1 //===--- ParseDecl.cpp - Declaration Parsing --------------------*- C++ -*-===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the Declaration portions of the Parser interfaces. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "clang/Parse/Parser.h" 14 #include "clang/Parse/RAIIObjectsForParser.h" 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/DeclTemplate.h" 17 #include "clang/AST/PrettyDeclStackTrace.h" 18 #include "clang/Basic/AddressSpaces.h" 19 #include "clang/Basic/Attributes.h" 20 #include "clang/Basic/CharInfo.h" 21 #include "clang/Basic/TargetInfo.h" 22 #include "clang/Parse/ParseDiagnostic.h" 23 #include "clang/Sema/Lookup.h" 24 #include "clang/Sema/ParsedTemplate.h" 25 #include "clang/Sema/Scope.h" 26 #include "llvm/ADT/Optional.h" 27 #include "llvm/ADT/SmallSet.h" 28 #include "llvm/ADT/SmallString.h" 29 #include "llvm/ADT/StringSwitch.h" 30 31 using namespace clang; 32 33 //===----------------------------------------------------------------------===// 34 // C99 6.7: Declarations. 35 //===----------------------------------------------------------------------===// 36 37 /// ParseTypeName 38 /// type-name: [C99 6.7.6] 39 /// specifier-qualifier-list abstract-declarator[opt] 40 /// 41 /// Called type-id in C++. 42 TypeResult Parser::ParseTypeName(SourceRange *Range, 43 DeclaratorContext Context, 44 AccessSpecifier AS, 45 Decl **OwnedType, 46 ParsedAttributes *Attrs) { 47 DeclSpecContext DSC = getDeclSpecContextFromDeclaratorContext(Context); 48 if (DSC == DeclSpecContext::DSC_normal) 49 DSC = DeclSpecContext::DSC_type_specifier; 50 51 // Parse the common declaration-specifiers piece. 52 DeclSpec DS(AttrFactory); 53 if (Attrs) 54 DS.addAttributes(*Attrs); 55 ParseSpecifierQualifierList(DS, AS, DSC); 56 if (OwnedType) 57 *OwnedType = DS.isTypeSpecOwned() ? DS.getRepAsDecl() : nullptr; 58 59 // Parse the abstract-declarator, if present. 60 Declarator DeclaratorInfo(DS, Context); 61 ParseDeclarator(DeclaratorInfo); 62 if (Range) 63 *Range = DeclaratorInfo.getSourceRange(); 64 65 if (DeclaratorInfo.isInvalidType()) 66 return true; 67 68 return Actions.ActOnTypeName(getCurScope(), DeclaratorInfo); 69 } 70 71 /// Normalizes an attribute name by dropping prefixed and suffixed __. 72 static StringRef normalizeAttrName(StringRef Name) { 73 if (Name.size() >= 4 && Name.startswith("__") && Name.endswith("__")) 74 return Name.drop_front(2).drop_back(2); 75 return Name; 76 } 77 78 /// isAttributeLateParsed - Return true if the attribute has arguments that 79 /// require late parsing. 80 static bool isAttributeLateParsed(const IdentifierInfo &II) { 81 #define CLANG_ATTR_LATE_PARSED_LIST 82 return llvm::StringSwitch<bool>(normalizeAttrName(II.getName())) 83 #include "clang/Parse/AttrParserStringSwitches.inc" 84 .Default(false); 85 #undef CLANG_ATTR_LATE_PARSED_LIST 86 } 87 88 /// Check if the a start and end source location expand to the same macro. 89 static bool FindLocsWithCommonFileID(Preprocessor &PP, SourceLocation StartLoc, 90 SourceLocation EndLoc) { 91 if (!StartLoc.isMacroID() || !EndLoc.isMacroID()) 92 return false; 93 94 SourceManager &SM = PP.getSourceManager(); 95 if (SM.getFileID(StartLoc) != SM.getFileID(EndLoc)) 96 return false; 97 98 bool AttrStartIsInMacro = 99 Lexer::isAtStartOfMacroExpansion(StartLoc, SM, PP.getLangOpts()); 100 bool AttrEndIsInMacro = 101 Lexer::isAtEndOfMacroExpansion(EndLoc, SM, PP.getLangOpts()); 102 return AttrStartIsInMacro && AttrEndIsInMacro; 103 } 104 105 /// ParseGNUAttributes - Parse a non-empty attributes list. 106 /// 107 /// [GNU] attributes: 108 /// attribute 109 /// attributes attribute 110 /// 111 /// [GNU] attribute: 112 /// '__attribute__' '(' '(' attribute-list ')' ')' 113 /// 114 /// [GNU] attribute-list: 115 /// attrib 116 /// attribute_list ',' attrib 117 /// 118 /// [GNU] attrib: 119 /// empty 120 /// attrib-name 121 /// attrib-name '(' identifier ')' 122 /// attrib-name '(' identifier ',' nonempty-expr-list ')' 123 /// attrib-name '(' argument-expression-list [C99 6.5.2] ')' 124 /// 125 /// [GNU] attrib-name: 126 /// identifier 127 /// typespec 128 /// typequal 129 /// storageclass 130 /// 131 /// Whether an attribute takes an 'identifier' is determined by the 132 /// attrib-name. GCC's behavior here is not worth imitating: 133 /// 134 /// * In C mode, if the attribute argument list starts with an identifier 135 /// followed by a ',' or an ')', and the identifier doesn't resolve to 136 /// a type, it is parsed as an identifier. If the attribute actually 137 /// wanted an expression, it's out of luck (but it turns out that no 138 /// attributes work that way, because C constant expressions are very 139 /// limited). 140 /// * In C++ mode, if the attribute argument list starts with an identifier, 141 /// and the attribute *wants* an identifier, it is parsed as an identifier. 142 /// At block scope, any additional tokens between the identifier and the 143 /// ',' or ')' are ignored, otherwise they produce a parse error. 144 /// 145 /// We follow the C++ model, but don't allow junk after the identifier. 146 void Parser::ParseGNUAttributes(ParsedAttributes &attrs, 147 SourceLocation *endLoc, 148 LateParsedAttrList *LateAttrs, 149 Declarator *D) { 150 assert(Tok.is(tok::kw___attribute) && "Not a GNU attribute list!"); 151 152 while (Tok.is(tok::kw___attribute)) { 153 SourceLocation AttrTokLoc = ConsumeToken(); 154 unsigned OldNumAttrs = attrs.size(); 155 unsigned OldNumLateAttrs = LateAttrs ? LateAttrs->size() : 0; 156 157 if (ExpectAndConsume(tok::l_paren, diag::err_expected_lparen_after, 158 "attribute")) { 159 SkipUntil(tok::r_paren, StopAtSemi); // skip until ) or ; 160 return; 161 } 162 if (ExpectAndConsume(tok::l_paren, diag::err_expected_lparen_after, "(")) { 163 SkipUntil(tok::r_paren, StopAtSemi); // skip until ) or ; 164 return; 165 } 166 // Parse the attribute-list. e.g. __attribute__(( weak, alias("__f") )) 167 do { 168 // Eat preceeding commas to allow __attribute__((,,,foo)) 169 while (TryConsumeToken(tok::comma)) 170 ; 171 172 // Expect an identifier or declaration specifier (const, int, etc.) 173 if (Tok.isAnnotation()) 174 break; 175 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 176 if (!AttrName) 177 break; 178 179 SourceLocation AttrNameLoc = ConsumeToken(); 180 181 if (Tok.isNot(tok::l_paren)) { 182 attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 183 ParsedAttr::AS_GNU); 184 continue; 185 } 186 187 // Handle "parameterized" attributes 188 if (!LateAttrs || !isAttributeLateParsed(*AttrName)) { 189 ParseGNUAttributeArgs(AttrName, AttrNameLoc, attrs, endLoc, nullptr, 190 SourceLocation(), ParsedAttr::AS_GNU, D); 191 continue; 192 } 193 194 // Handle attributes with arguments that require late parsing. 195 LateParsedAttribute *LA = 196 new LateParsedAttribute(this, *AttrName, AttrNameLoc); 197 LateAttrs->push_back(LA); 198 199 // Attributes in a class are parsed at the end of the class, along 200 // with other late-parsed declarations. 201 if (!ClassStack.empty() && !LateAttrs->parseSoon()) 202 getCurrentClass().LateParsedDeclarations.push_back(LA); 203 204 // Be sure ConsumeAndStoreUntil doesn't see the start l_paren, since it 205 // recursively consumes balanced parens. 206 LA->Toks.push_back(Tok); 207 ConsumeParen(); 208 // Consume everything up to and including the matching right parens. 209 ConsumeAndStoreUntil(tok::r_paren, LA->Toks, /*StopAtSemi=*/true); 210 211 Token Eof; 212 Eof.startToken(); 213 Eof.setLocation(Tok.getLocation()); 214 LA->Toks.push_back(Eof); 215 } while (Tok.is(tok::comma)); 216 217 if (ExpectAndConsume(tok::r_paren)) 218 SkipUntil(tok::r_paren, StopAtSemi); 219 SourceLocation Loc = Tok.getLocation(); 220 if (ExpectAndConsume(tok::r_paren)) 221 SkipUntil(tok::r_paren, StopAtSemi); 222 if (endLoc) 223 *endLoc = Loc; 224 225 // If this was declared in a macro, attach the macro IdentifierInfo to the 226 // parsed attribute. 227 auto &SM = PP.getSourceManager(); 228 if (!SM.isWrittenInBuiltinFile(SM.getSpellingLoc(AttrTokLoc)) && 229 FindLocsWithCommonFileID(PP, AttrTokLoc, Loc)) { 230 CharSourceRange ExpansionRange = SM.getExpansionRange(AttrTokLoc); 231 StringRef FoundName = 232 Lexer::getSourceText(ExpansionRange, SM, PP.getLangOpts()); 233 IdentifierInfo *MacroII = PP.getIdentifierInfo(FoundName); 234 235 for (unsigned i = OldNumAttrs; i < attrs.size(); ++i) 236 attrs[i].setMacroIdentifier(MacroII, ExpansionRange.getBegin()); 237 238 if (LateAttrs) { 239 for (unsigned i = OldNumLateAttrs; i < LateAttrs->size(); ++i) 240 (*LateAttrs)[i]->MacroII = MacroII; 241 } 242 } 243 } 244 } 245 246 /// Determine whether the given attribute has an identifier argument. 247 static bool attributeHasIdentifierArg(const IdentifierInfo &II) { 248 #define CLANG_ATTR_IDENTIFIER_ARG_LIST 249 return llvm::StringSwitch<bool>(normalizeAttrName(II.getName())) 250 #include "clang/Parse/AttrParserStringSwitches.inc" 251 .Default(false); 252 #undef CLANG_ATTR_IDENTIFIER_ARG_LIST 253 } 254 255 /// Determine whether the given attribute has a variadic identifier argument. 256 static bool attributeHasVariadicIdentifierArg(const IdentifierInfo &II) { 257 #define CLANG_ATTR_VARIADIC_IDENTIFIER_ARG_LIST 258 return llvm::StringSwitch<bool>(normalizeAttrName(II.getName())) 259 #include "clang/Parse/AttrParserStringSwitches.inc" 260 .Default(false); 261 #undef CLANG_ATTR_VARIADIC_IDENTIFIER_ARG_LIST 262 } 263 264 /// Determine whether the given attribute treats kw_this as an identifier. 265 static bool attributeTreatsKeywordThisAsIdentifier(const IdentifierInfo &II) { 266 #define CLANG_ATTR_THIS_ISA_IDENTIFIER_ARG_LIST 267 return llvm::StringSwitch<bool>(normalizeAttrName(II.getName())) 268 #include "clang/Parse/AttrParserStringSwitches.inc" 269 .Default(false); 270 #undef CLANG_ATTR_THIS_ISA_IDENTIFIER_ARG_LIST 271 } 272 273 /// Determine whether the given attribute parses a type argument. 274 static bool attributeIsTypeArgAttr(const IdentifierInfo &II) { 275 #define CLANG_ATTR_TYPE_ARG_LIST 276 return llvm::StringSwitch<bool>(normalizeAttrName(II.getName())) 277 #include "clang/Parse/AttrParserStringSwitches.inc" 278 .Default(false); 279 #undef CLANG_ATTR_TYPE_ARG_LIST 280 } 281 282 /// Determine whether the given attribute requires parsing its arguments 283 /// in an unevaluated context or not. 284 static bool attributeParsedArgsUnevaluated(const IdentifierInfo &II) { 285 #define CLANG_ATTR_ARG_CONTEXT_LIST 286 return llvm::StringSwitch<bool>(normalizeAttrName(II.getName())) 287 #include "clang/Parse/AttrParserStringSwitches.inc" 288 .Default(false); 289 #undef CLANG_ATTR_ARG_CONTEXT_LIST 290 } 291 292 IdentifierLoc *Parser::ParseIdentifierLoc() { 293 assert(Tok.is(tok::identifier) && "expected an identifier"); 294 IdentifierLoc *IL = IdentifierLoc::create(Actions.Context, 295 Tok.getLocation(), 296 Tok.getIdentifierInfo()); 297 ConsumeToken(); 298 return IL; 299 } 300 301 void Parser::ParseAttributeWithTypeArg(IdentifierInfo &AttrName, 302 SourceLocation AttrNameLoc, 303 ParsedAttributes &Attrs, 304 SourceLocation *EndLoc, 305 IdentifierInfo *ScopeName, 306 SourceLocation ScopeLoc, 307 ParsedAttr::Syntax Syntax) { 308 BalancedDelimiterTracker Parens(*this, tok::l_paren); 309 Parens.consumeOpen(); 310 311 TypeResult T; 312 if (Tok.isNot(tok::r_paren)) 313 T = ParseTypeName(); 314 315 if (Parens.consumeClose()) 316 return; 317 318 if (T.isInvalid()) 319 return; 320 321 if (T.isUsable()) 322 Attrs.addNewTypeAttr(&AttrName, 323 SourceRange(AttrNameLoc, Parens.getCloseLocation()), 324 ScopeName, ScopeLoc, T.get(), Syntax); 325 else 326 Attrs.addNew(&AttrName, SourceRange(AttrNameLoc, Parens.getCloseLocation()), 327 ScopeName, ScopeLoc, nullptr, 0, Syntax); 328 } 329 330 unsigned Parser::ParseAttributeArgsCommon( 331 IdentifierInfo *AttrName, SourceLocation AttrNameLoc, 332 ParsedAttributes &Attrs, SourceLocation *EndLoc, IdentifierInfo *ScopeName, 333 SourceLocation ScopeLoc, ParsedAttr::Syntax Syntax) { 334 // Ignore the left paren location for now. 335 ConsumeParen(); 336 337 bool ChangeKWThisToIdent = attributeTreatsKeywordThisAsIdentifier(*AttrName); 338 bool AttributeIsTypeArgAttr = attributeIsTypeArgAttr(*AttrName); 339 340 // Interpret "kw_this" as an identifier if the attributed requests it. 341 if (ChangeKWThisToIdent && Tok.is(tok::kw_this)) 342 Tok.setKind(tok::identifier); 343 344 ArgsVector ArgExprs; 345 if (Tok.is(tok::identifier)) { 346 // If this attribute wants an 'identifier' argument, make it so. 347 bool IsIdentifierArg = attributeHasIdentifierArg(*AttrName) || 348 attributeHasVariadicIdentifierArg(*AttrName); 349 ParsedAttr::Kind AttrKind = 350 ParsedAttr::getParsedKind(AttrName, ScopeName, Syntax); 351 352 // If we don't know how to parse this attribute, but this is the only 353 // token in this argument, assume it's meant to be an identifier. 354 if (AttrKind == ParsedAttr::UnknownAttribute || 355 AttrKind == ParsedAttr::IgnoredAttribute) { 356 const Token &Next = NextToken(); 357 IsIdentifierArg = Next.isOneOf(tok::r_paren, tok::comma); 358 } 359 360 if (IsIdentifierArg) 361 ArgExprs.push_back(ParseIdentifierLoc()); 362 } 363 364 ParsedType TheParsedType; 365 if (!ArgExprs.empty() ? Tok.is(tok::comma) : Tok.isNot(tok::r_paren)) { 366 // Eat the comma. 367 if (!ArgExprs.empty()) 368 ConsumeToken(); 369 370 // Parse the non-empty comma-separated list of expressions. 371 do { 372 // Interpret "kw_this" as an identifier if the attributed requests it. 373 if (ChangeKWThisToIdent && Tok.is(tok::kw_this)) 374 Tok.setKind(tok::identifier); 375 376 ExprResult ArgExpr; 377 if (AttributeIsTypeArgAttr) { 378 TypeResult T = ParseTypeName(); 379 if (T.isInvalid()) { 380 SkipUntil(tok::r_paren, StopAtSemi); 381 return 0; 382 } 383 if (T.isUsable()) 384 TheParsedType = T.get(); 385 break; // FIXME: Multiple type arguments are not implemented. 386 } else if (Tok.is(tok::identifier) && 387 attributeHasVariadicIdentifierArg(*AttrName)) { 388 ArgExprs.push_back(ParseIdentifierLoc()); 389 } else { 390 bool Uneval = attributeParsedArgsUnevaluated(*AttrName); 391 EnterExpressionEvaluationContext Unevaluated( 392 Actions, 393 Uneval ? Sema::ExpressionEvaluationContext::Unevaluated 394 : Sema::ExpressionEvaluationContext::ConstantEvaluated); 395 396 ExprResult ArgExpr( 397 Actions.CorrectDelayedTyposInExpr(ParseAssignmentExpression())); 398 if (ArgExpr.isInvalid()) { 399 SkipUntil(tok::r_paren, StopAtSemi); 400 return 0; 401 } 402 ArgExprs.push_back(ArgExpr.get()); 403 } 404 // Eat the comma, move to the next argument 405 } while (TryConsumeToken(tok::comma)); 406 } 407 408 SourceLocation RParen = Tok.getLocation(); 409 if (!ExpectAndConsume(tok::r_paren)) { 410 SourceLocation AttrLoc = ScopeLoc.isValid() ? ScopeLoc : AttrNameLoc; 411 412 if (AttributeIsTypeArgAttr && !TheParsedType.get().isNull()) { 413 Attrs.addNewTypeAttr(AttrName, SourceRange(AttrNameLoc, RParen), 414 ScopeName, ScopeLoc, TheParsedType, Syntax); 415 } else { 416 Attrs.addNew(AttrName, SourceRange(AttrLoc, RParen), ScopeName, ScopeLoc, 417 ArgExprs.data(), ArgExprs.size(), Syntax); 418 } 419 } 420 421 if (EndLoc) 422 *EndLoc = RParen; 423 424 return static_cast<unsigned>(ArgExprs.size() + !TheParsedType.get().isNull()); 425 } 426 427 /// Parse the arguments to a parameterized GNU attribute or 428 /// a C++11 attribute in "gnu" namespace. 429 void Parser::ParseGNUAttributeArgs(IdentifierInfo *AttrName, 430 SourceLocation AttrNameLoc, 431 ParsedAttributes &Attrs, 432 SourceLocation *EndLoc, 433 IdentifierInfo *ScopeName, 434 SourceLocation ScopeLoc, 435 ParsedAttr::Syntax Syntax, 436 Declarator *D) { 437 438 assert(Tok.is(tok::l_paren) && "Attribute arg list not starting with '('"); 439 440 ParsedAttr::Kind AttrKind = 441 ParsedAttr::getParsedKind(AttrName, ScopeName, Syntax); 442 443 if (AttrKind == ParsedAttr::AT_Availability) { 444 ParseAvailabilityAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, ScopeName, 445 ScopeLoc, Syntax); 446 return; 447 } else if (AttrKind == ParsedAttr::AT_ExternalSourceSymbol) { 448 ParseExternalSourceSymbolAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, 449 ScopeName, ScopeLoc, Syntax); 450 return; 451 } else if (AttrKind == ParsedAttr::AT_ObjCBridgeRelated) { 452 ParseObjCBridgeRelatedAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, 453 ScopeName, ScopeLoc, Syntax); 454 return; 455 } else if (AttrKind == ParsedAttr::AT_TypeTagForDatatype) { 456 ParseTypeTagForDatatypeAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, 457 ScopeName, ScopeLoc, Syntax); 458 return; 459 } else if (attributeIsTypeArgAttr(*AttrName)) { 460 ParseAttributeWithTypeArg(*AttrName, AttrNameLoc, Attrs, EndLoc, ScopeName, 461 ScopeLoc, Syntax); 462 return; 463 } 464 465 // These may refer to the function arguments, but need to be parsed early to 466 // participate in determining whether it's a redeclaration. 467 llvm::Optional<ParseScope> PrototypeScope; 468 if (normalizeAttrName(AttrName->getName()) == "enable_if" && 469 D && D->isFunctionDeclarator()) { 470 DeclaratorChunk::FunctionTypeInfo FTI = D->getFunctionTypeInfo(); 471 PrototypeScope.emplace(this, Scope::FunctionPrototypeScope | 472 Scope::FunctionDeclarationScope | 473 Scope::DeclScope); 474 for (unsigned i = 0; i != FTI.NumParams; ++i) { 475 ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param); 476 Actions.ActOnReenterCXXMethodParameter(getCurScope(), Param); 477 } 478 } 479 480 ParseAttributeArgsCommon(AttrName, AttrNameLoc, Attrs, EndLoc, ScopeName, 481 ScopeLoc, Syntax); 482 } 483 484 unsigned Parser::ParseClangAttributeArgs( 485 IdentifierInfo *AttrName, SourceLocation AttrNameLoc, 486 ParsedAttributes &Attrs, SourceLocation *EndLoc, IdentifierInfo *ScopeName, 487 SourceLocation ScopeLoc, ParsedAttr::Syntax Syntax) { 488 assert(Tok.is(tok::l_paren) && "Attribute arg list not starting with '('"); 489 490 ParsedAttr::Kind AttrKind = 491 ParsedAttr::getParsedKind(AttrName, ScopeName, Syntax); 492 493 switch (AttrKind) { 494 default: 495 return ParseAttributeArgsCommon(AttrName, AttrNameLoc, Attrs, EndLoc, 496 ScopeName, ScopeLoc, Syntax); 497 case ParsedAttr::AT_ExternalSourceSymbol: 498 ParseExternalSourceSymbolAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, 499 ScopeName, ScopeLoc, Syntax); 500 break; 501 case ParsedAttr::AT_Availability: 502 ParseAvailabilityAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, ScopeName, 503 ScopeLoc, Syntax); 504 break; 505 case ParsedAttr::AT_ObjCBridgeRelated: 506 ParseObjCBridgeRelatedAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, 507 ScopeName, ScopeLoc, Syntax); 508 break; 509 case ParsedAttr::AT_TypeTagForDatatype: 510 ParseTypeTagForDatatypeAttribute(*AttrName, AttrNameLoc, Attrs, EndLoc, 511 ScopeName, ScopeLoc, Syntax); 512 break; 513 } 514 return !Attrs.empty() ? Attrs.begin()->getNumArgs() : 0; 515 } 516 517 bool Parser::ParseMicrosoftDeclSpecArgs(IdentifierInfo *AttrName, 518 SourceLocation AttrNameLoc, 519 ParsedAttributes &Attrs) { 520 // If the attribute isn't known, we will not attempt to parse any 521 // arguments. 522 if (!hasAttribute(AttrSyntax::Declspec, nullptr, AttrName, 523 getTargetInfo(), getLangOpts())) { 524 // Eat the left paren, then skip to the ending right paren. 525 ConsumeParen(); 526 SkipUntil(tok::r_paren); 527 return false; 528 } 529 530 SourceLocation OpenParenLoc = Tok.getLocation(); 531 532 if (AttrName->getName() == "property") { 533 // The property declspec is more complex in that it can take one or two 534 // assignment expressions as a parameter, but the lhs of the assignment 535 // must be named get or put. 536 537 BalancedDelimiterTracker T(*this, tok::l_paren); 538 T.expectAndConsume(diag::err_expected_lparen_after, 539 AttrName->getNameStart(), tok::r_paren); 540 541 enum AccessorKind { 542 AK_Invalid = -1, 543 AK_Put = 0, 544 AK_Get = 1 // indices into AccessorNames 545 }; 546 IdentifierInfo *AccessorNames[] = {nullptr, nullptr}; 547 bool HasInvalidAccessor = false; 548 549 // Parse the accessor specifications. 550 while (true) { 551 // Stop if this doesn't look like an accessor spec. 552 if (!Tok.is(tok::identifier)) { 553 // If the user wrote a completely empty list, use a special diagnostic. 554 if (Tok.is(tok::r_paren) && !HasInvalidAccessor && 555 AccessorNames[AK_Put] == nullptr && 556 AccessorNames[AK_Get] == nullptr) { 557 Diag(AttrNameLoc, diag::err_ms_property_no_getter_or_putter); 558 break; 559 } 560 561 Diag(Tok.getLocation(), diag::err_ms_property_unknown_accessor); 562 break; 563 } 564 565 AccessorKind Kind; 566 SourceLocation KindLoc = Tok.getLocation(); 567 StringRef KindStr = Tok.getIdentifierInfo()->getName(); 568 if (KindStr == "get") { 569 Kind = AK_Get; 570 } else if (KindStr == "put") { 571 Kind = AK_Put; 572 573 // Recover from the common mistake of using 'set' instead of 'put'. 574 } else if (KindStr == "set") { 575 Diag(KindLoc, diag::err_ms_property_has_set_accessor) 576 << FixItHint::CreateReplacement(KindLoc, "put"); 577 Kind = AK_Put; 578 579 // Handle the mistake of forgetting the accessor kind by skipping 580 // this accessor. 581 } else if (NextToken().is(tok::comma) || NextToken().is(tok::r_paren)) { 582 Diag(KindLoc, diag::err_ms_property_missing_accessor_kind); 583 ConsumeToken(); 584 HasInvalidAccessor = true; 585 goto next_property_accessor; 586 587 // Otherwise, complain about the unknown accessor kind. 588 } else { 589 Diag(KindLoc, diag::err_ms_property_unknown_accessor); 590 HasInvalidAccessor = true; 591 Kind = AK_Invalid; 592 593 // Try to keep parsing unless it doesn't look like an accessor spec. 594 if (!NextToken().is(tok::equal)) 595 break; 596 } 597 598 // Consume the identifier. 599 ConsumeToken(); 600 601 // Consume the '='. 602 if (!TryConsumeToken(tok::equal)) { 603 Diag(Tok.getLocation(), diag::err_ms_property_expected_equal) 604 << KindStr; 605 break; 606 } 607 608 // Expect the method name. 609 if (!Tok.is(tok::identifier)) { 610 Diag(Tok.getLocation(), diag::err_ms_property_expected_accessor_name); 611 break; 612 } 613 614 if (Kind == AK_Invalid) { 615 // Just drop invalid accessors. 616 } else if (AccessorNames[Kind] != nullptr) { 617 // Complain about the repeated accessor, ignore it, and keep parsing. 618 Diag(KindLoc, diag::err_ms_property_duplicate_accessor) << KindStr; 619 } else { 620 AccessorNames[Kind] = Tok.getIdentifierInfo(); 621 } 622 ConsumeToken(); 623 624 next_property_accessor: 625 // Keep processing accessors until we run out. 626 if (TryConsumeToken(tok::comma)) 627 continue; 628 629 // If we run into the ')', stop without consuming it. 630 if (Tok.is(tok::r_paren)) 631 break; 632 633 Diag(Tok.getLocation(), diag::err_ms_property_expected_comma_or_rparen); 634 break; 635 } 636 637 // Only add the property attribute if it was well-formed. 638 if (!HasInvalidAccessor) 639 Attrs.addNewPropertyAttr(AttrName, AttrNameLoc, nullptr, SourceLocation(), 640 AccessorNames[AK_Get], AccessorNames[AK_Put], 641 ParsedAttr::AS_Declspec); 642 T.skipToEnd(); 643 return !HasInvalidAccessor; 644 } 645 646 unsigned NumArgs = 647 ParseAttributeArgsCommon(AttrName, AttrNameLoc, Attrs, nullptr, nullptr, 648 SourceLocation(), ParsedAttr::AS_Declspec); 649 650 // If this attribute's args were parsed, and it was expected to have 651 // arguments but none were provided, emit a diagnostic. 652 if (!Attrs.empty() && Attrs.begin()->getMaxArgs() && !NumArgs) { 653 Diag(OpenParenLoc, diag::err_attribute_requires_arguments) << AttrName; 654 return false; 655 } 656 return true; 657 } 658 659 /// [MS] decl-specifier: 660 /// __declspec ( extended-decl-modifier-seq ) 661 /// 662 /// [MS] extended-decl-modifier-seq: 663 /// extended-decl-modifier[opt] 664 /// extended-decl-modifier extended-decl-modifier-seq 665 void Parser::ParseMicrosoftDeclSpecs(ParsedAttributes &Attrs, 666 SourceLocation *End) { 667 assert(getLangOpts().DeclSpecKeyword && "__declspec keyword is not enabled"); 668 assert(Tok.is(tok::kw___declspec) && "Not a declspec!"); 669 670 while (Tok.is(tok::kw___declspec)) { 671 ConsumeToken(); 672 BalancedDelimiterTracker T(*this, tok::l_paren); 673 if (T.expectAndConsume(diag::err_expected_lparen_after, "__declspec", 674 tok::r_paren)) 675 return; 676 677 // An empty declspec is perfectly legal and should not warn. Additionally, 678 // you can specify multiple attributes per declspec. 679 while (Tok.isNot(tok::r_paren)) { 680 // Attribute not present. 681 if (TryConsumeToken(tok::comma)) 682 continue; 683 684 // We expect either a well-known identifier or a generic string. Anything 685 // else is a malformed declspec. 686 bool IsString = Tok.getKind() == tok::string_literal; 687 if (!IsString && Tok.getKind() != tok::identifier && 688 Tok.getKind() != tok::kw_restrict) { 689 Diag(Tok, diag::err_ms_declspec_type); 690 T.skipToEnd(); 691 return; 692 } 693 694 IdentifierInfo *AttrName; 695 SourceLocation AttrNameLoc; 696 if (IsString) { 697 SmallString<8> StrBuffer; 698 bool Invalid = false; 699 StringRef Str = PP.getSpelling(Tok, StrBuffer, &Invalid); 700 if (Invalid) { 701 T.skipToEnd(); 702 return; 703 } 704 AttrName = PP.getIdentifierInfo(Str); 705 AttrNameLoc = ConsumeStringToken(); 706 } else { 707 AttrName = Tok.getIdentifierInfo(); 708 AttrNameLoc = ConsumeToken(); 709 } 710 711 bool AttrHandled = false; 712 713 // Parse attribute arguments. 714 if (Tok.is(tok::l_paren)) 715 AttrHandled = ParseMicrosoftDeclSpecArgs(AttrName, AttrNameLoc, Attrs); 716 else if (AttrName->getName() == "property") 717 // The property attribute must have an argument list. 718 Diag(Tok.getLocation(), diag::err_expected_lparen_after) 719 << AttrName->getName(); 720 721 if (!AttrHandled) 722 Attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 723 ParsedAttr::AS_Declspec); 724 } 725 T.consumeClose(); 726 if (End) 727 *End = T.getCloseLocation(); 728 } 729 } 730 731 void Parser::ParseMicrosoftTypeAttributes(ParsedAttributes &attrs) { 732 // Treat these like attributes 733 while (true) { 734 switch (Tok.getKind()) { 735 case tok::kw___fastcall: 736 case tok::kw___stdcall: 737 case tok::kw___thiscall: 738 case tok::kw___regcall: 739 case tok::kw___cdecl: 740 case tok::kw___vectorcall: 741 case tok::kw___ptr64: 742 case tok::kw___w64: 743 case tok::kw___ptr32: 744 case tok::kw___sptr: 745 case tok::kw___uptr: { 746 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 747 SourceLocation AttrNameLoc = ConsumeToken(); 748 attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 749 ParsedAttr::AS_Keyword); 750 break; 751 } 752 default: 753 return; 754 } 755 } 756 } 757 758 void Parser::DiagnoseAndSkipExtendedMicrosoftTypeAttributes() { 759 SourceLocation StartLoc = Tok.getLocation(); 760 SourceLocation EndLoc = SkipExtendedMicrosoftTypeAttributes(); 761 762 if (EndLoc.isValid()) { 763 SourceRange Range(StartLoc, EndLoc); 764 Diag(StartLoc, diag::warn_microsoft_qualifiers_ignored) << Range; 765 } 766 } 767 768 SourceLocation Parser::SkipExtendedMicrosoftTypeAttributes() { 769 SourceLocation EndLoc; 770 771 while (true) { 772 switch (Tok.getKind()) { 773 case tok::kw_const: 774 case tok::kw_volatile: 775 case tok::kw___fastcall: 776 case tok::kw___stdcall: 777 case tok::kw___thiscall: 778 case tok::kw___cdecl: 779 case tok::kw___vectorcall: 780 case tok::kw___ptr32: 781 case tok::kw___ptr64: 782 case tok::kw___w64: 783 case tok::kw___unaligned: 784 case tok::kw___sptr: 785 case tok::kw___uptr: 786 EndLoc = ConsumeToken(); 787 break; 788 default: 789 return EndLoc; 790 } 791 } 792 } 793 794 void Parser::ParseBorlandTypeAttributes(ParsedAttributes &attrs) { 795 // Treat these like attributes 796 while (Tok.is(tok::kw___pascal)) { 797 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 798 SourceLocation AttrNameLoc = ConsumeToken(); 799 attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 800 ParsedAttr::AS_Keyword); 801 } 802 } 803 804 void Parser::ParseOpenCLKernelAttributes(ParsedAttributes &attrs) { 805 // Treat these like attributes 806 while (Tok.is(tok::kw___kernel)) { 807 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 808 SourceLocation AttrNameLoc = ConsumeToken(); 809 attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 810 ParsedAttr::AS_Keyword); 811 } 812 } 813 814 void Parser::ParseOpenCLQualifiers(ParsedAttributes &Attrs) { 815 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 816 SourceLocation AttrNameLoc = Tok.getLocation(); 817 Attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 818 ParsedAttr::AS_Keyword); 819 } 820 821 void Parser::ParseNullabilityTypeSpecifiers(ParsedAttributes &attrs) { 822 // Treat these like attributes, even though they're type specifiers. 823 while (true) { 824 switch (Tok.getKind()) { 825 case tok::kw__Nonnull: 826 case tok::kw__Nullable: 827 case tok::kw__Null_unspecified: { 828 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 829 SourceLocation AttrNameLoc = ConsumeToken(); 830 if (!getLangOpts().ObjC) 831 Diag(AttrNameLoc, diag::ext_nullability) 832 << AttrName; 833 attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0, 834 ParsedAttr::AS_Keyword); 835 break; 836 } 837 default: 838 return; 839 } 840 } 841 } 842 843 static bool VersionNumberSeparator(const char Separator) { 844 return (Separator == '.' || Separator == '_'); 845 } 846 847 /// Parse a version number. 848 /// 849 /// version: 850 /// simple-integer 851 /// simple-integer '.' simple-integer 852 /// simple-integer '_' simple-integer 853 /// simple-integer '.' simple-integer '.' simple-integer 854 /// simple-integer '_' simple-integer '_' simple-integer 855 VersionTuple Parser::ParseVersionTuple(SourceRange &Range) { 856 Range = SourceRange(Tok.getLocation(), Tok.getEndLoc()); 857 858 if (!Tok.is(tok::numeric_constant)) { 859 Diag(Tok, diag::err_expected_version); 860 SkipUntil(tok::comma, tok::r_paren, 861 StopAtSemi | StopBeforeMatch | StopAtCodeCompletion); 862 return VersionTuple(); 863 } 864 865 // Parse the major (and possibly minor and subminor) versions, which 866 // are stored in the numeric constant. We utilize a quirk of the 867 // lexer, which is that it handles something like 1.2.3 as a single 868 // numeric constant, rather than two separate tokens. 869 SmallString<512> Buffer; 870 Buffer.resize(Tok.getLength()+1); 871 const char *ThisTokBegin = &Buffer[0]; 872 873 // Get the spelling of the token, which eliminates trigraphs, etc. 874 bool Invalid = false; 875 unsigned ActualLength = PP.getSpelling(Tok, ThisTokBegin, &Invalid); 876 if (Invalid) 877 return VersionTuple(); 878 879 // Parse the major version. 880 unsigned AfterMajor = 0; 881 unsigned Major = 0; 882 while (AfterMajor < ActualLength && isDigit(ThisTokBegin[AfterMajor])) { 883 Major = Major * 10 + ThisTokBegin[AfterMajor] - '0'; 884 ++AfterMajor; 885 } 886 887 if (AfterMajor == 0) { 888 Diag(Tok, diag::err_expected_version); 889 SkipUntil(tok::comma, tok::r_paren, 890 StopAtSemi | StopBeforeMatch | StopAtCodeCompletion); 891 return VersionTuple(); 892 } 893 894 if (AfterMajor == ActualLength) { 895 ConsumeToken(); 896 897 // We only had a single version component. 898 if (Major == 0) { 899 Diag(Tok, diag::err_zero_version); 900 return VersionTuple(); 901 } 902 903 return VersionTuple(Major); 904 } 905 906 const char AfterMajorSeparator = ThisTokBegin[AfterMajor]; 907 if (!VersionNumberSeparator(AfterMajorSeparator) 908 || (AfterMajor + 1 == ActualLength)) { 909 Diag(Tok, diag::err_expected_version); 910 SkipUntil(tok::comma, tok::r_paren, 911 StopAtSemi | StopBeforeMatch | StopAtCodeCompletion); 912 return VersionTuple(); 913 } 914 915 // Parse the minor version. 916 unsigned AfterMinor = AfterMajor + 1; 917 unsigned Minor = 0; 918 while (AfterMinor < ActualLength && isDigit(ThisTokBegin[AfterMinor])) { 919 Minor = Minor * 10 + ThisTokBegin[AfterMinor] - '0'; 920 ++AfterMinor; 921 } 922 923 if (AfterMinor == ActualLength) { 924 ConsumeToken(); 925 926 // We had major.minor. 927 if (Major == 0 && Minor == 0) { 928 Diag(Tok, diag::err_zero_version); 929 return VersionTuple(); 930 } 931 932 return VersionTuple(Major, Minor); 933 } 934 935 const char AfterMinorSeparator = ThisTokBegin[AfterMinor]; 936 // If what follows is not a '.' or '_', we have a problem. 937 if (!VersionNumberSeparator(AfterMinorSeparator)) { 938 Diag(Tok, diag::err_expected_version); 939 SkipUntil(tok::comma, tok::r_paren, 940 StopAtSemi | StopBeforeMatch | StopAtCodeCompletion); 941 return VersionTuple(); 942 } 943 944 // Warn if separators, be it '.' or '_', do not match. 945 if (AfterMajorSeparator != AfterMinorSeparator) 946 Diag(Tok, diag::warn_expected_consistent_version_separator); 947 948 // Parse the subminor version. 949 unsigned AfterSubminor = AfterMinor + 1; 950 unsigned Subminor = 0; 951 while (AfterSubminor < ActualLength && isDigit(ThisTokBegin[AfterSubminor])) { 952 Subminor = Subminor * 10 + ThisTokBegin[AfterSubminor] - '0'; 953 ++AfterSubminor; 954 } 955 956 if (AfterSubminor != ActualLength) { 957 Diag(Tok, diag::err_expected_version); 958 SkipUntil(tok::comma, tok::r_paren, 959 StopAtSemi | StopBeforeMatch | StopAtCodeCompletion); 960 return VersionTuple(); 961 } 962 ConsumeToken(); 963 return VersionTuple(Major, Minor, Subminor); 964 } 965 966 /// Parse the contents of the "availability" attribute. 967 /// 968 /// availability-attribute: 969 /// 'availability' '(' platform ',' opt-strict version-arg-list, 970 /// opt-replacement, opt-message')' 971 /// 972 /// platform: 973 /// identifier 974 /// 975 /// opt-strict: 976 /// 'strict' ',' 977 /// 978 /// version-arg-list: 979 /// version-arg 980 /// version-arg ',' version-arg-list 981 /// 982 /// version-arg: 983 /// 'introduced' '=' version 984 /// 'deprecated' '=' version 985 /// 'obsoleted' = version 986 /// 'unavailable' 987 /// opt-replacement: 988 /// 'replacement' '=' <string> 989 /// opt-message: 990 /// 'message' '=' <string> 991 void Parser::ParseAvailabilityAttribute(IdentifierInfo &Availability, 992 SourceLocation AvailabilityLoc, 993 ParsedAttributes &attrs, 994 SourceLocation *endLoc, 995 IdentifierInfo *ScopeName, 996 SourceLocation ScopeLoc, 997 ParsedAttr::Syntax Syntax) { 998 enum { Introduced, Deprecated, Obsoleted, Unknown }; 999 AvailabilityChange Changes[Unknown]; 1000 ExprResult MessageExpr, ReplacementExpr; 1001 1002 // Opening '('. 1003 BalancedDelimiterTracker T(*this, tok::l_paren); 1004 if (T.consumeOpen()) { 1005 Diag(Tok, diag::err_expected) << tok::l_paren; 1006 return; 1007 } 1008 1009 // Parse the platform name. 1010 if (Tok.isNot(tok::identifier)) { 1011 Diag(Tok, diag::err_availability_expected_platform); 1012 SkipUntil(tok::r_paren, StopAtSemi); 1013 return; 1014 } 1015 IdentifierLoc *Platform = ParseIdentifierLoc(); 1016 if (const IdentifierInfo *const Ident = Platform->Ident) { 1017 // Canonicalize platform name from "macosx" to "macos". 1018 if (Ident->getName() == "macosx") 1019 Platform->Ident = PP.getIdentifierInfo("macos"); 1020 // Canonicalize platform name from "macosx_app_extension" to 1021 // "macos_app_extension". 1022 else if (Ident->getName() == "macosx_app_extension") 1023 Platform->Ident = PP.getIdentifierInfo("macos_app_extension"); 1024 else 1025 Platform->Ident = PP.getIdentifierInfo( 1026 AvailabilityAttr::canonicalizePlatformName(Ident->getName())); 1027 } 1028 1029 // Parse the ',' following the platform name. 1030 if (ExpectAndConsume(tok::comma)) { 1031 SkipUntil(tok::r_paren, StopAtSemi); 1032 return; 1033 } 1034 1035 // If we haven't grabbed the pointers for the identifiers 1036 // "introduced", "deprecated", and "obsoleted", do so now. 1037 if (!Ident_introduced) { 1038 Ident_introduced = PP.getIdentifierInfo("introduced"); 1039 Ident_deprecated = PP.getIdentifierInfo("deprecated"); 1040 Ident_obsoleted = PP.getIdentifierInfo("obsoleted"); 1041 Ident_unavailable = PP.getIdentifierInfo("unavailable"); 1042 Ident_message = PP.getIdentifierInfo("message"); 1043 Ident_strict = PP.getIdentifierInfo("strict"); 1044 Ident_replacement = PP.getIdentifierInfo("replacement"); 1045 } 1046 1047 // Parse the optional "strict", the optional "replacement" and the set of 1048 // introductions/deprecations/removals. 1049 SourceLocation UnavailableLoc, StrictLoc; 1050 do { 1051 if (Tok.isNot(tok::identifier)) { 1052 Diag(Tok, diag::err_availability_expected_change); 1053 SkipUntil(tok::r_paren, StopAtSemi); 1054 return; 1055 } 1056 IdentifierInfo *Keyword = Tok.getIdentifierInfo(); 1057 SourceLocation KeywordLoc = ConsumeToken(); 1058 1059 if (Keyword == Ident_strict) { 1060 if (StrictLoc.isValid()) { 1061 Diag(KeywordLoc, diag::err_availability_redundant) 1062 << Keyword << SourceRange(StrictLoc); 1063 } 1064 StrictLoc = KeywordLoc; 1065 continue; 1066 } 1067 1068 if (Keyword == Ident_unavailable) { 1069 if (UnavailableLoc.isValid()) { 1070 Diag(KeywordLoc, diag::err_availability_redundant) 1071 << Keyword << SourceRange(UnavailableLoc); 1072 } 1073 UnavailableLoc = KeywordLoc; 1074 continue; 1075 } 1076 1077 if (Keyword == Ident_deprecated && Platform->Ident && 1078 Platform->Ident->isStr("swift")) { 1079 // For swift, we deprecate for all versions. 1080 if (Changes[Deprecated].KeywordLoc.isValid()) { 1081 Diag(KeywordLoc, diag::err_availability_redundant) 1082 << Keyword 1083 << SourceRange(Changes[Deprecated].KeywordLoc); 1084 } 1085 1086 Changes[Deprecated].KeywordLoc = KeywordLoc; 1087 // Use a fake version here. 1088 Changes[Deprecated].Version = VersionTuple(1); 1089 continue; 1090 } 1091 1092 if (Tok.isNot(tok::equal)) { 1093 Diag(Tok, diag::err_expected_after) << Keyword << tok::equal; 1094 SkipUntil(tok::r_paren, StopAtSemi); 1095 return; 1096 } 1097 ConsumeToken(); 1098 if (Keyword == Ident_message || Keyword == Ident_replacement) { 1099 if (Tok.isNot(tok::string_literal)) { 1100 Diag(Tok, diag::err_expected_string_literal) 1101 << /*Source='availability attribute'*/2; 1102 SkipUntil(tok::r_paren, StopAtSemi); 1103 return; 1104 } 1105 if (Keyword == Ident_message) 1106 MessageExpr = ParseStringLiteralExpression(); 1107 else 1108 ReplacementExpr = ParseStringLiteralExpression(); 1109 // Also reject wide string literals. 1110 if (StringLiteral *MessageStringLiteral = 1111 cast_or_null<StringLiteral>(MessageExpr.get())) { 1112 if (MessageStringLiteral->getCharByteWidth() != 1) { 1113 Diag(MessageStringLiteral->getSourceRange().getBegin(), 1114 diag::err_expected_string_literal) 1115 << /*Source='availability attribute'*/ 2; 1116 SkipUntil(tok::r_paren, StopAtSemi); 1117 return; 1118 } 1119 } 1120 if (Keyword == Ident_message) 1121 break; 1122 else 1123 continue; 1124 } 1125 1126 // Special handling of 'NA' only when applied to introduced or 1127 // deprecated. 1128 if ((Keyword == Ident_introduced || Keyword == Ident_deprecated) && 1129 Tok.is(tok::identifier)) { 1130 IdentifierInfo *NA = Tok.getIdentifierInfo(); 1131 if (NA->getName() == "NA") { 1132 ConsumeToken(); 1133 if (Keyword == Ident_introduced) 1134 UnavailableLoc = KeywordLoc; 1135 continue; 1136 } 1137 } 1138 1139 SourceRange VersionRange; 1140 VersionTuple Version = ParseVersionTuple(VersionRange); 1141 1142 if (Version.empty()) { 1143 SkipUntil(tok::r_paren, StopAtSemi); 1144 return; 1145 } 1146 1147 unsigned Index; 1148 if (Keyword == Ident_introduced) 1149 Index = Introduced; 1150 else if (Keyword == Ident_deprecated) 1151 Index = Deprecated; 1152 else if (Keyword == Ident_obsoleted) 1153 Index = Obsoleted; 1154 else 1155 Index = Unknown; 1156 1157 if (Index < Unknown) { 1158 if (!Changes[Index].KeywordLoc.isInvalid()) { 1159 Diag(KeywordLoc, diag::err_availability_redundant) 1160 << Keyword 1161 << SourceRange(Changes[Index].KeywordLoc, 1162 Changes[Index].VersionRange.getEnd()); 1163 } 1164 1165 Changes[Index].KeywordLoc = KeywordLoc; 1166 Changes[Index].Version = Version; 1167 Changes[Index].VersionRange = VersionRange; 1168 } else { 1169 Diag(KeywordLoc, diag::err_availability_unknown_change) 1170 << Keyword << VersionRange; 1171 } 1172 1173 } while (TryConsumeToken(tok::comma)); 1174 1175 // Closing ')'. 1176 if (T.consumeClose()) 1177 return; 1178 1179 if (endLoc) 1180 *endLoc = T.getCloseLocation(); 1181 1182 // The 'unavailable' availability cannot be combined with any other 1183 // availability changes. Make sure that hasn't happened. 1184 if (UnavailableLoc.isValid()) { 1185 bool Complained = false; 1186 for (unsigned Index = Introduced; Index != Unknown; ++Index) { 1187 if (Changes[Index].KeywordLoc.isValid()) { 1188 if (!Complained) { 1189 Diag(UnavailableLoc, diag::warn_availability_and_unavailable) 1190 << SourceRange(Changes[Index].KeywordLoc, 1191 Changes[Index].VersionRange.getEnd()); 1192 Complained = true; 1193 } 1194 1195 // Clear out the availability. 1196 Changes[Index] = AvailabilityChange(); 1197 } 1198 } 1199 } 1200 1201 // Record this attribute 1202 attrs.addNew(&Availability, 1203 SourceRange(AvailabilityLoc, T.getCloseLocation()), 1204 ScopeName, ScopeLoc, 1205 Platform, 1206 Changes[Introduced], 1207 Changes[Deprecated], 1208 Changes[Obsoleted], 1209 UnavailableLoc, MessageExpr.get(), 1210 Syntax, StrictLoc, ReplacementExpr.get()); 1211 } 1212 1213 /// Parse the contents of the "external_source_symbol" attribute. 1214 /// 1215 /// external-source-symbol-attribute: 1216 /// 'external_source_symbol' '(' keyword-arg-list ')' 1217 /// 1218 /// keyword-arg-list: 1219 /// keyword-arg 1220 /// keyword-arg ',' keyword-arg-list 1221 /// 1222 /// keyword-arg: 1223 /// 'language' '=' <string> 1224 /// 'defined_in' '=' <string> 1225 /// 'generated_declaration' 1226 void Parser::ParseExternalSourceSymbolAttribute( 1227 IdentifierInfo &ExternalSourceSymbol, SourceLocation Loc, 1228 ParsedAttributes &Attrs, SourceLocation *EndLoc, IdentifierInfo *ScopeName, 1229 SourceLocation ScopeLoc, ParsedAttr::Syntax Syntax) { 1230 // Opening '('. 1231 BalancedDelimiterTracker T(*this, tok::l_paren); 1232 if (T.expectAndConsume()) 1233 return; 1234 1235 // Initialize the pointers for the keyword identifiers when required. 1236 if (!Ident_language) { 1237 Ident_language = PP.getIdentifierInfo("language"); 1238 Ident_defined_in = PP.getIdentifierInfo("defined_in"); 1239 Ident_generated_declaration = PP.getIdentifierInfo("generated_declaration"); 1240 } 1241 1242 ExprResult Language; 1243 bool HasLanguage = false; 1244 ExprResult DefinedInExpr; 1245 bool HasDefinedIn = false; 1246 IdentifierLoc *GeneratedDeclaration = nullptr; 1247 1248 // Parse the language/defined_in/generated_declaration keywords 1249 do { 1250 if (Tok.isNot(tok::identifier)) { 1251 Diag(Tok, diag::err_external_source_symbol_expected_keyword); 1252 SkipUntil(tok::r_paren, StopAtSemi); 1253 return; 1254 } 1255 1256 SourceLocation KeywordLoc = Tok.getLocation(); 1257 IdentifierInfo *Keyword = Tok.getIdentifierInfo(); 1258 if (Keyword == Ident_generated_declaration) { 1259 if (GeneratedDeclaration) { 1260 Diag(Tok, diag::err_external_source_symbol_duplicate_clause) << Keyword; 1261 SkipUntil(tok::r_paren, StopAtSemi); 1262 return; 1263 } 1264 GeneratedDeclaration = ParseIdentifierLoc(); 1265 continue; 1266 } 1267 1268 if (Keyword != Ident_language && Keyword != Ident_defined_in) { 1269 Diag(Tok, diag::err_external_source_symbol_expected_keyword); 1270 SkipUntil(tok::r_paren, StopAtSemi); 1271 return; 1272 } 1273 1274 ConsumeToken(); 1275 if (ExpectAndConsume(tok::equal, diag::err_expected_after, 1276 Keyword->getName())) { 1277 SkipUntil(tok::r_paren, StopAtSemi); 1278 return; 1279 } 1280 1281 bool HadLanguage = HasLanguage, HadDefinedIn = HasDefinedIn; 1282 if (Keyword == Ident_language) 1283 HasLanguage = true; 1284 else 1285 HasDefinedIn = true; 1286 1287 if (Tok.isNot(tok::string_literal)) { 1288 Diag(Tok, diag::err_expected_string_literal) 1289 << /*Source='external_source_symbol attribute'*/ 3 1290 << /*language | source container*/ (Keyword != Ident_language); 1291 SkipUntil(tok::comma, tok::r_paren, StopAtSemi | StopBeforeMatch); 1292 continue; 1293 } 1294 if (Keyword == Ident_language) { 1295 if (HadLanguage) { 1296 Diag(KeywordLoc, diag::err_external_source_symbol_duplicate_clause) 1297 << Keyword; 1298 ParseStringLiteralExpression(); 1299 continue; 1300 } 1301 Language = ParseStringLiteralExpression(); 1302 } else { 1303 assert(Keyword == Ident_defined_in && "Invalid clause keyword!"); 1304 if (HadDefinedIn) { 1305 Diag(KeywordLoc, diag::err_external_source_symbol_duplicate_clause) 1306 << Keyword; 1307 ParseStringLiteralExpression(); 1308 continue; 1309 } 1310 DefinedInExpr = ParseStringLiteralExpression(); 1311 } 1312 } while (TryConsumeToken(tok::comma)); 1313 1314 // Closing ')'. 1315 if (T.consumeClose()) 1316 return; 1317 if (EndLoc) 1318 *EndLoc = T.getCloseLocation(); 1319 1320 ArgsUnion Args[] = {Language.get(), DefinedInExpr.get(), 1321 GeneratedDeclaration}; 1322 Attrs.addNew(&ExternalSourceSymbol, SourceRange(Loc, T.getCloseLocation()), 1323 ScopeName, ScopeLoc, Args, llvm::array_lengthof(Args), Syntax); 1324 } 1325 1326 /// Parse the contents of the "objc_bridge_related" attribute. 1327 /// objc_bridge_related '(' related_class ',' opt-class_method ',' opt-instance_method ')' 1328 /// related_class: 1329 /// Identifier 1330 /// 1331 /// opt-class_method: 1332 /// Identifier: | <empty> 1333 /// 1334 /// opt-instance_method: 1335 /// Identifier | <empty> 1336 /// 1337 void Parser::ParseObjCBridgeRelatedAttribute(IdentifierInfo &ObjCBridgeRelated, 1338 SourceLocation ObjCBridgeRelatedLoc, 1339 ParsedAttributes &attrs, 1340 SourceLocation *endLoc, 1341 IdentifierInfo *ScopeName, 1342 SourceLocation ScopeLoc, 1343 ParsedAttr::Syntax Syntax) { 1344 // Opening '('. 1345 BalancedDelimiterTracker T(*this, tok::l_paren); 1346 if (T.consumeOpen()) { 1347 Diag(Tok, diag::err_expected) << tok::l_paren; 1348 return; 1349 } 1350 1351 // Parse the related class name. 1352 if (Tok.isNot(tok::identifier)) { 1353 Diag(Tok, diag::err_objcbridge_related_expected_related_class); 1354 SkipUntil(tok::r_paren, StopAtSemi); 1355 return; 1356 } 1357 IdentifierLoc *RelatedClass = ParseIdentifierLoc(); 1358 if (ExpectAndConsume(tok::comma)) { 1359 SkipUntil(tok::r_paren, StopAtSemi); 1360 return; 1361 } 1362 1363 // Parse class method name. It's non-optional in the sense that a trailing 1364 // comma is required, but it can be the empty string, and then we record a 1365 // nullptr. 1366 IdentifierLoc *ClassMethod = nullptr; 1367 if (Tok.is(tok::identifier)) { 1368 ClassMethod = ParseIdentifierLoc(); 1369 if (!TryConsumeToken(tok::colon)) { 1370 Diag(Tok, diag::err_objcbridge_related_selector_name); 1371 SkipUntil(tok::r_paren, StopAtSemi); 1372 return; 1373 } 1374 } 1375 if (!TryConsumeToken(tok::comma)) { 1376 if (Tok.is(tok::colon)) 1377 Diag(Tok, diag::err_objcbridge_related_selector_name); 1378 else 1379 Diag(Tok, diag::err_expected) << tok::comma; 1380 SkipUntil(tok::r_paren, StopAtSemi); 1381 return; 1382 } 1383 1384 // Parse instance method name. Also non-optional but empty string is 1385 // permitted. 1386 IdentifierLoc *InstanceMethod = nullptr; 1387 if (Tok.is(tok::identifier)) 1388 InstanceMethod = ParseIdentifierLoc(); 1389 else if (Tok.isNot(tok::r_paren)) { 1390 Diag(Tok, diag::err_expected) << tok::r_paren; 1391 SkipUntil(tok::r_paren, StopAtSemi); 1392 return; 1393 } 1394 1395 // Closing ')'. 1396 if (T.consumeClose()) 1397 return; 1398 1399 if (endLoc) 1400 *endLoc = T.getCloseLocation(); 1401 1402 // Record this attribute 1403 attrs.addNew(&ObjCBridgeRelated, 1404 SourceRange(ObjCBridgeRelatedLoc, T.getCloseLocation()), 1405 ScopeName, ScopeLoc, 1406 RelatedClass, 1407 ClassMethod, 1408 InstanceMethod, 1409 Syntax); 1410 } 1411 1412 // Late Parsed Attributes: 1413 // See other examples of late parsing in lib/Parse/ParseCXXInlineMethods 1414 1415 void Parser::LateParsedDeclaration::ParseLexedAttributes() {} 1416 1417 void Parser::LateParsedClass::ParseLexedAttributes() { 1418 Self->ParseLexedAttributes(*Class); 1419 } 1420 1421 void Parser::LateParsedAttribute::ParseLexedAttributes() { 1422 Self->ParseLexedAttribute(*this, true, false); 1423 } 1424 1425 /// Wrapper class which calls ParseLexedAttribute, after setting up the 1426 /// scope appropriately. 1427 void Parser::ParseLexedAttributes(ParsingClass &Class) { 1428 // Deal with templates 1429 // FIXME: Test cases to make sure this does the right thing for templates. 1430 bool HasTemplateScope = !Class.TopLevelClass && Class.TemplateScope; 1431 ParseScope ClassTemplateScope(this, Scope::TemplateParamScope, 1432 HasTemplateScope); 1433 if (HasTemplateScope) 1434 Actions.ActOnReenterTemplateScope(getCurScope(), Class.TagOrTemplate); 1435 1436 // Set or update the scope flags. 1437 bool AlreadyHasClassScope = Class.TopLevelClass; 1438 unsigned ScopeFlags = Scope::ClassScope|Scope::DeclScope; 1439 ParseScope ClassScope(this, ScopeFlags, !AlreadyHasClassScope); 1440 ParseScopeFlags ClassScopeFlags(this, ScopeFlags, AlreadyHasClassScope); 1441 1442 // Enter the scope of nested classes 1443 if (!AlreadyHasClassScope) 1444 Actions.ActOnStartDelayedMemberDeclarations(getCurScope(), 1445 Class.TagOrTemplate); 1446 if (!Class.LateParsedDeclarations.empty()) { 1447 for (unsigned i = 0, ni = Class.LateParsedDeclarations.size(); i < ni; ++i){ 1448 Class.LateParsedDeclarations[i]->ParseLexedAttributes(); 1449 } 1450 } 1451 1452 if (!AlreadyHasClassScope) 1453 Actions.ActOnFinishDelayedMemberDeclarations(getCurScope(), 1454 Class.TagOrTemplate); 1455 } 1456 1457 /// Parse all attributes in LAs, and attach them to Decl D. 1458 void Parser::ParseLexedAttributeList(LateParsedAttrList &LAs, Decl *D, 1459 bool EnterScope, bool OnDefinition) { 1460 assert(LAs.parseSoon() && 1461 "Attribute list should be marked for immediate parsing."); 1462 for (unsigned i = 0, ni = LAs.size(); i < ni; ++i) { 1463 if (D) 1464 LAs[i]->addDecl(D); 1465 ParseLexedAttribute(*LAs[i], EnterScope, OnDefinition); 1466 delete LAs[i]; 1467 } 1468 LAs.clear(); 1469 } 1470 1471 /// Finish parsing an attribute for which parsing was delayed. 1472 /// This will be called at the end of parsing a class declaration 1473 /// for each LateParsedAttribute. We consume the saved tokens and 1474 /// create an attribute with the arguments filled in. We add this 1475 /// to the Attribute list for the decl. 1476 void Parser::ParseLexedAttribute(LateParsedAttribute &LA, 1477 bool EnterScope, bool OnDefinition) { 1478 // Create a fake EOF so that attribute parsing won't go off the end of the 1479 // attribute. 1480 Token AttrEnd; 1481 AttrEnd.startToken(); 1482 AttrEnd.setKind(tok::eof); 1483 AttrEnd.setLocation(Tok.getLocation()); 1484 AttrEnd.setEofData(LA.Toks.data()); 1485 LA.Toks.push_back(AttrEnd); 1486 1487 // Append the current token at the end of the new token stream so that it 1488 // doesn't get lost. 1489 LA.Toks.push_back(Tok); 1490 PP.EnterTokenStream(LA.Toks, true, /*IsReinject=*/true); 1491 // Consume the previously pushed token. 1492 ConsumeAnyToken(/*ConsumeCodeCompletionTok=*/true); 1493 1494 ParsedAttributes Attrs(AttrFactory); 1495 SourceLocation endLoc; 1496 1497 if (LA.Decls.size() > 0) { 1498 Decl *D = LA.Decls[0]; 1499 NamedDecl *ND = dyn_cast<NamedDecl>(D); 1500 RecordDecl *RD = dyn_cast_or_null<RecordDecl>(D->getDeclContext()); 1501 1502 // Allow 'this' within late-parsed attributes. 1503 Sema::CXXThisScopeRAII ThisScope(Actions, RD, Qualifiers(), 1504 ND && ND->isCXXInstanceMember()); 1505 1506 if (LA.Decls.size() == 1) { 1507 // If the Decl is templatized, add template parameters to scope. 1508 bool HasTemplateScope = EnterScope && D->isTemplateDecl(); 1509 ParseScope TempScope(this, Scope::TemplateParamScope, HasTemplateScope); 1510 if (HasTemplateScope) 1511 Actions.ActOnReenterTemplateScope(Actions.CurScope, D); 1512 1513 // If the Decl is on a function, add function parameters to the scope. 1514 bool HasFunScope = EnterScope && D->isFunctionOrFunctionTemplate(); 1515 ParseScope FnScope( 1516 this, Scope::FnScope | Scope::DeclScope | Scope::CompoundStmtScope, 1517 HasFunScope); 1518 if (HasFunScope) 1519 Actions.ActOnReenterFunctionContext(Actions.CurScope, D); 1520 1521 ParseGNUAttributeArgs(&LA.AttrName, LA.AttrNameLoc, Attrs, &endLoc, 1522 nullptr, SourceLocation(), ParsedAttr::AS_GNU, 1523 nullptr); 1524 1525 if (HasFunScope) { 1526 Actions.ActOnExitFunctionContext(); 1527 FnScope.Exit(); // Pop scope, and remove Decls from IdResolver 1528 } 1529 if (HasTemplateScope) { 1530 TempScope.Exit(); 1531 } 1532 } else { 1533 // If there are multiple decls, then the decl cannot be within the 1534 // function scope. 1535 ParseGNUAttributeArgs(&LA.AttrName, LA.AttrNameLoc, Attrs, &endLoc, 1536 nullptr, SourceLocation(), ParsedAttr::AS_GNU, 1537 nullptr); 1538 } 1539 } else { 1540 Diag(Tok, diag::warn_attribute_no_decl) << LA.AttrName.getName(); 1541 } 1542 1543 if (OnDefinition && !Attrs.empty() && !Attrs.begin()->isCXX11Attribute() && 1544 Attrs.begin()->isKnownToGCC()) 1545 Diag(Tok, diag::warn_attribute_on_function_definition) 1546 << &LA.AttrName; 1547 1548 for (unsigned i = 0, ni = LA.Decls.size(); i < ni; ++i) 1549 Actions.ActOnFinishDelayedAttribute(getCurScope(), LA.Decls[i], Attrs); 1550 1551 // Due to a parsing error, we either went over the cached tokens or 1552 // there are still cached tokens left, so we skip the leftover tokens. 1553 while (Tok.isNot(tok::eof)) 1554 ConsumeAnyToken(); 1555 1556 if (Tok.is(tok::eof) && Tok.getEofData() == AttrEnd.getEofData()) 1557 ConsumeAnyToken(); 1558 } 1559 1560 void Parser::ParseTypeTagForDatatypeAttribute(IdentifierInfo &AttrName, 1561 SourceLocation AttrNameLoc, 1562 ParsedAttributes &Attrs, 1563 SourceLocation *EndLoc, 1564 IdentifierInfo *ScopeName, 1565 SourceLocation ScopeLoc, 1566 ParsedAttr::Syntax Syntax) { 1567 assert(Tok.is(tok::l_paren) && "Attribute arg list not starting with '('"); 1568 1569 BalancedDelimiterTracker T(*this, tok::l_paren); 1570 T.consumeOpen(); 1571 1572 if (Tok.isNot(tok::identifier)) { 1573 Diag(Tok, diag::err_expected) << tok::identifier; 1574 T.skipToEnd(); 1575 return; 1576 } 1577 IdentifierLoc *ArgumentKind = ParseIdentifierLoc(); 1578 1579 if (ExpectAndConsume(tok::comma)) { 1580 T.skipToEnd(); 1581 return; 1582 } 1583 1584 SourceRange MatchingCTypeRange; 1585 TypeResult MatchingCType = ParseTypeName(&MatchingCTypeRange); 1586 if (MatchingCType.isInvalid()) { 1587 T.skipToEnd(); 1588 return; 1589 } 1590 1591 bool LayoutCompatible = false; 1592 bool MustBeNull = false; 1593 while (TryConsumeToken(tok::comma)) { 1594 if (Tok.isNot(tok::identifier)) { 1595 Diag(Tok, diag::err_expected) << tok::identifier; 1596 T.skipToEnd(); 1597 return; 1598 } 1599 IdentifierInfo *Flag = Tok.getIdentifierInfo(); 1600 if (Flag->isStr("layout_compatible")) 1601 LayoutCompatible = true; 1602 else if (Flag->isStr("must_be_null")) 1603 MustBeNull = true; 1604 else { 1605 Diag(Tok, diag::err_type_safety_unknown_flag) << Flag; 1606 T.skipToEnd(); 1607 return; 1608 } 1609 ConsumeToken(); // consume flag 1610 } 1611 1612 if (!T.consumeClose()) { 1613 Attrs.addNewTypeTagForDatatype(&AttrName, AttrNameLoc, ScopeName, ScopeLoc, 1614 ArgumentKind, MatchingCType.get(), 1615 LayoutCompatible, MustBeNull, Syntax); 1616 } 1617 1618 if (EndLoc) 1619 *EndLoc = T.getCloseLocation(); 1620 } 1621 1622 /// DiagnoseProhibitedCXX11Attribute - We have found the opening square brackets 1623 /// of a C++11 attribute-specifier in a location where an attribute is not 1624 /// permitted. By C++11 [dcl.attr.grammar]p6, this is ill-formed. Diagnose this 1625 /// situation. 1626 /// 1627 /// \return \c true if we skipped an attribute-like chunk of tokens, \c false if 1628 /// this doesn't appear to actually be an attribute-specifier, and the caller 1629 /// should try to parse it. 1630 bool Parser::DiagnoseProhibitedCXX11Attribute() { 1631 assert(Tok.is(tok::l_square) && NextToken().is(tok::l_square)); 1632 1633 switch (isCXX11AttributeSpecifier(/*Disambiguate*/true)) { 1634 case CAK_NotAttributeSpecifier: 1635 // No diagnostic: we're in Obj-C++11 and this is not actually an attribute. 1636 return false; 1637 1638 case CAK_InvalidAttributeSpecifier: 1639 Diag(Tok.getLocation(), diag::err_l_square_l_square_not_attribute); 1640 return false; 1641 1642 case CAK_AttributeSpecifier: 1643 // Parse and discard the attributes. 1644 SourceLocation BeginLoc = ConsumeBracket(); 1645 ConsumeBracket(); 1646 SkipUntil(tok::r_square); 1647 assert(Tok.is(tok::r_square) && "isCXX11AttributeSpecifier lied"); 1648 SourceLocation EndLoc = ConsumeBracket(); 1649 Diag(BeginLoc, diag::err_attributes_not_allowed) 1650 << SourceRange(BeginLoc, EndLoc); 1651 return true; 1652 } 1653 llvm_unreachable("All cases handled above."); 1654 } 1655 1656 /// We have found the opening square brackets of a C++11 1657 /// attribute-specifier in a location where an attribute is not permitted, but 1658 /// we know where the attributes ought to be written. Parse them anyway, and 1659 /// provide a fixit moving them to the right place. 1660 void Parser::DiagnoseMisplacedCXX11Attribute(ParsedAttributesWithRange &Attrs, 1661 SourceLocation CorrectLocation) { 1662 assert((Tok.is(tok::l_square) && NextToken().is(tok::l_square)) || 1663 Tok.is(tok::kw_alignas)); 1664 1665 // Consume the attributes. 1666 SourceLocation Loc = Tok.getLocation(); 1667 ParseCXX11Attributes(Attrs); 1668 CharSourceRange AttrRange(SourceRange(Loc, Attrs.Range.getEnd()), true); 1669 // FIXME: use err_attributes_misplaced 1670 Diag(Loc, diag::err_attributes_not_allowed) 1671 << FixItHint::CreateInsertionFromRange(CorrectLocation, AttrRange) 1672 << FixItHint::CreateRemoval(AttrRange); 1673 } 1674 1675 void Parser::DiagnoseProhibitedAttributes( 1676 const SourceRange &Range, const SourceLocation CorrectLocation) { 1677 if (CorrectLocation.isValid()) { 1678 CharSourceRange AttrRange(Range, true); 1679 Diag(CorrectLocation, diag::err_attributes_misplaced) 1680 << FixItHint::CreateInsertionFromRange(CorrectLocation, AttrRange) 1681 << FixItHint::CreateRemoval(AttrRange); 1682 } else 1683 Diag(Range.getBegin(), diag::err_attributes_not_allowed) << Range; 1684 } 1685 1686 void Parser::ProhibitCXX11Attributes(ParsedAttributesWithRange &Attrs, 1687 unsigned DiagID) { 1688 for (const ParsedAttr &AL : Attrs) { 1689 if (!AL.isCXX11Attribute() && !AL.isC2xAttribute()) 1690 continue; 1691 if (AL.getKind() == ParsedAttr::UnknownAttribute) 1692 Diag(AL.getLoc(), diag::warn_unknown_attribute_ignored) << AL; 1693 else { 1694 Diag(AL.getLoc(), DiagID) << AL; 1695 AL.setInvalid(); 1696 } 1697 } 1698 } 1699 1700 // Usually, `__attribute__((attrib)) class Foo {} var` means that attribute 1701 // applies to var, not the type Foo. 1702 // As an exception to the rule, __declspec(align(...)) before the 1703 // class-key affects the type instead of the variable. 1704 // Also, Microsoft-style [attributes] seem to affect the type instead of the 1705 // variable. 1706 // This function moves attributes that should apply to the type off DS to Attrs. 1707 void Parser::stripTypeAttributesOffDeclSpec(ParsedAttributesWithRange &Attrs, 1708 DeclSpec &DS, 1709 Sema::TagUseKind TUK) { 1710 if (TUK == Sema::TUK_Reference) 1711 return; 1712 1713 llvm::SmallVector<ParsedAttr *, 1> ToBeMoved; 1714 1715 for (ParsedAttr &AL : DS.getAttributes()) { 1716 if ((AL.getKind() == ParsedAttr::AT_Aligned && 1717 AL.isDeclspecAttribute()) || 1718 AL.isMicrosoftAttribute()) 1719 ToBeMoved.push_back(&AL); 1720 } 1721 1722 for (ParsedAttr *AL : ToBeMoved) { 1723 DS.getAttributes().remove(AL); 1724 Attrs.addAtEnd(AL); 1725 } 1726 } 1727 1728 /// ParseDeclaration - Parse a full 'declaration', which consists of 1729 /// declaration-specifiers, some number of declarators, and a semicolon. 1730 /// 'Context' should be a DeclaratorContext value. This returns the 1731 /// location of the semicolon in DeclEnd. 1732 /// 1733 /// declaration: [C99 6.7] 1734 /// block-declaration -> 1735 /// simple-declaration 1736 /// others [FIXME] 1737 /// [C++] template-declaration 1738 /// [C++] namespace-definition 1739 /// [C++] using-directive 1740 /// [C++] using-declaration 1741 /// [C++11/C11] static_assert-declaration 1742 /// others... [FIXME] 1743 /// 1744 Parser::DeclGroupPtrTy 1745 Parser::ParseDeclaration(DeclaratorContext Context, SourceLocation &DeclEnd, 1746 ParsedAttributesWithRange &attrs, 1747 SourceLocation *DeclSpecStart) { 1748 ParenBraceBracketBalancer BalancerRAIIObj(*this); 1749 // Must temporarily exit the objective-c container scope for 1750 // parsing c none objective-c decls. 1751 ObjCDeclContextSwitch ObjCDC(*this); 1752 1753 Decl *SingleDecl = nullptr; 1754 switch (Tok.getKind()) { 1755 case tok::kw_template: 1756 case tok::kw_export: 1757 ProhibitAttributes(attrs); 1758 SingleDecl = ParseDeclarationStartingWithTemplate(Context, DeclEnd, attrs); 1759 break; 1760 case tok::kw_inline: 1761 // Could be the start of an inline namespace. Allowed as an ext in C++03. 1762 if (getLangOpts().CPlusPlus && NextToken().is(tok::kw_namespace)) { 1763 ProhibitAttributes(attrs); 1764 SourceLocation InlineLoc = ConsumeToken(); 1765 return ParseNamespace(Context, DeclEnd, InlineLoc); 1766 } 1767 return ParseSimpleDeclaration(Context, DeclEnd, attrs, true, nullptr, 1768 DeclSpecStart); 1769 case tok::kw_namespace: 1770 ProhibitAttributes(attrs); 1771 return ParseNamespace(Context, DeclEnd); 1772 case tok::kw_using: 1773 return ParseUsingDirectiveOrDeclaration(Context, ParsedTemplateInfo(), 1774 DeclEnd, attrs); 1775 case tok::kw_static_assert: 1776 case tok::kw__Static_assert: 1777 ProhibitAttributes(attrs); 1778 SingleDecl = ParseStaticAssertDeclaration(DeclEnd); 1779 break; 1780 default: 1781 return ParseSimpleDeclaration(Context, DeclEnd, attrs, true, nullptr, 1782 DeclSpecStart); 1783 } 1784 1785 // This routine returns a DeclGroup, if the thing we parsed only contains a 1786 // single decl, convert it now. 1787 return Actions.ConvertDeclToDeclGroup(SingleDecl); 1788 } 1789 1790 /// simple-declaration: [C99 6.7: declaration] [C++ 7p1: dcl.dcl] 1791 /// declaration-specifiers init-declarator-list[opt] ';' 1792 /// [C++11] attribute-specifier-seq decl-specifier-seq[opt] 1793 /// init-declarator-list ';' 1794 ///[C90/C++]init-declarator-list ';' [TODO] 1795 /// [OMP] threadprivate-directive 1796 /// [OMP] allocate-directive [TODO] 1797 /// 1798 /// for-range-declaration: [C++11 6.5p1: stmt.ranged] 1799 /// attribute-specifier-seq[opt] type-specifier-seq declarator 1800 /// 1801 /// If RequireSemi is false, this does not check for a ';' at the end of the 1802 /// declaration. If it is true, it checks for and eats it. 1803 /// 1804 /// If FRI is non-null, we might be parsing a for-range-declaration instead 1805 /// of a simple-declaration. If we find that we are, we also parse the 1806 /// for-range-initializer, and place it here. 1807 /// 1808 /// DeclSpecStart is used when decl-specifiers are parsed before parsing 1809 /// the Declaration. The SourceLocation for this Decl is set to 1810 /// DeclSpecStart if DeclSpecStart is non-null. 1811 Parser::DeclGroupPtrTy Parser::ParseSimpleDeclaration( 1812 DeclaratorContext Context, SourceLocation &DeclEnd, 1813 ParsedAttributesWithRange &Attrs, bool RequireSemi, ForRangeInit *FRI, 1814 SourceLocation *DeclSpecStart) { 1815 // Parse the common declaration-specifiers piece. 1816 ParsingDeclSpec DS(*this); 1817 1818 DeclSpecContext DSContext = getDeclSpecContextFromDeclaratorContext(Context); 1819 ParseDeclarationSpecifiers(DS, ParsedTemplateInfo(), AS_none, DSContext); 1820 1821 // If we had a free-standing type definition with a missing semicolon, we 1822 // may get this far before the problem becomes obvious. 1823 if (DS.hasTagDefinition() && 1824 DiagnoseMissingSemiAfterTagDefinition(DS, AS_none, DSContext)) 1825 return nullptr; 1826 1827 // C99 6.7.2.3p6: Handle "struct-or-union identifier;", "enum { X };" 1828 // declaration-specifiers init-declarator-list[opt] ';' 1829 if (Tok.is(tok::semi)) { 1830 ProhibitAttributes(Attrs); 1831 DeclEnd = Tok.getLocation(); 1832 if (RequireSemi) ConsumeToken(); 1833 RecordDecl *AnonRecord = nullptr; 1834 Decl *TheDecl = Actions.ParsedFreeStandingDeclSpec(getCurScope(), AS_none, 1835 DS, AnonRecord); 1836 DS.complete(TheDecl); 1837 if (AnonRecord) { 1838 Decl* decls[] = {AnonRecord, TheDecl}; 1839 return Actions.BuildDeclaratorGroup(decls); 1840 } 1841 return Actions.ConvertDeclToDeclGroup(TheDecl); 1842 } 1843 1844 if (DeclSpecStart) 1845 DS.SetRangeStart(*DeclSpecStart); 1846 1847 DS.takeAttributesFrom(Attrs); 1848 return ParseDeclGroup(DS, Context, &DeclEnd, FRI); 1849 } 1850 1851 /// Returns true if this might be the start of a declarator, or a common typo 1852 /// for a declarator. 1853 bool Parser::MightBeDeclarator(DeclaratorContext Context) { 1854 switch (Tok.getKind()) { 1855 case tok::annot_cxxscope: 1856 case tok::annot_template_id: 1857 case tok::caret: 1858 case tok::code_completion: 1859 case tok::coloncolon: 1860 case tok::ellipsis: 1861 case tok::kw___attribute: 1862 case tok::kw_operator: 1863 case tok::l_paren: 1864 case tok::star: 1865 return true; 1866 1867 case tok::amp: 1868 case tok::ampamp: 1869 return getLangOpts().CPlusPlus; 1870 1871 case tok::l_square: // Might be an attribute on an unnamed bit-field. 1872 return Context == DeclaratorContext::MemberContext && 1873 getLangOpts().CPlusPlus11 && NextToken().is(tok::l_square); 1874 1875 case tok::colon: // Might be a typo for '::' or an unnamed bit-field. 1876 return Context == DeclaratorContext::MemberContext || 1877 getLangOpts().CPlusPlus; 1878 1879 case tok::identifier: 1880 switch (NextToken().getKind()) { 1881 case tok::code_completion: 1882 case tok::coloncolon: 1883 case tok::comma: 1884 case tok::equal: 1885 case tok::equalequal: // Might be a typo for '='. 1886 case tok::kw_alignas: 1887 case tok::kw_asm: 1888 case tok::kw___attribute: 1889 case tok::l_brace: 1890 case tok::l_paren: 1891 case tok::l_square: 1892 case tok::less: 1893 case tok::r_brace: 1894 case tok::r_paren: 1895 case tok::r_square: 1896 case tok::semi: 1897 return true; 1898 1899 case tok::colon: 1900 // At namespace scope, 'identifier:' is probably a typo for 'identifier::' 1901 // and in block scope it's probably a label. Inside a class definition, 1902 // this is a bit-field. 1903 return Context == DeclaratorContext::MemberContext || 1904 (getLangOpts().CPlusPlus && 1905 Context == DeclaratorContext::FileContext); 1906 1907 case tok::identifier: // Possible virt-specifier. 1908 return getLangOpts().CPlusPlus11 && isCXX11VirtSpecifier(NextToken()); 1909 1910 default: 1911 return false; 1912 } 1913 1914 default: 1915 return false; 1916 } 1917 } 1918 1919 /// Skip until we reach something which seems like a sensible place to pick 1920 /// up parsing after a malformed declaration. This will sometimes stop sooner 1921 /// than SkipUntil(tok::r_brace) would, but will never stop later. 1922 void Parser::SkipMalformedDecl() { 1923 while (true) { 1924 switch (Tok.getKind()) { 1925 case tok::l_brace: 1926 // Skip until matching }, then stop. We've probably skipped over 1927 // a malformed class or function definition or similar. 1928 ConsumeBrace(); 1929 SkipUntil(tok::r_brace); 1930 if (Tok.isOneOf(tok::comma, tok::l_brace, tok::kw_try)) { 1931 // This declaration isn't over yet. Keep skipping. 1932 continue; 1933 } 1934 TryConsumeToken(tok::semi); 1935 return; 1936 1937 case tok::l_square: 1938 ConsumeBracket(); 1939 SkipUntil(tok::r_square); 1940 continue; 1941 1942 case tok::l_paren: 1943 ConsumeParen(); 1944 SkipUntil(tok::r_paren); 1945 continue; 1946 1947 case tok::r_brace: 1948 return; 1949 1950 case tok::semi: 1951 ConsumeToken(); 1952 return; 1953 1954 case tok::kw_inline: 1955 // 'inline namespace' at the start of a line is almost certainly 1956 // a good place to pick back up parsing, except in an Objective-C 1957 // @interface context. 1958 if (Tok.isAtStartOfLine() && NextToken().is(tok::kw_namespace) && 1959 (!ParsingInObjCContainer || CurParsedObjCImpl)) 1960 return; 1961 break; 1962 1963 case tok::kw_namespace: 1964 // 'namespace' at the start of a line is almost certainly a good 1965 // place to pick back up parsing, except in an Objective-C 1966 // @interface context. 1967 if (Tok.isAtStartOfLine() && 1968 (!ParsingInObjCContainer || CurParsedObjCImpl)) 1969 return; 1970 break; 1971 1972 case tok::at: 1973 // @end is very much like } in Objective-C contexts. 1974 if (NextToken().isObjCAtKeyword(tok::objc_end) && 1975 ParsingInObjCContainer) 1976 return; 1977 break; 1978 1979 case tok::minus: 1980 case tok::plus: 1981 // - and + probably start new method declarations in Objective-C contexts. 1982 if (Tok.isAtStartOfLine() && ParsingInObjCContainer) 1983 return; 1984 break; 1985 1986 case tok::eof: 1987 case tok::annot_module_begin: 1988 case tok::annot_module_end: 1989 case tok::annot_module_include: 1990 return; 1991 1992 default: 1993 break; 1994 } 1995 1996 ConsumeAnyToken(); 1997 } 1998 } 1999 2000 /// ParseDeclGroup - Having concluded that this is either a function 2001 /// definition or a group of object declarations, actually parse the 2002 /// result. 2003 Parser::DeclGroupPtrTy Parser::ParseDeclGroup(ParsingDeclSpec &DS, 2004 DeclaratorContext Context, 2005 SourceLocation *DeclEnd, 2006 ForRangeInit *FRI) { 2007 // Parse the first declarator. 2008 ParsingDeclarator D(*this, DS, Context); 2009 ParseDeclarator(D); 2010 2011 // Bail out if the first declarator didn't seem well-formed. 2012 if (!D.hasName() && !D.mayOmitIdentifier()) { 2013 SkipMalformedDecl(); 2014 return nullptr; 2015 } 2016 2017 if (Tok.is(tok::kw_requires)) 2018 ParseTrailingRequiresClause(D); 2019 2020 // Save late-parsed attributes for now; they need to be parsed in the 2021 // appropriate function scope after the function Decl has been constructed. 2022 // These will be parsed in ParseFunctionDefinition or ParseLexedAttrList. 2023 LateParsedAttrList LateParsedAttrs(true); 2024 if (D.isFunctionDeclarator()) { 2025 MaybeParseGNUAttributes(D, &LateParsedAttrs); 2026 2027 // The _Noreturn keyword can't appear here, unlike the GNU noreturn 2028 // attribute. If we find the keyword here, tell the user to put it 2029 // at the start instead. 2030 if (Tok.is(tok::kw__Noreturn)) { 2031 SourceLocation Loc = ConsumeToken(); 2032 const char *PrevSpec; 2033 unsigned DiagID; 2034 2035 // We can offer a fixit if it's valid to mark this function as _Noreturn 2036 // and we don't have any other declarators in this declaration. 2037 bool Fixit = !DS.setFunctionSpecNoreturn(Loc, PrevSpec, DiagID); 2038 MaybeParseGNUAttributes(D, &LateParsedAttrs); 2039 Fixit &= Tok.isOneOf(tok::semi, tok::l_brace, tok::kw_try); 2040 2041 Diag(Loc, diag::err_c11_noreturn_misplaced) 2042 << (Fixit ? FixItHint::CreateRemoval(Loc) : FixItHint()) 2043 << (Fixit ? FixItHint::CreateInsertion(D.getBeginLoc(), "_Noreturn ") 2044 : FixItHint()); 2045 } 2046 } 2047 2048 // Check to see if we have a function *definition* which must have a body. 2049 if (D.isFunctionDeclarator() && 2050 // Look at the next token to make sure that this isn't a function 2051 // declaration. We have to check this because __attribute__ might be the 2052 // start of a function definition in GCC-extended K&R C. 2053 !isDeclarationAfterDeclarator()) { 2054 2055 // Function definitions are only allowed at file scope and in C++ classes. 2056 // The C++ inline method definition case is handled elsewhere, so we only 2057 // need to handle the file scope definition case. 2058 if (Context == DeclaratorContext::FileContext) { 2059 if (isStartOfFunctionDefinition(D)) { 2060 if (DS.getStorageClassSpec() == DeclSpec::SCS_typedef) { 2061 Diag(Tok, diag::err_function_declared_typedef); 2062 2063 // Recover by treating the 'typedef' as spurious. 2064 DS.ClearStorageClassSpecs(); 2065 } 2066 2067 Decl *TheDecl = 2068 ParseFunctionDefinition(D, ParsedTemplateInfo(), &LateParsedAttrs); 2069 return Actions.ConvertDeclToDeclGroup(TheDecl); 2070 } 2071 2072 if (isDeclarationSpecifier()) { 2073 // If there is an invalid declaration specifier right after the 2074 // function prototype, then we must be in a missing semicolon case 2075 // where this isn't actually a body. Just fall through into the code 2076 // that handles it as a prototype, and let the top-level code handle 2077 // the erroneous declspec where it would otherwise expect a comma or 2078 // semicolon. 2079 } else { 2080 Diag(Tok, diag::err_expected_fn_body); 2081 SkipUntil(tok::semi); 2082 return nullptr; 2083 } 2084 } else { 2085 if (Tok.is(tok::l_brace)) { 2086 Diag(Tok, diag::err_function_definition_not_allowed); 2087 SkipMalformedDecl(); 2088 return nullptr; 2089 } 2090 } 2091 } 2092 2093 if (ParseAsmAttributesAfterDeclarator(D)) 2094 return nullptr; 2095 2096 // C++0x [stmt.iter]p1: Check if we have a for-range-declarator. If so, we 2097 // must parse and analyze the for-range-initializer before the declaration is 2098 // analyzed. 2099 // 2100 // Handle the Objective-C for-in loop variable similarly, although we 2101 // don't need to parse the container in advance. 2102 if (FRI && (Tok.is(tok::colon) || isTokIdentifier_in())) { 2103 bool IsForRangeLoop = false; 2104 if (TryConsumeToken(tok::colon, FRI->ColonLoc)) { 2105 IsForRangeLoop = true; 2106 if (getLangOpts().OpenMP) 2107 Actions.startOpenMPCXXRangeFor(); 2108 if (Tok.is(tok::l_brace)) 2109 FRI->RangeExpr = ParseBraceInitializer(); 2110 else 2111 FRI->RangeExpr = ParseExpression(); 2112 } 2113 2114 Decl *ThisDecl = Actions.ActOnDeclarator(getCurScope(), D); 2115 if (IsForRangeLoop) { 2116 Actions.ActOnCXXForRangeDecl(ThisDecl); 2117 } else { 2118 // Obj-C for loop 2119 if (auto *VD = dyn_cast_or_null<VarDecl>(ThisDecl)) 2120 VD->setObjCForDecl(true); 2121 } 2122 Actions.FinalizeDeclaration(ThisDecl); 2123 D.complete(ThisDecl); 2124 return Actions.FinalizeDeclaratorGroup(getCurScope(), DS, ThisDecl); 2125 } 2126 2127 SmallVector<Decl *, 8> DeclsInGroup; 2128 Decl *FirstDecl = ParseDeclarationAfterDeclaratorAndAttributes( 2129 D, ParsedTemplateInfo(), FRI); 2130 if (LateParsedAttrs.size() > 0) 2131 ParseLexedAttributeList(LateParsedAttrs, FirstDecl, true, false); 2132 D.complete(FirstDecl); 2133 if (FirstDecl) 2134 DeclsInGroup.push_back(FirstDecl); 2135 2136 bool ExpectSemi = Context != DeclaratorContext::ForContext; 2137 2138 // If we don't have a comma, it is either the end of the list (a ';') or an 2139 // error, bail out. 2140 SourceLocation CommaLoc; 2141 while (TryConsumeToken(tok::comma, CommaLoc)) { 2142 if (Tok.isAtStartOfLine() && ExpectSemi && !MightBeDeclarator(Context)) { 2143 // This comma was followed by a line-break and something which can't be 2144 // the start of a declarator. The comma was probably a typo for a 2145 // semicolon. 2146 Diag(CommaLoc, diag::err_expected_semi_declaration) 2147 << FixItHint::CreateReplacement(CommaLoc, ";"); 2148 ExpectSemi = false; 2149 break; 2150 } 2151 2152 // Parse the next declarator. 2153 D.clear(); 2154 D.setCommaLoc(CommaLoc); 2155 2156 // Accept attributes in an init-declarator. In the first declarator in a 2157 // declaration, these would be part of the declspec. In subsequent 2158 // declarators, they become part of the declarator itself, so that they 2159 // don't apply to declarators after *this* one. Examples: 2160 // short __attribute__((common)) var; -> declspec 2161 // short var __attribute__((common)); -> declarator 2162 // short x, __attribute__((common)) var; -> declarator 2163 MaybeParseGNUAttributes(D); 2164 2165 // MSVC parses but ignores qualifiers after the comma as an extension. 2166 if (getLangOpts().MicrosoftExt) 2167 DiagnoseAndSkipExtendedMicrosoftTypeAttributes(); 2168 2169 ParseDeclarator(D); 2170 if (!D.isInvalidType()) { 2171 // C++2a [dcl.decl]p1 2172 // init-declarator: 2173 // declarator initializer[opt] 2174 // declarator requires-clause 2175 if (Tok.is(tok::kw_requires)) 2176 ParseTrailingRequiresClause(D); 2177 Decl *ThisDecl = ParseDeclarationAfterDeclarator(D); 2178 D.complete(ThisDecl); 2179 if (ThisDecl) 2180 DeclsInGroup.push_back(ThisDecl); 2181 } 2182 } 2183 2184 if (DeclEnd) 2185 *DeclEnd = Tok.getLocation(); 2186 2187 if (ExpectSemi && 2188 ExpectAndConsumeSemi(Context == DeclaratorContext::FileContext 2189 ? diag::err_invalid_token_after_toplevel_declarator 2190 : diag::err_expected_semi_declaration)) { 2191 // Okay, there was no semicolon and one was expected. If we see a 2192 // declaration specifier, just assume it was missing and continue parsing. 2193 // Otherwise things are very confused and we skip to recover. 2194 if (!isDeclarationSpecifier()) { 2195 SkipUntil(tok::r_brace, StopAtSemi | StopBeforeMatch); 2196 TryConsumeToken(tok::semi); 2197 } 2198 } 2199 2200 return Actions.FinalizeDeclaratorGroup(getCurScope(), DS, DeclsInGroup); 2201 } 2202 2203 /// Parse an optional simple-asm-expr and attributes, and attach them to a 2204 /// declarator. Returns true on an error. 2205 bool Parser::ParseAsmAttributesAfterDeclarator(Declarator &D) { 2206 // If a simple-asm-expr is present, parse it. 2207 if (Tok.is(tok::kw_asm)) { 2208 SourceLocation Loc; 2209 ExprResult AsmLabel(ParseSimpleAsm(/*ForAsmLabel*/ true, &Loc)); 2210 if (AsmLabel.isInvalid()) { 2211 SkipUntil(tok::semi, StopBeforeMatch); 2212 return true; 2213 } 2214 2215 D.setAsmLabel(AsmLabel.get()); 2216 D.SetRangeEnd(Loc); 2217 } 2218 2219 MaybeParseGNUAttributes(D); 2220 return false; 2221 } 2222 2223 /// Parse 'declaration' after parsing 'declaration-specifiers 2224 /// declarator'. This method parses the remainder of the declaration 2225 /// (including any attributes or initializer, among other things) and 2226 /// finalizes the declaration. 2227 /// 2228 /// init-declarator: [C99 6.7] 2229 /// declarator 2230 /// declarator '=' initializer 2231 /// [GNU] declarator simple-asm-expr[opt] attributes[opt] 2232 /// [GNU] declarator simple-asm-expr[opt] attributes[opt] '=' initializer 2233 /// [C++] declarator initializer[opt] 2234 /// 2235 /// [C++] initializer: 2236 /// [C++] '=' initializer-clause 2237 /// [C++] '(' expression-list ')' 2238 /// [C++0x] '=' 'default' [TODO] 2239 /// [C++0x] '=' 'delete' 2240 /// [C++0x] braced-init-list 2241 /// 2242 /// According to the standard grammar, =default and =delete are function 2243 /// definitions, but that definitely doesn't fit with the parser here. 2244 /// 2245 Decl *Parser::ParseDeclarationAfterDeclarator( 2246 Declarator &D, const ParsedTemplateInfo &TemplateInfo) { 2247 if (ParseAsmAttributesAfterDeclarator(D)) 2248 return nullptr; 2249 2250 return ParseDeclarationAfterDeclaratorAndAttributes(D, TemplateInfo); 2251 } 2252 2253 Decl *Parser::ParseDeclarationAfterDeclaratorAndAttributes( 2254 Declarator &D, const ParsedTemplateInfo &TemplateInfo, ForRangeInit *FRI) { 2255 // RAII type used to track whether we're inside an initializer. 2256 struct InitializerScopeRAII { 2257 Parser &P; 2258 Declarator &D; 2259 Decl *ThisDecl; 2260 2261 InitializerScopeRAII(Parser &P, Declarator &D, Decl *ThisDecl) 2262 : P(P), D(D), ThisDecl(ThisDecl) { 2263 if (ThisDecl && P.getLangOpts().CPlusPlus) { 2264 Scope *S = nullptr; 2265 if (D.getCXXScopeSpec().isSet()) { 2266 P.EnterScope(0); 2267 S = P.getCurScope(); 2268 } 2269 P.Actions.ActOnCXXEnterDeclInitializer(S, ThisDecl); 2270 } 2271 } 2272 ~InitializerScopeRAII() { pop(); } 2273 void pop() { 2274 if (ThisDecl && P.getLangOpts().CPlusPlus) { 2275 Scope *S = nullptr; 2276 if (D.getCXXScopeSpec().isSet()) 2277 S = P.getCurScope(); 2278 P.Actions.ActOnCXXExitDeclInitializer(S, ThisDecl); 2279 if (S) 2280 P.ExitScope(); 2281 } 2282 ThisDecl = nullptr; 2283 } 2284 }; 2285 2286 // Inform the current actions module that we just parsed this declarator. 2287 Decl *ThisDecl = nullptr; 2288 switch (TemplateInfo.Kind) { 2289 case ParsedTemplateInfo::NonTemplate: 2290 ThisDecl = Actions.ActOnDeclarator(getCurScope(), D); 2291 break; 2292 2293 case ParsedTemplateInfo::Template: 2294 case ParsedTemplateInfo::ExplicitSpecialization: { 2295 ThisDecl = Actions.ActOnTemplateDeclarator(getCurScope(), 2296 *TemplateInfo.TemplateParams, 2297 D); 2298 if (VarTemplateDecl *VT = dyn_cast_or_null<VarTemplateDecl>(ThisDecl)) 2299 // Re-direct this decl to refer to the templated decl so that we can 2300 // initialize it. 2301 ThisDecl = VT->getTemplatedDecl(); 2302 break; 2303 } 2304 case ParsedTemplateInfo::ExplicitInstantiation: { 2305 if (Tok.is(tok::semi)) { 2306 DeclResult ThisRes = Actions.ActOnExplicitInstantiation( 2307 getCurScope(), TemplateInfo.ExternLoc, TemplateInfo.TemplateLoc, D); 2308 if (ThisRes.isInvalid()) { 2309 SkipUntil(tok::semi, StopBeforeMatch); 2310 return nullptr; 2311 } 2312 ThisDecl = ThisRes.get(); 2313 } else { 2314 // FIXME: This check should be for a variable template instantiation only. 2315 2316 // Check that this is a valid instantiation 2317 if (D.getName().getKind() != UnqualifiedIdKind::IK_TemplateId) { 2318 // If the declarator-id is not a template-id, issue a diagnostic and 2319 // recover by ignoring the 'template' keyword. 2320 Diag(Tok, diag::err_template_defn_explicit_instantiation) 2321 << 2 << FixItHint::CreateRemoval(TemplateInfo.TemplateLoc); 2322 ThisDecl = Actions.ActOnDeclarator(getCurScope(), D); 2323 } else { 2324 SourceLocation LAngleLoc = 2325 PP.getLocForEndOfToken(TemplateInfo.TemplateLoc); 2326 Diag(D.getIdentifierLoc(), 2327 diag::err_explicit_instantiation_with_definition) 2328 << SourceRange(TemplateInfo.TemplateLoc) 2329 << FixItHint::CreateInsertion(LAngleLoc, "<>"); 2330 2331 // Recover as if it were an explicit specialization. 2332 TemplateParameterLists FakedParamLists; 2333 FakedParamLists.push_back(Actions.ActOnTemplateParameterList( 2334 0, SourceLocation(), TemplateInfo.TemplateLoc, LAngleLoc, None, 2335 LAngleLoc, nullptr)); 2336 2337 ThisDecl = 2338 Actions.ActOnTemplateDeclarator(getCurScope(), FakedParamLists, D); 2339 } 2340 } 2341 break; 2342 } 2343 } 2344 2345 // Parse declarator '=' initializer. 2346 // If a '==' or '+=' is found, suggest a fixit to '='. 2347 if (isTokenEqualOrEqualTypo()) { 2348 SourceLocation EqualLoc = ConsumeToken(); 2349 2350 if (Tok.is(tok::kw_delete)) { 2351 if (D.isFunctionDeclarator()) 2352 Diag(ConsumeToken(), diag::err_default_delete_in_multiple_declaration) 2353 << 1 /* delete */; 2354 else 2355 Diag(ConsumeToken(), diag::err_deleted_non_function); 2356 } else if (Tok.is(tok::kw_default)) { 2357 if (D.isFunctionDeclarator()) 2358 Diag(ConsumeToken(), diag::err_default_delete_in_multiple_declaration) 2359 << 0 /* default */; 2360 else 2361 Diag(ConsumeToken(), diag::err_default_special_members) 2362 << getLangOpts().CPlusPlus2a; 2363 } else { 2364 InitializerScopeRAII InitScope(*this, D, ThisDecl); 2365 2366 if (Tok.is(tok::code_completion)) { 2367 Actions.CodeCompleteInitializer(getCurScope(), ThisDecl); 2368 Actions.FinalizeDeclaration(ThisDecl); 2369 cutOffParsing(); 2370 return nullptr; 2371 } 2372 2373 PreferredType.enterVariableInit(Tok.getLocation(), ThisDecl); 2374 ExprResult Init = ParseInitializer(); 2375 2376 // If this is the only decl in (possibly) range based for statement, 2377 // our best guess is that the user meant ':' instead of '='. 2378 if (Tok.is(tok::r_paren) && FRI && D.isFirstDeclarator()) { 2379 Diag(EqualLoc, diag::err_single_decl_assign_in_for_range) 2380 << FixItHint::CreateReplacement(EqualLoc, ":"); 2381 // We are trying to stop parser from looking for ';' in this for 2382 // statement, therefore preventing spurious errors to be issued. 2383 FRI->ColonLoc = EqualLoc; 2384 Init = ExprError(); 2385 FRI->RangeExpr = Init; 2386 } 2387 2388 InitScope.pop(); 2389 2390 if (Init.isInvalid()) { 2391 SmallVector<tok::TokenKind, 2> StopTokens; 2392 StopTokens.push_back(tok::comma); 2393 if (D.getContext() == DeclaratorContext::ForContext || 2394 D.getContext() == DeclaratorContext::InitStmtContext) 2395 StopTokens.push_back(tok::r_paren); 2396 SkipUntil(StopTokens, StopAtSemi | StopBeforeMatch); 2397 Actions.ActOnInitializerError(ThisDecl); 2398 } else 2399 Actions.AddInitializerToDecl(ThisDecl, Init.get(), 2400 /*DirectInit=*/false); 2401 } 2402 } else if (Tok.is(tok::l_paren)) { 2403 // Parse C++ direct initializer: '(' expression-list ')' 2404 BalancedDelimiterTracker T(*this, tok::l_paren); 2405 T.consumeOpen(); 2406 2407 ExprVector Exprs; 2408 CommaLocsTy CommaLocs; 2409 2410 InitializerScopeRAII InitScope(*this, D, ThisDecl); 2411 2412 auto ThisVarDecl = dyn_cast_or_null<VarDecl>(ThisDecl); 2413 auto RunSignatureHelp = [&]() { 2414 QualType PreferredType = Actions.ProduceConstructorSignatureHelp( 2415 getCurScope(), ThisVarDecl->getType()->getCanonicalTypeInternal(), 2416 ThisDecl->getLocation(), Exprs, T.getOpenLocation()); 2417 CalledSignatureHelp = true; 2418 return PreferredType; 2419 }; 2420 auto SetPreferredType = [&] { 2421 PreferredType.enterFunctionArgument(Tok.getLocation(), RunSignatureHelp); 2422 }; 2423 2424 llvm::function_ref<void()> ExpressionStarts; 2425 if (ThisVarDecl) { 2426 // ParseExpressionList can sometimes succeed even when ThisDecl is not 2427 // VarDecl. This is an error and it is reported in a call to 2428 // Actions.ActOnInitializerError(). However, we call 2429 // ProduceConstructorSignatureHelp only on VarDecls. 2430 ExpressionStarts = SetPreferredType; 2431 } 2432 if (ParseExpressionList(Exprs, CommaLocs, ExpressionStarts)) { 2433 if (ThisVarDecl && PP.isCodeCompletionReached() && !CalledSignatureHelp) { 2434 Actions.ProduceConstructorSignatureHelp( 2435 getCurScope(), ThisVarDecl->getType()->getCanonicalTypeInternal(), 2436 ThisDecl->getLocation(), Exprs, T.getOpenLocation()); 2437 CalledSignatureHelp = true; 2438 } 2439 Actions.ActOnInitializerError(ThisDecl); 2440 SkipUntil(tok::r_paren, StopAtSemi); 2441 } else { 2442 // Match the ')'. 2443 T.consumeClose(); 2444 2445 assert(!Exprs.empty() && Exprs.size()-1 == CommaLocs.size() && 2446 "Unexpected number of commas!"); 2447 2448 InitScope.pop(); 2449 2450 ExprResult Initializer = Actions.ActOnParenListExpr(T.getOpenLocation(), 2451 T.getCloseLocation(), 2452 Exprs); 2453 Actions.AddInitializerToDecl(ThisDecl, Initializer.get(), 2454 /*DirectInit=*/true); 2455 } 2456 } else if (getLangOpts().CPlusPlus11 && Tok.is(tok::l_brace) && 2457 (!CurParsedObjCImpl || !D.isFunctionDeclarator())) { 2458 // Parse C++0x braced-init-list. 2459 Diag(Tok, diag::warn_cxx98_compat_generalized_initializer_lists); 2460 2461 InitializerScopeRAII InitScope(*this, D, ThisDecl); 2462 2463 PreferredType.enterVariableInit(Tok.getLocation(), ThisDecl); 2464 ExprResult Init(ParseBraceInitializer()); 2465 2466 InitScope.pop(); 2467 2468 if (Init.isInvalid()) { 2469 Actions.ActOnInitializerError(ThisDecl); 2470 } else 2471 Actions.AddInitializerToDecl(ThisDecl, Init.get(), /*DirectInit=*/true); 2472 2473 } else { 2474 Actions.ActOnUninitializedDecl(ThisDecl); 2475 } 2476 2477 Actions.FinalizeDeclaration(ThisDecl); 2478 2479 return ThisDecl; 2480 } 2481 2482 /// ParseSpecifierQualifierList 2483 /// specifier-qualifier-list: 2484 /// type-specifier specifier-qualifier-list[opt] 2485 /// type-qualifier specifier-qualifier-list[opt] 2486 /// [GNU] attributes specifier-qualifier-list[opt] 2487 /// 2488 void Parser::ParseSpecifierQualifierList(DeclSpec &DS, AccessSpecifier AS, 2489 DeclSpecContext DSC) { 2490 /// specifier-qualifier-list is a subset of declaration-specifiers. Just 2491 /// parse declaration-specifiers and complain about extra stuff. 2492 /// TODO: diagnose attribute-specifiers and alignment-specifiers. 2493 ParseDeclarationSpecifiers(DS, ParsedTemplateInfo(), AS, DSC); 2494 2495 // Validate declspec for type-name. 2496 unsigned Specs = DS.getParsedSpecifiers(); 2497 if (isTypeSpecifier(DSC) && !DS.hasTypeSpecifier()) { 2498 Diag(Tok, diag::err_expected_type); 2499 DS.SetTypeSpecError(); 2500 } else if (Specs == DeclSpec::PQ_None && !DS.hasAttributes()) { 2501 Diag(Tok, diag::err_typename_requires_specqual); 2502 if (!DS.hasTypeSpecifier()) 2503 DS.SetTypeSpecError(); 2504 } 2505 2506 // Issue diagnostic and remove storage class if present. 2507 if (Specs & DeclSpec::PQ_StorageClassSpecifier) { 2508 if (DS.getStorageClassSpecLoc().isValid()) 2509 Diag(DS.getStorageClassSpecLoc(),diag::err_typename_invalid_storageclass); 2510 else 2511 Diag(DS.getThreadStorageClassSpecLoc(), 2512 diag::err_typename_invalid_storageclass); 2513 DS.ClearStorageClassSpecs(); 2514 } 2515 2516 // Issue diagnostic and remove function specifier if present. 2517 if (Specs & DeclSpec::PQ_FunctionSpecifier) { 2518 if (DS.isInlineSpecified()) 2519 Diag(DS.getInlineSpecLoc(), diag::err_typename_invalid_functionspec); 2520 if (DS.isVirtualSpecified()) 2521 Diag(DS.getVirtualSpecLoc(), diag::err_typename_invalid_functionspec); 2522 if (DS.hasExplicitSpecifier()) 2523 Diag(DS.getExplicitSpecLoc(), diag::err_typename_invalid_functionspec); 2524 DS.ClearFunctionSpecs(); 2525 } 2526 2527 // Issue diagnostic and remove constexpr specifier if present. 2528 if (DS.hasConstexprSpecifier() && DSC != DeclSpecContext::DSC_condition) { 2529 Diag(DS.getConstexprSpecLoc(), diag::err_typename_invalid_constexpr) 2530 << DS.getConstexprSpecifier(); 2531 DS.ClearConstexprSpec(); 2532 } 2533 } 2534 2535 /// isValidAfterIdentifierInDeclaratorAfterDeclSpec - Return true if the 2536 /// specified token is valid after the identifier in a declarator which 2537 /// immediately follows the declspec. For example, these things are valid: 2538 /// 2539 /// int x [ 4]; // direct-declarator 2540 /// int x ( int y); // direct-declarator 2541 /// int(int x ) // direct-declarator 2542 /// int x ; // simple-declaration 2543 /// int x = 17; // init-declarator-list 2544 /// int x , y; // init-declarator-list 2545 /// int x __asm__ ("foo"); // init-declarator-list 2546 /// int x : 4; // struct-declarator 2547 /// int x { 5}; // C++'0x unified initializers 2548 /// 2549 /// This is not, because 'x' does not immediately follow the declspec (though 2550 /// ')' happens to be valid anyway). 2551 /// int (x) 2552 /// 2553 static bool isValidAfterIdentifierInDeclarator(const Token &T) { 2554 return T.isOneOf(tok::l_square, tok::l_paren, tok::r_paren, tok::semi, 2555 tok::comma, tok::equal, tok::kw_asm, tok::l_brace, 2556 tok::colon); 2557 } 2558 2559 /// ParseImplicitInt - This method is called when we have an non-typename 2560 /// identifier in a declspec (which normally terminates the decl spec) when 2561 /// the declspec has no type specifier. In this case, the declspec is either 2562 /// malformed or is "implicit int" (in K&R and C89). 2563 /// 2564 /// This method handles diagnosing this prettily and returns false if the 2565 /// declspec is done being processed. If it recovers and thinks there may be 2566 /// other pieces of declspec after it, it returns true. 2567 /// 2568 bool Parser::ParseImplicitInt(DeclSpec &DS, CXXScopeSpec *SS, 2569 const ParsedTemplateInfo &TemplateInfo, 2570 AccessSpecifier AS, DeclSpecContext DSC, 2571 ParsedAttributesWithRange &Attrs) { 2572 assert(Tok.is(tok::identifier) && "should have identifier"); 2573 2574 SourceLocation Loc = Tok.getLocation(); 2575 // If we see an identifier that is not a type name, we normally would 2576 // parse it as the identifier being declared. However, when a typename 2577 // is typo'd or the definition is not included, this will incorrectly 2578 // parse the typename as the identifier name and fall over misparsing 2579 // later parts of the diagnostic. 2580 // 2581 // As such, we try to do some look-ahead in cases where this would 2582 // otherwise be an "implicit-int" case to see if this is invalid. For 2583 // example: "static foo_t x = 4;" In this case, if we parsed foo_t as 2584 // an identifier with implicit int, we'd get a parse error because the 2585 // next token is obviously invalid for a type. Parse these as a case 2586 // with an invalid type specifier. 2587 assert(!DS.hasTypeSpecifier() && "Type specifier checked above"); 2588 2589 // Since we know that this either implicit int (which is rare) or an 2590 // error, do lookahead to try to do better recovery. This never applies 2591 // within a type specifier. Outside of C++, we allow this even if the 2592 // language doesn't "officially" support implicit int -- we support 2593 // implicit int as an extension in C99 and C11. 2594 if (!isTypeSpecifier(DSC) && !getLangOpts().CPlusPlus && 2595 isValidAfterIdentifierInDeclarator(NextToken())) { 2596 // If this token is valid for implicit int, e.g. "static x = 4", then 2597 // we just avoid eating the identifier, so it will be parsed as the 2598 // identifier in the declarator. 2599 return false; 2600 } 2601 2602 // Early exit as Sema has a dedicated missing_actual_pipe_type diagnostic 2603 // for incomplete declarations such as `pipe p`. 2604 if (getLangOpts().OpenCLCPlusPlus && DS.isTypeSpecPipe()) 2605 return false; 2606 2607 if (getLangOpts().CPlusPlus && 2608 DS.getStorageClassSpec() == DeclSpec::SCS_auto) { 2609 // Don't require a type specifier if we have the 'auto' storage class 2610 // specifier in C++98 -- we'll promote it to a type specifier. 2611 if (SS) 2612 AnnotateScopeToken(*SS, /*IsNewAnnotation*/false); 2613 return false; 2614 } 2615 2616 if (getLangOpts().CPlusPlus && (!SS || SS->isEmpty()) && 2617 getLangOpts().MSVCCompat) { 2618 // Lookup of an unqualified type name has failed in MSVC compatibility mode. 2619 // Give Sema a chance to recover if we are in a template with dependent base 2620 // classes. 2621 if (ParsedType T = Actions.ActOnMSVCUnknownTypeName( 2622 *Tok.getIdentifierInfo(), Tok.getLocation(), 2623 DSC == DeclSpecContext::DSC_template_type_arg)) { 2624 const char *PrevSpec; 2625 unsigned DiagID; 2626 DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, DiagID, T, 2627 Actions.getASTContext().getPrintingPolicy()); 2628 DS.SetRangeEnd(Tok.getLocation()); 2629 ConsumeToken(); 2630 return false; 2631 } 2632 } 2633 2634 // Otherwise, if we don't consume this token, we are going to emit an 2635 // error anyway. Try to recover from various common problems. Check 2636 // to see if this was a reference to a tag name without a tag specified. 2637 // This is a common problem in C (saying 'foo' instead of 'struct foo'). 2638 // 2639 // C++ doesn't need this, and isTagName doesn't take SS. 2640 if (SS == nullptr) { 2641 const char *TagName = nullptr, *FixitTagName = nullptr; 2642 tok::TokenKind TagKind = tok::unknown; 2643 2644 switch (Actions.isTagName(*Tok.getIdentifierInfo(), getCurScope())) { 2645 default: break; 2646 case DeclSpec::TST_enum: 2647 TagName="enum" ; FixitTagName = "enum " ; TagKind=tok::kw_enum ;break; 2648 case DeclSpec::TST_union: 2649 TagName="union" ; FixitTagName = "union " ;TagKind=tok::kw_union ;break; 2650 case DeclSpec::TST_struct: 2651 TagName="struct"; FixitTagName = "struct ";TagKind=tok::kw_struct;break; 2652 case DeclSpec::TST_interface: 2653 TagName="__interface"; FixitTagName = "__interface "; 2654 TagKind=tok::kw___interface;break; 2655 case DeclSpec::TST_class: 2656 TagName="class" ; FixitTagName = "class " ;TagKind=tok::kw_class ;break; 2657 } 2658 2659 if (TagName) { 2660 IdentifierInfo *TokenName = Tok.getIdentifierInfo(); 2661 LookupResult R(Actions, TokenName, SourceLocation(), 2662 Sema::LookupOrdinaryName); 2663 2664 Diag(Loc, diag::err_use_of_tag_name_without_tag) 2665 << TokenName << TagName << getLangOpts().CPlusPlus 2666 << FixItHint::CreateInsertion(Tok.getLocation(), FixitTagName); 2667 2668 if (Actions.LookupParsedName(R, getCurScope(), SS)) { 2669 for (LookupResult::iterator I = R.begin(), IEnd = R.end(); 2670 I != IEnd; ++I) 2671 Diag((*I)->getLocation(), diag::note_decl_hiding_tag_type) 2672 << TokenName << TagName; 2673 } 2674 2675 // Parse this as a tag as if the missing tag were present. 2676 if (TagKind == tok::kw_enum) 2677 ParseEnumSpecifier(Loc, DS, TemplateInfo, AS, 2678 DeclSpecContext::DSC_normal); 2679 else 2680 ParseClassSpecifier(TagKind, Loc, DS, TemplateInfo, AS, 2681 /*EnteringContext*/ false, 2682 DeclSpecContext::DSC_normal, Attrs); 2683 return true; 2684 } 2685 } 2686 2687 // Determine whether this identifier could plausibly be the name of something 2688 // being declared (with a missing type). 2689 if (!isTypeSpecifier(DSC) && (!SS || DSC == DeclSpecContext::DSC_top_level || 2690 DSC == DeclSpecContext::DSC_class)) { 2691 // Look ahead to the next token to try to figure out what this declaration 2692 // was supposed to be. 2693 switch (NextToken().getKind()) { 2694 case tok::l_paren: { 2695 // static x(4); // 'x' is not a type 2696 // x(int n); // 'x' is not a type 2697 // x (*p)[]; // 'x' is a type 2698 // 2699 // Since we're in an error case, we can afford to perform a tentative 2700 // parse to determine which case we're in. 2701 TentativeParsingAction PA(*this); 2702 ConsumeToken(); 2703 TPResult TPR = TryParseDeclarator(/*mayBeAbstract*/false); 2704 PA.Revert(); 2705 2706 if (TPR != TPResult::False) { 2707 // The identifier is followed by a parenthesized declarator. 2708 // It's supposed to be a type. 2709 break; 2710 } 2711 2712 // If we're in a context where we could be declaring a constructor, 2713 // check whether this is a constructor declaration with a bogus name. 2714 if (DSC == DeclSpecContext::DSC_class || 2715 (DSC == DeclSpecContext::DSC_top_level && SS)) { 2716 IdentifierInfo *II = Tok.getIdentifierInfo(); 2717 if (Actions.isCurrentClassNameTypo(II, SS)) { 2718 Diag(Loc, diag::err_constructor_bad_name) 2719 << Tok.getIdentifierInfo() << II 2720 << FixItHint::CreateReplacement(Tok.getLocation(), II->getName()); 2721 Tok.setIdentifierInfo(II); 2722 } 2723 } 2724 // Fall through. 2725 LLVM_FALLTHROUGH; 2726 } 2727 case tok::comma: 2728 case tok::equal: 2729 case tok::kw_asm: 2730 case tok::l_brace: 2731 case tok::l_square: 2732 case tok::semi: 2733 // This looks like a variable or function declaration. The type is 2734 // probably missing. We're done parsing decl-specifiers. 2735 // But only if we are not in a function prototype scope. 2736 if (getCurScope()->isFunctionPrototypeScope()) 2737 break; 2738 if (SS) 2739 AnnotateScopeToken(*SS, /*IsNewAnnotation*/false); 2740 return false; 2741 2742 default: 2743 // This is probably supposed to be a type. This includes cases like: 2744 // int f(itn); 2745 // struct S { unsinged : 4; }; 2746 break; 2747 } 2748 } 2749 2750 // This is almost certainly an invalid type name. Let Sema emit a diagnostic 2751 // and attempt to recover. 2752 ParsedType T; 2753 IdentifierInfo *II = Tok.getIdentifierInfo(); 2754 bool IsTemplateName = getLangOpts().CPlusPlus && NextToken().is(tok::less); 2755 Actions.DiagnoseUnknownTypeName(II, Loc, getCurScope(), SS, T, 2756 IsTemplateName); 2757 if (T) { 2758 // The action has suggested that the type T could be used. Set that as 2759 // the type in the declaration specifiers, consume the would-be type 2760 // name token, and we're done. 2761 const char *PrevSpec; 2762 unsigned DiagID; 2763 DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, DiagID, T, 2764 Actions.getASTContext().getPrintingPolicy()); 2765 DS.SetRangeEnd(Tok.getLocation()); 2766 ConsumeToken(); 2767 // There may be other declaration specifiers after this. 2768 return true; 2769 } else if (II != Tok.getIdentifierInfo()) { 2770 // If no type was suggested, the correction is to a keyword 2771 Tok.setKind(II->getTokenID()); 2772 // There may be other declaration specifiers after this. 2773 return true; 2774 } 2775 2776 // Otherwise, the action had no suggestion for us. Mark this as an error. 2777 DS.SetTypeSpecError(); 2778 DS.SetRangeEnd(Tok.getLocation()); 2779 ConsumeToken(); 2780 2781 // Eat any following template arguments. 2782 if (IsTemplateName) { 2783 SourceLocation LAngle, RAngle; 2784 TemplateArgList Args; 2785 ParseTemplateIdAfterTemplateName(true, LAngle, Args, RAngle); 2786 } 2787 2788 // TODO: Could inject an invalid typedef decl in an enclosing scope to 2789 // avoid rippling error messages on subsequent uses of the same type, 2790 // could be useful if #include was forgotten. 2791 return true; 2792 } 2793 2794 /// Determine the declaration specifier context from the declarator 2795 /// context. 2796 /// 2797 /// \param Context the declarator context, which is one of the 2798 /// DeclaratorContext enumerator values. 2799 Parser::DeclSpecContext 2800 Parser::getDeclSpecContextFromDeclaratorContext(DeclaratorContext Context) { 2801 if (Context == DeclaratorContext::MemberContext) 2802 return DeclSpecContext::DSC_class; 2803 if (Context == DeclaratorContext::FileContext) 2804 return DeclSpecContext::DSC_top_level; 2805 if (Context == DeclaratorContext::TemplateParamContext) 2806 return DeclSpecContext::DSC_template_param; 2807 if (Context == DeclaratorContext::TemplateArgContext || 2808 Context == DeclaratorContext::TemplateTypeArgContext) 2809 return DeclSpecContext::DSC_template_type_arg; 2810 if (Context == DeclaratorContext::TrailingReturnContext || 2811 Context == DeclaratorContext::TrailingReturnVarContext) 2812 return DeclSpecContext::DSC_trailing; 2813 if (Context == DeclaratorContext::AliasDeclContext || 2814 Context == DeclaratorContext::AliasTemplateContext) 2815 return DeclSpecContext::DSC_alias_declaration; 2816 return DeclSpecContext::DSC_normal; 2817 } 2818 2819 /// ParseAlignArgument - Parse the argument to an alignment-specifier. 2820 /// 2821 /// FIXME: Simply returns an alignof() expression if the argument is a 2822 /// type. Ideally, the type should be propagated directly into Sema. 2823 /// 2824 /// [C11] type-id 2825 /// [C11] constant-expression 2826 /// [C++0x] type-id ...[opt] 2827 /// [C++0x] assignment-expression ...[opt] 2828 ExprResult Parser::ParseAlignArgument(SourceLocation Start, 2829 SourceLocation &EllipsisLoc) { 2830 ExprResult ER; 2831 if (isTypeIdInParens()) { 2832 SourceLocation TypeLoc = Tok.getLocation(); 2833 ParsedType Ty = ParseTypeName().get(); 2834 SourceRange TypeRange(Start, Tok.getLocation()); 2835 ER = Actions.ActOnUnaryExprOrTypeTraitExpr(TypeLoc, UETT_AlignOf, true, 2836 Ty.getAsOpaquePtr(), TypeRange); 2837 } else 2838 ER = ParseConstantExpression(); 2839 2840 if (getLangOpts().CPlusPlus11) 2841 TryConsumeToken(tok::ellipsis, EllipsisLoc); 2842 2843 return ER; 2844 } 2845 2846 /// ParseAlignmentSpecifier - Parse an alignment-specifier, and add the 2847 /// attribute to Attrs. 2848 /// 2849 /// alignment-specifier: 2850 /// [C11] '_Alignas' '(' type-id ')' 2851 /// [C11] '_Alignas' '(' constant-expression ')' 2852 /// [C++11] 'alignas' '(' type-id ...[opt] ')' 2853 /// [C++11] 'alignas' '(' assignment-expression ...[opt] ')' 2854 void Parser::ParseAlignmentSpecifier(ParsedAttributes &Attrs, 2855 SourceLocation *EndLoc) { 2856 assert(Tok.isOneOf(tok::kw_alignas, tok::kw__Alignas) && 2857 "Not an alignment-specifier!"); 2858 2859 IdentifierInfo *KWName = Tok.getIdentifierInfo(); 2860 SourceLocation KWLoc = ConsumeToken(); 2861 2862 BalancedDelimiterTracker T(*this, tok::l_paren); 2863 if (T.expectAndConsume()) 2864 return; 2865 2866 SourceLocation EllipsisLoc; 2867 ExprResult ArgExpr = ParseAlignArgument(T.getOpenLocation(), EllipsisLoc); 2868 if (ArgExpr.isInvalid()) { 2869 T.skipToEnd(); 2870 return; 2871 } 2872 2873 T.consumeClose(); 2874 if (EndLoc) 2875 *EndLoc = T.getCloseLocation(); 2876 2877 ArgsVector ArgExprs; 2878 ArgExprs.push_back(ArgExpr.get()); 2879 Attrs.addNew(KWName, KWLoc, nullptr, KWLoc, ArgExprs.data(), 1, 2880 ParsedAttr::AS_Keyword, EllipsisLoc); 2881 } 2882 2883 /// Determine whether we're looking at something that might be a declarator 2884 /// in a simple-declaration. If it can't possibly be a declarator, maybe 2885 /// diagnose a missing semicolon after a prior tag definition in the decl 2886 /// specifier. 2887 /// 2888 /// \return \c true if an error occurred and this can't be any kind of 2889 /// declaration. 2890 bool 2891 Parser::DiagnoseMissingSemiAfterTagDefinition(DeclSpec &DS, AccessSpecifier AS, 2892 DeclSpecContext DSContext, 2893 LateParsedAttrList *LateAttrs) { 2894 assert(DS.hasTagDefinition() && "shouldn't call this"); 2895 2896 bool EnteringContext = (DSContext == DeclSpecContext::DSC_class || 2897 DSContext == DeclSpecContext::DSC_top_level); 2898 2899 if (getLangOpts().CPlusPlus && 2900 Tok.isOneOf(tok::identifier, tok::coloncolon, tok::kw_decltype, 2901 tok::annot_template_id) && 2902 TryAnnotateCXXScopeToken(EnteringContext)) { 2903 SkipMalformedDecl(); 2904 return true; 2905 } 2906 2907 bool HasScope = Tok.is(tok::annot_cxxscope); 2908 // Make a copy in case GetLookAheadToken invalidates the result of NextToken. 2909 Token AfterScope = HasScope ? NextToken() : Tok; 2910 2911 // Determine whether the following tokens could possibly be a 2912 // declarator. 2913 bool MightBeDeclarator = true; 2914 if (Tok.isOneOf(tok::kw_typename, tok::annot_typename)) { 2915 // A declarator-id can't start with 'typename'. 2916 MightBeDeclarator = false; 2917 } else if (AfterScope.is(tok::annot_template_id)) { 2918 // If we have a type expressed as a template-id, this cannot be a 2919 // declarator-id (such a type cannot be redeclared in a simple-declaration). 2920 TemplateIdAnnotation *Annot = 2921 static_cast<TemplateIdAnnotation *>(AfterScope.getAnnotationValue()); 2922 if (Annot->Kind == TNK_Type_template) 2923 MightBeDeclarator = false; 2924 } else if (AfterScope.is(tok::identifier)) { 2925 const Token &Next = HasScope ? GetLookAheadToken(2) : NextToken(); 2926 2927 // These tokens cannot come after the declarator-id in a 2928 // simple-declaration, and are likely to come after a type-specifier. 2929 if (Next.isOneOf(tok::star, tok::amp, tok::ampamp, tok::identifier, 2930 tok::annot_cxxscope, tok::coloncolon)) { 2931 // Missing a semicolon. 2932 MightBeDeclarator = false; 2933 } else if (HasScope) { 2934 // If the declarator-id has a scope specifier, it must redeclare a 2935 // previously-declared entity. If that's a type (and this is not a 2936 // typedef), that's an error. 2937 CXXScopeSpec SS; 2938 Actions.RestoreNestedNameSpecifierAnnotation( 2939 Tok.getAnnotationValue(), Tok.getAnnotationRange(), SS); 2940 IdentifierInfo *Name = AfterScope.getIdentifierInfo(); 2941 Sema::NameClassification Classification = Actions.ClassifyName( 2942 getCurScope(), SS, Name, AfterScope.getLocation(), Next, 2943 /*CCC=*/nullptr); 2944 switch (Classification.getKind()) { 2945 case Sema::NC_Error: 2946 SkipMalformedDecl(); 2947 return true; 2948 2949 case Sema::NC_Keyword: 2950 llvm_unreachable("typo correction is not possible here"); 2951 2952 case Sema::NC_Type: 2953 case Sema::NC_TypeTemplate: 2954 case Sema::NC_UndeclaredNonType: 2955 case Sema::NC_UndeclaredTemplate: 2956 // Not a previously-declared non-type entity. 2957 MightBeDeclarator = false; 2958 break; 2959 2960 case Sema::NC_Unknown: 2961 case Sema::NC_NonType: 2962 case Sema::NC_DependentNonType: 2963 case Sema::NC_ContextIndependentExpr: 2964 case Sema::NC_VarTemplate: 2965 case Sema::NC_FunctionTemplate: 2966 case Sema::NC_Concept: 2967 // Might be a redeclaration of a prior entity. 2968 break; 2969 } 2970 } 2971 } 2972 2973 if (MightBeDeclarator) 2974 return false; 2975 2976 const PrintingPolicy &PPol = Actions.getASTContext().getPrintingPolicy(); 2977 Diag(PP.getLocForEndOfToken(DS.getRepAsDecl()->getEndLoc()), 2978 diag::err_expected_after) 2979 << DeclSpec::getSpecifierName(DS.getTypeSpecType(), PPol) << tok::semi; 2980 2981 // Try to recover from the typo, by dropping the tag definition and parsing 2982 // the problematic tokens as a type. 2983 // 2984 // FIXME: Split the DeclSpec into pieces for the standalone 2985 // declaration and pieces for the following declaration, instead 2986 // of assuming that all the other pieces attach to new declaration, 2987 // and call ParsedFreeStandingDeclSpec as appropriate. 2988 DS.ClearTypeSpecType(); 2989 ParsedTemplateInfo NotATemplate; 2990 ParseDeclarationSpecifiers(DS, NotATemplate, AS, DSContext, LateAttrs); 2991 return false; 2992 } 2993 2994 // Choose the apprpriate diagnostic error for why fixed point types are 2995 // disabled, set the previous specifier, and mark as invalid. 2996 static void SetupFixedPointError(const LangOptions &LangOpts, 2997 const char *&PrevSpec, unsigned &DiagID, 2998 bool &isInvalid) { 2999 assert(!LangOpts.FixedPoint); 3000 DiagID = diag::err_fixed_point_not_enabled; 3001 PrevSpec = ""; // Not used by diagnostic 3002 isInvalid = true; 3003 } 3004 3005 /// ParseDeclarationSpecifiers 3006 /// declaration-specifiers: [C99 6.7] 3007 /// storage-class-specifier declaration-specifiers[opt] 3008 /// type-specifier declaration-specifiers[opt] 3009 /// [C99] function-specifier declaration-specifiers[opt] 3010 /// [C11] alignment-specifier declaration-specifiers[opt] 3011 /// [GNU] attributes declaration-specifiers[opt] 3012 /// [Clang] '__module_private__' declaration-specifiers[opt] 3013 /// [ObjC1] '__kindof' declaration-specifiers[opt] 3014 /// 3015 /// storage-class-specifier: [C99 6.7.1] 3016 /// 'typedef' 3017 /// 'extern' 3018 /// 'static' 3019 /// 'auto' 3020 /// 'register' 3021 /// [C++] 'mutable' 3022 /// [C++11] 'thread_local' 3023 /// [C11] '_Thread_local' 3024 /// [GNU] '__thread' 3025 /// function-specifier: [C99 6.7.4] 3026 /// [C99] 'inline' 3027 /// [C++] 'virtual' 3028 /// [C++] 'explicit' 3029 /// [OpenCL] '__kernel' 3030 /// 'friend': [C++ dcl.friend] 3031 /// 'constexpr': [C++0x dcl.constexpr] 3032 void Parser::ParseDeclarationSpecifiers(DeclSpec &DS, 3033 const ParsedTemplateInfo &TemplateInfo, 3034 AccessSpecifier AS, 3035 DeclSpecContext DSContext, 3036 LateParsedAttrList *LateAttrs) { 3037 if (DS.getSourceRange().isInvalid()) { 3038 // Start the range at the current token but make the end of the range 3039 // invalid. This will make the entire range invalid unless we successfully 3040 // consume a token. 3041 DS.SetRangeStart(Tok.getLocation()); 3042 DS.SetRangeEnd(SourceLocation()); 3043 } 3044 3045 bool EnteringContext = (DSContext == DeclSpecContext::DSC_class || 3046 DSContext == DeclSpecContext::DSC_top_level); 3047 bool AttrsLastTime = false; 3048 ParsedAttributesWithRange attrs(AttrFactory); 3049 // We use Sema's policy to get bool macros right. 3050 PrintingPolicy Policy = Actions.getPrintingPolicy(); 3051 while (1) { 3052 bool isInvalid = false; 3053 bool isStorageClass = false; 3054 const char *PrevSpec = nullptr; 3055 unsigned DiagID = 0; 3056 3057 // This value needs to be set to the location of the last token if the last 3058 // token of the specifier is already consumed. 3059 SourceLocation ConsumedEnd; 3060 3061 // HACK: MSVC doesn't consider _Atomic to be a keyword and its STL 3062 // implementation for VS2013 uses _Atomic as an identifier for one of the 3063 // classes in <atomic>. 3064 // 3065 // A typedef declaration containing _Atomic<...> is among the places where 3066 // the class is used. If we are currently parsing such a declaration, treat 3067 // the token as an identifier. 3068 if (getLangOpts().MSVCCompat && Tok.is(tok::kw__Atomic) && 3069 DS.getStorageClassSpec() == clang::DeclSpec::SCS_typedef && 3070 !DS.hasTypeSpecifier() && GetLookAheadToken(1).is(tok::less)) 3071 Tok.setKind(tok::identifier); 3072 3073 SourceLocation Loc = Tok.getLocation(); 3074 3075 switch (Tok.getKind()) { 3076 default: 3077 DoneWithDeclSpec: 3078 if (!AttrsLastTime) 3079 ProhibitAttributes(attrs); 3080 else { 3081 // Reject C++11 attributes that appertain to decl specifiers as 3082 // we don't support any C++11 attributes that appertain to decl 3083 // specifiers. This also conforms to what g++ 4.8 is doing. 3084 ProhibitCXX11Attributes(attrs, diag::err_attribute_not_type_attr); 3085 3086 DS.takeAttributesFrom(attrs); 3087 } 3088 3089 // If this is not a declaration specifier token, we're done reading decl 3090 // specifiers. First verify that DeclSpec's are consistent. 3091 DS.Finish(Actions, Policy); 3092 return; 3093 3094 case tok::l_square: 3095 case tok::kw_alignas: 3096 if (!standardAttributesAllowed() || !isCXX11AttributeSpecifier()) 3097 goto DoneWithDeclSpec; 3098 3099 ProhibitAttributes(attrs); 3100 // FIXME: It would be good to recover by accepting the attributes, 3101 // but attempting to do that now would cause serious 3102 // madness in terms of diagnostics. 3103 attrs.clear(); 3104 attrs.Range = SourceRange(); 3105 3106 ParseCXX11Attributes(attrs); 3107 AttrsLastTime = true; 3108 continue; 3109 3110 case tok::code_completion: { 3111 Sema::ParserCompletionContext CCC = Sema::PCC_Namespace; 3112 if (DS.hasTypeSpecifier()) { 3113 bool AllowNonIdentifiers 3114 = (getCurScope()->getFlags() & (Scope::ControlScope | 3115 Scope::BlockScope | 3116 Scope::TemplateParamScope | 3117 Scope::FunctionPrototypeScope | 3118 Scope::AtCatchScope)) == 0; 3119 bool AllowNestedNameSpecifiers 3120 = DSContext == DeclSpecContext::DSC_top_level || 3121 (DSContext == DeclSpecContext::DSC_class && DS.isFriendSpecified()); 3122 3123 Actions.CodeCompleteDeclSpec(getCurScope(), DS, 3124 AllowNonIdentifiers, 3125 AllowNestedNameSpecifiers); 3126 return cutOffParsing(); 3127 } 3128 3129 if (getCurScope()->getFnParent() || getCurScope()->getBlockParent()) 3130 CCC = Sema::PCC_LocalDeclarationSpecifiers; 3131 else if (TemplateInfo.Kind != ParsedTemplateInfo::NonTemplate) 3132 CCC = DSContext == DeclSpecContext::DSC_class ? Sema::PCC_MemberTemplate 3133 : Sema::PCC_Template; 3134 else if (DSContext == DeclSpecContext::DSC_class) 3135 CCC = Sema::PCC_Class; 3136 else if (CurParsedObjCImpl) 3137 CCC = Sema::PCC_ObjCImplementation; 3138 3139 Actions.CodeCompleteOrdinaryName(getCurScope(), CCC); 3140 return cutOffParsing(); 3141 } 3142 3143 case tok::coloncolon: // ::foo::bar 3144 // C++ scope specifier. Annotate and loop, or bail out on error. 3145 if (TryAnnotateCXXScopeToken(EnteringContext)) { 3146 if (!DS.hasTypeSpecifier()) 3147 DS.SetTypeSpecError(); 3148 goto DoneWithDeclSpec; 3149 } 3150 if (Tok.is(tok::coloncolon)) // ::new or ::delete 3151 goto DoneWithDeclSpec; 3152 continue; 3153 3154 case tok::annot_cxxscope: { 3155 if (DS.hasTypeSpecifier() || DS.isTypeAltiVecVector()) 3156 goto DoneWithDeclSpec; 3157 3158 CXXScopeSpec SS; 3159 Actions.RestoreNestedNameSpecifierAnnotation(Tok.getAnnotationValue(), 3160 Tok.getAnnotationRange(), 3161 SS); 3162 3163 // We are looking for a qualified typename. 3164 Token Next = NextToken(); 3165 if (Next.is(tok::annot_template_id) && 3166 static_cast<TemplateIdAnnotation *>(Next.getAnnotationValue()) 3167 ->Kind == TNK_Type_template) { 3168 // We have a qualified template-id, e.g., N::A<int> 3169 3170 // If this would be a valid constructor declaration with template 3171 // arguments, we will reject the attempt to form an invalid type-id 3172 // referring to the injected-class-name when we annotate the token, 3173 // per C++ [class.qual]p2. 3174 // 3175 // To improve diagnostics for this case, parse the declaration as a 3176 // constructor (and reject the extra template arguments later). 3177 TemplateIdAnnotation *TemplateId = takeTemplateIdAnnotation(Next); 3178 if ((DSContext == DeclSpecContext::DSC_top_level || 3179 DSContext == DeclSpecContext::DSC_class) && 3180 TemplateId->Name && 3181 Actions.isCurrentClassName(*TemplateId->Name, getCurScope(), &SS) && 3182 isConstructorDeclarator(/*Unqualified=*/false)) { 3183 // The user meant this to be an out-of-line constructor 3184 // definition, but template arguments are not allowed 3185 // there. Just allow this as a constructor; we'll 3186 // complain about it later. 3187 goto DoneWithDeclSpec; 3188 } 3189 3190 DS.getTypeSpecScope() = SS; 3191 ConsumeAnnotationToken(); // The C++ scope. 3192 assert(Tok.is(tok::annot_template_id) && 3193 "ParseOptionalCXXScopeSpecifier not working"); 3194 AnnotateTemplateIdTokenAsType(SS); 3195 continue; 3196 } 3197 3198 if (Next.is(tok::annot_template_id) && 3199 static_cast<TemplateIdAnnotation *>(Next.getAnnotationValue()) 3200 ->Kind == TNK_Concept_template && 3201 GetLookAheadToken(2).isOneOf(tok::kw_auto, tok::kw_decltype)) { 3202 DS.getTypeSpecScope() = SS; 3203 // This is a qualified placeholder-specifier, e.g., ::C<int> auto ... 3204 // Consume the scope annotation and continue to consume the template-id 3205 // as a placeholder-specifier. 3206 ConsumeAnnotationToken(); 3207 continue; 3208 } 3209 3210 if (Next.is(tok::annot_typename)) { 3211 DS.getTypeSpecScope() = SS; 3212 ConsumeAnnotationToken(); // The C++ scope. 3213 if (Tok.getAnnotationValue()) { 3214 ParsedType T = getTypeAnnotation(Tok); 3215 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_typename, 3216 Tok.getAnnotationEndLoc(), 3217 PrevSpec, DiagID, T, Policy); 3218 if (isInvalid) 3219 break; 3220 } 3221 else 3222 DS.SetTypeSpecError(); 3223 DS.SetRangeEnd(Tok.getAnnotationEndLoc()); 3224 ConsumeAnnotationToken(); // The typename 3225 } 3226 3227 if (Next.isNot(tok::identifier)) 3228 goto DoneWithDeclSpec; 3229 3230 // Check whether this is a constructor declaration. If we're in a 3231 // context where the identifier could be a class name, and it has the 3232 // shape of a constructor declaration, process it as one. 3233 if ((DSContext == DeclSpecContext::DSC_top_level || 3234 DSContext == DeclSpecContext::DSC_class) && 3235 Actions.isCurrentClassName(*Next.getIdentifierInfo(), getCurScope(), 3236 &SS) && 3237 isConstructorDeclarator(/*Unqualified*/ false)) 3238 goto DoneWithDeclSpec; 3239 3240 ParsedType TypeRep = 3241 Actions.getTypeName(*Next.getIdentifierInfo(), Next.getLocation(), 3242 getCurScope(), &SS, false, false, nullptr, 3243 /*IsCtorOrDtorName=*/false, 3244 /*WantNontrivialTypeSourceInfo=*/true, 3245 isClassTemplateDeductionContext(DSContext)); 3246 3247 // If the referenced identifier is not a type, then this declspec is 3248 // erroneous: We already checked about that it has no type specifier, and 3249 // C++ doesn't have implicit int. Diagnose it as a typo w.r.t. to the 3250 // typename. 3251 if (!TypeRep) { 3252 if (TryAnnotateTypeConstraint()) 3253 goto DoneWithDeclSpec; 3254 if (isTypeConstraintAnnotation()) 3255 continue; 3256 // Eat the scope spec so the identifier is current. 3257 ConsumeAnnotationToken(); 3258 ParsedAttributesWithRange Attrs(AttrFactory); 3259 if (ParseImplicitInt(DS, &SS, TemplateInfo, AS, DSContext, Attrs)) { 3260 if (!Attrs.empty()) { 3261 AttrsLastTime = true; 3262 attrs.takeAllFrom(Attrs); 3263 } 3264 continue; 3265 } 3266 goto DoneWithDeclSpec; 3267 } 3268 3269 DS.getTypeSpecScope() = SS; 3270 ConsumeAnnotationToken(); // The C++ scope. 3271 3272 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, 3273 DiagID, TypeRep, Policy); 3274 if (isInvalid) 3275 break; 3276 3277 DS.SetRangeEnd(Tok.getLocation()); 3278 ConsumeToken(); // The typename. 3279 3280 continue; 3281 } 3282 3283 case tok::annot_typename: { 3284 // If we've previously seen a tag definition, we were almost surely 3285 // missing a semicolon after it. 3286 if (DS.hasTypeSpecifier() && DS.hasTagDefinition()) 3287 goto DoneWithDeclSpec; 3288 3289 if (Tok.getAnnotationValue()) { 3290 ParsedType T = getTypeAnnotation(Tok); 3291 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, 3292 DiagID, T, Policy); 3293 } else 3294 DS.SetTypeSpecError(); 3295 3296 if (isInvalid) 3297 break; 3298 3299 DS.SetRangeEnd(Tok.getAnnotationEndLoc()); 3300 ConsumeAnnotationToken(); // The typename 3301 3302 continue; 3303 } 3304 3305 case tok::kw___is_signed: 3306 // GNU libstdc++ 4.4 uses __is_signed as an identifier, but Clang 3307 // typically treats it as a trait. If we see __is_signed as it appears 3308 // in libstdc++, e.g., 3309 // 3310 // static const bool __is_signed; 3311 // 3312 // then treat __is_signed as an identifier rather than as a keyword. 3313 if (DS.getTypeSpecType() == TST_bool && 3314 DS.getTypeQualifiers() == DeclSpec::TQ_const && 3315 DS.getStorageClassSpec() == DeclSpec::SCS_static) 3316 TryKeywordIdentFallback(true); 3317 3318 // We're done with the declaration-specifiers. 3319 goto DoneWithDeclSpec; 3320 3321 // typedef-name 3322 case tok::kw___super: 3323 case tok::kw_decltype: 3324 case tok::identifier: { 3325 // This identifier can only be a typedef name if we haven't already seen 3326 // a type-specifier. Without this check we misparse: 3327 // typedef int X; struct Y { short X; }; as 'short int'. 3328 if (DS.hasTypeSpecifier()) 3329 goto DoneWithDeclSpec; 3330 3331 // If the token is an identifier named "__declspec" and Microsoft 3332 // extensions are not enabled, it is likely that there will be cascading 3333 // parse errors if this really is a __declspec attribute. Attempt to 3334 // recognize that scenario and recover gracefully. 3335 if (!getLangOpts().DeclSpecKeyword && Tok.is(tok::identifier) && 3336 Tok.getIdentifierInfo()->getName().equals("__declspec")) { 3337 Diag(Loc, diag::err_ms_attributes_not_enabled); 3338 3339 // The next token should be an open paren. If it is, eat the entire 3340 // attribute declaration and continue. 3341 if (NextToken().is(tok::l_paren)) { 3342 // Consume the __declspec identifier. 3343 ConsumeToken(); 3344 3345 // Eat the parens and everything between them. 3346 BalancedDelimiterTracker T(*this, tok::l_paren); 3347 if (T.consumeOpen()) { 3348 assert(false && "Not a left paren?"); 3349 return; 3350 } 3351 T.skipToEnd(); 3352 continue; 3353 } 3354 } 3355 3356 // In C++, check to see if this is a scope specifier like foo::bar::, if 3357 // so handle it as such. This is important for ctor parsing. 3358 if (getLangOpts().CPlusPlus) { 3359 if (TryAnnotateCXXScopeToken(EnteringContext)) { 3360 DS.SetTypeSpecError(); 3361 goto DoneWithDeclSpec; 3362 } 3363 if (!Tok.is(tok::identifier)) 3364 continue; 3365 } 3366 3367 // Check for need to substitute AltiVec keyword tokens. 3368 if (TryAltiVecToken(DS, Loc, PrevSpec, DiagID, isInvalid)) 3369 break; 3370 3371 // [AltiVec] 2.2: [If the 'vector' specifier is used] The syntax does not 3372 // allow the use of a typedef name as a type specifier. 3373 if (DS.isTypeAltiVecVector()) 3374 goto DoneWithDeclSpec; 3375 3376 if (DSContext == DeclSpecContext::DSC_objc_method_result && 3377 isObjCInstancetype()) { 3378 ParsedType TypeRep = Actions.ActOnObjCInstanceType(Loc); 3379 assert(TypeRep); 3380 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, 3381 DiagID, TypeRep, Policy); 3382 if (isInvalid) 3383 break; 3384 3385 DS.SetRangeEnd(Loc); 3386 ConsumeToken(); 3387 continue; 3388 } 3389 3390 // If we're in a context where the identifier could be a class name, 3391 // check whether this is a constructor declaration. 3392 if (getLangOpts().CPlusPlus && DSContext == DeclSpecContext::DSC_class && 3393 Actions.isCurrentClassName(*Tok.getIdentifierInfo(), getCurScope()) && 3394 isConstructorDeclarator(/*Unqualified*/true)) 3395 goto DoneWithDeclSpec; 3396 3397 ParsedType TypeRep = Actions.getTypeName( 3398 *Tok.getIdentifierInfo(), Tok.getLocation(), getCurScope(), nullptr, 3399 false, false, nullptr, false, false, 3400 isClassTemplateDeductionContext(DSContext)); 3401 3402 // If this is not a typedef name, don't parse it as part of the declspec, 3403 // it must be an implicit int or an error. 3404 if (!TypeRep) { 3405 if (TryAnnotateTypeConstraint()) 3406 goto DoneWithDeclSpec; 3407 if (isTypeConstraintAnnotation()) 3408 continue; 3409 ParsedAttributesWithRange Attrs(AttrFactory); 3410 if (ParseImplicitInt(DS, nullptr, TemplateInfo, AS, DSContext, Attrs)) { 3411 if (!Attrs.empty()) { 3412 AttrsLastTime = true; 3413 attrs.takeAllFrom(Attrs); 3414 } 3415 continue; 3416 } 3417 goto DoneWithDeclSpec; 3418 } 3419 3420 // Likewise, if this is a context where the identifier could be a template 3421 // name, check whether this is a deduction guide declaration. 3422 if (getLangOpts().CPlusPlus17 && 3423 (DSContext == DeclSpecContext::DSC_class || 3424 DSContext == DeclSpecContext::DSC_top_level) && 3425 Actions.isDeductionGuideName(getCurScope(), *Tok.getIdentifierInfo(), 3426 Tok.getLocation()) && 3427 isConstructorDeclarator(/*Unqualified*/ true, 3428 /*DeductionGuide*/ true)) 3429 goto DoneWithDeclSpec; 3430 3431 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, 3432 DiagID, TypeRep, Policy); 3433 if (isInvalid) 3434 break; 3435 3436 DS.SetRangeEnd(Tok.getLocation()); 3437 ConsumeToken(); // The identifier 3438 3439 // Objective-C supports type arguments and protocol references 3440 // following an Objective-C object or object pointer 3441 // type. Handle either one of them. 3442 if (Tok.is(tok::less) && getLangOpts().ObjC) { 3443 SourceLocation NewEndLoc; 3444 TypeResult NewTypeRep = parseObjCTypeArgsAndProtocolQualifiers( 3445 Loc, TypeRep, /*consumeLastToken=*/true, 3446 NewEndLoc); 3447 if (NewTypeRep.isUsable()) { 3448 DS.UpdateTypeRep(NewTypeRep.get()); 3449 DS.SetRangeEnd(NewEndLoc); 3450 } 3451 } 3452 3453 // Need to support trailing type qualifiers (e.g. "id<p> const"). 3454 // If a type specifier follows, it will be diagnosed elsewhere. 3455 continue; 3456 } 3457 3458 // type-name or placeholder-specifier 3459 case tok::annot_template_id: { 3460 TemplateIdAnnotation *TemplateId = takeTemplateIdAnnotation(Tok); 3461 if (TemplateId->Kind == TNK_Concept_template) { 3462 if (NextToken().is(tok::identifier)) { 3463 Diag(Loc, diag::err_placeholder_expected_auto_or_decltype_auto) 3464 << FixItHint::CreateInsertion(NextToken().getLocation(), "auto"); 3465 // Attempt to continue as if 'auto' was placed here. 3466 isInvalid = DS.SetTypeSpecType(TST_auto, Loc, PrevSpec, DiagID, 3467 TemplateId, Policy); 3468 break; 3469 } 3470 if (!NextToken().isOneOf(tok::kw_auto, tok::kw_decltype)) 3471 goto DoneWithDeclSpec; 3472 ConsumeAnnotationToken(); 3473 SourceLocation AutoLoc = Tok.getLocation(); 3474 if (TryConsumeToken(tok::kw_decltype)) { 3475 BalancedDelimiterTracker Tracker(*this, tok::l_paren); 3476 if (Tracker.consumeOpen()) { 3477 // Something like `void foo(Iterator decltype i)` 3478 Diag(Tok, diag::err_expected) << tok::l_paren; 3479 } else { 3480 if (!TryConsumeToken(tok::kw_auto)) { 3481 // Something like `void foo(Iterator decltype(int) i)` 3482 Tracker.skipToEnd(); 3483 Diag(Tok, diag::err_placeholder_expected_auto_or_decltype_auto) 3484 << FixItHint::CreateReplacement(SourceRange(AutoLoc, 3485 Tok.getLocation()), 3486 "auto"); 3487 } else { 3488 Tracker.consumeClose(); 3489 } 3490 } 3491 ConsumedEnd = Tok.getLocation(); 3492 // Even if something went wrong above, continue as if we've seen 3493 // `decltype(auto)`. 3494 isInvalid = DS.SetTypeSpecType(TST_decltype_auto, Loc, PrevSpec, 3495 DiagID, TemplateId, Policy); 3496 } else { 3497 isInvalid = DS.SetTypeSpecType(TST_auto, Loc, PrevSpec, DiagID, 3498 TemplateId, Policy); 3499 } 3500 break; 3501 } 3502 3503 if (TemplateId->Kind != TNK_Type_template && 3504 TemplateId->Kind != TNK_Undeclared_template) { 3505 // This template-id does not refer to a type name, so we're 3506 // done with the type-specifiers. 3507 goto DoneWithDeclSpec; 3508 } 3509 3510 // If we're in a context where the template-id could be a 3511 // constructor name or specialization, check whether this is a 3512 // constructor declaration. 3513 if (getLangOpts().CPlusPlus && DSContext == DeclSpecContext::DSC_class && 3514 Actions.isCurrentClassName(*TemplateId->Name, getCurScope()) && 3515 isConstructorDeclarator(/*Unqualified=*/true)) 3516 goto DoneWithDeclSpec; 3517 3518 // Turn the template-id annotation token into a type annotation 3519 // token, then try again to parse it as a type-specifier. 3520 CXXScopeSpec SS; 3521 AnnotateTemplateIdTokenAsType(SS); 3522 continue; 3523 } 3524 3525 // GNU attributes support. 3526 case tok::kw___attribute: 3527 ParseGNUAttributes(DS.getAttributes(), nullptr, LateAttrs); 3528 continue; 3529 3530 // Microsoft declspec support. 3531 case tok::kw___declspec: 3532 ParseMicrosoftDeclSpecs(DS.getAttributes()); 3533 continue; 3534 3535 // Microsoft single token adornments. 3536 case tok::kw___forceinline: { 3537 isInvalid = DS.setFunctionSpecForceInline(Loc, PrevSpec, DiagID); 3538 IdentifierInfo *AttrName = Tok.getIdentifierInfo(); 3539 SourceLocation AttrNameLoc = Tok.getLocation(); 3540 DS.getAttributes().addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, 3541 nullptr, 0, ParsedAttr::AS_Keyword); 3542 break; 3543 } 3544 3545 case tok::kw___unaligned: 3546 isInvalid = DS.SetTypeQual(DeclSpec::TQ_unaligned, Loc, PrevSpec, DiagID, 3547 getLangOpts()); 3548 break; 3549 3550 case tok::kw___sptr: 3551 case tok::kw___uptr: 3552 case tok::kw___ptr64: 3553 case tok::kw___ptr32: 3554 case tok::kw___w64: 3555 case tok::kw___cdecl: 3556 case tok::kw___stdcall: 3557 case tok::kw___fastcall: 3558 case tok::kw___thiscall: 3559 case tok::kw___regcall: 3560 case tok::kw___vectorcall: 3561 ParseMicrosoftTypeAttributes(DS.getAttributes()); 3562 continue; 3563 3564 // Borland single token adornments. 3565 case tok::kw___pascal: 3566 ParseBorlandTypeAttributes(DS.getAttributes()); 3567 continue; 3568 3569 // OpenCL single token adornments. 3570 case tok::kw___kernel: 3571 ParseOpenCLKernelAttributes(DS.getAttributes()); 3572 continue; 3573 3574 // Nullability type specifiers. 3575 case tok::kw__Nonnull: 3576 case tok::kw__Nullable: 3577 case tok::kw__Null_unspecified: 3578 ParseNullabilityTypeSpecifiers(DS.getAttributes()); 3579 continue; 3580 3581 // Objective-C 'kindof' types. 3582 case tok::kw___kindof: 3583 DS.getAttributes().addNew(Tok.getIdentifierInfo(), Loc, nullptr, Loc, 3584 nullptr, 0, ParsedAttr::AS_Keyword); 3585 (void)ConsumeToken(); 3586 continue; 3587 3588 // storage-class-specifier 3589 case tok::kw_typedef: 3590 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_typedef, Loc, 3591 PrevSpec, DiagID, Policy); 3592 isStorageClass = true; 3593 break; 3594 case tok::kw_extern: 3595 if (DS.getThreadStorageClassSpec() == DeclSpec::TSCS___thread) 3596 Diag(Tok, diag::ext_thread_before) << "extern"; 3597 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_extern, Loc, 3598 PrevSpec, DiagID, Policy); 3599 isStorageClass = true; 3600 break; 3601 case tok::kw___private_extern__: 3602 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_private_extern, 3603 Loc, PrevSpec, DiagID, Policy); 3604 isStorageClass = true; 3605 break; 3606 case tok::kw_static: 3607 if (DS.getThreadStorageClassSpec() == DeclSpec::TSCS___thread) 3608 Diag(Tok, diag::ext_thread_before) << "static"; 3609 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_static, Loc, 3610 PrevSpec, DiagID, Policy); 3611 isStorageClass = true; 3612 break; 3613 case tok::kw_auto: 3614 if (getLangOpts().CPlusPlus11) { 3615 if (isKnownToBeTypeSpecifier(GetLookAheadToken(1))) { 3616 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_auto, Loc, 3617 PrevSpec, DiagID, Policy); 3618 if (!isInvalid) 3619 Diag(Tok, diag::ext_auto_storage_class) 3620 << FixItHint::CreateRemoval(DS.getStorageClassSpecLoc()); 3621 } else 3622 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_auto, Loc, PrevSpec, 3623 DiagID, Policy); 3624 } else 3625 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_auto, Loc, 3626 PrevSpec, DiagID, Policy); 3627 isStorageClass = true; 3628 break; 3629 case tok::kw___auto_type: 3630 Diag(Tok, diag::ext_auto_type); 3631 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_auto_type, Loc, PrevSpec, 3632 DiagID, Policy); 3633 break; 3634 case tok::kw_register: 3635 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_register, Loc, 3636 PrevSpec, DiagID, Policy); 3637 isStorageClass = true; 3638 break; 3639 case tok::kw_mutable: 3640 isInvalid = DS.SetStorageClassSpec(Actions, DeclSpec::SCS_mutable, Loc, 3641 PrevSpec, DiagID, Policy); 3642 isStorageClass = true; 3643 break; 3644 case tok::kw___thread: 3645 isInvalid = DS.SetStorageClassSpecThread(DeclSpec::TSCS___thread, Loc, 3646 PrevSpec, DiagID); 3647 isStorageClass = true; 3648 break; 3649 case tok::kw_thread_local: 3650 isInvalid = DS.SetStorageClassSpecThread(DeclSpec::TSCS_thread_local, Loc, 3651 PrevSpec, DiagID); 3652 isStorageClass = true; 3653 break; 3654 case tok::kw__Thread_local: 3655 if (!getLangOpts().C11) 3656 Diag(Tok, diag::ext_c11_feature) << Tok.getName(); 3657 isInvalid = DS.SetStorageClassSpecThread(DeclSpec::TSCS__Thread_local, 3658 Loc, PrevSpec, DiagID); 3659 isStorageClass = true; 3660 break; 3661 3662 // function-specifier 3663 case tok::kw_inline: 3664 isInvalid = DS.setFunctionSpecInline(Loc, PrevSpec, DiagID); 3665 break; 3666 case tok::kw_virtual: 3667 // C++ for OpenCL does not allow virtual function qualifier, to avoid 3668 // function pointers restricted in OpenCL v2.0 s6.9.a. 3669 if (getLangOpts().OpenCLCPlusPlus) { 3670 DiagID = diag::err_openclcxx_virtual_function; 3671 PrevSpec = Tok.getIdentifierInfo()->getNameStart(); 3672 isInvalid = true; 3673 } 3674 else { 3675 isInvalid = DS.setFunctionSpecVirtual(Loc, PrevSpec, DiagID); 3676 } 3677 break; 3678 case tok::kw_explicit: { 3679 SourceLocation ExplicitLoc = Loc; 3680 SourceLocation CloseParenLoc; 3681 ExplicitSpecifier ExplicitSpec(nullptr, ExplicitSpecKind::ResolvedTrue); 3682 ConsumedEnd = ExplicitLoc; 3683 ConsumeToken(); // kw_explicit 3684 if (Tok.is(tok::l_paren)) { 3685 if (getLangOpts().CPlusPlus2a || isExplicitBool() == TPResult::True) { 3686 Diag(Tok.getLocation(), getLangOpts().CPlusPlus2a 3687 ? diag::warn_cxx17_compat_explicit_bool 3688 : diag::ext_explicit_bool); 3689 3690 ExprResult ExplicitExpr(static_cast<Expr *>(nullptr)); 3691 BalancedDelimiterTracker Tracker(*this, tok::l_paren); 3692 Tracker.consumeOpen(); 3693 ExplicitExpr = ParseConstantExpression(); 3694 ConsumedEnd = Tok.getLocation(); 3695 if (ExplicitExpr.isUsable()) { 3696 CloseParenLoc = Tok.getLocation(); 3697 Tracker.consumeClose(); 3698 ExplicitSpec = 3699 Actions.ActOnExplicitBoolSpecifier(ExplicitExpr.get()); 3700 } else 3701 Tracker.skipToEnd(); 3702 } else { 3703 Diag(Tok.getLocation(), diag::warn_cxx2a_compat_explicit_bool); 3704 } 3705 } 3706 isInvalid = DS.setFunctionSpecExplicit(ExplicitLoc, PrevSpec, DiagID, 3707 ExplicitSpec, CloseParenLoc); 3708 break; 3709 } 3710 case tok::kw__Noreturn: 3711 if (!getLangOpts().C11) 3712 Diag(Tok, diag::ext_c11_feature) << Tok.getName(); 3713 isInvalid = DS.setFunctionSpecNoreturn(Loc, PrevSpec, DiagID); 3714 break; 3715 3716 // alignment-specifier 3717 case tok::kw__Alignas: 3718 if (!getLangOpts().C11) 3719 Diag(Tok, diag::ext_c11_feature) << Tok.getName(); 3720 ParseAlignmentSpecifier(DS.getAttributes()); 3721 continue; 3722 3723 // friend 3724 case tok::kw_friend: 3725 if (DSContext == DeclSpecContext::DSC_class) 3726 isInvalid = DS.SetFriendSpec(Loc, PrevSpec, DiagID); 3727 else { 3728 PrevSpec = ""; // not actually used by the diagnostic 3729 DiagID = diag::err_friend_invalid_in_context; 3730 isInvalid = true; 3731 } 3732 break; 3733 3734 // Modules 3735 case tok::kw___module_private__: 3736 isInvalid = DS.setModulePrivateSpec(Loc, PrevSpec, DiagID); 3737 break; 3738 3739 // constexpr, consteval, constinit specifiers 3740 case tok::kw_constexpr: 3741 isInvalid = DS.SetConstexprSpec(CSK_constexpr, Loc, PrevSpec, DiagID); 3742 break; 3743 case tok::kw_consteval: 3744 isInvalid = DS.SetConstexprSpec(CSK_consteval, Loc, PrevSpec, DiagID); 3745 break; 3746 case tok::kw_constinit: 3747 isInvalid = DS.SetConstexprSpec(CSK_constinit, Loc, PrevSpec, DiagID); 3748 break; 3749 3750 // type-specifier 3751 case tok::kw_short: 3752 isInvalid = DS.SetTypeSpecWidth(DeclSpec::TSW_short, Loc, PrevSpec, 3753 DiagID, Policy); 3754 break; 3755 case tok::kw_long: 3756 if (DS.getTypeSpecWidth() != DeclSpec::TSW_long) 3757 isInvalid = DS.SetTypeSpecWidth(DeclSpec::TSW_long, Loc, PrevSpec, 3758 DiagID, Policy); 3759 else 3760 isInvalid = DS.SetTypeSpecWidth(DeclSpec::TSW_longlong, Loc, PrevSpec, 3761 DiagID, Policy); 3762 break; 3763 case tok::kw___int64: 3764 isInvalid = DS.SetTypeSpecWidth(DeclSpec::TSW_longlong, Loc, PrevSpec, 3765 DiagID, Policy); 3766 break; 3767 case tok::kw_signed: 3768 isInvalid = DS.SetTypeSpecSign(DeclSpec::TSS_signed, Loc, PrevSpec, 3769 DiagID); 3770 break; 3771 case tok::kw_unsigned: 3772 isInvalid = DS.SetTypeSpecSign(DeclSpec::TSS_unsigned, Loc, PrevSpec, 3773 DiagID); 3774 break; 3775 case tok::kw__Complex: 3776 if (!getLangOpts().C99) 3777 Diag(Tok, diag::ext_c99_feature) << Tok.getName(); 3778 isInvalid = DS.SetTypeSpecComplex(DeclSpec::TSC_complex, Loc, PrevSpec, 3779 DiagID); 3780 break; 3781 case tok::kw__Imaginary: 3782 if (!getLangOpts().C99) 3783 Diag(Tok, diag::ext_c99_feature) << Tok.getName(); 3784 isInvalid = DS.SetTypeSpecComplex(DeclSpec::TSC_imaginary, Loc, PrevSpec, 3785 DiagID); 3786 break; 3787 case tok::kw_void: 3788 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_void, Loc, PrevSpec, 3789 DiagID, Policy); 3790 break; 3791 case tok::kw_char: 3792 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_char, Loc, PrevSpec, 3793 DiagID, Policy); 3794 break; 3795 case tok::kw_int: 3796 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_int, Loc, PrevSpec, 3797 DiagID, Policy); 3798 break; 3799 case tok::kw___int128: 3800 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_int128, Loc, PrevSpec, 3801 DiagID, Policy); 3802 break; 3803 case tok::kw_half: 3804 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_half, Loc, PrevSpec, 3805 DiagID, Policy); 3806 break; 3807 case tok::kw_float: 3808 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_float, Loc, PrevSpec, 3809 DiagID, Policy); 3810 break; 3811 case tok::kw_double: 3812 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_double, Loc, PrevSpec, 3813 DiagID, Policy); 3814 break; 3815 case tok::kw__Float16: 3816 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_float16, Loc, PrevSpec, 3817 DiagID, Policy); 3818 break; 3819 case tok::kw__Accum: 3820 if (!getLangOpts().FixedPoint) { 3821 SetupFixedPointError(getLangOpts(), PrevSpec, DiagID, isInvalid); 3822 } else { 3823 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_accum, Loc, PrevSpec, 3824 DiagID, Policy); 3825 } 3826 break; 3827 case tok::kw__Fract: 3828 if (!getLangOpts().FixedPoint) { 3829 SetupFixedPointError(getLangOpts(), PrevSpec, DiagID, isInvalid); 3830 } else { 3831 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_fract, Loc, PrevSpec, 3832 DiagID, Policy); 3833 } 3834 break; 3835 case tok::kw__Sat: 3836 if (!getLangOpts().FixedPoint) { 3837 SetupFixedPointError(getLangOpts(), PrevSpec, DiagID, isInvalid); 3838 } else { 3839 isInvalid = DS.SetTypeSpecSat(Loc, PrevSpec, DiagID); 3840 } 3841 break; 3842 case tok::kw___float128: 3843 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_float128, Loc, PrevSpec, 3844 DiagID, Policy); 3845 break; 3846 case tok::kw_wchar_t: 3847 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_wchar, Loc, PrevSpec, 3848 DiagID, Policy); 3849 break; 3850 case tok::kw_char8_t: 3851 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_char8, Loc, PrevSpec, 3852 DiagID, Policy); 3853 break; 3854 case tok::kw_char16_t: 3855 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_char16, Loc, PrevSpec, 3856 DiagID, Policy); 3857 break; 3858 case tok::kw_char32_t: 3859 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_char32, Loc, PrevSpec, 3860 DiagID, Policy); 3861 break; 3862 case tok::kw_bool: 3863 case tok::kw__Bool: 3864 if (Tok.is(tok::kw__Bool) && !getLangOpts().C99) 3865 Diag(Tok, diag::ext_c99_feature) << Tok.getName(); 3866 3867 if (Tok.is(tok::kw_bool) && 3868 DS.getTypeSpecType() != DeclSpec::TST_unspecified && 3869 DS.getStorageClassSpec() == DeclSpec::SCS_typedef) { 3870 PrevSpec = ""; // Not used by the diagnostic. 3871 DiagID = diag::err_bool_redeclaration; 3872 // For better error recovery. 3873 Tok.setKind(tok::identifier); 3874 isInvalid = true; 3875 } else { 3876 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_bool, Loc, PrevSpec, 3877 DiagID, Policy); 3878 } 3879 break; 3880 case tok::kw__Decimal32: 3881 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_decimal32, Loc, PrevSpec, 3882 DiagID, Policy); 3883 break; 3884 case tok::kw__Decimal64: 3885 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_decimal64, Loc, PrevSpec, 3886 DiagID, Policy); 3887 break; 3888 case tok::kw__Decimal128: 3889 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_decimal128, Loc, PrevSpec, 3890 DiagID, Policy); 3891 break; 3892 case tok::kw___vector: 3893 isInvalid = DS.SetTypeAltiVecVector(true, Loc, PrevSpec, DiagID, Policy); 3894 break; 3895 case tok::kw___pixel: 3896 isInvalid = DS.SetTypeAltiVecPixel(true, Loc, PrevSpec, DiagID, Policy); 3897 break; 3898 case tok::kw___bool: 3899 isInvalid = DS.SetTypeAltiVecBool(true, Loc, PrevSpec, DiagID, Policy); 3900 break; 3901 case tok::kw_pipe: 3902 if (!getLangOpts().OpenCL || (getLangOpts().OpenCLVersion < 200 && 3903 !getLangOpts().OpenCLCPlusPlus)) { 3904 // OpenCL 2.0 defined this keyword. OpenCL 1.2 and earlier should 3905 // support the "pipe" word as identifier. 3906 Tok.getIdentifierInfo()->revertTokenIDToIdentifier(); 3907 goto DoneWithDeclSpec; 3908 } 3909 isInvalid = DS.SetTypePipe(true, Loc, PrevSpec, DiagID, Policy); 3910 break; 3911 #define GENERIC_IMAGE_TYPE(ImgType, Id) \ 3912 case tok::kw_##ImgType##_t: \ 3913 isInvalid = DS.SetTypeSpecType(DeclSpec::TST_##ImgType##_t, Loc, PrevSpec, \ 3914 DiagID, Policy); \ 3915 break; 3916 #include "clang/Basic/OpenCLImageTypes.def" 3917 case tok::kw___unknown_anytype: 3918 isInvalid = DS.SetTypeSpecType(TST_unknown_anytype, Loc, 3919 PrevSpec, DiagID, Policy); 3920 break; 3921 3922 // class-specifier: 3923 case tok::kw_class: 3924 case tok::kw_struct: 3925 case tok::kw___interface: 3926 case tok::kw_union: { 3927 tok::TokenKind Kind = Tok.getKind(); 3928 ConsumeToken(); 3929 3930 // These are attributes following class specifiers. 3931 // To produce better diagnostic, we parse them when 3932 // parsing class specifier. 3933 ParsedAttributesWithRange Attributes(AttrFactory); 3934 ParseClassSpecifier(Kind, Loc, DS, TemplateInfo, AS, 3935 EnteringContext, DSContext, Attributes); 3936 3937 // If there are attributes following class specifier, 3938 // take them over and handle them here. 3939 if (!Attributes.empty()) { 3940 AttrsLastTime = true; 3941 attrs.takeAllFrom(Attributes); 3942 } 3943 continue; 3944 } 3945 3946 // enum-specifier: 3947 case tok::kw_enum: 3948 ConsumeToken(); 3949 ParseEnumSpecifier(Loc, DS, TemplateInfo, AS, DSContext); 3950 continue; 3951 3952 // cv-qualifier: 3953 case tok::kw_const: 3954 isInvalid = DS.SetTypeQual(DeclSpec::TQ_const, Loc, PrevSpec, DiagID, 3955 getLangOpts()); 3956 break; 3957 case tok::kw_volatile: 3958 isInvalid = DS.SetTypeQual(DeclSpec::TQ_volatile, Loc, PrevSpec, DiagID, 3959 getLangOpts()); 3960 break; 3961 case tok::kw_restrict: 3962 isInvalid = DS.SetTypeQual(DeclSpec::TQ_restrict, Loc, PrevSpec, DiagID, 3963 getLangOpts()); 3964 break; 3965 3966 // C++ typename-specifier: 3967 case tok::kw_typename: 3968 if (TryAnnotateTypeOrScopeToken()) { 3969 DS.SetTypeSpecError(); 3970 goto DoneWithDeclSpec; 3971 } 3972 if (!Tok.is(tok::kw_typename)) 3973 continue; 3974 break; 3975 3976 // GNU typeof support. 3977 case tok::kw_typeof: 3978 ParseTypeofSpecifier(DS); 3979 continue; 3980 3981 case tok::annot_decltype: 3982 ParseDecltypeSpecifier(DS); 3983 continue; 3984 3985 case tok::annot_pragma_pack: 3986 HandlePragmaPack(); 3987 continue; 3988 3989 case tok::annot_pragma_ms_pragma: 3990 HandlePragmaMSPragma(); 3991 continue; 3992 3993 case tok::annot_pragma_ms_vtordisp: 3994 HandlePragmaMSVtorDisp(); 3995 continue; 3996 3997 case tok::annot_pragma_ms_pointers_to_members: 3998 HandlePragmaMSPointersToMembers(); 3999 continue; 4000 4001 case tok::kw___underlying_type: 4002 ParseUnderlyingTypeSpecifier(DS); 4003 continue; 4004 4005 case tok::kw__Atomic: 4006 // C11 6.7.2.4/4: 4007 // If the _Atomic keyword is immediately followed by a left parenthesis, 4008 // it is interpreted as a type specifier (with a type name), not as a 4009 // type qualifier. 4010 if (!getLangOpts().C11) 4011 Diag(Tok, diag::ext_c11_feature) << Tok.getName(); 4012 4013 if (NextToken().is(tok::l_paren)) { 4014 ParseAtomicSpecifier(DS); 4015 continue; 4016 } 4017 isInvalid = DS.SetTypeQual(DeclSpec::TQ_atomic, Loc, PrevSpec, DiagID, 4018 getLangOpts()); 4019 break; 4020 4021 // OpenCL address space qualifiers: 4022 case tok::kw___generic: 4023 // generic address space is introduced only in OpenCL v2.0 4024 // see OpenCL C Spec v2.0 s6.5.5 4025 if (Actions.getLangOpts().OpenCLVersion < 200 && 4026 !Actions.getLangOpts().OpenCLCPlusPlus) { 4027 DiagID = diag::err_opencl_unknown_type_specifier; 4028 PrevSpec = Tok.getIdentifierInfo()->getNameStart(); 4029 isInvalid = true; 4030 break; 4031 } 4032 LLVM_FALLTHROUGH; 4033 case tok::kw_private: 4034 // It's fine (but redundant) to check this for __generic on the 4035 // fallthrough path; we only form the __generic token in OpenCL mode. 4036 if (!getLangOpts().OpenCL) 4037 goto DoneWithDeclSpec; 4038 LLVM_FALLTHROUGH; 4039 case tok::kw___private: 4040 case tok::kw___global: 4041 case tok::kw___local: 4042 case tok::kw___constant: 4043 // OpenCL access qualifiers: 4044 case tok::kw___read_only: 4045 case tok::kw___write_only: 4046 case tok::kw___read_write: 4047 ParseOpenCLQualifiers(DS.getAttributes()); 4048 break; 4049 4050 case tok::less: 4051 // GCC ObjC supports types like "<SomeProtocol>" as a synonym for 4052 // "id<SomeProtocol>". This is hopelessly old fashioned and dangerous, 4053 // but we support it. 4054 if (DS.hasTypeSpecifier() || !getLangOpts().ObjC) 4055 goto DoneWithDeclSpec; 4056 4057 SourceLocation StartLoc = Tok.getLocation(); 4058 SourceLocation EndLoc; 4059 TypeResult Type = parseObjCProtocolQualifierType(EndLoc); 4060 if (Type.isUsable()) { 4061 if (DS.SetTypeSpecType(DeclSpec::TST_typename, StartLoc, StartLoc, 4062 PrevSpec, DiagID, Type.get(), 4063 Actions.getASTContext().getPrintingPolicy())) 4064 Diag(StartLoc, DiagID) << PrevSpec; 4065 4066 DS.SetRangeEnd(EndLoc); 4067 } else { 4068 DS.SetTypeSpecError(); 4069 } 4070 4071 // Need to support trailing type qualifiers (e.g. "id<p> const"). 4072 // If a type specifier follows, it will be diagnosed elsewhere. 4073 continue; 4074 } 4075 4076 DS.SetRangeEnd(ConsumedEnd.isValid() ? ConsumedEnd : Tok.getLocation()); 4077 4078 // If the specifier wasn't legal, issue a diagnostic. 4079 if (isInvalid) { 4080 assert(PrevSpec && "Method did not return previous specifier!"); 4081 assert(DiagID); 4082 4083 if (DiagID == diag::ext_duplicate_declspec || 4084 DiagID == diag::ext_warn_duplicate_declspec || 4085 DiagID == diag::err_duplicate_declspec) 4086 Diag(Loc, DiagID) << PrevSpec 4087 << FixItHint::CreateRemoval( 4088 SourceRange(Loc, DS.getEndLoc())); 4089 else if (DiagID == diag::err_opencl_unknown_type_specifier) { 4090 Diag(Loc, DiagID) << getLangOpts().OpenCLCPlusPlus 4091 << getLangOpts().getOpenCLVersionTuple().getAsString() 4092 << PrevSpec << isStorageClass; 4093 } else 4094 Diag(Loc, DiagID) << PrevSpec; 4095 } 4096 4097 if (DiagID != diag::err_bool_redeclaration && ConsumedEnd.isInvalid()) 4098 // After an error the next token can be an annotation token. 4099 ConsumeAnyToken(); 4100 4101 AttrsLastTime = false; 4102 } 4103 } 4104 4105 /// ParseStructDeclaration - Parse a struct declaration without the terminating 4106 /// semicolon. 4107 /// 4108 /// Note that a struct declaration refers to a declaration in a struct, 4109 /// not to the declaration of a struct. 4110 /// 4111 /// struct-declaration: 4112 /// [C2x] attributes-specifier-seq[opt] 4113 /// specifier-qualifier-list struct-declarator-list 4114 /// [GNU] __extension__ struct-declaration 4115 /// [GNU] specifier-qualifier-list 4116 /// struct-declarator-list: 4117 /// struct-declarator 4118 /// struct-declarator-list ',' struct-declarator 4119 /// [GNU] struct-declarator-list ',' attributes[opt] struct-declarator 4120 /// struct-declarator: 4121 /// declarator 4122 /// [GNU] declarator attributes[opt] 4123 /// declarator[opt] ':' constant-expression 4124 /// [GNU] declarator[opt] ':' constant-expression attributes[opt] 4125 /// 4126 void Parser::ParseStructDeclaration( 4127 ParsingDeclSpec &DS, 4128 llvm::function_ref<void(ParsingFieldDeclarator &)> FieldsCallback) { 4129 4130 if (Tok.is(tok::kw___extension__)) { 4131 // __extension__ silences extension warnings in the subexpression. 4132 ExtensionRAIIObject O(Diags); // Use RAII to do this. 4133 ConsumeToken(); 4134 return ParseStructDeclaration(DS, FieldsCallback); 4135 } 4136 4137 // Parse leading attributes. 4138 ParsedAttributesWithRange Attrs(AttrFactory); 4139 MaybeParseCXX11Attributes(Attrs); 4140 DS.takeAttributesFrom(Attrs); 4141 4142 // Parse the common specifier-qualifiers-list piece. 4143 ParseSpecifierQualifierList(DS); 4144 4145 // If there are no declarators, this is a free-standing declaration 4146 // specifier. Let the actions module cope with it. 4147 if (Tok.is(tok::semi)) { 4148 RecordDecl *AnonRecord = nullptr; 4149 Decl *TheDecl = Actions.ParsedFreeStandingDeclSpec(getCurScope(), AS_none, 4150 DS, AnonRecord); 4151 assert(!AnonRecord && "Did not expect anonymous struct or union here"); 4152 DS.complete(TheDecl); 4153 return; 4154 } 4155 4156 // Read struct-declarators until we find the semicolon. 4157 bool FirstDeclarator = true; 4158 SourceLocation CommaLoc; 4159 while (1) { 4160 ParsingFieldDeclarator DeclaratorInfo(*this, DS); 4161 DeclaratorInfo.D.setCommaLoc(CommaLoc); 4162 4163 // Attributes are only allowed here on successive declarators. 4164 if (!FirstDeclarator) 4165 MaybeParseGNUAttributes(DeclaratorInfo.D); 4166 4167 /// struct-declarator: declarator 4168 /// struct-declarator: declarator[opt] ':' constant-expression 4169 if (Tok.isNot(tok::colon)) { 4170 // Don't parse FOO:BAR as if it were a typo for FOO::BAR. 4171 ColonProtectionRAIIObject X(*this); 4172 ParseDeclarator(DeclaratorInfo.D); 4173 } else 4174 DeclaratorInfo.D.SetIdentifier(nullptr, Tok.getLocation()); 4175 4176 if (TryConsumeToken(tok::colon)) { 4177 ExprResult Res(ParseConstantExpression()); 4178 if (Res.isInvalid()) 4179 SkipUntil(tok::semi, StopBeforeMatch); 4180 else 4181 DeclaratorInfo.BitfieldSize = Res.get(); 4182 } 4183 4184 // If attributes exist after the declarator, parse them. 4185 MaybeParseGNUAttributes(DeclaratorInfo.D); 4186 4187 // We're done with this declarator; invoke the callback. 4188 FieldsCallback(DeclaratorInfo); 4189 4190 // If we don't have a comma, it is either the end of the list (a ';') 4191 // or an error, bail out. 4192 if (!TryConsumeToken(tok::comma, CommaLoc)) 4193 return; 4194 4195 FirstDeclarator = false; 4196 } 4197 } 4198 4199 /// ParseStructUnionBody 4200 /// struct-contents: 4201 /// struct-declaration-list 4202 /// [EXT] empty 4203 /// [GNU] "struct-declaration-list" without terminatoring ';' 4204 /// struct-declaration-list: 4205 /// struct-declaration 4206 /// struct-declaration-list struct-declaration 4207 /// [OBC] '@' 'defs' '(' class-name ')' 4208 /// 4209 void Parser::ParseStructUnionBody(SourceLocation RecordLoc, 4210 DeclSpec::TST TagType, Decl *TagDecl) { 4211 PrettyDeclStackTraceEntry CrashInfo(Actions.Context, TagDecl, RecordLoc, 4212 "parsing struct/union body"); 4213 assert(!getLangOpts().CPlusPlus && "C++ declarations not supported"); 4214 4215 BalancedDelimiterTracker T(*this, tok::l_brace); 4216 if (T.consumeOpen()) 4217 return; 4218 4219 ParseScope StructScope(this, Scope::ClassScope|Scope::DeclScope); 4220 Actions.ActOnTagStartDefinition(getCurScope(), TagDecl); 4221 4222 SmallVector<Decl *, 32> FieldDecls; 4223 4224 // While we still have something to read, read the declarations in the struct. 4225 while (!tryParseMisplacedModuleImport() && Tok.isNot(tok::r_brace) && 4226 Tok.isNot(tok::eof)) { 4227 // Each iteration of this loop reads one struct-declaration. 4228 4229 // Check for extraneous top-level semicolon. 4230 if (Tok.is(tok::semi)) { 4231 ConsumeExtraSemi(InsideStruct, TagType); 4232 continue; 4233 } 4234 4235 // Parse _Static_assert declaration. 4236 if (Tok.is(tok::kw__Static_assert)) { 4237 SourceLocation DeclEnd; 4238 ParseStaticAssertDeclaration(DeclEnd); 4239 continue; 4240 } 4241 4242 if (Tok.is(tok::annot_pragma_pack)) { 4243 HandlePragmaPack(); 4244 continue; 4245 } 4246 4247 if (Tok.is(tok::annot_pragma_align)) { 4248 HandlePragmaAlign(); 4249 continue; 4250 } 4251 4252 if (Tok.is(tok::annot_pragma_openmp)) { 4253 // Result can be ignored, because it must be always empty. 4254 AccessSpecifier AS = AS_none; 4255 ParsedAttributesWithRange Attrs(AttrFactory); 4256 (void)ParseOpenMPDeclarativeDirectiveWithExtDecl(AS, Attrs); 4257 continue; 4258 } 4259 4260 if (tok::isPragmaAnnotation(Tok.getKind())) { 4261 Diag(Tok.getLocation(), diag::err_pragma_misplaced_in_decl) 4262 << DeclSpec::getSpecifierName( 4263 TagType, Actions.getASTContext().getPrintingPolicy()); 4264 ConsumeAnnotationToken(); 4265 continue; 4266 } 4267 4268 if (!Tok.is(tok::at)) { 4269 auto CFieldCallback = [&](ParsingFieldDeclarator &FD) { 4270 // Install the declarator into the current TagDecl. 4271 Decl *Field = 4272 Actions.ActOnField(getCurScope(), TagDecl, 4273 FD.D.getDeclSpec().getSourceRange().getBegin(), 4274 FD.D, FD.BitfieldSize); 4275 FieldDecls.push_back(Field); 4276 FD.complete(Field); 4277 }; 4278 4279 // Parse all the comma separated declarators. 4280 ParsingDeclSpec DS(*this); 4281 ParseStructDeclaration(DS, CFieldCallback); 4282 } else { // Handle @defs 4283 ConsumeToken(); 4284 if (!Tok.isObjCAtKeyword(tok::objc_defs)) { 4285 Diag(Tok, diag::err_unexpected_at); 4286 SkipUntil(tok::semi); 4287 continue; 4288 } 4289 ConsumeToken(); 4290 ExpectAndConsume(tok::l_paren); 4291 if (!Tok.is(tok::identifier)) { 4292 Diag(Tok, diag::err_expected) << tok::identifier; 4293 SkipUntil(tok::semi); 4294 continue; 4295 } 4296 SmallVector<Decl *, 16> Fields; 4297 Actions.ActOnDefs(getCurScope(), TagDecl, Tok.getLocation(), 4298 Tok.getIdentifierInfo(), Fields); 4299 FieldDecls.insert(FieldDecls.end(), Fields.begin(), Fields.end()); 4300 ConsumeToken(); 4301 ExpectAndConsume(tok::r_paren); 4302 } 4303 4304 if (TryConsumeToken(tok::semi)) 4305 continue; 4306 4307 if (Tok.is(tok::r_brace)) { 4308 ExpectAndConsume(tok::semi, diag::ext_expected_semi_decl_list); 4309 break; 4310 } 4311 4312 ExpectAndConsume(tok::semi, diag::err_expected_semi_decl_list); 4313 // Skip to end of block or statement to avoid ext-warning on extra ';'. 4314 SkipUntil(tok::r_brace, StopAtSemi | StopBeforeMatch); 4315 // If we stopped at a ';', eat it. 4316 TryConsumeToken(tok::semi); 4317 } 4318 4319 T.consumeClose(); 4320 4321 ParsedAttributes attrs(AttrFactory); 4322 // If attributes exist after struct contents, parse them. 4323 MaybeParseGNUAttributes(attrs); 4324 4325 Actions.ActOnFields(getCurScope(), RecordLoc, TagDecl, FieldDecls, 4326 T.getOpenLocation(), T.getCloseLocation(), attrs); 4327 StructScope.Exit(); 4328 Actions.ActOnTagFinishDefinition(getCurScope(), TagDecl, T.getRange()); 4329 } 4330 4331 /// ParseEnumSpecifier 4332 /// enum-specifier: [C99 6.7.2.2] 4333 /// 'enum' identifier[opt] '{' enumerator-list '}' 4334 ///[C99/C++]'enum' identifier[opt] '{' enumerator-list ',' '}' 4335 /// [GNU] 'enum' attributes[opt] identifier[opt] '{' enumerator-list ',' [opt] 4336 /// '}' attributes[opt] 4337 /// [MS] 'enum' __declspec[opt] identifier[opt] '{' enumerator-list ',' [opt] 4338 /// '}' 4339 /// 'enum' identifier 4340 /// [GNU] 'enum' attributes[opt] identifier 4341 /// 4342 /// [C++11] enum-head '{' enumerator-list[opt] '}' 4343 /// [C++11] enum-head '{' enumerator-list ',' '}' 4344 /// 4345 /// enum-head: [C++11] 4346 /// enum-key attribute-specifier-seq[opt] identifier[opt] enum-base[opt] 4347 /// enum-key attribute-specifier-seq[opt] nested-name-specifier 4348 /// identifier enum-base[opt] 4349 /// 4350 /// enum-key: [C++11] 4351 /// 'enum' 4352 /// 'enum' 'class' 4353 /// 'enum' 'struct' 4354 /// 4355 /// enum-base: [C++11] 4356 /// ':' type-specifier-seq 4357 /// 4358 /// [C++] elaborated-type-specifier: 4359 /// [C++] 'enum' '::'[opt] nested-name-specifier[opt] identifier 4360 /// 4361 void Parser::ParseEnumSpecifier(SourceLocation StartLoc, DeclSpec &DS, 4362 const ParsedTemplateInfo &TemplateInfo, 4363 AccessSpecifier AS, DeclSpecContext DSC) { 4364 // Parse the tag portion of this. 4365 if (Tok.is(tok::code_completion)) { 4366 // Code completion for an enum name. 4367 Actions.CodeCompleteTag(getCurScope(), DeclSpec::TST_enum); 4368 return cutOffParsing(); 4369 } 4370 4371 // If attributes exist after tag, parse them. 4372 ParsedAttributesWithRange attrs(AttrFactory); 4373 MaybeParseGNUAttributes(attrs); 4374 MaybeParseCXX11Attributes(attrs); 4375 MaybeParseMicrosoftDeclSpecs(attrs); 4376 4377 SourceLocation ScopedEnumKWLoc; 4378 bool IsScopedUsingClassTag = false; 4379 4380 // In C++11, recognize 'enum class' and 'enum struct'. 4381 if (Tok.isOneOf(tok::kw_class, tok::kw_struct)) { 4382 Diag(Tok, getLangOpts().CPlusPlus11 ? diag::warn_cxx98_compat_scoped_enum 4383 : diag::ext_scoped_enum); 4384 IsScopedUsingClassTag = Tok.is(tok::kw_class); 4385 ScopedEnumKWLoc = ConsumeToken(); 4386 4387 // Attributes are not allowed between these keywords. Diagnose, 4388 // but then just treat them like they appeared in the right place. 4389 ProhibitAttributes(attrs); 4390 4391 // They are allowed afterwards, though. 4392 MaybeParseGNUAttributes(attrs); 4393 MaybeParseCXX11Attributes(attrs); 4394 MaybeParseMicrosoftDeclSpecs(attrs); 4395 } 4396 4397 // C++11 [temp.explicit]p12: 4398 // The usual access controls do not apply to names used to specify 4399 // explicit instantiations. 4400 // We extend this to also cover explicit specializations. Note that 4401 // we don't suppress if this turns out to be an elaborated type 4402 // specifier. 4403 bool shouldDelayDiagsInTag = 4404 (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation || 4405 TemplateInfo.Kind == ParsedTemplateInfo::ExplicitSpecialization); 4406 SuppressAccessChecks diagsFromTag(*this, shouldDelayDiagsInTag); 4407 4408 // Enum definitions should not be parsed in a trailing-return-type. 4409 bool AllowDeclaration = DSC != DeclSpecContext::DSC_trailing; 4410 4411 CXXScopeSpec &SS = DS.getTypeSpecScope(); 4412 if (getLangOpts().CPlusPlus) { 4413 // "enum foo : bar;" is not a potential typo for "enum foo::bar;" 4414 // if a fixed underlying type is allowed. 4415 ColonProtectionRAIIObject X(*this, AllowDeclaration); 4416 4417 CXXScopeSpec Spec; 4418 if (ParseOptionalCXXScopeSpecifier(Spec, nullptr, 4419 /*EnteringContext=*/true)) 4420 return; 4421 4422 if (Spec.isSet() && Tok.isNot(tok::identifier)) { 4423 Diag(Tok, diag::err_expected) << tok::identifier; 4424 if (Tok.isNot(tok::l_brace)) { 4425 // Has no name and is not a definition. 4426 // Skip the rest of this declarator, up until the comma or semicolon. 4427 SkipUntil(tok::comma, StopAtSemi); 4428 return; 4429 } 4430 } 4431 4432 SS = Spec; 4433 } 4434 4435 // Must have either 'enum name' or 'enum {...}'. 4436 if (Tok.isNot(tok::identifier) && Tok.isNot(tok::l_brace) && 4437 !(AllowDeclaration && Tok.is(tok::colon))) { 4438 Diag(Tok, diag::err_expected_either) << tok::identifier << tok::l_brace; 4439 4440 // Skip the rest of this declarator, up until the comma or semicolon. 4441 SkipUntil(tok::comma, StopAtSemi); 4442 return; 4443 } 4444 4445 // If an identifier is present, consume and remember it. 4446 IdentifierInfo *Name = nullptr; 4447 SourceLocation NameLoc; 4448 if (Tok.is(tok::identifier)) { 4449 Name = Tok.getIdentifierInfo(); 4450 NameLoc = ConsumeToken(); 4451 } 4452 4453 if (!Name && ScopedEnumKWLoc.isValid()) { 4454 // C++0x 7.2p2: The optional identifier shall not be omitted in the 4455 // declaration of a scoped enumeration. 4456 Diag(Tok, diag::err_scoped_enum_missing_identifier); 4457 ScopedEnumKWLoc = SourceLocation(); 4458 IsScopedUsingClassTag = false; 4459 } 4460 4461 // Okay, end the suppression area. We'll decide whether to emit the 4462 // diagnostics in a second. 4463 if (shouldDelayDiagsInTag) 4464 diagsFromTag.done(); 4465 4466 TypeResult BaseType; 4467 4468 // Parse the fixed underlying type. 4469 bool CanBeBitfield = getCurScope()->getFlags() & Scope::ClassScope; 4470 if (AllowDeclaration && Tok.is(tok::colon)) { 4471 bool PossibleBitfield = false; 4472 if (CanBeBitfield) { 4473 // If we're in class scope, this can either be an enum declaration with 4474 // an underlying type, or a declaration of a bitfield member. We try to 4475 // use a simple disambiguation scheme first to catch the common cases 4476 // (integer literal, sizeof); if it's still ambiguous, we then consider 4477 // anything that's a simple-type-specifier followed by '(' as an 4478 // expression. This suffices because function types are not valid 4479 // underlying types anyway. 4480 EnterExpressionEvaluationContext Unevaluated( 4481 Actions, Sema::ExpressionEvaluationContext::ConstantEvaluated); 4482 TPResult TPR = isExpressionOrTypeSpecifierSimple(NextToken().getKind()); 4483 // If the next token starts an expression, we know we're parsing a 4484 // bit-field. This is the common case. 4485 if (TPR == TPResult::True) 4486 PossibleBitfield = true; 4487 // If the next token starts a type-specifier-seq, it may be either a 4488 // a fixed underlying type or the start of a function-style cast in C++; 4489 // lookahead one more token to see if it's obvious that we have a 4490 // fixed underlying type. 4491 else if (TPR == TPResult::False && 4492 GetLookAheadToken(2).getKind() == tok::semi) { 4493 // Consume the ':'. 4494 ConsumeToken(); 4495 } else { 4496 // We have the start of a type-specifier-seq, so we have to perform 4497 // tentative parsing to determine whether we have an expression or a 4498 // type. 4499 TentativeParsingAction TPA(*this); 4500 4501 // Consume the ':'. 4502 ConsumeToken(); 4503 4504 // If we see a type specifier followed by an open-brace, we have an 4505 // ambiguity between an underlying type and a C++11 braced 4506 // function-style cast. Resolve this by always treating it as an 4507 // underlying type. 4508 // FIXME: The standard is not entirely clear on how to disambiguate in 4509 // this case. 4510 if ((getLangOpts().CPlusPlus && 4511 isCXXDeclarationSpecifier(TPResult::True) != TPResult::True) || 4512 (!getLangOpts().CPlusPlus && !isDeclarationSpecifier(true))) { 4513 // We'll parse this as a bitfield later. 4514 PossibleBitfield = true; 4515 TPA.Revert(); 4516 } else { 4517 // We have a type-specifier-seq. 4518 TPA.Commit(); 4519 } 4520 } 4521 } else { 4522 // Consume the ':'. 4523 ConsumeToken(); 4524 } 4525 4526 if (!PossibleBitfield) { 4527 SourceRange Range; 4528 BaseType = ParseTypeName(&Range); 4529 4530 if (!getLangOpts().ObjC) { 4531 if (getLangOpts().CPlusPlus11) 4532 Diag(StartLoc, diag::warn_cxx98_compat_enum_fixed_underlying_type); 4533 else if (getLangOpts().CPlusPlus) 4534 Diag(StartLoc, diag::ext_cxx11_enum_fixed_underlying_type); 4535 else if (getLangOpts().MicrosoftExt) 4536 Diag(StartLoc, diag::ext_ms_c_enum_fixed_underlying_type); 4537 else 4538 Diag(StartLoc, diag::ext_clang_c_enum_fixed_underlying_type); 4539 } 4540 } 4541 } 4542 4543 // There are four options here. If we have 'friend enum foo;' then this is a 4544 // friend declaration, and cannot have an accompanying definition. If we have 4545 // 'enum foo;', then this is a forward declaration. If we have 4546 // 'enum foo {...' then this is a definition. Otherwise we have something 4547 // like 'enum foo xyz', a reference. 4548 // 4549 // This is needed to handle stuff like this right (C99 6.7.2.3p11): 4550 // enum foo {..}; void bar() { enum foo; } <- new foo in bar. 4551 // enum foo {..}; void bar() { enum foo x; } <- use of old foo. 4552 // 4553 Sema::TagUseKind TUK; 4554 if (!AllowDeclaration) { 4555 TUK = Sema::TUK_Reference; 4556 } else if (Tok.is(tok::l_brace)) { 4557 if (DS.isFriendSpecified()) { 4558 Diag(Tok.getLocation(), diag::err_friend_decl_defines_type) 4559 << SourceRange(DS.getFriendSpecLoc()); 4560 ConsumeBrace(); 4561 SkipUntil(tok::r_brace, StopAtSemi); 4562 TUK = Sema::TUK_Friend; 4563 } else { 4564 TUK = Sema::TUK_Definition; 4565 } 4566 } else if (!isTypeSpecifier(DSC) && 4567 (Tok.is(tok::semi) || 4568 (Tok.isAtStartOfLine() && 4569 !isValidAfterTypeSpecifier(CanBeBitfield)))) { 4570 TUK = DS.isFriendSpecified() ? Sema::TUK_Friend : Sema::TUK_Declaration; 4571 if (Tok.isNot(tok::semi)) { 4572 // A semicolon was missing after this declaration. Diagnose and recover. 4573 ExpectAndConsume(tok::semi, diag::err_expected_after, "enum"); 4574 PP.EnterToken(Tok, /*IsReinject=*/true); 4575 Tok.setKind(tok::semi); 4576 } 4577 } else { 4578 TUK = Sema::TUK_Reference; 4579 } 4580 4581 // If this is an elaborated type specifier, and we delayed 4582 // diagnostics before, just merge them into the current pool. 4583 if (TUK == Sema::TUK_Reference && shouldDelayDiagsInTag) { 4584 diagsFromTag.redelay(); 4585 } 4586 4587 MultiTemplateParamsArg TParams; 4588 if (TemplateInfo.Kind != ParsedTemplateInfo::NonTemplate && 4589 TUK != Sema::TUK_Reference) { 4590 if (!getLangOpts().CPlusPlus11 || !SS.isSet()) { 4591 // Skip the rest of this declarator, up until the comma or semicolon. 4592 Diag(Tok, diag::err_enum_template); 4593 SkipUntil(tok::comma, StopAtSemi); 4594 return; 4595 } 4596 4597 if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation) { 4598 // Enumerations can't be explicitly instantiated. 4599 DS.SetTypeSpecError(); 4600 Diag(StartLoc, diag::err_explicit_instantiation_enum); 4601 return; 4602 } 4603 4604 assert(TemplateInfo.TemplateParams && "no template parameters"); 4605 TParams = MultiTemplateParamsArg(TemplateInfo.TemplateParams->data(), 4606 TemplateInfo.TemplateParams->size()); 4607 } 4608 4609 if (TUK == Sema::TUK_Reference) 4610 ProhibitAttributes(attrs); 4611 4612 if (!Name && TUK != Sema::TUK_Definition) { 4613 Diag(Tok, diag::err_enumerator_unnamed_no_def); 4614 4615 // Skip the rest of this declarator, up until the comma or semicolon. 4616 SkipUntil(tok::comma, StopAtSemi); 4617 return; 4618 } 4619 4620 stripTypeAttributesOffDeclSpec(attrs, DS, TUK); 4621 4622 Sema::SkipBodyInfo SkipBody; 4623 if (!Name && TUK == Sema::TUK_Definition && Tok.is(tok::l_brace) && 4624 NextToken().is(tok::identifier)) 4625 SkipBody = Actions.shouldSkipAnonEnumBody(getCurScope(), 4626 NextToken().getIdentifierInfo(), 4627 NextToken().getLocation()); 4628 4629 bool Owned = false; 4630 bool IsDependent = false; 4631 const char *PrevSpec = nullptr; 4632 unsigned DiagID; 4633 Decl *TagDecl = Actions.ActOnTag( 4634 getCurScope(), DeclSpec::TST_enum, TUK, StartLoc, SS, Name, NameLoc, 4635 attrs, AS, DS.getModulePrivateSpecLoc(), TParams, Owned, IsDependent, 4636 ScopedEnumKWLoc, IsScopedUsingClassTag, BaseType, 4637 DSC == DeclSpecContext::DSC_type_specifier, 4638 DSC == DeclSpecContext::DSC_template_param || 4639 DSC == DeclSpecContext::DSC_template_type_arg, 4640 &SkipBody); 4641 4642 if (SkipBody.ShouldSkip) { 4643 assert(TUK == Sema::TUK_Definition && "can only skip a definition"); 4644 4645 BalancedDelimiterTracker T(*this, tok::l_brace); 4646 T.consumeOpen(); 4647 T.skipToEnd(); 4648 4649 if (DS.SetTypeSpecType(DeclSpec::TST_enum, StartLoc, 4650 NameLoc.isValid() ? NameLoc : StartLoc, 4651 PrevSpec, DiagID, TagDecl, Owned, 4652 Actions.getASTContext().getPrintingPolicy())) 4653 Diag(StartLoc, DiagID) << PrevSpec; 4654 return; 4655 } 4656 4657 if (IsDependent) { 4658 // This enum has a dependent nested-name-specifier. Handle it as a 4659 // dependent tag. 4660 if (!Name) { 4661 DS.SetTypeSpecError(); 4662 Diag(Tok, diag::err_expected_type_name_after_typename); 4663 return; 4664 } 4665 4666 TypeResult Type = Actions.ActOnDependentTag( 4667 getCurScope(), DeclSpec::TST_enum, TUK, SS, Name, StartLoc, NameLoc); 4668 if (Type.isInvalid()) { 4669 DS.SetTypeSpecError(); 4670 return; 4671 } 4672 4673 if (DS.SetTypeSpecType(DeclSpec::TST_typename, StartLoc, 4674 NameLoc.isValid() ? NameLoc : StartLoc, 4675 PrevSpec, DiagID, Type.get(), 4676 Actions.getASTContext().getPrintingPolicy())) 4677 Diag(StartLoc, DiagID) << PrevSpec; 4678 4679 return; 4680 } 4681 4682 if (!TagDecl) { 4683 // The action failed to produce an enumeration tag. If this is a 4684 // definition, consume the entire definition. 4685 if (Tok.is(tok::l_brace) && TUK != Sema::TUK_Reference) { 4686 ConsumeBrace(); 4687 SkipUntil(tok::r_brace, StopAtSemi); 4688 } 4689 4690 DS.SetTypeSpecError(); 4691 return; 4692 } 4693 4694 if (Tok.is(tok::l_brace) && TUK != Sema::TUK_Reference) { 4695 Decl *D = SkipBody.CheckSameAsPrevious ? SkipBody.New : TagDecl; 4696 ParseEnumBody(StartLoc, D); 4697 if (SkipBody.CheckSameAsPrevious && 4698 !Actions.ActOnDuplicateDefinition(DS, TagDecl, SkipBody)) { 4699 DS.SetTypeSpecError(); 4700 return; 4701 } 4702 } 4703 4704 if (DS.SetTypeSpecType(DeclSpec::TST_enum, StartLoc, 4705 NameLoc.isValid() ? NameLoc : StartLoc, 4706 PrevSpec, DiagID, TagDecl, Owned, 4707 Actions.getASTContext().getPrintingPolicy())) 4708 Diag(StartLoc, DiagID) << PrevSpec; 4709 } 4710 4711 /// ParseEnumBody - Parse a {} enclosed enumerator-list. 4712 /// enumerator-list: 4713 /// enumerator 4714 /// enumerator-list ',' enumerator 4715 /// enumerator: 4716 /// enumeration-constant attributes[opt] 4717 /// enumeration-constant attributes[opt] '=' constant-expression 4718 /// enumeration-constant: 4719 /// identifier 4720 /// 4721 void Parser::ParseEnumBody(SourceLocation StartLoc, Decl *EnumDecl) { 4722 // Enter the scope of the enum body and start the definition. 4723 ParseScope EnumScope(this, Scope::DeclScope | Scope::EnumScope); 4724 Actions.ActOnTagStartDefinition(getCurScope(), EnumDecl); 4725 4726 BalancedDelimiterTracker T(*this, tok::l_brace); 4727 T.consumeOpen(); 4728 4729 // C does not allow an empty enumerator-list, C++ does [dcl.enum]. 4730 if (Tok.is(tok::r_brace) && !getLangOpts().CPlusPlus) 4731 Diag(Tok, diag::err_empty_enum); 4732 4733 SmallVector<Decl *, 32> EnumConstantDecls; 4734 SmallVector<SuppressAccessChecks, 32> EnumAvailabilityDiags; 4735 4736 Decl *LastEnumConstDecl = nullptr; 4737 4738 // Parse the enumerator-list. 4739 while (Tok.isNot(tok::r_brace)) { 4740 // Parse enumerator. If failed, try skipping till the start of the next 4741 // enumerator definition. 4742 if (Tok.isNot(tok::identifier)) { 4743 Diag(Tok.getLocation(), diag::err_expected) << tok::identifier; 4744 if (SkipUntil(tok::comma, tok::r_brace, StopBeforeMatch) && 4745 TryConsumeToken(tok::comma)) 4746 continue; 4747 break; 4748 } 4749 IdentifierInfo *Ident = Tok.getIdentifierInfo(); 4750 SourceLocation IdentLoc = ConsumeToken(); 4751 4752 // If attributes exist after the enumerator, parse them. 4753 ParsedAttributesWithRange attrs(AttrFactory); 4754 MaybeParseGNUAttributes(attrs); 4755 ProhibitAttributes(attrs); // GNU-style attributes are prohibited. 4756 if (standardAttributesAllowed() && isCXX11AttributeSpecifier()) { 4757 if (getLangOpts().CPlusPlus) 4758 Diag(Tok.getLocation(), getLangOpts().CPlusPlus17 4759 ? diag::warn_cxx14_compat_ns_enum_attribute 4760 : diag::ext_ns_enum_attribute) 4761 << 1 /*enumerator*/; 4762 ParseCXX11Attributes(attrs); 4763 } 4764 4765 SourceLocation EqualLoc; 4766 ExprResult AssignedVal; 4767 EnumAvailabilityDiags.emplace_back(*this); 4768 4769 EnterExpressionEvaluationContext ConstantEvaluated( 4770 Actions, Sema::ExpressionEvaluationContext::ConstantEvaluated); 4771 if (TryConsumeToken(tok::equal, EqualLoc)) { 4772 AssignedVal = ParseConstantExpressionInExprEvalContext(); 4773 if (AssignedVal.isInvalid()) 4774 SkipUntil(tok::comma, tok::r_brace, StopBeforeMatch); 4775 } 4776 4777 // Install the enumerator constant into EnumDecl. 4778 Decl *EnumConstDecl = Actions.ActOnEnumConstant( 4779 getCurScope(), EnumDecl, LastEnumConstDecl, IdentLoc, Ident, attrs, 4780 EqualLoc, AssignedVal.get()); 4781 EnumAvailabilityDiags.back().done(); 4782 4783 EnumConstantDecls.push_back(EnumConstDecl); 4784 LastEnumConstDecl = EnumConstDecl; 4785 4786 if (Tok.is(tok::identifier)) { 4787 // We're missing a comma between enumerators. 4788 SourceLocation Loc = getEndOfPreviousToken(); 4789 Diag(Loc, diag::err_enumerator_list_missing_comma) 4790 << FixItHint::CreateInsertion(Loc, ", "); 4791 continue; 4792 } 4793 4794 // Emumerator definition must be finished, only comma or r_brace are 4795 // allowed here. 4796 SourceLocation CommaLoc; 4797 if (Tok.isNot(tok::r_brace) && !TryConsumeToken(tok::comma, CommaLoc)) { 4798 if (EqualLoc.isValid()) 4799 Diag(Tok.getLocation(), diag::err_expected_either) << tok::r_brace 4800 << tok::comma; 4801 else 4802 Diag(Tok.getLocation(), diag::err_expected_end_of_enumerator); 4803 if (SkipUntil(tok::comma, tok::r_brace, StopBeforeMatch)) { 4804 if (TryConsumeToken(tok::comma, CommaLoc)) 4805 continue; 4806 } else { 4807 break; 4808 } 4809 } 4810 4811 // If comma is followed by r_brace, emit appropriate warning. 4812 if (Tok.is(tok::r_brace) && CommaLoc.isValid()) { 4813 if (!getLangOpts().C99 && !getLangOpts().CPlusPlus11) 4814 Diag(CommaLoc, getLangOpts().CPlusPlus ? 4815 diag::ext_enumerator_list_comma_cxx : 4816 diag::ext_enumerator_list_comma_c) 4817 << FixItHint::CreateRemoval(CommaLoc); 4818 else if (getLangOpts().CPlusPlus11) 4819 Diag(CommaLoc, diag::warn_cxx98_compat_enumerator_list_comma) 4820 << FixItHint::CreateRemoval(CommaLoc); 4821 break; 4822 } 4823 } 4824 4825 // Eat the }. 4826 T.consumeClose(); 4827 4828 // If attributes exist after the identifier list, parse them. 4829 ParsedAttributes attrs(AttrFactory); 4830 MaybeParseGNUAttributes(attrs); 4831 4832 Actions.ActOnEnumBody(StartLoc, T.getRange(), EnumDecl, EnumConstantDecls, 4833 getCurScope(), attrs); 4834 4835 // Now handle enum constant availability diagnostics. 4836 assert(EnumConstantDecls.size() == EnumAvailabilityDiags.size()); 4837 for (size_t i = 0, e = EnumConstantDecls.size(); i != e; ++i) { 4838 ParsingDeclRAIIObject PD(*this, ParsingDeclRAIIObject::NoParent); 4839 EnumAvailabilityDiags[i].redelay(); 4840 PD.complete(EnumConstantDecls[i]); 4841 } 4842 4843 EnumScope.Exit(); 4844 Actions.ActOnTagFinishDefinition(getCurScope(), EnumDecl, T.getRange()); 4845 4846 // The next token must be valid after an enum definition. If not, a ';' 4847 // was probably forgotten. 4848 bool CanBeBitfield = getCurScope()->getFlags() & Scope::ClassScope; 4849 if (!isValidAfterTypeSpecifier(CanBeBitfield)) { 4850 ExpectAndConsume(tok::semi, diag::err_expected_after, "enum"); 4851 // Push this token back into the preprocessor and change our current token 4852 // to ';' so that the rest of the code recovers as though there were an 4853 // ';' after the definition. 4854 PP.EnterToken(Tok, /*IsReinject=*/true); 4855 Tok.setKind(tok::semi); 4856 } 4857 } 4858 4859 /// isKnownToBeTypeSpecifier - Return true if we know that the specified token 4860 /// is definitely a type-specifier. Return false if it isn't part of a type 4861 /// specifier or if we're not sure. 4862 bool Parser::isKnownToBeTypeSpecifier(const Token &Tok) const { 4863 switch (Tok.getKind()) { 4864 default: return false; 4865 // type-specifiers 4866 case tok::kw_short: 4867 case tok::kw_long: 4868 case tok::kw___int64: 4869 case tok::kw___int128: 4870 case tok::kw_signed: 4871 case tok::kw_unsigned: 4872 case tok::kw__Complex: 4873 case tok::kw__Imaginary: 4874 case tok::kw_void: 4875 case tok::kw_char: 4876 case tok::kw_wchar_t: 4877 case tok::kw_char8_t: 4878 case tok::kw_char16_t: 4879 case tok::kw_char32_t: 4880 case tok::kw_int: 4881 case tok::kw_half: 4882 case tok::kw_float: 4883 case tok::kw_double: 4884 case tok::kw__Accum: 4885 case tok::kw__Fract: 4886 case tok::kw__Float16: 4887 case tok::kw___float128: 4888 case tok::kw_bool: 4889 case tok::kw__Bool: 4890 case tok::kw__Decimal32: 4891 case tok::kw__Decimal64: 4892 case tok::kw__Decimal128: 4893 case tok::kw___vector: 4894 #define GENERIC_IMAGE_TYPE(ImgType, Id) case tok::kw_##ImgType##_t: 4895 #include "clang/Basic/OpenCLImageTypes.def" 4896 4897 // struct-or-union-specifier (C99) or class-specifier (C++) 4898 case tok::kw_class: 4899 case tok::kw_struct: 4900 case tok::kw___interface: 4901 case tok::kw_union: 4902 // enum-specifier 4903 case tok::kw_enum: 4904 4905 // typedef-name 4906 case tok::annot_typename: 4907 return true; 4908 } 4909 } 4910 4911 /// isTypeSpecifierQualifier - Return true if the current token could be the 4912 /// start of a specifier-qualifier-list. 4913 bool Parser::isTypeSpecifierQualifier() { 4914 switch (Tok.getKind()) { 4915 default: return false; 4916 4917 case tok::identifier: // foo::bar 4918 if (TryAltiVecVectorToken()) 4919 return true; 4920 LLVM_FALLTHROUGH; 4921 case tok::kw_typename: // typename T::type 4922 // Annotate typenames and C++ scope specifiers. If we get one, just 4923 // recurse to handle whatever we get. 4924 if (TryAnnotateTypeOrScopeToken()) 4925 return true; 4926 if (Tok.is(tok::identifier)) 4927 return false; 4928 return isTypeSpecifierQualifier(); 4929 4930 case tok::coloncolon: // ::foo::bar 4931 if (NextToken().is(tok::kw_new) || // ::new 4932 NextToken().is(tok::kw_delete)) // ::delete 4933 return false; 4934 4935 if (TryAnnotateTypeOrScopeToken()) 4936 return true; 4937 return isTypeSpecifierQualifier(); 4938 4939 // GNU attributes support. 4940 case tok::kw___attribute: 4941 // GNU typeof support. 4942 case tok::kw_typeof: 4943 4944 // type-specifiers 4945 case tok::kw_short: 4946 case tok::kw_long: 4947 case tok::kw___int64: 4948 case tok::kw___int128: 4949 case tok::kw_signed: 4950 case tok::kw_unsigned: 4951 case tok::kw__Complex: 4952 case tok::kw__Imaginary: 4953 case tok::kw_void: 4954 case tok::kw_char: 4955 case tok::kw_wchar_t: 4956 case tok::kw_char8_t: 4957 case tok::kw_char16_t: 4958 case tok::kw_char32_t: 4959 case tok::kw_int: 4960 case tok::kw_half: 4961 case tok::kw_float: 4962 case tok::kw_double: 4963 case tok::kw__Accum: 4964 case tok::kw__Fract: 4965 case tok::kw__Float16: 4966 case tok::kw___float128: 4967 case tok::kw_bool: 4968 case tok::kw__Bool: 4969 case tok::kw__Decimal32: 4970 case tok::kw__Decimal64: 4971 case tok::kw__Decimal128: 4972 case tok::kw___vector: 4973 #define GENERIC_IMAGE_TYPE(ImgType, Id) case tok::kw_##ImgType##_t: 4974 #include "clang/Basic/OpenCLImageTypes.def" 4975 4976 // struct-or-union-specifier (C99) or class-specifier (C++) 4977 case tok::kw_class: 4978 case tok::kw_struct: 4979 case tok::kw___interface: 4980 case tok::kw_union: 4981 // enum-specifier 4982 case tok::kw_enum: 4983 4984 // type-qualifier 4985 case tok::kw_const: 4986 case tok::kw_volatile: 4987 case tok::kw_restrict: 4988 case tok::kw__Sat: 4989 4990 // Debugger support. 4991 case tok::kw___unknown_anytype: 4992 4993 // typedef-name 4994 case tok::annot_typename: 4995 return true; 4996 4997 // GNU ObjC bizarre protocol extension: <proto1,proto2> with implicit 'id'. 4998 case tok::less: 4999 return getLangOpts().ObjC; 5000 5001 case tok::kw___cdecl: 5002 case tok::kw___stdcall: 5003 case tok::kw___fastcall: 5004 case tok::kw___thiscall: 5005 case tok::kw___regcall: 5006 case tok::kw___vectorcall: 5007 case tok::kw___w64: 5008 case tok::kw___ptr64: 5009 case tok::kw___ptr32: 5010 case tok::kw___pascal: 5011 case tok::kw___unaligned: 5012 5013 case tok::kw__Nonnull: 5014 case tok::kw__Nullable: 5015 case tok::kw__Null_unspecified: 5016 5017 case tok::kw___kindof: 5018 5019 case tok::kw___private: 5020 case tok::kw___local: 5021 case tok::kw___global: 5022 case tok::kw___constant: 5023 case tok::kw___generic: 5024 case tok::kw___read_only: 5025 case tok::kw___read_write: 5026 case tok::kw___write_only: 5027 return true; 5028 5029 case tok::kw_private: 5030 return getLangOpts().OpenCL; 5031 5032 // C11 _Atomic 5033 case tok::kw__Atomic: 5034 return true; 5035 } 5036 } 5037 5038 /// isDeclarationSpecifier() - Return true if the current token is part of a 5039 /// declaration specifier. 5040 /// 5041 /// \param DisambiguatingWithExpression True to indicate that the purpose of 5042 /// this check is to disambiguate between an expression and a declaration. 5043 bool Parser::isDeclarationSpecifier(bool DisambiguatingWithExpression) { 5044 switch (Tok.getKind()) { 5045 default: return false; 5046 5047 case tok::kw_pipe: 5048 return (getLangOpts().OpenCL && getLangOpts().OpenCLVersion >= 200) || 5049 getLangOpts().OpenCLCPlusPlus; 5050 5051 case tok::identifier: // foo::bar 5052 // Unfortunate hack to support "Class.factoryMethod" notation. 5053 if (getLangOpts().ObjC && NextToken().is(tok::period)) 5054 return false; 5055 if (TryAltiVecVectorToken()) 5056 return true; 5057 LLVM_FALLTHROUGH; 5058 case tok::kw_decltype: // decltype(T())::type 5059 case tok::kw_typename: // typename T::type 5060 // Annotate typenames and C++ scope specifiers. If we get one, just 5061 // recurse to handle whatever we get. 5062 if (TryAnnotateTypeOrScopeToken()) 5063 return true; 5064 if (TryAnnotateTypeConstraint()) 5065 return true; 5066 if (Tok.is(tok::identifier)) 5067 return false; 5068 5069 // If we're in Objective-C and we have an Objective-C class type followed 5070 // by an identifier and then either ':' or ']', in a place where an 5071 // expression is permitted, then this is probably a class message send 5072 // missing the initial '['. In this case, we won't consider this to be 5073 // the start of a declaration. 5074 if (DisambiguatingWithExpression && 5075 isStartOfObjCClassMessageMissingOpenBracket()) 5076 return false; 5077 5078 return isDeclarationSpecifier(); 5079 5080 case tok::coloncolon: // ::foo::bar 5081 if (NextToken().is(tok::kw_new) || // ::new 5082 NextToken().is(tok::kw_delete)) // ::delete 5083 return false; 5084 5085 // Annotate typenames and C++ scope specifiers. If we get one, just 5086 // recurse to handle whatever we get. 5087 if (TryAnnotateTypeOrScopeToken()) 5088 return true; 5089 return isDeclarationSpecifier(); 5090 5091 // storage-class-specifier 5092 case tok::kw_typedef: 5093 case tok::kw_extern: 5094 case tok::kw___private_extern__: 5095 case tok::kw_static: 5096 case tok::kw_auto: 5097 case tok::kw___auto_type: 5098 case tok::kw_register: 5099 case tok::kw___thread: 5100 case tok::kw_thread_local: 5101 case tok::kw__Thread_local: 5102 5103 // Modules 5104 case tok::kw___module_private__: 5105 5106 // Debugger support 5107 case tok::kw___unknown_anytype: 5108 5109 // type-specifiers 5110 case tok::kw_short: 5111 case tok::kw_long: 5112 case tok::kw___int64: 5113 case tok::kw___int128: 5114 case tok::kw_signed: 5115 case tok::kw_unsigned: 5116 case tok::kw__Complex: 5117 case tok::kw__Imaginary: 5118 case tok::kw_void: 5119 case tok::kw_char: 5120 case tok::kw_wchar_t: 5121 case tok::kw_char8_t: 5122 case tok::kw_char16_t: 5123 case tok::kw_char32_t: 5124 5125 case tok::kw_int: 5126 case tok::kw_half: 5127 case tok::kw_float: 5128 case tok::kw_double: 5129 case tok::kw__Accum: 5130 case tok::kw__Fract: 5131 case tok::kw__Float16: 5132 case tok::kw___float128: 5133 case tok::kw_bool: 5134 case tok::kw__Bool: 5135 case tok::kw__Decimal32: 5136 case tok::kw__Decimal64: 5137 case tok::kw__Decimal128: 5138 case tok::kw___vector: 5139 5140 // struct-or-union-specifier (C99) or class-specifier (C++) 5141 case tok::kw_class: 5142 case tok::kw_struct: 5143 case tok::kw_union: 5144 case tok::kw___interface: 5145 // enum-specifier 5146 case tok::kw_enum: 5147 5148 // type-qualifier 5149 case tok::kw_const: 5150 case tok::kw_volatile: 5151 case tok::kw_restrict: 5152 case tok::kw__Sat: 5153 5154 // function-specifier 5155 case tok::kw_inline: 5156 case tok::kw_virtual: 5157 case tok::kw_explicit: 5158 case tok::kw__Noreturn: 5159 5160 // alignment-specifier 5161 case tok::kw__Alignas: 5162 5163 // friend keyword. 5164 case tok::kw_friend: 5165 5166 // static_assert-declaration 5167 case tok::kw__Static_assert: 5168 5169 // GNU typeof support. 5170 case tok::kw_typeof: 5171 5172 // GNU attributes. 5173 case tok::kw___attribute: 5174 5175 // C++11 decltype and constexpr. 5176 case tok::annot_decltype: 5177 case tok::kw_constexpr: 5178 5179 // C++20 consteval and constinit. 5180 case tok::kw_consteval: 5181 case tok::kw_constinit: 5182 5183 // C11 _Atomic 5184 case tok::kw__Atomic: 5185 return true; 5186 5187 // GNU ObjC bizarre protocol extension: <proto1,proto2> with implicit 'id'. 5188 case tok::less: 5189 return getLangOpts().ObjC; 5190 5191 // typedef-name 5192 case tok::annot_typename: 5193 return !DisambiguatingWithExpression || 5194 !isStartOfObjCClassMessageMissingOpenBracket(); 5195 5196 // placeholder-type-specifier 5197 case tok::annot_template_id: { 5198 return isTypeConstraintAnnotation() && 5199 (NextToken().is(tok::kw_auto) || NextToken().is(tok::kw_decltype)); 5200 } 5201 case tok::annot_cxxscope: 5202 if (NextToken().is(tok::identifier) && TryAnnotateTypeConstraint()) 5203 return true; 5204 return isTypeConstraintAnnotation() && 5205 GetLookAheadToken(2).isOneOf(tok::kw_auto, tok::kw_decltype); 5206 case tok::kw___declspec: 5207 case tok::kw___cdecl: 5208 case tok::kw___stdcall: 5209 case tok::kw___fastcall: 5210 case tok::kw___thiscall: 5211 case tok::kw___regcall: 5212 case tok::kw___vectorcall: 5213 case tok::kw___w64: 5214 case tok::kw___sptr: 5215 case tok::kw___uptr: 5216 case tok::kw___ptr64: 5217 case tok::kw___ptr32: 5218 case tok::kw___forceinline: 5219 case tok::kw___pascal: 5220 case tok::kw___unaligned: 5221 5222 case tok::kw__Nonnull: 5223 case tok::kw__Nullable: 5224 case tok::kw__Null_unspecified: 5225 5226 case tok::kw___kindof: 5227 5228 case tok::kw___private: 5229 case tok::kw___local: 5230 case tok::kw___global: 5231 case tok::kw___constant: 5232 case tok::kw___generic: 5233 case tok::kw___read_only: 5234 case tok::kw___read_write: 5235 case tok::kw___write_only: 5236 #define GENERIC_IMAGE_TYPE(ImgType, Id) case tok::kw_##ImgType##_t: 5237 #include "clang/Basic/OpenCLImageTypes.def" 5238 5239 return true; 5240 5241 case tok::kw_private: 5242 return getLangOpts().OpenCL; 5243 } 5244 } 5245 5246 bool Parser::isConstructorDeclarator(bool IsUnqualified, bool DeductionGuide) { 5247 TentativeParsingAction TPA(*this); 5248 5249 // Parse the C++ scope specifier. 5250 CXXScopeSpec SS; 5251 if (ParseOptionalCXXScopeSpecifier(SS, nullptr, 5252 /*EnteringContext=*/true)) { 5253 TPA.Revert(); 5254 return false; 5255 } 5256 5257 // Parse the constructor name. 5258 if (Tok.is(tok::identifier)) { 5259 // We already know that we have a constructor name; just consume 5260 // the token. 5261 ConsumeToken(); 5262 } else if (Tok.is(tok::annot_template_id)) { 5263 ConsumeAnnotationToken(); 5264 } else { 5265 TPA.Revert(); 5266 return false; 5267 } 5268 5269 // There may be attributes here, appertaining to the constructor name or type 5270 // we just stepped past. 5271 SkipCXX11Attributes(); 5272 5273 // Current class name must be followed by a left parenthesis. 5274 if (Tok.isNot(tok::l_paren)) { 5275 TPA.Revert(); 5276 return false; 5277 } 5278 ConsumeParen(); 5279 5280 // A right parenthesis, or ellipsis followed by a right parenthesis signals 5281 // that we have a constructor. 5282 if (Tok.is(tok::r_paren) || 5283 (Tok.is(tok::ellipsis) && NextToken().is(tok::r_paren))) { 5284 TPA.Revert(); 5285 return true; 5286 } 5287 5288 // A C++11 attribute here signals that we have a constructor, and is an 5289 // attribute on the first constructor parameter. 5290 if (getLangOpts().CPlusPlus11 && 5291 isCXX11AttributeSpecifier(/*Disambiguate*/ false, 5292 /*OuterMightBeMessageSend*/ true)) { 5293 TPA.Revert(); 5294 return true; 5295 } 5296 5297 // If we need to, enter the specified scope. 5298 DeclaratorScopeObj DeclScopeObj(*this, SS); 5299 if (SS.isSet() && Actions.ShouldEnterDeclaratorScope(getCurScope(), SS)) 5300 DeclScopeObj.EnterDeclaratorScope(); 5301 5302 // Optionally skip Microsoft attributes. 5303 ParsedAttributes Attrs(AttrFactory); 5304 MaybeParseMicrosoftAttributes(Attrs); 5305 5306 // Check whether the next token(s) are part of a declaration 5307 // specifier, in which case we have the start of a parameter and, 5308 // therefore, we know that this is a constructor. 5309 bool IsConstructor = false; 5310 if (isDeclarationSpecifier()) 5311 IsConstructor = true; 5312 else if (Tok.is(tok::identifier) || 5313 (Tok.is(tok::annot_cxxscope) && NextToken().is(tok::identifier))) { 5314 // We've seen "C ( X" or "C ( X::Y", but "X" / "X::Y" is not a type. 5315 // This might be a parenthesized member name, but is more likely to 5316 // be a constructor declaration with an invalid argument type. Keep 5317 // looking. 5318 if (Tok.is(tok::annot_cxxscope)) 5319 ConsumeAnnotationToken(); 5320 ConsumeToken(); 5321 5322 // If this is not a constructor, we must be parsing a declarator, 5323 // which must have one of the following syntactic forms (see the 5324 // grammar extract at the start of ParseDirectDeclarator): 5325 switch (Tok.getKind()) { 5326 case tok::l_paren: 5327 // C(X ( int)); 5328 case tok::l_square: 5329 // C(X [ 5]); 5330 // C(X [ [attribute]]); 5331 case tok::coloncolon: 5332 // C(X :: Y); 5333 // C(X :: *p); 5334 // Assume this isn't a constructor, rather than assuming it's a 5335 // constructor with an unnamed parameter of an ill-formed type. 5336 break; 5337 5338 case tok::r_paren: 5339 // C(X ) 5340 5341 // Skip past the right-paren and any following attributes to get to 5342 // the function body or trailing-return-type. 5343 ConsumeParen(); 5344 SkipCXX11Attributes(); 5345 5346 if (DeductionGuide) { 5347 // C(X) -> ... is a deduction guide. 5348 IsConstructor = Tok.is(tok::arrow); 5349 break; 5350 } 5351 if (Tok.is(tok::colon) || Tok.is(tok::kw_try)) { 5352 // Assume these were meant to be constructors: 5353 // C(X) : (the name of a bit-field cannot be parenthesized). 5354 // C(X) try (this is otherwise ill-formed). 5355 IsConstructor = true; 5356 } 5357 if (Tok.is(tok::semi) || Tok.is(tok::l_brace)) { 5358 // If we have a constructor name within the class definition, 5359 // assume these were meant to be constructors: 5360 // C(X) { 5361 // C(X) ; 5362 // ... because otherwise we would be declaring a non-static data 5363 // member that is ill-formed because it's of the same type as its 5364 // surrounding class. 5365 // 5366 // FIXME: We can actually do this whether or not the name is qualified, 5367 // because if it is qualified in this context it must be being used as 5368 // a constructor name. 5369 // currently, so we're somewhat conservative here. 5370 IsConstructor = IsUnqualified; 5371 } 5372 break; 5373 5374 default: 5375 IsConstructor = true; 5376 break; 5377 } 5378 } 5379 5380 TPA.Revert(); 5381 return IsConstructor; 5382 } 5383 5384 /// ParseTypeQualifierListOpt 5385 /// type-qualifier-list: [C99 6.7.5] 5386 /// type-qualifier 5387 /// [vendor] attributes 5388 /// [ only if AttrReqs & AR_VendorAttributesParsed ] 5389 /// type-qualifier-list type-qualifier 5390 /// [vendor] type-qualifier-list attributes 5391 /// [ only if AttrReqs & AR_VendorAttributesParsed ] 5392 /// [C++0x] attribute-specifier[opt] is allowed before cv-qualifier-seq 5393 /// [ only if AttReqs & AR_CXX11AttributesParsed ] 5394 /// Note: vendor can be GNU, MS, etc and can be explicitly controlled via 5395 /// AttrRequirements bitmask values. 5396 void Parser::ParseTypeQualifierListOpt( 5397 DeclSpec &DS, unsigned AttrReqs, bool AtomicAllowed, 5398 bool IdentifierRequired, 5399 Optional<llvm::function_ref<void()>> CodeCompletionHandler) { 5400 if (standardAttributesAllowed() && (AttrReqs & AR_CXX11AttributesParsed) && 5401 isCXX11AttributeSpecifier()) { 5402 ParsedAttributesWithRange attrs(AttrFactory); 5403 ParseCXX11Attributes(attrs); 5404 DS.takeAttributesFrom(attrs); 5405 } 5406 5407 SourceLocation EndLoc; 5408 5409 while (1) { 5410 bool isInvalid = false; 5411 const char *PrevSpec = nullptr; 5412 unsigned DiagID = 0; 5413 SourceLocation Loc = Tok.getLocation(); 5414 5415 switch (Tok.getKind()) { 5416 case tok::code_completion: 5417 if (CodeCompletionHandler) 5418 (*CodeCompletionHandler)(); 5419 else 5420 Actions.CodeCompleteTypeQualifiers(DS); 5421 return cutOffParsing(); 5422 5423 case tok::kw_const: 5424 isInvalid = DS.SetTypeQual(DeclSpec::TQ_const , Loc, PrevSpec, DiagID, 5425 getLangOpts()); 5426 break; 5427 case tok::kw_volatile: 5428 isInvalid = DS.SetTypeQual(DeclSpec::TQ_volatile, Loc, PrevSpec, DiagID, 5429 getLangOpts()); 5430 break; 5431 case tok::kw_restrict: 5432 isInvalid = DS.SetTypeQual(DeclSpec::TQ_restrict, Loc, PrevSpec, DiagID, 5433 getLangOpts()); 5434 break; 5435 case tok::kw__Atomic: 5436 if (!AtomicAllowed) 5437 goto DoneWithTypeQuals; 5438 if (!getLangOpts().C11) 5439 Diag(Tok, diag::ext_c11_feature) << Tok.getName(); 5440 isInvalid = DS.SetTypeQual(DeclSpec::TQ_atomic, Loc, PrevSpec, DiagID, 5441 getLangOpts()); 5442 break; 5443 5444 // OpenCL qualifiers: 5445 case tok::kw_private: 5446 if (!getLangOpts().OpenCL) 5447 goto DoneWithTypeQuals; 5448 LLVM_FALLTHROUGH; 5449 case tok::kw___private: 5450 case tok::kw___global: 5451 case tok::kw___local: 5452 case tok::kw___constant: 5453 case tok::kw___generic: 5454 case tok::kw___read_only: 5455 case tok::kw___write_only: 5456 case tok::kw___read_write: 5457 ParseOpenCLQualifiers(DS.getAttributes()); 5458 break; 5459 5460 case tok::kw___unaligned: 5461 isInvalid = DS.SetTypeQual(DeclSpec::TQ_unaligned, Loc, PrevSpec, DiagID, 5462 getLangOpts()); 5463 break; 5464 case tok::kw___uptr: 5465 // GNU libc headers in C mode use '__uptr' as an identifier which conflicts 5466 // with the MS modifier keyword. 5467 if ((AttrReqs & AR_DeclspecAttributesParsed) && !getLangOpts().CPlusPlus && 5468 IdentifierRequired && DS.isEmpty() && NextToken().is(tok::semi)) { 5469 if (TryKeywordIdentFallback(false)) 5470 continue; 5471 } 5472 LLVM_FALLTHROUGH; 5473 case tok::kw___sptr: 5474 case tok::kw___w64: 5475 case tok::kw___ptr64: 5476 case tok::kw___ptr32: 5477 case tok::kw___cdecl: 5478 case tok::kw___stdcall: 5479 case tok::kw___fastcall: 5480 case tok::kw___thiscall: 5481 case tok::kw___regcall: 5482 case tok::kw___vectorcall: 5483 if (AttrReqs & AR_DeclspecAttributesParsed) { 5484 ParseMicrosoftTypeAttributes(DS.getAttributes()); 5485 continue; 5486 } 5487 goto DoneWithTypeQuals; 5488 case tok::kw___pascal: 5489 if (AttrReqs & AR_VendorAttributesParsed) { 5490 ParseBorlandTypeAttributes(DS.getAttributes()); 5491 continue; 5492 } 5493 goto DoneWithTypeQuals; 5494 5495 // Nullability type specifiers. 5496 case tok::kw__Nonnull: 5497 case tok::kw__Nullable: 5498 case tok::kw__Null_unspecified: 5499 ParseNullabilityTypeSpecifiers(DS.getAttributes()); 5500 continue; 5501 5502 // Objective-C 'kindof' types. 5503 case tok::kw___kindof: 5504 DS.getAttributes().addNew(Tok.getIdentifierInfo(), Loc, nullptr, Loc, 5505 nullptr, 0, ParsedAttr::AS_Keyword); 5506 (void)ConsumeToken(); 5507 continue; 5508 5509 case tok::kw___attribute: 5510 if (AttrReqs & AR_GNUAttributesParsedAndRejected) 5511 // When GNU attributes are expressly forbidden, diagnose their usage. 5512 Diag(Tok, diag::err_attributes_not_allowed); 5513 5514 // Parse the attributes even if they are rejected to ensure that error 5515 // recovery is graceful. 5516 if (AttrReqs & AR_GNUAttributesParsed || 5517 AttrReqs & AR_GNUAttributesParsedAndRejected) { 5518 ParseGNUAttributes(DS.getAttributes()); 5519 continue; // do *not* consume the next token! 5520 } 5521 // otherwise, FALL THROUGH! 5522 LLVM_FALLTHROUGH; 5523 default: 5524 DoneWithTypeQuals: 5525 // If this is not a type-qualifier token, we're done reading type 5526 // qualifiers. First verify that DeclSpec's are consistent. 5527 DS.Finish(Actions, Actions.getASTContext().getPrintingPolicy()); 5528 if (EndLoc.isValid()) 5529 DS.SetRangeEnd(EndLoc); 5530 return; 5531 } 5532 5533 // If the specifier combination wasn't legal, issue a diagnostic. 5534 if (isInvalid) { 5535 assert(PrevSpec && "Method did not return previous specifier!"); 5536 Diag(Tok, DiagID) << PrevSpec; 5537 } 5538 EndLoc = ConsumeToken(); 5539 } 5540 } 5541 5542 /// ParseDeclarator - Parse and verify a newly-initialized declarator. 5543 /// 5544 void Parser::ParseDeclarator(Declarator &D) { 5545 /// This implements the 'declarator' production in the C grammar, then checks 5546 /// for well-formedness and issues diagnostics. 5547 ParseDeclaratorInternal(D, &Parser::ParseDirectDeclarator); 5548 } 5549 5550 static bool isPtrOperatorToken(tok::TokenKind Kind, const LangOptions &Lang, 5551 DeclaratorContext TheContext) { 5552 if (Kind == tok::star || Kind == tok::caret) 5553 return true; 5554 5555 if (Kind == tok::kw_pipe && 5556 ((Lang.OpenCL && Lang.OpenCLVersion >= 200) || Lang.OpenCLCPlusPlus)) 5557 return true; 5558 5559 if (!Lang.CPlusPlus) 5560 return false; 5561 5562 if (Kind == tok::amp) 5563 return true; 5564 5565 // We parse rvalue refs in C++03, because otherwise the errors are scary. 5566 // But we must not parse them in conversion-type-ids and new-type-ids, since 5567 // those can be legitimately followed by a && operator. 5568 // (The same thing can in theory happen after a trailing-return-type, but 5569 // since those are a C++11 feature, there is no rejects-valid issue there.) 5570 if (Kind == tok::ampamp) 5571 return Lang.CPlusPlus11 || 5572 (TheContext != DeclaratorContext::ConversionIdContext && 5573 TheContext != DeclaratorContext::CXXNewContext); 5574 5575 return false; 5576 } 5577 5578 // Indicates whether the given declarator is a pipe declarator. 5579 static bool isPipeDeclerator(const Declarator &D) { 5580 const unsigned NumTypes = D.getNumTypeObjects(); 5581 5582 for (unsigned Idx = 0; Idx != NumTypes; ++Idx) 5583 if (DeclaratorChunk::Pipe == D.getTypeObject(Idx).Kind) 5584 return true; 5585 5586 return false; 5587 } 5588 5589 /// ParseDeclaratorInternal - Parse a C or C++ declarator. The direct-declarator 5590 /// is parsed by the function passed to it. Pass null, and the direct-declarator 5591 /// isn't parsed at all, making this function effectively parse the C++ 5592 /// ptr-operator production. 5593 /// 5594 /// If the grammar of this construct is extended, matching changes must also be 5595 /// made to TryParseDeclarator and MightBeDeclarator, and possibly to 5596 /// isConstructorDeclarator. 5597 /// 5598 /// declarator: [C99 6.7.5] [C++ 8p4, dcl.decl] 5599 /// [C] pointer[opt] direct-declarator 5600 /// [C++] direct-declarator 5601 /// [C++] ptr-operator declarator 5602 /// 5603 /// pointer: [C99 6.7.5] 5604 /// '*' type-qualifier-list[opt] 5605 /// '*' type-qualifier-list[opt] pointer 5606 /// 5607 /// ptr-operator: 5608 /// '*' cv-qualifier-seq[opt] 5609 /// '&' 5610 /// [C++0x] '&&' 5611 /// [GNU] '&' restrict[opt] attributes[opt] 5612 /// [GNU?] '&&' restrict[opt] attributes[opt] 5613 /// '::'[opt] nested-name-specifier '*' cv-qualifier-seq[opt] 5614 void Parser::ParseDeclaratorInternal(Declarator &D, 5615 DirectDeclParseFunction DirectDeclParser) { 5616 if (Diags.hasAllExtensionsSilenced()) 5617 D.setExtension(); 5618 5619 // C++ member pointers start with a '::' or a nested-name. 5620 // Member pointers get special handling, since there's no place for the 5621 // scope spec in the generic path below. 5622 if (getLangOpts().CPlusPlus && 5623 (Tok.is(tok::coloncolon) || Tok.is(tok::kw_decltype) || 5624 (Tok.is(tok::identifier) && 5625 (NextToken().is(tok::coloncolon) || NextToken().is(tok::less))) || 5626 Tok.is(tok::annot_cxxscope))) { 5627 bool EnteringContext = 5628 D.getContext() == DeclaratorContext::FileContext || 5629 D.getContext() == DeclaratorContext::MemberContext; 5630 CXXScopeSpec SS; 5631 ParseOptionalCXXScopeSpecifier(SS, nullptr, EnteringContext); 5632 5633 if (SS.isNotEmpty()) { 5634 if (Tok.isNot(tok::star)) { 5635 // The scope spec really belongs to the direct-declarator. 5636 if (D.mayHaveIdentifier()) 5637 D.getCXXScopeSpec() = SS; 5638 else 5639 AnnotateScopeToken(SS, true); 5640 5641 if (DirectDeclParser) 5642 (this->*DirectDeclParser)(D); 5643 return; 5644 } 5645 5646 SourceLocation Loc = ConsumeToken(); 5647 D.SetRangeEnd(Loc); 5648 DeclSpec DS(AttrFactory); 5649 ParseTypeQualifierListOpt(DS); 5650 D.ExtendWithDeclSpec(DS); 5651 5652 // Recurse to parse whatever is left. 5653 ParseDeclaratorInternal(D, DirectDeclParser); 5654 5655 // Sema will have to catch (syntactically invalid) pointers into global 5656 // scope. It has to catch pointers into namespace scope anyway. 5657 D.AddTypeInfo(DeclaratorChunk::getMemberPointer( 5658 SS, DS.getTypeQualifiers(), DS.getEndLoc()), 5659 std::move(DS.getAttributes()), 5660 /* Don't replace range end. */ SourceLocation()); 5661 return; 5662 } 5663 } 5664 5665 tok::TokenKind Kind = Tok.getKind(); 5666 5667 if (D.getDeclSpec().isTypeSpecPipe() && !isPipeDeclerator(D)) { 5668 DeclSpec DS(AttrFactory); 5669 ParseTypeQualifierListOpt(DS); 5670 5671 D.AddTypeInfo( 5672 DeclaratorChunk::getPipe(DS.getTypeQualifiers(), DS.getPipeLoc()), 5673 std::move(DS.getAttributes()), SourceLocation()); 5674 } 5675 5676 // Not a pointer, C++ reference, or block. 5677 if (!isPtrOperatorToken(Kind, getLangOpts(), D.getContext())) { 5678 if (DirectDeclParser) 5679 (this->*DirectDeclParser)(D); 5680 return; 5681 } 5682 5683 // Otherwise, '*' -> pointer, '^' -> block, '&' -> lvalue reference, 5684 // '&&' -> rvalue reference 5685 SourceLocation Loc = ConsumeToken(); // Eat the *, ^, & or &&. 5686 D.SetRangeEnd(Loc); 5687 5688 if (Kind == tok::star || Kind == tok::caret) { 5689 // Is a pointer. 5690 DeclSpec DS(AttrFactory); 5691 5692 // GNU attributes are not allowed here in a new-type-id, but Declspec and 5693 // C++11 attributes are allowed. 5694 unsigned Reqs = AR_CXX11AttributesParsed | AR_DeclspecAttributesParsed | 5695 ((D.getContext() != DeclaratorContext::CXXNewContext) 5696 ? AR_GNUAttributesParsed 5697 : AR_GNUAttributesParsedAndRejected); 5698 ParseTypeQualifierListOpt(DS, Reqs, true, !D.mayOmitIdentifier()); 5699 D.ExtendWithDeclSpec(DS); 5700 5701 // Recursively parse the declarator. 5702 ParseDeclaratorInternal(D, DirectDeclParser); 5703 if (Kind == tok::star) 5704 // Remember that we parsed a pointer type, and remember the type-quals. 5705 D.AddTypeInfo(DeclaratorChunk::getPointer( 5706 DS.getTypeQualifiers(), Loc, DS.getConstSpecLoc(), 5707 DS.getVolatileSpecLoc(), DS.getRestrictSpecLoc(), 5708 DS.getAtomicSpecLoc(), DS.getUnalignedSpecLoc()), 5709 std::move(DS.getAttributes()), SourceLocation()); 5710 else 5711 // Remember that we parsed a Block type, and remember the type-quals. 5712 D.AddTypeInfo( 5713 DeclaratorChunk::getBlockPointer(DS.getTypeQualifiers(), Loc), 5714 std::move(DS.getAttributes()), SourceLocation()); 5715 } else { 5716 // Is a reference 5717 DeclSpec DS(AttrFactory); 5718 5719 // Complain about rvalue references in C++03, but then go on and build 5720 // the declarator. 5721 if (Kind == tok::ampamp) 5722 Diag(Loc, getLangOpts().CPlusPlus11 ? 5723 diag::warn_cxx98_compat_rvalue_reference : 5724 diag::ext_rvalue_reference); 5725 5726 // GNU-style and C++11 attributes are allowed here, as is restrict. 5727 ParseTypeQualifierListOpt(DS); 5728 D.ExtendWithDeclSpec(DS); 5729 5730 // C++ 8.3.2p1: cv-qualified references are ill-formed except when the 5731 // cv-qualifiers are introduced through the use of a typedef or of a 5732 // template type argument, in which case the cv-qualifiers are ignored. 5733 if (DS.getTypeQualifiers() != DeclSpec::TQ_unspecified) { 5734 if (DS.getTypeQualifiers() & DeclSpec::TQ_const) 5735 Diag(DS.getConstSpecLoc(), 5736 diag::err_invalid_reference_qualifier_application) << "const"; 5737 if (DS.getTypeQualifiers() & DeclSpec::TQ_volatile) 5738 Diag(DS.getVolatileSpecLoc(), 5739 diag::err_invalid_reference_qualifier_application) << "volatile"; 5740 // 'restrict' is permitted as an extension. 5741 if (DS.getTypeQualifiers() & DeclSpec::TQ_atomic) 5742 Diag(DS.getAtomicSpecLoc(), 5743 diag::err_invalid_reference_qualifier_application) << "_Atomic"; 5744 } 5745 5746 // Recursively parse the declarator. 5747 ParseDeclaratorInternal(D, DirectDeclParser); 5748 5749 if (D.getNumTypeObjects() > 0) { 5750 // C++ [dcl.ref]p4: There shall be no references to references. 5751 DeclaratorChunk& InnerChunk = D.getTypeObject(D.getNumTypeObjects() - 1); 5752 if (InnerChunk.Kind == DeclaratorChunk::Reference) { 5753 if (const IdentifierInfo *II = D.getIdentifier()) 5754 Diag(InnerChunk.Loc, diag::err_illegal_decl_reference_to_reference) 5755 << II; 5756 else 5757 Diag(InnerChunk.Loc, diag::err_illegal_decl_reference_to_reference) 5758 << "type name"; 5759 5760 // Once we've complained about the reference-to-reference, we 5761 // can go ahead and build the (technically ill-formed) 5762 // declarator: reference collapsing will take care of it. 5763 } 5764 } 5765 5766 // Remember that we parsed a reference type. 5767 D.AddTypeInfo(DeclaratorChunk::getReference(DS.getTypeQualifiers(), Loc, 5768 Kind == tok::amp), 5769 std::move(DS.getAttributes()), SourceLocation()); 5770 } 5771 } 5772 5773 // When correcting from misplaced brackets before the identifier, the location 5774 // is saved inside the declarator so that other diagnostic messages can use 5775 // them. This extracts and returns that location, or returns the provided 5776 // location if a stored location does not exist. 5777 static SourceLocation getMissingDeclaratorIdLoc(Declarator &D, 5778 SourceLocation Loc) { 5779 if (D.getName().StartLocation.isInvalid() && 5780 D.getName().EndLocation.isValid()) 5781 return D.getName().EndLocation; 5782 5783 return Loc; 5784 } 5785 5786 /// ParseDirectDeclarator 5787 /// direct-declarator: [C99 6.7.5] 5788 /// [C99] identifier 5789 /// '(' declarator ')' 5790 /// [GNU] '(' attributes declarator ')' 5791 /// [C90] direct-declarator '[' constant-expression[opt] ']' 5792 /// [C99] direct-declarator '[' type-qual-list[opt] assignment-expr[opt] ']' 5793 /// [C99] direct-declarator '[' 'static' type-qual-list[opt] assign-expr ']' 5794 /// [C99] direct-declarator '[' type-qual-list 'static' assignment-expr ']' 5795 /// [C99] direct-declarator '[' type-qual-list[opt] '*' ']' 5796 /// [C++11] direct-declarator '[' constant-expression[opt] ']' 5797 /// attribute-specifier-seq[opt] 5798 /// direct-declarator '(' parameter-type-list ')' 5799 /// direct-declarator '(' identifier-list[opt] ')' 5800 /// [GNU] direct-declarator '(' parameter-forward-declarations 5801 /// parameter-type-list[opt] ')' 5802 /// [C++] direct-declarator '(' parameter-declaration-clause ')' 5803 /// cv-qualifier-seq[opt] exception-specification[opt] 5804 /// [C++11] direct-declarator '(' parameter-declaration-clause ')' 5805 /// attribute-specifier-seq[opt] cv-qualifier-seq[opt] 5806 /// ref-qualifier[opt] exception-specification[opt] 5807 /// [C++] declarator-id 5808 /// [C++11] declarator-id attribute-specifier-seq[opt] 5809 /// 5810 /// declarator-id: [C++ 8] 5811 /// '...'[opt] id-expression 5812 /// '::'[opt] nested-name-specifier[opt] type-name 5813 /// 5814 /// id-expression: [C++ 5.1] 5815 /// unqualified-id 5816 /// qualified-id 5817 /// 5818 /// unqualified-id: [C++ 5.1] 5819 /// identifier 5820 /// operator-function-id 5821 /// conversion-function-id 5822 /// '~' class-name 5823 /// template-id 5824 /// 5825 /// C++17 adds the following, which we also handle here: 5826 /// 5827 /// simple-declaration: 5828 /// <decl-spec> '[' identifier-list ']' brace-or-equal-initializer ';' 5829 /// 5830 /// Note, any additional constructs added here may need corresponding changes 5831 /// in isConstructorDeclarator. 5832 void Parser::ParseDirectDeclarator(Declarator &D) { 5833 DeclaratorScopeObj DeclScopeObj(*this, D.getCXXScopeSpec()); 5834 5835 if (getLangOpts().CPlusPlus && D.mayHaveIdentifier()) { 5836 // This might be a C++17 structured binding. 5837 if (Tok.is(tok::l_square) && !D.mayOmitIdentifier() && 5838 D.getCXXScopeSpec().isEmpty()) 5839 return ParseDecompositionDeclarator(D); 5840 5841 // Don't parse FOO:BAR as if it were a typo for FOO::BAR inside a class, in 5842 // this context it is a bitfield. Also in range-based for statement colon 5843 // may delimit for-range-declaration. 5844 ColonProtectionRAIIObject X( 5845 *this, D.getContext() == DeclaratorContext::MemberContext || 5846 (D.getContext() == DeclaratorContext::ForContext && 5847 getLangOpts().CPlusPlus11)); 5848 5849 // ParseDeclaratorInternal might already have parsed the scope. 5850 if (D.getCXXScopeSpec().isEmpty()) { 5851 bool EnteringContext = 5852 D.getContext() == DeclaratorContext::FileContext || 5853 D.getContext() == DeclaratorContext::MemberContext; 5854 ParseOptionalCXXScopeSpecifier(D.getCXXScopeSpec(), nullptr, 5855 EnteringContext); 5856 } 5857 5858 if (D.getCXXScopeSpec().isValid()) { 5859 if (Actions.ShouldEnterDeclaratorScope(getCurScope(), 5860 D.getCXXScopeSpec())) 5861 // Change the declaration context for name lookup, until this function 5862 // is exited (and the declarator has been parsed). 5863 DeclScopeObj.EnterDeclaratorScope(); 5864 else if (getObjCDeclContext()) { 5865 // Ensure that we don't interpret the next token as an identifier when 5866 // dealing with declarations in an Objective-C container. 5867 D.SetIdentifier(nullptr, Tok.getLocation()); 5868 D.setInvalidType(true); 5869 ConsumeToken(); 5870 goto PastIdentifier; 5871 } 5872 } 5873 5874 // C++0x [dcl.fct]p14: 5875 // There is a syntactic ambiguity when an ellipsis occurs at the end of a 5876 // parameter-declaration-clause without a preceding comma. In this case, 5877 // the ellipsis is parsed as part of the abstract-declarator if the type 5878 // of the parameter either names a template parameter pack that has not 5879 // been expanded or contains auto; otherwise, it is parsed as part of the 5880 // parameter-declaration-clause. 5881 if (Tok.is(tok::ellipsis) && D.getCXXScopeSpec().isEmpty() && 5882 !((D.getContext() == DeclaratorContext::PrototypeContext || 5883 D.getContext() == DeclaratorContext::LambdaExprParameterContext || 5884 D.getContext() == DeclaratorContext::BlockLiteralContext) && 5885 NextToken().is(tok::r_paren) && 5886 !D.hasGroupingParens() && 5887 !Actions.containsUnexpandedParameterPacks(D) && 5888 D.getDeclSpec().getTypeSpecType() != TST_auto)) { 5889 SourceLocation EllipsisLoc = ConsumeToken(); 5890 if (isPtrOperatorToken(Tok.getKind(), getLangOpts(), D.getContext())) { 5891 // The ellipsis was put in the wrong place. Recover, and explain to 5892 // the user what they should have done. 5893 ParseDeclarator(D); 5894 if (EllipsisLoc.isValid()) 5895 DiagnoseMisplacedEllipsisInDeclarator(EllipsisLoc, D); 5896 return; 5897 } else 5898 D.setEllipsisLoc(EllipsisLoc); 5899 5900 // The ellipsis can't be followed by a parenthesized declarator. We 5901 // check for that in ParseParenDeclarator, after we have disambiguated 5902 // the l_paren token. 5903 } 5904 5905 if (Tok.isOneOf(tok::identifier, tok::kw_operator, tok::annot_template_id, 5906 tok::tilde)) { 5907 // We found something that indicates the start of an unqualified-id. 5908 // Parse that unqualified-id. 5909 bool AllowConstructorName; 5910 bool AllowDeductionGuide; 5911 if (D.getDeclSpec().hasTypeSpecifier()) { 5912 AllowConstructorName = false; 5913 AllowDeductionGuide = false; 5914 } else if (D.getCXXScopeSpec().isSet()) { 5915 AllowConstructorName = 5916 (D.getContext() == DeclaratorContext::FileContext || 5917 D.getContext() == DeclaratorContext::MemberContext); 5918 AllowDeductionGuide = false; 5919 } else { 5920 AllowConstructorName = 5921 (D.getContext() == DeclaratorContext::MemberContext); 5922 AllowDeductionGuide = 5923 (D.getContext() == DeclaratorContext::FileContext || 5924 D.getContext() == DeclaratorContext::MemberContext); 5925 } 5926 5927 bool HadScope = D.getCXXScopeSpec().isValid(); 5928 if (ParseUnqualifiedId(D.getCXXScopeSpec(), 5929 /*EnteringContext=*/true, 5930 /*AllowDestructorName=*/true, AllowConstructorName, 5931 AllowDeductionGuide, nullptr, nullptr, 5932 D.getName()) || 5933 // Once we're past the identifier, if the scope was bad, mark the 5934 // whole declarator bad. 5935 D.getCXXScopeSpec().isInvalid()) { 5936 D.SetIdentifier(nullptr, Tok.getLocation()); 5937 D.setInvalidType(true); 5938 } else { 5939 // ParseUnqualifiedId might have parsed a scope specifier during error 5940 // recovery. If it did so, enter that scope. 5941 if (!HadScope && D.getCXXScopeSpec().isValid() && 5942 Actions.ShouldEnterDeclaratorScope(getCurScope(), 5943 D.getCXXScopeSpec())) 5944 DeclScopeObj.EnterDeclaratorScope(); 5945 5946 // Parsed the unqualified-id; update range information and move along. 5947 if (D.getSourceRange().getBegin().isInvalid()) 5948 D.SetRangeBegin(D.getName().getSourceRange().getBegin()); 5949 D.SetRangeEnd(D.getName().getSourceRange().getEnd()); 5950 } 5951 goto PastIdentifier; 5952 } 5953 5954 if (D.getCXXScopeSpec().isNotEmpty()) { 5955 // We have a scope specifier but no following unqualified-id. 5956 Diag(PP.getLocForEndOfToken(D.getCXXScopeSpec().getEndLoc()), 5957 diag::err_expected_unqualified_id) 5958 << /*C++*/1; 5959 D.SetIdentifier(nullptr, Tok.getLocation()); 5960 goto PastIdentifier; 5961 } 5962 } else if (Tok.is(tok::identifier) && D.mayHaveIdentifier()) { 5963 assert(!getLangOpts().CPlusPlus && 5964 "There's a C++-specific check for tok::identifier above"); 5965 assert(Tok.getIdentifierInfo() && "Not an identifier?"); 5966 D.SetIdentifier(Tok.getIdentifierInfo(), Tok.getLocation()); 5967 D.SetRangeEnd(Tok.getLocation()); 5968 ConsumeToken(); 5969 goto PastIdentifier; 5970 } else if (Tok.is(tok::identifier) && !D.mayHaveIdentifier()) { 5971 // We're not allowed an identifier here, but we got one. Try to figure out 5972 // if the user was trying to attach a name to the type, or whether the name 5973 // is some unrelated trailing syntax. 5974 bool DiagnoseIdentifier = false; 5975 if (D.hasGroupingParens()) 5976 // An identifier within parens is unlikely to be intended to be anything 5977 // other than a name being "declared". 5978 DiagnoseIdentifier = true; 5979 else if (D.getContext() == DeclaratorContext::TemplateArgContext) 5980 // T<int N> is an accidental identifier; T<int N indicates a missing '>'. 5981 DiagnoseIdentifier = 5982 NextToken().isOneOf(tok::comma, tok::greater, tok::greatergreater); 5983 else if (D.getContext() == DeclaratorContext::AliasDeclContext || 5984 D.getContext() == DeclaratorContext::AliasTemplateContext) 5985 // The most likely error is that the ';' was forgotten. 5986 DiagnoseIdentifier = NextToken().isOneOf(tok::comma, tok::semi); 5987 else if ((D.getContext() == DeclaratorContext::TrailingReturnContext || 5988 D.getContext() == DeclaratorContext::TrailingReturnVarContext) && 5989 !isCXX11VirtSpecifier(Tok)) 5990 DiagnoseIdentifier = NextToken().isOneOf( 5991 tok::comma, tok::semi, tok::equal, tok::l_brace, tok::kw_try); 5992 if (DiagnoseIdentifier) { 5993 Diag(Tok.getLocation(), diag::err_unexpected_unqualified_id) 5994 << FixItHint::CreateRemoval(Tok.getLocation()); 5995 D.SetIdentifier(nullptr, Tok.getLocation()); 5996 ConsumeToken(); 5997 goto PastIdentifier; 5998 } 5999 } 6000 6001 if (Tok.is(tok::l_paren)) { 6002 // If this might be an abstract-declarator followed by a direct-initializer, 6003 // check whether this is a valid declarator chunk. If it can't be, assume 6004 // that it's an initializer instead. 6005 if (D.mayOmitIdentifier() && D.mayBeFollowedByCXXDirectInit()) { 6006 RevertingTentativeParsingAction PA(*this); 6007 if (TryParseDeclarator(true, D.mayHaveIdentifier(), true) == 6008 TPResult::False) { 6009 D.SetIdentifier(nullptr, Tok.getLocation()); 6010 goto PastIdentifier; 6011 } 6012 } 6013 6014 // direct-declarator: '(' declarator ')' 6015 // direct-declarator: '(' attributes declarator ')' 6016 // Example: 'char (*X)' or 'int (*XX)(void)' 6017 ParseParenDeclarator(D); 6018 6019 // If the declarator was parenthesized, we entered the declarator 6020 // scope when parsing the parenthesized declarator, then exited 6021 // the scope already. Re-enter the scope, if we need to. 6022 if (D.getCXXScopeSpec().isSet()) { 6023 // If there was an error parsing parenthesized declarator, declarator 6024 // scope may have been entered before. Don't do it again. 6025 if (!D.isInvalidType() && 6026 Actions.ShouldEnterDeclaratorScope(getCurScope(), 6027 D.getCXXScopeSpec())) 6028 // Change the declaration context for name lookup, until this function 6029 // is exited (and the declarator has been parsed). 6030 DeclScopeObj.EnterDeclaratorScope(); 6031 } 6032 } else if (D.mayOmitIdentifier()) { 6033 // This could be something simple like "int" (in which case the declarator 6034 // portion is empty), if an abstract-declarator is allowed. 6035 D.SetIdentifier(nullptr, Tok.getLocation()); 6036 6037 // The grammar for abstract-pack-declarator does not allow grouping parens. 6038 // FIXME: Revisit this once core issue 1488 is resolved. 6039 if (D.hasEllipsis() && D.hasGroupingParens()) 6040 Diag(PP.getLocForEndOfToken(D.getEllipsisLoc()), 6041 diag::ext_abstract_pack_declarator_parens); 6042 } else { 6043 if (Tok.getKind() == tok::annot_pragma_parser_crash) 6044 LLVM_BUILTIN_TRAP; 6045 if (Tok.is(tok::l_square)) 6046 return ParseMisplacedBracketDeclarator(D); 6047 if (D.getContext() == DeclaratorContext::MemberContext) { 6048 // Objective-C++: Detect C++ keywords and try to prevent further errors by 6049 // treating these keyword as valid member names. 6050 if (getLangOpts().ObjC && getLangOpts().CPlusPlus && 6051 Tok.getIdentifierInfo() && 6052 Tok.getIdentifierInfo()->isCPlusPlusKeyword(getLangOpts())) { 6053 Diag(getMissingDeclaratorIdLoc(D, Tok.getLocation()), 6054 diag::err_expected_member_name_or_semi_objcxx_keyword) 6055 << Tok.getIdentifierInfo() 6056 << (D.getDeclSpec().isEmpty() ? SourceRange() 6057 : D.getDeclSpec().getSourceRange()); 6058 D.SetIdentifier(Tok.getIdentifierInfo(), Tok.getLocation()); 6059 D.SetRangeEnd(Tok.getLocation()); 6060 ConsumeToken(); 6061 goto PastIdentifier; 6062 } 6063 Diag(getMissingDeclaratorIdLoc(D, Tok.getLocation()), 6064 diag::err_expected_member_name_or_semi) 6065 << (D.getDeclSpec().isEmpty() ? SourceRange() 6066 : D.getDeclSpec().getSourceRange()); 6067 } else if (getLangOpts().CPlusPlus) { 6068 if (Tok.isOneOf(tok::period, tok::arrow)) 6069 Diag(Tok, diag::err_invalid_operator_on_type) << Tok.is(tok::arrow); 6070 else { 6071 SourceLocation Loc = D.getCXXScopeSpec().getEndLoc(); 6072 if (Tok.isAtStartOfLine() && Loc.isValid()) 6073 Diag(PP.getLocForEndOfToken(Loc), diag::err_expected_unqualified_id) 6074 << getLangOpts().CPlusPlus; 6075 else 6076 Diag(getMissingDeclaratorIdLoc(D, Tok.getLocation()), 6077 diag::err_expected_unqualified_id) 6078 << getLangOpts().CPlusPlus; 6079 } 6080 } else { 6081 Diag(getMissingDeclaratorIdLoc(D, Tok.getLocation()), 6082 diag::err_expected_either) 6083 << tok::identifier << tok::l_paren; 6084 } 6085 D.SetIdentifier(nullptr, Tok.getLocation()); 6086 D.setInvalidType(true); 6087 } 6088 6089 PastIdentifier: 6090 assert(D.isPastIdentifier() && 6091 "Haven't past the location of the identifier yet?"); 6092 6093 // Don't parse attributes unless we have parsed an unparenthesized name. 6094 if (D.hasName() && !D.getNumTypeObjects()) 6095 MaybeParseCXX11Attributes(D); 6096 6097 while (1) { 6098 if (Tok.is(tok::l_paren)) { 6099 bool IsFunctionDeclaration = D.isFunctionDeclaratorAFunctionDeclaration(); 6100 // Enter function-declaration scope, limiting any declarators to the 6101 // function prototype scope, including parameter declarators. 6102 ParseScope PrototypeScope(this, 6103 Scope::FunctionPrototypeScope|Scope::DeclScope| 6104 (IsFunctionDeclaration 6105 ? Scope::FunctionDeclarationScope : 0)); 6106 6107 // The paren may be part of a C++ direct initializer, eg. "int x(1);". 6108 // In such a case, check if we actually have a function declarator; if it 6109 // is not, the declarator has been fully parsed. 6110 bool IsAmbiguous = false; 6111 if (getLangOpts().CPlusPlus && D.mayBeFollowedByCXXDirectInit()) { 6112 // The name of the declarator, if any, is tentatively declared within 6113 // a possible direct initializer. 6114 TentativelyDeclaredIdentifiers.push_back(D.getIdentifier()); 6115 bool IsFunctionDecl = isCXXFunctionDeclarator(&IsAmbiguous); 6116 TentativelyDeclaredIdentifiers.pop_back(); 6117 if (!IsFunctionDecl) 6118 break; 6119 } 6120 ParsedAttributes attrs(AttrFactory); 6121 BalancedDelimiterTracker T(*this, tok::l_paren); 6122 T.consumeOpen(); 6123 if (IsFunctionDeclaration) 6124 Actions.ActOnStartFunctionDeclarationDeclarator(D, 6125 TemplateParameterDepth); 6126 ParseFunctionDeclarator(D, attrs, T, IsAmbiguous); 6127 if (IsFunctionDeclaration) 6128 Actions.ActOnFinishFunctionDeclarationDeclarator(D); 6129 PrototypeScope.Exit(); 6130 } else if (Tok.is(tok::l_square)) { 6131 ParseBracketDeclarator(D); 6132 } else if (Tok.is(tok::kw_requires) && D.hasGroupingParens()) { 6133 // This declarator is declaring a function, but the requires clause is 6134 // in the wrong place: 6135 // void (f() requires true); 6136 // instead of 6137 // void f() requires true; 6138 // or 6139 // void (f()) requires true; 6140 Diag(Tok, diag::err_requires_clause_inside_parens); 6141 ConsumeToken(); 6142 ExprResult TrailingRequiresClause = Actions.CorrectDelayedTyposInExpr( 6143 ParseConstraintLogicalOrExpression(/*IsTrailingRequiresClause=*/true)); 6144 if (TrailingRequiresClause.isUsable() && D.isFunctionDeclarator() && 6145 !D.hasTrailingRequiresClause()) 6146 // We're already ill-formed if we got here but we'll accept it anyway. 6147 D.setTrailingRequiresClause(TrailingRequiresClause.get()); 6148 } else { 6149 break; 6150 } 6151 } 6152 } 6153 6154 void Parser::ParseDecompositionDeclarator(Declarator &D) { 6155 assert(Tok.is(tok::l_square)); 6156 6157 // If this doesn't look like a structured binding, maybe it's a misplaced 6158 // array declarator. 6159 // FIXME: Consume the l_square first so we don't need extra lookahead for 6160 // this. 6161 if (!(NextToken().is(tok::identifier) && 6162 GetLookAheadToken(2).isOneOf(tok::comma, tok::r_square)) && 6163 !(NextToken().is(tok::r_square) && 6164 GetLookAheadToken(2).isOneOf(tok::equal, tok::l_brace))) 6165 return ParseMisplacedBracketDeclarator(D); 6166 6167 BalancedDelimiterTracker T(*this, tok::l_square); 6168 T.consumeOpen(); 6169 6170 SmallVector<DecompositionDeclarator::Binding, 32> Bindings; 6171 while (Tok.isNot(tok::r_square)) { 6172 if (!Bindings.empty()) { 6173 if (Tok.is(tok::comma)) 6174 ConsumeToken(); 6175 else { 6176 if (Tok.is(tok::identifier)) { 6177 SourceLocation EndLoc = getEndOfPreviousToken(); 6178 Diag(EndLoc, diag::err_expected) 6179 << tok::comma << FixItHint::CreateInsertion(EndLoc, ","); 6180 } else { 6181 Diag(Tok, diag::err_expected_comma_or_rsquare); 6182 } 6183 6184 SkipUntil(tok::r_square, tok::comma, tok::identifier, 6185 StopAtSemi | StopBeforeMatch); 6186 if (Tok.is(tok::comma)) 6187 ConsumeToken(); 6188 else if (Tok.isNot(tok::identifier)) 6189 break; 6190 } 6191 } 6192 6193 if (Tok.isNot(tok::identifier)) { 6194 Diag(Tok, diag::err_expected) << tok::identifier; 6195 break; 6196 } 6197 6198 Bindings.push_back({Tok.getIdentifierInfo(), Tok.getLocation()}); 6199 ConsumeToken(); 6200 } 6201 6202 if (Tok.isNot(tok::r_square)) 6203 // We've already diagnosed a problem here. 6204 T.skipToEnd(); 6205 else { 6206 // C++17 does not allow the identifier-list in a structured binding 6207 // to be empty. 6208 if (Bindings.empty()) 6209 Diag(Tok.getLocation(), diag::ext_decomp_decl_empty); 6210 6211 T.consumeClose(); 6212 } 6213 6214 return D.setDecompositionBindings(T.getOpenLocation(), Bindings, 6215 T.getCloseLocation()); 6216 } 6217 6218 /// ParseParenDeclarator - We parsed the declarator D up to a paren. This is 6219 /// only called before the identifier, so these are most likely just grouping 6220 /// parens for precedence. If we find that these are actually function 6221 /// parameter parens in an abstract-declarator, we call ParseFunctionDeclarator. 6222 /// 6223 /// direct-declarator: 6224 /// '(' declarator ')' 6225 /// [GNU] '(' attributes declarator ')' 6226 /// direct-declarator '(' parameter-type-list ')' 6227 /// direct-declarator '(' identifier-list[opt] ')' 6228 /// [GNU] direct-declarator '(' parameter-forward-declarations 6229 /// parameter-type-list[opt] ')' 6230 /// 6231 void Parser::ParseParenDeclarator(Declarator &D) { 6232 BalancedDelimiterTracker T(*this, tok::l_paren); 6233 T.consumeOpen(); 6234 6235 assert(!D.isPastIdentifier() && "Should be called before passing identifier"); 6236 6237 // Eat any attributes before we look at whether this is a grouping or function 6238 // declarator paren. If this is a grouping paren, the attribute applies to 6239 // the type being built up, for example: 6240 // int (__attribute__(()) *x)(long y) 6241 // If this ends up not being a grouping paren, the attribute applies to the 6242 // first argument, for example: 6243 // int (__attribute__(()) int x) 6244 // In either case, we need to eat any attributes to be able to determine what 6245 // sort of paren this is. 6246 // 6247 ParsedAttributes attrs(AttrFactory); 6248 bool RequiresArg = false; 6249 if (Tok.is(tok::kw___attribute)) { 6250 ParseGNUAttributes(attrs); 6251 6252 // We require that the argument list (if this is a non-grouping paren) be 6253 // present even if the attribute list was empty. 6254 RequiresArg = true; 6255 } 6256 6257 // Eat any Microsoft extensions. 6258 ParseMicrosoftTypeAttributes(attrs); 6259 6260 // Eat any Borland extensions. 6261 if (Tok.is(tok::kw___pascal)) 6262 ParseBorlandTypeAttributes(attrs); 6263 6264 // If we haven't past the identifier yet (or where the identifier would be 6265 // stored, if this is an abstract declarator), then this is probably just 6266 // grouping parens. However, if this could be an abstract-declarator, then 6267 // this could also be the start of function arguments (consider 'void()'). 6268 bool isGrouping; 6269 6270 if (!D.mayOmitIdentifier()) { 6271 // If this can't be an abstract-declarator, this *must* be a grouping 6272 // paren, because we haven't seen the identifier yet. 6273 isGrouping = true; 6274 } else if (Tok.is(tok::r_paren) || // 'int()' is a function. 6275 (getLangOpts().CPlusPlus && Tok.is(tok::ellipsis) && 6276 NextToken().is(tok::r_paren)) || // C++ int(...) 6277 isDeclarationSpecifier() || // 'int(int)' is a function. 6278 isCXX11AttributeSpecifier()) { // 'int([[]]int)' is a function. 6279 // This handles C99 6.7.5.3p11: in "typedef int X; void foo(X)", X is 6280 // considered to be a type, not a K&R identifier-list. 6281 isGrouping = false; 6282 } else { 6283 // Otherwise, this is a grouping paren, e.g. 'int (*X)' or 'int(X)'. 6284 isGrouping = true; 6285 } 6286 6287 // If this is a grouping paren, handle: 6288 // direct-declarator: '(' declarator ')' 6289 // direct-declarator: '(' attributes declarator ')' 6290 if (isGrouping) { 6291 SourceLocation EllipsisLoc = D.getEllipsisLoc(); 6292 D.setEllipsisLoc(SourceLocation()); 6293 6294 bool hadGroupingParens = D.hasGroupingParens(); 6295 D.setGroupingParens(true); 6296 ParseDeclaratorInternal(D, &Parser::ParseDirectDeclarator); 6297 // Match the ')'. 6298 T.consumeClose(); 6299 D.AddTypeInfo( 6300 DeclaratorChunk::getParen(T.getOpenLocation(), T.getCloseLocation()), 6301 std::move(attrs), T.getCloseLocation()); 6302 6303 D.setGroupingParens(hadGroupingParens); 6304 6305 // An ellipsis cannot be placed outside parentheses. 6306 if (EllipsisLoc.isValid()) 6307 DiagnoseMisplacedEllipsisInDeclarator(EllipsisLoc, D); 6308 6309 return; 6310 } 6311 6312 // Okay, if this wasn't a grouping paren, it must be the start of a function 6313 // argument list. Recognize that this declarator will never have an 6314 // identifier (and remember where it would have been), then call into 6315 // ParseFunctionDeclarator to handle of argument list. 6316 D.SetIdentifier(nullptr, Tok.getLocation()); 6317 6318 // Enter function-declaration scope, limiting any declarators to the 6319 // function prototype scope, including parameter declarators. 6320 ParseScope PrototypeScope(this, 6321 Scope::FunctionPrototypeScope | Scope::DeclScope | 6322 (D.isFunctionDeclaratorAFunctionDeclaration() 6323 ? Scope::FunctionDeclarationScope : 0)); 6324 ParseFunctionDeclarator(D, attrs, T, false, RequiresArg); 6325 PrototypeScope.Exit(); 6326 } 6327 6328 void Parser::InitCXXThisScopeForDeclaratorIfRelevant( 6329 const Declarator &D, const DeclSpec &DS, 6330 llvm::Optional<Sema::CXXThisScopeRAII> &ThisScope) { 6331 // C++11 [expr.prim.general]p3: 6332 // If a declaration declares a member function or member function 6333 // template of a class X, the expression this is a prvalue of type 6334 // "pointer to cv-qualifier-seq X" between the optional cv-qualifer-seq 6335 // and the end of the function-definition, member-declarator, or 6336 // declarator. 6337 // FIXME: currently, "static" case isn't handled correctly. 6338 bool IsCXX11MemberFunction = getLangOpts().CPlusPlus11 && 6339 D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef && 6340 (D.getContext() == DeclaratorContext::MemberContext 6341 ? !D.getDeclSpec().isFriendSpecified() 6342 : D.getContext() == DeclaratorContext::FileContext && 6343 D.getCXXScopeSpec().isValid() && 6344 Actions.CurContext->isRecord()); 6345 if (!IsCXX11MemberFunction) 6346 return; 6347 6348 Qualifiers Q = Qualifiers::fromCVRUMask(DS.getTypeQualifiers()); 6349 if (D.getDeclSpec().hasConstexprSpecifier() && !getLangOpts().CPlusPlus14) 6350 Q.addConst(); 6351 // FIXME: Collect C++ address spaces. 6352 // If there are multiple different address spaces, the source is invalid. 6353 // Carry on using the first addr space for the qualifiers of 'this'. 6354 // The diagnostic will be given later while creating the function 6355 // prototype for the method. 6356 if (getLangOpts().OpenCLCPlusPlus) { 6357 for (ParsedAttr &attr : DS.getAttributes()) { 6358 LangAS ASIdx = attr.asOpenCLLangAS(); 6359 if (ASIdx != LangAS::Default) { 6360 Q.addAddressSpace(ASIdx); 6361 break; 6362 } 6363 } 6364 } 6365 ThisScope.emplace(Actions, dyn_cast<CXXRecordDecl>(Actions.CurContext), Q, 6366 IsCXX11MemberFunction); 6367 } 6368 6369 /// ParseFunctionDeclarator - We are after the identifier and have parsed the 6370 /// declarator D up to a paren, which indicates that we are parsing function 6371 /// arguments. 6372 /// 6373 /// If FirstArgAttrs is non-null, then the caller parsed those arguments 6374 /// immediately after the open paren - they should be considered to be the 6375 /// first argument of a parameter. 6376 /// 6377 /// If RequiresArg is true, then the first argument of the function is required 6378 /// to be present and required to not be an identifier list. 6379 /// 6380 /// For C++, after the parameter-list, it also parses the cv-qualifier-seq[opt], 6381 /// (C++11) ref-qualifier[opt], exception-specification[opt], 6382 /// (C++11) attribute-specifier-seq[opt], (C++11) trailing-return-type[opt] and 6383 /// (C++2a) the trailing requires-clause. 6384 /// 6385 /// [C++11] exception-specification: 6386 /// dynamic-exception-specification 6387 /// noexcept-specification 6388 /// 6389 void Parser::ParseFunctionDeclarator(Declarator &D, 6390 ParsedAttributes &FirstArgAttrs, 6391 BalancedDelimiterTracker &Tracker, 6392 bool IsAmbiguous, 6393 bool RequiresArg) { 6394 assert(getCurScope()->isFunctionPrototypeScope() && 6395 "Should call from a Function scope"); 6396 // lparen is already consumed! 6397 assert(D.isPastIdentifier() && "Should not call before identifier!"); 6398 6399 // This should be true when the function has typed arguments. 6400 // Otherwise, it is treated as a K&R-style function. 6401 bool HasProto = false; 6402 // Build up an array of information about the parsed arguments. 6403 SmallVector<DeclaratorChunk::ParamInfo, 16> ParamInfo; 6404 // Remember where we see an ellipsis, if any. 6405 SourceLocation EllipsisLoc; 6406 6407 DeclSpec DS(AttrFactory); 6408 bool RefQualifierIsLValueRef = true; 6409 SourceLocation RefQualifierLoc; 6410 ExceptionSpecificationType ESpecType = EST_None; 6411 SourceRange ESpecRange; 6412 SmallVector<ParsedType, 2> DynamicExceptions; 6413 SmallVector<SourceRange, 2> DynamicExceptionRanges; 6414 ExprResult NoexceptExpr; 6415 CachedTokens *ExceptionSpecTokens = nullptr; 6416 ParsedAttributesWithRange FnAttrs(AttrFactory); 6417 TypeResult TrailingReturnType; 6418 6419 /* LocalEndLoc is the end location for the local FunctionTypeLoc. 6420 EndLoc is the end location for the function declarator. 6421 They differ for trailing return types. */ 6422 SourceLocation StartLoc, LocalEndLoc, EndLoc; 6423 SourceLocation LParenLoc, RParenLoc; 6424 LParenLoc = Tracker.getOpenLocation(); 6425 StartLoc = LParenLoc; 6426 6427 if (isFunctionDeclaratorIdentifierList()) { 6428 if (RequiresArg) 6429 Diag(Tok, diag::err_argument_required_after_attribute); 6430 6431 ParseFunctionDeclaratorIdentifierList(D, ParamInfo); 6432 6433 Tracker.consumeClose(); 6434 RParenLoc = Tracker.getCloseLocation(); 6435 LocalEndLoc = RParenLoc; 6436 EndLoc = RParenLoc; 6437 6438 // If there are attributes following the identifier list, parse them and 6439 // prohibit them. 6440 MaybeParseCXX11Attributes(FnAttrs); 6441 ProhibitAttributes(FnAttrs); 6442 } else { 6443 if (Tok.isNot(tok::r_paren)) 6444 ParseParameterDeclarationClause(D.getContext(), FirstArgAttrs, ParamInfo, 6445 EllipsisLoc); 6446 else if (RequiresArg) 6447 Diag(Tok, diag::err_argument_required_after_attribute); 6448 6449 HasProto = ParamInfo.size() || getLangOpts().CPlusPlus 6450 || getLangOpts().OpenCL; 6451 6452 // If we have the closing ')', eat it. 6453 Tracker.consumeClose(); 6454 RParenLoc = Tracker.getCloseLocation(); 6455 LocalEndLoc = RParenLoc; 6456 EndLoc = RParenLoc; 6457 6458 if (getLangOpts().CPlusPlus) { 6459 // FIXME: Accept these components in any order, and produce fixits to 6460 // correct the order if the user gets it wrong. Ideally we should deal 6461 // with the pure-specifier in the same way. 6462 6463 // Parse cv-qualifier-seq[opt]. 6464 ParseTypeQualifierListOpt(DS, AR_NoAttributesParsed, 6465 /*AtomicAllowed*/ false, 6466 /*IdentifierRequired=*/false, 6467 llvm::function_ref<void()>([&]() { 6468 Actions.CodeCompleteFunctionQualifiers(DS, D); 6469 })); 6470 if (!DS.getSourceRange().getEnd().isInvalid()) { 6471 EndLoc = DS.getSourceRange().getEnd(); 6472 } 6473 6474 // Parse ref-qualifier[opt]. 6475 if (ParseRefQualifier(RefQualifierIsLValueRef, RefQualifierLoc)) 6476 EndLoc = RefQualifierLoc; 6477 6478 llvm::Optional<Sema::CXXThisScopeRAII> ThisScope; 6479 InitCXXThisScopeForDeclaratorIfRelevant(D, DS, ThisScope); 6480 6481 // Parse exception-specification[opt]. 6482 bool Delayed = D.isFirstDeclarationOfMember() && 6483 D.isFunctionDeclaratorAFunctionDeclaration(); 6484 if (Delayed && Actions.isLibstdcxxEagerExceptionSpecHack(D) && 6485 GetLookAheadToken(0).is(tok::kw_noexcept) && 6486 GetLookAheadToken(1).is(tok::l_paren) && 6487 GetLookAheadToken(2).is(tok::kw_noexcept) && 6488 GetLookAheadToken(3).is(tok::l_paren) && 6489 GetLookAheadToken(4).is(tok::identifier) && 6490 GetLookAheadToken(4).getIdentifierInfo()->isStr("swap")) { 6491 // HACK: We've got an exception-specification 6492 // noexcept(noexcept(swap(...))) 6493 // or 6494 // noexcept(noexcept(swap(...)) && noexcept(swap(...))) 6495 // on a 'swap' member function. This is a libstdc++ bug; the lookup 6496 // for 'swap' will only find the function we're currently declaring, 6497 // whereas it expects to find a non-member swap through ADL. Turn off 6498 // delayed parsing to give it a chance to find what it expects. 6499 Delayed = false; 6500 } 6501 ESpecType = tryParseExceptionSpecification(Delayed, 6502 ESpecRange, 6503 DynamicExceptions, 6504 DynamicExceptionRanges, 6505 NoexceptExpr, 6506 ExceptionSpecTokens); 6507 if (ESpecType != EST_None) 6508 EndLoc = ESpecRange.getEnd(); 6509 6510 // Parse attribute-specifier-seq[opt]. Per DR 979 and DR 1297, this goes 6511 // after the exception-specification. 6512 MaybeParseCXX11Attributes(FnAttrs); 6513 6514 // Parse trailing-return-type[opt]. 6515 LocalEndLoc = EndLoc; 6516 if (getLangOpts().CPlusPlus11 && Tok.is(tok::arrow)) { 6517 Diag(Tok, diag::warn_cxx98_compat_trailing_return_type); 6518 if (D.getDeclSpec().getTypeSpecType() == TST_auto) 6519 StartLoc = D.getDeclSpec().getTypeSpecTypeLoc(); 6520 LocalEndLoc = Tok.getLocation(); 6521 SourceRange Range; 6522 TrailingReturnType = 6523 ParseTrailingReturnType(Range, D.mayBeFollowedByCXXDirectInit()); 6524 EndLoc = Range.getEnd(); 6525 } 6526 } else if (standardAttributesAllowed()) { 6527 MaybeParseCXX11Attributes(FnAttrs); 6528 } 6529 } 6530 6531 // Collect non-parameter declarations from the prototype if this is a function 6532 // declaration. They will be moved into the scope of the function. Only do 6533 // this in C and not C++, where the decls will continue to live in the 6534 // surrounding context. 6535 SmallVector<NamedDecl *, 0> DeclsInPrototype; 6536 if (getCurScope()->getFlags() & Scope::FunctionDeclarationScope && 6537 !getLangOpts().CPlusPlus) { 6538 for (Decl *D : getCurScope()->decls()) { 6539 NamedDecl *ND = dyn_cast<NamedDecl>(D); 6540 if (!ND || isa<ParmVarDecl>(ND)) 6541 continue; 6542 DeclsInPrototype.push_back(ND); 6543 } 6544 } 6545 6546 // Remember that we parsed a function type, and remember the attributes. 6547 D.AddTypeInfo(DeclaratorChunk::getFunction( 6548 HasProto, IsAmbiguous, LParenLoc, ParamInfo.data(), 6549 ParamInfo.size(), EllipsisLoc, RParenLoc, 6550 RefQualifierIsLValueRef, RefQualifierLoc, 6551 /*MutableLoc=*/SourceLocation(), 6552 ESpecType, ESpecRange, DynamicExceptions.data(), 6553 DynamicExceptionRanges.data(), DynamicExceptions.size(), 6554 NoexceptExpr.isUsable() ? NoexceptExpr.get() : nullptr, 6555 ExceptionSpecTokens, DeclsInPrototype, StartLoc, 6556 LocalEndLoc, D, TrailingReturnType, &DS), 6557 std::move(FnAttrs), EndLoc); 6558 } 6559 6560 /// ParseRefQualifier - Parses a member function ref-qualifier. Returns 6561 /// true if a ref-qualifier is found. 6562 bool Parser::ParseRefQualifier(bool &RefQualifierIsLValueRef, 6563 SourceLocation &RefQualifierLoc) { 6564 if (Tok.isOneOf(tok::amp, tok::ampamp)) { 6565 Diag(Tok, getLangOpts().CPlusPlus11 ? 6566 diag::warn_cxx98_compat_ref_qualifier : 6567 diag::ext_ref_qualifier); 6568 6569 RefQualifierIsLValueRef = Tok.is(tok::amp); 6570 RefQualifierLoc = ConsumeToken(); 6571 return true; 6572 } 6573 return false; 6574 } 6575 6576 /// isFunctionDeclaratorIdentifierList - This parameter list may have an 6577 /// identifier list form for a K&R-style function: void foo(a,b,c) 6578 /// 6579 /// Note that identifier-lists are only allowed for normal declarators, not for 6580 /// abstract-declarators. 6581 bool Parser::isFunctionDeclaratorIdentifierList() { 6582 return !getLangOpts().CPlusPlus 6583 && Tok.is(tok::identifier) 6584 && !TryAltiVecVectorToken() 6585 // K&R identifier lists can't have typedefs as identifiers, per C99 6586 // 6.7.5.3p11. 6587 && (TryAnnotateTypeOrScopeToken() || !Tok.is(tok::annot_typename)) 6588 // Identifier lists follow a really simple grammar: the identifiers can 6589 // be followed *only* by a ", identifier" or ")". However, K&R 6590 // identifier lists are really rare in the brave new modern world, and 6591 // it is very common for someone to typo a type in a non-K&R style 6592 // list. If we are presented with something like: "void foo(intptr x, 6593 // float y)", we don't want to start parsing the function declarator as 6594 // though it is a K&R style declarator just because intptr is an 6595 // invalid type. 6596 // 6597 // To handle this, we check to see if the token after the first 6598 // identifier is a "," or ")". Only then do we parse it as an 6599 // identifier list. 6600 && (!Tok.is(tok::eof) && 6601 (NextToken().is(tok::comma) || NextToken().is(tok::r_paren))); 6602 } 6603 6604 /// ParseFunctionDeclaratorIdentifierList - While parsing a function declarator 6605 /// we found a K&R-style identifier list instead of a typed parameter list. 6606 /// 6607 /// After returning, ParamInfo will hold the parsed parameters. 6608 /// 6609 /// identifier-list: [C99 6.7.5] 6610 /// identifier 6611 /// identifier-list ',' identifier 6612 /// 6613 void Parser::ParseFunctionDeclaratorIdentifierList( 6614 Declarator &D, 6615 SmallVectorImpl<DeclaratorChunk::ParamInfo> &ParamInfo) { 6616 // If there was no identifier specified for the declarator, either we are in 6617 // an abstract-declarator, or we are in a parameter declarator which was found 6618 // to be abstract. In abstract-declarators, identifier lists are not valid: 6619 // diagnose this. 6620 if (!D.getIdentifier()) 6621 Diag(Tok, diag::ext_ident_list_in_param); 6622 6623 // Maintain an efficient lookup of params we have seen so far. 6624 llvm::SmallSet<const IdentifierInfo*, 16> ParamsSoFar; 6625 6626 do { 6627 // If this isn't an identifier, report the error and skip until ')'. 6628 if (Tok.isNot(tok::identifier)) { 6629 Diag(Tok, diag::err_expected) << tok::identifier; 6630 SkipUntil(tok::r_paren, StopAtSemi | StopBeforeMatch); 6631 // Forget we parsed anything. 6632 ParamInfo.clear(); 6633 return; 6634 } 6635 6636 IdentifierInfo *ParmII = Tok.getIdentifierInfo(); 6637 6638 // Reject 'typedef int y; int test(x, y)', but continue parsing. 6639 if (Actions.getTypeName(*ParmII, Tok.getLocation(), getCurScope())) 6640 Diag(Tok, diag::err_unexpected_typedef_ident) << ParmII; 6641 6642 // Verify that the argument identifier has not already been mentioned. 6643 if (!ParamsSoFar.insert(ParmII).second) { 6644 Diag(Tok, diag::err_param_redefinition) << ParmII; 6645 } else { 6646 // Remember this identifier in ParamInfo. 6647 ParamInfo.push_back(DeclaratorChunk::ParamInfo(ParmII, 6648 Tok.getLocation(), 6649 nullptr)); 6650 } 6651 6652 // Eat the identifier. 6653 ConsumeToken(); 6654 // The list continues if we see a comma. 6655 } while (TryConsumeToken(tok::comma)); 6656 } 6657 6658 /// ParseParameterDeclarationClause - Parse a (possibly empty) parameter-list 6659 /// after the opening parenthesis. This function will not parse a K&R-style 6660 /// identifier list. 6661 /// 6662 /// DeclContext is the context of the declarator being parsed. If FirstArgAttrs 6663 /// is non-null, then the caller parsed those attributes immediately after the 6664 /// open paren - they should be considered to be part of the first parameter. 6665 /// 6666 /// After returning, ParamInfo will hold the parsed parameters. EllipsisLoc will 6667 /// be the location of the ellipsis, if any was parsed. 6668 /// 6669 /// parameter-type-list: [C99 6.7.5] 6670 /// parameter-list 6671 /// parameter-list ',' '...' 6672 /// [C++] parameter-list '...' 6673 /// 6674 /// parameter-list: [C99 6.7.5] 6675 /// parameter-declaration 6676 /// parameter-list ',' parameter-declaration 6677 /// 6678 /// parameter-declaration: [C99 6.7.5] 6679 /// declaration-specifiers declarator 6680 /// [C++] declaration-specifiers declarator '=' assignment-expression 6681 /// [C++11] initializer-clause 6682 /// [GNU] declaration-specifiers declarator attributes 6683 /// declaration-specifiers abstract-declarator[opt] 6684 /// [C++] declaration-specifiers abstract-declarator[opt] 6685 /// '=' assignment-expression 6686 /// [GNU] declaration-specifiers abstract-declarator[opt] attributes 6687 /// [C++11] attribute-specifier-seq parameter-declaration 6688 /// 6689 void Parser::ParseParameterDeclarationClause( 6690 DeclaratorContext DeclaratorCtx, 6691 ParsedAttributes &FirstArgAttrs, 6692 SmallVectorImpl<DeclaratorChunk::ParamInfo> &ParamInfo, 6693 SourceLocation &EllipsisLoc) { 6694 6695 // Avoid exceeding the maximum function scope depth. 6696 // See https://bugs.llvm.org/show_bug.cgi?id=19607 6697 // Note Sema::ActOnParamDeclarator calls ParmVarDecl::setScopeInfo with 6698 // getFunctionPrototypeDepth() - 1. 6699 if (getCurScope()->getFunctionPrototypeDepth() - 1 > 6700 ParmVarDecl::getMaxFunctionScopeDepth()) { 6701 Diag(Tok.getLocation(), diag::err_function_scope_depth_exceeded) 6702 << ParmVarDecl::getMaxFunctionScopeDepth(); 6703 cutOffParsing(); 6704 return; 6705 } 6706 6707 do { 6708 // FIXME: Issue a diagnostic if we parsed an attribute-specifier-seq 6709 // before deciding this was a parameter-declaration-clause. 6710 if (TryConsumeToken(tok::ellipsis, EllipsisLoc)) 6711 break; 6712 6713 // Parse the declaration-specifiers. 6714 // Just use the ParsingDeclaration "scope" of the declarator. 6715 DeclSpec DS(AttrFactory); 6716 6717 // Parse any C++11 attributes. 6718 MaybeParseCXX11Attributes(DS.getAttributes()); 6719 6720 // Skip any Microsoft attributes before a param. 6721 MaybeParseMicrosoftAttributes(DS.getAttributes()); 6722 6723 SourceLocation DSStart = Tok.getLocation(); 6724 6725 // If the caller parsed attributes for the first argument, add them now. 6726 // Take them so that we only apply the attributes to the first parameter. 6727 // FIXME: If we can leave the attributes in the token stream somehow, we can 6728 // get rid of a parameter (FirstArgAttrs) and this statement. It might be 6729 // too much hassle. 6730 DS.takeAttributesFrom(FirstArgAttrs); 6731 6732 ParseDeclarationSpecifiers(DS); 6733 6734 6735 // Parse the declarator. This is "PrototypeContext" or 6736 // "LambdaExprParameterContext", because we must accept either 6737 // 'declarator' or 'abstract-declarator' here. 6738 Declarator ParmDeclarator( 6739 DS, DeclaratorCtx == DeclaratorContext::RequiresExprContext 6740 ? DeclaratorContext::RequiresExprContext 6741 : DeclaratorCtx == DeclaratorContext::LambdaExprContext 6742 ? DeclaratorContext::LambdaExprParameterContext 6743 : DeclaratorContext::PrototypeContext); 6744 ParseDeclarator(ParmDeclarator); 6745 6746 // Parse GNU attributes, if present. 6747 MaybeParseGNUAttributes(ParmDeclarator); 6748 6749 if (Tok.is(tok::kw_requires)) { 6750 // User tried to define a requires clause in a parameter declaration, 6751 // which is surely not a function declaration. 6752 // void f(int (*g)(int, int) requires true); 6753 Diag(Tok, 6754 diag::err_requires_clause_on_declarator_not_declaring_a_function); 6755 ConsumeToken(); 6756 Actions.CorrectDelayedTyposInExpr( 6757 ParseConstraintLogicalOrExpression(/*IsTrailingRequiresClause=*/true)); 6758 } 6759 6760 // Remember this parsed parameter in ParamInfo. 6761 IdentifierInfo *ParmII = ParmDeclarator.getIdentifier(); 6762 6763 // DefArgToks is used when the parsing of default arguments needs 6764 // to be delayed. 6765 std::unique_ptr<CachedTokens> DefArgToks; 6766 6767 // If no parameter was specified, verify that *something* was specified, 6768 // otherwise we have a missing type and identifier. 6769 if (DS.isEmpty() && ParmDeclarator.getIdentifier() == nullptr && 6770 ParmDeclarator.getNumTypeObjects() == 0) { 6771 // Completely missing, emit error. 6772 Diag(DSStart, diag::err_missing_param); 6773 } else { 6774 // Otherwise, we have something. Add it and let semantic analysis try 6775 // to grok it and add the result to the ParamInfo we are building. 6776 6777 // Last chance to recover from a misplaced ellipsis in an attempted 6778 // parameter pack declaration. 6779 if (Tok.is(tok::ellipsis) && 6780 (NextToken().isNot(tok::r_paren) || 6781 (!ParmDeclarator.getEllipsisLoc().isValid() && 6782 !Actions.isUnexpandedParameterPackPermitted())) && 6783 Actions.containsUnexpandedParameterPacks(ParmDeclarator)) 6784 DiagnoseMisplacedEllipsisInDeclarator(ConsumeToken(), ParmDeclarator); 6785 6786 // Inform the actions module about the parameter declarator, so it gets 6787 // added to the current scope. 6788 Decl *Param = Actions.ActOnParamDeclarator(getCurScope(), ParmDeclarator); 6789 // Parse the default argument, if any. We parse the default 6790 // arguments in all dialects; the semantic analysis in 6791 // ActOnParamDefaultArgument will reject the default argument in 6792 // C. 6793 if (Tok.is(tok::equal)) { 6794 SourceLocation EqualLoc = Tok.getLocation(); 6795 6796 // Parse the default argument 6797 if (DeclaratorCtx == DeclaratorContext::MemberContext) { 6798 // If we're inside a class definition, cache the tokens 6799 // corresponding to the default argument. We'll actually parse 6800 // them when we see the end of the class definition. 6801 DefArgToks.reset(new CachedTokens); 6802 6803 SourceLocation ArgStartLoc = NextToken().getLocation(); 6804 if (!ConsumeAndStoreInitializer(*DefArgToks, CIK_DefaultArgument)) { 6805 DefArgToks.reset(); 6806 Actions.ActOnParamDefaultArgumentError(Param, EqualLoc); 6807 } else { 6808 Actions.ActOnParamUnparsedDefaultArgument(Param, EqualLoc, 6809 ArgStartLoc); 6810 } 6811 } else { 6812 // Consume the '='. 6813 ConsumeToken(); 6814 6815 // The argument isn't actually potentially evaluated unless it is 6816 // used. 6817 EnterExpressionEvaluationContext Eval( 6818 Actions, 6819 Sema::ExpressionEvaluationContext::PotentiallyEvaluatedIfUsed, 6820 Param); 6821 6822 ExprResult DefArgResult; 6823 if (getLangOpts().CPlusPlus11 && Tok.is(tok::l_brace)) { 6824 Diag(Tok, diag::warn_cxx98_compat_generalized_initializer_lists); 6825 DefArgResult = ParseBraceInitializer(); 6826 } else 6827 DefArgResult = ParseAssignmentExpression(); 6828 DefArgResult = Actions.CorrectDelayedTyposInExpr(DefArgResult); 6829 if (DefArgResult.isInvalid()) { 6830 Actions.ActOnParamDefaultArgumentError(Param, EqualLoc); 6831 SkipUntil(tok::comma, tok::r_paren, StopAtSemi | StopBeforeMatch); 6832 } else { 6833 // Inform the actions module about the default argument 6834 Actions.ActOnParamDefaultArgument(Param, EqualLoc, 6835 DefArgResult.get()); 6836 } 6837 } 6838 } 6839 6840 ParamInfo.push_back(DeclaratorChunk::ParamInfo(ParmII, 6841 ParmDeclarator.getIdentifierLoc(), 6842 Param, std::move(DefArgToks))); 6843 } 6844 6845 if (TryConsumeToken(tok::ellipsis, EllipsisLoc)) { 6846 if (!getLangOpts().CPlusPlus) { 6847 // We have ellipsis without a preceding ',', which is ill-formed 6848 // in C. Complain and provide the fix. 6849 Diag(EllipsisLoc, diag::err_missing_comma_before_ellipsis) 6850 << FixItHint::CreateInsertion(EllipsisLoc, ", "); 6851 } else if (ParmDeclarator.getEllipsisLoc().isValid() || 6852 Actions.containsUnexpandedParameterPacks(ParmDeclarator)) { 6853 // It looks like this was supposed to be a parameter pack. Warn and 6854 // point out where the ellipsis should have gone. 6855 SourceLocation ParmEllipsis = ParmDeclarator.getEllipsisLoc(); 6856 Diag(EllipsisLoc, diag::warn_misplaced_ellipsis_vararg) 6857 << ParmEllipsis.isValid() << ParmEllipsis; 6858 if (ParmEllipsis.isValid()) { 6859 Diag(ParmEllipsis, 6860 diag::note_misplaced_ellipsis_vararg_existing_ellipsis); 6861 } else { 6862 Diag(ParmDeclarator.getIdentifierLoc(), 6863 diag::note_misplaced_ellipsis_vararg_add_ellipsis) 6864 << FixItHint::CreateInsertion(ParmDeclarator.getIdentifierLoc(), 6865 "...") 6866 << !ParmDeclarator.hasName(); 6867 } 6868 Diag(EllipsisLoc, diag::note_misplaced_ellipsis_vararg_add_comma) 6869 << FixItHint::CreateInsertion(EllipsisLoc, ", "); 6870 } 6871 6872 // We can't have any more parameters after an ellipsis. 6873 break; 6874 } 6875 6876 // If the next token is a comma, consume it and keep reading arguments. 6877 } while (TryConsumeToken(tok::comma)); 6878 } 6879 6880 /// [C90] direct-declarator '[' constant-expression[opt] ']' 6881 /// [C99] direct-declarator '[' type-qual-list[opt] assignment-expr[opt] ']' 6882 /// [C99] direct-declarator '[' 'static' type-qual-list[opt] assign-expr ']' 6883 /// [C99] direct-declarator '[' type-qual-list 'static' assignment-expr ']' 6884 /// [C99] direct-declarator '[' type-qual-list[opt] '*' ']' 6885 /// [C++11] direct-declarator '[' constant-expression[opt] ']' 6886 /// attribute-specifier-seq[opt] 6887 void Parser::ParseBracketDeclarator(Declarator &D) { 6888 if (CheckProhibitedCXX11Attribute()) 6889 return; 6890 6891 BalancedDelimiterTracker T(*this, tok::l_square); 6892 T.consumeOpen(); 6893 6894 // C array syntax has many features, but by-far the most common is [] and [4]. 6895 // This code does a fast path to handle some of the most obvious cases. 6896 if (Tok.getKind() == tok::r_square) { 6897 T.consumeClose(); 6898 ParsedAttributes attrs(AttrFactory); 6899 MaybeParseCXX11Attributes(attrs); 6900 6901 // Remember that we parsed the empty array type. 6902 D.AddTypeInfo(DeclaratorChunk::getArray(0, false, false, nullptr, 6903 T.getOpenLocation(), 6904 T.getCloseLocation()), 6905 std::move(attrs), T.getCloseLocation()); 6906 return; 6907 } else if (Tok.getKind() == tok::numeric_constant && 6908 GetLookAheadToken(1).is(tok::r_square)) { 6909 // [4] is very common. Parse the numeric constant expression. 6910 ExprResult ExprRes(Actions.ActOnNumericConstant(Tok, getCurScope())); 6911 ConsumeToken(); 6912 6913 T.consumeClose(); 6914 ParsedAttributes attrs(AttrFactory); 6915 MaybeParseCXX11Attributes(attrs); 6916 6917 // Remember that we parsed a array type, and remember its features. 6918 D.AddTypeInfo(DeclaratorChunk::getArray(0, false, false, ExprRes.get(), 6919 T.getOpenLocation(), 6920 T.getCloseLocation()), 6921 std::move(attrs), T.getCloseLocation()); 6922 return; 6923 } else if (Tok.getKind() == tok::code_completion) { 6924 Actions.CodeCompleteBracketDeclarator(getCurScope()); 6925 return cutOffParsing(); 6926 } 6927 6928 // If valid, this location is the position where we read the 'static' keyword. 6929 SourceLocation StaticLoc; 6930 TryConsumeToken(tok::kw_static, StaticLoc); 6931 6932 // If there is a type-qualifier-list, read it now. 6933 // Type qualifiers in an array subscript are a C99 feature. 6934 DeclSpec DS(AttrFactory); 6935 ParseTypeQualifierListOpt(DS, AR_CXX11AttributesParsed); 6936 6937 // If we haven't already read 'static', check to see if there is one after the 6938 // type-qualifier-list. 6939 if (!StaticLoc.isValid()) 6940 TryConsumeToken(tok::kw_static, StaticLoc); 6941 6942 // Handle "direct-declarator [ type-qual-list[opt] * ]". 6943 bool isStar = false; 6944 ExprResult NumElements; 6945 6946 // Handle the case where we have '[*]' as the array size. However, a leading 6947 // star could be the start of an expression, for example 'X[*p + 4]'. Verify 6948 // the token after the star is a ']'. Since stars in arrays are 6949 // infrequent, use of lookahead is not costly here. 6950 if (Tok.is(tok::star) && GetLookAheadToken(1).is(tok::r_square)) { 6951 ConsumeToken(); // Eat the '*'. 6952 6953 if (StaticLoc.isValid()) { 6954 Diag(StaticLoc, diag::err_unspecified_vla_size_with_static); 6955 StaticLoc = SourceLocation(); // Drop the static. 6956 } 6957 isStar = true; 6958 } else if (Tok.isNot(tok::r_square)) { 6959 // Note, in C89, this production uses the constant-expr production instead 6960 // of assignment-expr. The only difference is that assignment-expr allows 6961 // things like '=' and '*='. Sema rejects these in C89 mode because they 6962 // are not i-c-e's, so we don't need to distinguish between the two here. 6963 6964 // Parse the constant-expression or assignment-expression now (depending 6965 // on dialect). 6966 if (getLangOpts().CPlusPlus) { 6967 NumElements = ParseConstantExpression(); 6968 } else { 6969 EnterExpressionEvaluationContext Unevaluated( 6970 Actions, Sema::ExpressionEvaluationContext::ConstantEvaluated); 6971 NumElements = 6972 Actions.CorrectDelayedTyposInExpr(ParseAssignmentExpression()); 6973 } 6974 } else { 6975 if (StaticLoc.isValid()) { 6976 Diag(StaticLoc, diag::err_unspecified_size_with_static); 6977 StaticLoc = SourceLocation(); // Drop the static. 6978 } 6979 } 6980 6981 // If there was an error parsing the assignment-expression, recover. 6982 if (NumElements.isInvalid()) { 6983 D.setInvalidType(true); 6984 // If the expression was invalid, skip it. 6985 SkipUntil(tok::r_square, StopAtSemi); 6986 return; 6987 } 6988 6989 T.consumeClose(); 6990 6991 MaybeParseCXX11Attributes(DS.getAttributes()); 6992 6993 // Remember that we parsed a array type, and remember its features. 6994 D.AddTypeInfo( 6995 DeclaratorChunk::getArray(DS.getTypeQualifiers(), StaticLoc.isValid(), 6996 isStar, NumElements.get(), T.getOpenLocation(), 6997 T.getCloseLocation()), 6998 std::move(DS.getAttributes()), T.getCloseLocation()); 6999 } 7000 7001 /// Diagnose brackets before an identifier. 7002 void Parser::ParseMisplacedBracketDeclarator(Declarator &D) { 7003 assert(Tok.is(tok::l_square) && "Missing opening bracket"); 7004 assert(!D.mayOmitIdentifier() && "Declarator cannot omit identifier"); 7005 7006 SourceLocation StartBracketLoc = Tok.getLocation(); 7007 Declarator TempDeclarator(D.getDeclSpec(), D.getContext()); 7008 7009 while (Tok.is(tok::l_square)) { 7010 ParseBracketDeclarator(TempDeclarator); 7011 } 7012 7013 // Stuff the location of the start of the brackets into the Declarator. 7014 // The diagnostics from ParseDirectDeclarator will make more sense if 7015 // they use this location instead. 7016 if (Tok.is(tok::semi)) 7017 D.getName().EndLocation = StartBracketLoc; 7018 7019 SourceLocation SuggestParenLoc = Tok.getLocation(); 7020 7021 // Now that the brackets are removed, try parsing the declarator again. 7022 ParseDeclaratorInternal(D, &Parser::ParseDirectDeclarator); 7023 7024 // Something went wrong parsing the brackets, in which case, 7025 // ParseBracketDeclarator has emitted an error, and we don't need to emit 7026 // one here. 7027 if (TempDeclarator.getNumTypeObjects() == 0) 7028 return; 7029 7030 // Determine if parens will need to be suggested in the diagnostic. 7031 bool NeedParens = false; 7032 if (D.getNumTypeObjects() != 0) { 7033 switch (D.getTypeObject(D.getNumTypeObjects() - 1).Kind) { 7034 case DeclaratorChunk::Pointer: 7035 case DeclaratorChunk::Reference: 7036 case DeclaratorChunk::BlockPointer: 7037 case DeclaratorChunk::MemberPointer: 7038 case DeclaratorChunk::Pipe: 7039 NeedParens = true; 7040 break; 7041 case DeclaratorChunk::Array: 7042 case DeclaratorChunk::Function: 7043 case DeclaratorChunk::Paren: 7044 break; 7045 } 7046 } 7047 7048 if (NeedParens) { 7049 // Create a DeclaratorChunk for the inserted parens. 7050 SourceLocation EndLoc = PP.getLocForEndOfToken(D.getEndLoc()); 7051 D.AddTypeInfo(DeclaratorChunk::getParen(SuggestParenLoc, EndLoc), 7052 SourceLocation()); 7053 } 7054 7055 // Adding back the bracket info to the end of the Declarator. 7056 for (unsigned i = 0, e = TempDeclarator.getNumTypeObjects(); i < e; ++i) { 7057 const DeclaratorChunk &Chunk = TempDeclarator.getTypeObject(i); 7058 D.AddTypeInfo(Chunk, SourceLocation()); 7059 } 7060 7061 // The missing identifier would have been diagnosed in ParseDirectDeclarator. 7062 // If parentheses are required, always suggest them. 7063 if (!D.getIdentifier() && !NeedParens) 7064 return; 7065 7066 SourceLocation EndBracketLoc = TempDeclarator.getEndLoc(); 7067 7068 // Generate the move bracket error message. 7069 SourceRange BracketRange(StartBracketLoc, EndBracketLoc); 7070 SourceLocation EndLoc = PP.getLocForEndOfToken(D.getEndLoc()); 7071 7072 if (NeedParens) { 7073 Diag(EndLoc, diag::err_brackets_go_after_unqualified_id) 7074 << getLangOpts().CPlusPlus 7075 << FixItHint::CreateInsertion(SuggestParenLoc, "(") 7076 << FixItHint::CreateInsertion(EndLoc, ")") 7077 << FixItHint::CreateInsertionFromRange( 7078 EndLoc, CharSourceRange(BracketRange, true)) 7079 << FixItHint::CreateRemoval(BracketRange); 7080 } else { 7081 Diag(EndLoc, diag::err_brackets_go_after_unqualified_id) 7082 << getLangOpts().CPlusPlus 7083 << FixItHint::CreateInsertionFromRange( 7084 EndLoc, CharSourceRange(BracketRange, true)) 7085 << FixItHint::CreateRemoval(BracketRange); 7086 } 7087 } 7088 7089 /// [GNU] typeof-specifier: 7090 /// typeof ( expressions ) 7091 /// typeof ( type-name ) 7092 /// [GNU/C++] typeof unary-expression 7093 /// 7094 void Parser::ParseTypeofSpecifier(DeclSpec &DS) { 7095 assert(Tok.is(tok::kw_typeof) && "Not a typeof specifier"); 7096 Token OpTok = Tok; 7097 SourceLocation StartLoc = ConsumeToken(); 7098 7099 const bool hasParens = Tok.is(tok::l_paren); 7100 7101 EnterExpressionEvaluationContext Unevaluated( 7102 Actions, Sema::ExpressionEvaluationContext::Unevaluated, 7103 Sema::ReuseLambdaContextDecl); 7104 7105 bool isCastExpr; 7106 ParsedType CastTy; 7107 SourceRange CastRange; 7108 ExprResult Operand = Actions.CorrectDelayedTyposInExpr( 7109 ParseExprAfterUnaryExprOrTypeTrait(OpTok, isCastExpr, CastTy, CastRange)); 7110 if (hasParens) 7111 DS.setTypeofParensRange(CastRange); 7112 7113 if (CastRange.getEnd().isInvalid()) 7114 // FIXME: Not accurate, the range gets one token more than it should. 7115 DS.SetRangeEnd(Tok.getLocation()); 7116 else 7117 DS.SetRangeEnd(CastRange.getEnd()); 7118 7119 if (isCastExpr) { 7120 if (!CastTy) { 7121 DS.SetTypeSpecError(); 7122 return; 7123 } 7124 7125 const char *PrevSpec = nullptr; 7126 unsigned DiagID; 7127 // Check for duplicate type specifiers (e.g. "int typeof(int)"). 7128 if (DS.SetTypeSpecType(DeclSpec::TST_typeofType, StartLoc, PrevSpec, 7129 DiagID, CastTy, 7130 Actions.getASTContext().getPrintingPolicy())) 7131 Diag(StartLoc, DiagID) << PrevSpec; 7132 return; 7133 } 7134 7135 // If we get here, the operand to the typeof was an expression. 7136 if (Operand.isInvalid()) { 7137 DS.SetTypeSpecError(); 7138 return; 7139 } 7140 7141 // We might need to transform the operand if it is potentially evaluated. 7142 Operand = Actions.HandleExprEvaluationContextForTypeof(Operand.get()); 7143 if (Operand.isInvalid()) { 7144 DS.SetTypeSpecError(); 7145 return; 7146 } 7147 7148 const char *PrevSpec = nullptr; 7149 unsigned DiagID; 7150 // Check for duplicate type specifiers (e.g. "int typeof(int)"). 7151 if (DS.SetTypeSpecType(DeclSpec::TST_typeofExpr, StartLoc, PrevSpec, 7152 DiagID, Operand.get(), 7153 Actions.getASTContext().getPrintingPolicy())) 7154 Diag(StartLoc, DiagID) << PrevSpec; 7155 } 7156 7157 /// [C11] atomic-specifier: 7158 /// _Atomic ( type-name ) 7159 /// 7160 void Parser::ParseAtomicSpecifier(DeclSpec &DS) { 7161 assert(Tok.is(tok::kw__Atomic) && NextToken().is(tok::l_paren) && 7162 "Not an atomic specifier"); 7163 7164 SourceLocation StartLoc = ConsumeToken(); 7165 BalancedDelimiterTracker T(*this, tok::l_paren); 7166 if (T.consumeOpen()) 7167 return; 7168 7169 TypeResult Result = ParseTypeName(); 7170 if (Result.isInvalid()) { 7171 SkipUntil(tok::r_paren, StopAtSemi); 7172 return; 7173 } 7174 7175 // Match the ')' 7176 T.consumeClose(); 7177 7178 if (T.getCloseLocation().isInvalid()) 7179 return; 7180 7181 DS.setTypeofParensRange(T.getRange()); 7182 DS.SetRangeEnd(T.getCloseLocation()); 7183 7184 const char *PrevSpec = nullptr; 7185 unsigned DiagID; 7186 if (DS.SetTypeSpecType(DeclSpec::TST_atomic, StartLoc, PrevSpec, 7187 DiagID, Result.get(), 7188 Actions.getASTContext().getPrintingPolicy())) 7189 Diag(StartLoc, DiagID) << PrevSpec; 7190 } 7191 7192 /// TryAltiVecVectorTokenOutOfLine - Out of line body that should only be called 7193 /// from TryAltiVecVectorToken. 7194 bool Parser::TryAltiVecVectorTokenOutOfLine() { 7195 Token Next = NextToken(); 7196 switch (Next.getKind()) { 7197 default: return false; 7198 case tok::kw_short: 7199 case tok::kw_long: 7200 case tok::kw_signed: 7201 case tok::kw_unsigned: 7202 case tok::kw_void: 7203 case tok::kw_char: 7204 case tok::kw_int: 7205 case tok::kw_float: 7206 case tok::kw_double: 7207 case tok::kw_bool: 7208 case tok::kw___bool: 7209 case tok::kw___pixel: 7210 Tok.setKind(tok::kw___vector); 7211 return true; 7212 case tok::identifier: 7213 if (Next.getIdentifierInfo() == Ident_pixel) { 7214 Tok.setKind(tok::kw___vector); 7215 return true; 7216 } 7217 if (Next.getIdentifierInfo() == Ident_bool) { 7218 Tok.setKind(tok::kw___vector); 7219 return true; 7220 } 7221 return false; 7222 } 7223 } 7224 7225 bool Parser::TryAltiVecTokenOutOfLine(DeclSpec &DS, SourceLocation Loc, 7226 const char *&PrevSpec, unsigned &DiagID, 7227 bool &isInvalid) { 7228 const PrintingPolicy &Policy = Actions.getASTContext().getPrintingPolicy(); 7229 if (Tok.getIdentifierInfo() == Ident_vector) { 7230 Token Next = NextToken(); 7231 switch (Next.getKind()) { 7232 case tok::kw_short: 7233 case tok::kw_long: 7234 case tok::kw_signed: 7235 case tok::kw_unsigned: 7236 case tok::kw_void: 7237 case tok::kw_char: 7238 case tok::kw_int: 7239 case tok::kw_float: 7240 case tok::kw_double: 7241 case tok::kw_bool: 7242 case tok::kw___bool: 7243 case tok::kw___pixel: 7244 isInvalid = DS.SetTypeAltiVecVector(true, Loc, PrevSpec, DiagID, Policy); 7245 return true; 7246 case tok::identifier: 7247 if (Next.getIdentifierInfo() == Ident_pixel) { 7248 isInvalid = DS.SetTypeAltiVecVector(true, Loc, PrevSpec, DiagID,Policy); 7249 return true; 7250 } 7251 if (Next.getIdentifierInfo() == Ident_bool) { 7252 isInvalid = DS.SetTypeAltiVecVector(true, Loc, PrevSpec, DiagID,Policy); 7253 return true; 7254 } 7255 break; 7256 default: 7257 break; 7258 } 7259 } else if ((Tok.getIdentifierInfo() == Ident_pixel) && 7260 DS.isTypeAltiVecVector()) { 7261 isInvalid = DS.SetTypeAltiVecPixel(true, Loc, PrevSpec, DiagID, Policy); 7262 return true; 7263 } else if ((Tok.getIdentifierInfo() == Ident_bool) && 7264 DS.isTypeAltiVecVector()) { 7265 isInvalid = DS.SetTypeAltiVecBool(true, Loc, PrevSpec, DiagID, Policy); 7266 return true; 7267 } 7268 return false; 7269 } 7270