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