SemaType.cpp 316 KB

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  1. //===--- SemaType.cpp - Semantic Analysis for Types -----------------------===//
  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 type-related semantic analysis.
  10. //
  11. //===----------------------------------------------------------------------===//
  12. #include "TypeLocBuilder.h"
  13. #include "clang/AST/ASTConsumer.h"
  14. #include "clang/AST/ASTContext.h"
  15. #include "clang/AST/ASTMutationListener.h"
  16. #include "clang/AST/ASTStructuralEquivalence.h"
  17. #include "clang/AST/CXXInheritance.h"
  18. #include "clang/AST/DeclObjC.h"
  19. #include "clang/AST/DeclTemplate.h"
  20. #include "clang/AST/Expr.h"
  21. #include "clang/AST/TypeLoc.h"
  22. #include "clang/AST/TypeLocVisitor.h"
  23. #include "clang/Basic/PartialDiagnostic.h"
  24. #include "clang/Basic/TargetInfo.h"
  25. #include "clang/Lex/Preprocessor.h"
  26. #include "clang/Sema/DeclSpec.h"
  27. #include "clang/Sema/DelayedDiagnostic.h"
  28. #include "clang/Sema/Lookup.h"
  29. #include "clang/Sema/ScopeInfo.h"
  30. #include "clang/Sema/SemaInternal.h"
  31. #include "clang/Sema/Template.h"
  32. #include "clang/Sema/TemplateInstCallback.h"
  33. #include "llvm/ADT/SmallPtrSet.h"
  34. #include "llvm/ADT/SmallString.h"
  35. #include "llvm/ADT/StringSwitch.h"
  36. #include "llvm/Support/ErrorHandling.h"
  37. using namespace clang;
  38. enum TypeDiagSelector {
  39. TDS_Function,
  40. TDS_Pointer,
  41. TDS_ObjCObjOrBlock
  42. };
  43. /// isOmittedBlockReturnType - Return true if this declarator is missing a
  44. /// return type because this is a omitted return type on a block literal.
  45. static bool isOmittedBlockReturnType(const Declarator &D) {
  46. if (D.getContext() != DeclaratorContext::BlockLiteralContext ||
  47. D.getDeclSpec().hasTypeSpecifier())
  48. return false;
  49. if (D.getNumTypeObjects() == 0)
  50. return true; // ^{ ... }
  51. if (D.getNumTypeObjects() == 1 &&
  52. D.getTypeObject(0).Kind == DeclaratorChunk::Function)
  53. return true; // ^(int X, float Y) { ... }
  54. return false;
  55. }
  56. /// diagnoseBadTypeAttribute - Diagnoses a type attribute which
  57. /// doesn't apply to the given type.
  58. static void diagnoseBadTypeAttribute(Sema &S, const ParsedAttr &attr,
  59. QualType type) {
  60. TypeDiagSelector WhichType;
  61. bool useExpansionLoc = true;
  62. switch (attr.getKind()) {
  63. case ParsedAttr::AT_ObjCGC:
  64. WhichType = TDS_Pointer;
  65. break;
  66. case ParsedAttr::AT_ObjCOwnership:
  67. WhichType = TDS_ObjCObjOrBlock;
  68. break;
  69. default:
  70. // Assume everything else was a function attribute.
  71. WhichType = TDS_Function;
  72. useExpansionLoc = false;
  73. break;
  74. }
  75. SourceLocation loc = attr.getLoc();
  76. StringRef name = attr.getAttrName()->getName();
  77. // The GC attributes are usually written with macros; special-case them.
  78. IdentifierInfo *II = attr.isArgIdent(0) ? attr.getArgAsIdent(0)->Ident
  79. : nullptr;
  80. if (useExpansionLoc && loc.isMacroID() && II) {
  81. if (II->isStr("strong")) {
  82. if (S.findMacroSpelling(loc, "__strong")) name = "__strong";
  83. } else if (II->isStr("weak")) {
  84. if (S.findMacroSpelling(loc, "__weak")) name = "__weak";
  85. }
  86. }
  87. S.Diag(loc, diag::warn_type_attribute_wrong_type) << name << WhichType
  88. << type;
  89. }
  90. // objc_gc applies to Objective-C pointers or, otherwise, to the
  91. // smallest available pointer type (i.e. 'void*' in 'void**').
  92. #define OBJC_POINTER_TYPE_ATTRS_CASELIST \
  93. case ParsedAttr::AT_ObjCGC: \
  94. case ParsedAttr::AT_ObjCOwnership
  95. // Calling convention attributes.
  96. #define CALLING_CONV_ATTRS_CASELIST \
  97. case ParsedAttr::AT_CDecl: \
  98. case ParsedAttr::AT_FastCall: \
  99. case ParsedAttr::AT_StdCall: \
  100. case ParsedAttr::AT_ThisCall: \
  101. case ParsedAttr::AT_RegCall: \
  102. case ParsedAttr::AT_Pascal: \
  103. case ParsedAttr::AT_SwiftCall: \
  104. case ParsedAttr::AT_VectorCall: \
  105. case ParsedAttr::AT_AArch64VectorPcs: \
  106. case ParsedAttr::AT_MSABI: \
  107. case ParsedAttr::AT_SysVABI: \
  108. case ParsedAttr::AT_Pcs: \
  109. case ParsedAttr::AT_IntelOclBicc: \
  110. case ParsedAttr::AT_PreserveMost: \
  111. case ParsedAttr::AT_PreserveAll
  112. // Function type attributes.
  113. #define FUNCTION_TYPE_ATTRS_CASELIST \
  114. case ParsedAttr::AT_NSReturnsRetained: \
  115. case ParsedAttr::AT_NoReturn: \
  116. case ParsedAttr::AT_Regparm: \
  117. case ParsedAttr::AT_AnyX86NoCallerSavedRegisters: \
  118. case ParsedAttr::AT_AnyX86NoCfCheck: \
  119. CALLING_CONV_ATTRS_CASELIST
  120. // Microsoft-specific type qualifiers.
  121. #define MS_TYPE_ATTRS_CASELIST \
  122. case ParsedAttr::AT_Ptr32: \
  123. case ParsedAttr::AT_Ptr64: \
  124. case ParsedAttr::AT_SPtr: \
  125. case ParsedAttr::AT_UPtr
  126. // Nullability qualifiers.
  127. #define NULLABILITY_TYPE_ATTRS_CASELIST \
  128. case ParsedAttr::AT_TypeNonNull: \
  129. case ParsedAttr::AT_TypeNullable: \
  130. case ParsedAttr::AT_TypeNullUnspecified
  131. namespace {
  132. /// An object which stores processing state for the entire
  133. /// GetTypeForDeclarator process.
  134. class TypeProcessingState {
  135. Sema &sema;
  136. /// The declarator being processed.
  137. Declarator &declarator;
  138. /// The index of the declarator chunk we're currently processing.
  139. /// May be the total number of valid chunks, indicating the
  140. /// DeclSpec.
  141. unsigned chunkIndex;
  142. /// Whether there are non-trivial modifications to the decl spec.
  143. bool trivial;
  144. /// Whether we saved the attributes in the decl spec.
  145. bool hasSavedAttrs;
  146. /// The original set of attributes on the DeclSpec.
  147. SmallVector<ParsedAttr *, 2> savedAttrs;
  148. /// A list of attributes to diagnose the uselessness of when the
  149. /// processing is complete.
  150. SmallVector<ParsedAttr *, 2> ignoredTypeAttrs;
  151. /// Attributes corresponding to AttributedTypeLocs that we have not yet
  152. /// populated.
  153. // FIXME: The two-phase mechanism by which we construct Types and fill
  154. // their TypeLocs makes it hard to correctly assign these. We keep the
  155. // attributes in creation order as an attempt to make them line up
  156. // properly.
  157. using TypeAttrPair = std::pair<const AttributedType*, const Attr*>;
  158. SmallVector<TypeAttrPair, 8> AttrsForTypes;
  159. bool AttrsForTypesSorted = true;
  160. /// MacroQualifiedTypes mapping to macro expansion locations that will be
  161. /// stored in a MacroQualifiedTypeLoc.
  162. llvm::DenseMap<const MacroQualifiedType *, SourceLocation> LocsForMacros;
  163. /// Flag to indicate we parsed a noderef attribute. This is used for
  164. /// validating that noderef was used on a pointer or array.
  165. bool parsedNoDeref;
  166. public:
  167. TypeProcessingState(Sema &sema, Declarator &declarator)
  168. : sema(sema), declarator(declarator),
  169. chunkIndex(declarator.getNumTypeObjects()), trivial(true),
  170. hasSavedAttrs(false), parsedNoDeref(false) {}
  171. Sema &getSema() const {
  172. return sema;
  173. }
  174. Declarator &getDeclarator() const {
  175. return declarator;
  176. }
  177. bool isProcessingDeclSpec() const {
  178. return chunkIndex == declarator.getNumTypeObjects();
  179. }
  180. unsigned getCurrentChunkIndex() const {
  181. return chunkIndex;
  182. }
  183. void setCurrentChunkIndex(unsigned idx) {
  184. assert(idx <= declarator.getNumTypeObjects());
  185. chunkIndex = idx;
  186. }
  187. ParsedAttributesView &getCurrentAttributes() const {
  188. if (isProcessingDeclSpec())
  189. return getMutableDeclSpec().getAttributes();
  190. return declarator.getTypeObject(chunkIndex).getAttrs();
  191. }
  192. /// Save the current set of attributes on the DeclSpec.
  193. void saveDeclSpecAttrs() {
  194. // Don't try to save them multiple times.
  195. if (hasSavedAttrs) return;
  196. DeclSpec &spec = getMutableDeclSpec();
  197. for (ParsedAttr &AL : spec.getAttributes())
  198. savedAttrs.push_back(&AL);
  199. trivial &= savedAttrs.empty();
  200. hasSavedAttrs = true;
  201. }
  202. /// Record that we had nowhere to put the given type attribute.
  203. /// We will diagnose such attributes later.
  204. void addIgnoredTypeAttr(ParsedAttr &attr) {
  205. ignoredTypeAttrs.push_back(&attr);
  206. }
  207. /// Diagnose all the ignored type attributes, given that the
  208. /// declarator worked out to the given type.
  209. void diagnoseIgnoredTypeAttrs(QualType type) const {
  210. for (auto *Attr : ignoredTypeAttrs)
  211. diagnoseBadTypeAttribute(getSema(), *Attr, type);
  212. }
  213. /// Get an attributed type for the given attribute, and remember the Attr
  214. /// object so that we can attach it to the AttributedTypeLoc.
  215. QualType getAttributedType(Attr *A, QualType ModifiedType,
  216. QualType EquivType) {
  217. QualType T =
  218. sema.Context.getAttributedType(A->getKind(), ModifiedType, EquivType);
  219. AttrsForTypes.push_back({cast<AttributedType>(T.getTypePtr()), A});
  220. AttrsForTypesSorted = false;
  221. return T;
  222. }
  223. /// Completely replace the \c auto in \p TypeWithAuto by
  224. /// \p Replacement. Also replace \p TypeWithAuto in \c TypeAttrPair if
  225. /// necessary.
  226. QualType ReplaceAutoType(QualType TypeWithAuto, QualType Replacement) {
  227. QualType T = sema.ReplaceAutoType(TypeWithAuto, Replacement);
  228. if (auto *AttrTy = TypeWithAuto->getAs<AttributedType>()) {
  229. // Attributed type still should be an attributed type after replacement.
  230. auto *NewAttrTy = cast<AttributedType>(T.getTypePtr());
  231. for (TypeAttrPair &A : AttrsForTypes) {
  232. if (A.first == AttrTy)
  233. A.first = NewAttrTy;
  234. }
  235. AttrsForTypesSorted = false;
  236. }
  237. return T;
  238. }
  239. /// Extract and remove the Attr* for a given attributed type.
  240. const Attr *takeAttrForAttributedType(const AttributedType *AT) {
  241. if (!AttrsForTypesSorted) {
  242. llvm::stable_sort(AttrsForTypes, llvm::less_first());
  243. AttrsForTypesSorted = true;
  244. }
  245. // FIXME: This is quadratic if we have lots of reuses of the same
  246. // attributed type.
  247. for (auto It = std::partition_point(
  248. AttrsForTypes.begin(), AttrsForTypes.end(),
  249. [=](const TypeAttrPair &A) { return A.first < AT; });
  250. It != AttrsForTypes.end() && It->first == AT; ++It) {
  251. if (It->second) {
  252. const Attr *Result = It->second;
  253. It->second = nullptr;
  254. return Result;
  255. }
  256. }
  257. llvm_unreachable("no Attr* for AttributedType*");
  258. }
  259. SourceLocation
  260. getExpansionLocForMacroQualifiedType(const MacroQualifiedType *MQT) const {
  261. auto FoundLoc = LocsForMacros.find(MQT);
  262. assert(FoundLoc != LocsForMacros.end() &&
  263. "Unable to find macro expansion location for MacroQualifedType");
  264. return FoundLoc->second;
  265. }
  266. void setExpansionLocForMacroQualifiedType(const MacroQualifiedType *MQT,
  267. SourceLocation Loc) {
  268. LocsForMacros[MQT] = Loc;
  269. }
  270. void setParsedNoDeref(bool parsed) { parsedNoDeref = parsed; }
  271. bool didParseNoDeref() const { return parsedNoDeref; }
  272. ~TypeProcessingState() {
  273. if (trivial) return;
  274. restoreDeclSpecAttrs();
  275. }
  276. private:
  277. DeclSpec &getMutableDeclSpec() const {
  278. return const_cast<DeclSpec&>(declarator.getDeclSpec());
  279. }
  280. void restoreDeclSpecAttrs() {
  281. assert(hasSavedAttrs);
  282. getMutableDeclSpec().getAttributes().clearListOnly();
  283. for (ParsedAttr *AL : savedAttrs)
  284. getMutableDeclSpec().getAttributes().addAtEnd(AL);
  285. }
  286. };
  287. } // end anonymous namespace
  288. static void moveAttrFromListToList(ParsedAttr &attr,
  289. ParsedAttributesView &fromList,
  290. ParsedAttributesView &toList) {
  291. fromList.remove(&attr);
  292. toList.addAtEnd(&attr);
  293. }
  294. /// The location of a type attribute.
  295. enum TypeAttrLocation {
  296. /// The attribute is in the decl-specifier-seq.
  297. TAL_DeclSpec,
  298. /// The attribute is part of a DeclaratorChunk.
  299. TAL_DeclChunk,
  300. /// The attribute is immediately after the declaration's name.
  301. TAL_DeclName
  302. };
  303. static void processTypeAttrs(TypeProcessingState &state, QualType &type,
  304. TypeAttrLocation TAL, ParsedAttributesView &attrs);
  305. static bool handleFunctionTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
  306. QualType &type);
  307. static bool handleMSPointerTypeQualifierAttr(TypeProcessingState &state,
  308. ParsedAttr &attr, QualType &type);
  309. static bool handleObjCGCTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
  310. QualType &type);
  311. static bool handleObjCOwnershipTypeAttr(TypeProcessingState &state,
  312. ParsedAttr &attr, QualType &type);
  313. static bool handleObjCPointerTypeAttr(TypeProcessingState &state,
  314. ParsedAttr &attr, QualType &type) {
  315. if (attr.getKind() == ParsedAttr::AT_ObjCGC)
  316. return handleObjCGCTypeAttr(state, attr, type);
  317. assert(attr.getKind() == ParsedAttr::AT_ObjCOwnership);
  318. return handleObjCOwnershipTypeAttr(state, attr, type);
  319. }
  320. /// Given the index of a declarator chunk, check whether that chunk
  321. /// directly specifies the return type of a function and, if so, find
  322. /// an appropriate place for it.
  323. ///
  324. /// \param i - a notional index which the search will start
  325. /// immediately inside
  326. ///
  327. /// \param onlyBlockPointers Whether we should only look into block
  328. /// pointer types (vs. all pointer types).
  329. static DeclaratorChunk *maybeMovePastReturnType(Declarator &declarator,
  330. unsigned i,
  331. bool onlyBlockPointers) {
  332. assert(i <= declarator.getNumTypeObjects());
  333. DeclaratorChunk *result = nullptr;
  334. // First, look inwards past parens for a function declarator.
  335. for (; i != 0; --i) {
  336. DeclaratorChunk &fnChunk = declarator.getTypeObject(i-1);
  337. switch (fnChunk.Kind) {
  338. case DeclaratorChunk::Paren:
  339. continue;
  340. // If we find anything except a function, bail out.
  341. case DeclaratorChunk::Pointer:
  342. case DeclaratorChunk::BlockPointer:
  343. case DeclaratorChunk::Array:
  344. case DeclaratorChunk::Reference:
  345. case DeclaratorChunk::MemberPointer:
  346. case DeclaratorChunk::Pipe:
  347. return result;
  348. // If we do find a function declarator, scan inwards from that,
  349. // looking for a (block-)pointer declarator.
  350. case DeclaratorChunk::Function:
  351. for (--i; i != 0; --i) {
  352. DeclaratorChunk &ptrChunk = declarator.getTypeObject(i-1);
  353. switch (ptrChunk.Kind) {
  354. case DeclaratorChunk::Paren:
  355. case DeclaratorChunk::Array:
  356. case DeclaratorChunk::Function:
  357. case DeclaratorChunk::Reference:
  358. case DeclaratorChunk::Pipe:
  359. continue;
  360. case DeclaratorChunk::MemberPointer:
  361. case DeclaratorChunk::Pointer:
  362. if (onlyBlockPointers)
  363. continue;
  364. LLVM_FALLTHROUGH;
  365. case DeclaratorChunk::BlockPointer:
  366. result = &ptrChunk;
  367. goto continue_outer;
  368. }
  369. llvm_unreachable("bad declarator chunk kind");
  370. }
  371. // If we run out of declarators doing that, we're done.
  372. return result;
  373. }
  374. llvm_unreachable("bad declarator chunk kind");
  375. // Okay, reconsider from our new point.
  376. continue_outer: ;
  377. }
  378. // Ran out of chunks, bail out.
  379. return result;
  380. }
  381. /// Given that an objc_gc attribute was written somewhere on a
  382. /// declaration *other* than on the declarator itself (for which, use
  383. /// distributeObjCPointerTypeAttrFromDeclarator), and given that it
  384. /// didn't apply in whatever position it was written in, try to move
  385. /// it to a more appropriate position.
  386. static void distributeObjCPointerTypeAttr(TypeProcessingState &state,
  387. ParsedAttr &attr, QualType type) {
  388. Declarator &declarator = state.getDeclarator();
  389. // Move it to the outermost normal or block pointer declarator.
  390. for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) {
  391. DeclaratorChunk &chunk = declarator.getTypeObject(i-1);
  392. switch (chunk.Kind) {
  393. case DeclaratorChunk::Pointer:
  394. case DeclaratorChunk::BlockPointer: {
  395. // But don't move an ARC ownership attribute to the return type
  396. // of a block.
  397. DeclaratorChunk *destChunk = nullptr;
  398. if (state.isProcessingDeclSpec() &&
  399. attr.getKind() == ParsedAttr::AT_ObjCOwnership)
  400. destChunk = maybeMovePastReturnType(declarator, i - 1,
  401. /*onlyBlockPointers=*/true);
  402. if (!destChunk) destChunk = &chunk;
  403. moveAttrFromListToList(attr, state.getCurrentAttributes(),
  404. destChunk->getAttrs());
  405. return;
  406. }
  407. case DeclaratorChunk::Paren:
  408. case DeclaratorChunk::Array:
  409. continue;
  410. // We may be starting at the return type of a block.
  411. case DeclaratorChunk::Function:
  412. if (state.isProcessingDeclSpec() &&
  413. attr.getKind() == ParsedAttr::AT_ObjCOwnership) {
  414. if (DeclaratorChunk *dest = maybeMovePastReturnType(
  415. declarator, i,
  416. /*onlyBlockPointers=*/true)) {
  417. moveAttrFromListToList(attr, state.getCurrentAttributes(),
  418. dest->getAttrs());
  419. return;
  420. }
  421. }
  422. goto error;
  423. // Don't walk through these.
  424. case DeclaratorChunk::Reference:
  425. case DeclaratorChunk::MemberPointer:
  426. case DeclaratorChunk::Pipe:
  427. goto error;
  428. }
  429. }
  430. error:
  431. diagnoseBadTypeAttribute(state.getSema(), attr, type);
  432. }
  433. /// Distribute an objc_gc type attribute that was written on the
  434. /// declarator.
  435. static void distributeObjCPointerTypeAttrFromDeclarator(
  436. TypeProcessingState &state, ParsedAttr &attr, QualType &declSpecType) {
  437. Declarator &declarator = state.getDeclarator();
  438. // objc_gc goes on the innermost pointer to something that's not a
  439. // pointer.
  440. unsigned innermost = -1U;
  441. bool considerDeclSpec = true;
  442. for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) {
  443. DeclaratorChunk &chunk = declarator.getTypeObject(i);
  444. switch (chunk.Kind) {
  445. case DeclaratorChunk::Pointer:
  446. case DeclaratorChunk::BlockPointer:
  447. innermost = i;
  448. continue;
  449. case DeclaratorChunk::Reference:
  450. case DeclaratorChunk::MemberPointer:
  451. case DeclaratorChunk::Paren:
  452. case DeclaratorChunk::Array:
  453. case DeclaratorChunk::Pipe:
  454. continue;
  455. case DeclaratorChunk::Function:
  456. considerDeclSpec = false;
  457. goto done;
  458. }
  459. }
  460. done:
  461. // That might actually be the decl spec if we weren't blocked by
  462. // anything in the declarator.
  463. if (considerDeclSpec) {
  464. if (handleObjCPointerTypeAttr(state, attr, declSpecType)) {
  465. // Splice the attribute into the decl spec. Prevents the
  466. // attribute from being applied multiple times and gives
  467. // the source-location-filler something to work with.
  468. state.saveDeclSpecAttrs();
  469. declarator.getMutableDeclSpec().getAttributes().takeOneFrom(
  470. declarator.getAttributes(), &attr);
  471. return;
  472. }
  473. }
  474. // Otherwise, if we found an appropriate chunk, splice the attribute
  475. // into it.
  476. if (innermost != -1U) {
  477. moveAttrFromListToList(attr, declarator.getAttributes(),
  478. declarator.getTypeObject(innermost).getAttrs());
  479. return;
  480. }
  481. // Otherwise, diagnose when we're done building the type.
  482. declarator.getAttributes().remove(&attr);
  483. state.addIgnoredTypeAttr(attr);
  484. }
  485. /// A function type attribute was written somewhere in a declaration
  486. /// *other* than on the declarator itself or in the decl spec. Given
  487. /// that it didn't apply in whatever position it was written in, try
  488. /// to move it to a more appropriate position.
  489. static void distributeFunctionTypeAttr(TypeProcessingState &state,
  490. ParsedAttr &attr, QualType type) {
  491. Declarator &declarator = state.getDeclarator();
  492. // Try to push the attribute from the return type of a function to
  493. // the function itself.
  494. for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) {
  495. DeclaratorChunk &chunk = declarator.getTypeObject(i-1);
  496. switch (chunk.Kind) {
  497. case DeclaratorChunk::Function:
  498. moveAttrFromListToList(attr, state.getCurrentAttributes(),
  499. chunk.getAttrs());
  500. return;
  501. case DeclaratorChunk::Paren:
  502. case DeclaratorChunk::Pointer:
  503. case DeclaratorChunk::BlockPointer:
  504. case DeclaratorChunk::Array:
  505. case DeclaratorChunk::Reference:
  506. case DeclaratorChunk::MemberPointer:
  507. case DeclaratorChunk::Pipe:
  508. continue;
  509. }
  510. }
  511. diagnoseBadTypeAttribute(state.getSema(), attr, type);
  512. }
  513. /// Try to distribute a function type attribute to the innermost
  514. /// function chunk or type. Returns true if the attribute was
  515. /// distributed, false if no location was found.
  516. static bool distributeFunctionTypeAttrToInnermost(
  517. TypeProcessingState &state, ParsedAttr &attr,
  518. ParsedAttributesView &attrList, QualType &declSpecType) {
  519. Declarator &declarator = state.getDeclarator();
  520. // Put it on the innermost function chunk, if there is one.
  521. for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) {
  522. DeclaratorChunk &chunk = declarator.getTypeObject(i);
  523. if (chunk.Kind != DeclaratorChunk::Function) continue;
  524. moveAttrFromListToList(attr, attrList, chunk.getAttrs());
  525. return true;
  526. }
  527. return handleFunctionTypeAttr(state, attr, declSpecType);
  528. }
  529. /// A function type attribute was written in the decl spec. Try to
  530. /// apply it somewhere.
  531. static void distributeFunctionTypeAttrFromDeclSpec(TypeProcessingState &state,
  532. ParsedAttr &attr,
  533. QualType &declSpecType) {
  534. state.saveDeclSpecAttrs();
  535. // C++11 attributes before the decl specifiers actually appertain to
  536. // the declarators. Move them straight there. We don't support the
  537. // 'put them wherever you like' semantics we allow for GNU attributes.
  538. if (attr.isCXX11Attribute()) {
  539. moveAttrFromListToList(attr, state.getCurrentAttributes(),
  540. state.getDeclarator().getAttributes());
  541. return;
  542. }
  543. // Try to distribute to the innermost.
  544. if (distributeFunctionTypeAttrToInnermost(
  545. state, attr, state.getCurrentAttributes(), declSpecType))
  546. return;
  547. // If that failed, diagnose the bad attribute when the declarator is
  548. // fully built.
  549. state.addIgnoredTypeAttr(attr);
  550. }
  551. /// A function type attribute was written on the declarator. Try to
  552. /// apply it somewhere.
  553. static void distributeFunctionTypeAttrFromDeclarator(TypeProcessingState &state,
  554. ParsedAttr &attr,
  555. QualType &declSpecType) {
  556. Declarator &declarator = state.getDeclarator();
  557. // Try to distribute to the innermost.
  558. if (distributeFunctionTypeAttrToInnermost(
  559. state, attr, declarator.getAttributes(), declSpecType))
  560. return;
  561. // If that failed, diagnose the bad attribute when the declarator is
  562. // fully built.
  563. declarator.getAttributes().remove(&attr);
  564. state.addIgnoredTypeAttr(attr);
  565. }
  566. /// Given that there are attributes written on the declarator
  567. /// itself, try to distribute any type attributes to the appropriate
  568. /// declarator chunk.
  569. ///
  570. /// These are attributes like the following:
  571. /// int f ATTR;
  572. /// int (f ATTR)();
  573. /// but not necessarily this:
  574. /// int f() ATTR;
  575. static void distributeTypeAttrsFromDeclarator(TypeProcessingState &state,
  576. QualType &declSpecType) {
  577. // Collect all the type attributes from the declarator itself.
  578. assert(!state.getDeclarator().getAttributes().empty() &&
  579. "declarator has no attrs!");
  580. // The called functions in this loop actually remove things from the current
  581. // list, so iterating over the existing list isn't possible. Instead, make a
  582. // non-owning copy and iterate over that.
  583. ParsedAttributesView AttrsCopy{state.getDeclarator().getAttributes()};
  584. for (ParsedAttr &attr : AttrsCopy) {
  585. // Do not distribute C++11 attributes. They have strict rules for what
  586. // they appertain to.
  587. if (attr.isCXX11Attribute())
  588. continue;
  589. switch (attr.getKind()) {
  590. OBJC_POINTER_TYPE_ATTRS_CASELIST:
  591. distributeObjCPointerTypeAttrFromDeclarator(state, attr, declSpecType);
  592. break;
  593. FUNCTION_TYPE_ATTRS_CASELIST:
  594. distributeFunctionTypeAttrFromDeclarator(state, attr, declSpecType);
  595. break;
  596. MS_TYPE_ATTRS_CASELIST:
  597. // Microsoft type attributes cannot go after the declarator-id.
  598. continue;
  599. NULLABILITY_TYPE_ATTRS_CASELIST:
  600. // Nullability specifiers cannot go after the declarator-id.
  601. // Objective-C __kindof does not get distributed.
  602. case ParsedAttr::AT_ObjCKindOf:
  603. continue;
  604. default:
  605. break;
  606. }
  607. }
  608. }
  609. /// Add a synthetic '()' to a block-literal declarator if it is
  610. /// required, given the return type.
  611. static void maybeSynthesizeBlockSignature(TypeProcessingState &state,
  612. QualType declSpecType) {
  613. Declarator &declarator = state.getDeclarator();
  614. // First, check whether the declarator would produce a function,
  615. // i.e. whether the innermost semantic chunk is a function.
  616. if (declarator.isFunctionDeclarator()) {
  617. // If so, make that declarator a prototyped declarator.
  618. declarator.getFunctionTypeInfo().hasPrototype = true;
  619. return;
  620. }
  621. // If there are any type objects, the type as written won't name a
  622. // function, regardless of the decl spec type. This is because a
  623. // block signature declarator is always an abstract-declarator, and
  624. // abstract-declarators can't just be parentheses chunks. Therefore
  625. // we need to build a function chunk unless there are no type
  626. // objects and the decl spec type is a function.
  627. if (!declarator.getNumTypeObjects() && declSpecType->isFunctionType())
  628. return;
  629. // Note that there *are* cases with invalid declarators where
  630. // declarators consist solely of parentheses. In general, these
  631. // occur only in failed efforts to make function declarators, so
  632. // faking up the function chunk is still the right thing to do.
  633. // Otherwise, we need to fake up a function declarator.
  634. SourceLocation loc = declarator.getBeginLoc();
  635. // ...and *prepend* it to the declarator.
  636. SourceLocation NoLoc;
  637. declarator.AddInnermostTypeInfo(DeclaratorChunk::getFunction(
  638. /*HasProto=*/true,
  639. /*IsAmbiguous=*/false,
  640. /*LParenLoc=*/NoLoc,
  641. /*ArgInfo=*/nullptr,
  642. /*NumParams=*/0,
  643. /*EllipsisLoc=*/NoLoc,
  644. /*RParenLoc=*/NoLoc,
  645. /*RefQualifierIsLvalueRef=*/true,
  646. /*RefQualifierLoc=*/NoLoc,
  647. /*MutableLoc=*/NoLoc, EST_None,
  648. /*ESpecRange=*/SourceRange(),
  649. /*Exceptions=*/nullptr,
  650. /*ExceptionRanges=*/nullptr,
  651. /*NumExceptions=*/0,
  652. /*NoexceptExpr=*/nullptr,
  653. /*ExceptionSpecTokens=*/nullptr,
  654. /*DeclsInPrototype=*/None, loc, loc, declarator));
  655. // For consistency, make sure the state still has us as processing
  656. // the decl spec.
  657. assert(state.getCurrentChunkIndex() == declarator.getNumTypeObjects() - 1);
  658. state.setCurrentChunkIndex(declarator.getNumTypeObjects());
  659. }
  660. static void diagnoseAndRemoveTypeQualifiers(Sema &S, const DeclSpec &DS,
  661. unsigned &TypeQuals,
  662. QualType TypeSoFar,
  663. unsigned RemoveTQs,
  664. unsigned DiagID) {
  665. // If this occurs outside a template instantiation, warn the user about
  666. // it; they probably didn't mean to specify a redundant qualifier.
  667. typedef std::pair<DeclSpec::TQ, SourceLocation> QualLoc;
  668. for (QualLoc Qual : {QualLoc(DeclSpec::TQ_const, DS.getConstSpecLoc()),
  669. QualLoc(DeclSpec::TQ_restrict, DS.getRestrictSpecLoc()),
  670. QualLoc(DeclSpec::TQ_volatile, DS.getVolatileSpecLoc()),
  671. QualLoc(DeclSpec::TQ_atomic, DS.getAtomicSpecLoc())}) {
  672. if (!(RemoveTQs & Qual.first))
  673. continue;
  674. if (!S.inTemplateInstantiation()) {
  675. if (TypeQuals & Qual.first)
  676. S.Diag(Qual.second, DiagID)
  677. << DeclSpec::getSpecifierName(Qual.first) << TypeSoFar
  678. << FixItHint::CreateRemoval(Qual.second);
  679. }
  680. TypeQuals &= ~Qual.first;
  681. }
  682. }
  683. /// Return true if this is omitted block return type. Also check type
  684. /// attributes and type qualifiers when returning true.
  685. static bool checkOmittedBlockReturnType(Sema &S, Declarator &declarator,
  686. QualType Result) {
  687. if (!isOmittedBlockReturnType(declarator))
  688. return false;
  689. // Warn if we see type attributes for omitted return type on a block literal.
  690. SmallVector<ParsedAttr *, 2> ToBeRemoved;
  691. for (ParsedAttr &AL : declarator.getMutableDeclSpec().getAttributes()) {
  692. if (AL.isInvalid() || !AL.isTypeAttr())
  693. continue;
  694. S.Diag(AL.getLoc(),
  695. diag::warn_block_literal_attributes_on_omitted_return_type)
  696. << AL;
  697. ToBeRemoved.push_back(&AL);
  698. }
  699. // Remove bad attributes from the list.
  700. for (ParsedAttr *AL : ToBeRemoved)
  701. declarator.getMutableDeclSpec().getAttributes().remove(AL);
  702. // Warn if we see type qualifiers for omitted return type on a block literal.
  703. const DeclSpec &DS = declarator.getDeclSpec();
  704. unsigned TypeQuals = DS.getTypeQualifiers();
  705. diagnoseAndRemoveTypeQualifiers(S, DS, TypeQuals, Result, (unsigned)-1,
  706. diag::warn_block_literal_qualifiers_on_omitted_return_type);
  707. declarator.getMutableDeclSpec().ClearTypeQualifiers();
  708. return true;
  709. }
  710. /// Apply Objective-C type arguments to the given type.
  711. static QualType applyObjCTypeArgs(Sema &S, SourceLocation loc, QualType type,
  712. ArrayRef<TypeSourceInfo *> typeArgs,
  713. SourceRange typeArgsRange,
  714. bool failOnError = false) {
  715. // We can only apply type arguments to an Objective-C class type.
  716. const auto *objcObjectType = type->getAs<ObjCObjectType>();
  717. if (!objcObjectType || !objcObjectType->getInterface()) {
  718. S.Diag(loc, diag::err_objc_type_args_non_class)
  719. << type
  720. << typeArgsRange;
  721. if (failOnError)
  722. return QualType();
  723. return type;
  724. }
  725. // The class type must be parameterized.
  726. ObjCInterfaceDecl *objcClass = objcObjectType->getInterface();
  727. ObjCTypeParamList *typeParams = objcClass->getTypeParamList();
  728. if (!typeParams) {
  729. S.Diag(loc, diag::err_objc_type_args_non_parameterized_class)
  730. << objcClass->getDeclName()
  731. << FixItHint::CreateRemoval(typeArgsRange);
  732. if (failOnError)
  733. return QualType();
  734. return type;
  735. }
  736. // The type must not already be specialized.
  737. if (objcObjectType->isSpecialized()) {
  738. S.Diag(loc, diag::err_objc_type_args_specialized_class)
  739. << type
  740. << FixItHint::CreateRemoval(typeArgsRange);
  741. if (failOnError)
  742. return QualType();
  743. return type;
  744. }
  745. // Check the type arguments.
  746. SmallVector<QualType, 4> finalTypeArgs;
  747. unsigned numTypeParams = typeParams->size();
  748. bool anyPackExpansions = false;
  749. for (unsigned i = 0, n = typeArgs.size(); i != n; ++i) {
  750. TypeSourceInfo *typeArgInfo = typeArgs[i];
  751. QualType typeArg = typeArgInfo->getType();
  752. // Type arguments cannot have explicit qualifiers or nullability.
  753. // We ignore indirect sources of these, e.g. behind typedefs or
  754. // template arguments.
  755. if (TypeLoc qual = typeArgInfo->getTypeLoc().findExplicitQualifierLoc()) {
  756. bool diagnosed = false;
  757. SourceRange rangeToRemove;
  758. if (auto attr = qual.getAs<AttributedTypeLoc>()) {
  759. rangeToRemove = attr.getLocalSourceRange();
  760. if (attr.getTypePtr()->getImmediateNullability()) {
  761. typeArg = attr.getTypePtr()->getModifiedType();
  762. S.Diag(attr.getBeginLoc(),
  763. diag::err_objc_type_arg_explicit_nullability)
  764. << typeArg << FixItHint::CreateRemoval(rangeToRemove);
  765. diagnosed = true;
  766. }
  767. }
  768. if (!diagnosed) {
  769. S.Diag(qual.getBeginLoc(), diag::err_objc_type_arg_qualified)
  770. << typeArg << typeArg.getQualifiers().getAsString()
  771. << FixItHint::CreateRemoval(rangeToRemove);
  772. }
  773. }
  774. // Remove qualifiers even if they're non-local.
  775. typeArg = typeArg.getUnqualifiedType();
  776. finalTypeArgs.push_back(typeArg);
  777. if (typeArg->getAs<PackExpansionType>())
  778. anyPackExpansions = true;
  779. // Find the corresponding type parameter, if there is one.
  780. ObjCTypeParamDecl *typeParam = nullptr;
  781. if (!anyPackExpansions) {
  782. if (i < numTypeParams) {
  783. typeParam = typeParams->begin()[i];
  784. } else {
  785. // Too many arguments.
  786. S.Diag(loc, diag::err_objc_type_args_wrong_arity)
  787. << false
  788. << objcClass->getDeclName()
  789. << (unsigned)typeArgs.size()
  790. << numTypeParams;
  791. S.Diag(objcClass->getLocation(), diag::note_previous_decl)
  792. << objcClass;
  793. if (failOnError)
  794. return QualType();
  795. return type;
  796. }
  797. }
  798. // Objective-C object pointer types must be substitutable for the bounds.
  799. if (const auto *typeArgObjC = typeArg->getAs<ObjCObjectPointerType>()) {
  800. // If we don't have a type parameter to match against, assume
  801. // everything is fine. There was a prior pack expansion that
  802. // means we won't be able to match anything.
  803. if (!typeParam) {
  804. assert(anyPackExpansions && "Too many arguments?");
  805. continue;
  806. }
  807. // Retrieve the bound.
  808. QualType bound = typeParam->getUnderlyingType();
  809. const auto *boundObjC = bound->getAs<ObjCObjectPointerType>();
  810. // Determine whether the type argument is substitutable for the bound.
  811. if (typeArgObjC->isObjCIdType()) {
  812. // When the type argument is 'id', the only acceptable type
  813. // parameter bound is 'id'.
  814. if (boundObjC->isObjCIdType())
  815. continue;
  816. } else if (S.Context.canAssignObjCInterfaces(boundObjC, typeArgObjC)) {
  817. // Otherwise, we follow the assignability rules.
  818. continue;
  819. }
  820. // Diagnose the mismatch.
  821. S.Diag(typeArgInfo->getTypeLoc().getBeginLoc(),
  822. diag::err_objc_type_arg_does_not_match_bound)
  823. << typeArg << bound << typeParam->getDeclName();
  824. S.Diag(typeParam->getLocation(), diag::note_objc_type_param_here)
  825. << typeParam->getDeclName();
  826. if (failOnError)
  827. return QualType();
  828. return type;
  829. }
  830. // Block pointer types are permitted for unqualified 'id' bounds.
  831. if (typeArg->isBlockPointerType()) {
  832. // If we don't have a type parameter to match against, assume
  833. // everything is fine. There was a prior pack expansion that
  834. // means we won't be able to match anything.
  835. if (!typeParam) {
  836. assert(anyPackExpansions && "Too many arguments?");
  837. continue;
  838. }
  839. // Retrieve the bound.
  840. QualType bound = typeParam->getUnderlyingType();
  841. if (bound->isBlockCompatibleObjCPointerType(S.Context))
  842. continue;
  843. // Diagnose the mismatch.
  844. S.Diag(typeArgInfo->getTypeLoc().getBeginLoc(),
  845. diag::err_objc_type_arg_does_not_match_bound)
  846. << typeArg << bound << typeParam->getDeclName();
  847. S.Diag(typeParam->getLocation(), diag::note_objc_type_param_here)
  848. << typeParam->getDeclName();
  849. if (failOnError)
  850. return QualType();
  851. return type;
  852. }
  853. // Dependent types will be checked at instantiation time.
  854. if (typeArg->isDependentType()) {
  855. continue;
  856. }
  857. // Diagnose non-id-compatible type arguments.
  858. S.Diag(typeArgInfo->getTypeLoc().getBeginLoc(),
  859. diag::err_objc_type_arg_not_id_compatible)
  860. << typeArg << typeArgInfo->getTypeLoc().getSourceRange();
  861. if (failOnError)
  862. return QualType();
  863. return type;
  864. }
  865. // Make sure we didn't have the wrong number of arguments.
  866. if (!anyPackExpansions && finalTypeArgs.size() != numTypeParams) {
  867. S.Diag(loc, diag::err_objc_type_args_wrong_arity)
  868. << (typeArgs.size() < typeParams->size())
  869. << objcClass->getDeclName()
  870. << (unsigned)finalTypeArgs.size()
  871. << (unsigned)numTypeParams;
  872. S.Diag(objcClass->getLocation(), diag::note_previous_decl)
  873. << objcClass;
  874. if (failOnError)
  875. return QualType();
  876. return type;
  877. }
  878. // Success. Form the specialized type.
  879. return S.Context.getObjCObjectType(type, finalTypeArgs, { }, false);
  880. }
  881. QualType Sema::BuildObjCTypeParamType(const ObjCTypeParamDecl *Decl,
  882. SourceLocation ProtocolLAngleLoc,
  883. ArrayRef<ObjCProtocolDecl *> Protocols,
  884. ArrayRef<SourceLocation> ProtocolLocs,
  885. SourceLocation ProtocolRAngleLoc,
  886. bool FailOnError) {
  887. QualType Result = QualType(Decl->getTypeForDecl(), 0);
  888. if (!Protocols.empty()) {
  889. bool HasError;
  890. Result = Context.applyObjCProtocolQualifiers(Result, Protocols,
  891. HasError);
  892. if (HasError) {
  893. Diag(SourceLocation(), diag::err_invalid_protocol_qualifiers)
  894. << SourceRange(ProtocolLAngleLoc, ProtocolRAngleLoc);
  895. if (FailOnError) Result = QualType();
  896. }
  897. if (FailOnError && Result.isNull())
  898. return QualType();
  899. }
  900. return Result;
  901. }
  902. QualType Sema::BuildObjCObjectType(QualType BaseType,
  903. SourceLocation Loc,
  904. SourceLocation TypeArgsLAngleLoc,
  905. ArrayRef<TypeSourceInfo *> TypeArgs,
  906. SourceLocation TypeArgsRAngleLoc,
  907. SourceLocation ProtocolLAngleLoc,
  908. ArrayRef<ObjCProtocolDecl *> Protocols,
  909. ArrayRef<SourceLocation> ProtocolLocs,
  910. SourceLocation ProtocolRAngleLoc,
  911. bool FailOnError) {
  912. QualType Result = BaseType;
  913. if (!TypeArgs.empty()) {
  914. Result = applyObjCTypeArgs(*this, Loc, Result, TypeArgs,
  915. SourceRange(TypeArgsLAngleLoc,
  916. TypeArgsRAngleLoc),
  917. FailOnError);
  918. if (FailOnError && Result.isNull())
  919. return QualType();
  920. }
  921. if (!Protocols.empty()) {
  922. bool HasError;
  923. Result = Context.applyObjCProtocolQualifiers(Result, Protocols,
  924. HasError);
  925. if (HasError) {
  926. Diag(Loc, diag::err_invalid_protocol_qualifiers)
  927. << SourceRange(ProtocolLAngleLoc, ProtocolRAngleLoc);
  928. if (FailOnError) Result = QualType();
  929. }
  930. if (FailOnError && Result.isNull())
  931. return QualType();
  932. }
  933. return Result;
  934. }
  935. TypeResult Sema::actOnObjCProtocolQualifierType(
  936. SourceLocation lAngleLoc,
  937. ArrayRef<Decl *> protocols,
  938. ArrayRef<SourceLocation> protocolLocs,
  939. SourceLocation rAngleLoc) {
  940. // Form id<protocol-list>.
  941. QualType Result = Context.getObjCObjectType(
  942. Context.ObjCBuiltinIdTy, { },
  943. llvm::makeArrayRef(
  944. (ObjCProtocolDecl * const *)protocols.data(),
  945. protocols.size()),
  946. false);
  947. Result = Context.getObjCObjectPointerType(Result);
  948. TypeSourceInfo *ResultTInfo = Context.CreateTypeSourceInfo(Result);
  949. TypeLoc ResultTL = ResultTInfo->getTypeLoc();
  950. auto ObjCObjectPointerTL = ResultTL.castAs<ObjCObjectPointerTypeLoc>();
  951. ObjCObjectPointerTL.setStarLoc(SourceLocation()); // implicit
  952. auto ObjCObjectTL = ObjCObjectPointerTL.getPointeeLoc()
  953. .castAs<ObjCObjectTypeLoc>();
  954. ObjCObjectTL.setHasBaseTypeAsWritten(false);
  955. ObjCObjectTL.getBaseLoc().initialize(Context, SourceLocation());
  956. // No type arguments.
  957. ObjCObjectTL.setTypeArgsLAngleLoc(SourceLocation());
  958. ObjCObjectTL.setTypeArgsRAngleLoc(SourceLocation());
  959. // Fill in protocol qualifiers.
  960. ObjCObjectTL.setProtocolLAngleLoc(lAngleLoc);
  961. ObjCObjectTL.setProtocolRAngleLoc(rAngleLoc);
  962. for (unsigned i = 0, n = protocols.size(); i != n; ++i)
  963. ObjCObjectTL.setProtocolLoc(i, protocolLocs[i]);
  964. // We're done. Return the completed type to the parser.
  965. return CreateParsedType(Result, ResultTInfo);
  966. }
  967. TypeResult Sema::actOnObjCTypeArgsAndProtocolQualifiers(
  968. Scope *S,
  969. SourceLocation Loc,
  970. ParsedType BaseType,
  971. SourceLocation TypeArgsLAngleLoc,
  972. ArrayRef<ParsedType> TypeArgs,
  973. SourceLocation TypeArgsRAngleLoc,
  974. SourceLocation ProtocolLAngleLoc,
  975. ArrayRef<Decl *> Protocols,
  976. ArrayRef<SourceLocation> ProtocolLocs,
  977. SourceLocation ProtocolRAngleLoc) {
  978. TypeSourceInfo *BaseTypeInfo = nullptr;
  979. QualType T = GetTypeFromParser(BaseType, &BaseTypeInfo);
  980. if (T.isNull())
  981. return true;
  982. // Handle missing type-source info.
  983. if (!BaseTypeInfo)
  984. BaseTypeInfo = Context.getTrivialTypeSourceInfo(T, Loc);
  985. // Extract type arguments.
  986. SmallVector<TypeSourceInfo *, 4> ActualTypeArgInfos;
  987. for (unsigned i = 0, n = TypeArgs.size(); i != n; ++i) {
  988. TypeSourceInfo *TypeArgInfo = nullptr;
  989. QualType TypeArg = GetTypeFromParser(TypeArgs[i], &TypeArgInfo);
  990. if (TypeArg.isNull()) {
  991. ActualTypeArgInfos.clear();
  992. break;
  993. }
  994. assert(TypeArgInfo && "No type source info?");
  995. ActualTypeArgInfos.push_back(TypeArgInfo);
  996. }
  997. // Build the object type.
  998. QualType Result = BuildObjCObjectType(
  999. T, BaseTypeInfo->getTypeLoc().getSourceRange().getBegin(),
  1000. TypeArgsLAngleLoc, ActualTypeArgInfos, TypeArgsRAngleLoc,
  1001. ProtocolLAngleLoc,
  1002. llvm::makeArrayRef((ObjCProtocolDecl * const *)Protocols.data(),
  1003. Protocols.size()),
  1004. ProtocolLocs, ProtocolRAngleLoc,
  1005. /*FailOnError=*/false);
  1006. if (Result == T)
  1007. return BaseType;
  1008. // Create source information for this type.
  1009. TypeSourceInfo *ResultTInfo = Context.CreateTypeSourceInfo(Result);
  1010. TypeLoc ResultTL = ResultTInfo->getTypeLoc();
  1011. // For id<Proto1, Proto2> or Class<Proto1, Proto2>, we'll have an
  1012. // object pointer type. Fill in source information for it.
  1013. if (auto ObjCObjectPointerTL = ResultTL.getAs<ObjCObjectPointerTypeLoc>()) {
  1014. // The '*' is implicit.
  1015. ObjCObjectPointerTL.setStarLoc(SourceLocation());
  1016. ResultTL = ObjCObjectPointerTL.getPointeeLoc();
  1017. }
  1018. if (auto OTPTL = ResultTL.getAs<ObjCTypeParamTypeLoc>()) {
  1019. // Protocol qualifier information.
  1020. if (OTPTL.getNumProtocols() > 0) {
  1021. assert(OTPTL.getNumProtocols() == Protocols.size());
  1022. OTPTL.setProtocolLAngleLoc(ProtocolLAngleLoc);
  1023. OTPTL.setProtocolRAngleLoc(ProtocolRAngleLoc);
  1024. for (unsigned i = 0, n = Protocols.size(); i != n; ++i)
  1025. OTPTL.setProtocolLoc(i, ProtocolLocs[i]);
  1026. }
  1027. // We're done. Return the completed type to the parser.
  1028. return CreateParsedType(Result, ResultTInfo);
  1029. }
  1030. auto ObjCObjectTL = ResultTL.castAs<ObjCObjectTypeLoc>();
  1031. // Type argument information.
  1032. if (ObjCObjectTL.getNumTypeArgs() > 0) {
  1033. assert(ObjCObjectTL.getNumTypeArgs() == ActualTypeArgInfos.size());
  1034. ObjCObjectTL.setTypeArgsLAngleLoc(TypeArgsLAngleLoc);
  1035. ObjCObjectTL.setTypeArgsRAngleLoc(TypeArgsRAngleLoc);
  1036. for (unsigned i = 0, n = ActualTypeArgInfos.size(); i != n; ++i)
  1037. ObjCObjectTL.setTypeArgTInfo(i, ActualTypeArgInfos[i]);
  1038. } else {
  1039. ObjCObjectTL.setTypeArgsLAngleLoc(SourceLocation());
  1040. ObjCObjectTL.setTypeArgsRAngleLoc(SourceLocation());
  1041. }
  1042. // Protocol qualifier information.
  1043. if (ObjCObjectTL.getNumProtocols() > 0) {
  1044. assert(ObjCObjectTL.getNumProtocols() == Protocols.size());
  1045. ObjCObjectTL.setProtocolLAngleLoc(ProtocolLAngleLoc);
  1046. ObjCObjectTL.setProtocolRAngleLoc(ProtocolRAngleLoc);
  1047. for (unsigned i = 0, n = Protocols.size(); i != n; ++i)
  1048. ObjCObjectTL.setProtocolLoc(i, ProtocolLocs[i]);
  1049. } else {
  1050. ObjCObjectTL.setProtocolLAngleLoc(SourceLocation());
  1051. ObjCObjectTL.setProtocolRAngleLoc(SourceLocation());
  1052. }
  1053. // Base type.
  1054. ObjCObjectTL.setHasBaseTypeAsWritten(true);
  1055. if (ObjCObjectTL.getType() == T)
  1056. ObjCObjectTL.getBaseLoc().initializeFullCopy(BaseTypeInfo->getTypeLoc());
  1057. else
  1058. ObjCObjectTL.getBaseLoc().initialize(Context, Loc);
  1059. // We're done. Return the completed type to the parser.
  1060. return CreateParsedType(Result, ResultTInfo);
  1061. }
  1062. static OpenCLAccessAttr::Spelling
  1063. getImageAccess(const ParsedAttributesView &Attrs) {
  1064. for (const ParsedAttr &AL : Attrs)
  1065. if (AL.getKind() == ParsedAttr::AT_OpenCLAccess)
  1066. return static_cast<OpenCLAccessAttr::Spelling>(AL.getSemanticSpelling());
  1067. return OpenCLAccessAttr::Keyword_read_only;
  1068. }
  1069. /// Convert the specified declspec to the appropriate type
  1070. /// object.
  1071. /// \param state Specifies the declarator containing the declaration specifier
  1072. /// to be converted, along with other associated processing state.
  1073. /// \returns The type described by the declaration specifiers. This function
  1074. /// never returns null.
  1075. static QualType ConvertDeclSpecToType(TypeProcessingState &state) {
  1076. // FIXME: Should move the logic from DeclSpec::Finish to here for validity
  1077. // checking.
  1078. Sema &S = state.getSema();
  1079. Declarator &declarator = state.getDeclarator();
  1080. DeclSpec &DS = declarator.getMutableDeclSpec();
  1081. SourceLocation DeclLoc = declarator.getIdentifierLoc();
  1082. if (DeclLoc.isInvalid())
  1083. DeclLoc = DS.getBeginLoc();
  1084. ASTContext &Context = S.Context;
  1085. QualType Result;
  1086. switch (DS.getTypeSpecType()) {
  1087. case DeclSpec::TST_void:
  1088. Result = Context.VoidTy;
  1089. break;
  1090. case DeclSpec::TST_char:
  1091. if (DS.getTypeSpecSign() == DeclSpec::TSS_unspecified)
  1092. Result = Context.CharTy;
  1093. else if (DS.getTypeSpecSign() == DeclSpec::TSS_signed)
  1094. Result = Context.SignedCharTy;
  1095. else {
  1096. assert(DS.getTypeSpecSign() == DeclSpec::TSS_unsigned &&
  1097. "Unknown TSS value");
  1098. Result = Context.UnsignedCharTy;
  1099. }
  1100. break;
  1101. case DeclSpec::TST_wchar:
  1102. if (DS.getTypeSpecSign() == DeclSpec::TSS_unspecified)
  1103. Result = Context.WCharTy;
  1104. else if (DS.getTypeSpecSign() == DeclSpec::TSS_signed) {
  1105. S.Diag(DS.getTypeSpecSignLoc(), diag::ext_wchar_t_sign_spec)
  1106. << DS.getSpecifierName(DS.getTypeSpecType(),
  1107. Context.getPrintingPolicy());
  1108. Result = Context.getSignedWCharType();
  1109. } else {
  1110. assert(DS.getTypeSpecSign() == DeclSpec::TSS_unsigned &&
  1111. "Unknown TSS value");
  1112. S.Diag(DS.getTypeSpecSignLoc(), diag::ext_wchar_t_sign_spec)
  1113. << DS.getSpecifierName(DS.getTypeSpecType(),
  1114. Context.getPrintingPolicy());
  1115. Result = Context.getUnsignedWCharType();
  1116. }
  1117. break;
  1118. case DeclSpec::TST_char8:
  1119. assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified &&
  1120. "Unknown TSS value");
  1121. Result = Context.Char8Ty;
  1122. break;
  1123. case DeclSpec::TST_char16:
  1124. assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified &&
  1125. "Unknown TSS value");
  1126. Result = Context.Char16Ty;
  1127. break;
  1128. case DeclSpec::TST_char32:
  1129. assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified &&
  1130. "Unknown TSS value");
  1131. Result = Context.Char32Ty;
  1132. break;
  1133. case DeclSpec::TST_unspecified:
  1134. // If this is a missing declspec in a block literal return context, then it
  1135. // is inferred from the return statements inside the block.
  1136. // The declspec is always missing in a lambda expr context; it is either
  1137. // specified with a trailing return type or inferred.
  1138. if (S.getLangOpts().CPlusPlus14 &&
  1139. declarator.getContext() == DeclaratorContext::LambdaExprContext) {
  1140. // In C++1y, a lambda's implicit return type is 'auto'.
  1141. Result = Context.getAutoDeductType();
  1142. break;
  1143. } else if (declarator.getContext() ==
  1144. DeclaratorContext::LambdaExprContext ||
  1145. checkOmittedBlockReturnType(S, declarator,
  1146. Context.DependentTy)) {
  1147. Result = Context.DependentTy;
  1148. break;
  1149. }
  1150. // Unspecified typespec defaults to int in C90. However, the C90 grammar
  1151. // [C90 6.5] only allows a decl-spec if there was *some* type-specifier,
  1152. // type-qualifier, or storage-class-specifier. If not, emit an extwarn.
  1153. // Note that the one exception to this is function definitions, which are
  1154. // allowed to be completely missing a declspec. This is handled in the
  1155. // parser already though by it pretending to have seen an 'int' in this
  1156. // case.
  1157. if (S.getLangOpts().ImplicitInt) {
  1158. // In C89 mode, we only warn if there is a completely missing declspec
  1159. // when one is not allowed.
  1160. if (DS.isEmpty()) {
  1161. S.Diag(DeclLoc, diag::ext_missing_declspec)
  1162. << DS.getSourceRange()
  1163. << FixItHint::CreateInsertion(DS.getBeginLoc(), "int");
  1164. }
  1165. } else if (!DS.hasTypeSpecifier()) {
  1166. // C99 and C++ require a type specifier. For example, C99 6.7.2p2 says:
  1167. // "At least one type specifier shall be given in the declaration
  1168. // specifiers in each declaration, and in the specifier-qualifier list in
  1169. // each struct declaration and type name."
  1170. if (S.getLangOpts().CPlusPlus && !DS.isTypeSpecPipe()) {
  1171. S.Diag(DeclLoc, diag::err_missing_type_specifier)
  1172. << DS.getSourceRange();
  1173. // When this occurs in C++ code, often something is very broken with the
  1174. // value being declared, poison it as invalid so we don't get chains of
  1175. // errors.
  1176. declarator.setInvalidType(true);
  1177. } else if ((S.getLangOpts().OpenCLVersion >= 200 ||
  1178. S.getLangOpts().OpenCLCPlusPlus) &&
  1179. DS.isTypeSpecPipe()) {
  1180. S.Diag(DeclLoc, diag::err_missing_actual_pipe_type)
  1181. << DS.getSourceRange();
  1182. declarator.setInvalidType(true);
  1183. } else {
  1184. S.Diag(DeclLoc, diag::ext_missing_type_specifier)
  1185. << DS.getSourceRange();
  1186. }
  1187. }
  1188. LLVM_FALLTHROUGH;
  1189. case DeclSpec::TST_int: {
  1190. if (DS.getTypeSpecSign() != DeclSpec::TSS_unsigned) {
  1191. switch (DS.getTypeSpecWidth()) {
  1192. case DeclSpec::TSW_unspecified: Result = Context.IntTy; break;
  1193. case DeclSpec::TSW_short: Result = Context.ShortTy; break;
  1194. case DeclSpec::TSW_long: Result = Context.LongTy; break;
  1195. case DeclSpec::TSW_longlong:
  1196. Result = Context.LongLongTy;
  1197. // 'long long' is a C99 or C++11 feature.
  1198. if (!S.getLangOpts().C99) {
  1199. if (S.getLangOpts().CPlusPlus)
  1200. S.Diag(DS.getTypeSpecWidthLoc(),
  1201. S.getLangOpts().CPlusPlus11 ?
  1202. diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong);
  1203. else
  1204. S.Diag(DS.getTypeSpecWidthLoc(), diag::ext_c99_longlong);
  1205. }
  1206. break;
  1207. }
  1208. } else {
  1209. switch (DS.getTypeSpecWidth()) {
  1210. case DeclSpec::TSW_unspecified: Result = Context.UnsignedIntTy; break;
  1211. case DeclSpec::TSW_short: Result = Context.UnsignedShortTy; break;
  1212. case DeclSpec::TSW_long: Result = Context.UnsignedLongTy; break;
  1213. case DeclSpec::TSW_longlong:
  1214. Result = Context.UnsignedLongLongTy;
  1215. // 'long long' is a C99 or C++11 feature.
  1216. if (!S.getLangOpts().C99) {
  1217. if (S.getLangOpts().CPlusPlus)
  1218. S.Diag(DS.getTypeSpecWidthLoc(),
  1219. S.getLangOpts().CPlusPlus11 ?
  1220. diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong);
  1221. else
  1222. S.Diag(DS.getTypeSpecWidthLoc(), diag::ext_c99_longlong);
  1223. }
  1224. break;
  1225. }
  1226. }
  1227. break;
  1228. }
  1229. case DeclSpec::TST_accum: {
  1230. switch (DS.getTypeSpecWidth()) {
  1231. case DeclSpec::TSW_short:
  1232. Result = Context.ShortAccumTy;
  1233. break;
  1234. case DeclSpec::TSW_unspecified:
  1235. Result = Context.AccumTy;
  1236. break;
  1237. case DeclSpec::TSW_long:
  1238. Result = Context.LongAccumTy;
  1239. break;
  1240. case DeclSpec::TSW_longlong:
  1241. llvm_unreachable("Unable to specify long long as _Accum width");
  1242. }
  1243. if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned)
  1244. Result = Context.getCorrespondingUnsignedType(Result);
  1245. if (DS.isTypeSpecSat())
  1246. Result = Context.getCorrespondingSaturatedType(Result);
  1247. break;
  1248. }
  1249. case DeclSpec::TST_fract: {
  1250. switch (DS.getTypeSpecWidth()) {
  1251. case DeclSpec::TSW_short:
  1252. Result = Context.ShortFractTy;
  1253. break;
  1254. case DeclSpec::TSW_unspecified:
  1255. Result = Context.FractTy;
  1256. break;
  1257. case DeclSpec::TSW_long:
  1258. Result = Context.LongFractTy;
  1259. break;
  1260. case DeclSpec::TSW_longlong:
  1261. llvm_unreachable("Unable to specify long long as _Fract width");
  1262. }
  1263. if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned)
  1264. Result = Context.getCorrespondingUnsignedType(Result);
  1265. if (DS.isTypeSpecSat())
  1266. Result = Context.getCorrespondingSaturatedType(Result);
  1267. break;
  1268. }
  1269. case DeclSpec::TST_int128:
  1270. if (!S.Context.getTargetInfo().hasInt128Type() &&
  1271. !(S.getLangOpts().OpenMP && S.getLangOpts().OpenMPIsDevice))
  1272. S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
  1273. << "__int128";
  1274. if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned)
  1275. Result = Context.UnsignedInt128Ty;
  1276. else
  1277. Result = Context.Int128Ty;
  1278. break;
  1279. case DeclSpec::TST_float16:
  1280. // CUDA host and device may have different _Float16 support, therefore
  1281. // do not diagnose _Float16 usage to avoid false alarm.
  1282. // ToDo: more precise diagnostics for CUDA.
  1283. if (!S.Context.getTargetInfo().hasFloat16Type() && !S.getLangOpts().CUDA &&
  1284. !(S.getLangOpts().OpenMP && S.getLangOpts().OpenMPIsDevice))
  1285. S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
  1286. << "_Float16";
  1287. Result = Context.Float16Ty;
  1288. break;
  1289. case DeclSpec::TST_half: Result = Context.HalfTy; break;
  1290. case DeclSpec::TST_float: Result = Context.FloatTy; break;
  1291. case DeclSpec::TST_double:
  1292. if (DS.getTypeSpecWidth() == DeclSpec::TSW_long)
  1293. Result = Context.LongDoubleTy;
  1294. else
  1295. Result = Context.DoubleTy;
  1296. break;
  1297. case DeclSpec::TST_float128:
  1298. if (!S.Context.getTargetInfo().hasFloat128Type() &&
  1299. !(S.getLangOpts().OpenMP && S.getLangOpts().OpenMPIsDevice))
  1300. S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported)
  1301. << "__float128";
  1302. Result = Context.Float128Ty;
  1303. break;
  1304. case DeclSpec::TST_bool: Result = Context.BoolTy; break; // _Bool or bool
  1305. break;
  1306. case DeclSpec::TST_decimal32: // _Decimal32
  1307. case DeclSpec::TST_decimal64: // _Decimal64
  1308. case DeclSpec::TST_decimal128: // _Decimal128
  1309. S.Diag(DS.getTypeSpecTypeLoc(), diag::err_decimal_unsupported);
  1310. Result = Context.IntTy;
  1311. declarator.setInvalidType(true);
  1312. break;
  1313. case DeclSpec::TST_class:
  1314. case DeclSpec::TST_enum:
  1315. case DeclSpec::TST_union:
  1316. case DeclSpec::TST_struct:
  1317. case DeclSpec::TST_interface: {
  1318. TagDecl *D = dyn_cast_or_null<TagDecl>(DS.getRepAsDecl());
  1319. if (!D) {
  1320. // This can happen in C++ with ambiguous lookups.
  1321. Result = Context.IntTy;
  1322. declarator.setInvalidType(true);
  1323. break;
  1324. }
  1325. // If the type is deprecated or unavailable, diagnose it.
  1326. S.DiagnoseUseOfDecl(D, DS.getTypeSpecTypeNameLoc());
  1327. assert(DS.getTypeSpecWidth() == 0 && DS.getTypeSpecComplex() == 0 &&
  1328. DS.getTypeSpecSign() == 0 && "No qualifiers on tag names!");
  1329. // TypeQuals handled by caller.
  1330. Result = Context.getTypeDeclType(D);
  1331. // In both C and C++, make an ElaboratedType.
  1332. ElaboratedTypeKeyword Keyword
  1333. = ElaboratedType::getKeywordForTypeSpec(DS.getTypeSpecType());
  1334. Result = S.getElaboratedType(Keyword, DS.getTypeSpecScope(), Result,
  1335. DS.isTypeSpecOwned() ? D : nullptr);
  1336. break;
  1337. }
  1338. case DeclSpec::TST_typename: {
  1339. assert(DS.getTypeSpecWidth() == 0 && DS.getTypeSpecComplex() == 0 &&
  1340. DS.getTypeSpecSign() == 0 &&
  1341. "Can't handle qualifiers on typedef names yet!");
  1342. Result = S.GetTypeFromParser(DS.getRepAsType());
  1343. if (Result.isNull()) {
  1344. declarator.setInvalidType(true);
  1345. }
  1346. // TypeQuals handled by caller.
  1347. break;
  1348. }
  1349. case DeclSpec::TST_typeofType:
  1350. // FIXME: Preserve type source info.
  1351. Result = S.GetTypeFromParser(DS.getRepAsType());
  1352. assert(!Result.isNull() && "Didn't get a type for typeof?");
  1353. if (!Result->isDependentType())
  1354. if (const TagType *TT = Result->getAs<TagType>())
  1355. S.DiagnoseUseOfDecl(TT->getDecl(), DS.getTypeSpecTypeLoc());
  1356. // TypeQuals handled by caller.
  1357. Result = Context.getTypeOfType(Result);
  1358. break;
  1359. case DeclSpec::TST_typeofExpr: {
  1360. Expr *E = DS.getRepAsExpr();
  1361. assert(E && "Didn't get an expression for typeof?");
  1362. // TypeQuals handled by caller.
  1363. Result = S.BuildTypeofExprType(E, DS.getTypeSpecTypeLoc());
  1364. if (Result.isNull()) {
  1365. Result = Context.IntTy;
  1366. declarator.setInvalidType(true);
  1367. }
  1368. break;
  1369. }
  1370. case DeclSpec::TST_decltype: {
  1371. Expr *E = DS.getRepAsExpr();
  1372. assert(E && "Didn't get an expression for decltype?");
  1373. // TypeQuals handled by caller.
  1374. Result = S.BuildDecltypeType(E, DS.getTypeSpecTypeLoc());
  1375. if (Result.isNull()) {
  1376. Result = Context.IntTy;
  1377. declarator.setInvalidType(true);
  1378. }
  1379. break;
  1380. }
  1381. case DeclSpec::TST_underlyingType:
  1382. Result = S.GetTypeFromParser(DS.getRepAsType());
  1383. assert(!Result.isNull() && "Didn't get a type for __underlying_type?");
  1384. Result = S.BuildUnaryTransformType(Result,
  1385. UnaryTransformType::EnumUnderlyingType,
  1386. DS.getTypeSpecTypeLoc());
  1387. if (Result.isNull()) {
  1388. Result = Context.IntTy;
  1389. declarator.setInvalidType(true);
  1390. }
  1391. break;
  1392. case DeclSpec::TST_auto:
  1393. Result = Context.getAutoType(QualType(), AutoTypeKeyword::Auto, false);
  1394. break;
  1395. case DeclSpec::TST_auto_type:
  1396. Result = Context.getAutoType(QualType(), AutoTypeKeyword::GNUAutoType, false);
  1397. break;
  1398. case DeclSpec::TST_decltype_auto:
  1399. Result = Context.getAutoType(QualType(), AutoTypeKeyword::DecltypeAuto,
  1400. /*IsDependent*/ false);
  1401. break;
  1402. case DeclSpec::TST_unknown_anytype:
  1403. Result = Context.UnknownAnyTy;
  1404. break;
  1405. case DeclSpec::TST_atomic:
  1406. Result = S.GetTypeFromParser(DS.getRepAsType());
  1407. assert(!Result.isNull() && "Didn't get a type for _Atomic?");
  1408. Result = S.BuildAtomicType(Result, DS.getTypeSpecTypeLoc());
  1409. if (Result.isNull()) {
  1410. Result = Context.IntTy;
  1411. declarator.setInvalidType(true);
  1412. }
  1413. break;
  1414. #define GENERIC_IMAGE_TYPE(ImgType, Id) \
  1415. case DeclSpec::TST_##ImgType##_t: \
  1416. switch (getImageAccess(DS.getAttributes())) { \
  1417. case OpenCLAccessAttr::Keyword_write_only: \
  1418. Result = Context.Id##WOTy; \
  1419. break; \
  1420. case OpenCLAccessAttr::Keyword_read_write: \
  1421. Result = Context.Id##RWTy; \
  1422. break; \
  1423. case OpenCLAccessAttr::Keyword_read_only: \
  1424. Result = Context.Id##ROTy; \
  1425. break; \
  1426. case OpenCLAccessAttr::SpellingNotCalculated: \
  1427. llvm_unreachable("Spelling not yet calculated"); \
  1428. } \
  1429. break;
  1430. #include "clang/Basic/OpenCLImageTypes.def"
  1431. case DeclSpec::TST_error:
  1432. Result = Context.IntTy;
  1433. declarator.setInvalidType(true);
  1434. break;
  1435. }
  1436. if (S.getLangOpts().OpenCL &&
  1437. S.checkOpenCLDisabledTypeDeclSpec(DS, Result))
  1438. declarator.setInvalidType(true);
  1439. bool IsFixedPointType = DS.getTypeSpecType() == DeclSpec::TST_accum ||
  1440. DS.getTypeSpecType() == DeclSpec::TST_fract;
  1441. // Only fixed point types can be saturated
  1442. if (DS.isTypeSpecSat() && !IsFixedPointType)
  1443. S.Diag(DS.getTypeSpecSatLoc(), diag::err_invalid_saturation_spec)
  1444. << DS.getSpecifierName(DS.getTypeSpecType(),
  1445. Context.getPrintingPolicy());
  1446. // Handle complex types.
  1447. if (DS.getTypeSpecComplex() == DeclSpec::TSC_complex) {
  1448. if (S.getLangOpts().Freestanding)
  1449. S.Diag(DS.getTypeSpecComplexLoc(), diag::ext_freestanding_complex);
  1450. Result = Context.getComplexType(Result);
  1451. } else if (DS.isTypeAltiVecVector()) {
  1452. unsigned typeSize = static_cast<unsigned>(Context.getTypeSize(Result));
  1453. assert(typeSize > 0 && "type size for vector must be greater than 0 bits");
  1454. VectorType::VectorKind VecKind = VectorType::AltiVecVector;
  1455. if (DS.isTypeAltiVecPixel())
  1456. VecKind = VectorType::AltiVecPixel;
  1457. else if (DS.isTypeAltiVecBool())
  1458. VecKind = VectorType::AltiVecBool;
  1459. Result = Context.getVectorType(Result, 128/typeSize, VecKind);
  1460. }
  1461. // FIXME: Imaginary.
  1462. if (DS.getTypeSpecComplex() == DeclSpec::TSC_imaginary)
  1463. S.Diag(DS.getTypeSpecComplexLoc(), diag::err_imaginary_not_supported);
  1464. // Before we process any type attributes, synthesize a block literal
  1465. // function declarator if necessary.
  1466. if (declarator.getContext() == DeclaratorContext::BlockLiteralContext)
  1467. maybeSynthesizeBlockSignature(state, Result);
  1468. // Apply any type attributes from the decl spec. This may cause the
  1469. // list of type attributes to be temporarily saved while the type
  1470. // attributes are pushed around.
  1471. // pipe attributes will be handled later ( at GetFullTypeForDeclarator )
  1472. if (!DS.isTypeSpecPipe())
  1473. processTypeAttrs(state, Result, TAL_DeclSpec, DS.getAttributes());
  1474. // Apply const/volatile/restrict qualifiers to T.
  1475. if (unsigned TypeQuals = DS.getTypeQualifiers()) {
  1476. // Warn about CV qualifiers on function types.
  1477. // C99 6.7.3p8:
  1478. // If the specification of a function type includes any type qualifiers,
  1479. // the behavior is undefined.
  1480. // C++11 [dcl.fct]p7:
  1481. // The effect of a cv-qualifier-seq in a function declarator is not the
  1482. // same as adding cv-qualification on top of the function type. In the
  1483. // latter case, the cv-qualifiers are ignored.
  1484. if (TypeQuals && Result->isFunctionType()) {
  1485. diagnoseAndRemoveTypeQualifiers(
  1486. S, DS, TypeQuals, Result, DeclSpec::TQ_const | DeclSpec::TQ_volatile,
  1487. S.getLangOpts().CPlusPlus
  1488. ? diag::warn_typecheck_function_qualifiers_ignored
  1489. : diag::warn_typecheck_function_qualifiers_unspecified);
  1490. // No diagnostic for 'restrict' or '_Atomic' applied to a
  1491. // function type; we'll diagnose those later, in BuildQualifiedType.
  1492. }
  1493. // C++11 [dcl.ref]p1:
  1494. // Cv-qualified references are ill-formed except when the
  1495. // cv-qualifiers are introduced through the use of a typedef-name
  1496. // or decltype-specifier, in which case the cv-qualifiers are ignored.
  1497. //
  1498. // There don't appear to be any other contexts in which a cv-qualified
  1499. // reference type could be formed, so the 'ill-formed' clause here appears
  1500. // to never happen.
  1501. if (TypeQuals && Result->isReferenceType()) {
  1502. diagnoseAndRemoveTypeQualifiers(
  1503. S, DS, TypeQuals, Result,
  1504. DeclSpec::TQ_const | DeclSpec::TQ_volatile | DeclSpec::TQ_atomic,
  1505. diag::warn_typecheck_reference_qualifiers);
  1506. }
  1507. // C90 6.5.3 constraints: "The same type qualifier shall not appear more
  1508. // than once in the same specifier-list or qualifier-list, either directly
  1509. // or via one or more typedefs."
  1510. if (!S.getLangOpts().C99 && !S.getLangOpts().CPlusPlus
  1511. && TypeQuals & Result.getCVRQualifiers()) {
  1512. if (TypeQuals & DeclSpec::TQ_const && Result.isConstQualified()) {
  1513. S.Diag(DS.getConstSpecLoc(), diag::ext_duplicate_declspec)
  1514. << "const";
  1515. }
  1516. if (TypeQuals & DeclSpec::TQ_volatile && Result.isVolatileQualified()) {
  1517. S.Diag(DS.getVolatileSpecLoc(), diag::ext_duplicate_declspec)
  1518. << "volatile";
  1519. }
  1520. // C90 doesn't have restrict nor _Atomic, so it doesn't force us to
  1521. // produce a warning in this case.
  1522. }
  1523. QualType Qualified = S.BuildQualifiedType(Result, DeclLoc, TypeQuals, &DS);
  1524. // If adding qualifiers fails, just use the unqualified type.
  1525. if (Qualified.isNull())
  1526. declarator.setInvalidType(true);
  1527. else
  1528. Result = Qualified;
  1529. }
  1530. assert(!Result.isNull() && "This function should not return a null type");
  1531. return Result;
  1532. }
  1533. static std::string getPrintableNameForEntity(DeclarationName Entity) {
  1534. if (Entity)
  1535. return Entity.getAsString();
  1536. return "type name";
  1537. }
  1538. QualType Sema::BuildQualifiedType(QualType T, SourceLocation Loc,
  1539. Qualifiers Qs, const DeclSpec *DS) {
  1540. if (T.isNull())
  1541. return QualType();
  1542. // Ignore any attempt to form a cv-qualified reference.
  1543. if (T->isReferenceType()) {
  1544. Qs.removeConst();
  1545. Qs.removeVolatile();
  1546. }
  1547. // Enforce C99 6.7.3p2: "Types other than pointer types derived from
  1548. // object or incomplete types shall not be restrict-qualified."
  1549. if (Qs.hasRestrict()) {
  1550. unsigned DiagID = 0;
  1551. QualType ProblemTy;
  1552. if (T->isAnyPointerType() || T->isReferenceType() ||
  1553. T->isMemberPointerType()) {
  1554. QualType EltTy;
  1555. if (T->isObjCObjectPointerType())
  1556. EltTy = T;
  1557. else if (const MemberPointerType *PTy = T->getAs<MemberPointerType>())
  1558. EltTy = PTy->getPointeeType();
  1559. else
  1560. EltTy = T->getPointeeType();
  1561. // If we have a pointer or reference, the pointee must have an object
  1562. // incomplete type.
  1563. if (!EltTy->isIncompleteOrObjectType()) {
  1564. DiagID = diag::err_typecheck_invalid_restrict_invalid_pointee;
  1565. ProblemTy = EltTy;
  1566. }
  1567. } else if (!T->isDependentType()) {
  1568. DiagID = diag::err_typecheck_invalid_restrict_not_pointer;
  1569. ProblemTy = T;
  1570. }
  1571. if (DiagID) {
  1572. Diag(DS ? DS->getRestrictSpecLoc() : Loc, DiagID) << ProblemTy;
  1573. Qs.removeRestrict();
  1574. }
  1575. }
  1576. return Context.getQualifiedType(T, Qs);
  1577. }
  1578. QualType Sema::BuildQualifiedType(QualType T, SourceLocation Loc,
  1579. unsigned CVRAU, const DeclSpec *DS) {
  1580. if (T.isNull())
  1581. return QualType();
  1582. // Ignore any attempt to form a cv-qualified reference.
  1583. if (T->isReferenceType())
  1584. CVRAU &=
  1585. ~(DeclSpec::TQ_const | DeclSpec::TQ_volatile | DeclSpec::TQ_atomic);
  1586. // Convert from DeclSpec::TQ to Qualifiers::TQ by just dropping TQ_atomic and
  1587. // TQ_unaligned;
  1588. unsigned CVR = CVRAU & ~(DeclSpec::TQ_atomic | DeclSpec::TQ_unaligned);
  1589. // C11 6.7.3/5:
  1590. // If the same qualifier appears more than once in the same
  1591. // specifier-qualifier-list, either directly or via one or more typedefs,
  1592. // the behavior is the same as if it appeared only once.
  1593. //
  1594. // It's not specified what happens when the _Atomic qualifier is applied to
  1595. // a type specified with the _Atomic specifier, but we assume that this
  1596. // should be treated as if the _Atomic qualifier appeared multiple times.
  1597. if (CVRAU & DeclSpec::TQ_atomic && !T->isAtomicType()) {
  1598. // C11 6.7.3/5:
  1599. // If other qualifiers appear along with the _Atomic qualifier in a
  1600. // specifier-qualifier-list, the resulting type is the so-qualified
  1601. // atomic type.
  1602. //
  1603. // Don't need to worry about array types here, since _Atomic can't be
  1604. // applied to such types.
  1605. SplitQualType Split = T.getSplitUnqualifiedType();
  1606. T = BuildAtomicType(QualType(Split.Ty, 0),
  1607. DS ? DS->getAtomicSpecLoc() : Loc);
  1608. if (T.isNull())
  1609. return T;
  1610. Split.Quals.addCVRQualifiers(CVR);
  1611. return BuildQualifiedType(T, Loc, Split.Quals);
  1612. }
  1613. Qualifiers Q = Qualifiers::fromCVRMask(CVR);
  1614. Q.setUnaligned(CVRAU & DeclSpec::TQ_unaligned);
  1615. return BuildQualifiedType(T, Loc, Q, DS);
  1616. }
  1617. /// Build a paren type including \p T.
  1618. QualType Sema::BuildParenType(QualType T) {
  1619. return Context.getParenType(T);
  1620. }
  1621. /// Given that we're building a pointer or reference to the given
  1622. static QualType inferARCLifetimeForPointee(Sema &S, QualType type,
  1623. SourceLocation loc,
  1624. bool isReference) {
  1625. // Bail out if retention is unrequired or already specified.
  1626. if (!type->isObjCLifetimeType() ||
  1627. type.getObjCLifetime() != Qualifiers::OCL_None)
  1628. return type;
  1629. Qualifiers::ObjCLifetime implicitLifetime = Qualifiers::OCL_None;
  1630. // If the object type is const-qualified, we can safely use
  1631. // __unsafe_unretained. This is safe (because there are no read
  1632. // barriers), and it'll be safe to coerce anything but __weak* to
  1633. // the resulting type.
  1634. if (type.isConstQualified()) {
  1635. implicitLifetime = Qualifiers::OCL_ExplicitNone;
  1636. // Otherwise, check whether the static type does not require
  1637. // retaining. This currently only triggers for Class (possibly
  1638. // protocol-qualifed, and arrays thereof).
  1639. } else if (type->isObjCARCImplicitlyUnretainedType()) {
  1640. implicitLifetime = Qualifiers::OCL_ExplicitNone;
  1641. // If we are in an unevaluated context, like sizeof, skip adding a
  1642. // qualification.
  1643. } else if (S.isUnevaluatedContext()) {
  1644. return type;
  1645. // If that failed, give an error and recover using __strong. __strong
  1646. // is the option most likely to prevent spurious second-order diagnostics,
  1647. // like when binding a reference to a field.
  1648. } else {
  1649. // These types can show up in private ivars in system headers, so
  1650. // we need this to not be an error in those cases. Instead we
  1651. // want to delay.
  1652. if (S.DelayedDiagnostics.shouldDelayDiagnostics()) {
  1653. S.DelayedDiagnostics.add(
  1654. sema::DelayedDiagnostic::makeForbiddenType(loc,
  1655. diag::err_arc_indirect_no_ownership, type, isReference));
  1656. } else {
  1657. S.Diag(loc, diag::err_arc_indirect_no_ownership) << type << isReference;
  1658. }
  1659. implicitLifetime = Qualifiers::OCL_Strong;
  1660. }
  1661. assert(implicitLifetime && "didn't infer any lifetime!");
  1662. Qualifiers qs;
  1663. qs.addObjCLifetime(implicitLifetime);
  1664. return S.Context.getQualifiedType(type, qs);
  1665. }
  1666. static std::string getFunctionQualifiersAsString(const FunctionProtoType *FnTy){
  1667. std::string Quals = FnTy->getMethodQuals().getAsString();
  1668. switch (FnTy->getRefQualifier()) {
  1669. case RQ_None:
  1670. break;
  1671. case RQ_LValue:
  1672. if (!Quals.empty())
  1673. Quals += ' ';
  1674. Quals += '&';
  1675. break;
  1676. case RQ_RValue:
  1677. if (!Quals.empty())
  1678. Quals += ' ';
  1679. Quals += "&&";
  1680. break;
  1681. }
  1682. return Quals;
  1683. }
  1684. namespace {
  1685. /// Kinds of declarator that cannot contain a qualified function type.
  1686. ///
  1687. /// C++98 [dcl.fct]p4 / C++11 [dcl.fct]p6:
  1688. /// a function type with a cv-qualifier or a ref-qualifier can only appear
  1689. /// at the topmost level of a type.
  1690. ///
  1691. /// Parens and member pointers are permitted. We don't diagnose array and
  1692. /// function declarators, because they don't allow function types at all.
  1693. ///
  1694. /// The values of this enum are used in diagnostics.
  1695. enum QualifiedFunctionKind { QFK_BlockPointer, QFK_Pointer, QFK_Reference };
  1696. } // end anonymous namespace
  1697. /// Check whether the type T is a qualified function type, and if it is,
  1698. /// diagnose that it cannot be contained within the given kind of declarator.
  1699. static bool checkQualifiedFunction(Sema &S, QualType T, SourceLocation Loc,
  1700. QualifiedFunctionKind QFK) {
  1701. // Does T refer to a function type with a cv-qualifier or a ref-qualifier?
  1702. const FunctionProtoType *FPT = T->getAs<FunctionProtoType>();
  1703. if (!FPT ||
  1704. (FPT->getMethodQuals().empty() && FPT->getRefQualifier() == RQ_None))
  1705. return false;
  1706. S.Diag(Loc, diag::err_compound_qualified_function_type)
  1707. << QFK << isa<FunctionType>(T.IgnoreParens()) << T
  1708. << getFunctionQualifiersAsString(FPT);
  1709. return true;
  1710. }
  1711. bool Sema::CheckQualifiedFunctionForTypeId(QualType T, SourceLocation Loc) {
  1712. const FunctionProtoType *FPT = T->getAs<FunctionProtoType>();
  1713. if (!FPT ||
  1714. (FPT->getMethodQuals().empty() && FPT->getRefQualifier() == RQ_None))
  1715. return false;
  1716. Diag(Loc, diag::err_qualified_function_typeid)
  1717. << T << getFunctionQualifiersAsString(FPT);
  1718. return true;
  1719. }
  1720. /// Build a pointer type.
  1721. ///
  1722. /// \param T The type to which we'll be building a pointer.
  1723. ///
  1724. /// \param Loc The location of the entity whose type involves this
  1725. /// pointer type or, if there is no such entity, the location of the
  1726. /// type that will have pointer type.
  1727. ///
  1728. /// \param Entity The name of the entity that involves the pointer
  1729. /// type, if known.
  1730. ///
  1731. /// \returns A suitable pointer type, if there are no
  1732. /// errors. Otherwise, returns a NULL type.
  1733. QualType Sema::BuildPointerType(QualType T,
  1734. SourceLocation Loc, DeclarationName Entity) {
  1735. if (T->isReferenceType()) {
  1736. // C++ 8.3.2p4: There shall be no ... pointers to references ...
  1737. Diag(Loc, diag::err_illegal_decl_pointer_to_reference)
  1738. << getPrintableNameForEntity(Entity) << T;
  1739. return QualType();
  1740. }
  1741. if (T->isFunctionType() && getLangOpts().OpenCL) {
  1742. Diag(Loc, diag::err_opencl_function_pointer);
  1743. return QualType();
  1744. }
  1745. if (checkQualifiedFunction(*this, T, Loc, QFK_Pointer))
  1746. return QualType();
  1747. assert(!T->isObjCObjectType() && "Should build ObjCObjectPointerType");
  1748. // In ARC, it is forbidden to build pointers to unqualified pointers.
  1749. if (getLangOpts().ObjCAutoRefCount)
  1750. T = inferARCLifetimeForPointee(*this, T, Loc, /*reference*/ false);
  1751. // Build the pointer type.
  1752. return Context.getPointerType(T);
  1753. }
  1754. /// Build a reference type.
  1755. ///
  1756. /// \param T The type to which we'll be building a reference.
  1757. ///
  1758. /// \param Loc The location of the entity whose type involves this
  1759. /// reference type or, if there is no such entity, the location of the
  1760. /// type that will have reference type.
  1761. ///
  1762. /// \param Entity The name of the entity that involves the reference
  1763. /// type, if known.
  1764. ///
  1765. /// \returns A suitable reference type, if there are no
  1766. /// errors. Otherwise, returns a NULL type.
  1767. QualType Sema::BuildReferenceType(QualType T, bool SpelledAsLValue,
  1768. SourceLocation Loc,
  1769. DeclarationName Entity) {
  1770. assert(Context.getCanonicalType(T) != Context.OverloadTy &&
  1771. "Unresolved overloaded function type");
  1772. // C++0x [dcl.ref]p6:
  1773. // If a typedef (7.1.3), a type template-parameter (14.3.1), or a
  1774. // decltype-specifier (7.1.6.2) denotes a type TR that is a reference to a
  1775. // type T, an attempt to create the type "lvalue reference to cv TR" creates
  1776. // the type "lvalue reference to T", while an attempt to create the type
  1777. // "rvalue reference to cv TR" creates the type TR.
  1778. bool LValueRef = SpelledAsLValue || T->getAs<LValueReferenceType>();
  1779. // C++ [dcl.ref]p4: There shall be no references to references.
  1780. //
  1781. // According to C++ DR 106, references to references are only
  1782. // diagnosed when they are written directly (e.g., "int & &"),
  1783. // but not when they happen via a typedef:
  1784. //
  1785. // typedef int& intref;
  1786. // typedef intref& intref2;
  1787. //
  1788. // Parser::ParseDeclaratorInternal diagnoses the case where
  1789. // references are written directly; here, we handle the
  1790. // collapsing of references-to-references as described in C++0x.
  1791. // DR 106 and 540 introduce reference-collapsing into C++98/03.
  1792. // C++ [dcl.ref]p1:
  1793. // A declarator that specifies the type "reference to cv void"
  1794. // is ill-formed.
  1795. if (T->isVoidType()) {
  1796. Diag(Loc, diag::err_reference_to_void);
  1797. return QualType();
  1798. }
  1799. if (checkQualifiedFunction(*this, T, Loc, QFK_Reference))
  1800. return QualType();
  1801. // In ARC, it is forbidden to build references to unqualified pointers.
  1802. if (getLangOpts().ObjCAutoRefCount)
  1803. T = inferARCLifetimeForPointee(*this, T, Loc, /*reference*/ true);
  1804. // Handle restrict on references.
  1805. if (LValueRef)
  1806. return Context.getLValueReferenceType(T, SpelledAsLValue);
  1807. return Context.getRValueReferenceType(T);
  1808. }
  1809. /// Build a Read-only Pipe type.
  1810. ///
  1811. /// \param T The type to which we'll be building a Pipe.
  1812. ///
  1813. /// \param Loc We do not use it for now.
  1814. ///
  1815. /// \returns A suitable pipe type, if there are no errors. Otherwise, returns a
  1816. /// NULL type.
  1817. QualType Sema::BuildReadPipeType(QualType T, SourceLocation Loc) {
  1818. return Context.getReadPipeType(T);
  1819. }
  1820. /// Build a Write-only Pipe type.
  1821. ///
  1822. /// \param T The type to which we'll be building a Pipe.
  1823. ///
  1824. /// \param Loc We do not use it for now.
  1825. ///
  1826. /// \returns A suitable pipe type, if there are no errors. Otherwise, returns a
  1827. /// NULL type.
  1828. QualType Sema::BuildWritePipeType(QualType T, SourceLocation Loc) {
  1829. return Context.getWritePipeType(T);
  1830. }
  1831. /// Check whether the specified array size makes the array type a VLA. If so,
  1832. /// return true, if not, return the size of the array in SizeVal.
  1833. static bool isArraySizeVLA(Sema &S, Expr *ArraySize, llvm::APSInt &SizeVal) {
  1834. // If the size is an ICE, it certainly isn't a VLA. If we're in a GNU mode
  1835. // (like gnu99, but not c99) accept any evaluatable value as an extension.
  1836. class VLADiagnoser : public Sema::VerifyICEDiagnoser {
  1837. public:
  1838. VLADiagnoser() : Sema::VerifyICEDiagnoser(true) {}
  1839. void diagnoseNotICE(Sema &S, SourceLocation Loc, SourceRange SR) override {
  1840. }
  1841. void diagnoseFold(Sema &S, SourceLocation Loc, SourceRange SR) override {
  1842. S.Diag(Loc, diag::ext_vla_folded_to_constant) << SR;
  1843. }
  1844. } Diagnoser;
  1845. return S.VerifyIntegerConstantExpression(ArraySize, &SizeVal, Diagnoser,
  1846. S.LangOpts.GNUMode ||
  1847. S.LangOpts.OpenCL).isInvalid();
  1848. }
  1849. /// Build an array type.
  1850. ///
  1851. /// \param T The type of each element in the array.
  1852. ///
  1853. /// \param ASM C99 array size modifier (e.g., '*', 'static').
  1854. ///
  1855. /// \param ArraySize Expression describing the size of the array.
  1856. ///
  1857. /// \param Brackets The range from the opening '[' to the closing ']'.
  1858. ///
  1859. /// \param Entity The name of the entity that involves the array
  1860. /// type, if known.
  1861. ///
  1862. /// \returns A suitable array type, if there are no errors. Otherwise,
  1863. /// returns a NULL type.
  1864. QualType Sema::BuildArrayType(QualType T, ArrayType::ArraySizeModifier ASM,
  1865. Expr *ArraySize, unsigned Quals,
  1866. SourceRange Brackets, DeclarationName Entity) {
  1867. SourceLocation Loc = Brackets.getBegin();
  1868. if (getLangOpts().CPlusPlus) {
  1869. // C++ [dcl.array]p1:
  1870. // T is called the array element type; this type shall not be a reference
  1871. // type, the (possibly cv-qualified) type void, a function type or an
  1872. // abstract class type.
  1873. //
  1874. // C++ [dcl.array]p3:
  1875. // When several "array of" specifications are adjacent, [...] only the
  1876. // first of the constant expressions that specify the bounds of the arrays
  1877. // may be omitted.
  1878. //
  1879. // Note: function types are handled in the common path with C.
  1880. if (T->isReferenceType()) {
  1881. Diag(Loc, diag::err_illegal_decl_array_of_references)
  1882. << getPrintableNameForEntity(Entity) << T;
  1883. return QualType();
  1884. }
  1885. if (T->isVoidType() || T->isIncompleteArrayType()) {
  1886. Diag(Loc, diag::err_illegal_decl_array_incomplete_type) << T;
  1887. return QualType();
  1888. }
  1889. if (RequireNonAbstractType(Brackets.getBegin(), T,
  1890. diag::err_array_of_abstract_type))
  1891. return QualType();
  1892. // Mentioning a member pointer type for an array type causes us to lock in
  1893. // an inheritance model, even if it's inside an unused typedef.
  1894. if (Context.getTargetInfo().getCXXABI().isMicrosoft())
  1895. if (const MemberPointerType *MPTy = T->getAs<MemberPointerType>())
  1896. if (!MPTy->getClass()->isDependentType())
  1897. (void)isCompleteType(Loc, T);
  1898. } else {
  1899. // C99 6.7.5.2p1: If the element type is an incomplete or function type,
  1900. // reject it (e.g. void ary[7], struct foo ary[7], void ary[7]())
  1901. if (RequireCompleteType(Loc, T,
  1902. diag::err_illegal_decl_array_incomplete_type))
  1903. return QualType();
  1904. }
  1905. if (T->isFunctionType()) {
  1906. Diag(Loc, diag::err_illegal_decl_array_of_functions)
  1907. << getPrintableNameForEntity(Entity) << T;
  1908. return QualType();
  1909. }
  1910. if (const RecordType *EltTy = T->getAs<RecordType>()) {
  1911. // If the element type is a struct or union that contains a variadic
  1912. // array, accept it as a GNU extension: C99 6.7.2.1p2.
  1913. if (EltTy->getDecl()->hasFlexibleArrayMember())
  1914. Diag(Loc, diag::ext_flexible_array_in_array) << T;
  1915. } else if (T->isObjCObjectType()) {
  1916. Diag(Loc, diag::err_objc_array_of_interfaces) << T;
  1917. return QualType();
  1918. }
  1919. // Do placeholder conversions on the array size expression.
  1920. if (ArraySize && ArraySize->hasPlaceholderType()) {
  1921. ExprResult Result = CheckPlaceholderExpr(ArraySize);
  1922. if (Result.isInvalid()) return QualType();
  1923. ArraySize = Result.get();
  1924. }
  1925. // Do lvalue-to-rvalue conversions on the array size expression.
  1926. if (ArraySize && !ArraySize->isRValue()) {
  1927. ExprResult Result = DefaultLvalueConversion(ArraySize);
  1928. if (Result.isInvalid())
  1929. return QualType();
  1930. ArraySize = Result.get();
  1931. }
  1932. // C99 6.7.5.2p1: The size expression shall have integer type.
  1933. // C++11 allows contextual conversions to such types.
  1934. if (!getLangOpts().CPlusPlus11 &&
  1935. ArraySize && !ArraySize->isTypeDependent() &&
  1936. !ArraySize->getType()->isIntegralOrUnscopedEnumerationType()) {
  1937. Diag(ArraySize->getBeginLoc(), diag::err_array_size_non_int)
  1938. << ArraySize->getType() << ArraySize->getSourceRange();
  1939. return QualType();
  1940. }
  1941. llvm::APSInt ConstVal(Context.getTypeSize(Context.getSizeType()));
  1942. if (!ArraySize) {
  1943. if (ASM == ArrayType::Star)
  1944. T = Context.getVariableArrayType(T, nullptr, ASM, Quals, Brackets);
  1945. else
  1946. T = Context.getIncompleteArrayType(T, ASM, Quals);
  1947. } else if (ArraySize->isTypeDependent() || ArraySize->isValueDependent()) {
  1948. T = Context.getDependentSizedArrayType(T, ArraySize, ASM, Quals, Brackets);
  1949. } else if ((!T->isDependentType() && !T->isIncompleteType() &&
  1950. !T->isConstantSizeType()) ||
  1951. isArraySizeVLA(*this, ArraySize, ConstVal)) {
  1952. // Even in C++11, don't allow contextual conversions in the array bound
  1953. // of a VLA.
  1954. if (getLangOpts().CPlusPlus11 &&
  1955. !ArraySize->getType()->isIntegralOrUnscopedEnumerationType()) {
  1956. Diag(ArraySize->getBeginLoc(), diag::err_array_size_non_int)
  1957. << ArraySize->getType() << ArraySize->getSourceRange();
  1958. return QualType();
  1959. }
  1960. // C99: an array with an element type that has a non-constant-size is a VLA.
  1961. // C99: an array with a non-ICE size is a VLA. We accept any expression
  1962. // that we can fold to a non-zero positive value as an extension.
  1963. T = Context.getVariableArrayType(T, ArraySize, ASM, Quals, Brackets);
  1964. } else {
  1965. // C99 6.7.5.2p1: If the expression is a constant expression, it shall
  1966. // have a value greater than zero.
  1967. if (ConstVal.isSigned() && ConstVal.isNegative()) {
  1968. if (Entity)
  1969. Diag(ArraySize->getBeginLoc(), diag::err_decl_negative_array_size)
  1970. << getPrintableNameForEntity(Entity) << ArraySize->getSourceRange();
  1971. else
  1972. Diag(ArraySize->getBeginLoc(), diag::err_typecheck_negative_array_size)
  1973. << ArraySize->getSourceRange();
  1974. return QualType();
  1975. }
  1976. if (ConstVal == 0) {
  1977. // GCC accepts zero sized static arrays. We allow them when
  1978. // we're not in a SFINAE context.
  1979. Diag(ArraySize->getBeginLoc(), isSFINAEContext()
  1980. ? diag::err_typecheck_zero_array_size
  1981. : diag::ext_typecheck_zero_array_size)
  1982. << ArraySize->getSourceRange();
  1983. if (ASM == ArrayType::Static) {
  1984. Diag(ArraySize->getBeginLoc(),
  1985. diag::warn_typecheck_zero_static_array_size)
  1986. << ArraySize->getSourceRange();
  1987. ASM = ArrayType::Normal;
  1988. }
  1989. } else if (!T->isDependentType() && !T->isVariablyModifiedType() &&
  1990. !T->isIncompleteType() && !T->isUndeducedType()) {
  1991. // Is the array too large?
  1992. unsigned ActiveSizeBits
  1993. = ConstantArrayType::getNumAddressingBits(Context, T, ConstVal);
  1994. if (ActiveSizeBits > ConstantArrayType::getMaxSizeBits(Context)) {
  1995. Diag(ArraySize->getBeginLoc(), diag::err_array_too_large)
  1996. << ConstVal.toString(10) << ArraySize->getSourceRange();
  1997. return QualType();
  1998. }
  1999. }
  2000. T = Context.getConstantArrayType(T, ConstVal, ArraySize, ASM, Quals);
  2001. }
  2002. // OpenCL v1.2 s6.9.d: variable length arrays are not supported.
  2003. if (getLangOpts().OpenCL && T->isVariableArrayType()) {
  2004. Diag(Loc, diag::err_opencl_vla);
  2005. return QualType();
  2006. }
  2007. if (T->isVariableArrayType() && !Context.getTargetInfo().isVLASupported()) {
  2008. // CUDA device code and some other targets don't support VLAs.
  2009. targetDiag(Loc, (getLangOpts().CUDA && getLangOpts().CUDAIsDevice)
  2010. ? diag::err_cuda_vla
  2011. : diag::err_vla_unsupported)
  2012. << ((getLangOpts().CUDA && getLangOpts().CUDAIsDevice)
  2013. ? CurrentCUDATarget()
  2014. : CFT_InvalidTarget);
  2015. }
  2016. // If this is not C99, extwarn about VLA's and C99 array size modifiers.
  2017. if (!getLangOpts().C99) {
  2018. if (T->isVariableArrayType()) {
  2019. // Prohibit the use of VLAs during template argument deduction.
  2020. if (isSFINAEContext()) {
  2021. Diag(Loc, diag::err_vla_in_sfinae);
  2022. return QualType();
  2023. }
  2024. // Just extwarn about VLAs.
  2025. else
  2026. Diag(Loc, diag::ext_vla);
  2027. } else if (ASM != ArrayType::Normal || Quals != 0)
  2028. Diag(Loc,
  2029. getLangOpts().CPlusPlus? diag::err_c99_array_usage_cxx
  2030. : diag::ext_c99_array_usage) << ASM;
  2031. }
  2032. if (T->isVariableArrayType()) {
  2033. // Warn about VLAs for -Wvla.
  2034. Diag(Loc, diag::warn_vla_used);
  2035. }
  2036. // OpenCL v2.0 s6.12.5 - Arrays of blocks are not supported.
  2037. // OpenCL v2.0 s6.16.13.1 - Arrays of pipe type are not supported.
  2038. // OpenCL v2.0 s6.9.b - Arrays of image/sampler type are not supported.
  2039. if (getLangOpts().OpenCL) {
  2040. const QualType ArrType = Context.getBaseElementType(T);
  2041. if (ArrType->isBlockPointerType() || ArrType->isPipeType() ||
  2042. ArrType->isSamplerT() || ArrType->isImageType()) {
  2043. Diag(Loc, diag::err_opencl_invalid_type_array) << ArrType;
  2044. return QualType();
  2045. }
  2046. }
  2047. return T;
  2048. }
  2049. QualType Sema::BuildVectorType(QualType CurType, Expr *SizeExpr,
  2050. SourceLocation AttrLoc) {
  2051. // The base type must be integer (not Boolean or enumeration) or float, and
  2052. // can't already be a vector.
  2053. if (!CurType->isDependentType() &&
  2054. (!CurType->isBuiltinType() || CurType->isBooleanType() ||
  2055. (!CurType->isIntegerType() && !CurType->isRealFloatingType()))) {
  2056. Diag(AttrLoc, diag::err_attribute_invalid_vector_type) << CurType;
  2057. return QualType();
  2058. }
  2059. if (SizeExpr->isTypeDependent() || SizeExpr->isValueDependent())
  2060. return Context.getDependentVectorType(CurType, SizeExpr, AttrLoc,
  2061. VectorType::GenericVector);
  2062. llvm::APSInt VecSize(32);
  2063. if (!SizeExpr->isIntegerConstantExpr(VecSize, Context)) {
  2064. Diag(AttrLoc, diag::err_attribute_argument_type)
  2065. << "vector_size" << AANT_ArgumentIntegerConstant
  2066. << SizeExpr->getSourceRange();
  2067. return QualType();
  2068. }
  2069. if (CurType->isDependentType())
  2070. return Context.getDependentVectorType(CurType, SizeExpr, AttrLoc,
  2071. VectorType::GenericVector);
  2072. unsigned VectorSize = static_cast<unsigned>(VecSize.getZExtValue() * 8);
  2073. unsigned TypeSize = static_cast<unsigned>(Context.getTypeSize(CurType));
  2074. if (VectorSize == 0) {
  2075. Diag(AttrLoc, diag::err_attribute_zero_size) << SizeExpr->getSourceRange();
  2076. return QualType();
  2077. }
  2078. // vecSize is specified in bytes - convert to bits.
  2079. if (VectorSize % TypeSize) {
  2080. Diag(AttrLoc, diag::err_attribute_invalid_size)
  2081. << SizeExpr->getSourceRange();
  2082. return QualType();
  2083. }
  2084. if (VectorType::isVectorSizeTooLarge(VectorSize / TypeSize)) {
  2085. Diag(AttrLoc, diag::err_attribute_size_too_large)
  2086. << SizeExpr->getSourceRange();
  2087. return QualType();
  2088. }
  2089. return Context.getVectorType(CurType, VectorSize / TypeSize,
  2090. VectorType::GenericVector);
  2091. }
  2092. /// Build an ext-vector type.
  2093. ///
  2094. /// Run the required checks for the extended vector type.
  2095. QualType Sema::BuildExtVectorType(QualType T, Expr *ArraySize,
  2096. SourceLocation AttrLoc) {
  2097. // Unlike gcc's vector_size attribute, we do not allow vectors to be defined
  2098. // in conjunction with complex types (pointers, arrays, functions, etc.).
  2099. //
  2100. // Additionally, OpenCL prohibits vectors of booleans (they're considered a
  2101. // reserved data type under OpenCL v2.0 s6.1.4), we don't support selects
  2102. // on bitvectors, and we have no well-defined ABI for bitvectors, so vectors
  2103. // of bool aren't allowed.
  2104. if ((!T->isDependentType() && !T->isIntegerType() &&
  2105. !T->isRealFloatingType()) ||
  2106. T->isBooleanType()) {
  2107. Diag(AttrLoc, diag::err_attribute_invalid_vector_type) << T;
  2108. return QualType();
  2109. }
  2110. if (!ArraySize->isTypeDependent() && !ArraySize->isValueDependent()) {
  2111. llvm::APSInt vecSize(32);
  2112. if (!ArraySize->isIntegerConstantExpr(vecSize, Context)) {
  2113. Diag(AttrLoc, diag::err_attribute_argument_type)
  2114. << "ext_vector_type" << AANT_ArgumentIntegerConstant
  2115. << ArraySize->getSourceRange();
  2116. return QualType();
  2117. }
  2118. // Unlike gcc's vector_size attribute, the size is specified as the
  2119. // number of elements, not the number of bytes.
  2120. unsigned vectorSize = static_cast<unsigned>(vecSize.getZExtValue());
  2121. if (vectorSize == 0) {
  2122. Diag(AttrLoc, diag::err_attribute_zero_size)
  2123. << ArraySize->getSourceRange();
  2124. return QualType();
  2125. }
  2126. if (VectorType::isVectorSizeTooLarge(vectorSize)) {
  2127. Diag(AttrLoc, diag::err_attribute_size_too_large)
  2128. << ArraySize->getSourceRange();
  2129. return QualType();
  2130. }
  2131. return Context.getExtVectorType(T, vectorSize);
  2132. }
  2133. return Context.getDependentSizedExtVectorType(T, ArraySize, AttrLoc);
  2134. }
  2135. bool Sema::CheckFunctionReturnType(QualType T, SourceLocation Loc) {
  2136. if (T->isArrayType() || T->isFunctionType()) {
  2137. Diag(Loc, diag::err_func_returning_array_function)
  2138. << T->isFunctionType() << T;
  2139. return true;
  2140. }
  2141. // Functions cannot return half FP.
  2142. if (T->isHalfType() && !getLangOpts().HalfArgsAndReturns) {
  2143. Diag(Loc, diag::err_parameters_retval_cannot_have_fp16_type) << 1 <<
  2144. FixItHint::CreateInsertion(Loc, "*");
  2145. return true;
  2146. }
  2147. // Methods cannot return interface types. All ObjC objects are
  2148. // passed by reference.
  2149. if (T->isObjCObjectType()) {
  2150. Diag(Loc, diag::err_object_cannot_be_passed_returned_by_value)
  2151. << 0 << T << FixItHint::CreateInsertion(Loc, "*");
  2152. return true;
  2153. }
  2154. if (T.hasNonTrivialToPrimitiveDestructCUnion() ||
  2155. T.hasNonTrivialToPrimitiveCopyCUnion())
  2156. checkNonTrivialCUnion(T, Loc, NTCUC_FunctionReturn,
  2157. NTCUK_Destruct|NTCUK_Copy);
  2158. return false;
  2159. }
  2160. /// Check the extended parameter information. Most of the necessary
  2161. /// checking should occur when applying the parameter attribute; the
  2162. /// only other checks required are positional restrictions.
  2163. static void checkExtParameterInfos(Sema &S, ArrayRef<QualType> paramTypes,
  2164. const FunctionProtoType::ExtProtoInfo &EPI,
  2165. llvm::function_ref<SourceLocation(unsigned)> getParamLoc) {
  2166. assert(EPI.ExtParameterInfos && "shouldn't get here without param infos");
  2167. bool hasCheckedSwiftCall = false;
  2168. auto checkForSwiftCC = [&](unsigned paramIndex) {
  2169. // Only do this once.
  2170. if (hasCheckedSwiftCall) return;
  2171. hasCheckedSwiftCall = true;
  2172. if (EPI.ExtInfo.getCC() == CC_Swift) return;
  2173. S.Diag(getParamLoc(paramIndex), diag::err_swift_param_attr_not_swiftcall)
  2174. << getParameterABISpelling(EPI.ExtParameterInfos[paramIndex].getABI());
  2175. };
  2176. for (size_t paramIndex = 0, numParams = paramTypes.size();
  2177. paramIndex != numParams; ++paramIndex) {
  2178. switch (EPI.ExtParameterInfos[paramIndex].getABI()) {
  2179. // Nothing interesting to check for orindary-ABI parameters.
  2180. case ParameterABI::Ordinary:
  2181. continue;
  2182. // swift_indirect_result parameters must be a prefix of the function
  2183. // arguments.
  2184. case ParameterABI::SwiftIndirectResult:
  2185. checkForSwiftCC(paramIndex);
  2186. if (paramIndex != 0 &&
  2187. EPI.ExtParameterInfos[paramIndex - 1].getABI()
  2188. != ParameterABI::SwiftIndirectResult) {
  2189. S.Diag(getParamLoc(paramIndex),
  2190. diag::err_swift_indirect_result_not_first);
  2191. }
  2192. continue;
  2193. case ParameterABI::SwiftContext:
  2194. checkForSwiftCC(paramIndex);
  2195. continue;
  2196. // swift_error parameters must be preceded by a swift_context parameter.
  2197. case ParameterABI::SwiftErrorResult:
  2198. checkForSwiftCC(paramIndex);
  2199. if (paramIndex == 0 ||
  2200. EPI.ExtParameterInfos[paramIndex - 1].getABI() !=
  2201. ParameterABI::SwiftContext) {
  2202. S.Diag(getParamLoc(paramIndex),
  2203. diag::err_swift_error_result_not_after_swift_context);
  2204. }
  2205. continue;
  2206. }
  2207. llvm_unreachable("bad ABI kind");
  2208. }
  2209. }
  2210. QualType Sema::BuildFunctionType(QualType T,
  2211. MutableArrayRef<QualType> ParamTypes,
  2212. SourceLocation Loc, DeclarationName Entity,
  2213. const FunctionProtoType::ExtProtoInfo &EPI) {
  2214. bool Invalid = false;
  2215. Invalid |= CheckFunctionReturnType(T, Loc);
  2216. for (unsigned Idx = 0, Cnt = ParamTypes.size(); Idx < Cnt; ++Idx) {
  2217. // FIXME: Loc is too inprecise here, should use proper locations for args.
  2218. QualType ParamType = Context.getAdjustedParameterType(ParamTypes[Idx]);
  2219. if (ParamType->isVoidType()) {
  2220. Diag(Loc, diag::err_param_with_void_type);
  2221. Invalid = true;
  2222. } else if (ParamType->isHalfType() && !getLangOpts().HalfArgsAndReturns) {
  2223. // Disallow half FP arguments.
  2224. Diag(Loc, diag::err_parameters_retval_cannot_have_fp16_type) << 0 <<
  2225. FixItHint::CreateInsertion(Loc, "*");
  2226. Invalid = true;
  2227. }
  2228. ParamTypes[Idx] = ParamType;
  2229. }
  2230. if (EPI.ExtParameterInfos) {
  2231. checkExtParameterInfos(*this, ParamTypes, EPI,
  2232. [=](unsigned i) { return Loc; });
  2233. }
  2234. if (EPI.ExtInfo.getProducesResult()) {
  2235. // This is just a warning, so we can't fail to build if we see it.
  2236. checkNSReturnsRetainedReturnType(Loc, T);
  2237. }
  2238. if (Invalid)
  2239. return QualType();
  2240. return Context.getFunctionType(T, ParamTypes, EPI);
  2241. }
  2242. /// Build a member pointer type \c T Class::*.
  2243. ///
  2244. /// \param T the type to which the member pointer refers.
  2245. /// \param Class the class type into which the member pointer points.
  2246. /// \param Loc the location where this type begins
  2247. /// \param Entity the name of the entity that will have this member pointer type
  2248. ///
  2249. /// \returns a member pointer type, if successful, or a NULL type if there was
  2250. /// an error.
  2251. QualType Sema::BuildMemberPointerType(QualType T, QualType Class,
  2252. SourceLocation Loc,
  2253. DeclarationName Entity) {
  2254. // Verify that we're not building a pointer to pointer to function with
  2255. // exception specification.
  2256. if (CheckDistantExceptionSpec(T)) {
  2257. Diag(Loc, diag::err_distant_exception_spec);
  2258. return QualType();
  2259. }
  2260. // C++ 8.3.3p3: A pointer to member shall not point to ... a member
  2261. // with reference type, or "cv void."
  2262. if (T->isReferenceType()) {
  2263. Diag(Loc, diag::err_illegal_decl_mempointer_to_reference)
  2264. << getPrintableNameForEntity(Entity) << T;
  2265. return QualType();
  2266. }
  2267. if (T->isVoidType()) {
  2268. Diag(Loc, diag::err_illegal_decl_mempointer_to_void)
  2269. << getPrintableNameForEntity(Entity);
  2270. return QualType();
  2271. }
  2272. if (!Class->isDependentType() && !Class->isRecordType()) {
  2273. Diag(Loc, diag::err_mempointer_in_nonclass_type) << Class;
  2274. return QualType();
  2275. }
  2276. // Adjust the default free function calling convention to the default method
  2277. // calling convention.
  2278. bool IsCtorOrDtor =
  2279. (Entity.getNameKind() == DeclarationName::CXXConstructorName) ||
  2280. (Entity.getNameKind() == DeclarationName::CXXDestructorName);
  2281. if (T->isFunctionType())
  2282. adjustMemberFunctionCC(T, /*IsStatic=*/false, IsCtorOrDtor, Loc);
  2283. return Context.getMemberPointerType(T, Class.getTypePtr());
  2284. }
  2285. /// Build a block pointer type.
  2286. ///
  2287. /// \param T The type to which we'll be building a block pointer.
  2288. ///
  2289. /// \param Loc The source location, used for diagnostics.
  2290. ///
  2291. /// \param Entity The name of the entity that involves the block pointer
  2292. /// type, if known.
  2293. ///
  2294. /// \returns A suitable block pointer type, if there are no
  2295. /// errors. Otherwise, returns a NULL type.
  2296. QualType Sema::BuildBlockPointerType(QualType T,
  2297. SourceLocation Loc,
  2298. DeclarationName Entity) {
  2299. if (!T->isFunctionType()) {
  2300. Diag(Loc, diag::err_nonfunction_block_type);
  2301. return QualType();
  2302. }
  2303. if (checkQualifiedFunction(*this, T, Loc, QFK_BlockPointer))
  2304. return QualType();
  2305. return Context.getBlockPointerType(T);
  2306. }
  2307. QualType Sema::GetTypeFromParser(ParsedType Ty, TypeSourceInfo **TInfo) {
  2308. QualType QT = Ty.get();
  2309. if (QT.isNull()) {
  2310. if (TInfo) *TInfo = nullptr;
  2311. return QualType();
  2312. }
  2313. TypeSourceInfo *DI = nullptr;
  2314. if (const LocInfoType *LIT = dyn_cast<LocInfoType>(QT)) {
  2315. QT = LIT->getType();
  2316. DI = LIT->getTypeSourceInfo();
  2317. }
  2318. if (TInfo) *TInfo = DI;
  2319. return QT;
  2320. }
  2321. static void transferARCOwnershipToDeclaratorChunk(TypeProcessingState &state,
  2322. Qualifiers::ObjCLifetime ownership,
  2323. unsigned chunkIndex);
  2324. /// Given that this is the declaration of a parameter under ARC,
  2325. /// attempt to infer attributes and such for pointer-to-whatever
  2326. /// types.
  2327. static void inferARCWriteback(TypeProcessingState &state,
  2328. QualType &declSpecType) {
  2329. Sema &S = state.getSema();
  2330. Declarator &declarator = state.getDeclarator();
  2331. // TODO: should we care about decl qualifiers?
  2332. // Check whether the declarator has the expected form. We walk
  2333. // from the inside out in order to make the block logic work.
  2334. unsigned outermostPointerIndex = 0;
  2335. bool isBlockPointer = false;
  2336. unsigned numPointers = 0;
  2337. for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) {
  2338. unsigned chunkIndex = i;
  2339. DeclaratorChunk &chunk = declarator.getTypeObject(chunkIndex);
  2340. switch (chunk.Kind) {
  2341. case DeclaratorChunk::Paren:
  2342. // Ignore parens.
  2343. break;
  2344. case DeclaratorChunk::Reference:
  2345. case DeclaratorChunk::Pointer:
  2346. // Count the number of pointers. Treat references
  2347. // interchangeably as pointers; if they're mis-ordered, normal
  2348. // type building will discover that.
  2349. outermostPointerIndex = chunkIndex;
  2350. numPointers++;
  2351. break;
  2352. case DeclaratorChunk::BlockPointer:
  2353. // If we have a pointer to block pointer, that's an acceptable
  2354. // indirect reference; anything else is not an application of
  2355. // the rules.
  2356. if (numPointers != 1) return;
  2357. numPointers++;
  2358. outermostPointerIndex = chunkIndex;
  2359. isBlockPointer = true;
  2360. // We don't care about pointer structure in return values here.
  2361. goto done;
  2362. case DeclaratorChunk::Array: // suppress if written (id[])?
  2363. case DeclaratorChunk::Function:
  2364. case DeclaratorChunk::MemberPointer:
  2365. case DeclaratorChunk::Pipe:
  2366. return;
  2367. }
  2368. }
  2369. done:
  2370. // If we have *one* pointer, then we want to throw the qualifier on
  2371. // the declaration-specifiers, which means that it needs to be a
  2372. // retainable object type.
  2373. if (numPointers == 1) {
  2374. // If it's not a retainable object type, the rule doesn't apply.
  2375. if (!declSpecType->isObjCRetainableType()) return;
  2376. // If it already has lifetime, don't do anything.
  2377. if (declSpecType.getObjCLifetime()) return;
  2378. // Otherwise, modify the type in-place.
  2379. Qualifiers qs;
  2380. if (declSpecType->isObjCARCImplicitlyUnretainedType())
  2381. qs.addObjCLifetime(Qualifiers::OCL_ExplicitNone);
  2382. else
  2383. qs.addObjCLifetime(Qualifiers::OCL_Autoreleasing);
  2384. declSpecType = S.Context.getQualifiedType(declSpecType, qs);
  2385. // If we have *two* pointers, then we want to throw the qualifier on
  2386. // the outermost pointer.
  2387. } else if (numPointers == 2) {
  2388. // If we don't have a block pointer, we need to check whether the
  2389. // declaration-specifiers gave us something that will turn into a
  2390. // retainable object pointer after we slap the first pointer on it.
  2391. if (!isBlockPointer && !declSpecType->isObjCObjectType())
  2392. return;
  2393. // Look for an explicit lifetime attribute there.
  2394. DeclaratorChunk &chunk = declarator.getTypeObject(outermostPointerIndex);
  2395. if (chunk.Kind != DeclaratorChunk::Pointer &&
  2396. chunk.Kind != DeclaratorChunk::BlockPointer)
  2397. return;
  2398. for (const ParsedAttr &AL : chunk.getAttrs())
  2399. if (AL.getKind() == ParsedAttr::AT_ObjCOwnership)
  2400. return;
  2401. transferARCOwnershipToDeclaratorChunk(state, Qualifiers::OCL_Autoreleasing,
  2402. outermostPointerIndex);
  2403. // Any other number of pointers/references does not trigger the rule.
  2404. } else return;
  2405. // TODO: mark whether we did this inference?
  2406. }
  2407. void Sema::diagnoseIgnoredQualifiers(unsigned DiagID, unsigned Quals,
  2408. SourceLocation FallbackLoc,
  2409. SourceLocation ConstQualLoc,
  2410. SourceLocation VolatileQualLoc,
  2411. SourceLocation RestrictQualLoc,
  2412. SourceLocation AtomicQualLoc,
  2413. SourceLocation UnalignedQualLoc) {
  2414. if (!Quals)
  2415. return;
  2416. struct Qual {
  2417. const char *Name;
  2418. unsigned Mask;
  2419. SourceLocation Loc;
  2420. } const QualKinds[5] = {
  2421. { "const", DeclSpec::TQ_const, ConstQualLoc },
  2422. { "volatile", DeclSpec::TQ_volatile, VolatileQualLoc },
  2423. { "restrict", DeclSpec::TQ_restrict, RestrictQualLoc },
  2424. { "__unaligned", DeclSpec::TQ_unaligned, UnalignedQualLoc },
  2425. { "_Atomic", DeclSpec::TQ_atomic, AtomicQualLoc }
  2426. };
  2427. SmallString<32> QualStr;
  2428. unsigned NumQuals = 0;
  2429. SourceLocation Loc;
  2430. FixItHint FixIts[5];
  2431. // Build a string naming the redundant qualifiers.
  2432. for (auto &E : QualKinds) {
  2433. if (Quals & E.Mask) {
  2434. if (!QualStr.empty()) QualStr += ' ';
  2435. QualStr += E.Name;
  2436. // If we have a location for the qualifier, offer a fixit.
  2437. SourceLocation QualLoc = E.Loc;
  2438. if (QualLoc.isValid()) {
  2439. FixIts[NumQuals] = FixItHint::CreateRemoval(QualLoc);
  2440. if (Loc.isInvalid() ||
  2441. getSourceManager().isBeforeInTranslationUnit(QualLoc, Loc))
  2442. Loc = QualLoc;
  2443. }
  2444. ++NumQuals;
  2445. }
  2446. }
  2447. Diag(Loc.isInvalid() ? FallbackLoc : Loc, DiagID)
  2448. << QualStr << NumQuals << FixIts[0] << FixIts[1] << FixIts[2] << FixIts[3];
  2449. }
  2450. // Diagnose pointless type qualifiers on the return type of a function.
  2451. static void diagnoseRedundantReturnTypeQualifiers(Sema &S, QualType RetTy,
  2452. Declarator &D,
  2453. unsigned FunctionChunkIndex) {
  2454. if (D.getTypeObject(FunctionChunkIndex).Fun.hasTrailingReturnType()) {
  2455. // FIXME: TypeSourceInfo doesn't preserve location information for
  2456. // qualifiers.
  2457. S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type,
  2458. RetTy.getLocalCVRQualifiers(),
  2459. D.getIdentifierLoc());
  2460. return;
  2461. }
  2462. for (unsigned OuterChunkIndex = FunctionChunkIndex + 1,
  2463. End = D.getNumTypeObjects();
  2464. OuterChunkIndex != End; ++OuterChunkIndex) {
  2465. DeclaratorChunk &OuterChunk = D.getTypeObject(OuterChunkIndex);
  2466. switch (OuterChunk.Kind) {
  2467. case DeclaratorChunk::Paren:
  2468. continue;
  2469. case DeclaratorChunk::Pointer: {
  2470. DeclaratorChunk::PointerTypeInfo &PTI = OuterChunk.Ptr;
  2471. S.diagnoseIgnoredQualifiers(
  2472. diag::warn_qual_return_type,
  2473. PTI.TypeQuals,
  2474. SourceLocation(),
  2475. SourceLocation::getFromRawEncoding(PTI.ConstQualLoc),
  2476. SourceLocation::getFromRawEncoding(PTI.VolatileQualLoc),
  2477. SourceLocation::getFromRawEncoding(PTI.RestrictQualLoc),
  2478. SourceLocation::getFromRawEncoding(PTI.AtomicQualLoc),
  2479. SourceLocation::getFromRawEncoding(PTI.UnalignedQualLoc));
  2480. return;
  2481. }
  2482. case DeclaratorChunk::Function:
  2483. case DeclaratorChunk::BlockPointer:
  2484. case DeclaratorChunk::Reference:
  2485. case DeclaratorChunk::Array:
  2486. case DeclaratorChunk::MemberPointer:
  2487. case DeclaratorChunk::Pipe:
  2488. // FIXME: We can't currently provide an accurate source location and a
  2489. // fix-it hint for these.
  2490. unsigned AtomicQual = RetTy->isAtomicType() ? DeclSpec::TQ_atomic : 0;
  2491. S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type,
  2492. RetTy.getCVRQualifiers() | AtomicQual,
  2493. D.getIdentifierLoc());
  2494. return;
  2495. }
  2496. llvm_unreachable("unknown declarator chunk kind");
  2497. }
  2498. // If the qualifiers come from a conversion function type, don't diagnose
  2499. // them -- they're not necessarily redundant, since such a conversion
  2500. // operator can be explicitly called as "x.operator const int()".
  2501. if (D.getName().getKind() == UnqualifiedIdKind::IK_ConversionFunctionId)
  2502. return;
  2503. // Just parens all the way out to the decl specifiers. Diagnose any qualifiers
  2504. // which are present there.
  2505. S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type,
  2506. D.getDeclSpec().getTypeQualifiers(),
  2507. D.getIdentifierLoc(),
  2508. D.getDeclSpec().getConstSpecLoc(),
  2509. D.getDeclSpec().getVolatileSpecLoc(),
  2510. D.getDeclSpec().getRestrictSpecLoc(),
  2511. D.getDeclSpec().getAtomicSpecLoc(),
  2512. D.getDeclSpec().getUnalignedSpecLoc());
  2513. }
  2514. static QualType GetDeclSpecTypeForDeclarator(TypeProcessingState &state,
  2515. TypeSourceInfo *&ReturnTypeInfo) {
  2516. Sema &SemaRef = state.getSema();
  2517. Declarator &D = state.getDeclarator();
  2518. QualType T;
  2519. ReturnTypeInfo = nullptr;
  2520. // The TagDecl owned by the DeclSpec.
  2521. TagDecl *OwnedTagDecl = nullptr;
  2522. switch (D.getName().getKind()) {
  2523. case UnqualifiedIdKind::IK_ImplicitSelfParam:
  2524. case UnqualifiedIdKind::IK_OperatorFunctionId:
  2525. case UnqualifiedIdKind::IK_Identifier:
  2526. case UnqualifiedIdKind::IK_LiteralOperatorId:
  2527. case UnqualifiedIdKind::IK_TemplateId:
  2528. T = ConvertDeclSpecToType(state);
  2529. if (!D.isInvalidType() && D.getDeclSpec().isTypeSpecOwned()) {
  2530. OwnedTagDecl = cast<TagDecl>(D.getDeclSpec().getRepAsDecl());
  2531. // Owned declaration is embedded in declarator.
  2532. OwnedTagDecl->setEmbeddedInDeclarator(true);
  2533. }
  2534. break;
  2535. case UnqualifiedIdKind::IK_ConstructorName:
  2536. case UnqualifiedIdKind::IK_ConstructorTemplateId:
  2537. case UnqualifiedIdKind::IK_DestructorName:
  2538. // Constructors and destructors don't have return types. Use
  2539. // "void" instead.
  2540. T = SemaRef.Context.VoidTy;
  2541. processTypeAttrs(state, T, TAL_DeclSpec,
  2542. D.getMutableDeclSpec().getAttributes());
  2543. break;
  2544. case UnqualifiedIdKind::IK_DeductionGuideName:
  2545. // Deduction guides have a trailing return type and no type in their
  2546. // decl-specifier sequence. Use a placeholder return type for now.
  2547. T = SemaRef.Context.DependentTy;
  2548. break;
  2549. case UnqualifiedIdKind::IK_ConversionFunctionId:
  2550. // The result type of a conversion function is the type that it
  2551. // converts to.
  2552. T = SemaRef.GetTypeFromParser(D.getName().ConversionFunctionId,
  2553. &ReturnTypeInfo);
  2554. break;
  2555. }
  2556. if (!D.getAttributes().empty())
  2557. distributeTypeAttrsFromDeclarator(state, T);
  2558. // C++11 [dcl.spec.auto]p5: reject 'auto' if it is not in an allowed context.
  2559. if (DeducedType *Deduced = T->getContainedDeducedType()) {
  2560. AutoType *Auto = dyn_cast<AutoType>(Deduced);
  2561. int Error = -1;
  2562. // Is this a 'auto' or 'decltype(auto)' type (as opposed to __auto_type or
  2563. // class template argument deduction)?
  2564. bool IsCXXAutoType =
  2565. (Auto && Auto->getKeyword() != AutoTypeKeyword::GNUAutoType);
  2566. bool IsDeducedReturnType = false;
  2567. switch (D.getContext()) {
  2568. case DeclaratorContext::LambdaExprContext:
  2569. // Declared return type of a lambda-declarator is implicit and is always
  2570. // 'auto'.
  2571. break;
  2572. case DeclaratorContext::ObjCParameterContext:
  2573. case DeclaratorContext::ObjCResultContext:
  2574. case DeclaratorContext::PrototypeContext:
  2575. Error = 0;
  2576. break;
  2577. case DeclaratorContext::LambdaExprParameterContext:
  2578. // In C++14, generic lambdas allow 'auto' in their parameters.
  2579. if (!SemaRef.getLangOpts().CPlusPlus14 ||
  2580. !Auto || Auto->getKeyword() != AutoTypeKeyword::Auto)
  2581. Error = 16;
  2582. else {
  2583. // If auto is mentioned in a lambda parameter context, convert it to a
  2584. // template parameter type.
  2585. sema::LambdaScopeInfo *LSI = SemaRef.getCurLambda();
  2586. assert(LSI && "No LambdaScopeInfo on the stack!");
  2587. const unsigned TemplateParameterDepth = LSI->AutoTemplateParameterDepth;
  2588. const unsigned AutoParameterPosition = LSI->TemplateParams.size();
  2589. const bool IsParameterPack = D.hasEllipsis();
  2590. // Create the TemplateTypeParmDecl here to retrieve the corresponding
  2591. // template parameter type. Template parameters are temporarily added
  2592. // to the TU until the associated TemplateDecl is created.
  2593. TemplateTypeParmDecl *CorrespondingTemplateParam =
  2594. TemplateTypeParmDecl::Create(
  2595. SemaRef.Context, SemaRef.Context.getTranslationUnitDecl(),
  2596. /*KeyLoc*/ SourceLocation(), /*NameLoc*/ D.getBeginLoc(),
  2597. TemplateParameterDepth, AutoParameterPosition,
  2598. /*Identifier*/ nullptr, false, IsParameterPack);
  2599. CorrespondingTemplateParam->setImplicit();
  2600. LSI->TemplateParams.push_back(CorrespondingTemplateParam);
  2601. // Replace the 'auto' in the function parameter with this invented
  2602. // template type parameter.
  2603. // FIXME: Retain some type sugar to indicate that this was written
  2604. // as 'auto'.
  2605. T = state.ReplaceAutoType(
  2606. T, QualType(CorrespondingTemplateParam->getTypeForDecl(), 0));
  2607. }
  2608. break;
  2609. case DeclaratorContext::MemberContext: {
  2610. if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_static ||
  2611. D.isFunctionDeclarator())
  2612. break;
  2613. bool Cxx = SemaRef.getLangOpts().CPlusPlus;
  2614. switch (cast<TagDecl>(SemaRef.CurContext)->getTagKind()) {
  2615. case TTK_Enum: llvm_unreachable("unhandled tag kind");
  2616. case TTK_Struct: Error = Cxx ? 1 : 2; /* Struct member */ break;
  2617. case TTK_Union: Error = Cxx ? 3 : 4; /* Union member */ break;
  2618. case TTK_Class: Error = 5; /* Class member */ break;
  2619. case TTK_Interface: Error = 6; /* Interface member */ break;
  2620. }
  2621. if (D.getDeclSpec().isFriendSpecified())
  2622. Error = 20; // Friend type
  2623. break;
  2624. }
  2625. case DeclaratorContext::CXXCatchContext:
  2626. case DeclaratorContext::ObjCCatchContext:
  2627. Error = 7; // Exception declaration
  2628. break;
  2629. case DeclaratorContext::TemplateParamContext:
  2630. if (isa<DeducedTemplateSpecializationType>(Deduced))
  2631. Error = 19; // Template parameter
  2632. else if (!SemaRef.getLangOpts().CPlusPlus17)
  2633. Error = 8; // Template parameter (until C++17)
  2634. break;
  2635. case DeclaratorContext::BlockLiteralContext:
  2636. Error = 9; // Block literal
  2637. break;
  2638. case DeclaratorContext::TemplateArgContext:
  2639. // Within a template argument list, a deduced template specialization
  2640. // type will be reinterpreted as a template template argument.
  2641. if (isa<DeducedTemplateSpecializationType>(Deduced) &&
  2642. !D.getNumTypeObjects() &&
  2643. D.getDeclSpec().getParsedSpecifiers() == DeclSpec::PQ_TypeSpecifier)
  2644. break;
  2645. LLVM_FALLTHROUGH;
  2646. case DeclaratorContext::TemplateTypeArgContext:
  2647. Error = 10; // Template type argument
  2648. break;
  2649. case DeclaratorContext::AliasDeclContext:
  2650. case DeclaratorContext::AliasTemplateContext:
  2651. Error = 12; // Type alias
  2652. break;
  2653. case DeclaratorContext::TrailingReturnContext:
  2654. case DeclaratorContext::TrailingReturnVarContext:
  2655. if (!SemaRef.getLangOpts().CPlusPlus14 || !IsCXXAutoType)
  2656. Error = 13; // Function return type
  2657. IsDeducedReturnType = true;
  2658. break;
  2659. case DeclaratorContext::ConversionIdContext:
  2660. if (!SemaRef.getLangOpts().CPlusPlus14 || !IsCXXAutoType)
  2661. Error = 14; // conversion-type-id
  2662. IsDeducedReturnType = true;
  2663. break;
  2664. case DeclaratorContext::FunctionalCastContext:
  2665. if (isa<DeducedTemplateSpecializationType>(Deduced))
  2666. break;
  2667. LLVM_FALLTHROUGH;
  2668. case DeclaratorContext::TypeNameContext:
  2669. Error = 15; // Generic
  2670. break;
  2671. case DeclaratorContext::FileContext:
  2672. case DeclaratorContext::BlockContext:
  2673. case DeclaratorContext::ForContext:
  2674. case DeclaratorContext::InitStmtContext:
  2675. case DeclaratorContext::ConditionContext:
  2676. // FIXME: P0091R3 (erroneously) does not permit class template argument
  2677. // deduction in conditions, for-init-statements, and other declarations
  2678. // that are not simple-declarations.
  2679. break;
  2680. case DeclaratorContext::CXXNewContext:
  2681. // FIXME: P0091R3 does not permit class template argument deduction here,
  2682. // but we follow GCC and allow it anyway.
  2683. if (!IsCXXAutoType && !isa<DeducedTemplateSpecializationType>(Deduced))
  2684. Error = 17; // 'new' type
  2685. break;
  2686. case DeclaratorContext::KNRTypeListContext:
  2687. Error = 18; // K&R function parameter
  2688. break;
  2689. }
  2690. if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef)
  2691. Error = 11;
  2692. // In Objective-C it is an error to use 'auto' on a function declarator
  2693. // (and everywhere for '__auto_type').
  2694. if (D.isFunctionDeclarator() &&
  2695. (!SemaRef.getLangOpts().CPlusPlus11 || !IsCXXAutoType))
  2696. Error = 13;
  2697. bool HaveTrailing = false;
  2698. // C++11 [dcl.spec.auto]p2: 'auto' is always fine if the declarator
  2699. // contains a trailing return type. That is only legal at the outermost
  2700. // level. Check all declarator chunks (outermost first) anyway, to give
  2701. // better diagnostics.
  2702. // We don't support '__auto_type' with trailing return types.
  2703. // FIXME: Should we only do this for 'auto' and not 'decltype(auto)'?
  2704. if (SemaRef.getLangOpts().CPlusPlus11 && IsCXXAutoType &&
  2705. D.hasTrailingReturnType()) {
  2706. HaveTrailing = true;
  2707. Error = -1;
  2708. }
  2709. SourceRange AutoRange = D.getDeclSpec().getTypeSpecTypeLoc();
  2710. if (D.getName().getKind() == UnqualifiedIdKind::IK_ConversionFunctionId)
  2711. AutoRange = D.getName().getSourceRange();
  2712. if (Error != -1) {
  2713. unsigned Kind;
  2714. if (Auto) {
  2715. switch (Auto->getKeyword()) {
  2716. case AutoTypeKeyword::Auto: Kind = 0; break;
  2717. case AutoTypeKeyword::DecltypeAuto: Kind = 1; break;
  2718. case AutoTypeKeyword::GNUAutoType: Kind = 2; break;
  2719. }
  2720. } else {
  2721. assert(isa<DeducedTemplateSpecializationType>(Deduced) &&
  2722. "unknown auto type");
  2723. Kind = 3;
  2724. }
  2725. auto *DTST = dyn_cast<DeducedTemplateSpecializationType>(Deduced);
  2726. TemplateName TN = DTST ? DTST->getTemplateName() : TemplateName();
  2727. SemaRef.Diag(AutoRange.getBegin(), diag::err_auto_not_allowed)
  2728. << Kind << Error << (int)SemaRef.getTemplateNameKindForDiagnostics(TN)
  2729. << QualType(Deduced, 0) << AutoRange;
  2730. if (auto *TD = TN.getAsTemplateDecl())
  2731. SemaRef.Diag(TD->getLocation(), diag::note_template_decl_here);
  2732. T = SemaRef.Context.IntTy;
  2733. D.setInvalidType(true);
  2734. } else if (!HaveTrailing &&
  2735. D.getContext() != DeclaratorContext::LambdaExprContext) {
  2736. // If there was a trailing return type, we already got
  2737. // warn_cxx98_compat_trailing_return_type in the parser.
  2738. SemaRef.Diag(AutoRange.getBegin(),
  2739. D.getContext() ==
  2740. DeclaratorContext::LambdaExprParameterContext
  2741. ? diag::warn_cxx11_compat_generic_lambda
  2742. : IsDeducedReturnType
  2743. ? diag::warn_cxx11_compat_deduced_return_type
  2744. : diag::warn_cxx98_compat_auto_type_specifier)
  2745. << AutoRange;
  2746. }
  2747. }
  2748. if (SemaRef.getLangOpts().CPlusPlus &&
  2749. OwnedTagDecl && OwnedTagDecl->isCompleteDefinition()) {
  2750. // Check the contexts where C++ forbids the declaration of a new class
  2751. // or enumeration in a type-specifier-seq.
  2752. unsigned DiagID = 0;
  2753. switch (D.getContext()) {
  2754. case DeclaratorContext::TrailingReturnContext:
  2755. case DeclaratorContext::TrailingReturnVarContext:
  2756. // Class and enumeration definitions are syntactically not allowed in
  2757. // trailing return types.
  2758. llvm_unreachable("parser should not have allowed this");
  2759. break;
  2760. case DeclaratorContext::FileContext:
  2761. case DeclaratorContext::MemberContext:
  2762. case DeclaratorContext::BlockContext:
  2763. case DeclaratorContext::ForContext:
  2764. case DeclaratorContext::InitStmtContext:
  2765. case DeclaratorContext::BlockLiteralContext:
  2766. case DeclaratorContext::LambdaExprContext:
  2767. // C++11 [dcl.type]p3:
  2768. // A type-specifier-seq shall not define a class or enumeration unless
  2769. // it appears in the type-id of an alias-declaration (7.1.3) that is not
  2770. // the declaration of a template-declaration.
  2771. case DeclaratorContext::AliasDeclContext:
  2772. break;
  2773. case DeclaratorContext::AliasTemplateContext:
  2774. DiagID = diag::err_type_defined_in_alias_template;
  2775. break;
  2776. case DeclaratorContext::TypeNameContext:
  2777. case DeclaratorContext::FunctionalCastContext:
  2778. case DeclaratorContext::ConversionIdContext:
  2779. case DeclaratorContext::TemplateParamContext:
  2780. case DeclaratorContext::CXXNewContext:
  2781. case DeclaratorContext::CXXCatchContext:
  2782. case DeclaratorContext::ObjCCatchContext:
  2783. case DeclaratorContext::TemplateArgContext:
  2784. case DeclaratorContext::TemplateTypeArgContext:
  2785. DiagID = diag::err_type_defined_in_type_specifier;
  2786. break;
  2787. case DeclaratorContext::PrototypeContext:
  2788. case DeclaratorContext::LambdaExprParameterContext:
  2789. case DeclaratorContext::ObjCParameterContext:
  2790. case DeclaratorContext::ObjCResultContext:
  2791. case DeclaratorContext::KNRTypeListContext:
  2792. // C++ [dcl.fct]p6:
  2793. // Types shall not be defined in return or parameter types.
  2794. DiagID = diag::err_type_defined_in_param_type;
  2795. break;
  2796. case DeclaratorContext::ConditionContext:
  2797. // C++ 6.4p2:
  2798. // The type-specifier-seq shall not contain typedef and shall not declare
  2799. // a new class or enumeration.
  2800. DiagID = diag::err_type_defined_in_condition;
  2801. break;
  2802. }
  2803. if (DiagID != 0) {
  2804. SemaRef.Diag(OwnedTagDecl->getLocation(), DiagID)
  2805. << SemaRef.Context.getTypeDeclType(OwnedTagDecl);
  2806. D.setInvalidType(true);
  2807. }
  2808. }
  2809. assert(!T.isNull() && "This function should not return a null type");
  2810. return T;
  2811. }
  2812. /// Produce an appropriate diagnostic for an ambiguity between a function
  2813. /// declarator and a C++ direct-initializer.
  2814. static void warnAboutAmbiguousFunction(Sema &S, Declarator &D,
  2815. DeclaratorChunk &DeclType, QualType RT) {
  2816. const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun;
  2817. assert(FTI.isAmbiguous && "no direct-initializer / function ambiguity");
  2818. // If the return type is void there is no ambiguity.
  2819. if (RT->isVoidType())
  2820. return;
  2821. // An initializer for a non-class type can have at most one argument.
  2822. if (!RT->isRecordType() && FTI.NumParams > 1)
  2823. return;
  2824. // An initializer for a reference must have exactly one argument.
  2825. if (RT->isReferenceType() && FTI.NumParams != 1)
  2826. return;
  2827. // Only warn if this declarator is declaring a function at block scope, and
  2828. // doesn't have a storage class (such as 'extern') specified.
  2829. if (!D.isFunctionDeclarator() ||
  2830. D.getFunctionDefinitionKind() != FDK_Declaration ||
  2831. !S.CurContext->isFunctionOrMethod() ||
  2832. D.getDeclSpec().getStorageClassSpec()
  2833. != DeclSpec::SCS_unspecified)
  2834. return;
  2835. // Inside a condition, a direct initializer is not permitted. We allow one to
  2836. // be parsed in order to give better diagnostics in condition parsing.
  2837. if (D.getContext() == DeclaratorContext::ConditionContext)
  2838. return;
  2839. SourceRange ParenRange(DeclType.Loc, DeclType.EndLoc);
  2840. S.Diag(DeclType.Loc,
  2841. FTI.NumParams ? diag::warn_parens_disambiguated_as_function_declaration
  2842. : diag::warn_empty_parens_are_function_decl)
  2843. << ParenRange;
  2844. // If the declaration looks like:
  2845. // T var1,
  2846. // f();
  2847. // and name lookup finds a function named 'f', then the ',' was
  2848. // probably intended to be a ';'.
  2849. if (!D.isFirstDeclarator() && D.getIdentifier()) {
  2850. FullSourceLoc Comma(D.getCommaLoc(), S.SourceMgr);
  2851. FullSourceLoc Name(D.getIdentifierLoc(), S.SourceMgr);
  2852. if (Comma.getFileID() != Name.getFileID() ||
  2853. Comma.getSpellingLineNumber() != Name.getSpellingLineNumber()) {
  2854. LookupResult Result(S, D.getIdentifier(), SourceLocation(),
  2855. Sema::LookupOrdinaryName);
  2856. if (S.LookupName(Result, S.getCurScope()))
  2857. S.Diag(D.getCommaLoc(), diag::note_empty_parens_function_call)
  2858. << FixItHint::CreateReplacement(D.getCommaLoc(), ";")
  2859. << D.getIdentifier();
  2860. Result.suppressDiagnostics();
  2861. }
  2862. }
  2863. if (FTI.NumParams > 0) {
  2864. // For a declaration with parameters, eg. "T var(T());", suggest adding
  2865. // parens around the first parameter to turn the declaration into a
  2866. // variable declaration.
  2867. SourceRange Range = FTI.Params[0].Param->getSourceRange();
  2868. SourceLocation B = Range.getBegin();
  2869. SourceLocation E = S.getLocForEndOfToken(Range.getEnd());
  2870. // FIXME: Maybe we should suggest adding braces instead of parens
  2871. // in C++11 for classes that don't have an initializer_list constructor.
  2872. S.Diag(B, diag::note_additional_parens_for_variable_declaration)
  2873. << FixItHint::CreateInsertion(B, "(")
  2874. << FixItHint::CreateInsertion(E, ")");
  2875. } else {
  2876. // For a declaration without parameters, eg. "T var();", suggest replacing
  2877. // the parens with an initializer to turn the declaration into a variable
  2878. // declaration.
  2879. const CXXRecordDecl *RD = RT->getAsCXXRecordDecl();
  2880. // Empty parens mean value-initialization, and no parens mean
  2881. // default initialization. These are equivalent if the default
  2882. // constructor is user-provided or if zero-initialization is a
  2883. // no-op.
  2884. if (RD && RD->hasDefinition() &&
  2885. (RD->isEmpty() || RD->hasUserProvidedDefaultConstructor()))
  2886. S.Diag(DeclType.Loc, diag::note_empty_parens_default_ctor)
  2887. << FixItHint::CreateRemoval(ParenRange);
  2888. else {
  2889. std::string Init =
  2890. S.getFixItZeroInitializerForType(RT, ParenRange.getBegin());
  2891. if (Init.empty() && S.LangOpts.CPlusPlus11)
  2892. Init = "{}";
  2893. if (!Init.empty())
  2894. S.Diag(DeclType.Loc, diag::note_empty_parens_zero_initialize)
  2895. << FixItHint::CreateReplacement(ParenRange, Init);
  2896. }
  2897. }
  2898. }
  2899. /// Produce an appropriate diagnostic for a declarator with top-level
  2900. /// parentheses.
  2901. static void warnAboutRedundantParens(Sema &S, Declarator &D, QualType T) {
  2902. DeclaratorChunk &Paren = D.getTypeObject(D.getNumTypeObjects() - 1);
  2903. assert(Paren.Kind == DeclaratorChunk::Paren &&
  2904. "do not have redundant top-level parentheses");
  2905. // This is a syntactic check; we're not interested in cases that arise
  2906. // during template instantiation.
  2907. if (S.inTemplateInstantiation())
  2908. return;
  2909. // Check whether this could be intended to be a construction of a temporary
  2910. // object in C++ via a function-style cast.
  2911. bool CouldBeTemporaryObject =
  2912. S.getLangOpts().CPlusPlus && D.isExpressionContext() &&
  2913. !D.isInvalidType() && D.getIdentifier() &&
  2914. D.getDeclSpec().getParsedSpecifiers() == DeclSpec::PQ_TypeSpecifier &&
  2915. (T->isRecordType() || T->isDependentType()) &&
  2916. D.getDeclSpec().getTypeQualifiers() == 0 && D.isFirstDeclarator();
  2917. bool StartsWithDeclaratorId = true;
  2918. for (auto &C : D.type_objects()) {
  2919. switch (C.Kind) {
  2920. case DeclaratorChunk::Paren:
  2921. if (&C == &Paren)
  2922. continue;
  2923. LLVM_FALLTHROUGH;
  2924. case DeclaratorChunk::Pointer:
  2925. StartsWithDeclaratorId = false;
  2926. continue;
  2927. case DeclaratorChunk::Array:
  2928. if (!C.Arr.NumElts)
  2929. CouldBeTemporaryObject = false;
  2930. continue;
  2931. case DeclaratorChunk::Reference:
  2932. // FIXME: Suppress the warning here if there is no initializer; we're
  2933. // going to give an error anyway.
  2934. // We assume that something like 'T (&x) = y;' is highly likely to not
  2935. // be intended to be a temporary object.
  2936. CouldBeTemporaryObject = false;
  2937. StartsWithDeclaratorId = false;
  2938. continue;
  2939. case DeclaratorChunk::Function:
  2940. // In a new-type-id, function chunks require parentheses.
  2941. if (D.getContext() == DeclaratorContext::CXXNewContext)
  2942. return;
  2943. // FIXME: "A(f())" deserves a vexing-parse warning, not just a
  2944. // redundant-parens warning, but we don't know whether the function
  2945. // chunk was syntactically valid as an expression here.
  2946. CouldBeTemporaryObject = false;
  2947. continue;
  2948. case DeclaratorChunk::BlockPointer:
  2949. case DeclaratorChunk::MemberPointer:
  2950. case DeclaratorChunk::Pipe:
  2951. // These cannot appear in expressions.
  2952. CouldBeTemporaryObject = false;
  2953. StartsWithDeclaratorId = false;
  2954. continue;
  2955. }
  2956. }
  2957. // FIXME: If there is an initializer, assume that this is not intended to be
  2958. // a construction of a temporary object.
  2959. // Check whether the name has already been declared; if not, this is not a
  2960. // function-style cast.
  2961. if (CouldBeTemporaryObject) {
  2962. LookupResult Result(S, D.getIdentifier(), SourceLocation(),
  2963. Sema::LookupOrdinaryName);
  2964. if (!S.LookupName(Result, S.getCurScope()))
  2965. CouldBeTemporaryObject = false;
  2966. Result.suppressDiagnostics();
  2967. }
  2968. SourceRange ParenRange(Paren.Loc, Paren.EndLoc);
  2969. if (!CouldBeTemporaryObject) {
  2970. // If we have A (::B), the parentheses affect the meaning of the program.
  2971. // Suppress the warning in that case. Don't bother looking at the DeclSpec
  2972. // here: even (e.g.) "int ::x" is visually ambiguous even though it's
  2973. // formally unambiguous.
  2974. if (StartsWithDeclaratorId && D.getCXXScopeSpec().isValid()) {
  2975. for (NestedNameSpecifier *NNS = D.getCXXScopeSpec().getScopeRep(); NNS;
  2976. NNS = NNS->getPrefix()) {
  2977. if (NNS->getKind() == NestedNameSpecifier::Global)
  2978. return;
  2979. }
  2980. }
  2981. S.Diag(Paren.Loc, diag::warn_redundant_parens_around_declarator)
  2982. << ParenRange << FixItHint::CreateRemoval(Paren.Loc)
  2983. << FixItHint::CreateRemoval(Paren.EndLoc);
  2984. return;
  2985. }
  2986. S.Diag(Paren.Loc, diag::warn_parens_disambiguated_as_variable_declaration)
  2987. << ParenRange << D.getIdentifier();
  2988. auto *RD = T->getAsCXXRecordDecl();
  2989. if (!RD || !RD->hasDefinition() || RD->hasNonTrivialDestructor())
  2990. S.Diag(Paren.Loc, diag::note_raii_guard_add_name)
  2991. << FixItHint::CreateInsertion(Paren.Loc, " varname") << T
  2992. << D.getIdentifier();
  2993. // FIXME: A cast to void is probably a better suggestion in cases where it's
  2994. // valid (when there is no initializer and we're not in a condition).
  2995. S.Diag(D.getBeginLoc(), diag::note_function_style_cast_add_parentheses)
  2996. << FixItHint::CreateInsertion(D.getBeginLoc(), "(")
  2997. << FixItHint::CreateInsertion(S.getLocForEndOfToken(D.getEndLoc()), ")");
  2998. S.Diag(Paren.Loc, diag::note_remove_parens_for_variable_declaration)
  2999. << FixItHint::CreateRemoval(Paren.Loc)
  3000. << FixItHint::CreateRemoval(Paren.EndLoc);
  3001. }
  3002. /// Helper for figuring out the default CC for a function declarator type. If
  3003. /// this is the outermost chunk, then we can determine the CC from the
  3004. /// declarator context. If not, then this could be either a member function
  3005. /// type or normal function type.
  3006. static CallingConv getCCForDeclaratorChunk(
  3007. Sema &S, Declarator &D, const ParsedAttributesView &AttrList,
  3008. const DeclaratorChunk::FunctionTypeInfo &FTI, unsigned ChunkIndex) {
  3009. assert(D.getTypeObject(ChunkIndex).Kind == DeclaratorChunk::Function);
  3010. // Check for an explicit CC attribute.
  3011. for (const ParsedAttr &AL : AttrList) {
  3012. switch (AL.getKind()) {
  3013. CALLING_CONV_ATTRS_CASELIST : {
  3014. // Ignore attributes that don't validate or can't apply to the
  3015. // function type. We'll diagnose the failure to apply them in
  3016. // handleFunctionTypeAttr.
  3017. CallingConv CC;
  3018. if (!S.CheckCallingConvAttr(AL, CC) &&
  3019. (!FTI.isVariadic || supportsVariadicCall(CC))) {
  3020. return CC;
  3021. }
  3022. break;
  3023. }
  3024. default:
  3025. break;
  3026. }
  3027. }
  3028. bool IsCXXInstanceMethod = false;
  3029. if (S.getLangOpts().CPlusPlus) {
  3030. // Look inwards through parentheses to see if this chunk will form a
  3031. // member pointer type or if we're the declarator. Any type attributes
  3032. // between here and there will override the CC we choose here.
  3033. unsigned I = ChunkIndex;
  3034. bool FoundNonParen = false;
  3035. while (I && !FoundNonParen) {
  3036. --I;
  3037. if (D.getTypeObject(I).Kind != DeclaratorChunk::Paren)
  3038. FoundNonParen = true;
  3039. }
  3040. if (FoundNonParen) {
  3041. // If we're not the declarator, we're a regular function type unless we're
  3042. // in a member pointer.
  3043. IsCXXInstanceMethod =
  3044. D.getTypeObject(I).Kind == DeclaratorChunk::MemberPointer;
  3045. } else if (D.getContext() == DeclaratorContext::LambdaExprContext) {
  3046. // This can only be a call operator for a lambda, which is an instance
  3047. // method.
  3048. IsCXXInstanceMethod = true;
  3049. } else {
  3050. // We're the innermost decl chunk, so must be a function declarator.
  3051. assert(D.isFunctionDeclarator());
  3052. // If we're inside a record, we're declaring a method, but it could be
  3053. // explicitly or implicitly static.
  3054. IsCXXInstanceMethod =
  3055. D.isFirstDeclarationOfMember() &&
  3056. D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef &&
  3057. !D.isStaticMember();
  3058. }
  3059. }
  3060. CallingConv CC = S.Context.getDefaultCallingConvention(FTI.isVariadic,
  3061. IsCXXInstanceMethod);
  3062. // Attribute AT_OpenCLKernel affects the calling convention for SPIR
  3063. // and AMDGPU targets, hence it cannot be treated as a calling
  3064. // convention attribute. This is the simplest place to infer
  3065. // calling convention for OpenCL kernels.
  3066. if (S.getLangOpts().OpenCL) {
  3067. for (const ParsedAttr &AL : D.getDeclSpec().getAttributes()) {
  3068. if (AL.getKind() == ParsedAttr::AT_OpenCLKernel) {
  3069. CC = CC_OpenCLKernel;
  3070. break;
  3071. }
  3072. }
  3073. }
  3074. return CC;
  3075. }
  3076. namespace {
  3077. /// A simple notion of pointer kinds, which matches up with the various
  3078. /// pointer declarators.
  3079. enum class SimplePointerKind {
  3080. Pointer,
  3081. BlockPointer,
  3082. MemberPointer,
  3083. Array,
  3084. };
  3085. } // end anonymous namespace
  3086. IdentifierInfo *Sema::getNullabilityKeyword(NullabilityKind nullability) {
  3087. switch (nullability) {
  3088. case NullabilityKind::NonNull:
  3089. if (!Ident__Nonnull)
  3090. Ident__Nonnull = PP.getIdentifierInfo("_Nonnull");
  3091. return Ident__Nonnull;
  3092. case NullabilityKind::Nullable:
  3093. if (!Ident__Nullable)
  3094. Ident__Nullable = PP.getIdentifierInfo("_Nullable");
  3095. return Ident__Nullable;
  3096. case NullabilityKind::Unspecified:
  3097. if (!Ident__Null_unspecified)
  3098. Ident__Null_unspecified = PP.getIdentifierInfo("_Null_unspecified");
  3099. return Ident__Null_unspecified;
  3100. }
  3101. llvm_unreachable("Unknown nullability kind.");
  3102. }
  3103. /// Retrieve the identifier "NSError".
  3104. IdentifierInfo *Sema::getNSErrorIdent() {
  3105. if (!Ident_NSError)
  3106. Ident_NSError = PP.getIdentifierInfo("NSError");
  3107. return Ident_NSError;
  3108. }
  3109. /// Check whether there is a nullability attribute of any kind in the given
  3110. /// attribute list.
  3111. static bool hasNullabilityAttr(const ParsedAttributesView &attrs) {
  3112. for (const ParsedAttr &AL : attrs) {
  3113. if (AL.getKind() == ParsedAttr::AT_TypeNonNull ||
  3114. AL.getKind() == ParsedAttr::AT_TypeNullable ||
  3115. AL.getKind() == ParsedAttr::AT_TypeNullUnspecified)
  3116. return true;
  3117. }
  3118. return false;
  3119. }
  3120. namespace {
  3121. /// Describes the kind of a pointer a declarator describes.
  3122. enum class PointerDeclaratorKind {
  3123. // Not a pointer.
  3124. NonPointer,
  3125. // Single-level pointer.
  3126. SingleLevelPointer,
  3127. // Multi-level pointer (of any pointer kind).
  3128. MultiLevelPointer,
  3129. // CFFooRef*
  3130. MaybePointerToCFRef,
  3131. // CFErrorRef*
  3132. CFErrorRefPointer,
  3133. // NSError**
  3134. NSErrorPointerPointer,
  3135. };
  3136. /// Describes a declarator chunk wrapping a pointer that marks inference as
  3137. /// unexpected.
  3138. // These values must be kept in sync with diagnostics.
  3139. enum class PointerWrappingDeclaratorKind {
  3140. /// Pointer is top-level.
  3141. None = -1,
  3142. /// Pointer is an array element.
  3143. Array = 0,
  3144. /// Pointer is the referent type of a C++ reference.
  3145. Reference = 1
  3146. };
  3147. } // end anonymous namespace
  3148. /// Classify the given declarator, whose type-specified is \c type, based on
  3149. /// what kind of pointer it refers to.
  3150. ///
  3151. /// This is used to determine the default nullability.
  3152. static PointerDeclaratorKind
  3153. classifyPointerDeclarator(Sema &S, QualType type, Declarator &declarator,
  3154. PointerWrappingDeclaratorKind &wrappingKind) {
  3155. unsigned numNormalPointers = 0;
  3156. // For any dependent type, we consider it a non-pointer.
  3157. if (type->isDependentType())
  3158. return PointerDeclaratorKind::NonPointer;
  3159. // Look through the declarator chunks to identify pointers.
  3160. for (unsigned i = 0, n = declarator.getNumTypeObjects(); i != n; ++i) {
  3161. DeclaratorChunk &chunk = declarator.getTypeObject(i);
  3162. switch (chunk.Kind) {
  3163. case DeclaratorChunk::Array:
  3164. if (numNormalPointers == 0)
  3165. wrappingKind = PointerWrappingDeclaratorKind::Array;
  3166. break;
  3167. case DeclaratorChunk::Function:
  3168. case DeclaratorChunk::Pipe:
  3169. break;
  3170. case DeclaratorChunk::BlockPointer:
  3171. case DeclaratorChunk::MemberPointer:
  3172. return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer
  3173. : PointerDeclaratorKind::SingleLevelPointer;
  3174. case DeclaratorChunk::Paren:
  3175. break;
  3176. case DeclaratorChunk::Reference:
  3177. if (numNormalPointers == 0)
  3178. wrappingKind = PointerWrappingDeclaratorKind::Reference;
  3179. break;
  3180. case DeclaratorChunk::Pointer:
  3181. ++numNormalPointers;
  3182. if (numNormalPointers > 2)
  3183. return PointerDeclaratorKind::MultiLevelPointer;
  3184. break;
  3185. }
  3186. }
  3187. // Then, dig into the type specifier itself.
  3188. unsigned numTypeSpecifierPointers = 0;
  3189. do {
  3190. // Decompose normal pointers.
  3191. if (auto ptrType = type->getAs<PointerType>()) {
  3192. ++numNormalPointers;
  3193. if (numNormalPointers > 2)
  3194. return PointerDeclaratorKind::MultiLevelPointer;
  3195. type = ptrType->getPointeeType();
  3196. ++numTypeSpecifierPointers;
  3197. continue;
  3198. }
  3199. // Decompose block pointers.
  3200. if (type->getAs<BlockPointerType>()) {
  3201. return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer
  3202. : PointerDeclaratorKind::SingleLevelPointer;
  3203. }
  3204. // Decompose member pointers.
  3205. if (type->getAs<MemberPointerType>()) {
  3206. return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer
  3207. : PointerDeclaratorKind::SingleLevelPointer;
  3208. }
  3209. // Look at Objective-C object pointers.
  3210. if (auto objcObjectPtr = type->getAs<ObjCObjectPointerType>()) {
  3211. ++numNormalPointers;
  3212. ++numTypeSpecifierPointers;
  3213. // If this is NSError**, report that.
  3214. if (auto objcClassDecl = objcObjectPtr->getInterfaceDecl()) {
  3215. if (objcClassDecl->getIdentifier() == S.getNSErrorIdent() &&
  3216. numNormalPointers == 2 && numTypeSpecifierPointers < 2) {
  3217. return PointerDeclaratorKind::NSErrorPointerPointer;
  3218. }
  3219. }
  3220. break;
  3221. }
  3222. // Look at Objective-C class types.
  3223. if (auto objcClass = type->getAs<ObjCInterfaceType>()) {
  3224. if (objcClass->getInterface()->getIdentifier() == S.getNSErrorIdent()) {
  3225. if (numNormalPointers == 2 && numTypeSpecifierPointers < 2)
  3226. return PointerDeclaratorKind::NSErrorPointerPointer;
  3227. }
  3228. break;
  3229. }
  3230. // If at this point we haven't seen a pointer, we won't see one.
  3231. if (numNormalPointers == 0)
  3232. return PointerDeclaratorKind::NonPointer;
  3233. if (auto recordType = type->getAs<RecordType>()) {
  3234. RecordDecl *recordDecl = recordType->getDecl();
  3235. bool isCFError = false;
  3236. if (S.CFError) {
  3237. // If we already know about CFError, test it directly.
  3238. isCFError = (S.CFError == recordDecl);
  3239. } else {
  3240. // Check whether this is CFError, which we identify based on its bridge
  3241. // to NSError. CFErrorRef used to be declared with "objc_bridge" but is
  3242. // now declared with "objc_bridge_mutable", so look for either one of
  3243. // the two attributes.
  3244. if (recordDecl->getTagKind() == TTK_Struct && numNormalPointers > 0) {
  3245. IdentifierInfo *bridgedType = nullptr;
  3246. if (auto bridgeAttr = recordDecl->getAttr<ObjCBridgeAttr>())
  3247. bridgedType = bridgeAttr->getBridgedType();
  3248. else if (auto bridgeAttr =
  3249. recordDecl->getAttr<ObjCBridgeMutableAttr>())
  3250. bridgedType = bridgeAttr->getBridgedType();
  3251. if (bridgedType == S.getNSErrorIdent()) {
  3252. S.CFError = recordDecl;
  3253. isCFError = true;
  3254. }
  3255. }
  3256. }
  3257. // If this is CFErrorRef*, report it as such.
  3258. if (isCFError && numNormalPointers == 2 && numTypeSpecifierPointers < 2) {
  3259. return PointerDeclaratorKind::CFErrorRefPointer;
  3260. }
  3261. break;
  3262. }
  3263. break;
  3264. } while (true);
  3265. switch (numNormalPointers) {
  3266. case 0:
  3267. return PointerDeclaratorKind::NonPointer;
  3268. case 1:
  3269. return PointerDeclaratorKind::SingleLevelPointer;
  3270. case 2:
  3271. return PointerDeclaratorKind::MaybePointerToCFRef;
  3272. default:
  3273. return PointerDeclaratorKind::MultiLevelPointer;
  3274. }
  3275. }
  3276. static FileID getNullabilityCompletenessCheckFileID(Sema &S,
  3277. SourceLocation loc) {
  3278. // If we're anywhere in a function, method, or closure context, don't perform
  3279. // completeness checks.
  3280. for (DeclContext *ctx = S.CurContext; ctx; ctx = ctx->getParent()) {
  3281. if (ctx->isFunctionOrMethod())
  3282. return FileID();
  3283. if (ctx->isFileContext())
  3284. break;
  3285. }
  3286. // We only care about the expansion location.
  3287. loc = S.SourceMgr.getExpansionLoc(loc);
  3288. FileID file = S.SourceMgr.getFileID(loc);
  3289. if (file.isInvalid())
  3290. return FileID();
  3291. // Retrieve file information.
  3292. bool invalid = false;
  3293. const SrcMgr::SLocEntry &sloc = S.SourceMgr.getSLocEntry(file, &invalid);
  3294. if (invalid || !sloc.isFile())
  3295. return FileID();
  3296. // We don't want to perform completeness checks on the main file or in
  3297. // system headers.
  3298. const SrcMgr::FileInfo &fileInfo = sloc.getFile();
  3299. if (fileInfo.getIncludeLoc().isInvalid())
  3300. return FileID();
  3301. if (fileInfo.getFileCharacteristic() != SrcMgr::C_User &&
  3302. S.Diags.getSuppressSystemWarnings()) {
  3303. return FileID();
  3304. }
  3305. return file;
  3306. }
  3307. /// Creates a fix-it to insert a C-style nullability keyword at \p pointerLoc,
  3308. /// taking into account whitespace before and after.
  3309. static void fixItNullability(Sema &S, DiagnosticBuilder &Diag,
  3310. SourceLocation PointerLoc,
  3311. NullabilityKind Nullability) {
  3312. assert(PointerLoc.isValid());
  3313. if (PointerLoc.isMacroID())
  3314. return;
  3315. SourceLocation FixItLoc = S.getLocForEndOfToken(PointerLoc);
  3316. if (!FixItLoc.isValid() || FixItLoc == PointerLoc)
  3317. return;
  3318. const char *NextChar = S.SourceMgr.getCharacterData(FixItLoc);
  3319. if (!NextChar)
  3320. return;
  3321. SmallString<32> InsertionTextBuf{" "};
  3322. InsertionTextBuf += getNullabilitySpelling(Nullability);
  3323. InsertionTextBuf += " ";
  3324. StringRef InsertionText = InsertionTextBuf.str();
  3325. if (isWhitespace(*NextChar)) {
  3326. InsertionText = InsertionText.drop_back();
  3327. } else if (NextChar[-1] == '[') {
  3328. if (NextChar[0] == ']')
  3329. InsertionText = InsertionText.drop_back().drop_front();
  3330. else
  3331. InsertionText = InsertionText.drop_front();
  3332. } else if (!isIdentifierBody(NextChar[0], /*allow dollar*/true) &&
  3333. !isIdentifierBody(NextChar[-1], /*allow dollar*/true)) {
  3334. InsertionText = InsertionText.drop_back().drop_front();
  3335. }
  3336. Diag << FixItHint::CreateInsertion(FixItLoc, InsertionText);
  3337. }
  3338. static void emitNullabilityConsistencyWarning(Sema &S,
  3339. SimplePointerKind PointerKind,
  3340. SourceLocation PointerLoc,
  3341. SourceLocation PointerEndLoc) {
  3342. assert(PointerLoc.isValid());
  3343. if (PointerKind == SimplePointerKind::Array) {
  3344. S.Diag(PointerLoc, diag::warn_nullability_missing_array);
  3345. } else {
  3346. S.Diag(PointerLoc, diag::warn_nullability_missing)
  3347. << static_cast<unsigned>(PointerKind);
  3348. }
  3349. auto FixItLoc = PointerEndLoc.isValid() ? PointerEndLoc : PointerLoc;
  3350. if (FixItLoc.isMacroID())
  3351. return;
  3352. auto addFixIt = [&](NullabilityKind Nullability) {
  3353. auto Diag = S.Diag(FixItLoc, diag::note_nullability_fix_it);
  3354. Diag << static_cast<unsigned>(Nullability);
  3355. Diag << static_cast<unsigned>(PointerKind);
  3356. fixItNullability(S, Diag, FixItLoc, Nullability);
  3357. };
  3358. addFixIt(NullabilityKind::Nullable);
  3359. addFixIt(NullabilityKind::NonNull);
  3360. }
  3361. /// Complains about missing nullability if the file containing \p pointerLoc
  3362. /// has other uses of nullability (either the keywords or the \c assume_nonnull
  3363. /// pragma).
  3364. ///
  3365. /// If the file has \e not seen other uses of nullability, this particular
  3366. /// pointer is saved for possible later diagnosis. See recordNullabilitySeen().
  3367. static void
  3368. checkNullabilityConsistency(Sema &S, SimplePointerKind pointerKind,
  3369. SourceLocation pointerLoc,
  3370. SourceLocation pointerEndLoc = SourceLocation()) {
  3371. // Determine which file we're performing consistency checking for.
  3372. FileID file = getNullabilityCompletenessCheckFileID(S, pointerLoc);
  3373. if (file.isInvalid())
  3374. return;
  3375. // If we haven't seen any type nullability in this file, we won't warn now
  3376. // about anything.
  3377. FileNullability &fileNullability = S.NullabilityMap[file];
  3378. if (!fileNullability.SawTypeNullability) {
  3379. // If this is the first pointer declarator in the file, and the appropriate
  3380. // warning is on, record it in case we need to diagnose it retroactively.
  3381. diag::kind diagKind;
  3382. if (pointerKind == SimplePointerKind::Array)
  3383. diagKind = diag::warn_nullability_missing_array;
  3384. else
  3385. diagKind = diag::warn_nullability_missing;
  3386. if (fileNullability.PointerLoc.isInvalid() &&
  3387. !S.Context.getDiagnostics().isIgnored(diagKind, pointerLoc)) {
  3388. fileNullability.PointerLoc = pointerLoc;
  3389. fileNullability.PointerEndLoc = pointerEndLoc;
  3390. fileNullability.PointerKind = static_cast<unsigned>(pointerKind);
  3391. }
  3392. return;
  3393. }
  3394. // Complain about missing nullability.
  3395. emitNullabilityConsistencyWarning(S, pointerKind, pointerLoc, pointerEndLoc);
  3396. }
  3397. /// Marks that a nullability feature has been used in the file containing
  3398. /// \p loc.
  3399. ///
  3400. /// If this file already had pointer types in it that were missing nullability,
  3401. /// the first such instance is retroactively diagnosed.
  3402. ///
  3403. /// \sa checkNullabilityConsistency
  3404. static void recordNullabilitySeen(Sema &S, SourceLocation loc) {
  3405. FileID file = getNullabilityCompletenessCheckFileID(S, loc);
  3406. if (file.isInvalid())
  3407. return;
  3408. FileNullability &fileNullability = S.NullabilityMap[file];
  3409. if (fileNullability.SawTypeNullability)
  3410. return;
  3411. fileNullability.SawTypeNullability = true;
  3412. // If we haven't seen any type nullability before, now we have. Retroactively
  3413. // diagnose the first unannotated pointer, if there was one.
  3414. if (fileNullability.PointerLoc.isInvalid())
  3415. return;
  3416. auto kind = static_cast<SimplePointerKind>(fileNullability.PointerKind);
  3417. emitNullabilityConsistencyWarning(S, kind, fileNullability.PointerLoc,
  3418. fileNullability.PointerEndLoc);
  3419. }
  3420. /// Returns true if any of the declarator chunks before \p endIndex include a
  3421. /// level of indirection: array, pointer, reference, or pointer-to-member.
  3422. ///
  3423. /// Because declarator chunks are stored in outer-to-inner order, testing
  3424. /// every chunk before \p endIndex is testing all chunks that embed the current
  3425. /// chunk as part of their type.
  3426. ///
  3427. /// It is legal to pass the result of Declarator::getNumTypeObjects() as the
  3428. /// end index, in which case all chunks are tested.
  3429. static bool hasOuterPointerLikeChunk(const Declarator &D, unsigned endIndex) {
  3430. unsigned i = endIndex;
  3431. while (i != 0) {
  3432. // Walk outwards along the declarator chunks.
  3433. --i;
  3434. const DeclaratorChunk &DC = D.getTypeObject(i);
  3435. switch (DC.Kind) {
  3436. case DeclaratorChunk::Paren:
  3437. break;
  3438. case DeclaratorChunk::Array:
  3439. case DeclaratorChunk::Pointer:
  3440. case DeclaratorChunk::Reference:
  3441. case DeclaratorChunk::MemberPointer:
  3442. return true;
  3443. case DeclaratorChunk::Function:
  3444. case DeclaratorChunk::BlockPointer:
  3445. case DeclaratorChunk::Pipe:
  3446. // These are invalid anyway, so just ignore.
  3447. break;
  3448. }
  3449. }
  3450. return false;
  3451. }
  3452. static bool IsNoDerefableChunk(DeclaratorChunk Chunk) {
  3453. return (Chunk.Kind == DeclaratorChunk::Pointer ||
  3454. Chunk.Kind == DeclaratorChunk::Array);
  3455. }
  3456. template<typename AttrT>
  3457. static AttrT *createSimpleAttr(ASTContext &Ctx, ParsedAttr &AL) {
  3458. AL.setUsedAsTypeAttr();
  3459. return ::new (Ctx) AttrT(Ctx, AL);
  3460. }
  3461. static Attr *createNullabilityAttr(ASTContext &Ctx, ParsedAttr &Attr,
  3462. NullabilityKind NK) {
  3463. switch (NK) {
  3464. case NullabilityKind::NonNull:
  3465. return createSimpleAttr<TypeNonNullAttr>(Ctx, Attr);
  3466. case NullabilityKind::Nullable:
  3467. return createSimpleAttr<TypeNullableAttr>(Ctx, Attr);
  3468. case NullabilityKind::Unspecified:
  3469. return createSimpleAttr<TypeNullUnspecifiedAttr>(Ctx, Attr);
  3470. }
  3471. llvm_unreachable("unknown NullabilityKind");
  3472. }
  3473. // Diagnose whether this is a case with the multiple addr spaces.
  3474. // Returns true if this is an invalid case.
  3475. // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "No type shall be qualified
  3476. // by qualifiers for two or more different address spaces."
  3477. static bool DiagnoseMultipleAddrSpaceAttributes(Sema &S, LangAS ASOld,
  3478. LangAS ASNew,
  3479. SourceLocation AttrLoc) {
  3480. if (ASOld != LangAS::Default) {
  3481. if (ASOld != ASNew) {
  3482. S.Diag(AttrLoc, diag::err_attribute_address_multiple_qualifiers);
  3483. return true;
  3484. }
  3485. // Emit a warning if they are identical; it's likely unintended.
  3486. S.Diag(AttrLoc,
  3487. diag::warn_attribute_address_multiple_identical_qualifiers);
  3488. }
  3489. return false;
  3490. }
  3491. static TypeSourceInfo *
  3492. GetTypeSourceInfoForDeclarator(TypeProcessingState &State,
  3493. QualType T, TypeSourceInfo *ReturnTypeInfo);
  3494. static TypeSourceInfo *GetFullTypeForDeclarator(TypeProcessingState &state,
  3495. QualType declSpecType,
  3496. TypeSourceInfo *TInfo) {
  3497. // The TypeSourceInfo that this function returns will not be a null type.
  3498. // If there is an error, this function will fill in a dummy type as fallback.
  3499. QualType T = declSpecType;
  3500. Declarator &D = state.getDeclarator();
  3501. Sema &S = state.getSema();
  3502. ASTContext &Context = S.Context;
  3503. const LangOptions &LangOpts = S.getLangOpts();
  3504. // The name we're declaring, if any.
  3505. DeclarationName Name;
  3506. if (D.getIdentifier())
  3507. Name = D.getIdentifier();
  3508. // Does this declaration declare a typedef-name?
  3509. bool IsTypedefName =
  3510. D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef ||
  3511. D.getContext() == DeclaratorContext::AliasDeclContext ||
  3512. D.getContext() == DeclaratorContext::AliasTemplateContext;
  3513. // Does T refer to a function type with a cv-qualifier or a ref-qualifier?
  3514. bool IsQualifiedFunction = T->isFunctionProtoType() &&
  3515. (!T->castAs<FunctionProtoType>()->getMethodQuals().empty() ||
  3516. T->castAs<FunctionProtoType>()->getRefQualifier() != RQ_None);
  3517. // If T is 'decltype(auto)', the only declarators we can have are parens
  3518. // and at most one function declarator if this is a function declaration.
  3519. // If T is a deduced class template specialization type, we can have no
  3520. // declarator chunks at all.
  3521. if (auto *DT = T->getAs<DeducedType>()) {
  3522. const AutoType *AT = T->getAs<AutoType>();
  3523. bool IsClassTemplateDeduction = isa<DeducedTemplateSpecializationType>(DT);
  3524. if ((AT && AT->isDecltypeAuto()) || IsClassTemplateDeduction) {
  3525. for (unsigned I = 0, E = D.getNumTypeObjects(); I != E; ++I) {
  3526. unsigned Index = E - I - 1;
  3527. DeclaratorChunk &DeclChunk = D.getTypeObject(Index);
  3528. unsigned DiagId = IsClassTemplateDeduction
  3529. ? diag::err_deduced_class_template_compound_type
  3530. : diag::err_decltype_auto_compound_type;
  3531. unsigned DiagKind = 0;
  3532. switch (DeclChunk.Kind) {
  3533. case DeclaratorChunk::Paren:
  3534. // FIXME: Rejecting this is a little silly.
  3535. if (IsClassTemplateDeduction) {
  3536. DiagKind = 4;
  3537. break;
  3538. }
  3539. continue;
  3540. case DeclaratorChunk::Function: {
  3541. if (IsClassTemplateDeduction) {
  3542. DiagKind = 3;
  3543. break;
  3544. }
  3545. unsigned FnIndex;
  3546. if (D.isFunctionDeclarationContext() &&
  3547. D.isFunctionDeclarator(FnIndex) && FnIndex == Index)
  3548. continue;
  3549. DiagId = diag::err_decltype_auto_function_declarator_not_declaration;
  3550. break;
  3551. }
  3552. case DeclaratorChunk::Pointer:
  3553. case DeclaratorChunk::BlockPointer:
  3554. case DeclaratorChunk::MemberPointer:
  3555. DiagKind = 0;
  3556. break;
  3557. case DeclaratorChunk::Reference:
  3558. DiagKind = 1;
  3559. break;
  3560. case DeclaratorChunk::Array:
  3561. DiagKind = 2;
  3562. break;
  3563. case DeclaratorChunk::Pipe:
  3564. break;
  3565. }
  3566. S.Diag(DeclChunk.Loc, DiagId) << DiagKind;
  3567. D.setInvalidType(true);
  3568. break;
  3569. }
  3570. }
  3571. }
  3572. // Determine whether we should infer _Nonnull on pointer types.
  3573. Optional<NullabilityKind> inferNullability;
  3574. bool inferNullabilityCS = false;
  3575. bool inferNullabilityInnerOnly = false;
  3576. bool inferNullabilityInnerOnlyComplete = false;
  3577. // Are we in an assume-nonnull region?
  3578. bool inAssumeNonNullRegion = false;
  3579. SourceLocation assumeNonNullLoc = S.PP.getPragmaAssumeNonNullLoc();
  3580. if (assumeNonNullLoc.isValid()) {
  3581. inAssumeNonNullRegion = true;
  3582. recordNullabilitySeen(S, assumeNonNullLoc);
  3583. }
  3584. // Whether to complain about missing nullability specifiers or not.
  3585. enum {
  3586. /// Never complain.
  3587. CAMN_No,
  3588. /// Complain on the inner pointers (but not the outermost
  3589. /// pointer).
  3590. CAMN_InnerPointers,
  3591. /// Complain about any pointers that don't have nullability
  3592. /// specified or inferred.
  3593. CAMN_Yes
  3594. } complainAboutMissingNullability = CAMN_No;
  3595. unsigned NumPointersRemaining = 0;
  3596. auto complainAboutInferringWithinChunk = PointerWrappingDeclaratorKind::None;
  3597. if (IsTypedefName) {
  3598. // For typedefs, we do not infer any nullability (the default),
  3599. // and we only complain about missing nullability specifiers on
  3600. // inner pointers.
  3601. complainAboutMissingNullability = CAMN_InnerPointers;
  3602. if (T->canHaveNullability(/*ResultIfUnknown*/false) &&
  3603. !T->getNullability(S.Context)) {
  3604. // Note that we allow but don't require nullability on dependent types.
  3605. ++NumPointersRemaining;
  3606. }
  3607. for (unsigned i = 0, n = D.getNumTypeObjects(); i != n; ++i) {
  3608. DeclaratorChunk &chunk = D.getTypeObject(i);
  3609. switch (chunk.Kind) {
  3610. case DeclaratorChunk::Array:
  3611. case DeclaratorChunk::Function:
  3612. case DeclaratorChunk::Pipe:
  3613. break;
  3614. case DeclaratorChunk::BlockPointer:
  3615. case DeclaratorChunk::MemberPointer:
  3616. ++NumPointersRemaining;
  3617. break;
  3618. case DeclaratorChunk::Paren:
  3619. case DeclaratorChunk::Reference:
  3620. continue;
  3621. case DeclaratorChunk::Pointer:
  3622. ++NumPointersRemaining;
  3623. continue;
  3624. }
  3625. }
  3626. } else {
  3627. bool isFunctionOrMethod = false;
  3628. switch (auto context = state.getDeclarator().getContext()) {
  3629. case DeclaratorContext::ObjCParameterContext:
  3630. case DeclaratorContext::ObjCResultContext:
  3631. case DeclaratorContext::PrototypeContext:
  3632. case DeclaratorContext::TrailingReturnContext:
  3633. case DeclaratorContext::TrailingReturnVarContext:
  3634. isFunctionOrMethod = true;
  3635. LLVM_FALLTHROUGH;
  3636. case DeclaratorContext::MemberContext:
  3637. if (state.getDeclarator().isObjCIvar() && !isFunctionOrMethod) {
  3638. complainAboutMissingNullability = CAMN_No;
  3639. break;
  3640. }
  3641. // Weak properties are inferred to be nullable.
  3642. if (state.getDeclarator().isObjCWeakProperty() && inAssumeNonNullRegion) {
  3643. inferNullability = NullabilityKind::Nullable;
  3644. break;
  3645. }
  3646. LLVM_FALLTHROUGH;
  3647. case DeclaratorContext::FileContext:
  3648. case DeclaratorContext::KNRTypeListContext: {
  3649. complainAboutMissingNullability = CAMN_Yes;
  3650. // Nullability inference depends on the type and declarator.
  3651. auto wrappingKind = PointerWrappingDeclaratorKind::None;
  3652. switch (classifyPointerDeclarator(S, T, D, wrappingKind)) {
  3653. case PointerDeclaratorKind::NonPointer:
  3654. case PointerDeclaratorKind::MultiLevelPointer:
  3655. // Cannot infer nullability.
  3656. break;
  3657. case PointerDeclaratorKind::SingleLevelPointer:
  3658. // Infer _Nonnull if we are in an assumes-nonnull region.
  3659. if (inAssumeNonNullRegion) {
  3660. complainAboutInferringWithinChunk = wrappingKind;
  3661. inferNullability = NullabilityKind::NonNull;
  3662. inferNullabilityCS =
  3663. (context == DeclaratorContext::ObjCParameterContext ||
  3664. context == DeclaratorContext::ObjCResultContext);
  3665. }
  3666. break;
  3667. case PointerDeclaratorKind::CFErrorRefPointer:
  3668. case PointerDeclaratorKind::NSErrorPointerPointer:
  3669. // Within a function or method signature, infer _Nullable at both
  3670. // levels.
  3671. if (isFunctionOrMethod && inAssumeNonNullRegion)
  3672. inferNullability = NullabilityKind::Nullable;
  3673. break;
  3674. case PointerDeclaratorKind::MaybePointerToCFRef:
  3675. if (isFunctionOrMethod) {
  3676. // On pointer-to-pointer parameters marked cf_returns_retained or
  3677. // cf_returns_not_retained, if the outer pointer is explicit then
  3678. // infer the inner pointer as _Nullable.
  3679. auto hasCFReturnsAttr =
  3680. [](const ParsedAttributesView &AttrList) -> bool {
  3681. return AttrList.hasAttribute(ParsedAttr::AT_CFReturnsRetained) ||
  3682. AttrList.hasAttribute(ParsedAttr::AT_CFReturnsNotRetained);
  3683. };
  3684. if (const auto *InnermostChunk = D.getInnermostNonParenChunk()) {
  3685. if (hasCFReturnsAttr(D.getAttributes()) ||
  3686. hasCFReturnsAttr(InnermostChunk->getAttrs()) ||
  3687. hasCFReturnsAttr(D.getDeclSpec().getAttributes())) {
  3688. inferNullability = NullabilityKind::Nullable;
  3689. inferNullabilityInnerOnly = true;
  3690. }
  3691. }
  3692. }
  3693. break;
  3694. }
  3695. break;
  3696. }
  3697. case DeclaratorContext::ConversionIdContext:
  3698. complainAboutMissingNullability = CAMN_Yes;
  3699. break;
  3700. case DeclaratorContext::AliasDeclContext:
  3701. case DeclaratorContext::AliasTemplateContext:
  3702. case DeclaratorContext::BlockContext:
  3703. case DeclaratorContext::BlockLiteralContext:
  3704. case DeclaratorContext::ConditionContext:
  3705. case DeclaratorContext::CXXCatchContext:
  3706. case DeclaratorContext::CXXNewContext:
  3707. case DeclaratorContext::ForContext:
  3708. case DeclaratorContext::InitStmtContext:
  3709. case DeclaratorContext::LambdaExprContext:
  3710. case DeclaratorContext::LambdaExprParameterContext:
  3711. case DeclaratorContext::ObjCCatchContext:
  3712. case DeclaratorContext::TemplateParamContext:
  3713. case DeclaratorContext::TemplateArgContext:
  3714. case DeclaratorContext::TemplateTypeArgContext:
  3715. case DeclaratorContext::TypeNameContext:
  3716. case DeclaratorContext::FunctionalCastContext:
  3717. // Don't infer in these contexts.
  3718. break;
  3719. }
  3720. }
  3721. // Local function that returns true if its argument looks like a va_list.
  3722. auto isVaList = [&S](QualType T) -> bool {
  3723. auto *typedefTy = T->getAs<TypedefType>();
  3724. if (!typedefTy)
  3725. return false;
  3726. TypedefDecl *vaListTypedef = S.Context.getBuiltinVaListDecl();
  3727. do {
  3728. if (typedefTy->getDecl() == vaListTypedef)
  3729. return true;
  3730. if (auto *name = typedefTy->getDecl()->getIdentifier())
  3731. if (name->isStr("va_list"))
  3732. return true;
  3733. typedefTy = typedefTy->desugar()->getAs<TypedefType>();
  3734. } while (typedefTy);
  3735. return false;
  3736. };
  3737. // Local function that checks the nullability for a given pointer declarator.
  3738. // Returns true if _Nonnull was inferred.
  3739. auto inferPointerNullability =
  3740. [&](SimplePointerKind pointerKind, SourceLocation pointerLoc,
  3741. SourceLocation pointerEndLoc,
  3742. ParsedAttributesView &attrs, AttributePool &Pool) -> ParsedAttr * {
  3743. // We've seen a pointer.
  3744. if (NumPointersRemaining > 0)
  3745. --NumPointersRemaining;
  3746. // If a nullability attribute is present, there's nothing to do.
  3747. if (hasNullabilityAttr(attrs))
  3748. return nullptr;
  3749. // If we're supposed to infer nullability, do so now.
  3750. if (inferNullability && !inferNullabilityInnerOnlyComplete) {
  3751. ParsedAttr::Syntax syntax = inferNullabilityCS
  3752. ? ParsedAttr::AS_ContextSensitiveKeyword
  3753. : ParsedAttr::AS_Keyword;
  3754. ParsedAttr *nullabilityAttr = Pool.create(
  3755. S.getNullabilityKeyword(*inferNullability), SourceRange(pointerLoc),
  3756. nullptr, SourceLocation(), nullptr, 0, syntax);
  3757. attrs.addAtEnd(nullabilityAttr);
  3758. if (inferNullabilityCS) {
  3759. state.getDeclarator().getMutableDeclSpec().getObjCQualifiers()
  3760. ->setObjCDeclQualifier(ObjCDeclSpec::DQ_CSNullability);
  3761. }
  3762. if (pointerLoc.isValid() &&
  3763. complainAboutInferringWithinChunk !=
  3764. PointerWrappingDeclaratorKind::None) {
  3765. auto Diag =
  3766. S.Diag(pointerLoc, diag::warn_nullability_inferred_on_nested_type);
  3767. Diag << static_cast<int>(complainAboutInferringWithinChunk);
  3768. fixItNullability(S, Diag, pointerLoc, NullabilityKind::NonNull);
  3769. }
  3770. if (inferNullabilityInnerOnly)
  3771. inferNullabilityInnerOnlyComplete = true;
  3772. return nullabilityAttr;
  3773. }
  3774. // If we're supposed to complain about missing nullability, do so
  3775. // now if it's truly missing.
  3776. switch (complainAboutMissingNullability) {
  3777. case CAMN_No:
  3778. break;
  3779. case CAMN_InnerPointers:
  3780. if (NumPointersRemaining == 0)
  3781. break;
  3782. LLVM_FALLTHROUGH;
  3783. case CAMN_Yes:
  3784. checkNullabilityConsistency(S, pointerKind, pointerLoc, pointerEndLoc);
  3785. }
  3786. return nullptr;
  3787. };
  3788. // If the type itself could have nullability but does not, infer pointer
  3789. // nullability and perform consistency checking.
  3790. if (S.CodeSynthesisContexts.empty()) {
  3791. if (T->canHaveNullability(/*ResultIfUnknown*/false) &&
  3792. !T->getNullability(S.Context)) {
  3793. if (isVaList(T)) {
  3794. // Record that we've seen a pointer, but do nothing else.
  3795. if (NumPointersRemaining > 0)
  3796. --NumPointersRemaining;
  3797. } else {
  3798. SimplePointerKind pointerKind = SimplePointerKind::Pointer;
  3799. if (T->isBlockPointerType())
  3800. pointerKind = SimplePointerKind::BlockPointer;
  3801. else if (T->isMemberPointerType())
  3802. pointerKind = SimplePointerKind::MemberPointer;
  3803. if (auto *attr = inferPointerNullability(
  3804. pointerKind, D.getDeclSpec().getTypeSpecTypeLoc(),
  3805. D.getDeclSpec().getEndLoc(),
  3806. D.getMutableDeclSpec().getAttributes(),
  3807. D.getMutableDeclSpec().getAttributePool())) {
  3808. T = state.getAttributedType(
  3809. createNullabilityAttr(Context, *attr, *inferNullability), T, T);
  3810. }
  3811. }
  3812. }
  3813. if (complainAboutMissingNullability == CAMN_Yes &&
  3814. T->isArrayType() && !T->getNullability(S.Context) && !isVaList(T) &&
  3815. D.isPrototypeContext() &&
  3816. !hasOuterPointerLikeChunk(D, D.getNumTypeObjects())) {
  3817. checkNullabilityConsistency(S, SimplePointerKind::Array,
  3818. D.getDeclSpec().getTypeSpecTypeLoc());
  3819. }
  3820. }
  3821. bool ExpectNoDerefChunk =
  3822. state.getCurrentAttributes().hasAttribute(ParsedAttr::AT_NoDeref);
  3823. // Walk the DeclTypeInfo, building the recursive type as we go.
  3824. // DeclTypeInfos are ordered from the identifier out, which is
  3825. // opposite of what we want :).
  3826. for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
  3827. unsigned chunkIndex = e - i - 1;
  3828. state.setCurrentChunkIndex(chunkIndex);
  3829. DeclaratorChunk &DeclType = D.getTypeObject(chunkIndex);
  3830. IsQualifiedFunction &= DeclType.Kind == DeclaratorChunk::Paren;
  3831. switch (DeclType.Kind) {
  3832. case DeclaratorChunk::Paren:
  3833. if (i == 0)
  3834. warnAboutRedundantParens(S, D, T);
  3835. T = S.BuildParenType(T);
  3836. break;
  3837. case DeclaratorChunk::BlockPointer:
  3838. // If blocks are disabled, emit an error.
  3839. if (!LangOpts.Blocks)
  3840. S.Diag(DeclType.Loc, diag::err_blocks_disable) << LangOpts.OpenCL;
  3841. // Handle pointer nullability.
  3842. inferPointerNullability(SimplePointerKind::BlockPointer, DeclType.Loc,
  3843. DeclType.EndLoc, DeclType.getAttrs(),
  3844. state.getDeclarator().getAttributePool());
  3845. T = S.BuildBlockPointerType(T, D.getIdentifierLoc(), Name);
  3846. if (DeclType.Cls.TypeQuals || LangOpts.OpenCL) {
  3847. // OpenCL v2.0, s6.12.5 - Block variable declarations are implicitly
  3848. // qualified with const.
  3849. if (LangOpts.OpenCL)
  3850. DeclType.Cls.TypeQuals |= DeclSpec::TQ_const;
  3851. T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Cls.TypeQuals);
  3852. }
  3853. break;
  3854. case DeclaratorChunk::Pointer:
  3855. // Verify that we're not building a pointer to pointer to function with
  3856. // exception specification.
  3857. if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) {
  3858. S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec);
  3859. D.setInvalidType(true);
  3860. // Build the type anyway.
  3861. }
  3862. // Handle pointer nullability
  3863. inferPointerNullability(SimplePointerKind::Pointer, DeclType.Loc,
  3864. DeclType.EndLoc, DeclType.getAttrs(),
  3865. state.getDeclarator().getAttributePool());
  3866. if (LangOpts.ObjC && T->getAs<ObjCObjectType>()) {
  3867. T = Context.getObjCObjectPointerType(T);
  3868. if (DeclType.Ptr.TypeQuals)
  3869. T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Ptr.TypeQuals);
  3870. break;
  3871. }
  3872. // OpenCL v2.0 s6.9b - Pointer to image/sampler cannot be used.
  3873. // OpenCL v2.0 s6.13.16.1 - Pointer to pipe cannot be used.
  3874. // OpenCL v2.0 s6.12.5 - Pointers to Blocks are not allowed.
  3875. if (LangOpts.OpenCL) {
  3876. if (T->isImageType() || T->isSamplerT() || T->isPipeType() ||
  3877. T->isBlockPointerType()) {
  3878. S.Diag(D.getIdentifierLoc(), diag::err_opencl_pointer_to_type) << T;
  3879. D.setInvalidType(true);
  3880. }
  3881. }
  3882. T = S.BuildPointerType(T, DeclType.Loc, Name);
  3883. if (DeclType.Ptr.TypeQuals)
  3884. T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Ptr.TypeQuals);
  3885. break;
  3886. case DeclaratorChunk::Reference: {
  3887. // Verify that we're not building a reference to pointer to function with
  3888. // exception specification.
  3889. if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) {
  3890. S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec);
  3891. D.setInvalidType(true);
  3892. // Build the type anyway.
  3893. }
  3894. T = S.BuildReferenceType(T, DeclType.Ref.LValueRef, DeclType.Loc, Name);
  3895. if (DeclType.Ref.HasRestrict)
  3896. T = S.BuildQualifiedType(T, DeclType.Loc, Qualifiers::Restrict);
  3897. break;
  3898. }
  3899. case DeclaratorChunk::Array: {
  3900. // Verify that we're not building an array of pointers to function with
  3901. // exception specification.
  3902. if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) {
  3903. S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec);
  3904. D.setInvalidType(true);
  3905. // Build the type anyway.
  3906. }
  3907. DeclaratorChunk::ArrayTypeInfo &ATI = DeclType.Arr;
  3908. Expr *ArraySize = static_cast<Expr*>(ATI.NumElts);
  3909. ArrayType::ArraySizeModifier ASM;
  3910. if (ATI.isStar)
  3911. ASM = ArrayType::Star;
  3912. else if (ATI.hasStatic)
  3913. ASM = ArrayType::Static;
  3914. else
  3915. ASM = ArrayType::Normal;
  3916. if (ASM == ArrayType::Star && !D.isPrototypeContext()) {
  3917. // FIXME: This check isn't quite right: it allows star in prototypes
  3918. // for function definitions, and disallows some edge cases detailed
  3919. // in http://gcc.gnu.org/ml/gcc-patches/2009-02/msg00133.html
  3920. S.Diag(DeclType.Loc, diag::err_array_star_outside_prototype);
  3921. ASM = ArrayType::Normal;
  3922. D.setInvalidType(true);
  3923. }
  3924. // C99 6.7.5.2p1: The optional type qualifiers and the keyword static
  3925. // shall appear only in a declaration of a function parameter with an
  3926. // array type, ...
  3927. if (ASM == ArrayType::Static || ATI.TypeQuals) {
  3928. if (!(D.isPrototypeContext() ||
  3929. D.getContext() == DeclaratorContext::KNRTypeListContext)) {
  3930. S.Diag(DeclType.Loc, diag::err_array_static_outside_prototype) <<
  3931. (ASM == ArrayType::Static ? "'static'" : "type qualifier");
  3932. // Remove the 'static' and the type qualifiers.
  3933. if (ASM == ArrayType::Static)
  3934. ASM = ArrayType::Normal;
  3935. ATI.TypeQuals = 0;
  3936. D.setInvalidType(true);
  3937. }
  3938. // C99 6.7.5.2p1: ... and then only in the outermost array type
  3939. // derivation.
  3940. if (hasOuterPointerLikeChunk(D, chunkIndex)) {
  3941. S.Diag(DeclType.Loc, diag::err_array_static_not_outermost) <<
  3942. (ASM == ArrayType::Static ? "'static'" : "type qualifier");
  3943. if (ASM == ArrayType::Static)
  3944. ASM = ArrayType::Normal;
  3945. ATI.TypeQuals = 0;
  3946. D.setInvalidType(true);
  3947. }
  3948. }
  3949. const AutoType *AT = T->getContainedAutoType();
  3950. // Allow arrays of auto if we are a generic lambda parameter.
  3951. // i.e. [](auto (&array)[5]) { return array[0]; }; OK
  3952. if (AT &&
  3953. D.getContext() != DeclaratorContext::LambdaExprParameterContext) {
  3954. // We've already diagnosed this for decltype(auto).
  3955. if (!AT->isDecltypeAuto())
  3956. S.Diag(DeclType.Loc, diag::err_illegal_decl_array_of_auto)
  3957. << getPrintableNameForEntity(Name) << T;
  3958. T = QualType();
  3959. break;
  3960. }
  3961. // Array parameters can be marked nullable as well, although it's not
  3962. // necessary if they're marked 'static'.
  3963. if (complainAboutMissingNullability == CAMN_Yes &&
  3964. !hasNullabilityAttr(DeclType.getAttrs()) &&
  3965. ASM != ArrayType::Static &&
  3966. D.isPrototypeContext() &&
  3967. !hasOuterPointerLikeChunk(D, chunkIndex)) {
  3968. checkNullabilityConsistency(S, SimplePointerKind::Array, DeclType.Loc);
  3969. }
  3970. T = S.BuildArrayType(T, ASM, ArraySize, ATI.TypeQuals,
  3971. SourceRange(DeclType.Loc, DeclType.EndLoc), Name);
  3972. break;
  3973. }
  3974. case DeclaratorChunk::Function: {
  3975. // If the function declarator has a prototype (i.e. it is not () and
  3976. // does not have a K&R-style identifier list), then the arguments are part
  3977. // of the type, otherwise the argument list is ().
  3978. DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun;
  3979. IsQualifiedFunction =
  3980. FTI.hasMethodTypeQualifiers() || FTI.hasRefQualifier();
  3981. // Check for auto functions and trailing return type and adjust the
  3982. // return type accordingly.
  3983. if (!D.isInvalidType()) {
  3984. // trailing-return-type is only required if we're declaring a function,
  3985. // and not, for instance, a pointer to a function.
  3986. if (D.getDeclSpec().hasAutoTypeSpec() &&
  3987. !FTI.hasTrailingReturnType() && chunkIndex == 0) {
  3988. if (!S.getLangOpts().CPlusPlus14) {
  3989. S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(),
  3990. D.getDeclSpec().getTypeSpecType() == DeclSpec::TST_auto
  3991. ? diag::err_auto_missing_trailing_return
  3992. : diag::err_deduced_return_type);
  3993. T = Context.IntTy;
  3994. D.setInvalidType(true);
  3995. } else {
  3996. S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(),
  3997. diag::warn_cxx11_compat_deduced_return_type);
  3998. }
  3999. } else if (FTI.hasTrailingReturnType()) {
  4000. // T must be exactly 'auto' at this point. See CWG issue 681.
  4001. if (isa<ParenType>(T)) {
  4002. S.Diag(D.getBeginLoc(), diag::err_trailing_return_in_parens)
  4003. << T << D.getSourceRange();
  4004. D.setInvalidType(true);
  4005. } else if (D.getName().getKind() ==
  4006. UnqualifiedIdKind::IK_DeductionGuideName) {
  4007. if (T != Context.DependentTy) {
  4008. S.Diag(D.getDeclSpec().getBeginLoc(),
  4009. diag::err_deduction_guide_with_complex_decl)
  4010. << D.getSourceRange();
  4011. D.setInvalidType(true);
  4012. }
  4013. } else if (D.getContext() != DeclaratorContext::LambdaExprContext &&
  4014. (T.hasQualifiers() || !isa<AutoType>(T) ||
  4015. cast<AutoType>(T)->getKeyword() !=
  4016. AutoTypeKeyword::Auto)) {
  4017. S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(),
  4018. diag::err_trailing_return_without_auto)
  4019. << T << D.getDeclSpec().getSourceRange();
  4020. D.setInvalidType(true);
  4021. }
  4022. T = S.GetTypeFromParser(FTI.getTrailingReturnType(), &TInfo);
  4023. if (T.isNull()) {
  4024. // An error occurred parsing the trailing return type.
  4025. T = Context.IntTy;
  4026. D.setInvalidType(true);
  4027. }
  4028. } else {
  4029. // This function type is not the type of the entity being declared,
  4030. // so checking the 'auto' is not the responsibility of this chunk.
  4031. }
  4032. }
  4033. // C99 6.7.5.3p1: The return type may not be a function or array type.
  4034. // For conversion functions, we'll diagnose this particular error later.
  4035. if (!D.isInvalidType() && (T->isArrayType() || T->isFunctionType()) &&
  4036. (D.getName().getKind() !=
  4037. UnqualifiedIdKind::IK_ConversionFunctionId)) {
  4038. unsigned diagID = diag::err_func_returning_array_function;
  4039. // Last processing chunk in block context means this function chunk
  4040. // represents the block.
  4041. if (chunkIndex == 0 &&
  4042. D.getContext() == DeclaratorContext::BlockLiteralContext)
  4043. diagID = diag::err_block_returning_array_function;
  4044. S.Diag(DeclType.Loc, diagID) << T->isFunctionType() << T;
  4045. T = Context.IntTy;
  4046. D.setInvalidType(true);
  4047. }
  4048. // Do not allow returning half FP value.
  4049. // FIXME: This really should be in BuildFunctionType.
  4050. if (T->isHalfType()) {
  4051. if (S.getLangOpts().OpenCL) {
  4052. if (!S.getOpenCLOptions().isEnabled("cl_khr_fp16")) {
  4053. S.Diag(D.getIdentifierLoc(), diag::err_opencl_invalid_return)
  4054. << T << 0 /*pointer hint*/;
  4055. D.setInvalidType(true);
  4056. }
  4057. } else if (!S.getLangOpts().HalfArgsAndReturns) {
  4058. S.Diag(D.getIdentifierLoc(),
  4059. diag::err_parameters_retval_cannot_have_fp16_type) << 1;
  4060. D.setInvalidType(true);
  4061. }
  4062. }
  4063. if (LangOpts.OpenCL) {
  4064. // OpenCL v2.0 s6.12.5 - A block cannot be the return value of a
  4065. // function.
  4066. if (T->isBlockPointerType() || T->isImageType() || T->isSamplerT() ||
  4067. T->isPipeType()) {
  4068. S.Diag(D.getIdentifierLoc(), diag::err_opencl_invalid_return)
  4069. << T << 1 /*hint off*/;
  4070. D.setInvalidType(true);
  4071. }
  4072. // OpenCL doesn't support variadic functions and blocks
  4073. // (s6.9.e and s6.12.5 OpenCL v2.0) except for printf.
  4074. // We also allow here any toolchain reserved identifiers.
  4075. if (FTI.isVariadic &&
  4076. !(D.getIdentifier() &&
  4077. ((D.getIdentifier()->getName() == "printf" &&
  4078. (LangOpts.OpenCLCPlusPlus || LangOpts.OpenCLVersion >= 120)) ||
  4079. D.getIdentifier()->getName().startswith("__")))) {
  4080. S.Diag(D.getIdentifierLoc(), diag::err_opencl_variadic_function);
  4081. D.setInvalidType(true);
  4082. }
  4083. }
  4084. // Methods cannot return interface types. All ObjC objects are
  4085. // passed by reference.
  4086. if (T->isObjCObjectType()) {
  4087. SourceLocation DiagLoc, FixitLoc;
  4088. if (TInfo) {
  4089. DiagLoc = TInfo->getTypeLoc().getBeginLoc();
  4090. FixitLoc = S.getLocForEndOfToken(TInfo->getTypeLoc().getEndLoc());
  4091. } else {
  4092. DiagLoc = D.getDeclSpec().getTypeSpecTypeLoc();
  4093. FixitLoc = S.getLocForEndOfToken(D.getDeclSpec().getEndLoc());
  4094. }
  4095. S.Diag(DiagLoc, diag::err_object_cannot_be_passed_returned_by_value)
  4096. << 0 << T
  4097. << FixItHint::CreateInsertion(FixitLoc, "*");
  4098. T = Context.getObjCObjectPointerType(T);
  4099. if (TInfo) {
  4100. TypeLocBuilder TLB;
  4101. TLB.pushFullCopy(TInfo->getTypeLoc());
  4102. ObjCObjectPointerTypeLoc TLoc = TLB.push<ObjCObjectPointerTypeLoc>(T);
  4103. TLoc.setStarLoc(FixitLoc);
  4104. TInfo = TLB.getTypeSourceInfo(Context, T);
  4105. }
  4106. D.setInvalidType(true);
  4107. }
  4108. // cv-qualifiers on return types are pointless except when the type is a
  4109. // class type in C++.
  4110. if ((T.getCVRQualifiers() || T->isAtomicType()) &&
  4111. !(S.getLangOpts().CPlusPlus &&
  4112. (T->isDependentType() || T->isRecordType()))) {
  4113. if (T->isVoidType() && !S.getLangOpts().CPlusPlus &&
  4114. D.getFunctionDefinitionKind() == FDK_Definition) {
  4115. // [6.9.1/3] qualified void return is invalid on a C
  4116. // function definition. Apparently ok on declarations and
  4117. // in C++ though (!)
  4118. S.Diag(DeclType.Loc, diag::err_func_returning_qualified_void) << T;
  4119. } else
  4120. diagnoseRedundantReturnTypeQualifiers(S, T, D, chunkIndex);
  4121. }
  4122. // Objective-C ARC ownership qualifiers are ignored on the function
  4123. // return type (by type canonicalization). Complain if this attribute
  4124. // was written here.
  4125. if (T.getQualifiers().hasObjCLifetime()) {
  4126. SourceLocation AttrLoc;
  4127. if (chunkIndex + 1 < D.getNumTypeObjects()) {
  4128. DeclaratorChunk ReturnTypeChunk = D.getTypeObject(chunkIndex + 1);
  4129. for (const ParsedAttr &AL : ReturnTypeChunk.getAttrs()) {
  4130. if (AL.getKind() == ParsedAttr::AT_ObjCOwnership) {
  4131. AttrLoc = AL.getLoc();
  4132. break;
  4133. }
  4134. }
  4135. }
  4136. if (AttrLoc.isInvalid()) {
  4137. for (const ParsedAttr &AL : D.getDeclSpec().getAttributes()) {
  4138. if (AL.getKind() == ParsedAttr::AT_ObjCOwnership) {
  4139. AttrLoc = AL.getLoc();
  4140. break;
  4141. }
  4142. }
  4143. }
  4144. if (AttrLoc.isValid()) {
  4145. // The ownership attributes are almost always written via
  4146. // the predefined
  4147. // __strong/__weak/__autoreleasing/__unsafe_unretained.
  4148. if (AttrLoc.isMacroID())
  4149. AttrLoc =
  4150. S.SourceMgr.getImmediateExpansionRange(AttrLoc).getBegin();
  4151. S.Diag(AttrLoc, diag::warn_arc_lifetime_result_type)
  4152. << T.getQualifiers().getObjCLifetime();
  4153. }
  4154. }
  4155. if (LangOpts.CPlusPlus && D.getDeclSpec().hasTagDefinition()) {
  4156. // C++ [dcl.fct]p6:
  4157. // Types shall not be defined in return or parameter types.
  4158. TagDecl *Tag = cast<TagDecl>(D.getDeclSpec().getRepAsDecl());
  4159. S.Diag(Tag->getLocation(), diag::err_type_defined_in_result_type)
  4160. << Context.getTypeDeclType(Tag);
  4161. }
  4162. // Exception specs are not allowed in typedefs. Complain, but add it
  4163. // anyway.
  4164. if (IsTypedefName && FTI.getExceptionSpecType() && !LangOpts.CPlusPlus17)
  4165. S.Diag(FTI.getExceptionSpecLocBeg(),
  4166. diag::err_exception_spec_in_typedef)
  4167. << (D.getContext() == DeclaratorContext::AliasDeclContext ||
  4168. D.getContext() == DeclaratorContext::AliasTemplateContext);
  4169. // If we see "T var();" or "T var(T());" at block scope, it is probably
  4170. // an attempt to initialize a variable, not a function declaration.
  4171. if (FTI.isAmbiguous)
  4172. warnAboutAmbiguousFunction(S, D, DeclType, T);
  4173. FunctionType::ExtInfo EI(
  4174. getCCForDeclaratorChunk(S, D, DeclType.getAttrs(), FTI, chunkIndex));
  4175. if (!FTI.NumParams && !FTI.isVariadic && !LangOpts.CPlusPlus
  4176. && !LangOpts.OpenCL) {
  4177. // Simple void foo(), where the incoming T is the result type.
  4178. T = Context.getFunctionNoProtoType(T, EI);
  4179. } else {
  4180. // We allow a zero-parameter variadic function in C if the
  4181. // function is marked with the "overloadable" attribute. Scan
  4182. // for this attribute now.
  4183. if (!FTI.NumParams && FTI.isVariadic && !LangOpts.CPlusPlus)
  4184. if (!D.getAttributes().hasAttribute(ParsedAttr::AT_Overloadable))
  4185. S.Diag(FTI.getEllipsisLoc(), diag::err_ellipsis_first_param);
  4186. if (FTI.NumParams && FTI.Params[0].Param == nullptr) {
  4187. // C99 6.7.5.3p3: Reject int(x,y,z) when it's not a function
  4188. // definition.
  4189. S.Diag(FTI.Params[0].IdentLoc,
  4190. diag::err_ident_list_in_fn_declaration);
  4191. D.setInvalidType(true);
  4192. // Recover by creating a K&R-style function type.
  4193. T = Context.getFunctionNoProtoType(T, EI);
  4194. break;
  4195. }
  4196. FunctionProtoType::ExtProtoInfo EPI;
  4197. EPI.ExtInfo = EI;
  4198. EPI.Variadic = FTI.isVariadic;
  4199. EPI.HasTrailingReturn = FTI.hasTrailingReturnType();
  4200. EPI.TypeQuals.addCVRUQualifiers(
  4201. FTI.MethodQualifiers ? FTI.MethodQualifiers->getTypeQualifiers()
  4202. : 0);
  4203. EPI.RefQualifier = !FTI.hasRefQualifier()? RQ_None
  4204. : FTI.RefQualifierIsLValueRef? RQ_LValue
  4205. : RQ_RValue;
  4206. // Otherwise, we have a function with a parameter list that is
  4207. // potentially variadic.
  4208. SmallVector<QualType, 16> ParamTys;
  4209. ParamTys.reserve(FTI.NumParams);
  4210. SmallVector<FunctionProtoType::ExtParameterInfo, 16>
  4211. ExtParameterInfos(FTI.NumParams);
  4212. bool HasAnyInterestingExtParameterInfos = false;
  4213. for (unsigned i = 0, e = FTI.NumParams; i != e; ++i) {
  4214. ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param);
  4215. QualType ParamTy = Param->getType();
  4216. assert(!ParamTy.isNull() && "Couldn't parse type?");
  4217. // Look for 'void'. void is allowed only as a single parameter to a
  4218. // function with no other parameters (C99 6.7.5.3p10). We record
  4219. // int(void) as a FunctionProtoType with an empty parameter list.
  4220. if (ParamTy->isVoidType()) {
  4221. // If this is something like 'float(int, void)', reject it. 'void'
  4222. // is an incomplete type (C99 6.2.5p19) and function decls cannot
  4223. // have parameters of incomplete type.
  4224. if (FTI.NumParams != 1 || FTI.isVariadic) {
  4225. S.Diag(DeclType.Loc, diag::err_void_only_param);
  4226. ParamTy = Context.IntTy;
  4227. Param->setType(ParamTy);
  4228. } else if (FTI.Params[i].Ident) {
  4229. // Reject, but continue to parse 'int(void abc)'.
  4230. S.Diag(FTI.Params[i].IdentLoc, diag::err_param_with_void_type);
  4231. ParamTy = Context.IntTy;
  4232. Param->setType(ParamTy);
  4233. } else {
  4234. // Reject, but continue to parse 'float(const void)'.
  4235. if (ParamTy.hasQualifiers())
  4236. S.Diag(DeclType.Loc, diag::err_void_param_qualified);
  4237. // Do not add 'void' to the list.
  4238. break;
  4239. }
  4240. } else if (ParamTy->isHalfType()) {
  4241. // Disallow half FP parameters.
  4242. // FIXME: This really should be in BuildFunctionType.
  4243. if (S.getLangOpts().OpenCL) {
  4244. if (!S.getOpenCLOptions().isEnabled("cl_khr_fp16")) {
  4245. S.Diag(Param->getLocation(),
  4246. diag::err_opencl_half_param) << ParamTy;
  4247. D.setInvalidType();
  4248. Param->setInvalidDecl();
  4249. }
  4250. } else if (!S.getLangOpts().HalfArgsAndReturns) {
  4251. S.Diag(Param->getLocation(),
  4252. diag::err_parameters_retval_cannot_have_fp16_type) << 0;
  4253. D.setInvalidType();
  4254. }
  4255. } else if (!FTI.hasPrototype) {
  4256. if (ParamTy->isPromotableIntegerType()) {
  4257. ParamTy = Context.getPromotedIntegerType(ParamTy);
  4258. Param->setKNRPromoted(true);
  4259. } else if (const BuiltinType* BTy = ParamTy->getAs<BuiltinType>()) {
  4260. if (BTy->getKind() == BuiltinType::Float) {
  4261. ParamTy = Context.DoubleTy;
  4262. Param->setKNRPromoted(true);
  4263. }
  4264. }
  4265. }
  4266. if (LangOpts.ObjCAutoRefCount && Param->hasAttr<NSConsumedAttr>()) {
  4267. ExtParameterInfos[i] = ExtParameterInfos[i].withIsConsumed(true);
  4268. HasAnyInterestingExtParameterInfos = true;
  4269. }
  4270. if (auto attr = Param->getAttr<ParameterABIAttr>()) {
  4271. ExtParameterInfos[i] =
  4272. ExtParameterInfos[i].withABI(attr->getABI());
  4273. HasAnyInterestingExtParameterInfos = true;
  4274. }
  4275. if (Param->hasAttr<PassObjectSizeAttr>()) {
  4276. ExtParameterInfos[i] = ExtParameterInfos[i].withHasPassObjectSize();
  4277. HasAnyInterestingExtParameterInfos = true;
  4278. }
  4279. if (Param->hasAttr<NoEscapeAttr>()) {
  4280. ExtParameterInfos[i] = ExtParameterInfos[i].withIsNoEscape(true);
  4281. HasAnyInterestingExtParameterInfos = true;
  4282. }
  4283. ParamTys.push_back(ParamTy);
  4284. }
  4285. if (HasAnyInterestingExtParameterInfos) {
  4286. EPI.ExtParameterInfos = ExtParameterInfos.data();
  4287. checkExtParameterInfos(S, ParamTys, EPI,
  4288. [&](unsigned i) { return FTI.Params[i].Param->getLocation(); });
  4289. }
  4290. SmallVector<QualType, 4> Exceptions;
  4291. SmallVector<ParsedType, 2> DynamicExceptions;
  4292. SmallVector<SourceRange, 2> DynamicExceptionRanges;
  4293. Expr *NoexceptExpr = nullptr;
  4294. if (FTI.getExceptionSpecType() == EST_Dynamic) {
  4295. // FIXME: It's rather inefficient to have to split into two vectors
  4296. // here.
  4297. unsigned N = FTI.getNumExceptions();
  4298. DynamicExceptions.reserve(N);
  4299. DynamicExceptionRanges.reserve(N);
  4300. for (unsigned I = 0; I != N; ++I) {
  4301. DynamicExceptions.push_back(FTI.Exceptions[I].Ty);
  4302. DynamicExceptionRanges.push_back(FTI.Exceptions[I].Range);
  4303. }
  4304. } else if (isComputedNoexcept(FTI.getExceptionSpecType())) {
  4305. NoexceptExpr = FTI.NoexceptExpr;
  4306. }
  4307. S.checkExceptionSpecification(D.isFunctionDeclarationContext(),
  4308. FTI.getExceptionSpecType(),
  4309. DynamicExceptions,
  4310. DynamicExceptionRanges,
  4311. NoexceptExpr,
  4312. Exceptions,
  4313. EPI.ExceptionSpec);
  4314. // FIXME: Set address space from attrs for C++ mode here.
  4315. // OpenCLCPlusPlus: A class member function has an address space.
  4316. auto IsClassMember = [&]() {
  4317. return (!state.getDeclarator().getCXXScopeSpec().isEmpty() &&
  4318. state.getDeclarator()
  4319. .getCXXScopeSpec()
  4320. .getScopeRep()
  4321. ->getKind() == NestedNameSpecifier::TypeSpec) ||
  4322. state.getDeclarator().getContext() ==
  4323. DeclaratorContext::MemberContext;
  4324. };
  4325. if (state.getSema().getLangOpts().OpenCLCPlusPlus && IsClassMember()) {
  4326. LangAS ASIdx = LangAS::Default;
  4327. // Take address space attr if any and mark as invalid to avoid adding
  4328. // them later while creating QualType.
  4329. if (FTI.MethodQualifiers)
  4330. for (ParsedAttr &attr : FTI.MethodQualifiers->getAttributes()) {
  4331. LangAS ASIdxNew = attr.asOpenCLLangAS();
  4332. if (DiagnoseMultipleAddrSpaceAttributes(S, ASIdx, ASIdxNew,
  4333. attr.getLoc()))
  4334. D.setInvalidType(true);
  4335. else
  4336. ASIdx = ASIdxNew;
  4337. }
  4338. // If a class member function's address space is not set, set it to
  4339. // __generic.
  4340. LangAS AS =
  4341. (ASIdx == LangAS::Default ? LangAS::opencl_generic : ASIdx);
  4342. EPI.TypeQuals.addAddressSpace(AS);
  4343. }
  4344. T = Context.getFunctionType(T, ParamTys, EPI);
  4345. }
  4346. break;
  4347. }
  4348. case DeclaratorChunk::MemberPointer: {
  4349. // The scope spec must refer to a class, or be dependent.
  4350. CXXScopeSpec &SS = DeclType.Mem.Scope();
  4351. QualType ClsType;
  4352. // Handle pointer nullability.
  4353. inferPointerNullability(SimplePointerKind::MemberPointer, DeclType.Loc,
  4354. DeclType.EndLoc, DeclType.getAttrs(),
  4355. state.getDeclarator().getAttributePool());
  4356. if (SS.isInvalid()) {
  4357. // Avoid emitting extra errors if we already errored on the scope.
  4358. D.setInvalidType(true);
  4359. } else if (S.isDependentScopeSpecifier(SS) ||
  4360. dyn_cast_or_null<CXXRecordDecl>(S.computeDeclContext(SS))) {
  4361. NestedNameSpecifier *NNS = SS.getScopeRep();
  4362. NestedNameSpecifier *NNSPrefix = NNS->getPrefix();
  4363. switch (NNS->getKind()) {
  4364. case NestedNameSpecifier::Identifier:
  4365. ClsType = Context.getDependentNameType(ETK_None, NNSPrefix,
  4366. NNS->getAsIdentifier());
  4367. break;
  4368. case NestedNameSpecifier::Namespace:
  4369. case NestedNameSpecifier::NamespaceAlias:
  4370. case NestedNameSpecifier::Global:
  4371. case NestedNameSpecifier::Super:
  4372. llvm_unreachable("Nested-name-specifier must name a type");
  4373. case NestedNameSpecifier::TypeSpec:
  4374. case NestedNameSpecifier::TypeSpecWithTemplate:
  4375. ClsType = QualType(NNS->getAsType(), 0);
  4376. // Note: if the NNS has a prefix and ClsType is a nondependent
  4377. // TemplateSpecializationType, then the NNS prefix is NOT included
  4378. // in ClsType; hence we wrap ClsType into an ElaboratedType.
  4379. // NOTE: in particular, no wrap occurs if ClsType already is an
  4380. // Elaborated, DependentName, or DependentTemplateSpecialization.
  4381. if (NNSPrefix && isa<TemplateSpecializationType>(NNS->getAsType()))
  4382. ClsType = Context.getElaboratedType(ETK_None, NNSPrefix, ClsType);
  4383. break;
  4384. }
  4385. } else {
  4386. S.Diag(DeclType.Mem.Scope().getBeginLoc(),
  4387. diag::err_illegal_decl_mempointer_in_nonclass)
  4388. << (D.getIdentifier() ? D.getIdentifier()->getName() : "type name")
  4389. << DeclType.Mem.Scope().getRange();
  4390. D.setInvalidType(true);
  4391. }
  4392. if (!ClsType.isNull())
  4393. T = S.BuildMemberPointerType(T, ClsType, DeclType.Loc,
  4394. D.getIdentifier());
  4395. if (T.isNull()) {
  4396. T = Context.IntTy;
  4397. D.setInvalidType(true);
  4398. } else if (DeclType.Mem.TypeQuals) {
  4399. T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Mem.TypeQuals);
  4400. }
  4401. break;
  4402. }
  4403. case DeclaratorChunk::Pipe: {
  4404. T = S.BuildReadPipeType(T, DeclType.Loc);
  4405. processTypeAttrs(state, T, TAL_DeclSpec,
  4406. D.getMutableDeclSpec().getAttributes());
  4407. break;
  4408. }
  4409. }
  4410. if (T.isNull()) {
  4411. D.setInvalidType(true);
  4412. T = Context.IntTy;
  4413. }
  4414. // See if there are any attributes on this declarator chunk.
  4415. processTypeAttrs(state, T, TAL_DeclChunk, DeclType.getAttrs());
  4416. if (DeclType.Kind != DeclaratorChunk::Paren) {
  4417. if (ExpectNoDerefChunk && !IsNoDerefableChunk(DeclType))
  4418. S.Diag(DeclType.Loc, diag::warn_noderef_on_non_pointer_or_array);
  4419. ExpectNoDerefChunk = state.didParseNoDeref();
  4420. }
  4421. }
  4422. if (ExpectNoDerefChunk)
  4423. S.Diag(state.getDeclarator().getBeginLoc(),
  4424. diag::warn_noderef_on_non_pointer_or_array);
  4425. // GNU warning -Wstrict-prototypes
  4426. // Warn if a function declaration is without a prototype.
  4427. // This warning is issued for all kinds of unprototyped function
  4428. // declarations (i.e. function type typedef, function pointer etc.)
  4429. // C99 6.7.5.3p14:
  4430. // The empty list in a function declarator that is not part of a definition
  4431. // of that function specifies that no information about the number or types
  4432. // of the parameters is supplied.
  4433. if (!LangOpts.CPlusPlus && D.getFunctionDefinitionKind() == FDK_Declaration) {
  4434. bool IsBlock = false;
  4435. for (const DeclaratorChunk &DeclType : D.type_objects()) {
  4436. switch (DeclType.Kind) {
  4437. case DeclaratorChunk::BlockPointer:
  4438. IsBlock = true;
  4439. break;
  4440. case DeclaratorChunk::Function: {
  4441. const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun;
  4442. // We supress the warning when there's no LParen location, as this
  4443. // indicates the declaration was an implicit declaration, which gets
  4444. // warned about separately via -Wimplicit-function-declaration.
  4445. if (FTI.NumParams == 0 && !FTI.isVariadic && FTI.getLParenLoc().isValid())
  4446. S.Diag(DeclType.Loc, diag::warn_strict_prototypes)
  4447. << IsBlock
  4448. << FixItHint::CreateInsertion(FTI.getRParenLoc(), "void");
  4449. IsBlock = false;
  4450. break;
  4451. }
  4452. default:
  4453. break;
  4454. }
  4455. }
  4456. }
  4457. assert(!T.isNull() && "T must not be null after this point");
  4458. if (LangOpts.CPlusPlus && T->isFunctionType()) {
  4459. const FunctionProtoType *FnTy = T->getAs<FunctionProtoType>();
  4460. assert(FnTy && "Why oh why is there not a FunctionProtoType here?");
  4461. // C++ 8.3.5p4:
  4462. // A cv-qualifier-seq shall only be part of the function type
  4463. // for a nonstatic member function, the function type to which a pointer
  4464. // to member refers, or the top-level function type of a function typedef
  4465. // declaration.
  4466. //
  4467. // Core issue 547 also allows cv-qualifiers on function types that are
  4468. // top-level template type arguments.
  4469. enum { NonMember, Member, DeductionGuide } Kind = NonMember;
  4470. if (D.getName().getKind() == UnqualifiedIdKind::IK_DeductionGuideName)
  4471. Kind = DeductionGuide;
  4472. else if (!D.getCXXScopeSpec().isSet()) {
  4473. if ((D.getContext() == DeclaratorContext::MemberContext ||
  4474. D.getContext() == DeclaratorContext::LambdaExprContext) &&
  4475. !D.getDeclSpec().isFriendSpecified())
  4476. Kind = Member;
  4477. } else {
  4478. DeclContext *DC = S.computeDeclContext(D.getCXXScopeSpec());
  4479. if (!DC || DC->isRecord())
  4480. Kind = Member;
  4481. }
  4482. // C++11 [dcl.fct]p6 (w/DR1417):
  4483. // An attempt to specify a function type with a cv-qualifier-seq or a
  4484. // ref-qualifier (including by typedef-name) is ill-formed unless it is:
  4485. // - the function type for a non-static member function,
  4486. // - the function type to which a pointer to member refers,
  4487. // - the top-level function type of a function typedef declaration or
  4488. // alias-declaration,
  4489. // - the type-id in the default argument of a type-parameter, or
  4490. // - the type-id of a template-argument for a type-parameter
  4491. //
  4492. // FIXME: Checking this here is insufficient. We accept-invalid on:
  4493. //
  4494. // template<typename T> struct S { void f(T); };
  4495. // S<int() const> s;
  4496. //
  4497. // ... for instance.
  4498. if (IsQualifiedFunction &&
  4499. !(Kind == Member &&
  4500. D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_static) &&
  4501. !IsTypedefName &&
  4502. D.getContext() != DeclaratorContext::TemplateArgContext &&
  4503. D.getContext() != DeclaratorContext::TemplateTypeArgContext) {
  4504. SourceLocation Loc = D.getBeginLoc();
  4505. SourceRange RemovalRange;
  4506. unsigned I;
  4507. if (D.isFunctionDeclarator(I)) {
  4508. SmallVector<SourceLocation, 4> RemovalLocs;
  4509. const DeclaratorChunk &Chunk = D.getTypeObject(I);
  4510. assert(Chunk.Kind == DeclaratorChunk::Function);
  4511. if (Chunk.Fun.hasRefQualifier())
  4512. RemovalLocs.push_back(Chunk.Fun.getRefQualifierLoc());
  4513. if (Chunk.Fun.hasMethodTypeQualifiers())
  4514. Chunk.Fun.MethodQualifiers->forEachQualifier(
  4515. [&](DeclSpec::TQ TypeQual, StringRef QualName,
  4516. SourceLocation SL) { RemovalLocs.push_back(SL); });
  4517. if (!RemovalLocs.empty()) {
  4518. llvm::sort(RemovalLocs,
  4519. BeforeThanCompare<SourceLocation>(S.getSourceManager()));
  4520. RemovalRange = SourceRange(RemovalLocs.front(), RemovalLocs.back());
  4521. Loc = RemovalLocs.front();
  4522. }
  4523. }
  4524. S.Diag(Loc, diag::err_invalid_qualified_function_type)
  4525. << Kind << D.isFunctionDeclarator() << T
  4526. << getFunctionQualifiersAsString(FnTy)
  4527. << FixItHint::CreateRemoval(RemovalRange);
  4528. // Strip the cv-qualifiers and ref-qualifiers from the type.
  4529. FunctionProtoType::ExtProtoInfo EPI = FnTy->getExtProtoInfo();
  4530. EPI.TypeQuals.removeCVRQualifiers();
  4531. EPI.RefQualifier = RQ_None;
  4532. T = Context.getFunctionType(FnTy->getReturnType(), FnTy->getParamTypes(),
  4533. EPI);
  4534. // Rebuild any parens around the identifier in the function type.
  4535. for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
  4536. if (D.getTypeObject(i).Kind != DeclaratorChunk::Paren)
  4537. break;
  4538. T = S.BuildParenType(T);
  4539. }
  4540. }
  4541. }
  4542. // Apply any undistributed attributes from the declarator.
  4543. processTypeAttrs(state, T, TAL_DeclName, D.getAttributes());
  4544. // Diagnose any ignored type attributes.
  4545. state.diagnoseIgnoredTypeAttrs(T);
  4546. // C++0x [dcl.constexpr]p9:
  4547. // A constexpr specifier used in an object declaration declares the object
  4548. // as const.
  4549. if (D.getDeclSpec().getConstexprSpecifier() == CSK_constexpr &&
  4550. T->isObjectType())
  4551. T.addConst();
  4552. // If there was an ellipsis in the declarator, the declaration declares a
  4553. // parameter pack whose type may be a pack expansion type.
  4554. if (D.hasEllipsis()) {
  4555. // C++0x [dcl.fct]p13:
  4556. // A declarator-id or abstract-declarator containing an ellipsis shall
  4557. // only be used in a parameter-declaration. Such a parameter-declaration
  4558. // is a parameter pack (14.5.3). [...]
  4559. switch (D.getContext()) {
  4560. case DeclaratorContext::PrototypeContext:
  4561. case DeclaratorContext::LambdaExprParameterContext:
  4562. // C++0x [dcl.fct]p13:
  4563. // [...] When it is part of a parameter-declaration-clause, the
  4564. // parameter pack is a function parameter pack (14.5.3). The type T
  4565. // of the declarator-id of the function parameter pack shall contain
  4566. // a template parameter pack; each template parameter pack in T is
  4567. // expanded by the function parameter pack.
  4568. //
  4569. // We represent function parameter packs as function parameters whose
  4570. // type is a pack expansion.
  4571. if (!T->containsUnexpandedParameterPack()) {
  4572. S.Diag(D.getEllipsisLoc(),
  4573. diag::err_function_parameter_pack_without_parameter_packs)
  4574. << T << D.getSourceRange();
  4575. D.setEllipsisLoc(SourceLocation());
  4576. } else {
  4577. T = Context.getPackExpansionType(T, None);
  4578. }
  4579. break;
  4580. case DeclaratorContext::TemplateParamContext:
  4581. // C++0x [temp.param]p15:
  4582. // If a template-parameter is a [...] is a parameter-declaration that
  4583. // declares a parameter pack (8.3.5), then the template-parameter is a
  4584. // template parameter pack (14.5.3).
  4585. //
  4586. // Note: core issue 778 clarifies that, if there are any unexpanded
  4587. // parameter packs in the type of the non-type template parameter, then
  4588. // it expands those parameter packs.
  4589. if (T->containsUnexpandedParameterPack())
  4590. T = Context.getPackExpansionType(T, None);
  4591. else
  4592. S.Diag(D.getEllipsisLoc(),
  4593. LangOpts.CPlusPlus11
  4594. ? diag::warn_cxx98_compat_variadic_templates
  4595. : diag::ext_variadic_templates);
  4596. break;
  4597. case DeclaratorContext::FileContext:
  4598. case DeclaratorContext::KNRTypeListContext:
  4599. case DeclaratorContext::ObjCParameterContext: // FIXME: special diagnostic
  4600. // here?
  4601. case DeclaratorContext::ObjCResultContext: // FIXME: special diagnostic
  4602. // here?
  4603. case DeclaratorContext::TypeNameContext:
  4604. case DeclaratorContext::FunctionalCastContext:
  4605. case DeclaratorContext::CXXNewContext:
  4606. case DeclaratorContext::AliasDeclContext:
  4607. case DeclaratorContext::AliasTemplateContext:
  4608. case DeclaratorContext::MemberContext:
  4609. case DeclaratorContext::BlockContext:
  4610. case DeclaratorContext::ForContext:
  4611. case DeclaratorContext::InitStmtContext:
  4612. case DeclaratorContext::ConditionContext:
  4613. case DeclaratorContext::CXXCatchContext:
  4614. case DeclaratorContext::ObjCCatchContext:
  4615. case DeclaratorContext::BlockLiteralContext:
  4616. case DeclaratorContext::LambdaExprContext:
  4617. case DeclaratorContext::ConversionIdContext:
  4618. case DeclaratorContext::TrailingReturnContext:
  4619. case DeclaratorContext::TrailingReturnVarContext:
  4620. case DeclaratorContext::TemplateArgContext:
  4621. case DeclaratorContext::TemplateTypeArgContext:
  4622. // FIXME: We may want to allow parameter packs in block-literal contexts
  4623. // in the future.
  4624. S.Diag(D.getEllipsisLoc(),
  4625. diag::err_ellipsis_in_declarator_not_parameter);
  4626. D.setEllipsisLoc(SourceLocation());
  4627. break;
  4628. }
  4629. }
  4630. assert(!T.isNull() && "T must not be null at the end of this function");
  4631. if (D.isInvalidType())
  4632. return Context.getTrivialTypeSourceInfo(T);
  4633. return GetTypeSourceInfoForDeclarator(state, T, TInfo);
  4634. }
  4635. /// GetTypeForDeclarator - Convert the type for the specified
  4636. /// declarator to Type instances.
  4637. ///
  4638. /// The result of this call will never be null, but the associated
  4639. /// type may be a null type if there's an unrecoverable error.
  4640. TypeSourceInfo *Sema::GetTypeForDeclarator(Declarator &D, Scope *S) {
  4641. // Determine the type of the declarator. Not all forms of declarator
  4642. // have a type.
  4643. TypeProcessingState state(*this, D);
  4644. TypeSourceInfo *ReturnTypeInfo = nullptr;
  4645. QualType T = GetDeclSpecTypeForDeclarator(state, ReturnTypeInfo);
  4646. if (D.isPrototypeContext() && getLangOpts().ObjCAutoRefCount)
  4647. inferARCWriteback(state, T);
  4648. return GetFullTypeForDeclarator(state, T, ReturnTypeInfo);
  4649. }
  4650. static void transferARCOwnershipToDeclSpec(Sema &S,
  4651. QualType &declSpecTy,
  4652. Qualifiers::ObjCLifetime ownership) {
  4653. if (declSpecTy->isObjCRetainableType() &&
  4654. declSpecTy.getObjCLifetime() == Qualifiers::OCL_None) {
  4655. Qualifiers qs;
  4656. qs.addObjCLifetime(ownership);
  4657. declSpecTy = S.Context.getQualifiedType(declSpecTy, qs);
  4658. }
  4659. }
  4660. static void transferARCOwnershipToDeclaratorChunk(TypeProcessingState &state,
  4661. Qualifiers::ObjCLifetime ownership,
  4662. unsigned chunkIndex) {
  4663. Sema &S = state.getSema();
  4664. Declarator &D = state.getDeclarator();
  4665. // Look for an explicit lifetime attribute.
  4666. DeclaratorChunk &chunk = D.getTypeObject(chunkIndex);
  4667. if (chunk.getAttrs().hasAttribute(ParsedAttr::AT_ObjCOwnership))
  4668. return;
  4669. const char *attrStr = nullptr;
  4670. switch (ownership) {
  4671. case Qualifiers::OCL_None: llvm_unreachable("no ownership!");
  4672. case Qualifiers::OCL_ExplicitNone: attrStr = "none"; break;
  4673. case Qualifiers::OCL_Strong: attrStr = "strong"; break;
  4674. case Qualifiers::OCL_Weak: attrStr = "weak"; break;
  4675. case Qualifiers::OCL_Autoreleasing: attrStr = "autoreleasing"; break;
  4676. }
  4677. IdentifierLoc *Arg = new (S.Context) IdentifierLoc;
  4678. Arg->Ident = &S.Context.Idents.get(attrStr);
  4679. Arg->Loc = SourceLocation();
  4680. ArgsUnion Args(Arg);
  4681. // If there wasn't one, add one (with an invalid source location
  4682. // so that we don't make an AttributedType for it).
  4683. ParsedAttr *attr = D.getAttributePool().create(
  4684. &S.Context.Idents.get("objc_ownership"), SourceLocation(),
  4685. /*scope*/ nullptr, SourceLocation(),
  4686. /*args*/ &Args, 1, ParsedAttr::AS_GNU);
  4687. chunk.getAttrs().addAtEnd(attr);
  4688. // TODO: mark whether we did this inference?
  4689. }
  4690. /// Used for transferring ownership in casts resulting in l-values.
  4691. static void transferARCOwnership(TypeProcessingState &state,
  4692. QualType &declSpecTy,
  4693. Qualifiers::ObjCLifetime ownership) {
  4694. Sema &S = state.getSema();
  4695. Declarator &D = state.getDeclarator();
  4696. int inner = -1;
  4697. bool hasIndirection = false;
  4698. for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
  4699. DeclaratorChunk &chunk = D.getTypeObject(i);
  4700. switch (chunk.Kind) {
  4701. case DeclaratorChunk::Paren:
  4702. // Ignore parens.
  4703. break;
  4704. case DeclaratorChunk::Array:
  4705. case DeclaratorChunk::Reference:
  4706. case DeclaratorChunk::Pointer:
  4707. if (inner != -1)
  4708. hasIndirection = true;
  4709. inner = i;
  4710. break;
  4711. case DeclaratorChunk::BlockPointer:
  4712. if (inner != -1)
  4713. transferARCOwnershipToDeclaratorChunk(state, ownership, i);
  4714. return;
  4715. case DeclaratorChunk::Function:
  4716. case DeclaratorChunk::MemberPointer:
  4717. case DeclaratorChunk::Pipe:
  4718. return;
  4719. }
  4720. }
  4721. if (inner == -1)
  4722. return;
  4723. DeclaratorChunk &chunk = D.getTypeObject(inner);
  4724. if (chunk.Kind == DeclaratorChunk::Pointer) {
  4725. if (declSpecTy->isObjCRetainableType())
  4726. return transferARCOwnershipToDeclSpec(S, declSpecTy, ownership);
  4727. if (declSpecTy->isObjCObjectType() && hasIndirection)
  4728. return transferARCOwnershipToDeclaratorChunk(state, ownership, inner);
  4729. } else {
  4730. assert(chunk.Kind == DeclaratorChunk::Array ||
  4731. chunk.Kind == DeclaratorChunk::Reference);
  4732. return transferARCOwnershipToDeclSpec(S, declSpecTy, ownership);
  4733. }
  4734. }
  4735. TypeSourceInfo *Sema::GetTypeForDeclaratorCast(Declarator &D, QualType FromTy) {
  4736. TypeProcessingState state(*this, D);
  4737. TypeSourceInfo *ReturnTypeInfo = nullptr;
  4738. QualType declSpecTy = GetDeclSpecTypeForDeclarator(state, ReturnTypeInfo);
  4739. if (getLangOpts().ObjC) {
  4740. Qualifiers::ObjCLifetime ownership = Context.getInnerObjCOwnership(FromTy);
  4741. if (ownership != Qualifiers::OCL_None)
  4742. transferARCOwnership(state, declSpecTy, ownership);
  4743. }
  4744. return GetFullTypeForDeclarator(state, declSpecTy, ReturnTypeInfo);
  4745. }
  4746. static void fillAttributedTypeLoc(AttributedTypeLoc TL,
  4747. TypeProcessingState &State) {
  4748. TL.setAttr(State.takeAttrForAttributedType(TL.getTypePtr()));
  4749. }
  4750. namespace {
  4751. class TypeSpecLocFiller : public TypeLocVisitor<TypeSpecLocFiller> {
  4752. ASTContext &Context;
  4753. TypeProcessingState &State;
  4754. const DeclSpec &DS;
  4755. public:
  4756. TypeSpecLocFiller(ASTContext &Context, TypeProcessingState &State,
  4757. const DeclSpec &DS)
  4758. : Context(Context), State(State), DS(DS) {}
  4759. void VisitAttributedTypeLoc(AttributedTypeLoc TL) {
  4760. Visit(TL.getModifiedLoc());
  4761. fillAttributedTypeLoc(TL, State);
  4762. }
  4763. void VisitMacroQualifiedTypeLoc(MacroQualifiedTypeLoc TL) {
  4764. Visit(TL.getInnerLoc());
  4765. TL.setExpansionLoc(
  4766. State.getExpansionLocForMacroQualifiedType(TL.getTypePtr()));
  4767. }
  4768. void VisitQualifiedTypeLoc(QualifiedTypeLoc TL) {
  4769. Visit(TL.getUnqualifiedLoc());
  4770. }
  4771. void VisitTypedefTypeLoc(TypedefTypeLoc TL) {
  4772. TL.setNameLoc(DS.getTypeSpecTypeLoc());
  4773. }
  4774. void VisitObjCInterfaceTypeLoc(ObjCInterfaceTypeLoc TL) {
  4775. TL.setNameLoc(DS.getTypeSpecTypeLoc());
  4776. // FIXME. We should have DS.getTypeSpecTypeEndLoc(). But, it requires
  4777. // addition field. What we have is good enough for dispay of location
  4778. // of 'fixit' on interface name.
  4779. TL.setNameEndLoc(DS.getEndLoc());
  4780. }
  4781. void VisitObjCObjectTypeLoc(ObjCObjectTypeLoc TL) {
  4782. TypeSourceInfo *RepTInfo = nullptr;
  4783. Sema::GetTypeFromParser(DS.getRepAsType(), &RepTInfo);
  4784. TL.copy(RepTInfo->getTypeLoc());
  4785. }
  4786. void VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) {
  4787. TypeSourceInfo *RepTInfo = nullptr;
  4788. Sema::GetTypeFromParser(DS.getRepAsType(), &RepTInfo);
  4789. TL.copy(RepTInfo->getTypeLoc());
  4790. }
  4791. void VisitTemplateSpecializationTypeLoc(TemplateSpecializationTypeLoc TL) {
  4792. TypeSourceInfo *TInfo = nullptr;
  4793. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4794. // If we got no declarator info from previous Sema routines,
  4795. // just fill with the typespec loc.
  4796. if (!TInfo) {
  4797. TL.initialize(Context, DS.getTypeSpecTypeNameLoc());
  4798. return;
  4799. }
  4800. TypeLoc OldTL = TInfo->getTypeLoc();
  4801. if (TInfo->getType()->getAs<ElaboratedType>()) {
  4802. ElaboratedTypeLoc ElabTL = OldTL.castAs<ElaboratedTypeLoc>();
  4803. TemplateSpecializationTypeLoc NamedTL = ElabTL.getNamedTypeLoc()
  4804. .castAs<TemplateSpecializationTypeLoc>();
  4805. TL.copy(NamedTL);
  4806. } else {
  4807. TL.copy(OldTL.castAs<TemplateSpecializationTypeLoc>());
  4808. assert(TL.getRAngleLoc() == OldTL.castAs<TemplateSpecializationTypeLoc>().getRAngleLoc());
  4809. }
  4810. }
  4811. void VisitTypeOfExprTypeLoc(TypeOfExprTypeLoc TL) {
  4812. assert(DS.getTypeSpecType() == DeclSpec::TST_typeofExpr);
  4813. TL.setTypeofLoc(DS.getTypeSpecTypeLoc());
  4814. TL.setParensRange(DS.getTypeofParensRange());
  4815. }
  4816. void VisitTypeOfTypeLoc(TypeOfTypeLoc TL) {
  4817. assert(DS.getTypeSpecType() == DeclSpec::TST_typeofType);
  4818. TL.setTypeofLoc(DS.getTypeSpecTypeLoc());
  4819. TL.setParensRange(DS.getTypeofParensRange());
  4820. assert(DS.getRepAsType());
  4821. TypeSourceInfo *TInfo = nullptr;
  4822. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4823. TL.setUnderlyingTInfo(TInfo);
  4824. }
  4825. void VisitUnaryTransformTypeLoc(UnaryTransformTypeLoc TL) {
  4826. // FIXME: This holds only because we only have one unary transform.
  4827. assert(DS.getTypeSpecType() == DeclSpec::TST_underlyingType);
  4828. TL.setKWLoc(DS.getTypeSpecTypeLoc());
  4829. TL.setParensRange(DS.getTypeofParensRange());
  4830. assert(DS.getRepAsType());
  4831. TypeSourceInfo *TInfo = nullptr;
  4832. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4833. TL.setUnderlyingTInfo(TInfo);
  4834. }
  4835. void VisitBuiltinTypeLoc(BuiltinTypeLoc TL) {
  4836. // By default, use the source location of the type specifier.
  4837. TL.setBuiltinLoc(DS.getTypeSpecTypeLoc());
  4838. if (TL.needsExtraLocalData()) {
  4839. // Set info for the written builtin specifiers.
  4840. TL.getWrittenBuiltinSpecs() = DS.getWrittenBuiltinSpecs();
  4841. // Try to have a meaningful source location.
  4842. if (TL.getWrittenSignSpec() != TSS_unspecified)
  4843. TL.expandBuiltinRange(DS.getTypeSpecSignLoc());
  4844. if (TL.getWrittenWidthSpec() != TSW_unspecified)
  4845. TL.expandBuiltinRange(DS.getTypeSpecWidthRange());
  4846. }
  4847. }
  4848. void VisitElaboratedTypeLoc(ElaboratedTypeLoc TL) {
  4849. ElaboratedTypeKeyword Keyword
  4850. = TypeWithKeyword::getKeywordForTypeSpec(DS.getTypeSpecType());
  4851. if (DS.getTypeSpecType() == TST_typename) {
  4852. TypeSourceInfo *TInfo = nullptr;
  4853. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4854. if (TInfo) {
  4855. TL.copy(TInfo->getTypeLoc().castAs<ElaboratedTypeLoc>());
  4856. return;
  4857. }
  4858. }
  4859. TL.setElaboratedKeywordLoc(Keyword != ETK_None
  4860. ? DS.getTypeSpecTypeLoc()
  4861. : SourceLocation());
  4862. const CXXScopeSpec& SS = DS.getTypeSpecScope();
  4863. TL.setQualifierLoc(SS.getWithLocInContext(Context));
  4864. Visit(TL.getNextTypeLoc().getUnqualifiedLoc());
  4865. }
  4866. void VisitDependentNameTypeLoc(DependentNameTypeLoc TL) {
  4867. assert(DS.getTypeSpecType() == TST_typename);
  4868. TypeSourceInfo *TInfo = nullptr;
  4869. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4870. assert(TInfo);
  4871. TL.copy(TInfo->getTypeLoc().castAs<DependentNameTypeLoc>());
  4872. }
  4873. void VisitDependentTemplateSpecializationTypeLoc(
  4874. DependentTemplateSpecializationTypeLoc TL) {
  4875. assert(DS.getTypeSpecType() == TST_typename);
  4876. TypeSourceInfo *TInfo = nullptr;
  4877. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4878. assert(TInfo);
  4879. TL.copy(
  4880. TInfo->getTypeLoc().castAs<DependentTemplateSpecializationTypeLoc>());
  4881. }
  4882. void VisitTagTypeLoc(TagTypeLoc TL) {
  4883. TL.setNameLoc(DS.getTypeSpecTypeNameLoc());
  4884. }
  4885. void VisitAtomicTypeLoc(AtomicTypeLoc TL) {
  4886. // An AtomicTypeLoc can come from either an _Atomic(...) type specifier
  4887. // or an _Atomic qualifier.
  4888. if (DS.getTypeSpecType() == DeclSpec::TST_atomic) {
  4889. TL.setKWLoc(DS.getTypeSpecTypeLoc());
  4890. TL.setParensRange(DS.getTypeofParensRange());
  4891. TypeSourceInfo *TInfo = nullptr;
  4892. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4893. assert(TInfo);
  4894. TL.getValueLoc().initializeFullCopy(TInfo->getTypeLoc());
  4895. } else {
  4896. TL.setKWLoc(DS.getAtomicSpecLoc());
  4897. // No parens, to indicate this was spelled as an _Atomic qualifier.
  4898. TL.setParensRange(SourceRange());
  4899. Visit(TL.getValueLoc());
  4900. }
  4901. }
  4902. void VisitPipeTypeLoc(PipeTypeLoc TL) {
  4903. TL.setKWLoc(DS.getTypeSpecTypeLoc());
  4904. TypeSourceInfo *TInfo = nullptr;
  4905. Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo);
  4906. TL.getValueLoc().initializeFullCopy(TInfo->getTypeLoc());
  4907. }
  4908. void VisitTypeLoc(TypeLoc TL) {
  4909. // FIXME: add other typespec types and change this to an assert.
  4910. TL.initialize(Context, DS.getTypeSpecTypeLoc());
  4911. }
  4912. };
  4913. class DeclaratorLocFiller : public TypeLocVisitor<DeclaratorLocFiller> {
  4914. ASTContext &Context;
  4915. TypeProcessingState &State;
  4916. const DeclaratorChunk &Chunk;
  4917. public:
  4918. DeclaratorLocFiller(ASTContext &Context, TypeProcessingState &State,
  4919. const DeclaratorChunk &Chunk)
  4920. : Context(Context), State(State), Chunk(Chunk) {}
  4921. void VisitQualifiedTypeLoc(QualifiedTypeLoc TL) {
  4922. llvm_unreachable("qualified type locs not expected here!");
  4923. }
  4924. void VisitDecayedTypeLoc(DecayedTypeLoc TL) {
  4925. llvm_unreachable("decayed type locs not expected here!");
  4926. }
  4927. void VisitAttributedTypeLoc(AttributedTypeLoc TL) {
  4928. fillAttributedTypeLoc(TL, State);
  4929. }
  4930. void VisitAdjustedTypeLoc(AdjustedTypeLoc TL) {
  4931. // nothing
  4932. }
  4933. void VisitBlockPointerTypeLoc(BlockPointerTypeLoc TL) {
  4934. assert(Chunk.Kind == DeclaratorChunk::BlockPointer);
  4935. TL.setCaretLoc(Chunk.Loc);
  4936. }
  4937. void VisitPointerTypeLoc(PointerTypeLoc TL) {
  4938. assert(Chunk.Kind == DeclaratorChunk::Pointer);
  4939. TL.setStarLoc(Chunk.Loc);
  4940. }
  4941. void VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) {
  4942. assert(Chunk.Kind == DeclaratorChunk::Pointer);
  4943. TL.setStarLoc(Chunk.Loc);
  4944. }
  4945. void VisitMemberPointerTypeLoc(MemberPointerTypeLoc TL) {
  4946. assert(Chunk.Kind == DeclaratorChunk::MemberPointer);
  4947. const CXXScopeSpec& SS = Chunk.Mem.Scope();
  4948. NestedNameSpecifierLoc NNSLoc = SS.getWithLocInContext(Context);
  4949. const Type* ClsTy = TL.getClass();
  4950. QualType ClsQT = QualType(ClsTy, 0);
  4951. TypeSourceInfo *ClsTInfo = Context.CreateTypeSourceInfo(ClsQT, 0);
  4952. // Now copy source location info into the type loc component.
  4953. TypeLoc ClsTL = ClsTInfo->getTypeLoc();
  4954. switch (NNSLoc.getNestedNameSpecifier()->getKind()) {
  4955. case NestedNameSpecifier::Identifier:
  4956. assert(isa<DependentNameType>(ClsTy) && "Unexpected TypeLoc");
  4957. {
  4958. DependentNameTypeLoc DNTLoc = ClsTL.castAs<DependentNameTypeLoc>();
  4959. DNTLoc.setElaboratedKeywordLoc(SourceLocation());
  4960. DNTLoc.setQualifierLoc(NNSLoc.getPrefix());
  4961. DNTLoc.setNameLoc(NNSLoc.getLocalBeginLoc());
  4962. }
  4963. break;
  4964. case NestedNameSpecifier::TypeSpec:
  4965. case NestedNameSpecifier::TypeSpecWithTemplate:
  4966. if (isa<ElaboratedType>(ClsTy)) {
  4967. ElaboratedTypeLoc ETLoc = ClsTL.castAs<ElaboratedTypeLoc>();
  4968. ETLoc.setElaboratedKeywordLoc(SourceLocation());
  4969. ETLoc.setQualifierLoc(NNSLoc.getPrefix());
  4970. TypeLoc NamedTL = ETLoc.getNamedTypeLoc();
  4971. NamedTL.initializeFullCopy(NNSLoc.getTypeLoc());
  4972. } else {
  4973. ClsTL.initializeFullCopy(NNSLoc.getTypeLoc());
  4974. }
  4975. break;
  4976. case NestedNameSpecifier::Namespace:
  4977. case NestedNameSpecifier::NamespaceAlias:
  4978. case NestedNameSpecifier::Global:
  4979. case NestedNameSpecifier::Super:
  4980. llvm_unreachable("Nested-name-specifier must name a type");
  4981. }
  4982. // Finally fill in MemberPointerLocInfo fields.
  4983. TL.setStarLoc(Chunk.Loc);
  4984. TL.setClassTInfo(ClsTInfo);
  4985. }
  4986. void VisitLValueReferenceTypeLoc(LValueReferenceTypeLoc TL) {
  4987. assert(Chunk.Kind == DeclaratorChunk::Reference);
  4988. // 'Amp' is misleading: this might have been originally
  4989. /// spelled with AmpAmp.
  4990. TL.setAmpLoc(Chunk.Loc);
  4991. }
  4992. void VisitRValueReferenceTypeLoc(RValueReferenceTypeLoc TL) {
  4993. assert(Chunk.Kind == DeclaratorChunk::Reference);
  4994. assert(!Chunk.Ref.LValueRef);
  4995. TL.setAmpAmpLoc(Chunk.Loc);
  4996. }
  4997. void VisitArrayTypeLoc(ArrayTypeLoc TL) {
  4998. assert(Chunk.Kind == DeclaratorChunk::Array);
  4999. TL.setLBracketLoc(Chunk.Loc);
  5000. TL.setRBracketLoc(Chunk.EndLoc);
  5001. TL.setSizeExpr(static_cast<Expr*>(Chunk.Arr.NumElts));
  5002. }
  5003. void VisitFunctionTypeLoc(FunctionTypeLoc TL) {
  5004. assert(Chunk.Kind == DeclaratorChunk::Function);
  5005. TL.setLocalRangeBegin(Chunk.Loc);
  5006. TL.setLocalRangeEnd(Chunk.EndLoc);
  5007. const DeclaratorChunk::FunctionTypeInfo &FTI = Chunk.Fun;
  5008. TL.setLParenLoc(FTI.getLParenLoc());
  5009. TL.setRParenLoc(FTI.getRParenLoc());
  5010. for (unsigned i = 0, e = TL.getNumParams(), tpi = 0; i != e; ++i) {
  5011. ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param);
  5012. TL.setParam(tpi++, Param);
  5013. }
  5014. TL.setExceptionSpecRange(FTI.getExceptionSpecRange());
  5015. }
  5016. void VisitParenTypeLoc(ParenTypeLoc TL) {
  5017. assert(Chunk.Kind == DeclaratorChunk::Paren);
  5018. TL.setLParenLoc(Chunk.Loc);
  5019. TL.setRParenLoc(Chunk.EndLoc);
  5020. }
  5021. void VisitPipeTypeLoc(PipeTypeLoc TL) {
  5022. assert(Chunk.Kind == DeclaratorChunk::Pipe);
  5023. TL.setKWLoc(Chunk.Loc);
  5024. }
  5025. void VisitMacroQualifiedTypeLoc(MacroQualifiedTypeLoc TL) {
  5026. TL.setExpansionLoc(Chunk.Loc);
  5027. }
  5028. void VisitTypeLoc(TypeLoc TL) {
  5029. llvm_unreachable("unsupported TypeLoc kind in declarator!");
  5030. }
  5031. };
  5032. } // end anonymous namespace
  5033. static void fillAtomicQualLoc(AtomicTypeLoc ATL, const DeclaratorChunk &Chunk) {
  5034. SourceLocation Loc;
  5035. switch (Chunk.Kind) {
  5036. case DeclaratorChunk::Function:
  5037. case DeclaratorChunk::Array:
  5038. case DeclaratorChunk::Paren:
  5039. case DeclaratorChunk::Pipe:
  5040. llvm_unreachable("cannot be _Atomic qualified");
  5041. case DeclaratorChunk::Pointer:
  5042. Loc = SourceLocation::getFromRawEncoding(Chunk.Ptr.AtomicQualLoc);
  5043. break;
  5044. case DeclaratorChunk::BlockPointer:
  5045. case DeclaratorChunk::Reference:
  5046. case DeclaratorChunk::MemberPointer:
  5047. // FIXME: Provide a source location for the _Atomic keyword.
  5048. break;
  5049. }
  5050. ATL.setKWLoc(Loc);
  5051. ATL.setParensRange(SourceRange());
  5052. }
  5053. static void
  5054. fillDependentAddressSpaceTypeLoc(DependentAddressSpaceTypeLoc DASTL,
  5055. const ParsedAttributesView &Attrs) {
  5056. for (const ParsedAttr &AL : Attrs) {
  5057. if (AL.getKind() == ParsedAttr::AT_AddressSpace) {
  5058. DASTL.setAttrNameLoc(AL.getLoc());
  5059. DASTL.setAttrExprOperand(AL.getArgAsExpr(0));
  5060. DASTL.setAttrOperandParensRange(SourceRange());
  5061. return;
  5062. }
  5063. }
  5064. llvm_unreachable(
  5065. "no address_space attribute found at the expected location!");
  5066. }
  5067. /// Create and instantiate a TypeSourceInfo with type source information.
  5068. ///
  5069. /// \param T QualType referring to the type as written in source code.
  5070. ///
  5071. /// \param ReturnTypeInfo For declarators whose return type does not show
  5072. /// up in the normal place in the declaration specifiers (such as a C++
  5073. /// conversion function), this pointer will refer to a type source information
  5074. /// for that return type.
  5075. static TypeSourceInfo *
  5076. GetTypeSourceInfoForDeclarator(TypeProcessingState &State,
  5077. QualType T, TypeSourceInfo *ReturnTypeInfo) {
  5078. Sema &S = State.getSema();
  5079. Declarator &D = State.getDeclarator();
  5080. TypeSourceInfo *TInfo = S.Context.CreateTypeSourceInfo(T);
  5081. UnqualTypeLoc CurrTL = TInfo->getTypeLoc().getUnqualifiedLoc();
  5082. // Handle parameter packs whose type is a pack expansion.
  5083. if (isa<PackExpansionType>(T)) {
  5084. CurrTL.castAs<PackExpansionTypeLoc>().setEllipsisLoc(D.getEllipsisLoc());
  5085. CurrTL = CurrTL.getNextTypeLoc().getUnqualifiedLoc();
  5086. }
  5087. for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) {
  5088. // An AtomicTypeLoc might be produced by an atomic qualifier in this
  5089. // declarator chunk.
  5090. if (AtomicTypeLoc ATL = CurrTL.getAs<AtomicTypeLoc>()) {
  5091. fillAtomicQualLoc(ATL, D.getTypeObject(i));
  5092. CurrTL = ATL.getValueLoc().getUnqualifiedLoc();
  5093. }
  5094. while (MacroQualifiedTypeLoc TL = CurrTL.getAs<MacroQualifiedTypeLoc>()) {
  5095. TL.setExpansionLoc(
  5096. State.getExpansionLocForMacroQualifiedType(TL.getTypePtr()));
  5097. CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc();
  5098. }
  5099. while (AttributedTypeLoc TL = CurrTL.getAs<AttributedTypeLoc>()) {
  5100. fillAttributedTypeLoc(TL, State);
  5101. CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc();
  5102. }
  5103. while (DependentAddressSpaceTypeLoc TL =
  5104. CurrTL.getAs<DependentAddressSpaceTypeLoc>()) {
  5105. fillDependentAddressSpaceTypeLoc(TL, D.getTypeObject(i).getAttrs());
  5106. CurrTL = TL.getPointeeTypeLoc().getUnqualifiedLoc();
  5107. }
  5108. // FIXME: Ordering here?
  5109. while (AdjustedTypeLoc TL = CurrTL.getAs<AdjustedTypeLoc>())
  5110. CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc();
  5111. DeclaratorLocFiller(S.Context, State, D.getTypeObject(i)).Visit(CurrTL);
  5112. CurrTL = CurrTL.getNextTypeLoc().getUnqualifiedLoc();
  5113. }
  5114. // If we have different source information for the return type, use
  5115. // that. This really only applies to C++ conversion functions.
  5116. if (ReturnTypeInfo) {
  5117. TypeLoc TL = ReturnTypeInfo->getTypeLoc();
  5118. assert(TL.getFullDataSize() == CurrTL.getFullDataSize());
  5119. memcpy(CurrTL.getOpaqueData(), TL.getOpaqueData(), TL.getFullDataSize());
  5120. } else {
  5121. TypeSpecLocFiller(S.Context, State, D.getDeclSpec()).Visit(CurrTL);
  5122. }
  5123. return TInfo;
  5124. }
  5125. /// Create a LocInfoType to hold the given QualType and TypeSourceInfo.
  5126. ParsedType Sema::CreateParsedType(QualType T, TypeSourceInfo *TInfo) {
  5127. // FIXME: LocInfoTypes are "transient", only needed for passing to/from Parser
  5128. // and Sema during declaration parsing. Try deallocating/caching them when
  5129. // it's appropriate, instead of allocating them and keeping them around.
  5130. LocInfoType *LocT = (LocInfoType*)BumpAlloc.Allocate(sizeof(LocInfoType),
  5131. TypeAlignment);
  5132. new (LocT) LocInfoType(T, TInfo);
  5133. assert(LocT->getTypeClass() != T->getTypeClass() &&
  5134. "LocInfoType's TypeClass conflicts with an existing Type class");
  5135. return ParsedType::make(QualType(LocT, 0));
  5136. }
  5137. void LocInfoType::getAsStringInternal(std::string &Str,
  5138. const PrintingPolicy &Policy) const {
  5139. llvm_unreachable("LocInfoType leaked into the type system; an opaque TypeTy*"
  5140. " was used directly instead of getting the QualType through"
  5141. " GetTypeFromParser");
  5142. }
  5143. TypeResult Sema::ActOnTypeName(Scope *S, Declarator &D) {
  5144. // C99 6.7.6: Type names have no identifier. This is already validated by
  5145. // the parser.
  5146. assert(D.getIdentifier() == nullptr &&
  5147. "Type name should have no identifier!");
  5148. TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S);
  5149. QualType T = TInfo->getType();
  5150. if (D.isInvalidType())
  5151. return true;
  5152. // Make sure there are no unused decl attributes on the declarator.
  5153. // We don't want to do this for ObjC parameters because we're going
  5154. // to apply them to the actual parameter declaration.
  5155. // Likewise, we don't want to do this for alias declarations, because
  5156. // we are actually going to build a declaration from this eventually.
  5157. if (D.getContext() != DeclaratorContext::ObjCParameterContext &&
  5158. D.getContext() != DeclaratorContext::AliasDeclContext &&
  5159. D.getContext() != DeclaratorContext::AliasTemplateContext)
  5160. checkUnusedDeclAttributes(D);
  5161. if (getLangOpts().CPlusPlus) {
  5162. // Check that there are no default arguments (C++ only).
  5163. CheckExtraCXXDefaultArguments(D);
  5164. }
  5165. return CreateParsedType(T, TInfo);
  5166. }
  5167. ParsedType Sema::ActOnObjCInstanceType(SourceLocation Loc) {
  5168. QualType T = Context.getObjCInstanceType();
  5169. TypeSourceInfo *TInfo = Context.getTrivialTypeSourceInfo(T, Loc);
  5170. return CreateParsedType(T, TInfo);
  5171. }
  5172. //===----------------------------------------------------------------------===//
  5173. // Type Attribute Processing
  5174. //===----------------------------------------------------------------------===//
  5175. /// Build an AddressSpace index from a constant expression and diagnose any
  5176. /// errors related to invalid address_spaces. Returns true on successfully
  5177. /// building an AddressSpace index.
  5178. static bool BuildAddressSpaceIndex(Sema &S, LangAS &ASIdx,
  5179. const Expr *AddrSpace,
  5180. SourceLocation AttrLoc) {
  5181. if (!AddrSpace->isValueDependent()) {
  5182. llvm::APSInt addrSpace(32);
  5183. if (!AddrSpace->isIntegerConstantExpr(addrSpace, S.Context)) {
  5184. S.Diag(AttrLoc, diag::err_attribute_argument_type)
  5185. << "'address_space'" << AANT_ArgumentIntegerConstant
  5186. << AddrSpace->getSourceRange();
  5187. return false;
  5188. }
  5189. // Bounds checking.
  5190. if (addrSpace.isSigned()) {
  5191. if (addrSpace.isNegative()) {
  5192. S.Diag(AttrLoc, diag::err_attribute_address_space_negative)
  5193. << AddrSpace->getSourceRange();
  5194. return false;
  5195. }
  5196. addrSpace.setIsSigned(false);
  5197. }
  5198. llvm::APSInt max(addrSpace.getBitWidth());
  5199. max =
  5200. Qualifiers::MaxAddressSpace - (unsigned)LangAS::FirstTargetAddressSpace;
  5201. if (addrSpace > max) {
  5202. S.Diag(AttrLoc, diag::err_attribute_address_space_too_high)
  5203. << (unsigned)max.getZExtValue() << AddrSpace->getSourceRange();
  5204. return false;
  5205. }
  5206. ASIdx =
  5207. getLangASFromTargetAS(static_cast<unsigned>(addrSpace.getZExtValue()));
  5208. return true;
  5209. }
  5210. // Default value for DependentAddressSpaceTypes
  5211. ASIdx = LangAS::Default;
  5212. return true;
  5213. }
  5214. /// BuildAddressSpaceAttr - Builds a DependentAddressSpaceType if an expression
  5215. /// is uninstantiated. If instantiated it will apply the appropriate address
  5216. /// space to the type. This function allows dependent template variables to be
  5217. /// used in conjunction with the address_space attribute
  5218. QualType Sema::BuildAddressSpaceAttr(QualType &T, LangAS ASIdx, Expr *AddrSpace,
  5219. SourceLocation AttrLoc) {
  5220. if (!AddrSpace->isValueDependent()) {
  5221. if (DiagnoseMultipleAddrSpaceAttributes(*this, T.getAddressSpace(), ASIdx,
  5222. AttrLoc))
  5223. return QualType();
  5224. return Context.getAddrSpaceQualType(T, ASIdx);
  5225. }
  5226. // A check with similar intentions as checking if a type already has an
  5227. // address space except for on a dependent types, basically if the
  5228. // current type is already a DependentAddressSpaceType then its already
  5229. // lined up to have another address space on it and we can't have
  5230. // multiple address spaces on the one pointer indirection
  5231. if (T->getAs<DependentAddressSpaceType>()) {
  5232. Diag(AttrLoc, diag::err_attribute_address_multiple_qualifiers);
  5233. return QualType();
  5234. }
  5235. return Context.getDependentAddressSpaceType(T, AddrSpace, AttrLoc);
  5236. }
  5237. QualType Sema::BuildAddressSpaceAttr(QualType &T, Expr *AddrSpace,
  5238. SourceLocation AttrLoc) {
  5239. LangAS ASIdx;
  5240. if (!BuildAddressSpaceIndex(*this, ASIdx, AddrSpace, AttrLoc))
  5241. return QualType();
  5242. return BuildAddressSpaceAttr(T, ASIdx, AddrSpace, AttrLoc);
  5243. }
  5244. /// HandleAddressSpaceTypeAttribute - Process an address_space attribute on the
  5245. /// specified type. The attribute contains 1 argument, the id of the address
  5246. /// space for the type.
  5247. static void HandleAddressSpaceTypeAttribute(QualType &Type,
  5248. const ParsedAttr &Attr,
  5249. TypeProcessingState &State) {
  5250. Sema &S = State.getSema();
  5251. // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "A function type shall not be
  5252. // qualified by an address-space qualifier."
  5253. if (Type->isFunctionType()) {
  5254. S.Diag(Attr.getLoc(), diag::err_attribute_address_function_type);
  5255. Attr.setInvalid();
  5256. return;
  5257. }
  5258. LangAS ASIdx;
  5259. if (Attr.getKind() == ParsedAttr::AT_AddressSpace) {
  5260. // Check the attribute arguments.
  5261. if (Attr.getNumArgs() != 1) {
  5262. S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
  5263. << 1;
  5264. Attr.setInvalid();
  5265. return;
  5266. }
  5267. Expr *ASArgExpr;
  5268. if (Attr.isArgIdent(0)) {
  5269. // Special case where the argument is a template id.
  5270. CXXScopeSpec SS;
  5271. SourceLocation TemplateKWLoc;
  5272. UnqualifiedId id;
  5273. id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
  5274. ExprResult AddrSpace = S.ActOnIdExpression(
  5275. S.getCurScope(), SS, TemplateKWLoc, id, /*HasTrailingLParen=*/false,
  5276. /*IsAddressOfOperand=*/false);
  5277. if (AddrSpace.isInvalid())
  5278. return;
  5279. ASArgExpr = static_cast<Expr *>(AddrSpace.get());
  5280. } else {
  5281. ASArgExpr = static_cast<Expr *>(Attr.getArgAsExpr(0));
  5282. }
  5283. LangAS ASIdx;
  5284. if (!BuildAddressSpaceIndex(S, ASIdx, ASArgExpr, Attr.getLoc())) {
  5285. Attr.setInvalid();
  5286. return;
  5287. }
  5288. ASTContext &Ctx = S.Context;
  5289. auto *ASAttr =
  5290. ::new (Ctx) AddressSpaceAttr(Ctx, Attr, static_cast<unsigned>(ASIdx));
  5291. // If the expression is not value dependent (not templated), then we can
  5292. // apply the address space qualifiers just to the equivalent type.
  5293. // Otherwise, we make an AttributedType with the modified and equivalent
  5294. // type the same, and wrap it in a DependentAddressSpaceType. When this
  5295. // dependent type is resolved, the qualifier is added to the equivalent type
  5296. // later.
  5297. QualType T;
  5298. if (!ASArgExpr->isValueDependent()) {
  5299. QualType EquivType =
  5300. S.BuildAddressSpaceAttr(Type, ASIdx, ASArgExpr, Attr.getLoc());
  5301. if (EquivType.isNull()) {
  5302. Attr.setInvalid();
  5303. return;
  5304. }
  5305. T = State.getAttributedType(ASAttr, Type, EquivType);
  5306. } else {
  5307. T = State.getAttributedType(ASAttr, Type, Type);
  5308. T = S.BuildAddressSpaceAttr(T, ASIdx, ASArgExpr, Attr.getLoc());
  5309. }
  5310. if (!T.isNull())
  5311. Type = T;
  5312. else
  5313. Attr.setInvalid();
  5314. } else {
  5315. // The keyword-based type attributes imply which address space to use.
  5316. ASIdx = Attr.asOpenCLLangAS();
  5317. if (ASIdx == LangAS::Default)
  5318. llvm_unreachable("Invalid address space");
  5319. if (DiagnoseMultipleAddrSpaceAttributes(S, Type.getAddressSpace(), ASIdx,
  5320. Attr.getLoc())) {
  5321. Attr.setInvalid();
  5322. return;
  5323. }
  5324. Type = S.Context.getAddrSpaceQualType(Type, ASIdx);
  5325. }
  5326. }
  5327. /// handleObjCOwnershipTypeAttr - Process an objc_ownership
  5328. /// attribute on the specified type.
  5329. ///
  5330. /// Returns 'true' if the attribute was handled.
  5331. static bool handleObjCOwnershipTypeAttr(TypeProcessingState &state,
  5332. ParsedAttr &attr, QualType &type) {
  5333. bool NonObjCPointer = false;
  5334. if (!type->isDependentType() && !type->isUndeducedType()) {
  5335. if (const PointerType *ptr = type->getAs<PointerType>()) {
  5336. QualType pointee = ptr->getPointeeType();
  5337. if (pointee->isObjCRetainableType() || pointee->isPointerType())
  5338. return false;
  5339. // It is important not to lose the source info that there was an attribute
  5340. // applied to non-objc pointer. We will create an attributed type but
  5341. // its type will be the same as the original type.
  5342. NonObjCPointer = true;
  5343. } else if (!type->isObjCRetainableType()) {
  5344. return false;
  5345. }
  5346. // Don't accept an ownership attribute in the declspec if it would
  5347. // just be the return type of a block pointer.
  5348. if (state.isProcessingDeclSpec()) {
  5349. Declarator &D = state.getDeclarator();
  5350. if (maybeMovePastReturnType(D, D.getNumTypeObjects(),
  5351. /*onlyBlockPointers=*/true))
  5352. return false;
  5353. }
  5354. }
  5355. Sema &S = state.getSema();
  5356. SourceLocation AttrLoc = attr.getLoc();
  5357. if (AttrLoc.isMacroID())
  5358. AttrLoc =
  5359. S.getSourceManager().getImmediateExpansionRange(AttrLoc).getBegin();
  5360. if (!attr.isArgIdent(0)) {
  5361. S.Diag(AttrLoc, diag::err_attribute_argument_type) << attr
  5362. << AANT_ArgumentString;
  5363. attr.setInvalid();
  5364. return true;
  5365. }
  5366. IdentifierInfo *II = attr.getArgAsIdent(0)->Ident;
  5367. Qualifiers::ObjCLifetime lifetime;
  5368. if (II->isStr("none"))
  5369. lifetime = Qualifiers::OCL_ExplicitNone;
  5370. else if (II->isStr("strong"))
  5371. lifetime = Qualifiers::OCL_Strong;
  5372. else if (II->isStr("weak"))
  5373. lifetime = Qualifiers::OCL_Weak;
  5374. else if (II->isStr("autoreleasing"))
  5375. lifetime = Qualifiers::OCL_Autoreleasing;
  5376. else {
  5377. S.Diag(AttrLoc, diag::warn_attribute_type_not_supported) << attr << II;
  5378. attr.setInvalid();
  5379. return true;
  5380. }
  5381. // Just ignore lifetime attributes other than __weak and __unsafe_unretained
  5382. // outside of ARC mode.
  5383. if (!S.getLangOpts().ObjCAutoRefCount &&
  5384. lifetime != Qualifiers::OCL_Weak &&
  5385. lifetime != Qualifiers::OCL_ExplicitNone) {
  5386. return true;
  5387. }
  5388. SplitQualType underlyingType = type.split();
  5389. // Check for redundant/conflicting ownership qualifiers.
  5390. if (Qualifiers::ObjCLifetime previousLifetime
  5391. = type.getQualifiers().getObjCLifetime()) {
  5392. // If it's written directly, that's an error.
  5393. if (S.Context.hasDirectOwnershipQualifier(type)) {
  5394. S.Diag(AttrLoc, diag::err_attr_objc_ownership_redundant)
  5395. << type;
  5396. return true;
  5397. }
  5398. // Otherwise, if the qualifiers actually conflict, pull sugar off
  5399. // and remove the ObjCLifetime qualifiers.
  5400. if (previousLifetime != lifetime) {
  5401. // It's possible to have multiple local ObjCLifetime qualifiers. We
  5402. // can't stop after we reach a type that is directly qualified.
  5403. const Type *prevTy = nullptr;
  5404. while (!prevTy || prevTy != underlyingType.Ty) {
  5405. prevTy = underlyingType.Ty;
  5406. underlyingType = underlyingType.getSingleStepDesugaredType();
  5407. }
  5408. underlyingType.Quals.removeObjCLifetime();
  5409. }
  5410. }
  5411. underlyingType.Quals.addObjCLifetime(lifetime);
  5412. if (NonObjCPointer) {
  5413. StringRef name = attr.getAttrName()->getName();
  5414. switch (lifetime) {
  5415. case Qualifiers::OCL_None:
  5416. case Qualifiers::OCL_ExplicitNone:
  5417. break;
  5418. case Qualifiers::OCL_Strong: name = "__strong"; break;
  5419. case Qualifiers::OCL_Weak: name = "__weak"; break;
  5420. case Qualifiers::OCL_Autoreleasing: name = "__autoreleasing"; break;
  5421. }
  5422. S.Diag(AttrLoc, diag::warn_type_attribute_wrong_type) << name
  5423. << TDS_ObjCObjOrBlock << type;
  5424. }
  5425. // Don't actually add the __unsafe_unretained qualifier in non-ARC files,
  5426. // because having both 'T' and '__unsafe_unretained T' exist in the type
  5427. // system causes unfortunate widespread consistency problems. (For example,
  5428. // they're not considered compatible types, and we mangle them identicially
  5429. // as template arguments.) These problems are all individually fixable,
  5430. // but it's easier to just not add the qualifier and instead sniff it out
  5431. // in specific places using isObjCInertUnsafeUnretainedType().
  5432. //
  5433. // Doing this does means we miss some trivial consistency checks that
  5434. // would've triggered in ARC, but that's better than trying to solve all
  5435. // the coexistence problems with __unsafe_unretained.
  5436. if (!S.getLangOpts().ObjCAutoRefCount &&
  5437. lifetime == Qualifiers::OCL_ExplicitNone) {
  5438. type = state.getAttributedType(
  5439. createSimpleAttr<ObjCInertUnsafeUnretainedAttr>(S.Context, attr),
  5440. type, type);
  5441. return true;
  5442. }
  5443. QualType origType = type;
  5444. if (!NonObjCPointer)
  5445. type = S.Context.getQualifiedType(underlyingType);
  5446. // If we have a valid source location for the attribute, use an
  5447. // AttributedType instead.
  5448. if (AttrLoc.isValid()) {
  5449. type = state.getAttributedType(::new (S.Context)
  5450. ObjCOwnershipAttr(S.Context, attr, II),
  5451. origType, type);
  5452. }
  5453. auto diagnoseOrDelay = [](Sema &S, SourceLocation loc,
  5454. unsigned diagnostic, QualType type) {
  5455. if (S.DelayedDiagnostics.shouldDelayDiagnostics()) {
  5456. S.DelayedDiagnostics.add(
  5457. sema::DelayedDiagnostic::makeForbiddenType(
  5458. S.getSourceManager().getExpansionLoc(loc),
  5459. diagnostic, type, /*ignored*/ 0));
  5460. } else {
  5461. S.Diag(loc, diagnostic);
  5462. }
  5463. };
  5464. // Sometimes, __weak isn't allowed.
  5465. if (lifetime == Qualifiers::OCL_Weak &&
  5466. !S.getLangOpts().ObjCWeak && !NonObjCPointer) {
  5467. // Use a specialized diagnostic if the runtime just doesn't support them.
  5468. unsigned diagnostic =
  5469. (S.getLangOpts().ObjCWeakRuntime ? diag::err_arc_weak_disabled
  5470. : diag::err_arc_weak_no_runtime);
  5471. // In any case, delay the diagnostic until we know what we're parsing.
  5472. diagnoseOrDelay(S, AttrLoc, diagnostic, type);
  5473. attr.setInvalid();
  5474. return true;
  5475. }
  5476. // Forbid __weak for class objects marked as
  5477. // objc_arc_weak_reference_unavailable
  5478. if (lifetime == Qualifiers::OCL_Weak) {
  5479. if (const ObjCObjectPointerType *ObjT =
  5480. type->getAs<ObjCObjectPointerType>()) {
  5481. if (ObjCInterfaceDecl *Class = ObjT->getInterfaceDecl()) {
  5482. if (Class->isArcWeakrefUnavailable()) {
  5483. S.Diag(AttrLoc, diag::err_arc_unsupported_weak_class);
  5484. S.Diag(ObjT->getInterfaceDecl()->getLocation(),
  5485. diag::note_class_declared);
  5486. }
  5487. }
  5488. }
  5489. }
  5490. return true;
  5491. }
  5492. /// handleObjCGCTypeAttr - Process the __attribute__((objc_gc)) type
  5493. /// attribute on the specified type. Returns true to indicate that
  5494. /// the attribute was handled, false to indicate that the type does
  5495. /// not permit the attribute.
  5496. static bool handleObjCGCTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
  5497. QualType &type) {
  5498. Sema &S = state.getSema();
  5499. // Delay if this isn't some kind of pointer.
  5500. if (!type->isPointerType() &&
  5501. !type->isObjCObjectPointerType() &&
  5502. !type->isBlockPointerType())
  5503. return false;
  5504. if (type.getObjCGCAttr() != Qualifiers::GCNone) {
  5505. S.Diag(attr.getLoc(), diag::err_attribute_multiple_objc_gc);
  5506. attr.setInvalid();
  5507. return true;
  5508. }
  5509. // Check the attribute arguments.
  5510. if (!attr.isArgIdent(0)) {
  5511. S.Diag(attr.getLoc(), diag::err_attribute_argument_type)
  5512. << attr << AANT_ArgumentString;
  5513. attr.setInvalid();
  5514. return true;
  5515. }
  5516. Qualifiers::GC GCAttr;
  5517. if (attr.getNumArgs() > 1) {
  5518. S.Diag(attr.getLoc(), diag::err_attribute_wrong_number_arguments) << attr
  5519. << 1;
  5520. attr.setInvalid();
  5521. return true;
  5522. }
  5523. IdentifierInfo *II = attr.getArgAsIdent(0)->Ident;
  5524. if (II->isStr("weak"))
  5525. GCAttr = Qualifiers::Weak;
  5526. else if (II->isStr("strong"))
  5527. GCAttr = Qualifiers::Strong;
  5528. else {
  5529. S.Diag(attr.getLoc(), diag::warn_attribute_type_not_supported)
  5530. << attr << II;
  5531. attr.setInvalid();
  5532. return true;
  5533. }
  5534. QualType origType = type;
  5535. type = S.Context.getObjCGCQualType(origType, GCAttr);
  5536. // Make an attributed type to preserve the source information.
  5537. if (attr.getLoc().isValid())
  5538. type = state.getAttributedType(
  5539. ::new (S.Context) ObjCGCAttr(S.Context, attr, II), origType, type);
  5540. return true;
  5541. }
  5542. namespace {
  5543. /// A helper class to unwrap a type down to a function for the
  5544. /// purposes of applying attributes there.
  5545. ///
  5546. /// Use:
  5547. /// FunctionTypeUnwrapper unwrapped(SemaRef, T);
  5548. /// if (unwrapped.isFunctionType()) {
  5549. /// const FunctionType *fn = unwrapped.get();
  5550. /// // change fn somehow
  5551. /// T = unwrapped.wrap(fn);
  5552. /// }
  5553. struct FunctionTypeUnwrapper {
  5554. enum WrapKind {
  5555. Desugar,
  5556. Attributed,
  5557. Parens,
  5558. Pointer,
  5559. BlockPointer,
  5560. Reference,
  5561. MemberPointer
  5562. };
  5563. QualType Original;
  5564. const FunctionType *Fn;
  5565. SmallVector<unsigned char /*WrapKind*/, 8> Stack;
  5566. FunctionTypeUnwrapper(Sema &S, QualType T) : Original(T) {
  5567. while (true) {
  5568. const Type *Ty = T.getTypePtr();
  5569. if (isa<FunctionType>(Ty)) {
  5570. Fn = cast<FunctionType>(Ty);
  5571. return;
  5572. } else if (isa<ParenType>(Ty)) {
  5573. T = cast<ParenType>(Ty)->getInnerType();
  5574. Stack.push_back(Parens);
  5575. } else if (isa<PointerType>(Ty)) {
  5576. T = cast<PointerType>(Ty)->getPointeeType();
  5577. Stack.push_back(Pointer);
  5578. } else if (isa<BlockPointerType>(Ty)) {
  5579. T = cast<BlockPointerType>(Ty)->getPointeeType();
  5580. Stack.push_back(BlockPointer);
  5581. } else if (isa<MemberPointerType>(Ty)) {
  5582. T = cast<MemberPointerType>(Ty)->getPointeeType();
  5583. Stack.push_back(MemberPointer);
  5584. } else if (isa<ReferenceType>(Ty)) {
  5585. T = cast<ReferenceType>(Ty)->getPointeeType();
  5586. Stack.push_back(Reference);
  5587. } else if (isa<AttributedType>(Ty)) {
  5588. T = cast<AttributedType>(Ty)->getEquivalentType();
  5589. Stack.push_back(Attributed);
  5590. } else {
  5591. const Type *DTy = Ty->getUnqualifiedDesugaredType();
  5592. if (Ty == DTy) {
  5593. Fn = nullptr;
  5594. return;
  5595. }
  5596. T = QualType(DTy, 0);
  5597. Stack.push_back(Desugar);
  5598. }
  5599. }
  5600. }
  5601. bool isFunctionType() const { return (Fn != nullptr); }
  5602. const FunctionType *get() const { return Fn; }
  5603. QualType wrap(Sema &S, const FunctionType *New) {
  5604. // If T wasn't modified from the unwrapped type, do nothing.
  5605. if (New == get()) return Original;
  5606. Fn = New;
  5607. return wrap(S.Context, Original, 0);
  5608. }
  5609. private:
  5610. QualType wrap(ASTContext &C, QualType Old, unsigned I) {
  5611. if (I == Stack.size())
  5612. return C.getQualifiedType(Fn, Old.getQualifiers());
  5613. // Build up the inner type, applying the qualifiers from the old
  5614. // type to the new type.
  5615. SplitQualType SplitOld = Old.split();
  5616. // As a special case, tail-recurse if there are no qualifiers.
  5617. if (SplitOld.Quals.empty())
  5618. return wrap(C, SplitOld.Ty, I);
  5619. return C.getQualifiedType(wrap(C, SplitOld.Ty, I), SplitOld.Quals);
  5620. }
  5621. QualType wrap(ASTContext &C, const Type *Old, unsigned I) {
  5622. if (I == Stack.size()) return QualType(Fn, 0);
  5623. switch (static_cast<WrapKind>(Stack[I++])) {
  5624. case Desugar:
  5625. // This is the point at which we potentially lose source
  5626. // information.
  5627. return wrap(C, Old->getUnqualifiedDesugaredType(), I);
  5628. case Attributed:
  5629. return wrap(C, cast<AttributedType>(Old)->getEquivalentType(), I);
  5630. case Parens: {
  5631. QualType New = wrap(C, cast<ParenType>(Old)->getInnerType(), I);
  5632. return C.getParenType(New);
  5633. }
  5634. case Pointer: {
  5635. QualType New = wrap(C, cast<PointerType>(Old)->getPointeeType(), I);
  5636. return C.getPointerType(New);
  5637. }
  5638. case BlockPointer: {
  5639. QualType New = wrap(C, cast<BlockPointerType>(Old)->getPointeeType(),I);
  5640. return C.getBlockPointerType(New);
  5641. }
  5642. case MemberPointer: {
  5643. const MemberPointerType *OldMPT = cast<MemberPointerType>(Old);
  5644. QualType New = wrap(C, OldMPT->getPointeeType(), I);
  5645. return C.getMemberPointerType(New, OldMPT->getClass());
  5646. }
  5647. case Reference: {
  5648. const ReferenceType *OldRef = cast<ReferenceType>(Old);
  5649. QualType New = wrap(C, OldRef->getPointeeType(), I);
  5650. if (isa<LValueReferenceType>(OldRef))
  5651. return C.getLValueReferenceType(New, OldRef->isSpelledAsLValue());
  5652. else
  5653. return C.getRValueReferenceType(New);
  5654. }
  5655. }
  5656. llvm_unreachable("unknown wrapping kind");
  5657. }
  5658. };
  5659. } // end anonymous namespace
  5660. static bool handleMSPointerTypeQualifierAttr(TypeProcessingState &State,
  5661. ParsedAttr &PAttr, QualType &Type) {
  5662. Sema &S = State.getSema();
  5663. Attr *A;
  5664. switch (PAttr.getKind()) {
  5665. default: llvm_unreachable("Unknown attribute kind");
  5666. case ParsedAttr::AT_Ptr32:
  5667. A = createSimpleAttr<Ptr32Attr>(S.Context, PAttr);
  5668. break;
  5669. case ParsedAttr::AT_Ptr64:
  5670. A = createSimpleAttr<Ptr64Attr>(S.Context, PAttr);
  5671. break;
  5672. case ParsedAttr::AT_SPtr:
  5673. A = createSimpleAttr<SPtrAttr>(S.Context, PAttr);
  5674. break;
  5675. case ParsedAttr::AT_UPtr:
  5676. A = createSimpleAttr<UPtrAttr>(S.Context, PAttr);
  5677. break;
  5678. }
  5679. attr::Kind NewAttrKind = A->getKind();
  5680. QualType Desugared = Type;
  5681. const AttributedType *AT = dyn_cast<AttributedType>(Type);
  5682. while (AT) {
  5683. attr::Kind CurAttrKind = AT->getAttrKind();
  5684. // You cannot specify duplicate type attributes, so if the attribute has
  5685. // already been applied, flag it.
  5686. if (NewAttrKind == CurAttrKind) {
  5687. S.Diag(PAttr.getLoc(), diag::warn_duplicate_attribute_exact) << PAttr;
  5688. return true;
  5689. }
  5690. // You cannot have both __sptr and __uptr on the same type, nor can you
  5691. // have __ptr32 and __ptr64.
  5692. if ((CurAttrKind == attr::Ptr32 && NewAttrKind == attr::Ptr64) ||
  5693. (CurAttrKind == attr::Ptr64 && NewAttrKind == attr::Ptr32)) {
  5694. S.Diag(PAttr.getLoc(), diag::err_attributes_are_not_compatible)
  5695. << "'__ptr32'" << "'__ptr64'";
  5696. return true;
  5697. } else if ((CurAttrKind == attr::SPtr && NewAttrKind == attr::UPtr) ||
  5698. (CurAttrKind == attr::UPtr && NewAttrKind == attr::SPtr)) {
  5699. S.Diag(PAttr.getLoc(), diag::err_attributes_are_not_compatible)
  5700. << "'__sptr'" << "'__uptr'";
  5701. return true;
  5702. }
  5703. Desugared = AT->getEquivalentType();
  5704. AT = dyn_cast<AttributedType>(Desugared);
  5705. }
  5706. // Pointer type qualifiers can only operate on pointer types, but not
  5707. // pointer-to-member types.
  5708. //
  5709. // FIXME: Should we really be disallowing this attribute if there is any
  5710. // type sugar between it and the pointer (other than attributes)? Eg, this
  5711. // disallows the attribute on a parenthesized pointer.
  5712. // And if so, should we really allow *any* type attribute?
  5713. if (!isa<PointerType>(Desugared)) {
  5714. if (Type->isMemberPointerType())
  5715. S.Diag(PAttr.getLoc(), diag::err_attribute_no_member_pointers) << PAttr;
  5716. else
  5717. S.Diag(PAttr.getLoc(), diag::err_attribute_pointers_only) << PAttr << 0;
  5718. return true;
  5719. }
  5720. Type = State.getAttributedType(A, Type, Type);
  5721. return false;
  5722. }
  5723. /// Map a nullability attribute kind to a nullability kind.
  5724. static NullabilityKind mapNullabilityAttrKind(ParsedAttr::Kind kind) {
  5725. switch (kind) {
  5726. case ParsedAttr::AT_TypeNonNull:
  5727. return NullabilityKind::NonNull;
  5728. case ParsedAttr::AT_TypeNullable:
  5729. return NullabilityKind::Nullable;
  5730. case ParsedAttr::AT_TypeNullUnspecified:
  5731. return NullabilityKind::Unspecified;
  5732. default:
  5733. llvm_unreachable("not a nullability attribute kind");
  5734. }
  5735. }
  5736. /// Applies a nullability type specifier to the given type, if possible.
  5737. ///
  5738. /// \param state The type processing state.
  5739. ///
  5740. /// \param type The type to which the nullability specifier will be
  5741. /// added. On success, this type will be updated appropriately.
  5742. ///
  5743. /// \param attr The attribute as written on the type.
  5744. ///
  5745. /// \param allowOnArrayType Whether to accept nullability specifiers on an
  5746. /// array type (e.g., because it will decay to a pointer).
  5747. ///
  5748. /// \returns true if a problem has been diagnosed, false on success.
  5749. static bool checkNullabilityTypeSpecifier(TypeProcessingState &state,
  5750. QualType &type,
  5751. ParsedAttr &attr,
  5752. bool allowOnArrayType) {
  5753. Sema &S = state.getSema();
  5754. NullabilityKind nullability = mapNullabilityAttrKind(attr.getKind());
  5755. SourceLocation nullabilityLoc = attr.getLoc();
  5756. bool isContextSensitive = attr.isContextSensitiveKeywordAttribute();
  5757. recordNullabilitySeen(S, nullabilityLoc);
  5758. // Check for existing nullability attributes on the type.
  5759. QualType desugared = type;
  5760. while (auto attributed = dyn_cast<AttributedType>(desugared.getTypePtr())) {
  5761. // Check whether there is already a null
  5762. if (auto existingNullability = attributed->getImmediateNullability()) {
  5763. // Duplicated nullability.
  5764. if (nullability == *existingNullability) {
  5765. S.Diag(nullabilityLoc, diag::warn_nullability_duplicate)
  5766. << DiagNullabilityKind(nullability, isContextSensitive)
  5767. << FixItHint::CreateRemoval(nullabilityLoc);
  5768. break;
  5769. }
  5770. // Conflicting nullability.
  5771. S.Diag(nullabilityLoc, diag::err_nullability_conflicting)
  5772. << DiagNullabilityKind(nullability, isContextSensitive)
  5773. << DiagNullabilityKind(*existingNullability, false);
  5774. return true;
  5775. }
  5776. desugared = attributed->getModifiedType();
  5777. }
  5778. // If there is already a different nullability specifier, complain.
  5779. // This (unlike the code above) looks through typedefs that might
  5780. // have nullability specifiers on them, which means we cannot
  5781. // provide a useful Fix-It.
  5782. if (auto existingNullability = desugared->getNullability(S.Context)) {
  5783. if (nullability != *existingNullability) {
  5784. S.Diag(nullabilityLoc, diag::err_nullability_conflicting)
  5785. << DiagNullabilityKind(nullability, isContextSensitive)
  5786. << DiagNullabilityKind(*existingNullability, false);
  5787. // Try to find the typedef with the existing nullability specifier.
  5788. if (auto typedefType = desugared->getAs<TypedefType>()) {
  5789. TypedefNameDecl *typedefDecl = typedefType->getDecl();
  5790. QualType underlyingType = typedefDecl->getUnderlyingType();
  5791. if (auto typedefNullability
  5792. = AttributedType::stripOuterNullability(underlyingType)) {
  5793. if (*typedefNullability == *existingNullability) {
  5794. S.Diag(typedefDecl->getLocation(), diag::note_nullability_here)
  5795. << DiagNullabilityKind(*existingNullability, false);
  5796. }
  5797. }
  5798. }
  5799. return true;
  5800. }
  5801. }
  5802. // If this definitely isn't a pointer type, reject the specifier.
  5803. if (!desugared->canHaveNullability() &&
  5804. !(allowOnArrayType && desugared->isArrayType())) {
  5805. S.Diag(nullabilityLoc, diag::err_nullability_nonpointer)
  5806. << DiagNullabilityKind(nullability, isContextSensitive) << type;
  5807. return true;
  5808. }
  5809. // For the context-sensitive keywords/Objective-C property
  5810. // attributes, require that the type be a single-level pointer.
  5811. if (isContextSensitive) {
  5812. // Make sure that the pointee isn't itself a pointer type.
  5813. const Type *pointeeType;
  5814. if (desugared->isArrayType())
  5815. pointeeType = desugared->getArrayElementTypeNoTypeQual();
  5816. else
  5817. pointeeType = desugared->getPointeeType().getTypePtr();
  5818. if (pointeeType->isAnyPointerType() ||
  5819. pointeeType->isObjCObjectPointerType() ||
  5820. pointeeType->isMemberPointerType()) {
  5821. S.Diag(nullabilityLoc, diag::err_nullability_cs_multilevel)
  5822. << DiagNullabilityKind(nullability, true)
  5823. << type;
  5824. S.Diag(nullabilityLoc, diag::note_nullability_type_specifier)
  5825. << DiagNullabilityKind(nullability, false)
  5826. << type
  5827. << FixItHint::CreateReplacement(nullabilityLoc,
  5828. getNullabilitySpelling(nullability));
  5829. return true;
  5830. }
  5831. }
  5832. // Form the attributed type.
  5833. type = state.getAttributedType(
  5834. createNullabilityAttr(S.Context, attr, nullability), type, type);
  5835. return false;
  5836. }
  5837. /// Check the application of the Objective-C '__kindof' qualifier to
  5838. /// the given type.
  5839. static bool checkObjCKindOfType(TypeProcessingState &state, QualType &type,
  5840. ParsedAttr &attr) {
  5841. Sema &S = state.getSema();
  5842. if (isa<ObjCTypeParamType>(type)) {
  5843. // Build the attributed type to record where __kindof occurred.
  5844. type = state.getAttributedType(
  5845. createSimpleAttr<ObjCKindOfAttr>(S.Context, attr), type, type);
  5846. return false;
  5847. }
  5848. // Find out if it's an Objective-C object or object pointer type;
  5849. const ObjCObjectPointerType *ptrType = type->getAs<ObjCObjectPointerType>();
  5850. const ObjCObjectType *objType = ptrType ? ptrType->getObjectType()
  5851. : type->getAs<ObjCObjectType>();
  5852. // If not, we can't apply __kindof.
  5853. if (!objType) {
  5854. // FIXME: Handle dependent types that aren't yet object types.
  5855. S.Diag(attr.getLoc(), diag::err_objc_kindof_nonobject)
  5856. << type;
  5857. return true;
  5858. }
  5859. // Rebuild the "equivalent" type, which pushes __kindof down into
  5860. // the object type.
  5861. // There is no need to apply kindof on an unqualified id type.
  5862. QualType equivType = S.Context.getObjCObjectType(
  5863. objType->getBaseType(), objType->getTypeArgsAsWritten(),
  5864. objType->getProtocols(),
  5865. /*isKindOf=*/objType->isObjCUnqualifiedId() ? false : true);
  5866. // If we started with an object pointer type, rebuild it.
  5867. if (ptrType) {
  5868. equivType = S.Context.getObjCObjectPointerType(equivType);
  5869. if (auto nullability = type->getNullability(S.Context)) {
  5870. // We create a nullability attribute from the __kindof attribute.
  5871. // Make sure that will make sense.
  5872. assert(attr.getAttributeSpellingListIndex() == 0 &&
  5873. "multiple spellings for __kindof?");
  5874. Attr *A = createNullabilityAttr(S.Context, attr, *nullability);
  5875. A->setImplicit(true);
  5876. equivType = state.getAttributedType(A, equivType, equivType);
  5877. }
  5878. }
  5879. // Build the attributed type to record where __kindof occurred.
  5880. type = state.getAttributedType(
  5881. createSimpleAttr<ObjCKindOfAttr>(S.Context, attr), type, equivType);
  5882. return false;
  5883. }
  5884. /// Distribute a nullability type attribute that cannot be applied to
  5885. /// the type specifier to a pointer, block pointer, or member pointer
  5886. /// declarator, complaining if necessary.
  5887. ///
  5888. /// \returns true if the nullability annotation was distributed, false
  5889. /// otherwise.
  5890. static bool distributeNullabilityTypeAttr(TypeProcessingState &state,
  5891. QualType type, ParsedAttr &attr) {
  5892. Declarator &declarator = state.getDeclarator();
  5893. /// Attempt to move the attribute to the specified chunk.
  5894. auto moveToChunk = [&](DeclaratorChunk &chunk, bool inFunction) -> bool {
  5895. // If there is already a nullability attribute there, don't add
  5896. // one.
  5897. if (hasNullabilityAttr(chunk.getAttrs()))
  5898. return false;
  5899. // Complain about the nullability qualifier being in the wrong
  5900. // place.
  5901. enum {
  5902. PK_Pointer,
  5903. PK_BlockPointer,
  5904. PK_MemberPointer,
  5905. PK_FunctionPointer,
  5906. PK_MemberFunctionPointer,
  5907. } pointerKind
  5908. = chunk.Kind == DeclaratorChunk::Pointer ? (inFunction ? PK_FunctionPointer
  5909. : PK_Pointer)
  5910. : chunk.Kind == DeclaratorChunk::BlockPointer ? PK_BlockPointer
  5911. : inFunction? PK_MemberFunctionPointer : PK_MemberPointer;
  5912. auto diag = state.getSema().Diag(attr.getLoc(),
  5913. diag::warn_nullability_declspec)
  5914. << DiagNullabilityKind(mapNullabilityAttrKind(attr.getKind()),
  5915. attr.isContextSensitiveKeywordAttribute())
  5916. << type
  5917. << static_cast<unsigned>(pointerKind);
  5918. // FIXME: MemberPointer chunks don't carry the location of the *.
  5919. if (chunk.Kind != DeclaratorChunk::MemberPointer) {
  5920. diag << FixItHint::CreateRemoval(attr.getLoc())
  5921. << FixItHint::CreateInsertion(
  5922. state.getSema().getPreprocessor().getLocForEndOfToken(
  5923. chunk.Loc),
  5924. " " + attr.getAttrName()->getName().str() + " ");
  5925. }
  5926. moveAttrFromListToList(attr, state.getCurrentAttributes(),
  5927. chunk.getAttrs());
  5928. return true;
  5929. };
  5930. // Move it to the outermost pointer, member pointer, or block
  5931. // pointer declarator.
  5932. for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) {
  5933. DeclaratorChunk &chunk = declarator.getTypeObject(i-1);
  5934. switch (chunk.Kind) {
  5935. case DeclaratorChunk::Pointer:
  5936. case DeclaratorChunk::BlockPointer:
  5937. case DeclaratorChunk::MemberPointer:
  5938. return moveToChunk(chunk, false);
  5939. case DeclaratorChunk::Paren:
  5940. case DeclaratorChunk::Array:
  5941. continue;
  5942. case DeclaratorChunk::Function:
  5943. // Try to move past the return type to a function/block/member
  5944. // function pointer.
  5945. if (DeclaratorChunk *dest = maybeMovePastReturnType(
  5946. declarator, i,
  5947. /*onlyBlockPointers=*/false)) {
  5948. return moveToChunk(*dest, true);
  5949. }
  5950. return false;
  5951. // Don't walk through these.
  5952. case DeclaratorChunk::Reference:
  5953. case DeclaratorChunk::Pipe:
  5954. return false;
  5955. }
  5956. }
  5957. return false;
  5958. }
  5959. static Attr *getCCTypeAttr(ASTContext &Ctx, ParsedAttr &Attr) {
  5960. assert(!Attr.isInvalid());
  5961. switch (Attr.getKind()) {
  5962. default:
  5963. llvm_unreachable("not a calling convention attribute");
  5964. case ParsedAttr::AT_CDecl:
  5965. return createSimpleAttr<CDeclAttr>(Ctx, Attr);
  5966. case ParsedAttr::AT_FastCall:
  5967. return createSimpleAttr<FastCallAttr>(Ctx, Attr);
  5968. case ParsedAttr::AT_StdCall:
  5969. return createSimpleAttr<StdCallAttr>(Ctx, Attr);
  5970. case ParsedAttr::AT_ThisCall:
  5971. return createSimpleAttr<ThisCallAttr>(Ctx, Attr);
  5972. case ParsedAttr::AT_RegCall:
  5973. return createSimpleAttr<RegCallAttr>(Ctx, Attr);
  5974. case ParsedAttr::AT_Pascal:
  5975. return createSimpleAttr<PascalAttr>(Ctx, Attr);
  5976. case ParsedAttr::AT_SwiftCall:
  5977. return createSimpleAttr<SwiftCallAttr>(Ctx, Attr);
  5978. case ParsedAttr::AT_VectorCall:
  5979. return createSimpleAttr<VectorCallAttr>(Ctx, Attr);
  5980. case ParsedAttr::AT_AArch64VectorPcs:
  5981. return createSimpleAttr<AArch64VectorPcsAttr>(Ctx, Attr);
  5982. case ParsedAttr::AT_Pcs: {
  5983. // The attribute may have had a fixit applied where we treated an
  5984. // identifier as a string literal. The contents of the string are valid,
  5985. // but the form may not be.
  5986. StringRef Str;
  5987. if (Attr.isArgExpr(0))
  5988. Str = cast<StringLiteral>(Attr.getArgAsExpr(0))->getString();
  5989. else
  5990. Str = Attr.getArgAsIdent(0)->Ident->getName();
  5991. PcsAttr::PCSType Type;
  5992. if (!PcsAttr::ConvertStrToPCSType(Str, Type))
  5993. llvm_unreachable("already validated the attribute");
  5994. return ::new (Ctx) PcsAttr(Ctx, Attr, Type);
  5995. }
  5996. case ParsedAttr::AT_IntelOclBicc:
  5997. return createSimpleAttr<IntelOclBiccAttr>(Ctx, Attr);
  5998. case ParsedAttr::AT_MSABI:
  5999. return createSimpleAttr<MSABIAttr>(Ctx, Attr);
  6000. case ParsedAttr::AT_SysVABI:
  6001. return createSimpleAttr<SysVABIAttr>(Ctx, Attr);
  6002. case ParsedAttr::AT_PreserveMost:
  6003. return createSimpleAttr<PreserveMostAttr>(Ctx, Attr);
  6004. case ParsedAttr::AT_PreserveAll:
  6005. return createSimpleAttr<PreserveAllAttr>(Ctx, Attr);
  6006. }
  6007. llvm_unreachable("unexpected attribute kind!");
  6008. }
  6009. /// Process an individual function attribute. Returns true to
  6010. /// indicate that the attribute was handled, false if it wasn't.
  6011. static bool handleFunctionTypeAttr(TypeProcessingState &state, ParsedAttr &attr,
  6012. QualType &type) {
  6013. Sema &S = state.getSema();
  6014. FunctionTypeUnwrapper unwrapped(S, type);
  6015. if (attr.getKind() == ParsedAttr::AT_NoReturn) {
  6016. if (S.CheckAttrNoArgs(attr))
  6017. return true;
  6018. // Delay if this is not a function type.
  6019. if (!unwrapped.isFunctionType())
  6020. return false;
  6021. // Otherwise we can process right away.
  6022. FunctionType::ExtInfo EI = unwrapped.get()->getExtInfo().withNoReturn(true);
  6023. type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
  6024. return true;
  6025. }
  6026. // ns_returns_retained is not always a type attribute, but if we got
  6027. // here, we're treating it as one right now.
  6028. if (attr.getKind() == ParsedAttr::AT_NSReturnsRetained) {
  6029. if (attr.getNumArgs()) return true;
  6030. // Delay if this is not a function type.
  6031. if (!unwrapped.isFunctionType())
  6032. return false;
  6033. // Check whether the return type is reasonable.
  6034. if (S.checkNSReturnsRetainedReturnType(attr.getLoc(),
  6035. unwrapped.get()->getReturnType()))
  6036. return true;
  6037. // Only actually change the underlying type in ARC builds.
  6038. QualType origType = type;
  6039. if (state.getSema().getLangOpts().ObjCAutoRefCount) {
  6040. FunctionType::ExtInfo EI
  6041. = unwrapped.get()->getExtInfo().withProducesResult(true);
  6042. type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
  6043. }
  6044. type = state.getAttributedType(
  6045. createSimpleAttr<NSReturnsRetainedAttr>(S.Context, attr),
  6046. origType, type);
  6047. return true;
  6048. }
  6049. if (attr.getKind() == ParsedAttr::AT_AnyX86NoCallerSavedRegisters) {
  6050. if (S.CheckAttrTarget(attr) || S.CheckAttrNoArgs(attr))
  6051. return true;
  6052. // Delay if this is not a function type.
  6053. if (!unwrapped.isFunctionType())
  6054. return false;
  6055. FunctionType::ExtInfo EI =
  6056. unwrapped.get()->getExtInfo().withNoCallerSavedRegs(true);
  6057. type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
  6058. return true;
  6059. }
  6060. if (attr.getKind() == ParsedAttr::AT_AnyX86NoCfCheck) {
  6061. if (!S.getLangOpts().CFProtectionBranch) {
  6062. S.Diag(attr.getLoc(), diag::warn_nocf_check_attribute_ignored);
  6063. attr.setInvalid();
  6064. return true;
  6065. }
  6066. if (S.CheckAttrTarget(attr) || S.CheckAttrNoArgs(attr))
  6067. return true;
  6068. // If this is not a function type, warning will be asserted by subject
  6069. // check.
  6070. if (!unwrapped.isFunctionType())
  6071. return true;
  6072. FunctionType::ExtInfo EI =
  6073. unwrapped.get()->getExtInfo().withNoCfCheck(true);
  6074. type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
  6075. return true;
  6076. }
  6077. if (attr.getKind() == ParsedAttr::AT_Regparm) {
  6078. unsigned value;
  6079. if (S.CheckRegparmAttr(attr, value))
  6080. return true;
  6081. // Delay if this is not a function type.
  6082. if (!unwrapped.isFunctionType())
  6083. return false;
  6084. // Diagnose regparm with fastcall.
  6085. const FunctionType *fn = unwrapped.get();
  6086. CallingConv CC = fn->getCallConv();
  6087. if (CC == CC_X86FastCall) {
  6088. S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible)
  6089. << FunctionType::getNameForCallConv(CC)
  6090. << "regparm";
  6091. attr.setInvalid();
  6092. return true;
  6093. }
  6094. FunctionType::ExtInfo EI =
  6095. unwrapped.get()->getExtInfo().withRegParm(value);
  6096. type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
  6097. return true;
  6098. }
  6099. if (attr.getKind() == ParsedAttr::AT_NoThrow) {
  6100. // Delay if this is not a function type.
  6101. if (!unwrapped.isFunctionType())
  6102. return false;
  6103. if (S.CheckAttrNoArgs(attr)) {
  6104. attr.setInvalid();
  6105. return true;
  6106. }
  6107. // Otherwise we can process right away.
  6108. auto *Proto = unwrapped.get()->castAs<FunctionProtoType>();
  6109. // MSVC ignores nothrow if it is in conflict with an explicit exception
  6110. // specification.
  6111. if (Proto->hasExceptionSpec()) {
  6112. switch (Proto->getExceptionSpecType()) {
  6113. case EST_None:
  6114. llvm_unreachable("This doesn't have an exception spec!");
  6115. case EST_DynamicNone:
  6116. case EST_BasicNoexcept:
  6117. case EST_NoexceptTrue:
  6118. case EST_NoThrow:
  6119. // Exception spec doesn't conflict with nothrow, so don't warn.
  6120. LLVM_FALLTHROUGH;
  6121. case EST_Unparsed:
  6122. case EST_Uninstantiated:
  6123. case EST_DependentNoexcept:
  6124. case EST_Unevaluated:
  6125. // We don't have enough information to properly determine if there is a
  6126. // conflict, so suppress the warning.
  6127. break;
  6128. case EST_Dynamic:
  6129. case EST_MSAny:
  6130. case EST_NoexceptFalse:
  6131. S.Diag(attr.getLoc(), diag::warn_nothrow_attribute_ignored);
  6132. break;
  6133. }
  6134. return true;
  6135. }
  6136. type = unwrapped.wrap(
  6137. S, S.Context
  6138. .getFunctionTypeWithExceptionSpec(
  6139. QualType{Proto, 0},
  6140. FunctionProtoType::ExceptionSpecInfo{EST_NoThrow})
  6141. ->getAs<FunctionType>());
  6142. return true;
  6143. }
  6144. // Delay if the type didn't work out to a function.
  6145. if (!unwrapped.isFunctionType()) return false;
  6146. // Otherwise, a calling convention.
  6147. CallingConv CC;
  6148. if (S.CheckCallingConvAttr(attr, CC))
  6149. return true;
  6150. const FunctionType *fn = unwrapped.get();
  6151. CallingConv CCOld = fn->getCallConv();
  6152. Attr *CCAttr = getCCTypeAttr(S.Context, attr);
  6153. if (CCOld != CC) {
  6154. // Error out on when there's already an attribute on the type
  6155. // and the CCs don't match.
  6156. if (S.getCallingConvAttributedType(type)) {
  6157. S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible)
  6158. << FunctionType::getNameForCallConv(CC)
  6159. << FunctionType::getNameForCallConv(CCOld);
  6160. attr.setInvalid();
  6161. return true;
  6162. }
  6163. }
  6164. // Diagnose use of variadic functions with calling conventions that
  6165. // don't support them (e.g. because they're callee-cleanup).
  6166. // We delay warning about this on unprototyped function declarations
  6167. // until after redeclaration checking, just in case we pick up a
  6168. // prototype that way. And apparently we also "delay" warning about
  6169. // unprototyped function types in general, despite not necessarily having
  6170. // much ability to diagnose it later.
  6171. if (!supportsVariadicCall(CC)) {
  6172. const FunctionProtoType *FnP = dyn_cast<FunctionProtoType>(fn);
  6173. if (FnP && FnP->isVariadic()) {
  6174. // stdcall and fastcall are ignored with a warning for GCC and MS
  6175. // compatibility.
  6176. if (CC == CC_X86StdCall || CC == CC_X86FastCall)
  6177. return S.Diag(attr.getLoc(), diag::warn_cconv_unsupported)
  6178. << FunctionType::getNameForCallConv(CC)
  6179. << (int)Sema::CallingConventionIgnoredReason::VariadicFunction;
  6180. attr.setInvalid();
  6181. return S.Diag(attr.getLoc(), diag::err_cconv_varargs)
  6182. << FunctionType::getNameForCallConv(CC);
  6183. }
  6184. }
  6185. // Also diagnose fastcall with regparm.
  6186. if (CC == CC_X86FastCall && fn->getHasRegParm()) {
  6187. S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible)
  6188. << "regparm" << FunctionType::getNameForCallConv(CC_X86FastCall);
  6189. attr.setInvalid();
  6190. return true;
  6191. }
  6192. // Modify the CC from the wrapped function type, wrap it all back, and then
  6193. // wrap the whole thing in an AttributedType as written. The modified type
  6194. // might have a different CC if we ignored the attribute.
  6195. QualType Equivalent;
  6196. if (CCOld == CC) {
  6197. Equivalent = type;
  6198. } else {
  6199. auto EI = unwrapped.get()->getExtInfo().withCallingConv(CC);
  6200. Equivalent =
  6201. unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI));
  6202. }
  6203. type = state.getAttributedType(CCAttr, type, Equivalent);
  6204. return true;
  6205. }
  6206. bool Sema::hasExplicitCallingConv(QualType T) {
  6207. const AttributedType *AT;
  6208. // Stop if we'd be stripping off a typedef sugar node to reach the
  6209. // AttributedType.
  6210. while ((AT = T->getAs<AttributedType>()) &&
  6211. AT->getAs<TypedefType>() == T->getAs<TypedefType>()) {
  6212. if (AT->isCallingConv())
  6213. return true;
  6214. T = AT->getModifiedType();
  6215. }
  6216. return false;
  6217. }
  6218. void Sema::adjustMemberFunctionCC(QualType &T, bool IsStatic, bool IsCtorOrDtor,
  6219. SourceLocation Loc) {
  6220. FunctionTypeUnwrapper Unwrapped(*this, T);
  6221. const FunctionType *FT = Unwrapped.get();
  6222. bool IsVariadic = (isa<FunctionProtoType>(FT) &&
  6223. cast<FunctionProtoType>(FT)->isVariadic());
  6224. CallingConv CurCC = FT->getCallConv();
  6225. CallingConv ToCC = Context.getDefaultCallingConvention(IsVariadic, !IsStatic);
  6226. if (CurCC == ToCC)
  6227. return;
  6228. // MS compiler ignores explicit calling convention attributes on structors. We
  6229. // should do the same.
  6230. if (Context.getTargetInfo().getCXXABI().isMicrosoft() && IsCtorOrDtor) {
  6231. // Issue a warning on ignored calling convention -- except of __stdcall.
  6232. // Again, this is what MS compiler does.
  6233. if (CurCC != CC_X86StdCall)
  6234. Diag(Loc, diag::warn_cconv_unsupported)
  6235. << FunctionType::getNameForCallConv(CurCC)
  6236. << (int)Sema::CallingConventionIgnoredReason::ConstructorDestructor;
  6237. // Default adjustment.
  6238. } else {
  6239. // Only adjust types with the default convention. For example, on Windows
  6240. // we should adjust a __cdecl type to __thiscall for instance methods, and a
  6241. // __thiscall type to __cdecl for static methods.
  6242. CallingConv DefaultCC =
  6243. Context.getDefaultCallingConvention(IsVariadic, IsStatic);
  6244. if (CurCC != DefaultCC || DefaultCC == ToCC)
  6245. return;
  6246. if (hasExplicitCallingConv(T))
  6247. return;
  6248. }
  6249. FT = Context.adjustFunctionType(FT, FT->getExtInfo().withCallingConv(ToCC));
  6250. QualType Wrapped = Unwrapped.wrap(*this, FT);
  6251. T = Context.getAdjustedType(T, Wrapped);
  6252. }
  6253. /// HandleVectorSizeAttribute - this attribute is only applicable to integral
  6254. /// and float scalars, although arrays, pointers, and function return values are
  6255. /// allowed in conjunction with this construct. Aggregates with this attribute
  6256. /// are invalid, even if they are of the same size as a corresponding scalar.
  6257. /// The raw attribute should contain precisely 1 argument, the vector size for
  6258. /// the variable, measured in bytes. If curType and rawAttr are well formed,
  6259. /// this routine will return a new vector type.
  6260. static void HandleVectorSizeAttr(QualType &CurType, const ParsedAttr &Attr,
  6261. Sema &S) {
  6262. // Check the attribute arguments.
  6263. if (Attr.getNumArgs() != 1) {
  6264. S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
  6265. << 1;
  6266. Attr.setInvalid();
  6267. return;
  6268. }
  6269. Expr *SizeExpr;
  6270. // Special case where the argument is a template id.
  6271. if (Attr.isArgIdent(0)) {
  6272. CXXScopeSpec SS;
  6273. SourceLocation TemplateKWLoc;
  6274. UnqualifiedId Id;
  6275. Id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
  6276. ExprResult Size = S.ActOnIdExpression(S.getCurScope(), SS, TemplateKWLoc,
  6277. Id, /*HasTrailingLParen=*/false,
  6278. /*IsAddressOfOperand=*/false);
  6279. if (Size.isInvalid())
  6280. return;
  6281. SizeExpr = Size.get();
  6282. } else {
  6283. SizeExpr = Attr.getArgAsExpr(0);
  6284. }
  6285. QualType T = S.BuildVectorType(CurType, SizeExpr, Attr.getLoc());
  6286. if (!T.isNull())
  6287. CurType = T;
  6288. else
  6289. Attr.setInvalid();
  6290. }
  6291. /// Process the OpenCL-like ext_vector_type attribute when it occurs on
  6292. /// a type.
  6293. static void HandleExtVectorTypeAttr(QualType &CurType, const ParsedAttr &Attr,
  6294. Sema &S) {
  6295. // check the attribute arguments.
  6296. if (Attr.getNumArgs() != 1) {
  6297. S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
  6298. << 1;
  6299. return;
  6300. }
  6301. Expr *sizeExpr;
  6302. // Special case where the argument is a template id.
  6303. if (Attr.isArgIdent(0)) {
  6304. CXXScopeSpec SS;
  6305. SourceLocation TemplateKWLoc;
  6306. UnqualifiedId id;
  6307. id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc());
  6308. ExprResult Size = S.ActOnIdExpression(S.getCurScope(), SS, TemplateKWLoc,
  6309. id, /*HasTrailingLParen=*/false,
  6310. /*IsAddressOfOperand=*/false);
  6311. if (Size.isInvalid())
  6312. return;
  6313. sizeExpr = Size.get();
  6314. } else {
  6315. sizeExpr = Attr.getArgAsExpr(0);
  6316. }
  6317. // Create the vector type.
  6318. QualType T = S.BuildExtVectorType(CurType, sizeExpr, Attr.getLoc());
  6319. if (!T.isNull())
  6320. CurType = T;
  6321. }
  6322. static bool isPermittedNeonBaseType(QualType &Ty,
  6323. VectorType::VectorKind VecKind, Sema &S) {
  6324. const BuiltinType *BTy = Ty->getAs<BuiltinType>();
  6325. if (!BTy)
  6326. return false;
  6327. llvm::Triple Triple = S.Context.getTargetInfo().getTriple();
  6328. // Signed poly is mathematically wrong, but has been baked into some ABIs by
  6329. // now.
  6330. bool IsPolyUnsigned = Triple.getArch() == llvm::Triple::aarch64 ||
  6331. Triple.getArch() == llvm::Triple::aarch64_be;
  6332. if (VecKind == VectorType::NeonPolyVector) {
  6333. if (IsPolyUnsigned) {
  6334. // AArch64 polynomial vectors are unsigned and support poly64.
  6335. return BTy->getKind() == BuiltinType::UChar ||
  6336. BTy->getKind() == BuiltinType::UShort ||
  6337. BTy->getKind() == BuiltinType::ULong ||
  6338. BTy->getKind() == BuiltinType::ULongLong;
  6339. } else {
  6340. // AArch32 polynomial vector are signed.
  6341. return BTy->getKind() == BuiltinType::SChar ||
  6342. BTy->getKind() == BuiltinType::Short;
  6343. }
  6344. }
  6345. // Non-polynomial vector types: the usual suspects are allowed, as well as
  6346. // float64_t on AArch64.
  6347. bool Is64Bit = Triple.getArch() == llvm::Triple::aarch64 ||
  6348. Triple.getArch() == llvm::Triple::aarch64_be;
  6349. if (Is64Bit && BTy->getKind() == BuiltinType::Double)
  6350. return true;
  6351. return BTy->getKind() == BuiltinType::SChar ||
  6352. BTy->getKind() == BuiltinType::UChar ||
  6353. BTy->getKind() == BuiltinType::Short ||
  6354. BTy->getKind() == BuiltinType::UShort ||
  6355. BTy->getKind() == BuiltinType::Int ||
  6356. BTy->getKind() == BuiltinType::UInt ||
  6357. BTy->getKind() == BuiltinType::Long ||
  6358. BTy->getKind() == BuiltinType::ULong ||
  6359. BTy->getKind() == BuiltinType::LongLong ||
  6360. BTy->getKind() == BuiltinType::ULongLong ||
  6361. BTy->getKind() == BuiltinType::Float ||
  6362. BTy->getKind() == BuiltinType::Half;
  6363. }
  6364. /// HandleNeonVectorTypeAttr - The "neon_vector_type" and
  6365. /// "neon_polyvector_type" attributes are used to create vector types that
  6366. /// are mangled according to ARM's ABI. Otherwise, these types are identical
  6367. /// to those created with the "vector_size" attribute. Unlike "vector_size"
  6368. /// the argument to these Neon attributes is the number of vector elements,
  6369. /// not the vector size in bytes. The vector width and element type must
  6370. /// match one of the standard Neon vector types.
  6371. static void HandleNeonVectorTypeAttr(QualType &CurType, const ParsedAttr &Attr,
  6372. Sema &S, VectorType::VectorKind VecKind) {
  6373. // Target must have NEON
  6374. if (!S.Context.getTargetInfo().hasFeature("neon")) {
  6375. S.Diag(Attr.getLoc(), diag::err_attribute_unsupported) << Attr;
  6376. Attr.setInvalid();
  6377. return;
  6378. }
  6379. // Check the attribute arguments.
  6380. if (Attr.getNumArgs() != 1) {
  6381. S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) << Attr
  6382. << 1;
  6383. Attr.setInvalid();
  6384. return;
  6385. }
  6386. // The number of elements must be an ICE.
  6387. Expr *numEltsExpr = static_cast<Expr *>(Attr.getArgAsExpr(0));
  6388. llvm::APSInt numEltsInt(32);
  6389. if (numEltsExpr->isTypeDependent() || numEltsExpr->isValueDependent() ||
  6390. !numEltsExpr->isIntegerConstantExpr(numEltsInt, S.Context)) {
  6391. S.Diag(Attr.getLoc(), diag::err_attribute_argument_type)
  6392. << Attr << AANT_ArgumentIntegerConstant
  6393. << numEltsExpr->getSourceRange();
  6394. Attr.setInvalid();
  6395. return;
  6396. }
  6397. // Only certain element types are supported for Neon vectors.
  6398. if (!isPermittedNeonBaseType(CurType, VecKind, S)) {
  6399. S.Diag(Attr.getLoc(), diag::err_attribute_invalid_vector_type) << CurType;
  6400. Attr.setInvalid();
  6401. return;
  6402. }
  6403. // The total size of the vector must be 64 or 128 bits.
  6404. unsigned typeSize = static_cast<unsigned>(S.Context.getTypeSize(CurType));
  6405. unsigned numElts = static_cast<unsigned>(numEltsInt.getZExtValue());
  6406. unsigned vecSize = typeSize * numElts;
  6407. if (vecSize != 64 && vecSize != 128) {
  6408. S.Diag(Attr.getLoc(), diag::err_attribute_bad_neon_vector_size) << CurType;
  6409. Attr.setInvalid();
  6410. return;
  6411. }
  6412. CurType = S.Context.getVectorType(CurType, numElts, VecKind);
  6413. }
  6414. /// Handle OpenCL Access Qualifier Attribute.
  6415. static void HandleOpenCLAccessAttr(QualType &CurType, const ParsedAttr &Attr,
  6416. Sema &S) {
  6417. // OpenCL v2.0 s6.6 - Access qualifier can be used only for image and pipe type.
  6418. if (!(CurType->isImageType() || CurType->isPipeType())) {
  6419. S.Diag(Attr.getLoc(), diag::err_opencl_invalid_access_qualifier);
  6420. Attr.setInvalid();
  6421. return;
  6422. }
  6423. if (const TypedefType* TypedefTy = CurType->getAs<TypedefType>()) {
  6424. QualType BaseTy = TypedefTy->desugar();
  6425. std::string PrevAccessQual;
  6426. if (BaseTy->isPipeType()) {
  6427. if (TypedefTy->getDecl()->hasAttr<OpenCLAccessAttr>()) {
  6428. OpenCLAccessAttr *Attr =
  6429. TypedefTy->getDecl()->getAttr<OpenCLAccessAttr>();
  6430. PrevAccessQual = Attr->getSpelling();
  6431. } else {
  6432. PrevAccessQual = "read_only";
  6433. }
  6434. } else if (const BuiltinType* ImgType = BaseTy->getAs<BuiltinType>()) {
  6435. switch (ImgType->getKind()) {
  6436. #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
  6437. case BuiltinType::Id: \
  6438. PrevAccessQual = #Access; \
  6439. break;
  6440. #include "clang/Basic/OpenCLImageTypes.def"
  6441. default:
  6442. llvm_unreachable("Unable to find corresponding image type.");
  6443. }
  6444. } else {
  6445. llvm_unreachable("unexpected type");
  6446. }
  6447. StringRef AttrName = Attr.getAttrName()->getName();
  6448. if (PrevAccessQual == AttrName.ltrim("_")) {
  6449. // Duplicated qualifiers
  6450. S.Diag(Attr.getLoc(), diag::warn_duplicate_declspec)
  6451. << AttrName << Attr.getRange();
  6452. } else {
  6453. // Contradicting qualifiers
  6454. S.Diag(Attr.getLoc(), diag::err_opencl_multiple_access_qualifiers);
  6455. }
  6456. S.Diag(TypedefTy->getDecl()->getBeginLoc(),
  6457. diag::note_opencl_typedef_access_qualifier) << PrevAccessQual;
  6458. } else if (CurType->isPipeType()) {
  6459. if (Attr.getSemanticSpelling() == OpenCLAccessAttr::Keyword_write_only) {
  6460. QualType ElemType = CurType->getAs<PipeType>()->getElementType();
  6461. CurType = S.Context.getWritePipeType(ElemType);
  6462. }
  6463. }
  6464. }
  6465. static void deduceOpenCLImplicitAddrSpace(TypeProcessingState &State,
  6466. QualType &T, TypeAttrLocation TAL) {
  6467. Declarator &D = State.getDeclarator();
  6468. // Handle the cases where address space should not be deduced.
  6469. //
  6470. // The pointee type of a pointer type is always deduced since a pointer always
  6471. // points to some memory location which should has an address space.
  6472. //
  6473. // There are situations that at the point of certain declarations, the address
  6474. // space may be unknown and better to be left as default. For example, when
  6475. // defining a typedef or struct type, they are not associated with any
  6476. // specific address space. Later on, they may be used with any address space
  6477. // to declare a variable.
  6478. //
  6479. // The return value of a function is r-value, therefore should not have
  6480. // address space.
  6481. //
  6482. // The void type does not occupy memory, therefore should not have address
  6483. // space, except when it is used as a pointee type.
  6484. //
  6485. // Since LLVM assumes function type is in default address space, it should not
  6486. // have address space.
  6487. auto ChunkIndex = State.getCurrentChunkIndex();
  6488. bool IsPointee =
  6489. ChunkIndex > 0 &&
  6490. (D.getTypeObject(ChunkIndex - 1).Kind == DeclaratorChunk::Pointer ||
  6491. D.getTypeObject(ChunkIndex - 1).Kind == DeclaratorChunk::Reference ||
  6492. D.getTypeObject(ChunkIndex - 1).Kind == DeclaratorChunk::BlockPointer);
  6493. // For pointers/references to arrays the next chunk is always an array
  6494. // followed by any number of parentheses.
  6495. if (!IsPointee && ChunkIndex > 1) {
  6496. auto AdjustedCI = ChunkIndex - 1;
  6497. if (D.getTypeObject(AdjustedCI).Kind == DeclaratorChunk::Array)
  6498. AdjustedCI--;
  6499. // Skip over all parentheses.
  6500. while (AdjustedCI > 0 &&
  6501. D.getTypeObject(AdjustedCI).Kind == DeclaratorChunk::Paren)
  6502. AdjustedCI--;
  6503. if (D.getTypeObject(AdjustedCI).Kind == DeclaratorChunk::Pointer ||
  6504. D.getTypeObject(AdjustedCI).Kind == DeclaratorChunk::Reference)
  6505. IsPointee = true;
  6506. }
  6507. bool IsFuncReturnType =
  6508. ChunkIndex > 0 &&
  6509. D.getTypeObject(ChunkIndex - 1).Kind == DeclaratorChunk::Function;
  6510. bool IsFuncType =
  6511. ChunkIndex < D.getNumTypeObjects() &&
  6512. D.getTypeObject(ChunkIndex).Kind == DeclaratorChunk::Function;
  6513. if ( // Do not deduce addr space for function return type and function type,
  6514. // otherwise it will fail some sema check.
  6515. IsFuncReturnType || IsFuncType ||
  6516. // Do not deduce addr space for member types of struct, except the pointee
  6517. // type of a pointer member type or static data members.
  6518. (D.getContext() == DeclaratorContext::MemberContext &&
  6519. (!IsPointee &&
  6520. D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_static)) ||
  6521. // Do not deduce addr space of non-pointee in type alias because it
  6522. // doesn't define any object.
  6523. (D.getContext() == DeclaratorContext::AliasDeclContext && !IsPointee) ||
  6524. // Do not deduce addr space for types used to define a typedef and the
  6525. // typedef itself, except the pointee type of a pointer type which is used
  6526. // to define the typedef.
  6527. (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef &&
  6528. !IsPointee) ||
  6529. // Do not deduce addr space of the void type, e.g. in f(void), otherwise
  6530. // it will fail some sema check.
  6531. (T->isVoidType() && !IsPointee) ||
  6532. // Do not deduce addr spaces for dependent types because they might end
  6533. // up instantiating to a type with an explicit address space qualifier.
  6534. // Except for pointer or reference types because the addr space in
  6535. // template argument can only belong to a pointee.
  6536. (T->isDependentType() && !T->isPointerType() && !T->isReferenceType()) ||
  6537. // Do not deduce addr space of decltype because it will be taken from
  6538. // its argument.
  6539. T->isDecltypeType() ||
  6540. // OpenCL spec v2.0 s6.9.b:
  6541. // The sampler type cannot be used with the __local and __global address
  6542. // space qualifiers.
  6543. // OpenCL spec v2.0 s6.13.14:
  6544. // Samplers can also be declared as global constants in the program
  6545. // source using the following syntax.
  6546. // const sampler_t <sampler name> = <value>
  6547. // In codegen, file-scope sampler type variable has special handing and
  6548. // does not rely on address space qualifier. On the other hand, deducing
  6549. // address space of const sampler file-scope variable as global address
  6550. // space causes spurious diagnostic about __global address space
  6551. // qualifier, therefore do not deduce address space of file-scope sampler
  6552. // type variable.
  6553. (D.getContext() == DeclaratorContext::FileContext && T->isSamplerT()))
  6554. return;
  6555. LangAS ImpAddr = LangAS::Default;
  6556. // Put OpenCL automatic variable in private address space.
  6557. // OpenCL v1.2 s6.5:
  6558. // The default address space name for arguments to a function in a
  6559. // program, or local variables of a function is __private. All function
  6560. // arguments shall be in the __private address space.
  6561. if (State.getSema().getLangOpts().OpenCLVersion <= 120 &&
  6562. !State.getSema().getLangOpts().OpenCLCPlusPlus) {
  6563. ImpAddr = LangAS::opencl_private;
  6564. } else {
  6565. // If address space is not set, OpenCL 2.0 defines non private default
  6566. // address spaces for some cases:
  6567. // OpenCL 2.0, section 6.5:
  6568. // The address space for a variable at program scope or a static variable
  6569. // inside a function can either be __global or __constant, but defaults to
  6570. // __global if not specified.
  6571. // (...)
  6572. // Pointers that are declared without pointing to a named address space
  6573. // point to the generic address space.
  6574. if (IsPointee) {
  6575. ImpAddr = LangAS::opencl_generic;
  6576. } else {
  6577. if (D.getContext() == DeclaratorContext::TemplateArgContext) {
  6578. // Do not deduce address space for non-pointee type in template arg.
  6579. } else if (D.getContext() == DeclaratorContext::FileContext) {
  6580. ImpAddr = LangAS::opencl_global;
  6581. } else {
  6582. if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_static ||
  6583. D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_extern) {
  6584. ImpAddr = LangAS::opencl_global;
  6585. } else {
  6586. ImpAddr = LangAS::opencl_private;
  6587. }
  6588. }
  6589. }
  6590. }
  6591. T = State.getSema().Context.getAddrSpaceQualType(T, ImpAddr);
  6592. }
  6593. static void HandleLifetimeBoundAttr(TypeProcessingState &State,
  6594. QualType &CurType,
  6595. ParsedAttr &Attr) {
  6596. if (State.getDeclarator().isDeclarationOfFunction()) {
  6597. CurType = State.getAttributedType(
  6598. createSimpleAttr<LifetimeBoundAttr>(State.getSema().Context, Attr),
  6599. CurType, CurType);
  6600. } else {
  6601. Attr.diagnoseAppertainsTo(State.getSema(), nullptr);
  6602. }
  6603. }
  6604. static void processTypeAttrs(TypeProcessingState &state, QualType &type,
  6605. TypeAttrLocation TAL,
  6606. ParsedAttributesView &attrs) {
  6607. // Scan through and apply attributes to this type where it makes sense. Some
  6608. // attributes (such as __address_space__, __vector_size__, etc) apply to the
  6609. // type, but others can be present in the type specifiers even though they
  6610. // apply to the decl. Here we apply type attributes and ignore the rest.
  6611. // This loop modifies the list pretty frequently, but we still need to make
  6612. // sure we visit every element once. Copy the attributes list, and iterate
  6613. // over that.
  6614. ParsedAttributesView AttrsCopy{attrs};
  6615. state.setParsedNoDeref(false);
  6616. for (ParsedAttr &attr : AttrsCopy) {
  6617. // Skip attributes that were marked to be invalid.
  6618. if (attr.isInvalid())
  6619. continue;
  6620. if (attr.isCXX11Attribute()) {
  6621. // [[gnu::...]] attributes are treated as declaration attributes, so may
  6622. // not appertain to a DeclaratorChunk. If we handle them as type
  6623. // attributes, accept them in that position and diagnose the GCC
  6624. // incompatibility.
  6625. if (attr.isGNUScope()) {
  6626. bool IsTypeAttr = attr.isTypeAttr();
  6627. if (TAL == TAL_DeclChunk) {
  6628. state.getSema().Diag(attr.getLoc(),
  6629. IsTypeAttr
  6630. ? diag::warn_gcc_ignores_type_attr
  6631. : diag::warn_cxx11_gnu_attribute_on_type)
  6632. << attr;
  6633. if (!IsTypeAttr)
  6634. continue;
  6635. }
  6636. } else if (TAL != TAL_DeclChunk &&
  6637. attr.getKind() != ParsedAttr::AT_AddressSpace) {
  6638. // Otherwise, only consider type processing for a C++11 attribute if
  6639. // it's actually been applied to a type.
  6640. // We also allow C++11 address_space attributes to pass through.
  6641. continue;
  6642. }
  6643. }
  6644. // If this is an attribute we can handle, do so now,
  6645. // otherwise, add it to the FnAttrs list for rechaining.
  6646. switch (attr.getKind()) {
  6647. default:
  6648. // A C++11 attribute on a declarator chunk must appertain to a type.
  6649. if (attr.isCXX11Attribute() && TAL == TAL_DeclChunk) {
  6650. state.getSema().Diag(attr.getLoc(), diag::err_attribute_not_type_attr)
  6651. << attr;
  6652. attr.setUsedAsTypeAttr();
  6653. }
  6654. break;
  6655. case ParsedAttr::UnknownAttribute:
  6656. if (attr.isCXX11Attribute() && TAL == TAL_DeclChunk)
  6657. state.getSema().Diag(attr.getLoc(),
  6658. diag::warn_unknown_attribute_ignored)
  6659. << attr;
  6660. break;
  6661. case ParsedAttr::IgnoredAttribute:
  6662. break;
  6663. case ParsedAttr::AT_MayAlias:
  6664. // FIXME: This attribute needs to actually be handled, but if we ignore
  6665. // it it breaks large amounts of Linux software.
  6666. attr.setUsedAsTypeAttr();
  6667. break;
  6668. case ParsedAttr::AT_OpenCLPrivateAddressSpace:
  6669. case ParsedAttr::AT_OpenCLGlobalAddressSpace:
  6670. case ParsedAttr::AT_OpenCLLocalAddressSpace:
  6671. case ParsedAttr::AT_OpenCLConstantAddressSpace:
  6672. case ParsedAttr::AT_OpenCLGenericAddressSpace:
  6673. case ParsedAttr::AT_AddressSpace:
  6674. HandleAddressSpaceTypeAttribute(type, attr, state);
  6675. attr.setUsedAsTypeAttr();
  6676. break;
  6677. OBJC_POINTER_TYPE_ATTRS_CASELIST:
  6678. if (!handleObjCPointerTypeAttr(state, attr, type))
  6679. distributeObjCPointerTypeAttr(state, attr, type);
  6680. attr.setUsedAsTypeAttr();
  6681. break;
  6682. case ParsedAttr::AT_VectorSize:
  6683. HandleVectorSizeAttr(type, attr, state.getSema());
  6684. attr.setUsedAsTypeAttr();
  6685. break;
  6686. case ParsedAttr::AT_ExtVectorType:
  6687. HandleExtVectorTypeAttr(type, attr, state.getSema());
  6688. attr.setUsedAsTypeAttr();
  6689. break;
  6690. case ParsedAttr::AT_NeonVectorType:
  6691. HandleNeonVectorTypeAttr(type, attr, state.getSema(),
  6692. VectorType::NeonVector);
  6693. attr.setUsedAsTypeAttr();
  6694. break;
  6695. case ParsedAttr::AT_NeonPolyVectorType:
  6696. HandleNeonVectorTypeAttr(type, attr, state.getSema(),
  6697. VectorType::NeonPolyVector);
  6698. attr.setUsedAsTypeAttr();
  6699. break;
  6700. case ParsedAttr::AT_OpenCLAccess:
  6701. HandleOpenCLAccessAttr(type, attr, state.getSema());
  6702. attr.setUsedAsTypeAttr();
  6703. break;
  6704. case ParsedAttr::AT_LifetimeBound:
  6705. if (TAL == TAL_DeclChunk)
  6706. HandleLifetimeBoundAttr(state, type, attr);
  6707. break;
  6708. case ParsedAttr::AT_NoDeref: {
  6709. ASTContext &Ctx = state.getSema().Context;
  6710. type = state.getAttributedType(createSimpleAttr<NoDerefAttr>(Ctx, attr),
  6711. type, type);
  6712. attr.setUsedAsTypeAttr();
  6713. state.setParsedNoDeref(true);
  6714. break;
  6715. }
  6716. MS_TYPE_ATTRS_CASELIST:
  6717. if (!handleMSPointerTypeQualifierAttr(state, attr, type))
  6718. attr.setUsedAsTypeAttr();
  6719. break;
  6720. NULLABILITY_TYPE_ATTRS_CASELIST:
  6721. // Either add nullability here or try to distribute it. We
  6722. // don't want to distribute the nullability specifier past any
  6723. // dependent type, because that complicates the user model.
  6724. if (type->canHaveNullability() || type->isDependentType() ||
  6725. type->isArrayType() ||
  6726. !distributeNullabilityTypeAttr(state, type, attr)) {
  6727. unsigned endIndex;
  6728. if (TAL == TAL_DeclChunk)
  6729. endIndex = state.getCurrentChunkIndex();
  6730. else
  6731. endIndex = state.getDeclarator().getNumTypeObjects();
  6732. bool allowOnArrayType =
  6733. state.getDeclarator().isPrototypeContext() &&
  6734. !hasOuterPointerLikeChunk(state.getDeclarator(), endIndex);
  6735. if (checkNullabilityTypeSpecifier(
  6736. state,
  6737. type,
  6738. attr,
  6739. allowOnArrayType)) {
  6740. attr.setInvalid();
  6741. }
  6742. attr.setUsedAsTypeAttr();
  6743. }
  6744. break;
  6745. case ParsedAttr::AT_ObjCKindOf:
  6746. // '__kindof' must be part of the decl-specifiers.
  6747. switch (TAL) {
  6748. case TAL_DeclSpec:
  6749. break;
  6750. case TAL_DeclChunk:
  6751. case TAL_DeclName:
  6752. state.getSema().Diag(attr.getLoc(),
  6753. diag::err_objc_kindof_wrong_position)
  6754. << FixItHint::CreateRemoval(attr.getLoc())
  6755. << FixItHint::CreateInsertion(
  6756. state.getDeclarator().getDeclSpec().getBeginLoc(),
  6757. "__kindof ");
  6758. break;
  6759. }
  6760. // Apply it regardless.
  6761. if (checkObjCKindOfType(state, type, attr))
  6762. attr.setInvalid();
  6763. break;
  6764. case ParsedAttr::AT_NoThrow:
  6765. // Exception Specifications aren't generally supported in C mode throughout
  6766. // clang, so revert to attribute-based handling for C.
  6767. if (!state.getSema().getLangOpts().CPlusPlus)
  6768. break;
  6769. LLVM_FALLTHROUGH;
  6770. FUNCTION_TYPE_ATTRS_CASELIST:
  6771. attr.setUsedAsTypeAttr();
  6772. // Never process function type attributes as part of the
  6773. // declaration-specifiers.
  6774. if (TAL == TAL_DeclSpec)
  6775. distributeFunctionTypeAttrFromDeclSpec(state, attr, type);
  6776. // Otherwise, handle the possible delays.
  6777. else if (!handleFunctionTypeAttr(state, attr, type))
  6778. distributeFunctionTypeAttr(state, attr, type);
  6779. break;
  6780. }
  6781. // Handle attributes that are defined in a macro. We do not want this to be
  6782. // applied to ObjC builtin attributes.
  6783. if (isa<AttributedType>(type) && attr.hasMacroIdentifier() &&
  6784. !type.getQualifiers().hasObjCLifetime() &&
  6785. !type.getQualifiers().hasObjCGCAttr() &&
  6786. attr.getKind() != ParsedAttr::AT_ObjCGC &&
  6787. attr.getKind() != ParsedAttr::AT_ObjCOwnership) {
  6788. const IdentifierInfo *MacroII = attr.getMacroIdentifier();
  6789. type = state.getSema().Context.getMacroQualifiedType(type, MacroII);
  6790. state.setExpansionLocForMacroQualifiedType(
  6791. cast<MacroQualifiedType>(type.getTypePtr()),
  6792. attr.getMacroExpansionLoc());
  6793. }
  6794. }
  6795. if (!state.getSema().getLangOpts().OpenCL ||
  6796. type.getAddressSpace() != LangAS::Default)
  6797. return;
  6798. deduceOpenCLImplicitAddrSpace(state, type, TAL);
  6799. }
  6800. void Sema::completeExprArrayBound(Expr *E) {
  6801. if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E->IgnoreParens())) {
  6802. if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) {
  6803. if (isTemplateInstantiation(Var->getTemplateSpecializationKind())) {
  6804. auto *Def = Var->getDefinition();
  6805. if (!Def) {
  6806. SourceLocation PointOfInstantiation = E->getExprLoc();
  6807. runWithSufficientStackSpace(PointOfInstantiation, [&] {
  6808. InstantiateVariableDefinition(PointOfInstantiation, Var);
  6809. });
  6810. Def = Var->getDefinition();
  6811. // If we don't already have a point of instantiation, and we managed
  6812. // to instantiate a definition, this is the point of instantiation.
  6813. // Otherwise, we don't request an end-of-TU instantiation, so this is
  6814. // not a point of instantiation.
  6815. // FIXME: Is this really the right behavior?
  6816. if (Var->getPointOfInstantiation().isInvalid() && Def) {
  6817. assert(Var->getTemplateSpecializationKind() ==
  6818. TSK_ImplicitInstantiation &&
  6819. "explicit instantiation with no point of instantiation");
  6820. Var->setTemplateSpecializationKind(
  6821. Var->getTemplateSpecializationKind(), PointOfInstantiation);
  6822. }
  6823. }
  6824. // Update the type to the definition's type both here and within the
  6825. // expression.
  6826. if (Def) {
  6827. DRE->setDecl(Def);
  6828. QualType T = Def->getType();
  6829. DRE->setType(T);
  6830. // FIXME: Update the type on all intervening expressions.
  6831. E->setType(T);
  6832. }
  6833. // We still go on to try to complete the type independently, as it
  6834. // may also require instantiations or diagnostics if it remains
  6835. // incomplete.
  6836. }
  6837. }
  6838. }
  6839. }
  6840. /// Ensure that the type of the given expression is complete.
  6841. ///
  6842. /// This routine checks whether the expression \p E has a complete type. If the
  6843. /// expression refers to an instantiable construct, that instantiation is
  6844. /// performed as needed to complete its type. Furthermore
  6845. /// Sema::RequireCompleteType is called for the expression's type (or in the
  6846. /// case of a reference type, the referred-to type).
  6847. ///
  6848. /// \param E The expression whose type is required to be complete.
  6849. /// \param Diagnoser The object that will emit a diagnostic if the type is
  6850. /// incomplete.
  6851. ///
  6852. /// \returns \c true if the type of \p E is incomplete and diagnosed, \c false
  6853. /// otherwise.
  6854. bool Sema::RequireCompleteExprType(Expr *E, TypeDiagnoser &Diagnoser) {
  6855. QualType T = E->getType();
  6856. // Incomplete array types may be completed by the initializer attached to
  6857. // their definitions. For static data members of class templates and for
  6858. // variable templates, we need to instantiate the definition to get this
  6859. // initializer and complete the type.
  6860. if (T->isIncompleteArrayType()) {
  6861. completeExprArrayBound(E);
  6862. T = E->getType();
  6863. }
  6864. // FIXME: Are there other cases which require instantiating something other
  6865. // than the type to complete the type of an expression?
  6866. return RequireCompleteType(E->getExprLoc(), T, Diagnoser);
  6867. }
  6868. bool Sema::RequireCompleteExprType(Expr *E, unsigned DiagID) {
  6869. BoundTypeDiagnoser<> Diagnoser(DiagID);
  6870. return RequireCompleteExprType(E, Diagnoser);
  6871. }
  6872. /// Ensure that the type T is a complete type.
  6873. ///
  6874. /// This routine checks whether the type @p T is complete in any
  6875. /// context where a complete type is required. If @p T is a complete
  6876. /// type, returns false. If @p T is a class template specialization,
  6877. /// this routine then attempts to perform class template
  6878. /// instantiation. If instantiation fails, or if @p T is incomplete
  6879. /// and cannot be completed, issues the diagnostic @p diag (giving it
  6880. /// the type @p T) and returns true.
  6881. ///
  6882. /// @param Loc The location in the source that the incomplete type
  6883. /// diagnostic should refer to.
  6884. ///
  6885. /// @param T The type that this routine is examining for completeness.
  6886. ///
  6887. /// @returns @c true if @p T is incomplete and a diagnostic was emitted,
  6888. /// @c false otherwise.
  6889. bool Sema::RequireCompleteType(SourceLocation Loc, QualType T,
  6890. TypeDiagnoser &Diagnoser) {
  6891. if (RequireCompleteTypeImpl(Loc, T, &Diagnoser))
  6892. return true;
  6893. if (const TagType *Tag = T->getAs<TagType>()) {
  6894. if (!Tag->getDecl()->isCompleteDefinitionRequired()) {
  6895. Tag->getDecl()->setCompleteDefinitionRequired();
  6896. Consumer.HandleTagDeclRequiredDefinition(Tag->getDecl());
  6897. }
  6898. }
  6899. return false;
  6900. }
  6901. bool Sema::hasStructuralCompatLayout(Decl *D, Decl *Suggested) {
  6902. llvm::DenseSet<std::pair<Decl *, Decl *>> NonEquivalentDecls;
  6903. if (!Suggested)
  6904. return false;
  6905. // FIXME: Add a specific mode for C11 6.2.7/1 in StructuralEquivalenceContext
  6906. // and isolate from other C++ specific checks.
  6907. StructuralEquivalenceContext Ctx(
  6908. D->getASTContext(), Suggested->getASTContext(), NonEquivalentDecls,
  6909. StructuralEquivalenceKind::Default,
  6910. false /*StrictTypeSpelling*/, true /*Complain*/,
  6911. true /*ErrorOnTagTypeMismatch*/);
  6912. return Ctx.IsEquivalent(D, Suggested);
  6913. }
  6914. /// Determine whether there is any declaration of \p D that was ever a
  6915. /// definition (perhaps before module merging) and is currently visible.
  6916. /// \param D The definition of the entity.
  6917. /// \param Suggested Filled in with the declaration that should be made visible
  6918. /// in order to provide a definition of this entity.
  6919. /// \param OnlyNeedComplete If \c true, we only need the type to be complete,
  6920. /// not defined. This only matters for enums with a fixed underlying
  6921. /// type, since in all other cases, a type is complete if and only if it
  6922. /// is defined.
  6923. bool Sema::hasVisibleDefinition(NamedDecl *D, NamedDecl **Suggested,
  6924. bool OnlyNeedComplete) {
  6925. // Easy case: if we don't have modules, all declarations are visible.
  6926. if (!getLangOpts().Modules && !getLangOpts().ModulesLocalVisibility)
  6927. return true;
  6928. // If this definition was instantiated from a template, map back to the
  6929. // pattern from which it was instantiated.
  6930. if (isa<TagDecl>(D) && cast<TagDecl>(D)->isBeingDefined()) {
  6931. // We're in the middle of defining it; this definition should be treated
  6932. // as visible.
  6933. return true;
  6934. } else if (auto *RD = dyn_cast<CXXRecordDecl>(D)) {
  6935. if (auto *Pattern = RD->getTemplateInstantiationPattern())
  6936. RD = Pattern;
  6937. D = RD->getDefinition();
  6938. } else if (auto *ED = dyn_cast<EnumDecl>(D)) {
  6939. if (auto *Pattern = ED->getTemplateInstantiationPattern())
  6940. ED = Pattern;
  6941. if (OnlyNeedComplete && ED->isFixed()) {
  6942. // If the enum has a fixed underlying type, and we're only looking for a
  6943. // complete type (not a definition), any visible declaration of it will
  6944. // do.
  6945. *Suggested = nullptr;
  6946. for (auto *Redecl : ED->redecls()) {
  6947. if (isVisible(Redecl))
  6948. return true;
  6949. if (Redecl->isThisDeclarationADefinition() ||
  6950. (Redecl->isCanonicalDecl() && !*Suggested))
  6951. *Suggested = Redecl;
  6952. }
  6953. return false;
  6954. }
  6955. D = ED->getDefinition();
  6956. } else if (auto *FD = dyn_cast<FunctionDecl>(D)) {
  6957. if (auto *Pattern = FD->getTemplateInstantiationPattern())
  6958. FD = Pattern;
  6959. D = FD->getDefinition();
  6960. } else if (auto *VD = dyn_cast<VarDecl>(D)) {
  6961. if (auto *Pattern = VD->getTemplateInstantiationPattern())
  6962. VD = Pattern;
  6963. D = VD->getDefinition();
  6964. }
  6965. assert(D && "missing definition for pattern of instantiated definition");
  6966. *Suggested = D;
  6967. auto DefinitionIsVisible = [&] {
  6968. // The (primary) definition might be in a visible module.
  6969. if (isVisible(D))
  6970. return true;
  6971. // A visible module might have a merged definition instead.
  6972. if (D->isModulePrivate() ? hasMergedDefinitionInCurrentModule(D)
  6973. : hasVisibleMergedDefinition(D)) {
  6974. if (CodeSynthesisContexts.empty() &&
  6975. !getLangOpts().ModulesLocalVisibility) {
  6976. // Cache the fact that this definition is implicitly visible because
  6977. // there is a visible merged definition.
  6978. D->setVisibleDespiteOwningModule();
  6979. }
  6980. return true;
  6981. }
  6982. return false;
  6983. };
  6984. if (DefinitionIsVisible())
  6985. return true;
  6986. // The external source may have additional definitions of this entity that are
  6987. // visible, so complete the redeclaration chain now and ask again.
  6988. if (auto *Source = Context.getExternalSource()) {
  6989. Source->CompleteRedeclChain(D);
  6990. return DefinitionIsVisible();
  6991. }
  6992. return false;
  6993. }
  6994. /// Locks in the inheritance model for the given class and all of its bases.
  6995. static void assignInheritanceModel(Sema &S, CXXRecordDecl *RD) {
  6996. RD = RD->getMostRecentNonInjectedDecl();
  6997. if (!RD->hasAttr<MSInheritanceAttr>()) {
  6998. MSInheritanceAttr::Spelling IM;
  6999. switch (S.MSPointerToMemberRepresentationMethod) {
  7000. case LangOptions::PPTMK_BestCase:
  7001. IM = RD->calculateInheritanceModel();
  7002. break;
  7003. case LangOptions::PPTMK_FullGeneralitySingleInheritance:
  7004. IM = MSInheritanceAttr::Keyword_single_inheritance;
  7005. break;
  7006. case LangOptions::PPTMK_FullGeneralityMultipleInheritance:
  7007. IM = MSInheritanceAttr::Keyword_multiple_inheritance;
  7008. break;
  7009. case LangOptions::PPTMK_FullGeneralityVirtualInheritance:
  7010. IM = MSInheritanceAttr::Keyword_unspecified_inheritance;
  7011. break;
  7012. }
  7013. SourceRange Loc =
  7014. S.ImplicitMSInheritanceAttrLoc.isValid()
  7015. ? S.ImplicitMSInheritanceAttrLoc
  7016. : RD->getSourceRange();
  7017. RD->addAttr(MSInheritanceAttr::CreateImplicit(
  7018. S.getASTContext(),
  7019. /*BestCase=*/S.MSPointerToMemberRepresentationMethod ==
  7020. LangOptions::PPTMK_BestCase,
  7021. Loc, AttributeCommonInfo::AS_Microsoft, IM));
  7022. S.Consumer.AssignInheritanceModel(RD);
  7023. }
  7024. }
  7025. /// The implementation of RequireCompleteType
  7026. bool Sema::RequireCompleteTypeImpl(SourceLocation Loc, QualType T,
  7027. TypeDiagnoser *Diagnoser) {
  7028. // FIXME: Add this assertion to make sure we always get instantiation points.
  7029. // assert(!Loc.isInvalid() && "Invalid location in RequireCompleteType");
  7030. // FIXME: Add this assertion to help us flush out problems with
  7031. // checking for dependent types and type-dependent expressions.
  7032. //
  7033. // assert(!T->isDependentType() &&
  7034. // "Can't ask whether a dependent type is complete");
  7035. if (const MemberPointerType *MPTy = T->getAs<MemberPointerType>()) {
  7036. if (!MPTy->getClass()->isDependentType()) {
  7037. if (getLangOpts().CompleteMemberPointers &&
  7038. !MPTy->getClass()->getAsCXXRecordDecl()->isBeingDefined() &&
  7039. RequireCompleteType(Loc, QualType(MPTy->getClass(), 0),
  7040. diag::err_memptr_incomplete))
  7041. return true;
  7042. // We lock in the inheritance model once somebody has asked us to ensure
  7043. // that a pointer-to-member type is complete.
  7044. if (Context.getTargetInfo().getCXXABI().isMicrosoft()) {
  7045. (void)isCompleteType(Loc, QualType(MPTy->getClass(), 0));
  7046. assignInheritanceModel(*this, MPTy->getMostRecentCXXRecordDecl());
  7047. }
  7048. }
  7049. }
  7050. NamedDecl *Def = nullptr;
  7051. bool Incomplete = T->isIncompleteType(&Def);
  7052. // Check that any necessary explicit specializations are visible. For an
  7053. // enum, we just need the declaration, so don't check this.
  7054. if (Def && !isa<EnumDecl>(Def))
  7055. checkSpecializationVisibility(Loc, Def);
  7056. // If we have a complete type, we're done.
  7057. if (!Incomplete) {
  7058. // If we know about the definition but it is not visible, complain.
  7059. NamedDecl *SuggestedDef = nullptr;
  7060. if (Def &&
  7061. !hasVisibleDefinition(Def, &SuggestedDef, /*OnlyNeedComplete*/true)) {
  7062. // If the user is going to see an error here, recover by making the
  7063. // definition visible.
  7064. bool TreatAsComplete = Diagnoser && !isSFINAEContext();
  7065. if (Diagnoser && SuggestedDef)
  7066. diagnoseMissingImport(Loc, SuggestedDef, MissingImportKind::Definition,
  7067. /*Recover*/TreatAsComplete);
  7068. return !TreatAsComplete;
  7069. } else if (Def && !TemplateInstCallbacks.empty()) {
  7070. CodeSynthesisContext TempInst;
  7071. TempInst.Kind = CodeSynthesisContext::Memoization;
  7072. TempInst.Template = Def;
  7073. TempInst.Entity = Def;
  7074. TempInst.PointOfInstantiation = Loc;
  7075. atTemplateBegin(TemplateInstCallbacks, *this, TempInst);
  7076. atTemplateEnd(TemplateInstCallbacks, *this, TempInst);
  7077. }
  7078. return false;
  7079. }
  7080. TagDecl *Tag = dyn_cast_or_null<TagDecl>(Def);
  7081. ObjCInterfaceDecl *IFace = dyn_cast_or_null<ObjCInterfaceDecl>(Def);
  7082. // Give the external source a chance to provide a definition of the type.
  7083. // This is kept separate from completing the redeclaration chain so that
  7084. // external sources such as LLDB can avoid synthesizing a type definition
  7085. // unless it's actually needed.
  7086. if (Tag || IFace) {
  7087. // Avoid diagnosing invalid decls as incomplete.
  7088. if (Def->isInvalidDecl())
  7089. return true;
  7090. // Give the external AST source a chance to complete the type.
  7091. if (auto *Source = Context.getExternalSource()) {
  7092. if (Tag && Tag->hasExternalLexicalStorage())
  7093. Source->CompleteType(Tag);
  7094. if (IFace && IFace->hasExternalLexicalStorage())
  7095. Source->CompleteType(IFace);
  7096. // If the external source completed the type, go through the motions
  7097. // again to ensure we're allowed to use the completed type.
  7098. if (!T->isIncompleteType())
  7099. return RequireCompleteTypeImpl(Loc, T, Diagnoser);
  7100. }
  7101. }
  7102. // If we have a class template specialization or a class member of a
  7103. // class template specialization, or an array with known size of such,
  7104. // try to instantiate it.
  7105. if (auto *RD = dyn_cast_or_null<CXXRecordDecl>(Tag)) {
  7106. bool Instantiated = false;
  7107. bool Diagnosed = false;
  7108. if (RD->isDependentContext()) {
  7109. // Don't try to instantiate a dependent class (eg, a member template of
  7110. // an instantiated class template specialization).
  7111. // FIXME: Can this ever happen?
  7112. } else if (auto *ClassTemplateSpec =
  7113. dyn_cast<ClassTemplateSpecializationDecl>(RD)) {
  7114. if (ClassTemplateSpec->getSpecializationKind() == TSK_Undeclared) {
  7115. runWithSufficientStackSpace(Loc, [&] {
  7116. Diagnosed = InstantiateClassTemplateSpecialization(
  7117. Loc, ClassTemplateSpec, TSK_ImplicitInstantiation,
  7118. /*Complain=*/Diagnoser);
  7119. });
  7120. Instantiated = true;
  7121. }
  7122. } else {
  7123. CXXRecordDecl *Pattern = RD->getInstantiatedFromMemberClass();
  7124. if (!RD->isBeingDefined() && Pattern) {
  7125. MemberSpecializationInfo *MSI = RD->getMemberSpecializationInfo();
  7126. assert(MSI && "Missing member specialization information?");
  7127. // This record was instantiated from a class within a template.
  7128. if (MSI->getTemplateSpecializationKind() !=
  7129. TSK_ExplicitSpecialization) {
  7130. runWithSufficientStackSpace(Loc, [&] {
  7131. Diagnosed = InstantiateClass(Loc, RD, Pattern,
  7132. getTemplateInstantiationArgs(RD),
  7133. TSK_ImplicitInstantiation,
  7134. /*Complain=*/Diagnoser);
  7135. });
  7136. Instantiated = true;
  7137. }
  7138. }
  7139. }
  7140. if (Instantiated) {
  7141. // Instantiate* might have already complained that the template is not
  7142. // defined, if we asked it to.
  7143. if (Diagnoser && Diagnosed)
  7144. return true;
  7145. // If we instantiated a definition, check that it's usable, even if
  7146. // instantiation produced an error, so that repeated calls to this
  7147. // function give consistent answers.
  7148. if (!T->isIncompleteType())
  7149. return RequireCompleteTypeImpl(Loc, T, Diagnoser);
  7150. }
  7151. }
  7152. // FIXME: If we didn't instantiate a definition because of an explicit
  7153. // specialization declaration, check that it's visible.
  7154. if (!Diagnoser)
  7155. return true;
  7156. Diagnoser->diagnose(*this, Loc, T);
  7157. // If the type was a forward declaration of a class/struct/union
  7158. // type, produce a note.
  7159. if (Tag && !Tag->isInvalidDecl())
  7160. Diag(Tag->getLocation(),
  7161. Tag->isBeingDefined() ? diag::note_type_being_defined
  7162. : diag::note_forward_declaration)
  7163. << Context.getTagDeclType(Tag);
  7164. // If the Objective-C class was a forward declaration, produce a note.
  7165. if (IFace && !IFace->isInvalidDecl())
  7166. Diag(IFace->getLocation(), diag::note_forward_class);
  7167. // If we have external information that we can use to suggest a fix,
  7168. // produce a note.
  7169. if (ExternalSource)
  7170. ExternalSource->MaybeDiagnoseMissingCompleteType(Loc, T);
  7171. return true;
  7172. }
  7173. bool Sema::RequireCompleteType(SourceLocation Loc, QualType T,
  7174. unsigned DiagID) {
  7175. BoundTypeDiagnoser<> Diagnoser(DiagID);
  7176. return RequireCompleteType(Loc, T, Diagnoser);
  7177. }
  7178. /// Get diagnostic %select index for tag kind for
  7179. /// literal type diagnostic message.
  7180. /// WARNING: Indexes apply to particular diagnostics only!
  7181. ///
  7182. /// \returns diagnostic %select index.
  7183. static unsigned getLiteralDiagFromTagKind(TagTypeKind Tag) {
  7184. switch (Tag) {
  7185. case TTK_Struct: return 0;
  7186. case TTK_Interface: return 1;
  7187. case TTK_Class: return 2;
  7188. default: llvm_unreachable("Invalid tag kind for literal type diagnostic!");
  7189. }
  7190. }
  7191. /// Ensure that the type T is a literal type.
  7192. ///
  7193. /// This routine checks whether the type @p T is a literal type. If @p T is an
  7194. /// incomplete type, an attempt is made to complete it. If @p T is a literal
  7195. /// type, or @p AllowIncompleteType is true and @p T is an incomplete type,
  7196. /// returns false. Otherwise, this routine issues the diagnostic @p PD (giving
  7197. /// it the type @p T), along with notes explaining why the type is not a
  7198. /// literal type, and returns true.
  7199. ///
  7200. /// @param Loc The location in the source that the non-literal type
  7201. /// diagnostic should refer to.
  7202. ///
  7203. /// @param T The type that this routine is examining for literalness.
  7204. ///
  7205. /// @param Diagnoser Emits a diagnostic if T is not a literal type.
  7206. ///
  7207. /// @returns @c true if @p T is not a literal type and a diagnostic was emitted,
  7208. /// @c false otherwise.
  7209. bool Sema::RequireLiteralType(SourceLocation Loc, QualType T,
  7210. TypeDiagnoser &Diagnoser) {
  7211. assert(!T->isDependentType() && "type should not be dependent");
  7212. QualType ElemType = Context.getBaseElementType(T);
  7213. if ((isCompleteType(Loc, ElemType) || ElemType->isVoidType()) &&
  7214. T->isLiteralType(Context))
  7215. return false;
  7216. Diagnoser.diagnose(*this, Loc, T);
  7217. if (T->isVariableArrayType())
  7218. return true;
  7219. const RecordType *RT = ElemType->getAs<RecordType>();
  7220. if (!RT)
  7221. return true;
  7222. const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl());
  7223. // A partially-defined class type can't be a literal type, because a literal
  7224. // class type must have a trivial destructor (which can't be checked until
  7225. // the class definition is complete).
  7226. if (RequireCompleteType(Loc, ElemType, diag::note_non_literal_incomplete, T))
  7227. return true;
  7228. // [expr.prim.lambda]p3:
  7229. // This class type is [not] a literal type.
  7230. if (RD->isLambda() && !getLangOpts().CPlusPlus17) {
  7231. Diag(RD->getLocation(), diag::note_non_literal_lambda);
  7232. return true;
  7233. }
  7234. // If the class has virtual base classes, then it's not an aggregate, and
  7235. // cannot have any constexpr constructors or a trivial default constructor,
  7236. // so is non-literal. This is better to diagnose than the resulting absence
  7237. // of constexpr constructors.
  7238. if (RD->getNumVBases()) {
  7239. Diag(RD->getLocation(), diag::note_non_literal_virtual_base)
  7240. << getLiteralDiagFromTagKind(RD->getTagKind()) << RD->getNumVBases();
  7241. for (const auto &I : RD->vbases())
  7242. Diag(I.getBeginLoc(), diag::note_constexpr_virtual_base_here)
  7243. << I.getSourceRange();
  7244. } else if (!RD->isAggregate() && !RD->hasConstexprNonCopyMoveConstructor() &&
  7245. !RD->hasTrivialDefaultConstructor()) {
  7246. Diag(RD->getLocation(), diag::note_non_literal_no_constexpr_ctors) << RD;
  7247. } else if (RD->hasNonLiteralTypeFieldsOrBases()) {
  7248. for (const auto &I : RD->bases()) {
  7249. if (!I.getType()->isLiteralType(Context)) {
  7250. Diag(I.getBeginLoc(), diag::note_non_literal_base_class)
  7251. << RD << I.getType() << I.getSourceRange();
  7252. return true;
  7253. }
  7254. }
  7255. for (const auto *I : RD->fields()) {
  7256. if (!I->getType()->isLiteralType(Context) ||
  7257. I->getType().isVolatileQualified()) {
  7258. Diag(I->getLocation(), diag::note_non_literal_field)
  7259. << RD << I << I->getType()
  7260. << I->getType().isVolatileQualified();
  7261. return true;
  7262. }
  7263. }
  7264. } else if (getLangOpts().CPlusPlus2a ? !RD->hasConstexprDestructor()
  7265. : !RD->hasTrivialDestructor()) {
  7266. // All fields and bases are of literal types, so have trivial or constexpr
  7267. // destructors. If this class's destructor is non-trivial / non-constexpr,
  7268. // it must be user-declared.
  7269. CXXDestructorDecl *Dtor = RD->getDestructor();
  7270. assert(Dtor && "class has literal fields and bases but no dtor?");
  7271. if (!Dtor)
  7272. return true;
  7273. if (getLangOpts().CPlusPlus2a) {
  7274. Diag(Dtor->getLocation(), diag::note_non_literal_non_constexpr_dtor)
  7275. << RD;
  7276. } else {
  7277. Diag(Dtor->getLocation(), Dtor->isUserProvided()
  7278. ? diag::note_non_literal_user_provided_dtor
  7279. : diag::note_non_literal_nontrivial_dtor)
  7280. << RD;
  7281. if (!Dtor->isUserProvided())
  7282. SpecialMemberIsTrivial(Dtor, CXXDestructor, TAH_IgnoreTrivialABI,
  7283. /*Diagnose*/ true);
  7284. }
  7285. }
  7286. return true;
  7287. }
  7288. bool Sema::RequireLiteralType(SourceLocation Loc, QualType T, unsigned DiagID) {
  7289. BoundTypeDiagnoser<> Diagnoser(DiagID);
  7290. return RequireLiteralType(Loc, T, Diagnoser);
  7291. }
  7292. /// Retrieve a version of the type 'T' that is elaborated by Keyword, qualified
  7293. /// by the nested-name-specifier contained in SS, and that is (re)declared by
  7294. /// OwnedTagDecl, which is nullptr if this is not a (re)declaration.
  7295. QualType Sema::getElaboratedType(ElaboratedTypeKeyword Keyword,
  7296. const CXXScopeSpec &SS, QualType T,
  7297. TagDecl *OwnedTagDecl) {
  7298. if (T.isNull())
  7299. return T;
  7300. NestedNameSpecifier *NNS;
  7301. if (SS.isValid())
  7302. NNS = SS.getScopeRep();
  7303. else {
  7304. if (Keyword == ETK_None)
  7305. return T;
  7306. NNS = nullptr;
  7307. }
  7308. return Context.getElaboratedType(Keyword, NNS, T, OwnedTagDecl);
  7309. }
  7310. QualType Sema::BuildTypeofExprType(Expr *E, SourceLocation Loc) {
  7311. assert(!E->hasPlaceholderType() && "unexpected placeholder");
  7312. if (!getLangOpts().CPlusPlus && E->refersToBitField())
  7313. Diag(E->getExprLoc(), diag::err_sizeof_alignof_typeof_bitfield) << 2;
  7314. if (!E->isTypeDependent()) {
  7315. QualType T = E->getType();
  7316. if (const TagType *TT = T->getAs<TagType>())
  7317. DiagnoseUseOfDecl(TT->getDecl(), E->getExprLoc());
  7318. }
  7319. return Context.getTypeOfExprType(E);
  7320. }
  7321. /// getDecltypeForExpr - Given an expr, will return the decltype for
  7322. /// that expression, according to the rules in C++11
  7323. /// [dcl.type.simple]p4 and C++11 [expr.lambda.prim]p18.
  7324. static QualType getDecltypeForExpr(Sema &S, Expr *E) {
  7325. if (E->isTypeDependent())
  7326. return S.Context.DependentTy;
  7327. // C++11 [dcl.type.simple]p4:
  7328. // The type denoted by decltype(e) is defined as follows:
  7329. //
  7330. // - if e is an unparenthesized id-expression or an unparenthesized class
  7331. // member access (5.2.5), decltype(e) is the type of the entity named
  7332. // by e. If there is no such entity, or if e names a set of overloaded
  7333. // functions, the program is ill-formed;
  7334. //
  7335. // We apply the same rules for Objective-C ivar and property references.
  7336. if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) {
  7337. const ValueDecl *VD = DRE->getDecl();
  7338. return VD->getType();
  7339. } else if (const MemberExpr *ME = dyn_cast<MemberExpr>(E)) {
  7340. if (const ValueDecl *VD = ME->getMemberDecl())
  7341. if (isa<FieldDecl>(VD) || isa<VarDecl>(VD))
  7342. return VD->getType();
  7343. } else if (const ObjCIvarRefExpr *IR = dyn_cast<ObjCIvarRefExpr>(E)) {
  7344. return IR->getDecl()->getType();
  7345. } else if (const ObjCPropertyRefExpr *PR = dyn_cast<ObjCPropertyRefExpr>(E)) {
  7346. if (PR->isExplicitProperty())
  7347. return PR->getExplicitProperty()->getType();
  7348. } else if (auto *PE = dyn_cast<PredefinedExpr>(E)) {
  7349. return PE->getType();
  7350. }
  7351. // C++11 [expr.lambda.prim]p18:
  7352. // Every occurrence of decltype((x)) where x is a possibly
  7353. // parenthesized id-expression that names an entity of automatic
  7354. // storage duration is treated as if x were transformed into an
  7355. // access to a corresponding data member of the closure type that
  7356. // would have been declared if x were an odr-use of the denoted
  7357. // entity.
  7358. using namespace sema;
  7359. if (S.getCurLambda()) {
  7360. if (isa<ParenExpr>(E)) {
  7361. if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E->IgnoreParens())) {
  7362. if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) {
  7363. QualType T = S.getCapturedDeclRefType(Var, DRE->getLocation());
  7364. if (!T.isNull())
  7365. return S.Context.getLValueReferenceType(T);
  7366. }
  7367. }
  7368. }
  7369. }
  7370. // C++11 [dcl.type.simple]p4:
  7371. // [...]
  7372. QualType T = E->getType();
  7373. switch (E->getValueKind()) {
  7374. // - otherwise, if e is an xvalue, decltype(e) is T&&, where T is the
  7375. // type of e;
  7376. case VK_XValue: T = S.Context.getRValueReferenceType(T); break;
  7377. // - otherwise, if e is an lvalue, decltype(e) is T&, where T is the
  7378. // type of e;
  7379. case VK_LValue: T = S.Context.getLValueReferenceType(T); break;
  7380. // - otherwise, decltype(e) is the type of e.
  7381. case VK_RValue: break;
  7382. }
  7383. return T;
  7384. }
  7385. QualType Sema::BuildDecltypeType(Expr *E, SourceLocation Loc,
  7386. bool AsUnevaluated) {
  7387. assert(!E->hasPlaceholderType() && "unexpected placeholder");
  7388. if (AsUnevaluated && CodeSynthesisContexts.empty() &&
  7389. E->HasSideEffects(Context, false)) {
  7390. // The expression operand for decltype is in an unevaluated expression
  7391. // context, so side effects could result in unintended consequences.
  7392. Diag(E->getExprLoc(), diag::warn_side_effects_unevaluated_context);
  7393. }
  7394. return Context.getDecltypeType(E, getDecltypeForExpr(*this, E));
  7395. }
  7396. QualType Sema::BuildUnaryTransformType(QualType BaseType,
  7397. UnaryTransformType::UTTKind UKind,
  7398. SourceLocation Loc) {
  7399. switch (UKind) {
  7400. case UnaryTransformType::EnumUnderlyingType:
  7401. if (!BaseType->isDependentType() && !BaseType->isEnumeralType()) {
  7402. Diag(Loc, diag::err_only_enums_have_underlying_types);
  7403. return QualType();
  7404. } else {
  7405. QualType Underlying = BaseType;
  7406. if (!BaseType->isDependentType()) {
  7407. // The enum could be incomplete if we're parsing its definition or
  7408. // recovering from an error.
  7409. NamedDecl *FwdDecl = nullptr;
  7410. if (BaseType->isIncompleteType(&FwdDecl)) {
  7411. Diag(Loc, diag::err_underlying_type_of_incomplete_enum) << BaseType;
  7412. Diag(FwdDecl->getLocation(), diag::note_forward_declaration) << FwdDecl;
  7413. return QualType();
  7414. }
  7415. EnumDecl *ED = BaseType->getAs<EnumType>()->getDecl();
  7416. assert(ED && "EnumType has no EnumDecl");
  7417. DiagnoseUseOfDecl(ED, Loc);
  7418. Underlying = ED->getIntegerType();
  7419. assert(!Underlying.isNull());
  7420. }
  7421. return Context.getUnaryTransformType(BaseType, Underlying,
  7422. UnaryTransformType::EnumUnderlyingType);
  7423. }
  7424. }
  7425. llvm_unreachable("unknown unary transform type");
  7426. }
  7427. QualType Sema::BuildAtomicType(QualType T, SourceLocation Loc) {
  7428. if (!T->isDependentType()) {
  7429. // FIXME: It isn't entirely clear whether incomplete atomic types
  7430. // are allowed or not; for simplicity, ban them for the moment.
  7431. if (RequireCompleteType(Loc, T, diag::err_atomic_specifier_bad_type, 0))
  7432. return QualType();
  7433. int DisallowedKind = -1;
  7434. if (T->isArrayType())
  7435. DisallowedKind = 1;
  7436. else if (T->isFunctionType())
  7437. DisallowedKind = 2;
  7438. else if (T->isReferenceType())
  7439. DisallowedKind = 3;
  7440. else if (T->isAtomicType())
  7441. DisallowedKind = 4;
  7442. else if (T.hasQualifiers())
  7443. DisallowedKind = 5;
  7444. else if (!T.isTriviallyCopyableType(Context))
  7445. // Some other non-trivially-copyable type (probably a C++ class)
  7446. DisallowedKind = 6;
  7447. if (DisallowedKind != -1) {
  7448. Diag(Loc, diag::err_atomic_specifier_bad_type) << DisallowedKind << T;
  7449. return QualType();
  7450. }
  7451. // FIXME: Do we need any handling for ARC here?
  7452. }
  7453. // Build the pointer type.
  7454. return Context.getAtomicType(T);
  7455. }