1 //===--- SemaType.cpp - Semantic Analysis for Types -----------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements type-related semantic analysis. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "TypeLocBuilder.h" 15 #include "clang/AST/ASTConsumer.h" 16 #include "clang/AST/ASTContext.h" 17 #include "clang/AST/ASTMutationListener.h" 18 #include "clang/AST/ASTStructuralEquivalence.h" 19 #include "clang/AST/CXXInheritance.h" 20 #include "clang/AST/DeclObjC.h" 21 #include "clang/AST/DeclTemplate.h" 22 #include "clang/AST/Expr.h" 23 #include "clang/AST/TypeLoc.h" 24 #include "clang/AST/TypeLocVisitor.h" 25 #include "clang/Basic/PartialDiagnostic.h" 26 #include "clang/Basic/TargetInfo.h" 27 #include "clang/Lex/Preprocessor.h" 28 #include "clang/Sema/DeclSpec.h" 29 #include "clang/Sema/DelayedDiagnostic.h" 30 #include "clang/Sema/Lookup.h" 31 #include "clang/Sema/ScopeInfo.h" 32 #include "clang/Sema/SemaInternal.h" 33 #include "clang/Sema/Template.h" 34 #include "llvm/ADT/SmallPtrSet.h" 35 #include "llvm/ADT/SmallString.h" 36 #include "llvm/ADT/StringSwitch.h" 37 #include "llvm/Support/ErrorHandling.h" 38 39 using namespace clang; 40 41 enum TypeDiagSelector { 42 TDS_Function, 43 TDS_Pointer, 44 TDS_ObjCObjOrBlock 45 }; 46 47 /// isOmittedBlockReturnType - Return true if this declarator is missing a 48 /// return type because this is a omitted return type on a block literal. 49 static bool isOmittedBlockReturnType(const Declarator &D) { 50 if (D.getContext() != Declarator::BlockLiteralContext || 51 D.getDeclSpec().hasTypeSpecifier()) 52 return false; 53 54 if (D.getNumTypeObjects() == 0) 55 return true; // ^{ ... } 56 57 if (D.getNumTypeObjects() == 1 && 58 D.getTypeObject(0).Kind == DeclaratorChunk::Function) 59 return true; // ^(int X, float Y) { ... } 60 61 return false; 62 } 63 64 /// diagnoseBadTypeAttribute - Diagnoses a type attribute which 65 /// doesn't apply to the given type. 66 static void diagnoseBadTypeAttribute(Sema &S, const AttributeList &attr, 67 QualType type) { 68 TypeDiagSelector WhichType; 69 bool useExpansionLoc = true; 70 switch (attr.getKind()) { 71 case AttributeList::AT_ObjCGC: WhichType = TDS_Pointer; break; 72 case AttributeList::AT_ObjCOwnership: WhichType = TDS_ObjCObjOrBlock; break; 73 default: 74 // Assume everything else was a function attribute. 75 WhichType = TDS_Function; 76 useExpansionLoc = false; 77 break; 78 } 79 80 SourceLocation loc = attr.getLoc(); 81 StringRef name = attr.getName()->getName(); 82 83 // The GC attributes are usually written with macros; special-case them. 84 IdentifierInfo *II = attr.isArgIdent(0) ? attr.getArgAsIdent(0)->Ident 85 : nullptr; 86 if (useExpansionLoc && loc.isMacroID() && II) { 87 if (II->isStr("strong")) { 88 if (S.findMacroSpelling(loc, "__strong")) name = "__strong"; 89 } else if (II->isStr("weak")) { 90 if (S.findMacroSpelling(loc, "__weak")) name = "__weak"; 91 } 92 } 93 94 S.Diag(loc, diag::warn_type_attribute_wrong_type) << name << WhichType 95 << type; 96 } 97 98 // objc_gc applies to Objective-C pointers or, otherwise, to the 99 // smallest available pointer type (i.e. 'void*' in 'void**'). 100 #define OBJC_POINTER_TYPE_ATTRS_CASELIST \ 101 case AttributeList::AT_ObjCGC: \ 102 case AttributeList::AT_ObjCOwnership 103 104 // Calling convention attributes. 105 #define CALLING_CONV_ATTRS_CASELIST \ 106 case AttributeList::AT_CDecl: \ 107 case AttributeList::AT_FastCall: \ 108 case AttributeList::AT_StdCall: \ 109 case AttributeList::AT_ThisCall: \ 110 case AttributeList::AT_RegCall: \ 111 case AttributeList::AT_Pascal: \ 112 case AttributeList::AT_SwiftCall: \ 113 case AttributeList::AT_VectorCall: \ 114 case AttributeList::AT_MSABI: \ 115 case AttributeList::AT_SysVABI: \ 116 case AttributeList::AT_Pcs: \ 117 case AttributeList::AT_IntelOclBicc: \ 118 case AttributeList::AT_PreserveMost: \ 119 case AttributeList::AT_PreserveAll 120 121 // Function type attributes. 122 #define FUNCTION_TYPE_ATTRS_CASELIST \ 123 case AttributeList::AT_NSReturnsRetained: \ 124 case AttributeList::AT_NoReturn: \ 125 case AttributeList::AT_Regparm: \ 126 case AttributeList::AT_AnyX86NoCallerSavedRegisters: \ 127 CALLING_CONV_ATTRS_CASELIST 128 129 // Microsoft-specific type qualifiers. 130 #define MS_TYPE_ATTRS_CASELIST \ 131 case AttributeList::AT_Ptr32: \ 132 case AttributeList::AT_Ptr64: \ 133 case AttributeList::AT_SPtr: \ 134 case AttributeList::AT_UPtr 135 136 // Nullability qualifiers. 137 #define NULLABILITY_TYPE_ATTRS_CASELIST \ 138 case AttributeList::AT_TypeNonNull: \ 139 case AttributeList::AT_TypeNullable: \ 140 case AttributeList::AT_TypeNullUnspecified 141 142 namespace { 143 /// An object which stores processing state for the entire 144 /// GetTypeForDeclarator process. 145 class TypeProcessingState { 146 Sema &sema; 147 148 /// The declarator being processed. 149 Declarator &declarator; 150 151 /// The index of the declarator chunk we're currently processing. 152 /// May be the total number of valid chunks, indicating the 153 /// DeclSpec. 154 unsigned chunkIndex; 155 156 /// Whether there are non-trivial modifications to the decl spec. 157 bool trivial; 158 159 /// Whether we saved the attributes in the decl spec. 160 bool hasSavedAttrs; 161 162 /// The original set of attributes on the DeclSpec. 163 SmallVector<AttributeList*, 2> savedAttrs; 164 165 /// A list of attributes to diagnose the uselessness of when the 166 /// processing is complete. 167 SmallVector<AttributeList*, 2> ignoredTypeAttrs; 168 169 public: 170 TypeProcessingState(Sema &sema, Declarator &declarator) 171 : sema(sema), declarator(declarator), 172 chunkIndex(declarator.getNumTypeObjects()), 173 trivial(true), hasSavedAttrs(false) {} 174 175 Sema &getSema() const { 176 return sema; 177 } 178 179 Declarator &getDeclarator() const { 180 return declarator; 181 } 182 183 bool isProcessingDeclSpec() const { 184 return chunkIndex == declarator.getNumTypeObjects(); 185 } 186 187 unsigned getCurrentChunkIndex() const { 188 return chunkIndex; 189 } 190 191 void setCurrentChunkIndex(unsigned idx) { 192 assert(idx <= declarator.getNumTypeObjects()); 193 chunkIndex = idx; 194 } 195 196 AttributeList *&getCurrentAttrListRef() const { 197 if (isProcessingDeclSpec()) 198 return getMutableDeclSpec().getAttributes().getListRef(); 199 return declarator.getTypeObject(chunkIndex).getAttrListRef(); 200 } 201 202 /// Save the current set of attributes on the DeclSpec. 203 void saveDeclSpecAttrs() { 204 // Don't try to save them multiple times. 205 if (hasSavedAttrs) return; 206 207 DeclSpec &spec = getMutableDeclSpec(); 208 for (AttributeList *attr = spec.getAttributes().getList(); attr; 209 attr = attr->getNext()) 210 savedAttrs.push_back(attr); 211 trivial &= savedAttrs.empty(); 212 hasSavedAttrs = true; 213 } 214 215 /// Record that we had nowhere to put the given type attribute. 216 /// We will diagnose such attributes later. 217 void addIgnoredTypeAttr(AttributeList &attr) { 218 ignoredTypeAttrs.push_back(&attr); 219 } 220 221 /// Diagnose all the ignored type attributes, given that the 222 /// declarator worked out to the given type. 223 void diagnoseIgnoredTypeAttrs(QualType type) const { 224 for (auto *Attr : ignoredTypeAttrs) 225 diagnoseBadTypeAttribute(getSema(), *Attr, type); 226 } 227 228 ~TypeProcessingState() { 229 if (trivial) return; 230 231 restoreDeclSpecAttrs(); 232 } 233 234 private: 235 DeclSpec &getMutableDeclSpec() const { 236 return const_cast<DeclSpec&>(declarator.getDeclSpec()); 237 } 238 239 void restoreDeclSpecAttrs() { 240 assert(hasSavedAttrs); 241 242 if (savedAttrs.empty()) { 243 getMutableDeclSpec().getAttributes().set(nullptr); 244 return; 245 } 246 247 getMutableDeclSpec().getAttributes().set(savedAttrs[0]); 248 for (unsigned i = 0, e = savedAttrs.size() - 1; i != e; ++i) 249 savedAttrs[i]->setNext(savedAttrs[i+1]); 250 savedAttrs.back()->setNext(nullptr); 251 } 252 }; 253 } // end anonymous namespace 254 255 static void spliceAttrIntoList(AttributeList &attr, AttributeList *&head) { 256 attr.setNext(head); 257 head = &attr; 258 } 259 260 static void spliceAttrOutOfList(AttributeList &attr, AttributeList *&head) { 261 if (head == &attr) { 262 head = attr.getNext(); 263 return; 264 } 265 266 AttributeList *cur = head; 267 while (true) { 268 assert(cur && cur->getNext() && "ran out of attrs?"); 269 if (cur->getNext() == &attr) { 270 cur->setNext(attr.getNext()); 271 return; 272 } 273 cur = cur->getNext(); 274 } 275 } 276 277 static void moveAttrFromListToList(AttributeList &attr, 278 AttributeList *&fromList, 279 AttributeList *&toList) { 280 spliceAttrOutOfList(attr, fromList); 281 spliceAttrIntoList(attr, toList); 282 } 283 284 /// The location of a type attribute. 285 enum TypeAttrLocation { 286 /// The attribute is in the decl-specifier-seq. 287 TAL_DeclSpec, 288 /// The attribute is part of a DeclaratorChunk. 289 TAL_DeclChunk, 290 /// The attribute is immediately after the declaration's name. 291 TAL_DeclName 292 }; 293 294 static void processTypeAttrs(TypeProcessingState &state, 295 QualType &type, TypeAttrLocation TAL, 296 AttributeList *attrs); 297 298 static bool handleFunctionTypeAttr(TypeProcessingState &state, 299 AttributeList &attr, 300 QualType &type); 301 302 static bool handleMSPointerTypeQualifierAttr(TypeProcessingState &state, 303 AttributeList &attr, 304 QualType &type); 305 306 static bool handleObjCGCTypeAttr(TypeProcessingState &state, 307 AttributeList &attr, QualType &type); 308 309 static bool handleObjCOwnershipTypeAttr(TypeProcessingState &state, 310 AttributeList &attr, QualType &type); 311 312 static bool handleObjCPointerTypeAttr(TypeProcessingState &state, 313 AttributeList &attr, QualType &type) { 314 if (attr.getKind() == AttributeList::AT_ObjCGC) 315 return handleObjCGCTypeAttr(state, attr, type); 316 assert(attr.getKind() == AttributeList::AT_ObjCOwnership); 317 return handleObjCOwnershipTypeAttr(state, attr, type); 318 } 319 320 /// Given the index of a declarator chunk, check whether that chunk 321 /// directly specifies the return type of a function and, if so, find 322 /// an appropriate place for it. 323 /// 324 /// \param i - a notional index which the search will start 325 /// immediately inside 326 /// 327 /// \param onlyBlockPointers Whether we should only look into block 328 /// pointer types (vs. all pointer types). 329 static DeclaratorChunk *maybeMovePastReturnType(Declarator &declarator, 330 unsigned i, 331 bool onlyBlockPointers) { 332 assert(i <= declarator.getNumTypeObjects()); 333 334 DeclaratorChunk *result = nullptr; 335 336 // First, look inwards past parens for a function declarator. 337 for (; i != 0; --i) { 338 DeclaratorChunk &fnChunk = declarator.getTypeObject(i-1); 339 switch (fnChunk.Kind) { 340 case DeclaratorChunk::Paren: 341 continue; 342 343 // If we find anything except a function, bail out. 344 case DeclaratorChunk::Pointer: 345 case DeclaratorChunk::BlockPointer: 346 case DeclaratorChunk::Array: 347 case DeclaratorChunk::Reference: 348 case DeclaratorChunk::MemberPointer: 349 case DeclaratorChunk::Pipe: 350 return result; 351 352 // If we do find a function declarator, scan inwards from that, 353 // looking for a (block-)pointer declarator. 354 case DeclaratorChunk::Function: 355 for (--i; i != 0; --i) { 356 DeclaratorChunk &ptrChunk = declarator.getTypeObject(i-1); 357 switch (ptrChunk.Kind) { 358 case DeclaratorChunk::Paren: 359 case DeclaratorChunk::Array: 360 case DeclaratorChunk::Function: 361 case DeclaratorChunk::Reference: 362 case DeclaratorChunk::Pipe: 363 continue; 364 365 case DeclaratorChunk::MemberPointer: 366 case DeclaratorChunk::Pointer: 367 if (onlyBlockPointers) 368 continue; 369 370 // fallthrough 371 372 case DeclaratorChunk::BlockPointer: 373 result = &ptrChunk; 374 goto continue_outer; 375 } 376 llvm_unreachable("bad declarator chunk kind"); 377 } 378 379 // If we run out of declarators doing that, we're done. 380 return result; 381 } 382 llvm_unreachable("bad declarator chunk kind"); 383 384 // Okay, reconsider from our new point. 385 continue_outer: ; 386 } 387 388 // Ran out of chunks, bail out. 389 return result; 390 } 391 392 /// Given that an objc_gc attribute was written somewhere on a 393 /// declaration *other* than on the declarator itself (for which, use 394 /// distributeObjCPointerTypeAttrFromDeclarator), and given that it 395 /// didn't apply in whatever position it was written in, try to move 396 /// it to a more appropriate position. 397 static void distributeObjCPointerTypeAttr(TypeProcessingState &state, 398 AttributeList &attr, 399 QualType type) { 400 Declarator &declarator = state.getDeclarator(); 401 402 // Move it to the outermost normal or block pointer declarator. 403 for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) { 404 DeclaratorChunk &chunk = declarator.getTypeObject(i-1); 405 switch (chunk.Kind) { 406 case DeclaratorChunk::Pointer: 407 case DeclaratorChunk::BlockPointer: { 408 // But don't move an ARC ownership attribute to the return type 409 // of a block. 410 DeclaratorChunk *destChunk = nullptr; 411 if (state.isProcessingDeclSpec() && 412 attr.getKind() == AttributeList::AT_ObjCOwnership) 413 destChunk = maybeMovePastReturnType(declarator, i - 1, 414 /*onlyBlockPointers=*/true); 415 if (!destChunk) destChunk = &chunk; 416 417 moveAttrFromListToList(attr, state.getCurrentAttrListRef(), 418 destChunk->getAttrListRef()); 419 return; 420 } 421 422 case DeclaratorChunk::Paren: 423 case DeclaratorChunk::Array: 424 continue; 425 426 // We may be starting at the return type of a block. 427 case DeclaratorChunk::Function: 428 if (state.isProcessingDeclSpec() && 429 attr.getKind() == AttributeList::AT_ObjCOwnership) { 430 if (DeclaratorChunk *dest = maybeMovePastReturnType( 431 declarator, i, 432 /*onlyBlockPointers=*/true)) { 433 moveAttrFromListToList(attr, state.getCurrentAttrListRef(), 434 dest->getAttrListRef()); 435 return; 436 } 437 } 438 goto error; 439 440 // Don't walk through these. 441 case DeclaratorChunk::Reference: 442 case DeclaratorChunk::MemberPointer: 443 case DeclaratorChunk::Pipe: 444 goto error; 445 } 446 } 447 error: 448 449 diagnoseBadTypeAttribute(state.getSema(), attr, type); 450 } 451 452 /// Distribute an objc_gc type attribute that was written on the 453 /// declarator. 454 static void 455 distributeObjCPointerTypeAttrFromDeclarator(TypeProcessingState &state, 456 AttributeList &attr, 457 QualType &declSpecType) { 458 Declarator &declarator = state.getDeclarator(); 459 460 // objc_gc goes on the innermost pointer to something that's not a 461 // pointer. 462 unsigned innermost = -1U; 463 bool considerDeclSpec = true; 464 for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) { 465 DeclaratorChunk &chunk = declarator.getTypeObject(i); 466 switch (chunk.Kind) { 467 case DeclaratorChunk::Pointer: 468 case DeclaratorChunk::BlockPointer: 469 innermost = i; 470 continue; 471 472 case DeclaratorChunk::Reference: 473 case DeclaratorChunk::MemberPointer: 474 case DeclaratorChunk::Paren: 475 case DeclaratorChunk::Array: 476 case DeclaratorChunk::Pipe: 477 continue; 478 479 case DeclaratorChunk::Function: 480 considerDeclSpec = false; 481 goto done; 482 } 483 } 484 done: 485 486 // That might actually be the decl spec if we weren't blocked by 487 // anything in the declarator. 488 if (considerDeclSpec) { 489 if (handleObjCPointerTypeAttr(state, attr, declSpecType)) { 490 // Splice the attribute into the decl spec. Prevents the 491 // attribute from being applied multiple times and gives 492 // the source-location-filler something to work with. 493 state.saveDeclSpecAttrs(); 494 moveAttrFromListToList(attr, declarator.getAttrListRef(), 495 declarator.getMutableDeclSpec().getAttributes().getListRef()); 496 return; 497 } 498 } 499 500 // Otherwise, if we found an appropriate chunk, splice the attribute 501 // into it. 502 if (innermost != -1U) { 503 moveAttrFromListToList(attr, declarator.getAttrListRef(), 504 declarator.getTypeObject(innermost).getAttrListRef()); 505 return; 506 } 507 508 // Otherwise, diagnose when we're done building the type. 509 spliceAttrOutOfList(attr, declarator.getAttrListRef()); 510 state.addIgnoredTypeAttr(attr); 511 } 512 513 /// A function type attribute was written somewhere in a declaration 514 /// *other* than on the declarator itself or in the decl spec. Given 515 /// that it didn't apply in whatever position it was written in, try 516 /// to move it to a more appropriate position. 517 static void distributeFunctionTypeAttr(TypeProcessingState &state, 518 AttributeList &attr, 519 QualType type) { 520 Declarator &declarator = state.getDeclarator(); 521 522 // Try to push the attribute from the return type of a function to 523 // the function itself. 524 for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) { 525 DeclaratorChunk &chunk = declarator.getTypeObject(i-1); 526 switch (chunk.Kind) { 527 case DeclaratorChunk::Function: 528 moveAttrFromListToList(attr, state.getCurrentAttrListRef(), 529 chunk.getAttrListRef()); 530 return; 531 532 case DeclaratorChunk::Paren: 533 case DeclaratorChunk::Pointer: 534 case DeclaratorChunk::BlockPointer: 535 case DeclaratorChunk::Array: 536 case DeclaratorChunk::Reference: 537 case DeclaratorChunk::MemberPointer: 538 case DeclaratorChunk::Pipe: 539 continue; 540 } 541 } 542 543 diagnoseBadTypeAttribute(state.getSema(), attr, type); 544 } 545 546 /// Try to distribute a function type attribute to the innermost 547 /// function chunk or type. Returns true if the attribute was 548 /// distributed, false if no location was found. 549 static bool 550 distributeFunctionTypeAttrToInnermost(TypeProcessingState &state, 551 AttributeList &attr, 552 AttributeList *&attrList, 553 QualType &declSpecType) { 554 Declarator &declarator = state.getDeclarator(); 555 556 // Put it on the innermost function chunk, if there is one. 557 for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) { 558 DeclaratorChunk &chunk = declarator.getTypeObject(i); 559 if (chunk.Kind != DeclaratorChunk::Function) continue; 560 561 moveAttrFromListToList(attr, attrList, chunk.getAttrListRef()); 562 return true; 563 } 564 565 return handleFunctionTypeAttr(state, attr, declSpecType); 566 } 567 568 /// A function type attribute was written in the decl spec. Try to 569 /// apply it somewhere. 570 static void 571 distributeFunctionTypeAttrFromDeclSpec(TypeProcessingState &state, 572 AttributeList &attr, 573 QualType &declSpecType) { 574 state.saveDeclSpecAttrs(); 575 576 // C++11 attributes before the decl specifiers actually appertain to 577 // the declarators. Move them straight there. We don't support the 578 // 'put them wherever you like' semantics we allow for GNU attributes. 579 if (attr.isCXX11Attribute()) { 580 moveAttrFromListToList(attr, state.getCurrentAttrListRef(), 581 state.getDeclarator().getAttrListRef()); 582 return; 583 } 584 585 // Try to distribute to the innermost. 586 if (distributeFunctionTypeAttrToInnermost(state, attr, 587 state.getCurrentAttrListRef(), 588 declSpecType)) 589 return; 590 591 // If that failed, diagnose the bad attribute when the declarator is 592 // fully built. 593 state.addIgnoredTypeAttr(attr); 594 } 595 596 /// A function type attribute was written on the declarator. Try to 597 /// apply it somewhere. 598 static void 599 distributeFunctionTypeAttrFromDeclarator(TypeProcessingState &state, 600 AttributeList &attr, 601 QualType &declSpecType) { 602 Declarator &declarator = state.getDeclarator(); 603 604 // Try to distribute to the innermost. 605 if (distributeFunctionTypeAttrToInnermost(state, attr, 606 declarator.getAttrListRef(), 607 declSpecType)) 608 return; 609 610 // If that failed, diagnose the bad attribute when the declarator is 611 // fully built. 612 spliceAttrOutOfList(attr, declarator.getAttrListRef()); 613 state.addIgnoredTypeAttr(attr); 614 } 615 616 /// \brief Given that there are attributes written on the declarator 617 /// itself, try to distribute any type attributes to the appropriate 618 /// declarator chunk. 619 /// 620 /// These are attributes like the following: 621 /// int f ATTR; 622 /// int (f ATTR)(); 623 /// but not necessarily this: 624 /// int f() ATTR; 625 static void distributeTypeAttrsFromDeclarator(TypeProcessingState &state, 626 QualType &declSpecType) { 627 // Collect all the type attributes from the declarator itself. 628 assert(state.getDeclarator().getAttributes() && "declarator has no attrs!"); 629 AttributeList *attr = state.getDeclarator().getAttributes(); 630 AttributeList *next; 631 do { 632 next = attr->getNext(); 633 634 // Do not distribute C++11 attributes. They have strict rules for what 635 // they appertain to. 636 if (attr->isCXX11Attribute()) 637 continue; 638 639 switch (attr->getKind()) { 640 OBJC_POINTER_TYPE_ATTRS_CASELIST: 641 distributeObjCPointerTypeAttrFromDeclarator(state, *attr, declSpecType); 642 break; 643 644 FUNCTION_TYPE_ATTRS_CASELIST: 645 distributeFunctionTypeAttrFromDeclarator(state, *attr, declSpecType); 646 break; 647 648 MS_TYPE_ATTRS_CASELIST: 649 // Microsoft type attributes cannot go after the declarator-id. 650 continue; 651 652 NULLABILITY_TYPE_ATTRS_CASELIST: 653 // Nullability specifiers cannot go after the declarator-id. 654 655 // Objective-C __kindof does not get distributed. 656 case AttributeList::AT_ObjCKindOf: 657 continue; 658 659 default: 660 break; 661 } 662 } while ((attr = next)); 663 } 664 665 /// Add a synthetic '()' to a block-literal declarator if it is 666 /// required, given the return type. 667 static void maybeSynthesizeBlockSignature(TypeProcessingState &state, 668 QualType declSpecType) { 669 Declarator &declarator = state.getDeclarator(); 670 671 // First, check whether the declarator would produce a function, 672 // i.e. whether the innermost semantic chunk is a function. 673 if (declarator.isFunctionDeclarator()) { 674 // If so, make that declarator a prototyped declarator. 675 declarator.getFunctionTypeInfo().hasPrototype = true; 676 return; 677 } 678 679 // If there are any type objects, the type as written won't name a 680 // function, regardless of the decl spec type. This is because a 681 // block signature declarator is always an abstract-declarator, and 682 // abstract-declarators can't just be parentheses chunks. Therefore 683 // we need to build a function chunk unless there are no type 684 // objects and the decl spec type is a function. 685 if (!declarator.getNumTypeObjects() && declSpecType->isFunctionType()) 686 return; 687 688 // Note that there *are* cases with invalid declarators where 689 // declarators consist solely of parentheses. In general, these 690 // occur only in failed efforts to make function declarators, so 691 // faking up the function chunk is still the right thing to do. 692 693 // Otherwise, we need to fake up a function declarator. 694 SourceLocation loc = declarator.getLocStart(); 695 696 // ...and *prepend* it to the declarator. 697 SourceLocation NoLoc; 698 declarator.AddInnermostTypeInfo(DeclaratorChunk::getFunction( 699 /*HasProto=*/true, 700 /*IsAmbiguous=*/false, 701 /*LParenLoc=*/NoLoc, 702 /*ArgInfo=*/nullptr, 703 /*NumArgs=*/0, 704 /*EllipsisLoc=*/NoLoc, 705 /*RParenLoc=*/NoLoc, 706 /*TypeQuals=*/0, 707 /*RefQualifierIsLvalueRef=*/true, 708 /*RefQualifierLoc=*/NoLoc, 709 /*ConstQualifierLoc=*/NoLoc, 710 /*VolatileQualifierLoc=*/NoLoc, 711 /*RestrictQualifierLoc=*/NoLoc, 712 /*MutableLoc=*/NoLoc, EST_None, 713 /*ESpecRange=*/SourceRange(), 714 /*Exceptions=*/nullptr, 715 /*ExceptionRanges=*/nullptr, 716 /*NumExceptions=*/0, 717 /*NoexceptExpr=*/nullptr, 718 /*ExceptionSpecTokens=*/nullptr, 719 /*DeclsInPrototype=*/None, 720 loc, loc, declarator)); 721 722 // For consistency, make sure the state still has us as processing 723 // the decl spec. 724 assert(state.getCurrentChunkIndex() == declarator.getNumTypeObjects() - 1); 725 state.setCurrentChunkIndex(declarator.getNumTypeObjects()); 726 } 727 728 static void diagnoseAndRemoveTypeQualifiers(Sema &S, const DeclSpec &DS, 729 unsigned &TypeQuals, 730 QualType TypeSoFar, 731 unsigned RemoveTQs, 732 unsigned DiagID) { 733 // If this occurs outside a template instantiation, warn the user about 734 // it; they probably didn't mean to specify a redundant qualifier. 735 typedef std::pair<DeclSpec::TQ, SourceLocation> QualLoc; 736 for (QualLoc Qual : {QualLoc(DeclSpec::TQ_const, DS.getConstSpecLoc()), 737 QualLoc(DeclSpec::TQ_restrict, DS.getRestrictSpecLoc()), 738 QualLoc(DeclSpec::TQ_volatile, DS.getVolatileSpecLoc()), 739 QualLoc(DeclSpec::TQ_atomic, DS.getAtomicSpecLoc())}) { 740 if (!(RemoveTQs & Qual.first)) 741 continue; 742 743 if (!S.inTemplateInstantiation()) { 744 if (TypeQuals & Qual.first) 745 S.Diag(Qual.second, DiagID) 746 << DeclSpec::getSpecifierName(Qual.first) << TypeSoFar 747 << FixItHint::CreateRemoval(Qual.second); 748 } 749 750 TypeQuals &= ~Qual.first; 751 } 752 } 753 754 /// Return true if this is omitted block return type. Also check type 755 /// attributes and type qualifiers when returning true. 756 static bool checkOmittedBlockReturnType(Sema &S, Declarator &declarator, 757 QualType Result) { 758 if (!isOmittedBlockReturnType(declarator)) 759 return false; 760 761 // Warn if we see type attributes for omitted return type on a block literal. 762 AttributeList *&attrs = 763 declarator.getMutableDeclSpec().getAttributes().getListRef(); 764 AttributeList *prev = nullptr; 765 for (AttributeList *cur = attrs; cur; cur = cur->getNext()) { 766 AttributeList &attr = *cur; 767 // Skip attributes that were marked to be invalid or non-type 768 // attributes. 769 if (attr.isInvalid() || !attr.isTypeAttr()) { 770 prev = cur; 771 continue; 772 } 773 S.Diag(attr.getLoc(), 774 diag::warn_block_literal_attributes_on_omitted_return_type) 775 << attr.getName(); 776 // Remove cur from the list. 777 if (prev) { 778 prev->setNext(cur->getNext()); 779 prev = cur; 780 } else { 781 attrs = cur->getNext(); 782 } 783 } 784 785 // Warn if we see type qualifiers for omitted return type on a block literal. 786 const DeclSpec &DS = declarator.getDeclSpec(); 787 unsigned TypeQuals = DS.getTypeQualifiers(); 788 diagnoseAndRemoveTypeQualifiers(S, DS, TypeQuals, Result, (unsigned)-1, 789 diag::warn_block_literal_qualifiers_on_omitted_return_type); 790 declarator.getMutableDeclSpec().ClearTypeQualifiers(); 791 792 return true; 793 } 794 795 /// Apply Objective-C type arguments to the given type. 796 static QualType applyObjCTypeArgs(Sema &S, SourceLocation loc, QualType type, 797 ArrayRef<TypeSourceInfo *> typeArgs, 798 SourceRange typeArgsRange, 799 bool failOnError = false) { 800 // We can only apply type arguments to an Objective-C class type. 801 const auto *objcObjectType = type->getAs<ObjCObjectType>(); 802 if (!objcObjectType || !objcObjectType->getInterface()) { 803 S.Diag(loc, diag::err_objc_type_args_non_class) 804 << type 805 << typeArgsRange; 806 807 if (failOnError) 808 return QualType(); 809 return type; 810 } 811 812 // The class type must be parameterized. 813 ObjCInterfaceDecl *objcClass = objcObjectType->getInterface(); 814 ObjCTypeParamList *typeParams = objcClass->getTypeParamList(); 815 if (!typeParams) { 816 S.Diag(loc, diag::err_objc_type_args_non_parameterized_class) 817 << objcClass->getDeclName() 818 << FixItHint::CreateRemoval(typeArgsRange); 819 820 if (failOnError) 821 return QualType(); 822 823 return type; 824 } 825 826 // The type must not already be specialized. 827 if (objcObjectType->isSpecialized()) { 828 S.Diag(loc, diag::err_objc_type_args_specialized_class) 829 << type 830 << FixItHint::CreateRemoval(typeArgsRange); 831 832 if (failOnError) 833 return QualType(); 834 835 return type; 836 } 837 838 // Check the type arguments. 839 SmallVector<QualType, 4> finalTypeArgs; 840 unsigned numTypeParams = typeParams->size(); 841 bool anyPackExpansions = false; 842 for (unsigned i = 0, n = typeArgs.size(); i != n; ++i) { 843 TypeSourceInfo *typeArgInfo = typeArgs[i]; 844 QualType typeArg = typeArgInfo->getType(); 845 846 // Type arguments cannot have explicit qualifiers or nullability. 847 // We ignore indirect sources of these, e.g. behind typedefs or 848 // template arguments. 849 if (TypeLoc qual = typeArgInfo->getTypeLoc().findExplicitQualifierLoc()) { 850 bool diagnosed = false; 851 SourceRange rangeToRemove; 852 if (auto attr = qual.getAs<AttributedTypeLoc>()) { 853 rangeToRemove = attr.getLocalSourceRange(); 854 if (attr.getTypePtr()->getImmediateNullability()) { 855 typeArg = attr.getTypePtr()->getModifiedType(); 856 S.Diag(attr.getLocStart(), 857 diag::err_objc_type_arg_explicit_nullability) 858 << typeArg << FixItHint::CreateRemoval(rangeToRemove); 859 diagnosed = true; 860 } 861 } 862 863 if (!diagnosed) { 864 S.Diag(qual.getLocStart(), diag::err_objc_type_arg_qualified) 865 << typeArg << typeArg.getQualifiers().getAsString() 866 << FixItHint::CreateRemoval(rangeToRemove); 867 } 868 } 869 870 // Remove qualifiers even if they're non-local. 871 typeArg = typeArg.getUnqualifiedType(); 872 873 finalTypeArgs.push_back(typeArg); 874 875 if (typeArg->getAs<PackExpansionType>()) 876 anyPackExpansions = true; 877 878 // Find the corresponding type parameter, if there is one. 879 ObjCTypeParamDecl *typeParam = nullptr; 880 if (!anyPackExpansions) { 881 if (i < numTypeParams) { 882 typeParam = typeParams->begin()[i]; 883 } else { 884 // Too many arguments. 885 S.Diag(loc, diag::err_objc_type_args_wrong_arity) 886 << false 887 << objcClass->getDeclName() 888 << (unsigned)typeArgs.size() 889 << numTypeParams; 890 S.Diag(objcClass->getLocation(), diag::note_previous_decl) 891 << objcClass; 892 893 if (failOnError) 894 return QualType(); 895 896 return type; 897 } 898 } 899 900 // Objective-C object pointer types must be substitutable for the bounds. 901 if (const auto *typeArgObjC = typeArg->getAs<ObjCObjectPointerType>()) { 902 // If we don't have a type parameter to match against, assume 903 // everything is fine. There was a prior pack expansion that 904 // means we won't be able to match anything. 905 if (!typeParam) { 906 assert(anyPackExpansions && "Too many arguments?"); 907 continue; 908 } 909 910 // Retrieve the bound. 911 QualType bound = typeParam->getUnderlyingType(); 912 const auto *boundObjC = bound->getAs<ObjCObjectPointerType>(); 913 914 // Determine whether the type argument is substitutable for the bound. 915 if (typeArgObjC->isObjCIdType()) { 916 // When the type argument is 'id', the only acceptable type 917 // parameter bound is 'id'. 918 if (boundObjC->isObjCIdType()) 919 continue; 920 } else if (S.Context.canAssignObjCInterfaces(boundObjC, typeArgObjC)) { 921 // Otherwise, we follow the assignability rules. 922 continue; 923 } 924 925 // Diagnose the mismatch. 926 S.Diag(typeArgInfo->getTypeLoc().getLocStart(), 927 diag::err_objc_type_arg_does_not_match_bound) 928 << typeArg << bound << typeParam->getDeclName(); 929 S.Diag(typeParam->getLocation(), diag::note_objc_type_param_here) 930 << typeParam->getDeclName(); 931 932 if (failOnError) 933 return QualType(); 934 935 return type; 936 } 937 938 // Block pointer types are permitted for unqualified 'id' bounds. 939 if (typeArg->isBlockPointerType()) { 940 // If we don't have a type parameter to match against, assume 941 // everything is fine. There was a prior pack expansion that 942 // means we won't be able to match anything. 943 if (!typeParam) { 944 assert(anyPackExpansions && "Too many arguments?"); 945 continue; 946 } 947 948 // Retrieve the bound. 949 QualType bound = typeParam->getUnderlyingType(); 950 if (bound->isBlockCompatibleObjCPointerType(S.Context)) 951 continue; 952 953 // Diagnose the mismatch. 954 S.Diag(typeArgInfo->getTypeLoc().getLocStart(), 955 diag::err_objc_type_arg_does_not_match_bound) 956 << typeArg << bound << typeParam->getDeclName(); 957 S.Diag(typeParam->getLocation(), diag::note_objc_type_param_here) 958 << typeParam->getDeclName(); 959 960 if (failOnError) 961 return QualType(); 962 963 return type; 964 } 965 966 // Dependent types will be checked at instantiation time. 967 if (typeArg->isDependentType()) { 968 continue; 969 } 970 971 // Diagnose non-id-compatible type arguments. 972 S.Diag(typeArgInfo->getTypeLoc().getLocStart(), 973 diag::err_objc_type_arg_not_id_compatible) 974 << typeArg 975 << typeArgInfo->getTypeLoc().getSourceRange(); 976 977 if (failOnError) 978 return QualType(); 979 980 return type; 981 } 982 983 // Make sure we didn't have the wrong number of arguments. 984 if (!anyPackExpansions && finalTypeArgs.size() != numTypeParams) { 985 S.Diag(loc, diag::err_objc_type_args_wrong_arity) 986 << (typeArgs.size() < typeParams->size()) 987 << objcClass->getDeclName() 988 << (unsigned)finalTypeArgs.size() 989 << (unsigned)numTypeParams; 990 S.Diag(objcClass->getLocation(), diag::note_previous_decl) 991 << objcClass; 992 993 if (failOnError) 994 return QualType(); 995 996 return type; 997 } 998 999 // Success. Form the specialized type. 1000 return S.Context.getObjCObjectType(type, finalTypeArgs, { }, false); 1001 } 1002 1003 QualType Sema::BuildObjCTypeParamType(const ObjCTypeParamDecl *Decl, 1004 SourceLocation ProtocolLAngleLoc, 1005 ArrayRef<ObjCProtocolDecl *> Protocols, 1006 ArrayRef<SourceLocation> ProtocolLocs, 1007 SourceLocation ProtocolRAngleLoc, 1008 bool FailOnError) { 1009 QualType Result = QualType(Decl->getTypeForDecl(), 0); 1010 if (!Protocols.empty()) { 1011 bool HasError; 1012 Result = Context.applyObjCProtocolQualifiers(Result, Protocols, 1013 HasError); 1014 if (HasError) { 1015 Diag(SourceLocation(), diag::err_invalid_protocol_qualifiers) 1016 << SourceRange(ProtocolLAngleLoc, ProtocolRAngleLoc); 1017 if (FailOnError) Result = QualType(); 1018 } 1019 if (FailOnError && Result.isNull()) 1020 return QualType(); 1021 } 1022 1023 return Result; 1024 } 1025 1026 QualType Sema::BuildObjCObjectType(QualType BaseType, 1027 SourceLocation Loc, 1028 SourceLocation TypeArgsLAngleLoc, 1029 ArrayRef<TypeSourceInfo *> TypeArgs, 1030 SourceLocation TypeArgsRAngleLoc, 1031 SourceLocation ProtocolLAngleLoc, 1032 ArrayRef<ObjCProtocolDecl *> Protocols, 1033 ArrayRef<SourceLocation> ProtocolLocs, 1034 SourceLocation ProtocolRAngleLoc, 1035 bool FailOnError) { 1036 QualType Result = BaseType; 1037 if (!TypeArgs.empty()) { 1038 Result = applyObjCTypeArgs(*this, Loc, Result, TypeArgs, 1039 SourceRange(TypeArgsLAngleLoc, 1040 TypeArgsRAngleLoc), 1041 FailOnError); 1042 if (FailOnError && Result.isNull()) 1043 return QualType(); 1044 } 1045 1046 if (!Protocols.empty()) { 1047 bool HasError; 1048 Result = Context.applyObjCProtocolQualifiers(Result, Protocols, 1049 HasError); 1050 if (HasError) { 1051 Diag(Loc, diag::err_invalid_protocol_qualifiers) 1052 << SourceRange(ProtocolLAngleLoc, ProtocolRAngleLoc); 1053 if (FailOnError) Result = QualType(); 1054 } 1055 if (FailOnError && Result.isNull()) 1056 return QualType(); 1057 } 1058 1059 return Result; 1060 } 1061 1062 TypeResult Sema::actOnObjCProtocolQualifierType( 1063 SourceLocation lAngleLoc, 1064 ArrayRef<Decl *> protocols, 1065 ArrayRef<SourceLocation> protocolLocs, 1066 SourceLocation rAngleLoc) { 1067 // Form id<protocol-list>. 1068 QualType Result = Context.getObjCObjectType( 1069 Context.ObjCBuiltinIdTy, { }, 1070 llvm::makeArrayRef( 1071 (ObjCProtocolDecl * const *)protocols.data(), 1072 protocols.size()), 1073 false); 1074 Result = Context.getObjCObjectPointerType(Result); 1075 1076 TypeSourceInfo *ResultTInfo = Context.CreateTypeSourceInfo(Result); 1077 TypeLoc ResultTL = ResultTInfo->getTypeLoc(); 1078 1079 auto ObjCObjectPointerTL = ResultTL.castAs<ObjCObjectPointerTypeLoc>(); 1080 ObjCObjectPointerTL.setStarLoc(SourceLocation()); // implicit 1081 1082 auto ObjCObjectTL = ObjCObjectPointerTL.getPointeeLoc() 1083 .castAs<ObjCObjectTypeLoc>(); 1084 ObjCObjectTL.setHasBaseTypeAsWritten(false); 1085 ObjCObjectTL.getBaseLoc().initialize(Context, SourceLocation()); 1086 1087 // No type arguments. 1088 ObjCObjectTL.setTypeArgsLAngleLoc(SourceLocation()); 1089 ObjCObjectTL.setTypeArgsRAngleLoc(SourceLocation()); 1090 1091 // Fill in protocol qualifiers. 1092 ObjCObjectTL.setProtocolLAngleLoc(lAngleLoc); 1093 ObjCObjectTL.setProtocolRAngleLoc(rAngleLoc); 1094 for (unsigned i = 0, n = protocols.size(); i != n; ++i) 1095 ObjCObjectTL.setProtocolLoc(i, protocolLocs[i]); 1096 1097 // We're done. Return the completed type to the parser. 1098 return CreateParsedType(Result, ResultTInfo); 1099 } 1100 1101 TypeResult Sema::actOnObjCTypeArgsAndProtocolQualifiers( 1102 Scope *S, 1103 SourceLocation Loc, 1104 ParsedType BaseType, 1105 SourceLocation TypeArgsLAngleLoc, 1106 ArrayRef<ParsedType> TypeArgs, 1107 SourceLocation TypeArgsRAngleLoc, 1108 SourceLocation ProtocolLAngleLoc, 1109 ArrayRef<Decl *> Protocols, 1110 ArrayRef<SourceLocation> ProtocolLocs, 1111 SourceLocation ProtocolRAngleLoc) { 1112 TypeSourceInfo *BaseTypeInfo = nullptr; 1113 QualType T = GetTypeFromParser(BaseType, &BaseTypeInfo); 1114 if (T.isNull()) 1115 return true; 1116 1117 // Handle missing type-source info. 1118 if (!BaseTypeInfo) 1119 BaseTypeInfo = Context.getTrivialTypeSourceInfo(T, Loc); 1120 1121 // Extract type arguments. 1122 SmallVector<TypeSourceInfo *, 4> ActualTypeArgInfos; 1123 for (unsigned i = 0, n = TypeArgs.size(); i != n; ++i) { 1124 TypeSourceInfo *TypeArgInfo = nullptr; 1125 QualType TypeArg = GetTypeFromParser(TypeArgs[i], &TypeArgInfo); 1126 if (TypeArg.isNull()) { 1127 ActualTypeArgInfos.clear(); 1128 break; 1129 } 1130 1131 assert(TypeArgInfo && "No type source info?"); 1132 ActualTypeArgInfos.push_back(TypeArgInfo); 1133 } 1134 1135 // Build the object type. 1136 QualType Result = BuildObjCObjectType( 1137 T, BaseTypeInfo->getTypeLoc().getSourceRange().getBegin(), 1138 TypeArgsLAngleLoc, ActualTypeArgInfos, TypeArgsRAngleLoc, 1139 ProtocolLAngleLoc, 1140 llvm::makeArrayRef((ObjCProtocolDecl * const *)Protocols.data(), 1141 Protocols.size()), 1142 ProtocolLocs, ProtocolRAngleLoc, 1143 /*FailOnError=*/false); 1144 1145 if (Result == T) 1146 return BaseType; 1147 1148 // Create source information for this type. 1149 TypeSourceInfo *ResultTInfo = Context.CreateTypeSourceInfo(Result); 1150 TypeLoc ResultTL = ResultTInfo->getTypeLoc(); 1151 1152 // For id<Proto1, Proto2> or Class<Proto1, Proto2>, we'll have an 1153 // object pointer type. Fill in source information for it. 1154 if (auto ObjCObjectPointerTL = ResultTL.getAs<ObjCObjectPointerTypeLoc>()) { 1155 // The '*' is implicit. 1156 ObjCObjectPointerTL.setStarLoc(SourceLocation()); 1157 ResultTL = ObjCObjectPointerTL.getPointeeLoc(); 1158 } 1159 1160 if (auto OTPTL = ResultTL.getAs<ObjCTypeParamTypeLoc>()) { 1161 // Protocol qualifier information. 1162 if (OTPTL.getNumProtocols() > 0) { 1163 assert(OTPTL.getNumProtocols() == Protocols.size()); 1164 OTPTL.setProtocolLAngleLoc(ProtocolLAngleLoc); 1165 OTPTL.setProtocolRAngleLoc(ProtocolRAngleLoc); 1166 for (unsigned i = 0, n = Protocols.size(); i != n; ++i) 1167 OTPTL.setProtocolLoc(i, ProtocolLocs[i]); 1168 } 1169 1170 // We're done. Return the completed type to the parser. 1171 return CreateParsedType(Result, ResultTInfo); 1172 } 1173 1174 auto ObjCObjectTL = ResultTL.castAs<ObjCObjectTypeLoc>(); 1175 1176 // Type argument information. 1177 if (ObjCObjectTL.getNumTypeArgs() > 0) { 1178 assert(ObjCObjectTL.getNumTypeArgs() == ActualTypeArgInfos.size()); 1179 ObjCObjectTL.setTypeArgsLAngleLoc(TypeArgsLAngleLoc); 1180 ObjCObjectTL.setTypeArgsRAngleLoc(TypeArgsRAngleLoc); 1181 for (unsigned i = 0, n = ActualTypeArgInfos.size(); i != n; ++i) 1182 ObjCObjectTL.setTypeArgTInfo(i, ActualTypeArgInfos[i]); 1183 } else { 1184 ObjCObjectTL.setTypeArgsLAngleLoc(SourceLocation()); 1185 ObjCObjectTL.setTypeArgsRAngleLoc(SourceLocation()); 1186 } 1187 1188 // Protocol qualifier information. 1189 if (ObjCObjectTL.getNumProtocols() > 0) { 1190 assert(ObjCObjectTL.getNumProtocols() == Protocols.size()); 1191 ObjCObjectTL.setProtocolLAngleLoc(ProtocolLAngleLoc); 1192 ObjCObjectTL.setProtocolRAngleLoc(ProtocolRAngleLoc); 1193 for (unsigned i = 0, n = Protocols.size(); i != n; ++i) 1194 ObjCObjectTL.setProtocolLoc(i, ProtocolLocs[i]); 1195 } else { 1196 ObjCObjectTL.setProtocolLAngleLoc(SourceLocation()); 1197 ObjCObjectTL.setProtocolRAngleLoc(SourceLocation()); 1198 } 1199 1200 // Base type. 1201 ObjCObjectTL.setHasBaseTypeAsWritten(true); 1202 if (ObjCObjectTL.getType() == T) 1203 ObjCObjectTL.getBaseLoc().initializeFullCopy(BaseTypeInfo->getTypeLoc()); 1204 else 1205 ObjCObjectTL.getBaseLoc().initialize(Context, Loc); 1206 1207 // We're done. Return the completed type to the parser. 1208 return CreateParsedType(Result, ResultTInfo); 1209 } 1210 1211 static OpenCLAccessAttr::Spelling getImageAccess(const AttributeList *Attrs) { 1212 if (Attrs) { 1213 const AttributeList *Next = Attrs; 1214 do { 1215 const AttributeList &Attr = *Next; 1216 Next = Attr.getNext(); 1217 if (Attr.getKind() == AttributeList::AT_OpenCLAccess) { 1218 return static_cast<OpenCLAccessAttr::Spelling>( 1219 Attr.getSemanticSpelling()); 1220 } 1221 } while (Next); 1222 } 1223 return OpenCLAccessAttr::Keyword_read_only; 1224 } 1225 1226 /// \brief Convert the specified declspec to the appropriate type 1227 /// object. 1228 /// \param state Specifies the declarator containing the declaration specifier 1229 /// to be converted, along with other associated processing state. 1230 /// \returns The type described by the declaration specifiers. This function 1231 /// never returns null. 1232 static QualType ConvertDeclSpecToType(TypeProcessingState &state) { 1233 // FIXME: Should move the logic from DeclSpec::Finish to here for validity 1234 // checking. 1235 1236 Sema &S = state.getSema(); 1237 Declarator &declarator = state.getDeclarator(); 1238 const DeclSpec &DS = declarator.getDeclSpec(); 1239 SourceLocation DeclLoc = declarator.getIdentifierLoc(); 1240 if (DeclLoc.isInvalid()) 1241 DeclLoc = DS.getLocStart(); 1242 1243 ASTContext &Context = S.Context; 1244 1245 QualType Result; 1246 switch (DS.getTypeSpecType()) { 1247 case DeclSpec::TST_void: 1248 Result = Context.VoidTy; 1249 break; 1250 case DeclSpec::TST_char: 1251 if (DS.getTypeSpecSign() == DeclSpec::TSS_unspecified) 1252 Result = Context.CharTy; 1253 else if (DS.getTypeSpecSign() == DeclSpec::TSS_signed) 1254 Result = Context.SignedCharTy; 1255 else { 1256 assert(DS.getTypeSpecSign() == DeclSpec::TSS_unsigned && 1257 "Unknown TSS value"); 1258 Result = Context.UnsignedCharTy; 1259 } 1260 break; 1261 case DeclSpec::TST_wchar: 1262 if (DS.getTypeSpecSign() == DeclSpec::TSS_unspecified) 1263 Result = Context.WCharTy; 1264 else if (DS.getTypeSpecSign() == DeclSpec::TSS_signed) { 1265 S.Diag(DS.getTypeSpecSignLoc(), diag::ext_invalid_sign_spec) 1266 << DS.getSpecifierName(DS.getTypeSpecType(), 1267 Context.getPrintingPolicy()); 1268 Result = Context.getSignedWCharType(); 1269 } else { 1270 assert(DS.getTypeSpecSign() == DeclSpec::TSS_unsigned && 1271 "Unknown TSS value"); 1272 S.Diag(DS.getTypeSpecSignLoc(), diag::ext_invalid_sign_spec) 1273 << DS.getSpecifierName(DS.getTypeSpecType(), 1274 Context.getPrintingPolicy()); 1275 Result = Context.getUnsignedWCharType(); 1276 } 1277 break; 1278 case DeclSpec::TST_char16: 1279 assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified && 1280 "Unknown TSS value"); 1281 Result = Context.Char16Ty; 1282 break; 1283 case DeclSpec::TST_char32: 1284 assert(DS.getTypeSpecSign() == DeclSpec::TSS_unspecified && 1285 "Unknown TSS value"); 1286 Result = Context.Char32Ty; 1287 break; 1288 case DeclSpec::TST_unspecified: 1289 // If this is a missing declspec in a block literal return context, then it 1290 // is inferred from the return statements inside the block. 1291 // The declspec is always missing in a lambda expr context; it is either 1292 // specified with a trailing return type or inferred. 1293 if (S.getLangOpts().CPlusPlus14 && 1294 declarator.getContext() == Declarator::LambdaExprContext) { 1295 // In C++1y, a lambda's implicit return type is 'auto'. 1296 Result = Context.getAutoDeductType(); 1297 break; 1298 } else if (declarator.getContext() == Declarator::LambdaExprContext || 1299 checkOmittedBlockReturnType(S, declarator, 1300 Context.DependentTy)) { 1301 Result = Context.DependentTy; 1302 break; 1303 } 1304 1305 // Unspecified typespec defaults to int in C90. However, the C90 grammar 1306 // [C90 6.5] only allows a decl-spec if there was *some* type-specifier, 1307 // type-qualifier, or storage-class-specifier. If not, emit an extwarn. 1308 // Note that the one exception to this is function definitions, which are 1309 // allowed to be completely missing a declspec. This is handled in the 1310 // parser already though by it pretending to have seen an 'int' in this 1311 // case. 1312 if (S.getLangOpts().ImplicitInt) { 1313 // In C89 mode, we only warn if there is a completely missing declspec 1314 // when one is not allowed. 1315 if (DS.isEmpty()) { 1316 S.Diag(DeclLoc, diag::ext_missing_declspec) 1317 << DS.getSourceRange() 1318 << FixItHint::CreateInsertion(DS.getLocStart(), "int"); 1319 } 1320 } else if (!DS.hasTypeSpecifier()) { 1321 // C99 and C++ require a type specifier. For example, C99 6.7.2p2 says: 1322 // "At least one type specifier shall be given in the declaration 1323 // specifiers in each declaration, and in the specifier-qualifier list in 1324 // each struct declaration and type name." 1325 if (S.getLangOpts().CPlusPlus) { 1326 S.Diag(DeclLoc, diag::err_missing_type_specifier) 1327 << DS.getSourceRange(); 1328 1329 // When this occurs in C++ code, often something is very broken with the 1330 // value being declared, poison it as invalid so we don't get chains of 1331 // errors. 1332 declarator.setInvalidType(true); 1333 } else if (S.getLangOpts().OpenCLVersion >= 200 && DS.isTypeSpecPipe()){ 1334 S.Diag(DeclLoc, diag::err_missing_actual_pipe_type) 1335 << DS.getSourceRange(); 1336 declarator.setInvalidType(true); 1337 } else { 1338 S.Diag(DeclLoc, diag::ext_missing_type_specifier) 1339 << DS.getSourceRange(); 1340 } 1341 } 1342 1343 // FALL THROUGH. 1344 case DeclSpec::TST_int: { 1345 if (DS.getTypeSpecSign() != DeclSpec::TSS_unsigned) { 1346 switch (DS.getTypeSpecWidth()) { 1347 case DeclSpec::TSW_unspecified: Result = Context.IntTy; break; 1348 case DeclSpec::TSW_short: Result = Context.ShortTy; break; 1349 case DeclSpec::TSW_long: Result = Context.LongTy; break; 1350 case DeclSpec::TSW_longlong: 1351 Result = Context.LongLongTy; 1352 1353 // 'long long' is a C99 or C++11 feature. 1354 if (!S.getLangOpts().C99) { 1355 if (S.getLangOpts().CPlusPlus) 1356 S.Diag(DS.getTypeSpecWidthLoc(), 1357 S.getLangOpts().CPlusPlus11 ? 1358 diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong); 1359 else 1360 S.Diag(DS.getTypeSpecWidthLoc(), diag::ext_c99_longlong); 1361 } 1362 break; 1363 } 1364 } else { 1365 switch (DS.getTypeSpecWidth()) { 1366 case DeclSpec::TSW_unspecified: Result = Context.UnsignedIntTy; break; 1367 case DeclSpec::TSW_short: Result = Context.UnsignedShortTy; break; 1368 case DeclSpec::TSW_long: Result = Context.UnsignedLongTy; break; 1369 case DeclSpec::TSW_longlong: 1370 Result = Context.UnsignedLongLongTy; 1371 1372 // 'long long' is a C99 or C++11 feature. 1373 if (!S.getLangOpts().C99) { 1374 if (S.getLangOpts().CPlusPlus) 1375 S.Diag(DS.getTypeSpecWidthLoc(), 1376 S.getLangOpts().CPlusPlus11 ? 1377 diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong); 1378 else 1379 S.Diag(DS.getTypeSpecWidthLoc(), diag::ext_c99_longlong); 1380 } 1381 break; 1382 } 1383 } 1384 break; 1385 } 1386 case DeclSpec::TST_int128: 1387 if (!S.Context.getTargetInfo().hasInt128Type()) 1388 S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported) 1389 << "__int128"; 1390 if (DS.getTypeSpecSign() == DeclSpec::TSS_unsigned) 1391 Result = Context.UnsignedInt128Ty; 1392 else 1393 Result = Context.Int128Ty; 1394 break; 1395 case DeclSpec::TST_float16: Result = Context.Float16Ty; break; 1396 case DeclSpec::TST_half: Result = Context.HalfTy; break; 1397 case DeclSpec::TST_float: Result = Context.FloatTy; break; 1398 case DeclSpec::TST_double: 1399 if (DS.getTypeSpecWidth() == DeclSpec::TSW_long) 1400 Result = Context.LongDoubleTy; 1401 else 1402 Result = Context.DoubleTy; 1403 break; 1404 case DeclSpec::TST_float128: 1405 if (!S.Context.getTargetInfo().hasFloat128Type()) 1406 S.Diag(DS.getTypeSpecTypeLoc(), diag::err_type_unsupported) 1407 << "__float128"; 1408 Result = Context.Float128Ty; 1409 break; 1410 case DeclSpec::TST_bool: Result = Context.BoolTy; break; // _Bool or bool 1411 break; 1412 case DeclSpec::TST_decimal32: // _Decimal32 1413 case DeclSpec::TST_decimal64: // _Decimal64 1414 case DeclSpec::TST_decimal128: // _Decimal128 1415 S.Diag(DS.getTypeSpecTypeLoc(), diag::err_decimal_unsupported); 1416 Result = Context.IntTy; 1417 declarator.setInvalidType(true); 1418 break; 1419 case DeclSpec::TST_class: 1420 case DeclSpec::TST_enum: 1421 case DeclSpec::TST_union: 1422 case DeclSpec::TST_struct: 1423 case DeclSpec::TST_interface: { 1424 TypeDecl *D = dyn_cast_or_null<TypeDecl>(DS.getRepAsDecl()); 1425 if (!D) { 1426 // This can happen in C++ with ambiguous lookups. 1427 Result = Context.IntTy; 1428 declarator.setInvalidType(true); 1429 break; 1430 } 1431 1432 // If the type is deprecated or unavailable, diagnose it. 1433 S.DiagnoseUseOfDecl(D, DS.getTypeSpecTypeNameLoc()); 1434 1435 assert(DS.getTypeSpecWidth() == 0 && DS.getTypeSpecComplex() == 0 && 1436 DS.getTypeSpecSign() == 0 && "No qualifiers on tag names!"); 1437 1438 // TypeQuals handled by caller. 1439 Result = Context.getTypeDeclType(D); 1440 1441 // In both C and C++, make an ElaboratedType. 1442 ElaboratedTypeKeyword Keyword 1443 = ElaboratedType::getKeywordForTypeSpec(DS.getTypeSpecType()); 1444 Result = S.getElaboratedType(Keyword, DS.getTypeSpecScope(), Result); 1445 break; 1446 } 1447 case DeclSpec::TST_typename: { 1448 assert(DS.getTypeSpecWidth() == 0 && DS.getTypeSpecComplex() == 0 && 1449 DS.getTypeSpecSign() == 0 && 1450 "Can't handle qualifiers on typedef names yet!"); 1451 Result = S.GetTypeFromParser(DS.getRepAsType()); 1452 if (Result.isNull()) { 1453 declarator.setInvalidType(true); 1454 } 1455 1456 // TypeQuals handled by caller. 1457 break; 1458 } 1459 case DeclSpec::TST_typeofType: 1460 // FIXME: Preserve type source info. 1461 Result = S.GetTypeFromParser(DS.getRepAsType()); 1462 assert(!Result.isNull() && "Didn't get a type for typeof?"); 1463 if (!Result->isDependentType()) 1464 if (const TagType *TT = Result->getAs<TagType>()) 1465 S.DiagnoseUseOfDecl(TT->getDecl(), DS.getTypeSpecTypeLoc()); 1466 // TypeQuals handled by caller. 1467 Result = Context.getTypeOfType(Result); 1468 break; 1469 case DeclSpec::TST_typeofExpr: { 1470 Expr *E = DS.getRepAsExpr(); 1471 assert(E && "Didn't get an expression for typeof?"); 1472 // TypeQuals handled by caller. 1473 Result = S.BuildTypeofExprType(E, DS.getTypeSpecTypeLoc()); 1474 if (Result.isNull()) { 1475 Result = Context.IntTy; 1476 declarator.setInvalidType(true); 1477 } 1478 break; 1479 } 1480 case DeclSpec::TST_decltype: { 1481 Expr *E = DS.getRepAsExpr(); 1482 assert(E && "Didn't get an expression for decltype?"); 1483 // TypeQuals handled by caller. 1484 Result = S.BuildDecltypeType(E, DS.getTypeSpecTypeLoc()); 1485 if (Result.isNull()) { 1486 Result = Context.IntTy; 1487 declarator.setInvalidType(true); 1488 } 1489 break; 1490 } 1491 case DeclSpec::TST_underlyingType: 1492 Result = S.GetTypeFromParser(DS.getRepAsType()); 1493 assert(!Result.isNull() && "Didn't get a type for __underlying_type?"); 1494 Result = S.BuildUnaryTransformType(Result, 1495 UnaryTransformType::EnumUnderlyingType, 1496 DS.getTypeSpecTypeLoc()); 1497 if (Result.isNull()) { 1498 Result = Context.IntTy; 1499 declarator.setInvalidType(true); 1500 } 1501 break; 1502 1503 case DeclSpec::TST_auto: 1504 Result = Context.getAutoType(QualType(), AutoTypeKeyword::Auto, false); 1505 break; 1506 1507 case DeclSpec::TST_auto_type: 1508 Result = Context.getAutoType(QualType(), AutoTypeKeyword::GNUAutoType, false); 1509 break; 1510 1511 case DeclSpec::TST_decltype_auto: 1512 Result = Context.getAutoType(QualType(), AutoTypeKeyword::DecltypeAuto, 1513 /*IsDependent*/ false); 1514 break; 1515 1516 case DeclSpec::TST_unknown_anytype: 1517 Result = Context.UnknownAnyTy; 1518 break; 1519 1520 case DeclSpec::TST_atomic: 1521 Result = S.GetTypeFromParser(DS.getRepAsType()); 1522 assert(!Result.isNull() && "Didn't get a type for _Atomic?"); 1523 Result = S.BuildAtomicType(Result, DS.getTypeSpecTypeLoc()); 1524 if (Result.isNull()) { 1525 Result = Context.IntTy; 1526 declarator.setInvalidType(true); 1527 } 1528 break; 1529 1530 #define GENERIC_IMAGE_TYPE(ImgType, Id) \ 1531 case DeclSpec::TST_##ImgType##_t: \ 1532 switch (getImageAccess(DS.getAttributes().getList())) { \ 1533 case OpenCLAccessAttr::Keyword_write_only: \ 1534 Result = Context.Id##WOTy; break; \ 1535 case OpenCLAccessAttr::Keyword_read_write: \ 1536 Result = Context.Id##RWTy; break; \ 1537 case OpenCLAccessAttr::Keyword_read_only: \ 1538 Result = Context.Id##ROTy; break; \ 1539 } \ 1540 break; 1541 #include "clang/Basic/OpenCLImageTypes.def" 1542 1543 case DeclSpec::TST_error: 1544 Result = Context.IntTy; 1545 declarator.setInvalidType(true); 1546 break; 1547 } 1548 1549 if (S.getLangOpts().OpenCL && 1550 S.checkOpenCLDisabledTypeDeclSpec(DS, Result)) 1551 declarator.setInvalidType(true); 1552 1553 // Handle complex types. 1554 if (DS.getTypeSpecComplex() == DeclSpec::TSC_complex) { 1555 if (S.getLangOpts().Freestanding) 1556 S.Diag(DS.getTypeSpecComplexLoc(), diag::ext_freestanding_complex); 1557 Result = Context.getComplexType(Result); 1558 } else if (DS.isTypeAltiVecVector()) { 1559 unsigned typeSize = static_cast<unsigned>(Context.getTypeSize(Result)); 1560 assert(typeSize > 0 && "type size for vector must be greater than 0 bits"); 1561 VectorType::VectorKind VecKind = VectorType::AltiVecVector; 1562 if (DS.isTypeAltiVecPixel()) 1563 VecKind = VectorType::AltiVecPixel; 1564 else if (DS.isTypeAltiVecBool()) 1565 VecKind = VectorType::AltiVecBool; 1566 Result = Context.getVectorType(Result, 128/typeSize, VecKind); 1567 } 1568 1569 // FIXME: Imaginary. 1570 if (DS.getTypeSpecComplex() == DeclSpec::TSC_imaginary) 1571 S.Diag(DS.getTypeSpecComplexLoc(), diag::err_imaginary_not_supported); 1572 1573 // Before we process any type attributes, synthesize a block literal 1574 // function declarator if necessary. 1575 if (declarator.getContext() == Declarator::BlockLiteralContext) 1576 maybeSynthesizeBlockSignature(state, Result); 1577 1578 // Apply any type attributes from the decl spec. This may cause the 1579 // list of type attributes to be temporarily saved while the type 1580 // attributes are pushed around. 1581 // pipe attributes will be handled later ( at GetFullTypeForDeclarator ) 1582 if (!DS.isTypeSpecPipe()) 1583 processTypeAttrs(state, Result, TAL_DeclSpec, DS.getAttributes().getList()); 1584 1585 // Apply const/volatile/restrict qualifiers to T. 1586 if (unsigned TypeQuals = DS.getTypeQualifiers()) { 1587 // Warn about CV qualifiers on function types. 1588 // C99 6.7.3p8: 1589 // If the specification of a function type includes any type qualifiers, 1590 // the behavior is undefined. 1591 // C++11 [dcl.fct]p7: 1592 // The effect of a cv-qualifier-seq in a function declarator is not the 1593 // same as adding cv-qualification on top of the function type. In the 1594 // latter case, the cv-qualifiers are ignored. 1595 if (TypeQuals && Result->isFunctionType()) { 1596 diagnoseAndRemoveTypeQualifiers( 1597 S, DS, TypeQuals, Result, DeclSpec::TQ_const | DeclSpec::TQ_volatile, 1598 S.getLangOpts().CPlusPlus 1599 ? diag::warn_typecheck_function_qualifiers_ignored 1600 : diag::warn_typecheck_function_qualifiers_unspecified); 1601 // No diagnostic for 'restrict' or '_Atomic' applied to a 1602 // function type; we'll diagnose those later, in BuildQualifiedType. 1603 } 1604 1605 // C++11 [dcl.ref]p1: 1606 // Cv-qualified references are ill-formed except when the 1607 // cv-qualifiers are introduced through the use of a typedef-name 1608 // or decltype-specifier, in which case the cv-qualifiers are ignored. 1609 // 1610 // There don't appear to be any other contexts in which a cv-qualified 1611 // reference type could be formed, so the 'ill-formed' clause here appears 1612 // to never happen. 1613 if (TypeQuals && Result->isReferenceType()) { 1614 diagnoseAndRemoveTypeQualifiers( 1615 S, DS, TypeQuals, Result, 1616 DeclSpec::TQ_const | DeclSpec::TQ_volatile | DeclSpec::TQ_atomic, 1617 diag::warn_typecheck_reference_qualifiers); 1618 } 1619 1620 // C90 6.5.3 constraints: "The same type qualifier shall not appear more 1621 // than once in the same specifier-list or qualifier-list, either directly 1622 // or via one or more typedefs." 1623 if (!S.getLangOpts().C99 && !S.getLangOpts().CPlusPlus 1624 && TypeQuals & Result.getCVRQualifiers()) { 1625 if (TypeQuals & DeclSpec::TQ_const && Result.isConstQualified()) { 1626 S.Diag(DS.getConstSpecLoc(), diag::ext_duplicate_declspec) 1627 << "const"; 1628 } 1629 1630 if (TypeQuals & DeclSpec::TQ_volatile && Result.isVolatileQualified()) { 1631 S.Diag(DS.getVolatileSpecLoc(), diag::ext_duplicate_declspec) 1632 << "volatile"; 1633 } 1634 1635 // C90 doesn't have restrict nor _Atomic, so it doesn't force us to 1636 // produce a warning in this case. 1637 } 1638 1639 QualType Qualified = S.BuildQualifiedType(Result, DeclLoc, TypeQuals, &DS); 1640 1641 // If adding qualifiers fails, just use the unqualified type. 1642 if (Qualified.isNull()) 1643 declarator.setInvalidType(true); 1644 else 1645 Result = Qualified; 1646 } 1647 1648 assert(!Result.isNull() && "This function should not return a null type"); 1649 return Result; 1650 } 1651 1652 static std::string getPrintableNameForEntity(DeclarationName Entity) { 1653 if (Entity) 1654 return Entity.getAsString(); 1655 1656 return "type name"; 1657 } 1658 1659 QualType Sema::BuildQualifiedType(QualType T, SourceLocation Loc, 1660 Qualifiers Qs, const DeclSpec *DS) { 1661 if (T.isNull()) 1662 return QualType(); 1663 1664 // Ignore any attempt to form a cv-qualified reference. 1665 if (T->isReferenceType()) { 1666 Qs.removeConst(); 1667 Qs.removeVolatile(); 1668 } 1669 1670 // Enforce C99 6.7.3p2: "Types other than pointer types derived from 1671 // object or incomplete types shall not be restrict-qualified." 1672 if (Qs.hasRestrict()) { 1673 unsigned DiagID = 0; 1674 QualType ProblemTy; 1675 1676 if (T->isAnyPointerType() || T->isReferenceType() || 1677 T->isMemberPointerType()) { 1678 QualType EltTy; 1679 if (T->isObjCObjectPointerType()) 1680 EltTy = T; 1681 else if (const MemberPointerType *PTy = T->getAs<MemberPointerType>()) 1682 EltTy = PTy->getPointeeType(); 1683 else 1684 EltTy = T->getPointeeType(); 1685 1686 // If we have a pointer or reference, the pointee must have an object 1687 // incomplete type. 1688 if (!EltTy->isIncompleteOrObjectType()) { 1689 DiagID = diag::err_typecheck_invalid_restrict_invalid_pointee; 1690 ProblemTy = EltTy; 1691 } 1692 } else if (!T->isDependentType()) { 1693 DiagID = diag::err_typecheck_invalid_restrict_not_pointer; 1694 ProblemTy = T; 1695 } 1696 1697 if (DiagID) { 1698 Diag(DS ? DS->getRestrictSpecLoc() : Loc, DiagID) << ProblemTy; 1699 Qs.removeRestrict(); 1700 } 1701 } 1702 1703 return Context.getQualifiedType(T, Qs); 1704 } 1705 1706 QualType Sema::BuildQualifiedType(QualType T, SourceLocation Loc, 1707 unsigned CVRAU, const DeclSpec *DS) { 1708 if (T.isNull()) 1709 return QualType(); 1710 1711 // Ignore any attempt to form a cv-qualified reference. 1712 if (T->isReferenceType()) 1713 CVRAU &= 1714 ~(DeclSpec::TQ_const | DeclSpec::TQ_volatile | DeclSpec::TQ_atomic); 1715 1716 // Convert from DeclSpec::TQ to Qualifiers::TQ by just dropping TQ_atomic and 1717 // TQ_unaligned; 1718 unsigned CVR = CVRAU & ~(DeclSpec::TQ_atomic | DeclSpec::TQ_unaligned); 1719 1720 // C11 6.7.3/5: 1721 // If the same qualifier appears more than once in the same 1722 // specifier-qualifier-list, either directly or via one or more typedefs, 1723 // the behavior is the same as if it appeared only once. 1724 // 1725 // It's not specified what happens when the _Atomic qualifier is applied to 1726 // a type specified with the _Atomic specifier, but we assume that this 1727 // should be treated as if the _Atomic qualifier appeared multiple times. 1728 if (CVRAU & DeclSpec::TQ_atomic && !T->isAtomicType()) { 1729 // C11 6.7.3/5: 1730 // If other qualifiers appear along with the _Atomic qualifier in a 1731 // specifier-qualifier-list, the resulting type is the so-qualified 1732 // atomic type. 1733 // 1734 // Don't need to worry about array types here, since _Atomic can't be 1735 // applied to such types. 1736 SplitQualType Split = T.getSplitUnqualifiedType(); 1737 T = BuildAtomicType(QualType(Split.Ty, 0), 1738 DS ? DS->getAtomicSpecLoc() : Loc); 1739 if (T.isNull()) 1740 return T; 1741 Split.Quals.addCVRQualifiers(CVR); 1742 return BuildQualifiedType(T, Loc, Split.Quals); 1743 } 1744 1745 Qualifiers Q = Qualifiers::fromCVRMask(CVR); 1746 Q.setUnaligned(CVRAU & DeclSpec::TQ_unaligned); 1747 return BuildQualifiedType(T, Loc, Q, DS); 1748 } 1749 1750 /// \brief Build a paren type including \p T. 1751 QualType Sema::BuildParenType(QualType T) { 1752 return Context.getParenType(T); 1753 } 1754 1755 /// Given that we're building a pointer or reference to the given 1756 static QualType inferARCLifetimeForPointee(Sema &S, QualType type, 1757 SourceLocation loc, 1758 bool isReference) { 1759 // Bail out if retention is unrequired or already specified. 1760 if (!type->isObjCLifetimeType() || 1761 type.getObjCLifetime() != Qualifiers::OCL_None) 1762 return type; 1763 1764 Qualifiers::ObjCLifetime implicitLifetime = Qualifiers::OCL_None; 1765 1766 // If the object type is const-qualified, we can safely use 1767 // __unsafe_unretained. This is safe (because there are no read 1768 // barriers), and it'll be safe to coerce anything but __weak* to 1769 // the resulting type. 1770 if (type.isConstQualified()) { 1771 implicitLifetime = Qualifiers::OCL_ExplicitNone; 1772 1773 // Otherwise, check whether the static type does not require 1774 // retaining. This currently only triggers for Class (possibly 1775 // protocol-qualifed, and arrays thereof). 1776 } else if (type->isObjCARCImplicitlyUnretainedType()) { 1777 implicitLifetime = Qualifiers::OCL_ExplicitNone; 1778 1779 // If we are in an unevaluated context, like sizeof, skip adding a 1780 // qualification. 1781 } else if (S.isUnevaluatedContext()) { 1782 return type; 1783 1784 // If that failed, give an error and recover using __strong. __strong 1785 // is the option most likely to prevent spurious second-order diagnostics, 1786 // like when binding a reference to a field. 1787 } else { 1788 // These types can show up in private ivars in system headers, so 1789 // we need this to not be an error in those cases. Instead we 1790 // want to delay. 1791 if (S.DelayedDiagnostics.shouldDelayDiagnostics()) { 1792 S.DelayedDiagnostics.add( 1793 sema::DelayedDiagnostic::makeForbiddenType(loc, 1794 diag::err_arc_indirect_no_ownership, type, isReference)); 1795 } else { 1796 S.Diag(loc, diag::err_arc_indirect_no_ownership) << type << isReference; 1797 } 1798 implicitLifetime = Qualifiers::OCL_Strong; 1799 } 1800 assert(implicitLifetime && "didn't infer any lifetime!"); 1801 1802 Qualifiers qs; 1803 qs.addObjCLifetime(implicitLifetime); 1804 return S.Context.getQualifiedType(type, qs); 1805 } 1806 1807 static std::string getFunctionQualifiersAsString(const FunctionProtoType *FnTy){ 1808 std::string Quals = 1809 Qualifiers::fromCVRMask(FnTy->getTypeQuals()).getAsString(); 1810 1811 switch (FnTy->getRefQualifier()) { 1812 case RQ_None: 1813 break; 1814 1815 case RQ_LValue: 1816 if (!Quals.empty()) 1817 Quals += ' '; 1818 Quals += '&'; 1819 break; 1820 1821 case RQ_RValue: 1822 if (!Quals.empty()) 1823 Quals += ' '; 1824 Quals += "&&"; 1825 break; 1826 } 1827 1828 return Quals; 1829 } 1830 1831 namespace { 1832 /// Kinds of declarator that cannot contain a qualified function type. 1833 /// 1834 /// C++98 [dcl.fct]p4 / C++11 [dcl.fct]p6: 1835 /// a function type with a cv-qualifier or a ref-qualifier can only appear 1836 /// at the topmost level of a type. 1837 /// 1838 /// Parens and member pointers are permitted. We don't diagnose array and 1839 /// function declarators, because they don't allow function types at all. 1840 /// 1841 /// The values of this enum are used in diagnostics. 1842 enum QualifiedFunctionKind { QFK_BlockPointer, QFK_Pointer, QFK_Reference }; 1843 } // end anonymous namespace 1844 1845 /// Check whether the type T is a qualified function type, and if it is, 1846 /// diagnose that it cannot be contained within the given kind of declarator. 1847 static bool checkQualifiedFunction(Sema &S, QualType T, SourceLocation Loc, 1848 QualifiedFunctionKind QFK) { 1849 // Does T refer to a function type with a cv-qualifier or a ref-qualifier? 1850 const FunctionProtoType *FPT = T->getAs<FunctionProtoType>(); 1851 if (!FPT || (FPT->getTypeQuals() == 0 && FPT->getRefQualifier() == RQ_None)) 1852 return false; 1853 1854 S.Diag(Loc, diag::err_compound_qualified_function_type) 1855 << QFK << isa<FunctionType>(T.IgnoreParens()) << T 1856 << getFunctionQualifiersAsString(FPT); 1857 return true; 1858 } 1859 1860 /// \brief Build a pointer type. 1861 /// 1862 /// \param T The type to which we'll be building a pointer. 1863 /// 1864 /// \param Loc The location of the entity whose type involves this 1865 /// pointer type or, if there is no such entity, the location of the 1866 /// type that will have pointer type. 1867 /// 1868 /// \param Entity The name of the entity that involves the pointer 1869 /// type, if known. 1870 /// 1871 /// \returns A suitable pointer type, if there are no 1872 /// errors. Otherwise, returns a NULL type. 1873 QualType Sema::BuildPointerType(QualType T, 1874 SourceLocation Loc, DeclarationName Entity) { 1875 if (T->isReferenceType()) { 1876 // C++ 8.3.2p4: There shall be no ... pointers to references ... 1877 Diag(Loc, diag::err_illegal_decl_pointer_to_reference) 1878 << getPrintableNameForEntity(Entity) << T; 1879 return QualType(); 1880 } 1881 1882 if (T->isFunctionType() && getLangOpts().OpenCL) { 1883 Diag(Loc, diag::err_opencl_function_pointer); 1884 return QualType(); 1885 } 1886 1887 if (checkQualifiedFunction(*this, T, Loc, QFK_Pointer)) 1888 return QualType(); 1889 1890 assert(!T->isObjCObjectType() && "Should build ObjCObjectPointerType"); 1891 1892 // In ARC, it is forbidden to build pointers to unqualified pointers. 1893 if (getLangOpts().ObjCAutoRefCount) 1894 T = inferARCLifetimeForPointee(*this, T, Loc, /*reference*/ false); 1895 1896 // Build the pointer type. 1897 return Context.getPointerType(T); 1898 } 1899 1900 /// \brief Build a reference type. 1901 /// 1902 /// \param T The type to which we'll be building a reference. 1903 /// 1904 /// \param Loc The location of the entity whose type involves this 1905 /// reference type or, if there is no such entity, the location of the 1906 /// type that will have reference type. 1907 /// 1908 /// \param Entity The name of the entity that involves the reference 1909 /// type, if known. 1910 /// 1911 /// \returns A suitable reference type, if there are no 1912 /// errors. Otherwise, returns a NULL type. 1913 QualType Sema::BuildReferenceType(QualType T, bool SpelledAsLValue, 1914 SourceLocation Loc, 1915 DeclarationName Entity) { 1916 assert(Context.getCanonicalType(T) != Context.OverloadTy && 1917 "Unresolved overloaded function type"); 1918 1919 // C++0x [dcl.ref]p6: 1920 // If a typedef (7.1.3), a type template-parameter (14.3.1), or a 1921 // decltype-specifier (7.1.6.2) denotes a type TR that is a reference to a 1922 // type T, an attempt to create the type "lvalue reference to cv TR" creates 1923 // the type "lvalue reference to T", while an attempt to create the type 1924 // "rvalue reference to cv TR" creates the type TR. 1925 bool LValueRef = SpelledAsLValue || T->getAs<LValueReferenceType>(); 1926 1927 // C++ [dcl.ref]p4: There shall be no references to references. 1928 // 1929 // According to C++ DR 106, references to references are only 1930 // diagnosed when they are written directly (e.g., "int & &"), 1931 // but not when they happen via a typedef: 1932 // 1933 // typedef int& intref; 1934 // typedef intref& intref2; 1935 // 1936 // Parser::ParseDeclaratorInternal diagnoses the case where 1937 // references are written directly; here, we handle the 1938 // collapsing of references-to-references as described in C++0x. 1939 // DR 106 and 540 introduce reference-collapsing into C++98/03. 1940 1941 // C++ [dcl.ref]p1: 1942 // A declarator that specifies the type "reference to cv void" 1943 // is ill-formed. 1944 if (T->isVoidType()) { 1945 Diag(Loc, diag::err_reference_to_void); 1946 return QualType(); 1947 } 1948 1949 if (checkQualifiedFunction(*this, T, Loc, QFK_Reference)) 1950 return QualType(); 1951 1952 // In ARC, it is forbidden to build references to unqualified pointers. 1953 if (getLangOpts().ObjCAutoRefCount) 1954 T = inferARCLifetimeForPointee(*this, T, Loc, /*reference*/ true); 1955 1956 // Handle restrict on references. 1957 if (LValueRef) 1958 return Context.getLValueReferenceType(T, SpelledAsLValue); 1959 return Context.getRValueReferenceType(T); 1960 } 1961 1962 /// \brief Build a Read-only Pipe type. 1963 /// 1964 /// \param T The type to which we'll be building a Pipe. 1965 /// 1966 /// \param Loc We do not use it for now. 1967 /// 1968 /// \returns A suitable pipe type, if there are no errors. Otherwise, returns a 1969 /// NULL type. 1970 QualType Sema::BuildReadPipeType(QualType T, SourceLocation Loc) { 1971 return Context.getReadPipeType(T); 1972 } 1973 1974 /// \brief Build a Write-only Pipe type. 1975 /// 1976 /// \param T The type to which we'll be building a Pipe. 1977 /// 1978 /// \param Loc We do not use it for now. 1979 /// 1980 /// \returns A suitable pipe type, if there are no errors. Otherwise, returns a 1981 /// NULL type. 1982 QualType Sema::BuildWritePipeType(QualType T, SourceLocation Loc) { 1983 return Context.getWritePipeType(T); 1984 } 1985 1986 /// Check whether the specified array size makes the array type a VLA. If so, 1987 /// return true, if not, return the size of the array in SizeVal. 1988 static bool isArraySizeVLA(Sema &S, Expr *ArraySize, llvm::APSInt &SizeVal) { 1989 // If the size is an ICE, it certainly isn't a VLA. If we're in a GNU mode 1990 // (like gnu99, but not c99) accept any evaluatable value as an extension. 1991 class VLADiagnoser : public Sema::VerifyICEDiagnoser { 1992 public: 1993 VLADiagnoser() : Sema::VerifyICEDiagnoser(true) {} 1994 1995 void diagnoseNotICE(Sema &S, SourceLocation Loc, SourceRange SR) override { 1996 } 1997 1998 void diagnoseFold(Sema &S, SourceLocation Loc, SourceRange SR) override { 1999 S.Diag(Loc, diag::ext_vla_folded_to_constant) << SR; 2000 } 2001 } Diagnoser; 2002 2003 return S.VerifyIntegerConstantExpression(ArraySize, &SizeVal, Diagnoser, 2004 S.LangOpts.GNUMode || 2005 S.LangOpts.OpenCL).isInvalid(); 2006 } 2007 2008 /// \brief Build an array type. 2009 /// 2010 /// \param T The type of each element in the array. 2011 /// 2012 /// \param ASM C99 array size modifier (e.g., '*', 'static'). 2013 /// 2014 /// \param ArraySize Expression describing the size of the array. 2015 /// 2016 /// \param Brackets The range from the opening '[' to the closing ']'. 2017 /// 2018 /// \param Entity The name of the entity that involves the array 2019 /// type, if known. 2020 /// 2021 /// \returns A suitable array type, if there are no errors. Otherwise, 2022 /// returns a NULL type. 2023 QualType Sema::BuildArrayType(QualType T, ArrayType::ArraySizeModifier ASM, 2024 Expr *ArraySize, unsigned Quals, 2025 SourceRange Brackets, DeclarationName Entity) { 2026 2027 SourceLocation Loc = Brackets.getBegin(); 2028 if (getLangOpts().CPlusPlus) { 2029 // C++ [dcl.array]p1: 2030 // T is called the array element type; this type shall not be a reference 2031 // type, the (possibly cv-qualified) type void, a function type or an 2032 // abstract class type. 2033 // 2034 // C++ [dcl.array]p3: 2035 // When several "array of" specifications are adjacent, [...] only the 2036 // first of the constant expressions that specify the bounds of the arrays 2037 // may be omitted. 2038 // 2039 // Note: function types are handled in the common path with C. 2040 if (T->isReferenceType()) { 2041 Diag(Loc, diag::err_illegal_decl_array_of_references) 2042 << getPrintableNameForEntity(Entity) << T; 2043 return QualType(); 2044 } 2045 2046 if (T->isVoidType() || T->isIncompleteArrayType()) { 2047 Diag(Loc, diag::err_illegal_decl_array_incomplete_type) << T; 2048 return QualType(); 2049 } 2050 2051 if (RequireNonAbstractType(Brackets.getBegin(), T, 2052 diag::err_array_of_abstract_type)) 2053 return QualType(); 2054 2055 // Mentioning a member pointer type for an array type causes us to lock in 2056 // an inheritance model, even if it's inside an unused typedef. 2057 if (Context.getTargetInfo().getCXXABI().isMicrosoft()) 2058 if (const MemberPointerType *MPTy = T->getAs<MemberPointerType>()) 2059 if (!MPTy->getClass()->isDependentType()) 2060 (void)isCompleteType(Loc, T); 2061 2062 } else { 2063 // C99 6.7.5.2p1: If the element type is an incomplete or function type, 2064 // reject it (e.g. void ary[7], struct foo ary[7], void ary[7]()) 2065 if (RequireCompleteType(Loc, T, 2066 diag::err_illegal_decl_array_incomplete_type)) 2067 return QualType(); 2068 } 2069 2070 if (T->isFunctionType()) { 2071 Diag(Loc, diag::err_illegal_decl_array_of_functions) 2072 << getPrintableNameForEntity(Entity) << T; 2073 return QualType(); 2074 } 2075 2076 if (const RecordType *EltTy = T->getAs<RecordType>()) { 2077 // If the element type is a struct or union that contains a variadic 2078 // array, accept it as a GNU extension: C99 6.7.2.1p2. 2079 if (EltTy->getDecl()->hasFlexibleArrayMember()) 2080 Diag(Loc, diag::ext_flexible_array_in_array) << T; 2081 } else if (T->isObjCObjectType()) { 2082 Diag(Loc, diag::err_objc_array_of_interfaces) << T; 2083 return QualType(); 2084 } 2085 2086 // Do placeholder conversions on the array size expression. 2087 if (ArraySize && ArraySize->hasPlaceholderType()) { 2088 ExprResult Result = CheckPlaceholderExpr(ArraySize); 2089 if (Result.isInvalid()) return QualType(); 2090 ArraySize = Result.get(); 2091 } 2092 2093 // Do lvalue-to-rvalue conversions on the array size expression. 2094 if (ArraySize && !ArraySize->isRValue()) { 2095 ExprResult Result = DefaultLvalueConversion(ArraySize); 2096 if (Result.isInvalid()) 2097 return QualType(); 2098 2099 ArraySize = Result.get(); 2100 } 2101 2102 // C99 6.7.5.2p1: The size expression shall have integer type. 2103 // C++11 allows contextual conversions to such types. 2104 if (!getLangOpts().CPlusPlus11 && 2105 ArraySize && !ArraySize->isTypeDependent() && 2106 !ArraySize->getType()->isIntegralOrUnscopedEnumerationType()) { 2107 Diag(ArraySize->getLocStart(), diag::err_array_size_non_int) 2108 << ArraySize->getType() << ArraySize->getSourceRange(); 2109 return QualType(); 2110 } 2111 2112 llvm::APSInt ConstVal(Context.getTypeSize(Context.getSizeType())); 2113 if (!ArraySize) { 2114 if (ASM == ArrayType::Star) 2115 T = Context.getVariableArrayType(T, nullptr, ASM, Quals, Brackets); 2116 else 2117 T = Context.getIncompleteArrayType(T, ASM, Quals); 2118 } else if (ArraySize->isTypeDependent() || ArraySize->isValueDependent()) { 2119 T = Context.getDependentSizedArrayType(T, ArraySize, ASM, Quals, Brackets); 2120 } else if ((!T->isDependentType() && !T->isIncompleteType() && 2121 !T->isConstantSizeType()) || 2122 isArraySizeVLA(*this, ArraySize, ConstVal)) { 2123 // Even in C++11, don't allow contextual conversions in the array bound 2124 // of a VLA. 2125 if (getLangOpts().CPlusPlus11 && 2126 !ArraySize->getType()->isIntegralOrUnscopedEnumerationType()) { 2127 Diag(ArraySize->getLocStart(), diag::err_array_size_non_int) 2128 << ArraySize->getType() << ArraySize->getSourceRange(); 2129 return QualType(); 2130 } 2131 2132 // C99: an array with an element type that has a non-constant-size is a VLA. 2133 // C99: an array with a non-ICE size is a VLA. We accept any expression 2134 // that we can fold to a non-zero positive value as an extension. 2135 T = Context.getVariableArrayType(T, ArraySize, ASM, Quals, Brackets); 2136 } else { 2137 // C99 6.7.5.2p1: If the expression is a constant expression, it shall 2138 // have a value greater than zero. 2139 if (ConstVal.isSigned() && ConstVal.isNegative()) { 2140 if (Entity) 2141 Diag(ArraySize->getLocStart(), diag::err_decl_negative_array_size) 2142 << getPrintableNameForEntity(Entity) << ArraySize->getSourceRange(); 2143 else 2144 Diag(ArraySize->getLocStart(), diag::err_typecheck_negative_array_size) 2145 << ArraySize->getSourceRange(); 2146 return QualType(); 2147 } 2148 if (ConstVal == 0) { 2149 // GCC accepts zero sized static arrays. We allow them when 2150 // we're not in a SFINAE context. 2151 Diag(ArraySize->getLocStart(), 2152 isSFINAEContext()? diag::err_typecheck_zero_array_size 2153 : diag::ext_typecheck_zero_array_size) 2154 << ArraySize->getSourceRange(); 2155 2156 if (ASM == ArrayType::Static) { 2157 Diag(ArraySize->getLocStart(), 2158 diag::warn_typecheck_zero_static_array_size) 2159 << ArraySize->getSourceRange(); 2160 ASM = ArrayType::Normal; 2161 } 2162 } else if (!T->isDependentType() && !T->isVariablyModifiedType() && 2163 !T->isIncompleteType() && !T->isUndeducedType()) { 2164 // Is the array too large? 2165 unsigned ActiveSizeBits 2166 = ConstantArrayType::getNumAddressingBits(Context, T, ConstVal); 2167 if (ActiveSizeBits > ConstantArrayType::getMaxSizeBits(Context)) { 2168 Diag(ArraySize->getLocStart(), diag::err_array_too_large) 2169 << ConstVal.toString(10) 2170 << ArraySize->getSourceRange(); 2171 return QualType(); 2172 } 2173 } 2174 2175 T = Context.getConstantArrayType(T, ConstVal, ASM, Quals); 2176 } 2177 2178 // OpenCL v1.2 s6.9.d: variable length arrays are not supported. 2179 if (getLangOpts().OpenCL && T->isVariableArrayType()) { 2180 Diag(Loc, diag::err_opencl_vla); 2181 return QualType(); 2182 } 2183 // CUDA device code doesn't support VLAs. 2184 if (getLangOpts().CUDA && T->isVariableArrayType()) 2185 CUDADiagIfDeviceCode(Loc, diag::err_cuda_vla) << CurrentCUDATarget(); 2186 2187 // If this is not C99, extwarn about VLA's and C99 array size modifiers. 2188 if (!getLangOpts().C99) { 2189 if (T->isVariableArrayType()) { 2190 // Prohibit the use of VLAs during template argument deduction. 2191 if (isSFINAEContext()) { 2192 Diag(Loc, diag::err_vla_in_sfinae); 2193 return QualType(); 2194 } 2195 // Just extwarn about VLAs. 2196 else 2197 Diag(Loc, diag::ext_vla); 2198 } else if (ASM != ArrayType::Normal || Quals != 0) 2199 Diag(Loc, 2200 getLangOpts().CPlusPlus? diag::err_c99_array_usage_cxx 2201 : diag::ext_c99_array_usage) << ASM; 2202 } 2203 2204 if (T->isVariableArrayType()) { 2205 // Warn about VLAs for -Wvla. 2206 Diag(Loc, diag::warn_vla_used); 2207 } 2208 2209 // OpenCL v2.0 s6.12.5 - Arrays of blocks are not supported. 2210 // OpenCL v2.0 s6.16.13.1 - Arrays of pipe type are not supported. 2211 // OpenCL v2.0 s6.9.b - Arrays of image/sampler type are not supported. 2212 if (getLangOpts().OpenCL) { 2213 const QualType ArrType = Context.getBaseElementType(T); 2214 if (ArrType->isBlockPointerType() || ArrType->isPipeType() || 2215 ArrType->isSamplerT() || ArrType->isImageType()) { 2216 Diag(Loc, diag::err_opencl_invalid_type_array) << ArrType; 2217 return QualType(); 2218 } 2219 } 2220 2221 return T; 2222 } 2223 2224 /// \brief Build an ext-vector type. 2225 /// 2226 /// Run the required checks for the extended vector type. 2227 QualType Sema::BuildExtVectorType(QualType T, Expr *ArraySize, 2228 SourceLocation AttrLoc) { 2229 // Unlike gcc's vector_size attribute, we do not allow vectors to be defined 2230 // in conjunction with complex types (pointers, arrays, functions, etc.). 2231 // 2232 // Additionally, OpenCL prohibits vectors of booleans (they're considered a 2233 // reserved data type under OpenCL v2.0 s6.1.4), we don't support selects 2234 // on bitvectors, and we have no well-defined ABI for bitvectors, so vectors 2235 // of bool aren't allowed. 2236 if ((!T->isDependentType() && !T->isIntegerType() && 2237 !T->isRealFloatingType()) || 2238 T->isBooleanType()) { 2239 Diag(AttrLoc, diag::err_attribute_invalid_vector_type) << T; 2240 return QualType(); 2241 } 2242 2243 if (!ArraySize->isTypeDependent() && !ArraySize->isValueDependent()) { 2244 llvm::APSInt vecSize(32); 2245 if (!ArraySize->isIntegerConstantExpr(vecSize, Context)) { 2246 Diag(AttrLoc, diag::err_attribute_argument_type) 2247 << "ext_vector_type" << AANT_ArgumentIntegerConstant 2248 << ArraySize->getSourceRange(); 2249 return QualType(); 2250 } 2251 2252 // Unlike gcc's vector_size attribute, the size is specified as the 2253 // number of elements, not the number of bytes. 2254 unsigned vectorSize = static_cast<unsigned>(vecSize.getZExtValue()); 2255 2256 if (vectorSize == 0) { 2257 Diag(AttrLoc, diag::err_attribute_zero_size) 2258 << ArraySize->getSourceRange(); 2259 return QualType(); 2260 } 2261 2262 if (VectorType::isVectorSizeTooLarge(vectorSize)) { 2263 Diag(AttrLoc, diag::err_attribute_size_too_large) 2264 << ArraySize->getSourceRange(); 2265 return QualType(); 2266 } 2267 2268 return Context.getExtVectorType(T, vectorSize); 2269 } 2270 2271 return Context.getDependentSizedExtVectorType(T, ArraySize, AttrLoc); 2272 } 2273 2274 bool Sema::CheckFunctionReturnType(QualType T, SourceLocation Loc) { 2275 if (T->isArrayType() || T->isFunctionType()) { 2276 Diag(Loc, diag::err_func_returning_array_function) 2277 << T->isFunctionType() << T; 2278 return true; 2279 } 2280 2281 // Functions cannot return half FP. 2282 if (T->isHalfType() && !getLangOpts().HalfArgsAndReturns) { 2283 Diag(Loc, diag::err_parameters_retval_cannot_have_fp16_type) << 1 << 2284 FixItHint::CreateInsertion(Loc, "*"); 2285 return true; 2286 } 2287 2288 // Methods cannot return interface types. All ObjC objects are 2289 // passed by reference. 2290 if (T->isObjCObjectType()) { 2291 Diag(Loc, diag::err_object_cannot_be_passed_returned_by_value) 2292 << 0 << T << FixItHint::CreateInsertion(Loc, "*"); 2293 return true; 2294 } 2295 2296 return false; 2297 } 2298 2299 /// Check the extended parameter information. Most of the necessary 2300 /// checking should occur when applying the parameter attribute; the 2301 /// only other checks required are positional restrictions. 2302 static void checkExtParameterInfos(Sema &S, ArrayRef<QualType> paramTypes, 2303 const FunctionProtoType::ExtProtoInfo &EPI, 2304 llvm::function_ref<SourceLocation(unsigned)> getParamLoc) { 2305 assert(EPI.ExtParameterInfos && "shouldn't get here without param infos"); 2306 2307 bool hasCheckedSwiftCall = false; 2308 auto checkForSwiftCC = [&](unsigned paramIndex) { 2309 // Only do this once. 2310 if (hasCheckedSwiftCall) return; 2311 hasCheckedSwiftCall = true; 2312 if (EPI.ExtInfo.getCC() == CC_Swift) return; 2313 S.Diag(getParamLoc(paramIndex), diag::err_swift_param_attr_not_swiftcall) 2314 << getParameterABISpelling(EPI.ExtParameterInfos[paramIndex].getABI()); 2315 }; 2316 2317 for (size_t paramIndex = 0, numParams = paramTypes.size(); 2318 paramIndex != numParams; ++paramIndex) { 2319 switch (EPI.ExtParameterInfos[paramIndex].getABI()) { 2320 // Nothing interesting to check for orindary-ABI parameters. 2321 case ParameterABI::Ordinary: 2322 continue; 2323 2324 // swift_indirect_result parameters must be a prefix of the function 2325 // arguments. 2326 case ParameterABI::SwiftIndirectResult: 2327 checkForSwiftCC(paramIndex); 2328 if (paramIndex != 0 && 2329 EPI.ExtParameterInfos[paramIndex - 1].getABI() 2330 != ParameterABI::SwiftIndirectResult) { 2331 S.Diag(getParamLoc(paramIndex), 2332 diag::err_swift_indirect_result_not_first); 2333 } 2334 continue; 2335 2336 case ParameterABI::SwiftContext: 2337 checkForSwiftCC(paramIndex); 2338 continue; 2339 2340 // swift_error parameters must be preceded by a swift_context parameter. 2341 case ParameterABI::SwiftErrorResult: 2342 checkForSwiftCC(paramIndex); 2343 if (paramIndex == 0 || 2344 EPI.ExtParameterInfos[paramIndex - 1].getABI() != 2345 ParameterABI::SwiftContext) { 2346 S.Diag(getParamLoc(paramIndex), 2347 diag::err_swift_error_result_not_after_swift_context); 2348 } 2349 continue; 2350 } 2351 llvm_unreachable("bad ABI kind"); 2352 } 2353 } 2354 2355 QualType Sema::BuildFunctionType(QualType T, 2356 MutableArrayRef<QualType> ParamTypes, 2357 SourceLocation Loc, DeclarationName Entity, 2358 const FunctionProtoType::ExtProtoInfo &EPI) { 2359 bool Invalid = false; 2360 2361 Invalid |= CheckFunctionReturnType(T, Loc); 2362 2363 for (unsigned Idx = 0, Cnt = ParamTypes.size(); Idx < Cnt; ++Idx) { 2364 // FIXME: Loc is too inprecise here, should use proper locations for args. 2365 QualType ParamType = Context.getAdjustedParameterType(ParamTypes[Idx]); 2366 if (ParamType->isVoidType()) { 2367 Diag(Loc, diag::err_param_with_void_type); 2368 Invalid = true; 2369 } else if (ParamType->isHalfType() && !getLangOpts().HalfArgsAndReturns) { 2370 // Disallow half FP arguments. 2371 Diag(Loc, diag::err_parameters_retval_cannot_have_fp16_type) << 0 << 2372 FixItHint::CreateInsertion(Loc, "*"); 2373 Invalid = true; 2374 } 2375 2376 ParamTypes[Idx] = ParamType; 2377 } 2378 2379 if (EPI.ExtParameterInfos) { 2380 checkExtParameterInfos(*this, ParamTypes, EPI, 2381 [=](unsigned i) { return Loc; }); 2382 } 2383 2384 if (EPI.ExtInfo.getProducesResult()) { 2385 // This is just a warning, so we can't fail to build if we see it. 2386 checkNSReturnsRetainedReturnType(Loc, T); 2387 } 2388 2389 if (Invalid) 2390 return QualType(); 2391 2392 return Context.getFunctionType(T, ParamTypes, EPI); 2393 } 2394 2395 /// \brief Build a member pointer type \c T Class::*. 2396 /// 2397 /// \param T the type to which the member pointer refers. 2398 /// \param Class the class type into which the member pointer points. 2399 /// \param Loc the location where this type begins 2400 /// \param Entity the name of the entity that will have this member pointer type 2401 /// 2402 /// \returns a member pointer type, if successful, or a NULL type if there was 2403 /// an error. 2404 QualType Sema::BuildMemberPointerType(QualType T, QualType Class, 2405 SourceLocation Loc, 2406 DeclarationName Entity) { 2407 // Verify that we're not building a pointer to pointer to function with 2408 // exception specification. 2409 if (CheckDistantExceptionSpec(T)) { 2410 Diag(Loc, diag::err_distant_exception_spec); 2411 return QualType(); 2412 } 2413 2414 // C++ 8.3.3p3: A pointer to member shall not point to ... a member 2415 // with reference type, or "cv void." 2416 if (T->isReferenceType()) { 2417 Diag(Loc, diag::err_illegal_decl_mempointer_to_reference) 2418 << getPrintableNameForEntity(Entity) << T; 2419 return QualType(); 2420 } 2421 2422 if (T->isVoidType()) { 2423 Diag(Loc, diag::err_illegal_decl_mempointer_to_void) 2424 << getPrintableNameForEntity(Entity); 2425 return QualType(); 2426 } 2427 2428 if (!Class->isDependentType() && !Class->isRecordType()) { 2429 Diag(Loc, diag::err_mempointer_in_nonclass_type) << Class; 2430 return QualType(); 2431 } 2432 2433 // Adjust the default free function calling convention to the default method 2434 // calling convention. 2435 bool IsCtorOrDtor = 2436 (Entity.getNameKind() == DeclarationName::CXXConstructorName) || 2437 (Entity.getNameKind() == DeclarationName::CXXDestructorName); 2438 if (T->isFunctionType()) 2439 adjustMemberFunctionCC(T, /*IsStatic=*/false, IsCtorOrDtor, Loc); 2440 2441 return Context.getMemberPointerType(T, Class.getTypePtr()); 2442 } 2443 2444 /// \brief Build a block pointer type. 2445 /// 2446 /// \param T The type to which we'll be building a block pointer. 2447 /// 2448 /// \param Loc The source location, used for diagnostics. 2449 /// 2450 /// \param Entity The name of the entity that involves the block pointer 2451 /// type, if known. 2452 /// 2453 /// \returns A suitable block pointer type, if there are no 2454 /// errors. Otherwise, returns a NULL type. 2455 QualType Sema::BuildBlockPointerType(QualType T, 2456 SourceLocation Loc, 2457 DeclarationName Entity) { 2458 if (!T->isFunctionType()) { 2459 Diag(Loc, diag::err_nonfunction_block_type); 2460 return QualType(); 2461 } 2462 2463 if (checkQualifiedFunction(*this, T, Loc, QFK_BlockPointer)) 2464 return QualType(); 2465 2466 return Context.getBlockPointerType(T); 2467 } 2468 2469 QualType Sema::GetTypeFromParser(ParsedType Ty, TypeSourceInfo **TInfo) { 2470 QualType QT = Ty.get(); 2471 if (QT.isNull()) { 2472 if (TInfo) *TInfo = nullptr; 2473 return QualType(); 2474 } 2475 2476 TypeSourceInfo *DI = nullptr; 2477 if (const LocInfoType *LIT = dyn_cast<LocInfoType>(QT)) { 2478 QT = LIT->getType(); 2479 DI = LIT->getTypeSourceInfo(); 2480 } 2481 2482 if (TInfo) *TInfo = DI; 2483 return QT; 2484 } 2485 2486 static void transferARCOwnershipToDeclaratorChunk(TypeProcessingState &state, 2487 Qualifiers::ObjCLifetime ownership, 2488 unsigned chunkIndex); 2489 2490 /// Given that this is the declaration of a parameter under ARC, 2491 /// attempt to infer attributes and such for pointer-to-whatever 2492 /// types. 2493 static void inferARCWriteback(TypeProcessingState &state, 2494 QualType &declSpecType) { 2495 Sema &S = state.getSema(); 2496 Declarator &declarator = state.getDeclarator(); 2497 2498 // TODO: should we care about decl qualifiers? 2499 2500 // Check whether the declarator has the expected form. We walk 2501 // from the inside out in order to make the block logic work. 2502 unsigned outermostPointerIndex = 0; 2503 bool isBlockPointer = false; 2504 unsigned numPointers = 0; 2505 for (unsigned i = 0, e = declarator.getNumTypeObjects(); i != e; ++i) { 2506 unsigned chunkIndex = i; 2507 DeclaratorChunk &chunk = declarator.getTypeObject(chunkIndex); 2508 switch (chunk.Kind) { 2509 case DeclaratorChunk::Paren: 2510 // Ignore parens. 2511 break; 2512 2513 case DeclaratorChunk::Reference: 2514 case DeclaratorChunk::Pointer: 2515 // Count the number of pointers. Treat references 2516 // interchangeably as pointers; if they're mis-ordered, normal 2517 // type building will discover that. 2518 outermostPointerIndex = chunkIndex; 2519 numPointers++; 2520 break; 2521 2522 case DeclaratorChunk::BlockPointer: 2523 // If we have a pointer to block pointer, that's an acceptable 2524 // indirect reference; anything else is not an application of 2525 // the rules. 2526 if (numPointers != 1) return; 2527 numPointers++; 2528 outermostPointerIndex = chunkIndex; 2529 isBlockPointer = true; 2530 2531 // We don't care about pointer structure in return values here. 2532 goto done; 2533 2534 case DeclaratorChunk::Array: // suppress if written (id[])? 2535 case DeclaratorChunk::Function: 2536 case DeclaratorChunk::MemberPointer: 2537 case DeclaratorChunk::Pipe: 2538 return; 2539 } 2540 } 2541 done: 2542 2543 // If we have *one* pointer, then we want to throw the qualifier on 2544 // the declaration-specifiers, which means that it needs to be a 2545 // retainable object type. 2546 if (numPointers == 1) { 2547 // If it's not a retainable object type, the rule doesn't apply. 2548 if (!declSpecType->isObjCRetainableType()) return; 2549 2550 // If it already has lifetime, don't do anything. 2551 if (declSpecType.getObjCLifetime()) return; 2552 2553 // Otherwise, modify the type in-place. 2554 Qualifiers qs; 2555 2556 if (declSpecType->isObjCARCImplicitlyUnretainedType()) 2557 qs.addObjCLifetime(Qualifiers::OCL_ExplicitNone); 2558 else 2559 qs.addObjCLifetime(Qualifiers::OCL_Autoreleasing); 2560 declSpecType = S.Context.getQualifiedType(declSpecType, qs); 2561 2562 // If we have *two* pointers, then we want to throw the qualifier on 2563 // the outermost pointer. 2564 } else if (numPointers == 2) { 2565 // If we don't have a block pointer, we need to check whether the 2566 // declaration-specifiers gave us something that will turn into a 2567 // retainable object pointer after we slap the first pointer on it. 2568 if (!isBlockPointer && !declSpecType->isObjCObjectType()) 2569 return; 2570 2571 // Look for an explicit lifetime attribute there. 2572 DeclaratorChunk &chunk = declarator.getTypeObject(outermostPointerIndex); 2573 if (chunk.Kind != DeclaratorChunk::Pointer && 2574 chunk.Kind != DeclaratorChunk::BlockPointer) 2575 return; 2576 for (const AttributeList *attr = chunk.getAttrs(); attr; 2577 attr = attr->getNext()) 2578 if (attr->getKind() == AttributeList::AT_ObjCOwnership) 2579 return; 2580 2581 transferARCOwnershipToDeclaratorChunk(state, Qualifiers::OCL_Autoreleasing, 2582 outermostPointerIndex); 2583 2584 // Any other number of pointers/references does not trigger the rule. 2585 } else return; 2586 2587 // TODO: mark whether we did this inference? 2588 } 2589 2590 void Sema::diagnoseIgnoredQualifiers(unsigned DiagID, unsigned Quals, 2591 SourceLocation FallbackLoc, 2592 SourceLocation ConstQualLoc, 2593 SourceLocation VolatileQualLoc, 2594 SourceLocation RestrictQualLoc, 2595 SourceLocation AtomicQualLoc, 2596 SourceLocation UnalignedQualLoc) { 2597 if (!Quals) 2598 return; 2599 2600 struct Qual { 2601 const char *Name; 2602 unsigned Mask; 2603 SourceLocation Loc; 2604 } const QualKinds[5] = { 2605 { "const", DeclSpec::TQ_const, ConstQualLoc }, 2606 { "volatile", DeclSpec::TQ_volatile, VolatileQualLoc }, 2607 { "restrict", DeclSpec::TQ_restrict, RestrictQualLoc }, 2608 { "__unaligned", DeclSpec::TQ_unaligned, UnalignedQualLoc }, 2609 { "_Atomic", DeclSpec::TQ_atomic, AtomicQualLoc } 2610 }; 2611 2612 SmallString<32> QualStr; 2613 unsigned NumQuals = 0; 2614 SourceLocation Loc; 2615 FixItHint FixIts[5]; 2616 2617 // Build a string naming the redundant qualifiers. 2618 for (auto &E : QualKinds) { 2619 if (Quals & E.Mask) { 2620 if (!QualStr.empty()) QualStr += ' '; 2621 QualStr += E.Name; 2622 2623 // If we have a location for the qualifier, offer a fixit. 2624 SourceLocation QualLoc = E.Loc; 2625 if (QualLoc.isValid()) { 2626 FixIts[NumQuals] = FixItHint::CreateRemoval(QualLoc); 2627 if (Loc.isInvalid() || 2628 getSourceManager().isBeforeInTranslationUnit(QualLoc, Loc)) 2629 Loc = QualLoc; 2630 } 2631 2632 ++NumQuals; 2633 } 2634 } 2635 2636 Diag(Loc.isInvalid() ? FallbackLoc : Loc, DiagID) 2637 << QualStr << NumQuals << FixIts[0] << FixIts[1] << FixIts[2] << FixIts[3]; 2638 } 2639 2640 // Diagnose pointless type qualifiers on the return type of a function. 2641 static void diagnoseRedundantReturnTypeQualifiers(Sema &S, QualType RetTy, 2642 Declarator &D, 2643 unsigned FunctionChunkIndex) { 2644 if (D.getTypeObject(FunctionChunkIndex).Fun.hasTrailingReturnType()) { 2645 // FIXME: TypeSourceInfo doesn't preserve location information for 2646 // qualifiers. 2647 S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type, 2648 RetTy.getLocalCVRQualifiers(), 2649 D.getIdentifierLoc()); 2650 return; 2651 } 2652 2653 for (unsigned OuterChunkIndex = FunctionChunkIndex + 1, 2654 End = D.getNumTypeObjects(); 2655 OuterChunkIndex != End; ++OuterChunkIndex) { 2656 DeclaratorChunk &OuterChunk = D.getTypeObject(OuterChunkIndex); 2657 switch (OuterChunk.Kind) { 2658 case DeclaratorChunk::Paren: 2659 continue; 2660 2661 case DeclaratorChunk::Pointer: { 2662 DeclaratorChunk::PointerTypeInfo &PTI = OuterChunk.Ptr; 2663 S.diagnoseIgnoredQualifiers( 2664 diag::warn_qual_return_type, 2665 PTI.TypeQuals, 2666 SourceLocation(), 2667 SourceLocation::getFromRawEncoding(PTI.ConstQualLoc), 2668 SourceLocation::getFromRawEncoding(PTI.VolatileQualLoc), 2669 SourceLocation::getFromRawEncoding(PTI.RestrictQualLoc), 2670 SourceLocation::getFromRawEncoding(PTI.AtomicQualLoc), 2671 SourceLocation::getFromRawEncoding(PTI.UnalignedQualLoc)); 2672 return; 2673 } 2674 2675 case DeclaratorChunk::Function: 2676 case DeclaratorChunk::BlockPointer: 2677 case DeclaratorChunk::Reference: 2678 case DeclaratorChunk::Array: 2679 case DeclaratorChunk::MemberPointer: 2680 case DeclaratorChunk::Pipe: 2681 // FIXME: We can't currently provide an accurate source location and a 2682 // fix-it hint for these. 2683 unsigned AtomicQual = RetTy->isAtomicType() ? DeclSpec::TQ_atomic : 0; 2684 S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type, 2685 RetTy.getCVRQualifiers() | AtomicQual, 2686 D.getIdentifierLoc()); 2687 return; 2688 } 2689 2690 llvm_unreachable("unknown declarator chunk kind"); 2691 } 2692 2693 // If the qualifiers come from a conversion function type, don't diagnose 2694 // them -- they're not necessarily redundant, since such a conversion 2695 // operator can be explicitly called as "x.operator const int()". 2696 if (D.getName().getKind() == UnqualifiedId::IK_ConversionFunctionId) 2697 return; 2698 2699 // Just parens all the way out to the decl specifiers. Diagnose any qualifiers 2700 // which are present there. 2701 S.diagnoseIgnoredQualifiers(diag::warn_qual_return_type, 2702 D.getDeclSpec().getTypeQualifiers(), 2703 D.getIdentifierLoc(), 2704 D.getDeclSpec().getConstSpecLoc(), 2705 D.getDeclSpec().getVolatileSpecLoc(), 2706 D.getDeclSpec().getRestrictSpecLoc(), 2707 D.getDeclSpec().getAtomicSpecLoc(), 2708 D.getDeclSpec().getUnalignedSpecLoc()); 2709 } 2710 2711 static QualType GetDeclSpecTypeForDeclarator(TypeProcessingState &state, 2712 TypeSourceInfo *&ReturnTypeInfo) { 2713 Sema &SemaRef = state.getSema(); 2714 Declarator &D = state.getDeclarator(); 2715 QualType T; 2716 ReturnTypeInfo = nullptr; 2717 2718 // The TagDecl owned by the DeclSpec. 2719 TagDecl *OwnedTagDecl = nullptr; 2720 2721 switch (D.getName().getKind()) { 2722 case UnqualifiedId::IK_ImplicitSelfParam: 2723 case UnqualifiedId::IK_OperatorFunctionId: 2724 case UnqualifiedId::IK_Identifier: 2725 case UnqualifiedId::IK_LiteralOperatorId: 2726 case UnqualifiedId::IK_TemplateId: 2727 T = ConvertDeclSpecToType(state); 2728 2729 if (!D.isInvalidType() && D.getDeclSpec().isTypeSpecOwned()) { 2730 OwnedTagDecl = cast<TagDecl>(D.getDeclSpec().getRepAsDecl()); 2731 // Owned declaration is embedded in declarator. 2732 OwnedTagDecl->setEmbeddedInDeclarator(true); 2733 } 2734 break; 2735 2736 case UnqualifiedId::IK_ConstructorName: 2737 case UnqualifiedId::IK_ConstructorTemplateId: 2738 case UnqualifiedId::IK_DestructorName: 2739 // Constructors and destructors don't have return types. Use 2740 // "void" instead. 2741 T = SemaRef.Context.VoidTy; 2742 processTypeAttrs(state, T, TAL_DeclSpec, 2743 D.getDeclSpec().getAttributes().getList()); 2744 break; 2745 2746 case UnqualifiedId::IK_DeductionGuideName: 2747 // Deduction guides have a trailing return type and no type in their 2748 // decl-specifier sequence. Use a placeholder return type for now. 2749 T = SemaRef.Context.DependentTy; 2750 break; 2751 2752 case UnqualifiedId::IK_ConversionFunctionId: 2753 // The result type of a conversion function is the type that it 2754 // converts to. 2755 T = SemaRef.GetTypeFromParser(D.getName().ConversionFunctionId, 2756 &ReturnTypeInfo); 2757 break; 2758 } 2759 2760 if (D.getAttributes()) 2761 distributeTypeAttrsFromDeclarator(state, T); 2762 2763 // C++11 [dcl.spec.auto]p5: reject 'auto' if it is not in an allowed context. 2764 if (DeducedType *Deduced = T->getContainedDeducedType()) { 2765 AutoType *Auto = dyn_cast<AutoType>(Deduced); 2766 int Error = -1; 2767 2768 // Is this a 'auto' or 'decltype(auto)' type (as opposed to __auto_type or 2769 // class template argument deduction)? 2770 bool IsCXXAutoType = 2771 (Auto && Auto->getKeyword() != AutoTypeKeyword::GNUAutoType); 2772 2773 switch (D.getContext()) { 2774 case Declarator::LambdaExprContext: 2775 // Declared return type of a lambda-declarator is implicit and is always 2776 // 'auto'. 2777 break; 2778 case Declarator::ObjCParameterContext: 2779 case Declarator::ObjCResultContext: 2780 case Declarator::PrototypeContext: 2781 Error = 0; 2782 break; 2783 case Declarator::LambdaExprParameterContext: 2784 // In C++14, generic lambdas allow 'auto' in their parameters. 2785 if (!SemaRef.getLangOpts().CPlusPlus14 || 2786 !Auto || Auto->getKeyword() != AutoTypeKeyword::Auto) 2787 Error = 16; 2788 else { 2789 // If auto is mentioned in a lambda parameter context, convert it to a 2790 // template parameter type. 2791 sema::LambdaScopeInfo *LSI = SemaRef.getCurLambda(); 2792 assert(LSI && "No LambdaScopeInfo on the stack!"); 2793 const unsigned TemplateParameterDepth = LSI->AutoTemplateParameterDepth; 2794 const unsigned AutoParameterPosition = LSI->AutoTemplateParams.size(); 2795 const bool IsParameterPack = D.hasEllipsis(); 2796 2797 // Create the TemplateTypeParmDecl here to retrieve the corresponding 2798 // template parameter type. Template parameters are temporarily added 2799 // to the TU until the associated TemplateDecl is created. 2800 TemplateTypeParmDecl *CorrespondingTemplateParam = 2801 TemplateTypeParmDecl::Create( 2802 SemaRef.Context, SemaRef.Context.getTranslationUnitDecl(), 2803 /*KeyLoc*/SourceLocation(), /*NameLoc*/D.getLocStart(), 2804 TemplateParameterDepth, AutoParameterPosition, 2805 /*Identifier*/nullptr, false, IsParameterPack); 2806 LSI->AutoTemplateParams.push_back(CorrespondingTemplateParam); 2807 // Replace the 'auto' in the function parameter with this invented 2808 // template type parameter. 2809 // FIXME: Retain some type sugar to indicate that this was written 2810 // as 'auto'. 2811 T = SemaRef.ReplaceAutoType( 2812 T, QualType(CorrespondingTemplateParam->getTypeForDecl(), 0)); 2813 } 2814 break; 2815 case Declarator::MemberContext: { 2816 if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_static || 2817 D.isFunctionDeclarator()) 2818 break; 2819 bool Cxx = SemaRef.getLangOpts().CPlusPlus; 2820 switch (cast<TagDecl>(SemaRef.CurContext)->getTagKind()) { 2821 case TTK_Enum: llvm_unreachable("unhandled tag kind"); 2822 case TTK_Struct: Error = Cxx ? 1 : 2; /* Struct member */ break; 2823 case TTK_Union: Error = Cxx ? 3 : 4; /* Union member */ break; 2824 case TTK_Class: Error = 5; /* Class member */ break; 2825 case TTK_Interface: Error = 6; /* Interface member */ break; 2826 } 2827 if (D.getDeclSpec().isFriendSpecified()) 2828 Error = 20; // Friend type 2829 break; 2830 } 2831 case Declarator::CXXCatchContext: 2832 case Declarator::ObjCCatchContext: 2833 Error = 7; // Exception declaration 2834 break; 2835 case Declarator::TemplateParamContext: 2836 if (isa<DeducedTemplateSpecializationType>(Deduced)) 2837 Error = 19; // Template parameter 2838 else if (!SemaRef.getLangOpts().CPlusPlus1z) 2839 Error = 8; // Template parameter (until C++1z) 2840 break; 2841 case Declarator::BlockLiteralContext: 2842 Error = 9; // Block literal 2843 break; 2844 case Declarator::TemplateTypeArgContext: 2845 Error = 10; // Template type argument 2846 break; 2847 case Declarator::AliasDeclContext: 2848 case Declarator::AliasTemplateContext: 2849 Error = 12; // Type alias 2850 break; 2851 case Declarator::TrailingReturnContext: 2852 if (!SemaRef.getLangOpts().CPlusPlus14 || !IsCXXAutoType) 2853 Error = 13; // Function return type 2854 break; 2855 case Declarator::ConversionIdContext: 2856 if (!SemaRef.getLangOpts().CPlusPlus14 || !IsCXXAutoType) 2857 Error = 14; // conversion-type-id 2858 break; 2859 case Declarator::FunctionalCastContext: 2860 if (isa<DeducedTemplateSpecializationType>(Deduced)) 2861 break; 2862 LLVM_FALLTHROUGH; 2863 case Declarator::TypeNameContext: 2864 Error = 15; // Generic 2865 break; 2866 case Declarator::FileContext: 2867 case Declarator::BlockContext: 2868 case Declarator::ForContext: 2869 case Declarator::InitStmtContext: 2870 case Declarator::ConditionContext: 2871 // FIXME: P0091R3 (erroneously) does not permit class template argument 2872 // deduction in conditions, for-init-statements, and other declarations 2873 // that are not simple-declarations. 2874 break; 2875 case Declarator::CXXNewContext: 2876 // FIXME: P0091R3 does not permit class template argument deduction here, 2877 // but we follow GCC and allow it anyway. 2878 if (!IsCXXAutoType && !isa<DeducedTemplateSpecializationType>(Deduced)) 2879 Error = 17; // 'new' type 2880 break; 2881 case Declarator::KNRTypeListContext: 2882 Error = 18; // K&R function parameter 2883 break; 2884 } 2885 2886 if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef) 2887 Error = 11; 2888 2889 // In Objective-C it is an error to use 'auto' on a function declarator 2890 // (and everywhere for '__auto_type'). 2891 if (D.isFunctionDeclarator() && 2892 (!SemaRef.getLangOpts().CPlusPlus11 || !IsCXXAutoType)) 2893 Error = 13; 2894 2895 bool HaveTrailing = false; 2896 2897 // C++11 [dcl.spec.auto]p2: 'auto' is always fine if the declarator 2898 // contains a trailing return type. That is only legal at the outermost 2899 // level. Check all declarator chunks (outermost first) anyway, to give 2900 // better diagnostics. 2901 // We don't support '__auto_type' with trailing return types. 2902 // FIXME: Should we only do this for 'auto' and not 'decltype(auto)'? 2903 if (SemaRef.getLangOpts().CPlusPlus11 && IsCXXAutoType && 2904 D.hasTrailingReturnType()) { 2905 HaveTrailing = true; 2906 Error = -1; 2907 } 2908 2909 SourceRange AutoRange = D.getDeclSpec().getTypeSpecTypeLoc(); 2910 if (D.getName().getKind() == UnqualifiedId::IK_ConversionFunctionId) 2911 AutoRange = D.getName().getSourceRange(); 2912 2913 if (Error != -1) { 2914 unsigned Kind; 2915 if (Auto) { 2916 switch (Auto->getKeyword()) { 2917 case AutoTypeKeyword::Auto: Kind = 0; break; 2918 case AutoTypeKeyword::DecltypeAuto: Kind = 1; break; 2919 case AutoTypeKeyword::GNUAutoType: Kind = 2; break; 2920 } 2921 } else { 2922 assert(isa<DeducedTemplateSpecializationType>(Deduced) && 2923 "unknown auto type"); 2924 Kind = 3; 2925 } 2926 2927 auto *DTST = dyn_cast<DeducedTemplateSpecializationType>(Deduced); 2928 TemplateName TN = DTST ? DTST->getTemplateName() : TemplateName(); 2929 2930 SemaRef.Diag(AutoRange.getBegin(), diag::err_auto_not_allowed) 2931 << Kind << Error << (int)SemaRef.getTemplateNameKindForDiagnostics(TN) 2932 << QualType(Deduced, 0) << AutoRange; 2933 if (auto *TD = TN.getAsTemplateDecl()) 2934 SemaRef.Diag(TD->getLocation(), diag::note_template_decl_here); 2935 2936 T = SemaRef.Context.IntTy; 2937 D.setInvalidType(true); 2938 } else if (!HaveTrailing) { 2939 // If there was a trailing return type, we already got 2940 // warn_cxx98_compat_trailing_return_type in the parser. 2941 SemaRef.Diag(AutoRange.getBegin(), 2942 diag::warn_cxx98_compat_auto_type_specifier) 2943 << AutoRange; 2944 } 2945 } 2946 2947 if (SemaRef.getLangOpts().CPlusPlus && 2948 OwnedTagDecl && OwnedTagDecl->isCompleteDefinition()) { 2949 // Check the contexts where C++ forbids the declaration of a new class 2950 // or enumeration in a type-specifier-seq. 2951 unsigned DiagID = 0; 2952 switch (D.getContext()) { 2953 case Declarator::TrailingReturnContext: 2954 // Class and enumeration definitions are syntactically not allowed in 2955 // trailing return types. 2956 llvm_unreachable("parser should not have allowed this"); 2957 break; 2958 case Declarator::FileContext: 2959 case Declarator::MemberContext: 2960 case Declarator::BlockContext: 2961 case Declarator::ForContext: 2962 case Declarator::InitStmtContext: 2963 case Declarator::BlockLiteralContext: 2964 case Declarator::LambdaExprContext: 2965 // C++11 [dcl.type]p3: 2966 // A type-specifier-seq shall not define a class or enumeration unless 2967 // it appears in the type-id of an alias-declaration (7.1.3) that is not 2968 // the declaration of a template-declaration. 2969 case Declarator::AliasDeclContext: 2970 break; 2971 case Declarator::AliasTemplateContext: 2972 DiagID = diag::err_type_defined_in_alias_template; 2973 break; 2974 case Declarator::TypeNameContext: 2975 case Declarator::FunctionalCastContext: 2976 case Declarator::ConversionIdContext: 2977 case Declarator::TemplateParamContext: 2978 case Declarator::CXXNewContext: 2979 case Declarator::CXXCatchContext: 2980 case Declarator::ObjCCatchContext: 2981 case Declarator::TemplateTypeArgContext: 2982 DiagID = diag::err_type_defined_in_type_specifier; 2983 break; 2984 case Declarator::PrototypeContext: 2985 case Declarator::LambdaExprParameterContext: 2986 case Declarator::ObjCParameterContext: 2987 case Declarator::ObjCResultContext: 2988 case Declarator::KNRTypeListContext: 2989 // C++ [dcl.fct]p6: 2990 // Types shall not be defined in return or parameter types. 2991 DiagID = diag::err_type_defined_in_param_type; 2992 break; 2993 case Declarator::ConditionContext: 2994 // C++ 6.4p2: 2995 // The type-specifier-seq shall not contain typedef and shall not declare 2996 // a new class or enumeration. 2997 DiagID = diag::err_type_defined_in_condition; 2998 break; 2999 } 3000 3001 if (DiagID != 0) { 3002 SemaRef.Diag(OwnedTagDecl->getLocation(), DiagID) 3003 << SemaRef.Context.getTypeDeclType(OwnedTagDecl); 3004 D.setInvalidType(true); 3005 } 3006 } 3007 3008 assert(!T.isNull() && "This function should not return a null type"); 3009 return T; 3010 } 3011 3012 /// Produce an appropriate diagnostic for an ambiguity between a function 3013 /// declarator and a C++ direct-initializer. 3014 static void warnAboutAmbiguousFunction(Sema &S, Declarator &D, 3015 DeclaratorChunk &DeclType, QualType RT) { 3016 const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun; 3017 assert(FTI.isAmbiguous && "no direct-initializer / function ambiguity"); 3018 3019 // If the return type is void there is no ambiguity. 3020 if (RT->isVoidType()) 3021 return; 3022 3023 // An initializer for a non-class type can have at most one argument. 3024 if (!RT->isRecordType() && FTI.NumParams > 1) 3025 return; 3026 3027 // An initializer for a reference must have exactly one argument. 3028 if (RT->isReferenceType() && FTI.NumParams != 1) 3029 return; 3030 3031 // Only warn if this declarator is declaring a function at block scope, and 3032 // doesn't have a storage class (such as 'extern') specified. 3033 if (!D.isFunctionDeclarator() || 3034 D.getFunctionDefinitionKind() != FDK_Declaration || 3035 !S.CurContext->isFunctionOrMethod() || 3036 D.getDeclSpec().getStorageClassSpec() 3037 != DeclSpec::SCS_unspecified) 3038 return; 3039 3040 // Inside a condition, a direct initializer is not permitted. We allow one to 3041 // be parsed in order to give better diagnostics in condition parsing. 3042 if (D.getContext() == Declarator::ConditionContext) 3043 return; 3044 3045 SourceRange ParenRange(DeclType.Loc, DeclType.EndLoc); 3046 3047 S.Diag(DeclType.Loc, 3048 FTI.NumParams ? diag::warn_parens_disambiguated_as_function_declaration 3049 : diag::warn_empty_parens_are_function_decl) 3050 << ParenRange; 3051 3052 // If the declaration looks like: 3053 // T var1, 3054 // f(); 3055 // and name lookup finds a function named 'f', then the ',' was 3056 // probably intended to be a ';'. 3057 if (!D.isFirstDeclarator() && D.getIdentifier()) { 3058 FullSourceLoc Comma(D.getCommaLoc(), S.SourceMgr); 3059 FullSourceLoc Name(D.getIdentifierLoc(), S.SourceMgr); 3060 if (Comma.getFileID() != Name.getFileID() || 3061 Comma.getSpellingLineNumber() != Name.getSpellingLineNumber()) { 3062 LookupResult Result(S, D.getIdentifier(), SourceLocation(), 3063 Sema::LookupOrdinaryName); 3064 if (S.LookupName(Result, S.getCurScope())) 3065 S.Diag(D.getCommaLoc(), diag::note_empty_parens_function_call) 3066 << FixItHint::CreateReplacement(D.getCommaLoc(), ";") 3067 << D.getIdentifier(); 3068 Result.suppressDiagnostics(); 3069 } 3070 } 3071 3072 if (FTI.NumParams > 0) { 3073 // For a declaration with parameters, eg. "T var(T());", suggest adding 3074 // parens around the first parameter to turn the declaration into a 3075 // variable declaration. 3076 SourceRange Range = FTI.Params[0].Param->getSourceRange(); 3077 SourceLocation B = Range.getBegin(); 3078 SourceLocation E = S.getLocForEndOfToken(Range.getEnd()); 3079 // FIXME: Maybe we should suggest adding braces instead of parens 3080 // in C++11 for classes that don't have an initializer_list constructor. 3081 S.Diag(B, diag::note_additional_parens_for_variable_declaration) 3082 << FixItHint::CreateInsertion(B, "(") 3083 << FixItHint::CreateInsertion(E, ")"); 3084 } else { 3085 // For a declaration without parameters, eg. "T var();", suggest replacing 3086 // the parens with an initializer to turn the declaration into a variable 3087 // declaration. 3088 const CXXRecordDecl *RD = RT->getAsCXXRecordDecl(); 3089 3090 // Empty parens mean value-initialization, and no parens mean 3091 // default initialization. These are equivalent if the default 3092 // constructor is user-provided or if zero-initialization is a 3093 // no-op. 3094 if (RD && RD->hasDefinition() && 3095 (RD->isEmpty() || RD->hasUserProvidedDefaultConstructor())) 3096 S.Diag(DeclType.Loc, diag::note_empty_parens_default_ctor) 3097 << FixItHint::CreateRemoval(ParenRange); 3098 else { 3099 std::string Init = 3100 S.getFixItZeroInitializerForType(RT, ParenRange.getBegin()); 3101 if (Init.empty() && S.LangOpts.CPlusPlus11) 3102 Init = "{}"; 3103 if (!Init.empty()) 3104 S.Diag(DeclType.Loc, diag::note_empty_parens_zero_initialize) 3105 << FixItHint::CreateReplacement(ParenRange, Init); 3106 } 3107 } 3108 } 3109 3110 /// Produce an appropriate diagnostic for a declarator with top-level 3111 /// parentheses. 3112 static void warnAboutRedundantParens(Sema &S, Declarator &D, QualType T) { 3113 DeclaratorChunk &Paren = D.getTypeObject(D.getNumTypeObjects() - 1); 3114 assert(Paren.Kind == DeclaratorChunk::Paren && 3115 "do not have redundant top-level parentheses"); 3116 3117 // This is a syntactic check; we're not interested in cases that arise 3118 // during template instantiation. 3119 if (S.inTemplateInstantiation()) 3120 return; 3121 3122 // Check whether this could be intended to be a construction of a temporary 3123 // object in C++ via a function-style cast. 3124 bool CouldBeTemporaryObject = 3125 S.getLangOpts().CPlusPlus && D.isExpressionContext() && 3126 !D.isInvalidType() && D.getIdentifier() && 3127 D.getDeclSpec().getParsedSpecifiers() == DeclSpec::PQ_TypeSpecifier && 3128 (T->isRecordType() || T->isDependentType()) && 3129 D.getDeclSpec().getTypeQualifiers() == 0 && D.isFirstDeclarator(); 3130 3131 for (auto &C : D.type_objects()) { 3132 switch (C.Kind) { 3133 case DeclaratorChunk::Pointer: 3134 case DeclaratorChunk::Paren: 3135 continue; 3136 3137 case DeclaratorChunk::Array: 3138 if (!C.Arr.NumElts) 3139 CouldBeTemporaryObject = false; 3140 continue; 3141 3142 case DeclaratorChunk::Reference: 3143 // FIXME: Suppress the warning here if there is no initializer; we're 3144 // going to give an error anyway. 3145 // We assume that something like 'T (&x) = y;' is highly likely to not 3146 // be intended to be a temporary object. 3147 CouldBeTemporaryObject = false; 3148 continue; 3149 3150 case DeclaratorChunk::Function: 3151 // In a new-type-id, function chunks require parentheses. 3152 if (D.getContext() == Declarator::CXXNewContext) 3153 return; 3154 LLVM_FALLTHROUGH; 3155 case DeclaratorChunk::BlockPointer: 3156 case DeclaratorChunk::MemberPointer: 3157 case DeclaratorChunk::Pipe: 3158 // These cannot appear in expressions. 3159 CouldBeTemporaryObject = false; 3160 continue; 3161 } 3162 } 3163 3164 // FIXME: If there is an initializer, assume that this is not intended to be 3165 // a construction of a temporary object. 3166 3167 // Check whether the name has already been declared; if not, this is not a 3168 // function-style cast. 3169 if (CouldBeTemporaryObject) { 3170 LookupResult Result(S, D.getIdentifier(), SourceLocation(), 3171 Sema::LookupOrdinaryName); 3172 if (!S.LookupName(Result, S.getCurScope())) 3173 CouldBeTemporaryObject = false; 3174 Result.suppressDiagnostics(); 3175 } 3176 3177 SourceRange ParenRange(Paren.Loc, Paren.EndLoc); 3178 3179 if (!CouldBeTemporaryObject) { 3180 S.Diag(Paren.Loc, diag::warn_redundant_parens_around_declarator) 3181 << ParenRange << FixItHint::CreateRemoval(Paren.Loc) 3182 << FixItHint::CreateRemoval(Paren.EndLoc); 3183 return; 3184 } 3185 3186 S.Diag(Paren.Loc, diag::warn_parens_disambiguated_as_variable_declaration) 3187 << ParenRange << D.getIdentifier(); 3188 auto *RD = T->getAsCXXRecordDecl(); 3189 if (!RD || !RD->hasDefinition() || RD->hasNonTrivialDestructor()) 3190 S.Diag(Paren.Loc, diag::note_raii_guard_add_name) 3191 << FixItHint::CreateInsertion(Paren.Loc, " varname") << T 3192 << D.getIdentifier(); 3193 // FIXME: A cast to void is probably a better suggestion in cases where it's 3194 // valid (when there is no initializer and we're not in a condition). 3195 S.Diag(D.getLocStart(), diag::note_function_style_cast_add_parentheses) 3196 << FixItHint::CreateInsertion(D.getLocStart(), "(") 3197 << FixItHint::CreateInsertion(S.getLocForEndOfToken(D.getLocEnd()), ")"); 3198 S.Diag(Paren.Loc, diag::note_remove_parens_for_variable_declaration) 3199 << FixItHint::CreateRemoval(Paren.Loc) 3200 << FixItHint::CreateRemoval(Paren.EndLoc); 3201 } 3202 3203 /// Helper for figuring out the default CC for a function declarator type. If 3204 /// this is the outermost chunk, then we can determine the CC from the 3205 /// declarator context. If not, then this could be either a member function 3206 /// type or normal function type. 3207 static CallingConv 3208 getCCForDeclaratorChunk(Sema &S, Declarator &D, 3209 const DeclaratorChunk::FunctionTypeInfo &FTI, 3210 unsigned ChunkIndex) { 3211 assert(D.getTypeObject(ChunkIndex).Kind == DeclaratorChunk::Function); 3212 3213 // Check for an explicit CC attribute. 3214 for (auto Attr = FTI.AttrList; Attr; Attr = Attr->getNext()) { 3215 switch (Attr->getKind()) { 3216 CALLING_CONV_ATTRS_CASELIST: { 3217 // Ignore attributes that don't validate or can't apply to the 3218 // function type. We'll diagnose the failure to apply them in 3219 // handleFunctionTypeAttr. 3220 CallingConv CC; 3221 if (!S.CheckCallingConvAttr(*Attr, CC) && 3222 (!FTI.isVariadic || supportsVariadicCall(CC))) { 3223 return CC; 3224 } 3225 break; 3226 } 3227 3228 default: 3229 break; 3230 } 3231 } 3232 3233 bool IsCXXInstanceMethod = false; 3234 3235 if (S.getLangOpts().CPlusPlus) { 3236 // Look inwards through parentheses to see if this chunk will form a 3237 // member pointer type or if we're the declarator. Any type attributes 3238 // between here and there will override the CC we choose here. 3239 unsigned I = ChunkIndex; 3240 bool FoundNonParen = false; 3241 while (I && !FoundNonParen) { 3242 --I; 3243 if (D.getTypeObject(I).Kind != DeclaratorChunk::Paren) 3244 FoundNonParen = true; 3245 } 3246 3247 if (FoundNonParen) { 3248 // If we're not the declarator, we're a regular function type unless we're 3249 // in a member pointer. 3250 IsCXXInstanceMethod = 3251 D.getTypeObject(I).Kind == DeclaratorChunk::MemberPointer; 3252 } else if (D.getContext() == Declarator::LambdaExprContext) { 3253 // This can only be a call operator for a lambda, which is an instance 3254 // method. 3255 IsCXXInstanceMethod = true; 3256 } else { 3257 // We're the innermost decl chunk, so must be a function declarator. 3258 assert(D.isFunctionDeclarator()); 3259 3260 // If we're inside a record, we're declaring a method, but it could be 3261 // explicitly or implicitly static. 3262 IsCXXInstanceMethod = 3263 D.isFirstDeclarationOfMember() && 3264 D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef && 3265 !D.isStaticMember(); 3266 } 3267 } 3268 3269 CallingConv CC = S.Context.getDefaultCallingConvention(FTI.isVariadic, 3270 IsCXXInstanceMethod); 3271 3272 // Attribute AT_OpenCLKernel affects the calling convention for SPIR 3273 // and AMDGPU targets, hence it cannot be treated as a calling 3274 // convention attribute. This is the simplest place to infer 3275 // calling convention for OpenCL kernels. 3276 if (S.getLangOpts().OpenCL) { 3277 for (const AttributeList *Attr = D.getDeclSpec().getAttributes().getList(); 3278 Attr; Attr = Attr->getNext()) { 3279 if (Attr->getKind() == AttributeList::AT_OpenCLKernel) { 3280 CC = CC_OpenCLKernel; 3281 break; 3282 } 3283 } 3284 } 3285 3286 return CC; 3287 } 3288 3289 namespace { 3290 /// A simple notion of pointer kinds, which matches up with the various 3291 /// pointer declarators. 3292 enum class SimplePointerKind { 3293 Pointer, 3294 BlockPointer, 3295 MemberPointer, 3296 Array, 3297 }; 3298 } // end anonymous namespace 3299 3300 IdentifierInfo *Sema::getNullabilityKeyword(NullabilityKind nullability) { 3301 switch (nullability) { 3302 case NullabilityKind::NonNull: 3303 if (!Ident__Nonnull) 3304 Ident__Nonnull = PP.getIdentifierInfo("_Nonnull"); 3305 return Ident__Nonnull; 3306 3307 case NullabilityKind::Nullable: 3308 if (!Ident__Nullable) 3309 Ident__Nullable = PP.getIdentifierInfo("_Nullable"); 3310 return Ident__Nullable; 3311 3312 case NullabilityKind::Unspecified: 3313 if (!Ident__Null_unspecified) 3314 Ident__Null_unspecified = PP.getIdentifierInfo("_Null_unspecified"); 3315 return Ident__Null_unspecified; 3316 } 3317 llvm_unreachable("Unknown nullability kind."); 3318 } 3319 3320 /// Retrieve the identifier "NSError". 3321 IdentifierInfo *Sema::getNSErrorIdent() { 3322 if (!Ident_NSError) 3323 Ident_NSError = PP.getIdentifierInfo("NSError"); 3324 3325 return Ident_NSError; 3326 } 3327 3328 /// Check whether there is a nullability attribute of any kind in the given 3329 /// attribute list. 3330 static bool hasNullabilityAttr(const AttributeList *attrs) { 3331 for (const AttributeList *attr = attrs; attr; 3332 attr = attr->getNext()) { 3333 if (attr->getKind() == AttributeList::AT_TypeNonNull || 3334 attr->getKind() == AttributeList::AT_TypeNullable || 3335 attr->getKind() == AttributeList::AT_TypeNullUnspecified) 3336 return true; 3337 } 3338 3339 return false; 3340 } 3341 3342 namespace { 3343 /// Describes the kind of a pointer a declarator describes. 3344 enum class PointerDeclaratorKind { 3345 // Not a pointer. 3346 NonPointer, 3347 // Single-level pointer. 3348 SingleLevelPointer, 3349 // Multi-level pointer (of any pointer kind). 3350 MultiLevelPointer, 3351 // CFFooRef* 3352 MaybePointerToCFRef, 3353 // CFErrorRef* 3354 CFErrorRefPointer, 3355 // NSError** 3356 NSErrorPointerPointer, 3357 }; 3358 3359 /// Describes a declarator chunk wrapping a pointer that marks inference as 3360 /// unexpected. 3361 // These values must be kept in sync with diagnostics. 3362 enum class PointerWrappingDeclaratorKind { 3363 /// Pointer is top-level. 3364 None = -1, 3365 /// Pointer is an array element. 3366 Array = 0, 3367 /// Pointer is the referent type of a C++ reference. 3368 Reference = 1 3369 }; 3370 } // end anonymous namespace 3371 3372 /// Classify the given declarator, whose type-specified is \c type, based on 3373 /// what kind of pointer it refers to. 3374 /// 3375 /// This is used to determine the default nullability. 3376 static PointerDeclaratorKind 3377 classifyPointerDeclarator(Sema &S, QualType type, Declarator &declarator, 3378 PointerWrappingDeclaratorKind &wrappingKind) { 3379 unsigned numNormalPointers = 0; 3380 3381 // For any dependent type, we consider it a non-pointer. 3382 if (type->isDependentType()) 3383 return PointerDeclaratorKind::NonPointer; 3384 3385 // Look through the declarator chunks to identify pointers. 3386 for (unsigned i = 0, n = declarator.getNumTypeObjects(); i != n; ++i) { 3387 DeclaratorChunk &chunk = declarator.getTypeObject(i); 3388 switch (chunk.Kind) { 3389 case DeclaratorChunk::Array: 3390 if (numNormalPointers == 0) 3391 wrappingKind = PointerWrappingDeclaratorKind::Array; 3392 break; 3393 3394 case DeclaratorChunk::Function: 3395 case DeclaratorChunk::Pipe: 3396 break; 3397 3398 case DeclaratorChunk::BlockPointer: 3399 case DeclaratorChunk::MemberPointer: 3400 return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer 3401 : PointerDeclaratorKind::SingleLevelPointer; 3402 3403 case DeclaratorChunk::Paren: 3404 break; 3405 3406 case DeclaratorChunk::Reference: 3407 if (numNormalPointers == 0) 3408 wrappingKind = PointerWrappingDeclaratorKind::Reference; 3409 break; 3410 3411 case DeclaratorChunk::Pointer: 3412 ++numNormalPointers; 3413 if (numNormalPointers > 2) 3414 return PointerDeclaratorKind::MultiLevelPointer; 3415 break; 3416 } 3417 } 3418 3419 // Then, dig into the type specifier itself. 3420 unsigned numTypeSpecifierPointers = 0; 3421 do { 3422 // Decompose normal pointers. 3423 if (auto ptrType = type->getAs<PointerType>()) { 3424 ++numNormalPointers; 3425 3426 if (numNormalPointers > 2) 3427 return PointerDeclaratorKind::MultiLevelPointer; 3428 3429 type = ptrType->getPointeeType(); 3430 ++numTypeSpecifierPointers; 3431 continue; 3432 } 3433 3434 // Decompose block pointers. 3435 if (type->getAs<BlockPointerType>()) { 3436 return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer 3437 : PointerDeclaratorKind::SingleLevelPointer; 3438 } 3439 3440 // Decompose member pointers. 3441 if (type->getAs<MemberPointerType>()) { 3442 return numNormalPointers > 0 ? PointerDeclaratorKind::MultiLevelPointer 3443 : PointerDeclaratorKind::SingleLevelPointer; 3444 } 3445 3446 // Look at Objective-C object pointers. 3447 if (auto objcObjectPtr = type->getAs<ObjCObjectPointerType>()) { 3448 ++numNormalPointers; 3449 ++numTypeSpecifierPointers; 3450 3451 // If this is NSError**, report that. 3452 if (auto objcClassDecl = objcObjectPtr->getInterfaceDecl()) { 3453 if (objcClassDecl->getIdentifier() == S.getNSErrorIdent() && 3454 numNormalPointers == 2 && numTypeSpecifierPointers < 2) { 3455 return PointerDeclaratorKind::NSErrorPointerPointer; 3456 } 3457 } 3458 3459 break; 3460 } 3461 3462 // Look at Objective-C class types. 3463 if (auto objcClass = type->getAs<ObjCInterfaceType>()) { 3464 if (objcClass->getInterface()->getIdentifier() == S.getNSErrorIdent()) { 3465 if (numNormalPointers == 2 && numTypeSpecifierPointers < 2) 3466 return PointerDeclaratorKind::NSErrorPointerPointer; 3467 } 3468 3469 break; 3470 } 3471 3472 // If at this point we haven't seen a pointer, we won't see one. 3473 if (numNormalPointers == 0) 3474 return PointerDeclaratorKind::NonPointer; 3475 3476 if (auto recordType = type->getAs<RecordType>()) { 3477 RecordDecl *recordDecl = recordType->getDecl(); 3478 3479 bool isCFError = false; 3480 if (S.CFError) { 3481 // If we already know about CFError, test it directly. 3482 isCFError = (S.CFError == recordDecl); 3483 } else { 3484 // Check whether this is CFError, which we identify based on its bridge 3485 // to NSError. 3486 if (recordDecl->getTagKind() == TTK_Struct && numNormalPointers > 0) { 3487 if (auto bridgeAttr = recordDecl->getAttr<ObjCBridgeAttr>()) { 3488 if (bridgeAttr->getBridgedType() == S.getNSErrorIdent()) { 3489 S.CFError = recordDecl; 3490 isCFError = true; 3491 } 3492 } 3493 } 3494 } 3495 3496 // If this is CFErrorRef*, report it as such. 3497 if (isCFError && numNormalPointers == 2 && numTypeSpecifierPointers < 2) { 3498 return PointerDeclaratorKind::CFErrorRefPointer; 3499 } 3500 break; 3501 } 3502 3503 break; 3504 } while (true); 3505 3506 switch (numNormalPointers) { 3507 case 0: 3508 return PointerDeclaratorKind::NonPointer; 3509 3510 case 1: 3511 return PointerDeclaratorKind::SingleLevelPointer; 3512 3513 case 2: 3514 return PointerDeclaratorKind::MaybePointerToCFRef; 3515 3516 default: 3517 return PointerDeclaratorKind::MultiLevelPointer; 3518 } 3519 } 3520 3521 static FileID getNullabilityCompletenessCheckFileID(Sema &S, 3522 SourceLocation loc) { 3523 // If we're anywhere in a function, method, or closure context, don't perform 3524 // completeness checks. 3525 for (DeclContext *ctx = S.CurContext; ctx; ctx = ctx->getParent()) { 3526 if (ctx->isFunctionOrMethod()) 3527 return FileID(); 3528 3529 if (ctx->isFileContext()) 3530 break; 3531 } 3532 3533 // We only care about the expansion location. 3534 loc = S.SourceMgr.getExpansionLoc(loc); 3535 FileID file = S.SourceMgr.getFileID(loc); 3536 if (file.isInvalid()) 3537 return FileID(); 3538 3539 // Retrieve file information. 3540 bool invalid = false; 3541 const SrcMgr::SLocEntry &sloc = S.SourceMgr.getSLocEntry(file, &invalid); 3542 if (invalid || !sloc.isFile()) 3543 return FileID(); 3544 3545 // We don't want to perform completeness checks on the main file or in 3546 // system headers. 3547 const SrcMgr::FileInfo &fileInfo = sloc.getFile(); 3548 if (fileInfo.getIncludeLoc().isInvalid()) 3549 return FileID(); 3550 if (fileInfo.getFileCharacteristic() != SrcMgr::C_User && 3551 S.Diags.getSuppressSystemWarnings()) { 3552 return FileID(); 3553 } 3554 3555 return file; 3556 } 3557 3558 /// Creates a fix-it to insert a C-style nullability keyword at \p pointerLoc, 3559 /// taking into account whitespace before and after. 3560 static void fixItNullability(Sema &S, DiagnosticBuilder &Diag, 3561 SourceLocation PointerLoc, 3562 NullabilityKind Nullability) { 3563 assert(PointerLoc.isValid()); 3564 if (PointerLoc.isMacroID()) 3565 return; 3566 3567 SourceLocation FixItLoc = S.getLocForEndOfToken(PointerLoc); 3568 if (!FixItLoc.isValid() || FixItLoc == PointerLoc) 3569 return; 3570 3571 const char *NextChar = S.SourceMgr.getCharacterData(FixItLoc); 3572 if (!NextChar) 3573 return; 3574 3575 SmallString<32> InsertionTextBuf{" "}; 3576 InsertionTextBuf += getNullabilitySpelling(Nullability); 3577 InsertionTextBuf += " "; 3578 StringRef InsertionText = InsertionTextBuf.str(); 3579 3580 if (isWhitespace(*NextChar)) { 3581 InsertionText = InsertionText.drop_back(); 3582 } else if (NextChar[-1] == '[') { 3583 if (NextChar[0] == ']') 3584 InsertionText = InsertionText.drop_back().drop_front(); 3585 else 3586 InsertionText = InsertionText.drop_front(); 3587 } else if (!isIdentifierBody(NextChar[0], /*allow dollar*/true) && 3588 !isIdentifierBody(NextChar[-1], /*allow dollar*/true)) { 3589 InsertionText = InsertionText.drop_back().drop_front(); 3590 } 3591 3592 Diag << FixItHint::CreateInsertion(FixItLoc, InsertionText); 3593 } 3594 3595 static void emitNullabilityConsistencyWarning(Sema &S, 3596 SimplePointerKind PointerKind, 3597 SourceLocation PointerLoc, 3598 SourceLocation PointerEndLoc) { 3599 assert(PointerLoc.isValid()); 3600 3601 if (PointerKind == SimplePointerKind::Array) { 3602 S.Diag(PointerLoc, diag::warn_nullability_missing_array); 3603 } else { 3604 S.Diag(PointerLoc, diag::warn_nullability_missing) 3605 << static_cast<unsigned>(PointerKind); 3606 } 3607 3608 auto FixItLoc = PointerEndLoc.isValid() ? PointerEndLoc : PointerLoc; 3609 if (FixItLoc.isMacroID()) 3610 return; 3611 3612 auto addFixIt = [&](NullabilityKind Nullability) { 3613 auto Diag = S.Diag(FixItLoc, diag::note_nullability_fix_it); 3614 Diag << static_cast<unsigned>(Nullability); 3615 Diag << static_cast<unsigned>(PointerKind); 3616 fixItNullability(S, Diag, FixItLoc, Nullability); 3617 }; 3618 addFixIt(NullabilityKind::Nullable); 3619 addFixIt(NullabilityKind::NonNull); 3620 } 3621 3622 /// Complains about missing nullability if the file containing \p pointerLoc 3623 /// has other uses of nullability (either the keywords or the \c assume_nonnull 3624 /// pragma). 3625 /// 3626 /// If the file has \e not seen other uses of nullability, this particular 3627 /// pointer is saved for possible later diagnosis. See recordNullabilitySeen(). 3628 static void 3629 checkNullabilityConsistency(Sema &S, SimplePointerKind pointerKind, 3630 SourceLocation pointerLoc, 3631 SourceLocation pointerEndLoc = SourceLocation()) { 3632 // Determine which file we're performing consistency checking for. 3633 FileID file = getNullabilityCompletenessCheckFileID(S, pointerLoc); 3634 if (file.isInvalid()) 3635 return; 3636 3637 // If we haven't seen any type nullability in this file, we won't warn now 3638 // about anything. 3639 FileNullability &fileNullability = S.NullabilityMap[file]; 3640 if (!fileNullability.SawTypeNullability) { 3641 // If this is the first pointer declarator in the file, and the appropriate 3642 // warning is on, record it in case we need to diagnose it retroactively. 3643 diag::kind diagKind; 3644 if (pointerKind == SimplePointerKind::Array) 3645 diagKind = diag::warn_nullability_missing_array; 3646 else 3647 diagKind = diag::warn_nullability_missing; 3648 3649 if (fileNullability.PointerLoc.isInvalid() && 3650 !S.Context.getDiagnostics().isIgnored(diagKind, pointerLoc)) { 3651 fileNullability.PointerLoc = pointerLoc; 3652 fileNullability.PointerEndLoc = pointerEndLoc; 3653 fileNullability.PointerKind = static_cast<unsigned>(pointerKind); 3654 } 3655 3656 return; 3657 } 3658 3659 // Complain about missing nullability. 3660 emitNullabilityConsistencyWarning(S, pointerKind, pointerLoc, pointerEndLoc); 3661 } 3662 3663 /// Marks that a nullability feature has been used in the file containing 3664 /// \p loc. 3665 /// 3666 /// If this file already had pointer types in it that were missing nullability, 3667 /// the first such instance is retroactively diagnosed. 3668 /// 3669 /// \sa checkNullabilityConsistency 3670 static void recordNullabilitySeen(Sema &S, SourceLocation loc) { 3671 FileID file = getNullabilityCompletenessCheckFileID(S, loc); 3672 if (file.isInvalid()) 3673 return; 3674 3675 FileNullability &fileNullability = S.NullabilityMap[file]; 3676 if (fileNullability.SawTypeNullability) 3677 return; 3678 fileNullability.SawTypeNullability = true; 3679 3680 // If we haven't seen any type nullability before, now we have. Retroactively 3681 // diagnose the first unannotated pointer, if there was one. 3682 if (fileNullability.PointerLoc.isInvalid()) 3683 return; 3684 3685 auto kind = static_cast<SimplePointerKind>(fileNullability.PointerKind); 3686 emitNullabilityConsistencyWarning(S, kind, fileNullability.PointerLoc, 3687 fileNullability.PointerEndLoc); 3688 } 3689 3690 /// Returns true if any of the declarator chunks before \p endIndex include a 3691 /// level of indirection: array, pointer, reference, or pointer-to-member. 3692 /// 3693 /// Because declarator chunks are stored in outer-to-inner order, testing 3694 /// every chunk before \p endIndex is testing all chunks that embed the current 3695 /// chunk as part of their type. 3696 /// 3697 /// It is legal to pass the result of Declarator::getNumTypeObjects() as the 3698 /// end index, in which case all chunks are tested. 3699 static bool hasOuterPointerLikeChunk(const Declarator &D, unsigned endIndex) { 3700 unsigned i = endIndex; 3701 while (i != 0) { 3702 // Walk outwards along the declarator chunks. 3703 --i; 3704 const DeclaratorChunk &DC = D.getTypeObject(i); 3705 switch (DC.Kind) { 3706 case DeclaratorChunk::Paren: 3707 break; 3708 case DeclaratorChunk::Array: 3709 case DeclaratorChunk::Pointer: 3710 case DeclaratorChunk::Reference: 3711 case DeclaratorChunk::MemberPointer: 3712 return true; 3713 case DeclaratorChunk::Function: 3714 case DeclaratorChunk::BlockPointer: 3715 case DeclaratorChunk::Pipe: 3716 // These are invalid anyway, so just ignore. 3717 break; 3718 } 3719 } 3720 return false; 3721 } 3722 3723 static TypeSourceInfo *GetFullTypeForDeclarator(TypeProcessingState &state, 3724 QualType declSpecType, 3725 TypeSourceInfo *TInfo) { 3726 // The TypeSourceInfo that this function returns will not be a null type. 3727 // If there is an error, this function will fill in a dummy type as fallback. 3728 QualType T = declSpecType; 3729 Declarator &D = state.getDeclarator(); 3730 Sema &S = state.getSema(); 3731 ASTContext &Context = S.Context; 3732 const LangOptions &LangOpts = S.getLangOpts(); 3733 3734 // The name we're declaring, if any. 3735 DeclarationName Name; 3736 if (D.getIdentifier()) 3737 Name = D.getIdentifier(); 3738 3739 // Does this declaration declare a typedef-name? 3740 bool IsTypedefName = 3741 D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef || 3742 D.getContext() == Declarator::AliasDeclContext || 3743 D.getContext() == Declarator::AliasTemplateContext; 3744 3745 // Does T refer to a function type with a cv-qualifier or a ref-qualifier? 3746 bool IsQualifiedFunction = T->isFunctionProtoType() && 3747 (T->castAs<FunctionProtoType>()->getTypeQuals() != 0 || 3748 T->castAs<FunctionProtoType>()->getRefQualifier() != RQ_None); 3749 3750 // If T is 'decltype(auto)', the only declarators we can have are parens 3751 // and at most one function declarator if this is a function declaration. 3752 // If T is a deduced class template specialization type, we can have no 3753 // declarator chunks at all. 3754 if (auto *DT = T->getAs<DeducedType>()) { 3755 const AutoType *AT = T->getAs<AutoType>(); 3756 bool IsClassTemplateDeduction = isa<DeducedTemplateSpecializationType>(DT); 3757 if ((AT && AT->isDecltypeAuto()) || IsClassTemplateDeduction) { 3758 for (unsigned I = 0, E = D.getNumTypeObjects(); I != E; ++I) { 3759 unsigned Index = E - I - 1; 3760 DeclaratorChunk &DeclChunk = D.getTypeObject(Index); 3761 unsigned DiagId = IsClassTemplateDeduction 3762 ? diag::err_deduced_class_template_compound_type 3763 : diag::err_decltype_auto_compound_type; 3764 unsigned DiagKind = 0; 3765 switch (DeclChunk.Kind) { 3766 case DeclaratorChunk::Paren: 3767 // FIXME: Rejecting this is a little silly. 3768 if (IsClassTemplateDeduction) { 3769 DiagKind = 4; 3770 break; 3771 } 3772 continue; 3773 case DeclaratorChunk::Function: { 3774 if (IsClassTemplateDeduction) { 3775 DiagKind = 3; 3776 break; 3777 } 3778 unsigned FnIndex; 3779 if (D.isFunctionDeclarationContext() && 3780 D.isFunctionDeclarator(FnIndex) && FnIndex == Index) 3781 continue; 3782 DiagId = diag::err_decltype_auto_function_declarator_not_declaration; 3783 break; 3784 } 3785 case DeclaratorChunk::Pointer: 3786 case DeclaratorChunk::BlockPointer: 3787 case DeclaratorChunk::MemberPointer: 3788 DiagKind = 0; 3789 break; 3790 case DeclaratorChunk::Reference: 3791 DiagKind = 1; 3792 break; 3793 case DeclaratorChunk::Array: 3794 DiagKind = 2; 3795 break; 3796 case DeclaratorChunk::Pipe: 3797 break; 3798 } 3799 3800 S.Diag(DeclChunk.Loc, DiagId) << DiagKind; 3801 D.setInvalidType(true); 3802 break; 3803 } 3804 } 3805 } 3806 3807 // Determine whether we should infer _Nonnull on pointer types. 3808 Optional<NullabilityKind> inferNullability; 3809 bool inferNullabilityCS = false; 3810 bool inferNullabilityInnerOnly = false; 3811 bool inferNullabilityInnerOnlyComplete = false; 3812 3813 // Are we in an assume-nonnull region? 3814 bool inAssumeNonNullRegion = false; 3815 SourceLocation assumeNonNullLoc = S.PP.getPragmaAssumeNonNullLoc(); 3816 if (assumeNonNullLoc.isValid()) { 3817 inAssumeNonNullRegion = true; 3818 recordNullabilitySeen(S, assumeNonNullLoc); 3819 } 3820 3821 // Whether to complain about missing nullability specifiers or not. 3822 enum { 3823 /// Never complain. 3824 CAMN_No, 3825 /// Complain on the inner pointers (but not the outermost 3826 /// pointer). 3827 CAMN_InnerPointers, 3828 /// Complain about any pointers that don't have nullability 3829 /// specified or inferred. 3830 CAMN_Yes 3831 } complainAboutMissingNullability = CAMN_No; 3832 unsigned NumPointersRemaining = 0; 3833 auto complainAboutInferringWithinChunk = PointerWrappingDeclaratorKind::None; 3834 3835 if (IsTypedefName) { 3836 // For typedefs, we do not infer any nullability (the default), 3837 // and we only complain about missing nullability specifiers on 3838 // inner pointers. 3839 complainAboutMissingNullability = CAMN_InnerPointers; 3840 3841 if (T->canHaveNullability(/*ResultIfUnknown*/false) && 3842 !T->getNullability(S.Context)) { 3843 // Note that we allow but don't require nullability on dependent types. 3844 ++NumPointersRemaining; 3845 } 3846 3847 for (unsigned i = 0, n = D.getNumTypeObjects(); i != n; ++i) { 3848 DeclaratorChunk &chunk = D.getTypeObject(i); 3849 switch (chunk.Kind) { 3850 case DeclaratorChunk::Array: 3851 case DeclaratorChunk::Function: 3852 case DeclaratorChunk::Pipe: 3853 break; 3854 3855 case DeclaratorChunk::BlockPointer: 3856 case DeclaratorChunk::MemberPointer: 3857 ++NumPointersRemaining; 3858 break; 3859 3860 case DeclaratorChunk::Paren: 3861 case DeclaratorChunk::Reference: 3862 continue; 3863 3864 case DeclaratorChunk::Pointer: 3865 ++NumPointersRemaining; 3866 continue; 3867 } 3868 } 3869 } else { 3870 bool isFunctionOrMethod = false; 3871 switch (auto context = state.getDeclarator().getContext()) { 3872 case Declarator::ObjCParameterContext: 3873 case Declarator::ObjCResultContext: 3874 case Declarator::PrototypeContext: 3875 case Declarator::TrailingReturnContext: 3876 isFunctionOrMethod = true; 3877 // fallthrough 3878 3879 case Declarator::MemberContext: 3880 if (state.getDeclarator().isObjCIvar() && !isFunctionOrMethod) { 3881 complainAboutMissingNullability = CAMN_No; 3882 break; 3883 } 3884 3885 // Weak properties are inferred to be nullable. 3886 if (state.getDeclarator().isObjCWeakProperty() && inAssumeNonNullRegion) { 3887 inferNullability = NullabilityKind::Nullable; 3888 break; 3889 } 3890 3891 // fallthrough 3892 3893 case Declarator::FileContext: 3894 case Declarator::KNRTypeListContext: { 3895 complainAboutMissingNullability = CAMN_Yes; 3896 3897 // Nullability inference depends on the type and declarator. 3898 auto wrappingKind = PointerWrappingDeclaratorKind::None; 3899 switch (classifyPointerDeclarator(S, T, D, wrappingKind)) { 3900 case PointerDeclaratorKind::NonPointer: 3901 case PointerDeclaratorKind::MultiLevelPointer: 3902 // Cannot infer nullability. 3903 break; 3904 3905 case PointerDeclaratorKind::SingleLevelPointer: 3906 // Infer _Nonnull if we are in an assumes-nonnull region. 3907 if (inAssumeNonNullRegion) { 3908 complainAboutInferringWithinChunk = wrappingKind; 3909 inferNullability = NullabilityKind::NonNull; 3910 inferNullabilityCS = (context == Declarator::ObjCParameterContext || 3911 context == Declarator::ObjCResultContext); 3912 } 3913 break; 3914 3915 case PointerDeclaratorKind::CFErrorRefPointer: 3916 case PointerDeclaratorKind::NSErrorPointerPointer: 3917 // Within a function or method signature, infer _Nullable at both 3918 // levels. 3919 if (isFunctionOrMethod && inAssumeNonNullRegion) 3920 inferNullability = NullabilityKind::Nullable; 3921 break; 3922 3923 case PointerDeclaratorKind::MaybePointerToCFRef: 3924 if (isFunctionOrMethod) { 3925 // On pointer-to-pointer parameters marked cf_returns_retained or 3926 // cf_returns_not_retained, if the outer pointer is explicit then 3927 // infer the inner pointer as _Nullable. 3928 auto hasCFReturnsAttr = [](const AttributeList *NextAttr) -> bool { 3929 while (NextAttr) { 3930 if (NextAttr->getKind() == AttributeList::AT_CFReturnsRetained || 3931 NextAttr->getKind() == AttributeList::AT_CFReturnsNotRetained) 3932 return true; 3933 NextAttr = NextAttr->getNext(); 3934 } 3935 return false; 3936 }; 3937 if (const auto *InnermostChunk = D.getInnermostNonParenChunk()) { 3938 if (hasCFReturnsAttr(D.getAttributes()) || 3939 hasCFReturnsAttr(InnermostChunk->getAttrs()) || 3940 hasCFReturnsAttr(D.getDeclSpec().getAttributes().getList())) { 3941 inferNullability = NullabilityKind::Nullable; 3942 inferNullabilityInnerOnly = true; 3943 } 3944 } 3945 } 3946 break; 3947 } 3948 break; 3949 } 3950 3951 case Declarator::ConversionIdContext: 3952 complainAboutMissingNullability = CAMN_Yes; 3953 break; 3954 3955 case Declarator::AliasDeclContext: 3956 case Declarator::AliasTemplateContext: 3957 case Declarator::BlockContext: 3958 case Declarator::BlockLiteralContext: 3959 case Declarator::ConditionContext: 3960 case Declarator::CXXCatchContext: 3961 case Declarator::CXXNewContext: 3962 case Declarator::ForContext: 3963 case Declarator::InitStmtContext: 3964 case Declarator::LambdaExprContext: 3965 case Declarator::LambdaExprParameterContext: 3966 case Declarator::ObjCCatchContext: 3967 case Declarator::TemplateParamContext: 3968 case Declarator::TemplateTypeArgContext: 3969 case Declarator::TypeNameContext: 3970 case Declarator::FunctionalCastContext: 3971 // Don't infer in these contexts. 3972 break; 3973 } 3974 } 3975 3976 // Local function that returns true if its argument looks like a va_list. 3977 auto isVaList = [&S](QualType T) -> bool { 3978 auto *typedefTy = T->getAs<TypedefType>(); 3979 if (!typedefTy) 3980 return false; 3981 TypedefDecl *vaListTypedef = S.Context.getBuiltinVaListDecl(); 3982 do { 3983 if (typedefTy->getDecl() == vaListTypedef) 3984 return true; 3985 if (auto *name = typedefTy->getDecl()->getIdentifier()) 3986 if (name->isStr("va_list")) 3987 return true; 3988 typedefTy = typedefTy->desugar()->getAs<TypedefType>(); 3989 } while (typedefTy); 3990 return false; 3991 }; 3992 3993 // Local function that checks the nullability for a given pointer declarator. 3994 // Returns true if _Nonnull was inferred. 3995 auto inferPointerNullability = [&](SimplePointerKind pointerKind, 3996 SourceLocation pointerLoc, 3997 SourceLocation pointerEndLoc, 3998 AttributeList *&attrs) -> AttributeList * { 3999 // We've seen a pointer. 4000 if (NumPointersRemaining > 0) 4001 --NumPointersRemaining; 4002 4003 // If a nullability attribute is present, there's nothing to do. 4004 if (hasNullabilityAttr(attrs)) 4005 return nullptr; 4006 4007 // If we're supposed to infer nullability, do so now. 4008 if (inferNullability && !inferNullabilityInnerOnlyComplete) { 4009 AttributeList::Syntax syntax 4010 = inferNullabilityCS ? AttributeList::AS_ContextSensitiveKeyword 4011 : AttributeList::AS_Keyword; 4012 AttributeList *nullabilityAttr = state.getDeclarator().getAttributePool() 4013 .create( 4014 S.getNullabilityKeyword( 4015 *inferNullability), 4016 SourceRange(pointerLoc), 4017 nullptr, SourceLocation(), 4018 nullptr, 0, syntax); 4019 4020 spliceAttrIntoList(*nullabilityAttr, attrs); 4021 4022 if (inferNullabilityCS) { 4023 state.getDeclarator().getMutableDeclSpec().getObjCQualifiers() 4024 ->setObjCDeclQualifier(ObjCDeclSpec::DQ_CSNullability); 4025 } 4026 4027 if (pointerLoc.isValid() && 4028 complainAboutInferringWithinChunk != 4029 PointerWrappingDeclaratorKind::None) { 4030 auto Diag = 4031 S.Diag(pointerLoc, diag::warn_nullability_inferred_on_nested_type); 4032 Diag << static_cast<int>(complainAboutInferringWithinChunk); 4033 fixItNullability(S, Diag, pointerLoc, NullabilityKind::NonNull); 4034 } 4035 4036 if (inferNullabilityInnerOnly) 4037 inferNullabilityInnerOnlyComplete = true; 4038 return nullabilityAttr; 4039 } 4040 4041 // If we're supposed to complain about missing nullability, do so 4042 // now if it's truly missing. 4043 switch (complainAboutMissingNullability) { 4044 case CAMN_No: 4045 break; 4046 4047 case CAMN_InnerPointers: 4048 if (NumPointersRemaining == 0) 4049 break; 4050 // Fallthrough. 4051 4052 case CAMN_Yes: 4053 checkNullabilityConsistency(S, pointerKind, pointerLoc, pointerEndLoc); 4054 } 4055 return nullptr; 4056 }; 4057 4058 // If the type itself could have nullability but does not, infer pointer 4059 // nullability and perform consistency checking. 4060 if (S.CodeSynthesisContexts.empty()) { 4061 if (T->canHaveNullability(/*ResultIfUnknown*/false) && 4062 !T->getNullability(S.Context)) { 4063 if (isVaList(T)) { 4064 // Record that we've seen a pointer, but do nothing else. 4065 if (NumPointersRemaining > 0) 4066 --NumPointersRemaining; 4067 } else { 4068 SimplePointerKind pointerKind = SimplePointerKind::Pointer; 4069 if (T->isBlockPointerType()) 4070 pointerKind = SimplePointerKind::BlockPointer; 4071 else if (T->isMemberPointerType()) 4072 pointerKind = SimplePointerKind::MemberPointer; 4073 4074 if (auto *attr = inferPointerNullability( 4075 pointerKind, D.getDeclSpec().getTypeSpecTypeLoc(), 4076 D.getDeclSpec().getLocEnd(), 4077 D.getMutableDeclSpec().getAttributes().getListRef())) { 4078 T = Context.getAttributedType( 4079 AttributedType::getNullabilityAttrKind(*inferNullability),T,T); 4080 attr->setUsedAsTypeAttr(); 4081 } 4082 } 4083 } 4084 4085 if (complainAboutMissingNullability == CAMN_Yes && 4086 T->isArrayType() && !T->getNullability(S.Context) && !isVaList(T) && 4087 D.isPrototypeContext() && 4088 !hasOuterPointerLikeChunk(D, D.getNumTypeObjects())) { 4089 checkNullabilityConsistency(S, SimplePointerKind::Array, 4090 D.getDeclSpec().getTypeSpecTypeLoc()); 4091 } 4092 } 4093 4094 // Walk the DeclTypeInfo, building the recursive type as we go. 4095 // DeclTypeInfos are ordered from the identifier out, which is 4096 // opposite of what we want :). 4097 for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) { 4098 unsigned chunkIndex = e - i - 1; 4099 state.setCurrentChunkIndex(chunkIndex); 4100 DeclaratorChunk &DeclType = D.getTypeObject(chunkIndex); 4101 IsQualifiedFunction &= DeclType.Kind == DeclaratorChunk::Paren; 4102 switch (DeclType.Kind) { 4103 case DeclaratorChunk::Paren: 4104 if (i == 0) 4105 warnAboutRedundantParens(S, D, T); 4106 T = S.BuildParenType(T); 4107 break; 4108 case DeclaratorChunk::BlockPointer: 4109 // If blocks are disabled, emit an error. 4110 if (!LangOpts.Blocks) 4111 S.Diag(DeclType.Loc, diag::err_blocks_disable) << LangOpts.OpenCL; 4112 4113 // Handle pointer nullability. 4114 inferPointerNullability(SimplePointerKind::BlockPointer, DeclType.Loc, 4115 DeclType.EndLoc, DeclType.getAttrListRef()); 4116 4117 T = S.BuildBlockPointerType(T, D.getIdentifierLoc(), Name); 4118 if (DeclType.Cls.TypeQuals || LangOpts.OpenCL) { 4119 // OpenCL v2.0, s6.12.5 - Block variable declarations are implicitly 4120 // qualified with const. 4121 if (LangOpts.OpenCL) 4122 DeclType.Cls.TypeQuals |= DeclSpec::TQ_const; 4123 T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Cls.TypeQuals); 4124 } 4125 break; 4126 case DeclaratorChunk::Pointer: 4127 // Verify that we're not building a pointer to pointer to function with 4128 // exception specification. 4129 if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) { 4130 S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec); 4131 D.setInvalidType(true); 4132 // Build the type anyway. 4133 } 4134 4135 // Handle pointer nullability 4136 inferPointerNullability(SimplePointerKind::Pointer, DeclType.Loc, 4137 DeclType.EndLoc, DeclType.getAttrListRef()); 4138 4139 if (LangOpts.ObjC1 && T->getAs<ObjCObjectType>()) { 4140 T = Context.getObjCObjectPointerType(T); 4141 if (DeclType.Ptr.TypeQuals) 4142 T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Ptr.TypeQuals); 4143 break; 4144 } 4145 4146 // OpenCL v2.0 s6.9b - Pointer to image/sampler cannot be used. 4147 // OpenCL v2.0 s6.13.16.1 - Pointer to pipe cannot be used. 4148 // OpenCL v2.0 s6.12.5 - Pointers to Blocks are not allowed. 4149 if (LangOpts.OpenCL) { 4150 if (T->isImageType() || T->isSamplerT() || T->isPipeType() || 4151 T->isBlockPointerType()) { 4152 S.Diag(D.getIdentifierLoc(), diag::err_opencl_pointer_to_type) << T; 4153 D.setInvalidType(true); 4154 } 4155 } 4156 4157 T = S.BuildPointerType(T, DeclType.Loc, Name); 4158 if (DeclType.Ptr.TypeQuals) 4159 T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Ptr.TypeQuals); 4160 break; 4161 case DeclaratorChunk::Reference: { 4162 // Verify that we're not building a reference to pointer to function with 4163 // exception specification. 4164 if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) { 4165 S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec); 4166 D.setInvalidType(true); 4167 // Build the type anyway. 4168 } 4169 T = S.BuildReferenceType(T, DeclType.Ref.LValueRef, DeclType.Loc, Name); 4170 4171 if (DeclType.Ref.HasRestrict) 4172 T = S.BuildQualifiedType(T, DeclType.Loc, Qualifiers::Restrict); 4173 break; 4174 } 4175 case DeclaratorChunk::Array: { 4176 // Verify that we're not building an array of pointers to function with 4177 // exception specification. 4178 if (LangOpts.CPlusPlus && S.CheckDistantExceptionSpec(T)) { 4179 S.Diag(D.getIdentifierLoc(), diag::err_distant_exception_spec); 4180 D.setInvalidType(true); 4181 // Build the type anyway. 4182 } 4183 DeclaratorChunk::ArrayTypeInfo &ATI = DeclType.Arr; 4184 Expr *ArraySize = static_cast<Expr*>(ATI.NumElts); 4185 ArrayType::ArraySizeModifier ASM; 4186 if (ATI.isStar) 4187 ASM = ArrayType::Star; 4188 else if (ATI.hasStatic) 4189 ASM = ArrayType::Static; 4190 else 4191 ASM = ArrayType::Normal; 4192 if (ASM == ArrayType::Star && !D.isPrototypeContext()) { 4193 // FIXME: This check isn't quite right: it allows star in prototypes 4194 // for function definitions, and disallows some edge cases detailed 4195 // in http://gcc.gnu.org/ml/gcc-patches/2009-02/msg00133.html 4196 S.Diag(DeclType.Loc, diag::err_array_star_outside_prototype); 4197 ASM = ArrayType::Normal; 4198 D.setInvalidType(true); 4199 } 4200 4201 // C99 6.7.5.2p1: The optional type qualifiers and the keyword static 4202 // shall appear only in a declaration of a function parameter with an 4203 // array type, ... 4204 if (ASM == ArrayType::Static || ATI.TypeQuals) { 4205 if (!(D.isPrototypeContext() || 4206 D.getContext() == Declarator::KNRTypeListContext)) { 4207 S.Diag(DeclType.Loc, diag::err_array_static_outside_prototype) << 4208 (ASM == ArrayType::Static ? "'static'" : "type qualifier"); 4209 // Remove the 'static' and the type qualifiers. 4210 if (ASM == ArrayType::Static) 4211 ASM = ArrayType::Normal; 4212 ATI.TypeQuals = 0; 4213 D.setInvalidType(true); 4214 } 4215 4216 // C99 6.7.5.2p1: ... and then only in the outermost array type 4217 // derivation. 4218 if (hasOuterPointerLikeChunk(D, chunkIndex)) { 4219 S.Diag(DeclType.Loc, diag::err_array_static_not_outermost) << 4220 (ASM == ArrayType::Static ? "'static'" : "type qualifier"); 4221 if (ASM == ArrayType::Static) 4222 ASM = ArrayType::Normal; 4223 ATI.TypeQuals = 0; 4224 D.setInvalidType(true); 4225 } 4226 } 4227 const AutoType *AT = T->getContainedAutoType(); 4228 // Allow arrays of auto if we are a generic lambda parameter. 4229 // i.e. [](auto (&array)[5]) { return array[0]; }; OK 4230 if (AT && D.getContext() != Declarator::LambdaExprParameterContext) { 4231 // We've already diagnosed this for decltype(auto). 4232 if (!AT->isDecltypeAuto()) 4233 S.Diag(DeclType.Loc, diag::err_illegal_decl_array_of_auto) 4234 << getPrintableNameForEntity(Name) << T; 4235 T = QualType(); 4236 break; 4237 } 4238 4239 // Array parameters can be marked nullable as well, although it's not 4240 // necessary if they're marked 'static'. 4241 if (complainAboutMissingNullability == CAMN_Yes && 4242 !hasNullabilityAttr(DeclType.getAttrs()) && 4243 ASM != ArrayType::Static && 4244 D.isPrototypeContext() && 4245 !hasOuterPointerLikeChunk(D, chunkIndex)) { 4246 checkNullabilityConsistency(S, SimplePointerKind::Array, DeclType.Loc); 4247 } 4248 4249 T = S.BuildArrayType(T, ASM, ArraySize, ATI.TypeQuals, 4250 SourceRange(DeclType.Loc, DeclType.EndLoc), Name); 4251 break; 4252 } 4253 case DeclaratorChunk::Function: { 4254 // If the function declarator has a prototype (i.e. it is not () and 4255 // does not have a K&R-style identifier list), then the arguments are part 4256 // of the type, otherwise the argument list is (). 4257 const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun; 4258 IsQualifiedFunction = FTI.TypeQuals || FTI.hasRefQualifier(); 4259 4260 // Check for auto functions and trailing return type and adjust the 4261 // return type accordingly. 4262 if (!D.isInvalidType()) { 4263 // trailing-return-type is only required if we're declaring a function, 4264 // and not, for instance, a pointer to a function. 4265 if (D.getDeclSpec().hasAutoTypeSpec() && 4266 !FTI.hasTrailingReturnType() && chunkIndex == 0 && 4267 !S.getLangOpts().CPlusPlus14) { 4268 S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(), 4269 D.getDeclSpec().getTypeSpecType() == DeclSpec::TST_auto 4270 ? diag::err_auto_missing_trailing_return 4271 : diag::err_deduced_return_type); 4272 T = Context.IntTy; 4273 D.setInvalidType(true); 4274 } else if (FTI.hasTrailingReturnType()) { 4275 // T must be exactly 'auto' at this point. See CWG issue 681. 4276 if (isa<ParenType>(T)) { 4277 S.Diag(D.getLocStart(), 4278 diag::err_trailing_return_in_parens) 4279 << T << D.getSourceRange(); 4280 D.setInvalidType(true); 4281 } else if (D.getName().getKind() == 4282 UnqualifiedId::IK_DeductionGuideName) { 4283 if (T != Context.DependentTy) { 4284 S.Diag(D.getDeclSpec().getLocStart(), 4285 diag::err_deduction_guide_with_complex_decl) 4286 << D.getSourceRange(); 4287 D.setInvalidType(true); 4288 } 4289 } else if (D.getContext() != Declarator::LambdaExprContext && 4290 (T.hasQualifiers() || !isa<AutoType>(T) || 4291 cast<AutoType>(T)->getKeyword() != 4292 AutoTypeKeyword::Auto)) { 4293 S.Diag(D.getDeclSpec().getTypeSpecTypeLoc(), 4294 diag::err_trailing_return_without_auto) 4295 << T << D.getDeclSpec().getSourceRange(); 4296 D.setInvalidType(true); 4297 } 4298 T = S.GetTypeFromParser(FTI.getTrailingReturnType(), &TInfo); 4299 if (T.isNull()) { 4300 // An error occurred parsing the trailing return type. 4301 T = Context.IntTy; 4302 D.setInvalidType(true); 4303 } 4304 } 4305 } 4306 4307 // C99 6.7.5.3p1: The return type may not be a function or array type. 4308 // For conversion functions, we'll diagnose this particular error later. 4309 if (!D.isInvalidType() && (T->isArrayType() || T->isFunctionType()) && 4310 (D.getName().getKind() != UnqualifiedId::IK_ConversionFunctionId)) { 4311 unsigned diagID = diag::err_func_returning_array_function; 4312 // Last processing chunk in block context means this function chunk 4313 // represents the block. 4314 if (chunkIndex == 0 && 4315 D.getContext() == Declarator::BlockLiteralContext) 4316 diagID = diag::err_block_returning_array_function; 4317 S.Diag(DeclType.Loc, diagID) << T->isFunctionType() << T; 4318 T = Context.IntTy; 4319 D.setInvalidType(true); 4320 } 4321 4322 // Do not allow returning half FP value. 4323 // FIXME: This really should be in BuildFunctionType. 4324 if (T->isHalfType()) { 4325 if (S.getLangOpts().OpenCL) { 4326 if (!S.getOpenCLOptions().isEnabled("cl_khr_fp16")) { 4327 S.Diag(D.getIdentifierLoc(), diag::err_opencl_invalid_return) 4328 << T << 0 /*pointer hint*/; 4329 D.setInvalidType(true); 4330 } 4331 } else if (!S.getLangOpts().HalfArgsAndReturns) { 4332 S.Diag(D.getIdentifierLoc(), 4333 diag::err_parameters_retval_cannot_have_fp16_type) << 1; 4334 D.setInvalidType(true); 4335 } 4336 } 4337 4338 if (LangOpts.OpenCL) { 4339 // OpenCL v2.0 s6.12.5 - A block cannot be the return value of a 4340 // function. 4341 if (T->isBlockPointerType() || T->isImageType() || T->isSamplerT() || 4342 T->isPipeType()) { 4343 S.Diag(D.getIdentifierLoc(), diag::err_opencl_invalid_return) 4344 << T << 1 /*hint off*/; 4345 D.setInvalidType(true); 4346 } 4347 // OpenCL doesn't support variadic functions and blocks 4348 // (s6.9.e and s6.12.5 OpenCL v2.0) except for printf. 4349 // We also allow here any toolchain reserved identifiers. 4350 if (FTI.isVariadic && 4351 !(D.getIdentifier() && 4352 ((D.getIdentifier()->getName() == "printf" && 4353 LangOpts.OpenCLVersion >= 120) || 4354 D.getIdentifier()->getName().startswith("__")))) { 4355 S.Diag(D.getIdentifierLoc(), diag::err_opencl_variadic_function); 4356 D.setInvalidType(true); 4357 } 4358 } 4359 4360 // Methods cannot return interface types. All ObjC objects are 4361 // passed by reference. 4362 if (T->isObjCObjectType()) { 4363 SourceLocation DiagLoc, FixitLoc; 4364 if (TInfo) { 4365 DiagLoc = TInfo->getTypeLoc().getLocStart(); 4366 FixitLoc = S.getLocForEndOfToken(TInfo->getTypeLoc().getLocEnd()); 4367 } else { 4368 DiagLoc = D.getDeclSpec().getTypeSpecTypeLoc(); 4369 FixitLoc = S.getLocForEndOfToken(D.getDeclSpec().getLocEnd()); 4370 } 4371 S.Diag(DiagLoc, diag::err_object_cannot_be_passed_returned_by_value) 4372 << 0 << T 4373 << FixItHint::CreateInsertion(FixitLoc, "*"); 4374 4375 T = Context.getObjCObjectPointerType(T); 4376 if (TInfo) { 4377 TypeLocBuilder TLB; 4378 TLB.pushFullCopy(TInfo->getTypeLoc()); 4379 ObjCObjectPointerTypeLoc TLoc = TLB.push<ObjCObjectPointerTypeLoc>(T); 4380 TLoc.setStarLoc(FixitLoc); 4381 TInfo = TLB.getTypeSourceInfo(Context, T); 4382 } 4383 4384 D.setInvalidType(true); 4385 } 4386 4387 // cv-qualifiers on return types are pointless except when the type is a 4388 // class type in C++. 4389 if ((T.getCVRQualifiers() || T->isAtomicType()) && 4390 !(S.getLangOpts().CPlusPlus && 4391 (T->isDependentType() || T->isRecordType()))) { 4392 if (T->isVoidType() && !S.getLangOpts().CPlusPlus && 4393 D.getFunctionDefinitionKind() == FDK_Definition) { 4394 // [6.9.1/3] qualified void return is invalid on a C 4395 // function definition. Apparently ok on declarations and 4396 // in C++ though (!) 4397 S.Diag(DeclType.Loc, diag::err_func_returning_qualified_void) << T; 4398 } else 4399 diagnoseRedundantReturnTypeQualifiers(S, T, D, chunkIndex); 4400 } 4401 4402 // Objective-C ARC ownership qualifiers are ignored on the function 4403 // return type (by type canonicalization). Complain if this attribute 4404 // was written here. 4405 if (T.getQualifiers().hasObjCLifetime()) { 4406 SourceLocation AttrLoc; 4407 if (chunkIndex + 1 < D.getNumTypeObjects()) { 4408 DeclaratorChunk ReturnTypeChunk = D.getTypeObject(chunkIndex + 1); 4409 for (const AttributeList *Attr = ReturnTypeChunk.getAttrs(); 4410 Attr; Attr = Attr->getNext()) { 4411 if (Attr->getKind() == AttributeList::AT_ObjCOwnership) { 4412 AttrLoc = Attr->getLoc(); 4413 break; 4414 } 4415 } 4416 } 4417 if (AttrLoc.isInvalid()) { 4418 for (const AttributeList *Attr 4419 = D.getDeclSpec().getAttributes().getList(); 4420 Attr; Attr = Attr->getNext()) { 4421 if (Attr->getKind() == AttributeList::AT_ObjCOwnership) { 4422 AttrLoc = Attr->getLoc(); 4423 break; 4424 } 4425 } 4426 } 4427 4428 if (AttrLoc.isValid()) { 4429 // The ownership attributes are almost always written via 4430 // the predefined 4431 // __strong/__weak/__autoreleasing/__unsafe_unretained. 4432 if (AttrLoc.isMacroID()) 4433 AttrLoc = S.SourceMgr.getImmediateExpansionRange(AttrLoc).first; 4434 4435 S.Diag(AttrLoc, diag::warn_arc_lifetime_result_type) 4436 << T.getQualifiers().getObjCLifetime(); 4437 } 4438 } 4439 4440 if (LangOpts.CPlusPlus && D.getDeclSpec().hasTagDefinition()) { 4441 // C++ [dcl.fct]p6: 4442 // Types shall not be defined in return or parameter types. 4443 TagDecl *Tag = cast<TagDecl>(D.getDeclSpec().getRepAsDecl()); 4444 S.Diag(Tag->getLocation(), diag::err_type_defined_in_result_type) 4445 << Context.getTypeDeclType(Tag); 4446 } 4447 4448 // Exception specs are not allowed in typedefs. Complain, but add it 4449 // anyway. 4450 if (IsTypedefName && FTI.getExceptionSpecType() && !LangOpts.CPlusPlus1z) 4451 S.Diag(FTI.getExceptionSpecLocBeg(), 4452 diag::err_exception_spec_in_typedef) 4453 << (D.getContext() == Declarator::AliasDeclContext || 4454 D.getContext() == Declarator::AliasTemplateContext); 4455 4456 // If we see "T var();" or "T var(T());" at block scope, it is probably 4457 // an attempt to initialize a variable, not a function declaration. 4458 if (FTI.isAmbiguous) 4459 warnAboutAmbiguousFunction(S, D, DeclType, T); 4460 4461 FunctionType::ExtInfo EI(getCCForDeclaratorChunk(S, D, FTI, chunkIndex)); 4462 4463 if (!FTI.NumParams && !FTI.isVariadic && !LangOpts.CPlusPlus) { 4464 // Simple void foo(), where the incoming T is the result type. 4465 T = Context.getFunctionNoProtoType(T, EI); 4466 } else { 4467 // We allow a zero-parameter variadic function in C if the 4468 // function is marked with the "overloadable" attribute. Scan 4469 // for this attribute now. 4470 if (!FTI.NumParams && FTI.isVariadic && !LangOpts.CPlusPlus) { 4471 bool Overloadable = false; 4472 for (const AttributeList *Attrs = D.getAttributes(); 4473 Attrs; Attrs = Attrs->getNext()) { 4474 if (Attrs->getKind() == AttributeList::AT_Overloadable) { 4475 Overloadable = true; 4476 break; 4477 } 4478 } 4479 4480 if (!Overloadable) 4481 S.Diag(FTI.getEllipsisLoc(), diag::err_ellipsis_first_param); 4482 } 4483 4484 if (FTI.NumParams && FTI.Params[0].Param == nullptr) { 4485 // C99 6.7.5.3p3: Reject int(x,y,z) when it's not a function 4486 // definition. 4487 S.Diag(FTI.Params[0].IdentLoc, 4488 diag::err_ident_list_in_fn_declaration); 4489 D.setInvalidType(true); 4490 // Recover by creating a K&R-style function type. 4491 T = Context.getFunctionNoProtoType(T, EI); 4492 break; 4493 } 4494 4495 FunctionProtoType::ExtProtoInfo EPI; 4496 EPI.ExtInfo = EI; 4497 EPI.Variadic = FTI.isVariadic; 4498 EPI.HasTrailingReturn = FTI.hasTrailingReturnType(); 4499 EPI.TypeQuals = FTI.TypeQuals; 4500 EPI.RefQualifier = !FTI.hasRefQualifier()? RQ_None 4501 : FTI.RefQualifierIsLValueRef? RQ_LValue 4502 : RQ_RValue; 4503 4504 // Otherwise, we have a function with a parameter list that is 4505 // potentially variadic. 4506 SmallVector<QualType, 16> ParamTys; 4507 ParamTys.reserve(FTI.NumParams); 4508 4509 SmallVector<FunctionProtoType::ExtParameterInfo, 16> 4510 ExtParameterInfos(FTI.NumParams); 4511 bool HasAnyInterestingExtParameterInfos = false; 4512 4513 for (unsigned i = 0, e = FTI.NumParams; i != e; ++i) { 4514 ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param); 4515 QualType ParamTy = Param->getType(); 4516 assert(!ParamTy.isNull() && "Couldn't parse type?"); 4517 4518 // Look for 'void'. void is allowed only as a single parameter to a 4519 // function with no other parameters (C99 6.7.5.3p10). We record 4520 // int(void) as a FunctionProtoType with an empty parameter list. 4521 if (ParamTy->isVoidType()) { 4522 // If this is something like 'float(int, void)', reject it. 'void' 4523 // is an incomplete type (C99 6.2.5p19) and function decls cannot 4524 // have parameters of incomplete type. 4525 if (FTI.NumParams != 1 || FTI.isVariadic) { 4526 S.Diag(DeclType.Loc, diag::err_void_only_param); 4527 ParamTy = Context.IntTy; 4528 Param->setType(ParamTy); 4529 } else if (FTI.Params[i].Ident) { 4530 // Reject, but continue to parse 'int(void abc)'. 4531 S.Diag(FTI.Params[i].IdentLoc, diag::err_param_with_void_type); 4532 ParamTy = Context.IntTy; 4533 Param->setType(ParamTy); 4534 } else { 4535 // Reject, but continue to parse 'float(const void)'. 4536 if (ParamTy.hasQualifiers()) 4537 S.Diag(DeclType.Loc, diag::err_void_param_qualified); 4538 4539 // Do not add 'void' to the list. 4540 break; 4541 } 4542 } else if (ParamTy->isHalfType()) { 4543 // Disallow half FP parameters. 4544 // FIXME: This really should be in BuildFunctionType. 4545 if (S.getLangOpts().OpenCL) { 4546 if (!S.getOpenCLOptions().isEnabled("cl_khr_fp16")) { 4547 S.Diag(Param->getLocation(), 4548 diag::err_opencl_half_param) << ParamTy; 4549 D.setInvalidType(); 4550 Param->setInvalidDecl(); 4551 } 4552 } else if (!S.getLangOpts().HalfArgsAndReturns) { 4553 S.Diag(Param->getLocation(), 4554 diag::err_parameters_retval_cannot_have_fp16_type) << 0; 4555 D.setInvalidType(); 4556 } 4557 } else if (!FTI.hasPrototype) { 4558 if (ParamTy->isPromotableIntegerType()) { 4559 ParamTy = Context.getPromotedIntegerType(ParamTy); 4560 Param->setKNRPromoted(true); 4561 } else if (const BuiltinType* BTy = ParamTy->getAs<BuiltinType>()) { 4562 if (BTy->getKind() == BuiltinType::Float) { 4563 ParamTy = Context.DoubleTy; 4564 Param->setKNRPromoted(true); 4565 } 4566 } 4567 } 4568 4569 if (LangOpts.ObjCAutoRefCount && Param->hasAttr<NSConsumedAttr>()) { 4570 ExtParameterInfos[i] = ExtParameterInfos[i].withIsConsumed(true); 4571 HasAnyInterestingExtParameterInfos = true; 4572 } 4573 4574 if (auto attr = Param->getAttr<ParameterABIAttr>()) { 4575 ExtParameterInfos[i] = 4576 ExtParameterInfos[i].withABI(attr->getABI()); 4577 HasAnyInterestingExtParameterInfos = true; 4578 } 4579 4580 if (Param->hasAttr<PassObjectSizeAttr>()) { 4581 ExtParameterInfos[i] = ExtParameterInfos[i].withHasPassObjectSize(); 4582 HasAnyInterestingExtParameterInfos = true; 4583 } 4584 4585 if (Param->hasAttr<NoEscapeAttr>()) { 4586 ExtParameterInfos[i] = ExtParameterInfos[i].withIsNoEscape(true); 4587 HasAnyInterestingExtParameterInfos = true; 4588 } 4589 4590 ParamTys.push_back(ParamTy); 4591 } 4592 4593 if (HasAnyInterestingExtParameterInfos) { 4594 EPI.ExtParameterInfos = ExtParameterInfos.data(); 4595 checkExtParameterInfos(S, ParamTys, EPI, 4596 [&](unsigned i) { return FTI.Params[i].Param->getLocation(); }); 4597 } 4598 4599 SmallVector<QualType, 4> Exceptions; 4600 SmallVector<ParsedType, 2> DynamicExceptions; 4601 SmallVector<SourceRange, 2> DynamicExceptionRanges; 4602 Expr *NoexceptExpr = nullptr; 4603 4604 if (FTI.getExceptionSpecType() == EST_Dynamic) { 4605 // FIXME: It's rather inefficient to have to split into two vectors 4606 // here. 4607 unsigned N = FTI.getNumExceptions(); 4608 DynamicExceptions.reserve(N); 4609 DynamicExceptionRanges.reserve(N); 4610 for (unsigned I = 0; I != N; ++I) { 4611 DynamicExceptions.push_back(FTI.Exceptions[I].Ty); 4612 DynamicExceptionRanges.push_back(FTI.Exceptions[I].Range); 4613 } 4614 } else if (FTI.getExceptionSpecType() == EST_ComputedNoexcept) { 4615 NoexceptExpr = FTI.NoexceptExpr; 4616 } 4617 4618 S.checkExceptionSpecification(D.isFunctionDeclarationContext(), 4619 FTI.getExceptionSpecType(), 4620 DynamicExceptions, 4621 DynamicExceptionRanges, 4622 NoexceptExpr, 4623 Exceptions, 4624 EPI.ExceptionSpec); 4625 4626 T = Context.getFunctionType(T, ParamTys, EPI); 4627 } 4628 break; 4629 } 4630 case DeclaratorChunk::MemberPointer: { 4631 // The scope spec must refer to a class, or be dependent. 4632 CXXScopeSpec &SS = DeclType.Mem.Scope(); 4633 QualType ClsType; 4634 4635 // Handle pointer nullability. 4636 inferPointerNullability(SimplePointerKind::MemberPointer, DeclType.Loc, 4637 DeclType.EndLoc, DeclType.getAttrListRef()); 4638 4639 if (SS.isInvalid()) { 4640 // Avoid emitting extra errors if we already errored on the scope. 4641 D.setInvalidType(true); 4642 } else if (S.isDependentScopeSpecifier(SS) || 4643 dyn_cast_or_null<CXXRecordDecl>(S.computeDeclContext(SS))) { 4644 NestedNameSpecifier *NNS = SS.getScopeRep(); 4645 NestedNameSpecifier *NNSPrefix = NNS->getPrefix(); 4646 switch (NNS->getKind()) { 4647 case NestedNameSpecifier::Identifier: 4648 ClsType = Context.getDependentNameType(ETK_None, NNSPrefix, 4649 NNS->getAsIdentifier()); 4650 break; 4651 4652 case NestedNameSpecifier::Namespace: 4653 case NestedNameSpecifier::NamespaceAlias: 4654 case NestedNameSpecifier::Global: 4655 case NestedNameSpecifier::Super: 4656 llvm_unreachable("Nested-name-specifier must name a type"); 4657 4658 case NestedNameSpecifier::TypeSpec: 4659 case NestedNameSpecifier::TypeSpecWithTemplate: 4660 ClsType = QualType(NNS->getAsType(), 0); 4661 // Note: if the NNS has a prefix and ClsType is a nondependent 4662 // TemplateSpecializationType, then the NNS prefix is NOT included 4663 // in ClsType; hence we wrap ClsType into an ElaboratedType. 4664 // NOTE: in particular, no wrap occurs if ClsType already is an 4665 // Elaborated, DependentName, or DependentTemplateSpecialization. 4666 if (NNSPrefix && isa<TemplateSpecializationType>(NNS->getAsType())) 4667 ClsType = Context.getElaboratedType(ETK_None, NNSPrefix, ClsType); 4668 break; 4669 } 4670 } else { 4671 S.Diag(DeclType.Mem.Scope().getBeginLoc(), 4672 diag::err_illegal_decl_mempointer_in_nonclass) 4673 << (D.getIdentifier() ? D.getIdentifier()->getName() : "type name") 4674 << DeclType.Mem.Scope().getRange(); 4675 D.setInvalidType(true); 4676 } 4677 4678 if (!ClsType.isNull()) 4679 T = S.BuildMemberPointerType(T, ClsType, DeclType.Loc, 4680 D.getIdentifier()); 4681 if (T.isNull()) { 4682 T = Context.IntTy; 4683 D.setInvalidType(true); 4684 } else if (DeclType.Mem.TypeQuals) { 4685 T = S.BuildQualifiedType(T, DeclType.Loc, DeclType.Mem.TypeQuals); 4686 } 4687 break; 4688 } 4689 4690 case DeclaratorChunk::Pipe: { 4691 T = S.BuildReadPipeType(T, DeclType.Loc); 4692 processTypeAttrs(state, T, TAL_DeclSpec, 4693 D.getDeclSpec().getAttributes().getList()); 4694 break; 4695 } 4696 } 4697 4698 if (T.isNull()) { 4699 D.setInvalidType(true); 4700 T = Context.IntTy; 4701 } 4702 4703 // See if there are any attributes on this declarator chunk. 4704 processTypeAttrs(state, T, TAL_DeclChunk, 4705 const_cast<AttributeList *>(DeclType.getAttrs())); 4706 } 4707 4708 // GNU warning -Wstrict-prototypes 4709 // Warn if a function declaration is without a prototype. 4710 // This warning is issued for all kinds of unprototyped function 4711 // declarations (i.e. function type typedef, function pointer etc.) 4712 // C99 6.7.5.3p14: 4713 // The empty list in a function declarator that is not part of a definition 4714 // of that function specifies that no information about the number or types 4715 // of the parameters is supplied. 4716 if (!LangOpts.CPlusPlus && D.getFunctionDefinitionKind() == FDK_Declaration) { 4717 bool IsBlock = false; 4718 for (const DeclaratorChunk &DeclType : D.type_objects()) { 4719 switch (DeclType.Kind) { 4720 case DeclaratorChunk::BlockPointer: 4721 IsBlock = true; 4722 break; 4723 case DeclaratorChunk::Function: { 4724 const DeclaratorChunk::FunctionTypeInfo &FTI = DeclType.Fun; 4725 if (FTI.NumParams == 0) 4726 S.Diag(DeclType.Loc, diag::warn_strict_prototypes) 4727 << IsBlock 4728 << FixItHint::CreateInsertion(FTI.getRParenLoc(), "void"); 4729 IsBlock = false; 4730 break; 4731 } 4732 default: 4733 break; 4734 } 4735 } 4736 } 4737 4738 assert(!T.isNull() && "T must not be null after this point"); 4739 4740 if (LangOpts.CPlusPlus && T->isFunctionType()) { 4741 const FunctionProtoType *FnTy = T->getAs<FunctionProtoType>(); 4742 assert(FnTy && "Why oh why is there not a FunctionProtoType here?"); 4743 4744 // C++ 8.3.5p4: 4745 // A cv-qualifier-seq shall only be part of the function type 4746 // for a nonstatic member function, the function type to which a pointer 4747 // to member refers, or the top-level function type of a function typedef 4748 // declaration. 4749 // 4750 // Core issue 547 also allows cv-qualifiers on function types that are 4751 // top-level template type arguments. 4752 enum { NonMember, Member, DeductionGuide } Kind = NonMember; 4753 if (D.getName().getKind() == UnqualifiedId::IK_DeductionGuideName) 4754 Kind = DeductionGuide; 4755 else if (!D.getCXXScopeSpec().isSet()) { 4756 if ((D.getContext() == Declarator::MemberContext || 4757 D.getContext() == Declarator::LambdaExprContext) && 4758 !D.getDeclSpec().isFriendSpecified()) 4759 Kind = Member; 4760 } else { 4761 DeclContext *DC = S.computeDeclContext(D.getCXXScopeSpec()); 4762 if (!DC || DC->isRecord()) 4763 Kind = Member; 4764 } 4765 4766 // C++11 [dcl.fct]p6 (w/DR1417): 4767 // An attempt to specify a function type with a cv-qualifier-seq or a 4768 // ref-qualifier (including by typedef-name) is ill-formed unless it is: 4769 // - the function type for a non-static member function, 4770 // - the function type to which a pointer to member refers, 4771 // - the top-level function type of a function typedef declaration or 4772 // alias-declaration, 4773 // - the type-id in the default argument of a type-parameter, or 4774 // - the type-id of a template-argument for a type-parameter 4775 // 4776 // FIXME: Checking this here is insufficient. We accept-invalid on: 4777 // 4778 // template<typename T> struct S { void f(T); }; 4779 // S<int() const> s; 4780 // 4781 // ... for instance. 4782 if (IsQualifiedFunction && 4783 !(Kind == Member && 4784 D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_static) && 4785 !IsTypedefName && 4786 D.getContext() != Declarator::TemplateTypeArgContext) { 4787 SourceLocation Loc = D.getLocStart(); 4788 SourceRange RemovalRange; 4789 unsigned I; 4790 if (D.isFunctionDeclarator(I)) { 4791 SmallVector<SourceLocation, 4> RemovalLocs; 4792 const DeclaratorChunk &Chunk = D.getTypeObject(I); 4793 assert(Chunk.Kind == DeclaratorChunk::Function); 4794 if (Chunk.Fun.hasRefQualifier()) 4795 RemovalLocs.push_back(Chunk.Fun.getRefQualifierLoc()); 4796 if (Chunk.Fun.TypeQuals & Qualifiers::Const) 4797 RemovalLocs.push_back(Chunk.Fun.getConstQualifierLoc()); 4798 if (Chunk.Fun.TypeQuals & Qualifiers::Volatile) 4799 RemovalLocs.push_back(Chunk.Fun.getVolatileQualifierLoc()); 4800 if (Chunk.Fun.TypeQuals & Qualifiers::Restrict) 4801 RemovalLocs.push_back(Chunk.Fun.getRestrictQualifierLoc()); 4802 if (!RemovalLocs.empty()) { 4803 std::sort(RemovalLocs.begin(), RemovalLocs.end(), 4804 BeforeThanCompare<SourceLocation>(S.getSourceManager())); 4805 RemovalRange = SourceRange(RemovalLocs.front(), RemovalLocs.back()); 4806 Loc = RemovalLocs.front(); 4807 } 4808 } 4809 4810 S.Diag(Loc, diag::err_invalid_qualified_function_type) 4811 << Kind << D.isFunctionDeclarator() << T 4812 << getFunctionQualifiersAsString(FnTy) 4813 << FixItHint::CreateRemoval(RemovalRange); 4814 4815 // Strip the cv-qualifiers and ref-qualifiers from the type. 4816 FunctionProtoType::ExtProtoInfo EPI = FnTy->getExtProtoInfo(); 4817 EPI.TypeQuals = 0; 4818 EPI.RefQualifier = RQ_None; 4819 4820 T = Context.getFunctionType(FnTy->getReturnType(), FnTy->getParamTypes(), 4821 EPI); 4822 // Rebuild any parens around the identifier in the function type. 4823 for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) { 4824 if (D.getTypeObject(i).Kind != DeclaratorChunk::Paren) 4825 break; 4826 T = S.BuildParenType(T); 4827 } 4828 } 4829 } 4830 4831 // Apply any undistributed attributes from the declarator. 4832 processTypeAttrs(state, T, TAL_DeclName, D.getAttributes()); 4833 4834 // Diagnose any ignored type attributes. 4835 state.diagnoseIgnoredTypeAttrs(T); 4836 4837 // C++0x [dcl.constexpr]p9: 4838 // A constexpr specifier used in an object declaration declares the object 4839 // as const. 4840 if (D.getDeclSpec().isConstexprSpecified() && T->isObjectType()) { 4841 T.addConst(); 4842 } 4843 4844 // If there was an ellipsis in the declarator, the declaration declares a 4845 // parameter pack whose type may be a pack expansion type. 4846 if (D.hasEllipsis()) { 4847 // C++0x [dcl.fct]p13: 4848 // A declarator-id or abstract-declarator containing an ellipsis shall 4849 // only be used in a parameter-declaration. Such a parameter-declaration 4850 // is a parameter pack (14.5.3). [...] 4851 switch (D.getContext()) { 4852 case Declarator::PrototypeContext: 4853 case Declarator::LambdaExprParameterContext: 4854 // C++0x [dcl.fct]p13: 4855 // [...] When it is part of a parameter-declaration-clause, the 4856 // parameter pack is a function parameter pack (14.5.3). The type T 4857 // of the declarator-id of the function parameter pack shall contain 4858 // a template parameter pack; each template parameter pack in T is 4859 // expanded by the function parameter pack. 4860 // 4861 // We represent function parameter packs as function parameters whose 4862 // type is a pack expansion. 4863 if (!T->containsUnexpandedParameterPack()) { 4864 S.Diag(D.getEllipsisLoc(), 4865 diag::err_function_parameter_pack_without_parameter_packs) 4866 << T << D.getSourceRange(); 4867 D.setEllipsisLoc(SourceLocation()); 4868 } else { 4869 T = Context.getPackExpansionType(T, None); 4870 } 4871 break; 4872 case Declarator::TemplateParamContext: 4873 // C++0x [temp.param]p15: 4874 // If a template-parameter is a [...] is a parameter-declaration that 4875 // declares a parameter pack (8.3.5), then the template-parameter is a 4876 // template parameter pack (14.5.3). 4877 // 4878 // Note: core issue 778 clarifies that, if there are any unexpanded 4879 // parameter packs in the type of the non-type template parameter, then 4880 // it expands those parameter packs. 4881 if (T->containsUnexpandedParameterPack()) 4882 T = Context.getPackExpansionType(T, None); 4883 else 4884 S.Diag(D.getEllipsisLoc(), 4885 LangOpts.CPlusPlus11 4886 ? diag::warn_cxx98_compat_variadic_templates 4887 : diag::ext_variadic_templates); 4888 break; 4889 4890 case Declarator::FileContext: 4891 case Declarator::KNRTypeListContext: 4892 case Declarator::ObjCParameterContext: // FIXME: special diagnostic here? 4893 case Declarator::ObjCResultContext: // FIXME: special diagnostic here? 4894 case Declarator::TypeNameContext: 4895 case Declarator::FunctionalCastContext: 4896 case Declarator::CXXNewContext: 4897 case Declarator::AliasDeclContext: 4898 case Declarator::AliasTemplateContext: 4899 case Declarator::MemberContext: 4900 case Declarator::BlockContext: 4901 case Declarator::ForContext: 4902 case Declarator::InitStmtContext: 4903 case Declarator::ConditionContext: 4904 case Declarator::CXXCatchContext: 4905 case Declarator::ObjCCatchContext: 4906 case Declarator::BlockLiteralContext: 4907 case Declarator::LambdaExprContext: 4908 case Declarator::ConversionIdContext: 4909 case Declarator::TrailingReturnContext: 4910 case Declarator::TemplateTypeArgContext: 4911 // FIXME: We may want to allow parameter packs in block-literal contexts 4912 // in the future. 4913 S.Diag(D.getEllipsisLoc(), 4914 diag::err_ellipsis_in_declarator_not_parameter); 4915 D.setEllipsisLoc(SourceLocation()); 4916 break; 4917 } 4918 } 4919 4920 assert(!T.isNull() && "T must not be null at the end of this function"); 4921 if (D.isInvalidType()) 4922 return Context.getTrivialTypeSourceInfo(T); 4923 4924 return S.GetTypeSourceInfoForDeclarator(D, T, TInfo); 4925 } 4926 4927 /// GetTypeForDeclarator - Convert the type for the specified 4928 /// declarator to Type instances. 4929 /// 4930 /// The result of this call will never be null, but the associated 4931 /// type may be a null type if there's an unrecoverable error. 4932 TypeSourceInfo *Sema::GetTypeForDeclarator(Declarator &D, Scope *S) { 4933 // Determine the type of the declarator. Not all forms of declarator 4934 // have a type. 4935 4936 TypeProcessingState state(*this, D); 4937 4938 TypeSourceInfo *ReturnTypeInfo = nullptr; 4939 QualType T = GetDeclSpecTypeForDeclarator(state, ReturnTypeInfo); 4940 4941 if (D.isPrototypeContext() && getLangOpts().ObjCAutoRefCount) 4942 inferARCWriteback(state, T); 4943 4944 return GetFullTypeForDeclarator(state, T, ReturnTypeInfo); 4945 } 4946 4947 static void transferARCOwnershipToDeclSpec(Sema &S, 4948 QualType &declSpecTy, 4949 Qualifiers::ObjCLifetime ownership) { 4950 if (declSpecTy->isObjCRetainableType() && 4951 declSpecTy.getObjCLifetime() == Qualifiers::OCL_None) { 4952 Qualifiers qs; 4953 qs.addObjCLifetime(ownership); 4954 declSpecTy = S.Context.getQualifiedType(declSpecTy, qs); 4955 } 4956 } 4957 4958 static void transferARCOwnershipToDeclaratorChunk(TypeProcessingState &state, 4959 Qualifiers::ObjCLifetime ownership, 4960 unsigned chunkIndex) { 4961 Sema &S = state.getSema(); 4962 Declarator &D = state.getDeclarator(); 4963 4964 // Look for an explicit lifetime attribute. 4965 DeclaratorChunk &chunk = D.getTypeObject(chunkIndex); 4966 for (const AttributeList *attr = chunk.getAttrs(); attr; 4967 attr = attr->getNext()) 4968 if (attr->getKind() == AttributeList::AT_ObjCOwnership) 4969 return; 4970 4971 const char *attrStr = nullptr; 4972 switch (ownership) { 4973 case Qualifiers::OCL_None: llvm_unreachable("no ownership!"); 4974 case Qualifiers::OCL_ExplicitNone: attrStr = "none"; break; 4975 case Qualifiers::OCL_Strong: attrStr = "strong"; break; 4976 case Qualifiers::OCL_Weak: attrStr = "weak"; break; 4977 case Qualifiers::OCL_Autoreleasing: attrStr = "autoreleasing"; break; 4978 } 4979 4980 IdentifierLoc *Arg = new (S.Context) IdentifierLoc; 4981 Arg->Ident = &S.Context.Idents.get(attrStr); 4982 Arg->Loc = SourceLocation(); 4983 4984 ArgsUnion Args(Arg); 4985 4986 // If there wasn't one, add one (with an invalid source location 4987 // so that we don't make an AttributedType for it). 4988 AttributeList *attr = D.getAttributePool() 4989 .create(&S.Context.Idents.get("objc_ownership"), SourceLocation(), 4990 /*scope*/ nullptr, SourceLocation(), 4991 /*args*/ &Args, 1, AttributeList::AS_GNU); 4992 spliceAttrIntoList(*attr, chunk.getAttrListRef()); 4993 4994 // TODO: mark whether we did this inference? 4995 } 4996 4997 /// \brief Used for transferring ownership in casts resulting in l-values. 4998 static void transferARCOwnership(TypeProcessingState &state, 4999 QualType &declSpecTy, 5000 Qualifiers::ObjCLifetime ownership) { 5001 Sema &S = state.getSema(); 5002 Declarator &D = state.getDeclarator(); 5003 5004 int inner = -1; 5005 bool hasIndirection = false; 5006 for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) { 5007 DeclaratorChunk &chunk = D.getTypeObject(i); 5008 switch (chunk.Kind) { 5009 case DeclaratorChunk::Paren: 5010 // Ignore parens. 5011 break; 5012 5013 case DeclaratorChunk::Array: 5014 case DeclaratorChunk::Reference: 5015 case DeclaratorChunk::Pointer: 5016 if (inner != -1) 5017 hasIndirection = true; 5018 inner = i; 5019 break; 5020 5021 case DeclaratorChunk::BlockPointer: 5022 if (inner != -1) 5023 transferARCOwnershipToDeclaratorChunk(state, ownership, i); 5024 return; 5025 5026 case DeclaratorChunk::Function: 5027 case DeclaratorChunk::MemberPointer: 5028 case DeclaratorChunk::Pipe: 5029 return; 5030 } 5031 } 5032 5033 if (inner == -1) 5034 return; 5035 5036 DeclaratorChunk &chunk = D.getTypeObject(inner); 5037 if (chunk.Kind == DeclaratorChunk::Pointer) { 5038 if (declSpecTy->isObjCRetainableType()) 5039 return transferARCOwnershipToDeclSpec(S, declSpecTy, ownership); 5040 if (declSpecTy->isObjCObjectType() && hasIndirection) 5041 return transferARCOwnershipToDeclaratorChunk(state, ownership, inner); 5042 } else { 5043 assert(chunk.Kind == DeclaratorChunk::Array || 5044 chunk.Kind == DeclaratorChunk::Reference); 5045 return transferARCOwnershipToDeclSpec(S, declSpecTy, ownership); 5046 } 5047 } 5048 5049 TypeSourceInfo *Sema::GetTypeForDeclaratorCast(Declarator &D, QualType FromTy) { 5050 TypeProcessingState state(*this, D); 5051 5052 TypeSourceInfo *ReturnTypeInfo = nullptr; 5053 QualType declSpecTy = GetDeclSpecTypeForDeclarator(state, ReturnTypeInfo); 5054 5055 if (getLangOpts().ObjC1) { 5056 Qualifiers::ObjCLifetime ownership = Context.getInnerObjCOwnership(FromTy); 5057 if (ownership != Qualifiers::OCL_None) 5058 transferARCOwnership(state, declSpecTy, ownership); 5059 } 5060 5061 return GetFullTypeForDeclarator(state, declSpecTy, ReturnTypeInfo); 5062 } 5063 5064 /// Map an AttributedType::Kind to an AttributeList::Kind. 5065 static AttributeList::Kind getAttrListKind(AttributedType::Kind kind) { 5066 switch (kind) { 5067 case AttributedType::attr_address_space: 5068 return AttributeList::AT_AddressSpace; 5069 case AttributedType::attr_regparm: 5070 return AttributeList::AT_Regparm; 5071 case AttributedType::attr_vector_size: 5072 return AttributeList::AT_VectorSize; 5073 case AttributedType::attr_neon_vector_type: 5074 return AttributeList::AT_NeonVectorType; 5075 case AttributedType::attr_neon_polyvector_type: 5076 return AttributeList::AT_NeonPolyVectorType; 5077 case AttributedType::attr_objc_gc: 5078 return AttributeList::AT_ObjCGC; 5079 case AttributedType::attr_objc_ownership: 5080 case AttributedType::attr_objc_inert_unsafe_unretained: 5081 return AttributeList::AT_ObjCOwnership; 5082 case AttributedType::attr_noreturn: 5083 return AttributeList::AT_NoReturn; 5084 case AttributedType::attr_cdecl: 5085 return AttributeList::AT_CDecl; 5086 case AttributedType::attr_fastcall: 5087 return AttributeList::AT_FastCall; 5088 case AttributedType::attr_stdcall: 5089 return AttributeList::AT_StdCall; 5090 case AttributedType::attr_thiscall: 5091 return AttributeList::AT_ThisCall; 5092 case AttributedType::attr_regcall: 5093 return AttributeList::AT_RegCall; 5094 case AttributedType::attr_pascal: 5095 return AttributeList::AT_Pascal; 5096 case AttributedType::attr_swiftcall: 5097 return AttributeList::AT_SwiftCall; 5098 case AttributedType::attr_vectorcall: 5099 return AttributeList::AT_VectorCall; 5100 case AttributedType::attr_pcs: 5101 case AttributedType::attr_pcs_vfp: 5102 return AttributeList::AT_Pcs; 5103 case AttributedType::attr_inteloclbicc: 5104 return AttributeList::AT_IntelOclBicc; 5105 case AttributedType::attr_ms_abi: 5106 return AttributeList::AT_MSABI; 5107 case AttributedType::attr_sysv_abi: 5108 return AttributeList::AT_SysVABI; 5109 case AttributedType::attr_preserve_most: 5110 return AttributeList::AT_PreserveMost; 5111 case AttributedType::attr_preserve_all: 5112 return AttributeList::AT_PreserveAll; 5113 case AttributedType::attr_ptr32: 5114 return AttributeList::AT_Ptr32; 5115 case AttributedType::attr_ptr64: 5116 return AttributeList::AT_Ptr64; 5117 case AttributedType::attr_sptr: 5118 return AttributeList::AT_SPtr; 5119 case AttributedType::attr_uptr: 5120 return AttributeList::AT_UPtr; 5121 case AttributedType::attr_nonnull: 5122 return AttributeList::AT_TypeNonNull; 5123 case AttributedType::attr_nullable: 5124 return AttributeList::AT_TypeNullable; 5125 case AttributedType::attr_null_unspecified: 5126 return AttributeList::AT_TypeNullUnspecified; 5127 case AttributedType::attr_objc_kindof: 5128 return AttributeList::AT_ObjCKindOf; 5129 case AttributedType::attr_ns_returns_retained: 5130 return AttributeList::AT_NSReturnsRetained; 5131 } 5132 llvm_unreachable("unexpected attribute kind!"); 5133 } 5134 5135 static void fillAttributedTypeLoc(AttributedTypeLoc TL, 5136 const AttributeList *attrs, 5137 const AttributeList *DeclAttrs = nullptr) { 5138 // DeclAttrs and attrs cannot be both empty. 5139 assert((attrs || DeclAttrs) && 5140 "no type attributes in the expected location!"); 5141 5142 AttributeList::Kind parsedKind = getAttrListKind(TL.getAttrKind()); 5143 // Try to search for an attribute of matching kind in attrs list. 5144 while (attrs && attrs->getKind() != parsedKind) 5145 attrs = attrs->getNext(); 5146 if (!attrs) { 5147 // No matching type attribute in attrs list found. 5148 // Try searching through C++11 attributes in the declarator attribute list. 5149 while (DeclAttrs && (!DeclAttrs->isCXX11Attribute() || 5150 DeclAttrs->getKind() != parsedKind)) 5151 DeclAttrs = DeclAttrs->getNext(); 5152 attrs = DeclAttrs; 5153 } 5154 5155 assert(attrs && "no matching type attribute in expected location!"); 5156 5157 TL.setAttrNameLoc(attrs->getLoc()); 5158 if (TL.hasAttrExprOperand()) { 5159 assert(attrs->isArgExpr(0) && "mismatched attribute operand kind"); 5160 TL.setAttrExprOperand(attrs->getArgAsExpr(0)); 5161 } else if (TL.hasAttrEnumOperand()) { 5162 assert((attrs->isArgIdent(0) || attrs->isArgExpr(0)) && 5163 "unexpected attribute operand kind"); 5164 if (attrs->isArgIdent(0)) 5165 TL.setAttrEnumOperandLoc(attrs->getArgAsIdent(0)->Loc); 5166 else 5167 TL.setAttrEnumOperandLoc(attrs->getArgAsExpr(0)->getExprLoc()); 5168 } 5169 5170 // FIXME: preserve this information to here. 5171 if (TL.hasAttrOperand()) 5172 TL.setAttrOperandParensRange(SourceRange()); 5173 } 5174 5175 namespace { 5176 class TypeSpecLocFiller : public TypeLocVisitor<TypeSpecLocFiller> { 5177 ASTContext &Context; 5178 const DeclSpec &DS; 5179 5180 public: 5181 TypeSpecLocFiller(ASTContext &Context, const DeclSpec &DS) 5182 : Context(Context), DS(DS) {} 5183 5184 void VisitAttributedTypeLoc(AttributedTypeLoc TL) { 5185 fillAttributedTypeLoc(TL, DS.getAttributes().getList()); 5186 Visit(TL.getModifiedLoc()); 5187 } 5188 void VisitQualifiedTypeLoc(QualifiedTypeLoc TL) { 5189 Visit(TL.getUnqualifiedLoc()); 5190 } 5191 void VisitTypedefTypeLoc(TypedefTypeLoc TL) { 5192 TL.setNameLoc(DS.getTypeSpecTypeLoc()); 5193 } 5194 void VisitObjCInterfaceTypeLoc(ObjCInterfaceTypeLoc TL) { 5195 TL.setNameLoc(DS.getTypeSpecTypeLoc()); 5196 // FIXME. We should have DS.getTypeSpecTypeEndLoc(). But, it requires 5197 // addition field. What we have is good enough for dispay of location 5198 // of 'fixit' on interface name. 5199 TL.setNameEndLoc(DS.getLocEnd()); 5200 } 5201 void VisitObjCObjectTypeLoc(ObjCObjectTypeLoc TL) { 5202 TypeSourceInfo *RepTInfo = nullptr; 5203 Sema::GetTypeFromParser(DS.getRepAsType(), &RepTInfo); 5204 TL.copy(RepTInfo->getTypeLoc()); 5205 } 5206 void VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) { 5207 TypeSourceInfo *RepTInfo = nullptr; 5208 Sema::GetTypeFromParser(DS.getRepAsType(), &RepTInfo); 5209 TL.copy(RepTInfo->getTypeLoc()); 5210 } 5211 void VisitTemplateSpecializationTypeLoc(TemplateSpecializationTypeLoc TL) { 5212 TypeSourceInfo *TInfo = nullptr; 5213 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5214 5215 // If we got no declarator info from previous Sema routines, 5216 // just fill with the typespec loc. 5217 if (!TInfo) { 5218 TL.initialize(Context, DS.getTypeSpecTypeNameLoc()); 5219 return; 5220 } 5221 5222 TypeLoc OldTL = TInfo->getTypeLoc(); 5223 if (TInfo->getType()->getAs<ElaboratedType>()) { 5224 ElaboratedTypeLoc ElabTL = OldTL.castAs<ElaboratedTypeLoc>(); 5225 TemplateSpecializationTypeLoc NamedTL = ElabTL.getNamedTypeLoc() 5226 .castAs<TemplateSpecializationTypeLoc>(); 5227 TL.copy(NamedTL); 5228 } else { 5229 TL.copy(OldTL.castAs<TemplateSpecializationTypeLoc>()); 5230 assert(TL.getRAngleLoc() == OldTL.castAs<TemplateSpecializationTypeLoc>().getRAngleLoc()); 5231 } 5232 5233 } 5234 void VisitTypeOfExprTypeLoc(TypeOfExprTypeLoc TL) { 5235 assert(DS.getTypeSpecType() == DeclSpec::TST_typeofExpr); 5236 TL.setTypeofLoc(DS.getTypeSpecTypeLoc()); 5237 TL.setParensRange(DS.getTypeofParensRange()); 5238 } 5239 void VisitTypeOfTypeLoc(TypeOfTypeLoc TL) { 5240 assert(DS.getTypeSpecType() == DeclSpec::TST_typeofType); 5241 TL.setTypeofLoc(DS.getTypeSpecTypeLoc()); 5242 TL.setParensRange(DS.getTypeofParensRange()); 5243 assert(DS.getRepAsType()); 5244 TypeSourceInfo *TInfo = nullptr; 5245 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5246 TL.setUnderlyingTInfo(TInfo); 5247 } 5248 void VisitUnaryTransformTypeLoc(UnaryTransformTypeLoc TL) { 5249 // FIXME: This holds only because we only have one unary transform. 5250 assert(DS.getTypeSpecType() == DeclSpec::TST_underlyingType); 5251 TL.setKWLoc(DS.getTypeSpecTypeLoc()); 5252 TL.setParensRange(DS.getTypeofParensRange()); 5253 assert(DS.getRepAsType()); 5254 TypeSourceInfo *TInfo = nullptr; 5255 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5256 TL.setUnderlyingTInfo(TInfo); 5257 } 5258 void VisitBuiltinTypeLoc(BuiltinTypeLoc TL) { 5259 // By default, use the source location of the type specifier. 5260 TL.setBuiltinLoc(DS.getTypeSpecTypeLoc()); 5261 if (TL.needsExtraLocalData()) { 5262 // Set info for the written builtin specifiers. 5263 TL.getWrittenBuiltinSpecs() = DS.getWrittenBuiltinSpecs(); 5264 // Try to have a meaningful source location. 5265 if (TL.getWrittenSignSpec() != TSS_unspecified) 5266 TL.expandBuiltinRange(DS.getTypeSpecSignLoc()); 5267 if (TL.getWrittenWidthSpec() != TSW_unspecified) 5268 TL.expandBuiltinRange(DS.getTypeSpecWidthRange()); 5269 } 5270 } 5271 void VisitElaboratedTypeLoc(ElaboratedTypeLoc TL) { 5272 ElaboratedTypeKeyword Keyword 5273 = TypeWithKeyword::getKeywordForTypeSpec(DS.getTypeSpecType()); 5274 if (DS.getTypeSpecType() == TST_typename) { 5275 TypeSourceInfo *TInfo = nullptr; 5276 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5277 if (TInfo) { 5278 TL.copy(TInfo->getTypeLoc().castAs<ElaboratedTypeLoc>()); 5279 return; 5280 } 5281 } 5282 TL.setElaboratedKeywordLoc(Keyword != ETK_None 5283 ? DS.getTypeSpecTypeLoc() 5284 : SourceLocation()); 5285 const CXXScopeSpec& SS = DS.getTypeSpecScope(); 5286 TL.setQualifierLoc(SS.getWithLocInContext(Context)); 5287 Visit(TL.getNextTypeLoc().getUnqualifiedLoc()); 5288 } 5289 void VisitDependentNameTypeLoc(DependentNameTypeLoc TL) { 5290 assert(DS.getTypeSpecType() == TST_typename); 5291 TypeSourceInfo *TInfo = nullptr; 5292 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5293 assert(TInfo); 5294 TL.copy(TInfo->getTypeLoc().castAs<DependentNameTypeLoc>()); 5295 } 5296 void VisitDependentTemplateSpecializationTypeLoc( 5297 DependentTemplateSpecializationTypeLoc TL) { 5298 assert(DS.getTypeSpecType() == TST_typename); 5299 TypeSourceInfo *TInfo = nullptr; 5300 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5301 assert(TInfo); 5302 TL.copy( 5303 TInfo->getTypeLoc().castAs<DependentTemplateSpecializationTypeLoc>()); 5304 } 5305 void VisitTagTypeLoc(TagTypeLoc TL) { 5306 TL.setNameLoc(DS.getTypeSpecTypeNameLoc()); 5307 } 5308 void VisitAtomicTypeLoc(AtomicTypeLoc TL) { 5309 // An AtomicTypeLoc can come from either an _Atomic(...) type specifier 5310 // or an _Atomic qualifier. 5311 if (DS.getTypeSpecType() == DeclSpec::TST_atomic) { 5312 TL.setKWLoc(DS.getTypeSpecTypeLoc()); 5313 TL.setParensRange(DS.getTypeofParensRange()); 5314 5315 TypeSourceInfo *TInfo = nullptr; 5316 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5317 assert(TInfo); 5318 TL.getValueLoc().initializeFullCopy(TInfo->getTypeLoc()); 5319 } else { 5320 TL.setKWLoc(DS.getAtomicSpecLoc()); 5321 // No parens, to indicate this was spelled as an _Atomic qualifier. 5322 TL.setParensRange(SourceRange()); 5323 Visit(TL.getValueLoc()); 5324 } 5325 } 5326 5327 void VisitPipeTypeLoc(PipeTypeLoc TL) { 5328 TL.setKWLoc(DS.getTypeSpecTypeLoc()); 5329 5330 TypeSourceInfo *TInfo = nullptr; 5331 Sema::GetTypeFromParser(DS.getRepAsType(), &TInfo); 5332 TL.getValueLoc().initializeFullCopy(TInfo->getTypeLoc()); 5333 } 5334 5335 void VisitTypeLoc(TypeLoc TL) { 5336 // FIXME: add other typespec types and change this to an assert. 5337 TL.initialize(Context, DS.getTypeSpecTypeLoc()); 5338 } 5339 }; 5340 5341 class DeclaratorLocFiller : public TypeLocVisitor<DeclaratorLocFiller> { 5342 ASTContext &Context; 5343 const DeclaratorChunk &Chunk; 5344 5345 public: 5346 DeclaratorLocFiller(ASTContext &Context, const DeclaratorChunk &Chunk) 5347 : Context(Context), Chunk(Chunk) {} 5348 5349 void VisitQualifiedTypeLoc(QualifiedTypeLoc TL) { 5350 llvm_unreachable("qualified type locs not expected here!"); 5351 } 5352 void VisitDecayedTypeLoc(DecayedTypeLoc TL) { 5353 llvm_unreachable("decayed type locs not expected here!"); 5354 } 5355 5356 void VisitAttributedTypeLoc(AttributedTypeLoc TL) { 5357 fillAttributedTypeLoc(TL, Chunk.getAttrs()); 5358 } 5359 void VisitAdjustedTypeLoc(AdjustedTypeLoc TL) { 5360 // nothing 5361 } 5362 void VisitBlockPointerTypeLoc(BlockPointerTypeLoc TL) { 5363 assert(Chunk.Kind == DeclaratorChunk::BlockPointer); 5364 TL.setCaretLoc(Chunk.Loc); 5365 } 5366 void VisitPointerTypeLoc(PointerTypeLoc TL) { 5367 assert(Chunk.Kind == DeclaratorChunk::Pointer); 5368 TL.setStarLoc(Chunk.Loc); 5369 } 5370 void VisitObjCObjectPointerTypeLoc(ObjCObjectPointerTypeLoc TL) { 5371 assert(Chunk.Kind == DeclaratorChunk::Pointer); 5372 TL.setStarLoc(Chunk.Loc); 5373 } 5374 void VisitMemberPointerTypeLoc(MemberPointerTypeLoc TL) { 5375 assert(Chunk.Kind == DeclaratorChunk::MemberPointer); 5376 const CXXScopeSpec& SS = Chunk.Mem.Scope(); 5377 NestedNameSpecifierLoc NNSLoc = SS.getWithLocInContext(Context); 5378 5379 const Type* ClsTy = TL.getClass(); 5380 QualType ClsQT = QualType(ClsTy, 0); 5381 TypeSourceInfo *ClsTInfo = Context.CreateTypeSourceInfo(ClsQT, 0); 5382 // Now copy source location info into the type loc component. 5383 TypeLoc ClsTL = ClsTInfo->getTypeLoc(); 5384 switch (NNSLoc.getNestedNameSpecifier()->getKind()) { 5385 case NestedNameSpecifier::Identifier: 5386 assert(isa<DependentNameType>(ClsTy) && "Unexpected TypeLoc"); 5387 { 5388 DependentNameTypeLoc DNTLoc = ClsTL.castAs<DependentNameTypeLoc>(); 5389 DNTLoc.setElaboratedKeywordLoc(SourceLocation()); 5390 DNTLoc.setQualifierLoc(NNSLoc.getPrefix()); 5391 DNTLoc.setNameLoc(NNSLoc.getLocalBeginLoc()); 5392 } 5393 break; 5394 5395 case NestedNameSpecifier::TypeSpec: 5396 case NestedNameSpecifier::TypeSpecWithTemplate: 5397 if (isa<ElaboratedType>(ClsTy)) { 5398 ElaboratedTypeLoc ETLoc = ClsTL.castAs<ElaboratedTypeLoc>(); 5399 ETLoc.setElaboratedKeywordLoc(SourceLocation()); 5400 ETLoc.setQualifierLoc(NNSLoc.getPrefix()); 5401 TypeLoc NamedTL = ETLoc.getNamedTypeLoc(); 5402 NamedTL.initializeFullCopy(NNSLoc.getTypeLoc()); 5403 } else { 5404 ClsTL.initializeFullCopy(NNSLoc.getTypeLoc()); 5405 } 5406 break; 5407 5408 case NestedNameSpecifier::Namespace: 5409 case NestedNameSpecifier::NamespaceAlias: 5410 case NestedNameSpecifier::Global: 5411 case NestedNameSpecifier::Super: 5412 llvm_unreachable("Nested-name-specifier must name a type"); 5413 } 5414 5415 // Finally fill in MemberPointerLocInfo fields. 5416 TL.setStarLoc(Chunk.Loc); 5417 TL.setClassTInfo(ClsTInfo); 5418 } 5419 void VisitLValueReferenceTypeLoc(LValueReferenceTypeLoc TL) { 5420 assert(Chunk.Kind == DeclaratorChunk::Reference); 5421 // 'Amp' is misleading: this might have been originally 5422 /// spelled with AmpAmp. 5423 TL.setAmpLoc(Chunk.Loc); 5424 } 5425 void VisitRValueReferenceTypeLoc(RValueReferenceTypeLoc TL) { 5426 assert(Chunk.Kind == DeclaratorChunk::Reference); 5427 assert(!Chunk.Ref.LValueRef); 5428 TL.setAmpAmpLoc(Chunk.Loc); 5429 } 5430 void VisitArrayTypeLoc(ArrayTypeLoc TL) { 5431 assert(Chunk.Kind == DeclaratorChunk::Array); 5432 TL.setLBracketLoc(Chunk.Loc); 5433 TL.setRBracketLoc(Chunk.EndLoc); 5434 TL.setSizeExpr(static_cast<Expr*>(Chunk.Arr.NumElts)); 5435 } 5436 void VisitFunctionTypeLoc(FunctionTypeLoc TL) { 5437 assert(Chunk.Kind == DeclaratorChunk::Function); 5438 TL.setLocalRangeBegin(Chunk.Loc); 5439 TL.setLocalRangeEnd(Chunk.EndLoc); 5440 5441 const DeclaratorChunk::FunctionTypeInfo &FTI = Chunk.Fun; 5442 TL.setLParenLoc(FTI.getLParenLoc()); 5443 TL.setRParenLoc(FTI.getRParenLoc()); 5444 for (unsigned i = 0, e = TL.getNumParams(), tpi = 0; i != e; ++i) { 5445 ParmVarDecl *Param = cast<ParmVarDecl>(FTI.Params[i].Param); 5446 TL.setParam(tpi++, Param); 5447 } 5448 TL.setExceptionSpecRange(FTI.getExceptionSpecRange()); 5449 } 5450 void VisitParenTypeLoc(ParenTypeLoc TL) { 5451 assert(Chunk.Kind == DeclaratorChunk::Paren); 5452 TL.setLParenLoc(Chunk.Loc); 5453 TL.setRParenLoc(Chunk.EndLoc); 5454 } 5455 void VisitPipeTypeLoc(PipeTypeLoc TL) { 5456 assert(Chunk.Kind == DeclaratorChunk::Pipe); 5457 TL.setKWLoc(Chunk.Loc); 5458 } 5459 5460 void VisitTypeLoc(TypeLoc TL) { 5461 llvm_unreachable("unsupported TypeLoc kind in declarator!"); 5462 } 5463 }; 5464 } // end anonymous namespace 5465 5466 static void fillAtomicQualLoc(AtomicTypeLoc ATL, const DeclaratorChunk &Chunk) { 5467 SourceLocation Loc; 5468 switch (Chunk.Kind) { 5469 case DeclaratorChunk::Function: 5470 case DeclaratorChunk::Array: 5471 case DeclaratorChunk::Paren: 5472 case DeclaratorChunk::Pipe: 5473 llvm_unreachable("cannot be _Atomic qualified"); 5474 5475 case DeclaratorChunk::Pointer: 5476 Loc = SourceLocation::getFromRawEncoding(Chunk.Ptr.AtomicQualLoc); 5477 break; 5478 5479 case DeclaratorChunk::BlockPointer: 5480 case DeclaratorChunk::Reference: 5481 case DeclaratorChunk::MemberPointer: 5482 // FIXME: Provide a source location for the _Atomic keyword. 5483 break; 5484 } 5485 5486 ATL.setKWLoc(Loc); 5487 ATL.setParensRange(SourceRange()); 5488 } 5489 5490 static void fillDependentAddressSpaceTypeLoc(DependentAddressSpaceTypeLoc DASTL, 5491 const AttributeList *Attrs) { 5492 while (Attrs && Attrs->getKind() != AttributeList::AT_AddressSpace) 5493 Attrs = Attrs->getNext(); 5494 5495 assert(Attrs && "no address_space attribute found at the expected location!"); 5496 5497 DASTL.setAttrNameLoc(Attrs->getLoc()); 5498 DASTL.setAttrExprOperand(Attrs->getArgAsExpr(0)); 5499 DASTL.setAttrOperandParensRange(SourceRange()); 5500 } 5501 5502 /// \brief Create and instantiate a TypeSourceInfo with type source information. 5503 /// 5504 /// \param T QualType referring to the type as written in source code. 5505 /// 5506 /// \param ReturnTypeInfo For declarators whose return type does not show 5507 /// up in the normal place in the declaration specifiers (such as a C++ 5508 /// conversion function), this pointer will refer to a type source information 5509 /// for that return type. 5510 TypeSourceInfo * 5511 Sema::GetTypeSourceInfoForDeclarator(Declarator &D, QualType T, 5512 TypeSourceInfo *ReturnTypeInfo) { 5513 TypeSourceInfo *TInfo = Context.CreateTypeSourceInfo(T); 5514 UnqualTypeLoc CurrTL = TInfo->getTypeLoc().getUnqualifiedLoc(); 5515 const AttributeList *DeclAttrs = D.getAttributes(); 5516 5517 // Handle parameter packs whose type is a pack expansion. 5518 if (isa<PackExpansionType>(T)) { 5519 CurrTL.castAs<PackExpansionTypeLoc>().setEllipsisLoc(D.getEllipsisLoc()); 5520 CurrTL = CurrTL.getNextTypeLoc().getUnqualifiedLoc(); 5521 } 5522 5523 for (unsigned i = 0, e = D.getNumTypeObjects(); i != e; ++i) { 5524 5525 if (DependentAddressSpaceTypeLoc DASTL = 5526 CurrTL.getAs<DependentAddressSpaceTypeLoc>()) { 5527 fillDependentAddressSpaceTypeLoc(DASTL, D.getTypeObject(i).getAttrs()); 5528 CurrTL = DASTL.getPointeeTypeLoc().getUnqualifiedLoc(); 5529 } 5530 5531 // An AtomicTypeLoc might be produced by an atomic qualifier in this 5532 // declarator chunk. 5533 if (AtomicTypeLoc ATL = CurrTL.getAs<AtomicTypeLoc>()) { 5534 fillAtomicQualLoc(ATL, D.getTypeObject(i)); 5535 CurrTL = ATL.getValueLoc().getUnqualifiedLoc(); 5536 } 5537 5538 while (AttributedTypeLoc TL = CurrTL.getAs<AttributedTypeLoc>()) { 5539 fillAttributedTypeLoc(TL, D.getTypeObject(i).getAttrs(), DeclAttrs); 5540 CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc(); 5541 } 5542 5543 // FIXME: Ordering here? 5544 while (AdjustedTypeLoc TL = CurrTL.getAs<AdjustedTypeLoc>()) 5545 CurrTL = TL.getNextTypeLoc().getUnqualifiedLoc(); 5546 5547 DeclaratorLocFiller(Context, D.getTypeObject(i)).Visit(CurrTL); 5548 CurrTL = CurrTL.getNextTypeLoc().getUnqualifiedLoc(); 5549 } 5550 5551 // If we have different source information for the return type, use 5552 // that. This really only applies to C++ conversion functions. 5553 if (ReturnTypeInfo) { 5554 TypeLoc TL = ReturnTypeInfo->getTypeLoc(); 5555 assert(TL.getFullDataSize() == CurrTL.getFullDataSize()); 5556 memcpy(CurrTL.getOpaqueData(), TL.getOpaqueData(), TL.getFullDataSize()); 5557 } else { 5558 TypeSpecLocFiller(Context, D.getDeclSpec()).Visit(CurrTL); 5559 } 5560 5561 return TInfo; 5562 } 5563 5564 /// \brief Create a LocInfoType to hold the given QualType and TypeSourceInfo. 5565 ParsedType Sema::CreateParsedType(QualType T, TypeSourceInfo *TInfo) { 5566 // FIXME: LocInfoTypes are "transient", only needed for passing to/from Parser 5567 // and Sema during declaration parsing. Try deallocating/caching them when 5568 // it's appropriate, instead of allocating them and keeping them around. 5569 LocInfoType *LocT = (LocInfoType*)BumpAlloc.Allocate(sizeof(LocInfoType), 5570 TypeAlignment); 5571 new (LocT) LocInfoType(T, TInfo); 5572 assert(LocT->getTypeClass() != T->getTypeClass() && 5573 "LocInfoType's TypeClass conflicts with an existing Type class"); 5574 return ParsedType::make(QualType(LocT, 0)); 5575 } 5576 5577 void LocInfoType::getAsStringInternal(std::string &Str, 5578 const PrintingPolicy &Policy) const { 5579 llvm_unreachable("LocInfoType leaked into the type system; an opaque TypeTy*" 5580 " was used directly instead of getting the QualType through" 5581 " GetTypeFromParser"); 5582 } 5583 5584 TypeResult Sema::ActOnTypeName(Scope *S, Declarator &D) { 5585 // C99 6.7.6: Type names have no identifier. This is already validated by 5586 // the parser. 5587 assert(D.getIdentifier() == nullptr && 5588 "Type name should have no identifier!"); 5589 5590 TypeSourceInfo *TInfo = GetTypeForDeclarator(D, S); 5591 QualType T = TInfo->getType(); 5592 if (D.isInvalidType()) 5593 return true; 5594 5595 // Make sure there are no unused decl attributes on the declarator. 5596 // We don't want to do this for ObjC parameters because we're going 5597 // to apply them to the actual parameter declaration. 5598 // Likewise, we don't want to do this for alias declarations, because 5599 // we are actually going to build a declaration from this eventually. 5600 if (D.getContext() != Declarator::ObjCParameterContext && 5601 D.getContext() != Declarator::AliasDeclContext && 5602 D.getContext() != Declarator::AliasTemplateContext) 5603 checkUnusedDeclAttributes(D); 5604 5605 if (getLangOpts().CPlusPlus) { 5606 // Check that there are no default arguments (C++ only). 5607 CheckExtraCXXDefaultArguments(D); 5608 } 5609 5610 return CreateParsedType(T, TInfo); 5611 } 5612 5613 ParsedType Sema::ActOnObjCInstanceType(SourceLocation Loc) { 5614 QualType T = Context.getObjCInstanceType(); 5615 TypeSourceInfo *TInfo = Context.getTrivialTypeSourceInfo(T, Loc); 5616 return CreateParsedType(T, TInfo); 5617 } 5618 5619 //===----------------------------------------------------------------------===// 5620 // Type Attribute Processing 5621 //===----------------------------------------------------------------------===// 5622 5623 /// BuildAddressSpaceAttr - Builds a DependentAddressSpaceType if an expression 5624 /// is uninstantiated. If instantiated it will apply the appropriate address space 5625 /// to the type. This function allows dependent template variables to be used in 5626 /// conjunction with the address_space attribute 5627 QualType Sema::BuildAddressSpaceAttr(QualType &T, Expr *AddrSpace, 5628 SourceLocation AttrLoc) { 5629 if (!AddrSpace->isValueDependent()) { 5630 5631 // If this type is already address space qualified, reject it. 5632 // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "No type shall be qualified 5633 // by qualifiers for two or more different address spaces." 5634 if (T.getAddressSpace()) { 5635 Diag(AttrLoc, diag::err_attribute_address_multiple_qualifiers); 5636 return QualType(); 5637 } 5638 5639 llvm::APSInt addrSpace(32); 5640 if (!AddrSpace->isIntegerConstantExpr(addrSpace, Context)) { 5641 Diag(AttrLoc, diag::err_attribute_argument_type) 5642 << "'address_space'" << AANT_ArgumentIntegerConstant 5643 << AddrSpace->getSourceRange(); 5644 return QualType(); 5645 } 5646 5647 // Bounds checking. 5648 if (addrSpace.isSigned()) { 5649 if (addrSpace.isNegative()) { 5650 Diag(AttrLoc, diag::err_attribute_address_space_negative) 5651 << AddrSpace->getSourceRange(); 5652 return QualType(); 5653 } 5654 addrSpace.setIsSigned(false); 5655 } 5656 5657 llvm::APSInt max(addrSpace.getBitWidth()); 5658 max = Qualifiers::MaxAddressSpace - LangAS::FirstTargetAddressSpace; 5659 if (addrSpace > max) { 5660 Diag(AttrLoc, diag::err_attribute_address_space_too_high) 5661 << (unsigned)max.getZExtValue() << AddrSpace->getSourceRange(); 5662 return QualType(); 5663 } 5664 5665 unsigned ASIdx = static_cast<unsigned>(addrSpace.getZExtValue()) + 5666 LangAS::FirstTargetAddressSpace; 5667 5668 return Context.getAddrSpaceQualType(T, ASIdx); 5669 } 5670 5671 // A check with similar intentions as checking if a type already has an 5672 // address space except for on a dependent types, basically if the 5673 // current type is already a DependentAddressSpaceType then its already 5674 // lined up to have another address space on it and we can't have 5675 // multiple address spaces on the one pointer indirection 5676 if (T->getAs<DependentAddressSpaceType>()) { 5677 Diag(AttrLoc, diag::err_attribute_address_multiple_qualifiers); 5678 return QualType(); 5679 } 5680 5681 return Context.getDependentAddressSpaceType(T, AddrSpace, AttrLoc); 5682 } 5683 5684 /// HandleAddressSpaceTypeAttribute - Process an address_space attribute on the 5685 /// specified type. The attribute contains 1 argument, the id of the address 5686 /// space for the type. 5687 static void HandleAddressSpaceTypeAttribute(QualType &Type, 5688 const AttributeList &Attr, Sema &S){ 5689 // If this type is already address space qualified, reject it. 5690 // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "No type shall be qualified by 5691 // qualifiers for two or more different address spaces." 5692 if (Type.getAddressSpace()) { 5693 S.Diag(Attr.getLoc(), diag::err_attribute_address_multiple_qualifiers); 5694 Attr.setInvalid(); 5695 return; 5696 } 5697 5698 // ISO/IEC TR 18037 S5.3 (amending C99 6.7.3): "A function type shall not be 5699 // qualified by an address-space qualifier." 5700 if (Type->isFunctionType()) { 5701 S.Diag(Attr.getLoc(), diag::err_attribute_address_function_type); 5702 Attr.setInvalid(); 5703 return; 5704 } 5705 5706 unsigned ASIdx; 5707 if (Attr.getKind() == AttributeList::AT_AddressSpace) { 5708 5709 // Check the attribute arguments. 5710 if (Attr.getNumArgs() != 1) { 5711 S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) 5712 << Attr.getName() << 1; 5713 Attr.setInvalid(); 5714 return; 5715 } 5716 5717 Expr *ASArgExpr; 5718 if (Attr.isArgIdent(0)) { 5719 // Special case where the argument is a template id. 5720 CXXScopeSpec SS; 5721 SourceLocation TemplateKWLoc; 5722 UnqualifiedId id; 5723 id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc()); 5724 5725 ExprResult AddrSpace = S.ActOnIdExpression( 5726 S.getCurScope(), SS, TemplateKWLoc, id, false, false); 5727 if (AddrSpace.isInvalid()) 5728 return; 5729 5730 ASArgExpr = static_cast<Expr *>(AddrSpace.get()); 5731 } else { 5732 ASArgExpr = static_cast<Expr *>(Attr.getArgAsExpr(0)); 5733 } 5734 5735 // Create the DependentAddressSpaceType or append an address space onto 5736 // the type. 5737 QualType T = S.BuildAddressSpaceAttr(Type, ASArgExpr, Attr.getLoc()); 5738 5739 if (!T.isNull()) 5740 Type = T; 5741 else 5742 Attr.setInvalid(); 5743 } else { 5744 // The keyword-based type attributes imply which address space to use. 5745 switch (Attr.getKind()) { 5746 case AttributeList::AT_OpenCLGlobalAddressSpace: 5747 ASIdx = LangAS::opencl_global; break; 5748 case AttributeList::AT_OpenCLLocalAddressSpace: 5749 ASIdx = LangAS::opencl_local; break; 5750 case AttributeList::AT_OpenCLConstantAddressSpace: 5751 ASIdx = LangAS::opencl_constant; break; 5752 case AttributeList::AT_OpenCLGenericAddressSpace: 5753 ASIdx = LangAS::opencl_generic; break; 5754 default: 5755 assert(Attr.getKind() == AttributeList::AT_OpenCLPrivateAddressSpace); 5756 ASIdx = 0; break; 5757 } 5758 5759 Type = S.Context.getAddrSpaceQualType(Type, ASIdx); 5760 } 5761 } 5762 5763 /// Does this type have a "direct" ownership qualifier? That is, 5764 /// is it written like "__strong id", as opposed to something like 5765 /// "typeof(foo)", where that happens to be strong? 5766 static bool hasDirectOwnershipQualifier(QualType type) { 5767 // Fast path: no qualifier at all. 5768 assert(type.getQualifiers().hasObjCLifetime()); 5769 5770 while (true) { 5771 // __strong id 5772 if (const AttributedType *attr = dyn_cast<AttributedType>(type)) { 5773 if (attr->getAttrKind() == AttributedType::attr_objc_ownership) 5774 return true; 5775 5776 type = attr->getModifiedType(); 5777 5778 // X *__strong (...) 5779 } else if (const ParenType *paren = dyn_cast<ParenType>(type)) { 5780 type = paren->getInnerType(); 5781 5782 // That's it for things we want to complain about. In particular, 5783 // we do not want to look through typedefs, typeof(expr), 5784 // typeof(type), or any other way that the type is somehow 5785 // abstracted. 5786 } else { 5787 5788 return false; 5789 } 5790 } 5791 } 5792 5793 /// handleObjCOwnershipTypeAttr - Process an objc_ownership 5794 /// attribute on the specified type. 5795 /// 5796 /// Returns 'true' if the attribute was handled. 5797 static bool handleObjCOwnershipTypeAttr(TypeProcessingState &state, 5798 AttributeList &attr, 5799 QualType &type) { 5800 bool NonObjCPointer = false; 5801 5802 if (!type->isDependentType() && !type->isUndeducedType()) { 5803 if (const PointerType *ptr = type->getAs<PointerType>()) { 5804 QualType pointee = ptr->getPointeeType(); 5805 if (pointee->isObjCRetainableType() || pointee->isPointerType()) 5806 return false; 5807 // It is important not to lose the source info that there was an attribute 5808 // applied to non-objc pointer. We will create an attributed type but 5809 // its type will be the same as the original type. 5810 NonObjCPointer = true; 5811 } else if (!type->isObjCRetainableType()) { 5812 return false; 5813 } 5814 5815 // Don't accept an ownership attribute in the declspec if it would 5816 // just be the return type of a block pointer. 5817 if (state.isProcessingDeclSpec()) { 5818 Declarator &D = state.getDeclarator(); 5819 if (maybeMovePastReturnType(D, D.getNumTypeObjects(), 5820 /*onlyBlockPointers=*/true)) 5821 return false; 5822 } 5823 } 5824 5825 Sema &S = state.getSema(); 5826 SourceLocation AttrLoc = attr.getLoc(); 5827 if (AttrLoc.isMacroID()) 5828 AttrLoc = S.getSourceManager().getImmediateExpansionRange(AttrLoc).first; 5829 5830 if (!attr.isArgIdent(0)) { 5831 S.Diag(AttrLoc, diag::err_attribute_argument_type) 5832 << attr.getName() << AANT_ArgumentString; 5833 attr.setInvalid(); 5834 return true; 5835 } 5836 5837 IdentifierInfo *II = attr.getArgAsIdent(0)->Ident; 5838 Qualifiers::ObjCLifetime lifetime; 5839 if (II->isStr("none")) 5840 lifetime = Qualifiers::OCL_ExplicitNone; 5841 else if (II->isStr("strong")) 5842 lifetime = Qualifiers::OCL_Strong; 5843 else if (II->isStr("weak")) 5844 lifetime = Qualifiers::OCL_Weak; 5845 else if (II->isStr("autoreleasing")) 5846 lifetime = Qualifiers::OCL_Autoreleasing; 5847 else { 5848 S.Diag(AttrLoc, diag::warn_attribute_type_not_supported) 5849 << attr.getName() << II; 5850 attr.setInvalid(); 5851 return true; 5852 } 5853 5854 // Just ignore lifetime attributes other than __weak and __unsafe_unretained 5855 // outside of ARC mode. 5856 if (!S.getLangOpts().ObjCAutoRefCount && 5857 lifetime != Qualifiers::OCL_Weak && 5858 lifetime != Qualifiers::OCL_ExplicitNone) { 5859 return true; 5860 } 5861 5862 SplitQualType underlyingType = type.split(); 5863 5864 // Check for redundant/conflicting ownership qualifiers. 5865 if (Qualifiers::ObjCLifetime previousLifetime 5866 = type.getQualifiers().getObjCLifetime()) { 5867 // If it's written directly, that's an error. 5868 if (hasDirectOwnershipQualifier(type)) { 5869 S.Diag(AttrLoc, diag::err_attr_objc_ownership_redundant) 5870 << type; 5871 return true; 5872 } 5873 5874 // Otherwise, if the qualifiers actually conflict, pull sugar off 5875 // and remove the ObjCLifetime qualifiers. 5876 if (previousLifetime != lifetime) { 5877 // It's possible to have multiple local ObjCLifetime qualifiers. We 5878 // can't stop after we reach a type that is directly qualified. 5879 const Type *prevTy = nullptr; 5880 while (!prevTy || prevTy != underlyingType.Ty) { 5881 prevTy = underlyingType.Ty; 5882 underlyingType = underlyingType.getSingleStepDesugaredType(); 5883 } 5884 underlyingType.Quals.removeObjCLifetime(); 5885 } 5886 } 5887 5888 underlyingType.Quals.addObjCLifetime(lifetime); 5889 5890 if (NonObjCPointer) { 5891 StringRef name = attr.getName()->getName(); 5892 switch (lifetime) { 5893 case Qualifiers::OCL_None: 5894 case Qualifiers::OCL_ExplicitNone: 5895 break; 5896 case Qualifiers::OCL_Strong: name = "__strong"; break; 5897 case Qualifiers::OCL_Weak: name = "__weak"; break; 5898 case Qualifiers::OCL_Autoreleasing: name = "__autoreleasing"; break; 5899 } 5900 S.Diag(AttrLoc, diag::warn_type_attribute_wrong_type) << name 5901 << TDS_ObjCObjOrBlock << type; 5902 } 5903 5904 // Don't actually add the __unsafe_unretained qualifier in non-ARC files, 5905 // because having both 'T' and '__unsafe_unretained T' exist in the type 5906 // system causes unfortunate widespread consistency problems. (For example, 5907 // they're not considered compatible types, and we mangle them identicially 5908 // as template arguments.) These problems are all individually fixable, 5909 // but it's easier to just not add the qualifier and instead sniff it out 5910 // in specific places using isObjCInertUnsafeUnretainedType(). 5911 // 5912 // Doing this does means we miss some trivial consistency checks that 5913 // would've triggered in ARC, but that's better than trying to solve all 5914 // the coexistence problems with __unsafe_unretained. 5915 if (!S.getLangOpts().ObjCAutoRefCount && 5916 lifetime == Qualifiers::OCL_ExplicitNone) { 5917 type = S.Context.getAttributedType( 5918 AttributedType::attr_objc_inert_unsafe_unretained, 5919 type, type); 5920 return true; 5921 } 5922 5923 QualType origType = type; 5924 if (!NonObjCPointer) 5925 type = S.Context.getQualifiedType(underlyingType); 5926 5927 // If we have a valid source location for the attribute, use an 5928 // AttributedType instead. 5929 if (AttrLoc.isValid()) 5930 type = S.Context.getAttributedType(AttributedType::attr_objc_ownership, 5931 origType, type); 5932 5933 auto diagnoseOrDelay = [](Sema &S, SourceLocation loc, 5934 unsigned diagnostic, QualType type) { 5935 if (S.DelayedDiagnostics.shouldDelayDiagnostics()) { 5936 S.DelayedDiagnostics.add( 5937 sema::DelayedDiagnostic::makeForbiddenType( 5938 S.getSourceManager().getExpansionLoc(loc), 5939 diagnostic, type, /*ignored*/ 0)); 5940 } else { 5941 S.Diag(loc, diagnostic); 5942 } 5943 }; 5944 5945 // Sometimes, __weak isn't allowed. 5946 if (lifetime == Qualifiers::OCL_Weak && 5947 !S.getLangOpts().ObjCWeak && !NonObjCPointer) { 5948 5949 // Use a specialized diagnostic if the runtime just doesn't support them. 5950 unsigned diagnostic = 5951 (S.getLangOpts().ObjCWeakRuntime ? diag::err_arc_weak_disabled 5952 : diag::err_arc_weak_no_runtime); 5953 5954 // In any case, delay the diagnostic until we know what we're parsing. 5955 diagnoseOrDelay(S, AttrLoc, diagnostic, type); 5956 5957 attr.setInvalid(); 5958 return true; 5959 } 5960 5961 // Forbid __weak for class objects marked as 5962 // objc_arc_weak_reference_unavailable 5963 if (lifetime == Qualifiers::OCL_Weak) { 5964 if (const ObjCObjectPointerType *ObjT = 5965 type->getAs<ObjCObjectPointerType>()) { 5966 if (ObjCInterfaceDecl *Class = ObjT->getInterfaceDecl()) { 5967 if (Class->isArcWeakrefUnavailable()) { 5968 S.Diag(AttrLoc, diag::err_arc_unsupported_weak_class); 5969 S.Diag(ObjT->getInterfaceDecl()->getLocation(), 5970 diag::note_class_declared); 5971 } 5972 } 5973 } 5974 } 5975 5976 return true; 5977 } 5978 5979 /// handleObjCGCTypeAttr - Process the __attribute__((objc_gc)) type 5980 /// attribute on the specified type. Returns true to indicate that 5981 /// the attribute was handled, false to indicate that the type does 5982 /// not permit the attribute. 5983 static bool handleObjCGCTypeAttr(TypeProcessingState &state, 5984 AttributeList &attr, 5985 QualType &type) { 5986 Sema &S = state.getSema(); 5987 5988 // Delay if this isn't some kind of pointer. 5989 if (!type->isPointerType() && 5990 !type->isObjCObjectPointerType() && 5991 !type->isBlockPointerType()) 5992 return false; 5993 5994 if (type.getObjCGCAttr() != Qualifiers::GCNone) { 5995 S.Diag(attr.getLoc(), diag::err_attribute_multiple_objc_gc); 5996 attr.setInvalid(); 5997 return true; 5998 } 5999 6000 // Check the attribute arguments. 6001 if (!attr.isArgIdent(0)) { 6002 S.Diag(attr.getLoc(), diag::err_attribute_argument_type) 6003 << attr.getName() << AANT_ArgumentString; 6004 attr.setInvalid(); 6005 return true; 6006 } 6007 Qualifiers::GC GCAttr; 6008 if (attr.getNumArgs() > 1) { 6009 S.Diag(attr.getLoc(), diag::err_attribute_wrong_number_arguments) 6010 << attr.getName() << 1; 6011 attr.setInvalid(); 6012 return true; 6013 } 6014 6015 IdentifierInfo *II = attr.getArgAsIdent(0)->Ident; 6016 if (II->isStr("weak")) 6017 GCAttr = Qualifiers::Weak; 6018 else if (II->isStr("strong")) 6019 GCAttr = Qualifiers::Strong; 6020 else { 6021 S.Diag(attr.getLoc(), diag::warn_attribute_type_not_supported) 6022 << attr.getName() << II; 6023 attr.setInvalid(); 6024 return true; 6025 } 6026 6027 QualType origType = type; 6028 type = S.Context.getObjCGCQualType(origType, GCAttr); 6029 6030 // Make an attributed type to preserve the source information. 6031 if (attr.getLoc().isValid()) 6032 type = S.Context.getAttributedType(AttributedType::attr_objc_gc, 6033 origType, type); 6034 6035 return true; 6036 } 6037 6038 namespace { 6039 /// A helper class to unwrap a type down to a function for the 6040 /// purposes of applying attributes there. 6041 /// 6042 /// Use: 6043 /// FunctionTypeUnwrapper unwrapped(SemaRef, T); 6044 /// if (unwrapped.isFunctionType()) { 6045 /// const FunctionType *fn = unwrapped.get(); 6046 /// // change fn somehow 6047 /// T = unwrapped.wrap(fn); 6048 /// } 6049 struct FunctionTypeUnwrapper { 6050 enum WrapKind { 6051 Desugar, 6052 Attributed, 6053 Parens, 6054 Pointer, 6055 BlockPointer, 6056 Reference, 6057 MemberPointer 6058 }; 6059 6060 QualType Original; 6061 const FunctionType *Fn; 6062 SmallVector<unsigned char /*WrapKind*/, 8> Stack; 6063 6064 FunctionTypeUnwrapper(Sema &S, QualType T) : Original(T) { 6065 while (true) { 6066 const Type *Ty = T.getTypePtr(); 6067 if (isa<FunctionType>(Ty)) { 6068 Fn = cast<FunctionType>(Ty); 6069 return; 6070 } else if (isa<ParenType>(Ty)) { 6071 T = cast<ParenType>(Ty)->getInnerType(); 6072 Stack.push_back(Parens); 6073 } else if (isa<PointerType>(Ty)) { 6074 T = cast<PointerType>(Ty)->getPointeeType(); 6075 Stack.push_back(Pointer); 6076 } else if (isa<BlockPointerType>(Ty)) { 6077 T = cast<BlockPointerType>(Ty)->getPointeeType(); 6078 Stack.push_back(BlockPointer); 6079 } else if (isa<MemberPointerType>(Ty)) { 6080 T = cast<MemberPointerType>(Ty)->getPointeeType(); 6081 Stack.push_back(MemberPointer); 6082 } else if (isa<ReferenceType>(Ty)) { 6083 T = cast<ReferenceType>(Ty)->getPointeeType(); 6084 Stack.push_back(Reference); 6085 } else if (isa<AttributedType>(Ty)) { 6086 T = cast<AttributedType>(Ty)->getEquivalentType(); 6087 Stack.push_back(Attributed); 6088 } else { 6089 const Type *DTy = Ty->getUnqualifiedDesugaredType(); 6090 if (Ty == DTy) { 6091 Fn = nullptr; 6092 return; 6093 } 6094 6095 T = QualType(DTy, 0); 6096 Stack.push_back(Desugar); 6097 } 6098 } 6099 } 6100 6101 bool isFunctionType() const { return (Fn != nullptr); } 6102 const FunctionType *get() const { return Fn; } 6103 6104 QualType wrap(Sema &S, const FunctionType *New) { 6105 // If T wasn't modified from the unwrapped type, do nothing. 6106 if (New == get()) return Original; 6107 6108 Fn = New; 6109 return wrap(S.Context, Original, 0); 6110 } 6111 6112 private: 6113 QualType wrap(ASTContext &C, QualType Old, unsigned I) { 6114 if (I == Stack.size()) 6115 return C.getQualifiedType(Fn, Old.getQualifiers()); 6116 6117 // Build up the inner type, applying the qualifiers from the old 6118 // type to the new type. 6119 SplitQualType SplitOld = Old.split(); 6120 6121 // As a special case, tail-recurse if there are no qualifiers. 6122 if (SplitOld.Quals.empty()) 6123 return wrap(C, SplitOld.Ty, I); 6124 return C.getQualifiedType(wrap(C, SplitOld.Ty, I), SplitOld.Quals); 6125 } 6126 6127 QualType wrap(ASTContext &C, const Type *Old, unsigned I) { 6128 if (I == Stack.size()) return QualType(Fn, 0); 6129 6130 switch (static_cast<WrapKind>(Stack[I++])) { 6131 case Desugar: 6132 // This is the point at which we potentially lose source 6133 // information. 6134 return wrap(C, Old->getUnqualifiedDesugaredType(), I); 6135 6136 case Attributed: 6137 return wrap(C, cast<AttributedType>(Old)->getEquivalentType(), I); 6138 6139 case Parens: { 6140 QualType New = wrap(C, cast<ParenType>(Old)->getInnerType(), I); 6141 return C.getParenType(New); 6142 } 6143 6144 case Pointer: { 6145 QualType New = wrap(C, cast<PointerType>(Old)->getPointeeType(), I); 6146 return C.getPointerType(New); 6147 } 6148 6149 case BlockPointer: { 6150 QualType New = wrap(C, cast<BlockPointerType>(Old)->getPointeeType(),I); 6151 return C.getBlockPointerType(New); 6152 } 6153 6154 case MemberPointer: { 6155 const MemberPointerType *OldMPT = cast<MemberPointerType>(Old); 6156 QualType New = wrap(C, OldMPT->getPointeeType(), I); 6157 return C.getMemberPointerType(New, OldMPT->getClass()); 6158 } 6159 6160 case Reference: { 6161 const ReferenceType *OldRef = cast<ReferenceType>(Old); 6162 QualType New = wrap(C, OldRef->getPointeeType(), I); 6163 if (isa<LValueReferenceType>(OldRef)) 6164 return C.getLValueReferenceType(New, OldRef->isSpelledAsLValue()); 6165 else 6166 return C.getRValueReferenceType(New); 6167 } 6168 } 6169 6170 llvm_unreachable("unknown wrapping kind"); 6171 } 6172 }; 6173 } // end anonymous namespace 6174 6175 static bool handleMSPointerTypeQualifierAttr(TypeProcessingState &State, 6176 AttributeList &Attr, 6177 QualType &Type) { 6178 Sema &S = State.getSema(); 6179 6180 AttributeList::Kind Kind = Attr.getKind(); 6181 QualType Desugared = Type; 6182 const AttributedType *AT = dyn_cast<AttributedType>(Type); 6183 while (AT) { 6184 AttributedType::Kind CurAttrKind = AT->getAttrKind(); 6185 6186 // You cannot specify duplicate type attributes, so if the attribute has 6187 // already been applied, flag it. 6188 if (getAttrListKind(CurAttrKind) == Kind) { 6189 S.Diag(Attr.getLoc(), diag::warn_duplicate_attribute_exact) 6190 << Attr.getName(); 6191 return true; 6192 } 6193 6194 // You cannot have both __sptr and __uptr on the same type, nor can you 6195 // have __ptr32 and __ptr64. 6196 if ((CurAttrKind == AttributedType::attr_ptr32 && 6197 Kind == AttributeList::AT_Ptr64) || 6198 (CurAttrKind == AttributedType::attr_ptr64 && 6199 Kind == AttributeList::AT_Ptr32)) { 6200 S.Diag(Attr.getLoc(), diag::err_attributes_are_not_compatible) 6201 << "'__ptr32'" << "'__ptr64'"; 6202 return true; 6203 } else if ((CurAttrKind == AttributedType::attr_sptr && 6204 Kind == AttributeList::AT_UPtr) || 6205 (CurAttrKind == AttributedType::attr_uptr && 6206 Kind == AttributeList::AT_SPtr)) { 6207 S.Diag(Attr.getLoc(), diag::err_attributes_are_not_compatible) 6208 << "'__sptr'" << "'__uptr'"; 6209 return true; 6210 } 6211 6212 Desugared = AT->getEquivalentType(); 6213 AT = dyn_cast<AttributedType>(Desugared); 6214 } 6215 6216 // Pointer type qualifiers can only operate on pointer types, but not 6217 // pointer-to-member types. 6218 if (!isa<PointerType>(Desugared)) { 6219 if (Type->isMemberPointerType()) 6220 S.Diag(Attr.getLoc(), diag::err_attribute_no_member_pointers) 6221 << Attr.getName(); 6222 else 6223 S.Diag(Attr.getLoc(), diag::err_attribute_pointers_only) 6224 << Attr.getName() << 0; 6225 return true; 6226 } 6227 6228 AttributedType::Kind TAK; 6229 switch (Kind) { 6230 default: llvm_unreachable("Unknown attribute kind"); 6231 case AttributeList::AT_Ptr32: TAK = AttributedType::attr_ptr32; break; 6232 case AttributeList::AT_Ptr64: TAK = AttributedType::attr_ptr64; break; 6233 case AttributeList::AT_SPtr: TAK = AttributedType::attr_sptr; break; 6234 case AttributeList::AT_UPtr: TAK = AttributedType::attr_uptr; break; 6235 } 6236 6237 Type = S.Context.getAttributedType(TAK, Type, Type); 6238 return false; 6239 } 6240 6241 bool Sema::checkNullabilityTypeSpecifier(QualType &type, 6242 NullabilityKind nullability, 6243 SourceLocation nullabilityLoc, 6244 bool isContextSensitive, 6245 bool allowOnArrayType) { 6246 recordNullabilitySeen(*this, nullabilityLoc); 6247 6248 // Check for existing nullability attributes on the type. 6249 QualType desugared = type; 6250 while (auto attributed = dyn_cast<AttributedType>(desugared.getTypePtr())) { 6251 // Check whether there is already a null 6252 if (auto existingNullability = attributed->getImmediateNullability()) { 6253 // Duplicated nullability. 6254 if (nullability == *existingNullability) { 6255 Diag(nullabilityLoc, diag::warn_nullability_duplicate) 6256 << DiagNullabilityKind(nullability, isContextSensitive) 6257 << FixItHint::CreateRemoval(nullabilityLoc); 6258 6259 break; 6260 } 6261 6262 // Conflicting nullability. 6263 Diag(nullabilityLoc, diag::err_nullability_conflicting) 6264 << DiagNullabilityKind(nullability, isContextSensitive) 6265 << DiagNullabilityKind(*existingNullability, false); 6266 return true; 6267 } 6268 6269 desugared = attributed->getModifiedType(); 6270 } 6271 6272 // If there is already a different nullability specifier, complain. 6273 // This (unlike the code above) looks through typedefs that might 6274 // have nullability specifiers on them, which means we cannot 6275 // provide a useful Fix-It. 6276 if (auto existingNullability = desugared->getNullability(Context)) { 6277 if (nullability != *existingNullability) { 6278 Diag(nullabilityLoc, diag::err_nullability_conflicting) 6279 << DiagNullabilityKind(nullability, isContextSensitive) 6280 << DiagNullabilityKind(*existingNullability, false); 6281 6282 // Try to find the typedef with the existing nullability specifier. 6283 if (auto typedefType = desugared->getAs<TypedefType>()) { 6284 TypedefNameDecl *typedefDecl = typedefType->getDecl(); 6285 QualType underlyingType = typedefDecl->getUnderlyingType(); 6286 if (auto typedefNullability 6287 = AttributedType::stripOuterNullability(underlyingType)) { 6288 if (*typedefNullability == *existingNullability) { 6289 Diag(typedefDecl->getLocation(), diag::note_nullability_here) 6290 << DiagNullabilityKind(*existingNullability, false); 6291 } 6292 } 6293 } 6294 6295 return true; 6296 } 6297 } 6298 6299 // If this definitely isn't a pointer type, reject the specifier. 6300 if (!desugared->canHaveNullability() && 6301 !(allowOnArrayType && desugared->isArrayType())) { 6302 Diag(nullabilityLoc, diag::err_nullability_nonpointer) 6303 << DiagNullabilityKind(nullability, isContextSensitive) << type; 6304 return true; 6305 } 6306 6307 // For the context-sensitive keywords/Objective-C property 6308 // attributes, require that the type be a single-level pointer. 6309 if (isContextSensitive) { 6310 // Make sure that the pointee isn't itself a pointer type. 6311 const Type *pointeeType; 6312 if (desugared->isArrayType()) 6313 pointeeType = desugared->getArrayElementTypeNoTypeQual(); 6314 else 6315 pointeeType = desugared->getPointeeType().getTypePtr(); 6316 6317 if (pointeeType->isAnyPointerType() || 6318 pointeeType->isObjCObjectPointerType() || 6319 pointeeType->isMemberPointerType()) { 6320 Diag(nullabilityLoc, diag::err_nullability_cs_multilevel) 6321 << DiagNullabilityKind(nullability, true) 6322 << type; 6323 Diag(nullabilityLoc, diag::note_nullability_type_specifier) 6324 << DiagNullabilityKind(nullability, false) 6325 << type 6326 << FixItHint::CreateReplacement(nullabilityLoc, 6327 getNullabilitySpelling(nullability)); 6328 return true; 6329 } 6330 } 6331 6332 // Form the attributed type. 6333 type = Context.getAttributedType( 6334 AttributedType::getNullabilityAttrKind(nullability), type, type); 6335 return false; 6336 } 6337 6338 bool Sema::checkObjCKindOfType(QualType &type, SourceLocation loc) { 6339 if (isa<ObjCTypeParamType>(type)) { 6340 // Build the attributed type to record where __kindof occurred. 6341 type = Context.getAttributedType(AttributedType::attr_objc_kindof, 6342 type, type); 6343 return false; 6344 } 6345 6346 // Find out if it's an Objective-C object or object pointer type; 6347 const ObjCObjectPointerType *ptrType = type->getAs<ObjCObjectPointerType>(); 6348 const ObjCObjectType *objType = ptrType ? ptrType->getObjectType() 6349 : type->getAs<ObjCObjectType>(); 6350 6351 // If not, we can't apply __kindof. 6352 if (!objType) { 6353 // FIXME: Handle dependent types that aren't yet object types. 6354 Diag(loc, diag::err_objc_kindof_nonobject) 6355 << type; 6356 return true; 6357 } 6358 6359 // Rebuild the "equivalent" type, which pushes __kindof down into 6360 // the object type. 6361 // There is no need to apply kindof on an unqualified id type. 6362 QualType equivType = Context.getObjCObjectType( 6363 objType->getBaseType(), objType->getTypeArgsAsWritten(), 6364 objType->getProtocols(), 6365 /*isKindOf=*/objType->isObjCUnqualifiedId() ? false : true); 6366 6367 // If we started with an object pointer type, rebuild it. 6368 if (ptrType) { 6369 equivType = Context.getObjCObjectPointerType(equivType); 6370 if (auto nullability = type->getNullability(Context)) { 6371 auto attrKind = AttributedType::getNullabilityAttrKind(*nullability); 6372 equivType = Context.getAttributedType(attrKind, equivType, equivType); 6373 } 6374 } 6375 6376 // Build the attributed type to record where __kindof occurred. 6377 type = Context.getAttributedType(AttributedType::attr_objc_kindof, 6378 type, 6379 equivType); 6380 6381 return false; 6382 } 6383 6384 /// Map a nullability attribute kind to a nullability kind. 6385 static NullabilityKind mapNullabilityAttrKind(AttributeList::Kind kind) { 6386 switch (kind) { 6387 case AttributeList::AT_TypeNonNull: 6388 return NullabilityKind::NonNull; 6389 6390 case AttributeList::AT_TypeNullable: 6391 return NullabilityKind::Nullable; 6392 6393 case AttributeList::AT_TypeNullUnspecified: 6394 return NullabilityKind::Unspecified; 6395 6396 default: 6397 llvm_unreachable("not a nullability attribute kind"); 6398 } 6399 } 6400 6401 /// Distribute a nullability type attribute that cannot be applied to 6402 /// the type specifier to a pointer, block pointer, or member pointer 6403 /// declarator, complaining if necessary. 6404 /// 6405 /// \returns true if the nullability annotation was distributed, false 6406 /// otherwise. 6407 static bool distributeNullabilityTypeAttr(TypeProcessingState &state, 6408 QualType type, 6409 AttributeList &attr) { 6410 Declarator &declarator = state.getDeclarator(); 6411 6412 /// Attempt to move the attribute to the specified chunk. 6413 auto moveToChunk = [&](DeclaratorChunk &chunk, bool inFunction) -> bool { 6414 // If there is already a nullability attribute there, don't add 6415 // one. 6416 if (hasNullabilityAttr(chunk.getAttrListRef())) 6417 return false; 6418 6419 // Complain about the nullability qualifier being in the wrong 6420 // place. 6421 enum { 6422 PK_Pointer, 6423 PK_BlockPointer, 6424 PK_MemberPointer, 6425 PK_FunctionPointer, 6426 PK_MemberFunctionPointer, 6427 } pointerKind 6428 = chunk.Kind == DeclaratorChunk::Pointer ? (inFunction ? PK_FunctionPointer 6429 : PK_Pointer) 6430 : chunk.Kind == DeclaratorChunk::BlockPointer ? PK_BlockPointer 6431 : inFunction? PK_MemberFunctionPointer : PK_MemberPointer; 6432 6433 auto diag = state.getSema().Diag(attr.getLoc(), 6434 diag::warn_nullability_declspec) 6435 << DiagNullabilityKind(mapNullabilityAttrKind(attr.getKind()), 6436 attr.isContextSensitiveKeywordAttribute()) 6437 << type 6438 << static_cast<unsigned>(pointerKind); 6439 6440 // FIXME: MemberPointer chunks don't carry the location of the *. 6441 if (chunk.Kind != DeclaratorChunk::MemberPointer) { 6442 diag << FixItHint::CreateRemoval(attr.getLoc()) 6443 << FixItHint::CreateInsertion( 6444 state.getSema().getPreprocessor() 6445 .getLocForEndOfToken(chunk.Loc), 6446 " " + attr.getName()->getName().str() + " "); 6447 } 6448 6449 moveAttrFromListToList(attr, state.getCurrentAttrListRef(), 6450 chunk.getAttrListRef()); 6451 return true; 6452 }; 6453 6454 // Move it to the outermost pointer, member pointer, or block 6455 // pointer declarator. 6456 for (unsigned i = state.getCurrentChunkIndex(); i != 0; --i) { 6457 DeclaratorChunk &chunk = declarator.getTypeObject(i-1); 6458 switch (chunk.Kind) { 6459 case DeclaratorChunk::Pointer: 6460 case DeclaratorChunk::BlockPointer: 6461 case DeclaratorChunk::MemberPointer: 6462 return moveToChunk(chunk, false); 6463 6464 case DeclaratorChunk::Paren: 6465 case DeclaratorChunk::Array: 6466 continue; 6467 6468 case DeclaratorChunk::Function: 6469 // Try to move past the return type to a function/block/member 6470 // function pointer. 6471 if (DeclaratorChunk *dest = maybeMovePastReturnType( 6472 declarator, i, 6473 /*onlyBlockPointers=*/false)) { 6474 return moveToChunk(*dest, true); 6475 } 6476 6477 return false; 6478 6479 // Don't walk through these. 6480 case DeclaratorChunk::Reference: 6481 case DeclaratorChunk::Pipe: 6482 return false; 6483 } 6484 } 6485 6486 return false; 6487 } 6488 6489 static AttributedType::Kind getCCTypeAttrKind(AttributeList &Attr) { 6490 assert(!Attr.isInvalid()); 6491 switch (Attr.getKind()) { 6492 default: 6493 llvm_unreachable("not a calling convention attribute"); 6494 case AttributeList::AT_CDecl: 6495 return AttributedType::attr_cdecl; 6496 case AttributeList::AT_FastCall: 6497 return AttributedType::attr_fastcall; 6498 case AttributeList::AT_StdCall: 6499 return AttributedType::attr_stdcall; 6500 case AttributeList::AT_ThisCall: 6501 return AttributedType::attr_thiscall; 6502 case AttributeList::AT_RegCall: 6503 return AttributedType::attr_regcall; 6504 case AttributeList::AT_Pascal: 6505 return AttributedType::attr_pascal; 6506 case AttributeList::AT_SwiftCall: 6507 return AttributedType::attr_swiftcall; 6508 case AttributeList::AT_VectorCall: 6509 return AttributedType::attr_vectorcall; 6510 case AttributeList::AT_Pcs: { 6511 // The attribute may have had a fixit applied where we treated an 6512 // identifier as a string literal. The contents of the string are valid, 6513 // but the form may not be. 6514 StringRef Str; 6515 if (Attr.isArgExpr(0)) 6516 Str = cast<StringLiteral>(Attr.getArgAsExpr(0))->getString(); 6517 else 6518 Str = Attr.getArgAsIdent(0)->Ident->getName(); 6519 return llvm::StringSwitch<AttributedType::Kind>(Str) 6520 .Case("aapcs", AttributedType::attr_pcs) 6521 .Case("aapcs-vfp", AttributedType::attr_pcs_vfp); 6522 } 6523 case AttributeList::AT_IntelOclBicc: 6524 return AttributedType::attr_inteloclbicc; 6525 case AttributeList::AT_MSABI: 6526 return AttributedType::attr_ms_abi; 6527 case AttributeList::AT_SysVABI: 6528 return AttributedType::attr_sysv_abi; 6529 case AttributeList::AT_PreserveMost: 6530 return AttributedType::attr_preserve_most; 6531 case AttributeList::AT_PreserveAll: 6532 return AttributedType::attr_preserve_all; 6533 } 6534 llvm_unreachable("unexpected attribute kind!"); 6535 } 6536 6537 /// Process an individual function attribute. Returns true to 6538 /// indicate that the attribute was handled, false if it wasn't. 6539 static bool handleFunctionTypeAttr(TypeProcessingState &state, 6540 AttributeList &attr, 6541 QualType &type) { 6542 Sema &S = state.getSema(); 6543 6544 FunctionTypeUnwrapper unwrapped(S, type); 6545 6546 if (attr.getKind() == AttributeList::AT_NoReturn) { 6547 if (S.CheckNoReturnAttr(attr)) 6548 return true; 6549 6550 // Delay if this is not a function type. 6551 if (!unwrapped.isFunctionType()) 6552 return false; 6553 6554 // Otherwise we can process right away. 6555 FunctionType::ExtInfo EI = unwrapped.get()->getExtInfo().withNoReturn(true); 6556 type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI)); 6557 return true; 6558 } 6559 6560 // ns_returns_retained is not always a type attribute, but if we got 6561 // here, we're treating it as one right now. 6562 if (attr.getKind() == AttributeList::AT_NSReturnsRetained) { 6563 if (attr.getNumArgs()) return true; 6564 6565 // Delay if this is not a function type. 6566 if (!unwrapped.isFunctionType()) 6567 return false; 6568 6569 // Check whether the return type is reasonable. 6570 if (S.checkNSReturnsRetainedReturnType(attr.getLoc(), 6571 unwrapped.get()->getReturnType())) 6572 return true; 6573 6574 // Only actually change the underlying type in ARC builds. 6575 QualType origType = type; 6576 if (state.getSema().getLangOpts().ObjCAutoRefCount) { 6577 FunctionType::ExtInfo EI 6578 = unwrapped.get()->getExtInfo().withProducesResult(true); 6579 type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI)); 6580 } 6581 type = S.Context.getAttributedType(AttributedType::attr_ns_returns_retained, 6582 origType, type); 6583 return true; 6584 } 6585 6586 if (attr.getKind() == AttributeList::AT_AnyX86NoCallerSavedRegisters) { 6587 if (S.CheckNoCallerSavedRegsAttr(attr)) 6588 return true; 6589 6590 // Delay if this is not a function type. 6591 if (!unwrapped.isFunctionType()) 6592 return false; 6593 6594 FunctionType::ExtInfo EI = 6595 unwrapped.get()->getExtInfo().withNoCallerSavedRegs(true); 6596 type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI)); 6597 return true; 6598 } 6599 6600 if (attr.getKind() == AttributeList::AT_Regparm) { 6601 unsigned value; 6602 if (S.CheckRegparmAttr(attr, value)) 6603 return true; 6604 6605 // Delay if this is not a function type. 6606 if (!unwrapped.isFunctionType()) 6607 return false; 6608 6609 // Diagnose regparm with fastcall. 6610 const FunctionType *fn = unwrapped.get(); 6611 CallingConv CC = fn->getCallConv(); 6612 if (CC == CC_X86FastCall) { 6613 S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible) 6614 << FunctionType::getNameForCallConv(CC) 6615 << "regparm"; 6616 attr.setInvalid(); 6617 return true; 6618 } 6619 6620 FunctionType::ExtInfo EI = 6621 unwrapped.get()->getExtInfo().withRegParm(value); 6622 type = unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI)); 6623 return true; 6624 } 6625 6626 // Delay if the type didn't work out to a function. 6627 if (!unwrapped.isFunctionType()) return false; 6628 6629 // Otherwise, a calling convention. 6630 CallingConv CC; 6631 if (S.CheckCallingConvAttr(attr, CC)) 6632 return true; 6633 6634 const FunctionType *fn = unwrapped.get(); 6635 CallingConv CCOld = fn->getCallConv(); 6636 AttributedType::Kind CCAttrKind = getCCTypeAttrKind(attr); 6637 6638 if (CCOld != CC) { 6639 // Error out on when there's already an attribute on the type 6640 // and the CCs don't match. 6641 const AttributedType *AT = S.getCallingConvAttributedType(type); 6642 if (AT && AT->getAttrKind() != CCAttrKind) { 6643 S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible) 6644 << FunctionType::getNameForCallConv(CC) 6645 << FunctionType::getNameForCallConv(CCOld); 6646 attr.setInvalid(); 6647 return true; 6648 } 6649 } 6650 6651 // Diagnose use of variadic functions with calling conventions that 6652 // don't support them (e.g. because they're callee-cleanup). 6653 // We delay warning about this on unprototyped function declarations 6654 // until after redeclaration checking, just in case we pick up a 6655 // prototype that way. And apparently we also "delay" warning about 6656 // unprototyped function types in general, despite not necessarily having 6657 // much ability to diagnose it later. 6658 if (!supportsVariadicCall(CC)) { 6659 const FunctionProtoType *FnP = dyn_cast<FunctionProtoType>(fn); 6660 if (FnP && FnP->isVariadic()) { 6661 unsigned DiagID = diag::err_cconv_varargs; 6662 6663 // stdcall and fastcall are ignored with a warning for GCC and MS 6664 // compatibility. 6665 bool IsInvalid = true; 6666 if (CC == CC_X86StdCall || CC == CC_X86FastCall) { 6667 DiagID = diag::warn_cconv_varargs; 6668 IsInvalid = false; 6669 } 6670 6671 S.Diag(attr.getLoc(), DiagID) << FunctionType::getNameForCallConv(CC); 6672 if (IsInvalid) attr.setInvalid(); 6673 return true; 6674 } 6675 } 6676 6677 // Also diagnose fastcall with regparm. 6678 if (CC == CC_X86FastCall && fn->getHasRegParm()) { 6679 S.Diag(attr.getLoc(), diag::err_attributes_are_not_compatible) 6680 << "regparm" << FunctionType::getNameForCallConv(CC_X86FastCall); 6681 attr.setInvalid(); 6682 return true; 6683 } 6684 6685 // Modify the CC from the wrapped function type, wrap it all back, and then 6686 // wrap the whole thing in an AttributedType as written. The modified type 6687 // might have a different CC if we ignored the attribute. 6688 QualType Equivalent; 6689 if (CCOld == CC) { 6690 Equivalent = type; 6691 } else { 6692 auto EI = unwrapped.get()->getExtInfo().withCallingConv(CC); 6693 Equivalent = 6694 unwrapped.wrap(S, S.Context.adjustFunctionType(unwrapped.get(), EI)); 6695 } 6696 type = S.Context.getAttributedType(CCAttrKind, type, Equivalent); 6697 return true; 6698 } 6699 6700 bool Sema::hasExplicitCallingConv(QualType &T) { 6701 QualType R = T.IgnoreParens(); 6702 while (const AttributedType *AT = dyn_cast<AttributedType>(R)) { 6703 if (AT->isCallingConv()) 6704 return true; 6705 R = AT->getModifiedType().IgnoreParens(); 6706 } 6707 return false; 6708 } 6709 6710 void Sema::adjustMemberFunctionCC(QualType &T, bool IsStatic, bool IsCtorOrDtor, 6711 SourceLocation Loc) { 6712 FunctionTypeUnwrapper Unwrapped(*this, T); 6713 const FunctionType *FT = Unwrapped.get(); 6714 bool IsVariadic = (isa<FunctionProtoType>(FT) && 6715 cast<FunctionProtoType>(FT)->isVariadic()); 6716 CallingConv CurCC = FT->getCallConv(); 6717 CallingConv ToCC = Context.getDefaultCallingConvention(IsVariadic, !IsStatic); 6718 6719 if (CurCC == ToCC) 6720 return; 6721 6722 // MS compiler ignores explicit calling convention attributes on structors. We 6723 // should do the same. 6724 if (Context.getTargetInfo().getCXXABI().isMicrosoft() && IsCtorOrDtor) { 6725 // Issue a warning on ignored calling convention -- except of __stdcall. 6726 // Again, this is what MS compiler does. 6727 if (CurCC != CC_X86StdCall) 6728 Diag(Loc, diag::warn_cconv_structors) 6729 << FunctionType::getNameForCallConv(CurCC); 6730 // Default adjustment. 6731 } else { 6732 // Only adjust types with the default convention. For example, on Windows 6733 // we should adjust a __cdecl type to __thiscall for instance methods, and a 6734 // __thiscall type to __cdecl for static methods. 6735 CallingConv DefaultCC = 6736 Context.getDefaultCallingConvention(IsVariadic, IsStatic); 6737 6738 if (CurCC != DefaultCC || DefaultCC == ToCC) 6739 return; 6740 6741 if (hasExplicitCallingConv(T)) 6742 return; 6743 } 6744 6745 FT = Context.adjustFunctionType(FT, FT->getExtInfo().withCallingConv(ToCC)); 6746 QualType Wrapped = Unwrapped.wrap(*this, FT); 6747 T = Context.getAdjustedType(T, Wrapped); 6748 } 6749 6750 /// HandleVectorSizeAttribute - this attribute is only applicable to integral 6751 /// and float scalars, although arrays, pointers, and function return values are 6752 /// allowed in conjunction with this construct. Aggregates with this attribute 6753 /// are invalid, even if they are of the same size as a corresponding scalar. 6754 /// The raw attribute should contain precisely 1 argument, the vector size for 6755 /// the variable, measured in bytes. If curType and rawAttr are well formed, 6756 /// this routine will return a new vector type. 6757 static void HandleVectorSizeAttr(QualType& CurType, const AttributeList &Attr, 6758 Sema &S) { 6759 // Check the attribute arguments. 6760 if (Attr.getNumArgs() != 1) { 6761 S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) 6762 << Attr.getName() << 1; 6763 Attr.setInvalid(); 6764 return; 6765 } 6766 Expr *sizeExpr = static_cast<Expr *>(Attr.getArgAsExpr(0)); 6767 llvm::APSInt vecSize(32); 6768 if (sizeExpr->isTypeDependent() || sizeExpr->isValueDependent() || 6769 !sizeExpr->isIntegerConstantExpr(vecSize, S.Context)) { 6770 S.Diag(Attr.getLoc(), diag::err_attribute_argument_type) 6771 << Attr.getName() << AANT_ArgumentIntegerConstant 6772 << sizeExpr->getSourceRange(); 6773 Attr.setInvalid(); 6774 return; 6775 } 6776 // The base type must be integer (not Boolean or enumeration) or float, and 6777 // can't already be a vector. 6778 if (!CurType->isBuiltinType() || CurType->isBooleanType() || 6779 (!CurType->isIntegerType() && !CurType->isRealFloatingType())) { 6780 S.Diag(Attr.getLoc(), diag::err_attribute_invalid_vector_type) << CurType; 6781 Attr.setInvalid(); 6782 return; 6783 } 6784 unsigned typeSize = static_cast<unsigned>(S.Context.getTypeSize(CurType)); 6785 // vecSize is specified in bytes - convert to bits. 6786 unsigned vectorSize = static_cast<unsigned>(vecSize.getZExtValue() * 8); 6787 6788 // the vector size needs to be an integral multiple of the type size. 6789 if (vectorSize % typeSize) { 6790 S.Diag(Attr.getLoc(), diag::err_attribute_invalid_size) 6791 << sizeExpr->getSourceRange(); 6792 Attr.setInvalid(); 6793 return; 6794 } 6795 if (VectorType::isVectorSizeTooLarge(vectorSize / typeSize)) { 6796 S.Diag(Attr.getLoc(), diag::err_attribute_size_too_large) 6797 << sizeExpr->getSourceRange(); 6798 Attr.setInvalid(); 6799 return; 6800 } 6801 if (vectorSize == 0) { 6802 S.Diag(Attr.getLoc(), diag::err_attribute_zero_size) 6803 << sizeExpr->getSourceRange(); 6804 Attr.setInvalid(); 6805 return; 6806 } 6807 6808 // Success! Instantiate the vector type, the number of elements is > 0, and 6809 // not required to be a power of 2, unlike GCC. 6810 CurType = S.Context.getVectorType(CurType, vectorSize/typeSize, 6811 VectorType::GenericVector); 6812 } 6813 6814 /// \brief Process the OpenCL-like ext_vector_type attribute when it occurs on 6815 /// a type. 6816 static void HandleExtVectorTypeAttr(QualType &CurType, 6817 const AttributeList &Attr, 6818 Sema &S) { 6819 // check the attribute arguments. 6820 if (Attr.getNumArgs() != 1) { 6821 S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) 6822 << Attr.getName() << 1; 6823 return; 6824 } 6825 6826 Expr *sizeExpr; 6827 6828 // Special case where the argument is a template id. 6829 if (Attr.isArgIdent(0)) { 6830 CXXScopeSpec SS; 6831 SourceLocation TemplateKWLoc; 6832 UnqualifiedId id; 6833 id.setIdentifier(Attr.getArgAsIdent(0)->Ident, Attr.getLoc()); 6834 6835 ExprResult Size = S.ActOnIdExpression(S.getCurScope(), SS, TemplateKWLoc, 6836 id, false, false); 6837 if (Size.isInvalid()) 6838 return; 6839 6840 sizeExpr = Size.get(); 6841 } else { 6842 sizeExpr = Attr.getArgAsExpr(0); 6843 } 6844 6845 // Create the vector type. 6846 QualType T = S.BuildExtVectorType(CurType, sizeExpr, Attr.getLoc()); 6847 if (!T.isNull()) 6848 CurType = T; 6849 } 6850 6851 static bool isPermittedNeonBaseType(QualType &Ty, 6852 VectorType::VectorKind VecKind, Sema &S) { 6853 const BuiltinType *BTy = Ty->getAs<BuiltinType>(); 6854 if (!BTy) 6855 return false; 6856 6857 llvm::Triple Triple = S.Context.getTargetInfo().getTriple(); 6858 6859 // Signed poly is mathematically wrong, but has been baked into some ABIs by 6860 // now. 6861 bool IsPolyUnsigned = Triple.getArch() == llvm::Triple::aarch64 || 6862 Triple.getArch() == llvm::Triple::aarch64_be; 6863 if (VecKind == VectorType::NeonPolyVector) { 6864 if (IsPolyUnsigned) { 6865 // AArch64 polynomial vectors are unsigned and support poly64. 6866 return BTy->getKind() == BuiltinType::UChar || 6867 BTy->getKind() == BuiltinType::UShort || 6868 BTy->getKind() == BuiltinType::ULong || 6869 BTy->getKind() == BuiltinType::ULongLong; 6870 } else { 6871 // AArch32 polynomial vector are signed. 6872 return BTy->getKind() == BuiltinType::SChar || 6873 BTy->getKind() == BuiltinType::Short; 6874 } 6875 } 6876 6877 // Non-polynomial vector types: the usual suspects are allowed, as well as 6878 // float64_t on AArch64. 6879 bool Is64Bit = Triple.getArch() == llvm::Triple::aarch64 || 6880 Triple.getArch() == llvm::Triple::aarch64_be; 6881 6882 if (Is64Bit && BTy->getKind() == BuiltinType::Double) 6883 return true; 6884 6885 return BTy->getKind() == BuiltinType::SChar || 6886 BTy->getKind() == BuiltinType::UChar || 6887 BTy->getKind() == BuiltinType::Short || 6888 BTy->getKind() == BuiltinType::UShort || 6889 BTy->getKind() == BuiltinType::Int || 6890 BTy->getKind() == BuiltinType::UInt || 6891 BTy->getKind() == BuiltinType::Long || 6892 BTy->getKind() == BuiltinType::ULong || 6893 BTy->getKind() == BuiltinType::LongLong || 6894 BTy->getKind() == BuiltinType::ULongLong || 6895 BTy->getKind() == BuiltinType::Float || 6896 BTy->getKind() == BuiltinType::Half; 6897 } 6898 6899 /// HandleNeonVectorTypeAttr - The "neon_vector_type" and 6900 /// "neon_polyvector_type" attributes are used to create vector types that 6901 /// are mangled according to ARM's ABI. Otherwise, these types are identical 6902 /// to those created with the "vector_size" attribute. Unlike "vector_size" 6903 /// the argument to these Neon attributes is the number of vector elements, 6904 /// not the vector size in bytes. The vector width and element type must 6905 /// match one of the standard Neon vector types. 6906 static void HandleNeonVectorTypeAttr(QualType& CurType, 6907 const AttributeList &Attr, Sema &S, 6908 VectorType::VectorKind VecKind) { 6909 // Target must have NEON 6910 if (!S.Context.getTargetInfo().hasFeature("neon")) { 6911 S.Diag(Attr.getLoc(), diag::err_attribute_unsupported) << Attr.getName(); 6912 Attr.setInvalid(); 6913 return; 6914 } 6915 // Check the attribute arguments. 6916 if (Attr.getNumArgs() != 1) { 6917 S.Diag(Attr.getLoc(), diag::err_attribute_wrong_number_arguments) 6918 << Attr.getName() << 1; 6919 Attr.setInvalid(); 6920 return; 6921 } 6922 // The number of elements must be an ICE. 6923 Expr *numEltsExpr = static_cast<Expr *>(Attr.getArgAsExpr(0)); 6924 llvm::APSInt numEltsInt(32); 6925 if (numEltsExpr->isTypeDependent() || numEltsExpr->isValueDependent() || 6926 !numEltsExpr->isIntegerConstantExpr(numEltsInt, S.Context)) { 6927 S.Diag(Attr.getLoc(), diag::err_attribute_argument_type) 6928 << Attr.getName() << AANT_ArgumentIntegerConstant 6929 << numEltsExpr->getSourceRange(); 6930 Attr.setInvalid(); 6931 return; 6932 } 6933 // Only certain element types are supported for Neon vectors. 6934 if (!isPermittedNeonBaseType(CurType, VecKind, S)) { 6935 S.Diag(Attr.getLoc(), diag::err_attribute_invalid_vector_type) << CurType; 6936 Attr.setInvalid(); 6937 return; 6938 } 6939 6940 // The total size of the vector must be 64 or 128 bits. 6941 unsigned typeSize = static_cast<unsigned>(S.Context.getTypeSize(CurType)); 6942 unsigned numElts = static_cast<unsigned>(numEltsInt.getZExtValue()); 6943 unsigned vecSize = typeSize * numElts; 6944 if (vecSize != 64 && vecSize != 128) { 6945 S.Diag(Attr.getLoc(), diag::err_attribute_bad_neon_vector_size) << CurType; 6946 Attr.setInvalid(); 6947 return; 6948 } 6949 6950 CurType = S.Context.getVectorType(CurType, numElts, VecKind); 6951 } 6952 6953 /// Handle OpenCL Access Qualifier Attribute. 6954 static void HandleOpenCLAccessAttr(QualType &CurType, const AttributeList &Attr, 6955 Sema &S) { 6956 // OpenCL v2.0 s6.6 - Access qualifier can be used only for image and pipe type. 6957 if (!(CurType->isImageType() || CurType->isPipeType())) { 6958 S.Diag(Attr.getLoc(), diag::err_opencl_invalid_access_qualifier); 6959 Attr.setInvalid(); 6960 return; 6961 } 6962 6963 if (const TypedefType* TypedefTy = CurType->getAs<TypedefType>()) { 6964 QualType PointeeTy = TypedefTy->desugar(); 6965 S.Diag(Attr.getLoc(), diag::err_opencl_multiple_access_qualifiers); 6966 6967 std::string PrevAccessQual; 6968 switch (cast<BuiltinType>(PointeeTy.getTypePtr())->getKind()) { 6969 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \ 6970 case BuiltinType::Id: \ 6971 PrevAccessQual = #Access; \ 6972 break; 6973 #include "clang/Basic/OpenCLImageTypes.def" 6974 default: 6975 assert(0 && "Unable to find corresponding image type."); 6976 } 6977 6978 S.Diag(TypedefTy->getDecl()->getLocStart(), 6979 diag::note_opencl_typedef_access_qualifier) << PrevAccessQual; 6980 } else if (CurType->isPipeType()) { 6981 if (Attr.getSemanticSpelling() == OpenCLAccessAttr::Keyword_write_only) { 6982 QualType ElemType = CurType->getAs<PipeType>()->getElementType(); 6983 CurType = S.Context.getWritePipeType(ElemType); 6984 } 6985 } 6986 } 6987 6988 static void processTypeAttrs(TypeProcessingState &state, QualType &type, 6989 TypeAttrLocation TAL, AttributeList *attrs) { 6990 // Scan through and apply attributes to this type where it makes sense. Some 6991 // attributes (such as __address_space__, __vector_size__, etc) apply to the 6992 // type, but others can be present in the type specifiers even though they 6993 // apply to the decl. Here we apply type attributes and ignore the rest. 6994 6995 bool hasOpenCLAddressSpace = false; 6996 while (attrs) { 6997 AttributeList &attr = *attrs; 6998 attrs = attr.getNext(); // reset to the next here due to early loop continue 6999 // stmts 7000 7001 // Skip attributes that were marked to be invalid. 7002 if (attr.isInvalid()) 7003 continue; 7004 7005 if (attr.isCXX11Attribute()) { 7006 // [[gnu::...]] attributes are treated as declaration attributes, so may 7007 // not appertain to a DeclaratorChunk, even if we handle them as type 7008 // attributes. 7009 if (attr.getScopeName() && attr.getScopeName()->isStr("gnu")) { 7010 if (TAL == TAL_DeclChunk) { 7011 state.getSema().Diag(attr.getLoc(), 7012 diag::warn_cxx11_gnu_attribute_on_type) 7013 << attr.getName(); 7014 continue; 7015 } 7016 } else if (TAL != TAL_DeclChunk) { 7017 // Otherwise, only consider type processing for a C++11 attribute if 7018 // it's actually been applied to a type. 7019 continue; 7020 } 7021 } 7022 7023 // If this is an attribute we can handle, do so now, 7024 // otherwise, add it to the FnAttrs list for rechaining. 7025 switch (attr.getKind()) { 7026 default: 7027 // A C++11 attribute on a declarator chunk must appertain to a type. 7028 if (attr.isCXX11Attribute() && TAL == TAL_DeclChunk) { 7029 state.getSema().Diag(attr.getLoc(), diag::err_attribute_not_type_attr) 7030 << attr.getName(); 7031 attr.setUsedAsTypeAttr(); 7032 } 7033 break; 7034 7035 case AttributeList::UnknownAttribute: 7036 if (attr.isCXX11Attribute() && TAL == TAL_DeclChunk) 7037 state.getSema().Diag(attr.getLoc(), 7038 diag::warn_unknown_attribute_ignored) 7039 << attr.getName(); 7040 break; 7041 7042 case AttributeList::IgnoredAttribute: 7043 break; 7044 7045 case AttributeList::AT_MayAlias: 7046 // FIXME: This attribute needs to actually be handled, but if we ignore 7047 // it it breaks large amounts of Linux software. 7048 attr.setUsedAsTypeAttr(); 7049 break; 7050 case AttributeList::AT_OpenCLPrivateAddressSpace: 7051 case AttributeList::AT_OpenCLGlobalAddressSpace: 7052 case AttributeList::AT_OpenCLLocalAddressSpace: 7053 case AttributeList::AT_OpenCLConstantAddressSpace: 7054 case AttributeList::AT_OpenCLGenericAddressSpace: 7055 case AttributeList::AT_AddressSpace: 7056 HandleAddressSpaceTypeAttribute(type, attr, state.getSema()); 7057 attr.setUsedAsTypeAttr(); 7058 hasOpenCLAddressSpace = true; 7059 break; 7060 OBJC_POINTER_TYPE_ATTRS_CASELIST: 7061 if (!handleObjCPointerTypeAttr(state, attr, type)) 7062 distributeObjCPointerTypeAttr(state, attr, type); 7063 attr.setUsedAsTypeAttr(); 7064 break; 7065 case AttributeList::AT_VectorSize: 7066 HandleVectorSizeAttr(type, attr, state.getSema()); 7067 attr.setUsedAsTypeAttr(); 7068 break; 7069 case AttributeList::AT_ExtVectorType: 7070 HandleExtVectorTypeAttr(type, attr, state.getSema()); 7071 attr.setUsedAsTypeAttr(); 7072 break; 7073 case AttributeList::AT_NeonVectorType: 7074 HandleNeonVectorTypeAttr(type, attr, state.getSema(), 7075 VectorType::NeonVector); 7076 attr.setUsedAsTypeAttr(); 7077 break; 7078 case AttributeList::AT_NeonPolyVectorType: 7079 HandleNeonVectorTypeAttr(type, attr, state.getSema(), 7080 VectorType::NeonPolyVector); 7081 attr.setUsedAsTypeAttr(); 7082 break; 7083 case AttributeList::AT_OpenCLAccess: 7084 HandleOpenCLAccessAttr(type, attr, state.getSema()); 7085 attr.setUsedAsTypeAttr(); 7086 break; 7087 7088 MS_TYPE_ATTRS_CASELIST: 7089 if (!handleMSPointerTypeQualifierAttr(state, attr, type)) 7090 attr.setUsedAsTypeAttr(); 7091 break; 7092 7093 7094 NULLABILITY_TYPE_ATTRS_CASELIST: 7095 // Either add nullability here or try to distribute it. We 7096 // don't want to distribute the nullability specifier past any 7097 // dependent type, because that complicates the user model. 7098 if (type->canHaveNullability() || type->isDependentType() || 7099 type->isArrayType() || 7100 !distributeNullabilityTypeAttr(state, type, attr)) { 7101 unsigned endIndex; 7102 if (TAL == TAL_DeclChunk) 7103 endIndex = state.getCurrentChunkIndex(); 7104 else 7105 endIndex = state.getDeclarator().getNumTypeObjects(); 7106 bool allowOnArrayType = 7107 state.getDeclarator().isPrototypeContext() && 7108 !hasOuterPointerLikeChunk(state.getDeclarator(), endIndex); 7109 if (state.getSema().checkNullabilityTypeSpecifier( 7110 type, 7111 mapNullabilityAttrKind(attr.getKind()), 7112 attr.getLoc(), 7113 attr.isContextSensitiveKeywordAttribute(), 7114 allowOnArrayType)) { 7115 attr.setInvalid(); 7116 } 7117 7118 attr.setUsedAsTypeAttr(); 7119 } 7120 break; 7121 7122 case AttributeList::AT_ObjCKindOf: 7123 // '__kindof' must be part of the decl-specifiers. 7124 switch (TAL) { 7125 case TAL_DeclSpec: 7126 break; 7127 7128 case TAL_DeclChunk: 7129 case TAL_DeclName: 7130 state.getSema().Diag(attr.getLoc(), 7131 diag::err_objc_kindof_wrong_position) 7132 << FixItHint::CreateRemoval(attr.getLoc()) 7133 << FixItHint::CreateInsertion( 7134 state.getDeclarator().getDeclSpec().getLocStart(), "__kindof "); 7135 break; 7136 } 7137 7138 // Apply it regardless. 7139 if (state.getSema().checkObjCKindOfType(type, attr.getLoc())) 7140 attr.setInvalid(); 7141 attr.setUsedAsTypeAttr(); 7142 break; 7143 7144 FUNCTION_TYPE_ATTRS_CASELIST: 7145 attr.setUsedAsTypeAttr(); 7146 7147 // Never process function type attributes as part of the 7148 // declaration-specifiers. 7149 if (TAL == TAL_DeclSpec) 7150 distributeFunctionTypeAttrFromDeclSpec(state, attr, type); 7151 7152 // Otherwise, handle the possible delays. 7153 else if (!handleFunctionTypeAttr(state, attr, type)) 7154 distributeFunctionTypeAttr(state, attr, type); 7155 break; 7156 } 7157 } 7158 7159 // If address space is not set, OpenCL 2.0 defines non private default 7160 // address spaces for some cases: 7161 // OpenCL 2.0, section 6.5: 7162 // The address space for a variable at program scope or a static variable 7163 // inside a function can either be __global or __constant, but defaults to 7164 // __global if not specified. 7165 // (...) 7166 // Pointers that are declared without pointing to a named address space point 7167 // to the generic address space. 7168 if (state.getSema().getLangOpts().OpenCLVersion >= 200 && 7169 !hasOpenCLAddressSpace && type.getAddressSpace() == 0 && 7170 (TAL == TAL_DeclSpec || TAL == TAL_DeclChunk)) { 7171 Declarator &D = state.getDeclarator(); 7172 if (state.getCurrentChunkIndex() > 0 && 7173 (D.getTypeObject(state.getCurrentChunkIndex() - 1).Kind == 7174 DeclaratorChunk::Pointer || 7175 D.getTypeObject(state.getCurrentChunkIndex() - 1).Kind == 7176 DeclaratorChunk::BlockPointer)) { 7177 type = state.getSema().Context.getAddrSpaceQualType( 7178 type, LangAS::opencl_generic); 7179 } else if (state.getCurrentChunkIndex() == 0 && 7180 D.getContext() == Declarator::FileContext && 7181 !D.isFunctionDeclarator() && !D.isFunctionDefinition() && 7182 D.getDeclSpec().getStorageClassSpec() != DeclSpec::SCS_typedef && 7183 !type->isSamplerT()) 7184 type = state.getSema().Context.getAddrSpaceQualType( 7185 type, LangAS::opencl_global); 7186 else if (state.getCurrentChunkIndex() == 0 && 7187 D.getContext() == Declarator::BlockContext && 7188 D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_static) 7189 type = state.getSema().Context.getAddrSpaceQualType( 7190 type, LangAS::opencl_global); 7191 } 7192 } 7193 7194 void Sema::completeExprArrayBound(Expr *E) { 7195 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E->IgnoreParens())) { 7196 if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) { 7197 if (isTemplateInstantiation(Var->getTemplateSpecializationKind())) { 7198 SourceLocation PointOfInstantiation = E->getExprLoc(); 7199 7200 if (MemberSpecializationInfo *MSInfo = 7201 Var->getMemberSpecializationInfo()) { 7202 // If we don't already have a point of instantiation, this is it. 7203 if (MSInfo->getPointOfInstantiation().isInvalid()) { 7204 MSInfo->setPointOfInstantiation(PointOfInstantiation); 7205 7206 // This is a modification of an existing AST node. Notify 7207 // listeners. 7208 if (ASTMutationListener *L = getASTMutationListener()) 7209 L->StaticDataMemberInstantiated(Var); 7210 } 7211 } else { 7212 VarTemplateSpecializationDecl *VarSpec = 7213 cast<VarTemplateSpecializationDecl>(Var); 7214 if (VarSpec->getPointOfInstantiation().isInvalid()) 7215 VarSpec->setPointOfInstantiation(PointOfInstantiation); 7216 } 7217 7218 InstantiateVariableDefinition(PointOfInstantiation, Var); 7219 7220 // Update the type to the newly instantiated definition's type both 7221 // here and within the expression. 7222 if (VarDecl *Def = Var->getDefinition()) { 7223 DRE->setDecl(Def); 7224 QualType T = Def->getType(); 7225 DRE->setType(T); 7226 // FIXME: Update the type on all intervening expressions. 7227 E->setType(T); 7228 } 7229 7230 // We still go on to try to complete the type independently, as it 7231 // may also require instantiations or diagnostics if it remains 7232 // incomplete. 7233 } 7234 } 7235 } 7236 } 7237 7238 /// \brief Ensure that the type of the given expression is complete. 7239 /// 7240 /// This routine checks whether the expression \p E has a complete type. If the 7241 /// expression refers to an instantiable construct, that instantiation is 7242 /// performed as needed to complete its type. Furthermore 7243 /// Sema::RequireCompleteType is called for the expression's type (or in the 7244 /// case of a reference type, the referred-to type). 7245 /// 7246 /// \param E The expression whose type is required to be complete. 7247 /// \param Diagnoser The object that will emit a diagnostic if the type is 7248 /// incomplete. 7249 /// 7250 /// \returns \c true if the type of \p E is incomplete and diagnosed, \c false 7251 /// otherwise. 7252 bool Sema::RequireCompleteExprType(Expr *E, TypeDiagnoser &Diagnoser) { 7253 QualType T = E->getType(); 7254 7255 // Incomplete array types may be completed by the initializer attached to 7256 // their definitions. For static data members of class templates and for 7257 // variable templates, we need to instantiate the definition to get this 7258 // initializer and complete the type. 7259 if (T->isIncompleteArrayType()) { 7260 completeExprArrayBound(E); 7261 T = E->getType(); 7262 } 7263 7264 // FIXME: Are there other cases which require instantiating something other 7265 // than the type to complete the type of an expression? 7266 7267 return RequireCompleteType(E->getExprLoc(), T, Diagnoser); 7268 } 7269 7270 bool Sema::RequireCompleteExprType(Expr *E, unsigned DiagID) { 7271 BoundTypeDiagnoser<> Diagnoser(DiagID); 7272 return RequireCompleteExprType(E, Diagnoser); 7273 } 7274 7275 /// @brief Ensure that the type T is a complete type. 7276 /// 7277 /// This routine checks whether the type @p T is complete in any 7278 /// context where a complete type is required. If @p T is a complete 7279 /// type, returns false. If @p T is a class template specialization, 7280 /// this routine then attempts to perform class template 7281 /// instantiation. If instantiation fails, or if @p T is incomplete 7282 /// and cannot be completed, issues the diagnostic @p diag (giving it 7283 /// the type @p T) and returns true. 7284 /// 7285 /// @param Loc The location in the source that the incomplete type 7286 /// diagnostic should refer to. 7287 /// 7288 /// @param T The type that this routine is examining for completeness. 7289 /// 7290 /// @returns @c true if @p T is incomplete and a diagnostic was emitted, 7291 /// @c false otherwise. 7292 bool Sema::RequireCompleteType(SourceLocation Loc, QualType T, 7293 TypeDiagnoser &Diagnoser) { 7294 if (RequireCompleteTypeImpl(Loc, T, &Diagnoser)) 7295 return true; 7296 if (const TagType *Tag = T->getAs<TagType>()) { 7297 if (!Tag->getDecl()->isCompleteDefinitionRequired()) { 7298 Tag->getDecl()->setCompleteDefinitionRequired(); 7299 Consumer.HandleTagDeclRequiredDefinition(Tag->getDecl()); 7300 } 7301 } 7302 return false; 7303 } 7304 7305 bool Sema::hasStructuralCompatLayout(Decl *D, Decl *Suggested) { 7306 llvm::DenseSet<std::pair<Decl *, Decl *>> NonEquivalentDecls; 7307 if (!Suggested) 7308 return false; 7309 7310 // FIXME: Add a specific mode for C11 6.2.7/1 in StructuralEquivalenceContext 7311 // and isolate from other C++ specific checks. 7312 StructuralEquivalenceContext Ctx( 7313 D->getASTContext(), Suggested->getASTContext(), NonEquivalentDecls, 7314 false /*StrictTypeSpelling*/, true /*Complain*/, 7315 true /*ErrorOnTagTypeMismatch*/); 7316 return Ctx.IsStructurallyEquivalent(D, Suggested); 7317 } 7318 7319 /// \brief Determine whether there is any declaration of \p D that was ever a 7320 /// definition (perhaps before module merging) and is currently visible. 7321 /// \param D The definition of the entity. 7322 /// \param Suggested Filled in with the declaration that should be made visible 7323 /// in order to provide a definition of this entity. 7324 /// \param OnlyNeedComplete If \c true, we only need the type to be complete, 7325 /// not defined. This only matters for enums with a fixed underlying 7326 /// type, since in all other cases, a type is complete if and only if it 7327 /// is defined. 7328 bool Sema::hasVisibleDefinition(NamedDecl *D, NamedDecl **Suggested, 7329 bool OnlyNeedComplete) { 7330 // Easy case: if we don't have modules, all declarations are visible. 7331 if (!getLangOpts().Modules && !getLangOpts().ModulesLocalVisibility) 7332 return true; 7333 7334 // If this definition was instantiated from a template, map back to the 7335 // pattern from which it was instantiated. 7336 if (isa<TagDecl>(D) && cast<TagDecl>(D)->isBeingDefined()) { 7337 // We're in the middle of defining it; this definition should be treated 7338 // as visible. 7339 return true; 7340 } else if (auto *RD = dyn_cast<CXXRecordDecl>(D)) { 7341 if (auto *Pattern = RD->getTemplateInstantiationPattern()) 7342 RD = Pattern; 7343 D = RD->getDefinition(); 7344 } else if (auto *ED = dyn_cast<EnumDecl>(D)) { 7345 if (auto *Pattern = ED->getTemplateInstantiationPattern()) 7346 ED = Pattern; 7347 if (OnlyNeedComplete && ED->isFixed()) { 7348 // If the enum has a fixed underlying type, and we're only looking for a 7349 // complete type (not a definition), any visible declaration of it will 7350 // do. 7351 *Suggested = nullptr; 7352 for (auto *Redecl : ED->redecls()) { 7353 if (isVisible(Redecl)) 7354 return true; 7355 if (Redecl->isThisDeclarationADefinition() || 7356 (Redecl->isCanonicalDecl() && !*Suggested)) 7357 *Suggested = Redecl; 7358 } 7359 return false; 7360 } 7361 D = ED->getDefinition(); 7362 } else if (auto *FD = dyn_cast<FunctionDecl>(D)) { 7363 if (auto *Pattern = FD->getTemplateInstantiationPattern()) 7364 FD = Pattern; 7365 D = FD->getDefinition(); 7366 } else if (auto *VD = dyn_cast<VarDecl>(D)) { 7367 if (auto *Pattern = VD->getTemplateInstantiationPattern()) 7368 VD = Pattern; 7369 D = VD->getDefinition(); 7370 } 7371 assert(D && "missing definition for pattern of instantiated definition"); 7372 7373 *Suggested = D; 7374 if (isVisible(D)) 7375 return true; 7376 7377 // The external source may have additional definitions of this entity that are 7378 // visible, so complete the redeclaration chain now and ask again. 7379 if (auto *Source = Context.getExternalSource()) { 7380 Source->CompleteRedeclChain(D); 7381 return isVisible(D); 7382 } 7383 7384 return false; 7385 } 7386 7387 /// Locks in the inheritance model for the given class and all of its bases. 7388 static void assignInheritanceModel(Sema &S, CXXRecordDecl *RD) { 7389 RD = RD->getMostRecentDecl(); 7390 if (!RD->hasAttr<MSInheritanceAttr>()) { 7391 MSInheritanceAttr::Spelling IM; 7392 7393 switch (S.MSPointerToMemberRepresentationMethod) { 7394 case LangOptions::PPTMK_BestCase: 7395 IM = RD->calculateInheritanceModel(); 7396 break; 7397 case LangOptions::PPTMK_FullGeneralitySingleInheritance: 7398 IM = MSInheritanceAttr::Keyword_single_inheritance; 7399 break; 7400 case LangOptions::PPTMK_FullGeneralityMultipleInheritance: 7401 IM = MSInheritanceAttr::Keyword_multiple_inheritance; 7402 break; 7403 case LangOptions::PPTMK_FullGeneralityVirtualInheritance: 7404 IM = MSInheritanceAttr::Keyword_unspecified_inheritance; 7405 break; 7406 } 7407 7408 RD->addAttr(MSInheritanceAttr::CreateImplicit( 7409 S.getASTContext(), IM, 7410 /*BestCase=*/S.MSPointerToMemberRepresentationMethod == 7411 LangOptions::PPTMK_BestCase, 7412 S.ImplicitMSInheritanceAttrLoc.isValid() 7413 ? S.ImplicitMSInheritanceAttrLoc 7414 : RD->getSourceRange())); 7415 S.Consumer.AssignInheritanceModel(RD); 7416 } 7417 } 7418 7419 /// \brief The implementation of RequireCompleteType 7420 bool Sema::RequireCompleteTypeImpl(SourceLocation Loc, QualType T, 7421 TypeDiagnoser *Diagnoser) { 7422 // FIXME: Add this assertion to make sure we always get instantiation points. 7423 // assert(!Loc.isInvalid() && "Invalid location in RequireCompleteType"); 7424 // FIXME: Add this assertion to help us flush out problems with 7425 // checking for dependent types and type-dependent expressions. 7426 // 7427 // assert(!T->isDependentType() && 7428 // "Can't ask whether a dependent type is complete"); 7429 7430 // We lock in the inheritance model once somebody has asked us to ensure 7431 // that a pointer-to-member type is complete. 7432 if (Context.getTargetInfo().getCXXABI().isMicrosoft()) { 7433 if (const MemberPointerType *MPTy = T->getAs<MemberPointerType>()) { 7434 if (!MPTy->getClass()->isDependentType()) { 7435 (void)isCompleteType(Loc, QualType(MPTy->getClass(), 0)); 7436 assignInheritanceModel(*this, MPTy->getMostRecentCXXRecordDecl()); 7437 } 7438 } 7439 } 7440 7441 NamedDecl *Def = nullptr; 7442 bool Incomplete = T->isIncompleteType(&Def); 7443 7444 // Check that any necessary explicit specializations are visible. For an 7445 // enum, we just need the declaration, so don't check this. 7446 if (Def && !isa<EnumDecl>(Def)) 7447 checkSpecializationVisibility(Loc, Def); 7448 7449 // If we have a complete type, we're done. 7450 if (!Incomplete) { 7451 // If we know about the definition but it is not visible, complain. 7452 NamedDecl *SuggestedDef = nullptr; 7453 if (Def && 7454 !hasVisibleDefinition(Def, &SuggestedDef, /*OnlyNeedComplete*/true)) { 7455 // If the user is going to see an error here, recover by making the 7456 // definition visible. 7457 bool TreatAsComplete = Diagnoser && !isSFINAEContext(); 7458 if (Diagnoser) 7459 diagnoseMissingImport(Loc, SuggestedDef, MissingImportKind::Definition, 7460 /*Recover*/TreatAsComplete); 7461 return !TreatAsComplete; 7462 } 7463 7464 return false; 7465 } 7466 7467 const TagType *Tag = T->getAs<TagType>(); 7468 const ObjCInterfaceType *IFace = T->getAs<ObjCInterfaceType>(); 7469 7470 // If there's an unimported definition of this type in a module (for 7471 // instance, because we forward declared it, then imported the definition), 7472 // import that definition now. 7473 // 7474 // FIXME: What about other cases where an import extends a redeclaration 7475 // chain for a declaration that can be accessed through a mechanism other 7476 // than name lookup (eg, referenced in a template, or a variable whose type 7477 // could be completed by the module)? 7478 // 7479 // FIXME: Should we map through to the base array element type before 7480 // checking for a tag type? 7481 if (Tag || IFace) { 7482 NamedDecl *D = 7483 Tag ? static_cast<NamedDecl *>(Tag->getDecl()) : IFace->getDecl(); 7484 7485 // Avoid diagnosing invalid decls as incomplete. 7486 if (D->isInvalidDecl()) 7487 return true; 7488 7489 // Give the external AST source a chance to complete the type. 7490 if (auto *Source = Context.getExternalSource()) { 7491 if (Tag) { 7492 TagDecl *TagD = Tag->getDecl(); 7493 if (TagD->hasExternalLexicalStorage()) 7494 Source->CompleteType(TagD); 7495 } else { 7496 ObjCInterfaceDecl *IFaceD = IFace->getDecl(); 7497 if (IFaceD->hasExternalLexicalStorage()) 7498 Source->CompleteType(IFace->getDecl()); 7499 } 7500 // If the external source completed the type, go through the motions 7501 // again to ensure we're allowed to use the completed type. 7502 if (!T->isIncompleteType()) 7503 return RequireCompleteTypeImpl(Loc, T, Diagnoser); 7504 } 7505 } 7506 7507 // If we have a class template specialization or a class member of a 7508 // class template specialization, or an array with known size of such, 7509 // try to instantiate it. 7510 QualType MaybeTemplate = T; 7511 while (const ConstantArrayType *Array 7512 = Context.getAsConstantArrayType(MaybeTemplate)) 7513 MaybeTemplate = Array->getElementType(); 7514 if (const RecordType *Record = MaybeTemplate->getAs<RecordType>()) { 7515 bool Instantiated = false; 7516 bool Diagnosed = false; 7517 if (ClassTemplateSpecializationDecl *ClassTemplateSpec 7518 = dyn_cast<ClassTemplateSpecializationDecl>(Record->getDecl())) { 7519 if (ClassTemplateSpec->getSpecializationKind() == TSK_Undeclared) { 7520 Diagnosed = InstantiateClassTemplateSpecialization( 7521 Loc, ClassTemplateSpec, TSK_ImplicitInstantiation, 7522 /*Complain=*/Diagnoser); 7523 Instantiated = true; 7524 } 7525 } else if (CXXRecordDecl *Rec 7526 = dyn_cast<CXXRecordDecl>(Record->getDecl())) { 7527 CXXRecordDecl *Pattern = Rec->getInstantiatedFromMemberClass(); 7528 if (!Rec->isBeingDefined() && Pattern) { 7529 MemberSpecializationInfo *MSI = Rec->getMemberSpecializationInfo(); 7530 assert(MSI && "Missing member specialization information?"); 7531 // This record was instantiated from a class within a template. 7532 if (MSI->getTemplateSpecializationKind() != 7533 TSK_ExplicitSpecialization) { 7534 Diagnosed = InstantiateClass(Loc, Rec, Pattern, 7535 getTemplateInstantiationArgs(Rec), 7536 TSK_ImplicitInstantiation, 7537 /*Complain=*/Diagnoser); 7538 Instantiated = true; 7539 } 7540 } 7541 } 7542 7543 if (Instantiated) { 7544 // Instantiate* might have already complained that the template is not 7545 // defined, if we asked it to. 7546 if (Diagnoser && Diagnosed) 7547 return true; 7548 // If we instantiated a definition, check that it's usable, even if 7549 // instantiation produced an error, so that repeated calls to this 7550 // function give consistent answers. 7551 if (!T->isIncompleteType()) 7552 return RequireCompleteTypeImpl(Loc, T, Diagnoser); 7553 } 7554 } 7555 7556 // FIXME: If we didn't instantiate a definition because of an explicit 7557 // specialization declaration, check that it's visible. 7558 7559 if (!Diagnoser) 7560 return true; 7561 7562 Diagnoser->diagnose(*this, Loc, T); 7563 7564 // If the type was a forward declaration of a class/struct/union 7565 // type, produce a note. 7566 if (Tag && !Tag->getDecl()->isInvalidDecl()) 7567 Diag(Tag->getDecl()->getLocation(), 7568 Tag->isBeingDefined() ? diag::note_type_being_defined 7569 : diag::note_forward_declaration) 7570 << QualType(Tag, 0); 7571 7572 // If the Objective-C class was a forward declaration, produce a note. 7573 if (IFace && !IFace->getDecl()->isInvalidDecl()) 7574 Diag(IFace->getDecl()->getLocation(), diag::note_forward_class); 7575 7576 // If we have external information that we can use to suggest a fix, 7577 // produce a note. 7578 if (ExternalSource) 7579 ExternalSource->MaybeDiagnoseMissingCompleteType(Loc, T); 7580 7581 return true; 7582 } 7583 7584 bool Sema::RequireCompleteType(SourceLocation Loc, QualType T, 7585 unsigned DiagID) { 7586 BoundTypeDiagnoser<> Diagnoser(DiagID); 7587 return RequireCompleteType(Loc, T, Diagnoser); 7588 } 7589 7590 /// \brief Get diagnostic %select index for tag kind for 7591 /// literal type diagnostic message. 7592 /// WARNING: Indexes apply to particular diagnostics only! 7593 /// 7594 /// \returns diagnostic %select index. 7595 static unsigned getLiteralDiagFromTagKind(TagTypeKind Tag) { 7596 switch (Tag) { 7597 case TTK_Struct: return 0; 7598 case TTK_Interface: return 1; 7599 case TTK_Class: return 2; 7600 default: llvm_unreachable("Invalid tag kind for literal type diagnostic!"); 7601 } 7602 } 7603 7604 /// @brief Ensure that the type T is a literal type. 7605 /// 7606 /// This routine checks whether the type @p T is a literal type. If @p T is an 7607 /// incomplete type, an attempt is made to complete it. If @p T is a literal 7608 /// type, or @p AllowIncompleteType is true and @p T is an incomplete type, 7609 /// returns false. Otherwise, this routine issues the diagnostic @p PD (giving 7610 /// it the type @p T), along with notes explaining why the type is not a 7611 /// literal type, and returns true. 7612 /// 7613 /// @param Loc The location in the source that the non-literal type 7614 /// diagnostic should refer to. 7615 /// 7616 /// @param T The type that this routine is examining for literalness. 7617 /// 7618 /// @param Diagnoser Emits a diagnostic if T is not a literal type. 7619 /// 7620 /// @returns @c true if @p T is not a literal type and a diagnostic was emitted, 7621 /// @c false otherwise. 7622 bool Sema::RequireLiteralType(SourceLocation Loc, QualType T, 7623 TypeDiagnoser &Diagnoser) { 7624 assert(!T->isDependentType() && "type should not be dependent"); 7625 7626 QualType ElemType = Context.getBaseElementType(T); 7627 if ((isCompleteType(Loc, ElemType) || ElemType->isVoidType()) && 7628 T->isLiteralType(Context)) 7629 return false; 7630 7631 Diagnoser.diagnose(*this, Loc, T); 7632 7633 if (T->isVariableArrayType()) 7634 return true; 7635 7636 const RecordType *RT = ElemType->getAs<RecordType>(); 7637 if (!RT) 7638 return true; 7639 7640 const CXXRecordDecl *RD = cast<CXXRecordDecl>(RT->getDecl()); 7641 7642 // A partially-defined class type can't be a literal type, because a literal 7643 // class type must have a trivial destructor (which can't be checked until 7644 // the class definition is complete). 7645 if (RequireCompleteType(Loc, ElemType, diag::note_non_literal_incomplete, T)) 7646 return true; 7647 7648 // If the class has virtual base classes, then it's not an aggregate, and 7649 // cannot have any constexpr constructors or a trivial default constructor, 7650 // so is non-literal. This is better to diagnose than the resulting absence 7651 // of constexpr constructors. 7652 if (RD->getNumVBases()) { 7653 Diag(RD->getLocation(), diag::note_non_literal_virtual_base) 7654 << getLiteralDiagFromTagKind(RD->getTagKind()) << RD->getNumVBases(); 7655 for (const auto &I : RD->vbases()) 7656 Diag(I.getLocStart(), diag::note_constexpr_virtual_base_here) 7657 << I.getSourceRange(); 7658 } else if (!RD->isAggregate() && !RD->hasConstexprNonCopyMoveConstructor() && 7659 !RD->hasTrivialDefaultConstructor()) { 7660 Diag(RD->getLocation(), diag::note_non_literal_no_constexpr_ctors) << RD; 7661 } else if (RD->hasNonLiteralTypeFieldsOrBases()) { 7662 for (const auto &I : RD->bases()) { 7663 if (!I.getType()->isLiteralType(Context)) { 7664 Diag(I.getLocStart(), 7665 diag::note_non_literal_base_class) 7666 << RD << I.getType() << I.getSourceRange(); 7667 return true; 7668 } 7669 } 7670 for (const auto *I : RD->fields()) { 7671 if (!I->getType()->isLiteralType(Context) || 7672 I->getType().isVolatileQualified()) { 7673 Diag(I->getLocation(), diag::note_non_literal_field) 7674 << RD << I << I->getType() 7675 << I->getType().isVolatileQualified(); 7676 return true; 7677 } 7678 } 7679 } else if (!RD->hasTrivialDestructor()) { 7680 // All fields and bases are of literal types, so have trivial destructors. 7681 // If this class's destructor is non-trivial it must be user-declared. 7682 CXXDestructorDecl *Dtor = RD->getDestructor(); 7683 assert(Dtor && "class has literal fields and bases but no dtor?"); 7684 if (!Dtor) 7685 return true; 7686 7687 Diag(Dtor->getLocation(), Dtor->isUserProvided() ? 7688 diag::note_non_literal_user_provided_dtor : 7689 diag::note_non_literal_nontrivial_dtor) << RD; 7690 if (!Dtor->isUserProvided()) 7691 SpecialMemberIsTrivial(Dtor, CXXDestructor, /*Diagnose*/true); 7692 } 7693 7694 return true; 7695 } 7696 7697 bool Sema::RequireLiteralType(SourceLocation Loc, QualType T, unsigned DiagID) { 7698 BoundTypeDiagnoser<> Diagnoser(DiagID); 7699 return RequireLiteralType(Loc, T, Diagnoser); 7700 } 7701 7702 /// \brief Retrieve a version of the type 'T' that is elaborated by Keyword 7703 /// and qualified by the nested-name-specifier contained in SS. 7704 QualType Sema::getElaboratedType(ElaboratedTypeKeyword Keyword, 7705 const CXXScopeSpec &SS, QualType T) { 7706 if (T.isNull()) 7707 return T; 7708 NestedNameSpecifier *NNS; 7709 if (SS.isValid()) 7710 NNS = SS.getScopeRep(); 7711 else { 7712 if (Keyword == ETK_None) 7713 return T; 7714 NNS = nullptr; 7715 } 7716 return Context.getElaboratedType(Keyword, NNS, T); 7717 } 7718 7719 QualType Sema::BuildTypeofExprType(Expr *E, SourceLocation Loc) { 7720 ExprResult ER = CheckPlaceholderExpr(E); 7721 if (ER.isInvalid()) return QualType(); 7722 E = ER.get(); 7723 7724 if (!getLangOpts().CPlusPlus && E->refersToBitField()) 7725 Diag(E->getExprLoc(), diag::err_sizeof_alignof_typeof_bitfield) << 2; 7726 7727 if (!E->isTypeDependent()) { 7728 QualType T = E->getType(); 7729 if (const TagType *TT = T->getAs<TagType>()) 7730 DiagnoseUseOfDecl(TT->getDecl(), E->getExprLoc()); 7731 } 7732 return Context.getTypeOfExprType(E); 7733 } 7734 7735 /// getDecltypeForExpr - Given an expr, will return the decltype for 7736 /// that expression, according to the rules in C++11 7737 /// [dcl.type.simple]p4 and C++11 [expr.lambda.prim]p18. 7738 static QualType getDecltypeForExpr(Sema &S, Expr *E) { 7739 if (E->isTypeDependent()) 7740 return S.Context.DependentTy; 7741 7742 // C++11 [dcl.type.simple]p4: 7743 // The type denoted by decltype(e) is defined as follows: 7744 // 7745 // - if e is an unparenthesized id-expression or an unparenthesized class 7746 // member access (5.2.5), decltype(e) is the type of the entity named 7747 // by e. If there is no such entity, or if e names a set of overloaded 7748 // functions, the program is ill-formed; 7749 // 7750 // We apply the same rules for Objective-C ivar and property references. 7751 if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) { 7752 if (const ValueDecl *VD = dyn_cast<ValueDecl>(DRE->getDecl())) 7753 return VD->getType(); 7754 } else if (const MemberExpr *ME = dyn_cast<MemberExpr>(E)) { 7755 if (const FieldDecl *FD = dyn_cast<FieldDecl>(ME->getMemberDecl())) 7756 return FD->getType(); 7757 } else if (const ObjCIvarRefExpr *IR = dyn_cast<ObjCIvarRefExpr>(E)) { 7758 return IR->getDecl()->getType(); 7759 } else if (const ObjCPropertyRefExpr *PR = dyn_cast<ObjCPropertyRefExpr>(E)) { 7760 if (PR->isExplicitProperty()) 7761 return PR->getExplicitProperty()->getType(); 7762 } else if (auto *PE = dyn_cast<PredefinedExpr>(E)) { 7763 return PE->getType(); 7764 } 7765 7766 // C++11 [expr.lambda.prim]p18: 7767 // Every occurrence of decltype((x)) where x is a possibly 7768 // parenthesized id-expression that names an entity of automatic 7769 // storage duration is treated as if x were transformed into an 7770 // access to a corresponding data member of the closure type that 7771 // would have been declared if x were an odr-use of the denoted 7772 // entity. 7773 using namespace sema; 7774 if (S.getCurLambda()) { 7775 if (isa<ParenExpr>(E)) { 7776 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E->IgnoreParens())) { 7777 if (VarDecl *Var = dyn_cast<VarDecl>(DRE->getDecl())) { 7778 QualType T = S.getCapturedDeclRefType(Var, DRE->getLocation()); 7779 if (!T.isNull()) 7780 return S.Context.getLValueReferenceType(T); 7781 } 7782 } 7783 } 7784 } 7785 7786 7787 // C++11 [dcl.type.simple]p4: 7788 // [...] 7789 QualType T = E->getType(); 7790 switch (E->getValueKind()) { 7791 // - otherwise, if e is an xvalue, decltype(e) is T&&, where T is the 7792 // type of e; 7793 case VK_XValue: T = S.Context.getRValueReferenceType(T); break; 7794 // - otherwise, if e is an lvalue, decltype(e) is T&, where T is the 7795 // type of e; 7796 case VK_LValue: T = S.Context.getLValueReferenceType(T); break; 7797 // - otherwise, decltype(e) is the type of e. 7798 case VK_RValue: break; 7799 } 7800 7801 return T; 7802 } 7803 7804 QualType Sema::BuildDecltypeType(Expr *E, SourceLocation Loc, 7805 bool AsUnevaluated) { 7806 ExprResult ER = CheckPlaceholderExpr(E); 7807 if (ER.isInvalid()) return QualType(); 7808 E = ER.get(); 7809 7810 if (AsUnevaluated && CodeSynthesisContexts.empty() && 7811 E->HasSideEffects(Context, false)) { 7812 // The expression operand for decltype is in an unevaluated expression 7813 // context, so side effects could result in unintended consequences. 7814 Diag(E->getExprLoc(), diag::warn_side_effects_unevaluated_context); 7815 } 7816 7817 return Context.getDecltypeType(E, getDecltypeForExpr(*this, E)); 7818 } 7819 7820 QualType Sema::BuildUnaryTransformType(QualType BaseType, 7821 UnaryTransformType::UTTKind UKind, 7822 SourceLocation Loc) { 7823 switch (UKind) { 7824 case UnaryTransformType::EnumUnderlyingType: 7825 if (!BaseType->isDependentType() && !BaseType->isEnumeralType()) { 7826 Diag(Loc, diag::err_only_enums_have_underlying_types); 7827 return QualType(); 7828 } else { 7829 QualType Underlying = BaseType; 7830 if (!BaseType->isDependentType()) { 7831 // The enum could be incomplete if we're parsing its definition or 7832 // recovering from an error. 7833 NamedDecl *FwdDecl = nullptr; 7834 if (BaseType->isIncompleteType(&FwdDecl)) { 7835 Diag(Loc, diag::err_underlying_type_of_incomplete_enum) << BaseType; 7836 Diag(FwdDecl->getLocation(), diag::note_forward_declaration) << FwdDecl; 7837 return QualType(); 7838 } 7839 7840 EnumDecl *ED = BaseType->getAs<EnumType>()->getDecl(); 7841 assert(ED && "EnumType has no EnumDecl"); 7842 7843 DiagnoseUseOfDecl(ED, Loc); 7844 7845 Underlying = ED->getIntegerType(); 7846 assert(!Underlying.isNull()); 7847 } 7848 return Context.getUnaryTransformType(BaseType, Underlying, 7849 UnaryTransformType::EnumUnderlyingType); 7850 } 7851 } 7852 llvm_unreachable("unknown unary transform type"); 7853 } 7854 7855 QualType Sema::BuildAtomicType(QualType T, SourceLocation Loc) { 7856 if (!T->isDependentType()) { 7857 // FIXME: It isn't entirely clear whether incomplete atomic types 7858 // are allowed or not; for simplicity, ban them for the moment. 7859 if (RequireCompleteType(Loc, T, diag::err_atomic_specifier_bad_type, 0)) 7860 return QualType(); 7861 7862 int DisallowedKind = -1; 7863 if (T->isArrayType()) 7864 DisallowedKind = 1; 7865 else if (T->isFunctionType()) 7866 DisallowedKind = 2; 7867 else if (T->isReferenceType()) 7868 DisallowedKind = 3; 7869 else if (T->isAtomicType()) 7870 DisallowedKind = 4; 7871 else if (T.hasQualifiers()) 7872 DisallowedKind = 5; 7873 else if (!T.isTriviallyCopyableType(Context)) 7874 // Some other non-trivially-copyable type (probably a C++ class) 7875 DisallowedKind = 6; 7876 7877 if (DisallowedKind != -1) { 7878 Diag(Loc, diag::err_atomic_specifier_bad_type) << DisallowedKind << T; 7879 return QualType(); 7880 } 7881 7882 // FIXME: Do we need any handling for ARC here? 7883 } 7884 7885 // Build the pointer type. 7886 return Context.getAtomicType(T); 7887 } 7888