionConsumer( 4642 TypoName, LookupKind, S, SS, std::move(CCC), MemberContext, 4643 EnteringContext, OPT, Mode == CTK_ErrorRecovery); 4644 4645 if (!Consumer) 4646 return TypoCorrection(); 4647 4648 // If we haven't found anything, we're done. 4649 if (Consumer->empty()) 4650 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure); 4651 4652 // Make sure the best edit distance (prior to adding any namespace qualifiers) 4653 // is not more that about a third of the length of the typo's identifier. 4654 unsigned ED = Consumer->getBestEditDistance(true); 4655 unsigned TypoLen = Typo->getName().size(); 4656 if (ED > 0 && TypoLen / ED < 3) 4657 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure); 4658 4659 TypoCorrection BestTC = Consumer->getNextCorrection(); 4660 TypoCorrection SecondBestTC = Consumer->getNextCorrection(); 4661 if (!BestTC) 4662 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure); 4663 4664 ED = BestTC.getEditDistance(); 4665 4666 if (TypoLen >= 3 && ED > 0 && TypoLen / ED < 3) { 4667 // If this was an unqualified lookup and we believe the callback 4668 // object wouldn't have filtered out possible corrections, note 4669 // that no correction was found. 4670 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure); 4671 } 4672 4673 // If only a single name remains, return that result. 4674 if (!SecondBestTC || 4675 SecondBestTC.getEditDistance(false) > BestTC.getEditDistance(false)) { 4676 const TypoCorrection &Result = BestTC; 4677 4678 // Don't correct to a keyword that's the same as the typo; the keyword 4679 // wasn't actually in scope. 4680 if (ED == 0 && Result.isKeyword()) 4681 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure); 4682 4683 TypoCorrection TC = Result; 4684 TC.setCorrectionRange(SS, TypoName); 4685 checkCorrectionVisibility(*this, TC); 4686 return TC; 4687 } else if (SecondBestTC && ObjCMessageReceiver) { 4688 // Prefer 'super' when we're completing in a message-receiver 4689 // context. 4690 4691 if (BestTC.getCorrection().getAsString() != "super") { 4692 if (SecondBestTC.getCorrection().getAsString() == "super") 4693 BestTC = SecondBestTC; 4694 else if ((*Consumer)["super"].front().isKeyword()) 4695 BestTC = (*Consumer)["super"].front(); 4696 } 4697 // Don't correct to a keyword that's the same as the typo; the keyword 4698 // wasn't actually in scope. 4699 if (BestTC.getEditDistance() == 0 || 4700 BestTC.getCorrection().getAsString() != "super") 4701 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure); 4702 4703 BestTC.setCorrectionRange(SS, TypoName); 4704 return BestTC; 4705 } 4706 4707 // Record the failure's location if needed and return an empty correction. If 4708 // this was an unqualified lookup and we believe the callback object did not 4709 // filter out possible corrections, also cache the failure for the typo. 4710 return FailedCorrection(Typo, TypoName.getLoc(), RecordFailure && !SecondBestTC); 4711 } 4712 4713 /// \brief Try to "correct" a typo in the source code by finding 4714 /// visible declarations whose names are similar to the name that was 4715 /// present in the source code. 4716 /// 4717 /// \param TypoName the \c DeclarationNameInfo structure that contains 4718 /// the name that was present in the source code along with its location. 4719 /// 4720 /// \param LookupKind the name-lookup criteria used to search for the name. 4721 /// 4722 /// \param S the scope in which name lookup occurs. 4723 /// 4724 /// \param SS the nested-name-specifier that precedes the name we're 4725 /// looking for, if present. 4726 /// 4727 /// \param CCC A CorrectionCandidateCallback object that provides further 4728 /// validation of typo correction candidates. It also provides flags for 4729 /// determining the set of keywords permitted. 4730 /// 4731 /// \param TDG A TypoDiagnosticGenerator functor that will be used to print 4732 /// diagnostics when the actual typo correction is attempted. 4733 /// 4734 /// \param TRC A TypoRecoveryCallback functor that will be used to build an 4735 /// Expr from a typo correction candidate. 4736 /// 4737 /// \param MemberContext if non-NULL, the context in which to look for 4738 /// a member access expression. 4739 /// 4740 /// \param EnteringContext whether we're entering the context described by 4741 /// the nested-name-specifier SS. 4742 /// 4743 /// \param OPT when non-NULL, the search for visible declarations will 4744 /// also walk the protocols in the qualified interfaces of \p OPT. 4745 /// 4746 /// \returns a new \c TypoExpr that will later be replaced in the AST with an 4747 /// Expr representing the result of performing typo correction, or nullptr if 4748 /// typo correction is not possible. If nullptr is returned, no diagnostics will 4749 /// be emitted and it is the responsibility of the caller to emit any that are 4750 /// needed. 4751 TypoExpr *Sema::CorrectTypoDelayed( 4752 const DeclarationNameInfo &TypoName, Sema::LookupNameKind LookupKind, 4753 Scope *S, CXXScopeSpec *SS, 4754 std::unique_ptr<CorrectionCandidateCallback> CCC, 4755 TypoDiagnosticGenerator TDG, TypoRecoveryCallback TRC, CorrectTypoKind Mode, 4756 DeclContext *MemberContext, bool EnteringContext, 4757 const ObjCObjectPointerType *OPT) { 4758 assert(CCC && "CorrectTypoDelayed requires a CorrectionCandidateCallback"); 4759 4760 auto Consumer = makeTypoCorrectionConsumer( 4761 TypoName, LookupKind, S, SS, std::move(CCC), MemberContext, 4762 EnteringContext, OPT, Mode == CTK_ErrorRecovery); 4763 4764 // Give the external sema source a chance to correct the typo. 4765 TypoCorrection ExternalTypo; 4766 if (ExternalSource && Consumer) { 4767 ExternalTypo = ExternalSource->CorrectTypo( 4768 TypoName, LookupKind, S, SS, *Consumer->getCorrectionValidator(), 4769 MemberContext, EnteringContext, OPT); 4770 if (ExternalTypo) 4771 Consumer->addCorrection(ExternalTypo); 4772 } 4773 4774 if (!Consumer || Consumer->empty()) 4775 return nullptr; 4776 4777 // Make sure the best edit distance (prior to adding any namespace qualifiers) 4778 // is not more that about a third of the length of the typo's identifier. 4779 unsigned ED = Consumer->getBestEditDistance(true); 4780 IdentifierInfo *Typo = TypoName.getName().getAsIdentifierInfo(); 4781 if (!ExternalTypo && ED > 0 && Typo->getName().size() / ED < 3) 4782 return nullptr; 4783 4784 ExprEvalContexts.back().NumTypos++; 4785 return createDelayedTypo(std::move(Consumer), std::move(TDG), std::move(TRC)); 4786 } 4787 4788 void TypoCorrection::addCorrectionDecl(NamedDecl *CDecl) { 4789 if (!CDecl) return; 4790 4791 if (isKeyword()) 4792 CorrectionDecls.clear(); 4793 4794 CorrectionDecls.push_back(CDecl); 4795 4796 if (!CorrectionName) 4797 CorrectionName = CDecl->getDeclName(); 4798 } 4799 4800 std::string TypoCorrection::getAsString(const LangOptions &LO) const { 4801 if (CorrectionNameSpec) { 4802 std::string tmpBuffer; 4803 llvm::raw_string_ostream PrefixOStream(tmpBuffer); 4804 CorrectionNameSpec->print(PrefixOStream, PrintingPolicy(LO)); 4805 PrefixOStream << CorrectionName; 4806 return PrefixOStream.str(); 4807 } 4808 4809 return CorrectionName.getAsString(); 4810 } 4811 4812 bool CorrectionCandidateCallback::ValidateCandidate( 4813 const TypoCorrection &candidate) { 4814 if (!candidate.isResolved()) 4815 return true; 4816 4817 if (candidate.isKeyword()) 4818 return WantTypeSpecifiers || WantExpressionKeywords || WantCXXNamedCasts || 4819 WantRemainingKeywords || WantObjCSuper; 4820 4821 bool HasNonType = false; 4822 bool HasStaticMethod = false; 4823 bool HasNonStaticMethod = false; 4824 for (Decl *D : candidate) { 4825 if (FunctionTemplateDecl *FTD = dyn_cast<FunctionTemplateDecl>(D)) 4826 D = FTD->getTemplatedDecl(); 4827 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(D)) { 4828 if (Method->isStatic()) 4829 HasStaticMethod = true; 4830 else 4831 HasNonStaticMethod = true; 4832 } 4833 if (!isa<TypeDecl>(D)) 4834 HasNonType = true; 4835 } 4836 4837 if (IsAddressOfOperand && HasNonStaticMethod && !HasStaticMethod && 4838 !candidate.getCorrectionSpecifier()) 4839 return false; 4840 4841 return WantTypeSpecifiers || HasNonType; 4842 } 4843 4844 FunctionCallFilterCCC::FunctionCallFilterCCC(Sema &SemaRef, unsigned NumArgs, 4845 bool HasExplicitTemplateArgs, 4846 MemberExpr *ME) 4847 : NumArgs(NumArgs), HasExplicitTemplateArgs(HasExplicitTemplateArgs), 4848 CurContext(SemaRef.CurContext), MemberFn(ME) { 4849 WantTypeSpecifiers = false; 4850 WantFunctionLikeCasts = SemaRef.getLangOpts().CPlusPlus && NumArgs == 1; 4851 WantRemainingKeywords = false; 4852 } 4853 4854 bool FunctionCallFilterCCC::ValidateCandidate(const TypoCorrection &candidate) { 4855 if (!candidate.getCorrectionDecl()) 4856 return candidate.isKeyword(); 4857 4858 for (auto *C : candidate) { 4859 FunctionDecl *FD = nullptr; 4860 NamedDecl *ND = C->getUnderlyingDecl(); 4861 if (FunctionTemplateDecl *FTD = dyn_cast<FunctionTemplateDecl>(ND)) 4862 FD = FTD->getTemplatedDecl(); 4863 if (!HasExplicitTemplateArgs && !FD) { 4864 if (!(FD = dyn_cast<FunctionDecl>(ND)) && isa<ValueDecl>(ND)) { 4865 // If the Decl is neither a function nor a template function, 4866 // determine if it is a pointer or reference to a function. If so, 4867 // check against the number of arguments expected for the pointee. 4868 QualType ValType = cast<ValueDecl>(ND)->getType(); 4869 if (ValType->isAnyPointerType() || ValType->isReferenceType()) 4870 ValType = ValType->getPointeeType(); 4871 if (const FunctionProtoType *FPT = ValType->getAs<FunctionProtoType>()) 4872 if (FPT->getNumParams() == NumArgs) 4873 return true; 4874 } 4875 } 4876 4877 // Skip the current candidate if it is not a FunctionDecl or does not accept 4878 // the current number of arguments. 4879 if (!FD || !(FD->getNumParams() >= NumArgs && 4880 FD->getMinRequiredArguments() <= NumArgs)) 4881 continue; 4882 4883 // If the current candidate is a non-static C++ method, skip the candidate 4884 // unless the method being corrected--or the current DeclContext, if the 4885 // function being corrected is not a method--is a method in the same class 4886 // or a descendent class of the candidate's parent class. 4887 if (CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(FD)) { 4888 if (MemberFn || !MD->isStatic()) { 4889 CXXMethodDecl *CurMD = 4890 MemberFn 4891 ? dyn_cast_or_null<CXXMethodDecl>(MemberFn->getMemberDecl()) 4892 : dyn_cast_or_null<CXXMethodDecl>(CurContext); 4893 CXXRecordDecl *CurRD = 4894 CurMD ? CurMD->getParent()->getCanonicalDecl() : nullptr; 4895 CXXRecordDecl *RD = MD->getParent()->getCanonicalDecl(); 4896 if (!CurRD || (CurRD != RD && !CurRD->isDerivedFrom(RD))) 4897 continue; 4898 } 4899 } 4900 return true; 4901 } 4902 return false; 4903 } 4904 4905 void Sema::diagnoseTypo(const TypoCorrection &Correction, 4906 const PartialDiagnostic &TypoDiag, 4907 bool ErrorRecovery) { 4908 diagnoseTypo(Correction, TypoDiag, PDiag(diag::note_previous_decl), 4909 ErrorRecovery); 4910 } 4911 4912 /// Find which declaration we should import to provide the definition of 4913 /// the given declaration. 4914 static NamedDecl *getDefinitionToImport(NamedDecl *D) { 4915 if (VarDecl *VD = dyn_cast<VarDecl>(D)) 4916 return VD->getDefinition(); 4917 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) 4918 return FD->getDefinition(); 4919 if (TagDecl *TD = dyn_cast<TagDecl>(D)) 4920 return TD->getDefinition(); 4921 if (ObjCInterfaceDecl *ID = dyn_cast<ObjCInterfaceDecl>(D)) 4922 return ID->getDefinition(); 4923 if (ObjCProtocolDecl *PD = dyn_cast<ObjCProtocolDecl>(D)) 4924 return PD->getDefinition(); 4925 if (TemplateDecl *TD = dyn_cast<TemplateDecl>(D)) 4926 return getDefinitionToImport(TD->getTemplatedDecl()); 4927 return nullptr; 4928 } 4929 4930 void Sema::diagnoseMissingImport(SourceLocation Loc, NamedDecl *Decl, 4931 MissingImportKind MIK, bool Recover) { 4932 // Suggest importing a module providing the definition of this entity, if 4933 // possible. 4934 NamedDecl *Def = getDefinitionToImport(Decl); 4935 if (!Def) 4936 Def = Decl; 4937 4938 Module *Owner = getOwningModule(Decl); 4939 assert(Owner && "definition of hidden declaration is not in a module"); 4940 4941 llvm::SmallVector<Module*, 8> OwningModules; 4942 OwningModules.push_back(Owner); 4943 auto Merged = Context.getModulesWithMergedDefinition(Decl); 4944 OwningModules.insert(OwningModules.end(), Merged.begin(), Merged.end()); 4945 4946 diagnoseMissingImport(Loc, Decl, Decl->getLocation(), OwningModules, MIK, 4947 Recover); 4948 } 4949 4950 /// \brief Get a "quoted.h" or <angled.h> include path to use in a diagnostic 4951 /// suggesting the addition of a #include of the specified file. 4952 static std::string getIncludeStringForHeader(Preprocessor &PP, 4953 const FileEntry *E) { 4954 bool IsSystem; 4955 auto Path = 4956 PP.getHeaderSearchInfo().suggestPathToFileForDiagnostics(E, &IsSystem); 4957 return (IsSystem ? '<' : '"') + Path + (IsSystem ? '>' : '"'); 4958 } 4959 4960 void Sema::diagnoseMissingImport(SourceLocation UseLoc, NamedDecl *Decl, 4961 SourceLocation DeclLoc, 4962 ArrayRef<Module *> Modules, 4963 MissingImportKind MIK, bool Recover) { 4964 assert(!Modules.empty()); 4965 4966 // Weed out duplicates from module list. 4967 llvm::SmallVector<Module*, 8> UniqueModules; 4968 llvm::SmallDenseSet<Module*, 8> UniqueModuleSet; 4969 for (auto *M : Modules) 4970 if (UniqueModuleSet.insert(M).second) 4971 UniqueModules.push_back(M); 4972 Modules = UniqueModules; 4973 4974 if (Modules.size() > 1) { 4975 std::string ModuleList; 4976 unsigned N = 0; 4977 for (Module *M : Modules) { 4978 ModuleList += "\n "; 4979 if (++N == 5 && N != Modules.size()) { 4980 ModuleList += "[...]"; 4981 break; 4982 } 4983 ModuleList += M->getFullModuleName(); 4984 } 4985 4986 Diag(UseLoc, diag::err_module_unimported_use_multiple) 4987 << (int)MIK << Decl << ModuleList; 4988 } else if (const FileEntry *E = PP.getModuleHeaderToIncludeForDiagnostics( 4989 UseLoc, Modules[0], DeclLoc)) { 4990 // The right way to make the declaration visible is to include a header; 4991 // suggest doing so. 4992 // 4993 // FIXME: Find a smart place to suggest inserting a #include, and add 4994 // a FixItHint there. 4995 Diag(UseLoc, diag::err_module_unimported_use_header) 4996 << (int)MIK << Decl << Modules[0]->getFullModuleName() 4997 << getIncludeStringForHeader(PP, E); 4998 } else { 4999 // FIXME: Add a FixItHint that imports the corresponding module. 5000 Diag(UseLoc, diag::err_module_unimported_use) 5001 << (int)MIK << Decl << Modules[0]->getFullModuleName(); 5002 } 5003 5004 unsigned DiagID; 5005 switch (MIK) { 5006 case MissingImportKind::Declaration: 5007 DiagID = diag::note_previous_declaration; 5008 break; 5009 case MissingImportKind::Definition: 5010 DiagID = diag::note_previous_definition; 5011 break; 5012 case MissingImportKind::DefaultArgument: 5013 DiagID = diag::note_default_argument_declared_here; 5014 break; 5015 case MissingImportKind::ExplicitSpecialization: 5016 DiagID = diag::note_explicit_specialization_declared_here; 5017 break; 5018 case MissingImportKind::PartialSpecialization: 5019 DiagID = diag::note_partial_specialization_declared_here; 5020 break; 5021 } 5022 Diag(DeclLoc, DiagID); 5023 5024 // Try to recover by implicitly importing this module. 5025 if (Recover) 5026 createImplicitModuleImportForErrorRecovery(UseLoc, Modules[0]); 5027 } 5028 5029 /// \brief Diagnose a successfully-corrected typo. Separated from the correction 5030 /// itself to allow external validation of the result, etc. 5031 /// 5032 /// \param Correction The result of performing typo correction. 5033 /// \param TypoDiag The diagnostic to produce. This will have the corrected 5034 /// string added to it (and usually also a fixit). 5035 /// \param PrevNote A note to use when indicating the location of the entity to 5036 /// which we are correcting. Will have the correction string added to it. 5037 /// \param ErrorRecovery If \c true (the default), the caller is going to 5038 /// recover from the typo as if the corrected string had been typed. 5039 /// In this case, \c PDiag must be an error, and we will attach a fixit 5040 /// to it. 5041 void Sema::diagnoseTypo(const TypoCorrection &Correction, 5042 const PartialDiagnostic &TypoDiag, 5043 const PartialDiagnostic &PrevNote, 5044 bool ErrorRecovery) { 5045 std::string CorrectedStr = Correction.getAsString(getLangOpts()); 5046 std::string CorrectedQuotedStr = Correction.getQuoted(getLangOpts()); 5047 FixItHint FixTypo = FixItHint::CreateReplacement( 5048 Correction.getCorrectionRange(), CorrectedStr); 5049 5050 // Maybe we're just missing a module import. 5051 if (Correction.requiresImport()) { 5052 NamedDecl *Decl = Correction.getFoundDecl(); 5053 assert(Decl && "import required but no declaration to import"); 5054 5055 diagnoseMissingImport(Correction.getCorrectionRange().getBegin(), Decl, 5056 MissingImportKind::Declaration, ErrorRecovery); 5057 return; 5058 } 5059 5060 Diag(Correction.getCorrectionRange().getBegin(), TypoDiag) 5061 << CorrectedQuotedStr << (ErrorRecovery ? FixTypo : FixItHint()); 5062 5063 NamedDecl *ChosenDecl = 5064 Correction.isKeyword() ? nullptr : Correction.getFoundDecl(); 5065 if (PrevNote.getDiagID() && ChosenDecl) 5066 Diag(ChosenDecl->getLocation(), PrevNote) 5067 << CorrectedQuotedStr << (ErrorRecovery ? FixItHint() : FixTypo); 5068 5069 // Add any extra diagnostics. 5070 for (const PartialDiagnostic &PD : Correction.getExtraDiagnostics()) 5071 Diag(Correction.getCorrectionRange().getBegin(), PD); 5072 } 5073 5074 TypoExpr *Sema::createDelayedTypo(std::unique_ptr<TypoCorrectionConsumer> TCC, 5075 TypoDiagnosticGenerator TDG, 5076 TypoRecoveryCallback TRC) { 5077 assert(TCC && "createDelayedTypo requires a valid TypoCorrectionConsumer"); 5078 auto TE = new (Context) TypoExpr(Context.DependentTy); 5079 auto &State = DelayedTypos[TE]; 5080 State.Consumer = std::move(TCC); 5081 State.DiagHandler = std::move(TDG); 5082 State.RecoveryHandler = std::move(TRC); 5083 return TE; 5084 } 5085 5086 const Sema::TypoExprState &Sema::getTypoExprState(TypoExpr *TE) const { 5087 auto Entry = DelayedTypos.find(TE); 5088 assert(Entry != DelayedTypos.end() && 5089 "Failed to get the state for a TypoExpr!"); 5090 return Entry->second; 5091 } 5092 5093 void Sema::clearDelayedTypo(TypoExpr *TE) { 5094 DelayedTypos.erase(TE); 5095 } 5096 5097 void Sema::ActOnPragmaDump(Scope *S, SourceLocation IILoc, IdentifierInfo *II) { 5098 DeclarationNameInfo Name(II, IILoc); 5099 LookupResult R(*this, Name, LookupAnyName, Sema::NotForRedeclaration); 5100 R.suppressDiagnostics(); 5101 R.setHideTags(false); 5102 LookupName(R, S); 5103 R.dump(); 5104 } 5105