TreeTransform.h 493 KB

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  1. //===------- TreeTransform.h - Semantic Tree Transformation -----*- C++ -*-===//
  2. //
  3. // The LLVM Compiler Infrastructure
  4. //
  5. // This file is distributed under the University of Illinois Open Source
  6. // License. See LICENSE.TXT for details.
  7. //===----------------------------------------------------------------------===//
  8. //
  9. // This file implements a semantic tree transformation that takes a given
  10. // AST and rebuilds it, possibly transforming some nodes in the process.
  11. //
  12. //===----------------------------------------------------------------------===//
  13. #ifndef LLVM_CLANG_LIB_SEMA_TREETRANSFORM_H
  14. #define LLVM_CLANG_LIB_SEMA_TREETRANSFORM_H
  15. #include "CoroutineStmtBuilder.h"
  16. #include "TypeLocBuilder.h"
  17. #include "clang/AST/Decl.h"
  18. #include "clang/AST/DeclObjC.h"
  19. #include "clang/AST/DeclTemplate.h"
  20. #include "clang/AST/Expr.h"
  21. #include "clang/AST/ExprCXX.h"
  22. #include "clang/AST/ExprObjC.h"
  23. #include "clang/AST/ExprOpenMP.h"
  24. #include "clang/AST/Stmt.h"
  25. #include "clang/AST/StmtCXX.h"
  26. #include "clang/AST/StmtObjC.h"
  27. #include "clang/AST/StmtOpenMP.h"
  28. #include "clang/Sema/Designator.h"
  29. #include "clang/Sema/Lookup.h"
  30. #include "clang/Sema/Ownership.h"
  31. #include "clang/Sema/ParsedTemplate.h"
  32. #include "clang/Sema/ScopeInfo.h"
  33. #include "clang/Sema/SemaDiagnostic.h"
  34. #include "clang/Sema/SemaInternal.h"
  35. #include "llvm/ADT/ArrayRef.h"
  36. #include "llvm/Support/ErrorHandling.h"
  37. #include <algorithm>
  38. namespace clang {
  39. using namespace sema;
  40. /// A semantic tree transformation that allows one to transform one
  41. /// abstract syntax tree into another.
  42. ///
  43. /// A new tree transformation is defined by creating a new subclass \c X of
  44. /// \c TreeTransform<X> and then overriding certain operations to provide
  45. /// behavior specific to that transformation. For example, template
  46. /// instantiation is implemented as a tree transformation where the
  47. /// transformation of TemplateTypeParmType nodes involves substituting the
  48. /// template arguments for their corresponding template parameters; a similar
  49. /// transformation is performed for non-type template parameters and
  50. /// template template parameters.
  51. ///
  52. /// This tree-transformation template uses static polymorphism to allow
  53. /// subclasses to customize any of its operations. Thus, a subclass can
  54. /// override any of the transformation or rebuild operators by providing an
  55. /// operation with the same signature as the default implementation. The
  56. /// overriding function should not be virtual.
  57. ///
  58. /// Semantic tree transformations are split into two stages, either of which
  59. /// can be replaced by a subclass. The "transform" step transforms an AST node
  60. /// or the parts of an AST node using the various transformation functions,
  61. /// then passes the pieces on to the "rebuild" step, which constructs a new AST
  62. /// node of the appropriate kind from the pieces. The default transformation
  63. /// routines recursively transform the operands to composite AST nodes (e.g.,
  64. /// the pointee type of a PointerType node) and, if any of those operand nodes
  65. /// were changed by the transformation, invokes the rebuild operation to create
  66. /// a new AST node.
  67. ///
  68. /// Subclasses can customize the transformation at various levels. The
  69. /// most coarse-grained transformations involve replacing TransformType(),
  70. /// TransformExpr(), TransformDecl(), TransformNestedNameSpecifierLoc(),
  71. /// TransformTemplateName(), or TransformTemplateArgument() with entirely
  72. /// new implementations.
  73. ///
  74. /// For more fine-grained transformations, subclasses can replace any of the
  75. /// \c TransformXXX functions (where XXX is the name of an AST node, e.g.,
  76. /// PointerType, StmtExpr) to alter the transformation. As mentioned previously,
  77. /// replacing TransformTemplateTypeParmType() allows template instantiation
  78. /// to substitute template arguments for their corresponding template
  79. /// parameters. Additionally, subclasses can override the \c RebuildXXX
  80. /// functions to control how AST nodes are rebuilt when their operands change.
  81. /// By default, \c TreeTransform will invoke semantic analysis to rebuild
  82. /// AST nodes. However, certain other tree transformations (e.g, cloning) may
  83. /// be able to use more efficient rebuild steps.
  84. ///
  85. /// There are a handful of other functions that can be overridden, allowing one
  86. /// to avoid traversing nodes that don't need any transformation
  87. /// (\c AlreadyTransformed()), force rebuilding AST nodes even when their
  88. /// operands have not changed (\c AlwaysRebuild()), and customize the
  89. /// default locations and entity names used for type-checking
  90. /// (\c getBaseLocation(), \c getBaseEntity()).
  91. template<typename Derived>
  92. class TreeTransform {
  93. /// Private RAII object that helps us forget and then re-remember
  94. /// the template argument corresponding to a partially-substituted parameter
  95. /// pack.
  96. class ForgetPartiallySubstitutedPackRAII {
  97. Derived &Self;
  98. TemplateArgument Old;
  99. public:
  100. ForgetPartiallySubstitutedPackRAII(Derived &Self) : Self(Self) {
  101. Old = Self.ForgetPartiallySubstitutedPack();
  102. }
  103. ~ForgetPartiallySubstitutedPackRAII() {
  104. Self.RememberPartiallySubstitutedPack(Old);
  105. }
  106. };
  107. protected:
  108. Sema &SemaRef;
  109. /// The set of local declarations that have been transformed, for
  110. /// cases where we are forced to build new declarations within the transformer
  111. /// rather than in the subclass (e.g., lambda closure types).
  112. llvm::DenseMap<Decl *, Decl *> TransformedLocalDecls;
  113. public:
  114. /// Initializes a new tree transformer.
  115. TreeTransform(Sema &SemaRef) : SemaRef(SemaRef) { }
  116. /// Retrieves a reference to the derived class.
  117. Derived &getDerived() { return static_cast<Derived&>(*this); }
  118. /// Retrieves a reference to the derived class.
  119. const Derived &getDerived() const {
  120. return static_cast<const Derived&>(*this);
  121. }
  122. static inline ExprResult Owned(Expr *E) { return E; }
  123. static inline StmtResult Owned(Stmt *S) { return S; }
  124. /// Retrieves a reference to the semantic analysis object used for
  125. /// this tree transform.
  126. Sema &getSema() const { return SemaRef; }
  127. /// Whether the transformation should always rebuild AST nodes, even
  128. /// if none of the children have changed.
  129. ///
  130. /// Subclasses may override this function to specify when the transformation
  131. /// should rebuild all AST nodes.
  132. ///
  133. /// We must always rebuild all AST nodes when performing variadic template
  134. /// pack expansion, in order to avoid violating the AST invariant that each
  135. /// statement node appears at most once in its containing declaration.
  136. bool AlwaysRebuild() { return SemaRef.ArgumentPackSubstitutionIndex != -1; }
  137. /// Returns the location of the entity being transformed, if that
  138. /// information was not available elsewhere in the AST.
  139. ///
  140. /// By default, returns no source-location information. Subclasses can
  141. /// provide an alternative implementation that provides better location
  142. /// information.
  143. SourceLocation getBaseLocation() { return SourceLocation(); }
  144. /// Returns the name of the entity being transformed, if that
  145. /// information was not available elsewhere in the AST.
  146. ///
  147. /// By default, returns an empty name. Subclasses can provide an alternative
  148. /// implementation with a more precise name.
  149. DeclarationName getBaseEntity() { return DeclarationName(); }
  150. /// Sets the "base" location and entity when that
  151. /// information is known based on another transformation.
  152. ///
  153. /// By default, the source location and entity are ignored. Subclasses can
  154. /// override this function to provide a customized implementation.
  155. void setBase(SourceLocation Loc, DeclarationName Entity) { }
  156. /// RAII object that temporarily sets the base location and entity
  157. /// used for reporting diagnostics in types.
  158. class TemporaryBase {
  159. TreeTransform &Self;
  160. SourceLocation OldLocation;
  161. DeclarationName OldEntity;
  162. public:
  163. TemporaryBase(TreeTransform &Self, SourceLocation Location,
  164. DeclarationName Entity) : Self(Self) {
  165. OldLocation = Self.getDerived().getBaseLocation();
  166. OldEntity = Self.getDerived().getBaseEntity();
  167. if (Location.isValid())
  168. Self.getDerived().setBase(Location, Entity);
  169. }
  170. ~TemporaryBase() {
  171. Self.getDerived().setBase(OldLocation, OldEntity);
  172. }
  173. };
  174. /// Determine whether the given type \p T has already been
  175. /// transformed.
  176. ///
  177. /// Subclasses can provide an alternative implementation of this routine
  178. /// to short-circuit evaluation when it is known that a given type will
  179. /// not change. For example, template instantiation need not traverse
  180. /// non-dependent types.
  181. bool AlreadyTransformed(QualType T) {
  182. return T.isNull();
  183. }
  184. /// Determine whether the given call argument should be dropped, e.g.,
  185. /// because it is a default argument.
  186. ///
  187. /// Subclasses can provide an alternative implementation of this routine to
  188. /// determine which kinds of call arguments get dropped. By default,
  189. /// CXXDefaultArgument nodes are dropped (prior to transformation).
  190. bool DropCallArgument(Expr *E) {
  191. return E->isDefaultArgument();
  192. }
  193. /// Determine whether we should expand a pack expansion with the
  194. /// given set of parameter packs into separate arguments by repeatedly
  195. /// transforming the pattern.
  196. ///
  197. /// By default, the transformer never tries to expand pack expansions.
  198. /// Subclasses can override this routine to provide different behavior.
  199. ///
  200. /// \param EllipsisLoc The location of the ellipsis that identifies the
  201. /// pack expansion.
  202. ///
  203. /// \param PatternRange The source range that covers the entire pattern of
  204. /// the pack expansion.
  205. ///
  206. /// \param Unexpanded The set of unexpanded parameter packs within the
  207. /// pattern.
  208. ///
  209. /// \param ShouldExpand Will be set to \c true if the transformer should
  210. /// expand the corresponding pack expansions into separate arguments. When
  211. /// set, \c NumExpansions must also be set.
  212. ///
  213. /// \param RetainExpansion Whether the caller should add an unexpanded
  214. /// pack expansion after all of the expanded arguments. This is used
  215. /// when extending explicitly-specified template argument packs per
  216. /// C++0x [temp.arg.explicit]p9.
  217. ///
  218. /// \param NumExpansions The number of separate arguments that will be in
  219. /// the expanded form of the corresponding pack expansion. This is both an
  220. /// input and an output parameter, which can be set by the caller if the
  221. /// number of expansions is known a priori (e.g., due to a prior substitution)
  222. /// and will be set by the callee when the number of expansions is known.
  223. /// The callee must set this value when \c ShouldExpand is \c true; it may
  224. /// set this value in other cases.
  225. ///
  226. /// \returns true if an error occurred (e.g., because the parameter packs
  227. /// are to be instantiated with arguments of different lengths), false
  228. /// otherwise. If false, \c ShouldExpand (and possibly \c NumExpansions)
  229. /// must be set.
  230. bool TryExpandParameterPacks(SourceLocation EllipsisLoc,
  231. SourceRange PatternRange,
  232. ArrayRef<UnexpandedParameterPack> Unexpanded,
  233. bool &ShouldExpand,
  234. bool &RetainExpansion,
  235. Optional<unsigned> &NumExpansions) {
  236. ShouldExpand = false;
  237. return false;
  238. }
  239. /// "Forget" about the partially-substituted pack template argument,
  240. /// when performing an instantiation that must preserve the parameter pack
  241. /// use.
  242. ///
  243. /// This routine is meant to be overridden by the template instantiator.
  244. TemplateArgument ForgetPartiallySubstitutedPack() {
  245. return TemplateArgument();
  246. }
  247. /// "Remember" the partially-substituted pack template argument
  248. /// after performing an instantiation that must preserve the parameter pack
  249. /// use.
  250. ///
  251. /// This routine is meant to be overridden by the template instantiator.
  252. void RememberPartiallySubstitutedPack(TemplateArgument Arg) { }
  253. /// Note to the derived class when a function parameter pack is
  254. /// being expanded.
  255. void ExpandingFunctionParameterPack(ParmVarDecl *Pack) { }
  256. /// Transforms the given type into another type.
  257. ///
  258. /// By default, this routine transforms a type by creating a
  259. /// TypeSourceInfo for it and delegating to the appropriate
  260. /// function. This is expensive, but we don't mind, because
  261. /// this method is deprecated anyway; all users should be
  262. /// switched to storing TypeSourceInfos.
  263. ///
  264. /// \returns the transformed type.
  265. QualType TransformType(QualType T);
  266. /// Transforms the given type-with-location into a new
  267. /// type-with-location.
  268. ///
  269. /// By default, this routine transforms a type by delegating to the
  270. /// appropriate TransformXXXType to build a new type. Subclasses
  271. /// may override this function (to take over all type
  272. /// transformations) or some set of the TransformXXXType functions
  273. /// to alter the transformation.
  274. TypeSourceInfo *TransformType(TypeSourceInfo *DI);
  275. /// Transform the given type-with-location into a new
  276. /// type, collecting location information in the given builder
  277. /// as necessary.
  278. ///
  279. QualType TransformType(TypeLocBuilder &TLB, TypeLoc TL);
  280. /// Transform a type that is permitted to produce a
  281. /// DeducedTemplateSpecializationType.
  282. ///
  283. /// This is used in the (relatively rare) contexts where it is acceptable
  284. /// for transformation to produce a class template type with deduced
  285. /// template arguments.
  286. /// @{
  287. QualType TransformTypeWithDeducedTST(QualType T);
  288. TypeSourceInfo *TransformTypeWithDeducedTST(TypeSourceInfo *DI);
  289. /// @}
  290. /// Transform the given statement.
  291. ///
  292. /// By default, this routine transforms a statement by delegating to the
  293. /// appropriate TransformXXXStmt function to transform a specific kind of
  294. /// statement or the TransformExpr() function to transform an expression.
  295. /// Subclasses may override this function to transform statements using some
  296. /// other mechanism.
  297. ///
  298. /// \returns the transformed statement.
  299. StmtResult TransformStmt(Stmt *S);
  300. /// Transform the given statement.
  301. ///
  302. /// By default, this routine transforms a statement by delegating to the
  303. /// appropriate TransformOMPXXXClause function to transform a specific kind
  304. /// of clause. Subclasses may override this function to transform statements
  305. /// using some other mechanism.
  306. ///
  307. /// \returns the transformed OpenMP clause.
  308. OMPClause *TransformOMPClause(OMPClause *S);
  309. /// Transform the given attribute.
  310. ///
  311. /// By default, this routine transforms a statement by delegating to the
  312. /// appropriate TransformXXXAttr function to transform a specific kind
  313. /// of attribute. Subclasses may override this function to transform
  314. /// attributed statements using some other mechanism.
  315. ///
  316. /// \returns the transformed attribute
  317. const Attr *TransformAttr(const Attr *S);
  318. /// Transform the specified attribute.
  319. ///
  320. /// Subclasses should override the transformation of attributes with a pragma
  321. /// spelling to transform expressions stored within the attribute.
  322. ///
  323. /// \returns the transformed attribute.
  324. #define ATTR(X)
  325. #define PRAGMA_SPELLING_ATTR(X) \
  326. const X##Attr *Transform##X##Attr(const X##Attr *R) { return R; }
  327. #include "clang/Basic/AttrList.inc"
  328. /// Transform the given expression.
  329. ///
  330. /// By default, this routine transforms an expression by delegating to the
  331. /// appropriate TransformXXXExpr function to build a new expression.
  332. /// Subclasses may override this function to transform expressions using some
  333. /// other mechanism.
  334. ///
  335. /// \returns the transformed expression.
  336. ExprResult TransformExpr(Expr *E);
  337. /// Transform the given initializer.
  338. ///
  339. /// By default, this routine transforms an initializer by stripping off the
  340. /// semantic nodes added by initialization, then passing the result to
  341. /// TransformExpr or TransformExprs.
  342. ///
  343. /// \returns the transformed initializer.
  344. ExprResult TransformInitializer(Expr *Init, bool NotCopyInit);
  345. /// Transform the given list of expressions.
  346. ///
  347. /// This routine transforms a list of expressions by invoking
  348. /// \c TransformExpr() for each subexpression. However, it also provides
  349. /// support for variadic templates by expanding any pack expansions (if the
  350. /// derived class permits such expansion) along the way. When pack expansions
  351. /// are present, the number of outputs may not equal the number of inputs.
  352. ///
  353. /// \param Inputs The set of expressions to be transformed.
  354. ///
  355. /// \param NumInputs The number of expressions in \c Inputs.
  356. ///
  357. /// \param IsCall If \c true, then this transform is being performed on
  358. /// function-call arguments, and any arguments that should be dropped, will
  359. /// be.
  360. ///
  361. /// \param Outputs The transformed input expressions will be added to this
  362. /// vector.
  363. ///
  364. /// \param ArgChanged If non-NULL, will be set \c true if any argument changed
  365. /// due to transformation.
  366. ///
  367. /// \returns true if an error occurred, false otherwise.
  368. bool TransformExprs(Expr *const *Inputs, unsigned NumInputs, bool IsCall,
  369. SmallVectorImpl<Expr *> &Outputs,
  370. bool *ArgChanged = nullptr);
  371. /// Transform the given declaration, which is referenced from a type
  372. /// or expression.
  373. ///
  374. /// By default, acts as the identity function on declarations, unless the
  375. /// transformer has had to transform the declaration itself. Subclasses
  376. /// may override this function to provide alternate behavior.
  377. Decl *TransformDecl(SourceLocation Loc, Decl *D) {
  378. llvm::DenseMap<Decl *, Decl *>::iterator Known
  379. = TransformedLocalDecls.find(D);
  380. if (Known != TransformedLocalDecls.end())
  381. return Known->second;
  382. return D;
  383. }
  384. /// Transform the specified condition.
  385. ///
  386. /// By default, this transforms the variable and expression and rebuilds
  387. /// the condition.
  388. Sema::ConditionResult TransformCondition(SourceLocation Loc, VarDecl *Var,
  389. Expr *Expr,
  390. Sema::ConditionKind Kind);
  391. /// Transform the attributes associated with the given declaration and
  392. /// place them on the new declaration.
  393. ///
  394. /// By default, this operation does nothing. Subclasses may override this
  395. /// behavior to transform attributes.
  396. void transformAttrs(Decl *Old, Decl *New) { }
  397. /// Note that a local declaration has been transformed by this
  398. /// transformer.
  399. ///
  400. /// Local declarations are typically transformed via a call to
  401. /// TransformDefinition. However, in some cases (e.g., lambda expressions),
  402. /// the transformer itself has to transform the declarations. This routine
  403. /// can be overridden by a subclass that keeps track of such mappings.
  404. void transformedLocalDecl(Decl *Old, Decl *New) {
  405. TransformedLocalDecls[Old] = New;
  406. }
  407. /// Transform the definition of the given declaration.
  408. ///
  409. /// By default, invokes TransformDecl() to transform the declaration.
  410. /// Subclasses may override this function to provide alternate behavior.
  411. Decl *TransformDefinition(SourceLocation Loc, Decl *D) {
  412. return getDerived().TransformDecl(Loc, D);
  413. }
  414. /// Transform the given declaration, which was the first part of a
  415. /// nested-name-specifier in a member access expression.
  416. ///
  417. /// This specific declaration transformation only applies to the first
  418. /// identifier in a nested-name-specifier of a member access expression, e.g.,
  419. /// the \c T in \c x->T::member
  420. ///
  421. /// By default, invokes TransformDecl() to transform the declaration.
  422. /// Subclasses may override this function to provide alternate behavior.
  423. NamedDecl *TransformFirstQualifierInScope(NamedDecl *D, SourceLocation Loc) {
  424. return cast_or_null<NamedDecl>(getDerived().TransformDecl(Loc, D));
  425. }
  426. /// Transform the set of declarations in an OverloadExpr.
  427. bool TransformOverloadExprDecls(OverloadExpr *Old, bool RequiresADL,
  428. LookupResult &R);
  429. /// Transform the given nested-name-specifier with source-location
  430. /// information.
  431. ///
  432. /// By default, transforms all of the types and declarations within the
  433. /// nested-name-specifier. Subclasses may override this function to provide
  434. /// alternate behavior.
  435. NestedNameSpecifierLoc
  436. TransformNestedNameSpecifierLoc(NestedNameSpecifierLoc NNS,
  437. QualType ObjectType = QualType(),
  438. NamedDecl *FirstQualifierInScope = nullptr);
  439. /// Transform the given declaration name.
  440. ///
  441. /// By default, transforms the types of conversion function, constructor,
  442. /// and destructor names and then (if needed) rebuilds the declaration name.
  443. /// Identifiers and selectors are returned unmodified. Sublcasses may
  444. /// override this function to provide alternate behavior.
  445. DeclarationNameInfo
  446. TransformDeclarationNameInfo(const DeclarationNameInfo &NameInfo);
  447. /// Transform the given template name.
  448. ///
  449. /// \param SS The nested-name-specifier that qualifies the template
  450. /// name. This nested-name-specifier must already have been transformed.
  451. ///
  452. /// \param Name The template name to transform.
  453. ///
  454. /// \param NameLoc The source location of the template name.
  455. ///
  456. /// \param ObjectType If we're translating a template name within a member
  457. /// access expression, this is the type of the object whose member template
  458. /// is being referenced.
  459. ///
  460. /// \param FirstQualifierInScope If the first part of a nested-name-specifier
  461. /// also refers to a name within the current (lexical) scope, this is the
  462. /// declaration it refers to.
  463. ///
  464. /// By default, transforms the template name by transforming the declarations
  465. /// and nested-name-specifiers that occur within the template name.
  466. /// Subclasses may override this function to provide alternate behavior.
  467. TemplateName
  468. TransformTemplateName(CXXScopeSpec &SS, TemplateName Name,
  469. SourceLocation NameLoc,
  470. QualType ObjectType = QualType(),
  471. NamedDecl *FirstQualifierInScope = nullptr,
  472. bool AllowInjectedClassName = false);
  473. /// Transform the given template argument.
  474. ///
  475. /// By default, this operation transforms the type, expression, or
  476. /// declaration stored within the template argument and constructs a
  477. /// new template argument from the transformed result. Subclasses may
  478. /// override this function to provide alternate behavior.
  479. ///
  480. /// Returns true if there was an error.
  481. bool TransformTemplateArgument(const TemplateArgumentLoc &Input,
  482. TemplateArgumentLoc &Output,
  483. bool Uneval = false);
  484. /// Transform the given set of template arguments.
  485. ///
  486. /// By default, this operation transforms all of the template arguments
  487. /// in the input set using \c TransformTemplateArgument(), and appends
  488. /// the transformed arguments to the output list.
  489. ///
  490. /// Note that this overload of \c TransformTemplateArguments() is merely
  491. /// a convenience function. Subclasses that wish to override this behavior
  492. /// should override the iterator-based member template version.
  493. ///
  494. /// \param Inputs The set of template arguments to be transformed.
  495. ///
  496. /// \param NumInputs The number of template arguments in \p Inputs.
  497. ///
  498. /// \param Outputs The set of transformed template arguments output by this
  499. /// routine.
  500. ///
  501. /// Returns true if an error occurred.
  502. bool TransformTemplateArguments(const TemplateArgumentLoc *Inputs,
  503. unsigned NumInputs,
  504. TemplateArgumentListInfo &Outputs,
  505. bool Uneval = false) {
  506. return TransformTemplateArguments(Inputs, Inputs + NumInputs, Outputs,
  507. Uneval);
  508. }
  509. /// Transform the given set of template arguments.
  510. ///
  511. /// By default, this operation transforms all of the template arguments
  512. /// in the input set using \c TransformTemplateArgument(), and appends
  513. /// the transformed arguments to the output list.
  514. ///
  515. /// \param First An iterator to the first template argument.
  516. ///
  517. /// \param Last An iterator one step past the last template argument.
  518. ///
  519. /// \param Outputs The set of transformed template arguments output by this
  520. /// routine.
  521. ///
  522. /// Returns true if an error occurred.
  523. template<typename InputIterator>
  524. bool TransformTemplateArguments(InputIterator First,
  525. InputIterator Last,
  526. TemplateArgumentListInfo &Outputs,
  527. bool Uneval = false);
  528. /// Fakes up a TemplateArgumentLoc for a given TemplateArgument.
  529. void InventTemplateArgumentLoc(const TemplateArgument &Arg,
  530. TemplateArgumentLoc &ArgLoc);
  531. /// Fakes up a TypeSourceInfo for a type.
  532. TypeSourceInfo *InventTypeSourceInfo(QualType T) {
  533. return SemaRef.Context.getTrivialTypeSourceInfo(T,
  534. getDerived().getBaseLocation());
  535. }
  536. #define ABSTRACT_TYPELOC(CLASS, PARENT)
  537. #define TYPELOC(CLASS, PARENT) \
  538. QualType Transform##CLASS##Type(TypeLocBuilder &TLB, CLASS##TypeLoc T);
  539. #include "clang/AST/TypeLocNodes.def"
  540. template<typename Fn>
  541. QualType TransformFunctionProtoType(TypeLocBuilder &TLB,
  542. FunctionProtoTypeLoc TL,
  543. CXXRecordDecl *ThisContext,
  544. unsigned ThisTypeQuals,
  545. Fn TransformExceptionSpec);
  546. bool TransformExceptionSpec(SourceLocation Loc,
  547. FunctionProtoType::ExceptionSpecInfo &ESI,
  548. SmallVectorImpl<QualType> &Exceptions,
  549. bool &Changed);
  550. StmtResult TransformSEHHandler(Stmt *Handler);
  551. QualType
  552. TransformTemplateSpecializationType(TypeLocBuilder &TLB,
  553. TemplateSpecializationTypeLoc TL,
  554. TemplateName Template);
  555. QualType
  556. TransformDependentTemplateSpecializationType(TypeLocBuilder &TLB,
  557. DependentTemplateSpecializationTypeLoc TL,
  558. TemplateName Template,
  559. CXXScopeSpec &SS);
  560. QualType TransformDependentTemplateSpecializationType(
  561. TypeLocBuilder &TLB, DependentTemplateSpecializationTypeLoc TL,
  562. NestedNameSpecifierLoc QualifierLoc);
  563. /// Transforms the parameters of a function type into the
  564. /// given vectors.
  565. ///
  566. /// The result vectors should be kept in sync; null entries in the
  567. /// variables vector are acceptable.
  568. ///
  569. /// Return true on error.
  570. bool TransformFunctionTypeParams(
  571. SourceLocation Loc, ArrayRef<ParmVarDecl *> Params,
  572. const QualType *ParamTypes,
  573. const FunctionProtoType::ExtParameterInfo *ParamInfos,
  574. SmallVectorImpl<QualType> &PTypes, SmallVectorImpl<ParmVarDecl *> *PVars,
  575. Sema::ExtParameterInfoBuilder &PInfos);
  576. /// Transforms a single function-type parameter. Return null
  577. /// on error.
  578. ///
  579. /// \param indexAdjustment - A number to add to the parameter's
  580. /// scope index; can be negative
  581. ParmVarDecl *TransformFunctionTypeParam(ParmVarDecl *OldParm,
  582. int indexAdjustment,
  583. Optional<unsigned> NumExpansions,
  584. bool ExpectParameterPack);
  585. QualType TransformReferenceType(TypeLocBuilder &TLB, ReferenceTypeLoc TL);
  586. StmtResult TransformCompoundStmt(CompoundStmt *S, bool IsStmtExpr);
  587. ExprResult TransformCXXNamedCastExpr(CXXNamedCastExpr *E);
  588. TemplateParameterList *TransformTemplateParameterList(
  589. TemplateParameterList *TPL) {
  590. return TPL;
  591. }
  592. ExprResult TransformAddressOfOperand(Expr *E);
  593. ExprResult TransformDependentScopeDeclRefExpr(DependentScopeDeclRefExpr *E,
  594. bool IsAddressOfOperand,
  595. TypeSourceInfo **RecoveryTSI);
  596. ExprResult TransformParenDependentScopeDeclRefExpr(
  597. ParenExpr *PE, DependentScopeDeclRefExpr *DRE, bool IsAddressOfOperand,
  598. TypeSourceInfo **RecoveryTSI);
  599. StmtResult TransformOMPExecutableDirective(OMPExecutableDirective *S);
  600. // FIXME: We use LLVM_ATTRIBUTE_NOINLINE because inlining causes a ridiculous
  601. // amount of stack usage with clang.
  602. #define STMT(Node, Parent) \
  603. LLVM_ATTRIBUTE_NOINLINE \
  604. StmtResult Transform##Node(Node *S);
  605. #define EXPR(Node, Parent) \
  606. LLVM_ATTRIBUTE_NOINLINE \
  607. ExprResult Transform##Node(Node *E);
  608. #define ABSTRACT_STMT(Stmt)
  609. #include "clang/AST/StmtNodes.inc"
  610. #define OPENMP_CLAUSE(Name, Class) \
  611. LLVM_ATTRIBUTE_NOINLINE \
  612. OMPClause *Transform ## Class(Class *S);
  613. #include "clang/Basic/OpenMPKinds.def"
  614. /// Build a new qualified type given its unqualified type and type
  615. /// qualifiers.
  616. ///
  617. /// By default, this routine adds type qualifiers only to types that can
  618. /// have qualifiers, and silently suppresses those qualifiers that are not
  619. /// permitted. Subclasses may override this routine to provide different
  620. /// behavior.
  621. QualType RebuildQualifiedType(QualType T, SourceLocation Loc,
  622. Qualifiers Quals);
  623. /// Build a new pointer type given its pointee type.
  624. ///
  625. /// By default, performs semantic analysis when building the pointer type.
  626. /// Subclasses may override this routine to provide different behavior.
  627. QualType RebuildPointerType(QualType PointeeType, SourceLocation Sigil);
  628. /// Build a new block pointer type given its pointee type.
  629. ///
  630. /// By default, performs semantic analysis when building the block pointer
  631. /// type. Subclasses may override this routine to provide different behavior.
  632. QualType RebuildBlockPointerType(QualType PointeeType, SourceLocation Sigil);
  633. /// Build a new reference type given the type it references.
  634. ///
  635. /// By default, performs semantic analysis when building the
  636. /// reference type. Subclasses may override this routine to provide
  637. /// different behavior.
  638. ///
  639. /// \param LValue whether the type was written with an lvalue sigil
  640. /// or an rvalue sigil.
  641. QualType RebuildReferenceType(QualType ReferentType,
  642. bool LValue,
  643. SourceLocation Sigil);
  644. /// Build a new member pointer type given the pointee type and the
  645. /// class type it refers into.
  646. ///
  647. /// By default, performs semantic analysis when building the member pointer
  648. /// type. Subclasses may override this routine to provide different behavior.
  649. QualType RebuildMemberPointerType(QualType PointeeType, QualType ClassType,
  650. SourceLocation Sigil);
  651. QualType RebuildObjCTypeParamType(const ObjCTypeParamDecl *Decl,
  652. SourceLocation ProtocolLAngleLoc,
  653. ArrayRef<ObjCProtocolDecl *> Protocols,
  654. ArrayRef<SourceLocation> ProtocolLocs,
  655. SourceLocation ProtocolRAngleLoc);
  656. /// Build an Objective-C object type.
  657. ///
  658. /// By default, performs semantic analysis when building the object type.
  659. /// Subclasses may override this routine to provide different behavior.
  660. QualType RebuildObjCObjectType(QualType BaseType,
  661. SourceLocation Loc,
  662. SourceLocation TypeArgsLAngleLoc,
  663. ArrayRef<TypeSourceInfo *> TypeArgs,
  664. SourceLocation TypeArgsRAngleLoc,
  665. SourceLocation ProtocolLAngleLoc,
  666. ArrayRef<ObjCProtocolDecl *> Protocols,
  667. ArrayRef<SourceLocation> ProtocolLocs,
  668. SourceLocation ProtocolRAngleLoc);
  669. /// Build a new Objective-C object pointer type given the pointee type.
  670. ///
  671. /// By default, directly builds the pointer type, with no additional semantic
  672. /// analysis.
  673. QualType RebuildObjCObjectPointerType(QualType PointeeType,
  674. SourceLocation Star);
  675. /// Build a new array type given the element type, size
  676. /// modifier, size of the array (if known), size expression, and index type
  677. /// qualifiers.
  678. ///
  679. /// By default, performs semantic analysis when building the array type.
  680. /// Subclasses may override this routine to provide different behavior.
  681. /// Also by default, all of the other Rebuild*Array
  682. QualType RebuildArrayType(QualType ElementType,
  683. ArrayType::ArraySizeModifier SizeMod,
  684. const llvm::APInt *Size,
  685. Expr *SizeExpr,
  686. unsigned IndexTypeQuals,
  687. SourceRange BracketsRange);
  688. /// Build a new constant array type given the element type, size
  689. /// modifier, (known) size of the array, and index type qualifiers.
  690. ///
  691. /// By default, performs semantic analysis when building the array type.
  692. /// Subclasses may override this routine to provide different behavior.
  693. QualType RebuildConstantArrayType(QualType ElementType,
  694. ArrayType::ArraySizeModifier SizeMod,
  695. const llvm::APInt &Size,
  696. unsigned IndexTypeQuals,
  697. SourceRange BracketsRange);
  698. /// Build a new incomplete array type given the element type, size
  699. /// modifier, and index type qualifiers.
  700. ///
  701. /// By default, performs semantic analysis when building the array type.
  702. /// Subclasses may override this routine to provide different behavior.
  703. QualType RebuildIncompleteArrayType(QualType ElementType,
  704. ArrayType::ArraySizeModifier SizeMod,
  705. unsigned IndexTypeQuals,
  706. SourceRange BracketsRange);
  707. /// Build a new variable-length array type given the element type,
  708. /// size modifier, size expression, and index type qualifiers.
  709. ///
  710. /// By default, performs semantic analysis when building the array type.
  711. /// Subclasses may override this routine to provide different behavior.
  712. QualType RebuildVariableArrayType(QualType ElementType,
  713. ArrayType::ArraySizeModifier SizeMod,
  714. Expr *SizeExpr,
  715. unsigned IndexTypeQuals,
  716. SourceRange BracketsRange);
  717. /// Build a new dependent-sized array type given the element type,
  718. /// size modifier, size expression, and index type qualifiers.
  719. ///
  720. /// By default, performs semantic analysis when building the array type.
  721. /// Subclasses may override this routine to provide different behavior.
  722. QualType RebuildDependentSizedArrayType(QualType ElementType,
  723. ArrayType::ArraySizeModifier SizeMod,
  724. Expr *SizeExpr,
  725. unsigned IndexTypeQuals,
  726. SourceRange BracketsRange);
  727. /// Build a new vector type given the element type and
  728. /// number of elements.
  729. ///
  730. /// By default, performs semantic analysis when building the vector type.
  731. /// Subclasses may override this routine to provide different behavior.
  732. QualType RebuildVectorType(QualType ElementType, unsigned NumElements,
  733. VectorType::VectorKind VecKind);
  734. /// Build a new potentially dependently-sized extended vector type
  735. /// given the element type and number of elements.
  736. ///
  737. /// By default, performs semantic analysis when building the vector type.
  738. /// Subclasses may override this routine to provide different behavior.
  739. QualType RebuildDependentVectorType(QualType ElementType, Expr *SizeExpr,
  740. SourceLocation AttributeLoc,
  741. VectorType::VectorKind);
  742. /// Build a new extended vector type given the element type and
  743. /// number of elements.
  744. ///
  745. /// By default, performs semantic analysis when building the vector type.
  746. /// Subclasses may override this routine to provide different behavior.
  747. QualType RebuildExtVectorType(QualType ElementType, unsigned NumElements,
  748. SourceLocation AttributeLoc);
  749. /// Build a new potentially dependently-sized extended vector type
  750. /// given the element type and number of elements.
  751. ///
  752. /// By default, performs semantic analysis when building the vector type.
  753. /// Subclasses may override this routine to provide different behavior.
  754. QualType RebuildDependentSizedExtVectorType(QualType ElementType,
  755. Expr *SizeExpr,
  756. SourceLocation AttributeLoc);
  757. /// Build a new DependentAddressSpaceType or return the pointee
  758. /// type variable with the correct address space (retrieved from
  759. /// AddrSpaceExpr) applied to it. The former will be returned in cases
  760. /// where the address space remains dependent.
  761. ///
  762. /// By default, performs semantic analysis when building the type with address
  763. /// space applied. Subclasses may override this routine to provide different
  764. /// behavior.
  765. QualType RebuildDependentAddressSpaceType(QualType PointeeType,
  766. Expr *AddrSpaceExpr,
  767. SourceLocation AttributeLoc);
  768. /// Build a new function type.
  769. ///
  770. /// By default, performs semantic analysis when building the function type.
  771. /// Subclasses may override this routine to provide different behavior.
  772. QualType RebuildFunctionProtoType(QualType T,
  773. MutableArrayRef<QualType> ParamTypes,
  774. const FunctionProtoType::ExtProtoInfo &EPI);
  775. /// Build a new unprototyped function type.
  776. QualType RebuildFunctionNoProtoType(QualType ResultType);
  777. /// Rebuild an unresolved typename type, given the decl that
  778. /// the UnresolvedUsingTypenameDecl was transformed to.
  779. QualType RebuildUnresolvedUsingType(SourceLocation NameLoc, Decl *D);
  780. /// Build a new typedef type.
  781. QualType RebuildTypedefType(TypedefNameDecl *Typedef) {
  782. return SemaRef.Context.getTypeDeclType(Typedef);
  783. }
  784. /// Build a new class/struct/union type.
  785. QualType RebuildRecordType(RecordDecl *Record) {
  786. return SemaRef.Context.getTypeDeclType(Record);
  787. }
  788. /// Build a new Enum type.
  789. QualType RebuildEnumType(EnumDecl *Enum) {
  790. return SemaRef.Context.getTypeDeclType(Enum);
  791. }
  792. /// Build a new typeof(expr) type.
  793. ///
  794. /// By default, performs semantic analysis when building the typeof type.
  795. /// Subclasses may override this routine to provide different behavior.
  796. QualType RebuildTypeOfExprType(Expr *Underlying, SourceLocation Loc);
  797. /// Build a new typeof(type) type.
  798. ///
  799. /// By default, builds a new TypeOfType with the given underlying type.
  800. QualType RebuildTypeOfType(QualType Underlying);
  801. /// Build a new unary transform type.
  802. QualType RebuildUnaryTransformType(QualType BaseType,
  803. UnaryTransformType::UTTKind UKind,
  804. SourceLocation Loc);
  805. /// Build a new C++11 decltype type.
  806. ///
  807. /// By default, performs semantic analysis when building the decltype type.
  808. /// Subclasses may override this routine to provide different behavior.
  809. QualType RebuildDecltypeType(Expr *Underlying, SourceLocation Loc);
  810. /// Build a new C++11 auto type.
  811. ///
  812. /// By default, builds a new AutoType with the given deduced type.
  813. QualType RebuildAutoType(QualType Deduced, AutoTypeKeyword Keyword) {
  814. // Note, IsDependent is always false here: we implicitly convert an 'auto'
  815. // which has been deduced to a dependent type into an undeduced 'auto', so
  816. // that we'll retry deduction after the transformation.
  817. return SemaRef.Context.getAutoType(Deduced, Keyword,
  818. /*IsDependent*/ false);
  819. }
  820. /// By default, builds a new DeducedTemplateSpecializationType with the given
  821. /// deduced type.
  822. QualType RebuildDeducedTemplateSpecializationType(TemplateName Template,
  823. QualType Deduced) {
  824. return SemaRef.Context.getDeducedTemplateSpecializationType(
  825. Template, Deduced, /*IsDependent*/ false);
  826. }
  827. /// Build a new template specialization type.
  828. ///
  829. /// By default, performs semantic analysis when building the template
  830. /// specialization type. Subclasses may override this routine to provide
  831. /// different behavior.
  832. QualType RebuildTemplateSpecializationType(TemplateName Template,
  833. SourceLocation TemplateLoc,
  834. TemplateArgumentListInfo &Args);
  835. /// Build a new parenthesized type.
  836. ///
  837. /// By default, builds a new ParenType type from the inner type.
  838. /// Subclasses may override this routine to provide different behavior.
  839. QualType RebuildParenType(QualType InnerType) {
  840. return SemaRef.BuildParenType(InnerType);
  841. }
  842. /// Build a new qualified name type.
  843. ///
  844. /// By default, builds a new ElaboratedType type from the keyword,
  845. /// the nested-name-specifier and the named type.
  846. /// Subclasses may override this routine to provide different behavior.
  847. QualType RebuildElaboratedType(SourceLocation KeywordLoc,
  848. ElaboratedTypeKeyword Keyword,
  849. NestedNameSpecifierLoc QualifierLoc,
  850. QualType Named) {
  851. return SemaRef.Context.getElaboratedType(Keyword,
  852. QualifierLoc.getNestedNameSpecifier(),
  853. Named);
  854. }
  855. /// Build a new typename type that refers to a template-id.
  856. ///
  857. /// By default, builds a new DependentNameType type from the
  858. /// nested-name-specifier and the given type. Subclasses may override
  859. /// this routine to provide different behavior.
  860. QualType RebuildDependentTemplateSpecializationType(
  861. ElaboratedTypeKeyword Keyword,
  862. NestedNameSpecifierLoc QualifierLoc,
  863. SourceLocation TemplateKWLoc,
  864. const IdentifierInfo *Name,
  865. SourceLocation NameLoc,
  866. TemplateArgumentListInfo &Args,
  867. bool AllowInjectedClassName) {
  868. // Rebuild the template name.
  869. // TODO: avoid TemplateName abstraction
  870. CXXScopeSpec SS;
  871. SS.Adopt(QualifierLoc);
  872. TemplateName InstName = getDerived().RebuildTemplateName(
  873. SS, TemplateKWLoc, *Name, NameLoc, QualType(), nullptr,
  874. AllowInjectedClassName);
  875. if (InstName.isNull())
  876. return QualType();
  877. // If it's still dependent, make a dependent specialization.
  878. if (InstName.getAsDependentTemplateName())
  879. return SemaRef.Context.getDependentTemplateSpecializationType(Keyword,
  880. QualifierLoc.getNestedNameSpecifier(),
  881. Name,
  882. Args);
  883. // Otherwise, make an elaborated type wrapping a non-dependent
  884. // specialization.
  885. QualType T =
  886. getDerived().RebuildTemplateSpecializationType(InstName, NameLoc, Args);
  887. if (T.isNull()) return QualType();
  888. if (Keyword == ETK_None && QualifierLoc.getNestedNameSpecifier() == nullptr)
  889. return T;
  890. return SemaRef.Context.getElaboratedType(Keyword,
  891. QualifierLoc.getNestedNameSpecifier(),
  892. T);
  893. }
  894. /// Build a new typename type that refers to an identifier.
  895. ///
  896. /// By default, performs semantic analysis when building the typename type
  897. /// (or elaborated type). Subclasses may override this routine to provide
  898. /// different behavior.
  899. QualType RebuildDependentNameType(ElaboratedTypeKeyword Keyword,
  900. SourceLocation KeywordLoc,
  901. NestedNameSpecifierLoc QualifierLoc,
  902. const IdentifierInfo *Id,
  903. SourceLocation IdLoc,
  904. bool DeducedTSTContext) {
  905. CXXScopeSpec SS;
  906. SS.Adopt(QualifierLoc);
  907. if (QualifierLoc.getNestedNameSpecifier()->isDependent()) {
  908. // If the name is still dependent, just build a new dependent name type.
  909. if (!SemaRef.computeDeclContext(SS))
  910. return SemaRef.Context.getDependentNameType(Keyword,
  911. QualifierLoc.getNestedNameSpecifier(),
  912. Id);
  913. }
  914. if (Keyword == ETK_None || Keyword == ETK_Typename) {
  915. QualType T = SemaRef.CheckTypenameType(Keyword, KeywordLoc, QualifierLoc,
  916. *Id, IdLoc);
  917. // If a dependent name resolves to a deduced template specialization type,
  918. // check that we're in one of the syntactic contexts permitting it.
  919. if (!DeducedTSTContext) {
  920. if (auto *Deduced = dyn_cast_or_null<DeducedTemplateSpecializationType>(
  921. T.isNull() ? nullptr : T->getContainedDeducedType())) {
  922. SemaRef.Diag(IdLoc, diag::err_dependent_deduced_tst)
  923. << (int)SemaRef.getTemplateNameKindForDiagnostics(
  924. Deduced->getTemplateName())
  925. << QualType(QualifierLoc.getNestedNameSpecifier()->getAsType(), 0);
  926. if (auto *TD = Deduced->getTemplateName().getAsTemplateDecl())
  927. SemaRef.Diag(TD->getLocation(), diag::note_template_decl_here);
  928. return QualType();
  929. }
  930. }
  931. return T;
  932. }
  933. TagTypeKind Kind = TypeWithKeyword::getTagTypeKindForKeyword(Keyword);
  934. // We had a dependent elaborated-type-specifier that has been transformed
  935. // into a non-dependent elaborated-type-specifier. Find the tag we're
  936. // referring to.
  937. LookupResult Result(SemaRef, Id, IdLoc, Sema::LookupTagName);
  938. DeclContext *DC = SemaRef.computeDeclContext(SS, false);
  939. if (!DC)
  940. return QualType();
  941. if (SemaRef.RequireCompleteDeclContext(SS, DC))
  942. return QualType();
  943. TagDecl *Tag = nullptr;
  944. SemaRef.LookupQualifiedName(Result, DC);
  945. switch (Result.getResultKind()) {
  946. case LookupResult::NotFound:
  947. case LookupResult::NotFoundInCurrentInstantiation:
  948. break;
  949. case LookupResult::Found:
  950. Tag = Result.getAsSingle<TagDecl>();
  951. break;
  952. case LookupResult::FoundOverloaded:
  953. case LookupResult::FoundUnresolvedValue:
  954. llvm_unreachable("Tag lookup cannot find non-tags");
  955. case LookupResult::Ambiguous:
  956. // Let the LookupResult structure handle ambiguities.
  957. return QualType();
  958. }
  959. if (!Tag) {
  960. // Check where the name exists but isn't a tag type and use that to emit
  961. // better diagnostics.
  962. LookupResult Result(SemaRef, Id, IdLoc, Sema::LookupTagName);
  963. SemaRef.LookupQualifiedName(Result, DC);
  964. switch (Result.getResultKind()) {
  965. case LookupResult::Found:
  966. case LookupResult::FoundOverloaded:
  967. case LookupResult::FoundUnresolvedValue: {
  968. NamedDecl *SomeDecl = Result.getRepresentativeDecl();
  969. Sema::NonTagKind NTK = SemaRef.getNonTagTypeDeclKind(SomeDecl, Kind);
  970. SemaRef.Diag(IdLoc, diag::err_tag_reference_non_tag) << SomeDecl
  971. << NTK << Kind;
  972. SemaRef.Diag(SomeDecl->getLocation(), diag::note_declared_at);
  973. break;
  974. }
  975. default:
  976. SemaRef.Diag(IdLoc, diag::err_not_tag_in_scope)
  977. << Kind << Id << DC << QualifierLoc.getSourceRange();
  978. break;
  979. }
  980. return QualType();
  981. }
  982. if (!SemaRef.isAcceptableTagRedeclaration(Tag, Kind, /*isDefinition*/false,
  983. IdLoc, Id)) {
  984. SemaRef.Diag(KeywordLoc, diag::err_use_with_wrong_tag) << Id;
  985. SemaRef.Diag(Tag->getLocation(), diag::note_previous_use);
  986. return QualType();
  987. }
  988. // Build the elaborated-type-specifier type.
  989. QualType T = SemaRef.Context.getTypeDeclType(Tag);
  990. return SemaRef.Context.getElaboratedType(Keyword,
  991. QualifierLoc.getNestedNameSpecifier(),
  992. T);
  993. }
  994. /// Build a new pack expansion type.
  995. ///
  996. /// By default, builds a new PackExpansionType type from the given pattern.
  997. /// Subclasses may override this routine to provide different behavior.
  998. QualType RebuildPackExpansionType(QualType Pattern,
  999. SourceRange PatternRange,
  1000. SourceLocation EllipsisLoc,
  1001. Optional<unsigned> NumExpansions) {
  1002. return getSema().CheckPackExpansion(Pattern, PatternRange, EllipsisLoc,
  1003. NumExpansions);
  1004. }
  1005. /// Build a new atomic type given its value type.
  1006. ///
  1007. /// By default, performs semantic analysis when building the atomic type.
  1008. /// Subclasses may override this routine to provide different behavior.
  1009. QualType RebuildAtomicType(QualType ValueType, SourceLocation KWLoc);
  1010. /// Build a new pipe type given its value type.
  1011. QualType RebuildPipeType(QualType ValueType, SourceLocation KWLoc,
  1012. bool isReadPipe);
  1013. /// Build a new template name given a nested name specifier, a flag
  1014. /// indicating whether the "template" keyword was provided, and the template
  1015. /// that the template name refers to.
  1016. ///
  1017. /// By default, builds the new template name directly. Subclasses may override
  1018. /// this routine to provide different behavior.
  1019. TemplateName RebuildTemplateName(CXXScopeSpec &SS,
  1020. bool TemplateKW,
  1021. TemplateDecl *Template);
  1022. /// Build a new template name given a nested name specifier and the
  1023. /// name that is referred to as a template.
  1024. ///
  1025. /// By default, performs semantic analysis to determine whether the name can
  1026. /// be resolved to a specific template, then builds the appropriate kind of
  1027. /// template name. Subclasses may override this routine to provide different
  1028. /// behavior.
  1029. TemplateName RebuildTemplateName(CXXScopeSpec &SS,
  1030. SourceLocation TemplateKWLoc,
  1031. const IdentifierInfo &Name,
  1032. SourceLocation NameLoc, QualType ObjectType,
  1033. NamedDecl *FirstQualifierInScope,
  1034. bool AllowInjectedClassName);
  1035. /// Build a new template name given a nested name specifier and the
  1036. /// overloaded operator name that is referred to as a template.
  1037. ///
  1038. /// By default, performs semantic analysis to determine whether the name can
  1039. /// be resolved to a specific template, then builds the appropriate kind of
  1040. /// template name. Subclasses may override this routine to provide different
  1041. /// behavior.
  1042. TemplateName RebuildTemplateName(CXXScopeSpec &SS,
  1043. SourceLocation TemplateKWLoc,
  1044. OverloadedOperatorKind Operator,
  1045. SourceLocation NameLoc, QualType ObjectType,
  1046. bool AllowInjectedClassName);
  1047. /// Build a new template name given a template template parameter pack
  1048. /// and the
  1049. ///
  1050. /// By default, performs semantic analysis to determine whether the name can
  1051. /// be resolved to a specific template, then builds the appropriate kind of
  1052. /// template name. Subclasses may override this routine to provide different
  1053. /// behavior.
  1054. TemplateName RebuildTemplateName(TemplateTemplateParmDecl *Param,
  1055. const TemplateArgument &ArgPack) {
  1056. return getSema().Context.getSubstTemplateTemplateParmPack(Param, ArgPack);
  1057. }
  1058. /// Build a new compound statement.
  1059. ///
  1060. /// By default, performs semantic analysis to build the new statement.
  1061. /// Subclasses may override this routine to provide different behavior.
  1062. StmtResult RebuildCompoundStmt(SourceLocation LBraceLoc,
  1063. MultiStmtArg Statements,
  1064. SourceLocation RBraceLoc,
  1065. bool IsStmtExpr) {
  1066. return getSema().ActOnCompoundStmt(LBraceLoc, RBraceLoc, Statements,
  1067. IsStmtExpr);
  1068. }
  1069. /// Build a new case statement.
  1070. ///
  1071. /// By default, performs semantic analysis to build the new statement.
  1072. /// Subclasses may override this routine to provide different behavior.
  1073. StmtResult RebuildCaseStmt(SourceLocation CaseLoc,
  1074. Expr *LHS,
  1075. SourceLocation EllipsisLoc,
  1076. Expr *RHS,
  1077. SourceLocation ColonLoc) {
  1078. return getSema().ActOnCaseStmt(CaseLoc, LHS, EllipsisLoc, RHS,
  1079. ColonLoc);
  1080. }
  1081. /// Attach the body to a new case statement.
  1082. ///
  1083. /// By default, performs semantic analysis to build the new statement.
  1084. /// Subclasses may override this routine to provide different behavior.
  1085. StmtResult RebuildCaseStmtBody(Stmt *S, Stmt *Body) {
  1086. getSema().ActOnCaseStmtBody(S, Body);
  1087. return S;
  1088. }
  1089. /// Build a new default statement.
  1090. ///
  1091. /// By default, performs semantic analysis to build the new statement.
  1092. /// Subclasses may override this routine to provide different behavior.
  1093. StmtResult RebuildDefaultStmt(SourceLocation DefaultLoc,
  1094. SourceLocation ColonLoc,
  1095. Stmt *SubStmt) {
  1096. return getSema().ActOnDefaultStmt(DefaultLoc, ColonLoc, SubStmt,
  1097. /*CurScope=*/nullptr);
  1098. }
  1099. /// Build a new label statement.
  1100. ///
  1101. /// By default, performs semantic analysis to build the new statement.
  1102. /// Subclasses may override this routine to provide different behavior.
  1103. StmtResult RebuildLabelStmt(SourceLocation IdentLoc, LabelDecl *L,
  1104. SourceLocation ColonLoc, Stmt *SubStmt) {
  1105. return SemaRef.ActOnLabelStmt(IdentLoc, L, ColonLoc, SubStmt);
  1106. }
  1107. /// Build a new label statement.
  1108. ///
  1109. /// By default, performs semantic analysis to build the new statement.
  1110. /// Subclasses may override this routine to provide different behavior.
  1111. StmtResult RebuildAttributedStmt(SourceLocation AttrLoc,
  1112. ArrayRef<const Attr*> Attrs,
  1113. Stmt *SubStmt) {
  1114. return SemaRef.ActOnAttributedStmt(AttrLoc, Attrs, SubStmt);
  1115. }
  1116. /// Build a new "if" statement.
  1117. ///
  1118. /// By default, performs semantic analysis to build the new statement.
  1119. /// Subclasses may override this routine to provide different behavior.
  1120. StmtResult RebuildIfStmt(SourceLocation IfLoc, bool IsConstexpr,
  1121. Sema::ConditionResult Cond, Stmt *Init, Stmt *Then,
  1122. SourceLocation ElseLoc, Stmt *Else) {
  1123. return getSema().ActOnIfStmt(IfLoc, IsConstexpr, Init, Cond, Then,
  1124. ElseLoc, Else);
  1125. }
  1126. /// Start building a new switch statement.
  1127. ///
  1128. /// By default, performs semantic analysis to build the new statement.
  1129. /// Subclasses may override this routine to provide different behavior.
  1130. StmtResult RebuildSwitchStmtStart(SourceLocation SwitchLoc, Stmt *Init,
  1131. Sema::ConditionResult Cond) {
  1132. return getSema().ActOnStartOfSwitchStmt(SwitchLoc, Init, Cond);
  1133. }
  1134. /// Attach the body to the switch statement.
  1135. ///
  1136. /// By default, performs semantic analysis to build the new statement.
  1137. /// Subclasses may override this routine to provide different behavior.
  1138. StmtResult RebuildSwitchStmtBody(SourceLocation SwitchLoc,
  1139. Stmt *Switch, Stmt *Body) {
  1140. return getSema().ActOnFinishSwitchStmt(SwitchLoc, Switch, Body);
  1141. }
  1142. /// Build a new while statement.
  1143. ///
  1144. /// By default, performs semantic analysis to build the new statement.
  1145. /// Subclasses may override this routine to provide different behavior.
  1146. StmtResult RebuildWhileStmt(SourceLocation WhileLoc,
  1147. Sema::ConditionResult Cond, Stmt *Body) {
  1148. return getSema().ActOnWhileStmt(WhileLoc, Cond, Body);
  1149. }
  1150. /// Build a new do-while statement.
  1151. ///
  1152. /// By default, performs semantic analysis to build the new statement.
  1153. /// Subclasses may override this routine to provide different behavior.
  1154. StmtResult RebuildDoStmt(SourceLocation DoLoc, Stmt *Body,
  1155. SourceLocation WhileLoc, SourceLocation LParenLoc,
  1156. Expr *Cond, SourceLocation RParenLoc) {
  1157. return getSema().ActOnDoStmt(DoLoc, Body, WhileLoc, LParenLoc,
  1158. Cond, RParenLoc);
  1159. }
  1160. /// Build a new for statement.
  1161. ///
  1162. /// By default, performs semantic analysis to build the new statement.
  1163. /// Subclasses may override this routine to provide different behavior.
  1164. StmtResult RebuildForStmt(SourceLocation ForLoc, SourceLocation LParenLoc,
  1165. Stmt *Init, Sema::ConditionResult Cond,
  1166. Sema::FullExprArg Inc, SourceLocation RParenLoc,
  1167. Stmt *Body) {
  1168. return getSema().ActOnForStmt(ForLoc, LParenLoc, Init, Cond,
  1169. Inc, RParenLoc, Body);
  1170. }
  1171. /// Build a new goto statement.
  1172. ///
  1173. /// By default, performs semantic analysis to build the new statement.
  1174. /// Subclasses may override this routine to provide different behavior.
  1175. StmtResult RebuildGotoStmt(SourceLocation GotoLoc, SourceLocation LabelLoc,
  1176. LabelDecl *Label) {
  1177. return getSema().ActOnGotoStmt(GotoLoc, LabelLoc, Label);
  1178. }
  1179. /// Build a new indirect goto statement.
  1180. ///
  1181. /// By default, performs semantic analysis to build the new statement.
  1182. /// Subclasses may override this routine to provide different behavior.
  1183. StmtResult RebuildIndirectGotoStmt(SourceLocation GotoLoc,
  1184. SourceLocation StarLoc,
  1185. Expr *Target) {
  1186. return getSema().ActOnIndirectGotoStmt(GotoLoc, StarLoc, Target);
  1187. }
  1188. /// Build a new return statement.
  1189. ///
  1190. /// By default, performs semantic analysis to build the new statement.
  1191. /// Subclasses may override this routine to provide different behavior.
  1192. StmtResult RebuildReturnStmt(SourceLocation ReturnLoc, Expr *Result) {
  1193. return getSema().BuildReturnStmt(ReturnLoc, Result);
  1194. }
  1195. /// Build a new declaration statement.
  1196. ///
  1197. /// By default, performs semantic analysis to build the new statement.
  1198. /// Subclasses may override this routine to provide different behavior.
  1199. StmtResult RebuildDeclStmt(MutableArrayRef<Decl *> Decls,
  1200. SourceLocation StartLoc, SourceLocation EndLoc) {
  1201. Sema::DeclGroupPtrTy DG = getSema().BuildDeclaratorGroup(Decls);
  1202. return getSema().ActOnDeclStmt(DG, StartLoc, EndLoc);
  1203. }
  1204. /// Build a new inline asm statement.
  1205. ///
  1206. /// By default, performs semantic analysis to build the new statement.
  1207. /// Subclasses may override this routine to provide different behavior.
  1208. StmtResult RebuildGCCAsmStmt(SourceLocation AsmLoc, bool IsSimple,
  1209. bool IsVolatile, unsigned NumOutputs,
  1210. unsigned NumInputs, IdentifierInfo **Names,
  1211. MultiExprArg Constraints, MultiExprArg Exprs,
  1212. Expr *AsmString, MultiExprArg Clobbers,
  1213. SourceLocation RParenLoc) {
  1214. return getSema().ActOnGCCAsmStmt(AsmLoc, IsSimple, IsVolatile, NumOutputs,
  1215. NumInputs, Names, Constraints, Exprs,
  1216. AsmString, Clobbers, RParenLoc);
  1217. }
  1218. /// Build a new MS style inline asm statement.
  1219. ///
  1220. /// By default, performs semantic analysis to build the new statement.
  1221. /// Subclasses may override this routine to provide different behavior.
  1222. StmtResult RebuildMSAsmStmt(SourceLocation AsmLoc, SourceLocation LBraceLoc,
  1223. ArrayRef<Token> AsmToks,
  1224. StringRef AsmString,
  1225. unsigned NumOutputs, unsigned NumInputs,
  1226. ArrayRef<StringRef> Constraints,
  1227. ArrayRef<StringRef> Clobbers,
  1228. ArrayRef<Expr*> Exprs,
  1229. SourceLocation EndLoc) {
  1230. return getSema().ActOnMSAsmStmt(AsmLoc, LBraceLoc, AsmToks, AsmString,
  1231. NumOutputs, NumInputs,
  1232. Constraints, Clobbers, Exprs, EndLoc);
  1233. }
  1234. /// Build a new co_return statement.
  1235. ///
  1236. /// By default, performs semantic analysis to build the new statement.
  1237. /// Subclasses may override this routine to provide different behavior.
  1238. StmtResult RebuildCoreturnStmt(SourceLocation CoreturnLoc, Expr *Result,
  1239. bool IsImplicit) {
  1240. return getSema().BuildCoreturnStmt(CoreturnLoc, Result, IsImplicit);
  1241. }
  1242. /// Build a new co_await expression.
  1243. ///
  1244. /// By default, performs semantic analysis to build the new expression.
  1245. /// Subclasses may override this routine to provide different behavior.
  1246. ExprResult RebuildCoawaitExpr(SourceLocation CoawaitLoc, Expr *Result,
  1247. bool IsImplicit) {
  1248. return getSema().BuildResolvedCoawaitExpr(CoawaitLoc, Result, IsImplicit);
  1249. }
  1250. /// Build a new co_await expression.
  1251. ///
  1252. /// By default, performs semantic analysis to build the new expression.
  1253. /// Subclasses may override this routine to provide different behavior.
  1254. ExprResult RebuildDependentCoawaitExpr(SourceLocation CoawaitLoc,
  1255. Expr *Result,
  1256. UnresolvedLookupExpr *Lookup) {
  1257. return getSema().BuildUnresolvedCoawaitExpr(CoawaitLoc, Result, Lookup);
  1258. }
  1259. /// Build a new co_yield expression.
  1260. ///
  1261. /// By default, performs semantic analysis to build the new expression.
  1262. /// Subclasses may override this routine to provide different behavior.
  1263. ExprResult RebuildCoyieldExpr(SourceLocation CoyieldLoc, Expr *Result) {
  1264. return getSema().BuildCoyieldExpr(CoyieldLoc, Result);
  1265. }
  1266. StmtResult RebuildCoroutineBodyStmt(CoroutineBodyStmt::CtorArgs Args) {
  1267. return getSema().BuildCoroutineBodyStmt(Args);
  1268. }
  1269. /// Build a new Objective-C \@try statement.
  1270. ///
  1271. /// By default, performs semantic analysis to build the new statement.
  1272. /// Subclasses may override this routine to provide different behavior.
  1273. StmtResult RebuildObjCAtTryStmt(SourceLocation AtLoc,
  1274. Stmt *TryBody,
  1275. MultiStmtArg CatchStmts,
  1276. Stmt *Finally) {
  1277. return getSema().ActOnObjCAtTryStmt(AtLoc, TryBody, CatchStmts,
  1278. Finally);
  1279. }
  1280. /// Rebuild an Objective-C exception declaration.
  1281. ///
  1282. /// By default, performs semantic analysis to build the new declaration.
  1283. /// Subclasses may override this routine to provide different behavior.
  1284. VarDecl *RebuildObjCExceptionDecl(VarDecl *ExceptionDecl,
  1285. TypeSourceInfo *TInfo, QualType T) {
  1286. return getSema().BuildObjCExceptionDecl(TInfo, T,
  1287. ExceptionDecl->getInnerLocStart(),
  1288. ExceptionDecl->getLocation(),
  1289. ExceptionDecl->getIdentifier());
  1290. }
  1291. /// Build a new Objective-C \@catch statement.
  1292. ///
  1293. /// By default, performs semantic analysis to build the new statement.
  1294. /// Subclasses may override this routine to provide different behavior.
  1295. StmtResult RebuildObjCAtCatchStmt(SourceLocation AtLoc,
  1296. SourceLocation RParenLoc,
  1297. VarDecl *Var,
  1298. Stmt *Body) {
  1299. return getSema().ActOnObjCAtCatchStmt(AtLoc, RParenLoc,
  1300. Var, Body);
  1301. }
  1302. /// Build a new Objective-C \@finally statement.
  1303. ///
  1304. /// By default, performs semantic analysis to build the new statement.
  1305. /// Subclasses may override this routine to provide different behavior.
  1306. StmtResult RebuildObjCAtFinallyStmt(SourceLocation AtLoc,
  1307. Stmt *Body) {
  1308. return getSema().ActOnObjCAtFinallyStmt(AtLoc, Body);
  1309. }
  1310. /// Build a new Objective-C \@throw statement.
  1311. ///
  1312. /// By default, performs semantic analysis to build the new statement.
  1313. /// Subclasses may override this routine to provide different behavior.
  1314. StmtResult RebuildObjCAtThrowStmt(SourceLocation AtLoc,
  1315. Expr *Operand) {
  1316. return getSema().BuildObjCAtThrowStmt(AtLoc, Operand);
  1317. }
  1318. /// Build a new OpenMP executable directive.
  1319. ///
  1320. /// By default, performs semantic analysis to build the new statement.
  1321. /// Subclasses may override this routine to provide different behavior.
  1322. StmtResult RebuildOMPExecutableDirective(OpenMPDirectiveKind Kind,
  1323. DeclarationNameInfo DirName,
  1324. OpenMPDirectiveKind CancelRegion,
  1325. ArrayRef<OMPClause *> Clauses,
  1326. Stmt *AStmt, SourceLocation StartLoc,
  1327. SourceLocation EndLoc) {
  1328. return getSema().ActOnOpenMPExecutableDirective(
  1329. Kind, DirName, CancelRegion, Clauses, AStmt, StartLoc, EndLoc);
  1330. }
  1331. /// Build a new OpenMP 'if' clause.
  1332. ///
  1333. /// By default, performs semantic analysis to build the new OpenMP clause.
  1334. /// Subclasses may override this routine to provide different behavior.
  1335. OMPClause *RebuildOMPIfClause(OpenMPDirectiveKind NameModifier,
  1336. Expr *Condition, SourceLocation StartLoc,
  1337. SourceLocation LParenLoc,
  1338. SourceLocation NameModifierLoc,
  1339. SourceLocation ColonLoc,
  1340. SourceLocation EndLoc) {
  1341. return getSema().ActOnOpenMPIfClause(NameModifier, Condition, StartLoc,
  1342. LParenLoc, NameModifierLoc, ColonLoc,
  1343. EndLoc);
  1344. }
  1345. /// Build a new OpenMP 'final' clause.
  1346. ///
  1347. /// By default, performs semantic analysis to build the new OpenMP clause.
  1348. /// Subclasses may override this routine to provide different behavior.
  1349. OMPClause *RebuildOMPFinalClause(Expr *Condition, SourceLocation StartLoc,
  1350. SourceLocation LParenLoc,
  1351. SourceLocation EndLoc) {
  1352. return getSema().ActOnOpenMPFinalClause(Condition, StartLoc, LParenLoc,
  1353. EndLoc);
  1354. }
  1355. /// Build a new OpenMP 'num_threads' clause.
  1356. ///
  1357. /// By default, performs semantic analysis to build the new OpenMP clause.
  1358. /// Subclasses may override this routine to provide different behavior.
  1359. OMPClause *RebuildOMPNumThreadsClause(Expr *NumThreads,
  1360. SourceLocation StartLoc,
  1361. SourceLocation LParenLoc,
  1362. SourceLocation EndLoc) {
  1363. return getSema().ActOnOpenMPNumThreadsClause(NumThreads, StartLoc,
  1364. LParenLoc, EndLoc);
  1365. }
  1366. /// Build a new OpenMP 'safelen' clause.
  1367. ///
  1368. /// By default, performs semantic analysis to build the new OpenMP clause.
  1369. /// Subclasses may override this routine to provide different behavior.
  1370. OMPClause *RebuildOMPSafelenClause(Expr *Len, SourceLocation StartLoc,
  1371. SourceLocation LParenLoc,
  1372. SourceLocation EndLoc) {
  1373. return getSema().ActOnOpenMPSafelenClause(Len, StartLoc, LParenLoc, EndLoc);
  1374. }
  1375. /// Build a new OpenMP 'simdlen' clause.
  1376. ///
  1377. /// By default, performs semantic analysis to build the new OpenMP clause.
  1378. /// Subclasses may override this routine to provide different behavior.
  1379. OMPClause *RebuildOMPSimdlenClause(Expr *Len, SourceLocation StartLoc,
  1380. SourceLocation LParenLoc,
  1381. SourceLocation EndLoc) {
  1382. return getSema().ActOnOpenMPSimdlenClause(Len, StartLoc, LParenLoc, EndLoc);
  1383. }
  1384. /// Build a new OpenMP 'collapse' clause.
  1385. ///
  1386. /// By default, performs semantic analysis to build the new OpenMP clause.
  1387. /// Subclasses may override this routine to provide different behavior.
  1388. OMPClause *RebuildOMPCollapseClause(Expr *Num, SourceLocation StartLoc,
  1389. SourceLocation LParenLoc,
  1390. SourceLocation EndLoc) {
  1391. return getSema().ActOnOpenMPCollapseClause(Num, StartLoc, LParenLoc,
  1392. EndLoc);
  1393. }
  1394. /// Build a new OpenMP 'default' clause.
  1395. ///
  1396. /// By default, performs semantic analysis to build the new OpenMP clause.
  1397. /// Subclasses may override this routine to provide different behavior.
  1398. OMPClause *RebuildOMPDefaultClause(OpenMPDefaultClauseKind Kind,
  1399. SourceLocation KindKwLoc,
  1400. SourceLocation StartLoc,
  1401. SourceLocation LParenLoc,
  1402. SourceLocation EndLoc) {
  1403. return getSema().ActOnOpenMPDefaultClause(Kind, KindKwLoc,
  1404. StartLoc, LParenLoc, EndLoc);
  1405. }
  1406. /// Build a new OpenMP 'proc_bind' clause.
  1407. ///
  1408. /// By default, performs semantic analysis to build the new OpenMP clause.
  1409. /// Subclasses may override this routine to provide different behavior.
  1410. OMPClause *RebuildOMPProcBindClause(OpenMPProcBindClauseKind Kind,
  1411. SourceLocation KindKwLoc,
  1412. SourceLocation StartLoc,
  1413. SourceLocation LParenLoc,
  1414. SourceLocation EndLoc) {
  1415. return getSema().ActOnOpenMPProcBindClause(Kind, KindKwLoc,
  1416. StartLoc, LParenLoc, EndLoc);
  1417. }
  1418. /// Build a new OpenMP 'schedule' clause.
  1419. ///
  1420. /// By default, performs semantic analysis to build the new OpenMP clause.
  1421. /// Subclasses may override this routine to provide different behavior.
  1422. OMPClause *RebuildOMPScheduleClause(
  1423. OpenMPScheduleClauseModifier M1, OpenMPScheduleClauseModifier M2,
  1424. OpenMPScheduleClauseKind Kind, Expr *ChunkSize, SourceLocation StartLoc,
  1425. SourceLocation LParenLoc, SourceLocation M1Loc, SourceLocation M2Loc,
  1426. SourceLocation KindLoc, SourceLocation CommaLoc, SourceLocation EndLoc) {
  1427. return getSema().ActOnOpenMPScheduleClause(
  1428. M1, M2, Kind, ChunkSize, StartLoc, LParenLoc, M1Loc, M2Loc, KindLoc,
  1429. CommaLoc, EndLoc);
  1430. }
  1431. /// Build a new OpenMP 'ordered' clause.
  1432. ///
  1433. /// By default, performs semantic analysis to build the new OpenMP clause.
  1434. /// Subclasses may override this routine to provide different behavior.
  1435. OMPClause *RebuildOMPOrderedClause(SourceLocation StartLoc,
  1436. SourceLocation EndLoc,
  1437. SourceLocation LParenLoc, Expr *Num) {
  1438. return getSema().ActOnOpenMPOrderedClause(StartLoc, EndLoc, LParenLoc, Num);
  1439. }
  1440. /// Build a new OpenMP 'private' clause.
  1441. ///
  1442. /// By default, performs semantic analysis to build the new OpenMP clause.
  1443. /// Subclasses may override this routine to provide different behavior.
  1444. OMPClause *RebuildOMPPrivateClause(ArrayRef<Expr *> VarList,
  1445. SourceLocation StartLoc,
  1446. SourceLocation LParenLoc,
  1447. SourceLocation EndLoc) {
  1448. return getSema().ActOnOpenMPPrivateClause(VarList, StartLoc, LParenLoc,
  1449. EndLoc);
  1450. }
  1451. /// Build a new OpenMP 'firstprivate' clause.
  1452. ///
  1453. /// By default, performs semantic analysis to build the new OpenMP clause.
  1454. /// Subclasses may override this routine to provide different behavior.
  1455. OMPClause *RebuildOMPFirstprivateClause(ArrayRef<Expr *> VarList,
  1456. SourceLocation StartLoc,
  1457. SourceLocation LParenLoc,
  1458. SourceLocation EndLoc) {
  1459. return getSema().ActOnOpenMPFirstprivateClause(VarList, StartLoc, LParenLoc,
  1460. EndLoc);
  1461. }
  1462. /// Build a new OpenMP 'lastprivate' clause.
  1463. ///
  1464. /// By default, performs semantic analysis to build the new OpenMP clause.
  1465. /// Subclasses may override this routine to provide different behavior.
  1466. OMPClause *RebuildOMPLastprivateClause(ArrayRef<Expr *> VarList,
  1467. SourceLocation StartLoc,
  1468. SourceLocation LParenLoc,
  1469. SourceLocation EndLoc) {
  1470. return getSema().ActOnOpenMPLastprivateClause(VarList, StartLoc, LParenLoc,
  1471. EndLoc);
  1472. }
  1473. /// Build a new OpenMP 'shared' clause.
  1474. ///
  1475. /// By default, performs semantic analysis to build the new OpenMP clause.
  1476. /// Subclasses may override this routine to provide different behavior.
  1477. OMPClause *RebuildOMPSharedClause(ArrayRef<Expr *> VarList,
  1478. SourceLocation StartLoc,
  1479. SourceLocation LParenLoc,
  1480. SourceLocation EndLoc) {
  1481. return getSema().ActOnOpenMPSharedClause(VarList, StartLoc, LParenLoc,
  1482. EndLoc);
  1483. }
  1484. /// Build a new OpenMP 'reduction' clause.
  1485. ///
  1486. /// By default, performs semantic analysis to build the new statement.
  1487. /// Subclasses may override this routine to provide different behavior.
  1488. OMPClause *RebuildOMPReductionClause(ArrayRef<Expr *> VarList,
  1489. SourceLocation StartLoc,
  1490. SourceLocation LParenLoc,
  1491. SourceLocation ColonLoc,
  1492. SourceLocation EndLoc,
  1493. CXXScopeSpec &ReductionIdScopeSpec,
  1494. const DeclarationNameInfo &ReductionId,
  1495. ArrayRef<Expr *> UnresolvedReductions) {
  1496. return getSema().ActOnOpenMPReductionClause(
  1497. VarList, StartLoc, LParenLoc, ColonLoc, EndLoc, ReductionIdScopeSpec,
  1498. ReductionId, UnresolvedReductions);
  1499. }
  1500. /// Build a new OpenMP 'task_reduction' clause.
  1501. ///
  1502. /// By default, performs semantic analysis to build the new statement.
  1503. /// Subclasses may override this routine to provide different behavior.
  1504. OMPClause *RebuildOMPTaskReductionClause(
  1505. ArrayRef<Expr *> VarList, SourceLocation StartLoc,
  1506. SourceLocation LParenLoc, SourceLocation ColonLoc, SourceLocation EndLoc,
  1507. CXXScopeSpec &ReductionIdScopeSpec,
  1508. const DeclarationNameInfo &ReductionId,
  1509. ArrayRef<Expr *> UnresolvedReductions) {
  1510. return getSema().ActOnOpenMPTaskReductionClause(
  1511. VarList, StartLoc, LParenLoc, ColonLoc, EndLoc, ReductionIdScopeSpec,
  1512. ReductionId, UnresolvedReductions);
  1513. }
  1514. /// Build a new OpenMP 'in_reduction' clause.
  1515. ///
  1516. /// By default, performs semantic analysis to build the new statement.
  1517. /// Subclasses may override this routine to provide different behavior.
  1518. OMPClause *
  1519. RebuildOMPInReductionClause(ArrayRef<Expr *> VarList, SourceLocation StartLoc,
  1520. SourceLocation LParenLoc, SourceLocation ColonLoc,
  1521. SourceLocation EndLoc,
  1522. CXXScopeSpec &ReductionIdScopeSpec,
  1523. const DeclarationNameInfo &ReductionId,
  1524. ArrayRef<Expr *> UnresolvedReductions) {
  1525. return getSema().ActOnOpenMPInReductionClause(
  1526. VarList, StartLoc, LParenLoc, ColonLoc, EndLoc, ReductionIdScopeSpec,
  1527. ReductionId, UnresolvedReductions);
  1528. }
  1529. /// Build a new OpenMP 'linear' clause.
  1530. ///
  1531. /// By default, performs semantic analysis to build the new OpenMP clause.
  1532. /// Subclasses may override this routine to provide different behavior.
  1533. OMPClause *RebuildOMPLinearClause(ArrayRef<Expr *> VarList, Expr *Step,
  1534. SourceLocation StartLoc,
  1535. SourceLocation LParenLoc,
  1536. OpenMPLinearClauseKind Modifier,
  1537. SourceLocation ModifierLoc,
  1538. SourceLocation ColonLoc,
  1539. SourceLocation EndLoc) {
  1540. return getSema().ActOnOpenMPLinearClause(VarList, Step, StartLoc, LParenLoc,
  1541. Modifier, ModifierLoc, ColonLoc,
  1542. EndLoc);
  1543. }
  1544. /// Build a new OpenMP 'aligned' clause.
  1545. ///
  1546. /// By default, performs semantic analysis to build the new OpenMP clause.
  1547. /// Subclasses may override this routine to provide different behavior.
  1548. OMPClause *RebuildOMPAlignedClause(ArrayRef<Expr *> VarList, Expr *Alignment,
  1549. SourceLocation StartLoc,
  1550. SourceLocation LParenLoc,
  1551. SourceLocation ColonLoc,
  1552. SourceLocation EndLoc) {
  1553. return getSema().ActOnOpenMPAlignedClause(VarList, Alignment, StartLoc,
  1554. LParenLoc, ColonLoc, EndLoc);
  1555. }
  1556. /// Build a new OpenMP 'copyin' clause.
  1557. ///
  1558. /// By default, performs semantic analysis to build the new OpenMP clause.
  1559. /// Subclasses may override this routine to provide different behavior.
  1560. OMPClause *RebuildOMPCopyinClause(ArrayRef<Expr *> VarList,
  1561. SourceLocation StartLoc,
  1562. SourceLocation LParenLoc,
  1563. SourceLocation EndLoc) {
  1564. return getSema().ActOnOpenMPCopyinClause(VarList, StartLoc, LParenLoc,
  1565. EndLoc);
  1566. }
  1567. /// Build a new OpenMP 'copyprivate' clause.
  1568. ///
  1569. /// By default, performs semantic analysis to build the new OpenMP clause.
  1570. /// Subclasses may override this routine to provide different behavior.
  1571. OMPClause *RebuildOMPCopyprivateClause(ArrayRef<Expr *> VarList,
  1572. SourceLocation StartLoc,
  1573. SourceLocation LParenLoc,
  1574. SourceLocation EndLoc) {
  1575. return getSema().ActOnOpenMPCopyprivateClause(VarList, StartLoc, LParenLoc,
  1576. EndLoc);
  1577. }
  1578. /// Build a new OpenMP 'flush' pseudo clause.
  1579. ///
  1580. /// By default, performs semantic analysis to build the new OpenMP clause.
  1581. /// Subclasses may override this routine to provide different behavior.
  1582. OMPClause *RebuildOMPFlushClause(ArrayRef<Expr *> VarList,
  1583. SourceLocation StartLoc,
  1584. SourceLocation LParenLoc,
  1585. SourceLocation EndLoc) {
  1586. return getSema().ActOnOpenMPFlushClause(VarList, StartLoc, LParenLoc,
  1587. EndLoc);
  1588. }
  1589. /// Build a new OpenMP 'depend' pseudo clause.
  1590. ///
  1591. /// By default, performs semantic analysis to build the new OpenMP clause.
  1592. /// Subclasses may override this routine to provide different behavior.
  1593. OMPClause *
  1594. RebuildOMPDependClause(OpenMPDependClauseKind DepKind, SourceLocation DepLoc,
  1595. SourceLocation ColonLoc, ArrayRef<Expr *> VarList,
  1596. SourceLocation StartLoc, SourceLocation LParenLoc,
  1597. SourceLocation EndLoc) {
  1598. return getSema().ActOnOpenMPDependClause(DepKind, DepLoc, ColonLoc, VarList,
  1599. StartLoc, LParenLoc, EndLoc);
  1600. }
  1601. /// Build a new OpenMP 'device' clause.
  1602. ///
  1603. /// By default, performs semantic analysis to build the new statement.
  1604. /// Subclasses may override this routine to provide different behavior.
  1605. OMPClause *RebuildOMPDeviceClause(Expr *Device, SourceLocation StartLoc,
  1606. SourceLocation LParenLoc,
  1607. SourceLocation EndLoc) {
  1608. return getSema().ActOnOpenMPDeviceClause(Device, StartLoc, LParenLoc,
  1609. EndLoc);
  1610. }
  1611. /// Build a new OpenMP 'map' clause.
  1612. ///
  1613. /// By default, performs semantic analysis to build the new OpenMP clause.
  1614. /// Subclasses may override this routine to provide different behavior.
  1615. OMPClause *
  1616. RebuildOMPMapClause(OpenMPMapClauseKind MapTypeModifier,
  1617. OpenMPMapClauseKind MapType, bool IsMapTypeImplicit,
  1618. SourceLocation MapLoc, SourceLocation ColonLoc,
  1619. ArrayRef<Expr *> VarList, SourceLocation StartLoc,
  1620. SourceLocation LParenLoc, SourceLocation EndLoc) {
  1621. return getSema().ActOnOpenMPMapClause(MapTypeModifier, MapType,
  1622. IsMapTypeImplicit, MapLoc, ColonLoc,
  1623. VarList, StartLoc, LParenLoc, EndLoc);
  1624. }
  1625. /// Build a new OpenMP 'num_teams' clause.
  1626. ///
  1627. /// By default, performs semantic analysis to build the new statement.
  1628. /// Subclasses may override this routine to provide different behavior.
  1629. OMPClause *RebuildOMPNumTeamsClause(Expr *NumTeams, SourceLocation StartLoc,
  1630. SourceLocation LParenLoc,
  1631. SourceLocation EndLoc) {
  1632. return getSema().ActOnOpenMPNumTeamsClause(NumTeams, StartLoc, LParenLoc,
  1633. EndLoc);
  1634. }
  1635. /// Build a new OpenMP 'thread_limit' clause.
  1636. ///
  1637. /// By default, performs semantic analysis to build the new statement.
  1638. /// Subclasses may override this routine to provide different behavior.
  1639. OMPClause *RebuildOMPThreadLimitClause(Expr *ThreadLimit,
  1640. SourceLocation StartLoc,
  1641. SourceLocation LParenLoc,
  1642. SourceLocation EndLoc) {
  1643. return getSema().ActOnOpenMPThreadLimitClause(ThreadLimit, StartLoc,
  1644. LParenLoc, EndLoc);
  1645. }
  1646. /// Build a new OpenMP 'priority' clause.
  1647. ///
  1648. /// By default, performs semantic analysis to build the new statement.
  1649. /// Subclasses may override this routine to provide different behavior.
  1650. OMPClause *RebuildOMPPriorityClause(Expr *Priority, SourceLocation StartLoc,
  1651. SourceLocation LParenLoc,
  1652. SourceLocation EndLoc) {
  1653. return getSema().ActOnOpenMPPriorityClause(Priority, StartLoc, LParenLoc,
  1654. EndLoc);
  1655. }
  1656. /// Build a new OpenMP 'grainsize' clause.
  1657. ///
  1658. /// By default, performs semantic analysis to build the new statement.
  1659. /// Subclasses may override this routine to provide different behavior.
  1660. OMPClause *RebuildOMPGrainsizeClause(Expr *Grainsize, SourceLocation StartLoc,
  1661. SourceLocation LParenLoc,
  1662. SourceLocation EndLoc) {
  1663. return getSema().ActOnOpenMPGrainsizeClause(Grainsize, StartLoc, LParenLoc,
  1664. EndLoc);
  1665. }
  1666. /// Build a new OpenMP 'num_tasks' clause.
  1667. ///
  1668. /// By default, performs semantic analysis to build the new statement.
  1669. /// Subclasses may override this routine to provide different behavior.
  1670. OMPClause *RebuildOMPNumTasksClause(Expr *NumTasks, SourceLocation StartLoc,
  1671. SourceLocation LParenLoc,
  1672. SourceLocation EndLoc) {
  1673. return getSema().ActOnOpenMPNumTasksClause(NumTasks, StartLoc, LParenLoc,
  1674. EndLoc);
  1675. }
  1676. /// Build a new OpenMP 'hint' clause.
  1677. ///
  1678. /// By default, performs semantic analysis to build the new statement.
  1679. /// Subclasses may override this routine to provide different behavior.
  1680. OMPClause *RebuildOMPHintClause(Expr *Hint, SourceLocation StartLoc,
  1681. SourceLocation LParenLoc,
  1682. SourceLocation EndLoc) {
  1683. return getSema().ActOnOpenMPHintClause(Hint, StartLoc, LParenLoc, EndLoc);
  1684. }
  1685. /// Build a new OpenMP 'dist_schedule' clause.
  1686. ///
  1687. /// By default, performs semantic analysis to build the new OpenMP clause.
  1688. /// Subclasses may override this routine to provide different behavior.
  1689. OMPClause *
  1690. RebuildOMPDistScheduleClause(OpenMPDistScheduleClauseKind Kind,
  1691. Expr *ChunkSize, SourceLocation StartLoc,
  1692. SourceLocation LParenLoc, SourceLocation KindLoc,
  1693. SourceLocation CommaLoc, SourceLocation EndLoc) {
  1694. return getSema().ActOnOpenMPDistScheduleClause(
  1695. Kind, ChunkSize, StartLoc, LParenLoc, KindLoc, CommaLoc, EndLoc);
  1696. }
  1697. /// Build a new OpenMP 'to' clause.
  1698. ///
  1699. /// By default, performs semantic analysis to build the new statement.
  1700. /// Subclasses may override this routine to provide different behavior.
  1701. OMPClause *RebuildOMPToClause(ArrayRef<Expr *> VarList,
  1702. SourceLocation StartLoc,
  1703. SourceLocation LParenLoc,
  1704. SourceLocation EndLoc) {
  1705. return getSema().ActOnOpenMPToClause(VarList, StartLoc, LParenLoc, EndLoc);
  1706. }
  1707. /// Build a new OpenMP 'from' clause.
  1708. ///
  1709. /// By default, performs semantic analysis to build the new statement.
  1710. /// Subclasses may override this routine to provide different behavior.
  1711. OMPClause *RebuildOMPFromClause(ArrayRef<Expr *> VarList,
  1712. SourceLocation StartLoc,
  1713. SourceLocation LParenLoc,
  1714. SourceLocation EndLoc) {
  1715. return getSema().ActOnOpenMPFromClause(VarList, StartLoc, LParenLoc,
  1716. EndLoc);
  1717. }
  1718. /// Build a new OpenMP 'use_device_ptr' clause.
  1719. ///
  1720. /// By default, performs semantic analysis to build the new OpenMP clause.
  1721. /// Subclasses may override this routine to provide different behavior.
  1722. OMPClause *RebuildOMPUseDevicePtrClause(ArrayRef<Expr *> VarList,
  1723. SourceLocation StartLoc,
  1724. SourceLocation LParenLoc,
  1725. SourceLocation EndLoc) {
  1726. return getSema().ActOnOpenMPUseDevicePtrClause(VarList, StartLoc, LParenLoc,
  1727. EndLoc);
  1728. }
  1729. /// Build a new OpenMP 'is_device_ptr' clause.
  1730. ///
  1731. /// By default, performs semantic analysis to build the new OpenMP clause.
  1732. /// Subclasses may override this routine to provide different behavior.
  1733. OMPClause *RebuildOMPIsDevicePtrClause(ArrayRef<Expr *> VarList,
  1734. SourceLocation StartLoc,
  1735. SourceLocation LParenLoc,
  1736. SourceLocation EndLoc) {
  1737. return getSema().ActOnOpenMPIsDevicePtrClause(VarList, StartLoc, LParenLoc,
  1738. EndLoc);
  1739. }
  1740. /// Rebuild the operand to an Objective-C \@synchronized statement.
  1741. ///
  1742. /// By default, performs semantic analysis to build the new statement.
  1743. /// Subclasses may override this routine to provide different behavior.
  1744. ExprResult RebuildObjCAtSynchronizedOperand(SourceLocation atLoc,
  1745. Expr *object) {
  1746. return getSema().ActOnObjCAtSynchronizedOperand(atLoc, object);
  1747. }
  1748. /// Build a new Objective-C \@synchronized statement.
  1749. ///
  1750. /// By default, performs semantic analysis to build the new statement.
  1751. /// Subclasses may override this routine to provide different behavior.
  1752. StmtResult RebuildObjCAtSynchronizedStmt(SourceLocation AtLoc,
  1753. Expr *Object, Stmt *Body) {
  1754. return getSema().ActOnObjCAtSynchronizedStmt(AtLoc, Object, Body);
  1755. }
  1756. /// Build a new Objective-C \@autoreleasepool statement.
  1757. ///
  1758. /// By default, performs semantic analysis to build the new statement.
  1759. /// Subclasses may override this routine to provide different behavior.
  1760. StmtResult RebuildObjCAutoreleasePoolStmt(SourceLocation AtLoc,
  1761. Stmt *Body) {
  1762. return getSema().ActOnObjCAutoreleasePoolStmt(AtLoc, Body);
  1763. }
  1764. /// Build a new Objective-C fast enumeration statement.
  1765. ///
  1766. /// By default, performs semantic analysis to build the new statement.
  1767. /// Subclasses may override this routine to provide different behavior.
  1768. StmtResult RebuildObjCForCollectionStmt(SourceLocation ForLoc,
  1769. Stmt *Element,
  1770. Expr *Collection,
  1771. SourceLocation RParenLoc,
  1772. Stmt *Body) {
  1773. StmtResult ForEachStmt = getSema().ActOnObjCForCollectionStmt(ForLoc,
  1774. Element,
  1775. Collection,
  1776. RParenLoc);
  1777. if (ForEachStmt.isInvalid())
  1778. return StmtError();
  1779. return getSema().FinishObjCForCollectionStmt(ForEachStmt.get(), Body);
  1780. }
  1781. /// Build a new C++ exception declaration.
  1782. ///
  1783. /// By default, performs semantic analysis to build the new decaration.
  1784. /// Subclasses may override this routine to provide different behavior.
  1785. VarDecl *RebuildExceptionDecl(VarDecl *ExceptionDecl,
  1786. TypeSourceInfo *Declarator,
  1787. SourceLocation StartLoc,
  1788. SourceLocation IdLoc,
  1789. IdentifierInfo *Id) {
  1790. VarDecl *Var = getSema().BuildExceptionDeclaration(nullptr, Declarator,
  1791. StartLoc, IdLoc, Id);
  1792. if (Var)
  1793. getSema().CurContext->addDecl(Var);
  1794. return Var;
  1795. }
  1796. /// Build a new C++ catch statement.
  1797. ///
  1798. /// By default, performs semantic analysis to build the new statement.
  1799. /// Subclasses may override this routine to provide different behavior.
  1800. StmtResult RebuildCXXCatchStmt(SourceLocation CatchLoc,
  1801. VarDecl *ExceptionDecl,
  1802. Stmt *Handler) {
  1803. return Owned(new (getSema().Context) CXXCatchStmt(CatchLoc, ExceptionDecl,
  1804. Handler));
  1805. }
  1806. /// Build a new C++ try statement.
  1807. ///
  1808. /// By default, performs semantic analysis to build the new statement.
  1809. /// Subclasses may override this routine to provide different behavior.
  1810. StmtResult RebuildCXXTryStmt(SourceLocation TryLoc, Stmt *TryBlock,
  1811. ArrayRef<Stmt *> Handlers) {
  1812. return getSema().ActOnCXXTryBlock(TryLoc, TryBlock, Handlers);
  1813. }
  1814. /// Build a new C++0x range-based for statement.
  1815. ///
  1816. /// By default, performs semantic analysis to build the new statement.
  1817. /// Subclasses may override this routine to provide different behavior.
  1818. StmtResult RebuildCXXForRangeStmt(SourceLocation ForLoc,
  1819. SourceLocation CoawaitLoc, Stmt *Init,
  1820. SourceLocation ColonLoc, Stmt *Range,
  1821. Stmt *Begin, Stmt *End, Expr *Cond,
  1822. Expr *Inc, Stmt *LoopVar,
  1823. SourceLocation RParenLoc) {
  1824. // If we've just learned that the range is actually an Objective-C
  1825. // collection, treat this as an Objective-C fast enumeration loop.
  1826. if (DeclStmt *RangeStmt = dyn_cast<DeclStmt>(Range)) {
  1827. if (RangeStmt->isSingleDecl()) {
  1828. if (VarDecl *RangeVar = dyn_cast<VarDecl>(RangeStmt->getSingleDecl())) {
  1829. if (RangeVar->isInvalidDecl())
  1830. return StmtError();
  1831. Expr *RangeExpr = RangeVar->getInit();
  1832. if (!RangeExpr->isTypeDependent() &&
  1833. RangeExpr->getType()->isObjCObjectPointerType()) {
  1834. // FIXME: Support init-statements in Objective-C++20 ranged for
  1835. // statement.
  1836. if (Init) {
  1837. return SemaRef.Diag(Init->getBeginLoc(),
  1838. diag::err_objc_for_range_init_stmt)
  1839. << Init->getSourceRange();
  1840. }
  1841. return getSema().ActOnObjCForCollectionStmt(ForLoc, LoopVar,
  1842. RangeExpr, RParenLoc);
  1843. }
  1844. }
  1845. }
  1846. }
  1847. return getSema().BuildCXXForRangeStmt(ForLoc, CoawaitLoc, Init, ColonLoc,
  1848. Range, Begin, End, Cond, Inc, LoopVar,
  1849. RParenLoc, Sema::BFRK_Rebuild);
  1850. }
  1851. /// Build a new C++0x range-based for statement.
  1852. ///
  1853. /// By default, performs semantic analysis to build the new statement.
  1854. /// Subclasses may override this routine to provide different behavior.
  1855. StmtResult RebuildMSDependentExistsStmt(SourceLocation KeywordLoc,
  1856. bool IsIfExists,
  1857. NestedNameSpecifierLoc QualifierLoc,
  1858. DeclarationNameInfo NameInfo,
  1859. Stmt *Nested) {
  1860. return getSema().BuildMSDependentExistsStmt(KeywordLoc, IsIfExists,
  1861. QualifierLoc, NameInfo, Nested);
  1862. }
  1863. /// Attach body to a C++0x range-based for statement.
  1864. ///
  1865. /// By default, performs semantic analysis to finish the new statement.
  1866. /// Subclasses may override this routine to provide different behavior.
  1867. StmtResult FinishCXXForRangeStmt(Stmt *ForRange, Stmt *Body) {
  1868. return getSema().FinishCXXForRangeStmt(ForRange, Body);
  1869. }
  1870. StmtResult RebuildSEHTryStmt(bool IsCXXTry, SourceLocation TryLoc,
  1871. Stmt *TryBlock, Stmt *Handler) {
  1872. return getSema().ActOnSEHTryBlock(IsCXXTry, TryLoc, TryBlock, Handler);
  1873. }
  1874. StmtResult RebuildSEHExceptStmt(SourceLocation Loc, Expr *FilterExpr,
  1875. Stmt *Block) {
  1876. return getSema().ActOnSEHExceptBlock(Loc, FilterExpr, Block);
  1877. }
  1878. StmtResult RebuildSEHFinallyStmt(SourceLocation Loc, Stmt *Block) {
  1879. return SEHFinallyStmt::Create(getSema().getASTContext(), Loc, Block);
  1880. }
  1881. /// Build a new predefined expression.
  1882. ///
  1883. /// By default, performs semantic analysis to build the new expression.
  1884. /// Subclasses may override this routine to provide different behavior.
  1885. ExprResult RebuildPredefinedExpr(SourceLocation Loc,
  1886. PredefinedExpr::IdentType IT) {
  1887. return getSema().BuildPredefinedExpr(Loc, IT);
  1888. }
  1889. /// Build a new expression that references a declaration.
  1890. ///
  1891. /// By default, performs semantic analysis to build the new expression.
  1892. /// Subclasses may override this routine to provide different behavior.
  1893. ExprResult RebuildDeclarationNameExpr(const CXXScopeSpec &SS,
  1894. LookupResult &R,
  1895. bool RequiresADL) {
  1896. return getSema().BuildDeclarationNameExpr(SS, R, RequiresADL);
  1897. }
  1898. /// Build a new expression that references a declaration.
  1899. ///
  1900. /// By default, performs semantic analysis to build the new expression.
  1901. /// Subclasses may override this routine to provide different behavior.
  1902. ExprResult RebuildDeclRefExpr(NestedNameSpecifierLoc QualifierLoc,
  1903. ValueDecl *VD,
  1904. const DeclarationNameInfo &NameInfo,
  1905. TemplateArgumentListInfo *TemplateArgs) {
  1906. CXXScopeSpec SS;
  1907. SS.Adopt(QualifierLoc);
  1908. // FIXME: loses template args.
  1909. return getSema().BuildDeclarationNameExpr(SS, NameInfo, VD);
  1910. }
  1911. /// Build a new expression in parentheses.
  1912. ///
  1913. /// By default, performs semantic analysis to build the new expression.
  1914. /// Subclasses may override this routine to provide different behavior.
  1915. ExprResult RebuildParenExpr(Expr *SubExpr, SourceLocation LParen,
  1916. SourceLocation RParen) {
  1917. return getSema().ActOnParenExpr(LParen, RParen, SubExpr);
  1918. }
  1919. /// Build a new pseudo-destructor expression.
  1920. ///
  1921. /// By default, performs semantic analysis to build the new expression.
  1922. /// Subclasses may override this routine to provide different behavior.
  1923. ExprResult RebuildCXXPseudoDestructorExpr(Expr *Base,
  1924. SourceLocation OperatorLoc,
  1925. bool isArrow,
  1926. CXXScopeSpec &SS,
  1927. TypeSourceInfo *ScopeType,
  1928. SourceLocation CCLoc,
  1929. SourceLocation TildeLoc,
  1930. PseudoDestructorTypeStorage Destroyed);
  1931. /// Build a new unary operator expression.
  1932. ///
  1933. /// By default, performs semantic analysis to build the new expression.
  1934. /// Subclasses may override this routine to provide different behavior.
  1935. ExprResult RebuildUnaryOperator(SourceLocation OpLoc,
  1936. UnaryOperatorKind Opc,
  1937. Expr *SubExpr) {
  1938. return getSema().BuildUnaryOp(/*Scope=*/nullptr, OpLoc, Opc, SubExpr);
  1939. }
  1940. /// Build a new builtin offsetof expression.
  1941. ///
  1942. /// By default, performs semantic analysis to build the new expression.
  1943. /// Subclasses may override this routine to provide different behavior.
  1944. ExprResult RebuildOffsetOfExpr(SourceLocation OperatorLoc,
  1945. TypeSourceInfo *Type,
  1946. ArrayRef<Sema::OffsetOfComponent> Components,
  1947. SourceLocation RParenLoc) {
  1948. return getSema().BuildBuiltinOffsetOf(OperatorLoc, Type, Components,
  1949. RParenLoc);
  1950. }
  1951. /// Build a new sizeof, alignof or vec_step expression with a
  1952. /// type argument.
  1953. ///
  1954. /// By default, performs semantic analysis to build the new expression.
  1955. /// Subclasses may override this routine to provide different behavior.
  1956. ExprResult RebuildUnaryExprOrTypeTrait(TypeSourceInfo *TInfo,
  1957. SourceLocation OpLoc,
  1958. UnaryExprOrTypeTrait ExprKind,
  1959. SourceRange R) {
  1960. return getSema().CreateUnaryExprOrTypeTraitExpr(TInfo, OpLoc, ExprKind, R);
  1961. }
  1962. /// Build a new sizeof, alignof or vec step expression with an
  1963. /// expression argument.
  1964. ///
  1965. /// By default, performs semantic analysis to build the new expression.
  1966. /// Subclasses may override this routine to provide different behavior.
  1967. ExprResult RebuildUnaryExprOrTypeTrait(Expr *SubExpr, SourceLocation OpLoc,
  1968. UnaryExprOrTypeTrait ExprKind,
  1969. SourceRange R) {
  1970. ExprResult Result
  1971. = getSema().CreateUnaryExprOrTypeTraitExpr(SubExpr, OpLoc, ExprKind);
  1972. if (Result.isInvalid())
  1973. return ExprError();
  1974. return Result;
  1975. }
  1976. /// Build a new array subscript expression.
  1977. ///
  1978. /// By default, performs semantic analysis to build the new expression.
  1979. /// Subclasses may override this routine to provide different behavior.
  1980. ExprResult RebuildArraySubscriptExpr(Expr *LHS,
  1981. SourceLocation LBracketLoc,
  1982. Expr *RHS,
  1983. SourceLocation RBracketLoc) {
  1984. return getSema().ActOnArraySubscriptExpr(/*Scope=*/nullptr, LHS,
  1985. LBracketLoc, RHS,
  1986. RBracketLoc);
  1987. }
  1988. /// Build a new array section expression.
  1989. ///
  1990. /// By default, performs semantic analysis to build the new expression.
  1991. /// Subclasses may override this routine to provide different behavior.
  1992. ExprResult RebuildOMPArraySectionExpr(Expr *Base, SourceLocation LBracketLoc,
  1993. Expr *LowerBound,
  1994. SourceLocation ColonLoc, Expr *Length,
  1995. SourceLocation RBracketLoc) {
  1996. return getSema().ActOnOMPArraySectionExpr(Base, LBracketLoc, LowerBound,
  1997. ColonLoc, Length, RBracketLoc);
  1998. }
  1999. /// Build a new call expression.
  2000. ///
  2001. /// By default, performs semantic analysis to build the new expression.
  2002. /// Subclasses may override this routine to provide different behavior.
  2003. ExprResult RebuildCallExpr(Expr *Callee, SourceLocation LParenLoc,
  2004. MultiExprArg Args,
  2005. SourceLocation RParenLoc,
  2006. Expr *ExecConfig = nullptr) {
  2007. return getSema().ActOnCallExpr(/*Scope=*/nullptr, Callee, LParenLoc,
  2008. Args, RParenLoc, ExecConfig);
  2009. }
  2010. /// Build a new member access expression.
  2011. ///
  2012. /// By default, performs semantic analysis to build the new expression.
  2013. /// Subclasses may override this routine to provide different behavior.
  2014. ExprResult RebuildMemberExpr(Expr *Base, SourceLocation OpLoc,
  2015. bool isArrow,
  2016. NestedNameSpecifierLoc QualifierLoc,
  2017. SourceLocation TemplateKWLoc,
  2018. const DeclarationNameInfo &MemberNameInfo,
  2019. ValueDecl *Member,
  2020. NamedDecl *FoundDecl,
  2021. const TemplateArgumentListInfo *ExplicitTemplateArgs,
  2022. NamedDecl *FirstQualifierInScope) {
  2023. ExprResult BaseResult = getSema().PerformMemberExprBaseConversion(Base,
  2024. isArrow);
  2025. if (!Member->getDeclName()) {
  2026. // We have a reference to an unnamed field. This is always the
  2027. // base of an anonymous struct/union member access, i.e. the
  2028. // field is always of record type.
  2029. assert(Member->getType()->isRecordType() &&
  2030. "unnamed member not of record type?");
  2031. BaseResult =
  2032. getSema().PerformObjectMemberConversion(BaseResult.get(),
  2033. QualifierLoc.getNestedNameSpecifier(),
  2034. FoundDecl, Member);
  2035. if (BaseResult.isInvalid())
  2036. return ExprError();
  2037. Base = BaseResult.get();
  2038. CXXScopeSpec EmptySS;
  2039. return getSema().BuildFieldReferenceExpr(
  2040. Base, isArrow, OpLoc, EmptySS, cast<FieldDecl>(Member),
  2041. DeclAccessPair::make(FoundDecl, FoundDecl->getAccess()), MemberNameInfo);
  2042. }
  2043. CXXScopeSpec SS;
  2044. SS.Adopt(QualifierLoc);
  2045. Base = BaseResult.get();
  2046. QualType BaseType = Base->getType();
  2047. if (isArrow && !BaseType->isPointerType())
  2048. return ExprError();
  2049. // FIXME: this involves duplicating earlier analysis in a lot of
  2050. // cases; we should avoid this when possible.
  2051. LookupResult R(getSema(), MemberNameInfo, Sema::LookupMemberName);
  2052. R.addDecl(FoundDecl);
  2053. R.resolveKind();
  2054. return getSema().BuildMemberReferenceExpr(Base, BaseType, OpLoc, isArrow,
  2055. SS, TemplateKWLoc,
  2056. FirstQualifierInScope,
  2057. R, ExplicitTemplateArgs,
  2058. /*S*/nullptr);
  2059. }
  2060. /// Build a new binary operator expression.
  2061. ///
  2062. /// By default, performs semantic analysis to build the new expression.
  2063. /// Subclasses may override this routine to provide different behavior.
  2064. ExprResult RebuildBinaryOperator(SourceLocation OpLoc,
  2065. BinaryOperatorKind Opc,
  2066. Expr *LHS, Expr *RHS) {
  2067. return getSema().BuildBinOp(/*Scope=*/nullptr, OpLoc, Opc, LHS, RHS);
  2068. }
  2069. /// Build a new conditional operator expression.
  2070. ///
  2071. /// By default, performs semantic analysis to build the new expression.
  2072. /// Subclasses may override this routine to provide different behavior.
  2073. ExprResult RebuildConditionalOperator(Expr *Cond,
  2074. SourceLocation QuestionLoc,
  2075. Expr *LHS,
  2076. SourceLocation ColonLoc,
  2077. Expr *RHS) {
  2078. return getSema().ActOnConditionalOp(QuestionLoc, ColonLoc, Cond,
  2079. LHS, RHS);
  2080. }
  2081. /// Build a new C-style cast expression.
  2082. ///
  2083. /// By default, performs semantic analysis to build the new expression.
  2084. /// Subclasses may override this routine to provide different behavior.
  2085. ExprResult RebuildCStyleCastExpr(SourceLocation LParenLoc,
  2086. TypeSourceInfo *TInfo,
  2087. SourceLocation RParenLoc,
  2088. Expr *SubExpr) {
  2089. return getSema().BuildCStyleCastExpr(LParenLoc, TInfo, RParenLoc,
  2090. SubExpr);
  2091. }
  2092. /// Build a new compound literal expression.
  2093. ///
  2094. /// By default, performs semantic analysis to build the new expression.
  2095. /// Subclasses may override this routine to provide different behavior.
  2096. ExprResult RebuildCompoundLiteralExpr(SourceLocation LParenLoc,
  2097. TypeSourceInfo *TInfo,
  2098. SourceLocation RParenLoc,
  2099. Expr *Init) {
  2100. return getSema().BuildCompoundLiteralExpr(LParenLoc, TInfo, RParenLoc,
  2101. Init);
  2102. }
  2103. /// Build a new extended vector element access expression.
  2104. ///
  2105. /// By default, performs semantic analysis to build the new expression.
  2106. /// Subclasses may override this routine to provide different behavior.
  2107. ExprResult RebuildExtVectorElementExpr(Expr *Base,
  2108. SourceLocation OpLoc,
  2109. SourceLocation AccessorLoc,
  2110. IdentifierInfo &Accessor) {
  2111. CXXScopeSpec SS;
  2112. DeclarationNameInfo NameInfo(&Accessor, AccessorLoc);
  2113. return getSema().BuildMemberReferenceExpr(Base, Base->getType(),
  2114. OpLoc, /*IsArrow*/ false,
  2115. SS, SourceLocation(),
  2116. /*FirstQualifierInScope*/ nullptr,
  2117. NameInfo,
  2118. /* TemplateArgs */ nullptr,
  2119. /*S*/ nullptr);
  2120. }
  2121. /// Build a new initializer list expression.
  2122. ///
  2123. /// By default, performs semantic analysis to build the new expression.
  2124. /// Subclasses may override this routine to provide different behavior.
  2125. ExprResult RebuildInitList(SourceLocation LBraceLoc,
  2126. MultiExprArg Inits,
  2127. SourceLocation RBraceLoc) {
  2128. return SemaRef.ActOnInitList(LBraceLoc, Inits, RBraceLoc);
  2129. }
  2130. /// Build a new designated initializer expression.
  2131. ///
  2132. /// By default, performs semantic analysis to build the new expression.
  2133. /// Subclasses may override this routine to provide different behavior.
  2134. ExprResult RebuildDesignatedInitExpr(Designation &Desig,
  2135. MultiExprArg ArrayExprs,
  2136. SourceLocation EqualOrColonLoc,
  2137. bool GNUSyntax,
  2138. Expr *Init) {
  2139. ExprResult Result
  2140. = SemaRef.ActOnDesignatedInitializer(Desig, EqualOrColonLoc, GNUSyntax,
  2141. Init);
  2142. if (Result.isInvalid())
  2143. return ExprError();
  2144. return Result;
  2145. }
  2146. /// Build a new value-initialized expression.
  2147. ///
  2148. /// By default, builds the implicit value initialization without performing
  2149. /// any semantic analysis. Subclasses may override this routine to provide
  2150. /// different behavior.
  2151. ExprResult RebuildImplicitValueInitExpr(QualType T) {
  2152. return new (SemaRef.Context) ImplicitValueInitExpr(T);
  2153. }
  2154. /// Build a new \c va_arg expression.
  2155. ///
  2156. /// By default, performs semantic analysis to build the new expression.
  2157. /// Subclasses may override this routine to provide different behavior.
  2158. ExprResult RebuildVAArgExpr(SourceLocation BuiltinLoc,
  2159. Expr *SubExpr, TypeSourceInfo *TInfo,
  2160. SourceLocation RParenLoc) {
  2161. return getSema().BuildVAArgExpr(BuiltinLoc,
  2162. SubExpr, TInfo,
  2163. RParenLoc);
  2164. }
  2165. /// Build a new expression list in parentheses.
  2166. ///
  2167. /// By default, performs semantic analysis to build the new expression.
  2168. /// Subclasses may override this routine to provide different behavior.
  2169. ExprResult RebuildParenListExpr(SourceLocation LParenLoc,
  2170. MultiExprArg SubExprs,
  2171. SourceLocation RParenLoc) {
  2172. return getSema().ActOnParenListExpr(LParenLoc, RParenLoc, SubExprs);
  2173. }
  2174. /// Build a new address-of-label expression.
  2175. ///
  2176. /// By default, performs semantic analysis, using the name of the label
  2177. /// rather than attempting to map the label statement itself.
  2178. /// Subclasses may override this routine to provide different behavior.
  2179. ExprResult RebuildAddrLabelExpr(SourceLocation AmpAmpLoc,
  2180. SourceLocation LabelLoc, LabelDecl *Label) {
  2181. return getSema().ActOnAddrLabel(AmpAmpLoc, LabelLoc, Label);
  2182. }
  2183. /// Build a new GNU statement expression.
  2184. ///
  2185. /// By default, performs semantic analysis to build the new expression.
  2186. /// Subclasses may override this routine to provide different behavior.
  2187. ExprResult RebuildStmtExpr(SourceLocation LParenLoc,
  2188. Stmt *SubStmt,
  2189. SourceLocation RParenLoc) {
  2190. return getSema().ActOnStmtExpr(LParenLoc, SubStmt, RParenLoc);
  2191. }
  2192. /// Build a new __builtin_choose_expr expression.
  2193. ///
  2194. /// By default, performs semantic analysis to build the new expression.
  2195. /// Subclasses may override this routine to provide different behavior.
  2196. ExprResult RebuildChooseExpr(SourceLocation BuiltinLoc,
  2197. Expr *Cond, Expr *LHS, Expr *RHS,
  2198. SourceLocation RParenLoc) {
  2199. return SemaRef.ActOnChooseExpr(BuiltinLoc,
  2200. Cond, LHS, RHS,
  2201. RParenLoc);
  2202. }
  2203. /// Build a new generic selection expression.
  2204. ///
  2205. /// By default, performs semantic analysis to build the new expression.
  2206. /// Subclasses may override this routine to provide different behavior.
  2207. ExprResult RebuildGenericSelectionExpr(SourceLocation KeyLoc,
  2208. SourceLocation DefaultLoc,
  2209. SourceLocation RParenLoc,
  2210. Expr *ControllingExpr,
  2211. ArrayRef<TypeSourceInfo *> Types,
  2212. ArrayRef<Expr *> Exprs) {
  2213. return getSema().CreateGenericSelectionExpr(KeyLoc, DefaultLoc, RParenLoc,
  2214. ControllingExpr, Types, Exprs);
  2215. }
  2216. /// Build a new overloaded operator call expression.
  2217. ///
  2218. /// By default, performs semantic analysis to build the new expression.
  2219. /// The semantic analysis provides the behavior of template instantiation,
  2220. /// copying with transformations that turn what looks like an overloaded
  2221. /// operator call into a use of a builtin operator, performing
  2222. /// argument-dependent lookup, etc. Subclasses may override this routine to
  2223. /// provide different behavior.
  2224. ExprResult RebuildCXXOperatorCallExpr(OverloadedOperatorKind Op,
  2225. SourceLocation OpLoc,
  2226. Expr *Callee,
  2227. Expr *First,
  2228. Expr *Second);
  2229. /// Build a new C++ "named" cast expression, such as static_cast or
  2230. /// reinterpret_cast.
  2231. ///
  2232. /// By default, this routine dispatches to one of the more-specific routines
  2233. /// for a particular named case, e.g., RebuildCXXStaticCastExpr().
  2234. /// Subclasses may override this routine to provide different behavior.
  2235. ExprResult RebuildCXXNamedCastExpr(SourceLocation OpLoc,
  2236. Stmt::StmtClass Class,
  2237. SourceLocation LAngleLoc,
  2238. TypeSourceInfo *TInfo,
  2239. SourceLocation RAngleLoc,
  2240. SourceLocation LParenLoc,
  2241. Expr *SubExpr,
  2242. SourceLocation RParenLoc) {
  2243. switch (Class) {
  2244. case Stmt::CXXStaticCastExprClass:
  2245. return getDerived().RebuildCXXStaticCastExpr(OpLoc, LAngleLoc, TInfo,
  2246. RAngleLoc, LParenLoc,
  2247. SubExpr, RParenLoc);
  2248. case Stmt::CXXDynamicCastExprClass:
  2249. return getDerived().RebuildCXXDynamicCastExpr(OpLoc, LAngleLoc, TInfo,
  2250. RAngleLoc, LParenLoc,
  2251. SubExpr, RParenLoc);
  2252. case Stmt::CXXReinterpretCastExprClass:
  2253. return getDerived().RebuildCXXReinterpretCastExpr(OpLoc, LAngleLoc, TInfo,
  2254. RAngleLoc, LParenLoc,
  2255. SubExpr,
  2256. RParenLoc);
  2257. case Stmt::CXXConstCastExprClass:
  2258. return getDerived().RebuildCXXConstCastExpr(OpLoc, LAngleLoc, TInfo,
  2259. RAngleLoc, LParenLoc,
  2260. SubExpr, RParenLoc);
  2261. default:
  2262. llvm_unreachable("Invalid C++ named cast");
  2263. }
  2264. }
  2265. /// Build a new C++ static_cast expression.
  2266. ///
  2267. /// By default, performs semantic analysis to build the new expression.
  2268. /// Subclasses may override this routine to provide different behavior.
  2269. ExprResult RebuildCXXStaticCastExpr(SourceLocation OpLoc,
  2270. SourceLocation LAngleLoc,
  2271. TypeSourceInfo *TInfo,
  2272. SourceLocation RAngleLoc,
  2273. SourceLocation LParenLoc,
  2274. Expr *SubExpr,
  2275. SourceLocation RParenLoc) {
  2276. return getSema().BuildCXXNamedCast(OpLoc, tok::kw_static_cast,
  2277. TInfo, SubExpr,
  2278. SourceRange(LAngleLoc, RAngleLoc),
  2279. SourceRange(LParenLoc, RParenLoc));
  2280. }
  2281. /// Build a new C++ dynamic_cast expression.
  2282. ///
  2283. /// By default, performs semantic analysis to build the new expression.
  2284. /// Subclasses may override this routine to provide different behavior.
  2285. ExprResult RebuildCXXDynamicCastExpr(SourceLocation OpLoc,
  2286. SourceLocation LAngleLoc,
  2287. TypeSourceInfo *TInfo,
  2288. SourceLocation RAngleLoc,
  2289. SourceLocation LParenLoc,
  2290. Expr *SubExpr,
  2291. SourceLocation RParenLoc) {
  2292. return getSema().BuildCXXNamedCast(OpLoc, tok::kw_dynamic_cast,
  2293. TInfo, SubExpr,
  2294. SourceRange(LAngleLoc, RAngleLoc),
  2295. SourceRange(LParenLoc, RParenLoc));
  2296. }
  2297. /// Build a new C++ reinterpret_cast expression.
  2298. ///
  2299. /// By default, performs semantic analysis to build the new expression.
  2300. /// Subclasses may override this routine to provide different behavior.
  2301. ExprResult RebuildCXXReinterpretCastExpr(SourceLocation OpLoc,
  2302. SourceLocation LAngleLoc,
  2303. TypeSourceInfo *TInfo,
  2304. SourceLocation RAngleLoc,
  2305. SourceLocation LParenLoc,
  2306. Expr *SubExpr,
  2307. SourceLocation RParenLoc) {
  2308. return getSema().BuildCXXNamedCast(OpLoc, tok::kw_reinterpret_cast,
  2309. TInfo, SubExpr,
  2310. SourceRange(LAngleLoc, RAngleLoc),
  2311. SourceRange(LParenLoc, RParenLoc));
  2312. }
  2313. /// Build a new C++ const_cast expression.
  2314. ///
  2315. /// By default, performs semantic analysis to build the new expression.
  2316. /// Subclasses may override this routine to provide different behavior.
  2317. ExprResult RebuildCXXConstCastExpr(SourceLocation OpLoc,
  2318. SourceLocation LAngleLoc,
  2319. TypeSourceInfo *TInfo,
  2320. SourceLocation RAngleLoc,
  2321. SourceLocation LParenLoc,
  2322. Expr *SubExpr,
  2323. SourceLocation RParenLoc) {
  2324. return getSema().BuildCXXNamedCast(OpLoc, tok::kw_const_cast,
  2325. TInfo, SubExpr,
  2326. SourceRange(LAngleLoc, RAngleLoc),
  2327. SourceRange(LParenLoc, RParenLoc));
  2328. }
  2329. /// Build a new C++ functional-style cast expression.
  2330. ///
  2331. /// By default, performs semantic analysis to build the new expression.
  2332. /// Subclasses may override this routine to provide different behavior.
  2333. ExprResult RebuildCXXFunctionalCastExpr(TypeSourceInfo *TInfo,
  2334. SourceLocation LParenLoc,
  2335. Expr *Sub,
  2336. SourceLocation RParenLoc,
  2337. bool ListInitialization) {
  2338. return getSema().BuildCXXTypeConstructExpr(TInfo, LParenLoc,
  2339. MultiExprArg(&Sub, 1), RParenLoc,
  2340. ListInitialization);
  2341. }
  2342. /// Build a new C++ typeid(type) expression.
  2343. ///
  2344. /// By default, performs semantic analysis to build the new expression.
  2345. /// Subclasses may override this routine to provide different behavior.
  2346. ExprResult RebuildCXXTypeidExpr(QualType TypeInfoType,
  2347. SourceLocation TypeidLoc,
  2348. TypeSourceInfo *Operand,
  2349. SourceLocation RParenLoc) {
  2350. return getSema().BuildCXXTypeId(TypeInfoType, TypeidLoc, Operand,
  2351. RParenLoc);
  2352. }
  2353. /// Build a new C++ typeid(expr) expression.
  2354. ///
  2355. /// By default, performs semantic analysis to build the new expression.
  2356. /// Subclasses may override this routine to provide different behavior.
  2357. ExprResult RebuildCXXTypeidExpr(QualType TypeInfoType,
  2358. SourceLocation TypeidLoc,
  2359. Expr *Operand,
  2360. SourceLocation RParenLoc) {
  2361. return getSema().BuildCXXTypeId(TypeInfoType, TypeidLoc, Operand,
  2362. RParenLoc);
  2363. }
  2364. /// Build a new C++ __uuidof(type) expression.
  2365. ///
  2366. /// By default, performs semantic analysis to build the new expression.
  2367. /// Subclasses may override this routine to provide different behavior.
  2368. ExprResult RebuildCXXUuidofExpr(QualType TypeInfoType,
  2369. SourceLocation TypeidLoc,
  2370. TypeSourceInfo *Operand,
  2371. SourceLocation RParenLoc) {
  2372. return getSema().BuildCXXUuidof(TypeInfoType, TypeidLoc, Operand,
  2373. RParenLoc);
  2374. }
  2375. /// Build a new C++ __uuidof(expr) expression.
  2376. ///
  2377. /// By default, performs semantic analysis to build the new expression.
  2378. /// Subclasses may override this routine to provide different behavior.
  2379. ExprResult RebuildCXXUuidofExpr(QualType TypeInfoType,
  2380. SourceLocation TypeidLoc,
  2381. Expr *Operand,
  2382. SourceLocation RParenLoc) {
  2383. return getSema().BuildCXXUuidof(TypeInfoType, TypeidLoc, Operand,
  2384. RParenLoc);
  2385. }
  2386. /// Build a new C++ "this" expression.
  2387. ///
  2388. /// By default, builds a new "this" expression without performing any
  2389. /// semantic analysis. Subclasses may override this routine to provide
  2390. /// different behavior.
  2391. ExprResult RebuildCXXThisExpr(SourceLocation ThisLoc,
  2392. QualType ThisType,
  2393. bool isImplicit) {
  2394. getSema().CheckCXXThisCapture(ThisLoc);
  2395. return new (getSema().Context) CXXThisExpr(ThisLoc, ThisType, isImplicit);
  2396. }
  2397. /// Build a new C++ throw expression.
  2398. ///
  2399. /// By default, performs semantic analysis to build the new expression.
  2400. /// Subclasses may override this routine to provide different behavior.
  2401. ExprResult RebuildCXXThrowExpr(SourceLocation ThrowLoc, Expr *Sub,
  2402. bool IsThrownVariableInScope) {
  2403. return getSema().BuildCXXThrow(ThrowLoc, Sub, IsThrownVariableInScope);
  2404. }
  2405. /// Build a new C++ default-argument expression.
  2406. ///
  2407. /// By default, builds a new default-argument expression, which does not
  2408. /// require any semantic analysis. Subclasses may override this routine to
  2409. /// provide different behavior.
  2410. ExprResult RebuildCXXDefaultArgExpr(SourceLocation Loc,
  2411. ParmVarDecl *Param) {
  2412. return CXXDefaultArgExpr::Create(getSema().Context, Loc, Param);
  2413. }
  2414. /// Build a new C++11 default-initialization expression.
  2415. ///
  2416. /// By default, builds a new default field initialization expression, which
  2417. /// does not require any semantic analysis. Subclasses may override this
  2418. /// routine to provide different behavior.
  2419. ExprResult RebuildCXXDefaultInitExpr(SourceLocation Loc,
  2420. FieldDecl *Field) {
  2421. return CXXDefaultInitExpr::Create(getSema().Context, Loc, Field);
  2422. }
  2423. /// Build a new C++ zero-initialization expression.
  2424. ///
  2425. /// By default, performs semantic analysis to build the new expression.
  2426. /// Subclasses may override this routine to provide different behavior.
  2427. ExprResult RebuildCXXScalarValueInitExpr(TypeSourceInfo *TSInfo,
  2428. SourceLocation LParenLoc,
  2429. SourceLocation RParenLoc) {
  2430. return getSema().BuildCXXTypeConstructExpr(
  2431. TSInfo, LParenLoc, None, RParenLoc, /*ListInitialization=*/false);
  2432. }
  2433. /// Build a new C++ "new" expression.
  2434. ///
  2435. /// By default, performs semantic analysis to build the new expression.
  2436. /// Subclasses may override this routine to provide different behavior.
  2437. ExprResult RebuildCXXNewExpr(SourceLocation StartLoc,
  2438. bool UseGlobal,
  2439. SourceLocation PlacementLParen,
  2440. MultiExprArg PlacementArgs,
  2441. SourceLocation PlacementRParen,
  2442. SourceRange TypeIdParens,
  2443. QualType AllocatedType,
  2444. TypeSourceInfo *AllocatedTypeInfo,
  2445. Expr *ArraySize,
  2446. SourceRange DirectInitRange,
  2447. Expr *Initializer) {
  2448. return getSema().BuildCXXNew(StartLoc, UseGlobal,
  2449. PlacementLParen,
  2450. PlacementArgs,
  2451. PlacementRParen,
  2452. TypeIdParens,
  2453. AllocatedType,
  2454. AllocatedTypeInfo,
  2455. ArraySize,
  2456. DirectInitRange,
  2457. Initializer);
  2458. }
  2459. /// Build a new C++ "delete" expression.
  2460. ///
  2461. /// By default, performs semantic analysis to build the new expression.
  2462. /// Subclasses may override this routine to provide different behavior.
  2463. ExprResult RebuildCXXDeleteExpr(SourceLocation StartLoc,
  2464. bool IsGlobalDelete,
  2465. bool IsArrayForm,
  2466. Expr *Operand) {
  2467. return getSema().ActOnCXXDelete(StartLoc, IsGlobalDelete, IsArrayForm,
  2468. Operand);
  2469. }
  2470. /// Build a new type trait expression.
  2471. ///
  2472. /// By default, performs semantic analysis to build the new expression.
  2473. /// Subclasses may override this routine to provide different behavior.
  2474. ExprResult RebuildTypeTrait(TypeTrait Trait,
  2475. SourceLocation StartLoc,
  2476. ArrayRef<TypeSourceInfo *> Args,
  2477. SourceLocation RParenLoc) {
  2478. return getSema().BuildTypeTrait(Trait, StartLoc, Args, RParenLoc);
  2479. }
  2480. /// Build a new array type trait expression.
  2481. ///
  2482. /// By default, performs semantic analysis to build the new expression.
  2483. /// Subclasses may override this routine to provide different behavior.
  2484. ExprResult RebuildArrayTypeTrait(ArrayTypeTrait Trait,
  2485. SourceLocation StartLoc,
  2486. TypeSourceInfo *TSInfo,
  2487. Expr *DimExpr,
  2488. SourceLocation RParenLoc) {
  2489. return getSema().BuildArrayTypeTrait(Trait, StartLoc, TSInfo, DimExpr, RParenLoc);
  2490. }
  2491. /// Build a new expression trait expression.
  2492. ///
  2493. /// By default, performs semantic analysis to build the new expression.
  2494. /// Subclasses may override this routine to provide different behavior.
  2495. ExprResult RebuildExpressionTrait(ExpressionTrait Trait,
  2496. SourceLocation StartLoc,
  2497. Expr *Queried,
  2498. SourceLocation RParenLoc) {
  2499. return getSema().BuildExpressionTrait(Trait, StartLoc, Queried, RParenLoc);
  2500. }
  2501. /// Build a new (previously unresolved) declaration reference
  2502. /// expression.
  2503. ///
  2504. /// By default, performs semantic analysis to build the new expression.
  2505. /// Subclasses may override this routine to provide different behavior.
  2506. ExprResult RebuildDependentScopeDeclRefExpr(
  2507. NestedNameSpecifierLoc QualifierLoc,
  2508. SourceLocation TemplateKWLoc,
  2509. const DeclarationNameInfo &NameInfo,
  2510. const TemplateArgumentListInfo *TemplateArgs,
  2511. bool IsAddressOfOperand,
  2512. TypeSourceInfo **RecoveryTSI) {
  2513. CXXScopeSpec SS;
  2514. SS.Adopt(QualifierLoc);
  2515. if (TemplateArgs || TemplateKWLoc.isValid())
  2516. return getSema().BuildQualifiedTemplateIdExpr(SS, TemplateKWLoc, NameInfo,
  2517. TemplateArgs);
  2518. return getSema().BuildQualifiedDeclarationNameExpr(
  2519. SS, NameInfo, IsAddressOfOperand, /*S*/nullptr, RecoveryTSI);
  2520. }
  2521. /// Build a new template-id expression.
  2522. ///
  2523. /// By default, performs semantic analysis to build the new expression.
  2524. /// Subclasses may override this routine to provide different behavior.
  2525. ExprResult RebuildTemplateIdExpr(const CXXScopeSpec &SS,
  2526. SourceLocation TemplateKWLoc,
  2527. LookupResult &R,
  2528. bool RequiresADL,
  2529. const TemplateArgumentListInfo *TemplateArgs) {
  2530. return getSema().BuildTemplateIdExpr(SS, TemplateKWLoc, R, RequiresADL,
  2531. TemplateArgs);
  2532. }
  2533. /// Build a new object-construction expression.
  2534. ///
  2535. /// By default, performs semantic analysis to build the new expression.
  2536. /// Subclasses may override this routine to provide different behavior.
  2537. ExprResult RebuildCXXConstructExpr(QualType T,
  2538. SourceLocation Loc,
  2539. CXXConstructorDecl *Constructor,
  2540. bool IsElidable,
  2541. MultiExprArg Args,
  2542. bool HadMultipleCandidates,
  2543. bool ListInitialization,
  2544. bool StdInitListInitialization,
  2545. bool RequiresZeroInit,
  2546. CXXConstructExpr::ConstructionKind ConstructKind,
  2547. SourceRange ParenRange) {
  2548. SmallVector<Expr*, 8> ConvertedArgs;
  2549. if (getSema().CompleteConstructorCall(Constructor, Args, Loc,
  2550. ConvertedArgs))
  2551. return ExprError();
  2552. return getSema().BuildCXXConstructExpr(Loc, T, Constructor,
  2553. IsElidable,
  2554. ConvertedArgs,
  2555. HadMultipleCandidates,
  2556. ListInitialization,
  2557. StdInitListInitialization,
  2558. RequiresZeroInit, ConstructKind,
  2559. ParenRange);
  2560. }
  2561. /// Build a new implicit construction via inherited constructor
  2562. /// expression.
  2563. ExprResult RebuildCXXInheritedCtorInitExpr(QualType T, SourceLocation Loc,
  2564. CXXConstructorDecl *Constructor,
  2565. bool ConstructsVBase,
  2566. bool InheritedFromVBase) {
  2567. return new (getSema().Context) CXXInheritedCtorInitExpr(
  2568. Loc, T, Constructor, ConstructsVBase, InheritedFromVBase);
  2569. }
  2570. /// Build a new object-construction expression.
  2571. ///
  2572. /// By default, performs semantic analysis to build the new expression.
  2573. /// Subclasses may override this routine to provide different behavior.
  2574. ExprResult RebuildCXXTemporaryObjectExpr(TypeSourceInfo *TSInfo,
  2575. SourceLocation LParenOrBraceLoc,
  2576. MultiExprArg Args,
  2577. SourceLocation RParenOrBraceLoc,
  2578. bool ListInitialization) {
  2579. return getSema().BuildCXXTypeConstructExpr(
  2580. TSInfo, LParenOrBraceLoc, Args, RParenOrBraceLoc, ListInitialization);
  2581. }
  2582. /// Build a new object-construction expression.
  2583. ///
  2584. /// By default, performs semantic analysis to build the new expression.
  2585. /// Subclasses may override this routine to provide different behavior.
  2586. ExprResult RebuildCXXUnresolvedConstructExpr(TypeSourceInfo *TSInfo,
  2587. SourceLocation LParenLoc,
  2588. MultiExprArg Args,
  2589. SourceLocation RParenLoc,
  2590. bool ListInitialization) {
  2591. return getSema().BuildCXXTypeConstructExpr(TSInfo, LParenLoc, Args,
  2592. RParenLoc, ListInitialization);
  2593. }
  2594. /// Build a new member reference expression.
  2595. ///
  2596. /// By default, performs semantic analysis to build the new expression.
  2597. /// Subclasses may override this routine to provide different behavior.
  2598. ExprResult RebuildCXXDependentScopeMemberExpr(Expr *BaseE,
  2599. QualType BaseType,
  2600. bool IsArrow,
  2601. SourceLocation OperatorLoc,
  2602. NestedNameSpecifierLoc QualifierLoc,
  2603. SourceLocation TemplateKWLoc,
  2604. NamedDecl *FirstQualifierInScope,
  2605. const DeclarationNameInfo &MemberNameInfo,
  2606. const TemplateArgumentListInfo *TemplateArgs) {
  2607. CXXScopeSpec SS;
  2608. SS.Adopt(QualifierLoc);
  2609. return SemaRef.BuildMemberReferenceExpr(BaseE, BaseType,
  2610. OperatorLoc, IsArrow,
  2611. SS, TemplateKWLoc,
  2612. FirstQualifierInScope,
  2613. MemberNameInfo,
  2614. TemplateArgs, /*S*/nullptr);
  2615. }
  2616. /// Build a new member reference expression.
  2617. ///
  2618. /// By default, performs semantic analysis to build the new expression.
  2619. /// Subclasses may override this routine to provide different behavior.
  2620. ExprResult RebuildUnresolvedMemberExpr(Expr *BaseE, QualType BaseType,
  2621. SourceLocation OperatorLoc,
  2622. bool IsArrow,
  2623. NestedNameSpecifierLoc QualifierLoc,
  2624. SourceLocation TemplateKWLoc,
  2625. NamedDecl *FirstQualifierInScope,
  2626. LookupResult &R,
  2627. const TemplateArgumentListInfo *TemplateArgs) {
  2628. CXXScopeSpec SS;
  2629. SS.Adopt(QualifierLoc);
  2630. return SemaRef.BuildMemberReferenceExpr(BaseE, BaseType,
  2631. OperatorLoc, IsArrow,
  2632. SS, TemplateKWLoc,
  2633. FirstQualifierInScope,
  2634. R, TemplateArgs, /*S*/nullptr);
  2635. }
  2636. /// Build a new noexcept expression.
  2637. ///
  2638. /// By default, performs semantic analysis to build the new expression.
  2639. /// Subclasses may override this routine to provide different behavior.
  2640. ExprResult RebuildCXXNoexceptExpr(SourceRange Range, Expr *Arg) {
  2641. return SemaRef.BuildCXXNoexceptExpr(Range.getBegin(), Arg, Range.getEnd());
  2642. }
  2643. /// Build a new expression to compute the length of a parameter pack.
  2644. ExprResult RebuildSizeOfPackExpr(SourceLocation OperatorLoc,
  2645. NamedDecl *Pack,
  2646. SourceLocation PackLoc,
  2647. SourceLocation RParenLoc,
  2648. Optional<unsigned> Length,
  2649. ArrayRef<TemplateArgument> PartialArgs) {
  2650. return SizeOfPackExpr::Create(SemaRef.Context, OperatorLoc, Pack, PackLoc,
  2651. RParenLoc, Length, PartialArgs);
  2652. }
  2653. /// Build a new Objective-C boxed expression.
  2654. ///
  2655. /// By default, performs semantic analysis to build the new expression.
  2656. /// Subclasses may override this routine to provide different behavior.
  2657. ExprResult RebuildObjCBoxedExpr(SourceRange SR, Expr *ValueExpr) {
  2658. return getSema().BuildObjCBoxedExpr(SR, ValueExpr);
  2659. }
  2660. /// Build a new Objective-C array literal.
  2661. ///
  2662. /// By default, performs semantic analysis to build the new expression.
  2663. /// Subclasses may override this routine to provide different behavior.
  2664. ExprResult RebuildObjCArrayLiteral(SourceRange Range,
  2665. Expr **Elements, unsigned NumElements) {
  2666. return getSema().BuildObjCArrayLiteral(Range,
  2667. MultiExprArg(Elements, NumElements));
  2668. }
  2669. ExprResult RebuildObjCSubscriptRefExpr(SourceLocation RB,
  2670. Expr *Base, Expr *Key,
  2671. ObjCMethodDecl *getterMethod,
  2672. ObjCMethodDecl *setterMethod) {
  2673. return getSema().BuildObjCSubscriptExpression(RB, Base, Key,
  2674. getterMethod, setterMethod);
  2675. }
  2676. /// Build a new Objective-C dictionary literal.
  2677. ///
  2678. /// By default, performs semantic analysis to build the new expression.
  2679. /// Subclasses may override this routine to provide different behavior.
  2680. ExprResult RebuildObjCDictionaryLiteral(SourceRange Range,
  2681. MutableArrayRef<ObjCDictionaryElement> Elements) {
  2682. return getSema().BuildObjCDictionaryLiteral(Range, Elements);
  2683. }
  2684. /// Build a new Objective-C \@encode expression.
  2685. ///
  2686. /// By default, performs semantic analysis to build the new expression.
  2687. /// Subclasses may override this routine to provide different behavior.
  2688. ExprResult RebuildObjCEncodeExpr(SourceLocation AtLoc,
  2689. TypeSourceInfo *EncodeTypeInfo,
  2690. SourceLocation RParenLoc) {
  2691. return SemaRef.BuildObjCEncodeExpression(AtLoc, EncodeTypeInfo, RParenLoc);
  2692. }
  2693. /// Build a new Objective-C class message.
  2694. ExprResult RebuildObjCMessageExpr(TypeSourceInfo *ReceiverTypeInfo,
  2695. Selector Sel,
  2696. ArrayRef<SourceLocation> SelectorLocs,
  2697. ObjCMethodDecl *Method,
  2698. SourceLocation LBracLoc,
  2699. MultiExprArg Args,
  2700. SourceLocation RBracLoc) {
  2701. return SemaRef.BuildClassMessage(ReceiverTypeInfo,
  2702. ReceiverTypeInfo->getType(),
  2703. /*SuperLoc=*/SourceLocation(),
  2704. Sel, Method, LBracLoc, SelectorLocs,
  2705. RBracLoc, Args);
  2706. }
  2707. /// Build a new Objective-C instance message.
  2708. ExprResult RebuildObjCMessageExpr(Expr *Receiver,
  2709. Selector Sel,
  2710. ArrayRef<SourceLocation> SelectorLocs,
  2711. ObjCMethodDecl *Method,
  2712. SourceLocation LBracLoc,
  2713. MultiExprArg Args,
  2714. SourceLocation RBracLoc) {
  2715. return SemaRef.BuildInstanceMessage(Receiver,
  2716. Receiver->getType(),
  2717. /*SuperLoc=*/SourceLocation(),
  2718. Sel, Method, LBracLoc, SelectorLocs,
  2719. RBracLoc, Args);
  2720. }
  2721. /// Build a new Objective-C instance/class message to 'super'.
  2722. ExprResult RebuildObjCMessageExpr(SourceLocation SuperLoc,
  2723. Selector Sel,
  2724. ArrayRef<SourceLocation> SelectorLocs,
  2725. QualType SuperType,
  2726. ObjCMethodDecl *Method,
  2727. SourceLocation LBracLoc,
  2728. MultiExprArg Args,
  2729. SourceLocation RBracLoc) {
  2730. return Method->isInstanceMethod() ? SemaRef.BuildInstanceMessage(nullptr,
  2731. SuperType,
  2732. SuperLoc,
  2733. Sel, Method, LBracLoc, SelectorLocs,
  2734. RBracLoc, Args)
  2735. : SemaRef.BuildClassMessage(nullptr,
  2736. SuperType,
  2737. SuperLoc,
  2738. Sel, Method, LBracLoc, SelectorLocs,
  2739. RBracLoc, Args);
  2740. }
  2741. /// Build a new Objective-C ivar reference expression.
  2742. ///
  2743. /// By default, performs semantic analysis to build the new expression.
  2744. /// Subclasses may override this routine to provide different behavior.
  2745. ExprResult RebuildObjCIvarRefExpr(Expr *BaseArg, ObjCIvarDecl *Ivar,
  2746. SourceLocation IvarLoc,
  2747. bool IsArrow, bool IsFreeIvar) {
  2748. CXXScopeSpec SS;
  2749. DeclarationNameInfo NameInfo(Ivar->getDeclName(), IvarLoc);
  2750. ExprResult Result = getSema().BuildMemberReferenceExpr(
  2751. BaseArg, BaseArg->getType(),
  2752. /*FIXME:*/ IvarLoc, IsArrow, SS, SourceLocation(),
  2753. /*FirstQualifierInScope=*/nullptr, NameInfo,
  2754. /*TemplateArgs=*/nullptr,
  2755. /*S=*/nullptr);
  2756. if (IsFreeIvar && Result.isUsable())
  2757. cast<ObjCIvarRefExpr>(Result.get())->setIsFreeIvar(IsFreeIvar);
  2758. return Result;
  2759. }
  2760. /// Build a new Objective-C property reference expression.
  2761. ///
  2762. /// By default, performs semantic analysis to build the new expression.
  2763. /// Subclasses may override this routine to provide different behavior.
  2764. ExprResult RebuildObjCPropertyRefExpr(Expr *BaseArg,
  2765. ObjCPropertyDecl *Property,
  2766. SourceLocation PropertyLoc) {
  2767. CXXScopeSpec SS;
  2768. DeclarationNameInfo NameInfo(Property->getDeclName(), PropertyLoc);
  2769. return getSema().BuildMemberReferenceExpr(BaseArg, BaseArg->getType(),
  2770. /*FIXME:*/PropertyLoc,
  2771. /*IsArrow=*/false,
  2772. SS, SourceLocation(),
  2773. /*FirstQualifierInScope=*/nullptr,
  2774. NameInfo,
  2775. /*TemplateArgs=*/nullptr,
  2776. /*S=*/nullptr);
  2777. }
  2778. /// Build a new Objective-C property reference expression.
  2779. ///
  2780. /// By default, performs semantic analysis to build the new expression.
  2781. /// Subclasses may override this routine to provide different behavior.
  2782. ExprResult RebuildObjCPropertyRefExpr(Expr *Base, QualType T,
  2783. ObjCMethodDecl *Getter,
  2784. ObjCMethodDecl *Setter,
  2785. SourceLocation PropertyLoc) {
  2786. // Since these expressions can only be value-dependent, we do not
  2787. // need to perform semantic analysis again.
  2788. return Owned(
  2789. new (getSema().Context) ObjCPropertyRefExpr(Getter, Setter, T,
  2790. VK_LValue, OK_ObjCProperty,
  2791. PropertyLoc, Base));
  2792. }
  2793. /// Build a new Objective-C "isa" expression.
  2794. ///
  2795. /// By default, performs semantic analysis to build the new expression.
  2796. /// Subclasses may override this routine to provide different behavior.
  2797. ExprResult RebuildObjCIsaExpr(Expr *BaseArg, SourceLocation IsaLoc,
  2798. SourceLocation OpLoc, bool IsArrow) {
  2799. CXXScopeSpec SS;
  2800. DeclarationNameInfo NameInfo(&getSema().Context.Idents.get("isa"), IsaLoc);
  2801. return getSema().BuildMemberReferenceExpr(BaseArg, BaseArg->getType(),
  2802. OpLoc, IsArrow,
  2803. SS, SourceLocation(),
  2804. /*FirstQualifierInScope=*/nullptr,
  2805. NameInfo,
  2806. /*TemplateArgs=*/nullptr,
  2807. /*S=*/nullptr);
  2808. }
  2809. /// Build a new shuffle vector expression.
  2810. ///
  2811. /// By default, performs semantic analysis to build the new expression.
  2812. /// Subclasses may override this routine to provide different behavior.
  2813. ExprResult RebuildShuffleVectorExpr(SourceLocation BuiltinLoc,
  2814. MultiExprArg SubExprs,
  2815. SourceLocation RParenLoc) {
  2816. // Find the declaration for __builtin_shufflevector
  2817. const IdentifierInfo &Name
  2818. = SemaRef.Context.Idents.get("__builtin_shufflevector");
  2819. TranslationUnitDecl *TUDecl = SemaRef.Context.getTranslationUnitDecl();
  2820. DeclContext::lookup_result Lookup = TUDecl->lookup(DeclarationName(&Name));
  2821. assert(!Lookup.empty() && "No __builtin_shufflevector?");
  2822. // Build a reference to the __builtin_shufflevector builtin
  2823. FunctionDecl *Builtin = cast<FunctionDecl>(Lookup.front());
  2824. Expr *Callee = new (SemaRef.Context) DeclRefExpr(Builtin, false,
  2825. SemaRef.Context.BuiltinFnTy,
  2826. VK_RValue, BuiltinLoc);
  2827. QualType CalleePtrTy = SemaRef.Context.getPointerType(Builtin->getType());
  2828. Callee = SemaRef.ImpCastExprToType(Callee, CalleePtrTy,
  2829. CK_BuiltinFnToFnPtr).get();
  2830. // Build the CallExpr
  2831. ExprResult TheCall = new (SemaRef.Context) CallExpr(
  2832. SemaRef.Context, Callee, SubExprs, Builtin->getCallResultType(),
  2833. Expr::getValueKindForType(Builtin->getReturnType()), RParenLoc);
  2834. // Type-check the __builtin_shufflevector expression.
  2835. return SemaRef.SemaBuiltinShuffleVector(cast<CallExpr>(TheCall.get()));
  2836. }
  2837. /// Build a new convert vector expression.
  2838. ExprResult RebuildConvertVectorExpr(SourceLocation BuiltinLoc,
  2839. Expr *SrcExpr, TypeSourceInfo *DstTInfo,
  2840. SourceLocation RParenLoc) {
  2841. return SemaRef.SemaConvertVectorExpr(SrcExpr, DstTInfo,
  2842. BuiltinLoc, RParenLoc);
  2843. }
  2844. /// Build a new template argument pack expansion.
  2845. ///
  2846. /// By default, performs semantic analysis to build a new pack expansion
  2847. /// for a template argument. Subclasses may override this routine to provide
  2848. /// different behavior.
  2849. TemplateArgumentLoc RebuildPackExpansion(TemplateArgumentLoc Pattern,
  2850. SourceLocation EllipsisLoc,
  2851. Optional<unsigned> NumExpansions) {
  2852. switch (Pattern.getArgument().getKind()) {
  2853. case TemplateArgument::Expression: {
  2854. ExprResult Result
  2855. = getSema().CheckPackExpansion(Pattern.getSourceExpression(),
  2856. EllipsisLoc, NumExpansions);
  2857. if (Result.isInvalid())
  2858. return TemplateArgumentLoc();
  2859. return TemplateArgumentLoc(Result.get(), Result.get());
  2860. }
  2861. case TemplateArgument::Template:
  2862. return TemplateArgumentLoc(TemplateArgument(
  2863. Pattern.getArgument().getAsTemplate(),
  2864. NumExpansions),
  2865. Pattern.getTemplateQualifierLoc(),
  2866. Pattern.getTemplateNameLoc(),
  2867. EllipsisLoc);
  2868. case TemplateArgument::Null:
  2869. case TemplateArgument::Integral:
  2870. case TemplateArgument::Declaration:
  2871. case TemplateArgument::Pack:
  2872. case TemplateArgument::TemplateExpansion:
  2873. case TemplateArgument::NullPtr:
  2874. llvm_unreachable("Pack expansion pattern has no parameter packs");
  2875. case TemplateArgument::Type:
  2876. if (TypeSourceInfo *Expansion
  2877. = getSema().CheckPackExpansion(Pattern.getTypeSourceInfo(),
  2878. EllipsisLoc,
  2879. NumExpansions))
  2880. return TemplateArgumentLoc(TemplateArgument(Expansion->getType()),
  2881. Expansion);
  2882. break;
  2883. }
  2884. return TemplateArgumentLoc();
  2885. }
  2886. /// Build a new expression pack expansion.
  2887. ///
  2888. /// By default, performs semantic analysis to build a new pack expansion
  2889. /// for an expression. Subclasses may override this routine to provide
  2890. /// different behavior.
  2891. ExprResult RebuildPackExpansion(Expr *Pattern, SourceLocation EllipsisLoc,
  2892. Optional<unsigned> NumExpansions) {
  2893. return getSema().CheckPackExpansion(Pattern, EllipsisLoc, NumExpansions);
  2894. }
  2895. /// Build a new C++1z fold-expression.
  2896. ///
  2897. /// By default, performs semantic analysis in order to build a new fold
  2898. /// expression.
  2899. ExprResult RebuildCXXFoldExpr(SourceLocation LParenLoc, Expr *LHS,
  2900. BinaryOperatorKind Operator,
  2901. SourceLocation EllipsisLoc, Expr *RHS,
  2902. SourceLocation RParenLoc) {
  2903. return getSema().BuildCXXFoldExpr(LParenLoc, LHS, Operator, EllipsisLoc,
  2904. RHS, RParenLoc);
  2905. }
  2906. /// Build an empty C++1z fold-expression with the given operator.
  2907. ///
  2908. /// By default, produces the fallback value for the fold-expression, or
  2909. /// produce an error if there is no fallback value.
  2910. ExprResult RebuildEmptyCXXFoldExpr(SourceLocation EllipsisLoc,
  2911. BinaryOperatorKind Operator) {
  2912. return getSema().BuildEmptyCXXFoldExpr(EllipsisLoc, Operator);
  2913. }
  2914. /// Build a new atomic operation expression.
  2915. ///
  2916. /// By default, performs semantic analysis to build the new expression.
  2917. /// Subclasses may override this routine to provide different behavior.
  2918. ExprResult RebuildAtomicExpr(SourceLocation BuiltinLoc,
  2919. MultiExprArg SubExprs,
  2920. QualType RetTy,
  2921. AtomicExpr::AtomicOp Op,
  2922. SourceLocation RParenLoc) {
  2923. // Just create the expression; there is not any interesting semantic
  2924. // analysis here because we can't actually build an AtomicExpr until
  2925. // we are sure it is semantically sound.
  2926. return new (SemaRef.Context) AtomicExpr(BuiltinLoc, SubExprs, RetTy, Op,
  2927. RParenLoc);
  2928. }
  2929. private:
  2930. TypeLoc TransformTypeInObjectScope(TypeLoc TL,
  2931. QualType ObjectType,
  2932. NamedDecl *FirstQualifierInScope,
  2933. CXXScopeSpec &SS);
  2934. TypeSourceInfo *TransformTypeInObjectScope(TypeSourceInfo *TSInfo,
  2935. QualType ObjectType,
  2936. NamedDecl *FirstQualifierInScope,
  2937. CXXScopeSpec &SS);
  2938. TypeSourceInfo *TransformTSIInObjectScope(TypeLoc TL, QualType ObjectType,
  2939. NamedDecl *FirstQualifierInScope,
  2940. CXXScopeSpec &SS);
  2941. QualType TransformDependentNameType(TypeLocBuilder &TLB,
  2942. DependentNameTypeLoc TL,
  2943. bool DeducibleTSTContext);
  2944. };
  2945. template<typename Derived>
  2946. StmtResult TreeTransform<Derived>::TransformStmt(Stmt *S) {
  2947. if (!S)
  2948. return S;
  2949. switch (S->getStmtClass()) {
  2950. case Stmt::NoStmtClass: break;
  2951. // Transform individual statement nodes
  2952. #define STMT(Node, Parent) \
  2953. case Stmt::Node##Class: return getDerived().Transform##Node(cast<Node>(S));
  2954. #define ABSTRACT_STMT(Node)
  2955. #define EXPR(Node, Parent)
  2956. #include "clang/AST/StmtNodes.inc"
  2957. // Transform expressions by calling TransformExpr.
  2958. #define STMT(Node, Parent)
  2959. #define ABSTRACT_STMT(Stmt)
  2960. #define EXPR(Node, Parent) case Stmt::Node##Class:
  2961. #include "clang/AST/StmtNodes.inc"
  2962. {
  2963. ExprResult E = getDerived().TransformExpr(cast<Expr>(S));
  2964. if (E.isInvalid())
  2965. return StmtError();
  2966. return getSema().ActOnExprStmt(E);
  2967. }
  2968. }
  2969. return S;
  2970. }
  2971. template<typename Derived>
  2972. OMPClause *TreeTransform<Derived>::TransformOMPClause(OMPClause *S) {
  2973. if (!S)
  2974. return S;
  2975. switch (S->getClauseKind()) {
  2976. default: break;
  2977. // Transform individual clause nodes
  2978. #define OPENMP_CLAUSE(Name, Class) \
  2979. case OMPC_ ## Name : \
  2980. return getDerived().Transform ## Class(cast<Class>(S));
  2981. #include "clang/Basic/OpenMPKinds.def"
  2982. }
  2983. return S;
  2984. }
  2985. template<typename Derived>
  2986. ExprResult TreeTransform<Derived>::TransformExpr(Expr *E) {
  2987. if (!E)
  2988. return E;
  2989. switch (E->getStmtClass()) {
  2990. case Stmt::NoStmtClass: break;
  2991. #define STMT(Node, Parent) case Stmt::Node##Class: break;
  2992. #define ABSTRACT_STMT(Stmt)
  2993. #define EXPR(Node, Parent) \
  2994. case Stmt::Node##Class: return getDerived().Transform##Node(cast<Node>(E));
  2995. #include "clang/AST/StmtNodes.inc"
  2996. }
  2997. return E;
  2998. }
  2999. template<typename Derived>
  3000. ExprResult TreeTransform<Derived>::TransformInitializer(Expr *Init,
  3001. bool NotCopyInit) {
  3002. // Initializers are instantiated like expressions, except that various outer
  3003. // layers are stripped.
  3004. if (!Init)
  3005. return Init;
  3006. if (ExprWithCleanups *ExprTemp = dyn_cast<ExprWithCleanups>(Init))
  3007. Init = ExprTemp->getSubExpr();
  3008. if (auto *AIL = dyn_cast<ArrayInitLoopExpr>(Init))
  3009. Init = AIL->getCommonExpr();
  3010. if (MaterializeTemporaryExpr *MTE = dyn_cast<MaterializeTemporaryExpr>(Init))
  3011. Init = MTE->GetTemporaryExpr();
  3012. while (CXXBindTemporaryExpr *Binder = dyn_cast<CXXBindTemporaryExpr>(Init))
  3013. Init = Binder->getSubExpr();
  3014. if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(Init))
  3015. Init = ICE->getSubExprAsWritten();
  3016. if (CXXStdInitializerListExpr *ILE =
  3017. dyn_cast<CXXStdInitializerListExpr>(Init))
  3018. return TransformInitializer(ILE->getSubExpr(), NotCopyInit);
  3019. // If this is copy-initialization, we only need to reconstruct
  3020. // InitListExprs. Other forms of copy-initialization will be a no-op if
  3021. // the initializer is already the right type.
  3022. CXXConstructExpr *Construct = dyn_cast<CXXConstructExpr>(Init);
  3023. if (!NotCopyInit && !(Construct && Construct->isListInitialization()))
  3024. return getDerived().TransformExpr(Init);
  3025. // Revert value-initialization back to empty parens.
  3026. if (CXXScalarValueInitExpr *VIE = dyn_cast<CXXScalarValueInitExpr>(Init)) {
  3027. SourceRange Parens = VIE->getSourceRange();
  3028. return getDerived().RebuildParenListExpr(Parens.getBegin(), None,
  3029. Parens.getEnd());
  3030. }
  3031. // FIXME: We shouldn't build ImplicitValueInitExprs for direct-initialization.
  3032. if (isa<ImplicitValueInitExpr>(Init))
  3033. return getDerived().RebuildParenListExpr(SourceLocation(), None,
  3034. SourceLocation());
  3035. // Revert initialization by constructor back to a parenthesized or braced list
  3036. // of expressions. Any other form of initializer can just be reused directly.
  3037. if (!Construct || isa<CXXTemporaryObjectExpr>(Construct))
  3038. return getDerived().TransformExpr(Init);
  3039. // If the initialization implicitly converted an initializer list to a
  3040. // std::initializer_list object, unwrap the std::initializer_list too.
  3041. if (Construct && Construct->isStdInitListInitialization())
  3042. return TransformInitializer(Construct->getArg(0), NotCopyInit);
  3043. // Enter a list-init context if this was list initialization.
  3044. EnterExpressionEvaluationContext Context(
  3045. getSema(), EnterExpressionEvaluationContext::InitList,
  3046. Construct->isListInitialization());
  3047. SmallVector<Expr*, 8> NewArgs;
  3048. bool ArgChanged = false;
  3049. if (getDerived().TransformExprs(Construct->getArgs(), Construct->getNumArgs(),
  3050. /*IsCall*/true, NewArgs, &ArgChanged))
  3051. return ExprError();
  3052. // If this was list initialization, revert to syntactic list form.
  3053. if (Construct->isListInitialization())
  3054. return getDerived().RebuildInitList(Construct->getBeginLoc(), NewArgs,
  3055. Construct->getEndLoc());
  3056. // Build a ParenListExpr to represent anything else.
  3057. SourceRange Parens = Construct->getParenOrBraceRange();
  3058. if (Parens.isInvalid()) {
  3059. // This was a variable declaration's initialization for which no initializer
  3060. // was specified.
  3061. assert(NewArgs.empty() &&
  3062. "no parens or braces but have direct init with arguments?");
  3063. return ExprEmpty();
  3064. }
  3065. return getDerived().RebuildParenListExpr(Parens.getBegin(), NewArgs,
  3066. Parens.getEnd());
  3067. }
  3068. template<typename Derived>
  3069. bool TreeTransform<Derived>::TransformExprs(Expr *const *Inputs,
  3070. unsigned NumInputs,
  3071. bool IsCall,
  3072. SmallVectorImpl<Expr *> &Outputs,
  3073. bool *ArgChanged) {
  3074. for (unsigned I = 0; I != NumInputs; ++I) {
  3075. // If requested, drop call arguments that need to be dropped.
  3076. if (IsCall && getDerived().DropCallArgument(Inputs[I])) {
  3077. if (ArgChanged)
  3078. *ArgChanged = true;
  3079. break;
  3080. }
  3081. if (PackExpansionExpr *Expansion = dyn_cast<PackExpansionExpr>(Inputs[I])) {
  3082. Expr *Pattern = Expansion->getPattern();
  3083. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  3084. getSema().collectUnexpandedParameterPacks(Pattern, Unexpanded);
  3085. assert(!Unexpanded.empty() && "Pack expansion without parameter packs?");
  3086. // Determine whether the set of unexpanded parameter packs can and should
  3087. // be expanded.
  3088. bool Expand = true;
  3089. bool RetainExpansion = false;
  3090. Optional<unsigned> OrigNumExpansions = Expansion->getNumExpansions();
  3091. Optional<unsigned> NumExpansions = OrigNumExpansions;
  3092. if (getDerived().TryExpandParameterPacks(Expansion->getEllipsisLoc(),
  3093. Pattern->getSourceRange(),
  3094. Unexpanded,
  3095. Expand, RetainExpansion,
  3096. NumExpansions))
  3097. return true;
  3098. if (!Expand) {
  3099. // The transform has determined that we should perform a simple
  3100. // transformation on the pack expansion, producing another pack
  3101. // expansion.
  3102. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  3103. ExprResult OutPattern = getDerived().TransformExpr(Pattern);
  3104. if (OutPattern.isInvalid())
  3105. return true;
  3106. ExprResult Out = getDerived().RebuildPackExpansion(OutPattern.get(),
  3107. Expansion->getEllipsisLoc(),
  3108. NumExpansions);
  3109. if (Out.isInvalid())
  3110. return true;
  3111. if (ArgChanged)
  3112. *ArgChanged = true;
  3113. Outputs.push_back(Out.get());
  3114. continue;
  3115. }
  3116. // Record right away that the argument was changed. This needs
  3117. // to happen even if the array expands to nothing.
  3118. if (ArgChanged) *ArgChanged = true;
  3119. // The transform has determined that we should perform an elementwise
  3120. // expansion of the pattern. Do so.
  3121. for (unsigned I = 0; I != *NumExpansions; ++I) {
  3122. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), I);
  3123. ExprResult Out = getDerived().TransformExpr(Pattern);
  3124. if (Out.isInvalid())
  3125. return true;
  3126. if (Out.get()->containsUnexpandedParameterPack()) {
  3127. Out = getDerived().RebuildPackExpansion(
  3128. Out.get(), Expansion->getEllipsisLoc(), OrigNumExpansions);
  3129. if (Out.isInvalid())
  3130. return true;
  3131. }
  3132. Outputs.push_back(Out.get());
  3133. }
  3134. // If we're supposed to retain a pack expansion, do so by temporarily
  3135. // forgetting the partially-substituted parameter pack.
  3136. if (RetainExpansion) {
  3137. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  3138. ExprResult Out = getDerived().TransformExpr(Pattern);
  3139. if (Out.isInvalid())
  3140. return true;
  3141. Out = getDerived().RebuildPackExpansion(
  3142. Out.get(), Expansion->getEllipsisLoc(), OrigNumExpansions);
  3143. if (Out.isInvalid())
  3144. return true;
  3145. Outputs.push_back(Out.get());
  3146. }
  3147. continue;
  3148. }
  3149. ExprResult Result =
  3150. IsCall ? getDerived().TransformInitializer(Inputs[I], /*DirectInit*/false)
  3151. : getDerived().TransformExpr(Inputs[I]);
  3152. if (Result.isInvalid())
  3153. return true;
  3154. if (Result.get() != Inputs[I] && ArgChanged)
  3155. *ArgChanged = true;
  3156. Outputs.push_back(Result.get());
  3157. }
  3158. return false;
  3159. }
  3160. template <typename Derived>
  3161. Sema::ConditionResult TreeTransform<Derived>::TransformCondition(
  3162. SourceLocation Loc, VarDecl *Var, Expr *Expr, Sema::ConditionKind Kind) {
  3163. if (Var) {
  3164. VarDecl *ConditionVar = cast_or_null<VarDecl>(
  3165. getDerived().TransformDefinition(Var->getLocation(), Var));
  3166. if (!ConditionVar)
  3167. return Sema::ConditionError();
  3168. return getSema().ActOnConditionVariable(ConditionVar, Loc, Kind);
  3169. }
  3170. if (Expr) {
  3171. ExprResult CondExpr = getDerived().TransformExpr(Expr);
  3172. if (CondExpr.isInvalid())
  3173. return Sema::ConditionError();
  3174. return getSema().ActOnCondition(nullptr, Loc, CondExpr.get(), Kind);
  3175. }
  3176. return Sema::ConditionResult();
  3177. }
  3178. template<typename Derived>
  3179. NestedNameSpecifierLoc
  3180. TreeTransform<Derived>::TransformNestedNameSpecifierLoc(
  3181. NestedNameSpecifierLoc NNS,
  3182. QualType ObjectType,
  3183. NamedDecl *FirstQualifierInScope) {
  3184. SmallVector<NestedNameSpecifierLoc, 4> Qualifiers;
  3185. for (NestedNameSpecifierLoc Qualifier = NNS; Qualifier;
  3186. Qualifier = Qualifier.getPrefix())
  3187. Qualifiers.push_back(Qualifier);
  3188. CXXScopeSpec SS;
  3189. while (!Qualifiers.empty()) {
  3190. NestedNameSpecifierLoc Q = Qualifiers.pop_back_val();
  3191. NestedNameSpecifier *QNNS = Q.getNestedNameSpecifier();
  3192. switch (QNNS->getKind()) {
  3193. case NestedNameSpecifier::Identifier: {
  3194. Sema::NestedNameSpecInfo IdInfo(QNNS->getAsIdentifier(),
  3195. Q.getLocalBeginLoc(), Q.getLocalEndLoc(), ObjectType);
  3196. if (SemaRef.BuildCXXNestedNameSpecifier(/*Scope=*/nullptr, IdInfo, false,
  3197. SS, FirstQualifierInScope, false))
  3198. return NestedNameSpecifierLoc();
  3199. }
  3200. break;
  3201. case NestedNameSpecifier::Namespace: {
  3202. NamespaceDecl *NS
  3203. = cast_or_null<NamespaceDecl>(
  3204. getDerived().TransformDecl(
  3205. Q.getLocalBeginLoc(),
  3206. QNNS->getAsNamespace()));
  3207. SS.Extend(SemaRef.Context, NS, Q.getLocalBeginLoc(), Q.getLocalEndLoc());
  3208. break;
  3209. }
  3210. case NestedNameSpecifier::NamespaceAlias: {
  3211. NamespaceAliasDecl *Alias
  3212. = cast_or_null<NamespaceAliasDecl>(
  3213. getDerived().TransformDecl(Q.getLocalBeginLoc(),
  3214. QNNS->getAsNamespaceAlias()));
  3215. SS.Extend(SemaRef.Context, Alias, Q.getLocalBeginLoc(),
  3216. Q.getLocalEndLoc());
  3217. break;
  3218. }
  3219. case NestedNameSpecifier::Global:
  3220. // There is no meaningful transformation that one could perform on the
  3221. // global scope.
  3222. SS.MakeGlobal(SemaRef.Context, Q.getBeginLoc());
  3223. break;
  3224. case NestedNameSpecifier::Super: {
  3225. CXXRecordDecl *RD =
  3226. cast_or_null<CXXRecordDecl>(getDerived().TransformDecl(
  3227. SourceLocation(), QNNS->getAsRecordDecl()));
  3228. SS.MakeSuper(SemaRef.Context, RD, Q.getBeginLoc(), Q.getEndLoc());
  3229. break;
  3230. }
  3231. case NestedNameSpecifier::TypeSpecWithTemplate:
  3232. case NestedNameSpecifier::TypeSpec: {
  3233. TypeLoc TL = TransformTypeInObjectScope(Q.getTypeLoc(), ObjectType,
  3234. FirstQualifierInScope, SS);
  3235. if (!TL)
  3236. return NestedNameSpecifierLoc();
  3237. if (TL.getType()->isDependentType() || TL.getType()->isRecordType() ||
  3238. (SemaRef.getLangOpts().CPlusPlus11 &&
  3239. TL.getType()->isEnumeralType())) {
  3240. assert(!TL.getType().hasLocalQualifiers() &&
  3241. "Can't get cv-qualifiers here");
  3242. if (TL.getType()->isEnumeralType())
  3243. SemaRef.Diag(TL.getBeginLoc(),
  3244. diag::warn_cxx98_compat_enum_nested_name_spec);
  3245. SS.Extend(SemaRef.Context, /*FIXME:*/SourceLocation(), TL,
  3246. Q.getLocalEndLoc());
  3247. break;
  3248. }
  3249. // If the nested-name-specifier is an invalid type def, don't emit an
  3250. // error because a previous error should have already been emitted.
  3251. TypedefTypeLoc TTL = TL.getAs<TypedefTypeLoc>();
  3252. if (!TTL || !TTL.getTypedefNameDecl()->isInvalidDecl()) {
  3253. SemaRef.Diag(TL.getBeginLoc(), diag::err_nested_name_spec_non_tag)
  3254. << TL.getType() << SS.getRange();
  3255. }
  3256. return NestedNameSpecifierLoc();
  3257. }
  3258. }
  3259. // The qualifier-in-scope and object type only apply to the leftmost entity.
  3260. FirstQualifierInScope = nullptr;
  3261. ObjectType = QualType();
  3262. }
  3263. // Don't rebuild the nested-name-specifier if we don't have to.
  3264. if (SS.getScopeRep() == NNS.getNestedNameSpecifier() &&
  3265. !getDerived().AlwaysRebuild())
  3266. return NNS;
  3267. // If we can re-use the source-location data from the original
  3268. // nested-name-specifier, do so.
  3269. if (SS.location_size() == NNS.getDataLength() &&
  3270. memcmp(SS.location_data(), NNS.getOpaqueData(), SS.location_size()) == 0)
  3271. return NestedNameSpecifierLoc(SS.getScopeRep(), NNS.getOpaqueData());
  3272. // Allocate new nested-name-specifier location information.
  3273. return SS.getWithLocInContext(SemaRef.Context);
  3274. }
  3275. template<typename Derived>
  3276. DeclarationNameInfo
  3277. TreeTransform<Derived>
  3278. ::TransformDeclarationNameInfo(const DeclarationNameInfo &NameInfo) {
  3279. DeclarationName Name = NameInfo.getName();
  3280. if (!Name)
  3281. return DeclarationNameInfo();
  3282. switch (Name.getNameKind()) {
  3283. case DeclarationName::Identifier:
  3284. case DeclarationName::ObjCZeroArgSelector:
  3285. case DeclarationName::ObjCOneArgSelector:
  3286. case DeclarationName::ObjCMultiArgSelector:
  3287. case DeclarationName::CXXOperatorName:
  3288. case DeclarationName::CXXLiteralOperatorName:
  3289. case DeclarationName::CXXUsingDirective:
  3290. return NameInfo;
  3291. case DeclarationName::CXXDeductionGuideName: {
  3292. TemplateDecl *OldTemplate = Name.getCXXDeductionGuideTemplate();
  3293. TemplateDecl *NewTemplate = cast_or_null<TemplateDecl>(
  3294. getDerived().TransformDecl(NameInfo.getLoc(), OldTemplate));
  3295. if (!NewTemplate)
  3296. return DeclarationNameInfo();
  3297. DeclarationNameInfo NewNameInfo(NameInfo);
  3298. NewNameInfo.setName(
  3299. SemaRef.Context.DeclarationNames.getCXXDeductionGuideName(NewTemplate));
  3300. return NewNameInfo;
  3301. }
  3302. case DeclarationName::CXXConstructorName:
  3303. case DeclarationName::CXXDestructorName:
  3304. case DeclarationName::CXXConversionFunctionName: {
  3305. TypeSourceInfo *NewTInfo;
  3306. CanQualType NewCanTy;
  3307. if (TypeSourceInfo *OldTInfo = NameInfo.getNamedTypeInfo()) {
  3308. NewTInfo = getDerived().TransformType(OldTInfo);
  3309. if (!NewTInfo)
  3310. return DeclarationNameInfo();
  3311. NewCanTy = SemaRef.Context.getCanonicalType(NewTInfo->getType());
  3312. }
  3313. else {
  3314. NewTInfo = nullptr;
  3315. TemporaryBase Rebase(*this, NameInfo.getLoc(), Name);
  3316. QualType NewT = getDerived().TransformType(Name.getCXXNameType());
  3317. if (NewT.isNull())
  3318. return DeclarationNameInfo();
  3319. NewCanTy = SemaRef.Context.getCanonicalType(NewT);
  3320. }
  3321. DeclarationName NewName
  3322. = SemaRef.Context.DeclarationNames.getCXXSpecialName(Name.getNameKind(),
  3323. NewCanTy);
  3324. DeclarationNameInfo NewNameInfo(NameInfo);
  3325. NewNameInfo.setName(NewName);
  3326. NewNameInfo.setNamedTypeInfo(NewTInfo);
  3327. return NewNameInfo;
  3328. }
  3329. }
  3330. llvm_unreachable("Unknown name kind.");
  3331. }
  3332. template<typename Derived>
  3333. TemplateName
  3334. TreeTransform<Derived>::TransformTemplateName(CXXScopeSpec &SS,
  3335. TemplateName Name,
  3336. SourceLocation NameLoc,
  3337. QualType ObjectType,
  3338. NamedDecl *FirstQualifierInScope,
  3339. bool AllowInjectedClassName) {
  3340. if (QualifiedTemplateName *QTN = Name.getAsQualifiedTemplateName()) {
  3341. TemplateDecl *Template = QTN->getTemplateDecl();
  3342. assert(Template && "qualified template name must refer to a template");
  3343. TemplateDecl *TransTemplate
  3344. = cast_or_null<TemplateDecl>(getDerived().TransformDecl(NameLoc,
  3345. Template));
  3346. if (!TransTemplate)
  3347. return TemplateName();
  3348. if (!getDerived().AlwaysRebuild() &&
  3349. SS.getScopeRep() == QTN->getQualifier() &&
  3350. TransTemplate == Template)
  3351. return Name;
  3352. return getDerived().RebuildTemplateName(SS, QTN->hasTemplateKeyword(),
  3353. TransTemplate);
  3354. }
  3355. if (DependentTemplateName *DTN = Name.getAsDependentTemplateName()) {
  3356. if (SS.getScopeRep()) {
  3357. // These apply to the scope specifier, not the template.
  3358. ObjectType = QualType();
  3359. FirstQualifierInScope = nullptr;
  3360. }
  3361. if (!getDerived().AlwaysRebuild() &&
  3362. SS.getScopeRep() == DTN->getQualifier() &&
  3363. ObjectType.isNull())
  3364. return Name;
  3365. // FIXME: Preserve the location of the "template" keyword.
  3366. SourceLocation TemplateKWLoc = NameLoc;
  3367. if (DTN->isIdentifier()) {
  3368. return getDerived().RebuildTemplateName(SS,
  3369. TemplateKWLoc,
  3370. *DTN->getIdentifier(),
  3371. NameLoc,
  3372. ObjectType,
  3373. FirstQualifierInScope,
  3374. AllowInjectedClassName);
  3375. }
  3376. return getDerived().RebuildTemplateName(SS, TemplateKWLoc,
  3377. DTN->getOperator(), NameLoc,
  3378. ObjectType, AllowInjectedClassName);
  3379. }
  3380. if (TemplateDecl *Template = Name.getAsTemplateDecl()) {
  3381. TemplateDecl *TransTemplate
  3382. = cast_or_null<TemplateDecl>(getDerived().TransformDecl(NameLoc,
  3383. Template));
  3384. if (!TransTemplate)
  3385. return TemplateName();
  3386. if (!getDerived().AlwaysRebuild() &&
  3387. TransTemplate == Template)
  3388. return Name;
  3389. return TemplateName(TransTemplate);
  3390. }
  3391. if (SubstTemplateTemplateParmPackStorage *SubstPack
  3392. = Name.getAsSubstTemplateTemplateParmPack()) {
  3393. TemplateTemplateParmDecl *TransParam
  3394. = cast_or_null<TemplateTemplateParmDecl>(
  3395. getDerived().TransformDecl(NameLoc, SubstPack->getParameterPack()));
  3396. if (!TransParam)
  3397. return TemplateName();
  3398. if (!getDerived().AlwaysRebuild() &&
  3399. TransParam == SubstPack->getParameterPack())
  3400. return Name;
  3401. return getDerived().RebuildTemplateName(TransParam,
  3402. SubstPack->getArgumentPack());
  3403. }
  3404. // These should be getting filtered out before they reach the AST.
  3405. llvm_unreachable("overloaded function decl survived to here");
  3406. }
  3407. template<typename Derived>
  3408. void TreeTransform<Derived>::InventTemplateArgumentLoc(
  3409. const TemplateArgument &Arg,
  3410. TemplateArgumentLoc &Output) {
  3411. SourceLocation Loc = getDerived().getBaseLocation();
  3412. switch (Arg.getKind()) {
  3413. case TemplateArgument::Null:
  3414. llvm_unreachable("null template argument in TreeTransform");
  3415. break;
  3416. case TemplateArgument::Type:
  3417. Output = TemplateArgumentLoc(Arg,
  3418. SemaRef.Context.getTrivialTypeSourceInfo(Arg.getAsType(), Loc));
  3419. break;
  3420. case TemplateArgument::Template:
  3421. case TemplateArgument::TemplateExpansion: {
  3422. NestedNameSpecifierLocBuilder Builder;
  3423. TemplateName Template = Arg.getAsTemplateOrTemplatePattern();
  3424. if (DependentTemplateName *DTN = Template.getAsDependentTemplateName())
  3425. Builder.MakeTrivial(SemaRef.Context, DTN->getQualifier(), Loc);
  3426. else if (QualifiedTemplateName *QTN = Template.getAsQualifiedTemplateName())
  3427. Builder.MakeTrivial(SemaRef.Context, QTN->getQualifier(), Loc);
  3428. if (Arg.getKind() == TemplateArgument::Template)
  3429. Output = TemplateArgumentLoc(Arg,
  3430. Builder.getWithLocInContext(SemaRef.Context),
  3431. Loc);
  3432. else
  3433. Output = TemplateArgumentLoc(Arg,
  3434. Builder.getWithLocInContext(SemaRef.Context),
  3435. Loc, Loc);
  3436. break;
  3437. }
  3438. case TemplateArgument::Expression:
  3439. Output = TemplateArgumentLoc(Arg, Arg.getAsExpr());
  3440. break;
  3441. case TemplateArgument::Declaration:
  3442. case TemplateArgument::Integral:
  3443. case TemplateArgument::Pack:
  3444. case TemplateArgument::NullPtr:
  3445. Output = TemplateArgumentLoc(Arg, TemplateArgumentLocInfo());
  3446. break;
  3447. }
  3448. }
  3449. template<typename Derived>
  3450. bool TreeTransform<Derived>::TransformTemplateArgument(
  3451. const TemplateArgumentLoc &Input,
  3452. TemplateArgumentLoc &Output, bool Uneval) {
  3453. EnterExpressionEvaluationContext EEEC(
  3454. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated,
  3455. /*LambdaContextDecl=*/nullptr, /*ExprContext=*/
  3456. Sema::ExpressionEvaluationContextRecord::EK_TemplateArgument);
  3457. const TemplateArgument &Arg = Input.getArgument();
  3458. switch (Arg.getKind()) {
  3459. case TemplateArgument::Null:
  3460. case TemplateArgument::Integral:
  3461. case TemplateArgument::Pack:
  3462. case TemplateArgument::Declaration:
  3463. case TemplateArgument::NullPtr:
  3464. llvm_unreachable("Unexpected TemplateArgument");
  3465. case TemplateArgument::Type: {
  3466. TypeSourceInfo *DI = Input.getTypeSourceInfo();
  3467. if (!DI)
  3468. DI = InventTypeSourceInfo(Input.getArgument().getAsType());
  3469. DI = getDerived().TransformType(DI);
  3470. if (!DI) return true;
  3471. Output = TemplateArgumentLoc(TemplateArgument(DI->getType()), DI);
  3472. return false;
  3473. }
  3474. case TemplateArgument::Template: {
  3475. NestedNameSpecifierLoc QualifierLoc = Input.getTemplateQualifierLoc();
  3476. if (QualifierLoc) {
  3477. QualifierLoc = getDerived().TransformNestedNameSpecifierLoc(QualifierLoc);
  3478. if (!QualifierLoc)
  3479. return true;
  3480. }
  3481. CXXScopeSpec SS;
  3482. SS.Adopt(QualifierLoc);
  3483. TemplateName Template
  3484. = getDerived().TransformTemplateName(SS, Arg.getAsTemplate(),
  3485. Input.getTemplateNameLoc());
  3486. if (Template.isNull())
  3487. return true;
  3488. Output = TemplateArgumentLoc(TemplateArgument(Template), QualifierLoc,
  3489. Input.getTemplateNameLoc());
  3490. return false;
  3491. }
  3492. case TemplateArgument::TemplateExpansion:
  3493. llvm_unreachable("Caller should expand pack expansions");
  3494. case TemplateArgument::Expression: {
  3495. // Template argument expressions are constant expressions.
  3496. EnterExpressionEvaluationContext Unevaluated(
  3497. getSema(), Uneval
  3498. ? Sema::ExpressionEvaluationContext::Unevaluated
  3499. : Sema::ExpressionEvaluationContext::ConstantEvaluated);
  3500. Expr *InputExpr = Input.getSourceExpression();
  3501. if (!InputExpr) InputExpr = Input.getArgument().getAsExpr();
  3502. ExprResult E = getDerived().TransformExpr(InputExpr);
  3503. E = SemaRef.ActOnConstantExpression(E);
  3504. if (E.isInvalid()) return true;
  3505. Output = TemplateArgumentLoc(TemplateArgument(E.get()), E.get());
  3506. return false;
  3507. }
  3508. }
  3509. // Work around bogus GCC warning
  3510. return true;
  3511. }
  3512. /// Iterator adaptor that invents template argument location information
  3513. /// for each of the template arguments in its underlying iterator.
  3514. template<typename Derived, typename InputIterator>
  3515. class TemplateArgumentLocInventIterator {
  3516. TreeTransform<Derived> &Self;
  3517. InputIterator Iter;
  3518. public:
  3519. typedef TemplateArgumentLoc value_type;
  3520. typedef TemplateArgumentLoc reference;
  3521. typedef typename std::iterator_traits<InputIterator>::difference_type
  3522. difference_type;
  3523. typedef std::input_iterator_tag iterator_category;
  3524. class pointer {
  3525. TemplateArgumentLoc Arg;
  3526. public:
  3527. explicit pointer(TemplateArgumentLoc Arg) : Arg(Arg) { }
  3528. const TemplateArgumentLoc *operator->() const { return &Arg; }
  3529. };
  3530. TemplateArgumentLocInventIterator() { }
  3531. explicit TemplateArgumentLocInventIterator(TreeTransform<Derived> &Self,
  3532. InputIterator Iter)
  3533. : Self(Self), Iter(Iter) { }
  3534. TemplateArgumentLocInventIterator &operator++() {
  3535. ++Iter;
  3536. return *this;
  3537. }
  3538. TemplateArgumentLocInventIterator operator++(int) {
  3539. TemplateArgumentLocInventIterator Old(*this);
  3540. ++(*this);
  3541. return Old;
  3542. }
  3543. reference operator*() const {
  3544. TemplateArgumentLoc Result;
  3545. Self.InventTemplateArgumentLoc(*Iter, Result);
  3546. return Result;
  3547. }
  3548. pointer operator->() const { return pointer(**this); }
  3549. friend bool operator==(const TemplateArgumentLocInventIterator &X,
  3550. const TemplateArgumentLocInventIterator &Y) {
  3551. return X.Iter == Y.Iter;
  3552. }
  3553. friend bool operator!=(const TemplateArgumentLocInventIterator &X,
  3554. const TemplateArgumentLocInventIterator &Y) {
  3555. return X.Iter != Y.Iter;
  3556. }
  3557. };
  3558. template<typename Derived>
  3559. template<typename InputIterator>
  3560. bool TreeTransform<Derived>::TransformTemplateArguments(
  3561. InputIterator First, InputIterator Last, TemplateArgumentListInfo &Outputs,
  3562. bool Uneval) {
  3563. for (; First != Last; ++First) {
  3564. TemplateArgumentLoc Out;
  3565. TemplateArgumentLoc In = *First;
  3566. if (In.getArgument().getKind() == TemplateArgument::Pack) {
  3567. // Unpack argument packs, which we translate them into separate
  3568. // arguments.
  3569. // FIXME: We could do much better if we could guarantee that the
  3570. // TemplateArgumentLocInfo for the pack expansion would be usable for
  3571. // all of the template arguments in the argument pack.
  3572. typedef TemplateArgumentLocInventIterator<Derived,
  3573. TemplateArgument::pack_iterator>
  3574. PackLocIterator;
  3575. if (TransformTemplateArguments(PackLocIterator(*this,
  3576. In.getArgument().pack_begin()),
  3577. PackLocIterator(*this,
  3578. In.getArgument().pack_end()),
  3579. Outputs, Uneval))
  3580. return true;
  3581. continue;
  3582. }
  3583. if (In.getArgument().isPackExpansion()) {
  3584. // We have a pack expansion, for which we will be substituting into
  3585. // the pattern.
  3586. SourceLocation Ellipsis;
  3587. Optional<unsigned> OrigNumExpansions;
  3588. TemplateArgumentLoc Pattern
  3589. = getSema().getTemplateArgumentPackExpansionPattern(
  3590. In, Ellipsis, OrigNumExpansions);
  3591. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  3592. getSema().collectUnexpandedParameterPacks(Pattern, Unexpanded);
  3593. assert(!Unexpanded.empty() && "Pack expansion without parameter packs?");
  3594. // Determine whether the set of unexpanded parameter packs can and should
  3595. // be expanded.
  3596. bool Expand = true;
  3597. bool RetainExpansion = false;
  3598. Optional<unsigned> NumExpansions = OrigNumExpansions;
  3599. if (getDerived().TryExpandParameterPacks(Ellipsis,
  3600. Pattern.getSourceRange(),
  3601. Unexpanded,
  3602. Expand,
  3603. RetainExpansion,
  3604. NumExpansions))
  3605. return true;
  3606. if (!Expand) {
  3607. // The transform has determined that we should perform a simple
  3608. // transformation on the pack expansion, producing another pack
  3609. // expansion.
  3610. TemplateArgumentLoc OutPattern;
  3611. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  3612. if (getDerived().TransformTemplateArgument(Pattern, OutPattern, Uneval))
  3613. return true;
  3614. Out = getDerived().RebuildPackExpansion(OutPattern, Ellipsis,
  3615. NumExpansions);
  3616. if (Out.getArgument().isNull())
  3617. return true;
  3618. Outputs.addArgument(Out);
  3619. continue;
  3620. }
  3621. // The transform has determined that we should perform an elementwise
  3622. // expansion of the pattern. Do so.
  3623. for (unsigned I = 0; I != *NumExpansions; ++I) {
  3624. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), I);
  3625. if (getDerived().TransformTemplateArgument(Pattern, Out, Uneval))
  3626. return true;
  3627. if (Out.getArgument().containsUnexpandedParameterPack()) {
  3628. Out = getDerived().RebuildPackExpansion(Out, Ellipsis,
  3629. OrigNumExpansions);
  3630. if (Out.getArgument().isNull())
  3631. return true;
  3632. }
  3633. Outputs.addArgument(Out);
  3634. }
  3635. // If we're supposed to retain a pack expansion, do so by temporarily
  3636. // forgetting the partially-substituted parameter pack.
  3637. if (RetainExpansion) {
  3638. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  3639. if (getDerived().TransformTemplateArgument(Pattern, Out, Uneval))
  3640. return true;
  3641. Out = getDerived().RebuildPackExpansion(Out, Ellipsis,
  3642. OrigNumExpansions);
  3643. if (Out.getArgument().isNull())
  3644. return true;
  3645. Outputs.addArgument(Out);
  3646. }
  3647. continue;
  3648. }
  3649. // The simple case:
  3650. if (getDerived().TransformTemplateArgument(In, Out, Uneval))
  3651. return true;
  3652. Outputs.addArgument(Out);
  3653. }
  3654. return false;
  3655. }
  3656. //===----------------------------------------------------------------------===//
  3657. // Type transformation
  3658. //===----------------------------------------------------------------------===//
  3659. template<typename Derived>
  3660. QualType TreeTransform<Derived>::TransformType(QualType T) {
  3661. if (getDerived().AlreadyTransformed(T))
  3662. return T;
  3663. // Temporary workaround. All of these transformations should
  3664. // eventually turn into transformations on TypeLocs.
  3665. TypeSourceInfo *DI = getSema().Context.getTrivialTypeSourceInfo(T,
  3666. getDerived().getBaseLocation());
  3667. TypeSourceInfo *NewDI = getDerived().TransformType(DI);
  3668. if (!NewDI)
  3669. return QualType();
  3670. return NewDI->getType();
  3671. }
  3672. template<typename Derived>
  3673. TypeSourceInfo *TreeTransform<Derived>::TransformType(TypeSourceInfo *DI) {
  3674. // Refine the base location to the type's location.
  3675. TemporaryBase Rebase(*this, DI->getTypeLoc().getBeginLoc(),
  3676. getDerived().getBaseEntity());
  3677. if (getDerived().AlreadyTransformed(DI->getType()))
  3678. return DI;
  3679. TypeLocBuilder TLB;
  3680. TypeLoc TL = DI->getTypeLoc();
  3681. TLB.reserve(TL.getFullDataSize());
  3682. QualType Result = getDerived().TransformType(TLB, TL);
  3683. if (Result.isNull())
  3684. return nullptr;
  3685. return TLB.getTypeSourceInfo(SemaRef.Context, Result);
  3686. }
  3687. template<typename Derived>
  3688. QualType
  3689. TreeTransform<Derived>::TransformType(TypeLocBuilder &TLB, TypeLoc T) {
  3690. switch (T.getTypeLocClass()) {
  3691. #define ABSTRACT_TYPELOC(CLASS, PARENT)
  3692. #define TYPELOC(CLASS, PARENT) \
  3693. case TypeLoc::CLASS: \
  3694. return getDerived().Transform##CLASS##Type(TLB, \
  3695. T.castAs<CLASS##TypeLoc>());
  3696. #include "clang/AST/TypeLocNodes.def"
  3697. }
  3698. llvm_unreachable("unhandled type loc!");
  3699. }
  3700. template<typename Derived>
  3701. QualType TreeTransform<Derived>::TransformTypeWithDeducedTST(QualType T) {
  3702. if (!isa<DependentNameType>(T))
  3703. return TransformType(T);
  3704. if (getDerived().AlreadyTransformed(T))
  3705. return T;
  3706. TypeSourceInfo *DI = getSema().Context.getTrivialTypeSourceInfo(T,
  3707. getDerived().getBaseLocation());
  3708. TypeSourceInfo *NewDI = getDerived().TransformTypeWithDeducedTST(DI);
  3709. return NewDI ? NewDI->getType() : QualType();
  3710. }
  3711. template<typename Derived>
  3712. TypeSourceInfo *
  3713. TreeTransform<Derived>::TransformTypeWithDeducedTST(TypeSourceInfo *DI) {
  3714. if (!isa<DependentNameType>(DI->getType()))
  3715. return TransformType(DI);
  3716. // Refine the base location to the type's location.
  3717. TemporaryBase Rebase(*this, DI->getTypeLoc().getBeginLoc(),
  3718. getDerived().getBaseEntity());
  3719. if (getDerived().AlreadyTransformed(DI->getType()))
  3720. return DI;
  3721. TypeLocBuilder TLB;
  3722. TypeLoc TL = DI->getTypeLoc();
  3723. TLB.reserve(TL.getFullDataSize());
  3724. auto QTL = TL.getAs<QualifiedTypeLoc>();
  3725. if (QTL)
  3726. TL = QTL.getUnqualifiedLoc();
  3727. auto DNTL = TL.castAs<DependentNameTypeLoc>();
  3728. QualType Result = getDerived().TransformDependentNameType(
  3729. TLB, DNTL, /*DeducedTSTContext*/true);
  3730. if (Result.isNull())
  3731. return nullptr;
  3732. if (QTL) {
  3733. Result = getDerived().RebuildQualifiedType(
  3734. Result, QTL.getBeginLoc(), QTL.getType().getLocalQualifiers());
  3735. TLB.TypeWasModifiedSafely(Result);
  3736. }
  3737. return TLB.getTypeSourceInfo(SemaRef.Context, Result);
  3738. }
  3739. template<typename Derived>
  3740. QualType
  3741. TreeTransform<Derived>::TransformQualifiedType(TypeLocBuilder &TLB,
  3742. QualifiedTypeLoc T) {
  3743. Qualifiers Quals = T.getType().getLocalQualifiers();
  3744. QualType Result = getDerived().TransformType(TLB, T.getUnqualifiedLoc());
  3745. if (Result.isNull())
  3746. return QualType();
  3747. Result = getDerived().RebuildQualifiedType(Result, T.getBeginLoc(), Quals);
  3748. // RebuildQualifiedType might have updated the type, but not in a way
  3749. // that invalidates the TypeLoc. (There's no location information for
  3750. // qualifiers.)
  3751. TLB.TypeWasModifiedSafely(Result);
  3752. return Result;
  3753. }
  3754. template<typename Derived>
  3755. QualType TreeTransform<Derived>::RebuildQualifiedType(QualType T,
  3756. SourceLocation Loc,
  3757. Qualifiers Quals) {
  3758. // C++ [dcl.fct]p7:
  3759. // [When] adding cv-qualifications on top of the function type [...] the
  3760. // cv-qualifiers are ignored.
  3761. if (T->isFunctionType())
  3762. return T;
  3763. // C++ [dcl.ref]p1:
  3764. // when the cv-qualifiers are introduced through the use of a typedef-name
  3765. // or decltype-specifier [...] the cv-qualifiers are ignored.
  3766. // Note that [dcl.ref]p1 lists all cases in which cv-qualifiers can be
  3767. // applied to a reference type.
  3768. if (T->isReferenceType()) {
  3769. // The only qualifier that applies to a reference type is restrict.
  3770. if (!Quals.hasRestrict())
  3771. return T;
  3772. Quals = Qualifiers::fromCVRMask(Qualifiers::Restrict);
  3773. }
  3774. // Suppress Objective-C lifetime qualifiers if they don't make sense for the
  3775. // resulting type.
  3776. if (Quals.hasObjCLifetime()) {
  3777. if (!T->isObjCLifetimeType() && !T->isDependentType())
  3778. Quals.removeObjCLifetime();
  3779. else if (T.getObjCLifetime()) {
  3780. // Objective-C ARC:
  3781. // A lifetime qualifier applied to a substituted template parameter
  3782. // overrides the lifetime qualifier from the template argument.
  3783. const AutoType *AutoTy;
  3784. if (const SubstTemplateTypeParmType *SubstTypeParam
  3785. = dyn_cast<SubstTemplateTypeParmType>(T)) {
  3786. QualType Replacement = SubstTypeParam->getReplacementType();
  3787. Qualifiers Qs = Replacement.getQualifiers();
  3788. Qs.removeObjCLifetime();
  3789. Replacement = SemaRef.Context.getQualifiedType(
  3790. Replacement.getUnqualifiedType(), Qs);
  3791. T = SemaRef.Context.getSubstTemplateTypeParmType(
  3792. SubstTypeParam->getReplacedParameter(), Replacement);
  3793. } else if ((AutoTy = dyn_cast<AutoType>(T)) && AutoTy->isDeduced()) {
  3794. // 'auto' types behave the same way as template parameters.
  3795. QualType Deduced = AutoTy->getDeducedType();
  3796. Qualifiers Qs = Deduced.getQualifiers();
  3797. Qs.removeObjCLifetime();
  3798. Deduced =
  3799. SemaRef.Context.getQualifiedType(Deduced.getUnqualifiedType(), Qs);
  3800. T = SemaRef.Context.getAutoType(Deduced, AutoTy->getKeyword(),
  3801. AutoTy->isDependentType());
  3802. } else {
  3803. // Otherwise, complain about the addition of a qualifier to an
  3804. // already-qualified type.
  3805. // FIXME: Why is this check not in Sema::BuildQualifiedType?
  3806. SemaRef.Diag(Loc, diag::err_attr_objc_ownership_redundant) << T;
  3807. Quals.removeObjCLifetime();
  3808. }
  3809. }
  3810. }
  3811. return SemaRef.BuildQualifiedType(T, Loc, Quals);
  3812. }
  3813. template<typename Derived>
  3814. TypeLoc
  3815. TreeTransform<Derived>::TransformTypeInObjectScope(TypeLoc TL,
  3816. QualType ObjectType,
  3817. NamedDecl *UnqualLookup,
  3818. CXXScopeSpec &SS) {
  3819. if (getDerived().AlreadyTransformed(TL.getType()))
  3820. return TL;
  3821. TypeSourceInfo *TSI =
  3822. TransformTSIInObjectScope(TL, ObjectType, UnqualLookup, SS);
  3823. if (TSI)
  3824. return TSI->getTypeLoc();
  3825. return TypeLoc();
  3826. }
  3827. template<typename Derived>
  3828. TypeSourceInfo *
  3829. TreeTransform<Derived>::TransformTypeInObjectScope(TypeSourceInfo *TSInfo,
  3830. QualType ObjectType,
  3831. NamedDecl *UnqualLookup,
  3832. CXXScopeSpec &SS) {
  3833. if (getDerived().AlreadyTransformed(TSInfo->getType()))
  3834. return TSInfo;
  3835. return TransformTSIInObjectScope(TSInfo->getTypeLoc(), ObjectType,
  3836. UnqualLookup, SS);
  3837. }
  3838. template <typename Derived>
  3839. TypeSourceInfo *TreeTransform<Derived>::TransformTSIInObjectScope(
  3840. TypeLoc TL, QualType ObjectType, NamedDecl *UnqualLookup,
  3841. CXXScopeSpec &SS) {
  3842. QualType T = TL.getType();
  3843. assert(!getDerived().AlreadyTransformed(T));
  3844. TypeLocBuilder TLB;
  3845. QualType Result;
  3846. if (isa<TemplateSpecializationType>(T)) {
  3847. TemplateSpecializationTypeLoc SpecTL =
  3848. TL.castAs<TemplateSpecializationTypeLoc>();
  3849. TemplateName Template = getDerived().TransformTemplateName(
  3850. SS, SpecTL.getTypePtr()->getTemplateName(), SpecTL.getTemplateNameLoc(),
  3851. ObjectType, UnqualLookup, /*AllowInjectedClassName*/true);
  3852. if (Template.isNull())
  3853. return nullptr;
  3854. Result = getDerived().TransformTemplateSpecializationType(TLB, SpecTL,
  3855. Template);
  3856. } else if (isa<DependentTemplateSpecializationType>(T)) {
  3857. DependentTemplateSpecializationTypeLoc SpecTL =
  3858. TL.castAs<DependentTemplateSpecializationTypeLoc>();
  3859. TemplateName Template
  3860. = getDerived().RebuildTemplateName(SS,
  3861. SpecTL.getTemplateKeywordLoc(),
  3862. *SpecTL.getTypePtr()->getIdentifier(),
  3863. SpecTL.getTemplateNameLoc(),
  3864. ObjectType, UnqualLookup,
  3865. /*AllowInjectedClassName*/true);
  3866. if (Template.isNull())
  3867. return nullptr;
  3868. Result = getDerived().TransformDependentTemplateSpecializationType(TLB,
  3869. SpecTL,
  3870. Template,
  3871. SS);
  3872. } else {
  3873. // Nothing special needs to be done for these.
  3874. Result = getDerived().TransformType(TLB, TL);
  3875. }
  3876. if (Result.isNull())
  3877. return nullptr;
  3878. return TLB.getTypeSourceInfo(SemaRef.Context, Result);
  3879. }
  3880. template <class TyLoc> static inline
  3881. QualType TransformTypeSpecType(TypeLocBuilder &TLB, TyLoc T) {
  3882. TyLoc NewT = TLB.push<TyLoc>(T.getType());
  3883. NewT.setNameLoc(T.getNameLoc());
  3884. return T.getType();
  3885. }
  3886. template<typename Derived>
  3887. QualType TreeTransform<Derived>::TransformBuiltinType(TypeLocBuilder &TLB,
  3888. BuiltinTypeLoc T) {
  3889. BuiltinTypeLoc NewT = TLB.push<BuiltinTypeLoc>(T.getType());
  3890. NewT.setBuiltinLoc(T.getBuiltinLoc());
  3891. if (T.needsExtraLocalData())
  3892. NewT.getWrittenBuiltinSpecs() = T.getWrittenBuiltinSpecs();
  3893. return T.getType();
  3894. }
  3895. template<typename Derived>
  3896. QualType TreeTransform<Derived>::TransformComplexType(TypeLocBuilder &TLB,
  3897. ComplexTypeLoc T) {
  3898. // FIXME: recurse?
  3899. return TransformTypeSpecType(TLB, T);
  3900. }
  3901. template <typename Derived>
  3902. QualType TreeTransform<Derived>::TransformAdjustedType(TypeLocBuilder &TLB,
  3903. AdjustedTypeLoc TL) {
  3904. // Adjustments applied during transformation are handled elsewhere.
  3905. return getDerived().TransformType(TLB, TL.getOriginalLoc());
  3906. }
  3907. template<typename Derived>
  3908. QualType TreeTransform<Derived>::TransformDecayedType(TypeLocBuilder &TLB,
  3909. DecayedTypeLoc TL) {
  3910. QualType OriginalType = getDerived().TransformType(TLB, TL.getOriginalLoc());
  3911. if (OriginalType.isNull())
  3912. return QualType();
  3913. QualType Result = TL.getType();
  3914. if (getDerived().AlwaysRebuild() ||
  3915. OriginalType != TL.getOriginalLoc().getType())
  3916. Result = SemaRef.Context.getDecayedType(OriginalType);
  3917. TLB.push<DecayedTypeLoc>(Result);
  3918. // Nothing to set for DecayedTypeLoc.
  3919. return Result;
  3920. }
  3921. template<typename Derived>
  3922. QualType TreeTransform<Derived>::TransformPointerType(TypeLocBuilder &TLB,
  3923. PointerTypeLoc TL) {
  3924. QualType PointeeType
  3925. = getDerived().TransformType(TLB, TL.getPointeeLoc());
  3926. if (PointeeType.isNull())
  3927. return QualType();
  3928. QualType Result = TL.getType();
  3929. if (PointeeType->getAs<ObjCObjectType>()) {
  3930. // A dependent pointer type 'T *' has is being transformed such
  3931. // that an Objective-C class type is being replaced for 'T'. The
  3932. // resulting pointer type is an ObjCObjectPointerType, not a
  3933. // PointerType.
  3934. Result = SemaRef.Context.getObjCObjectPointerType(PointeeType);
  3935. ObjCObjectPointerTypeLoc NewT = TLB.push<ObjCObjectPointerTypeLoc>(Result);
  3936. NewT.setStarLoc(TL.getStarLoc());
  3937. return Result;
  3938. }
  3939. if (getDerived().AlwaysRebuild() ||
  3940. PointeeType != TL.getPointeeLoc().getType()) {
  3941. Result = getDerived().RebuildPointerType(PointeeType, TL.getSigilLoc());
  3942. if (Result.isNull())
  3943. return QualType();
  3944. }
  3945. // Objective-C ARC can add lifetime qualifiers to the type that we're
  3946. // pointing to.
  3947. TLB.TypeWasModifiedSafely(Result->getPointeeType());
  3948. PointerTypeLoc NewT = TLB.push<PointerTypeLoc>(Result);
  3949. NewT.setSigilLoc(TL.getSigilLoc());
  3950. return Result;
  3951. }
  3952. template<typename Derived>
  3953. QualType
  3954. TreeTransform<Derived>::TransformBlockPointerType(TypeLocBuilder &TLB,
  3955. BlockPointerTypeLoc TL) {
  3956. QualType PointeeType
  3957. = getDerived().TransformType(TLB, TL.getPointeeLoc());
  3958. if (PointeeType.isNull())
  3959. return QualType();
  3960. QualType Result = TL.getType();
  3961. if (getDerived().AlwaysRebuild() ||
  3962. PointeeType != TL.getPointeeLoc().getType()) {
  3963. Result = getDerived().RebuildBlockPointerType(PointeeType,
  3964. TL.getSigilLoc());
  3965. if (Result.isNull())
  3966. return QualType();
  3967. }
  3968. BlockPointerTypeLoc NewT = TLB.push<BlockPointerTypeLoc>(Result);
  3969. NewT.setSigilLoc(TL.getSigilLoc());
  3970. return Result;
  3971. }
  3972. /// Transforms a reference type. Note that somewhat paradoxically we
  3973. /// don't care whether the type itself is an l-value type or an r-value
  3974. /// type; we only care if the type was *written* as an l-value type
  3975. /// or an r-value type.
  3976. template<typename Derived>
  3977. QualType
  3978. TreeTransform<Derived>::TransformReferenceType(TypeLocBuilder &TLB,
  3979. ReferenceTypeLoc TL) {
  3980. const ReferenceType *T = TL.getTypePtr();
  3981. // Note that this works with the pointee-as-written.
  3982. QualType PointeeType = getDerived().TransformType(TLB, TL.getPointeeLoc());
  3983. if (PointeeType.isNull())
  3984. return QualType();
  3985. QualType Result = TL.getType();
  3986. if (getDerived().AlwaysRebuild() ||
  3987. PointeeType != T->getPointeeTypeAsWritten()) {
  3988. Result = getDerived().RebuildReferenceType(PointeeType,
  3989. T->isSpelledAsLValue(),
  3990. TL.getSigilLoc());
  3991. if (Result.isNull())
  3992. return QualType();
  3993. }
  3994. // Objective-C ARC can add lifetime qualifiers to the type that we're
  3995. // referring to.
  3996. TLB.TypeWasModifiedSafely(
  3997. Result->getAs<ReferenceType>()->getPointeeTypeAsWritten());
  3998. // r-value references can be rebuilt as l-value references.
  3999. ReferenceTypeLoc NewTL;
  4000. if (isa<LValueReferenceType>(Result))
  4001. NewTL = TLB.push<LValueReferenceTypeLoc>(Result);
  4002. else
  4003. NewTL = TLB.push<RValueReferenceTypeLoc>(Result);
  4004. NewTL.setSigilLoc(TL.getSigilLoc());
  4005. return Result;
  4006. }
  4007. template<typename Derived>
  4008. QualType
  4009. TreeTransform<Derived>::TransformLValueReferenceType(TypeLocBuilder &TLB,
  4010. LValueReferenceTypeLoc TL) {
  4011. return TransformReferenceType(TLB, TL);
  4012. }
  4013. template<typename Derived>
  4014. QualType
  4015. TreeTransform<Derived>::TransformRValueReferenceType(TypeLocBuilder &TLB,
  4016. RValueReferenceTypeLoc TL) {
  4017. return TransformReferenceType(TLB, TL);
  4018. }
  4019. template<typename Derived>
  4020. QualType
  4021. TreeTransform<Derived>::TransformMemberPointerType(TypeLocBuilder &TLB,
  4022. MemberPointerTypeLoc TL) {
  4023. QualType PointeeType = getDerived().TransformType(TLB, TL.getPointeeLoc());
  4024. if (PointeeType.isNull())
  4025. return QualType();
  4026. TypeSourceInfo* OldClsTInfo = TL.getClassTInfo();
  4027. TypeSourceInfo *NewClsTInfo = nullptr;
  4028. if (OldClsTInfo) {
  4029. NewClsTInfo = getDerived().TransformType(OldClsTInfo);
  4030. if (!NewClsTInfo)
  4031. return QualType();
  4032. }
  4033. const MemberPointerType *T = TL.getTypePtr();
  4034. QualType OldClsType = QualType(T->getClass(), 0);
  4035. QualType NewClsType;
  4036. if (NewClsTInfo)
  4037. NewClsType = NewClsTInfo->getType();
  4038. else {
  4039. NewClsType = getDerived().TransformType(OldClsType);
  4040. if (NewClsType.isNull())
  4041. return QualType();
  4042. }
  4043. QualType Result = TL.getType();
  4044. if (getDerived().AlwaysRebuild() ||
  4045. PointeeType != T->getPointeeType() ||
  4046. NewClsType != OldClsType) {
  4047. Result = getDerived().RebuildMemberPointerType(PointeeType, NewClsType,
  4048. TL.getStarLoc());
  4049. if (Result.isNull())
  4050. return QualType();
  4051. }
  4052. // If we had to adjust the pointee type when building a member pointer, make
  4053. // sure to push TypeLoc info for it.
  4054. const MemberPointerType *MPT = Result->getAs<MemberPointerType>();
  4055. if (MPT && PointeeType != MPT->getPointeeType()) {
  4056. assert(isa<AdjustedType>(MPT->getPointeeType()));
  4057. TLB.push<AdjustedTypeLoc>(MPT->getPointeeType());
  4058. }
  4059. MemberPointerTypeLoc NewTL = TLB.push<MemberPointerTypeLoc>(Result);
  4060. NewTL.setSigilLoc(TL.getSigilLoc());
  4061. NewTL.setClassTInfo(NewClsTInfo);
  4062. return Result;
  4063. }
  4064. template<typename Derived>
  4065. QualType
  4066. TreeTransform<Derived>::TransformConstantArrayType(TypeLocBuilder &TLB,
  4067. ConstantArrayTypeLoc TL) {
  4068. const ConstantArrayType *T = TL.getTypePtr();
  4069. QualType ElementType = getDerived().TransformType(TLB, TL.getElementLoc());
  4070. if (ElementType.isNull())
  4071. return QualType();
  4072. QualType Result = TL.getType();
  4073. if (getDerived().AlwaysRebuild() ||
  4074. ElementType != T->getElementType()) {
  4075. Result = getDerived().RebuildConstantArrayType(ElementType,
  4076. T->getSizeModifier(),
  4077. T->getSize(),
  4078. T->getIndexTypeCVRQualifiers(),
  4079. TL.getBracketsRange());
  4080. if (Result.isNull())
  4081. return QualType();
  4082. }
  4083. // We might have either a ConstantArrayType or a VariableArrayType now:
  4084. // a ConstantArrayType is allowed to have an element type which is a
  4085. // VariableArrayType if the type is dependent. Fortunately, all array
  4086. // types have the same location layout.
  4087. ArrayTypeLoc NewTL = TLB.push<ArrayTypeLoc>(Result);
  4088. NewTL.setLBracketLoc(TL.getLBracketLoc());
  4089. NewTL.setRBracketLoc(TL.getRBracketLoc());
  4090. Expr *Size = TL.getSizeExpr();
  4091. if (Size) {
  4092. EnterExpressionEvaluationContext Unevaluated(
  4093. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated);
  4094. Size = getDerived().TransformExpr(Size).template getAs<Expr>();
  4095. Size = SemaRef.ActOnConstantExpression(Size).get();
  4096. }
  4097. NewTL.setSizeExpr(Size);
  4098. return Result;
  4099. }
  4100. template<typename Derived>
  4101. QualType TreeTransform<Derived>::TransformIncompleteArrayType(
  4102. TypeLocBuilder &TLB,
  4103. IncompleteArrayTypeLoc TL) {
  4104. const IncompleteArrayType *T = TL.getTypePtr();
  4105. QualType ElementType = getDerived().TransformType(TLB, TL.getElementLoc());
  4106. if (ElementType.isNull())
  4107. return QualType();
  4108. QualType Result = TL.getType();
  4109. if (getDerived().AlwaysRebuild() ||
  4110. ElementType != T->getElementType()) {
  4111. Result = getDerived().RebuildIncompleteArrayType(ElementType,
  4112. T->getSizeModifier(),
  4113. T->getIndexTypeCVRQualifiers(),
  4114. TL.getBracketsRange());
  4115. if (Result.isNull())
  4116. return QualType();
  4117. }
  4118. IncompleteArrayTypeLoc NewTL = TLB.push<IncompleteArrayTypeLoc>(Result);
  4119. NewTL.setLBracketLoc(TL.getLBracketLoc());
  4120. NewTL.setRBracketLoc(TL.getRBracketLoc());
  4121. NewTL.setSizeExpr(nullptr);
  4122. return Result;
  4123. }
  4124. template<typename Derived>
  4125. QualType
  4126. TreeTransform<Derived>::TransformVariableArrayType(TypeLocBuilder &TLB,
  4127. VariableArrayTypeLoc TL) {
  4128. const VariableArrayType *T = TL.getTypePtr();
  4129. QualType ElementType = getDerived().TransformType(TLB, TL.getElementLoc());
  4130. if (ElementType.isNull())
  4131. return QualType();
  4132. ExprResult SizeResult;
  4133. {
  4134. EnterExpressionEvaluationContext Context(
  4135. SemaRef, Sema::ExpressionEvaluationContext::PotentiallyEvaluated);
  4136. SizeResult = getDerived().TransformExpr(T->getSizeExpr());
  4137. }
  4138. if (SizeResult.isInvalid())
  4139. return QualType();
  4140. SizeResult = SemaRef.ActOnFinishFullExpr(SizeResult.get());
  4141. if (SizeResult.isInvalid())
  4142. return QualType();
  4143. Expr *Size = SizeResult.get();
  4144. QualType Result = TL.getType();
  4145. if (getDerived().AlwaysRebuild() ||
  4146. ElementType != T->getElementType() ||
  4147. Size != T->getSizeExpr()) {
  4148. Result = getDerived().RebuildVariableArrayType(ElementType,
  4149. T->getSizeModifier(),
  4150. Size,
  4151. T->getIndexTypeCVRQualifiers(),
  4152. TL.getBracketsRange());
  4153. if (Result.isNull())
  4154. return QualType();
  4155. }
  4156. // We might have constant size array now, but fortunately it has the same
  4157. // location layout.
  4158. ArrayTypeLoc NewTL = TLB.push<ArrayTypeLoc>(Result);
  4159. NewTL.setLBracketLoc(TL.getLBracketLoc());
  4160. NewTL.setRBracketLoc(TL.getRBracketLoc());
  4161. NewTL.setSizeExpr(Size);
  4162. return Result;
  4163. }
  4164. template<typename Derived>
  4165. QualType
  4166. TreeTransform<Derived>::TransformDependentSizedArrayType(TypeLocBuilder &TLB,
  4167. DependentSizedArrayTypeLoc TL) {
  4168. const DependentSizedArrayType *T = TL.getTypePtr();
  4169. QualType ElementType = getDerived().TransformType(TLB, TL.getElementLoc());
  4170. if (ElementType.isNull())
  4171. return QualType();
  4172. // Array bounds are constant expressions.
  4173. EnterExpressionEvaluationContext Unevaluated(
  4174. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated);
  4175. // Prefer the expression from the TypeLoc; the other may have been uniqued.
  4176. Expr *origSize = TL.getSizeExpr();
  4177. if (!origSize) origSize = T->getSizeExpr();
  4178. ExprResult sizeResult
  4179. = getDerived().TransformExpr(origSize);
  4180. sizeResult = SemaRef.ActOnConstantExpression(sizeResult);
  4181. if (sizeResult.isInvalid())
  4182. return QualType();
  4183. Expr *size = sizeResult.get();
  4184. QualType Result = TL.getType();
  4185. if (getDerived().AlwaysRebuild() ||
  4186. ElementType != T->getElementType() ||
  4187. size != origSize) {
  4188. Result = getDerived().RebuildDependentSizedArrayType(ElementType,
  4189. T->getSizeModifier(),
  4190. size,
  4191. T->getIndexTypeCVRQualifiers(),
  4192. TL.getBracketsRange());
  4193. if (Result.isNull())
  4194. return QualType();
  4195. }
  4196. // We might have any sort of array type now, but fortunately they
  4197. // all have the same location layout.
  4198. ArrayTypeLoc NewTL = TLB.push<ArrayTypeLoc>(Result);
  4199. NewTL.setLBracketLoc(TL.getLBracketLoc());
  4200. NewTL.setRBracketLoc(TL.getRBracketLoc());
  4201. NewTL.setSizeExpr(size);
  4202. return Result;
  4203. }
  4204. template <typename Derived>
  4205. QualType TreeTransform<Derived>::TransformDependentVectorType(
  4206. TypeLocBuilder &TLB, DependentVectorTypeLoc TL) {
  4207. const DependentVectorType *T = TL.getTypePtr();
  4208. QualType ElementType = getDerived().TransformType(T->getElementType());
  4209. if (ElementType.isNull())
  4210. return QualType();
  4211. EnterExpressionEvaluationContext Unevaluated(
  4212. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated);
  4213. ExprResult Size = getDerived().TransformExpr(T->getSizeExpr());
  4214. Size = SemaRef.ActOnConstantExpression(Size);
  4215. if (Size.isInvalid())
  4216. return QualType();
  4217. QualType Result = TL.getType();
  4218. if (getDerived().AlwaysRebuild() || ElementType != T->getElementType() ||
  4219. Size.get() != T->getSizeExpr()) {
  4220. Result = getDerived().RebuildDependentVectorType(
  4221. ElementType, Size.get(), T->getAttributeLoc(), T->getVectorKind());
  4222. if (Result.isNull())
  4223. return QualType();
  4224. }
  4225. // Result might be dependent or not.
  4226. if (isa<DependentVectorType>(Result)) {
  4227. DependentVectorTypeLoc NewTL =
  4228. TLB.push<DependentVectorTypeLoc>(Result);
  4229. NewTL.setNameLoc(TL.getNameLoc());
  4230. } else {
  4231. VectorTypeLoc NewTL = TLB.push<VectorTypeLoc>(Result);
  4232. NewTL.setNameLoc(TL.getNameLoc());
  4233. }
  4234. return Result;
  4235. }
  4236. template<typename Derived>
  4237. QualType TreeTransform<Derived>::TransformDependentSizedExtVectorType(
  4238. TypeLocBuilder &TLB,
  4239. DependentSizedExtVectorTypeLoc TL) {
  4240. const DependentSizedExtVectorType *T = TL.getTypePtr();
  4241. // FIXME: ext vector locs should be nested
  4242. QualType ElementType = getDerived().TransformType(T->getElementType());
  4243. if (ElementType.isNull())
  4244. return QualType();
  4245. // Vector sizes are constant expressions.
  4246. EnterExpressionEvaluationContext Unevaluated(
  4247. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated);
  4248. ExprResult Size = getDerived().TransformExpr(T->getSizeExpr());
  4249. Size = SemaRef.ActOnConstantExpression(Size);
  4250. if (Size.isInvalid())
  4251. return QualType();
  4252. QualType Result = TL.getType();
  4253. if (getDerived().AlwaysRebuild() ||
  4254. ElementType != T->getElementType() ||
  4255. Size.get() != T->getSizeExpr()) {
  4256. Result = getDerived().RebuildDependentSizedExtVectorType(ElementType,
  4257. Size.get(),
  4258. T->getAttributeLoc());
  4259. if (Result.isNull())
  4260. return QualType();
  4261. }
  4262. // Result might be dependent or not.
  4263. if (isa<DependentSizedExtVectorType>(Result)) {
  4264. DependentSizedExtVectorTypeLoc NewTL
  4265. = TLB.push<DependentSizedExtVectorTypeLoc>(Result);
  4266. NewTL.setNameLoc(TL.getNameLoc());
  4267. } else {
  4268. ExtVectorTypeLoc NewTL = TLB.push<ExtVectorTypeLoc>(Result);
  4269. NewTL.setNameLoc(TL.getNameLoc());
  4270. }
  4271. return Result;
  4272. }
  4273. template <typename Derived>
  4274. QualType TreeTransform<Derived>::TransformDependentAddressSpaceType(
  4275. TypeLocBuilder &TLB, DependentAddressSpaceTypeLoc TL) {
  4276. const DependentAddressSpaceType *T = TL.getTypePtr();
  4277. QualType pointeeType = getDerived().TransformType(T->getPointeeType());
  4278. if (pointeeType.isNull())
  4279. return QualType();
  4280. // Address spaces are constant expressions.
  4281. EnterExpressionEvaluationContext Unevaluated(
  4282. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated);
  4283. ExprResult AddrSpace = getDerived().TransformExpr(T->getAddrSpaceExpr());
  4284. AddrSpace = SemaRef.ActOnConstantExpression(AddrSpace);
  4285. if (AddrSpace.isInvalid())
  4286. return QualType();
  4287. QualType Result = TL.getType();
  4288. if (getDerived().AlwaysRebuild() || pointeeType != T->getPointeeType() ||
  4289. AddrSpace.get() != T->getAddrSpaceExpr()) {
  4290. Result = getDerived().RebuildDependentAddressSpaceType(
  4291. pointeeType, AddrSpace.get(), T->getAttributeLoc());
  4292. if (Result.isNull())
  4293. return QualType();
  4294. }
  4295. // Result might be dependent or not.
  4296. if (isa<DependentAddressSpaceType>(Result)) {
  4297. DependentAddressSpaceTypeLoc NewTL =
  4298. TLB.push<DependentAddressSpaceTypeLoc>(Result);
  4299. NewTL.setAttrOperandParensRange(TL.getAttrOperandParensRange());
  4300. NewTL.setAttrExprOperand(TL.getAttrExprOperand());
  4301. NewTL.setAttrNameLoc(TL.getAttrNameLoc());
  4302. } else {
  4303. TypeSourceInfo *DI = getSema().Context.getTrivialTypeSourceInfo(
  4304. Result, getDerived().getBaseLocation());
  4305. TransformType(TLB, DI->getTypeLoc());
  4306. }
  4307. return Result;
  4308. }
  4309. template <typename Derived>
  4310. QualType TreeTransform<Derived>::TransformVectorType(TypeLocBuilder &TLB,
  4311. VectorTypeLoc TL) {
  4312. const VectorType *T = TL.getTypePtr();
  4313. QualType ElementType = getDerived().TransformType(T->getElementType());
  4314. if (ElementType.isNull())
  4315. return QualType();
  4316. QualType Result = TL.getType();
  4317. if (getDerived().AlwaysRebuild() ||
  4318. ElementType != T->getElementType()) {
  4319. Result = getDerived().RebuildVectorType(ElementType, T->getNumElements(),
  4320. T->getVectorKind());
  4321. if (Result.isNull())
  4322. return QualType();
  4323. }
  4324. VectorTypeLoc NewTL = TLB.push<VectorTypeLoc>(Result);
  4325. NewTL.setNameLoc(TL.getNameLoc());
  4326. return Result;
  4327. }
  4328. template<typename Derived>
  4329. QualType TreeTransform<Derived>::TransformExtVectorType(TypeLocBuilder &TLB,
  4330. ExtVectorTypeLoc TL) {
  4331. const VectorType *T = TL.getTypePtr();
  4332. QualType ElementType = getDerived().TransformType(T->getElementType());
  4333. if (ElementType.isNull())
  4334. return QualType();
  4335. QualType Result = TL.getType();
  4336. if (getDerived().AlwaysRebuild() ||
  4337. ElementType != T->getElementType()) {
  4338. Result = getDerived().RebuildExtVectorType(ElementType,
  4339. T->getNumElements(),
  4340. /*FIXME*/ SourceLocation());
  4341. if (Result.isNull())
  4342. return QualType();
  4343. }
  4344. ExtVectorTypeLoc NewTL = TLB.push<ExtVectorTypeLoc>(Result);
  4345. NewTL.setNameLoc(TL.getNameLoc());
  4346. return Result;
  4347. }
  4348. template <typename Derived>
  4349. ParmVarDecl *TreeTransform<Derived>::TransformFunctionTypeParam(
  4350. ParmVarDecl *OldParm, int indexAdjustment, Optional<unsigned> NumExpansions,
  4351. bool ExpectParameterPack) {
  4352. TypeSourceInfo *OldDI = OldParm->getTypeSourceInfo();
  4353. TypeSourceInfo *NewDI = nullptr;
  4354. if (NumExpansions && isa<PackExpansionType>(OldDI->getType())) {
  4355. // If we're substituting into a pack expansion type and we know the
  4356. // length we want to expand to, just substitute for the pattern.
  4357. TypeLoc OldTL = OldDI->getTypeLoc();
  4358. PackExpansionTypeLoc OldExpansionTL = OldTL.castAs<PackExpansionTypeLoc>();
  4359. TypeLocBuilder TLB;
  4360. TypeLoc NewTL = OldDI->getTypeLoc();
  4361. TLB.reserve(NewTL.getFullDataSize());
  4362. QualType Result = getDerived().TransformType(TLB,
  4363. OldExpansionTL.getPatternLoc());
  4364. if (Result.isNull())
  4365. return nullptr;
  4366. Result = RebuildPackExpansionType(Result,
  4367. OldExpansionTL.getPatternLoc().getSourceRange(),
  4368. OldExpansionTL.getEllipsisLoc(),
  4369. NumExpansions);
  4370. if (Result.isNull())
  4371. return nullptr;
  4372. PackExpansionTypeLoc NewExpansionTL
  4373. = TLB.push<PackExpansionTypeLoc>(Result);
  4374. NewExpansionTL.setEllipsisLoc(OldExpansionTL.getEllipsisLoc());
  4375. NewDI = TLB.getTypeSourceInfo(SemaRef.Context, Result);
  4376. } else
  4377. NewDI = getDerived().TransformType(OldDI);
  4378. if (!NewDI)
  4379. return nullptr;
  4380. if (NewDI == OldDI && indexAdjustment == 0)
  4381. return OldParm;
  4382. ParmVarDecl *newParm = ParmVarDecl::Create(SemaRef.Context,
  4383. OldParm->getDeclContext(),
  4384. OldParm->getInnerLocStart(),
  4385. OldParm->getLocation(),
  4386. OldParm->getIdentifier(),
  4387. NewDI->getType(),
  4388. NewDI,
  4389. OldParm->getStorageClass(),
  4390. /* DefArg */ nullptr);
  4391. newParm->setScopeInfo(OldParm->getFunctionScopeDepth(),
  4392. OldParm->getFunctionScopeIndex() + indexAdjustment);
  4393. return newParm;
  4394. }
  4395. template <typename Derived>
  4396. bool TreeTransform<Derived>::TransformFunctionTypeParams(
  4397. SourceLocation Loc, ArrayRef<ParmVarDecl *> Params,
  4398. const QualType *ParamTypes,
  4399. const FunctionProtoType::ExtParameterInfo *ParamInfos,
  4400. SmallVectorImpl<QualType> &OutParamTypes,
  4401. SmallVectorImpl<ParmVarDecl *> *PVars,
  4402. Sema::ExtParameterInfoBuilder &PInfos) {
  4403. int indexAdjustment = 0;
  4404. unsigned NumParams = Params.size();
  4405. for (unsigned i = 0; i != NumParams; ++i) {
  4406. if (ParmVarDecl *OldParm = Params[i]) {
  4407. assert(OldParm->getFunctionScopeIndex() == i);
  4408. Optional<unsigned> NumExpansions;
  4409. ParmVarDecl *NewParm = nullptr;
  4410. if (OldParm->isParameterPack()) {
  4411. // We have a function parameter pack that may need to be expanded.
  4412. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  4413. // Find the parameter packs that could be expanded.
  4414. TypeLoc TL = OldParm->getTypeSourceInfo()->getTypeLoc();
  4415. PackExpansionTypeLoc ExpansionTL = TL.castAs<PackExpansionTypeLoc>();
  4416. TypeLoc Pattern = ExpansionTL.getPatternLoc();
  4417. SemaRef.collectUnexpandedParameterPacks(Pattern, Unexpanded);
  4418. assert(Unexpanded.size() > 0 && "Could not find parameter packs!");
  4419. // Determine whether we should expand the parameter packs.
  4420. bool ShouldExpand = false;
  4421. bool RetainExpansion = false;
  4422. Optional<unsigned> OrigNumExpansions =
  4423. ExpansionTL.getTypePtr()->getNumExpansions();
  4424. NumExpansions = OrigNumExpansions;
  4425. if (getDerived().TryExpandParameterPacks(ExpansionTL.getEllipsisLoc(),
  4426. Pattern.getSourceRange(),
  4427. Unexpanded,
  4428. ShouldExpand,
  4429. RetainExpansion,
  4430. NumExpansions)) {
  4431. return true;
  4432. }
  4433. if (ShouldExpand) {
  4434. // Expand the function parameter pack into multiple, separate
  4435. // parameters.
  4436. getDerived().ExpandingFunctionParameterPack(OldParm);
  4437. for (unsigned I = 0; I != *NumExpansions; ++I) {
  4438. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), I);
  4439. ParmVarDecl *NewParm
  4440. = getDerived().TransformFunctionTypeParam(OldParm,
  4441. indexAdjustment++,
  4442. OrigNumExpansions,
  4443. /*ExpectParameterPack=*/false);
  4444. if (!NewParm)
  4445. return true;
  4446. if (ParamInfos)
  4447. PInfos.set(OutParamTypes.size(), ParamInfos[i]);
  4448. OutParamTypes.push_back(NewParm->getType());
  4449. if (PVars)
  4450. PVars->push_back(NewParm);
  4451. }
  4452. // If we're supposed to retain a pack expansion, do so by temporarily
  4453. // forgetting the partially-substituted parameter pack.
  4454. if (RetainExpansion) {
  4455. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  4456. ParmVarDecl *NewParm
  4457. = getDerived().TransformFunctionTypeParam(OldParm,
  4458. indexAdjustment++,
  4459. OrigNumExpansions,
  4460. /*ExpectParameterPack=*/false);
  4461. if (!NewParm)
  4462. return true;
  4463. if (ParamInfos)
  4464. PInfos.set(OutParamTypes.size(), ParamInfos[i]);
  4465. OutParamTypes.push_back(NewParm->getType());
  4466. if (PVars)
  4467. PVars->push_back(NewParm);
  4468. }
  4469. // The next parameter should have the same adjustment as the
  4470. // last thing we pushed, but we post-incremented indexAdjustment
  4471. // on every push. Also, if we push nothing, the adjustment should
  4472. // go down by one.
  4473. indexAdjustment--;
  4474. // We're done with the pack expansion.
  4475. continue;
  4476. }
  4477. // We'll substitute the parameter now without expanding the pack
  4478. // expansion.
  4479. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  4480. NewParm = getDerived().TransformFunctionTypeParam(OldParm,
  4481. indexAdjustment,
  4482. NumExpansions,
  4483. /*ExpectParameterPack=*/true);
  4484. } else {
  4485. NewParm = getDerived().TransformFunctionTypeParam(
  4486. OldParm, indexAdjustment, None, /*ExpectParameterPack=*/ false);
  4487. }
  4488. if (!NewParm)
  4489. return true;
  4490. if (ParamInfos)
  4491. PInfos.set(OutParamTypes.size(), ParamInfos[i]);
  4492. OutParamTypes.push_back(NewParm->getType());
  4493. if (PVars)
  4494. PVars->push_back(NewParm);
  4495. continue;
  4496. }
  4497. // Deal with the possibility that we don't have a parameter
  4498. // declaration for this parameter.
  4499. QualType OldType = ParamTypes[i];
  4500. bool IsPackExpansion = false;
  4501. Optional<unsigned> NumExpansions;
  4502. QualType NewType;
  4503. if (const PackExpansionType *Expansion
  4504. = dyn_cast<PackExpansionType>(OldType)) {
  4505. // We have a function parameter pack that may need to be expanded.
  4506. QualType Pattern = Expansion->getPattern();
  4507. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  4508. getSema().collectUnexpandedParameterPacks(Pattern, Unexpanded);
  4509. // Determine whether we should expand the parameter packs.
  4510. bool ShouldExpand = false;
  4511. bool RetainExpansion = false;
  4512. if (getDerived().TryExpandParameterPacks(Loc, SourceRange(),
  4513. Unexpanded,
  4514. ShouldExpand,
  4515. RetainExpansion,
  4516. NumExpansions)) {
  4517. return true;
  4518. }
  4519. if (ShouldExpand) {
  4520. // Expand the function parameter pack into multiple, separate
  4521. // parameters.
  4522. for (unsigned I = 0; I != *NumExpansions; ++I) {
  4523. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), I);
  4524. QualType NewType = getDerived().TransformType(Pattern);
  4525. if (NewType.isNull())
  4526. return true;
  4527. if (NewType->containsUnexpandedParameterPack()) {
  4528. NewType =
  4529. getSema().getASTContext().getPackExpansionType(NewType, None);
  4530. if (NewType.isNull())
  4531. return true;
  4532. }
  4533. if (ParamInfos)
  4534. PInfos.set(OutParamTypes.size(), ParamInfos[i]);
  4535. OutParamTypes.push_back(NewType);
  4536. if (PVars)
  4537. PVars->push_back(nullptr);
  4538. }
  4539. // We're done with the pack expansion.
  4540. continue;
  4541. }
  4542. // If we're supposed to retain a pack expansion, do so by temporarily
  4543. // forgetting the partially-substituted parameter pack.
  4544. if (RetainExpansion) {
  4545. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  4546. QualType NewType = getDerived().TransformType(Pattern);
  4547. if (NewType.isNull())
  4548. return true;
  4549. if (ParamInfos)
  4550. PInfos.set(OutParamTypes.size(), ParamInfos[i]);
  4551. OutParamTypes.push_back(NewType);
  4552. if (PVars)
  4553. PVars->push_back(nullptr);
  4554. }
  4555. // We'll substitute the parameter now without expanding the pack
  4556. // expansion.
  4557. OldType = Expansion->getPattern();
  4558. IsPackExpansion = true;
  4559. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  4560. NewType = getDerived().TransformType(OldType);
  4561. } else {
  4562. NewType = getDerived().TransformType(OldType);
  4563. }
  4564. if (NewType.isNull())
  4565. return true;
  4566. if (IsPackExpansion)
  4567. NewType = getSema().Context.getPackExpansionType(NewType,
  4568. NumExpansions);
  4569. if (ParamInfos)
  4570. PInfos.set(OutParamTypes.size(), ParamInfos[i]);
  4571. OutParamTypes.push_back(NewType);
  4572. if (PVars)
  4573. PVars->push_back(nullptr);
  4574. }
  4575. #ifndef NDEBUG
  4576. if (PVars) {
  4577. for (unsigned i = 0, e = PVars->size(); i != e; ++i)
  4578. if (ParmVarDecl *parm = (*PVars)[i])
  4579. assert(parm->getFunctionScopeIndex() == i);
  4580. }
  4581. #endif
  4582. return false;
  4583. }
  4584. template<typename Derived>
  4585. QualType
  4586. TreeTransform<Derived>::TransformFunctionProtoType(TypeLocBuilder &TLB,
  4587. FunctionProtoTypeLoc TL) {
  4588. SmallVector<QualType, 4> ExceptionStorage;
  4589. TreeTransform *This = this; // Work around gcc.gnu.org/PR56135.
  4590. return getDerived().TransformFunctionProtoType(
  4591. TLB, TL, nullptr, 0,
  4592. [&](FunctionProtoType::ExceptionSpecInfo &ESI, bool &Changed) {
  4593. return This->TransformExceptionSpec(TL.getBeginLoc(), ESI,
  4594. ExceptionStorage, Changed);
  4595. });
  4596. }
  4597. template<typename Derived> template<typename Fn>
  4598. QualType TreeTransform<Derived>::TransformFunctionProtoType(
  4599. TypeLocBuilder &TLB, FunctionProtoTypeLoc TL, CXXRecordDecl *ThisContext,
  4600. unsigned ThisTypeQuals, Fn TransformExceptionSpec) {
  4601. // Transform the parameters and return type.
  4602. //
  4603. // We are required to instantiate the params and return type in source order.
  4604. // When the function has a trailing return type, we instantiate the
  4605. // parameters before the return type, since the return type can then refer
  4606. // to the parameters themselves (via decltype, sizeof, etc.).
  4607. //
  4608. SmallVector<QualType, 4> ParamTypes;
  4609. SmallVector<ParmVarDecl*, 4> ParamDecls;
  4610. Sema::ExtParameterInfoBuilder ExtParamInfos;
  4611. const FunctionProtoType *T = TL.getTypePtr();
  4612. QualType ResultType;
  4613. if (T->hasTrailingReturn()) {
  4614. if (getDerived().TransformFunctionTypeParams(
  4615. TL.getBeginLoc(), TL.getParams(),
  4616. TL.getTypePtr()->param_type_begin(),
  4617. T->getExtParameterInfosOrNull(),
  4618. ParamTypes, &ParamDecls, ExtParamInfos))
  4619. return QualType();
  4620. {
  4621. // C++11 [expr.prim.general]p3:
  4622. // If a declaration declares a member function or member function
  4623. // template of a class X, the expression this is a prvalue of type
  4624. // "pointer to cv-qualifier-seq X" between the optional cv-qualifer-seq
  4625. // and the end of the function-definition, member-declarator, or
  4626. // declarator.
  4627. Sema::CXXThisScopeRAII ThisScope(SemaRef, ThisContext, ThisTypeQuals);
  4628. ResultType = getDerived().TransformType(TLB, TL.getReturnLoc());
  4629. if (ResultType.isNull())
  4630. return QualType();
  4631. }
  4632. }
  4633. else {
  4634. ResultType = getDerived().TransformType(TLB, TL.getReturnLoc());
  4635. if (ResultType.isNull())
  4636. return QualType();
  4637. if (getDerived().TransformFunctionTypeParams(
  4638. TL.getBeginLoc(), TL.getParams(),
  4639. TL.getTypePtr()->param_type_begin(),
  4640. T->getExtParameterInfosOrNull(),
  4641. ParamTypes, &ParamDecls, ExtParamInfos))
  4642. return QualType();
  4643. }
  4644. FunctionProtoType::ExtProtoInfo EPI = T->getExtProtoInfo();
  4645. bool EPIChanged = false;
  4646. if (TransformExceptionSpec(EPI.ExceptionSpec, EPIChanged))
  4647. return QualType();
  4648. // Handle extended parameter information.
  4649. if (auto NewExtParamInfos =
  4650. ExtParamInfos.getPointerOrNull(ParamTypes.size())) {
  4651. if (!EPI.ExtParameterInfos ||
  4652. llvm::makeArrayRef(EPI.ExtParameterInfos, TL.getNumParams())
  4653. != llvm::makeArrayRef(NewExtParamInfos, ParamTypes.size())) {
  4654. EPIChanged = true;
  4655. }
  4656. EPI.ExtParameterInfos = NewExtParamInfos;
  4657. } else if (EPI.ExtParameterInfos) {
  4658. EPIChanged = true;
  4659. EPI.ExtParameterInfos = nullptr;
  4660. }
  4661. QualType Result = TL.getType();
  4662. if (getDerived().AlwaysRebuild() || ResultType != T->getReturnType() ||
  4663. T->getParamTypes() != llvm::makeArrayRef(ParamTypes) || EPIChanged) {
  4664. Result = getDerived().RebuildFunctionProtoType(ResultType, ParamTypes, EPI);
  4665. if (Result.isNull())
  4666. return QualType();
  4667. }
  4668. FunctionProtoTypeLoc NewTL = TLB.push<FunctionProtoTypeLoc>(Result);
  4669. NewTL.setLocalRangeBegin(TL.getLocalRangeBegin());
  4670. NewTL.setLParenLoc(TL.getLParenLoc());
  4671. NewTL.setRParenLoc(TL.getRParenLoc());
  4672. NewTL.setExceptionSpecRange(TL.getExceptionSpecRange());
  4673. NewTL.setLocalRangeEnd(TL.getLocalRangeEnd());
  4674. for (unsigned i = 0, e = NewTL.getNumParams(); i != e; ++i)
  4675. NewTL.setParam(i, ParamDecls[i]);
  4676. return Result;
  4677. }
  4678. template<typename Derived>
  4679. bool TreeTransform<Derived>::TransformExceptionSpec(
  4680. SourceLocation Loc, FunctionProtoType::ExceptionSpecInfo &ESI,
  4681. SmallVectorImpl<QualType> &Exceptions, bool &Changed) {
  4682. assert(ESI.Type != EST_Uninstantiated && ESI.Type != EST_Unevaluated);
  4683. // Instantiate a dynamic noexcept expression, if any.
  4684. if (isComputedNoexcept(ESI.Type)) {
  4685. EnterExpressionEvaluationContext Unevaluated(
  4686. getSema(), Sema::ExpressionEvaluationContext::ConstantEvaluated);
  4687. ExprResult NoexceptExpr = getDerived().TransformExpr(ESI.NoexceptExpr);
  4688. if (NoexceptExpr.isInvalid())
  4689. return true;
  4690. ExceptionSpecificationType EST = ESI.Type;
  4691. NoexceptExpr =
  4692. getSema().ActOnNoexceptSpec(Loc, NoexceptExpr.get(), EST);
  4693. if (NoexceptExpr.isInvalid())
  4694. return true;
  4695. if (ESI.NoexceptExpr != NoexceptExpr.get() || EST != ESI.Type)
  4696. Changed = true;
  4697. ESI.NoexceptExpr = NoexceptExpr.get();
  4698. ESI.Type = EST;
  4699. }
  4700. if (ESI.Type != EST_Dynamic)
  4701. return false;
  4702. // Instantiate a dynamic exception specification's type.
  4703. for (QualType T : ESI.Exceptions) {
  4704. if (const PackExpansionType *PackExpansion =
  4705. T->getAs<PackExpansionType>()) {
  4706. Changed = true;
  4707. // We have a pack expansion. Instantiate it.
  4708. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  4709. SemaRef.collectUnexpandedParameterPacks(PackExpansion->getPattern(),
  4710. Unexpanded);
  4711. assert(!Unexpanded.empty() && "Pack expansion without parameter packs?");
  4712. // Determine whether the set of unexpanded parameter packs can and
  4713. // should
  4714. // be expanded.
  4715. bool Expand = false;
  4716. bool RetainExpansion = false;
  4717. Optional<unsigned> NumExpansions = PackExpansion->getNumExpansions();
  4718. // FIXME: Track the location of the ellipsis (and track source location
  4719. // information for the types in the exception specification in general).
  4720. if (getDerived().TryExpandParameterPacks(
  4721. Loc, SourceRange(), Unexpanded, Expand,
  4722. RetainExpansion, NumExpansions))
  4723. return true;
  4724. if (!Expand) {
  4725. // We can't expand this pack expansion into separate arguments yet;
  4726. // just substitute into the pattern and create a new pack expansion
  4727. // type.
  4728. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  4729. QualType U = getDerived().TransformType(PackExpansion->getPattern());
  4730. if (U.isNull())
  4731. return true;
  4732. U = SemaRef.Context.getPackExpansionType(U, NumExpansions);
  4733. Exceptions.push_back(U);
  4734. continue;
  4735. }
  4736. // Substitute into the pack expansion pattern for each slice of the
  4737. // pack.
  4738. for (unsigned ArgIdx = 0; ArgIdx != *NumExpansions; ++ArgIdx) {
  4739. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), ArgIdx);
  4740. QualType U = getDerived().TransformType(PackExpansion->getPattern());
  4741. if (U.isNull() || SemaRef.CheckSpecifiedExceptionType(U, Loc))
  4742. return true;
  4743. Exceptions.push_back(U);
  4744. }
  4745. } else {
  4746. QualType U = getDerived().TransformType(T);
  4747. if (U.isNull() || SemaRef.CheckSpecifiedExceptionType(U, Loc))
  4748. return true;
  4749. if (T != U)
  4750. Changed = true;
  4751. Exceptions.push_back(U);
  4752. }
  4753. }
  4754. ESI.Exceptions = Exceptions;
  4755. if (ESI.Exceptions.empty())
  4756. ESI.Type = EST_DynamicNone;
  4757. return false;
  4758. }
  4759. template<typename Derived>
  4760. QualType TreeTransform<Derived>::TransformFunctionNoProtoType(
  4761. TypeLocBuilder &TLB,
  4762. FunctionNoProtoTypeLoc TL) {
  4763. const FunctionNoProtoType *T = TL.getTypePtr();
  4764. QualType ResultType = getDerived().TransformType(TLB, TL.getReturnLoc());
  4765. if (ResultType.isNull())
  4766. return QualType();
  4767. QualType Result = TL.getType();
  4768. if (getDerived().AlwaysRebuild() || ResultType != T->getReturnType())
  4769. Result = getDerived().RebuildFunctionNoProtoType(ResultType);
  4770. FunctionNoProtoTypeLoc NewTL = TLB.push<FunctionNoProtoTypeLoc>(Result);
  4771. NewTL.setLocalRangeBegin(TL.getLocalRangeBegin());
  4772. NewTL.setLParenLoc(TL.getLParenLoc());
  4773. NewTL.setRParenLoc(TL.getRParenLoc());
  4774. NewTL.setLocalRangeEnd(TL.getLocalRangeEnd());
  4775. return Result;
  4776. }
  4777. template<typename Derived> QualType
  4778. TreeTransform<Derived>::TransformUnresolvedUsingType(TypeLocBuilder &TLB,
  4779. UnresolvedUsingTypeLoc TL) {
  4780. const UnresolvedUsingType *T = TL.getTypePtr();
  4781. Decl *D = getDerived().TransformDecl(TL.getNameLoc(), T->getDecl());
  4782. if (!D)
  4783. return QualType();
  4784. QualType Result = TL.getType();
  4785. if (getDerived().AlwaysRebuild() || D != T->getDecl()) {
  4786. Result = getDerived().RebuildUnresolvedUsingType(TL.getNameLoc(), D);
  4787. if (Result.isNull())
  4788. return QualType();
  4789. }
  4790. // We might get an arbitrary type spec type back. We should at
  4791. // least always get a type spec type, though.
  4792. TypeSpecTypeLoc NewTL = TLB.pushTypeSpec(Result);
  4793. NewTL.setNameLoc(TL.getNameLoc());
  4794. return Result;
  4795. }
  4796. template<typename Derived>
  4797. QualType TreeTransform<Derived>::TransformTypedefType(TypeLocBuilder &TLB,
  4798. TypedefTypeLoc TL) {
  4799. const TypedefType *T = TL.getTypePtr();
  4800. TypedefNameDecl *Typedef
  4801. = cast_or_null<TypedefNameDecl>(getDerived().TransformDecl(TL.getNameLoc(),
  4802. T->getDecl()));
  4803. if (!Typedef)
  4804. return QualType();
  4805. QualType Result = TL.getType();
  4806. if (getDerived().AlwaysRebuild() ||
  4807. Typedef != T->getDecl()) {
  4808. Result = getDerived().RebuildTypedefType(Typedef);
  4809. if (Result.isNull())
  4810. return QualType();
  4811. }
  4812. TypedefTypeLoc NewTL = TLB.push<TypedefTypeLoc>(Result);
  4813. NewTL.setNameLoc(TL.getNameLoc());
  4814. return Result;
  4815. }
  4816. template<typename Derived>
  4817. QualType TreeTransform<Derived>::TransformTypeOfExprType(TypeLocBuilder &TLB,
  4818. TypeOfExprTypeLoc TL) {
  4819. // typeof expressions are not potentially evaluated contexts
  4820. EnterExpressionEvaluationContext Unevaluated(
  4821. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated,
  4822. Sema::ReuseLambdaContextDecl);
  4823. ExprResult E = getDerived().TransformExpr(TL.getUnderlyingExpr());
  4824. if (E.isInvalid())
  4825. return QualType();
  4826. E = SemaRef.HandleExprEvaluationContextForTypeof(E.get());
  4827. if (E.isInvalid())
  4828. return QualType();
  4829. QualType Result = TL.getType();
  4830. if (getDerived().AlwaysRebuild() ||
  4831. E.get() != TL.getUnderlyingExpr()) {
  4832. Result = getDerived().RebuildTypeOfExprType(E.get(), TL.getTypeofLoc());
  4833. if (Result.isNull())
  4834. return QualType();
  4835. }
  4836. else E.get();
  4837. TypeOfExprTypeLoc NewTL = TLB.push<TypeOfExprTypeLoc>(Result);
  4838. NewTL.setTypeofLoc(TL.getTypeofLoc());
  4839. NewTL.setLParenLoc(TL.getLParenLoc());
  4840. NewTL.setRParenLoc(TL.getRParenLoc());
  4841. return Result;
  4842. }
  4843. template<typename Derived>
  4844. QualType TreeTransform<Derived>::TransformTypeOfType(TypeLocBuilder &TLB,
  4845. TypeOfTypeLoc TL) {
  4846. TypeSourceInfo* Old_Under_TI = TL.getUnderlyingTInfo();
  4847. TypeSourceInfo* New_Under_TI = getDerived().TransformType(Old_Under_TI);
  4848. if (!New_Under_TI)
  4849. return QualType();
  4850. QualType Result = TL.getType();
  4851. if (getDerived().AlwaysRebuild() || New_Under_TI != Old_Under_TI) {
  4852. Result = getDerived().RebuildTypeOfType(New_Under_TI->getType());
  4853. if (Result.isNull())
  4854. return QualType();
  4855. }
  4856. TypeOfTypeLoc NewTL = TLB.push<TypeOfTypeLoc>(Result);
  4857. NewTL.setTypeofLoc(TL.getTypeofLoc());
  4858. NewTL.setLParenLoc(TL.getLParenLoc());
  4859. NewTL.setRParenLoc(TL.getRParenLoc());
  4860. NewTL.setUnderlyingTInfo(New_Under_TI);
  4861. return Result;
  4862. }
  4863. template<typename Derived>
  4864. QualType TreeTransform<Derived>::TransformDecltypeType(TypeLocBuilder &TLB,
  4865. DecltypeTypeLoc TL) {
  4866. const DecltypeType *T = TL.getTypePtr();
  4867. // decltype expressions are not potentially evaluated contexts
  4868. EnterExpressionEvaluationContext Unevaluated(
  4869. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated, nullptr,
  4870. Sema::ExpressionEvaluationContextRecord::EK_Decltype);
  4871. ExprResult E = getDerived().TransformExpr(T->getUnderlyingExpr());
  4872. if (E.isInvalid())
  4873. return QualType();
  4874. E = getSema().ActOnDecltypeExpression(E.get());
  4875. if (E.isInvalid())
  4876. return QualType();
  4877. QualType Result = TL.getType();
  4878. if (getDerived().AlwaysRebuild() ||
  4879. E.get() != T->getUnderlyingExpr()) {
  4880. Result = getDerived().RebuildDecltypeType(E.get(), TL.getNameLoc());
  4881. if (Result.isNull())
  4882. return QualType();
  4883. }
  4884. else E.get();
  4885. DecltypeTypeLoc NewTL = TLB.push<DecltypeTypeLoc>(Result);
  4886. NewTL.setNameLoc(TL.getNameLoc());
  4887. return Result;
  4888. }
  4889. template<typename Derived>
  4890. QualType TreeTransform<Derived>::TransformUnaryTransformType(
  4891. TypeLocBuilder &TLB,
  4892. UnaryTransformTypeLoc TL) {
  4893. QualType Result = TL.getType();
  4894. if (Result->isDependentType()) {
  4895. const UnaryTransformType *T = TL.getTypePtr();
  4896. QualType NewBase =
  4897. getDerived().TransformType(TL.getUnderlyingTInfo())->getType();
  4898. Result = getDerived().RebuildUnaryTransformType(NewBase,
  4899. T->getUTTKind(),
  4900. TL.getKWLoc());
  4901. if (Result.isNull())
  4902. return QualType();
  4903. }
  4904. UnaryTransformTypeLoc NewTL = TLB.push<UnaryTransformTypeLoc>(Result);
  4905. NewTL.setKWLoc(TL.getKWLoc());
  4906. NewTL.setParensRange(TL.getParensRange());
  4907. NewTL.setUnderlyingTInfo(TL.getUnderlyingTInfo());
  4908. return Result;
  4909. }
  4910. template<typename Derived>
  4911. QualType TreeTransform<Derived>::TransformAutoType(TypeLocBuilder &TLB,
  4912. AutoTypeLoc TL) {
  4913. const AutoType *T = TL.getTypePtr();
  4914. QualType OldDeduced = T->getDeducedType();
  4915. QualType NewDeduced;
  4916. if (!OldDeduced.isNull()) {
  4917. NewDeduced = getDerived().TransformType(OldDeduced);
  4918. if (NewDeduced.isNull())
  4919. return QualType();
  4920. }
  4921. QualType Result = TL.getType();
  4922. if (getDerived().AlwaysRebuild() || NewDeduced != OldDeduced ||
  4923. T->isDependentType()) {
  4924. Result = getDerived().RebuildAutoType(NewDeduced, T->getKeyword());
  4925. if (Result.isNull())
  4926. return QualType();
  4927. }
  4928. AutoTypeLoc NewTL = TLB.push<AutoTypeLoc>(Result);
  4929. NewTL.setNameLoc(TL.getNameLoc());
  4930. return Result;
  4931. }
  4932. template<typename Derived>
  4933. QualType TreeTransform<Derived>::TransformDeducedTemplateSpecializationType(
  4934. TypeLocBuilder &TLB, DeducedTemplateSpecializationTypeLoc TL) {
  4935. const DeducedTemplateSpecializationType *T = TL.getTypePtr();
  4936. CXXScopeSpec SS;
  4937. TemplateName TemplateName = getDerived().TransformTemplateName(
  4938. SS, T->getTemplateName(), TL.getTemplateNameLoc());
  4939. if (TemplateName.isNull())
  4940. return QualType();
  4941. QualType OldDeduced = T->getDeducedType();
  4942. QualType NewDeduced;
  4943. if (!OldDeduced.isNull()) {
  4944. NewDeduced = getDerived().TransformType(OldDeduced);
  4945. if (NewDeduced.isNull())
  4946. return QualType();
  4947. }
  4948. QualType Result = getDerived().RebuildDeducedTemplateSpecializationType(
  4949. TemplateName, NewDeduced);
  4950. if (Result.isNull())
  4951. return QualType();
  4952. DeducedTemplateSpecializationTypeLoc NewTL =
  4953. TLB.push<DeducedTemplateSpecializationTypeLoc>(Result);
  4954. NewTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  4955. return Result;
  4956. }
  4957. template<typename Derived>
  4958. QualType TreeTransform<Derived>::TransformRecordType(TypeLocBuilder &TLB,
  4959. RecordTypeLoc TL) {
  4960. const RecordType *T = TL.getTypePtr();
  4961. RecordDecl *Record
  4962. = cast_or_null<RecordDecl>(getDerived().TransformDecl(TL.getNameLoc(),
  4963. T->getDecl()));
  4964. if (!Record)
  4965. return QualType();
  4966. QualType Result = TL.getType();
  4967. if (getDerived().AlwaysRebuild() ||
  4968. Record != T->getDecl()) {
  4969. Result = getDerived().RebuildRecordType(Record);
  4970. if (Result.isNull())
  4971. return QualType();
  4972. }
  4973. RecordTypeLoc NewTL = TLB.push<RecordTypeLoc>(Result);
  4974. NewTL.setNameLoc(TL.getNameLoc());
  4975. return Result;
  4976. }
  4977. template<typename Derived>
  4978. QualType TreeTransform<Derived>::TransformEnumType(TypeLocBuilder &TLB,
  4979. EnumTypeLoc TL) {
  4980. const EnumType *T = TL.getTypePtr();
  4981. EnumDecl *Enum
  4982. = cast_or_null<EnumDecl>(getDerived().TransformDecl(TL.getNameLoc(),
  4983. T->getDecl()));
  4984. if (!Enum)
  4985. return QualType();
  4986. QualType Result = TL.getType();
  4987. if (getDerived().AlwaysRebuild() ||
  4988. Enum != T->getDecl()) {
  4989. Result = getDerived().RebuildEnumType(Enum);
  4990. if (Result.isNull())
  4991. return QualType();
  4992. }
  4993. EnumTypeLoc NewTL = TLB.push<EnumTypeLoc>(Result);
  4994. NewTL.setNameLoc(TL.getNameLoc());
  4995. return Result;
  4996. }
  4997. template<typename Derived>
  4998. QualType TreeTransform<Derived>::TransformInjectedClassNameType(
  4999. TypeLocBuilder &TLB,
  5000. InjectedClassNameTypeLoc TL) {
  5001. Decl *D = getDerived().TransformDecl(TL.getNameLoc(),
  5002. TL.getTypePtr()->getDecl());
  5003. if (!D) return QualType();
  5004. QualType T = SemaRef.Context.getTypeDeclType(cast<TypeDecl>(D));
  5005. TLB.pushTypeSpec(T).setNameLoc(TL.getNameLoc());
  5006. return T;
  5007. }
  5008. template<typename Derived>
  5009. QualType TreeTransform<Derived>::TransformTemplateTypeParmType(
  5010. TypeLocBuilder &TLB,
  5011. TemplateTypeParmTypeLoc TL) {
  5012. return TransformTypeSpecType(TLB, TL);
  5013. }
  5014. template<typename Derived>
  5015. QualType TreeTransform<Derived>::TransformSubstTemplateTypeParmType(
  5016. TypeLocBuilder &TLB,
  5017. SubstTemplateTypeParmTypeLoc TL) {
  5018. const SubstTemplateTypeParmType *T = TL.getTypePtr();
  5019. // Substitute into the replacement type, which itself might involve something
  5020. // that needs to be transformed. This only tends to occur with default
  5021. // template arguments of template template parameters.
  5022. TemporaryBase Rebase(*this, TL.getNameLoc(), DeclarationName());
  5023. QualType Replacement = getDerived().TransformType(T->getReplacementType());
  5024. if (Replacement.isNull())
  5025. return QualType();
  5026. // Always canonicalize the replacement type.
  5027. Replacement = SemaRef.Context.getCanonicalType(Replacement);
  5028. QualType Result
  5029. = SemaRef.Context.getSubstTemplateTypeParmType(T->getReplacedParameter(),
  5030. Replacement);
  5031. // Propagate type-source information.
  5032. SubstTemplateTypeParmTypeLoc NewTL
  5033. = TLB.push<SubstTemplateTypeParmTypeLoc>(Result);
  5034. NewTL.setNameLoc(TL.getNameLoc());
  5035. return Result;
  5036. }
  5037. template<typename Derived>
  5038. QualType TreeTransform<Derived>::TransformSubstTemplateTypeParmPackType(
  5039. TypeLocBuilder &TLB,
  5040. SubstTemplateTypeParmPackTypeLoc TL) {
  5041. return TransformTypeSpecType(TLB, TL);
  5042. }
  5043. template<typename Derived>
  5044. QualType TreeTransform<Derived>::TransformTemplateSpecializationType(
  5045. TypeLocBuilder &TLB,
  5046. TemplateSpecializationTypeLoc TL) {
  5047. const TemplateSpecializationType *T = TL.getTypePtr();
  5048. // The nested-name-specifier never matters in a TemplateSpecializationType,
  5049. // because we can't have a dependent nested-name-specifier anyway.
  5050. CXXScopeSpec SS;
  5051. TemplateName Template
  5052. = getDerived().TransformTemplateName(SS, T->getTemplateName(),
  5053. TL.getTemplateNameLoc());
  5054. if (Template.isNull())
  5055. return QualType();
  5056. return getDerived().TransformTemplateSpecializationType(TLB, TL, Template);
  5057. }
  5058. template<typename Derived>
  5059. QualType TreeTransform<Derived>::TransformAtomicType(TypeLocBuilder &TLB,
  5060. AtomicTypeLoc TL) {
  5061. QualType ValueType = getDerived().TransformType(TLB, TL.getValueLoc());
  5062. if (ValueType.isNull())
  5063. return QualType();
  5064. QualType Result = TL.getType();
  5065. if (getDerived().AlwaysRebuild() ||
  5066. ValueType != TL.getValueLoc().getType()) {
  5067. Result = getDerived().RebuildAtomicType(ValueType, TL.getKWLoc());
  5068. if (Result.isNull())
  5069. return QualType();
  5070. }
  5071. AtomicTypeLoc NewTL = TLB.push<AtomicTypeLoc>(Result);
  5072. NewTL.setKWLoc(TL.getKWLoc());
  5073. NewTL.setLParenLoc(TL.getLParenLoc());
  5074. NewTL.setRParenLoc(TL.getRParenLoc());
  5075. return Result;
  5076. }
  5077. template <typename Derived>
  5078. QualType TreeTransform<Derived>::TransformPipeType(TypeLocBuilder &TLB,
  5079. PipeTypeLoc TL) {
  5080. QualType ValueType = getDerived().TransformType(TLB, TL.getValueLoc());
  5081. if (ValueType.isNull())
  5082. return QualType();
  5083. QualType Result = TL.getType();
  5084. if (getDerived().AlwaysRebuild() || ValueType != TL.getValueLoc().getType()) {
  5085. const PipeType *PT = Result->getAs<PipeType>();
  5086. bool isReadPipe = PT->isReadOnly();
  5087. Result = getDerived().RebuildPipeType(ValueType, TL.getKWLoc(), isReadPipe);
  5088. if (Result.isNull())
  5089. return QualType();
  5090. }
  5091. PipeTypeLoc NewTL = TLB.push<PipeTypeLoc>(Result);
  5092. NewTL.setKWLoc(TL.getKWLoc());
  5093. return Result;
  5094. }
  5095. /// Simple iterator that traverses the template arguments in a
  5096. /// container that provides a \c getArgLoc() member function.
  5097. ///
  5098. /// This iterator is intended to be used with the iterator form of
  5099. /// \c TreeTransform<Derived>::TransformTemplateArguments().
  5100. template<typename ArgLocContainer>
  5101. class TemplateArgumentLocContainerIterator {
  5102. ArgLocContainer *Container;
  5103. unsigned Index;
  5104. public:
  5105. typedef TemplateArgumentLoc value_type;
  5106. typedef TemplateArgumentLoc reference;
  5107. typedef int difference_type;
  5108. typedef std::input_iterator_tag iterator_category;
  5109. class pointer {
  5110. TemplateArgumentLoc Arg;
  5111. public:
  5112. explicit pointer(TemplateArgumentLoc Arg) : Arg(Arg) { }
  5113. const TemplateArgumentLoc *operator->() const {
  5114. return &Arg;
  5115. }
  5116. };
  5117. TemplateArgumentLocContainerIterator() {}
  5118. TemplateArgumentLocContainerIterator(ArgLocContainer &Container,
  5119. unsigned Index)
  5120. : Container(&Container), Index(Index) { }
  5121. TemplateArgumentLocContainerIterator &operator++() {
  5122. ++Index;
  5123. return *this;
  5124. }
  5125. TemplateArgumentLocContainerIterator operator++(int) {
  5126. TemplateArgumentLocContainerIterator Old(*this);
  5127. ++(*this);
  5128. return Old;
  5129. }
  5130. TemplateArgumentLoc operator*() const {
  5131. return Container->getArgLoc(Index);
  5132. }
  5133. pointer operator->() const {
  5134. return pointer(Container->getArgLoc(Index));
  5135. }
  5136. friend bool operator==(const TemplateArgumentLocContainerIterator &X,
  5137. const TemplateArgumentLocContainerIterator &Y) {
  5138. return X.Container == Y.Container && X.Index == Y.Index;
  5139. }
  5140. friend bool operator!=(const TemplateArgumentLocContainerIterator &X,
  5141. const TemplateArgumentLocContainerIterator &Y) {
  5142. return !(X == Y);
  5143. }
  5144. };
  5145. template <typename Derived>
  5146. QualType TreeTransform<Derived>::TransformTemplateSpecializationType(
  5147. TypeLocBuilder &TLB,
  5148. TemplateSpecializationTypeLoc TL,
  5149. TemplateName Template) {
  5150. TemplateArgumentListInfo NewTemplateArgs;
  5151. NewTemplateArgs.setLAngleLoc(TL.getLAngleLoc());
  5152. NewTemplateArgs.setRAngleLoc(TL.getRAngleLoc());
  5153. typedef TemplateArgumentLocContainerIterator<TemplateSpecializationTypeLoc>
  5154. ArgIterator;
  5155. if (getDerived().TransformTemplateArguments(ArgIterator(TL, 0),
  5156. ArgIterator(TL, TL.getNumArgs()),
  5157. NewTemplateArgs))
  5158. return QualType();
  5159. // FIXME: maybe don't rebuild if all the template arguments are the same.
  5160. QualType Result =
  5161. getDerived().RebuildTemplateSpecializationType(Template,
  5162. TL.getTemplateNameLoc(),
  5163. NewTemplateArgs);
  5164. if (!Result.isNull()) {
  5165. // Specializations of template template parameters are represented as
  5166. // TemplateSpecializationTypes, and substitution of type alias templates
  5167. // within a dependent context can transform them into
  5168. // DependentTemplateSpecializationTypes.
  5169. if (isa<DependentTemplateSpecializationType>(Result)) {
  5170. DependentTemplateSpecializationTypeLoc NewTL
  5171. = TLB.push<DependentTemplateSpecializationTypeLoc>(Result);
  5172. NewTL.setElaboratedKeywordLoc(SourceLocation());
  5173. NewTL.setQualifierLoc(NestedNameSpecifierLoc());
  5174. NewTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5175. NewTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5176. NewTL.setLAngleLoc(TL.getLAngleLoc());
  5177. NewTL.setRAngleLoc(TL.getRAngleLoc());
  5178. for (unsigned i = 0, e = NewTemplateArgs.size(); i != e; ++i)
  5179. NewTL.setArgLocInfo(i, NewTemplateArgs[i].getLocInfo());
  5180. return Result;
  5181. }
  5182. TemplateSpecializationTypeLoc NewTL
  5183. = TLB.push<TemplateSpecializationTypeLoc>(Result);
  5184. NewTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5185. NewTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5186. NewTL.setLAngleLoc(TL.getLAngleLoc());
  5187. NewTL.setRAngleLoc(TL.getRAngleLoc());
  5188. for (unsigned i = 0, e = NewTemplateArgs.size(); i != e; ++i)
  5189. NewTL.setArgLocInfo(i, NewTemplateArgs[i].getLocInfo());
  5190. }
  5191. return Result;
  5192. }
  5193. template <typename Derived>
  5194. QualType TreeTransform<Derived>::TransformDependentTemplateSpecializationType(
  5195. TypeLocBuilder &TLB,
  5196. DependentTemplateSpecializationTypeLoc TL,
  5197. TemplateName Template,
  5198. CXXScopeSpec &SS) {
  5199. TemplateArgumentListInfo NewTemplateArgs;
  5200. NewTemplateArgs.setLAngleLoc(TL.getLAngleLoc());
  5201. NewTemplateArgs.setRAngleLoc(TL.getRAngleLoc());
  5202. typedef TemplateArgumentLocContainerIterator<
  5203. DependentTemplateSpecializationTypeLoc> ArgIterator;
  5204. if (getDerived().TransformTemplateArguments(ArgIterator(TL, 0),
  5205. ArgIterator(TL, TL.getNumArgs()),
  5206. NewTemplateArgs))
  5207. return QualType();
  5208. // FIXME: maybe don't rebuild if all the template arguments are the same.
  5209. if (DependentTemplateName *DTN = Template.getAsDependentTemplateName()) {
  5210. QualType Result
  5211. = getSema().Context.getDependentTemplateSpecializationType(
  5212. TL.getTypePtr()->getKeyword(),
  5213. DTN->getQualifier(),
  5214. DTN->getIdentifier(),
  5215. NewTemplateArgs);
  5216. DependentTemplateSpecializationTypeLoc NewTL
  5217. = TLB.push<DependentTemplateSpecializationTypeLoc>(Result);
  5218. NewTL.setElaboratedKeywordLoc(TL.getElaboratedKeywordLoc());
  5219. NewTL.setQualifierLoc(SS.getWithLocInContext(SemaRef.Context));
  5220. NewTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5221. NewTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5222. NewTL.setLAngleLoc(TL.getLAngleLoc());
  5223. NewTL.setRAngleLoc(TL.getRAngleLoc());
  5224. for (unsigned i = 0, e = NewTemplateArgs.size(); i != e; ++i)
  5225. NewTL.setArgLocInfo(i, NewTemplateArgs[i].getLocInfo());
  5226. return Result;
  5227. }
  5228. QualType Result
  5229. = getDerived().RebuildTemplateSpecializationType(Template,
  5230. TL.getTemplateNameLoc(),
  5231. NewTemplateArgs);
  5232. if (!Result.isNull()) {
  5233. /// FIXME: Wrap this in an elaborated-type-specifier?
  5234. TemplateSpecializationTypeLoc NewTL
  5235. = TLB.push<TemplateSpecializationTypeLoc>(Result);
  5236. NewTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5237. NewTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5238. NewTL.setLAngleLoc(TL.getLAngleLoc());
  5239. NewTL.setRAngleLoc(TL.getRAngleLoc());
  5240. for (unsigned i = 0, e = NewTemplateArgs.size(); i != e; ++i)
  5241. NewTL.setArgLocInfo(i, NewTemplateArgs[i].getLocInfo());
  5242. }
  5243. return Result;
  5244. }
  5245. template<typename Derived>
  5246. QualType
  5247. TreeTransform<Derived>::TransformElaboratedType(TypeLocBuilder &TLB,
  5248. ElaboratedTypeLoc TL) {
  5249. const ElaboratedType *T = TL.getTypePtr();
  5250. NestedNameSpecifierLoc QualifierLoc;
  5251. // NOTE: the qualifier in an ElaboratedType is optional.
  5252. if (TL.getQualifierLoc()) {
  5253. QualifierLoc
  5254. = getDerived().TransformNestedNameSpecifierLoc(TL.getQualifierLoc());
  5255. if (!QualifierLoc)
  5256. return QualType();
  5257. }
  5258. QualType NamedT = getDerived().TransformType(TLB, TL.getNamedTypeLoc());
  5259. if (NamedT.isNull())
  5260. return QualType();
  5261. // C++0x [dcl.type.elab]p2:
  5262. // If the identifier resolves to a typedef-name or the simple-template-id
  5263. // resolves to an alias template specialization, the
  5264. // elaborated-type-specifier is ill-formed.
  5265. if (T->getKeyword() != ETK_None && T->getKeyword() != ETK_Typename) {
  5266. if (const TemplateSpecializationType *TST =
  5267. NamedT->getAs<TemplateSpecializationType>()) {
  5268. TemplateName Template = TST->getTemplateName();
  5269. if (TypeAliasTemplateDecl *TAT = dyn_cast_or_null<TypeAliasTemplateDecl>(
  5270. Template.getAsTemplateDecl())) {
  5271. SemaRef.Diag(TL.getNamedTypeLoc().getBeginLoc(),
  5272. diag::err_tag_reference_non_tag)
  5273. << TAT << Sema::NTK_TypeAliasTemplate
  5274. << ElaboratedType::getTagTypeKindForKeyword(T->getKeyword());
  5275. SemaRef.Diag(TAT->getLocation(), diag::note_declared_at);
  5276. }
  5277. }
  5278. }
  5279. QualType Result = TL.getType();
  5280. if (getDerived().AlwaysRebuild() ||
  5281. QualifierLoc != TL.getQualifierLoc() ||
  5282. NamedT != T->getNamedType()) {
  5283. Result = getDerived().RebuildElaboratedType(TL.getElaboratedKeywordLoc(),
  5284. T->getKeyword(),
  5285. QualifierLoc, NamedT);
  5286. if (Result.isNull())
  5287. return QualType();
  5288. }
  5289. ElaboratedTypeLoc NewTL = TLB.push<ElaboratedTypeLoc>(Result);
  5290. NewTL.setElaboratedKeywordLoc(TL.getElaboratedKeywordLoc());
  5291. NewTL.setQualifierLoc(QualifierLoc);
  5292. return Result;
  5293. }
  5294. template<typename Derived>
  5295. QualType TreeTransform<Derived>::TransformAttributedType(
  5296. TypeLocBuilder &TLB,
  5297. AttributedTypeLoc TL) {
  5298. const AttributedType *oldType = TL.getTypePtr();
  5299. QualType modifiedType = getDerived().TransformType(TLB, TL.getModifiedLoc());
  5300. if (modifiedType.isNull())
  5301. return QualType();
  5302. // oldAttr can be null if we started with a QualType rather than a TypeLoc.
  5303. const Attr *oldAttr = TL.getAttr();
  5304. const Attr *newAttr = oldAttr ? getDerived().TransformAttr(oldAttr) : nullptr;
  5305. if (oldAttr && !newAttr)
  5306. return QualType();
  5307. QualType result = TL.getType();
  5308. // FIXME: dependent operand expressions?
  5309. if (getDerived().AlwaysRebuild() ||
  5310. modifiedType != oldType->getModifiedType()) {
  5311. // TODO: this is really lame; we should really be rebuilding the
  5312. // equivalent type from first principles.
  5313. QualType equivalentType
  5314. = getDerived().TransformType(oldType->getEquivalentType());
  5315. if (equivalentType.isNull())
  5316. return QualType();
  5317. // Check whether we can add nullability; it is only represented as
  5318. // type sugar, and therefore cannot be diagnosed in any other way.
  5319. if (auto nullability = oldType->getImmediateNullability()) {
  5320. if (!modifiedType->canHaveNullability()) {
  5321. SemaRef.Diag(TL.getAttr()->getLocation(),
  5322. diag::err_nullability_nonpointer)
  5323. << DiagNullabilityKind(*nullability, false) << modifiedType;
  5324. return QualType();
  5325. }
  5326. }
  5327. result = SemaRef.Context.getAttributedType(TL.getAttrKind(),
  5328. modifiedType,
  5329. equivalentType);
  5330. }
  5331. AttributedTypeLoc newTL = TLB.push<AttributedTypeLoc>(result);
  5332. newTL.setAttr(newAttr);
  5333. return result;
  5334. }
  5335. template<typename Derived>
  5336. QualType
  5337. TreeTransform<Derived>::TransformParenType(TypeLocBuilder &TLB,
  5338. ParenTypeLoc TL) {
  5339. QualType Inner = getDerived().TransformType(TLB, TL.getInnerLoc());
  5340. if (Inner.isNull())
  5341. return QualType();
  5342. QualType Result = TL.getType();
  5343. if (getDerived().AlwaysRebuild() ||
  5344. Inner != TL.getInnerLoc().getType()) {
  5345. Result = getDerived().RebuildParenType(Inner);
  5346. if (Result.isNull())
  5347. return QualType();
  5348. }
  5349. ParenTypeLoc NewTL = TLB.push<ParenTypeLoc>(Result);
  5350. NewTL.setLParenLoc(TL.getLParenLoc());
  5351. NewTL.setRParenLoc(TL.getRParenLoc());
  5352. return Result;
  5353. }
  5354. template<typename Derived>
  5355. QualType TreeTransform<Derived>::TransformDependentNameType(
  5356. TypeLocBuilder &TLB, DependentNameTypeLoc TL) {
  5357. return TransformDependentNameType(TLB, TL, false);
  5358. }
  5359. template<typename Derived>
  5360. QualType TreeTransform<Derived>::TransformDependentNameType(
  5361. TypeLocBuilder &TLB, DependentNameTypeLoc TL, bool DeducedTSTContext) {
  5362. const DependentNameType *T = TL.getTypePtr();
  5363. NestedNameSpecifierLoc QualifierLoc
  5364. = getDerived().TransformNestedNameSpecifierLoc(TL.getQualifierLoc());
  5365. if (!QualifierLoc)
  5366. return QualType();
  5367. QualType Result
  5368. = getDerived().RebuildDependentNameType(T->getKeyword(),
  5369. TL.getElaboratedKeywordLoc(),
  5370. QualifierLoc,
  5371. T->getIdentifier(),
  5372. TL.getNameLoc(),
  5373. DeducedTSTContext);
  5374. if (Result.isNull())
  5375. return QualType();
  5376. if (const ElaboratedType* ElabT = Result->getAs<ElaboratedType>()) {
  5377. QualType NamedT = ElabT->getNamedType();
  5378. TLB.pushTypeSpec(NamedT).setNameLoc(TL.getNameLoc());
  5379. ElaboratedTypeLoc NewTL = TLB.push<ElaboratedTypeLoc>(Result);
  5380. NewTL.setElaboratedKeywordLoc(TL.getElaboratedKeywordLoc());
  5381. NewTL.setQualifierLoc(QualifierLoc);
  5382. } else {
  5383. DependentNameTypeLoc NewTL = TLB.push<DependentNameTypeLoc>(Result);
  5384. NewTL.setElaboratedKeywordLoc(TL.getElaboratedKeywordLoc());
  5385. NewTL.setQualifierLoc(QualifierLoc);
  5386. NewTL.setNameLoc(TL.getNameLoc());
  5387. }
  5388. return Result;
  5389. }
  5390. template<typename Derived>
  5391. QualType TreeTransform<Derived>::
  5392. TransformDependentTemplateSpecializationType(TypeLocBuilder &TLB,
  5393. DependentTemplateSpecializationTypeLoc TL) {
  5394. NestedNameSpecifierLoc QualifierLoc;
  5395. if (TL.getQualifierLoc()) {
  5396. QualifierLoc
  5397. = getDerived().TransformNestedNameSpecifierLoc(TL.getQualifierLoc());
  5398. if (!QualifierLoc)
  5399. return QualType();
  5400. }
  5401. return getDerived()
  5402. .TransformDependentTemplateSpecializationType(TLB, TL, QualifierLoc);
  5403. }
  5404. template<typename Derived>
  5405. QualType TreeTransform<Derived>::
  5406. TransformDependentTemplateSpecializationType(TypeLocBuilder &TLB,
  5407. DependentTemplateSpecializationTypeLoc TL,
  5408. NestedNameSpecifierLoc QualifierLoc) {
  5409. const DependentTemplateSpecializationType *T = TL.getTypePtr();
  5410. TemplateArgumentListInfo NewTemplateArgs;
  5411. NewTemplateArgs.setLAngleLoc(TL.getLAngleLoc());
  5412. NewTemplateArgs.setRAngleLoc(TL.getRAngleLoc());
  5413. typedef TemplateArgumentLocContainerIterator<
  5414. DependentTemplateSpecializationTypeLoc> ArgIterator;
  5415. if (getDerived().TransformTemplateArguments(ArgIterator(TL, 0),
  5416. ArgIterator(TL, TL.getNumArgs()),
  5417. NewTemplateArgs))
  5418. return QualType();
  5419. QualType Result = getDerived().RebuildDependentTemplateSpecializationType(
  5420. T->getKeyword(), QualifierLoc, TL.getTemplateKeywordLoc(),
  5421. T->getIdentifier(), TL.getTemplateNameLoc(), NewTemplateArgs,
  5422. /*AllowInjectedClassName*/ false);
  5423. if (Result.isNull())
  5424. return QualType();
  5425. if (const ElaboratedType *ElabT = dyn_cast<ElaboratedType>(Result)) {
  5426. QualType NamedT = ElabT->getNamedType();
  5427. // Copy information relevant to the template specialization.
  5428. TemplateSpecializationTypeLoc NamedTL
  5429. = TLB.push<TemplateSpecializationTypeLoc>(NamedT);
  5430. NamedTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5431. NamedTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5432. NamedTL.setLAngleLoc(TL.getLAngleLoc());
  5433. NamedTL.setRAngleLoc(TL.getRAngleLoc());
  5434. for (unsigned I = 0, E = NewTemplateArgs.size(); I != E; ++I)
  5435. NamedTL.setArgLocInfo(I, NewTemplateArgs[I].getLocInfo());
  5436. // Copy information relevant to the elaborated type.
  5437. ElaboratedTypeLoc NewTL = TLB.push<ElaboratedTypeLoc>(Result);
  5438. NewTL.setElaboratedKeywordLoc(TL.getElaboratedKeywordLoc());
  5439. NewTL.setQualifierLoc(QualifierLoc);
  5440. } else if (isa<DependentTemplateSpecializationType>(Result)) {
  5441. DependentTemplateSpecializationTypeLoc SpecTL
  5442. = TLB.push<DependentTemplateSpecializationTypeLoc>(Result);
  5443. SpecTL.setElaboratedKeywordLoc(TL.getElaboratedKeywordLoc());
  5444. SpecTL.setQualifierLoc(QualifierLoc);
  5445. SpecTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5446. SpecTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5447. SpecTL.setLAngleLoc(TL.getLAngleLoc());
  5448. SpecTL.setRAngleLoc(TL.getRAngleLoc());
  5449. for (unsigned I = 0, E = NewTemplateArgs.size(); I != E; ++I)
  5450. SpecTL.setArgLocInfo(I, NewTemplateArgs[I].getLocInfo());
  5451. } else {
  5452. TemplateSpecializationTypeLoc SpecTL
  5453. = TLB.push<TemplateSpecializationTypeLoc>(Result);
  5454. SpecTL.setTemplateKeywordLoc(TL.getTemplateKeywordLoc());
  5455. SpecTL.setTemplateNameLoc(TL.getTemplateNameLoc());
  5456. SpecTL.setLAngleLoc(TL.getLAngleLoc());
  5457. SpecTL.setRAngleLoc(TL.getRAngleLoc());
  5458. for (unsigned I = 0, E = NewTemplateArgs.size(); I != E; ++I)
  5459. SpecTL.setArgLocInfo(I, NewTemplateArgs[I].getLocInfo());
  5460. }
  5461. return Result;
  5462. }
  5463. template<typename Derived>
  5464. QualType TreeTransform<Derived>::TransformPackExpansionType(TypeLocBuilder &TLB,
  5465. PackExpansionTypeLoc TL) {
  5466. QualType Pattern
  5467. = getDerived().TransformType(TLB, TL.getPatternLoc());
  5468. if (Pattern.isNull())
  5469. return QualType();
  5470. QualType Result = TL.getType();
  5471. if (getDerived().AlwaysRebuild() ||
  5472. Pattern != TL.getPatternLoc().getType()) {
  5473. Result = getDerived().RebuildPackExpansionType(Pattern,
  5474. TL.getPatternLoc().getSourceRange(),
  5475. TL.getEllipsisLoc(),
  5476. TL.getTypePtr()->getNumExpansions());
  5477. if (Result.isNull())
  5478. return QualType();
  5479. }
  5480. PackExpansionTypeLoc NewT = TLB.push<PackExpansionTypeLoc>(Result);
  5481. NewT.setEllipsisLoc(TL.getEllipsisLoc());
  5482. return Result;
  5483. }
  5484. template<typename Derived>
  5485. QualType
  5486. TreeTransform<Derived>::TransformObjCInterfaceType(TypeLocBuilder &TLB,
  5487. ObjCInterfaceTypeLoc TL) {
  5488. // ObjCInterfaceType is never dependent.
  5489. TLB.pushFullCopy(TL);
  5490. return TL.getType();
  5491. }
  5492. template<typename Derived>
  5493. QualType
  5494. TreeTransform<Derived>::TransformObjCTypeParamType(TypeLocBuilder &TLB,
  5495. ObjCTypeParamTypeLoc TL) {
  5496. const ObjCTypeParamType *T = TL.getTypePtr();
  5497. ObjCTypeParamDecl *OTP = cast_or_null<ObjCTypeParamDecl>(
  5498. getDerived().TransformDecl(T->getDecl()->getLocation(), T->getDecl()));
  5499. if (!OTP)
  5500. return QualType();
  5501. QualType Result = TL.getType();
  5502. if (getDerived().AlwaysRebuild() ||
  5503. OTP != T->getDecl()) {
  5504. Result = getDerived().RebuildObjCTypeParamType(OTP,
  5505. TL.getProtocolLAngleLoc(),
  5506. llvm::makeArrayRef(TL.getTypePtr()->qual_begin(),
  5507. TL.getNumProtocols()),
  5508. TL.getProtocolLocs(),
  5509. TL.getProtocolRAngleLoc());
  5510. if (Result.isNull())
  5511. return QualType();
  5512. }
  5513. ObjCTypeParamTypeLoc NewTL = TLB.push<ObjCTypeParamTypeLoc>(Result);
  5514. if (TL.getNumProtocols()) {
  5515. NewTL.setProtocolLAngleLoc(TL.getProtocolLAngleLoc());
  5516. for (unsigned i = 0, n = TL.getNumProtocols(); i != n; ++i)
  5517. NewTL.setProtocolLoc(i, TL.getProtocolLoc(i));
  5518. NewTL.setProtocolRAngleLoc(TL.getProtocolRAngleLoc());
  5519. }
  5520. return Result;
  5521. }
  5522. template<typename Derived>
  5523. QualType
  5524. TreeTransform<Derived>::TransformObjCObjectType(TypeLocBuilder &TLB,
  5525. ObjCObjectTypeLoc TL) {
  5526. // Transform base type.
  5527. QualType BaseType = getDerived().TransformType(TLB, TL.getBaseLoc());
  5528. if (BaseType.isNull())
  5529. return QualType();
  5530. bool AnyChanged = BaseType != TL.getBaseLoc().getType();
  5531. // Transform type arguments.
  5532. SmallVector<TypeSourceInfo *, 4> NewTypeArgInfos;
  5533. for (unsigned i = 0, n = TL.getNumTypeArgs(); i != n; ++i) {
  5534. TypeSourceInfo *TypeArgInfo = TL.getTypeArgTInfo(i);
  5535. TypeLoc TypeArgLoc = TypeArgInfo->getTypeLoc();
  5536. QualType TypeArg = TypeArgInfo->getType();
  5537. if (auto PackExpansionLoc = TypeArgLoc.getAs<PackExpansionTypeLoc>()) {
  5538. AnyChanged = true;
  5539. // We have a pack expansion. Instantiate it.
  5540. const auto *PackExpansion = PackExpansionLoc.getType()
  5541. ->castAs<PackExpansionType>();
  5542. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  5543. SemaRef.collectUnexpandedParameterPacks(PackExpansion->getPattern(),
  5544. Unexpanded);
  5545. assert(!Unexpanded.empty() && "Pack expansion without parameter packs?");
  5546. // Determine whether the set of unexpanded parameter packs can
  5547. // and should be expanded.
  5548. TypeLoc PatternLoc = PackExpansionLoc.getPatternLoc();
  5549. bool Expand = false;
  5550. bool RetainExpansion = false;
  5551. Optional<unsigned> NumExpansions = PackExpansion->getNumExpansions();
  5552. if (getDerived().TryExpandParameterPacks(
  5553. PackExpansionLoc.getEllipsisLoc(), PatternLoc.getSourceRange(),
  5554. Unexpanded, Expand, RetainExpansion, NumExpansions))
  5555. return QualType();
  5556. if (!Expand) {
  5557. // We can't expand this pack expansion into separate arguments yet;
  5558. // just substitute into the pattern and create a new pack expansion
  5559. // type.
  5560. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  5561. TypeLocBuilder TypeArgBuilder;
  5562. TypeArgBuilder.reserve(PatternLoc.getFullDataSize());
  5563. QualType NewPatternType = getDerived().TransformType(TypeArgBuilder,
  5564. PatternLoc);
  5565. if (NewPatternType.isNull())
  5566. return QualType();
  5567. QualType NewExpansionType = SemaRef.Context.getPackExpansionType(
  5568. NewPatternType, NumExpansions);
  5569. auto NewExpansionLoc = TLB.push<PackExpansionTypeLoc>(NewExpansionType);
  5570. NewExpansionLoc.setEllipsisLoc(PackExpansionLoc.getEllipsisLoc());
  5571. NewTypeArgInfos.push_back(
  5572. TypeArgBuilder.getTypeSourceInfo(SemaRef.Context, NewExpansionType));
  5573. continue;
  5574. }
  5575. // Substitute into the pack expansion pattern for each slice of the
  5576. // pack.
  5577. for (unsigned ArgIdx = 0; ArgIdx != *NumExpansions; ++ArgIdx) {
  5578. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), ArgIdx);
  5579. TypeLocBuilder TypeArgBuilder;
  5580. TypeArgBuilder.reserve(PatternLoc.getFullDataSize());
  5581. QualType NewTypeArg = getDerived().TransformType(TypeArgBuilder,
  5582. PatternLoc);
  5583. if (NewTypeArg.isNull())
  5584. return QualType();
  5585. NewTypeArgInfos.push_back(
  5586. TypeArgBuilder.getTypeSourceInfo(SemaRef.Context, NewTypeArg));
  5587. }
  5588. continue;
  5589. }
  5590. TypeLocBuilder TypeArgBuilder;
  5591. TypeArgBuilder.reserve(TypeArgLoc.getFullDataSize());
  5592. QualType NewTypeArg = getDerived().TransformType(TypeArgBuilder, TypeArgLoc);
  5593. if (NewTypeArg.isNull())
  5594. return QualType();
  5595. // If nothing changed, just keep the old TypeSourceInfo.
  5596. if (NewTypeArg == TypeArg) {
  5597. NewTypeArgInfos.push_back(TypeArgInfo);
  5598. continue;
  5599. }
  5600. NewTypeArgInfos.push_back(
  5601. TypeArgBuilder.getTypeSourceInfo(SemaRef.Context, NewTypeArg));
  5602. AnyChanged = true;
  5603. }
  5604. QualType Result = TL.getType();
  5605. if (getDerived().AlwaysRebuild() || AnyChanged) {
  5606. // Rebuild the type.
  5607. Result = getDerived().RebuildObjCObjectType(
  5608. BaseType, TL.getBeginLoc(), TL.getTypeArgsLAngleLoc(), NewTypeArgInfos,
  5609. TL.getTypeArgsRAngleLoc(), TL.getProtocolLAngleLoc(),
  5610. llvm::makeArrayRef(TL.getTypePtr()->qual_begin(), TL.getNumProtocols()),
  5611. TL.getProtocolLocs(), TL.getProtocolRAngleLoc());
  5612. if (Result.isNull())
  5613. return QualType();
  5614. }
  5615. ObjCObjectTypeLoc NewT = TLB.push<ObjCObjectTypeLoc>(Result);
  5616. NewT.setHasBaseTypeAsWritten(true);
  5617. NewT.setTypeArgsLAngleLoc(TL.getTypeArgsLAngleLoc());
  5618. for (unsigned i = 0, n = TL.getNumTypeArgs(); i != n; ++i)
  5619. NewT.setTypeArgTInfo(i, NewTypeArgInfos[i]);
  5620. NewT.setTypeArgsRAngleLoc(TL.getTypeArgsRAngleLoc());
  5621. NewT.setProtocolLAngleLoc(TL.getProtocolLAngleLoc());
  5622. for (unsigned i = 0, n = TL.getNumProtocols(); i != n; ++i)
  5623. NewT.setProtocolLoc(i, TL.getProtocolLoc(i));
  5624. NewT.setProtocolRAngleLoc(TL.getProtocolRAngleLoc());
  5625. return Result;
  5626. }
  5627. template<typename Derived>
  5628. QualType
  5629. TreeTransform<Derived>::TransformObjCObjectPointerType(TypeLocBuilder &TLB,
  5630. ObjCObjectPointerTypeLoc TL) {
  5631. QualType PointeeType = getDerived().TransformType(TLB, TL.getPointeeLoc());
  5632. if (PointeeType.isNull())
  5633. return QualType();
  5634. QualType Result = TL.getType();
  5635. if (getDerived().AlwaysRebuild() ||
  5636. PointeeType != TL.getPointeeLoc().getType()) {
  5637. Result = getDerived().RebuildObjCObjectPointerType(PointeeType,
  5638. TL.getStarLoc());
  5639. if (Result.isNull())
  5640. return QualType();
  5641. }
  5642. ObjCObjectPointerTypeLoc NewT = TLB.push<ObjCObjectPointerTypeLoc>(Result);
  5643. NewT.setStarLoc(TL.getStarLoc());
  5644. return Result;
  5645. }
  5646. //===----------------------------------------------------------------------===//
  5647. // Statement transformation
  5648. //===----------------------------------------------------------------------===//
  5649. template<typename Derived>
  5650. StmtResult
  5651. TreeTransform<Derived>::TransformNullStmt(NullStmt *S) {
  5652. return S;
  5653. }
  5654. template<typename Derived>
  5655. StmtResult
  5656. TreeTransform<Derived>::TransformCompoundStmt(CompoundStmt *S) {
  5657. return getDerived().TransformCompoundStmt(S, false);
  5658. }
  5659. template<typename Derived>
  5660. StmtResult
  5661. TreeTransform<Derived>::TransformCompoundStmt(CompoundStmt *S,
  5662. bool IsStmtExpr) {
  5663. Sema::CompoundScopeRAII CompoundScope(getSema());
  5664. bool SubStmtInvalid = false;
  5665. bool SubStmtChanged = false;
  5666. SmallVector<Stmt*, 8> Statements;
  5667. for (auto *B : S->body()) {
  5668. StmtResult Result = getDerived().TransformStmt(B);
  5669. if (Result.isInvalid()) {
  5670. // Immediately fail if this was a DeclStmt, since it's very
  5671. // likely that this will cause problems for future statements.
  5672. if (isa<DeclStmt>(B))
  5673. return StmtError();
  5674. // Otherwise, just keep processing substatements and fail later.
  5675. SubStmtInvalid = true;
  5676. continue;
  5677. }
  5678. SubStmtChanged = SubStmtChanged || Result.get() != B;
  5679. Statements.push_back(Result.getAs<Stmt>());
  5680. }
  5681. if (SubStmtInvalid)
  5682. return StmtError();
  5683. if (!getDerived().AlwaysRebuild() &&
  5684. !SubStmtChanged)
  5685. return S;
  5686. return getDerived().RebuildCompoundStmt(S->getLBracLoc(),
  5687. Statements,
  5688. S->getRBracLoc(),
  5689. IsStmtExpr);
  5690. }
  5691. template<typename Derived>
  5692. StmtResult
  5693. TreeTransform<Derived>::TransformCaseStmt(CaseStmt *S) {
  5694. ExprResult LHS, RHS;
  5695. {
  5696. EnterExpressionEvaluationContext Unevaluated(
  5697. SemaRef, Sema::ExpressionEvaluationContext::ConstantEvaluated);
  5698. // Transform the left-hand case value.
  5699. LHS = getDerived().TransformExpr(S->getLHS());
  5700. LHS = SemaRef.ActOnCaseExpr(S->getCaseLoc(), LHS);
  5701. if (LHS.isInvalid())
  5702. return StmtError();
  5703. // Transform the right-hand case value (for the GNU case-range extension).
  5704. RHS = getDerived().TransformExpr(S->getRHS());
  5705. RHS = SemaRef.ActOnCaseExpr(S->getCaseLoc(), RHS);
  5706. if (RHS.isInvalid())
  5707. return StmtError();
  5708. }
  5709. // Build the case statement.
  5710. // Case statements are always rebuilt so that they will attached to their
  5711. // transformed switch statement.
  5712. StmtResult Case = getDerived().RebuildCaseStmt(S->getCaseLoc(),
  5713. LHS.get(),
  5714. S->getEllipsisLoc(),
  5715. RHS.get(),
  5716. S->getColonLoc());
  5717. if (Case.isInvalid())
  5718. return StmtError();
  5719. // Transform the statement following the case
  5720. StmtResult SubStmt = getDerived().TransformStmt(S->getSubStmt());
  5721. if (SubStmt.isInvalid())
  5722. return StmtError();
  5723. // Attach the body to the case statement
  5724. return getDerived().RebuildCaseStmtBody(Case.get(), SubStmt.get());
  5725. }
  5726. template<typename Derived>
  5727. StmtResult
  5728. TreeTransform<Derived>::TransformDefaultStmt(DefaultStmt *S) {
  5729. // Transform the statement following the default case
  5730. StmtResult SubStmt = getDerived().TransformStmt(S->getSubStmt());
  5731. if (SubStmt.isInvalid())
  5732. return StmtError();
  5733. // Default statements are always rebuilt
  5734. return getDerived().RebuildDefaultStmt(S->getDefaultLoc(), S->getColonLoc(),
  5735. SubStmt.get());
  5736. }
  5737. template<typename Derived>
  5738. StmtResult
  5739. TreeTransform<Derived>::TransformLabelStmt(LabelStmt *S) {
  5740. StmtResult SubStmt = getDerived().TransformStmt(S->getSubStmt());
  5741. if (SubStmt.isInvalid())
  5742. return StmtError();
  5743. Decl *LD = getDerived().TransformDecl(S->getDecl()->getLocation(),
  5744. S->getDecl());
  5745. if (!LD)
  5746. return StmtError();
  5747. // FIXME: Pass the real colon location in.
  5748. return getDerived().RebuildLabelStmt(S->getIdentLoc(),
  5749. cast<LabelDecl>(LD), SourceLocation(),
  5750. SubStmt.get());
  5751. }
  5752. template <typename Derived>
  5753. const Attr *TreeTransform<Derived>::TransformAttr(const Attr *R) {
  5754. if (!R)
  5755. return R;
  5756. switch (R->getKind()) {
  5757. // Transform attributes with a pragma spelling by calling TransformXXXAttr.
  5758. #define ATTR(X)
  5759. #define PRAGMA_SPELLING_ATTR(X) \
  5760. case attr::X: \
  5761. return getDerived().Transform##X##Attr(cast<X##Attr>(R));
  5762. #include "clang/Basic/AttrList.inc"
  5763. default:
  5764. return R;
  5765. }
  5766. }
  5767. template <typename Derived>
  5768. StmtResult TreeTransform<Derived>::TransformAttributedStmt(AttributedStmt *S) {
  5769. bool AttrsChanged = false;
  5770. SmallVector<const Attr *, 1> Attrs;
  5771. // Visit attributes and keep track if any are transformed.
  5772. for (const auto *I : S->getAttrs()) {
  5773. const Attr *R = getDerived().TransformAttr(I);
  5774. AttrsChanged |= (I != R);
  5775. Attrs.push_back(R);
  5776. }
  5777. StmtResult SubStmt = getDerived().TransformStmt(S->getSubStmt());
  5778. if (SubStmt.isInvalid())
  5779. return StmtError();
  5780. if (SubStmt.get() == S->getSubStmt() && !AttrsChanged)
  5781. return S;
  5782. return getDerived().RebuildAttributedStmt(S->getAttrLoc(), Attrs,
  5783. SubStmt.get());
  5784. }
  5785. template<typename Derived>
  5786. StmtResult
  5787. TreeTransform<Derived>::TransformIfStmt(IfStmt *S) {
  5788. // Transform the initialization statement
  5789. StmtResult Init = getDerived().TransformStmt(S->getInit());
  5790. if (Init.isInvalid())
  5791. return StmtError();
  5792. // Transform the condition
  5793. Sema::ConditionResult Cond = getDerived().TransformCondition(
  5794. S->getIfLoc(), S->getConditionVariable(), S->getCond(),
  5795. S->isConstexpr() ? Sema::ConditionKind::ConstexprIf
  5796. : Sema::ConditionKind::Boolean);
  5797. if (Cond.isInvalid())
  5798. return StmtError();
  5799. // If this is a constexpr if, determine which arm we should instantiate.
  5800. llvm::Optional<bool> ConstexprConditionValue;
  5801. if (S->isConstexpr())
  5802. ConstexprConditionValue = Cond.getKnownValue();
  5803. // Transform the "then" branch.
  5804. StmtResult Then;
  5805. if (!ConstexprConditionValue || *ConstexprConditionValue) {
  5806. Then = getDerived().TransformStmt(S->getThen());
  5807. if (Then.isInvalid())
  5808. return StmtError();
  5809. } else {
  5810. Then = new (getSema().Context) NullStmt(S->getThen()->getBeginLoc());
  5811. }
  5812. // Transform the "else" branch.
  5813. StmtResult Else;
  5814. if (!ConstexprConditionValue || !*ConstexprConditionValue) {
  5815. Else = getDerived().TransformStmt(S->getElse());
  5816. if (Else.isInvalid())
  5817. return StmtError();
  5818. }
  5819. if (!getDerived().AlwaysRebuild() &&
  5820. Init.get() == S->getInit() &&
  5821. Cond.get() == std::make_pair(S->getConditionVariable(), S->getCond()) &&
  5822. Then.get() == S->getThen() &&
  5823. Else.get() == S->getElse())
  5824. return S;
  5825. return getDerived().RebuildIfStmt(S->getIfLoc(), S->isConstexpr(), Cond,
  5826. Init.get(), Then.get(), S->getElseLoc(),
  5827. Else.get());
  5828. }
  5829. template<typename Derived>
  5830. StmtResult
  5831. TreeTransform<Derived>::TransformSwitchStmt(SwitchStmt *S) {
  5832. // Transform the initialization statement
  5833. StmtResult Init = getDerived().TransformStmt(S->getInit());
  5834. if (Init.isInvalid())
  5835. return StmtError();
  5836. // Transform the condition.
  5837. Sema::ConditionResult Cond = getDerived().TransformCondition(
  5838. S->getSwitchLoc(), S->getConditionVariable(), S->getCond(),
  5839. Sema::ConditionKind::Switch);
  5840. if (Cond.isInvalid())
  5841. return StmtError();
  5842. // Rebuild the switch statement.
  5843. StmtResult Switch
  5844. = getDerived().RebuildSwitchStmtStart(S->getSwitchLoc(), Init.get(), Cond);
  5845. if (Switch.isInvalid())
  5846. return StmtError();
  5847. // Transform the body of the switch statement.
  5848. StmtResult Body = getDerived().TransformStmt(S->getBody());
  5849. if (Body.isInvalid())
  5850. return StmtError();
  5851. // Complete the switch statement.
  5852. return getDerived().RebuildSwitchStmtBody(S->getSwitchLoc(), Switch.get(),
  5853. Body.get());
  5854. }
  5855. template<typename Derived>
  5856. StmtResult
  5857. TreeTransform<Derived>::TransformWhileStmt(WhileStmt *S) {
  5858. // Transform the condition
  5859. Sema::ConditionResult Cond = getDerived().TransformCondition(
  5860. S->getWhileLoc(), S->getConditionVariable(), S->getCond(),
  5861. Sema::ConditionKind::Boolean);
  5862. if (Cond.isInvalid())
  5863. return StmtError();
  5864. // Transform the body
  5865. StmtResult Body = getDerived().TransformStmt(S->getBody());
  5866. if (Body.isInvalid())
  5867. return StmtError();
  5868. if (!getDerived().AlwaysRebuild() &&
  5869. Cond.get() == std::make_pair(S->getConditionVariable(), S->getCond()) &&
  5870. Body.get() == S->getBody())
  5871. return Owned(S);
  5872. return getDerived().RebuildWhileStmt(S->getWhileLoc(), Cond, Body.get());
  5873. }
  5874. template<typename Derived>
  5875. StmtResult
  5876. TreeTransform<Derived>::TransformDoStmt(DoStmt *S) {
  5877. // Transform the body
  5878. StmtResult Body = getDerived().TransformStmt(S->getBody());
  5879. if (Body.isInvalid())
  5880. return StmtError();
  5881. // Transform the condition
  5882. ExprResult Cond = getDerived().TransformExpr(S->getCond());
  5883. if (Cond.isInvalid())
  5884. return StmtError();
  5885. if (!getDerived().AlwaysRebuild() &&
  5886. Cond.get() == S->getCond() &&
  5887. Body.get() == S->getBody())
  5888. return S;
  5889. return getDerived().RebuildDoStmt(S->getDoLoc(), Body.get(), S->getWhileLoc(),
  5890. /*FIXME:*/S->getWhileLoc(), Cond.get(),
  5891. S->getRParenLoc());
  5892. }
  5893. template<typename Derived>
  5894. StmtResult
  5895. TreeTransform<Derived>::TransformForStmt(ForStmt *S) {
  5896. // Transform the initialization statement
  5897. StmtResult Init = getDerived().TransformStmt(S->getInit());
  5898. if (Init.isInvalid())
  5899. return StmtError();
  5900. // In OpenMP loop region loop control variable must be captured and be
  5901. // private. Perform analysis of first part (if any).
  5902. if (getSema().getLangOpts().OpenMP && Init.isUsable())
  5903. getSema().ActOnOpenMPLoopInitialization(S->getForLoc(), Init.get());
  5904. // Transform the condition
  5905. Sema::ConditionResult Cond = getDerived().TransformCondition(
  5906. S->getForLoc(), S->getConditionVariable(), S->getCond(),
  5907. Sema::ConditionKind::Boolean);
  5908. if (Cond.isInvalid())
  5909. return StmtError();
  5910. // Transform the increment
  5911. ExprResult Inc = getDerived().TransformExpr(S->getInc());
  5912. if (Inc.isInvalid())
  5913. return StmtError();
  5914. Sema::FullExprArg FullInc(getSema().MakeFullDiscardedValueExpr(Inc.get()));
  5915. if (S->getInc() && !FullInc.get())
  5916. return StmtError();
  5917. // Transform the body
  5918. StmtResult Body = getDerived().TransformStmt(S->getBody());
  5919. if (Body.isInvalid())
  5920. return StmtError();
  5921. if (!getDerived().AlwaysRebuild() &&
  5922. Init.get() == S->getInit() &&
  5923. Cond.get() == std::make_pair(S->getConditionVariable(), S->getCond()) &&
  5924. Inc.get() == S->getInc() &&
  5925. Body.get() == S->getBody())
  5926. return S;
  5927. return getDerived().RebuildForStmt(S->getForLoc(), S->getLParenLoc(),
  5928. Init.get(), Cond, FullInc,
  5929. S->getRParenLoc(), Body.get());
  5930. }
  5931. template<typename Derived>
  5932. StmtResult
  5933. TreeTransform<Derived>::TransformGotoStmt(GotoStmt *S) {
  5934. Decl *LD = getDerived().TransformDecl(S->getLabel()->getLocation(),
  5935. S->getLabel());
  5936. if (!LD)
  5937. return StmtError();
  5938. // Goto statements must always be rebuilt, to resolve the label.
  5939. return getDerived().RebuildGotoStmt(S->getGotoLoc(), S->getLabelLoc(),
  5940. cast<LabelDecl>(LD));
  5941. }
  5942. template<typename Derived>
  5943. StmtResult
  5944. TreeTransform<Derived>::TransformIndirectGotoStmt(IndirectGotoStmt *S) {
  5945. ExprResult Target = getDerived().TransformExpr(S->getTarget());
  5946. if (Target.isInvalid())
  5947. return StmtError();
  5948. Target = SemaRef.MaybeCreateExprWithCleanups(Target.get());
  5949. if (!getDerived().AlwaysRebuild() &&
  5950. Target.get() == S->getTarget())
  5951. return S;
  5952. return getDerived().RebuildIndirectGotoStmt(S->getGotoLoc(), S->getStarLoc(),
  5953. Target.get());
  5954. }
  5955. template<typename Derived>
  5956. StmtResult
  5957. TreeTransform<Derived>::TransformContinueStmt(ContinueStmt *S) {
  5958. return S;
  5959. }
  5960. template<typename Derived>
  5961. StmtResult
  5962. TreeTransform<Derived>::TransformBreakStmt(BreakStmt *S) {
  5963. return S;
  5964. }
  5965. template<typename Derived>
  5966. StmtResult
  5967. TreeTransform<Derived>::TransformReturnStmt(ReturnStmt *S) {
  5968. ExprResult Result = getDerived().TransformInitializer(S->getRetValue(),
  5969. /*NotCopyInit*/false);
  5970. if (Result.isInvalid())
  5971. return StmtError();
  5972. // FIXME: We always rebuild the return statement because there is no way
  5973. // to tell whether the return type of the function has changed.
  5974. return getDerived().RebuildReturnStmt(S->getReturnLoc(), Result.get());
  5975. }
  5976. template<typename Derived>
  5977. StmtResult
  5978. TreeTransform<Derived>::TransformDeclStmt(DeclStmt *S) {
  5979. bool DeclChanged = false;
  5980. SmallVector<Decl *, 4> Decls;
  5981. for (auto *D : S->decls()) {
  5982. Decl *Transformed = getDerived().TransformDefinition(D->getLocation(), D);
  5983. if (!Transformed)
  5984. return StmtError();
  5985. if (Transformed != D)
  5986. DeclChanged = true;
  5987. Decls.push_back(Transformed);
  5988. }
  5989. if (!getDerived().AlwaysRebuild() && !DeclChanged)
  5990. return S;
  5991. return getDerived().RebuildDeclStmt(Decls, S->getBeginLoc(), S->getEndLoc());
  5992. }
  5993. template<typename Derived>
  5994. StmtResult
  5995. TreeTransform<Derived>::TransformGCCAsmStmt(GCCAsmStmt *S) {
  5996. SmallVector<Expr*, 8> Constraints;
  5997. SmallVector<Expr*, 8> Exprs;
  5998. SmallVector<IdentifierInfo *, 4> Names;
  5999. ExprResult AsmString;
  6000. SmallVector<Expr*, 8> Clobbers;
  6001. bool ExprsChanged = false;
  6002. // Go through the outputs.
  6003. for (unsigned I = 0, E = S->getNumOutputs(); I != E; ++I) {
  6004. Names.push_back(S->getOutputIdentifier(I));
  6005. // No need to transform the constraint literal.
  6006. Constraints.push_back(S->getOutputConstraintLiteral(I));
  6007. // Transform the output expr.
  6008. Expr *OutputExpr = S->getOutputExpr(I);
  6009. ExprResult Result = getDerived().TransformExpr(OutputExpr);
  6010. if (Result.isInvalid())
  6011. return StmtError();
  6012. ExprsChanged |= Result.get() != OutputExpr;
  6013. Exprs.push_back(Result.get());
  6014. }
  6015. // Go through the inputs.
  6016. for (unsigned I = 0, E = S->getNumInputs(); I != E; ++I) {
  6017. Names.push_back(S->getInputIdentifier(I));
  6018. // No need to transform the constraint literal.
  6019. Constraints.push_back(S->getInputConstraintLiteral(I));
  6020. // Transform the input expr.
  6021. Expr *InputExpr = S->getInputExpr(I);
  6022. ExprResult Result = getDerived().TransformExpr(InputExpr);
  6023. if (Result.isInvalid())
  6024. return StmtError();
  6025. ExprsChanged |= Result.get() != InputExpr;
  6026. Exprs.push_back(Result.get());
  6027. }
  6028. if (!getDerived().AlwaysRebuild() && !ExprsChanged)
  6029. return S;
  6030. // Go through the clobbers.
  6031. for (unsigned I = 0, E = S->getNumClobbers(); I != E; ++I)
  6032. Clobbers.push_back(S->getClobberStringLiteral(I));
  6033. // No need to transform the asm string literal.
  6034. AsmString = S->getAsmString();
  6035. return getDerived().RebuildGCCAsmStmt(S->getAsmLoc(), S->isSimple(),
  6036. S->isVolatile(), S->getNumOutputs(),
  6037. S->getNumInputs(), Names.data(),
  6038. Constraints, Exprs, AsmString.get(),
  6039. Clobbers, S->getRParenLoc());
  6040. }
  6041. template<typename Derived>
  6042. StmtResult
  6043. TreeTransform<Derived>::TransformMSAsmStmt(MSAsmStmt *S) {
  6044. ArrayRef<Token> AsmToks =
  6045. llvm::makeArrayRef(S->getAsmToks(), S->getNumAsmToks());
  6046. bool HadError = false, HadChange = false;
  6047. ArrayRef<Expr*> SrcExprs = S->getAllExprs();
  6048. SmallVector<Expr*, 8> TransformedExprs;
  6049. TransformedExprs.reserve(SrcExprs.size());
  6050. for (unsigned i = 0, e = SrcExprs.size(); i != e; ++i) {
  6051. ExprResult Result = getDerived().TransformExpr(SrcExprs[i]);
  6052. if (!Result.isUsable()) {
  6053. HadError = true;
  6054. } else {
  6055. HadChange |= (Result.get() != SrcExprs[i]);
  6056. TransformedExprs.push_back(Result.get());
  6057. }
  6058. }
  6059. if (HadError) return StmtError();
  6060. if (!HadChange && !getDerived().AlwaysRebuild())
  6061. return Owned(S);
  6062. return getDerived().RebuildMSAsmStmt(S->getAsmLoc(), S->getLBraceLoc(),
  6063. AsmToks, S->getAsmString(),
  6064. S->getNumOutputs(), S->getNumInputs(),
  6065. S->getAllConstraints(), S->getClobbers(),
  6066. TransformedExprs, S->getEndLoc());
  6067. }
  6068. // C++ Coroutines TS
  6069. template<typename Derived>
  6070. StmtResult
  6071. TreeTransform<Derived>::TransformCoroutineBodyStmt(CoroutineBodyStmt *S) {
  6072. auto *ScopeInfo = SemaRef.getCurFunction();
  6073. auto *FD = cast<FunctionDecl>(SemaRef.CurContext);
  6074. assert(FD && ScopeInfo && !ScopeInfo->CoroutinePromise &&
  6075. ScopeInfo->NeedsCoroutineSuspends &&
  6076. ScopeInfo->CoroutineSuspends.first == nullptr &&
  6077. ScopeInfo->CoroutineSuspends.second == nullptr &&
  6078. "expected clean scope info");
  6079. // Set that we have (possibly-invalid) suspend points before we do anything
  6080. // that may fail.
  6081. ScopeInfo->setNeedsCoroutineSuspends(false);
  6082. // The new CoroutinePromise object needs to be built and put into the current
  6083. // FunctionScopeInfo before any transformations or rebuilding occurs.
  6084. if (!SemaRef.buildCoroutineParameterMoves(FD->getLocation()))
  6085. return StmtError();
  6086. auto *Promise = SemaRef.buildCoroutinePromise(FD->getLocation());
  6087. if (!Promise)
  6088. return StmtError();
  6089. getDerived().transformedLocalDecl(S->getPromiseDecl(), Promise);
  6090. ScopeInfo->CoroutinePromise = Promise;
  6091. // Transform the implicit coroutine statements we built during the initial
  6092. // parse.
  6093. StmtResult InitSuspend = getDerived().TransformStmt(S->getInitSuspendStmt());
  6094. if (InitSuspend.isInvalid())
  6095. return StmtError();
  6096. StmtResult FinalSuspend =
  6097. getDerived().TransformStmt(S->getFinalSuspendStmt());
  6098. if (FinalSuspend.isInvalid())
  6099. return StmtError();
  6100. ScopeInfo->setCoroutineSuspends(InitSuspend.get(), FinalSuspend.get());
  6101. assert(isa<Expr>(InitSuspend.get()) && isa<Expr>(FinalSuspend.get()));
  6102. StmtResult BodyRes = getDerived().TransformStmt(S->getBody());
  6103. if (BodyRes.isInvalid())
  6104. return StmtError();
  6105. CoroutineStmtBuilder Builder(SemaRef, *FD, *ScopeInfo, BodyRes.get());
  6106. if (Builder.isInvalid())
  6107. return StmtError();
  6108. Expr *ReturnObject = S->getReturnValueInit();
  6109. assert(ReturnObject && "the return object is expected to be valid");
  6110. ExprResult Res = getDerived().TransformInitializer(ReturnObject,
  6111. /*NoCopyInit*/ false);
  6112. if (Res.isInvalid())
  6113. return StmtError();
  6114. Builder.ReturnValue = Res.get();
  6115. if (S->hasDependentPromiseType()) {
  6116. assert(!Promise->getType()->isDependentType() &&
  6117. "the promise type must no longer be dependent");
  6118. assert(!S->getFallthroughHandler() && !S->getExceptionHandler() &&
  6119. !S->getReturnStmtOnAllocFailure() && !S->getDeallocate() &&
  6120. "these nodes should not have been built yet");
  6121. if (!Builder.buildDependentStatements())
  6122. return StmtError();
  6123. } else {
  6124. if (auto *OnFallthrough = S->getFallthroughHandler()) {
  6125. StmtResult Res = getDerived().TransformStmt(OnFallthrough);
  6126. if (Res.isInvalid())
  6127. return StmtError();
  6128. Builder.OnFallthrough = Res.get();
  6129. }
  6130. if (auto *OnException = S->getExceptionHandler()) {
  6131. StmtResult Res = getDerived().TransformStmt(OnException);
  6132. if (Res.isInvalid())
  6133. return StmtError();
  6134. Builder.OnException = Res.get();
  6135. }
  6136. if (auto *OnAllocFailure = S->getReturnStmtOnAllocFailure()) {
  6137. StmtResult Res = getDerived().TransformStmt(OnAllocFailure);
  6138. if (Res.isInvalid())
  6139. return StmtError();
  6140. Builder.ReturnStmtOnAllocFailure = Res.get();
  6141. }
  6142. // Transform any additional statements we may have already built
  6143. assert(S->getAllocate() && S->getDeallocate() &&
  6144. "allocation and deallocation calls must already be built");
  6145. ExprResult AllocRes = getDerived().TransformExpr(S->getAllocate());
  6146. if (AllocRes.isInvalid())
  6147. return StmtError();
  6148. Builder.Allocate = AllocRes.get();
  6149. ExprResult DeallocRes = getDerived().TransformExpr(S->getDeallocate());
  6150. if (DeallocRes.isInvalid())
  6151. return StmtError();
  6152. Builder.Deallocate = DeallocRes.get();
  6153. assert(S->getResultDecl() && "ResultDecl must already be built");
  6154. StmtResult ResultDecl = getDerived().TransformStmt(S->getResultDecl());
  6155. if (ResultDecl.isInvalid())
  6156. return StmtError();
  6157. Builder.ResultDecl = ResultDecl.get();
  6158. if (auto *ReturnStmt = S->getReturnStmt()) {
  6159. StmtResult Res = getDerived().TransformStmt(ReturnStmt);
  6160. if (Res.isInvalid())
  6161. return StmtError();
  6162. Builder.ReturnStmt = Res.get();
  6163. }
  6164. }
  6165. return getDerived().RebuildCoroutineBodyStmt(Builder);
  6166. }
  6167. template<typename Derived>
  6168. StmtResult
  6169. TreeTransform<Derived>::TransformCoreturnStmt(CoreturnStmt *S) {
  6170. ExprResult Result = getDerived().TransformInitializer(S->getOperand(),
  6171. /*NotCopyInit*/false);
  6172. if (Result.isInvalid())
  6173. return StmtError();
  6174. // Always rebuild; we don't know if this needs to be injected into a new
  6175. // context or if the promise type has changed.
  6176. return getDerived().RebuildCoreturnStmt(S->getKeywordLoc(), Result.get(),
  6177. S->isImplicit());
  6178. }
  6179. template<typename Derived>
  6180. ExprResult
  6181. TreeTransform<Derived>::TransformCoawaitExpr(CoawaitExpr *E) {
  6182. ExprResult Result = getDerived().TransformInitializer(E->getOperand(),
  6183. /*NotCopyInit*/false);
  6184. if (Result.isInvalid())
  6185. return ExprError();
  6186. // Always rebuild; we don't know if this needs to be injected into a new
  6187. // context or if the promise type has changed.
  6188. return getDerived().RebuildCoawaitExpr(E->getKeywordLoc(), Result.get(),
  6189. E->isImplicit());
  6190. }
  6191. template <typename Derived>
  6192. ExprResult
  6193. TreeTransform<Derived>::TransformDependentCoawaitExpr(DependentCoawaitExpr *E) {
  6194. ExprResult OperandResult = getDerived().TransformInitializer(E->getOperand(),
  6195. /*NotCopyInit*/ false);
  6196. if (OperandResult.isInvalid())
  6197. return ExprError();
  6198. ExprResult LookupResult = getDerived().TransformUnresolvedLookupExpr(
  6199. E->getOperatorCoawaitLookup());
  6200. if (LookupResult.isInvalid())
  6201. return ExprError();
  6202. // Always rebuild; we don't know if this needs to be injected into a new
  6203. // context or if the promise type has changed.
  6204. return getDerived().RebuildDependentCoawaitExpr(
  6205. E->getKeywordLoc(), OperandResult.get(),
  6206. cast<UnresolvedLookupExpr>(LookupResult.get()));
  6207. }
  6208. template<typename Derived>
  6209. ExprResult
  6210. TreeTransform<Derived>::TransformCoyieldExpr(CoyieldExpr *E) {
  6211. ExprResult Result = getDerived().TransformInitializer(E->getOperand(),
  6212. /*NotCopyInit*/false);
  6213. if (Result.isInvalid())
  6214. return ExprError();
  6215. // Always rebuild; we don't know if this needs to be injected into a new
  6216. // context or if the promise type has changed.
  6217. return getDerived().RebuildCoyieldExpr(E->getKeywordLoc(), Result.get());
  6218. }
  6219. // Objective-C Statements.
  6220. template<typename Derived>
  6221. StmtResult
  6222. TreeTransform<Derived>::TransformObjCAtTryStmt(ObjCAtTryStmt *S) {
  6223. // Transform the body of the @try.
  6224. StmtResult TryBody = getDerived().TransformStmt(S->getTryBody());
  6225. if (TryBody.isInvalid())
  6226. return StmtError();
  6227. // Transform the @catch statements (if present).
  6228. bool AnyCatchChanged = false;
  6229. SmallVector<Stmt*, 8> CatchStmts;
  6230. for (unsigned I = 0, N = S->getNumCatchStmts(); I != N; ++I) {
  6231. StmtResult Catch = getDerived().TransformStmt(S->getCatchStmt(I));
  6232. if (Catch.isInvalid())
  6233. return StmtError();
  6234. if (Catch.get() != S->getCatchStmt(I))
  6235. AnyCatchChanged = true;
  6236. CatchStmts.push_back(Catch.get());
  6237. }
  6238. // Transform the @finally statement (if present).
  6239. StmtResult Finally;
  6240. if (S->getFinallyStmt()) {
  6241. Finally = getDerived().TransformStmt(S->getFinallyStmt());
  6242. if (Finally.isInvalid())
  6243. return StmtError();
  6244. }
  6245. // If nothing changed, just retain this statement.
  6246. if (!getDerived().AlwaysRebuild() &&
  6247. TryBody.get() == S->getTryBody() &&
  6248. !AnyCatchChanged &&
  6249. Finally.get() == S->getFinallyStmt())
  6250. return S;
  6251. // Build a new statement.
  6252. return getDerived().RebuildObjCAtTryStmt(S->getAtTryLoc(), TryBody.get(),
  6253. CatchStmts, Finally.get());
  6254. }
  6255. template<typename Derived>
  6256. StmtResult
  6257. TreeTransform<Derived>::TransformObjCAtCatchStmt(ObjCAtCatchStmt *S) {
  6258. // Transform the @catch parameter, if there is one.
  6259. VarDecl *Var = nullptr;
  6260. if (VarDecl *FromVar = S->getCatchParamDecl()) {
  6261. TypeSourceInfo *TSInfo = nullptr;
  6262. if (FromVar->getTypeSourceInfo()) {
  6263. TSInfo = getDerived().TransformType(FromVar->getTypeSourceInfo());
  6264. if (!TSInfo)
  6265. return StmtError();
  6266. }
  6267. QualType T;
  6268. if (TSInfo)
  6269. T = TSInfo->getType();
  6270. else {
  6271. T = getDerived().TransformType(FromVar->getType());
  6272. if (T.isNull())
  6273. return StmtError();
  6274. }
  6275. Var = getDerived().RebuildObjCExceptionDecl(FromVar, TSInfo, T);
  6276. if (!Var)
  6277. return StmtError();
  6278. }
  6279. StmtResult Body = getDerived().TransformStmt(S->getCatchBody());
  6280. if (Body.isInvalid())
  6281. return StmtError();
  6282. return getDerived().RebuildObjCAtCatchStmt(S->getAtCatchLoc(),
  6283. S->getRParenLoc(),
  6284. Var, Body.get());
  6285. }
  6286. template<typename Derived>
  6287. StmtResult
  6288. TreeTransform<Derived>::TransformObjCAtFinallyStmt(ObjCAtFinallyStmt *S) {
  6289. // Transform the body.
  6290. StmtResult Body = getDerived().TransformStmt(S->getFinallyBody());
  6291. if (Body.isInvalid())
  6292. return StmtError();
  6293. // If nothing changed, just retain this statement.
  6294. if (!getDerived().AlwaysRebuild() &&
  6295. Body.get() == S->getFinallyBody())
  6296. return S;
  6297. // Build a new statement.
  6298. return getDerived().RebuildObjCAtFinallyStmt(S->getAtFinallyLoc(),
  6299. Body.get());
  6300. }
  6301. template<typename Derived>
  6302. StmtResult
  6303. TreeTransform<Derived>::TransformObjCAtThrowStmt(ObjCAtThrowStmt *S) {
  6304. ExprResult Operand;
  6305. if (S->getThrowExpr()) {
  6306. Operand = getDerived().TransformExpr(S->getThrowExpr());
  6307. if (Operand.isInvalid())
  6308. return StmtError();
  6309. }
  6310. if (!getDerived().AlwaysRebuild() &&
  6311. Operand.get() == S->getThrowExpr())
  6312. return S;
  6313. return getDerived().RebuildObjCAtThrowStmt(S->getThrowLoc(), Operand.get());
  6314. }
  6315. template<typename Derived>
  6316. StmtResult
  6317. TreeTransform<Derived>::TransformObjCAtSynchronizedStmt(
  6318. ObjCAtSynchronizedStmt *S) {
  6319. // Transform the object we are locking.
  6320. ExprResult Object = getDerived().TransformExpr(S->getSynchExpr());
  6321. if (Object.isInvalid())
  6322. return StmtError();
  6323. Object =
  6324. getDerived().RebuildObjCAtSynchronizedOperand(S->getAtSynchronizedLoc(),
  6325. Object.get());
  6326. if (Object.isInvalid())
  6327. return StmtError();
  6328. // Transform the body.
  6329. StmtResult Body = getDerived().TransformStmt(S->getSynchBody());
  6330. if (Body.isInvalid())
  6331. return StmtError();
  6332. // If nothing change, just retain the current statement.
  6333. if (!getDerived().AlwaysRebuild() &&
  6334. Object.get() == S->getSynchExpr() &&
  6335. Body.get() == S->getSynchBody())
  6336. return S;
  6337. // Build a new statement.
  6338. return getDerived().RebuildObjCAtSynchronizedStmt(S->getAtSynchronizedLoc(),
  6339. Object.get(), Body.get());
  6340. }
  6341. template<typename Derived>
  6342. StmtResult
  6343. TreeTransform<Derived>::TransformObjCAutoreleasePoolStmt(
  6344. ObjCAutoreleasePoolStmt *S) {
  6345. // Transform the body.
  6346. StmtResult Body = getDerived().TransformStmt(S->getSubStmt());
  6347. if (Body.isInvalid())
  6348. return StmtError();
  6349. // If nothing changed, just retain this statement.
  6350. if (!getDerived().AlwaysRebuild() &&
  6351. Body.get() == S->getSubStmt())
  6352. return S;
  6353. // Build a new statement.
  6354. return getDerived().RebuildObjCAutoreleasePoolStmt(
  6355. S->getAtLoc(), Body.get());
  6356. }
  6357. template<typename Derived>
  6358. StmtResult
  6359. TreeTransform<Derived>::TransformObjCForCollectionStmt(
  6360. ObjCForCollectionStmt *S) {
  6361. // Transform the element statement.
  6362. StmtResult Element = getDerived().TransformStmt(S->getElement());
  6363. if (Element.isInvalid())
  6364. return StmtError();
  6365. // Transform the collection expression.
  6366. ExprResult Collection = getDerived().TransformExpr(S->getCollection());
  6367. if (Collection.isInvalid())
  6368. return StmtError();
  6369. // Transform the body.
  6370. StmtResult Body = getDerived().TransformStmt(S->getBody());
  6371. if (Body.isInvalid())
  6372. return StmtError();
  6373. // If nothing changed, just retain this statement.
  6374. if (!getDerived().AlwaysRebuild() &&
  6375. Element.get() == S->getElement() &&
  6376. Collection.get() == S->getCollection() &&
  6377. Body.get() == S->getBody())
  6378. return S;
  6379. // Build a new statement.
  6380. return getDerived().RebuildObjCForCollectionStmt(S->getForLoc(),
  6381. Element.get(),
  6382. Collection.get(),
  6383. S->getRParenLoc(),
  6384. Body.get());
  6385. }
  6386. template <typename Derived>
  6387. StmtResult TreeTransform<Derived>::TransformCXXCatchStmt(CXXCatchStmt *S) {
  6388. // Transform the exception declaration, if any.
  6389. VarDecl *Var = nullptr;
  6390. if (VarDecl *ExceptionDecl = S->getExceptionDecl()) {
  6391. TypeSourceInfo *T =
  6392. getDerived().TransformType(ExceptionDecl->getTypeSourceInfo());
  6393. if (!T)
  6394. return StmtError();
  6395. Var = getDerived().RebuildExceptionDecl(
  6396. ExceptionDecl, T, ExceptionDecl->getInnerLocStart(),
  6397. ExceptionDecl->getLocation(), ExceptionDecl->getIdentifier());
  6398. if (!Var || Var->isInvalidDecl())
  6399. return StmtError();
  6400. }
  6401. // Transform the actual exception handler.
  6402. StmtResult Handler = getDerived().TransformStmt(S->getHandlerBlock());
  6403. if (Handler.isInvalid())
  6404. return StmtError();
  6405. if (!getDerived().AlwaysRebuild() && !Var &&
  6406. Handler.get() == S->getHandlerBlock())
  6407. return S;
  6408. return getDerived().RebuildCXXCatchStmt(S->getCatchLoc(), Var, Handler.get());
  6409. }
  6410. template <typename Derived>
  6411. StmtResult TreeTransform<Derived>::TransformCXXTryStmt(CXXTryStmt *S) {
  6412. // Transform the try block itself.
  6413. StmtResult TryBlock = getDerived().TransformCompoundStmt(S->getTryBlock());
  6414. if (TryBlock.isInvalid())
  6415. return StmtError();
  6416. // Transform the handlers.
  6417. bool HandlerChanged = false;
  6418. SmallVector<Stmt *, 8> Handlers;
  6419. for (unsigned I = 0, N = S->getNumHandlers(); I != N; ++I) {
  6420. StmtResult Handler = getDerived().TransformCXXCatchStmt(S->getHandler(I));
  6421. if (Handler.isInvalid())
  6422. return StmtError();
  6423. HandlerChanged = HandlerChanged || Handler.get() != S->getHandler(I);
  6424. Handlers.push_back(Handler.getAs<Stmt>());
  6425. }
  6426. if (!getDerived().AlwaysRebuild() && TryBlock.get() == S->getTryBlock() &&
  6427. !HandlerChanged)
  6428. return S;
  6429. return getDerived().RebuildCXXTryStmt(S->getTryLoc(), TryBlock.get(),
  6430. Handlers);
  6431. }
  6432. template<typename Derived>
  6433. StmtResult
  6434. TreeTransform<Derived>::TransformCXXForRangeStmt(CXXForRangeStmt *S) {
  6435. StmtResult Init =
  6436. S->getInit() ? getDerived().TransformStmt(S->getInit()) : StmtResult();
  6437. if (Init.isInvalid())
  6438. return StmtError();
  6439. StmtResult Range = getDerived().TransformStmt(S->getRangeStmt());
  6440. if (Range.isInvalid())
  6441. return StmtError();
  6442. StmtResult Begin = getDerived().TransformStmt(S->getBeginStmt());
  6443. if (Begin.isInvalid())
  6444. return StmtError();
  6445. StmtResult End = getDerived().TransformStmt(S->getEndStmt());
  6446. if (End.isInvalid())
  6447. return StmtError();
  6448. ExprResult Cond = getDerived().TransformExpr(S->getCond());
  6449. if (Cond.isInvalid())
  6450. return StmtError();
  6451. if (Cond.get())
  6452. Cond = SemaRef.CheckBooleanCondition(S->getColonLoc(), Cond.get());
  6453. if (Cond.isInvalid())
  6454. return StmtError();
  6455. if (Cond.get())
  6456. Cond = SemaRef.MaybeCreateExprWithCleanups(Cond.get());
  6457. ExprResult Inc = getDerived().TransformExpr(S->getInc());
  6458. if (Inc.isInvalid())
  6459. return StmtError();
  6460. if (Inc.get())
  6461. Inc = SemaRef.MaybeCreateExprWithCleanups(Inc.get());
  6462. StmtResult LoopVar = getDerived().TransformStmt(S->getLoopVarStmt());
  6463. if (LoopVar.isInvalid())
  6464. return StmtError();
  6465. StmtResult NewStmt = S;
  6466. if (getDerived().AlwaysRebuild() ||
  6467. Init.get() != S->getInit() ||
  6468. Range.get() != S->getRangeStmt() ||
  6469. Begin.get() != S->getBeginStmt() ||
  6470. End.get() != S->getEndStmt() ||
  6471. Cond.get() != S->getCond() ||
  6472. Inc.get() != S->getInc() ||
  6473. LoopVar.get() != S->getLoopVarStmt()) {
  6474. NewStmt = getDerived().RebuildCXXForRangeStmt(S->getForLoc(),
  6475. S->getCoawaitLoc(), Init.get(),
  6476. S->getColonLoc(), Range.get(),
  6477. Begin.get(), End.get(),
  6478. Cond.get(),
  6479. Inc.get(), LoopVar.get(),
  6480. S->getRParenLoc());
  6481. if (NewStmt.isInvalid())
  6482. return StmtError();
  6483. }
  6484. StmtResult Body = getDerived().TransformStmt(S->getBody());
  6485. if (Body.isInvalid())
  6486. return StmtError();
  6487. // Body has changed but we didn't rebuild the for-range statement. Rebuild
  6488. // it now so we have a new statement to attach the body to.
  6489. if (Body.get() != S->getBody() && NewStmt.get() == S) {
  6490. NewStmt = getDerived().RebuildCXXForRangeStmt(S->getForLoc(),
  6491. S->getCoawaitLoc(), Init.get(),
  6492. S->getColonLoc(), Range.get(),
  6493. Begin.get(), End.get(),
  6494. Cond.get(),
  6495. Inc.get(), LoopVar.get(),
  6496. S->getRParenLoc());
  6497. if (NewStmt.isInvalid())
  6498. return StmtError();
  6499. }
  6500. if (NewStmt.get() == S)
  6501. return S;
  6502. return FinishCXXForRangeStmt(NewStmt.get(), Body.get());
  6503. }
  6504. template<typename Derived>
  6505. StmtResult
  6506. TreeTransform<Derived>::TransformMSDependentExistsStmt(
  6507. MSDependentExistsStmt *S) {
  6508. // Transform the nested-name-specifier, if any.
  6509. NestedNameSpecifierLoc QualifierLoc;
  6510. if (S->getQualifierLoc()) {
  6511. QualifierLoc
  6512. = getDerived().TransformNestedNameSpecifierLoc(S->getQualifierLoc());
  6513. if (!QualifierLoc)
  6514. return StmtError();
  6515. }
  6516. // Transform the declaration name.
  6517. DeclarationNameInfo NameInfo = S->getNameInfo();
  6518. if (NameInfo.getName()) {
  6519. NameInfo = getDerived().TransformDeclarationNameInfo(NameInfo);
  6520. if (!NameInfo.getName())
  6521. return StmtError();
  6522. }
  6523. // Check whether anything changed.
  6524. if (!getDerived().AlwaysRebuild() &&
  6525. QualifierLoc == S->getQualifierLoc() &&
  6526. NameInfo.getName() == S->getNameInfo().getName())
  6527. return S;
  6528. // Determine whether this name exists, if we can.
  6529. CXXScopeSpec SS;
  6530. SS.Adopt(QualifierLoc);
  6531. bool Dependent = false;
  6532. switch (getSema().CheckMicrosoftIfExistsSymbol(/*S=*/nullptr, SS, NameInfo)) {
  6533. case Sema::IER_Exists:
  6534. if (S->isIfExists())
  6535. break;
  6536. return new (getSema().Context) NullStmt(S->getKeywordLoc());
  6537. case Sema::IER_DoesNotExist:
  6538. if (S->isIfNotExists())
  6539. break;
  6540. return new (getSema().Context) NullStmt(S->getKeywordLoc());
  6541. case Sema::IER_Dependent:
  6542. Dependent = true;
  6543. break;
  6544. case Sema::IER_Error:
  6545. return StmtError();
  6546. }
  6547. // We need to continue with the instantiation, so do so now.
  6548. StmtResult SubStmt = getDerived().TransformCompoundStmt(S->getSubStmt());
  6549. if (SubStmt.isInvalid())
  6550. return StmtError();
  6551. // If we have resolved the name, just transform to the substatement.
  6552. if (!Dependent)
  6553. return SubStmt;
  6554. // The name is still dependent, so build a dependent expression again.
  6555. return getDerived().RebuildMSDependentExistsStmt(S->getKeywordLoc(),
  6556. S->isIfExists(),
  6557. QualifierLoc,
  6558. NameInfo,
  6559. SubStmt.get());
  6560. }
  6561. template<typename Derived>
  6562. ExprResult
  6563. TreeTransform<Derived>::TransformMSPropertyRefExpr(MSPropertyRefExpr *E) {
  6564. NestedNameSpecifierLoc QualifierLoc;
  6565. if (E->getQualifierLoc()) {
  6566. QualifierLoc
  6567. = getDerived().TransformNestedNameSpecifierLoc(E->getQualifierLoc());
  6568. if (!QualifierLoc)
  6569. return ExprError();
  6570. }
  6571. MSPropertyDecl *PD = cast_or_null<MSPropertyDecl>(
  6572. getDerived().TransformDecl(E->getMemberLoc(), E->getPropertyDecl()));
  6573. if (!PD)
  6574. return ExprError();
  6575. ExprResult Base = getDerived().TransformExpr(E->getBaseExpr());
  6576. if (Base.isInvalid())
  6577. return ExprError();
  6578. return new (SemaRef.getASTContext())
  6579. MSPropertyRefExpr(Base.get(), PD, E->isArrow(),
  6580. SemaRef.getASTContext().PseudoObjectTy, VK_LValue,
  6581. QualifierLoc, E->getMemberLoc());
  6582. }
  6583. template <typename Derived>
  6584. ExprResult TreeTransform<Derived>::TransformMSPropertySubscriptExpr(
  6585. MSPropertySubscriptExpr *E) {
  6586. auto BaseRes = getDerived().TransformExpr(E->getBase());
  6587. if (BaseRes.isInvalid())
  6588. return ExprError();
  6589. auto IdxRes = getDerived().TransformExpr(E->getIdx());
  6590. if (IdxRes.isInvalid())
  6591. return ExprError();
  6592. if (!getDerived().AlwaysRebuild() &&
  6593. BaseRes.get() == E->getBase() &&
  6594. IdxRes.get() == E->getIdx())
  6595. return E;
  6596. return getDerived().RebuildArraySubscriptExpr(
  6597. BaseRes.get(), SourceLocation(), IdxRes.get(), E->getRBracketLoc());
  6598. }
  6599. template <typename Derived>
  6600. StmtResult TreeTransform<Derived>::TransformSEHTryStmt(SEHTryStmt *S) {
  6601. StmtResult TryBlock = getDerived().TransformCompoundStmt(S->getTryBlock());
  6602. if (TryBlock.isInvalid())
  6603. return StmtError();
  6604. StmtResult Handler = getDerived().TransformSEHHandler(S->getHandler());
  6605. if (Handler.isInvalid())
  6606. return StmtError();
  6607. if (!getDerived().AlwaysRebuild() && TryBlock.get() == S->getTryBlock() &&
  6608. Handler.get() == S->getHandler())
  6609. return S;
  6610. return getDerived().RebuildSEHTryStmt(S->getIsCXXTry(), S->getTryLoc(),
  6611. TryBlock.get(), Handler.get());
  6612. }
  6613. template <typename Derived>
  6614. StmtResult TreeTransform<Derived>::TransformSEHFinallyStmt(SEHFinallyStmt *S) {
  6615. StmtResult Block = getDerived().TransformCompoundStmt(S->getBlock());
  6616. if (Block.isInvalid())
  6617. return StmtError();
  6618. return getDerived().RebuildSEHFinallyStmt(S->getFinallyLoc(), Block.get());
  6619. }
  6620. template <typename Derived>
  6621. StmtResult TreeTransform<Derived>::TransformSEHExceptStmt(SEHExceptStmt *S) {
  6622. ExprResult FilterExpr = getDerived().TransformExpr(S->getFilterExpr());
  6623. if (FilterExpr.isInvalid())
  6624. return StmtError();
  6625. StmtResult Block = getDerived().TransformCompoundStmt(S->getBlock());
  6626. if (Block.isInvalid())
  6627. return StmtError();
  6628. return getDerived().RebuildSEHExceptStmt(S->getExceptLoc(), FilterExpr.get(),
  6629. Block.get());
  6630. }
  6631. template <typename Derived>
  6632. StmtResult TreeTransform<Derived>::TransformSEHHandler(Stmt *Handler) {
  6633. if (isa<SEHFinallyStmt>(Handler))
  6634. return getDerived().TransformSEHFinallyStmt(cast<SEHFinallyStmt>(Handler));
  6635. else
  6636. return getDerived().TransformSEHExceptStmt(cast<SEHExceptStmt>(Handler));
  6637. }
  6638. template<typename Derived>
  6639. StmtResult
  6640. TreeTransform<Derived>::TransformSEHLeaveStmt(SEHLeaveStmt *S) {
  6641. return S;
  6642. }
  6643. //===----------------------------------------------------------------------===//
  6644. // OpenMP directive transformation
  6645. //===----------------------------------------------------------------------===//
  6646. template <typename Derived>
  6647. StmtResult TreeTransform<Derived>::TransformOMPExecutableDirective(
  6648. OMPExecutableDirective *D) {
  6649. // Transform the clauses
  6650. llvm::SmallVector<OMPClause *, 16> TClauses;
  6651. ArrayRef<OMPClause *> Clauses = D->clauses();
  6652. TClauses.reserve(Clauses.size());
  6653. for (ArrayRef<OMPClause *>::iterator I = Clauses.begin(), E = Clauses.end();
  6654. I != E; ++I) {
  6655. if (*I) {
  6656. getDerived().getSema().StartOpenMPClause((*I)->getClauseKind());
  6657. OMPClause *Clause = getDerived().TransformOMPClause(*I);
  6658. getDerived().getSema().EndOpenMPClause();
  6659. if (Clause)
  6660. TClauses.push_back(Clause);
  6661. } else {
  6662. TClauses.push_back(nullptr);
  6663. }
  6664. }
  6665. StmtResult AssociatedStmt;
  6666. if (D->hasAssociatedStmt() && D->getAssociatedStmt()) {
  6667. getDerived().getSema().ActOnOpenMPRegionStart(D->getDirectiveKind(),
  6668. /*CurScope=*/nullptr);
  6669. StmtResult Body;
  6670. {
  6671. Sema::CompoundScopeRAII CompoundScope(getSema());
  6672. Stmt *CS = D->getInnermostCapturedStmt()->getCapturedStmt();
  6673. Body = getDerived().TransformStmt(CS);
  6674. }
  6675. AssociatedStmt =
  6676. getDerived().getSema().ActOnOpenMPRegionEnd(Body, TClauses);
  6677. if (AssociatedStmt.isInvalid()) {
  6678. return StmtError();
  6679. }
  6680. }
  6681. if (TClauses.size() != Clauses.size()) {
  6682. return StmtError();
  6683. }
  6684. // Transform directive name for 'omp critical' directive.
  6685. DeclarationNameInfo DirName;
  6686. if (D->getDirectiveKind() == OMPD_critical) {
  6687. DirName = cast<OMPCriticalDirective>(D)->getDirectiveName();
  6688. DirName = getDerived().TransformDeclarationNameInfo(DirName);
  6689. }
  6690. OpenMPDirectiveKind CancelRegion = OMPD_unknown;
  6691. if (D->getDirectiveKind() == OMPD_cancellation_point) {
  6692. CancelRegion = cast<OMPCancellationPointDirective>(D)->getCancelRegion();
  6693. } else if (D->getDirectiveKind() == OMPD_cancel) {
  6694. CancelRegion = cast<OMPCancelDirective>(D)->getCancelRegion();
  6695. }
  6696. return getDerived().RebuildOMPExecutableDirective(
  6697. D->getDirectiveKind(), DirName, CancelRegion, TClauses,
  6698. AssociatedStmt.get(), D->getBeginLoc(), D->getEndLoc());
  6699. }
  6700. template <typename Derived>
  6701. StmtResult
  6702. TreeTransform<Derived>::TransformOMPParallelDirective(OMPParallelDirective *D) {
  6703. DeclarationNameInfo DirName;
  6704. getDerived().getSema().StartOpenMPDSABlock(OMPD_parallel, DirName, nullptr,
  6705. D->getBeginLoc());
  6706. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6707. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6708. return Res;
  6709. }
  6710. template <typename Derived>
  6711. StmtResult
  6712. TreeTransform<Derived>::TransformOMPSimdDirective(OMPSimdDirective *D) {
  6713. DeclarationNameInfo DirName;
  6714. getDerived().getSema().StartOpenMPDSABlock(OMPD_simd, DirName, nullptr,
  6715. D->getBeginLoc());
  6716. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6717. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6718. return Res;
  6719. }
  6720. template <typename Derived>
  6721. StmtResult
  6722. TreeTransform<Derived>::TransformOMPForDirective(OMPForDirective *D) {
  6723. DeclarationNameInfo DirName;
  6724. getDerived().getSema().StartOpenMPDSABlock(OMPD_for, DirName, nullptr,
  6725. D->getBeginLoc());
  6726. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6727. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6728. return Res;
  6729. }
  6730. template <typename Derived>
  6731. StmtResult
  6732. TreeTransform<Derived>::TransformOMPForSimdDirective(OMPForSimdDirective *D) {
  6733. DeclarationNameInfo DirName;
  6734. getDerived().getSema().StartOpenMPDSABlock(OMPD_for_simd, DirName, nullptr,
  6735. D->getBeginLoc());
  6736. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6737. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6738. return Res;
  6739. }
  6740. template <typename Derived>
  6741. StmtResult
  6742. TreeTransform<Derived>::TransformOMPSectionsDirective(OMPSectionsDirective *D) {
  6743. DeclarationNameInfo DirName;
  6744. getDerived().getSema().StartOpenMPDSABlock(OMPD_sections, DirName, nullptr,
  6745. D->getBeginLoc());
  6746. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6747. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6748. return Res;
  6749. }
  6750. template <typename Derived>
  6751. StmtResult
  6752. TreeTransform<Derived>::TransformOMPSectionDirective(OMPSectionDirective *D) {
  6753. DeclarationNameInfo DirName;
  6754. getDerived().getSema().StartOpenMPDSABlock(OMPD_section, DirName, nullptr,
  6755. D->getBeginLoc());
  6756. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6757. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6758. return Res;
  6759. }
  6760. template <typename Derived>
  6761. StmtResult
  6762. TreeTransform<Derived>::TransformOMPSingleDirective(OMPSingleDirective *D) {
  6763. DeclarationNameInfo DirName;
  6764. getDerived().getSema().StartOpenMPDSABlock(OMPD_single, DirName, nullptr,
  6765. D->getBeginLoc());
  6766. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6767. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6768. return Res;
  6769. }
  6770. template <typename Derived>
  6771. StmtResult
  6772. TreeTransform<Derived>::TransformOMPMasterDirective(OMPMasterDirective *D) {
  6773. DeclarationNameInfo DirName;
  6774. getDerived().getSema().StartOpenMPDSABlock(OMPD_master, DirName, nullptr,
  6775. D->getBeginLoc());
  6776. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6777. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6778. return Res;
  6779. }
  6780. template <typename Derived>
  6781. StmtResult
  6782. TreeTransform<Derived>::TransformOMPCriticalDirective(OMPCriticalDirective *D) {
  6783. getDerived().getSema().StartOpenMPDSABlock(
  6784. OMPD_critical, D->getDirectiveName(), nullptr, D->getBeginLoc());
  6785. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6786. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6787. return Res;
  6788. }
  6789. template <typename Derived>
  6790. StmtResult TreeTransform<Derived>::TransformOMPParallelForDirective(
  6791. OMPParallelForDirective *D) {
  6792. DeclarationNameInfo DirName;
  6793. getDerived().getSema().StartOpenMPDSABlock(OMPD_parallel_for, DirName,
  6794. nullptr, D->getBeginLoc());
  6795. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6796. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6797. return Res;
  6798. }
  6799. template <typename Derived>
  6800. StmtResult TreeTransform<Derived>::TransformOMPParallelForSimdDirective(
  6801. OMPParallelForSimdDirective *D) {
  6802. DeclarationNameInfo DirName;
  6803. getDerived().getSema().StartOpenMPDSABlock(OMPD_parallel_for_simd, DirName,
  6804. nullptr, D->getBeginLoc());
  6805. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6806. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6807. return Res;
  6808. }
  6809. template <typename Derived>
  6810. StmtResult TreeTransform<Derived>::TransformOMPParallelSectionsDirective(
  6811. OMPParallelSectionsDirective *D) {
  6812. DeclarationNameInfo DirName;
  6813. getDerived().getSema().StartOpenMPDSABlock(OMPD_parallel_sections, DirName,
  6814. nullptr, D->getBeginLoc());
  6815. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6816. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6817. return Res;
  6818. }
  6819. template <typename Derived>
  6820. StmtResult
  6821. TreeTransform<Derived>::TransformOMPTaskDirective(OMPTaskDirective *D) {
  6822. DeclarationNameInfo DirName;
  6823. getDerived().getSema().StartOpenMPDSABlock(OMPD_task, DirName, nullptr,
  6824. D->getBeginLoc());
  6825. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6826. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6827. return Res;
  6828. }
  6829. template <typename Derived>
  6830. StmtResult TreeTransform<Derived>::TransformOMPTaskyieldDirective(
  6831. OMPTaskyieldDirective *D) {
  6832. DeclarationNameInfo DirName;
  6833. getDerived().getSema().StartOpenMPDSABlock(OMPD_taskyield, DirName, nullptr,
  6834. D->getBeginLoc());
  6835. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6836. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6837. return Res;
  6838. }
  6839. template <typename Derived>
  6840. StmtResult
  6841. TreeTransform<Derived>::TransformOMPBarrierDirective(OMPBarrierDirective *D) {
  6842. DeclarationNameInfo DirName;
  6843. getDerived().getSema().StartOpenMPDSABlock(OMPD_barrier, DirName, nullptr,
  6844. D->getBeginLoc());
  6845. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6846. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6847. return Res;
  6848. }
  6849. template <typename Derived>
  6850. StmtResult
  6851. TreeTransform<Derived>::TransformOMPTaskwaitDirective(OMPTaskwaitDirective *D) {
  6852. DeclarationNameInfo DirName;
  6853. getDerived().getSema().StartOpenMPDSABlock(OMPD_taskwait, DirName, nullptr,
  6854. D->getBeginLoc());
  6855. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6856. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6857. return Res;
  6858. }
  6859. template <typename Derived>
  6860. StmtResult TreeTransform<Derived>::TransformOMPTaskgroupDirective(
  6861. OMPTaskgroupDirective *D) {
  6862. DeclarationNameInfo DirName;
  6863. getDerived().getSema().StartOpenMPDSABlock(OMPD_taskgroup, DirName, nullptr,
  6864. D->getBeginLoc());
  6865. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6866. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6867. return Res;
  6868. }
  6869. template <typename Derived>
  6870. StmtResult
  6871. TreeTransform<Derived>::TransformOMPFlushDirective(OMPFlushDirective *D) {
  6872. DeclarationNameInfo DirName;
  6873. getDerived().getSema().StartOpenMPDSABlock(OMPD_flush, DirName, nullptr,
  6874. D->getBeginLoc());
  6875. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6876. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6877. return Res;
  6878. }
  6879. template <typename Derived>
  6880. StmtResult
  6881. TreeTransform<Derived>::TransformOMPOrderedDirective(OMPOrderedDirective *D) {
  6882. DeclarationNameInfo DirName;
  6883. getDerived().getSema().StartOpenMPDSABlock(OMPD_ordered, DirName, nullptr,
  6884. D->getBeginLoc());
  6885. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6886. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6887. return Res;
  6888. }
  6889. template <typename Derived>
  6890. StmtResult
  6891. TreeTransform<Derived>::TransformOMPAtomicDirective(OMPAtomicDirective *D) {
  6892. DeclarationNameInfo DirName;
  6893. getDerived().getSema().StartOpenMPDSABlock(OMPD_atomic, DirName, nullptr,
  6894. D->getBeginLoc());
  6895. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6896. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6897. return Res;
  6898. }
  6899. template <typename Derived>
  6900. StmtResult
  6901. TreeTransform<Derived>::TransformOMPTargetDirective(OMPTargetDirective *D) {
  6902. DeclarationNameInfo DirName;
  6903. getDerived().getSema().StartOpenMPDSABlock(OMPD_target, DirName, nullptr,
  6904. D->getBeginLoc());
  6905. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6906. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6907. return Res;
  6908. }
  6909. template <typename Derived>
  6910. StmtResult TreeTransform<Derived>::TransformOMPTargetDataDirective(
  6911. OMPTargetDataDirective *D) {
  6912. DeclarationNameInfo DirName;
  6913. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_data, DirName, nullptr,
  6914. D->getBeginLoc());
  6915. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6916. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6917. return Res;
  6918. }
  6919. template <typename Derived>
  6920. StmtResult TreeTransform<Derived>::TransformOMPTargetEnterDataDirective(
  6921. OMPTargetEnterDataDirective *D) {
  6922. DeclarationNameInfo DirName;
  6923. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_enter_data, DirName,
  6924. nullptr, D->getBeginLoc());
  6925. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6926. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6927. return Res;
  6928. }
  6929. template <typename Derived>
  6930. StmtResult TreeTransform<Derived>::TransformOMPTargetExitDataDirective(
  6931. OMPTargetExitDataDirective *D) {
  6932. DeclarationNameInfo DirName;
  6933. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_exit_data, DirName,
  6934. nullptr, D->getBeginLoc());
  6935. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6936. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6937. return Res;
  6938. }
  6939. template <typename Derived>
  6940. StmtResult TreeTransform<Derived>::TransformOMPTargetParallelDirective(
  6941. OMPTargetParallelDirective *D) {
  6942. DeclarationNameInfo DirName;
  6943. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_parallel, DirName,
  6944. nullptr, D->getBeginLoc());
  6945. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6946. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6947. return Res;
  6948. }
  6949. template <typename Derived>
  6950. StmtResult TreeTransform<Derived>::TransformOMPTargetParallelForDirective(
  6951. OMPTargetParallelForDirective *D) {
  6952. DeclarationNameInfo DirName;
  6953. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_parallel_for, DirName,
  6954. nullptr, D->getBeginLoc());
  6955. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6956. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6957. return Res;
  6958. }
  6959. template <typename Derived>
  6960. StmtResult TreeTransform<Derived>::TransformOMPTargetUpdateDirective(
  6961. OMPTargetUpdateDirective *D) {
  6962. DeclarationNameInfo DirName;
  6963. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_update, DirName,
  6964. nullptr, D->getBeginLoc());
  6965. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6966. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6967. return Res;
  6968. }
  6969. template <typename Derived>
  6970. StmtResult
  6971. TreeTransform<Derived>::TransformOMPTeamsDirective(OMPTeamsDirective *D) {
  6972. DeclarationNameInfo DirName;
  6973. getDerived().getSema().StartOpenMPDSABlock(OMPD_teams, DirName, nullptr,
  6974. D->getBeginLoc());
  6975. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6976. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6977. return Res;
  6978. }
  6979. template <typename Derived>
  6980. StmtResult TreeTransform<Derived>::TransformOMPCancellationPointDirective(
  6981. OMPCancellationPointDirective *D) {
  6982. DeclarationNameInfo DirName;
  6983. getDerived().getSema().StartOpenMPDSABlock(OMPD_cancellation_point, DirName,
  6984. nullptr, D->getBeginLoc());
  6985. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6986. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6987. return Res;
  6988. }
  6989. template <typename Derived>
  6990. StmtResult
  6991. TreeTransform<Derived>::TransformOMPCancelDirective(OMPCancelDirective *D) {
  6992. DeclarationNameInfo DirName;
  6993. getDerived().getSema().StartOpenMPDSABlock(OMPD_cancel, DirName, nullptr,
  6994. D->getBeginLoc());
  6995. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  6996. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  6997. return Res;
  6998. }
  6999. template <typename Derived>
  7000. StmtResult
  7001. TreeTransform<Derived>::TransformOMPTaskLoopDirective(OMPTaskLoopDirective *D) {
  7002. DeclarationNameInfo DirName;
  7003. getDerived().getSema().StartOpenMPDSABlock(OMPD_taskloop, DirName, nullptr,
  7004. D->getBeginLoc());
  7005. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7006. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7007. return Res;
  7008. }
  7009. template <typename Derived>
  7010. StmtResult TreeTransform<Derived>::TransformOMPTaskLoopSimdDirective(
  7011. OMPTaskLoopSimdDirective *D) {
  7012. DeclarationNameInfo DirName;
  7013. getDerived().getSema().StartOpenMPDSABlock(OMPD_taskloop_simd, DirName,
  7014. nullptr, D->getBeginLoc());
  7015. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7016. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7017. return Res;
  7018. }
  7019. template <typename Derived>
  7020. StmtResult TreeTransform<Derived>::TransformOMPDistributeDirective(
  7021. OMPDistributeDirective *D) {
  7022. DeclarationNameInfo DirName;
  7023. getDerived().getSema().StartOpenMPDSABlock(OMPD_distribute, DirName, nullptr,
  7024. D->getBeginLoc());
  7025. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7026. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7027. return Res;
  7028. }
  7029. template <typename Derived>
  7030. StmtResult TreeTransform<Derived>::TransformOMPDistributeParallelForDirective(
  7031. OMPDistributeParallelForDirective *D) {
  7032. DeclarationNameInfo DirName;
  7033. getDerived().getSema().StartOpenMPDSABlock(
  7034. OMPD_distribute_parallel_for, DirName, nullptr, D->getBeginLoc());
  7035. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7036. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7037. return Res;
  7038. }
  7039. template <typename Derived>
  7040. StmtResult
  7041. TreeTransform<Derived>::TransformOMPDistributeParallelForSimdDirective(
  7042. OMPDistributeParallelForSimdDirective *D) {
  7043. DeclarationNameInfo DirName;
  7044. getDerived().getSema().StartOpenMPDSABlock(
  7045. OMPD_distribute_parallel_for_simd, DirName, nullptr, D->getBeginLoc());
  7046. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7047. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7048. return Res;
  7049. }
  7050. template <typename Derived>
  7051. StmtResult TreeTransform<Derived>::TransformOMPDistributeSimdDirective(
  7052. OMPDistributeSimdDirective *D) {
  7053. DeclarationNameInfo DirName;
  7054. getDerived().getSema().StartOpenMPDSABlock(OMPD_distribute_simd, DirName,
  7055. nullptr, D->getBeginLoc());
  7056. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7057. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7058. return Res;
  7059. }
  7060. template <typename Derived>
  7061. StmtResult TreeTransform<Derived>::TransformOMPTargetParallelForSimdDirective(
  7062. OMPTargetParallelForSimdDirective *D) {
  7063. DeclarationNameInfo DirName;
  7064. getDerived().getSema().StartOpenMPDSABlock(
  7065. OMPD_target_parallel_for_simd, DirName, nullptr, D->getBeginLoc());
  7066. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7067. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7068. return Res;
  7069. }
  7070. template <typename Derived>
  7071. StmtResult TreeTransform<Derived>::TransformOMPTargetSimdDirective(
  7072. OMPTargetSimdDirective *D) {
  7073. DeclarationNameInfo DirName;
  7074. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_simd, DirName, nullptr,
  7075. D->getBeginLoc());
  7076. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7077. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7078. return Res;
  7079. }
  7080. template <typename Derived>
  7081. StmtResult TreeTransform<Derived>::TransformOMPTeamsDistributeDirective(
  7082. OMPTeamsDistributeDirective *D) {
  7083. DeclarationNameInfo DirName;
  7084. getDerived().getSema().StartOpenMPDSABlock(OMPD_teams_distribute, DirName,
  7085. nullptr, D->getBeginLoc());
  7086. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7087. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7088. return Res;
  7089. }
  7090. template <typename Derived>
  7091. StmtResult TreeTransform<Derived>::TransformOMPTeamsDistributeSimdDirective(
  7092. OMPTeamsDistributeSimdDirective *D) {
  7093. DeclarationNameInfo DirName;
  7094. getDerived().getSema().StartOpenMPDSABlock(
  7095. OMPD_teams_distribute_simd, DirName, nullptr, D->getBeginLoc());
  7096. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7097. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7098. return Res;
  7099. }
  7100. template <typename Derived>
  7101. StmtResult TreeTransform<Derived>::TransformOMPTeamsDistributeParallelForSimdDirective(
  7102. OMPTeamsDistributeParallelForSimdDirective *D) {
  7103. DeclarationNameInfo DirName;
  7104. getDerived().getSema().StartOpenMPDSABlock(
  7105. OMPD_teams_distribute_parallel_for_simd, DirName, nullptr,
  7106. D->getBeginLoc());
  7107. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7108. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7109. return Res;
  7110. }
  7111. template <typename Derived>
  7112. StmtResult TreeTransform<Derived>::TransformOMPTeamsDistributeParallelForDirective(
  7113. OMPTeamsDistributeParallelForDirective *D) {
  7114. DeclarationNameInfo DirName;
  7115. getDerived().getSema().StartOpenMPDSABlock(
  7116. OMPD_teams_distribute_parallel_for, DirName, nullptr, D->getBeginLoc());
  7117. StmtResult Res = getDerived().TransformOMPExecutableDirective(D);
  7118. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7119. return Res;
  7120. }
  7121. template <typename Derived>
  7122. StmtResult TreeTransform<Derived>::TransformOMPTargetTeamsDirective(
  7123. OMPTargetTeamsDirective *D) {
  7124. DeclarationNameInfo DirName;
  7125. getDerived().getSema().StartOpenMPDSABlock(OMPD_target_teams, DirName,
  7126. nullptr, D->getBeginLoc());
  7127. auto Res = getDerived().TransformOMPExecutableDirective(D);
  7128. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7129. return Res;
  7130. }
  7131. template <typename Derived>
  7132. StmtResult TreeTransform<Derived>::TransformOMPTargetTeamsDistributeDirective(
  7133. OMPTargetTeamsDistributeDirective *D) {
  7134. DeclarationNameInfo DirName;
  7135. getDerived().getSema().StartOpenMPDSABlock(
  7136. OMPD_target_teams_distribute, DirName, nullptr, D->getBeginLoc());
  7137. auto Res = getDerived().TransformOMPExecutableDirective(D);
  7138. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7139. return Res;
  7140. }
  7141. template <typename Derived>
  7142. StmtResult
  7143. TreeTransform<Derived>::TransformOMPTargetTeamsDistributeParallelForDirective(
  7144. OMPTargetTeamsDistributeParallelForDirective *D) {
  7145. DeclarationNameInfo DirName;
  7146. getDerived().getSema().StartOpenMPDSABlock(
  7147. OMPD_target_teams_distribute_parallel_for, DirName, nullptr,
  7148. D->getBeginLoc());
  7149. auto Res = getDerived().TransformOMPExecutableDirective(D);
  7150. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7151. return Res;
  7152. }
  7153. template <typename Derived>
  7154. StmtResult TreeTransform<Derived>::
  7155. TransformOMPTargetTeamsDistributeParallelForSimdDirective(
  7156. OMPTargetTeamsDistributeParallelForSimdDirective *D) {
  7157. DeclarationNameInfo DirName;
  7158. getDerived().getSema().StartOpenMPDSABlock(
  7159. OMPD_target_teams_distribute_parallel_for_simd, DirName, nullptr,
  7160. D->getBeginLoc());
  7161. auto Res = getDerived().TransformOMPExecutableDirective(D);
  7162. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7163. return Res;
  7164. }
  7165. template <typename Derived>
  7166. StmtResult
  7167. TreeTransform<Derived>::TransformOMPTargetTeamsDistributeSimdDirective(
  7168. OMPTargetTeamsDistributeSimdDirective *D) {
  7169. DeclarationNameInfo DirName;
  7170. getDerived().getSema().StartOpenMPDSABlock(
  7171. OMPD_target_teams_distribute_simd, DirName, nullptr, D->getBeginLoc());
  7172. auto Res = getDerived().TransformOMPExecutableDirective(D);
  7173. getDerived().getSema().EndOpenMPDSABlock(Res.get());
  7174. return Res;
  7175. }
  7176. //===----------------------------------------------------------------------===//
  7177. // OpenMP clause transformation
  7178. //===----------------------------------------------------------------------===//
  7179. template <typename Derived>
  7180. OMPClause *TreeTransform<Derived>::TransformOMPIfClause(OMPIfClause *C) {
  7181. ExprResult Cond = getDerived().TransformExpr(C->getCondition());
  7182. if (Cond.isInvalid())
  7183. return nullptr;
  7184. return getDerived().RebuildOMPIfClause(
  7185. C->getNameModifier(), Cond.get(), C->getBeginLoc(), C->getLParenLoc(),
  7186. C->getNameModifierLoc(), C->getColonLoc(), C->getEndLoc());
  7187. }
  7188. template <typename Derived>
  7189. OMPClause *TreeTransform<Derived>::TransformOMPFinalClause(OMPFinalClause *C) {
  7190. ExprResult Cond = getDerived().TransformExpr(C->getCondition());
  7191. if (Cond.isInvalid())
  7192. return nullptr;
  7193. return getDerived().RebuildOMPFinalClause(Cond.get(), C->getBeginLoc(),
  7194. C->getLParenLoc(), C->getEndLoc());
  7195. }
  7196. template <typename Derived>
  7197. OMPClause *
  7198. TreeTransform<Derived>::TransformOMPNumThreadsClause(OMPNumThreadsClause *C) {
  7199. ExprResult NumThreads = getDerived().TransformExpr(C->getNumThreads());
  7200. if (NumThreads.isInvalid())
  7201. return nullptr;
  7202. return getDerived().RebuildOMPNumThreadsClause(
  7203. NumThreads.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7204. }
  7205. template <typename Derived>
  7206. OMPClause *
  7207. TreeTransform<Derived>::TransformOMPSafelenClause(OMPSafelenClause *C) {
  7208. ExprResult E = getDerived().TransformExpr(C->getSafelen());
  7209. if (E.isInvalid())
  7210. return nullptr;
  7211. return getDerived().RebuildOMPSafelenClause(
  7212. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7213. }
  7214. template <typename Derived>
  7215. OMPClause *
  7216. TreeTransform<Derived>::TransformOMPSimdlenClause(OMPSimdlenClause *C) {
  7217. ExprResult E = getDerived().TransformExpr(C->getSimdlen());
  7218. if (E.isInvalid())
  7219. return nullptr;
  7220. return getDerived().RebuildOMPSimdlenClause(
  7221. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7222. }
  7223. template <typename Derived>
  7224. OMPClause *
  7225. TreeTransform<Derived>::TransformOMPCollapseClause(OMPCollapseClause *C) {
  7226. ExprResult E = getDerived().TransformExpr(C->getNumForLoops());
  7227. if (E.isInvalid())
  7228. return nullptr;
  7229. return getDerived().RebuildOMPCollapseClause(
  7230. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7231. }
  7232. template <typename Derived>
  7233. OMPClause *
  7234. TreeTransform<Derived>::TransformOMPDefaultClause(OMPDefaultClause *C) {
  7235. return getDerived().RebuildOMPDefaultClause(
  7236. C->getDefaultKind(), C->getDefaultKindKwLoc(), C->getBeginLoc(),
  7237. C->getLParenLoc(), C->getEndLoc());
  7238. }
  7239. template <typename Derived>
  7240. OMPClause *
  7241. TreeTransform<Derived>::TransformOMPProcBindClause(OMPProcBindClause *C) {
  7242. return getDerived().RebuildOMPProcBindClause(
  7243. C->getProcBindKind(), C->getProcBindKindKwLoc(), C->getBeginLoc(),
  7244. C->getLParenLoc(), C->getEndLoc());
  7245. }
  7246. template <typename Derived>
  7247. OMPClause *
  7248. TreeTransform<Derived>::TransformOMPScheduleClause(OMPScheduleClause *C) {
  7249. ExprResult E = getDerived().TransformExpr(C->getChunkSize());
  7250. if (E.isInvalid())
  7251. return nullptr;
  7252. return getDerived().RebuildOMPScheduleClause(
  7253. C->getFirstScheduleModifier(), C->getSecondScheduleModifier(),
  7254. C->getScheduleKind(), E.get(), C->getBeginLoc(), C->getLParenLoc(),
  7255. C->getFirstScheduleModifierLoc(), C->getSecondScheduleModifierLoc(),
  7256. C->getScheduleKindLoc(), C->getCommaLoc(), C->getEndLoc());
  7257. }
  7258. template <typename Derived>
  7259. OMPClause *
  7260. TreeTransform<Derived>::TransformOMPOrderedClause(OMPOrderedClause *C) {
  7261. ExprResult E;
  7262. if (auto *Num = C->getNumForLoops()) {
  7263. E = getDerived().TransformExpr(Num);
  7264. if (E.isInvalid())
  7265. return nullptr;
  7266. }
  7267. return getDerived().RebuildOMPOrderedClause(C->getBeginLoc(), C->getEndLoc(),
  7268. C->getLParenLoc(), E.get());
  7269. }
  7270. template <typename Derived>
  7271. OMPClause *
  7272. TreeTransform<Derived>::TransformOMPNowaitClause(OMPNowaitClause *C) {
  7273. // No need to rebuild this clause, no template-dependent parameters.
  7274. return C;
  7275. }
  7276. template <typename Derived>
  7277. OMPClause *
  7278. TreeTransform<Derived>::TransformOMPUntiedClause(OMPUntiedClause *C) {
  7279. // No need to rebuild this clause, no template-dependent parameters.
  7280. return C;
  7281. }
  7282. template <typename Derived>
  7283. OMPClause *
  7284. TreeTransform<Derived>::TransformOMPMergeableClause(OMPMergeableClause *C) {
  7285. // No need to rebuild this clause, no template-dependent parameters.
  7286. return C;
  7287. }
  7288. template <typename Derived>
  7289. OMPClause *TreeTransform<Derived>::TransformOMPReadClause(OMPReadClause *C) {
  7290. // No need to rebuild this clause, no template-dependent parameters.
  7291. return C;
  7292. }
  7293. template <typename Derived>
  7294. OMPClause *TreeTransform<Derived>::TransformOMPWriteClause(OMPWriteClause *C) {
  7295. // No need to rebuild this clause, no template-dependent parameters.
  7296. return C;
  7297. }
  7298. template <typename Derived>
  7299. OMPClause *
  7300. TreeTransform<Derived>::TransformOMPUpdateClause(OMPUpdateClause *C) {
  7301. // No need to rebuild this clause, no template-dependent parameters.
  7302. return C;
  7303. }
  7304. template <typename Derived>
  7305. OMPClause *
  7306. TreeTransform<Derived>::TransformOMPCaptureClause(OMPCaptureClause *C) {
  7307. // No need to rebuild this clause, no template-dependent parameters.
  7308. return C;
  7309. }
  7310. template <typename Derived>
  7311. OMPClause *
  7312. TreeTransform<Derived>::TransformOMPSeqCstClause(OMPSeqCstClause *C) {
  7313. // No need to rebuild this clause, no template-dependent parameters.
  7314. return C;
  7315. }
  7316. template <typename Derived>
  7317. OMPClause *
  7318. TreeTransform<Derived>::TransformOMPThreadsClause(OMPThreadsClause *C) {
  7319. // No need to rebuild this clause, no template-dependent parameters.
  7320. return C;
  7321. }
  7322. template <typename Derived>
  7323. OMPClause *TreeTransform<Derived>::TransformOMPSIMDClause(OMPSIMDClause *C) {
  7324. // No need to rebuild this clause, no template-dependent parameters.
  7325. return C;
  7326. }
  7327. template <typename Derived>
  7328. OMPClause *
  7329. TreeTransform<Derived>::TransformOMPNogroupClause(OMPNogroupClause *C) {
  7330. // No need to rebuild this clause, no template-dependent parameters.
  7331. return C;
  7332. }
  7333. template <typename Derived>
  7334. OMPClause *TreeTransform<Derived>::TransformOMPUnifiedAddressClause(
  7335. OMPUnifiedAddressClause *C) {
  7336. llvm_unreachable("unified_address clause cannot appear in dependent context");
  7337. }
  7338. template <typename Derived>
  7339. OMPClause *TreeTransform<Derived>::TransformOMPUnifiedSharedMemoryClause(
  7340. OMPUnifiedSharedMemoryClause *C) {
  7341. llvm_unreachable(
  7342. "unified_shared_memory clause cannot appear in dependent context");
  7343. }
  7344. template <typename Derived>
  7345. OMPClause *
  7346. TreeTransform<Derived>::TransformOMPPrivateClause(OMPPrivateClause *C) {
  7347. llvm::SmallVector<Expr *, 16> Vars;
  7348. Vars.reserve(C->varlist_size());
  7349. for (auto *VE : C->varlists()) {
  7350. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7351. if (EVar.isInvalid())
  7352. return nullptr;
  7353. Vars.push_back(EVar.get());
  7354. }
  7355. return getDerived().RebuildOMPPrivateClause(
  7356. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7357. }
  7358. template <typename Derived>
  7359. OMPClause *TreeTransform<Derived>::TransformOMPFirstprivateClause(
  7360. OMPFirstprivateClause *C) {
  7361. llvm::SmallVector<Expr *, 16> Vars;
  7362. Vars.reserve(C->varlist_size());
  7363. for (auto *VE : C->varlists()) {
  7364. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7365. if (EVar.isInvalid())
  7366. return nullptr;
  7367. Vars.push_back(EVar.get());
  7368. }
  7369. return getDerived().RebuildOMPFirstprivateClause(
  7370. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7371. }
  7372. template <typename Derived>
  7373. OMPClause *
  7374. TreeTransform<Derived>::TransformOMPLastprivateClause(OMPLastprivateClause *C) {
  7375. llvm::SmallVector<Expr *, 16> Vars;
  7376. Vars.reserve(C->varlist_size());
  7377. for (auto *VE : C->varlists()) {
  7378. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7379. if (EVar.isInvalid())
  7380. return nullptr;
  7381. Vars.push_back(EVar.get());
  7382. }
  7383. return getDerived().RebuildOMPLastprivateClause(
  7384. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7385. }
  7386. template <typename Derived>
  7387. OMPClause *
  7388. TreeTransform<Derived>::TransformOMPSharedClause(OMPSharedClause *C) {
  7389. llvm::SmallVector<Expr *, 16> Vars;
  7390. Vars.reserve(C->varlist_size());
  7391. for (auto *VE : C->varlists()) {
  7392. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7393. if (EVar.isInvalid())
  7394. return nullptr;
  7395. Vars.push_back(EVar.get());
  7396. }
  7397. return getDerived().RebuildOMPSharedClause(Vars, C->getBeginLoc(),
  7398. C->getLParenLoc(), C->getEndLoc());
  7399. }
  7400. template <typename Derived>
  7401. OMPClause *
  7402. TreeTransform<Derived>::TransformOMPReductionClause(OMPReductionClause *C) {
  7403. llvm::SmallVector<Expr *, 16> Vars;
  7404. Vars.reserve(C->varlist_size());
  7405. for (auto *VE : C->varlists()) {
  7406. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7407. if (EVar.isInvalid())
  7408. return nullptr;
  7409. Vars.push_back(EVar.get());
  7410. }
  7411. CXXScopeSpec ReductionIdScopeSpec;
  7412. ReductionIdScopeSpec.Adopt(C->getQualifierLoc());
  7413. DeclarationNameInfo NameInfo = C->getNameInfo();
  7414. if (NameInfo.getName()) {
  7415. NameInfo = getDerived().TransformDeclarationNameInfo(NameInfo);
  7416. if (!NameInfo.getName())
  7417. return nullptr;
  7418. }
  7419. // Build a list of all UDR decls with the same names ranged by the Scopes.
  7420. // The Scope boundary is a duplication of the previous decl.
  7421. llvm::SmallVector<Expr *, 16> UnresolvedReductions;
  7422. for (auto *E : C->reduction_ops()) {
  7423. // Transform all the decls.
  7424. if (E) {
  7425. auto *ULE = cast<UnresolvedLookupExpr>(E);
  7426. UnresolvedSet<8> Decls;
  7427. for (auto *D : ULE->decls()) {
  7428. NamedDecl *InstD =
  7429. cast<NamedDecl>(getDerived().TransformDecl(E->getExprLoc(), D));
  7430. Decls.addDecl(InstD, InstD->getAccess());
  7431. }
  7432. UnresolvedReductions.push_back(
  7433. UnresolvedLookupExpr::Create(
  7434. SemaRef.Context, /*NamingClass=*/nullptr,
  7435. ReductionIdScopeSpec.getWithLocInContext(SemaRef.Context),
  7436. NameInfo, /*ADL=*/true, ULE->isOverloaded(),
  7437. Decls.begin(), Decls.end()));
  7438. } else
  7439. UnresolvedReductions.push_back(nullptr);
  7440. }
  7441. return getDerived().RebuildOMPReductionClause(
  7442. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getColonLoc(),
  7443. C->getEndLoc(), ReductionIdScopeSpec, NameInfo, UnresolvedReductions);
  7444. }
  7445. template <typename Derived>
  7446. OMPClause *TreeTransform<Derived>::TransformOMPTaskReductionClause(
  7447. OMPTaskReductionClause *C) {
  7448. llvm::SmallVector<Expr *, 16> Vars;
  7449. Vars.reserve(C->varlist_size());
  7450. for (auto *VE : C->varlists()) {
  7451. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7452. if (EVar.isInvalid())
  7453. return nullptr;
  7454. Vars.push_back(EVar.get());
  7455. }
  7456. CXXScopeSpec ReductionIdScopeSpec;
  7457. ReductionIdScopeSpec.Adopt(C->getQualifierLoc());
  7458. DeclarationNameInfo NameInfo = C->getNameInfo();
  7459. if (NameInfo.getName()) {
  7460. NameInfo = getDerived().TransformDeclarationNameInfo(NameInfo);
  7461. if (!NameInfo.getName())
  7462. return nullptr;
  7463. }
  7464. // Build a list of all UDR decls with the same names ranged by the Scopes.
  7465. // The Scope boundary is a duplication of the previous decl.
  7466. llvm::SmallVector<Expr *, 16> UnresolvedReductions;
  7467. for (auto *E : C->reduction_ops()) {
  7468. // Transform all the decls.
  7469. if (E) {
  7470. auto *ULE = cast<UnresolvedLookupExpr>(E);
  7471. UnresolvedSet<8> Decls;
  7472. for (auto *D : ULE->decls()) {
  7473. NamedDecl *InstD =
  7474. cast<NamedDecl>(getDerived().TransformDecl(E->getExprLoc(), D));
  7475. Decls.addDecl(InstD, InstD->getAccess());
  7476. }
  7477. UnresolvedReductions.push_back(UnresolvedLookupExpr::Create(
  7478. SemaRef.Context, /*NamingClass=*/nullptr,
  7479. ReductionIdScopeSpec.getWithLocInContext(SemaRef.Context), NameInfo,
  7480. /*ADL=*/true, ULE->isOverloaded(), Decls.begin(), Decls.end()));
  7481. } else
  7482. UnresolvedReductions.push_back(nullptr);
  7483. }
  7484. return getDerived().RebuildOMPTaskReductionClause(
  7485. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getColonLoc(),
  7486. C->getEndLoc(), ReductionIdScopeSpec, NameInfo, UnresolvedReductions);
  7487. }
  7488. template <typename Derived>
  7489. OMPClause *
  7490. TreeTransform<Derived>::TransformOMPInReductionClause(OMPInReductionClause *C) {
  7491. llvm::SmallVector<Expr *, 16> Vars;
  7492. Vars.reserve(C->varlist_size());
  7493. for (auto *VE : C->varlists()) {
  7494. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7495. if (EVar.isInvalid())
  7496. return nullptr;
  7497. Vars.push_back(EVar.get());
  7498. }
  7499. CXXScopeSpec ReductionIdScopeSpec;
  7500. ReductionIdScopeSpec.Adopt(C->getQualifierLoc());
  7501. DeclarationNameInfo NameInfo = C->getNameInfo();
  7502. if (NameInfo.getName()) {
  7503. NameInfo = getDerived().TransformDeclarationNameInfo(NameInfo);
  7504. if (!NameInfo.getName())
  7505. return nullptr;
  7506. }
  7507. // Build a list of all UDR decls with the same names ranged by the Scopes.
  7508. // The Scope boundary is a duplication of the previous decl.
  7509. llvm::SmallVector<Expr *, 16> UnresolvedReductions;
  7510. for (auto *E : C->reduction_ops()) {
  7511. // Transform all the decls.
  7512. if (E) {
  7513. auto *ULE = cast<UnresolvedLookupExpr>(E);
  7514. UnresolvedSet<8> Decls;
  7515. for (auto *D : ULE->decls()) {
  7516. NamedDecl *InstD =
  7517. cast<NamedDecl>(getDerived().TransformDecl(E->getExprLoc(), D));
  7518. Decls.addDecl(InstD, InstD->getAccess());
  7519. }
  7520. UnresolvedReductions.push_back(UnresolvedLookupExpr::Create(
  7521. SemaRef.Context, /*NamingClass=*/nullptr,
  7522. ReductionIdScopeSpec.getWithLocInContext(SemaRef.Context), NameInfo,
  7523. /*ADL=*/true, ULE->isOverloaded(), Decls.begin(), Decls.end()));
  7524. } else
  7525. UnresolvedReductions.push_back(nullptr);
  7526. }
  7527. return getDerived().RebuildOMPInReductionClause(
  7528. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getColonLoc(),
  7529. C->getEndLoc(), ReductionIdScopeSpec, NameInfo, UnresolvedReductions);
  7530. }
  7531. template <typename Derived>
  7532. OMPClause *
  7533. TreeTransform<Derived>::TransformOMPLinearClause(OMPLinearClause *C) {
  7534. llvm::SmallVector<Expr *, 16> Vars;
  7535. Vars.reserve(C->varlist_size());
  7536. for (auto *VE : C->varlists()) {
  7537. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7538. if (EVar.isInvalid())
  7539. return nullptr;
  7540. Vars.push_back(EVar.get());
  7541. }
  7542. ExprResult Step = getDerived().TransformExpr(C->getStep());
  7543. if (Step.isInvalid())
  7544. return nullptr;
  7545. return getDerived().RebuildOMPLinearClause(
  7546. Vars, Step.get(), C->getBeginLoc(), C->getLParenLoc(), C->getModifier(),
  7547. C->getModifierLoc(), C->getColonLoc(), C->getEndLoc());
  7548. }
  7549. template <typename Derived>
  7550. OMPClause *
  7551. TreeTransform<Derived>::TransformOMPAlignedClause(OMPAlignedClause *C) {
  7552. llvm::SmallVector<Expr *, 16> Vars;
  7553. Vars.reserve(C->varlist_size());
  7554. for (auto *VE : C->varlists()) {
  7555. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7556. if (EVar.isInvalid())
  7557. return nullptr;
  7558. Vars.push_back(EVar.get());
  7559. }
  7560. ExprResult Alignment = getDerived().TransformExpr(C->getAlignment());
  7561. if (Alignment.isInvalid())
  7562. return nullptr;
  7563. return getDerived().RebuildOMPAlignedClause(
  7564. Vars, Alignment.get(), C->getBeginLoc(), C->getLParenLoc(),
  7565. C->getColonLoc(), C->getEndLoc());
  7566. }
  7567. template <typename Derived>
  7568. OMPClause *
  7569. TreeTransform<Derived>::TransformOMPCopyinClause(OMPCopyinClause *C) {
  7570. llvm::SmallVector<Expr *, 16> Vars;
  7571. Vars.reserve(C->varlist_size());
  7572. for (auto *VE : C->varlists()) {
  7573. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7574. if (EVar.isInvalid())
  7575. return nullptr;
  7576. Vars.push_back(EVar.get());
  7577. }
  7578. return getDerived().RebuildOMPCopyinClause(Vars, C->getBeginLoc(),
  7579. C->getLParenLoc(), C->getEndLoc());
  7580. }
  7581. template <typename Derived>
  7582. OMPClause *
  7583. TreeTransform<Derived>::TransformOMPCopyprivateClause(OMPCopyprivateClause *C) {
  7584. llvm::SmallVector<Expr *, 16> Vars;
  7585. Vars.reserve(C->varlist_size());
  7586. for (auto *VE : C->varlists()) {
  7587. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7588. if (EVar.isInvalid())
  7589. return nullptr;
  7590. Vars.push_back(EVar.get());
  7591. }
  7592. return getDerived().RebuildOMPCopyprivateClause(
  7593. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7594. }
  7595. template <typename Derived>
  7596. OMPClause *TreeTransform<Derived>::TransformOMPFlushClause(OMPFlushClause *C) {
  7597. llvm::SmallVector<Expr *, 16> Vars;
  7598. Vars.reserve(C->varlist_size());
  7599. for (auto *VE : C->varlists()) {
  7600. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7601. if (EVar.isInvalid())
  7602. return nullptr;
  7603. Vars.push_back(EVar.get());
  7604. }
  7605. return getDerived().RebuildOMPFlushClause(Vars, C->getBeginLoc(),
  7606. C->getLParenLoc(), C->getEndLoc());
  7607. }
  7608. template <typename Derived>
  7609. OMPClause *
  7610. TreeTransform<Derived>::TransformOMPDependClause(OMPDependClause *C) {
  7611. llvm::SmallVector<Expr *, 16> Vars;
  7612. Vars.reserve(C->varlist_size());
  7613. for (auto *VE : C->varlists()) {
  7614. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7615. if (EVar.isInvalid())
  7616. return nullptr;
  7617. Vars.push_back(EVar.get());
  7618. }
  7619. return getDerived().RebuildOMPDependClause(
  7620. C->getDependencyKind(), C->getDependencyLoc(), C->getColonLoc(), Vars,
  7621. C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7622. }
  7623. template <typename Derived>
  7624. OMPClause *
  7625. TreeTransform<Derived>::TransformOMPDeviceClause(OMPDeviceClause *C) {
  7626. ExprResult E = getDerived().TransformExpr(C->getDevice());
  7627. if (E.isInvalid())
  7628. return nullptr;
  7629. return getDerived().RebuildOMPDeviceClause(E.get(), C->getBeginLoc(),
  7630. C->getLParenLoc(), C->getEndLoc());
  7631. }
  7632. template <typename Derived>
  7633. OMPClause *TreeTransform<Derived>::TransformOMPMapClause(OMPMapClause *C) {
  7634. llvm::SmallVector<Expr *, 16> Vars;
  7635. Vars.reserve(C->varlist_size());
  7636. for (auto *VE : C->varlists()) {
  7637. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7638. if (EVar.isInvalid())
  7639. return nullptr;
  7640. Vars.push_back(EVar.get());
  7641. }
  7642. return getDerived().RebuildOMPMapClause(
  7643. C->getMapTypeModifier(), C->getMapType(), C->isImplicitMapType(),
  7644. C->getMapLoc(), C->getColonLoc(), Vars, C->getBeginLoc(),
  7645. C->getLParenLoc(), C->getEndLoc());
  7646. }
  7647. template <typename Derived>
  7648. OMPClause *
  7649. TreeTransform<Derived>::TransformOMPNumTeamsClause(OMPNumTeamsClause *C) {
  7650. ExprResult E = getDerived().TransformExpr(C->getNumTeams());
  7651. if (E.isInvalid())
  7652. return nullptr;
  7653. return getDerived().RebuildOMPNumTeamsClause(
  7654. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7655. }
  7656. template <typename Derived>
  7657. OMPClause *
  7658. TreeTransform<Derived>::TransformOMPThreadLimitClause(OMPThreadLimitClause *C) {
  7659. ExprResult E = getDerived().TransformExpr(C->getThreadLimit());
  7660. if (E.isInvalid())
  7661. return nullptr;
  7662. return getDerived().RebuildOMPThreadLimitClause(
  7663. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7664. }
  7665. template <typename Derived>
  7666. OMPClause *
  7667. TreeTransform<Derived>::TransformOMPPriorityClause(OMPPriorityClause *C) {
  7668. ExprResult E = getDerived().TransformExpr(C->getPriority());
  7669. if (E.isInvalid())
  7670. return nullptr;
  7671. return getDerived().RebuildOMPPriorityClause(
  7672. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7673. }
  7674. template <typename Derived>
  7675. OMPClause *
  7676. TreeTransform<Derived>::TransformOMPGrainsizeClause(OMPGrainsizeClause *C) {
  7677. ExprResult E = getDerived().TransformExpr(C->getGrainsize());
  7678. if (E.isInvalid())
  7679. return nullptr;
  7680. return getDerived().RebuildOMPGrainsizeClause(
  7681. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7682. }
  7683. template <typename Derived>
  7684. OMPClause *
  7685. TreeTransform<Derived>::TransformOMPNumTasksClause(OMPNumTasksClause *C) {
  7686. ExprResult E = getDerived().TransformExpr(C->getNumTasks());
  7687. if (E.isInvalid())
  7688. return nullptr;
  7689. return getDerived().RebuildOMPNumTasksClause(
  7690. E.get(), C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7691. }
  7692. template <typename Derived>
  7693. OMPClause *TreeTransform<Derived>::TransformOMPHintClause(OMPHintClause *C) {
  7694. ExprResult E = getDerived().TransformExpr(C->getHint());
  7695. if (E.isInvalid())
  7696. return nullptr;
  7697. return getDerived().RebuildOMPHintClause(E.get(), C->getBeginLoc(),
  7698. C->getLParenLoc(), C->getEndLoc());
  7699. }
  7700. template <typename Derived>
  7701. OMPClause *TreeTransform<Derived>::TransformOMPDistScheduleClause(
  7702. OMPDistScheduleClause *C) {
  7703. ExprResult E = getDerived().TransformExpr(C->getChunkSize());
  7704. if (E.isInvalid())
  7705. return nullptr;
  7706. return getDerived().RebuildOMPDistScheduleClause(
  7707. C->getDistScheduleKind(), E.get(), C->getBeginLoc(), C->getLParenLoc(),
  7708. C->getDistScheduleKindLoc(), C->getCommaLoc(), C->getEndLoc());
  7709. }
  7710. template <typename Derived>
  7711. OMPClause *
  7712. TreeTransform<Derived>::TransformOMPDefaultmapClause(OMPDefaultmapClause *C) {
  7713. return C;
  7714. }
  7715. template <typename Derived>
  7716. OMPClause *TreeTransform<Derived>::TransformOMPToClause(OMPToClause *C) {
  7717. llvm::SmallVector<Expr *, 16> Vars;
  7718. Vars.reserve(C->varlist_size());
  7719. for (auto *VE : C->varlists()) {
  7720. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7721. if (EVar.isInvalid())
  7722. return 0;
  7723. Vars.push_back(EVar.get());
  7724. }
  7725. return getDerived().RebuildOMPToClause(Vars, C->getBeginLoc(),
  7726. C->getLParenLoc(), C->getEndLoc());
  7727. }
  7728. template <typename Derived>
  7729. OMPClause *TreeTransform<Derived>::TransformOMPFromClause(OMPFromClause *C) {
  7730. llvm::SmallVector<Expr *, 16> Vars;
  7731. Vars.reserve(C->varlist_size());
  7732. for (auto *VE : C->varlists()) {
  7733. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7734. if (EVar.isInvalid())
  7735. return 0;
  7736. Vars.push_back(EVar.get());
  7737. }
  7738. return getDerived().RebuildOMPFromClause(Vars, C->getBeginLoc(),
  7739. C->getLParenLoc(), C->getEndLoc());
  7740. }
  7741. template <typename Derived>
  7742. OMPClause *TreeTransform<Derived>::TransformOMPUseDevicePtrClause(
  7743. OMPUseDevicePtrClause *C) {
  7744. llvm::SmallVector<Expr *, 16> Vars;
  7745. Vars.reserve(C->varlist_size());
  7746. for (auto *VE : C->varlists()) {
  7747. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7748. if (EVar.isInvalid())
  7749. return nullptr;
  7750. Vars.push_back(EVar.get());
  7751. }
  7752. return getDerived().RebuildOMPUseDevicePtrClause(
  7753. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7754. }
  7755. template <typename Derived>
  7756. OMPClause *
  7757. TreeTransform<Derived>::TransformOMPIsDevicePtrClause(OMPIsDevicePtrClause *C) {
  7758. llvm::SmallVector<Expr *, 16> Vars;
  7759. Vars.reserve(C->varlist_size());
  7760. for (auto *VE : C->varlists()) {
  7761. ExprResult EVar = getDerived().TransformExpr(cast<Expr>(VE));
  7762. if (EVar.isInvalid())
  7763. return nullptr;
  7764. Vars.push_back(EVar.get());
  7765. }
  7766. return getDerived().RebuildOMPIsDevicePtrClause(
  7767. Vars, C->getBeginLoc(), C->getLParenLoc(), C->getEndLoc());
  7768. }
  7769. //===----------------------------------------------------------------------===//
  7770. // Expression transformation
  7771. //===----------------------------------------------------------------------===//
  7772. template<typename Derived>
  7773. ExprResult
  7774. TreeTransform<Derived>::TransformPredefinedExpr(PredefinedExpr *E) {
  7775. if (!E->isTypeDependent())
  7776. return E;
  7777. return getDerived().RebuildPredefinedExpr(E->getLocation(),
  7778. E->getIdentType());
  7779. }
  7780. template<typename Derived>
  7781. ExprResult
  7782. TreeTransform<Derived>::TransformDeclRefExpr(DeclRefExpr *E) {
  7783. NestedNameSpecifierLoc QualifierLoc;
  7784. if (E->getQualifierLoc()) {
  7785. QualifierLoc
  7786. = getDerived().TransformNestedNameSpecifierLoc(E->getQualifierLoc());
  7787. if (!QualifierLoc)
  7788. return ExprError();
  7789. }
  7790. ValueDecl *ND
  7791. = cast_or_null<ValueDecl>(getDerived().TransformDecl(E->getLocation(),
  7792. E->getDecl()));
  7793. if (!ND)
  7794. return ExprError();
  7795. DeclarationNameInfo NameInfo = E->getNameInfo();
  7796. if (NameInfo.getName()) {
  7797. NameInfo = getDerived().TransformDeclarationNameInfo(NameInfo);
  7798. if (!NameInfo.getName())
  7799. return ExprError();
  7800. }
  7801. if (!getDerived().AlwaysRebuild() &&
  7802. QualifierLoc == E->getQualifierLoc() &&
  7803. ND == E->getDecl() &&
  7804. NameInfo.getName() == E->getDecl()->getDeclName() &&
  7805. !E->hasExplicitTemplateArgs()) {
  7806. // Mark it referenced in the new context regardless.
  7807. // FIXME: this is a bit instantiation-specific.
  7808. SemaRef.MarkDeclRefReferenced(E);
  7809. return E;
  7810. }
  7811. TemplateArgumentListInfo TransArgs, *TemplateArgs = nullptr;
  7812. if (E->hasExplicitTemplateArgs()) {
  7813. TemplateArgs = &TransArgs;
  7814. TransArgs.setLAngleLoc(E->getLAngleLoc());
  7815. TransArgs.setRAngleLoc(E->getRAngleLoc());
  7816. if (getDerived().TransformTemplateArguments(E->getTemplateArgs(),
  7817. E->getNumTemplateArgs(),
  7818. TransArgs))
  7819. return ExprError();
  7820. }
  7821. return getDerived().RebuildDeclRefExpr(QualifierLoc, ND, NameInfo,
  7822. TemplateArgs);
  7823. }
  7824. template<typename Derived>
  7825. ExprResult
  7826. TreeTransform<Derived>::TransformIntegerLiteral(IntegerLiteral *E) {
  7827. return E;
  7828. }
  7829. template <typename Derived>
  7830. ExprResult TreeTransform<Derived>::TransformFixedPointLiteral(
  7831. FixedPointLiteral *E) {
  7832. return E;
  7833. }
  7834. template<typename Derived>
  7835. ExprResult
  7836. TreeTransform<Derived>::TransformFloatingLiteral(FloatingLiteral *E) {
  7837. return E;
  7838. }
  7839. template<typename Derived>
  7840. ExprResult
  7841. TreeTransform<Derived>::TransformImaginaryLiteral(ImaginaryLiteral *E) {
  7842. return E;
  7843. }
  7844. template<typename Derived>
  7845. ExprResult
  7846. TreeTransform<Derived>::TransformStringLiteral(StringLiteral *E) {
  7847. return E;
  7848. }
  7849. template<typename Derived>
  7850. ExprResult
  7851. TreeTransform<Derived>::TransformCharacterLiteral(CharacterLiteral *E) {
  7852. return E;
  7853. }
  7854. template<typename Derived>
  7855. ExprResult
  7856. TreeTransform<Derived>::TransformUserDefinedLiteral(UserDefinedLiteral *E) {
  7857. if (FunctionDecl *FD = E->getDirectCallee())
  7858. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), FD);
  7859. return SemaRef.MaybeBindToTemporary(E);
  7860. }
  7861. template<typename Derived>
  7862. ExprResult
  7863. TreeTransform<Derived>::TransformGenericSelectionExpr(GenericSelectionExpr *E) {
  7864. ExprResult ControllingExpr =
  7865. getDerived().TransformExpr(E->getControllingExpr());
  7866. if (ControllingExpr.isInvalid())
  7867. return ExprError();
  7868. SmallVector<Expr *, 4> AssocExprs;
  7869. SmallVector<TypeSourceInfo *, 4> AssocTypes;
  7870. for (unsigned i = 0; i != E->getNumAssocs(); ++i) {
  7871. TypeSourceInfo *TS = E->getAssocTypeSourceInfo(i);
  7872. if (TS) {
  7873. TypeSourceInfo *AssocType = getDerived().TransformType(TS);
  7874. if (!AssocType)
  7875. return ExprError();
  7876. AssocTypes.push_back(AssocType);
  7877. } else {
  7878. AssocTypes.push_back(nullptr);
  7879. }
  7880. ExprResult AssocExpr = getDerived().TransformExpr(E->getAssocExpr(i));
  7881. if (AssocExpr.isInvalid())
  7882. return ExprError();
  7883. AssocExprs.push_back(AssocExpr.get());
  7884. }
  7885. return getDerived().RebuildGenericSelectionExpr(E->getGenericLoc(),
  7886. E->getDefaultLoc(),
  7887. E->getRParenLoc(),
  7888. ControllingExpr.get(),
  7889. AssocTypes,
  7890. AssocExprs);
  7891. }
  7892. template<typename Derived>
  7893. ExprResult
  7894. TreeTransform<Derived>::TransformParenExpr(ParenExpr *E) {
  7895. ExprResult SubExpr = getDerived().TransformExpr(E->getSubExpr());
  7896. if (SubExpr.isInvalid())
  7897. return ExprError();
  7898. if (!getDerived().AlwaysRebuild() && SubExpr.get() == E->getSubExpr())
  7899. return E;
  7900. return getDerived().RebuildParenExpr(SubExpr.get(), E->getLParen(),
  7901. E->getRParen());
  7902. }
  7903. /// The operand of a unary address-of operator has special rules: it's
  7904. /// allowed to refer to a non-static member of a class even if there's no 'this'
  7905. /// object available.
  7906. template<typename Derived>
  7907. ExprResult
  7908. TreeTransform<Derived>::TransformAddressOfOperand(Expr *E) {
  7909. if (DependentScopeDeclRefExpr *DRE = dyn_cast<DependentScopeDeclRefExpr>(E))
  7910. return getDerived().TransformDependentScopeDeclRefExpr(DRE, true, nullptr);
  7911. else
  7912. return getDerived().TransformExpr(E);
  7913. }
  7914. template<typename Derived>
  7915. ExprResult
  7916. TreeTransform<Derived>::TransformUnaryOperator(UnaryOperator *E) {
  7917. ExprResult SubExpr;
  7918. if (E->getOpcode() == UO_AddrOf)
  7919. SubExpr = TransformAddressOfOperand(E->getSubExpr());
  7920. else
  7921. SubExpr = TransformExpr(E->getSubExpr());
  7922. if (SubExpr.isInvalid())
  7923. return ExprError();
  7924. if (!getDerived().AlwaysRebuild() && SubExpr.get() == E->getSubExpr())
  7925. return E;
  7926. return getDerived().RebuildUnaryOperator(E->getOperatorLoc(),
  7927. E->getOpcode(),
  7928. SubExpr.get());
  7929. }
  7930. template<typename Derived>
  7931. ExprResult
  7932. TreeTransform<Derived>::TransformOffsetOfExpr(OffsetOfExpr *E) {
  7933. // Transform the type.
  7934. TypeSourceInfo *Type = getDerived().TransformType(E->getTypeSourceInfo());
  7935. if (!Type)
  7936. return ExprError();
  7937. // Transform all of the components into components similar to what the
  7938. // parser uses.
  7939. // FIXME: It would be slightly more efficient in the non-dependent case to
  7940. // just map FieldDecls, rather than requiring the rebuilder to look for
  7941. // the fields again. However, __builtin_offsetof is rare enough in
  7942. // template code that we don't care.
  7943. bool ExprChanged = false;
  7944. typedef Sema::OffsetOfComponent Component;
  7945. SmallVector<Component, 4> Components;
  7946. for (unsigned I = 0, N = E->getNumComponents(); I != N; ++I) {
  7947. const OffsetOfNode &ON = E->getComponent(I);
  7948. Component Comp;
  7949. Comp.isBrackets = true;
  7950. Comp.LocStart = ON.getSourceRange().getBegin();
  7951. Comp.LocEnd = ON.getSourceRange().getEnd();
  7952. switch (ON.getKind()) {
  7953. case OffsetOfNode::Array: {
  7954. Expr *FromIndex = E->getIndexExpr(ON.getArrayExprIndex());
  7955. ExprResult Index = getDerived().TransformExpr(FromIndex);
  7956. if (Index.isInvalid())
  7957. return ExprError();
  7958. ExprChanged = ExprChanged || Index.get() != FromIndex;
  7959. Comp.isBrackets = true;
  7960. Comp.U.E = Index.get();
  7961. break;
  7962. }
  7963. case OffsetOfNode::Field:
  7964. case OffsetOfNode::Identifier:
  7965. Comp.isBrackets = false;
  7966. Comp.U.IdentInfo = ON.getFieldName();
  7967. if (!Comp.U.IdentInfo)
  7968. continue;
  7969. break;
  7970. case OffsetOfNode::Base:
  7971. // Will be recomputed during the rebuild.
  7972. continue;
  7973. }
  7974. Components.push_back(Comp);
  7975. }
  7976. // If nothing changed, retain the existing expression.
  7977. if (!getDerived().AlwaysRebuild() &&
  7978. Type == E->getTypeSourceInfo() &&
  7979. !ExprChanged)
  7980. return E;
  7981. // Build a new offsetof expression.
  7982. return getDerived().RebuildOffsetOfExpr(E->getOperatorLoc(), Type,
  7983. Components, E->getRParenLoc());
  7984. }
  7985. template<typename Derived>
  7986. ExprResult
  7987. TreeTransform<Derived>::TransformOpaqueValueExpr(OpaqueValueExpr *E) {
  7988. assert((!E->getSourceExpr() || getDerived().AlreadyTransformed(E->getType())) &&
  7989. "opaque value expression requires transformation");
  7990. return E;
  7991. }
  7992. template<typename Derived>
  7993. ExprResult
  7994. TreeTransform<Derived>::TransformTypoExpr(TypoExpr *E) {
  7995. return E;
  7996. }
  7997. template<typename Derived>
  7998. ExprResult
  7999. TreeTransform<Derived>::TransformPseudoObjectExpr(PseudoObjectExpr *E) {
  8000. // Rebuild the syntactic form. The original syntactic form has
  8001. // opaque-value expressions in it, so strip those away and rebuild
  8002. // the result. This is a really awful way of doing this, but the
  8003. // better solution (rebuilding the semantic expressions and
  8004. // rebinding OVEs as necessary) doesn't work; we'd need
  8005. // TreeTransform to not strip away implicit conversions.
  8006. Expr *newSyntacticForm = SemaRef.recreateSyntacticForm(E);
  8007. ExprResult result = getDerived().TransformExpr(newSyntacticForm);
  8008. if (result.isInvalid()) return ExprError();
  8009. // If that gives us a pseudo-object result back, the pseudo-object
  8010. // expression must have been an lvalue-to-rvalue conversion which we
  8011. // should reapply.
  8012. if (result.get()->hasPlaceholderType(BuiltinType::PseudoObject))
  8013. result = SemaRef.checkPseudoObjectRValue(result.get());
  8014. return result;
  8015. }
  8016. template<typename Derived>
  8017. ExprResult
  8018. TreeTransform<Derived>::TransformUnaryExprOrTypeTraitExpr(
  8019. UnaryExprOrTypeTraitExpr *E) {
  8020. if (E->isArgumentType()) {
  8021. TypeSourceInfo *OldT = E->getArgumentTypeInfo();
  8022. TypeSourceInfo *NewT = getDerived().TransformType(OldT);
  8023. if (!NewT)
  8024. return ExprError();
  8025. if (!getDerived().AlwaysRebuild() && OldT == NewT)
  8026. return E;
  8027. return getDerived().RebuildUnaryExprOrTypeTrait(NewT, E->getOperatorLoc(),
  8028. E->getKind(),
  8029. E->getSourceRange());
  8030. }
  8031. // C++0x [expr.sizeof]p1:
  8032. // The operand is either an expression, which is an unevaluated operand
  8033. // [...]
  8034. EnterExpressionEvaluationContext Unevaluated(
  8035. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated,
  8036. Sema::ReuseLambdaContextDecl);
  8037. // Try to recover if we have something like sizeof(T::X) where X is a type.
  8038. // Notably, there must be *exactly* one set of parens if X is a type.
  8039. TypeSourceInfo *RecoveryTSI = nullptr;
  8040. ExprResult SubExpr;
  8041. auto *PE = dyn_cast<ParenExpr>(E->getArgumentExpr());
  8042. if (auto *DRE =
  8043. PE ? dyn_cast<DependentScopeDeclRefExpr>(PE->getSubExpr()) : nullptr)
  8044. SubExpr = getDerived().TransformParenDependentScopeDeclRefExpr(
  8045. PE, DRE, false, &RecoveryTSI);
  8046. else
  8047. SubExpr = getDerived().TransformExpr(E->getArgumentExpr());
  8048. if (RecoveryTSI) {
  8049. return getDerived().RebuildUnaryExprOrTypeTrait(
  8050. RecoveryTSI, E->getOperatorLoc(), E->getKind(), E->getSourceRange());
  8051. } else if (SubExpr.isInvalid())
  8052. return ExprError();
  8053. if (!getDerived().AlwaysRebuild() && SubExpr.get() == E->getArgumentExpr())
  8054. return E;
  8055. return getDerived().RebuildUnaryExprOrTypeTrait(SubExpr.get(),
  8056. E->getOperatorLoc(),
  8057. E->getKind(),
  8058. E->getSourceRange());
  8059. }
  8060. template<typename Derived>
  8061. ExprResult
  8062. TreeTransform<Derived>::TransformArraySubscriptExpr(ArraySubscriptExpr *E) {
  8063. ExprResult LHS = getDerived().TransformExpr(E->getLHS());
  8064. if (LHS.isInvalid())
  8065. return ExprError();
  8066. ExprResult RHS = getDerived().TransformExpr(E->getRHS());
  8067. if (RHS.isInvalid())
  8068. return ExprError();
  8069. if (!getDerived().AlwaysRebuild() &&
  8070. LHS.get() == E->getLHS() &&
  8071. RHS.get() == E->getRHS())
  8072. return E;
  8073. return getDerived().RebuildArraySubscriptExpr(
  8074. LHS.get(),
  8075. /*FIXME:*/ E->getLHS()->getBeginLoc(), RHS.get(), E->getRBracketLoc());
  8076. }
  8077. template <typename Derived>
  8078. ExprResult
  8079. TreeTransform<Derived>::TransformOMPArraySectionExpr(OMPArraySectionExpr *E) {
  8080. ExprResult Base = getDerived().TransformExpr(E->getBase());
  8081. if (Base.isInvalid())
  8082. return ExprError();
  8083. ExprResult LowerBound;
  8084. if (E->getLowerBound()) {
  8085. LowerBound = getDerived().TransformExpr(E->getLowerBound());
  8086. if (LowerBound.isInvalid())
  8087. return ExprError();
  8088. }
  8089. ExprResult Length;
  8090. if (E->getLength()) {
  8091. Length = getDerived().TransformExpr(E->getLength());
  8092. if (Length.isInvalid())
  8093. return ExprError();
  8094. }
  8095. if (!getDerived().AlwaysRebuild() && Base.get() == E->getBase() &&
  8096. LowerBound.get() == E->getLowerBound() && Length.get() == E->getLength())
  8097. return E;
  8098. return getDerived().RebuildOMPArraySectionExpr(
  8099. Base.get(), E->getBase()->getEndLoc(), LowerBound.get(), E->getColonLoc(),
  8100. Length.get(), E->getRBracketLoc());
  8101. }
  8102. template<typename Derived>
  8103. ExprResult
  8104. TreeTransform<Derived>::TransformCallExpr(CallExpr *E) {
  8105. // Transform the callee.
  8106. ExprResult Callee = getDerived().TransformExpr(E->getCallee());
  8107. if (Callee.isInvalid())
  8108. return ExprError();
  8109. // Transform arguments.
  8110. bool ArgChanged = false;
  8111. SmallVector<Expr*, 8> Args;
  8112. if (getDerived().TransformExprs(E->getArgs(), E->getNumArgs(), true, Args,
  8113. &ArgChanged))
  8114. return ExprError();
  8115. if (!getDerived().AlwaysRebuild() &&
  8116. Callee.get() == E->getCallee() &&
  8117. !ArgChanged)
  8118. return SemaRef.MaybeBindToTemporary(E);
  8119. // FIXME: Wrong source location information for the '('.
  8120. SourceLocation FakeLParenLoc
  8121. = ((Expr *)Callee.get())->getSourceRange().getBegin();
  8122. return getDerived().RebuildCallExpr(Callee.get(), FakeLParenLoc,
  8123. Args,
  8124. E->getRParenLoc());
  8125. }
  8126. template<typename Derived>
  8127. ExprResult
  8128. TreeTransform<Derived>::TransformMemberExpr(MemberExpr *E) {
  8129. ExprResult Base = getDerived().TransformExpr(E->getBase());
  8130. if (Base.isInvalid())
  8131. return ExprError();
  8132. NestedNameSpecifierLoc QualifierLoc;
  8133. if (E->hasQualifier()) {
  8134. QualifierLoc
  8135. = getDerived().TransformNestedNameSpecifierLoc(E->getQualifierLoc());
  8136. if (!QualifierLoc)
  8137. return ExprError();
  8138. }
  8139. SourceLocation TemplateKWLoc = E->getTemplateKeywordLoc();
  8140. ValueDecl *Member
  8141. = cast_or_null<ValueDecl>(getDerived().TransformDecl(E->getMemberLoc(),
  8142. E->getMemberDecl()));
  8143. if (!Member)
  8144. return ExprError();
  8145. NamedDecl *FoundDecl = E->getFoundDecl();
  8146. if (FoundDecl == E->getMemberDecl()) {
  8147. FoundDecl = Member;
  8148. } else {
  8149. FoundDecl = cast_or_null<NamedDecl>(
  8150. getDerived().TransformDecl(E->getMemberLoc(), FoundDecl));
  8151. if (!FoundDecl)
  8152. return ExprError();
  8153. }
  8154. if (!getDerived().AlwaysRebuild() &&
  8155. Base.get() == E->getBase() &&
  8156. QualifierLoc == E->getQualifierLoc() &&
  8157. Member == E->getMemberDecl() &&
  8158. FoundDecl == E->getFoundDecl() &&
  8159. !E->hasExplicitTemplateArgs()) {
  8160. // Mark it referenced in the new context regardless.
  8161. // FIXME: this is a bit instantiation-specific.
  8162. SemaRef.MarkMemberReferenced(E);
  8163. return E;
  8164. }
  8165. TemplateArgumentListInfo TransArgs;
  8166. if (E->hasExplicitTemplateArgs()) {
  8167. TransArgs.setLAngleLoc(E->getLAngleLoc());
  8168. TransArgs.setRAngleLoc(E->getRAngleLoc());
  8169. if (getDerived().TransformTemplateArguments(E->getTemplateArgs(),
  8170. E->getNumTemplateArgs(),
  8171. TransArgs))
  8172. return ExprError();
  8173. }
  8174. // FIXME: Bogus source location for the operator
  8175. SourceLocation FakeOperatorLoc =
  8176. SemaRef.getLocForEndOfToken(E->getBase()->getSourceRange().getEnd());
  8177. // FIXME: to do this check properly, we will need to preserve the
  8178. // first-qualifier-in-scope here, just in case we had a dependent
  8179. // base (and therefore couldn't do the check) and a
  8180. // nested-name-qualifier (and therefore could do the lookup).
  8181. NamedDecl *FirstQualifierInScope = nullptr;
  8182. DeclarationNameInfo MemberNameInfo = E->getMemberNameInfo();
  8183. if (MemberNameInfo.getName()) {
  8184. MemberNameInfo = getDerived().TransformDeclarationNameInfo(MemberNameInfo);
  8185. if (!MemberNameInfo.getName())
  8186. return ExprError();
  8187. }
  8188. return getDerived().RebuildMemberExpr(Base.get(), FakeOperatorLoc,
  8189. E->isArrow(),
  8190. QualifierLoc,
  8191. TemplateKWLoc,
  8192. MemberNameInfo,
  8193. Member,
  8194. FoundDecl,
  8195. (E->hasExplicitTemplateArgs()
  8196. ? &TransArgs : nullptr),
  8197. FirstQualifierInScope);
  8198. }
  8199. template<typename Derived>
  8200. ExprResult
  8201. TreeTransform<Derived>::TransformBinaryOperator(BinaryOperator *E) {
  8202. ExprResult LHS = getDerived().TransformExpr(E->getLHS());
  8203. if (LHS.isInvalid())
  8204. return ExprError();
  8205. ExprResult RHS = getDerived().TransformExpr(E->getRHS());
  8206. if (RHS.isInvalid())
  8207. return ExprError();
  8208. if (!getDerived().AlwaysRebuild() &&
  8209. LHS.get() == E->getLHS() &&
  8210. RHS.get() == E->getRHS())
  8211. return E;
  8212. Sema::FPContractStateRAII FPContractState(getSema());
  8213. getSema().FPFeatures = E->getFPFeatures();
  8214. return getDerived().RebuildBinaryOperator(E->getOperatorLoc(), E->getOpcode(),
  8215. LHS.get(), RHS.get());
  8216. }
  8217. template<typename Derived>
  8218. ExprResult
  8219. TreeTransform<Derived>::TransformCompoundAssignOperator(
  8220. CompoundAssignOperator *E) {
  8221. return getDerived().TransformBinaryOperator(E);
  8222. }
  8223. template<typename Derived>
  8224. ExprResult TreeTransform<Derived>::
  8225. TransformBinaryConditionalOperator(BinaryConditionalOperator *e) {
  8226. // Just rebuild the common and RHS expressions and see whether we
  8227. // get any changes.
  8228. ExprResult commonExpr = getDerived().TransformExpr(e->getCommon());
  8229. if (commonExpr.isInvalid())
  8230. return ExprError();
  8231. ExprResult rhs = getDerived().TransformExpr(e->getFalseExpr());
  8232. if (rhs.isInvalid())
  8233. return ExprError();
  8234. if (!getDerived().AlwaysRebuild() &&
  8235. commonExpr.get() == e->getCommon() &&
  8236. rhs.get() == e->getFalseExpr())
  8237. return e;
  8238. return getDerived().RebuildConditionalOperator(commonExpr.get(),
  8239. e->getQuestionLoc(),
  8240. nullptr,
  8241. e->getColonLoc(),
  8242. rhs.get());
  8243. }
  8244. template<typename Derived>
  8245. ExprResult
  8246. TreeTransform<Derived>::TransformConditionalOperator(ConditionalOperator *E) {
  8247. ExprResult Cond = getDerived().TransformExpr(E->getCond());
  8248. if (Cond.isInvalid())
  8249. return ExprError();
  8250. ExprResult LHS = getDerived().TransformExpr(E->getLHS());
  8251. if (LHS.isInvalid())
  8252. return ExprError();
  8253. ExprResult RHS = getDerived().TransformExpr(E->getRHS());
  8254. if (RHS.isInvalid())
  8255. return ExprError();
  8256. if (!getDerived().AlwaysRebuild() &&
  8257. Cond.get() == E->getCond() &&
  8258. LHS.get() == E->getLHS() &&
  8259. RHS.get() == E->getRHS())
  8260. return E;
  8261. return getDerived().RebuildConditionalOperator(Cond.get(),
  8262. E->getQuestionLoc(),
  8263. LHS.get(),
  8264. E->getColonLoc(),
  8265. RHS.get());
  8266. }
  8267. template<typename Derived>
  8268. ExprResult
  8269. TreeTransform<Derived>::TransformImplicitCastExpr(ImplicitCastExpr *E) {
  8270. // Implicit casts are eliminated during transformation, since they
  8271. // will be recomputed by semantic analysis after transformation.
  8272. return getDerived().TransformExpr(E->getSubExprAsWritten());
  8273. }
  8274. template<typename Derived>
  8275. ExprResult
  8276. TreeTransform<Derived>::TransformCStyleCastExpr(CStyleCastExpr *E) {
  8277. TypeSourceInfo *Type = getDerived().TransformType(E->getTypeInfoAsWritten());
  8278. if (!Type)
  8279. return ExprError();
  8280. ExprResult SubExpr
  8281. = getDerived().TransformExpr(E->getSubExprAsWritten());
  8282. if (SubExpr.isInvalid())
  8283. return ExprError();
  8284. if (!getDerived().AlwaysRebuild() &&
  8285. Type == E->getTypeInfoAsWritten() &&
  8286. SubExpr.get() == E->getSubExpr())
  8287. return E;
  8288. return getDerived().RebuildCStyleCastExpr(E->getLParenLoc(),
  8289. Type,
  8290. E->getRParenLoc(),
  8291. SubExpr.get());
  8292. }
  8293. template<typename Derived>
  8294. ExprResult
  8295. TreeTransform<Derived>::TransformCompoundLiteralExpr(CompoundLiteralExpr *E) {
  8296. TypeSourceInfo *OldT = E->getTypeSourceInfo();
  8297. TypeSourceInfo *NewT = getDerived().TransformType(OldT);
  8298. if (!NewT)
  8299. return ExprError();
  8300. ExprResult Init = getDerived().TransformExpr(E->getInitializer());
  8301. if (Init.isInvalid())
  8302. return ExprError();
  8303. if (!getDerived().AlwaysRebuild() &&
  8304. OldT == NewT &&
  8305. Init.get() == E->getInitializer())
  8306. return SemaRef.MaybeBindToTemporary(E);
  8307. // Note: the expression type doesn't necessarily match the
  8308. // type-as-written, but that's okay, because it should always be
  8309. // derivable from the initializer.
  8310. return getDerived().RebuildCompoundLiteralExpr(
  8311. E->getLParenLoc(), NewT,
  8312. /*FIXME:*/ E->getInitializer()->getEndLoc(), Init.get());
  8313. }
  8314. template<typename Derived>
  8315. ExprResult
  8316. TreeTransform<Derived>::TransformExtVectorElementExpr(ExtVectorElementExpr *E) {
  8317. ExprResult Base = getDerived().TransformExpr(E->getBase());
  8318. if (Base.isInvalid())
  8319. return ExprError();
  8320. if (!getDerived().AlwaysRebuild() &&
  8321. Base.get() == E->getBase())
  8322. return E;
  8323. // FIXME: Bad source location
  8324. SourceLocation FakeOperatorLoc =
  8325. SemaRef.getLocForEndOfToken(E->getBase()->getEndLoc());
  8326. return getDerived().RebuildExtVectorElementExpr(Base.get(), FakeOperatorLoc,
  8327. E->getAccessorLoc(),
  8328. E->getAccessor());
  8329. }
  8330. template<typename Derived>
  8331. ExprResult
  8332. TreeTransform<Derived>::TransformInitListExpr(InitListExpr *E) {
  8333. if (InitListExpr *Syntactic = E->getSyntacticForm())
  8334. E = Syntactic;
  8335. bool InitChanged = false;
  8336. EnterExpressionEvaluationContext Context(
  8337. getSema(), EnterExpressionEvaluationContext::InitList);
  8338. SmallVector<Expr*, 4> Inits;
  8339. if (getDerived().TransformExprs(E->getInits(), E->getNumInits(), false,
  8340. Inits, &InitChanged))
  8341. return ExprError();
  8342. if (!getDerived().AlwaysRebuild() && !InitChanged) {
  8343. // FIXME: Attempt to reuse the existing syntactic form of the InitListExpr
  8344. // in some cases. We can't reuse it in general, because the syntactic and
  8345. // semantic forms are linked, and we can't know that semantic form will
  8346. // match even if the syntactic form does.
  8347. }
  8348. return getDerived().RebuildInitList(E->getLBraceLoc(), Inits,
  8349. E->getRBraceLoc());
  8350. }
  8351. template<typename Derived>
  8352. ExprResult
  8353. TreeTransform<Derived>::TransformDesignatedInitExpr(DesignatedInitExpr *E) {
  8354. Designation Desig;
  8355. // transform the initializer value
  8356. ExprResult Init = getDerived().TransformExpr(E->getInit());
  8357. if (Init.isInvalid())
  8358. return ExprError();
  8359. // transform the designators.
  8360. SmallVector<Expr*, 4> ArrayExprs;
  8361. bool ExprChanged = false;
  8362. for (const DesignatedInitExpr::Designator &D : E->designators()) {
  8363. if (D.isFieldDesignator()) {
  8364. Desig.AddDesignator(Designator::getField(D.getFieldName(),
  8365. D.getDotLoc(),
  8366. D.getFieldLoc()));
  8367. if (D.getField()) {
  8368. FieldDecl *Field = cast_or_null<FieldDecl>(
  8369. getDerived().TransformDecl(D.getFieldLoc(), D.getField()));
  8370. if (Field != D.getField())
  8371. // Rebuild the expression when the transformed FieldDecl is
  8372. // different to the already assigned FieldDecl.
  8373. ExprChanged = true;
  8374. } else {
  8375. // Ensure that the designator expression is rebuilt when there isn't
  8376. // a resolved FieldDecl in the designator as we don't want to assign
  8377. // a FieldDecl to a pattern designator that will be instantiated again.
  8378. ExprChanged = true;
  8379. }
  8380. continue;
  8381. }
  8382. if (D.isArrayDesignator()) {
  8383. ExprResult Index = getDerived().TransformExpr(E->getArrayIndex(D));
  8384. if (Index.isInvalid())
  8385. return ExprError();
  8386. Desig.AddDesignator(
  8387. Designator::getArray(Index.get(), D.getLBracketLoc()));
  8388. ExprChanged = ExprChanged || Init.get() != E->getArrayIndex(D);
  8389. ArrayExprs.push_back(Index.get());
  8390. continue;
  8391. }
  8392. assert(D.isArrayRangeDesignator() && "New kind of designator?");
  8393. ExprResult Start
  8394. = getDerived().TransformExpr(E->getArrayRangeStart(D));
  8395. if (Start.isInvalid())
  8396. return ExprError();
  8397. ExprResult End = getDerived().TransformExpr(E->getArrayRangeEnd(D));
  8398. if (End.isInvalid())
  8399. return ExprError();
  8400. Desig.AddDesignator(Designator::getArrayRange(Start.get(),
  8401. End.get(),
  8402. D.getLBracketLoc(),
  8403. D.getEllipsisLoc()));
  8404. ExprChanged = ExprChanged || Start.get() != E->getArrayRangeStart(D) ||
  8405. End.get() != E->getArrayRangeEnd(D);
  8406. ArrayExprs.push_back(Start.get());
  8407. ArrayExprs.push_back(End.get());
  8408. }
  8409. if (!getDerived().AlwaysRebuild() &&
  8410. Init.get() == E->getInit() &&
  8411. !ExprChanged)
  8412. return E;
  8413. return getDerived().RebuildDesignatedInitExpr(Desig, ArrayExprs,
  8414. E->getEqualOrColonLoc(),
  8415. E->usesGNUSyntax(), Init.get());
  8416. }
  8417. // Seems that if TransformInitListExpr() only works on the syntactic form of an
  8418. // InitListExpr, then a DesignatedInitUpdateExpr is not encountered.
  8419. template<typename Derived>
  8420. ExprResult
  8421. TreeTransform<Derived>::TransformDesignatedInitUpdateExpr(
  8422. DesignatedInitUpdateExpr *E) {
  8423. llvm_unreachable("Unexpected DesignatedInitUpdateExpr in syntactic form of "
  8424. "initializer");
  8425. return ExprError();
  8426. }
  8427. template<typename Derived>
  8428. ExprResult
  8429. TreeTransform<Derived>::TransformNoInitExpr(
  8430. NoInitExpr *E) {
  8431. llvm_unreachable("Unexpected NoInitExpr in syntactic form of initializer");
  8432. return ExprError();
  8433. }
  8434. template<typename Derived>
  8435. ExprResult
  8436. TreeTransform<Derived>::TransformArrayInitLoopExpr(ArrayInitLoopExpr *E) {
  8437. llvm_unreachable("Unexpected ArrayInitLoopExpr outside of initializer");
  8438. return ExprError();
  8439. }
  8440. template<typename Derived>
  8441. ExprResult
  8442. TreeTransform<Derived>::TransformArrayInitIndexExpr(ArrayInitIndexExpr *E) {
  8443. llvm_unreachable("Unexpected ArrayInitIndexExpr outside of initializer");
  8444. return ExprError();
  8445. }
  8446. template<typename Derived>
  8447. ExprResult
  8448. TreeTransform<Derived>::TransformImplicitValueInitExpr(
  8449. ImplicitValueInitExpr *E) {
  8450. TemporaryBase Rebase(*this, E->getBeginLoc(), DeclarationName());
  8451. // FIXME: Will we ever have proper type location here? Will we actually
  8452. // need to transform the type?
  8453. QualType T = getDerived().TransformType(E->getType());
  8454. if (T.isNull())
  8455. return ExprError();
  8456. if (!getDerived().AlwaysRebuild() &&
  8457. T == E->getType())
  8458. return E;
  8459. return getDerived().RebuildImplicitValueInitExpr(T);
  8460. }
  8461. template<typename Derived>
  8462. ExprResult
  8463. TreeTransform<Derived>::TransformVAArgExpr(VAArgExpr *E) {
  8464. TypeSourceInfo *TInfo = getDerived().TransformType(E->getWrittenTypeInfo());
  8465. if (!TInfo)
  8466. return ExprError();
  8467. ExprResult SubExpr = getDerived().TransformExpr(E->getSubExpr());
  8468. if (SubExpr.isInvalid())
  8469. return ExprError();
  8470. if (!getDerived().AlwaysRebuild() &&
  8471. TInfo == E->getWrittenTypeInfo() &&
  8472. SubExpr.get() == E->getSubExpr())
  8473. return E;
  8474. return getDerived().RebuildVAArgExpr(E->getBuiltinLoc(), SubExpr.get(),
  8475. TInfo, E->getRParenLoc());
  8476. }
  8477. template<typename Derived>
  8478. ExprResult
  8479. TreeTransform<Derived>::TransformParenListExpr(ParenListExpr *E) {
  8480. bool ArgumentChanged = false;
  8481. SmallVector<Expr*, 4> Inits;
  8482. if (TransformExprs(E->getExprs(), E->getNumExprs(), true, Inits,
  8483. &ArgumentChanged))
  8484. return ExprError();
  8485. return getDerived().RebuildParenListExpr(E->getLParenLoc(),
  8486. Inits,
  8487. E->getRParenLoc());
  8488. }
  8489. /// Transform an address-of-label expression.
  8490. ///
  8491. /// By default, the transformation of an address-of-label expression always
  8492. /// rebuilds the expression, so that the label identifier can be resolved to
  8493. /// the corresponding label statement by semantic analysis.
  8494. template<typename Derived>
  8495. ExprResult
  8496. TreeTransform<Derived>::TransformAddrLabelExpr(AddrLabelExpr *E) {
  8497. Decl *LD = getDerived().TransformDecl(E->getLabel()->getLocation(),
  8498. E->getLabel());
  8499. if (!LD)
  8500. return ExprError();
  8501. return getDerived().RebuildAddrLabelExpr(E->getAmpAmpLoc(), E->getLabelLoc(),
  8502. cast<LabelDecl>(LD));
  8503. }
  8504. template<typename Derived>
  8505. ExprResult
  8506. TreeTransform<Derived>::TransformStmtExpr(StmtExpr *E) {
  8507. SemaRef.ActOnStartStmtExpr();
  8508. StmtResult SubStmt
  8509. = getDerived().TransformCompoundStmt(E->getSubStmt(), true);
  8510. if (SubStmt.isInvalid()) {
  8511. SemaRef.ActOnStmtExprError();
  8512. return ExprError();
  8513. }
  8514. if (!getDerived().AlwaysRebuild() &&
  8515. SubStmt.get() == E->getSubStmt()) {
  8516. // Calling this an 'error' is unintuitive, but it does the right thing.
  8517. SemaRef.ActOnStmtExprError();
  8518. return SemaRef.MaybeBindToTemporary(E);
  8519. }
  8520. return getDerived().RebuildStmtExpr(E->getLParenLoc(),
  8521. SubStmt.get(),
  8522. E->getRParenLoc());
  8523. }
  8524. template<typename Derived>
  8525. ExprResult
  8526. TreeTransform<Derived>::TransformChooseExpr(ChooseExpr *E) {
  8527. ExprResult Cond = getDerived().TransformExpr(E->getCond());
  8528. if (Cond.isInvalid())
  8529. return ExprError();
  8530. ExprResult LHS = getDerived().TransformExpr(E->getLHS());
  8531. if (LHS.isInvalid())
  8532. return ExprError();
  8533. ExprResult RHS = getDerived().TransformExpr(E->getRHS());
  8534. if (RHS.isInvalid())
  8535. return ExprError();
  8536. if (!getDerived().AlwaysRebuild() &&
  8537. Cond.get() == E->getCond() &&
  8538. LHS.get() == E->getLHS() &&
  8539. RHS.get() == E->getRHS())
  8540. return E;
  8541. return getDerived().RebuildChooseExpr(E->getBuiltinLoc(),
  8542. Cond.get(), LHS.get(), RHS.get(),
  8543. E->getRParenLoc());
  8544. }
  8545. template<typename Derived>
  8546. ExprResult
  8547. TreeTransform<Derived>::TransformGNUNullExpr(GNUNullExpr *E) {
  8548. return E;
  8549. }
  8550. template<typename Derived>
  8551. ExprResult
  8552. TreeTransform<Derived>::TransformCXXOperatorCallExpr(CXXOperatorCallExpr *E) {
  8553. switch (E->getOperator()) {
  8554. case OO_New:
  8555. case OO_Delete:
  8556. case OO_Array_New:
  8557. case OO_Array_Delete:
  8558. llvm_unreachable("new and delete operators cannot use CXXOperatorCallExpr");
  8559. case OO_Call: {
  8560. // This is a call to an object's operator().
  8561. assert(E->getNumArgs() >= 1 && "Object call is missing arguments");
  8562. // Transform the object itself.
  8563. ExprResult Object = getDerived().TransformExpr(E->getArg(0));
  8564. if (Object.isInvalid())
  8565. return ExprError();
  8566. // FIXME: Poor location information
  8567. SourceLocation FakeLParenLoc = SemaRef.getLocForEndOfToken(
  8568. static_cast<Expr *>(Object.get())->getEndLoc());
  8569. // Transform the call arguments.
  8570. SmallVector<Expr*, 8> Args;
  8571. if (getDerived().TransformExprs(E->getArgs() + 1, E->getNumArgs() - 1, true,
  8572. Args))
  8573. return ExprError();
  8574. return getDerived().RebuildCallExpr(Object.get(), FakeLParenLoc, Args,
  8575. E->getEndLoc());
  8576. }
  8577. #define OVERLOADED_OPERATOR(Name,Spelling,Token,Unary,Binary,MemberOnly) \
  8578. case OO_##Name:
  8579. #define OVERLOADED_OPERATOR_MULTI(Name,Spelling,Unary,Binary,MemberOnly)
  8580. #include "clang/Basic/OperatorKinds.def"
  8581. case OO_Subscript:
  8582. // Handled below.
  8583. break;
  8584. case OO_Conditional:
  8585. llvm_unreachable("conditional operator is not actually overloadable");
  8586. case OO_None:
  8587. case NUM_OVERLOADED_OPERATORS:
  8588. llvm_unreachable("not an overloaded operator?");
  8589. }
  8590. ExprResult Callee = getDerived().TransformExpr(E->getCallee());
  8591. if (Callee.isInvalid())
  8592. return ExprError();
  8593. ExprResult First;
  8594. if (E->getOperator() == OO_Amp)
  8595. First = getDerived().TransformAddressOfOperand(E->getArg(0));
  8596. else
  8597. First = getDerived().TransformExpr(E->getArg(0));
  8598. if (First.isInvalid())
  8599. return ExprError();
  8600. ExprResult Second;
  8601. if (E->getNumArgs() == 2) {
  8602. Second = getDerived().TransformExpr(E->getArg(1));
  8603. if (Second.isInvalid())
  8604. return ExprError();
  8605. }
  8606. if (!getDerived().AlwaysRebuild() &&
  8607. Callee.get() == E->getCallee() &&
  8608. First.get() == E->getArg(0) &&
  8609. (E->getNumArgs() != 2 || Second.get() == E->getArg(1)))
  8610. return SemaRef.MaybeBindToTemporary(E);
  8611. Sema::FPContractStateRAII FPContractState(getSema());
  8612. getSema().FPFeatures = E->getFPFeatures();
  8613. return getDerived().RebuildCXXOperatorCallExpr(E->getOperator(),
  8614. E->getOperatorLoc(),
  8615. Callee.get(),
  8616. First.get(),
  8617. Second.get());
  8618. }
  8619. template<typename Derived>
  8620. ExprResult
  8621. TreeTransform<Derived>::TransformCXXMemberCallExpr(CXXMemberCallExpr *E) {
  8622. return getDerived().TransformCallExpr(E);
  8623. }
  8624. template<typename Derived>
  8625. ExprResult
  8626. TreeTransform<Derived>::TransformCUDAKernelCallExpr(CUDAKernelCallExpr *E) {
  8627. // Transform the callee.
  8628. ExprResult Callee = getDerived().TransformExpr(E->getCallee());
  8629. if (Callee.isInvalid())
  8630. return ExprError();
  8631. // Transform exec config.
  8632. ExprResult EC = getDerived().TransformCallExpr(E->getConfig());
  8633. if (EC.isInvalid())
  8634. return ExprError();
  8635. // Transform arguments.
  8636. bool ArgChanged = false;
  8637. SmallVector<Expr*, 8> Args;
  8638. if (getDerived().TransformExprs(E->getArgs(), E->getNumArgs(), true, Args,
  8639. &ArgChanged))
  8640. return ExprError();
  8641. if (!getDerived().AlwaysRebuild() &&
  8642. Callee.get() == E->getCallee() &&
  8643. !ArgChanged)
  8644. return SemaRef.MaybeBindToTemporary(E);
  8645. // FIXME: Wrong source location information for the '('.
  8646. SourceLocation FakeLParenLoc
  8647. = ((Expr *)Callee.get())->getSourceRange().getBegin();
  8648. return getDerived().RebuildCallExpr(Callee.get(), FakeLParenLoc,
  8649. Args,
  8650. E->getRParenLoc(), EC.get());
  8651. }
  8652. template<typename Derived>
  8653. ExprResult
  8654. TreeTransform<Derived>::TransformCXXNamedCastExpr(CXXNamedCastExpr *E) {
  8655. TypeSourceInfo *Type = getDerived().TransformType(E->getTypeInfoAsWritten());
  8656. if (!Type)
  8657. return ExprError();
  8658. ExprResult SubExpr
  8659. = getDerived().TransformExpr(E->getSubExprAsWritten());
  8660. if (SubExpr.isInvalid())
  8661. return ExprError();
  8662. if (!getDerived().AlwaysRebuild() &&
  8663. Type == E->getTypeInfoAsWritten() &&
  8664. SubExpr.get() == E->getSubExpr())
  8665. return E;
  8666. return getDerived().RebuildCXXNamedCastExpr(
  8667. E->getOperatorLoc(), E->getStmtClass(), E->getAngleBrackets().getBegin(),
  8668. Type, E->getAngleBrackets().getEnd(),
  8669. // FIXME. this should be '(' location
  8670. E->getAngleBrackets().getEnd(), SubExpr.get(), E->getRParenLoc());
  8671. }
  8672. template<typename Derived>
  8673. ExprResult
  8674. TreeTransform<Derived>::TransformCXXStaticCastExpr(CXXStaticCastExpr *E) {
  8675. return getDerived().TransformCXXNamedCastExpr(E);
  8676. }
  8677. template<typename Derived>
  8678. ExprResult
  8679. TreeTransform<Derived>::TransformCXXDynamicCastExpr(CXXDynamicCastExpr *E) {
  8680. return getDerived().TransformCXXNamedCastExpr(E);
  8681. }
  8682. template<typename Derived>
  8683. ExprResult
  8684. TreeTransform<Derived>::TransformCXXReinterpretCastExpr(
  8685. CXXReinterpretCastExpr *E) {
  8686. return getDerived().TransformCXXNamedCastExpr(E);
  8687. }
  8688. template<typename Derived>
  8689. ExprResult
  8690. TreeTransform<Derived>::TransformCXXConstCastExpr(CXXConstCastExpr *E) {
  8691. return getDerived().TransformCXXNamedCastExpr(E);
  8692. }
  8693. template<typename Derived>
  8694. ExprResult
  8695. TreeTransform<Derived>::TransformCXXFunctionalCastExpr(
  8696. CXXFunctionalCastExpr *E) {
  8697. TypeSourceInfo *Type =
  8698. getDerived().TransformTypeWithDeducedTST(E->getTypeInfoAsWritten());
  8699. if (!Type)
  8700. return ExprError();
  8701. ExprResult SubExpr
  8702. = getDerived().TransformExpr(E->getSubExprAsWritten());
  8703. if (SubExpr.isInvalid())
  8704. return ExprError();
  8705. if (!getDerived().AlwaysRebuild() &&
  8706. Type == E->getTypeInfoAsWritten() &&
  8707. SubExpr.get() == E->getSubExpr())
  8708. return E;
  8709. return getDerived().RebuildCXXFunctionalCastExpr(Type,
  8710. E->getLParenLoc(),
  8711. SubExpr.get(),
  8712. E->getRParenLoc(),
  8713. E->isListInitialization());
  8714. }
  8715. template<typename Derived>
  8716. ExprResult
  8717. TreeTransform<Derived>::TransformCXXTypeidExpr(CXXTypeidExpr *E) {
  8718. if (E->isTypeOperand()) {
  8719. TypeSourceInfo *TInfo
  8720. = getDerived().TransformType(E->getTypeOperandSourceInfo());
  8721. if (!TInfo)
  8722. return ExprError();
  8723. if (!getDerived().AlwaysRebuild() &&
  8724. TInfo == E->getTypeOperandSourceInfo())
  8725. return E;
  8726. return getDerived().RebuildCXXTypeidExpr(E->getType(), E->getBeginLoc(),
  8727. TInfo, E->getEndLoc());
  8728. }
  8729. // We don't know whether the subexpression is potentially evaluated until
  8730. // after we perform semantic analysis. We speculatively assume it is
  8731. // unevaluated; it will get fixed later if the subexpression is in fact
  8732. // potentially evaluated.
  8733. EnterExpressionEvaluationContext Unevaluated(
  8734. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated,
  8735. Sema::ReuseLambdaContextDecl);
  8736. ExprResult SubExpr = getDerived().TransformExpr(E->getExprOperand());
  8737. if (SubExpr.isInvalid())
  8738. return ExprError();
  8739. if (!getDerived().AlwaysRebuild() &&
  8740. SubExpr.get() == E->getExprOperand())
  8741. return E;
  8742. return getDerived().RebuildCXXTypeidExpr(E->getType(), E->getBeginLoc(),
  8743. SubExpr.get(), E->getEndLoc());
  8744. }
  8745. template<typename Derived>
  8746. ExprResult
  8747. TreeTransform<Derived>::TransformCXXUuidofExpr(CXXUuidofExpr *E) {
  8748. if (E->isTypeOperand()) {
  8749. TypeSourceInfo *TInfo
  8750. = getDerived().TransformType(E->getTypeOperandSourceInfo());
  8751. if (!TInfo)
  8752. return ExprError();
  8753. if (!getDerived().AlwaysRebuild() &&
  8754. TInfo == E->getTypeOperandSourceInfo())
  8755. return E;
  8756. return getDerived().RebuildCXXUuidofExpr(E->getType(), E->getBeginLoc(),
  8757. TInfo, E->getEndLoc());
  8758. }
  8759. EnterExpressionEvaluationContext Unevaluated(
  8760. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated);
  8761. ExprResult SubExpr = getDerived().TransformExpr(E->getExprOperand());
  8762. if (SubExpr.isInvalid())
  8763. return ExprError();
  8764. if (!getDerived().AlwaysRebuild() &&
  8765. SubExpr.get() == E->getExprOperand())
  8766. return E;
  8767. return getDerived().RebuildCXXUuidofExpr(E->getType(), E->getBeginLoc(),
  8768. SubExpr.get(), E->getEndLoc());
  8769. }
  8770. template<typename Derived>
  8771. ExprResult
  8772. TreeTransform<Derived>::TransformCXXBoolLiteralExpr(CXXBoolLiteralExpr *E) {
  8773. return E;
  8774. }
  8775. template<typename Derived>
  8776. ExprResult
  8777. TreeTransform<Derived>::TransformCXXNullPtrLiteralExpr(
  8778. CXXNullPtrLiteralExpr *E) {
  8779. return E;
  8780. }
  8781. template<typename Derived>
  8782. ExprResult
  8783. TreeTransform<Derived>::TransformCXXThisExpr(CXXThisExpr *E) {
  8784. QualType T = getSema().getCurrentThisType();
  8785. if (!getDerived().AlwaysRebuild() && T == E->getType()) {
  8786. // Make sure that we capture 'this'.
  8787. getSema().CheckCXXThisCapture(E->getBeginLoc());
  8788. return E;
  8789. }
  8790. return getDerived().RebuildCXXThisExpr(E->getBeginLoc(), T, E->isImplicit());
  8791. }
  8792. template<typename Derived>
  8793. ExprResult
  8794. TreeTransform<Derived>::TransformCXXThrowExpr(CXXThrowExpr *E) {
  8795. ExprResult SubExpr = getDerived().TransformExpr(E->getSubExpr());
  8796. if (SubExpr.isInvalid())
  8797. return ExprError();
  8798. if (!getDerived().AlwaysRebuild() &&
  8799. SubExpr.get() == E->getSubExpr())
  8800. return E;
  8801. return getDerived().RebuildCXXThrowExpr(E->getThrowLoc(), SubExpr.get(),
  8802. E->isThrownVariableInScope());
  8803. }
  8804. template<typename Derived>
  8805. ExprResult
  8806. TreeTransform<Derived>::TransformCXXDefaultArgExpr(CXXDefaultArgExpr *E) {
  8807. ParmVarDecl *Param = cast_or_null<ParmVarDecl>(
  8808. getDerived().TransformDecl(E->getBeginLoc(), E->getParam()));
  8809. if (!Param)
  8810. return ExprError();
  8811. if (!getDerived().AlwaysRebuild() &&
  8812. Param == E->getParam())
  8813. return E;
  8814. return getDerived().RebuildCXXDefaultArgExpr(E->getUsedLocation(), Param);
  8815. }
  8816. template<typename Derived>
  8817. ExprResult
  8818. TreeTransform<Derived>::TransformCXXDefaultInitExpr(CXXDefaultInitExpr *E) {
  8819. FieldDecl *Field = cast_or_null<FieldDecl>(
  8820. getDerived().TransformDecl(E->getBeginLoc(), E->getField()));
  8821. if (!Field)
  8822. return ExprError();
  8823. if (!getDerived().AlwaysRebuild() && Field == E->getField())
  8824. return E;
  8825. return getDerived().RebuildCXXDefaultInitExpr(E->getExprLoc(), Field);
  8826. }
  8827. template<typename Derived>
  8828. ExprResult
  8829. TreeTransform<Derived>::TransformCXXScalarValueInitExpr(
  8830. CXXScalarValueInitExpr *E) {
  8831. TypeSourceInfo *T = getDerived().TransformType(E->getTypeSourceInfo());
  8832. if (!T)
  8833. return ExprError();
  8834. if (!getDerived().AlwaysRebuild() &&
  8835. T == E->getTypeSourceInfo())
  8836. return E;
  8837. return getDerived().RebuildCXXScalarValueInitExpr(T,
  8838. /*FIXME:*/T->getTypeLoc().getEndLoc(),
  8839. E->getRParenLoc());
  8840. }
  8841. template<typename Derived>
  8842. ExprResult
  8843. TreeTransform<Derived>::TransformCXXNewExpr(CXXNewExpr *E) {
  8844. // Transform the type that we're allocating
  8845. TypeSourceInfo *AllocTypeInfo =
  8846. getDerived().TransformTypeWithDeducedTST(E->getAllocatedTypeSourceInfo());
  8847. if (!AllocTypeInfo)
  8848. return ExprError();
  8849. // Transform the size of the array we're allocating (if any).
  8850. ExprResult ArraySize = getDerived().TransformExpr(E->getArraySize());
  8851. if (ArraySize.isInvalid())
  8852. return ExprError();
  8853. // Transform the placement arguments (if any).
  8854. bool ArgumentChanged = false;
  8855. SmallVector<Expr*, 8> PlacementArgs;
  8856. if (getDerived().TransformExprs(E->getPlacementArgs(),
  8857. E->getNumPlacementArgs(), true,
  8858. PlacementArgs, &ArgumentChanged))
  8859. return ExprError();
  8860. // Transform the initializer (if any).
  8861. Expr *OldInit = E->getInitializer();
  8862. ExprResult NewInit;
  8863. if (OldInit)
  8864. NewInit = getDerived().TransformInitializer(OldInit, true);
  8865. if (NewInit.isInvalid())
  8866. return ExprError();
  8867. // Transform new operator and delete operator.
  8868. FunctionDecl *OperatorNew = nullptr;
  8869. if (E->getOperatorNew()) {
  8870. OperatorNew = cast_or_null<FunctionDecl>(
  8871. getDerived().TransformDecl(E->getBeginLoc(), E->getOperatorNew()));
  8872. if (!OperatorNew)
  8873. return ExprError();
  8874. }
  8875. FunctionDecl *OperatorDelete = nullptr;
  8876. if (E->getOperatorDelete()) {
  8877. OperatorDelete = cast_or_null<FunctionDecl>(
  8878. getDerived().TransformDecl(E->getBeginLoc(), E->getOperatorDelete()));
  8879. if (!OperatorDelete)
  8880. return ExprError();
  8881. }
  8882. if (!getDerived().AlwaysRebuild() &&
  8883. AllocTypeInfo == E->getAllocatedTypeSourceInfo() &&
  8884. ArraySize.get() == E->getArraySize() &&
  8885. NewInit.get() == OldInit &&
  8886. OperatorNew == E->getOperatorNew() &&
  8887. OperatorDelete == E->getOperatorDelete() &&
  8888. !ArgumentChanged) {
  8889. // Mark any declarations we need as referenced.
  8890. // FIXME: instantiation-specific.
  8891. if (OperatorNew)
  8892. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), OperatorNew);
  8893. if (OperatorDelete)
  8894. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), OperatorDelete);
  8895. if (E->isArray() && !E->getAllocatedType()->isDependentType()) {
  8896. QualType ElementType
  8897. = SemaRef.Context.getBaseElementType(E->getAllocatedType());
  8898. if (const RecordType *RecordT = ElementType->getAs<RecordType>()) {
  8899. CXXRecordDecl *Record = cast<CXXRecordDecl>(RecordT->getDecl());
  8900. if (CXXDestructorDecl *Destructor = SemaRef.LookupDestructor(Record)) {
  8901. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), Destructor);
  8902. }
  8903. }
  8904. }
  8905. return E;
  8906. }
  8907. QualType AllocType = AllocTypeInfo->getType();
  8908. if (!ArraySize.get()) {
  8909. // If no array size was specified, but the new expression was
  8910. // instantiated with an array type (e.g., "new T" where T is
  8911. // instantiated with "int[4]"), extract the outer bound from the
  8912. // array type as our array size. We do this with constant and
  8913. // dependently-sized array types.
  8914. const ArrayType *ArrayT = SemaRef.Context.getAsArrayType(AllocType);
  8915. if (!ArrayT) {
  8916. // Do nothing
  8917. } else if (const ConstantArrayType *ConsArrayT
  8918. = dyn_cast<ConstantArrayType>(ArrayT)) {
  8919. ArraySize = IntegerLiteral::Create(SemaRef.Context, ConsArrayT->getSize(),
  8920. SemaRef.Context.getSizeType(),
  8921. /*FIXME:*/ E->getBeginLoc());
  8922. AllocType = ConsArrayT->getElementType();
  8923. } else if (const DependentSizedArrayType *DepArrayT
  8924. = dyn_cast<DependentSizedArrayType>(ArrayT)) {
  8925. if (DepArrayT->getSizeExpr()) {
  8926. ArraySize = DepArrayT->getSizeExpr();
  8927. AllocType = DepArrayT->getElementType();
  8928. }
  8929. }
  8930. }
  8931. return getDerived().RebuildCXXNewExpr(
  8932. E->getBeginLoc(), E->isGlobalNew(),
  8933. /*FIXME:*/ E->getBeginLoc(), PlacementArgs,
  8934. /*FIXME:*/ E->getBeginLoc(), E->getTypeIdParens(), AllocType,
  8935. AllocTypeInfo, ArraySize.get(), E->getDirectInitRange(), NewInit.get());
  8936. }
  8937. template<typename Derived>
  8938. ExprResult
  8939. TreeTransform<Derived>::TransformCXXDeleteExpr(CXXDeleteExpr *E) {
  8940. ExprResult Operand = getDerived().TransformExpr(E->getArgument());
  8941. if (Operand.isInvalid())
  8942. return ExprError();
  8943. // Transform the delete operator, if known.
  8944. FunctionDecl *OperatorDelete = nullptr;
  8945. if (E->getOperatorDelete()) {
  8946. OperatorDelete = cast_or_null<FunctionDecl>(
  8947. getDerived().TransformDecl(E->getBeginLoc(), E->getOperatorDelete()));
  8948. if (!OperatorDelete)
  8949. return ExprError();
  8950. }
  8951. if (!getDerived().AlwaysRebuild() &&
  8952. Operand.get() == E->getArgument() &&
  8953. OperatorDelete == E->getOperatorDelete()) {
  8954. // Mark any declarations we need as referenced.
  8955. // FIXME: instantiation-specific.
  8956. if (OperatorDelete)
  8957. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), OperatorDelete);
  8958. if (!E->getArgument()->isTypeDependent()) {
  8959. QualType Destroyed = SemaRef.Context.getBaseElementType(
  8960. E->getDestroyedType());
  8961. if (const RecordType *DestroyedRec = Destroyed->getAs<RecordType>()) {
  8962. CXXRecordDecl *Record = cast<CXXRecordDecl>(DestroyedRec->getDecl());
  8963. SemaRef.MarkFunctionReferenced(E->getBeginLoc(),
  8964. SemaRef.LookupDestructor(Record));
  8965. }
  8966. }
  8967. return E;
  8968. }
  8969. return getDerived().RebuildCXXDeleteExpr(
  8970. E->getBeginLoc(), E->isGlobalDelete(), E->isArrayForm(), Operand.get());
  8971. }
  8972. template<typename Derived>
  8973. ExprResult
  8974. TreeTransform<Derived>::TransformCXXPseudoDestructorExpr(
  8975. CXXPseudoDestructorExpr *E) {
  8976. ExprResult Base = getDerived().TransformExpr(E->getBase());
  8977. if (Base.isInvalid())
  8978. return ExprError();
  8979. ParsedType ObjectTypePtr;
  8980. bool MayBePseudoDestructor = false;
  8981. Base = SemaRef.ActOnStartCXXMemberReference(nullptr, Base.get(),
  8982. E->getOperatorLoc(),
  8983. E->isArrow()? tok::arrow : tok::period,
  8984. ObjectTypePtr,
  8985. MayBePseudoDestructor);
  8986. if (Base.isInvalid())
  8987. return ExprError();
  8988. QualType ObjectType = ObjectTypePtr.get();
  8989. NestedNameSpecifierLoc QualifierLoc = E->getQualifierLoc();
  8990. if (QualifierLoc) {
  8991. QualifierLoc
  8992. = getDerived().TransformNestedNameSpecifierLoc(QualifierLoc, ObjectType);
  8993. if (!QualifierLoc)
  8994. return ExprError();
  8995. }
  8996. CXXScopeSpec SS;
  8997. SS.Adopt(QualifierLoc);
  8998. PseudoDestructorTypeStorage Destroyed;
  8999. if (E->getDestroyedTypeInfo()) {
  9000. TypeSourceInfo *DestroyedTypeInfo
  9001. = getDerived().TransformTypeInObjectScope(E->getDestroyedTypeInfo(),
  9002. ObjectType, nullptr, SS);
  9003. if (!DestroyedTypeInfo)
  9004. return ExprError();
  9005. Destroyed = DestroyedTypeInfo;
  9006. } else if (!ObjectType.isNull() && ObjectType->isDependentType()) {
  9007. // We aren't likely to be able to resolve the identifier down to a type
  9008. // now anyway, so just retain the identifier.
  9009. Destroyed = PseudoDestructorTypeStorage(E->getDestroyedTypeIdentifier(),
  9010. E->getDestroyedTypeLoc());
  9011. } else {
  9012. // Look for a destructor known with the given name.
  9013. ParsedType T = SemaRef.getDestructorName(E->getTildeLoc(),
  9014. *E->getDestroyedTypeIdentifier(),
  9015. E->getDestroyedTypeLoc(),
  9016. /*Scope=*/nullptr,
  9017. SS, ObjectTypePtr,
  9018. false);
  9019. if (!T)
  9020. return ExprError();
  9021. Destroyed
  9022. = SemaRef.Context.getTrivialTypeSourceInfo(SemaRef.GetTypeFromParser(T),
  9023. E->getDestroyedTypeLoc());
  9024. }
  9025. TypeSourceInfo *ScopeTypeInfo = nullptr;
  9026. if (E->getScopeTypeInfo()) {
  9027. CXXScopeSpec EmptySS;
  9028. ScopeTypeInfo = getDerived().TransformTypeInObjectScope(
  9029. E->getScopeTypeInfo(), ObjectType, nullptr, EmptySS);
  9030. if (!ScopeTypeInfo)
  9031. return ExprError();
  9032. }
  9033. return getDerived().RebuildCXXPseudoDestructorExpr(Base.get(),
  9034. E->getOperatorLoc(),
  9035. E->isArrow(),
  9036. SS,
  9037. ScopeTypeInfo,
  9038. E->getColonColonLoc(),
  9039. E->getTildeLoc(),
  9040. Destroyed);
  9041. }
  9042. template <typename Derived>
  9043. bool TreeTransform<Derived>::TransformOverloadExprDecls(OverloadExpr *Old,
  9044. bool RequiresADL,
  9045. LookupResult &R) {
  9046. // Transform all the decls.
  9047. bool AllEmptyPacks = true;
  9048. for (auto *OldD : Old->decls()) {
  9049. Decl *InstD = getDerived().TransformDecl(Old->getNameLoc(), OldD);
  9050. if (!InstD) {
  9051. // Silently ignore these if a UsingShadowDecl instantiated to nothing.
  9052. // This can happen because of dependent hiding.
  9053. if (isa<UsingShadowDecl>(OldD))
  9054. continue;
  9055. else {
  9056. R.clear();
  9057. return true;
  9058. }
  9059. }
  9060. // Expand using pack declarations.
  9061. NamedDecl *SingleDecl = cast<NamedDecl>(InstD);
  9062. ArrayRef<NamedDecl*> Decls = SingleDecl;
  9063. if (auto *UPD = dyn_cast<UsingPackDecl>(InstD))
  9064. Decls = UPD->expansions();
  9065. // Expand using declarations.
  9066. for (auto *D : Decls) {
  9067. if (auto *UD = dyn_cast<UsingDecl>(D)) {
  9068. for (auto *SD : UD->shadows())
  9069. R.addDecl(SD);
  9070. } else {
  9071. R.addDecl(D);
  9072. }
  9073. }
  9074. AllEmptyPacks &= Decls.empty();
  9075. };
  9076. // C++ [temp.res]/8.4.2:
  9077. // The program is ill-formed, no diagnostic required, if [...] lookup for
  9078. // a name in the template definition found a using-declaration, but the
  9079. // lookup in the corresponding scope in the instantiation odoes not find
  9080. // any declarations because the using-declaration was a pack expansion and
  9081. // the corresponding pack is empty
  9082. if (AllEmptyPacks && !RequiresADL) {
  9083. getSema().Diag(Old->getNameLoc(), diag::err_using_pack_expansion_empty)
  9084. << isa<UnresolvedMemberExpr>(Old) << Old->getName();
  9085. return true;
  9086. }
  9087. // Resolve a kind, but don't do any further analysis. If it's
  9088. // ambiguous, the callee needs to deal with it.
  9089. R.resolveKind();
  9090. return false;
  9091. }
  9092. template<typename Derived>
  9093. ExprResult
  9094. TreeTransform<Derived>::TransformUnresolvedLookupExpr(
  9095. UnresolvedLookupExpr *Old) {
  9096. LookupResult R(SemaRef, Old->getName(), Old->getNameLoc(),
  9097. Sema::LookupOrdinaryName);
  9098. // Transform the declaration set.
  9099. if (TransformOverloadExprDecls(Old, Old->requiresADL(), R))
  9100. return ExprError();
  9101. // Rebuild the nested-name qualifier, if present.
  9102. CXXScopeSpec SS;
  9103. if (Old->getQualifierLoc()) {
  9104. NestedNameSpecifierLoc QualifierLoc
  9105. = getDerived().TransformNestedNameSpecifierLoc(Old->getQualifierLoc());
  9106. if (!QualifierLoc)
  9107. return ExprError();
  9108. SS.Adopt(QualifierLoc);
  9109. }
  9110. if (Old->getNamingClass()) {
  9111. CXXRecordDecl *NamingClass
  9112. = cast_or_null<CXXRecordDecl>(getDerived().TransformDecl(
  9113. Old->getNameLoc(),
  9114. Old->getNamingClass()));
  9115. if (!NamingClass) {
  9116. R.clear();
  9117. return ExprError();
  9118. }
  9119. R.setNamingClass(NamingClass);
  9120. }
  9121. SourceLocation TemplateKWLoc = Old->getTemplateKeywordLoc();
  9122. // If we have neither explicit template arguments, nor the template keyword,
  9123. // it's a normal declaration name or member reference.
  9124. if (!Old->hasExplicitTemplateArgs() && !TemplateKWLoc.isValid()) {
  9125. NamedDecl *D = R.getAsSingle<NamedDecl>();
  9126. // In a C++11 unevaluated context, an UnresolvedLookupExpr might refer to an
  9127. // instance member. In other contexts, BuildPossibleImplicitMemberExpr will
  9128. // give a good diagnostic.
  9129. if (D && D->isCXXInstanceMember()) {
  9130. return SemaRef.BuildPossibleImplicitMemberExpr(SS, TemplateKWLoc, R,
  9131. /*TemplateArgs=*/nullptr,
  9132. /*Scope=*/nullptr);
  9133. }
  9134. return getDerived().RebuildDeclarationNameExpr(SS, R, Old->requiresADL());
  9135. }
  9136. // If we have template arguments, rebuild them, then rebuild the
  9137. // templateid expression.
  9138. TemplateArgumentListInfo TransArgs(Old->getLAngleLoc(), Old->getRAngleLoc());
  9139. if (Old->hasExplicitTemplateArgs() &&
  9140. getDerived().TransformTemplateArguments(Old->getTemplateArgs(),
  9141. Old->getNumTemplateArgs(),
  9142. TransArgs)) {
  9143. R.clear();
  9144. return ExprError();
  9145. }
  9146. return getDerived().RebuildTemplateIdExpr(SS, TemplateKWLoc, R,
  9147. Old->requiresADL(), &TransArgs);
  9148. }
  9149. template<typename Derived>
  9150. ExprResult
  9151. TreeTransform<Derived>::TransformTypeTraitExpr(TypeTraitExpr *E) {
  9152. bool ArgChanged = false;
  9153. SmallVector<TypeSourceInfo *, 4> Args;
  9154. for (unsigned I = 0, N = E->getNumArgs(); I != N; ++I) {
  9155. TypeSourceInfo *From = E->getArg(I);
  9156. TypeLoc FromTL = From->getTypeLoc();
  9157. if (!FromTL.getAs<PackExpansionTypeLoc>()) {
  9158. TypeLocBuilder TLB;
  9159. TLB.reserve(FromTL.getFullDataSize());
  9160. QualType To = getDerived().TransformType(TLB, FromTL);
  9161. if (To.isNull())
  9162. return ExprError();
  9163. if (To == From->getType())
  9164. Args.push_back(From);
  9165. else {
  9166. Args.push_back(TLB.getTypeSourceInfo(SemaRef.Context, To));
  9167. ArgChanged = true;
  9168. }
  9169. continue;
  9170. }
  9171. ArgChanged = true;
  9172. // We have a pack expansion. Instantiate it.
  9173. PackExpansionTypeLoc ExpansionTL = FromTL.castAs<PackExpansionTypeLoc>();
  9174. TypeLoc PatternTL = ExpansionTL.getPatternLoc();
  9175. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  9176. SemaRef.collectUnexpandedParameterPacks(PatternTL, Unexpanded);
  9177. // Determine whether the set of unexpanded parameter packs can and should
  9178. // be expanded.
  9179. bool Expand = true;
  9180. bool RetainExpansion = false;
  9181. Optional<unsigned> OrigNumExpansions =
  9182. ExpansionTL.getTypePtr()->getNumExpansions();
  9183. Optional<unsigned> NumExpansions = OrigNumExpansions;
  9184. if (getDerived().TryExpandParameterPacks(ExpansionTL.getEllipsisLoc(),
  9185. PatternTL.getSourceRange(),
  9186. Unexpanded,
  9187. Expand, RetainExpansion,
  9188. NumExpansions))
  9189. return ExprError();
  9190. if (!Expand) {
  9191. // The transform has determined that we should perform a simple
  9192. // transformation on the pack expansion, producing another pack
  9193. // expansion.
  9194. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  9195. TypeLocBuilder TLB;
  9196. TLB.reserve(From->getTypeLoc().getFullDataSize());
  9197. QualType To = getDerived().TransformType(TLB, PatternTL);
  9198. if (To.isNull())
  9199. return ExprError();
  9200. To = getDerived().RebuildPackExpansionType(To,
  9201. PatternTL.getSourceRange(),
  9202. ExpansionTL.getEllipsisLoc(),
  9203. NumExpansions);
  9204. if (To.isNull())
  9205. return ExprError();
  9206. PackExpansionTypeLoc ToExpansionTL
  9207. = TLB.push<PackExpansionTypeLoc>(To);
  9208. ToExpansionTL.setEllipsisLoc(ExpansionTL.getEllipsisLoc());
  9209. Args.push_back(TLB.getTypeSourceInfo(SemaRef.Context, To));
  9210. continue;
  9211. }
  9212. // Expand the pack expansion by substituting for each argument in the
  9213. // pack(s).
  9214. for (unsigned I = 0; I != *NumExpansions; ++I) {
  9215. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(SemaRef, I);
  9216. TypeLocBuilder TLB;
  9217. TLB.reserve(PatternTL.getFullDataSize());
  9218. QualType To = getDerived().TransformType(TLB, PatternTL);
  9219. if (To.isNull())
  9220. return ExprError();
  9221. if (To->containsUnexpandedParameterPack()) {
  9222. To = getDerived().RebuildPackExpansionType(To,
  9223. PatternTL.getSourceRange(),
  9224. ExpansionTL.getEllipsisLoc(),
  9225. NumExpansions);
  9226. if (To.isNull())
  9227. return ExprError();
  9228. PackExpansionTypeLoc ToExpansionTL
  9229. = TLB.push<PackExpansionTypeLoc>(To);
  9230. ToExpansionTL.setEllipsisLoc(ExpansionTL.getEllipsisLoc());
  9231. }
  9232. Args.push_back(TLB.getTypeSourceInfo(SemaRef.Context, To));
  9233. }
  9234. if (!RetainExpansion)
  9235. continue;
  9236. // If we're supposed to retain a pack expansion, do so by temporarily
  9237. // forgetting the partially-substituted parameter pack.
  9238. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  9239. TypeLocBuilder TLB;
  9240. TLB.reserve(From->getTypeLoc().getFullDataSize());
  9241. QualType To = getDerived().TransformType(TLB, PatternTL);
  9242. if (To.isNull())
  9243. return ExprError();
  9244. To = getDerived().RebuildPackExpansionType(To,
  9245. PatternTL.getSourceRange(),
  9246. ExpansionTL.getEllipsisLoc(),
  9247. NumExpansions);
  9248. if (To.isNull())
  9249. return ExprError();
  9250. PackExpansionTypeLoc ToExpansionTL
  9251. = TLB.push<PackExpansionTypeLoc>(To);
  9252. ToExpansionTL.setEllipsisLoc(ExpansionTL.getEllipsisLoc());
  9253. Args.push_back(TLB.getTypeSourceInfo(SemaRef.Context, To));
  9254. }
  9255. if (!getDerived().AlwaysRebuild() && !ArgChanged)
  9256. return E;
  9257. return getDerived().RebuildTypeTrait(E->getTrait(), E->getBeginLoc(), Args,
  9258. E->getEndLoc());
  9259. }
  9260. template<typename Derived>
  9261. ExprResult
  9262. TreeTransform<Derived>::TransformArrayTypeTraitExpr(ArrayTypeTraitExpr *E) {
  9263. TypeSourceInfo *T = getDerived().TransformType(E->getQueriedTypeSourceInfo());
  9264. if (!T)
  9265. return ExprError();
  9266. if (!getDerived().AlwaysRebuild() &&
  9267. T == E->getQueriedTypeSourceInfo())
  9268. return E;
  9269. ExprResult SubExpr;
  9270. {
  9271. EnterExpressionEvaluationContext Unevaluated(
  9272. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated);
  9273. SubExpr = getDerived().TransformExpr(E->getDimensionExpression());
  9274. if (SubExpr.isInvalid())
  9275. return ExprError();
  9276. if (!getDerived().AlwaysRebuild() && SubExpr.get() == E->getDimensionExpression())
  9277. return E;
  9278. }
  9279. return getDerived().RebuildArrayTypeTrait(E->getTrait(), E->getBeginLoc(), T,
  9280. SubExpr.get(), E->getEndLoc());
  9281. }
  9282. template<typename Derived>
  9283. ExprResult
  9284. TreeTransform<Derived>::TransformExpressionTraitExpr(ExpressionTraitExpr *E) {
  9285. ExprResult SubExpr;
  9286. {
  9287. EnterExpressionEvaluationContext Unevaluated(
  9288. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated);
  9289. SubExpr = getDerived().TransformExpr(E->getQueriedExpression());
  9290. if (SubExpr.isInvalid())
  9291. return ExprError();
  9292. if (!getDerived().AlwaysRebuild() && SubExpr.get() == E->getQueriedExpression())
  9293. return E;
  9294. }
  9295. return getDerived().RebuildExpressionTrait(E->getTrait(), E->getBeginLoc(),
  9296. SubExpr.get(), E->getEndLoc());
  9297. }
  9298. template <typename Derived>
  9299. ExprResult TreeTransform<Derived>::TransformParenDependentScopeDeclRefExpr(
  9300. ParenExpr *PE, DependentScopeDeclRefExpr *DRE, bool AddrTaken,
  9301. TypeSourceInfo **RecoveryTSI) {
  9302. ExprResult NewDRE = getDerived().TransformDependentScopeDeclRefExpr(
  9303. DRE, AddrTaken, RecoveryTSI);
  9304. // Propagate both errors and recovered types, which return ExprEmpty.
  9305. if (!NewDRE.isUsable())
  9306. return NewDRE;
  9307. // We got an expr, wrap it up in parens.
  9308. if (!getDerived().AlwaysRebuild() && NewDRE.get() == DRE)
  9309. return PE;
  9310. return getDerived().RebuildParenExpr(NewDRE.get(), PE->getLParen(),
  9311. PE->getRParen());
  9312. }
  9313. template <typename Derived>
  9314. ExprResult TreeTransform<Derived>::TransformDependentScopeDeclRefExpr(
  9315. DependentScopeDeclRefExpr *E) {
  9316. return TransformDependentScopeDeclRefExpr(E, /*IsAddressOfOperand=*/false,
  9317. nullptr);
  9318. }
  9319. template<typename Derived>
  9320. ExprResult
  9321. TreeTransform<Derived>::TransformDependentScopeDeclRefExpr(
  9322. DependentScopeDeclRefExpr *E,
  9323. bool IsAddressOfOperand,
  9324. TypeSourceInfo **RecoveryTSI) {
  9325. assert(E->getQualifierLoc());
  9326. NestedNameSpecifierLoc QualifierLoc
  9327. = getDerived().TransformNestedNameSpecifierLoc(E->getQualifierLoc());
  9328. if (!QualifierLoc)
  9329. return ExprError();
  9330. SourceLocation TemplateKWLoc = E->getTemplateKeywordLoc();
  9331. // TODO: If this is a conversion-function-id, verify that the
  9332. // destination type name (if present) resolves the same way after
  9333. // instantiation as it did in the local scope.
  9334. DeclarationNameInfo NameInfo
  9335. = getDerived().TransformDeclarationNameInfo(E->getNameInfo());
  9336. if (!NameInfo.getName())
  9337. return ExprError();
  9338. if (!E->hasExplicitTemplateArgs()) {
  9339. if (!getDerived().AlwaysRebuild() &&
  9340. QualifierLoc == E->getQualifierLoc() &&
  9341. // Note: it is sufficient to compare the Name component of NameInfo:
  9342. // if name has not changed, DNLoc has not changed either.
  9343. NameInfo.getName() == E->getDeclName())
  9344. return E;
  9345. return getDerived().RebuildDependentScopeDeclRefExpr(
  9346. QualifierLoc, TemplateKWLoc, NameInfo, /*TemplateArgs=*/nullptr,
  9347. IsAddressOfOperand, RecoveryTSI);
  9348. }
  9349. TemplateArgumentListInfo TransArgs(E->getLAngleLoc(), E->getRAngleLoc());
  9350. if (getDerived().TransformTemplateArguments(E->getTemplateArgs(),
  9351. E->getNumTemplateArgs(),
  9352. TransArgs))
  9353. return ExprError();
  9354. return getDerived().RebuildDependentScopeDeclRefExpr(
  9355. QualifierLoc, TemplateKWLoc, NameInfo, &TransArgs, IsAddressOfOperand,
  9356. RecoveryTSI);
  9357. }
  9358. template<typename Derived>
  9359. ExprResult
  9360. TreeTransform<Derived>::TransformCXXConstructExpr(CXXConstructExpr *E) {
  9361. // CXXConstructExprs other than for list-initialization and
  9362. // CXXTemporaryObjectExpr are always implicit, so when we have
  9363. // a 1-argument construction we just transform that argument.
  9364. if ((E->getNumArgs() == 1 ||
  9365. (E->getNumArgs() > 1 && getDerived().DropCallArgument(E->getArg(1)))) &&
  9366. (!getDerived().DropCallArgument(E->getArg(0))) &&
  9367. !E->isListInitialization())
  9368. return getDerived().TransformExpr(E->getArg(0));
  9369. TemporaryBase Rebase(*this, /*FIXME*/ E->getBeginLoc(), DeclarationName());
  9370. QualType T = getDerived().TransformType(E->getType());
  9371. if (T.isNull())
  9372. return ExprError();
  9373. CXXConstructorDecl *Constructor = cast_or_null<CXXConstructorDecl>(
  9374. getDerived().TransformDecl(E->getBeginLoc(), E->getConstructor()));
  9375. if (!Constructor)
  9376. return ExprError();
  9377. bool ArgumentChanged = false;
  9378. SmallVector<Expr*, 8> Args;
  9379. {
  9380. EnterExpressionEvaluationContext Context(
  9381. getSema(), EnterExpressionEvaluationContext::InitList,
  9382. E->isListInitialization());
  9383. if (getDerived().TransformExprs(E->getArgs(), E->getNumArgs(), true, Args,
  9384. &ArgumentChanged))
  9385. return ExprError();
  9386. }
  9387. if (!getDerived().AlwaysRebuild() &&
  9388. T == E->getType() &&
  9389. Constructor == E->getConstructor() &&
  9390. !ArgumentChanged) {
  9391. // Mark the constructor as referenced.
  9392. // FIXME: Instantiation-specific
  9393. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), Constructor);
  9394. return E;
  9395. }
  9396. return getDerived().RebuildCXXConstructExpr(
  9397. T, /*FIXME:*/ E->getBeginLoc(), Constructor, E->isElidable(), Args,
  9398. E->hadMultipleCandidates(), E->isListInitialization(),
  9399. E->isStdInitListInitialization(), E->requiresZeroInitialization(),
  9400. E->getConstructionKind(), E->getParenOrBraceRange());
  9401. }
  9402. template<typename Derived>
  9403. ExprResult TreeTransform<Derived>::TransformCXXInheritedCtorInitExpr(
  9404. CXXInheritedCtorInitExpr *E) {
  9405. QualType T = getDerived().TransformType(E->getType());
  9406. if (T.isNull())
  9407. return ExprError();
  9408. CXXConstructorDecl *Constructor = cast_or_null<CXXConstructorDecl>(
  9409. getDerived().TransformDecl(E->getBeginLoc(), E->getConstructor()));
  9410. if (!Constructor)
  9411. return ExprError();
  9412. if (!getDerived().AlwaysRebuild() &&
  9413. T == E->getType() &&
  9414. Constructor == E->getConstructor()) {
  9415. // Mark the constructor as referenced.
  9416. // FIXME: Instantiation-specific
  9417. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), Constructor);
  9418. return E;
  9419. }
  9420. return getDerived().RebuildCXXInheritedCtorInitExpr(
  9421. T, E->getLocation(), Constructor,
  9422. E->constructsVBase(), E->inheritedFromVBase());
  9423. }
  9424. /// Transform a C++ temporary-binding expression.
  9425. ///
  9426. /// Since CXXBindTemporaryExpr nodes are implicitly generated, we just
  9427. /// transform the subexpression and return that.
  9428. template<typename Derived>
  9429. ExprResult
  9430. TreeTransform<Derived>::TransformCXXBindTemporaryExpr(CXXBindTemporaryExpr *E) {
  9431. return getDerived().TransformExpr(E->getSubExpr());
  9432. }
  9433. /// Transform a C++ expression that contains cleanups that should
  9434. /// be run after the expression is evaluated.
  9435. ///
  9436. /// Since ExprWithCleanups nodes are implicitly generated, we
  9437. /// just transform the subexpression and return that.
  9438. template<typename Derived>
  9439. ExprResult
  9440. TreeTransform<Derived>::TransformExprWithCleanups(ExprWithCleanups *E) {
  9441. return getDerived().TransformExpr(E->getSubExpr());
  9442. }
  9443. template<typename Derived>
  9444. ExprResult
  9445. TreeTransform<Derived>::TransformCXXTemporaryObjectExpr(
  9446. CXXTemporaryObjectExpr *E) {
  9447. TypeSourceInfo *T =
  9448. getDerived().TransformTypeWithDeducedTST(E->getTypeSourceInfo());
  9449. if (!T)
  9450. return ExprError();
  9451. CXXConstructorDecl *Constructor = cast_or_null<CXXConstructorDecl>(
  9452. getDerived().TransformDecl(E->getBeginLoc(), E->getConstructor()));
  9453. if (!Constructor)
  9454. return ExprError();
  9455. bool ArgumentChanged = false;
  9456. SmallVector<Expr*, 8> Args;
  9457. Args.reserve(E->getNumArgs());
  9458. {
  9459. EnterExpressionEvaluationContext Context(
  9460. getSema(), EnterExpressionEvaluationContext::InitList,
  9461. E->isListInitialization());
  9462. if (TransformExprs(E->getArgs(), E->getNumArgs(), true, Args,
  9463. &ArgumentChanged))
  9464. return ExprError();
  9465. }
  9466. if (!getDerived().AlwaysRebuild() &&
  9467. T == E->getTypeSourceInfo() &&
  9468. Constructor == E->getConstructor() &&
  9469. !ArgumentChanged) {
  9470. // FIXME: Instantiation-specific
  9471. SemaRef.MarkFunctionReferenced(E->getBeginLoc(), Constructor);
  9472. return SemaRef.MaybeBindToTemporary(E);
  9473. }
  9474. // FIXME: We should just pass E->isListInitialization(), but we're not
  9475. // prepared to handle list-initialization without a child InitListExpr.
  9476. SourceLocation LParenLoc = T->getTypeLoc().getEndLoc();
  9477. return getDerived().RebuildCXXTemporaryObjectExpr(
  9478. T, LParenLoc, Args, E->getEndLoc(),
  9479. /*ListInitialization=*/LParenLoc.isInvalid());
  9480. }
  9481. template<typename Derived>
  9482. ExprResult
  9483. TreeTransform<Derived>::TransformLambdaExpr(LambdaExpr *E) {
  9484. // Transform any init-capture expressions before entering the scope of the
  9485. // lambda body, because they are not semantically within that scope.
  9486. typedef std::pair<ExprResult, QualType> InitCaptureInfoTy;
  9487. SmallVector<InitCaptureInfoTy, 8> InitCaptureExprsAndTypes;
  9488. InitCaptureExprsAndTypes.resize(E->explicit_capture_end() -
  9489. E->explicit_capture_begin());
  9490. for (LambdaExpr::capture_iterator C = E->capture_begin(),
  9491. CEnd = E->capture_end();
  9492. C != CEnd; ++C) {
  9493. if (!E->isInitCapture(C))
  9494. continue;
  9495. EnterExpressionEvaluationContext EEEC(
  9496. getSema(), Sema::ExpressionEvaluationContext::PotentiallyEvaluated);
  9497. ExprResult NewExprInitResult = getDerived().TransformInitializer(
  9498. C->getCapturedVar()->getInit(),
  9499. C->getCapturedVar()->getInitStyle() == VarDecl::CallInit);
  9500. if (NewExprInitResult.isInvalid())
  9501. return ExprError();
  9502. Expr *NewExprInit = NewExprInitResult.get();
  9503. VarDecl *OldVD = C->getCapturedVar();
  9504. QualType NewInitCaptureType =
  9505. getSema().buildLambdaInitCaptureInitialization(
  9506. C->getLocation(), OldVD->getType()->isReferenceType(),
  9507. OldVD->getIdentifier(),
  9508. C->getCapturedVar()->getInitStyle() != VarDecl::CInit, NewExprInit);
  9509. NewExprInitResult = NewExprInit;
  9510. InitCaptureExprsAndTypes[C - E->capture_begin()] =
  9511. std::make_pair(NewExprInitResult, NewInitCaptureType);
  9512. }
  9513. // Transform the template parameters, and add them to the current
  9514. // instantiation scope. The null case is handled correctly.
  9515. auto TPL = getDerived().TransformTemplateParameterList(
  9516. E->getTemplateParameterList());
  9517. // Transform the type of the original lambda's call operator.
  9518. // The transformation MUST be done in the CurrentInstantiationScope since
  9519. // it introduces a mapping of the original to the newly created
  9520. // transformed parameters.
  9521. TypeSourceInfo *NewCallOpTSI = nullptr;
  9522. {
  9523. TypeSourceInfo *OldCallOpTSI = E->getCallOperator()->getTypeSourceInfo();
  9524. FunctionProtoTypeLoc OldCallOpFPTL =
  9525. OldCallOpTSI->getTypeLoc().getAs<FunctionProtoTypeLoc>();
  9526. TypeLocBuilder NewCallOpTLBuilder;
  9527. SmallVector<QualType, 4> ExceptionStorage;
  9528. TreeTransform *This = this; // Work around gcc.gnu.org/PR56135.
  9529. QualType NewCallOpType = TransformFunctionProtoType(
  9530. NewCallOpTLBuilder, OldCallOpFPTL, nullptr, 0,
  9531. [&](FunctionProtoType::ExceptionSpecInfo &ESI, bool &Changed) {
  9532. return This->TransformExceptionSpec(OldCallOpFPTL.getBeginLoc(), ESI,
  9533. ExceptionStorage, Changed);
  9534. });
  9535. if (NewCallOpType.isNull())
  9536. return ExprError();
  9537. NewCallOpTSI = NewCallOpTLBuilder.getTypeSourceInfo(getSema().Context,
  9538. NewCallOpType);
  9539. }
  9540. LambdaScopeInfo *LSI = getSema().PushLambdaScope();
  9541. Sema::FunctionScopeRAII FuncScopeCleanup(getSema());
  9542. LSI->GLTemplateParameterList = TPL;
  9543. // Create the local class that will describe the lambda.
  9544. CXXRecordDecl *Class
  9545. = getSema().createLambdaClosureType(E->getIntroducerRange(),
  9546. NewCallOpTSI,
  9547. /*KnownDependent=*/false,
  9548. E->getCaptureDefault());
  9549. getDerived().transformedLocalDecl(E->getLambdaClass(), Class);
  9550. // Build the call operator.
  9551. CXXMethodDecl *NewCallOperator = getSema().startLambdaDefinition(
  9552. Class, E->getIntroducerRange(), NewCallOpTSI,
  9553. E->getCallOperator()->getEndLoc(),
  9554. NewCallOpTSI->getTypeLoc().castAs<FunctionProtoTypeLoc>().getParams(),
  9555. E->getCallOperator()->isConstexpr());
  9556. LSI->CallOperator = NewCallOperator;
  9557. for (unsigned I = 0, NumParams = NewCallOperator->getNumParams();
  9558. I != NumParams; ++I) {
  9559. auto *P = NewCallOperator->getParamDecl(I);
  9560. if (P->hasUninstantiatedDefaultArg()) {
  9561. EnterExpressionEvaluationContext Eval(
  9562. getSema(),
  9563. Sema::ExpressionEvaluationContext::PotentiallyEvaluatedIfUsed, P);
  9564. ExprResult R = getDerived().TransformExpr(
  9565. E->getCallOperator()->getParamDecl(I)->getDefaultArg());
  9566. P->setDefaultArg(R.get());
  9567. }
  9568. }
  9569. getDerived().transformAttrs(E->getCallOperator(), NewCallOperator);
  9570. getDerived().transformedLocalDecl(E->getCallOperator(), NewCallOperator);
  9571. // Introduce the context of the call operator.
  9572. Sema::ContextRAII SavedContext(getSema(), NewCallOperator,
  9573. /*NewThisContext*/false);
  9574. // Enter the scope of the lambda.
  9575. getSema().buildLambdaScope(LSI, NewCallOperator,
  9576. E->getIntroducerRange(),
  9577. E->getCaptureDefault(),
  9578. E->getCaptureDefaultLoc(),
  9579. E->hasExplicitParameters(),
  9580. E->hasExplicitResultType(),
  9581. E->isMutable());
  9582. bool Invalid = false;
  9583. // Transform captures.
  9584. bool FinishedExplicitCaptures = false;
  9585. for (LambdaExpr::capture_iterator C = E->capture_begin(),
  9586. CEnd = E->capture_end();
  9587. C != CEnd; ++C) {
  9588. // When we hit the first implicit capture, tell Sema that we've finished
  9589. // the list of explicit captures.
  9590. if (!FinishedExplicitCaptures && C->isImplicit()) {
  9591. getSema().finishLambdaExplicitCaptures(LSI);
  9592. FinishedExplicitCaptures = true;
  9593. }
  9594. // Capturing 'this' is trivial.
  9595. if (C->capturesThis()) {
  9596. getSema().CheckCXXThisCapture(C->getLocation(), C->isExplicit(),
  9597. /*BuildAndDiagnose*/ true, nullptr,
  9598. C->getCaptureKind() == LCK_StarThis);
  9599. continue;
  9600. }
  9601. // Captured expression will be recaptured during captured variables
  9602. // rebuilding.
  9603. if (C->capturesVLAType())
  9604. continue;
  9605. // Rebuild init-captures, including the implied field declaration.
  9606. if (E->isInitCapture(C)) {
  9607. InitCaptureInfoTy InitExprTypePair =
  9608. InitCaptureExprsAndTypes[C - E->capture_begin()];
  9609. ExprResult Init = InitExprTypePair.first;
  9610. QualType InitQualType = InitExprTypePair.second;
  9611. if (Init.isInvalid() || InitQualType.isNull()) {
  9612. Invalid = true;
  9613. continue;
  9614. }
  9615. VarDecl *OldVD = C->getCapturedVar();
  9616. VarDecl *NewVD = getSema().createLambdaInitCaptureVarDecl(
  9617. OldVD->getLocation(), InitExprTypePair.second, OldVD->getIdentifier(),
  9618. OldVD->getInitStyle(), Init.get());
  9619. if (!NewVD)
  9620. Invalid = true;
  9621. else {
  9622. getDerived().transformedLocalDecl(OldVD, NewVD);
  9623. }
  9624. getSema().buildInitCaptureField(LSI, NewVD);
  9625. continue;
  9626. }
  9627. assert(C->capturesVariable() && "unexpected kind of lambda capture");
  9628. // Determine the capture kind for Sema.
  9629. Sema::TryCaptureKind Kind
  9630. = C->isImplicit()? Sema::TryCapture_Implicit
  9631. : C->getCaptureKind() == LCK_ByCopy
  9632. ? Sema::TryCapture_ExplicitByVal
  9633. : Sema::TryCapture_ExplicitByRef;
  9634. SourceLocation EllipsisLoc;
  9635. if (C->isPackExpansion()) {
  9636. UnexpandedParameterPack Unexpanded(C->getCapturedVar(), C->getLocation());
  9637. bool ShouldExpand = false;
  9638. bool RetainExpansion = false;
  9639. Optional<unsigned> NumExpansions;
  9640. if (getDerived().TryExpandParameterPacks(C->getEllipsisLoc(),
  9641. C->getLocation(),
  9642. Unexpanded,
  9643. ShouldExpand, RetainExpansion,
  9644. NumExpansions)) {
  9645. Invalid = true;
  9646. continue;
  9647. }
  9648. if (ShouldExpand) {
  9649. // The transform has determined that we should perform an expansion;
  9650. // transform and capture each of the arguments.
  9651. // expansion of the pattern. Do so.
  9652. VarDecl *Pack = C->getCapturedVar();
  9653. for (unsigned I = 0; I != *NumExpansions; ++I) {
  9654. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), I);
  9655. VarDecl *CapturedVar
  9656. = cast_or_null<VarDecl>(getDerived().TransformDecl(C->getLocation(),
  9657. Pack));
  9658. if (!CapturedVar) {
  9659. Invalid = true;
  9660. continue;
  9661. }
  9662. // Capture the transformed variable.
  9663. getSema().tryCaptureVariable(CapturedVar, C->getLocation(), Kind);
  9664. }
  9665. // FIXME: Retain a pack expansion if RetainExpansion is true.
  9666. continue;
  9667. }
  9668. EllipsisLoc = C->getEllipsisLoc();
  9669. }
  9670. // Transform the captured variable.
  9671. VarDecl *CapturedVar
  9672. = cast_or_null<VarDecl>(getDerived().TransformDecl(C->getLocation(),
  9673. C->getCapturedVar()));
  9674. if (!CapturedVar || CapturedVar->isInvalidDecl()) {
  9675. Invalid = true;
  9676. continue;
  9677. }
  9678. // Capture the transformed variable.
  9679. getSema().tryCaptureVariable(CapturedVar, C->getLocation(), Kind,
  9680. EllipsisLoc);
  9681. }
  9682. if (!FinishedExplicitCaptures)
  9683. getSema().finishLambdaExplicitCaptures(LSI);
  9684. // Enter a new evaluation context to insulate the lambda from any
  9685. // cleanups from the enclosing full-expression.
  9686. getSema().PushExpressionEvaluationContext(
  9687. Sema::ExpressionEvaluationContext::PotentiallyEvaluated);
  9688. // Instantiate the body of the lambda expression.
  9689. StmtResult Body =
  9690. Invalid ? StmtError() : getDerived().TransformStmt(E->getBody());
  9691. // ActOnLambda* will pop the function scope for us.
  9692. FuncScopeCleanup.disable();
  9693. if (Body.isInvalid()) {
  9694. SavedContext.pop();
  9695. getSema().ActOnLambdaError(E->getBeginLoc(), /*CurScope=*/nullptr,
  9696. /*IsInstantiation=*/true);
  9697. return ExprError();
  9698. }
  9699. // Copy the LSI before ActOnFinishFunctionBody removes it.
  9700. // FIXME: This is dumb. Store the lambda information somewhere that outlives
  9701. // the call operator.
  9702. auto LSICopy = *LSI;
  9703. getSema().ActOnFinishFunctionBody(NewCallOperator, Body.get(),
  9704. /*IsInstantiation*/ true);
  9705. SavedContext.pop();
  9706. return getSema().BuildLambdaExpr(E->getBeginLoc(), Body.get()->getEndLoc(),
  9707. &LSICopy);
  9708. }
  9709. template<typename Derived>
  9710. ExprResult
  9711. TreeTransform<Derived>::TransformCXXUnresolvedConstructExpr(
  9712. CXXUnresolvedConstructExpr *E) {
  9713. TypeSourceInfo *T =
  9714. getDerived().TransformTypeWithDeducedTST(E->getTypeSourceInfo());
  9715. if (!T)
  9716. return ExprError();
  9717. bool ArgumentChanged = false;
  9718. SmallVector<Expr*, 8> Args;
  9719. Args.reserve(E->arg_size());
  9720. {
  9721. EnterExpressionEvaluationContext Context(
  9722. getSema(), EnterExpressionEvaluationContext::InitList,
  9723. E->isListInitialization());
  9724. if (getDerived().TransformExprs(E->arg_begin(), E->arg_size(), true, Args,
  9725. &ArgumentChanged))
  9726. return ExprError();
  9727. }
  9728. if (!getDerived().AlwaysRebuild() &&
  9729. T == E->getTypeSourceInfo() &&
  9730. !ArgumentChanged)
  9731. return E;
  9732. // FIXME: we're faking the locations of the commas
  9733. return getDerived().RebuildCXXUnresolvedConstructExpr(
  9734. T, E->getLParenLoc(), Args, E->getRParenLoc(), E->isListInitialization());
  9735. }
  9736. template<typename Derived>
  9737. ExprResult
  9738. TreeTransform<Derived>::TransformCXXDependentScopeMemberExpr(
  9739. CXXDependentScopeMemberExpr *E) {
  9740. // Transform the base of the expression.
  9741. ExprResult Base((Expr*) nullptr);
  9742. Expr *OldBase;
  9743. QualType BaseType;
  9744. QualType ObjectType;
  9745. if (!E->isImplicitAccess()) {
  9746. OldBase = E->getBase();
  9747. Base = getDerived().TransformExpr(OldBase);
  9748. if (Base.isInvalid())
  9749. return ExprError();
  9750. // Start the member reference and compute the object's type.
  9751. ParsedType ObjectTy;
  9752. bool MayBePseudoDestructor = false;
  9753. Base = SemaRef.ActOnStartCXXMemberReference(nullptr, Base.get(),
  9754. E->getOperatorLoc(),
  9755. E->isArrow()? tok::arrow : tok::period,
  9756. ObjectTy,
  9757. MayBePseudoDestructor);
  9758. if (Base.isInvalid())
  9759. return ExprError();
  9760. ObjectType = ObjectTy.get();
  9761. BaseType = ((Expr*) Base.get())->getType();
  9762. } else {
  9763. OldBase = nullptr;
  9764. BaseType = getDerived().TransformType(E->getBaseType());
  9765. ObjectType = BaseType->getAs<PointerType>()->getPointeeType();
  9766. }
  9767. // Transform the first part of the nested-name-specifier that qualifies
  9768. // the member name.
  9769. NamedDecl *FirstQualifierInScope
  9770. = getDerived().TransformFirstQualifierInScope(
  9771. E->getFirstQualifierFoundInScope(),
  9772. E->getQualifierLoc().getBeginLoc());
  9773. NestedNameSpecifierLoc QualifierLoc;
  9774. if (E->getQualifier()) {
  9775. QualifierLoc
  9776. = getDerived().TransformNestedNameSpecifierLoc(E->getQualifierLoc(),
  9777. ObjectType,
  9778. FirstQualifierInScope);
  9779. if (!QualifierLoc)
  9780. return ExprError();
  9781. }
  9782. SourceLocation TemplateKWLoc = E->getTemplateKeywordLoc();
  9783. // TODO: If this is a conversion-function-id, verify that the
  9784. // destination type name (if present) resolves the same way after
  9785. // instantiation as it did in the local scope.
  9786. DeclarationNameInfo NameInfo
  9787. = getDerived().TransformDeclarationNameInfo(E->getMemberNameInfo());
  9788. if (!NameInfo.getName())
  9789. return ExprError();
  9790. if (!E->hasExplicitTemplateArgs()) {
  9791. // This is a reference to a member without an explicitly-specified
  9792. // template argument list. Optimize for this common case.
  9793. if (!getDerived().AlwaysRebuild() &&
  9794. Base.get() == OldBase &&
  9795. BaseType == E->getBaseType() &&
  9796. QualifierLoc == E->getQualifierLoc() &&
  9797. NameInfo.getName() == E->getMember() &&
  9798. FirstQualifierInScope == E->getFirstQualifierFoundInScope())
  9799. return E;
  9800. return getDerived().RebuildCXXDependentScopeMemberExpr(Base.get(),
  9801. BaseType,
  9802. E->isArrow(),
  9803. E->getOperatorLoc(),
  9804. QualifierLoc,
  9805. TemplateKWLoc,
  9806. FirstQualifierInScope,
  9807. NameInfo,
  9808. /*TemplateArgs*/nullptr);
  9809. }
  9810. TemplateArgumentListInfo TransArgs(E->getLAngleLoc(), E->getRAngleLoc());
  9811. if (getDerived().TransformTemplateArguments(E->getTemplateArgs(),
  9812. E->getNumTemplateArgs(),
  9813. TransArgs))
  9814. return ExprError();
  9815. return getDerived().RebuildCXXDependentScopeMemberExpr(Base.get(),
  9816. BaseType,
  9817. E->isArrow(),
  9818. E->getOperatorLoc(),
  9819. QualifierLoc,
  9820. TemplateKWLoc,
  9821. FirstQualifierInScope,
  9822. NameInfo,
  9823. &TransArgs);
  9824. }
  9825. template<typename Derived>
  9826. ExprResult
  9827. TreeTransform<Derived>::TransformUnresolvedMemberExpr(UnresolvedMemberExpr *Old) {
  9828. // Transform the base of the expression.
  9829. ExprResult Base((Expr*) nullptr);
  9830. QualType BaseType;
  9831. if (!Old->isImplicitAccess()) {
  9832. Base = getDerived().TransformExpr(Old->getBase());
  9833. if (Base.isInvalid())
  9834. return ExprError();
  9835. Base = getSema().PerformMemberExprBaseConversion(Base.get(),
  9836. Old->isArrow());
  9837. if (Base.isInvalid())
  9838. return ExprError();
  9839. BaseType = Base.get()->getType();
  9840. } else {
  9841. BaseType = getDerived().TransformType(Old->getBaseType());
  9842. }
  9843. NestedNameSpecifierLoc QualifierLoc;
  9844. if (Old->getQualifierLoc()) {
  9845. QualifierLoc
  9846. = getDerived().TransformNestedNameSpecifierLoc(Old->getQualifierLoc());
  9847. if (!QualifierLoc)
  9848. return ExprError();
  9849. }
  9850. SourceLocation TemplateKWLoc = Old->getTemplateKeywordLoc();
  9851. LookupResult R(SemaRef, Old->getMemberNameInfo(),
  9852. Sema::LookupOrdinaryName);
  9853. // Transform the declaration set.
  9854. if (TransformOverloadExprDecls(Old, /*RequiresADL*/false, R))
  9855. return ExprError();
  9856. // Determine the naming class.
  9857. if (Old->getNamingClass()) {
  9858. CXXRecordDecl *NamingClass
  9859. = cast_or_null<CXXRecordDecl>(getDerived().TransformDecl(
  9860. Old->getMemberLoc(),
  9861. Old->getNamingClass()));
  9862. if (!NamingClass)
  9863. return ExprError();
  9864. R.setNamingClass(NamingClass);
  9865. }
  9866. TemplateArgumentListInfo TransArgs;
  9867. if (Old->hasExplicitTemplateArgs()) {
  9868. TransArgs.setLAngleLoc(Old->getLAngleLoc());
  9869. TransArgs.setRAngleLoc(Old->getRAngleLoc());
  9870. if (getDerived().TransformTemplateArguments(Old->getTemplateArgs(),
  9871. Old->getNumTemplateArgs(),
  9872. TransArgs))
  9873. return ExprError();
  9874. }
  9875. // FIXME: to do this check properly, we will need to preserve the
  9876. // first-qualifier-in-scope here, just in case we had a dependent
  9877. // base (and therefore couldn't do the check) and a
  9878. // nested-name-qualifier (and therefore could do the lookup).
  9879. NamedDecl *FirstQualifierInScope = nullptr;
  9880. return getDerived().RebuildUnresolvedMemberExpr(Base.get(),
  9881. BaseType,
  9882. Old->getOperatorLoc(),
  9883. Old->isArrow(),
  9884. QualifierLoc,
  9885. TemplateKWLoc,
  9886. FirstQualifierInScope,
  9887. R,
  9888. (Old->hasExplicitTemplateArgs()
  9889. ? &TransArgs : nullptr));
  9890. }
  9891. template<typename Derived>
  9892. ExprResult
  9893. TreeTransform<Derived>::TransformCXXNoexceptExpr(CXXNoexceptExpr *E) {
  9894. EnterExpressionEvaluationContext Unevaluated(
  9895. SemaRef, Sema::ExpressionEvaluationContext::Unevaluated);
  9896. ExprResult SubExpr = getDerived().TransformExpr(E->getOperand());
  9897. if (SubExpr.isInvalid())
  9898. return ExprError();
  9899. if (!getDerived().AlwaysRebuild() && SubExpr.get() == E->getOperand())
  9900. return E;
  9901. return getDerived().RebuildCXXNoexceptExpr(E->getSourceRange(),SubExpr.get());
  9902. }
  9903. template<typename Derived>
  9904. ExprResult
  9905. TreeTransform<Derived>::TransformPackExpansionExpr(PackExpansionExpr *E) {
  9906. ExprResult Pattern = getDerived().TransformExpr(E->getPattern());
  9907. if (Pattern.isInvalid())
  9908. return ExprError();
  9909. if (!getDerived().AlwaysRebuild() && Pattern.get() == E->getPattern())
  9910. return E;
  9911. return getDerived().RebuildPackExpansion(Pattern.get(), E->getEllipsisLoc(),
  9912. E->getNumExpansions());
  9913. }
  9914. template<typename Derived>
  9915. ExprResult
  9916. TreeTransform<Derived>::TransformSizeOfPackExpr(SizeOfPackExpr *E) {
  9917. // If E is not value-dependent, then nothing will change when we transform it.
  9918. // Note: This is an instantiation-centric view.
  9919. if (!E->isValueDependent())
  9920. return E;
  9921. EnterExpressionEvaluationContext Unevaluated(
  9922. getSema(), Sema::ExpressionEvaluationContext::Unevaluated);
  9923. ArrayRef<TemplateArgument> PackArgs;
  9924. TemplateArgument ArgStorage;
  9925. // Find the argument list to transform.
  9926. if (E->isPartiallySubstituted()) {
  9927. PackArgs = E->getPartialArguments();
  9928. } else if (E->isValueDependent()) {
  9929. UnexpandedParameterPack Unexpanded(E->getPack(), E->getPackLoc());
  9930. bool ShouldExpand = false;
  9931. bool RetainExpansion = false;
  9932. Optional<unsigned> NumExpansions;
  9933. if (getDerived().TryExpandParameterPacks(E->getOperatorLoc(), E->getPackLoc(),
  9934. Unexpanded,
  9935. ShouldExpand, RetainExpansion,
  9936. NumExpansions))
  9937. return ExprError();
  9938. // If we need to expand the pack, build a template argument from it and
  9939. // expand that.
  9940. if (ShouldExpand) {
  9941. auto *Pack = E->getPack();
  9942. if (auto *TTPD = dyn_cast<TemplateTypeParmDecl>(Pack)) {
  9943. ArgStorage = getSema().Context.getPackExpansionType(
  9944. getSema().Context.getTypeDeclType(TTPD), None);
  9945. } else if (auto *TTPD = dyn_cast<TemplateTemplateParmDecl>(Pack)) {
  9946. ArgStorage = TemplateArgument(TemplateName(TTPD), None);
  9947. } else {
  9948. auto *VD = cast<ValueDecl>(Pack);
  9949. ExprResult DRE = getSema().BuildDeclRefExpr(
  9950. VD, VD->getType().getNonLValueExprType(getSema().Context),
  9951. VD->getType()->isReferenceType() ? VK_LValue : VK_RValue,
  9952. E->getPackLoc());
  9953. if (DRE.isInvalid())
  9954. return ExprError();
  9955. ArgStorage = new (getSema().Context) PackExpansionExpr(
  9956. getSema().Context.DependentTy, DRE.get(), E->getPackLoc(), None);
  9957. }
  9958. PackArgs = ArgStorage;
  9959. }
  9960. }
  9961. // If we're not expanding the pack, just transform the decl.
  9962. if (!PackArgs.size()) {
  9963. auto *Pack = cast_or_null<NamedDecl>(
  9964. getDerived().TransformDecl(E->getPackLoc(), E->getPack()));
  9965. if (!Pack)
  9966. return ExprError();
  9967. return getDerived().RebuildSizeOfPackExpr(E->getOperatorLoc(), Pack,
  9968. E->getPackLoc(),
  9969. E->getRParenLoc(), None, None);
  9970. }
  9971. // Try to compute the result without performing a partial substitution.
  9972. Optional<unsigned> Result = 0;
  9973. for (const TemplateArgument &Arg : PackArgs) {
  9974. if (!Arg.isPackExpansion()) {
  9975. Result = *Result + 1;
  9976. continue;
  9977. }
  9978. TemplateArgumentLoc ArgLoc;
  9979. InventTemplateArgumentLoc(Arg, ArgLoc);
  9980. // Find the pattern of the pack expansion.
  9981. SourceLocation Ellipsis;
  9982. Optional<unsigned> OrigNumExpansions;
  9983. TemplateArgumentLoc Pattern =
  9984. getSema().getTemplateArgumentPackExpansionPattern(ArgLoc, Ellipsis,
  9985. OrigNumExpansions);
  9986. // Substitute under the pack expansion. Do not expand the pack (yet).
  9987. TemplateArgumentLoc OutPattern;
  9988. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  9989. if (getDerived().TransformTemplateArgument(Pattern, OutPattern,
  9990. /*Uneval*/ true))
  9991. return true;
  9992. // See if we can determine the number of arguments from the result.
  9993. Optional<unsigned> NumExpansions =
  9994. getSema().getFullyPackExpandedSize(OutPattern.getArgument());
  9995. if (!NumExpansions) {
  9996. // No: we must be in an alias template expansion, and we're going to need
  9997. // to actually expand the packs.
  9998. Result = None;
  9999. break;
  10000. }
  10001. Result = *Result + *NumExpansions;
  10002. }
  10003. // Common case: we could determine the number of expansions without
  10004. // substituting.
  10005. if (Result)
  10006. return getDerived().RebuildSizeOfPackExpr(E->getOperatorLoc(), E->getPack(),
  10007. E->getPackLoc(),
  10008. E->getRParenLoc(), *Result, None);
  10009. TemplateArgumentListInfo TransformedPackArgs(E->getPackLoc(),
  10010. E->getPackLoc());
  10011. {
  10012. TemporaryBase Rebase(*this, E->getPackLoc(), getBaseEntity());
  10013. typedef TemplateArgumentLocInventIterator<
  10014. Derived, const TemplateArgument*> PackLocIterator;
  10015. if (TransformTemplateArguments(PackLocIterator(*this, PackArgs.begin()),
  10016. PackLocIterator(*this, PackArgs.end()),
  10017. TransformedPackArgs, /*Uneval*/true))
  10018. return ExprError();
  10019. }
  10020. // Check whether we managed to fully-expand the pack.
  10021. // FIXME: Is it possible for us to do so and not hit the early exit path?
  10022. SmallVector<TemplateArgument, 8> Args;
  10023. bool PartialSubstitution = false;
  10024. for (auto &Loc : TransformedPackArgs.arguments()) {
  10025. Args.push_back(Loc.getArgument());
  10026. if (Loc.getArgument().isPackExpansion())
  10027. PartialSubstitution = true;
  10028. }
  10029. if (PartialSubstitution)
  10030. return getDerived().RebuildSizeOfPackExpr(E->getOperatorLoc(), E->getPack(),
  10031. E->getPackLoc(),
  10032. E->getRParenLoc(), None, Args);
  10033. return getDerived().RebuildSizeOfPackExpr(E->getOperatorLoc(), E->getPack(),
  10034. E->getPackLoc(), E->getRParenLoc(),
  10035. Args.size(), None);
  10036. }
  10037. template<typename Derived>
  10038. ExprResult
  10039. TreeTransform<Derived>::TransformSubstNonTypeTemplateParmPackExpr(
  10040. SubstNonTypeTemplateParmPackExpr *E) {
  10041. // Default behavior is to do nothing with this transformation.
  10042. return E;
  10043. }
  10044. template<typename Derived>
  10045. ExprResult
  10046. TreeTransform<Derived>::TransformSubstNonTypeTemplateParmExpr(
  10047. SubstNonTypeTemplateParmExpr *E) {
  10048. // Default behavior is to do nothing with this transformation.
  10049. return E;
  10050. }
  10051. template<typename Derived>
  10052. ExprResult
  10053. TreeTransform<Derived>::TransformFunctionParmPackExpr(FunctionParmPackExpr *E) {
  10054. // Default behavior is to do nothing with this transformation.
  10055. return E;
  10056. }
  10057. template<typename Derived>
  10058. ExprResult
  10059. TreeTransform<Derived>::TransformMaterializeTemporaryExpr(
  10060. MaterializeTemporaryExpr *E) {
  10061. return getDerived().TransformExpr(E->GetTemporaryExpr());
  10062. }
  10063. template<typename Derived>
  10064. ExprResult
  10065. TreeTransform<Derived>::TransformCXXFoldExpr(CXXFoldExpr *E) {
  10066. Expr *Pattern = E->getPattern();
  10067. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  10068. getSema().collectUnexpandedParameterPacks(Pattern, Unexpanded);
  10069. assert(!Unexpanded.empty() && "Pack expansion without parameter packs?");
  10070. // Determine whether the set of unexpanded parameter packs can and should
  10071. // be expanded.
  10072. bool Expand = true;
  10073. bool RetainExpansion = false;
  10074. Optional<unsigned> NumExpansions;
  10075. if (getDerived().TryExpandParameterPacks(E->getEllipsisLoc(),
  10076. Pattern->getSourceRange(),
  10077. Unexpanded,
  10078. Expand, RetainExpansion,
  10079. NumExpansions))
  10080. return true;
  10081. if (!Expand) {
  10082. // Do not expand any packs here, just transform and rebuild a fold
  10083. // expression.
  10084. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  10085. ExprResult LHS =
  10086. E->getLHS() ? getDerived().TransformExpr(E->getLHS()) : ExprResult();
  10087. if (LHS.isInvalid())
  10088. return true;
  10089. ExprResult RHS =
  10090. E->getRHS() ? getDerived().TransformExpr(E->getRHS()) : ExprResult();
  10091. if (RHS.isInvalid())
  10092. return true;
  10093. if (!getDerived().AlwaysRebuild() &&
  10094. LHS.get() == E->getLHS() && RHS.get() == E->getRHS())
  10095. return E;
  10096. return getDerived().RebuildCXXFoldExpr(
  10097. E->getBeginLoc(), LHS.get(), E->getOperator(), E->getEllipsisLoc(),
  10098. RHS.get(), E->getEndLoc());
  10099. }
  10100. // The transform has determined that we should perform an elementwise
  10101. // expansion of the pattern. Do so.
  10102. ExprResult Result = getDerived().TransformExpr(E->getInit());
  10103. if (Result.isInvalid())
  10104. return true;
  10105. bool LeftFold = E->isLeftFold();
  10106. // If we're retaining an expansion for a right fold, it is the innermost
  10107. // component and takes the init (if any).
  10108. if (!LeftFold && RetainExpansion) {
  10109. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  10110. ExprResult Out = getDerived().TransformExpr(Pattern);
  10111. if (Out.isInvalid())
  10112. return true;
  10113. Result = getDerived().RebuildCXXFoldExpr(
  10114. E->getBeginLoc(), Out.get(), E->getOperator(), E->getEllipsisLoc(),
  10115. Result.get(), E->getEndLoc());
  10116. if (Result.isInvalid())
  10117. return true;
  10118. }
  10119. for (unsigned I = 0; I != *NumExpansions; ++I) {
  10120. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(
  10121. getSema(), LeftFold ? I : *NumExpansions - I - 1);
  10122. ExprResult Out = getDerived().TransformExpr(Pattern);
  10123. if (Out.isInvalid())
  10124. return true;
  10125. if (Out.get()->containsUnexpandedParameterPack()) {
  10126. // We still have a pack; retain a pack expansion for this slice.
  10127. Result = getDerived().RebuildCXXFoldExpr(
  10128. E->getBeginLoc(), LeftFold ? Result.get() : Out.get(),
  10129. E->getOperator(), E->getEllipsisLoc(),
  10130. LeftFold ? Out.get() : Result.get(), E->getEndLoc());
  10131. } else if (Result.isUsable()) {
  10132. // We've got down to a single element; build a binary operator.
  10133. Result = getDerived().RebuildBinaryOperator(
  10134. E->getEllipsisLoc(), E->getOperator(),
  10135. LeftFold ? Result.get() : Out.get(),
  10136. LeftFold ? Out.get() : Result.get());
  10137. } else
  10138. Result = Out;
  10139. if (Result.isInvalid())
  10140. return true;
  10141. }
  10142. // If we're retaining an expansion for a left fold, it is the outermost
  10143. // component and takes the complete expansion so far as its init (if any).
  10144. if (LeftFold && RetainExpansion) {
  10145. ForgetPartiallySubstitutedPackRAII Forget(getDerived());
  10146. ExprResult Out = getDerived().TransformExpr(Pattern);
  10147. if (Out.isInvalid())
  10148. return true;
  10149. Result = getDerived().RebuildCXXFoldExpr(
  10150. E->getBeginLoc(), Result.get(), E->getOperator(), E->getEllipsisLoc(),
  10151. Out.get(), E->getEndLoc());
  10152. if (Result.isInvalid())
  10153. return true;
  10154. }
  10155. // If we had no init and an empty pack, and we're not retaining an expansion,
  10156. // then produce a fallback value or error.
  10157. if (Result.isUnset())
  10158. return getDerived().RebuildEmptyCXXFoldExpr(E->getEllipsisLoc(),
  10159. E->getOperator());
  10160. return Result;
  10161. }
  10162. template<typename Derived>
  10163. ExprResult
  10164. TreeTransform<Derived>::TransformCXXStdInitializerListExpr(
  10165. CXXStdInitializerListExpr *E) {
  10166. return getDerived().TransformExpr(E->getSubExpr());
  10167. }
  10168. template<typename Derived>
  10169. ExprResult
  10170. TreeTransform<Derived>::TransformObjCStringLiteral(ObjCStringLiteral *E) {
  10171. return SemaRef.MaybeBindToTemporary(E);
  10172. }
  10173. template<typename Derived>
  10174. ExprResult
  10175. TreeTransform<Derived>::TransformObjCBoolLiteralExpr(ObjCBoolLiteralExpr *E) {
  10176. return E;
  10177. }
  10178. template<typename Derived>
  10179. ExprResult
  10180. TreeTransform<Derived>::TransformObjCBoxedExpr(ObjCBoxedExpr *E) {
  10181. ExprResult SubExpr = getDerived().TransformExpr(E->getSubExpr());
  10182. if (SubExpr.isInvalid())
  10183. return ExprError();
  10184. if (!getDerived().AlwaysRebuild() &&
  10185. SubExpr.get() == E->getSubExpr())
  10186. return E;
  10187. return getDerived().RebuildObjCBoxedExpr(E->getSourceRange(), SubExpr.get());
  10188. }
  10189. template<typename Derived>
  10190. ExprResult
  10191. TreeTransform<Derived>::TransformObjCArrayLiteral(ObjCArrayLiteral *E) {
  10192. // Transform each of the elements.
  10193. SmallVector<Expr *, 8> Elements;
  10194. bool ArgChanged = false;
  10195. if (getDerived().TransformExprs(E->getElements(), E->getNumElements(),
  10196. /*IsCall=*/false, Elements, &ArgChanged))
  10197. return ExprError();
  10198. if (!getDerived().AlwaysRebuild() && !ArgChanged)
  10199. return SemaRef.MaybeBindToTemporary(E);
  10200. return getDerived().RebuildObjCArrayLiteral(E->getSourceRange(),
  10201. Elements.data(),
  10202. Elements.size());
  10203. }
  10204. template<typename Derived>
  10205. ExprResult
  10206. TreeTransform<Derived>::TransformObjCDictionaryLiteral(
  10207. ObjCDictionaryLiteral *E) {
  10208. // Transform each of the elements.
  10209. SmallVector<ObjCDictionaryElement, 8> Elements;
  10210. bool ArgChanged = false;
  10211. for (unsigned I = 0, N = E->getNumElements(); I != N; ++I) {
  10212. ObjCDictionaryElement OrigElement = E->getKeyValueElement(I);
  10213. if (OrigElement.isPackExpansion()) {
  10214. // This key/value element is a pack expansion.
  10215. SmallVector<UnexpandedParameterPack, 2> Unexpanded;
  10216. getSema().collectUnexpandedParameterPacks(OrigElement.Key, Unexpanded);
  10217. getSema().collectUnexpandedParameterPacks(OrigElement.Value, Unexpanded);
  10218. assert(!Unexpanded.empty() && "Pack expansion without parameter packs?");
  10219. // Determine whether the set of unexpanded parameter packs can
  10220. // and should be expanded.
  10221. bool Expand = true;
  10222. bool RetainExpansion = false;
  10223. Optional<unsigned> OrigNumExpansions = OrigElement.NumExpansions;
  10224. Optional<unsigned> NumExpansions = OrigNumExpansions;
  10225. SourceRange PatternRange(OrigElement.Key->getBeginLoc(),
  10226. OrigElement.Value->getEndLoc());
  10227. if (getDerived().TryExpandParameterPacks(OrigElement.EllipsisLoc,
  10228. PatternRange, Unexpanded, Expand,
  10229. RetainExpansion, NumExpansions))
  10230. return ExprError();
  10231. if (!Expand) {
  10232. // The transform has determined that we should perform a simple
  10233. // transformation on the pack expansion, producing another pack
  10234. // expansion.
  10235. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), -1);
  10236. ExprResult Key = getDerived().TransformExpr(OrigElement.Key);
  10237. if (Key.isInvalid())
  10238. return ExprError();
  10239. if (Key.get() != OrigElement.Key)
  10240. ArgChanged = true;
  10241. ExprResult Value = getDerived().TransformExpr(OrigElement.Value);
  10242. if (Value.isInvalid())
  10243. return ExprError();
  10244. if (Value.get() != OrigElement.Value)
  10245. ArgChanged = true;
  10246. ObjCDictionaryElement Expansion = {
  10247. Key.get(), Value.get(), OrigElement.EllipsisLoc, NumExpansions
  10248. };
  10249. Elements.push_back(Expansion);
  10250. continue;
  10251. }
  10252. // Record right away that the argument was changed. This needs
  10253. // to happen even if the array expands to nothing.
  10254. ArgChanged = true;
  10255. // The transform has determined that we should perform an elementwise
  10256. // expansion of the pattern. Do so.
  10257. for (unsigned I = 0; I != *NumExpansions; ++I) {
  10258. Sema::ArgumentPackSubstitutionIndexRAII SubstIndex(getSema(), I);
  10259. ExprResult Key = getDerived().TransformExpr(OrigElement.Key);
  10260. if (Key.isInvalid())
  10261. return ExprError();
  10262. ExprResult Value = getDerived().TransformExpr(OrigElement.Value);
  10263. if (Value.isInvalid())
  10264. return ExprError();
  10265. ObjCDictionaryElement Element = {
  10266. Key.get(), Value.get(), SourceLocation(), NumExpansions
  10267. };
  10268. // If any unexpanded parameter packs remain, we still have a
  10269. // pack expansion.
  10270. // FIXME: Can this really happen?
  10271. if (Key.get()->containsUnexpandedParameterPack() ||
  10272. Value.get()->containsUnexpandedParameterPack())
  10273. Element.EllipsisLoc = OrigElement.EllipsisLoc;
  10274. Elements.push_back(Element);
  10275. }
  10276. // FIXME: Retain a pack expansion if RetainExpansion is true.
  10277. // We've finished with this pack expansion.
  10278. continue;
  10279. }
  10280. // Transform and check key.
  10281. ExprResult Key = getDerived().TransformExpr(OrigElement.Key);
  10282. if (Key.isInvalid())
  10283. return ExprError();
  10284. if (Key.get() != OrigElement.Key)
  10285. ArgChanged = true;
  10286. // Transform and check value.
  10287. ExprResult Value
  10288. = getDerived().TransformExpr(OrigElement.Value);
  10289. if (Value.isInvalid())
  10290. return ExprError();
  10291. if (Value.get() != OrigElement.Value)
  10292. ArgChanged = true;
  10293. ObjCDictionaryElement Element = {
  10294. Key.get(), Value.get(), SourceLocation(), None
  10295. };
  10296. Elements.push_back(Element);
  10297. }
  10298. if (!getDerived().AlwaysRebuild() && !ArgChanged)
  10299. return SemaRef.MaybeBindToTemporary(E);
  10300. return getDerived().RebuildObjCDictionaryLiteral(E->getSourceRange(),
  10301. Elements);
  10302. }
  10303. template<typename Derived>
  10304. ExprResult
  10305. TreeTransform<Derived>::TransformObjCEncodeExpr(ObjCEncodeExpr *E) {
  10306. TypeSourceInfo *EncodedTypeInfo
  10307. = getDerived().TransformType(E->getEncodedTypeSourceInfo());
  10308. if (!EncodedTypeInfo)
  10309. return ExprError();
  10310. if (!getDerived().AlwaysRebuild() &&
  10311. EncodedTypeInfo == E->getEncodedTypeSourceInfo())
  10312. return E;
  10313. return getDerived().RebuildObjCEncodeExpr(E->getAtLoc(),
  10314. EncodedTypeInfo,
  10315. E->getRParenLoc());
  10316. }
  10317. template<typename Derived>
  10318. ExprResult TreeTransform<Derived>::
  10319. TransformObjCIndirectCopyRestoreExpr(ObjCIndirectCopyRestoreExpr *E) {
  10320. // This is a kind of implicit conversion, and it needs to get dropped
  10321. // and recomputed for the same general reasons that ImplicitCastExprs
  10322. // do, as well a more specific one: this expression is only valid when
  10323. // it appears *immediately* as an argument expression.
  10324. return getDerived().TransformExpr(E->getSubExpr());
  10325. }
  10326. template<typename Derived>
  10327. ExprResult TreeTransform<Derived>::
  10328. TransformObjCBridgedCastExpr(ObjCBridgedCastExpr *E) {
  10329. TypeSourceInfo *TSInfo
  10330. = getDerived().TransformType(E->getTypeInfoAsWritten());
  10331. if (!TSInfo)
  10332. return ExprError();
  10333. ExprResult Result = getDerived().TransformExpr(E->getSubExpr());
  10334. if (Result.isInvalid())
  10335. return ExprError();
  10336. if (!getDerived().AlwaysRebuild() &&
  10337. TSInfo == E->getTypeInfoAsWritten() &&
  10338. Result.get() == E->getSubExpr())
  10339. return E;
  10340. return SemaRef.BuildObjCBridgedCast(E->getLParenLoc(), E->getBridgeKind(),
  10341. E->getBridgeKeywordLoc(), TSInfo,
  10342. Result.get());
  10343. }
  10344. template <typename Derived>
  10345. ExprResult TreeTransform<Derived>::TransformObjCAvailabilityCheckExpr(
  10346. ObjCAvailabilityCheckExpr *E) {
  10347. return E;
  10348. }
  10349. template<typename Derived>
  10350. ExprResult
  10351. TreeTransform<Derived>::TransformObjCMessageExpr(ObjCMessageExpr *E) {
  10352. // Transform arguments.
  10353. bool ArgChanged = false;
  10354. SmallVector<Expr*, 8> Args;
  10355. Args.reserve(E->getNumArgs());
  10356. if (getDerived().TransformExprs(E->getArgs(), E->getNumArgs(), false, Args,
  10357. &ArgChanged))
  10358. return ExprError();
  10359. if (E->getReceiverKind() == ObjCMessageExpr::Class) {
  10360. // Class message: transform the receiver type.
  10361. TypeSourceInfo *ReceiverTypeInfo
  10362. = getDerived().TransformType(E->getClassReceiverTypeInfo());
  10363. if (!ReceiverTypeInfo)
  10364. return ExprError();
  10365. // If nothing changed, just retain the existing message send.
  10366. if (!getDerived().AlwaysRebuild() &&
  10367. ReceiverTypeInfo == E->getClassReceiverTypeInfo() && !ArgChanged)
  10368. return SemaRef.MaybeBindToTemporary(E);
  10369. // Build a new class message send.
  10370. SmallVector<SourceLocation, 16> SelLocs;
  10371. E->getSelectorLocs(SelLocs);
  10372. return getDerived().RebuildObjCMessageExpr(ReceiverTypeInfo,
  10373. E->getSelector(),
  10374. SelLocs,
  10375. E->getMethodDecl(),
  10376. E->getLeftLoc(),
  10377. Args,
  10378. E->getRightLoc());
  10379. }
  10380. else if (E->getReceiverKind() == ObjCMessageExpr::SuperClass ||
  10381. E->getReceiverKind() == ObjCMessageExpr::SuperInstance) {
  10382. if (!E->getMethodDecl())
  10383. return ExprError();
  10384. // Build a new class message send to 'super'.
  10385. SmallVector<SourceLocation, 16> SelLocs;
  10386. E->getSelectorLocs(SelLocs);
  10387. return getDerived().RebuildObjCMessageExpr(E->getSuperLoc(),
  10388. E->getSelector(),
  10389. SelLocs,
  10390. E->getReceiverType(),
  10391. E->getMethodDecl(),
  10392. E->getLeftLoc(),
  10393. Args,
  10394. E->getRightLoc());
  10395. }
  10396. // Instance message: transform the receiver
  10397. assert(E->getReceiverKind() == ObjCMessageExpr::Instance &&
  10398. "Only class and instance messages may be instantiated");
  10399. ExprResult Receiver
  10400. = getDerived().TransformExpr(E->getInstanceReceiver());
  10401. if (Receiver.isInvalid())
  10402. return ExprError();
  10403. // If nothing changed, just retain the existing message send.
  10404. if (!getDerived().AlwaysRebuild() &&
  10405. Receiver.get() == E->getInstanceReceiver() && !ArgChanged)
  10406. return SemaRef.MaybeBindToTemporary(E);
  10407. // Build a new instance message send.
  10408. SmallVector<SourceLocation, 16> SelLocs;
  10409. E->getSelectorLocs(SelLocs);
  10410. return getDerived().RebuildObjCMessageExpr(Receiver.get(),
  10411. E->getSelector(),
  10412. SelLocs,
  10413. E->getMethodDecl(),
  10414. E->getLeftLoc(),
  10415. Args,
  10416. E->getRightLoc());
  10417. }
  10418. template<typename Derived>
  10419. ExprResult
  10420. TreeTransform<Derived>::TransformObjCSelectorExpr(ObjCSelectorExpr *E) {
  10421. return E;
  10422. }
  10423. template<typename Derived>
  10424. ExprResult
  10425. TreeTransform<Derived>::TransformObjCProtocolExpr(ObjCProtocolExpr *E) {
  10426. return E;
  10427. }
  10428. template<typename Derived>
  10429. ExprResult
  10430. TreeTransform<Derived>::TransformObjCIvarRefExpr(ObjCIvarRefExpr *E) {
  10431. // Transform the base expression.
  10432. ExprResult Base = getDerived().TransformExpr(E->getBase());
  10433. if (Base.isInvalid())
  10434. return ExprError();
  10435. // We don't need to transform the ivar; it will never change.
  10436. // If nothing changed, just retain the existing expression.
  10437. if (!getDerived().AlwaysRebuild() &&
  10438. Base.get() == E->getBase())
  10439. return E;
  10440. return getDerived().RebuildObjCIvarRefExpr(Base.get(), E->getDecl(),
  10441. E->getLocation(),
  10442. E->isArrow(), E->isFreeIvar());
  10443. }
  10444. template<typename Derived>
  10445. ExprResult
  10446. TreeTransform<Derived>::TransformObjCPropertyRefExpr(ObjCPropertyRefExpr *E) {
  10447. // 'super' and types never change. Property never changes. Just
  10448. // retain the existing expression.
  10449. if (!E->isObjectReceiver())
  10450. return E;
  10451. // Transform the base expression.
  10452. ExprResult Base = getDerived().TransformExpr(E->getBase());
  10453. if (Base.isInvalid())
  10454. return ExprError();
  10455. // We don't need to transform the property; it will never change.
  10456. // If nothing changed, just retain the existing expression.
  10457. if (!getDerived().AlwaysRebuild() &&
  10458. Base.get() == E->getBase())
  10459. return E;
  10460. if (E->isExplicitProperty())
  10461. return getDerived().RebuildObjCPropertyRefExpr(Base.get(),
  10462. E->getExplicitProperty(),
  10463. E->getLocation());
  10464. return getDerived().RebuildObjCPropertyRefExpr(Base.get(),
  10465. SemaRef.Context.PseudoObjectTy,
  10466. E->getImplicitPropertyGetter(),
  10467. E->getImplicitPropertySetter(),
  10468. E->getLocation());
  10469. }
  10470. template<typename Derived>
  10471. ExprResult
  10472. TreeTransform<Derived>::TransformObjCSubscriptRefExpr(ObjCSubscriptRefExpr *E) {
  10473. // Transform the base expression.
  10474. ExprResult Base = getDerived().TransformExpr(E->getBaseExpr());
  10475. if (Base.isInvalid())
  10476. return ExprError();
  10477. // Transform the key expression.
  10478. ExprResult Key = getDerived().TransformExpr(E->getKeyExpr());
  10479. if (Key.isInvalid())
  10480. return ExprError();
  10481. // If nothing changed, just retain the existing expression.
  10482. if (!getDerived().AlwaysRebuild() &&
  10483. Key.get() == E->getKeyExpr() && Base.get() == E->getBaseExpr())
  10484. return E;
  10485. return getDerived().RebuildObjCSubscriptRefExpr(E->getRBracket(),
  10486. Base.get(), Key.get(),
  10487. E->getAtIndexMethodDecl(),
  10488. E->setAtIndexMethodDecl());
  10489. }
  10490. template<typename Derived>
  10491. ExprResult
  10492. TreeTransform<Derived>::TransformObjCIsaExpr(ObjCIsaExpr *E) {
  10493. // Transform the base expression.
  10494. ExprResult Base = getDerived().TransformExpr(E->getBase());
  10495. if (Base.isInvalid())
  10496. return ExprError();
  10497. // If nothing changed, just retain the existing expression.
  10498. if (!getDerived().AlwaysRebuild() &&
  10499. Base.get() == E->getBase())
  10500. return E;
  10501. return getDerived().RebuildObjCIsaExpr(Base.get(), E->getIsaMemberLoc(),
  10502. E->getOpLoc(),
  10503. E->isArrow());
  10504. }
  10505. template<typename Derived>
  10506. ExprResult
  10507. TreeTransform<Derived>::TransformShuffleVectorExpr(ShuffleVectorExpr *E) {
  10508. bool ArgumentChanged = false;
  10509. SmallVector<Expr*, 8> SubExprs;
  10510. SubExprs.reserve(E->getNumSubExprs());
  10511. if (getDerived().TransformExprs(E->getSubExprs(), E->getNumSubExprs(), false,
  10512. SubExprs, &ArgumentChanged))
  10513. return ExprError();
  10514. if (!getDerived().AlwaysRebuild() &&
  10515. !ArgumentChanged)
  10516. return E;
  10517. return getDerived().RebuildShuffleVectorExpr(E->getBuiltinLoc(),
  10518. SubExprs,
  10519. E->getRParenLoc());
  10520. }
  10521. template<typename Derived>
  10522. ExprResult
  10523. TreeTransform<Derived>::TransformConvertVectorExpr(ConvertVectorExpr *E) {
  10524. ExprResult SrcExpr = getDerived().TransformExpr(E->getSrcExpr());
  10525. if (SrcExpr.isInvalid())
  10526. return ExprError();
  10527. TypeSourceInfo *Type = getDerived().TransformType(E->getTypeSourceInfo());
  10528. if (!Type)
  10529. return ExprError();
  10530. if (!getDerived().AlwaysRebuild() &&
  10531. Type == E->getTypeSourceInfo() &&
  10532. SrcExpr.get() == E->getSrcExpr())
  10533. return E;
  10534. return getDerived().RebuildConvertVectorExpr(E->getBuiltinLoc(),
  10535. SrcExpr.get(), Type,
  10536. E->getRParenLoc());
  10537. }
  10538. template<typename Derived>
  10539. ExprResult
  10540. TreeTransform<Derived>::TransformBlockExpr(BlockExpr *E) {
  10541. BlockDecl *oldBlock = E->getBlockDecl();
  10542. SemaRef.ActOnBlockStart(E->getCaretLocation(), /*Scope=*/nullptr);
  10543. BlockScopeInfo *blockScope = SemaRef.getCurBlock();
  10544. blockScope->TheDecl->setIsVariadic(oldBlock->isVariadic());
  10545. blockScope->TheDecl->setBlockMissingReturnType(
  10546. oldBlock->blockMissingReturnType());
  10547. SmallVector<ParmVarDecl*, 4> params;
  10548. SmallVector<QualType, 4> paramTypes;
  10549. const FunctionProtoType *exprFunctionType = E->getFunctionType();
  10550. // Parameter substitution.
  10551. Sema::ExtParameterInfoBuilder extParamInfos;
  10552. if (getDerived().TransformFunctionTypeParams(
  10553. E->getCaretLocation(), oldBlock->parameters(), nullptr,
  10554. exprFunctionType->getExtParameterInfosOrNull(), paramTypes, &params,
  10555. extParamInfos)) {
  10556. getSema().ActOnBlockError(E->getCaretLocation(), /*Scope=*/nullptr);
  10557. return ExprError();
  10558. }
  10559. QualType exprResultType =
  10560. getDerived().TransformType(exprFunctionType->getReturnType());
  10561. auto epi = exprFunctionType->getExtProtoInfo();
  10562. epi.ExtParameterInfos = extParamInfos.getPointerOrNull(paramTypes.size());
  10563. QualType functionType =
  10564. getDerived().RebuildFunctionProtoType(exprResultType, paramTypes, epi);
  10565. blockScope->FunctionType = functionType;
  10566. // Set the parameters on the block decl.
  10567. if (!params.empty())
  10568. blockScope->TheDecl->setParams(params);
  10569. if (!oldBlock->blockMissingReturnType()) {
  10570. blockScope->HasImplicitReturnType = false;
  10571. blockScope->ReturnType = exprResultType;
  10572. }
  10573. // Transform the body
  10574. StmtResult body = getDerived().TransformStmt(E->getBody());
  10575. if (body.isInvalid()) {
  10576. getSema().ActOnBlockError(E->getCaretLocation(), /*Scope=*/nullptr);
  10577. return ExprError();
  10578. }
  10579. #ifndef NDEBUG
  10580. // In builds with assertions, make sure that we captured everything we
  10581. // captured before.
  10582. if (!SemaRef.getDiagnostics().hasErrorOccurred()) {
  10583. for (const auto &I : oldBlock->captures()) {
  10584. VarDecl *oldCapture = I.getVariable();
  10585. // Ignore parameter packs.
  10586. if (isa<ParmVarDecl>(oldCapture) &&
  10587. cast<ParmVarDecl>(oldCapture)->isParameterPack())
  10588. continue;
  10589. VarDecl *newCapture =
  10590. cast<VarDecl>(getDerived().TransformDecl(E->getCaretLocation(),
  10591. oldCapture));
  10592. assert(blockScope->CaptureMap.count(newCapture));
  10593. }
  10594. assert(oldBlock->capturesCXXThis() == blockScope->isCXXThisCaptured());
  10595. }
  10596. #endif
  10597. return SemaRef.ActOnBlockStmtExpr(E->getCaretLocation(), body.get(),
  10598. /*Scope=*/nullptr);
  10599. }
  10600. template<typename Derived>
  10601. ExprResult
  10602. TreeTransform<Derived>::TransformAsTypeExpr(AsTypeExpr *E) {
  10603. llvm_unreachable("Cannot transform asType expressions yet");
  10604. }
  10605. template<typename Derived>
  10606. ExprResult
  10607. TreeTransform<Derived>::TransformAtomicExpr(AtomicExpr *E) {
  10608. QualType RetTy = getDerived().TransformType(E->getType());
  10609. bool ArgumentChanged = false;
  10610. SmallVector<Expr*, 8> SubExprs;
  10611. SubExprs.reserve(E->getNumSubExprs());
  10612. if (getDerived().TransformExprs(E->getSubExprs(), E->getNumSubExprs(), false,
  10613. SubExprs, &ArgumentChanged))
  10614. return ExprError();
  10615. if (!getDerived().AlwaysRebuild() &&
  10616. !ArgumentChanged)
  10617. return E;
  10618. return getDerived().RebuildAtomicExpr(E->getBuiltinLoc(), SubExprs,
  10619. RetTy, E->getOp(), E->getRParenLoc());
  10620. }
  10621. //===----------------------------------------------------------------------===//
  10622. // Type reconstruction
  10623. //===----------------------------------------------------------------------===//
  10624. template<typename Derived>
  10625. QualType TreeTransform<Derived>::RebuildPointerType(QualType PointeeType,
  10626. SourceLocation Star) {
  10627. return SemaRef.BuildPointerType(PointeeType, Star,
  10628. getDerived().getBaseEntity());
  10629. }
  10630. template<typename Derived>
  10631. QualType TreeTransform<Derived>::RebuildBlockPointerType(QualType PointeeType,
  10632. SourceLocation Star) {
  10633. return SemaRef.BuildBlockPointerType(PointeeType, Star,
  10634. getDerived().getBaseEntity());
  10635. }
  10636. template<typename Derived>
  10637. QualType
  10638. TreeTransform<Derived>::RebuildReferenceType(QualType ReferentType,
  10639. bool WrittenAsLValue,
  10640. SourceLocation Sigil) {
  10641. return SemaRef.BuildReferenceType(ReferentType, WrittenAsLValue,
  10642. Sigil, getDerived().getBaseEntity());
  10643. }
  10644. template<typename Derived>
  10645. QualType
  10646. TreeTransform<Derived>::RebuildMemberPointerType(QualType PointeeType,
  10647. QualType ClassType,
  10648. SourceLocation Sigil) {
  10649. return SemaRef.BuildMemberPointerType(PointeeType, ClassType, Sigil,
  10650. getDerived().getBaseEntity());
  10651. }
  10652. template<typename Derived>
  10653. QualType TreeTransform<Derived>::RebuildObjCTypeParamType(
  10654. const ObjCTypeParamDecl *Decl,
  10655. SourceLocation ProtocolLAngleLoc,
  10656. ArrayRef<ObjCProtocolDecl *> Protocols,
  10657. ArrayRef<SourceLocation> ProtocolLocs,
  10658. SourceLocation ProtocolRAngleLoc) {
  10659. return SemaRef.BuildObjCTypeParamType(Decl,
  10660. ProtocolLAngleLoc, Protocols,
  10661. ProtocolLocs, ProtocolRAngleLoc,
  10662. /*FailOnError=*/true);
  10663. }
  10664. template<typename Derived>
  10665. QualType TreeTransform<Derived>::RebuildObjCObjectType(
  10666. QualType BaseType,
  10667. SourceLocation Loc,
  10668. SourceLocation TypeArgsLAngleLoc,
  10669. ArrayRef<TypeSourceInfo *> TypeArgs,
  10670. SourceLocation TypeArgsRAngleLoc,
  10671. SourceLocation ProtocolLAngleLoc,
  10672. ArrayRef<ObjCProtocolDecl *> Protocols,
  10673. ArrayRef<SourceLocation> ProtocolLocs,
  10674. SourceLocation ProtocolRAngleLoc) {
  10675. return SemaRef.BuildObjCObjectType(BaseType, Loc, TypeArgsLAngleLoc,
  10676. TypeArgs, TypeArgsRAngleLoc,
  10677. ProtocolLAngleLoc, Protocols, ProtocolLocs,
  10678. ProtocolRAngleLoc,
  10679. /*FailOnError=*/true);
  10680. }
  10681. template<typename Derived>
  10682. QualType TreeTransform<Derived>::RebuildObjCObjectPointerType(
  10683. QualType PointeeType,
  10684. SourceLocation Star) {
  10685. return SemaRef.Context.getObjCObjectPointerType(PointeeType);
  10686. }
  10687. template<typename Derived>
  10688. QualType
  10689. TreeTransform<Derived>::RebuildArrayType(QualType ElementType,
  10690. ArrayType::ArraySizeModifier SizeMod,
  10691. const llvm::APInt *Size,
  10692. Expr *SizeExpr,
  10693. unsigned IndexTypeQuals,
  10694. SourceRange BracketsRange) {
  10695. if (SizeExpr || !Size)
  10696. return SemaRef.BuildArrayType(ElementType, SizeMod, SizeExpr,
  10697. IndexTypeQuals, BracketsRange,
  10698. getDerived().getBaseEntity());
  10699. QualType Types[] = {
  10700. SemaRef.Context.UnsignedCharTy, SemaRef.Context.UnsignedShortTy,
  10701. SemaRef.Context.UnsignedIntTy, SemaRef.Context.UnsignedLongTy,
  10702. SemaRef.Context.UnsignedLongLongTy, SemaRef.Context.UnsignedInt128Ty
  10703. };
  10704. const unsigned NumTypes = llvm::array_lengthof(Types);
  10705. QualType SizeType;
  10706. for (unsigned I = 0; I != NumTypes; ++I)
  10707. if (Size->getBitWidth() == SemaRef.Context.getIntWidth(Types[I])) {
  10708. SizeType = Types[I];
  10709. break;
  10710. }
  10711. // Note that we can return a VariableArrayType here in the case where
  10712. // the element type was a dependent VariableArrayType.
  10713. IntegerLiteral *ArraySize
  10714. = IntegerLiteral::Create(SemaRef.Context, *Size, SizeType,
  10715. /*FIXME*/BracketsRange.getBegin());
  10716. return SemaRef.BuildArrayType(ElementType, SizeMod, ArraySize,
  10717. IndexTypeQuals, BracketsRange,
  10718. getDerived().getBaseEntity());
  10719. }
  10720. template<typename Derived>
  10721. QualType
  10722. TreeTransform<Derived>::RebuildConstantArrayType(QualType ElementType,
  10723. ArrayType::ArraySizeModifier SizeMod,
  10724. const llvm::APInt &Size,
  10725. unsigned IndexTypeQuals,
  10726. SourceRange BracketsRange) {
  10727. return getDerived().RebuildArrayType(ElementType, SizeMod, &Size, nullptr,
  10728. IndexTypeQuals, BracketsRange);
  10729. }
  10730. template<typename Derived>
  10731. QualType
  10732. TreeTransform<Derived>::RebuildIncompleteArrayType(QualType ElementType,
  10733. ArrayType::ArraySizeModifier SizeMod,
  10734. unsigned IndexTypeQuals,
  10735. SourceRange BracketsRange) {
  10736. return getDerived().RebuildArrayType(ElementType, SizeMod, nullptr, nullptr,
  10737. IndexTypeQuals, BracketsRange);
  10738. }
  10739. template<typename Derived>
  10740. QualType
  10741. TreeTransform<Derived>::RebuildVariableArrayType(QualType ElementType,
  10742. ArrayType::ArraySizeModifier SizeMod,
  10743. Expr *SizeExpr,
  10744. unsigned IndexTypeQuals,
  10745. SourceRange BracketsRange) {
  10746. return getDerived().RebuildArrayType(ElementType, SizeMod, nullptr,
  10747. SizeExpr,
  10748. IndexTypeQuals, BracketsRange);
  10749. }
  10750. template<typename Derived>
  10751. QualType
  10752. TreeTransform<Derived>::RebuildDependentSizedArrayType(QualType ElementType,
  10753. ArrayType::ArraySizeModifier SizeMod,
  10754. Expr *SizeExpr,
  10755. unsigned IndexTypeQuals,
  10756. SourceRange BracketsRange) {
  10757. return getDerived().RebuildArrayType(ElementType, SizeMod, nullptr,
  10758. SizeExpr,
  10759. IndexTypeQuals, BracketsRange);
  10760. }
  10761. template <typename Derived>
  10762. QualType TreeTransform<Derived>::RebuildDependentAddressSpaceType(
  10763. QualType PointeeType, Expr *AddrSpaceExpr, SourceLocation AttributeLoc) {
  10764. return SemaRef.BuildAddressSpaceAttr(PointeeType, AddrSpaceExpr,
  10765. AttributeLoc);
  10766. }
  10767. template <typename Derived>
  10768. QualType
  10769. TreeTransform<Derived>::RebuildVectorType(QualType ElementType,
  10770. unsigned NumElements,
  10771. VectorType::VectorKind VecKind) {
  10772. // FIXME: semantic checking!
  10773. return SemaRef.Context.getVectorType(ElementType, NumElements, VecKind);
  10774. }
  10775. template <typename Derived>
  10776. QualType TreeTransform<Derived>::RebuildDependentVectorType(
  10777. QualType ElementType, Expr *SizeExpr, SourceLocation AttributeLoc,
  10778. VectorType::VectorKind VecKind) {
  10779. return SemaRef.BuildVectorType(ElementType, SizeExpr, AttributeLoc);
  10780. }
  10781. template<typename Derived>
  10782. QualType TreeTransform<Derived>::RebuildExtVectorType(QualType ElementType,
  10783. unsigned NumElements,
  10784. SourceLocation AttributeLoc) {
  10785. llvm::APInt numElements(SemaRef.Context.getIntWidth(SemaRef.Context.IntTy),
  10786. NumElements, true);
  10787. IntegerLiteral *VectorSize
  10788. = IntegerLiteral::Create(SemaRef.Context, numElements, SemaRef.Context.IntTy,
  10789. AttributeLoc);
  10790. return SemaRef.BuildExtVectorType(ElementType, VectorSize, AttributeLoc);
  10791. }
  10792. template<typename Derived>
  10793. QualType
  10794. TreeTransform<Derived>::RebuildDependentSizedExtVectorType(QualType ElementType,
  10795. Expr *SizeExpr,
  10796. SourceLocation AttributeLoc) {
  10797. return SemaRef.BuildExtVectorType(ElementType, SizeExpr, AttributeLoc);
  10798. }
  10799. template<typename Derived>
  10800. QualType TreeTransform<Derived>::RebuildFunctionProtoType(
  10801. QualType T,
  10802. MutableArrayRef<QualType> ParamTypes,
  10803. const FunctionProtoType::ExtProtoInfo &EPI) {
  10804. return SemaRef.BuildFunctionType(T, ParamTypes,
  10805. getDerived().getBaseLocation(),
  10806. getDerived().getBaseEntity(),
  10807. EPI);
  10808. }
  10809. template<typename Derived>
  10810. QualType TreeTransform<Derived>::RebuildFunctionNoProtoType(QualType T) {
  10811. return SemaRef.Context.getFunctionNoProtoType(T);
  10812. }
  10813. template<typename Derived>
  10814. QualType TreeTransform<Derived>::RebuildUnresolvedUsingType(SourceLocation Loc,
  10815. Decl *D) {
  10816. assert(D && "no decl found");
  10817. if (D->isInvalidDecl()) return QualType();
  10818. // FIXME: Doesn't account for ObjCInterfaceDecl!
  10819. TypeDecl *Ty;
  10820. if (auto *UPD = dyn_cast<UsingPackDecl>(D)) {
  10821. // A valid resolved using typename pack expansion decl can have multiple
  10822. // UsingDecls, but they must each have exactly one type, and it must be
  10823. // the same type in every case. But we must have at least one expansion!
  10824. if (UPD->expansions().empty()) {
  10825. getSema().Diag(Loc, diag::err_using_pack_expansion_empty)
  10826. << UPD->isCXXClassMember() << UPD;
  10827. return QualType();
  10828. }
  10829. // We might still have some unresolved types. Try to pick a resolved type
  10830. // if we can. The final instantiation will check that the remaining
  10831. // unresolved types instantiate to the type we pick.
  10832. QualType FallbackT;
  10833. QualType T;
  10834. for (auto *E : UPD->expansions()) {
  10835. QualType ThisT = RebuildUnresolvedUsingType(Loc, E);
  10836. if (ThisT.isNull())
  10837. continue;
  10838. else if (ThisT->getAs<UnresolvedUsingType>())
  10839. FallbackT = ThisT;
  10840. else if (T.isNull())
  10841. T = ThisT;
  10842. else
  10843. assert(getSema().Context.hasSameType(ThisT, T) &&
  10844. "mismatched resolved types in using pack expansion");
  10845. }
  10846. return T.isNull() ? FallbackT : T;
  10847. } else if (auto *Using = dyn_cast<UsingDecl>(D)) {
  10848. assert(Using->hasTypename() &&
  10849. "UnresolvedUsingTypenameDecl transformed to non-typename using");
  10850. // A valid resolved using typename decl points to exactly one type decl.
  10851. assert(++Using->shadow_begin() == Using->shadow_end());
  10852. Ty = cast<TypeDecl>((*Using->shadow_begin())->getTargetDecl());
  10853. } else {
  10854. assert(isa<UnresolvedUsingTypenameDecl>(D) &&
  10855. "UnresolvedUsingTypenameDecl transformed to non-using decl");
  10856. Ty = cast<UnresolvedUsingTypenameDecl>(D);
  10857. }
  10858. return SemaRef.Context.getTypeDeclType(Ty);
  10859. }
  10860. template<typename Derived>
  10861. QualType TreeTransform<Derived>::RebuildTypeOfExprType(Expr *E,
  10862. SourceLocation Loc) {
  10863. return SemaRef.BuildTypeofExprType(E, Loc);
  10864. }
  10865. template<typename Derived>
  10866. QualType TreeTransform<Derived>::RebuildTypeOfType(QualType Underlying) {
  10867. return SemaRef.Context.getTypeOfType(Underlying);
  10868. }
  10869. template<typename Derived>
  10870. QualType TreeTransform<Derived>::RebuildDecltypeType(Expr *E,
  10871. SourceLocation Loc) {
  10872. return SemaRef.BuildDecltypeType(E, Loc);
  10873. }
  10874. template<typename Derived>
  10875. QualType TreeTransform<Derived>::RebuildUnaryTransformType(QualType BaseType,
  10876. UnaryTransformType::UTTKind UKind,
  10877. SourceLocation Loc) {
  10878. return SemaRef.BuildUnaryTransformType(BaseType, UKind, Loc);
  10879. }
  10880. template<typename Derived>
  10881. QualType TreeTransform<Derived>::RebuildTemplateSpecializationType(
  10882. TemplateName Template,
  10883. SourceLocation TemplateNameLoc,
  10884. TemplateArgumentListInfo &TemplateArgs) {
  10885. return SemaRef.CheckTemplateIdType(Template, TemplateNameLoc, TemplateArgs);
  10886. }
  10887. template<typename Derived>
  10888. QualType TreeTransform<Derived>::RebuildAtomicType(QualType ValueType,
  10889. SourceLocation KWLoc) {
  10890. return SemaRef.BuildAtomicType(ValueType, KWLoc);
  10891. }
  10892. template<typename Derived>
  10893. QualType TreeTransform<Derived>::RebuildPipeType(QualType ValueType,
  10894. SourceLocation KWLoc,
  10895. bool isReadPipe) {
  10896. return isReadPipe ? SemaRef.BuildReadPipeType(ValueType, KWLoc)
  10897. : SemaRef.BuildWritePipeType(ValueType, KWLoc);
  10898. }
  10899. template<typename Derived>
  10900. TemplateName
  10901. TreeTransform<Derived>::RebuildTemplateName(CXXScopeSpec &SS,
  10902. bool TemplateKW,
  10903. TemplateDecl *Template) {
  10904. return SemaRef.Context.getQualifiedTemplateName(SS.getScopeRep(), TemplateKW,
  10905. Template);
  10906. }
  10907. template<typename Derived>
  10908. TemplateName
  10909. TreeTransform<Derived>::RebuildTemplateName(CXXScopeSpec &SS,
  10910. SourceLocation TemplateKWLoc,
  10911. const IdentifierInfo &Name,
  10912. SourceLocation NameLoc,
  10913. QualType ObjectType,
  10914. NamedDecl *FirstQualifierInScope,
  10915. bool AllowInjectedClassName) {
  10916. UnqualifiedId TemplateName;
  10917. TemplateName.setIdentifier(&Name, NameLoc);
  10918. Sema::TemplateTy Template;
  10919. getSema().ActOnDependentTemplateName(/*Scope=*/nullptr,
  10920. SS, TemplateKWLoc, TemplateName,
  10921. ParsedType::make(ObjectType),
  10922. /*EnteringContext=*/false,
  10923. Template, AllowInjectedClassName);
  10924. return Template.get();
  10925. }
  10926. template<typename Derived>
  10927. TemplateName
  10928. TreeTransform<Derived>::RebuildTemplateName(CXXScopeSpec &SS,
  10929. SourceLocation TemplateKWLoc,
  10930. OverloadedOperatorKind Operator,
  10931. SourceLocation NameLoc,
  10932. QualType ObjectType,
  10933. bool AllowInjectedClassName) {
  10934. UnqualifiedId Name;
  10935. // FIXME: Bogus location information.
  10936. SourceLocation SymbolLocations[3] = { NameLoc, NameLoc, NameLoc };
  10937. Name.setOperatorFunctionId(NameLoc, Operator, SymbolLocations);
  10938. Sema::TemplateTy Template;
  10939. getSema().ActOnDependentTemplateName(/*Scope=*/nullptr,
  10940. SS, TemplateKWLoc, Name,
  10941. ParsedType::make(ObjectType),
  10942. /*EnteringContext=*/false,
  10943. Template, AllowInjectedClassName);
  10944. return Template.get();
  10945. }
  10946. template<typename Derived>
  10947. ExprResult
  10948. TreeTransform<Derived>::RebuildCXXOperatorCallExpr(OverloadedOperatorKind Op,
  10949. SourceLocation OpLoc,
  10950. Expr *OrigCallee,
  10951. Expr *First,
  10952. Expr *Second) {
  10953. Expr *Callee = OrigCallee->IgnoreParenCasts();
  10954. bool isPostIncDec = Second && (Op == OO_PlusPlus || Op == OO_MinusMinus);
  10955. if (First->getObjectKind() == OK_ObjCProperty) {
  10956. BinaryOperatorKind Opc = BinaryOperator::getOverloadedOpcode(Op);
  10957. if (BinaryOperator::isAssignmentOp(Opc))
  10958. return SemaRef.checkPseudoObjectAssignment(/*Scope=*/nullptr, OpLoc, Opc,
  10959. First, Second);
  10960. ExprResult Result = SemaRef.CheckPlaceholderExpr(First);
  10961. if (Result.isInvalid())
  10962. return ExprError();
  10963. First = Result.get();
  10964. }
  10965. if (Second && Second->getObjectKind() == OK_ObjCProperty) {
  10966. ExprResult Result = SemaRef.CheckPlaceholderExpr(Second);
  10967. if (Result.isInvalid())
  10968. return ExprError();
  10969. Second = Result.get();
  10970. }
  10971. // Determine whether this should be a builtin operation.
  10972. if (Op == OO_Subscript) {
  10973. if (!First->getType()->isOverloadableType() &&
  10974. !Second->getType()->isOverloadableType())
  10975. return getSema().CreateBuiltinArraySubscriptExpr(
  10976. First, Callee->getBeginLoc(), Second, OpLoc);
  10977. } else if (Op == OO_Arrow) {
  10978. // -> is never a builtin operation.
  10979. return SemaRef.BuildOverloadedArrowExpr(nullptr, First, OpLoc);
  10980. } else if (Second == nullptr || isPostIncDec) {
  10981. if (!First->getType()->isOverloadableType() ||
  10982. (Op == OO_Amp && getSema().isQualifiedMemberAccess(First))) {
  10983. // The argument is not of overloadable type, or this is an expression
  10984. // of the form &Class::member, so try to create a built-in unary
  10985. // operation.
  10986. UnaryOperatorKind Opc
  10987. = UnaryOperator::getOverloadedOpcode(Op, isPostIncDec);
  10988. return getSema().CreateBuiltinUnaryOp(OpLoc, Opc, First);
  10989. }
  10990. } else {
  10991. if (!First->getType()->isOverloadableType() &&
  10992. !Second->getType()->isOverloadableType()) {
  10993. // Neither of the arguments is an overloadable type, so try to
  10994. // create a built-in binary operation.
  10995. BinaryOperatorKind Opc = BinaryOperator::getOverloadedOpcode(Op);
  10996. ExprResult Result
  10997. = SemaRef.CreateBuiltinBinOp(OpLoc, Opc, First, Second);
  10998. if (Result.isInvalid())
  10999. return ExprError();
  11000. return Result;
  11001. }
  11002. }
  11003. // Compute the transformed set of functions (and function templates) to be
  11004. // used during overload resolution.
  11005. UnresolvedSet<16> Functions;
  11006. bool RequiresADL;
  11007. if (UnresolvedLookupExpr *ULE = dyn_cast<UnresolvedLookupExpr>(Callee)) {
  11008. Functions.append(ULE->decls_begin(), ULE->decls_end());
  11009. // If the overload could not be resolved in the template definition
  11010. // (because we had a dependent argument), ADL is performed as part of
  11011. // template instantiation.
  11012. RequiresADL = ULE->requiresADL();
  11013. } else {
  11014. // If we've resolved this to a particular non-member function, just call
  11015. // that function. If we resolved it to a member function,
  11016. // CreateOverloaded* will find that function for us.
  11017. NamedDecl *ND = cast<DeclRefExpr>(Callee)->getDecl();
  11018. if (!isa<CXXMethodDecl>(ND))
  11019. Functions.addDecl(ND);
  11020. RequiresADL = false;
  11021. }
  11022. // Add any functions found via argument-dependent lookup.
  11023. Expr *Args[2] = { First, Second };
  11024. unsigned NumArgs = 1 + (Second != nullptr);
  11025. // Create the overloaded operator invocation for unary operators.
  11026. if (NumArgs == 1 || isPostIncDec) {
  11027. UnaryOperatorKind Opc
  11028. = UnaryOperator::getOverloadedOpcode(Op, isPostIncDec);
  11029. return SemaRef.CreateOverloadedUnaryOp(OpLoc, Opc, Functions, First,
  11030. RequiresADL);
  11031. }
  11032. if (Op == OO_Subscript) {
  11033. SourceLocation LBrace;
  11034. SourceLocation RBrace;
  11035. if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Callee)) {
  11036. DeclarationNameLoc NameLoc = DRE->getNameInfo().getInfo();
  11037. LBrace = SourceLocation::getFromRawEncoding(
  11038. NameLoc.CXXOperatorName.BeginOpNameLoc);
  11039. RBrace = SourceLocation::getFromRawEncoding(
  11040. NameLoc.CXXOperatorName.EndOpNameLoc);
  11041. } else {
  11042. LBrace = Callee->getBeginLoc();
  11043. RBrace = OpLoc;
  11044. }
  11045. return SemaRef.CreateOverloadedArraySubscriptExpr(LBrace, RBrace,
  11046. First, Second);
  11047. }
  11048. // Create the overloaded operator invocation for binary operators.
  11049. BinaryOperatorKind Opc = BinaryOperator::getOverloadedOpcode(Op);
  11050. ExprResult Result = SemaRef.CreateOverloadedBinOp(
  11051. OpLoc, Opc, Functions, Args[0], Args[1], RequiresADL);
  11052. if (Result.isInvalid())
  11053. return ExprError();
  11054. return Result;
  11055. }
  11056. template<typename Derived>
  11057. ExprResult
  11058. TreeTransform<Derived>::RebuildCXXPseudoDestructorExpr(Expr *Base,
  11059. SourceLocation OperatorLoc,
  11060. bool isArrow,
  11061. CXXScopeSpec &SS,
  11062. TypeSourceInfo *ScopeType,
  11063. SourceLocation CCLoc,
  11064. SourceLocation TildeLoc,
  11065. PseudoDestructorTypeStorage Destroyed) {
  11066. QualType BaseType = Base->getType();
  11067. if (Base->isTypeDependent() || Destroyed.getIdentifier() ||
  11068. (!isArrow && !BaseType->getAs<RecordType>()) ||
  11069. (isArrow && BaseType->getAs<PointerType>() &&
  11070. !BaseType->getAs<PointerType>()->getPointeeType()
  11071. ->template getAs<RecordType>())){
  11072. // This pseudo-destructor expression is still a pseudo-destructor.
  11073. return SemaRef.BuildPseudoDestructorExpr(
  11074. Base, OperatorLoc, isArrow ? tok::arrow : tok::period, SS, ScopeType,
  11075. CCLoc, TildeLoc, Destroyed);
  11076. }
  11077. TypeSourceInfo *DestroyedType = Destroyed.getTypeSourceInfo();
  11078. DeclarationName Name(SemaRef.Context.DeclarationNames.getCXXDestructorName(
  11079. SemaRef.Context.getCanonicalType(DestroyedType->getType())));
  11080. DeclarationNameInfo NameInfo(Name, Destroyed.getLocation());
  11081. NameInfo.setNamedTypeInfo(DestroyedType);
  11082. // The scope type is now known to be a valid nested name specifier
  11083. // component. Tack it on to the end of the nested name specifier.
  11084. if (ScopeType) {
  11085. if (!ScopeType->getType()->getAs<TagType>()) {
  11086. getSema().Diag(ScopeType->getTypeLoc().getBeginLoc(),
  11087. diag::err_expected_class_or_namespace)
  11088. << ScopeType->getType() << getSema().getLangOpts().CPlusPlus;
  11089. return ExprError();
  11090. }
  11091. SS.Extend(SemaRef.Context, SourceLocation(), ScopeType->getTypeLoc(),
  11092. CCLoc);
  11093. }
  11094. SourceLocation TemplateKWLoc; // FIXME: retrieve it from caller.
  11095. return getSema().BuildMemberReferenceExpr(Base, BaseType,
  11096. OperatorLoc, isArrow,
  11097. SS, TemplateKWLoc,
  11098. /*FIXME: FirstQualifier*/ nullptr,
  11099. NameInfo,
  11100. /*TemplateArgs*/ nullptr,
  11101. /*S*/nullptr);
  11102. }
  11103. template<typename Derived>
  11104. StmtResult
  11105. TreeTransform<Derived>::TransformCapturedStmt(CapturedStmt *S) {
  11106. SourceLocation Loc = S->getBeginLoc();
  11107. CapturedDecl *CD = S->getCapturedDecl();
  11108. unsigned NumParams = CD->getNumParams();
  11109. unsigned ContextParamPos = CD->getContextParamPosition();
  11110. SmallVector<Sema::CapturedParamNameType, 4> Params;
  11111. for (unsigned I = 0; I < NumParams; ++I) {
  11112. if (I != ContextParamPos) {
  11113. Params.push_back(
  11114. std::make_pair(
  11115. CD->getParam(I)->getName(),
  11116. getDerived().TransformType(CD->getParam(I)->getType())));
  11117. } else {
  11118. Params.push_back(std::make_pair(StringRef(), QualType()));
  11119. }
  11120. }
  11121. getSema().ActOnCapturedRegionStart(Loc, /*CurScope*/nullptr,
  11122. S->getCapturedRegionKind(), Params);
  11123. StmtResult Body;
  11124. {
  11125. Sema::CompoundScopeRAII CompoundScope(getSema());
  11126. Body = getDerived().TransformStmt(S->getCapturedStmt());
  11127. }
  11128. if (Body.isInvalid()) {
  11129. getSema().ActOnCapturedRegionError();
  11130. return StmtError();
  11131. }
  11132. return getSema().ActOnCapturedRegionEnd(Body.get());
  11133. }
  11134. } // end namespace clang
  11135. #endif // LLVM_CLANG_LIB_SEMA_TREETRANSFORM_H