1 //===--- ParseExprCXX.cpp - C++ Expression Parsing ------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the Expression parsing implementation for C++. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "clang/Parse/ParseDiagnostic.h" 15 #include "clang/Parse/Parser.h" 16 #include "RAIIObjectsForParser.h" 17 #include "clang/Sema/DeclSpec.h" 18 #include "clang/Sema/Scope.h" 19 #include "clang/Sema/ParsedTemplate.h" 20 #include "llvm/Support/ErrorHandling.h" 21 22 using namespace clang; 23 24 static int SelectDigraphErrorMessage(tok::TokenKind Kind) { 25 switch (Kind) { 26 case tok::kw_template: return 0; 27 case tok::kw_const_cast: return 1; 28 case tok::kw_dynamic_cast: return 2; 29 case tok::kw_reinterpret_cast: return 3; 30 case tok::kw_static_cast: return 4; 31 default: 32 llvm_unreachable("Unknown type for digraph error message."); 33 } 34 } 35 36 // Are the two tokens adjacent in the same source file? 37 static bool AreTokensAdjacent(Preprocessor &PP, Token &First, Token &Second) { 38 SourceManager &SM = PP.getSourceManager(); 39 SourceLocation FirstLoc = SM.getSpellingLoc(First.getLocation()); 40 SourceLocation FirstEnd = FirstLoc.getLocWithOffset(First.getLength()); 41 return FirstEnd == SM.getSpellingLoc(Second.getLocation()); 42 } 43 44 // Suggest fixit for "<::" after a cast. 45 static void FixDigraph(Parser &P, Preprocessor &PP, Token &DigraphToken, 46 Token &ColonToken, tok::TokenKind Kind, bool AtDigraph) { 47 // Pull '<:' and ':' off token stream. 48 if (!AtDigraph) 49 PP.Lex(DigraphToken); 50 PP.Lex(ColonToken); 51 52 SourceRange Range; 53 Range.setBegin(DigraphToken.getLocation()); 54 Range.setEnd(ColonToken.getLocation()); 55 P.Diag(DigraphToken.getLocation(), diag::err_missing_whitespace_digraph) 56 << SelectDigraphErrorMessage(Kind) 57 << FixItHint::CreateReplacement(Range, "< ::"); 58 59 // Update token information to reflect their change in token type. 60 ColonToken.setKind(tok::coloncolon); 61 ColonToken.setLocation(ColonToken.getLocation().getLocWithOffset(-1)); 62 ColonToken.setLength(2); 63 DigraphToken.setKind(tok::less); 64 DigraphToken.setLength(1); 65 66 // Push new tokens back to token stream. 67 PP.EnterToken(ColonToken); 68 if (!AtDigraph) 69 PP.EnterToken(DigraphToken); 70 } 71 72 // Check for '<::' which should be '< ::' instead of '[:' when following 73 // a template name. 74 void Parser::CheckForTemplateAndDigraph(Token &Next, ParsedType ObjectType, 75 bool EnteringContext, 76 IdentifierInfo &II, CXXScopeSpec &SS) { 77 if (!Next.is(tok::l_square) || Next.getLength() != 2) 78 return; 79 80 Token SecondToken = GetLookAheadToken(2); 81 if (!SecondToken.is(tok::colon) || !AreTokensAdjacent(PP, Next, SecondToken)) 82 return; 83 84 TemplateTy Template; 85 UnqualifiedId TemplateName; 86 TemplateName.setIdentifier(&II, Tok.getLocation()); 87 bool MemberOfUnknownSpecialization; 88 if (!Actions.isTemplateName(getCurScope(), SS, /*hasTemplateKeyword=*/false, 89 TemplateName, ObjectType, EnteringContext, 90 Template, MemberOfUnknownSpecialization)) 91 return; 92 93 FixDigraph(*this, PP, Next, SecondToken, tok::kw_template, 94 /*AtDigraph*/false); 95 } 96 97 /// \brief Parse global scope or nested-name-specifier if present. 98 /// 99 /// Parses a C++ global scope specifier ('::') or nested-name-specifier (which 100 /// may be preceded by '::'). Note that this routine will not parse ::new or 101 /// ::delete; it will just leave them in the token stream. 102 /// 103 /// '::'[opt] nested-name-specifier 104 /// '::' 105 /// 106 /// nested-name-specifier: 107 /// type-name '::' 108 /// namespace-name '::' 109 /// nested-name-specifier identifier '::' 110 /// nested-name-specifier 'template'[opt] simple-template-id '::' 111 /// 112 /// 113 /// \param SS the scope specifier that will be set to the parsed 114 /// nested-name-specifier (or empty) 115 /// 116 /// \param ObjectType if this nested-name-specifier is being parsed following 117 /// the "." or "->" of a member access expression, this parameter provides the 118 /// type of the object whose members are being accessed. 119 /// 120 /// \param EnteringContext whether we will be entering into the context of 121 /// the nested-name-specifier after parsing it. 122 /// 123 /// \param MayBePseudoDestructor When non-NULL, points to a flag that 124 /// indicates whether this nested-name-specifier may be part of a 125 /// pseudo-destructor name. In this case, the flag will be set false 126 /// if we don't actually end up parsing a destructor name. Moreorover, 127 /// if we do end up determining that we are parsing a destructor name, 128 /// the last component of the nested-name-specifier is not parsed as 129 /// part of the scope specifier. 130 131 /// member access expression, e.g., the \p T:: in \p p->T::m. 132 /// 133 /// \returns true if there was an error parsing a scope specifier 134 bool Parser::ParseOptionalCXXScopeSpecifier(CXXScopeSpec &SS, 135 ParsedType ObjectType, 136 bool EnteringContext, 137 bool *MayBePseudoDestructor, 138 bool IsTypename) { 139 assert(getLang().CPlusPlus && 140 "Call sites of this function should be guarded by checking for C++"); 141 142 if (Tok.is(tok::annot_cxxscope)) { 143 Actions.RestoreNestedNameSpecifierAnnotation(Tok.getAnnotationValue(), 144 Tok.getAnnotationRange(), 145 SS); 146 ConsumeToken(); 147 return false; 148 } 149 150 bool HasScopeSpecifier = false; 151 152 if (Tok.is(tok::coloncolon)) { 153 // ::new and ::delete aren't nested-name-specifiers. 154 tok::TokenKind NextKind = NextToken().getKind(); 155 if (NextKind == tok::kw_new || NextKind == tok::kw_delete) 156 return false; 157 158 // '::' - Global scope qualifier. 159 if (Actions.ActOnCXXGlobalScopeSpecifier(getCurScope(), ConsumeToken(), SS)) 160 return true; 161 162 HasScopeSpecifier = true; 163 } 164 165 bool CheckForDestructor = false; 166 if (MayBePseudoDestructor && *MayBePseudoDestructor) { 167 CheckForDestructor = true; 168 *MayBePseudoDestructor = false; 169 } 170 171 while (true) { 172 if (HasScopeSpecifier) { 173 // C++ [basic.lookup.classref]p5: 174 // If the qualified-id has the form 175 // 176 // ::class-name-or-namespace-name::... 177 // 178 // the class-name-or-namespace-name is looked up in global scope as a 179 // class-name or namespace-name. 180 // 181 // To implement this, we clear out the object type as soon as we've 182 // seen a leading '::' or part of a nested-name-specifier. 183 ObjectType = ParsedType(); 184 185 if (Tok.is(tok::code_completion)) { 186 // Code completion for a nested-name-specifier, where the code 187 // code completion token follows the '::'. 188 Actions.CodeCompleteQualifiedId(getCurScope(), SS, EnteringContext); 189 // Include code completion token into the range of the scope otherwise 190 // when we try to annotate the scope tokens the dangling code completion 191 // token will cause assertion in 192 // Preprocessor::AnnotatePreviousCachedTokens. 193 SS.setEndLoc(Tok.getLocation()); 194 cutOffParsing(); 195 return true; 196 } 197 } 198 199 // nested-name-specifier: 200 // nested-name-specifier 'template'[opt] simple-template-id '::' 201 202 // Parse the optional 'template' keyword, then make sure we have 203 // 'identifier <' after it. 204 if (Tok.is(tok::kw_template)) { 205 // If we don't have a scope specifier or an object type, this isn't a 206 // nested-name-specifier, since they aren't allowed to start with 207 // 'template'. 208 if (!HasScopeSpecifier && !ObjectType) 209 break; 210 211 TentativeParsingAction TPA(*this); 212 SourceLocation TemplateKWLoc = ConsumeToken(); 213 214 UnqualifiedId TemplateName; 215 if (Tok.is(tok::identifier)) { 216 // Consume the identifier. 217 TemplateName.setIdentifier(Tok.getIdentifierInfo(), Tok.getLocation()); 218 ConsumeToken(); 219 } else if (Tok.is(tok::kw_operator)) { 220 if (ParseUnqualifiedIdOperator(SS, EnteringContext, ObjectType, 221 TemplateName)) { 222 TPA.Commit(); 223 break; 224 } 225 226 if (TemplateName.getKind() != UnqualifiedId::IK_OperatorFunctionId && 227 TemplateName.getKind() != UnqualifiedId::IK_LiteralOperatorId) { 228 Diag(TemplateName.getSourceRange().getBegin(), 229 diag::err_id_after_template_in_nested_name_spec) 230 << TemplateName.getSourceRange(); 231 TPA.Commit(); 232 break; 233 } 234 } else { 235 TPA.Revert(); 236 break; 237 } 238 239 // If the next token is not '<', we have a qualified-id that refers 240 // to a template name, such as T::template apply, but is not a 241 // template-id. 242 if (Tok.isNot(tok::less)) { 243 TPA.Revert(); 244 break; 245 } 246 247 // Commit to parsing the template-id. 248 TPA.Commit(); 249 TemplateTy Template; 250 if (TemplateNameKind TNK = Actions.ActOnDependentTemplateName(getCurScope(), 251 TemplateKWLoc, 252 SS, 253 TemplateName, 254 ObjectType, 255 EnteringContext, 256 Template)) { 257 if (AnnotateTemplateIdToken(Template, TNK, SS, TemplateName, 258 TemplateKWLoc, false)) 259 return true; 260 } else 261 return true; 262 263 continue; 264 } 265 266 if (Tok.is(tok::annot_template_id) && NextToken().is(tok::coloncolon)) { 267 // We have 268 // 269 // simple-template-id '::' 270 // 271 // So we need to check whether the simple-template-id is of the 272 // right kind (it should name a type or be dependent), and then 273 // convert it into a type within the nested-name-specifier. 274 TemplateIdAnnotation *TemplateId = takeTemplateIdAnnotation(Tok); 275 if (CheckForDestructor && GetLookAheadToken(2).is(tok::tilde)) { 276 *MayBePseudoDestructor = true; 277 return false; 278 } 279 280 // Consume the template-id token. 281 ConsumeToken(); 282 283 assert(Tok.is(tok::coloncolon) && "NextToken() not working properly!"); 284 SourceLocation CCLoc = ConsumeToken(); 285 286 if (!HasScopeSpecifier) 287 HasScopeSpecifier = true; 288 289 ASTTemplateArgsPtr TemplateArgsPtr(Actions, 290 TemplateId->getTemplateArgs(), 291 TemplateId->NumArgs); 292 293 if (Actions.ActOnCXXNestedNameSpecifier(getCurScope(), 294 /*FIXME:*/SourceLocation(), 295 SS, 296 TemplateId->Template, 297 TemplateId->TemplateNameLoc, 298 TemplateId->LAngleLoc, 299 TemplateArgsPtr, 300 TemplateId->RAngleLoc, 301 CCLoc, 302 EnteringContext)) { 303 SourceLocation StartLoc 304 = SS.getBeginLoc().isValid()? SS.getBeginLoc() 305 : TemplateId->TemplateNameLoc; 306 SS.SetInvalid(SourceRange(StartLoc, CCLoc)); 307 } 308 309 continue; 310 } 311 312 313 // The rest of the nested-name-specifier possibilities start with 314 // tok::identifier. 315 if (Tok.isNot(tok::identifier)) 316 break; 317 318 IdentifierInfo &II = *Tok.getIdentifierInfo(); 319 320 // nested-name-specifier: 321 // type-name '::' 322 // namespace-name '::' 323 // nested-name-specifier identifier '::' 324 Token Next = NextToken(); 325 326 // If we get foo:bar, this is almost certainly a typo for foo::bar. Recover 327 // and emit a fixit hint for it. 328 if (Next.is(tok::colon) && !ColonIsSacred) { 329 if (Actions.IsInvalidUnlessNestedName(getCurScope(), SS, II, 330 Tok.getLocation(), 331 Next.getLocation(), ObjectType, 332 EnteringContext) && 333 // If the token after the colon isn't an identifier, it's still an 334 // error, but they probably meant something else strange so don't 335 // recover like this. 336 PP.LookAhead(1).is(tok::identifier)) { 337 Diag(Next, diag::err_unexected_colon_in_nested_name_spec) 338 << FixItHint::CreateReplacement(Next.getLocation(), "::"); 339 340 // Recover as if the user wrote '::'. 341 Next.setKind(tok::coloncolon); 342 } 343 } 344 345 if (Next.is(tok::coloncolon)) { 346 if (CheckForDestructor && GetLookAheadToken(2).is(tok::tilde) && 347 !Actions.isNonTypeNestedNameSpecifier(getCurScope(), SS, Tok.getLocation(), 348 II, ObjectType)) { 349 *MayBePseudoDestructor = true; 350 return false; 351 } 352 353 // We have an identifier followed by a '::'. Lookup this name 354 // as the name in a nested-name-specifier. 355 SourceLocation IdLoc = ConsumeToken(); 356 assert((Tok.is(tok::coloncolon) || Tok.is(tok::colon)) && 357 "NextToken() not working properly!"); 358 SourceLocation CCLoc = ConsumeToken(); 359 360 HasScopeSpecifier = true; 361 if (Actions.ActOnCXXNestedNameSpecifier(getCurScope(), II, IdLoc, CCLoc, 362 ObjectType, EnteringContext, SS)) 363 SS.SetInvalid(SourceRange(IdLoc, CCLoc)); 364 365 continue; 366 } 367 368 CheckForTemplateAndDigraph(Next, ObjectType, EnteringContext, II, SS); 369 370 // nested-name-specifier: 371 // type-name '<' 372 if (Next.is(tok::less)) { 373 TemplateTy Template; 374 UnqualifiedId TemplateName; 375 TemplateName.setIdentifier(&II, Tok.getLocation()); 376 bool MemberOfUnknownSpecialization; 377 if (TemplateNameKind TNK = Actions.isTemplateName(getCurScope(), SS, 378 /*hasTemplateKeyword=*/false, 379 TemplateName, 380 ObjectType, 381 EnteringContext, 382 Template, 383 MemberOfUnknownSpecialization)) { 384 // We have found a template name, so annotate this this token 385 // with a template-id annotation. We do not permit the 386 // template-id to be translated into a type annotation, 387 // because some clients (e.g., the parsing of class template 388 // specializations) still want to see the original template-id 389 // token. 390 ConsumeToken(); 391 if (AnnotateTemplateIdToken(Template, TNK, SS, TemplateName, 392 SourceLocation(), false)) 393 return true; 394 continue; 395 } 396 397 if (MemberOfUnknownSpecialization && (ObjectType || SS.isSet()) && 398 (IsTypename || IsTemplateArgumentList(1))) { 399 // We have something like t::getAs<T>, where getAs is a 400 // member of an unknown specialization. However, this will only 401 // parse correctly as a template, so suggest the keyword 'template' 402 // before 'getAs' and treat this as a dependent template name. 403 unsigned DiagID = diag::err_missing_dependent_template_keyword; 404 if (getLang().MicrosoftExt) 405 DiagID = diag::warn_missing_dependent_template_keyword; 406 407 Diag(Tok.getLocation(), DiagID) 408 << II.getName() 409 << FixItHint::CreateInsertion(Tok.getLocation(), "template "); 410 411 if (TemplateNameKind TNK 412 = Actions.ActOnDependentTemplateName(getCurScope(), 413 Tok.getLocation(), SS, 414 TemplateName, ObjectType, 415 EnteringContext, Template)) { 416 // Consume the identifier. 417 ConsumeToken(); 418 if (AnnotateTemplateIdToken(Template, TNK, SS, TemplateName, 419 SourceLocation(), false)) 420 return true; 421 } 422 else 423 return true; 424 425 continue; 426 } 427 } 428 429 // We don't have any tokens that form the beginning of a 430 // nested-name-specifier, so we're done. 431 break; 432 } 433 434 // Even if we didn't see any pieces of a nested-name-specifier, we 435 // still check whether there is a tilde in this position, which 436 // indicates a potential pseudo-destructor. 437 if (CheckForDestructor && Tok.is(tok::tilde)) 438 *MayBePseudoDestructor = true; 439 440 return false; 441 } 442 443 /// ParseCXXIdExpression - Handle id-expression. 444 /// 445 /// id-expression: 446 /// unqualified-id 447 /// qualified-id 448 /// 449 /// qualified-id: 450 /// '::'[opt] nested-name-specifier 'template'[opt] unqualified-id 451 /// '::' identifier 452 /// '::' operator-function-id 453 /// '::' template-id 454 /// 455 /// NOTE: The standard specifies that, for qualified-id, the parser does not 456 /// expect: 457 /// 458 /// '::' conversion-function-id 459 /// '::' '~' class-name 460 /// 461 /// This may cause a slight inconsistency on diagnostics: 462 /// 463 /// class C {}; 464 /// namespace A {} 465 /// void f() { 466 /// :: A :: ~ C(); // Some Sema error about using destructor with a 467 /// // namespace. 468 /// :: ~ C(); // Some Parser error like 'unexpected ~'. 469 /// } 470 /// 471 /// We simplify the parser a bit and make it work like: 472 /// 473 /// qualified-id: 474 /// '::'[opt] nested-name-specifier 'template'[opt] unqualified-id 475 /// '::' unqualified-id 476 /// 477 /// That way Sema can handle and report similar errors for namespaces and the 478 /// global scope. 479 /// 480 /// The isAddressOfOperand parameter indicates that this id-expression is a 481 /// direct operand of the address-of operator. This is, besides member contexts, 482 /// the only place where a qualified-id naming a non-static class member may 483 /// appear. 484 /// 485 ExprResult Parser::ParseCXXIdExpression(bool isAddressOfOperand) { 486 // qualified-id: 487 // '::'[opt] nested-name-specifier 'template'[opt] unqualified-id 488 // '::' unqualified-id 489 // 490 CXXScopeSpec SS; 491 ParseOptionalCXXScopeSpecifier(SS, ParsedType(), false); 492 493 UnqualifiedId Name; 494 if (ParseUnqualifiedId(SS, 495 /*EnteringContext=*/false, 496 /*AllowDestructorName=*/false, 497 /*AllowConstructorName=*/false, 498 /*ObjectType=*/ ParsedType(), 499 Name)) 500 return ExprError(); 501 502 // This is only the direct operand of an & operator if it is not 503 // followed by a postfix-expression suffix. 504 if (isAddressOfOperand && isPostfixExpressionSuffixStart()) 505 isAddressOfOperand = false; 506 507 return Actions.ActOnIdExpression(getCurScope(), SS, Name, Tok.is(tok::l_paren), 508 isAddressOfOperand); 509 510 } 511 512 /// ParseLambdaExpression - Parse a C++0x lambda expression. 513 /// 514 /// lambda-expression: 515 /// lambda-introducer lambda-declarator[opt] compound-statement 516 /// 517 /// lambda-introducer: 518 /// '[' lambda-capture[opt] ']' 519 /// 520 /// lambda-capture: 521 /// capture-default 522 /// capture-list 523 /// capture-default ',' capture-list 524 /// 525 /// capture-default: 526 /// '&' 527 /// '=' 528 /// 529 /// capture-list: 530 /// capture 531 /// capture-list ',' capture 532 /// 533 /// capture: 534 /// identifier 535 /// '&' identifier 536 /// 'this' 537 /// 538 /// lambda-declarator: 539 /// '(' parameter-declaration-clause ')' attribute-specifier[opt] 540 /// 'mutable'[opt] exception-specification[opt] 541 /// trailing-return-type[opt] 542 /// 543 ExprResult Parser::ParseLambdaExpression() { 544 // Parse lambda-introducer. 545 LambdaIntroducer Intro; 546 547 llvm::Optional<unsigned> DiagID(ParseLambdaIntroducer(Intro)); 548 if (DiagID) { 549 Diag(Tok, DiagID.getValue()); 550 SkipUntil(tok::r_square); 551 } 552 553 return ParseLambdaExpressionAfterIntroducer(Intro); 554 } 555 556 /// TryParseLambdaExpression - Use lookahead and potentially tentative 557 /// parsing to determine if we are looking at a C++0x lambda expression, and parse 558 /// it if we are. 559 /// 560 /// If we are not looking at a lambda expression, returns ExprError(). 561 ExprResult Parser::TryParseLambdaExpression() { 562 assert(getLang().CPlusPlus0x 563 && Tok.is(tok::l_square) 564 && "Not at the start of a possible lambda expression."); 565 566 const Token Next = NextToken(), After = GetLookAheadToken(2); 567 568 // If lookahead indicates this is a lambda... 569 if (Next.is(tok::r_square) || // [] 570 Next.is(tok::equal) || // [= 571 (Next.is(tok::amp) && // [&] or [&, 572 (After.is(tok::r_square) || 573 After.is(tok::comma))) || 574 (Next.is(tok::identifier) && // [identifier] 575 After.is(tok::r_square))) { 576 return ParseLambdaExpression(); 577 } 578 579 // If lookahead indicates this is an Objective-C message... 580 if (Next.is(tok::identifier) && After.is(tok::identifier)) { 581 return ExprError(); 582 } 583 584 LambdaIntroducer Intro; 585 if (TryParseLambdaIntroducer(Intro)) 586 return ExprError(); 587 return ParseLambdaExpressionAfterIntroducer(Intro); 588 } 589 590 /// ParseLambdaExpression - Parse a lambda introducer. 591 /// 592 /// Returns a DiagnosticID if it hit something unexpected. 593 llvm::Optional<unsigned> Parser::ParseLambdaIntroducer(LambdaIntroducer &Intro) { 594 typedef llvm::Optional<unsigned> DiagResult; 595 596 assert(Tok.is(tok::l_square) && "Lambda expressions begin with '['."); 597 BalancedDelimiterTracker T(*this, tok::l_square); 598 T.consumeOpen(); 599 600 Intro.Range.setBegin(T.getOpenLocation()); 601 602 bool first = true; 603 604 // Parse capture-default. 605 if (Tok.is(tok::amp) && 606 (NextToken().is(tok::comma) || NextToken().is(tok::r_square))) { 607 Intro.Default = LCD_ByRef; 608 ConsumeToken(); 609 first = false; 610 } else if (Tok.is(tok::equal)) { 611 Intro.Default = LCD_ByCopy; 612 ConsumeToken(); 613 first = false; 614 } 615 616 while (Tok.isNot(tok::r_square)) { 617 if (!first) { 618 if (Tok.isNot(tok::comma)) 619 return DiagResult(diag::err_expected_comma_or_rsquare); 620 ConsumeToken(); 621 } 622 623 first = false; 624 625 // Parse capture. 626 LambdaCaptureKind Kind = LCK_ByCopy; 627 SourceLocation Loc; 628 IdentifierInfo* Id = 0; 629 630 if (Tok.is(tok::kw_this)) { 631 Kind = LCK_This; 632 Loc = ConsumeToken(); 633 } else { 634 if (Tok.is(tok::amp)) { 635 Kind = LCK_ByRef; 636 ConsumeToken(); 637 } 638 639 if (Tok.is(tok::identifier)) { 640 Id = Tok.getIdentifierInfo(); 641 Loc = ConsumeToken(); 642 } else if (Tok.is(tok::kw_this)) { 643 // FIXME: If we want to suggest a fixit here, will need to return more 644 // than just DiagnosticID. Perhaps full DiagnosticBuilder that can be 645 // Clear()ed to prevent emission in case of tentative parsing? 646 return DiagResult(diag::err_this_captured_by_reference); 647 } else { 648 return DiagResult(diag::err_expected_capture); 649 } 650 } 651 652 Intro.addCapture(Kind, Loc, Id); 653 } 654 655 T.consumeClose(); 656 Intro.Range.setEnd(T.getCloseLocation()); 657 658 return DiagResult(); 659 } 660 661 /// TryParseLambdaExpression - Tentatively parse a lambda introducer. 662 /// 663 /// Returns true if it hit something unexpected. 664 bool Parser::TryParseLambdaIntroducer(LambdaIntroducer &Intro) { 665 TentativeParsingAction PA(*this); 666 667 llvm::Optional<unsigned> DiagID(ParseLambdaIntroducer(Intro)); 668 669 if (DiagID) { 670 PA.Revert(); 671 return true; 672 } 673 674 PA.Commit(); 675 return false; 676 } 677 678 /// ParseLambdaExpressionAfterIntroducer - Parse the rest of a lambda 679 /// expression. 680 ExprResult Parser::ParseLambdaExpressionAfterIntroducer( 681 LambdaIntroducer &Intro) { 682 Diag(Intro.Range.getBegin(), diag::warn_cxx98_compat_lambda); 683 684 // Parse lambda-declarator[opt]. 685 DeclSpec DS(AttrFactory); 686 Declarator D(DS, Declarator::PrototypeContext); 687 688 if (Tok.is(tok::l_paren)) { 689 ParseScope PrototypeScope(this, 690 Scope::FunctionPrototypeScope | 691 Scope::DeclScope); 692 693 SourceLocation DeclLoc, DeclEndLoc; 694 BalancedDelimiterTracker T(*this, tok::l_paren); 695 T.consumeOpen(); 696 DeclLoc = T.getOpenLocation(); 697 698 // Parse parameter-declaration-clause. 699 ParsedAttributes Attr(AttrFactory); 700 llvm::SmallVector<DeclaratorChunk::ParamInfo, 16> ParamInfo; 701 SourceLocation EllipsisLoc; 702 703 if (Tok.isNot(tok::r_paren)) 704 ParseParameterDeclarationClause(D, Attr, ParamInfo, EllipsisLoc); 705 706 T.consumeClose(); 707 DeclEndLoc = T.getCloseLocation(); 708 709 // Parse 'mutable'[opt]. 710 SourceLocation MutableLoc; 711 if (Tok.is(tok::kw_mutable)) { 712 MutableLoc = ConsumeToken(); 713 DeclEndLoc = MutableLoc; 714 } 715 716 // Parse exception-specification[opt]. 717 ExceptionSpecificationType ESpecType = EST_None; 718 SourceRange ESpecRange; 719 llvm::SmallVector<ParsedType, 2> DynamicExceptions; 720 llvm::SmallVector<SourceRange, 2> DynamicExceptionRanges; 721 ExprResult NoexceptExpr; 722 ESpecType = MaybeParseExceptionSpecification(ESpecRange, 723 DynamicExceptions, 724 DynamicExceptionRanges, 725 NoexceptExpr); 726 727 if (ESpecType != EST_None) 728 DeclEndLoc = ESpecRange.getEnd(); 729 730 // Parse attribute-specifier[opt]. 731 MaybeParseCXX0XAttributes(Attr, &DeclEndLoc); 732 733 // Parse trailing-return-type[opt]. 734 ParsedType TrailingReturnType; 735 if (Tok.is(tok::arrow)) { 736 SourceRange Range; 737 TrailingReturnType = ParseTrailingReturnType(Range).get(); 738 if (Range.getEnd().isValid()) 739 DeclEndLoc = Range.getEnd(); 740 } 741 742 PrototypeScope.Exit(); 743 744 D.AddTypeInfo(DeclaratorChunk::getFunction(/*hasProto=*/true, 745 /*isVariadic=*/EllipsisLoc.isValid(), 746 EllipsisLoc, 747 ParamInfo.data(), ParamInfo.size(), 748 DS.getTypeQualifiers(), 749 /*RefQualifierIsLValueRef=*/true, 750 /*RefQualifierLoc=*/SourceLocation(), 751 /*ConstQualifierLoc=*/SourceLocation(), 752 /*VolatileQualifierLoc=*/SourceLocation(), 753 MutableLoc, 754 ESpecType, ESpecRange.getBegin(), 755 DynamicExceptions.data(), 756 DynamicExceptionRanges.data(), 757 DynamicExceptions.size(), 758 NoexceptExpr.isUsable() ? 759 NoexceptExpr.get() : 0, 760 DeclLoc, DeclEndLoc, D, 761 TrailingReturnType), 762 Attr, DeclEndLoc); 763 } 764 765 // Parse compound-statement. 766 if (Tok.is(tok::l_brace)) { 767 // FIXME: Rename BlockScope -> ClosureScope if we decide to continue using 768 // it. 769 ParseScope BodyScope(this, Scope::BlockScope | Scope::FnScope | 770 Scope::BreakScope | Scope::ContinueScope | 771 Scope::DeclScope); 772 773 StmtResult Stmt(ParseCompoundStatementBody()); 774 775 BodyScope.Exit(); 776 } else { 777 Diag(Tok, diag::err_expected_lambda_body); 778 } 779 780 return ExprEmpty(); 781 } 782 783 /// ParseCXXCasts - This handles the various ways to cast expressions to another 784 /// type. 785 /// 786 /// postfix-expression: [C++ 5.2p1] 787 /// 'dynamic_cast' '<' type-name '>' '(' expression ')' 788 /// 'static_cast' '<' type-name '>' '(' expression ')' 789 /// 'reinterpret_cast' '<' type-name '>' '(' expression ')' 790 /// 'const_cast' '<' type-name '>' '(' expression ')' 791 /// 792 ExprResult Parser::ParseCXXCasts() { 793 tok::TokenKind Kind = Tok.getKind(); 794 const char *CastName = 0; // For error messages 795 796 switch (Kind) { 797 default: llvm_unreachable("Unknown C++ cast!"); 798 case tok::kw_const_cast: CastName = "const_cast"; break; 799 case tok::kw_dynamic_cast: CastName = "dynamic_cast"; break; 800 case tok::kw_reinterpret_cast: CastName = "reinterpret_cast"; break; 801 case tok::kw_static_cast: CastName = "static_cast"; break; 802 } 803 804 SourceLocation OpLoc = ConsumeToken(); 805 SourceLocation LAngleBracketLoc = Tok.getLocation(); 806 807 // Check for "<::" which is parsed as "[:". If found, fix token stream, 808 // diagnose error, suggest fix, and recover parsing. 809 Token Next = NextToken(); 810 if (Tok.is(tok::l_square) && Tok.getLength() == 2 && Next.is(tok::colon) && 811 AreTokensAdjacent(PP, Tok, Next)) 812 FixDigraph(*this, PP, Tok, Next, Kind, /*AtDigraph*/true); 813 814 if (ExpectAndConsume(tok::less, diag::err_expected_less_after, CastName)) 815 return ExprError(); 816 817 // Parse the common declaration-specifiers piece. 818 DeclSpec DS(AttrFactory); 819 ParseSpecifierQualifierList(DS); 820 821 // Parse the abstract-declarator, if present. 822 Declarator DeclaratorInfo(DS, Declarator::TypeNameContext); 823 ParseDeclarator(DeclaratorInfo); 824 825 SourceLocation RAngleBracketLoc = Tok.getLocation(); 826 827 if (ExpectAndConsume(tok::greater, diag::err_expected_greater)) 828 return ExprError(Diag(LAngleBracketLoc, diag::note_matching) << "<"); 829 830 SourceLocation LParenLoc, RParenLoc; 831 BalancedDelimiterTracker T(*this, tok::l_paren); 832 833 if (T.expectAndConsume(diag::err_expected_lparen_after, CastName)) 834 return ExprError(); 835 836 ExprResult Result = ParseExpression(); 837 838 // Match the ')'. 839 T.consumeClose(); 840 841 if (!Result.isInvalid() && !DeclaratorInfo.isInvalidType()) 842 Result = Actions.ActOnCXXNamedCast(OpLoc, Kind, 843 LAngleBracketLoc, DeclaratorInfo, 844 RAngleBracketLoc, 845 T.getOpenLocation(), Result.take(), 846 T.getCloseLocation()); 847 848 return move(Result); 849 } 850 851 /// ParseCXXTypeid - This handles the C++ typeid expression. 852 /// 853 /// postfix-expression: [C++ 5.2p1] 854 /// 'typeid' '(' expression ')' 855 /// 'typeid' '(' type-id ')' 856 /// 857 ExprResult Parser::ParseCXXTypeid() { 858 assert(Tok.is(tok::kw_typeid) && "Not 'typeid'!"); 859 860 SourceLocation OpLoc = ConsumeToken(); 861 SourceLocation LParenLoc, RParenLoc; 862 BalancedDelimiterTracker T(*this, tok::l_paren); 863 864 // typeid expressions are always parenthesized. 865 if (T.expectAndConsume(diag::err_expected_lparen_after, "typeid")) 866 return ExprError(); 867 LParenLoc = T.getOpenLocation(); 868 869 ExprResult Result; 870 871 if (isTypeIdInParens()) { 872 TypeResult Ty = ParseTypeName(); 873 874 // Match the ')'. 875 T.consumeClose(); 876 RParenLoc = T.getCloseLocation(); 877 if (Ty.isInvalid() || RParenLoc.isInvalid()) 878 return ExprError(); 879 880 Result = Actions.ActOnCXXTypeid(OpLoc, LParenLoc, /*isType=*/true, 881 Ty.get().getAsOpaquePtr(), RParenLoc); 882 } else { 883 // C++0x [expr.typeid]p3: 884 // When typeid is applied to an expression other than an lvalue of a 885 // polymorphic class type [...] The expression is an unevaluated 886 // operand (Clause 5). 887 // 888 // Note that we can't tell whether the expression is an lvalue of a 889 // polymorphic class type until after we've parsed the expression, so 890 // we the expression is potentially potentially evaluated. 891 EnterExpressionEvaluationContext Unevaluated(Actions, 892 Sema::PotentiallyPotentiallyEvaluated); 893 Result = ParseExpression(); 894 895 // Match the ')'. 896 if (Result.isInvalid()) 897 SkipUntil(tok::r_paren); 898 else { 899 T.consumeClose(); 900 RParenLoc = T.getCloseLocation(); 901 if (RParenLoc.isInvalid()) 902 return ExprError(); 903 904 Result = Actions.ActOnCXXTypeid(OpLoc, LParenLoc, /*isType=*/false, 905 Result.release(), RParenLoc); 906 } 907 } 908 909 return move(Result); 910 } 911 912 /// ParseCXXUuidof - This handles the Microsoft C++ __uuidof expression. 913 /// 914 /// '__uuidof' '(' expression ')' 915 /// '__uuidof' '(' type-id ')' 916 /// 917 ExprResult Parser::ParseCXXUuidof() { 918 assert(Tok.is(tok::kw___uuidof) && "Not '__uuidof'!"); 919 920 SourceLocation OpLoc = ConsumeToken(); 921 BalancedDelimiterTracker T(*this, tok::l_paren); 922 923 // __uuidof expressions are always parenthesized. 924 if (T.expectAndConsume(diag::err_expected_lparen_after, "__uuidof")) 925 return ExprError(); 926 927 ExprResult Result; 928 929 if (isTypeIdInParens()) { 930 TypeResult Ty = ParseTypeName(); 931 932 // Match the ')'. 933 T.consumeClose(); 934 935 if (Ty.isInvalid()) 936 return ExprError(); 937 938 Result = Actions.ActOnCXXUuidof(OpLoc, T.getOpenLocation(), /*isType=*/true, 939 Ty.get().getAsOpaquePtr(), 940 T.getCloseLocation()); 941 } else { 942 EnterExpressionEvaluationContext Unevaluated(Actions, Sema::Unevaluated); 943 Result = ParseExpression(); 944 945 // Match the ')'. 946 if (Result.isInvalid()) 947 SkipUntil(tok::r_paren); 948 else { 949 T.consumeClose(); 950 951 Result = Actions.ActOnCXXUuidof(OpLoc, T.getOpenLocation(), 952 /*isType=*/false, 953 Result.release(), T.getCloseLocation()); 954 } 955 } 956 957 return move(Result); 958 } 959 960 /// \brief Parse a C++ pseudo-destructor expression after the base, 961 /// . or -> operator, and nested-name-specifier have already been 962 /// parsed. 963 /// 964 /// postfix-expression: [C++ 5.2] 965 /// postfix-expression . pseudo-destructor-name 966 /// postfix-expression -> pseudo-destructor-name 967 /// 968 /// pseudo-destructor-name: 969 /// ::[opt] nested-name-specifier[opt] type-name :: ~type-name 970 /// ::[opt] nested-name-specifier template simple-template-id :: 971 /// ~type-name 972 /// ::[opt] nested-name-specifier[opt] ~type-name 973 /// 974 ExprResult 975 Parser::ParseCXXPseudoDestructor(ExprArg Base, SourceLocation OpLoc, 976 tok::TokenKind OpKind, 977 CXXScopeSpec &SS, 978 ParsedType ObjectType) { 979 // We're parsing either a pseudo-destructor-name or a dependent 980 // member access that has the same form as a 981 // pseudo-destructor-name. We parse both in the same way and let 982 // the action model sort them out. 983 // 984 // Note that the ::[opt] nested-name-specifier[opt] has already 985 // been parsed, and if there was a simple-template-id, it has 986 // been coalesced into a template-id annotation token. 987 UnqualifiedId FirstTypeName; 988 SourceLocation CCLoc; 989 if (Tok.is(tok::identifier)) { 990 FirstTypeName.setIdentifier(Tok.getIdentifierInfo(), Tok.getLocation()); 991 ConsumeToken(); 992 assert(Tok.is(tok::coloncolon) &&"ParseOptionalCXXScopeSpecifier fail"); 993 CCLoc = ConsumeToken(); 994 } else if (Tok.is(tok::annot_template_id)) { 995 FirstTypeName.setTemplateId( 996 (TemplateIdAnnotation *)Tok.getAnnotationValue()); 997 ConsumeToken(); 998 assert(Tok.is(tok::coloncolon) &&"ParseOptionalCXXScopeSpecifier fail"); 999 CCLoc = ConsumeToken(); 1000 } else { 1001 FirstTypeName.setIdentifier(0, SourceLocation()); 1002 } 1003 1004 // Parse the tilde. 1005 assert(Tok.is(tok::tilde) && "ParseOptionalCXXScopeSpecifier fail"); 1006 SourceLocation TildeLoc = ConsumeToken(); 1007 if (!Tok.is(tok::identifier)) { 1008 Diag(Tok, diag::err_destructor_tilde_identifier); 1009 return ExprError(); 1010 } 1011 1012 // Parse the second type. 1013 UnqualifiedId SecondTypeName; 1014 IdentifierInfo *Name = Tok.getIdentifierInfo(); 1015 SourceLocation NameLoc = ConsumeToken(); 1016 SecondTypeName.setIdentifier(Name, NameLoc); 1017 1018 // If there is a '<', the second type name is a template-id. Parse 1019 // it as such. 1020 if (Tok.is(tok::less) && 1021 ParseUnqualifiedIdTemplateId(SS, Name, NameLoc, false, ObjectType, 1022 SecondTypeName, /*AssumeTemplateName=*/true, 1023 /*TemplateKWLoc*/SourceLocation())) 1024 return ExprError(); 1025 1026 return Actions.ActOnPseudoDestructorExpr(getCurScope(), Base, 1027 OpLoc, OpKind, 1028 SS, FirstTypeName, CCLoc, 1029 TildeLoc, SecondTypeName, 1030 Tok.is(tok::l_paren)); 1031 } 1032 1033 /// ParseCXXBoolLiteral - This handles the C++ Boolean literals. 1034 /// 1035 /// boolean-literal: [C++ 2.13.5] 1036 /// 'true' 1037 /// 'false' 1038 ExprResult Parser::ParseCXXBoolLiteral() { 1039 tok::TokenKind Kind = Tok.getKind(); 1040 return Actions.ActOnCXXBoolLiteral(ConsumeToken(), Kind); 1041 } 1042 1043 /// ParseThrowExpression - This handles the C++ throw expression. 1044 /// 1045 /// throw-expression: [C++ 15] 1046 /// 'throw' assignment-expression[opt] 1047 ExprResult Parser::ParseThrowExpression() { 1048 assert(Tok.is(tok::kw_throw) && "Not throw!"); 1049 SourceLocation ThrowLoc = ConsumeToken(); // Eat the throw token. 1050 1051 // If the current token isn't the start of an assignment-expression, 1052 // then the expression is not present. This handles things like: 1053 // "C ? throw : (void)42", which is crazy but legal. 1054 switch (Tok.getKind()) { // FIXME: move this predicate somewhere common. 1055 case tok::semi: 1056 case tok::r_paren: 1057 case tok::r_square: 1058 case tok::r_brace: 1059 case tok::colon: 1060 case tok::comma: 1061 return Actions.ActOnCXXThrow(getCurScope(), ThrowLoc, 0); 1062 1063 default: 1064 ExprResult Expr(ParseAssignmentExpression()); 1065 if (Expr.isInvalid()) return move(Expr); 1066 return Actions.ActOnCXXThrow(getCurScope(), ThrowLoc, Expr.take()); 1067 } 1068 } 1069 1070 /// ParseCXXThis - This handles the C++ 'this' pointer. 1071 /// 1072 /// C++ 9.3.2: In the body of a non-static member function, the keyword this is 1073 /// a non-lvalue expression whose value is the address of the object for which 1074 /// the function is called. 1075 ExprResult Parser::ParseCXXThis() { 1076 assert(Tok.is(tok::kw_this) && "Not 'this'!"); 1077 SourceLocation ThisLoc = ConsumeToken(); 1078 return Actions.ActOnCXXThis(ThisLoc); 1079 } 1080 1081 /// ParseCXXTypeConstructExpression - Parse construction of a specified type. 1082 /// Can be interpreted either as function-style casting ("int(x)") 1083 /// or class type construction ("ClassType(x,y,z)") 1084 /// or creation of a value-initialized type ("int()"). 1085 /// See [C++ 5.2.3]. 1086 /// 1087 /// postfix-expression: [C++ 5.2p1] 1088 /// simple-type-specifier '(' expression-list[opt] ')' 1089 /// [C++0x] simple-type-specifier braced-init-list 1090 /// typename-specifier '(' expression-list[opt] ')' 1091 /// [C++0x] typename-specifier braced-init-list 1092 /// 1093 ExprResult 1094 Parser::ParseCXXTypeConstructExpression(const DeclSpec &DS) { 1095 Declarator DeclaratorInfo(DS, Declarator::TypeNameContext); 1096 ParsedType TypeRep = Actions.ActOnTypeName(getCurScope(), DeclaratorInfo).get(); 1097 1098 assert((Tok.is(tok::l_paren) || 1099 (getLang().CPlusPlus0x && Tok.is(tok::l_brace))) 1100 && "Expected '(' or '{'!"); 1101 1102 if (Tok.is(tok::l_brace)) { 1103 1104 // FIXME: Convert to a proper type construct expression. 1105 return ParseBraceInitializer(); 1106 1107 } else { 1108 GreaterThanIsOperatorScope G(GreaterThanIsOperator, true); 1109 1110 BalancedDelimiterTracker T(*this, tok::l_paren); 1111 T.consumeOpen(); 1112 1113 ExprVector Exprs(Actions); 1114 CommaLocsTy CommaLocs; 1115 1116 if (Tok.isNot(tok::r_paren)) { 1117 if (ParseExpressionList(Exprs, CommaLocs)) { 1118 SkipUntil(tok::r_paren); 1119 return ExprError(); 1120 } 1121 } 1122 1123 // Match the ')'. 1124 T.consumeClose(); 1125 1126 // TypeRep could be null, if it references an invalid typedef. 1127 if (!TypeRep) 1128 return ExprError(); 1129 1130 assert((Exprs.size() == 0 || Exprs.size()-1 == CommaLocs.size())&& 1131 "Unexpected number of commas!"); 1132 return Actions.ActOnCXXTypeConstructExpr(TypeRep, T.getOpenLocation(), 1133 move_arg(Exprs), 1134 T.getCloseLocation()); 1135 } 1136 } 1137 1138 /// ParseCXXCondition - if/switch/while condition expression. 1139 /// 1140 /// condition: 1141 /// expression 1142 /// type-specifier-seq declarator '=' assignment-expression 1143 /// [GNU] type-specifier-seq declarator simple-asm-expr[opt] attributes[opt] 1144 /// '=' assignment-expression 1145 /// 1146 /// \param ExprResult if the condition was parsed as an expression, the 1147 /// parsed expression. 1148 /// 1149 /// \param DeclResult if the condition was parsed as a declaration, the 1150 /// parsed declaration. 1151 /// 1152 /// \param Loc The location of the start of the statement that requires this 1153 /// condition, e.g., the "for" in a for loop. 1154 /// 1155 /// \param ConvertToBoolean Whether the condition expression should be 1156 /// converted to a boolean value. 1157 /// 1158 /// \returns true if there was a parsing, false otherwise. 1159 bool Parser::ParseCXXCondition(ExprResult &ExprOut, 1160 Decl *&DeclOut, 1161 SourceLocation Loc, 1162 bool ConvertToBoolean) { 1163 if (Tok.is(tok::code_completion)) { 1164 Actions.CodeCompleteOrdinaryName(getCurScope(), Sema::PCC_Condition); 1165 cutOffParsing(); 1166 return true; 1167 } 1168 1169 if (!isCXXConditionDeclaration()) { 1170 // Parse the expression. 1171 ExprOut = ParseExpression(); // expression 1172 DeclOut = 0; 1173 if (ExprOut.isInvalid()) 1174 return true; 1175 1176 // If required, convert to a boolean value. 1177 if (ConvertToBoolean) 1178 ExprOut 1179 = Actions.ActOnBooleanCondition(getCurScope(), Loc, ExprOut.get()); 1180 return ExprOut.isInvalid(); 1181 } 1182 1183 // type-specifier-seq 1184 DeclSpec DS(AttrFactory); 1185 ParseSpecifierQualifierList(DS); 1186 1187 // declarator 1188 Declarator DeclaratorInfo(DS, Declarator::ConditionContext); 1189 ParseDeclarator(DeclaratorInfo); 1190 1191 // simple-asm-expr[opt] 1192 if (Tok.is(tok::kw_asm)) { 1193 SourceLocation Loc; 1194 ExprResult AsmLabel(ParseSimpleAsm(&Loc)); 1195 if (AsmLabel.isInvalid()) { 1196 SkipUntil(tok::semi); 1197 return true; 1198 } 1199 DeclaratorInfo.setAsmLabel(AsmLabel.release()); 1200 DeclaratorInfo.SetRangeEnd(Loc); 1201 } 1202 1203 // If attributes are present, parse them. 1204 MaybeParseGNUAttributes(DeclaratorInfo); 1205 1206 // Type-check the declaration itself. 1207 DeclResult Dcl = Actions.ActOnCXXConditionDeclaration(getCurScope(), 1208 DeclaratorInfo); 1209 DeclOut = Dcl.get(); 1210 ExprOut = ExprError(); 1211 1212 // '=' assignment-expression 1213 if (isTokenEqualOrMistypedEqualEqual( 1214 diag::err_invalid_equalequal_after_declarator)) { 1215 ConsumeToken(); 1216 ExprResult AssignExpr(ParseAssignmentExpression()); 1217 if (!AssignExpr.isInvalid()) 1218 Actions.AddInitializerToDecl(DeclOut, AssignExpr.take(), false, 1219 DS.getTypeSpecType() == DeclSpec::TST_auto); 1220 } else { 1221 // FIXME: C++0x allows a braced-init-list 1222 Diag(Tok, diag::err_expected_equal_after_declarator); 1223 } 1224 1225 // FIXME: Build a reference to this declaration? Convert it to bool? 1226 // (This is currently handled by Sema). 1227 1228 Actions.FinalizeDeclaration(DeclOut); 1229 1230 return false; 1231 } 1232 1233 /// \brief Determine whether the current token starts a C++ 1234 /// simple-type-specifier. 1235 bool Parser::isCXXSimpleTypeSpecifier() const { 1236 switch (Tok.getKind()) { 1237 case tok::annot_typename: 1238 case tok::kw_short: 1239 case tok::kw_long: 1240 case tok::kw___int64: 1241 case tok::kw_signed: 1242 case tok::kw_unsigned: 1243 case tok::kw_void: 1244 case tok::kw_char: 1245 case tok::kw_int: 1246 case tok::kw_half: 1247 case tok::kw_float: 1248 case tok::kw_double: 1249 case tok::kw_wchar_t: 1250 case tok::kw_char16_t: 1251 case tok::kw_char32_t: 1252 case tok::kw_bool: 1253 case tok::kw_decltype: 1254 case tok::kw_typeof: 1255 case tok::kw___underlying_type: 1256 return true; 1257 1258 default: 1259 break; 1260 } 1261 1262 return false; 1263 } 1264 1265 /// ParseCXXSimpleTypeSpecifier - [C++ 7.1.5.2] Simple type specifiers. 1266 /// This should only be called when the current token is known to be part of 1267 /// simple-type-specifier. 1268 /// 1269 /// simple-type-specifier: 1270 /// '::'[opt] nested-name-specifier[opt] type-name 1271 /// '::'[opt] nested-name-specifier 'template' simple-template-id [TODO] 1272 /// char 1273 /// wchar_t 1274 /// bool 1275 /// short 1276 /// int 1277 /// long 1278 /// signed 1279 /// unsigned 1280 /// float 1281 /// double 1282 /// void 1283 /// [GNU] typeof-specifier 1284 /// [C++0x] auto [TODO] 1285 /// 1286 /// type-name: 1287 /// class-name 1288 /// enum-name 1289 /// typedef-name 1290 /// 1291 void Parser::ParseCXXSimpleTypeSpecifier(DeclSpec &DS) { 1292 DS.SetRangeStart(Tok.getLocation()); 1293 const char *PrevSpec; 1294 unsigned DiagID; 1295 SourceLocation Loc = Tok.getLocation(); 1296 1297 switch (Tok.getKind()) { 1298 case tok::identifier: // foo::bar 1299 case tok::coloncolon: // ::foo::bar 1300 llvm_unreachable("Annotation token should already be formed!"); 1301 default: 1302 llvm_unreachable("Not a simple-type-specifier token!"); 1303 1304 // type-name 1305 case tok::annot_typename: { 1306 if (getTypeAnnotation(Tok)) 1307 DS.SetTypeSpecType(DeclSpec::TST_typename, Loc, PrevSpec, DiagID, 1308 getTypeAnnotation(Tok)); 1309 else 1310 DS.SetTypeSpecError(); 1311 1312 DS.SetRangeEnd(Tok.getAnnotationEndLoc()); 1313 ConsumeToken(); 1314 1315 // Objective-C supports syntax of the form 'id<proto1,proto2>' where 'id' 1316 // is a specific typedef and 'itf<proto1,proto2>' where 'itf' is an 1317 // Objective-C interface. If we don't have Objective-C or a '<', this is 1318 // just a normal reference to a typedef name. 1319 if (Tok.is(tok::less) && getLang().ObjC1) 1320 ParseObjCProtocolQualifiers(DS); 1321 1322 DS.Finish(Diags, PP); 1323 return; 1324 } 1325 1326 // builtin types 1327 case tok::kw_short: 1328 DS.SetTypeSpecWidth(DeclSpec::TSW_short, Loc, PrevSpec, DiagID); 1329 break; 1330 case tok::kw_long: 1331 DS.SetTypeSpecWidth(DeclSpec::TSW_long, Loc, PrevSpec, DiagID); 1332 break; 1333 case tok::kw___int64: 1334 DS.SetTypeSpecWidth(DeclSpec::TSW_longlong, Loc, PrevSpec, DiagID); 1335 break; 1336 case tok::kw_signed: 1337 DS.SetTypeSpecSign(DeclSpec::TSS_signed, Loc, PrevSpec, DiagID); 1338 break; 1339 case tok::kw_unsigned: 1340 DS.SetTypeSpecSign(DeclSpec::TSS_unsigned, Loc, PrevSpec, DiagID); 1341 break; 1342 case tok::kw_void: 1343 DS.SetTypeSpecType(DeclSpec::TST_void, Loc, PrevSpec, DiagID); 1344 break; 1345 case tok::kw_char: 1346 DS.SetTypeSpecType(DeclSpec::TST_char, Loc, PrevSpec, DiagID); 1347 break; 1348 case tok::kw_int: 1349 DS.SetTypeSpecType(DeclSpec::TST_int, Loc, PrevSpec, DiagID); 1350 break; 1351 case tok::kw_half: 1352 DS.SetTypeSpecType(DeclSpec::TST_half, Loc, PrevSpec, DiagID); 1353 break; 1354 case tok::kw_float: 1355 DS.SetTypeSpecType(DeclSpec::TST_float, Loc, PrevSpec, DiagID); 1356 break; 1357 case tok::kw_double: 1358 DS.SetTypeSpecType(DeclSpec::TST_double, Loc, PrevSpec, DiagID); 1359 break; 1360 case tok::kw_wchar_t: 1361 DS.SetTypeSpecType(DeclSpec::TST_wchar, Loc, PrevSpec, DiagID); 1362 break; 1363 case tok::kw_char16_t: 1364 DS.SetTypeSpecType(DeclSpec::TST_char16, Loc, PrevSpec, DiagID); 1365 break; 1366 case tok::kw_char32_t: 1367 DS.SetTypeSpecType(DeclSpec::TST_char32, Loc, PrevSpec, DiagID); 1368 break; 1369 case tok::kw_bool: 1370 DS.SetTypeSpecType(DeclSpec::TST_bool, Loc, PrevSpec, DiagID); 1371 break; 1372 1373 // FIXME: C++0x decltype support. 1374 // GNU typeof support. 1375 case tok::kw_typeof: 1376 ParseTypeofSpecifier(DS); 1377 DS.Finish(Diags, PP); 1378 return; 1379 } 1380 if (Tok.is(tok::annot_typename)) 1381 DS.SetRangeEnd(Tok.getAnnotationEndLoc()); 1382 else 1383 DS.SetRangeEnd(Tok.getLocation()); 1384 ConsumeToken(); 1385 DS.Finish(Diags, PP); 1386 } 1387 1388 /// ParseCXXTypeSpecifierSeq - Parse a C++ type-specifier-seq (C++ 1389 /// [dcl.name]), which is a non-empty sequence of type-specifiers, 1390 /// e.g., "const short int". Note that the DeclSpec is *not* finished 1391 /// by parsing the type-specifier-seq, because these sequences are 1392 /// typically followed by some form of declarator. Returns true and 1393 /// emits diagnostics if this is not a type-specifier-seq, false 1394 /// otherwise. 1395 /// 1396 /// type-specifier-seq: [C++ 8.1] 1397 /// type-specifier type-specifier-seq[opt] 1398 /// 1399 bool Parser::ParseCXXTypeSpecifierSeq(DeclSpec &DS) { 1400 DS.SetRangeStart(Tok.getLocation()); 1401 const char *PrevSpec = 0; 1402 unsigned DiagID; 1403 bool isInvalid = 0; 1404 1405 // Parse one or more of the type specifiers. 1406 if (!ParseOptionalTypeSpecifier(DS, isInvalid, PrevSpec, DiagID, 1407 ParsedTemplateInfo(), /*SuppressDeclarations*/true)) { 1408 Diag(Tok, diag::err_expected_type); 1409 return true; 1410 } 1411 1412 while (ParseOptionalTypeSpecifier(DS, isInvalid, PrevSpec, DiagID, 1413 ParsedTemplateInfo(), /*SuppressDeclarations*/true)) 1414 {} 1415 1416 DS.Finish(Diags, PP); 1417 return false; 1418 } 1419 1420 /// \brief Finish parsing a C++ unqualified-id that is a template-id of 1421 /// some form. 1422 /// 1423 /// This routine is invoked when a '<' is encountered after an identifier or 1424 /// operator-function-id is parsed by \c ParseUnqualifiedId() to determine 1425 /// whether the unqualified-id is actually a template-id. This routine will 1426 /// then parse the template arguments and form the appropriate template-id to 1427 /// return to the caller. 1428 /// 1429 /// \param SS the nested-name-specifier that precedes this template-id, if 1430 /// we're actually parsing a qualified-id. 1431 /// 1432 /// \param Name for constructor and destructor names, this is the actual 1433 /// identifier that may be a template-name. 1434 /// 1435 /// \param NameLoc the location of the class-name in a constructor or 1436 /// destructor. 1437 /// 1438 /// \param EnteringContext whether we're entering the scope of the 1439 /// nested-name-specifier. 1440 /// 1441 /// \param ObjectType if this unqualified-id occurs within a member access 1442 /// expression, the type of the base object whose member is being accessed. 1443 /// 1444 /// \param Id as input, describes the template-name or operator-function-id 1445 /// that precedes the '<'. If template arguments were parsed successfully, 1446 /// will be updated with the template-id. 1447 /// 1448 /// \param AssumeTemplateId When true, this routine will assume that the name 1449 /// refers to a template without performing name lookup to verify. 1450 /// 1451 /// \returns true if a parse error occurred, false otherwise. 1452 bool Parser::ParseUnqualifiedIdTemplateId(CXXScopeSpec &SS, 1453 IdentifierInfo *Name, 1454 SourceLocation NameLoc, 1455 bool EnteringContext, 1456 ParsedType ObjectType, 1457 UnqualifiedId &Id, 1458 bool AssumeTemplateId, 1459 SourceLocation TemplateKWLoc) { 1460 assert((AssumeTemplateId || Tok.is(tok::less)) && 1461 "Expected '<' to finish parsing a template-id"); 1462 1463 TemplateTy Template; 1464 TemplateNameKind TNK = TNK_Non_template; 1465 switch (Id.getKind()) { 1466 case UnqualifiedId::IK_Identifier: 1467 case UnqualifiedId::IK_OperatorFunctionId: 1468 case UnqualifiedId::IK_LiteralOperatorId: 1469 if (AssumeTemplateId) { 1470 TNK = Actions.ActOnDependentTemplateName(getCurScope(), TemplateKWLoc, SS, 1471 Id, ObjectType, EnteringContext, 1472 Template); 1473 if (TNK == TNK_Non_template) 1474 return true; 1475 } else { 1476 bool MemberOfUnknownSpecialization; 1477 TNK = Actions.isTemplateName(getCurScope(), SS, 1478 TemplateKWLoc.isValid(), Id, 1479 ObjectType, EnteringContext, Template, 1480 MemberOfUnknownSpecialization); 1481 1482 if (TNK == TNK_Non_template && MemberOfUnknownSpecialization && 1483 ObjectType && IsTemplateArgumentList()) { 1484 // We have something like t->getAs<T>(), where getAs is a 1485 // member of an unknown specialization. However, this will only 1486 // parse correctly as a template, so suggest the keyword 'template' 1487 // before 'getAs' and treat this as a dependent template name. 1488 std::string Name; 1489 if (Id.getKind() == UnqualifiedId::IK_Identifier) 1490 Name = Id.Identifier->getName(); 1491 else { 1492 Name = "operator "; 1493 if (Id.getKind() == UnqualifiedId::IK_OperatorFunctionId) 1494 Name += getOperatorSpelling(Id.OperatorFunctionId.Operator); 1495 else 1496 Name += Id.Identifier->getName(); 1497 } 1498 Diag(Id.StartLocation, diag::err_missing_dependent_template_keyword) 1499 << Name 1500 << FixItHint::CreateInsertion(Id.StartLocation, "template "); 1501 TNK = Actions.ActOnDependentTemplateName(getCurScope(), TemplateKWLoc, 1502 SS, Id, ObjectType, 1503 EnteringContext, Template); 1504 if (TNK == TNK_Non_template) 1505 return true; 1506 } 1507 } 1508 break; 1509 1510 case UnqualifiedId::IK_ConstructorName: { 1511 UnqualifiedId TemplateName; 1512 bool MemberOfUnknownSpecialization; 1513 TemplateName.setIdentifier(Name, NameLoc); 1514 TNK = Actions.isTemplateName(getCurScope(), SS, TemplateKWLoc.isValid(), 1515 TemplateName, ObjectType, 1516 EnteringContext, Template, 1517 MemberOfUnknownSpecialization); 1518 break; 1519 } 1520 1521 case UnqualifiedId::IK_DestructorName: { 1522 UnqualifiedId TemplateName; 1523 bool MemberOfUnknownSpecialization; 1524 TemplateName.setIdentifier(Name, NameLoc); 1525 if (ObjectType) { 1526 TNK = Actions.ActOnDependentTemplateName(getCurScope(), TemplateKWLoc, SS, 1527 TemplateName, ObjectType, 1528 EnteringContext, Template); 1529 if (TNK == TNK_Non_template) 1530 return true; 1531 } else { 1532 TNK = Actions.isTemplateName(getCurScope(), SS, TemplateKWLoc.isValid(), 1533 TemplateName, ObjectType, 1534 EnteringContext, Template, 1535 MemberOfUnknownSpecialization); 1536 1537 if (TNK == TNK_Non_template && !Id.DestructorName.get()) { 1538 Diag(NameLoc, diag::err_destructor_template_id) 1539 << Name << SS.getRange(); 1540 return true; 1541 } 1542 } 1543 break; 1544 } 1545 1546 default: 1547 return false; 1548 } 1549 1550 if (TNK == TNK_Non_template) 1551 return false; 1552 1553 // Parse the enclosed template argument list. 1554 SourceLocation LAngleLoc, RAngleLoc; 1555 TemplateArgList TemplateArgs; 1556 if (Tok.is(tok::less) && 1557 ParseTemplateIdAfterTemplateName(Template, Id.StartLocation, 1558 SS, true, LAngleLoc, 1559 TemplateArgs, 1560 RAngleLoc)) 1561 return true; 1562 1563 if (Id.getKind() == UnqualifiedId::IK_Identifier || 1564 Id.getKind() == UnqualifiedId::IK_OperatorFunctionId || 1565 Id.getKind() == UnqualifiedId::IK_LiteralOperatorId) { 1566 // Form a parsed representation of the template-id to be stored in the 1567 // UnqualifiedId. 1568 TemplateIdAnnotation *TemplateId 1569 = TemplateIdAnnotation::Allocate(TemplateArgs.size()); 1570 1571 if (Id.getKind() == UnqualifiedId::IK_Identifier) { 1572 TemplateId->Name = Id.Identifier; 1573 TemplateId->Operator = OO_None; 1574 TemplateId->TemplateNameLoc = Id.StartLocation; 1575 } else { 1576 TemplateId->Name = 0; 1577 TemplateId->Operator = Id.OperatorFunctionId.Operator; 1578 TemplateId->TemplateNameLoc = Id.StartLocation; 1579 } 1580 1581 TemplateId->SS = SS; 1582 TemplateId->Template = Template; 1583 TemplateId->Kind = TNK; 1584 TemplateId->LAngleLoc = LAngleLoc; 1585 TemplateId->RAngleLoc = RAngleLoc; 1586 ParsedTemplateArgument *Args = TemplateId->getTemplateArgs(); 1587 for (unsigned Arg = 0, ArgEnd = TemplateArgs.size(); 1588 Arg != ArgEnd; ++Arg) 1589 Args[Arg] = TemplateArgs[Arg]; 1590 1591 Id.setTemplateId(TemplateId); 1592 return false; 1593 } 1594 1595 // Bundle the template arguments together. 1596 ASTTemplateArgsPtr TemplateArgsPtr(Actions, TemplateArgs.data(), 1597 TemplateArgs.size()); 1598 1599 // Constructor and destructor names. 1600 TypeResult Type 1601 = Actions.ActOnTemplateIdType(SS, Template, NameLoc, 1602 LAngleLoc, TemplateArgsPtr, 1603 RAngleLoc); 1604 if (Type.isInvalid()) 1605 return true; 1606 1607 if (Id.getKind() == UnqualifiedId::IK_ConstructorName) 1608 Id.setConstructorName(Type.get(), NameLoc, RAngleLoc); 1609 else 1610 Id.setDestructorName(Id.StartLocation, Type.get(), RAngleLoc); 1611 1612 return false; 1613 } 1614 1615 /// \brief Parse an operator-function-id or conversion-function-id as part 1616 /// of a C++ unqualified-id. 1617 /// 1618 /// This routine is responsible only for parsing the operator-function-id or 1619 /// conversion-function-id; it does not handle template arguments in any way. 1620 /// 1621 /// \code 1622 /// operator-function-id: [C++ 13.5] 1623 /// 'operator' operator 1624 /// 1625 /// operator: one of 1626 /// new delete new[] delete[] 1627 /// + - * / % ^ & | ~ 1628 /// ! = < > += -= *= /= %= 1629 /// ^= &= |= << >> >>= <<= == != 1630 /// <= >= && || ++ -- , ->* -> 1631 /// () [] 1632 /// 1633 /// conversion-function-id: [C++ 12.3.2] 1634 /// operator conversion-type-id 1635 /// 1636 /// conversion-type-id: 1637 /// type-specifier-seq conversion-declarator[opt] 1638 /// 1639 /// conversion-declarator: 1640 /// ptr-operator conversion-declarator[opt] 1641 /// \endcode 1642 /// 1643 /// \param The nested-name-specifier that preceded this unqualified-id. If 1644 /// non-empty, then we are parsing the unqualified-id of a qualified-id. 1645 /// 1646 /// \param EnteringContext whether we are entering the scope of the 1647 /// nested-name-specifier. 1648 /// 1649 /// \param ObjectType if this unqualified-id occurs within a member access 1650 /// expression, the type of the base object whose member is being accessed. 1651 /// 1652 /// \param Result on a successful parse, contains the parsed unqualified-id. 1653 /// 1654 /// \returns true if parsing fails, false otherwise. 1655 bool Parser::ParseUnqualifiedIdOperator(CXXScopeSpec &SS, bool EnteringContext, 1656 ParsedType ObjectType, 1657 UnqualifiedId &Result) { 1658 assert(Tok.is(tok::kw_operator) && "Expected 'operator' keyword"); 1659 1660 // Consume the 'operator' keyword. 1661 SourceLocation KeywordLoc = ConsumeToken(); 1662 1663 // Determine what kind of operator name we have. 1664 unsigned SymbolIdx = 0; 1665 SourceLocation SymbolLocations[3]; 1666 OverloadedOperatorKind Op = OO_None; 1667 switch (Tok.getKind()) { 1668 case tok::kw_new: 1669 case tok::kw_delete: { 1670 bool isNew = Tok.getKind() == tok::kw_new; 1671 // Consume the 'new' or 'delete'. 1672 SymbolLocations[SymbolIdx++] = ConsumeToken(); 1673 if (Tok.is(tok::l_square)) { 1674 // Consume the '[' and ']'. 1675 BalancedDelimiterTracker T(*this, tok::l_square); 1676 T.consumeOpen(); 1677 T.consumeClose(); 1678 if (T.getCloseLocation().isInvalid()) 1679 return true; 1680 1681 SymbolLocations[SymbolIdx++] = T.getOpenLocation(); 1682 SymbolLocations[SymbolIdx++] = T.getCloseLocation(); 1683 Op = isNew? OO_Array_New : OO_Array_Delete; 1684 } else { 1685 Op = isNew? OO_New : OO_Delete; 1686 } 1687 break; 1688 } 1689 1690 #define OVERLOADED_OPERATOR(Name,Spelling,Token,Unary,Binary,MemberOnly) \ 1691 case tok::Token: \ 1692 SymbolLocations[SymbolIdx++] = ConsumeToken(); \ 1693 Op = OO_##Name; \ 1694 break; 1695 #define OVERLOADED_OPERATOR_MULTI(Name,Spelling,Unary,Binary,MemberOnly) 1696 #include "clang/Basic/OperatorKinds.def" 1697 1698 case tok::l_paren: { 1699 // Consume the '(' and ')'. 1700 BalancedDelimiterTracker T(*this, tok::l_paren); 1701 T.consumeOpen(); 1702 T.consumeClose(); 1703 if (T.getCloseLocation().isInvalid()) 1704 return true; 1705 1706 SymbolLocations[SymbolIdx++] = T.getOpenLocation(); 1707 SymbolLocations[SymbolIdx++] = T.getCloseLocation(); 1708 Op = OO_Call; 1709 break; 1710 } 1711 1712 case tok::l_square: { 1713 // Consume the '[' and ']'. 1714 BalancedDelimiterTracker T(*this, tok::l_square); 1715 T.consumeOpen(); 1716 T.consumeClose(); 1717 if (T.getCloseLocation().isInvalid()) 1718 return true; 1719 1720 SymbolLocations[SymbolIdx++] = T.getOpenLocation(); 1721 SymbolLocations[SymbolIdx++] = T.getCloseLocation(); 1722 Op = OO_Subscript; 1723 break; 1724 } 1725 1726 case tok::code_completion: { 1727 // Code completion for the operator name. 1728 Actions.CodeCompleteOperatorName(getCurScope()); 1729 cutOffParsing(); 1730 // Don't try to parse any further. 1731 return true; 1732 } 1733 1734 default: 1735 break; 1736 } 1737 1738 if (Op != OO_None) { 1739 // We have parsed an operator-function-id. 1740 Result.setOperatorFunctionId(KeywordLoc, Op, SymbolLocations); 1741 return false; 1742 } 1743 1744 // Parse a literal-operator-id. 1745 // 1746 // literal-operator-id: [C++0x 13.5.8] 1747 // operator "" identifier 1748 1749 if (getLang().CPlusPlus0x && Tok.is(tok::string_literal)) { 1750 Diag(Tok.getLocation(), diag::warn_cxx98_compat_literal_operator); 1751 if (Tok.getLength() != 2) 1752 Diag(Tok.getLocation(), diag::err_operator_string_not_empty); 1753 ConsumeStringToken(); 1754 1755 if (Tok.isNot(tok::identifier)) { 1756 Diag(Tok.getLocation(), diag::err_expected_ident); 1757 return true; 1758 } 1759 1760 IdentifierInfo *II = Tok.getIdentifierInfo(); 1761 Result.setLiteralOperatorId(II, KeywordLoc, ConsumeToken()); 1762 return false; 1763 } 1764 1765 // Parse a conversion-function-id. 1766 // 1767 // conversion-function-id: [C++ 12.3.2] 1768 // operator conversion-type-id 1769 // 1770 // conversion-type-id: 1771 // type-specifier-seq conversion-declarator[opt] 1772 // 1773 // conversion-declarator: 1774 // ptr-operator conversion-declarator[opt] 1775 1776 // Parse the type-specifier-seq. 1777 DeclSpec DS(AttrFactory); 1778 if (ParseCXXTypeSpecifierSeq(DS)) // FIXME: ObjectType? 1779 return true; 1780 1781 // Parse the conversion-declarator, which is merely a sequence of 1782 // ptr-operators. 1783 Declarator D(DS, Declarator::TypeNameContext); 1784 ParseDeclaratorInternal(D, /*DirectDeclParser=*/0); 1785 1786 // Finish up the type. 1787 TypeResult Ty = Actions.ActOnTypeName(getCurScope(), D); 1788 if (Ty.isInvalid()) 1789 return true; 1790 1791 // Note that this is a conversion-function-id. 1792 Result.setConversionFunctionId(KeywordLoc, Ty.get(), 1793 D.getSourceRange().getEnd()); 1794 return false; 1795 } 1796 1797 /// \brief Parse a C++ unqualified-id (or a C identifier), which describes the 1798 /// name of an entity. 1799 /// 1800 /// \code 1801 /// unqualified-id: [C++ expr.prim.general] 1802 /// identifier 1803 /// operator-function-id 1804 /// conversion-function-id 1805 /// [C++0x] literal-operator-id [TODO] 1806 /// ~ class-name 1807 /// template-id 1808 /// 1809 /// \endcode 1810 /// 1811 /// \param The nested-name-specifier that preceded this unqualified-id. If 1812 /// non-empty, then we are parsing the unqualified-id of a qualified-id. 1813 /// 1814 /// \param EnteringContext whether we are entering the scope of the 1815 /// nested-name-specifier. 1816 /// 1817 /// \param AllowDestructorName whether we allow parsing of a destructor name. 1818 /// 1819 /// \param AllowConstructorName whether we allow parsing a constructor name. 1820 /// 1821 /// \param ObjectType if this unqualified-id occurs within a member access 1822 /// expression, the type of the base object whose member is being accessed. 1823 /// 1824 /// \param Result on a successful parse, contains the parsed unqualified-id. 1825 /// 1826 /// \returns true if parsing fails, false otherwise. 1827 bool Parser::ParseUnqualifiedId(CXXScopeSpec &SS, bool EnteringContext, 1828 bool AllowDestructorName, 1829 bool AllowConstructorName, 1830 ParsedType ObjectType, 1831 UnqualifiedId &Result) { 1832 1833 // Handle 'A::template B'. This is for template-ids which have not 1834 // already been annotated by ParseOptionalCXXScopeSpecifier(). 1835 bool TemplateSpecified = false; 1836 SourceLocation TemplateKWLoc; 1837 if (getLang().CPlusPlus && Tok.is(tok::kw_template) && 1838 (ObjectType || SS.isSet())) { 1839 TemplateSpecified = true; 1840 TemplateKWLoc = ConsumeToken(); 1841 } 1842 1843 // unqualified-id: 1844 // identifier 1845 // template-id (when it hasn't already been annotated) 1846 if (Tok.is(tok::identifier)) { 1847 // Consume the identifier. 1848 IdentifierInfo *Id = Tok.getIdentifierInfo(); 1849 SourceLocation IdLoc = ConsumeToken(); 1850 1851 if (!getLang().CPlusPlus) { 1852 // If we're not in C++, only identifiers matter. Record the 1853 // identifier and return. 1854 Result.setIdentifier(Id, IdLoc); 1855 return false; 1856 } 1857 1858 if (AllowConstructorName && 1859 Actions.isCurrentClassName(*Id, getCurScope(), &SS)) { 1860 // We have parsed a constructor name. 1861 Result.setConstructorName(Actions.getTypeName(*Id, IdLoc, getCurScope(), 1862 &SS, false, false, 1863 ParsedType(), 1864 /*NonTrivialTypeSourceInfo=*/true), 1865 IdLoc, IdLoc); 1866 } else { 1867 // We have parsed an identifier. 1868 Result.setIdentifier(Id, IdLoc); 1869 } 1870 1871 // If the next token is a '<', we may have a template. 1872 if (TemplateSpecified || Tok.is(tok::less)) 1873 return ParseUnqualifiedIdTemplateId(SS, Id, IdLoc, EnteringContext, 1874 ObjectType, Result, 1875 TemplateSpecified, TemplateKWLoc); 1876 1877 return false; 1878 } 1879 1880 // unqualified-id: 1881 // template-id (already parsed and annotated) 1882 if (Tok.is(tok::annot_template_id)) { 1883 TemplateIdAnnotation *TemplateId = takeTemplateIdAnnotation(Tok); 1884 1885 // If the template-name names the current class, then this is a constructor 1886 if (AllowConstructorName && TemplateId->Name && 1887 Actions.isCurrentClassName(*TemplateId->Name, getCurScope(), &SS)) { 1888 if (SS.isSet()) { 1889 // C++ [class.qual]p2 specifies that a qualified template-name 1890 // is taken as the constructor name where a constructor can be 1891 // declared. Thus, the template arguments are extraneous, so 1892 // complain about them and remove them entirely. 1893 Diag(TemplateId->TemplateNameLoc, 1894 diag::err_out_of_line_constructor_template_id) 1895 << TemplateId->Name 1896 << FixItHint::CreateRemoval( 1897 SourceRange(TemplateId->LAngleLoc, TemplateId->RAngleLoc)); 1898 Result.setConstructorName(Actions.getTypeName(*TemplateId->Name, 1899 TemplateId->TemplateNameLoc, 1900 getCurScope(), 1901 &SS, false, false, 1902 ParsedType(), 1903 /*NontrivialTypeSourceInfo=*/true), 1904 TemplateId->TemplateNameLoc, 1905 TemplateId->RAngleLoc); 1906 ConsumeToken(); 1907 return false; 1908 } 1909 1910 Result.setConstructorTemplateId(TemplateId); 1911 ConsumeToken(); 1912 return false; 1913 } 1914 1915 // We have already parsed a template-id; consume the annotation token as 1916 // our unqualified-id. 1917 Result.setTemplateId(TemplateId); 1918 ConsumeToken(); 1919 return false; 1920 } 1921 1922 // unqualified-id: 1923 // operator-function-id 1924 // conversion-function-id 1925 if (Tok.is(tok::kw_operator)) { 1926 if (ParseUnqualifiedIdOperator(SS, EnteringContext, ObjectType, Result)) 1927 return true; 1928 1929 // If we have an operator-function-id or a literal-operator-id and the next 1930 // token is a '<', we may have a 1931 // 1932 // template-id: 1933 // operator-function-id < template-argument-list[opt] > 1934 if ((Result.getKind() == UnqualifiedId::IK_OperatorFunctionId || 1935 Result.getKind() == UnqualifiedId::IK_LiteralOperatorId) && 1936 (TemplateSpecified || Tok.is(tok::less))) 1937 return ParseUnqualifiedIdTemplateId(SS, 0, SourceLocation(), 1938 EnteringContext, ObjectType, 1939 Result, 1940 TemplateSpecified, TemplateKWLoc); 1941 1942 return false; 1943 } 1944 1945 if (getLang().CPlusPlus && 1946 (AllowDestructorName || SS.isSet()) && Tok.is(tok::tilde)) { 1947 // C++ [expr.unary.op]p10: 1948 // There is an ambiguity in the unary-expression ~X(), where X is a 1949 // class-name. The ambiguity is resolved in favor of treating ~ as a 1950 // unary complement rather than treating ~X as referring to a destructor. 1951 1952 // Parse the '~'. 1953 SourceLocation TildeLoc = ConsumeToken(); 1954 1955 // Parse the class-name. 1956 if (Tok.isNot(tok::identifier)) { 1957 Diag(Tok, diag::err_destructor_tilde_identifier); 1958 return true; 1959 } 1960 1961 // Parse the class-name (or template-name in a simple-template-id). 1962 IdentifierInfo *ClassName = Tok.getIdentifierInfo(); 1963 SourceLocation ClassNameLoc = ConsumeToken(); 1964 1965 if (TemplateSpecified || Tok.is(tok::less)) { 1966 Result.setDestructorName(TildeLoc, ParsedType(), ClassNameLoc); 1967 return ParseUnqualifiedIdTemplateId(SS, ClassName, ClassNameLoc, 1968 EnteringContext, ObjectType, Result, 1969 TemplateSpecified, TemplateKWLoc); 1970 } 1971 1972 // Note that this is a destructor name. 1973 ParsedType Ty = Actions.getDestructorName(TildeLoc, *ClassName, 1974 ClassNameLoc, getCurScope(), 1975 SS, ObjectType, 1976 EnteringContext); 1977 if (!Ty) 1978 return true; 1979 1980 Result.setDestructorName(TildeLoc, Ty, ClassNameLoc); 1981 return false; 1982 } 1983 1984 Diag(Tok, diag::err_expected_unqualified_id) 1985 << getLang().CPlusPlus; 1986 return true; 1987 } 1988 1989 /// ParseCXXNewExpression - Parse a C++ new-expression. New is used to allocate 1990 /// memory in a typesafe manner and call constructors. 1991 /// 1992 /// This method is called to parse the new expression after the optional :: has 1993 /// been already parsed. If the :: was present, "UseGlobal" is true and "Start" 1994 /// is its location. Otherwise, "Start" is the location of the 'new' token. 1995 /// 1996 /// new-expression: 1997 /// '::'[opt] 'new' new-placement[opt] new-type-id 1998 /// new-initializer[opt] 1999 /// '::'[opt] 'new' new-placement[opt] '(' type-id ')' 2000 /// new-initializer[opt] 2001 /// 2002 /// new-placement: 2003 /// '(' expression-list ')' 2004 /// 2005 /// new-type-id: 2006 /// type-specifier-seq new-declarator[opt] 2007 /// [GNU] attributes type-specifier-seq new-declarator[opt] 2008 /// 2009 /// new-declarator: 2010 /// ptr-operator new-declarator[opt] 2011 /// direct-new-declarator 2012 /// 2013 /// new-initializer: 2014 /// '(' expression-list[opt] ')' 2015 /// [C++0x] braced-init-list 2016 /// 2017 ExprResult 2018 Parser::ParseCXXNewExpression(bool UseGlobal, SourceLocation Start) { 2019 assert(Tok.is(tok::kw_new) && "expected 'new' token"); 2020 ConsumeToken(); // Consume 'new' 2021 2022 // A '(' now can be a new-placement or the '(' wrapping the type-id in the 2023 // second form of new-expression. It can't be a new-type-id. 2024 2025 ExprVector PlacementArgs(Actions); 2026 SourceLocation PlacementLParen, PlacementRParen; 2027 2028 SourceRange TypeIdParens; 2029 DeclSpec DS(AttrFactory); 2030 Declarator DeclaratorInfo(DS, Declarator::CXXNewContext); 2031 if (Tok.is(tok::l_paren)) { 2032 // If it turns out to be a placement, we change the type location. 2033 BalancedDelimiterTracker T(*this, tok::l_paren); 2034 T.consumeOpen(); 2035 PlacementLParen = T.getOpenLocation(); 2036 if (ParseExpressionListOrTypeId(PlacementArgs, DeclaratorInfo)) { 2037 SkipUntil(tok::semi, /*StopAtSemi=*/true, /*DontConsume=*/true); 2038 return ExprError(); 2039 } 2040 2041 T.consumeClose(); 2042 PlacementRParen = T.getCloseLocation(); 2043 if (PlacementRParen.isInvalid()) { 2044 SkipUntil(tok::semi, /*StopAtSemi=*/true, /*DontConsume=*/true); 2045 return ExprError(); 2046 } 2047 2048 if (PlacementArgs.empty()) { 2049 // Reset the placement locations. There was no placement. 2050 TypeIdParens = T.getRange(); 2051 PlacementLParen = PlacementRParen = SourceLocation(); 2052 } else { 2053 // We still need the type. 2054 if (Tok.is(tok::l_paren)) { 2055 BalancedDelimiterTracker T(*this, tok::l_paren); 2056 T.consumeOpen(); 2057 MaybeParseGNUAttributes(DeclaratorInfo); 2058 ParseSpecifierQualifierList(DS); 2059 DeclaratorInfo.SetSourceRange(DS.getSourceRange()); 2060 ParseDeclarator(DeclaratorInfo); 2061 T.consumeClose(); 2062 TypeIdParens = T.getRange(); 2063 } else { 2064 MaybeParseGNUAttributes(DeclaratorInfo); 2065 if (ParseCXXTypeSpecifierSeq(DS)) 2066 DeclaratorInfo.setInvalidType(true); 2067 else { 2068 DeclaratorInfo.SetSourceRange(DS.getSourceRange()); 2069 ParseDeclaratorInternal(DeclaratorInfo, 2070 &Parser::ParseDirectNewDeclarator); 2071 } 2072 } 2073 } 2074 } else { 2075 // A new-type-id is a simplified type-id, where essentially the 2076 // direct-declarator is replaced by a direct-new-declarator. 2077 MaybeParseGNUAttributes(DeclaratorInfo); 2078 if (ParseCXXTypeSpecifierSeq(DS)) 2079 DeclaratorInfo.setInvalidType(true); 2080 else { 2081 DeclaratorInfo.SetSourceRange(DS.getSourceRange()); 2082 ParseDeclaratorInternal(DeclaratorInfo, 2083 &Parser::ParseDirectNewDeclarator); 2084 } 2085 } 2086 if (DeclaratorInfo.isInvalidType()) { 2087 SkipUntil(tok::semi, /*StopAtSemi=*/true, /*DontConsume=*/true); 2088 return ExprError(); 2089 } 2090 2091 ExprVector ConstructorArgs(Actions); 2092 SourceLocation ConstructorLParen, ConstructorRParen; 2093 2094 if (Tok.is(tok::l_paren)) { 2095 BalancedDelimiterTracker T(*this, tok::l_paren); 2096 T.consumeOpen(); 2097 ConstructorLParen = T.getOpenLocation(); 2098 if (Tok.isNot(tok::r_paren)) { 2099 CommaLocsTy CommaLocs; 2100 if (ParseExpressionList(ConstructorArgs, CommaLocs)) { 2101 SkipUntil(tok::semi, /*StopAtSemi=*/true, /*DontConsume=*/true); 2102 return ExprError(); 2103 } 2104 } 2105 T.consumeClose(); 2106 ConstructorRParen = T.getCloseLocation(); 2107 if (ConstructorRParen.isInvalid()) { 2108 SkipUntil(tok::semi, /*StopAtSemi=*/true, /*DontConsume=*/true); 2109 return ExprError(); 2110 } 2111 } else if (Tok.is(tok::l_brace) && getLang().CPlusPlus0x) { 2112 Diag(Tok.getLocation(), 2113 diag::warn_cxx98_compat_generalized_initializer_lists); 2114 // FIXME: Have to communicate the init-list to ActOnCXXNew. 2115 ParseBraceInitializer(); 2116 } 2117 2118 return Actions.ActOnCXXNew(Start, UseGlobal, PlacementLParen, 2119 move_arg(PlacementArgs), PlacementRParen, 2120 TypeIdParens, DeclaratorInfo, ConstructorLParen, 2121 move_arg(ConstructorArgs), ConstructorRParen); 2122 } 2123 2124 /// ParseDirectNewDeclarator - Parses a direct-new-declarator. Intended to be 2125 /// passed to ParseDeclaratorInternal. 2126 /// 2127 /// direct-new-declarator: 2128 /// '[' expression ']' 2129 /// direct-new-declarator '[' constant-expression ']' 2130 /// 2131 void Parser::ParseDirectNewDeclarator(Declarator &D) { 2132 // Parse the array dimensions. 2133 bool first = true; 2134 while (Tok.is(tok::l_square)) { 2135 BalancedDelimiterTracker T(*this, tok::l_square); 2136 T.consumeOpen(); 2137 2138 ExprResult Size(first ? ParseExpression() 2139 : ParseConstantExpression()); 2140 if (Size.isInvalid()) { 2141 // Recover 2142 SkipUntil(tok::r_square); 2143 return; 2144 } 2145 first = false; 2146 2147 T.consumeClose(); 2148 2149 ParsedAttributes attrs(AttrFactory); 2150 D.AddTypeInfo(DeclaratorChunk::getArray(0, 2151 /*static=*/false, /*star=*/false, 2152 Size.release(), 2153 T.getOpenLocation(), 2154 T.getCloseLocation()), 2155 attrs, T.getCloseLocation()); 2156 2157 if (T.getCloseLocation().isInvalid()) 2158 return; 2159 } 2160 } 2161 2162 /// ParseExpressionListOrTypeId - Parse either an expression-list or a type-id. 2163 /// This ambiguity appears in the syntax of the C++ new operator. 2164 /// 2165 /// new-expression: 2166 /// '::'[opt] 'new' new-placement[opt] '(' type-id ')' 2167 /// new-initializer[opt] 2168 /// 2169 /// new-placement: 2170 /// '(' expression-list ')' 2171 /// 2172 bool Parser::ParseExpressionListOrTypeId( 2173 SmallVectorImpl<Expr*> &PlacementArgs, 2174 Declarator &D) { 2175 // The '(' was already consumed. 2176 if (isTypeIdInParens()) { 2177 ParseSpecifierQualifierList(D.getMutableDeclSpec()); 2178 D.SetSourceRange(D.getDeclSpec().getSourceRange()); 2179 ParseDeclarator(D); 2180 return D.isInvalidType(); 2181 } 2182 2183 // It's not a type, it has to be an expression list. 2184 // Discard the comma locations - ActOnCXXNew has enough parameters. 2185 CommaLocsTy CommaLocs; 2186 return ParseExpressionList(PlacementArgs, CommaLocs); 2187 } 2188 2189 /// ParseCXXDeleteExpression - Parse a C++ delete-expression. Delete is used 2190 /// to free memory allocated by new. 2191 /// 2192 /// This method is called to parse the 'delete' expression after the optional 2193 /// '::' has been already parsed. If the '::' was present, "UseGlobal" is true 2194 /// and "Start" is its location. Otherwise, "Start" is the location of the 2195 /// 'delete' token. 2196 /// 2197 /// delete-expression: 2198 /// '::'[opt] 'delete' cast-expression 2199 /// '::'[opt] 'delete' '[' ']' cast-expression 2200 ExprResult 2201 Parser::ParseCXXDeleteExpression(bool UseGlobal, SourceLocation Start) { 2202 assert(Tok.is(tok::kw_delete) && "Expected 'delete' keyword"); 2203 ConsumeToken(); // Consume 'delete' 2204 2205 // Array delete? 2206 bool ArrayDelete = false; 2207 if (Tok.is(tok::l_square)) { 2208 ArrayDelete = true; 2209 BalancedDelimiterTracker T(*this, tok::l_square); 2210 2211 T.consumeOpen(); 2212 T.consumeClose(); 2213 if (T.getCloseLocation().isInvalid()) 2214 return ExprError(); 2215 } 2216 2217 ExprResult Operand(ParseCastExpression(false)); 2218 if (Operand.isInvalid()) 2219 return move(Operand); 2220 2221 return Actions.ActOnCXXDelete(Start, UseGlobal, ArrayDelete, Operand.take()); 2222 } 2223 2224 static UnaryTypeTrait UnaryTypeTraitFromTokKind(tok::TokenKind kind) { 2225 switch(kind) { 2226 default: llvm_unreachable("Not a known unary type trait."); 2227 case tok::kw___has_nothrow_assign: return UTT_HasNothrowAssign; 2228 case tok::kw___has_nothrow_constructor: return UTT_HasNothrowConstructor; 2229 case tok::kw___has_nothrow_copy: return UTT_HasNothrowCopy; 2230 case tok::kw___has_trivial_assign: return UTT_HasTrivialAssign; 2231 case tok::kw___has_trivial_constructor: 2232 return UTT_HasTrivialDefaultConstructor; 2233 case tok::kw___has_trivial_copy: return UTT_HasTrivialCopy; 2234 case tok::kw___has_trivial_destructor: return UTT_HasTrivialDestructor; 2235 case tok::kw___has_virtual_destructor: return UTT_HasVirtualDestructor; 2236 case tok::kw___is_abstract: return UTT_IsAbstract; 2237 case tok::kw___is_arithmetic: return UTT_IsArithmetic; 2238 case tok::kw___is_array: return UTT_IsArray; 2239 case tok::kw___is_class: return UTT_IsClass; 2240 case tok::kw___is_complete_type: return UTT_IsCompleteType; 2241 case tok::kw___is_compound: return UTT_IsCompound; 2242 case tok::kw___is_const: return UTT_IsConst; 2243 case tok::kw___is_empty: return UTT_IsEmpty; 2244 case tok::kw___is_enum: return UTT_IsEnum; 2245 case tok::kw___is_floating_point: return UTT_IsFloatingPoint; 2246 case tok::kw___is_function: return UTT_IsFunction; 2247 case tok::kw___is_fundamental: return UTT_IsFundamental; 2248 case tok::kw___is_integral: return UTT_IsIntegral; 2249 case tok::kw___is_lvalue_reference: return UTT_IsLvalueReference; 2250 case tok::kw___is_member_function_pointer: return UTT_IsMemberFunctionPointer; 2251 case tok::kw___is_member_object_pointer: return UTT_IsMemberObjectPointer; 2252 case tok::kw___is_member_pointer: return UTT_IsMemberPointer; 2253 case tok::kw___is_object: return UTT_IsObject; 2254 case tok::kw___is_literal: return UTT_IsLiteral; 2255 case tok::kw___is_literal_type: return UTT_IsLiteral; 2256 case tok::kw___is_pod: return UTT_IsPOD; 2257 case tok::kw___is_pointer: return UTT_IsPointer; 2258 case tok::kw___is_polymorphic: return UTT_IsPolymorphic; 2259 case tok::kw___is_reference: return UTT_IsReference; 2260 case tok::kw___is_rvalue_reference: return UTT_IsRvalueReference; 2261 case tok::kw___is_scalar: return UTT_IsScalar; 2262 case tok::kw___is_signed: return UTT_IsSigned; 2263 case tok::kw___is_standard_layout: return UTT_IsStandardLayout; 2264 case tok::kw___is_trivial: return UTT_IsTrivial; 2265 case tok::kw___is_trivially_copyable: return UTT_IsTriviallyCopyable; 2266 case tok::kw___is_union: return UTT_IsUnion; 2267 case tok::kw___is_unsigned: return UTT_IsUnsigned; 2268 case tok::kw___is_void: return UTT_IsVoid; 2269 case tok::kw___is_volatile: return UTT_IsVolatile; 2270 } 2271 } 2272 2273 static BinaryTypeTrait BinaryTypeTraitFromTokKind(tok::TokenKind kind) { 2274 switch(kind) { 2275 default: llvm_unreachable("Not a known binary type trait"); 2276 case tok::kw___is_base_of: return BTT_IsBaseOf; 2277 case tok::kw___is_convertible: return BTT_IsConvertible; 2278 case tok::kw___is_same: return BTT_IsSame; 2279 case tok::kw___builtin_types_compatible_p: return BTT_TypeCompatible; 2280 case tok::kw___is_convertible_to: return BTT_IsConvertibleTo; 2281 } 2282 } 2283 2284 static ArrayTypeTrait ArrayTypeTraitFromTokKind(tok::TokenKind kind) { 2285 switch(kind) { 2286 default: llvm_unreachable("Not a known binary type trait"); 2287 case tok::kw___array_rank: return ATT_ArrayRank; 2288 case tok::kw___array_extent: return ATT_ArrayExtent; 2289 } 2290 } 2291 2292 static ExpressionTrait ExpressionTraitFromTokKind(tok::TokenKind kind) { 2293 switch(kind) { 2294 default: llvm_unreachable("Not a known unary expression trait."); 2295 case tok::kw___is_lvalue_expr: return ET_IsLValueExpr; 2296 case tok::kw___is_rvalue_expr: return ET_IsRValueExpr; 2297 } 2298 } 2299 2300 /// ParseUnaryTypeTrait - Parse the built-in unary type-trait 2301 /// pseudo-functions that allow implementation of the TR1/C++0x type traits 2302 /// templates. 2303 /// 2304 /// primary-expression: 2305 /// [GNU] unary-type-trait '(' type-id ')' 2306 /// 2307 ExprResult Parser::ParseUnaryTypeTrait() { 2308 UnaryTypeTrait UTT = UnaryTypeTraitFromTokKind(Tok.getKind()); 2309 SourceLocation Loc = ConsumeToken(); 2310 2311 BalancedDelimiterTracker T(*this, tok::l_paren); 2312 if (T.expectAndConsume(diag::err_expected_lparen)) 2313 return ExprError(); 2314 2315 // FIXME: Error reporting absolutely sucks! If the this fails to parse a type 2316 // there will be cryptic errors about mismatched parentheses and missing 2317 // specifiers. 2318 TypeResult Ty = ParseTypeName(); 2319 2320 T.consumeClose(); 2321 2322 if (Ty.isInvalid()) 2323 return ExprError(); 2324 2325 return Actions.ActOnUnaryTypeTrait(UTT, Loc, Ty.get(), T.getCloseLocation()); 2326 } 2327 2328 /// ParseBinaryTypeTrait - Parse the built-in binary type-trait 2329 /// pseudo-functions that allow implementation of the TR1/C++0x type traits 2330 /// templates. 2331 /// 2332 /// primary-expression: 2333 /// [GNU] binary-type-trait '(' type-id ',' type-id ')' 2334 /// 2335 ExprResult Parser::ParseBinaryTypeTrait() { 2336 BinaryTypeTrait BTT = BinaryTypeTraitFromTokKind(Tok.getKind()); 2337 SourceLocation Loc = ConsumeToken(); 2338 2339 BalancedDelimiterTracker T(*this, tok::l_paren); 2340 if (T.expectAndConsume(diag::err_expected_lparen)) 2341 return ExprError(); 2342 2343 TypeResult LhsTy = ParseTypeName(); 2344 if (LhsTy.isInvalid()) { 2345 SkipUntil(tok::r_paren); 2346 return ExprError(); 2347 } 2348 2349 if (ExpectAndConsume(tok::comma, diag::err_expected_comma)) { 2350 SkipUntil(tok::r_paren); 2351 return ExprError(); 2352 } 2353 2354 TypeResult RhsTy = ParseTypeName(); 2355 if (RhsTy.isInvalid()) { 2356 SkipUntil(tok::r_paren); 2357 return ExprError(); 2358 } 2359 2360 T.consumeClose(); 2361 2362 return Actions.ActOnBinaryTypeTrait(BTT, Loc, LhsTy.get(), RhsTy.get(), 2363 T.getCloseLocation()); 2364 } 2365 2366 /// ParseArrayTypeTrait - Parse the built-in array type-trait 2367 /// pseudo-functions. 2368 /// 2369 /// primary-expression: 2370 /// [Embarcadero] '__array_rank' '(' type-id ')' 2371 /// [Embarcadero] '__array_extent' '(' type-id ',' expression ')' 2372 /// 2373 ExprResult Parser::ParseArrayTypeTrait() { 2374 ArrayTypeTrait ATT = ArrayTypeTraitFromTokKind(Tok.getKind()); 2375 SourceLocation Loc = ConsumeToken(); 2376 2377 BalancedDelimiterTracker T(*this, tok::l_paren); 2378 if (T.expectAndConsume(diag::err_expected_lparen)) 2379 return ExprError(); 2380 2381 TypeResult Ty = ParseTypeName(); 2382 if (Ty.isInvalid()) { 2383 SkipUntil(tok::comma); 2384 SkipUntil(tok::r_paren); 2385 return ExprError(); 2386 } 2387 2388 switch (ATT) { 2389 case ATT_ArrayRank: { 2390 T.consumeClose(); 2391 return Actions.ActOnArrayTypeTrait(ATT, Loc, Ty.get(), NULL, 2392 T.getCloseLocation()); 2393 } 2394 case ATT_ArrayExtent: { 2395 if (ExpectAndConsume(tok::comma, diag::err_expected_comma)) { 2396 SkipUntil(tok::r_paren); 2397 return ExprError(); 2398 } 2399 2400 ExprResult DimExpr = ParseExpression(); 2401 T.consumeClose(); 2402 2403 return Actions.ActOnArrayTypeTrait(ATT, Loc, Ty.get(), DimExpr.get(), 2404 T.getCloseLocation()); 2405 } 2406 default: 2407 break; 2408 } 2409 return ExprError(); 2410 } 2411 2412 /// ParseExpressionTrait - Parse built-in expression-trait 2413 /// pseudo-functions like __is_lvalue_expr( xxx ). 2414 /// 2415 /// primary-expression: 2416 /// [Embarcadero] expression-trait '(' expression ')' 2417 /// 2418 ExprResult Parser::ParseExpressionTrait() { 2419 ExpressionTrait ET = ExpressionTraitFromTokKind(Tok.getKind()); 2420 SourceLocation Loc = ConsumeToken(); 2421 2422 BalancedDelimiterTracker T(*this, tok::l_paren); 2423 if (T.expectAndConsume(diag::err_expected_lparen)) 2424 return ExprError(); 2425 2426 ExprResult Expr = ParseExpression(); 2427 2428 T.consumeClose(); 2429 2430 return Actions.ActOnExpressionTrait(ET, Loc, Expr.get(), 2431 T.getCloseLocation()); 2432 } 2433 2434 2435 /// ParseCXXAmbiguousParenExpression - We have parsed the left paren of a 2436 /// parenthesized ambiguous type-id. This uses tentative parsing to disambiguate 2437 /// based on the context past the parens. 2438 ExprResult 2439 Parser::ParseCXXAmbiguousParenExpression(ParenParseOption &ExprType, 2440 ParsedType &CastTy, 2441 BalancedDelimiterTracker &Tracker) { 2442 assert(getLang().CPlusPlus && "Should only be called for C++!"); 2443 assert(ExprType == CastExpr && "Compound literals are not ambiguous!"); 2444 assert(isTypeIdInParens() && "Not a type-id!"); 2445 2446 ExprResult Result(true); 2447 CastTy = ParsedType(); 2448 2449 // We need to disambiguate a very ugly part of the C++ syntax: 2450 // 2451 // (T())x; - type-id 2452 // (T())*x; - type-id 2453 // (T())/x; - expression 2454 // (T()); - expression 2455 // 2456 // The bad news is that we cannot use the specialized tentative parser, since 2457 // it can only verify that the thing inside the parens can be parsed as 2458 // type-id, it is not useful for determining the context past the parens. 2459 // 2460 // The good news is that the parser can disambiguate this part without 2461 // making any unnecessary Action calls. 2462 // 2463 // It uses a scheme similar to parsing inline methods. The parenthesized 2464 // tokens are cached, the context that follows is determined (possibly by 2465 // parsing a cast-expression), and then we re-introduce the cached tokens 2466 // into the token stream and parse them appropriately. 2467 2468 ParenParseOption ParseAs; 2469 CachedTokens Toks; 2470 2471 // Store the tokens of the parentheses. We will parse them after we determine 2472 // the context that follows them. 2473 if (!ConsumeAndStoreUntil(tok::r_paren, Toks)) { 2474 // We didn't find the ')' we expected. 2475 Tracker.consumeClose(); 2476 return ExprError(); 2477 } 2478 2479 if (Tok.is(tok::l_brace)) { 2480 ParseAs = CompoundLiteral; 2481 } else { 2482 bool NotCastExpr; 2483 // FIXME: Special-case ++ and --: "(S())++;" is not a cast-expression 2484 if (Tok.is(tok::l_paren) && NextToken().is(tok::r_paren)) { 2485 NotCastExpr = true; 2486 } else { 2487 // Try parsing the cast-expression that may follow. 2488 // If it is not a cast-expression, NotCastExpr will be true and no token 2489 // will be consumed. 2490 Result = ParseCastExpression(false/*isUnaryExpression*/, 2491 false/*isAddressofOperand*/, 2492 NotCastExpr, 2493 // type-id has priority. 2494 true/*isTypeCast*/); 2495 } 2496 2497 // If we parsed a cast-expression, it's really a type-id, otherwise it's 2498 // an expression. 2499 ParseAs = NotCastExpr ? SimpleExpr : CastExpr; 2500 } 2501 2502 // The current token should go after the cached tokens. 2503 Toks.push_back(Tok); 2504 // Re-enter the stored parenthesized tokens into the token stream, so we may 2505 // parse them now. 2506 PP.EnterTokenStream(Toks.data(), Toks.size(), 2507 true/*DisableMacroExpansion*/, false/*OwnsTokens*/); 2508 // Drop the current token and bring the first cached one. It's the same token 2509 // as when we entered this function. 2510 ConsumeAnyToken(); 2511 2512 if (ParseAs >= CompoundLiteral) { 2513 // Parse the type declarator. 2514 DeclSpec DS(AttrFactory); 2515 ParseSpecifierQualifierList(DS); 2516 Declarator DeclaratorInfo(DS, Declarator::TypeNameContext); 2517 ParseDeclarator(DeclaratorInfo); 2518 2519 // Match the ')'. 2520 Tracker.consumeClose(); 2521 2522 if (ParseAs == CompoundLiteral) { 2523 ExprType = CompoundLiteral; 2524 TypeResult Ty = ParseTypeName(); 2525 return ParseCompoundLiteralExpression(Ty.get(), 2526 Tracker.getOpenLocation(), 2527 Tracker.getCloseLocation()); 2528 } 2529 2530 // We parsed '(' type-id ')' and the thing after it wasn't a '{'. 2531 assert(ParseAs == CastExpr); 2532 2533 if (DeclaratorInfo.isInvalidType()) 2534 return ExprError(); 2535 2536 // Result is what ParseCastExpression returned earlier. 2537 if (!Result.isInvalid()) 2538 Result = Actions.ActOnCastExpr(getCurScope(), Tracker.getOpenLocation(), 2539 DeclaratorInfo, CastTy, 2540 Tracker.getCloseLocation(), Result.take()); 2541 return move(Result); 2542 } 2543 2544 // Not a compound literal, and not followed by a cast-expression. 2545 assert(ParseAs == SimpleExpr); 2546 2547 ExprType = SimpleExpr; 2548 Result = ParseExpression(); 2549 if (!Result.isInvalid() && Tok.is(tok::r_paren)) 2550 Result = Actions.ActOnParenExpr(Tracker.getOpenLocation(), 2551 Tok.getLocation(), Result.take()); 2552 2553 // Match the ')'. 2554 if (Result.isInvalid()) { 2555 SkipUntil(tok::r_paren); 2556 return ExprError(); 2557 } 2558 2559 Tracker.consumeClose(); 2560 return move(Result); 2561 } 2562