1 //===- ASTContext.cpp - Context to hold long-lived AST nodes --------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the ASTContext interface. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "clang/AST/ASTContext.h" 14 #include "CXXABI.h" 15 #include "Interp/Context.h" 16 #include "clang/AST/APValue.h" 17 #include "clang/AST/ASTConcept.h" 18 #include "clang/AST/ASTMutationListener.h" 19 #include "clang/AST/ASTTypeTraits.h" 20 #include "clang/AST/Attr.h" 21 #include "clang/AST/AttrIterator.h" 22 #include "clang/AST/CharUnits.h" 23 #include "clang/AST/Comment.h" 24 #include "clang/AST/Decl.h" 25 #include "clang/AST/DeclBase.h" 26 #include "clang/AST/DeclCXX.h" 27 #include "clang/AST/DeclContextInternals.h" 28 #include "clang/AST/DeclObjC.h" 29 #include "clang/AST/DeclOpenMP.h" 30 #include "clang/AST/DeclTemplate.h" 31 #include "clang/AST/DeclarationName.h" 32 #include "clang/AST/DependenceFlags.h" 33 #include "clang/AST/Expr.h" 34 #include "clang/AST/ExprCXX.h" 35 #include "clang/AST/ExprConcepts.h" 36 #include "clang/AST/ExternalASTSource.h" 37 #include "clang/AST/Mangle.h" 38 #include "clang/AST/MangleNumberingContext.h" 39 #include "clang/AST/NestedNameSpecifier.h" 40 #include "clang/AST/ParentMapContext.h" 41 #include "clang/AST/RawCommentList.h" 42 #include "clang/AST/RecordLayout.h" 43 #include "clang/AST/Stmt.h" 44 #include "clang/AST/TemplateBase.h" 45 #include "clang/AST/TemplateName.h" 46 #include "clang/AST/Type.h" 47 #include "clang/AST/TypeLoc.h" 48 #include "clang/AST/UnresolvedSet.h" 49 #include "clang/AST/VTableBuilder.h" 50 #include "clang/Basic/AddressSpaces.h" 51 #include "clang/Basic/Builtins.h" 52 #include "clang/Basic/CommentOptions.h" 53 #include "clang/Basic/ExceptionSpecificationType.h" 54 #include "clang/Basic/IdentifierTable.h" 55 #include "clang/Basic/LLVM.h" 56 #include "clang/Basic/LangOptions.h" 57 #include "clang/Basic/Linkage.h" 58 #include "clang/Basic/Module.h" 59 #include "clang/Basic/NoSanitizeList.h" 60 #include "clang/Basic/ObjCRuntime.h" 61 #include "clang/Basic/SourceLocation.h" 62 #include "clang/Basic/SourceManager.h" 63 #include "clang/Basic/Specifiers.h" 64 #include "clang/Basic/TargetCXXABI.h" 65 #include "clang/Basic/TargetInfo.h" 66 #include "clang/Basic/XRayLists.h" 67 #include "llvm/ADT/APFixedPoint.h" 68 #include "llvm/ADT/APInt.h" 69 #include "llvm/ADT/APSInt.h" 70 #include "llvm/ADT/ArrayRef.h" 71 #include "llvm/ADT/DenseMap.h" 72 #include "llvm/ADT/DenseSet.h" 73 #include "llvm/ADT/FoldingSet.h" 74 #include "llvm/ADT/None.h" 75 #include "llvm/ADT/Optional.h" 76 #include "llvm/ADT/PointerUnion.h" 77 #include "llvm/ADT/STLExtras.h" 78 #include "llvm/ADT/SmallPtrSet.h" 79 #include "llvm/ADT/SmallVector.h" 80 #include "llvm/ADT/StringExtras.h" 81 #include "llvm/ADT/StringRef.h" 82 #include "llvm/ADT/Triple.h" 83 #include "llvm/Support/Capacity.h" 84 #include "llvm/Support/Casting.h" 85 #include "llvm/Support/Compiler.h" 86 #include "llvm/Support/ErrorHandling.h" 87 #include "llvm/Support/MD5.h" 88 #include "llvm/Support/MathExtras.h" 89 #include "llvm/Support/raw_ostream.h" 90 #include <algorithm> 91 #include <cassert> 92 #include <cstddef> 93 #include <cstdint> 94 #include <cstdlib> 95 #include <map> 96 #include <memory> 97 #include <string> 98 #include <tuple> 99 #include <utility> 100 101 using namespace clang; 102 103 enum FloatingRank { 104 BFloat16Rank, Float16Rank, HalfRank, FloatRank, DoubleRank, LongDoubleRank, Float128Rank 105 }; 106 107 /// \returns location that is relevant when searching for Doc comments related 108 /// to \p D. 109 static SourceLocation getDeclLocForCommentSearch(const Decl *D, 110 SourceManager &SourceMgr) { 111 assert(D); 112 113 // User can not attach documentation to implicit declarations. 114 if (D->isImplicit()) 115 return {}; 116 117 // User can not attach documentation to implicit instantiations. 118 if (const auto *FD = dyn_cast<FunctionDecl>(D)) { 119 if (FD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation) 120 return {}; 121 } 122 123 if (const auto *VD = dyn_cast<VarDecl>(D)) { 124 if (VD->isStaticDataMember() && 125 VD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation) 126 return {}; 127 } 128 129 if (const auto *CRD = dyn_cast<CXXRecordDecl>(D)) { 130 if (CRD->getTemplateSpecializationKind() == TSK_ImplicitInstantiation) 131 return {}; 132 } 133 134 if (const auto *CTSD = dyn_cast<ClassTemplateSpecializationDecl>(D)) { 135 TemplateSpecializationKind TSK = CTSD->getSpecializationKind(); 136 if (TSK == TSK_ImplicitInstantiation || 137 TSK == TSK_Undeclared) 138 return {}; 139 } 140 141 if (const auto *ED = dyn_cast<EnumDecl>(D)) { 142 if (ED->getTemplateSpecializationKind() == TSK_ImplicitInstantiation) 143 return {}; 144 } 145 if (const auto *TD = dyn_cast<TagDecl>(D)) { 146 // When tag declaration (but not definition!) is part of the 147 // decl-specifier-seq of some other declaration, it doesn't get comment 148 if (TD->isEmbeddedInDeclarator() && !TD->isCompleteDefinition()) 149 return {}; 150 } 151 // TODO: handle comments for function parameters properly. 152 if (isa<ParmVarDecl>(D)) 153 return {}; 154 155 // TODO: we could look up template parameter documentation in the template 156 // documentation. 157 if (isa<TemplateTypeParmDecl>(D) || 158 isa<NonTypeTemplateParmDecl>(D) || 159 isa<TemplateTemplateParmDecl>(D)) 160 return {}; 161 162 // Find declaration location. 163 // For Objective-C declarations we generally don't expect to have multiple 164 // declarators, thus use declaration starting location as the "declaration 165 // location". 166 // For all other declarations multiple declarators are used quite frequently, 167 // so we use the location of the identifier as the "declaration location". 168 if (isa<ObjCMethodDecl>(D) || isa<ObjCContainerDecl>(D) || 169 isa<ObjCPropertyDecl>(D) || 170 isa<RedeclarableTemplateDecl>(D) || 171 isa<ClassTemplateSpecializationDecl>(D) || 172 // Allow association with Y across {} in `typedef struct X {} Y`. 173 isa<TypedefDecl>(D)) 174 return D->getBeginLoc(); 175 else { 176 const SourceLocation DeclLoc = D->getLocation(); 177 if (DeclLoc.isMacroID()) { 178 if (isa<TypedefDecl>(D)) { 179 // If location of the typedef name is in a macro, it is because being 180 // declared via a macro. Try using declaration's starting location as 181 // the "declaration location". 182 return D->getBeginLoc(); 183 } else if (const auto *TD = dyn_cast<TagDecl>(D)) { 184 // If location of the tag decl is inside a macro, but the spelling of 185 // the tag name comes from a macro argument, it looks like a special 186 // macro like NS_ENUM is being used to define the tag decl. In that 187 // case, adjust the source location to the expansion loc so that we can 188 // attach the comment to the tag decl. 189 if (SourceMgr.isMacroArgExpansion(DeclLoc) && 190 TD->isCompleteDefinition()) 191 return SourceMgr.getExpansionLoc(DeclLoc); 192 } 193 } 194 return DeclLoc; 195 } 196 197 return {}; 198 } 199 200 RawComment *ASTContext::getRawCommentForDeclNoCacheImpl( 201 const Decl *D, const SourceLocation RepresentativeLocForDecl, 202 const std::map<unsigned, RawComment *> &CommentsInTheFile) const { 203 // If the declaration doesn't map directly to a location in a file, we 204 // can't find the comment. 205 if (RepresentativeLocForDecl.isInvalid() || 206 !RepresentativeLocForDecl.isFileID()) 207 return nullptr; 208 209 // If there are no comments anywhere, we won't find anything. 210 if (CommentsInTheFile.empty()) 211 return nullptr; 212 213 // Decompose the location for the declaration and find the beginning of the 214 // file buffer. 215 const std::pair<FileID, unsigned> DeclLocDecomp = 216 SourceMgr.getDecomposedLoc(RepresentativeLocForDecl); 217 218 // Slow path. 219 auto OffsetCommentBehindDecl = 220 CommentsInTheFile.lower_bound(DeclLocDecomp.second); 221 222 // First check whether we have a trailing comment. 223 if (OffsetCommentBehindDecl != CommentsInTheFile.end()) { 224 RawComment *CommentBehindDecl = OffsetCommentBehindDecl->second; 225 if ((CommentBehindDecl->isDocumentation() || 226 LangOpts.CommentOpts.ParseAllComments) && 227 CommentBehindDecl->isTrailingComment() && 228 (isa<FieldDecl>(D) || isa<EnumConstantDecl>(D) || isa<VarDecl>(D) || 229 isa<ObjCMethodDecl>(D) || isa<ObjCPropertyDecl>(D))) { 230 231 // Check that Doxygen trailing comment comes after the declaration, starts 232 // on the same line and in the same file as the declaration. 233 if (SourceMgr.getLineNumber(DeclLocDecomp.first, DeclLocDecomp.second) == 234 Comments.getCommentBeginLine(CommentBehindDecl, DeclLocDecomp.first, 235 OffsetCommentBehindDecl->first)) { 236 return CommentBehindDecl; 237 } 238 } 239 } 240 241 // The comment just after the declaration was not a trailing comment. 242 // Let's look at the previous comment. 243 if (OffsetCommentBehindDecl == CommentsInTheFile.begin()) 244 return nullptr; 245 246 auto OffsetCommentBeforeDecl = --OffsetCommentBehindDecl; 247 RawComment *CommentBeforeDecl = OffsetCommentBeforeDecl->second; 248 249 // Check that we actually have a non-member Doxygen comment. 250 if (!(CommentBeforeDecl->isDocumentation() || 251 LangOpts.CommentOpts.ParseAllComments) || 252 CommentBeforeDecl->isTrailingComment()) 253 return nullptr; 254 255 // Decompose the end of the comment. 256 const unsigned CommentEndOffset = 257 Comments.getCommentEndOffset(CommentBeforeDecl); 258 259 // Get the corresponding buffer. 260 bool Invalid = false; 261 const char *Buffer = SourceMgr.getBufferData(DeclLocDecomp.first, 262 &Invalid).data(); 263 if (Invalid) 264 return nullptr; 265 266 // Extract text between the comment and declaration. 267 StringRef Text(Buffer + CommentEndOffset, 268 DeclLocDecomp.second - CommentEndOffset); 269 270 // There should be no other declarations or preprocessor directives between 271 // comment and declaration. 272 if (Text.find_first_of(";{}#@") != StringRef::npos) 273 return nullptr; 274 275 return CommentBeforeDecl; 276 } 277 278 RawComment *ASTContext::getRawCommentForDeclNoCache(const Decl *D) const { 279 const SourceLocation DeclLoc = getDeclLocForCommentSearch(D, SourceMgr); 280 281 // If the declaration doesn't map directly to a location in a file, we 282 // can't find the comment. 283 if (DeclLoc.isInvalid() || !DeclLoc.isFileID()) 284 return nullptr; 285 286 if (ExternalSource && !CommentsLoaded) { 287 ExternalSource->ReadComments(); 288 CommentsLoaded = true; 289 } 290 291 if (Comments.empty()) 292 return nullptr; 293 294 const FileID File = SourceMgr.getDecomposedLoc(DeclLoc).first; 295 const auto CommentsInThisFile = Comments.getCommentsInFile(File); 296 if (!CommentsInThisFile || CommentsInThisFile->empty()) 297 return nullptr; 298 299 return getRawCommentForDeclNoCacheImpl(D, DeclLoc, *CommentsInThisFile); 300 } 301 302 void ASTContext::addComment(const RawComment &RC) { 303 assert(LangOpts.RetainCommentsFromSystemHeaders || 304 !SourceMgr.isInSystemHeader(RC.getSourceRange().getBegin())); 305 Comments.addComment(RC, LangOpts.CommentOpts, BumpAlloc); 306 } 307 308 /// If we have a 'templated' declaration for a template, adjust 'D' to 309 /// refer to the actual template. 310 /// If we have an implicit instantiation, adjust 'D' to refer to template. 311 static const Decl &adjustDeclToTemplate(const Decl &D) { 312 if (const auto *FD = dyn_cast<FunctionDecl>(&D)) { 313 // Is this function declaration part of a function template? 314 if (const FunctionTemplateDecl *FTD = FD->getDescribedFunctionTemplate()) 315 return *FTD; 316 317 // Nothing to do if function is not an implicit instantiation. 318 if (FD->getTemplateSpecializationKind() != TSK_ImplicitInstantiation) 319 return D; 320 321 // Function is an implicit instantiation of a function template? 322 if (const FunctionTemplateDecl *FTD = FD->getPrimaryTemplate()) 323 return *FTD; 324 325 // Function is instantiated from a member definition of a class template? 326 if (const FunctionDecl *MemberDecl = 327 FD->getInstantiatedFromMemberFunction()) 328 return *MemberDecl; 329 330 return D; 331 } 332 if (const auto *VD = dyn_cast<VarDecl>(&D)) { 333 // Static data member is instantiated from a member definition of a class 334 // template? 335 if (VD->isStaticDataMember()) 336 if (const VarDecl *MemberDecl = VD->getInstantiatedFromStaticDataMember()) 337 return *MemberDecl; 338 339 return D; 340 } 341 if (const auto *CRD = dyn_cast<CXXRecordDecl>(&D)) { 342 // Is this class declaration part of a class template? 343 if (const ClassTemplateDecl *CTD = CRD->getDescribedClassTemplate()) 344 return *CTD; 345 346 // Class is an implicit instantiation of a class template or partial 347 // specialization? 348 if (const auto *CTSD = dyn_cast<ClassTemplateSpecializationDecl>(CRD)) { 349 if (CTSD->getSpecializationKind() != TSK_ImplicitInstantiation) 350 return D; 351 llvm::PointerUnion<ClassTemplateDecl *, 352 ClassTemplatePartialSpecializationDecl *> 353 PU = CTSD->getSpecializedTemplateOrPartial(); 354 return PU.is<ClassTemplateDecl *>() 355 ? *static_cast<const Decl *>(PU.get<ClassTemplateDecl *>()) 356 : *static_cast<const Decl *>( 357 PU.get<ClassTemplatePartialSpecializationDecl *>()); 358 } 359 360 // Class is instantiated from a member definition of a class template? 361 if (const MemberSpecializationInfo *Info = 362 CRD->getMemberSpecializationInfo()) 363 return *Info->getInstantiatedFrom(); 364 365 return D; 366 } 367 if (const auto *ED = dyn_cast<EnumDecl>(&D)) { 368 // Enum is instantiated from a member definition of a class template? 369 if (const EnumDecl *MemberDecl = ED->getInstantiatedFromMemberEnum()) 370 return *MemberDecl; 371 372 return D; 373 } 374 // FIXME: Adjust alias templates? 375 return D; 376 } 377 378 const RawComment *ASTContext::getRawCommentForAnyRedecl( 379 const Decl *D, 380 const Decl **OriginalDecl) const { 381 if (!D) { 382 if (OriginalDecl) 383 OriginalDecl = nullptr; 384 return nullptr; 385 } 386 387 D = &adjustDeclToTemplate(*D); 388 389 // Any comment directly attached to D? 390 { 391 auto DeclComment = DeclRawComments.find(D); 392 if (DeclComment != DeclRawComments.end()) { 393 if (OriginalDecl) 394 *OriginalDecl = D; 395 return DeclComment->second; 396 } 397 } 398 399 // Any comment attached to any redeclaration of D? 400 const Decl *CanonicalD = D->getCanonicalDecl(); 401 if (!CanonicalD) 402 return nullptr; 403 404 { 405 auto RedeclComment = RedeclChainComments.find(CanonicalD); 406 if (RedeclComment != RedeclChainComments.end()) { 407 if (OriginalDecl) 408 *OriginalDecl = RedeclComment->second; 409 auto CommentAtRedecl = DeclRawComments.find(RedeclComment->second); 410 assert(CommentAtRedecl != DeclRawComments.end() && 411 "This decl is supposed to have comment attached."); 412 return CommentAtRedecl->second; 413 } 414 } 415 416 // Any redeclarations of D that we haven't checked for comments yet? 417 // We can't use DenseMap::iterator directly since it'd get invalid. 418 auto LastCheckedRedecl = [this, CanonicalD]() -> const Decl * { 419 auto LookupRes = CommentlessRedeclChains.find(CanonicalD); 420 if (LookupRes != CommentlessRedeclChains.end()) 421 return LookupRes->second; 422 return nullptr; 423 }(); 424 425 for (const auto Redecl : D->redecls()) { 426 assert(Redecl); 427 // Skip all redeclarations that have been checked previously. 428 if (LastCheckedRedecl) { 429 if (LastCheckedRedecl == Redecl) { 430 LastCheckedRedecl = nullptr; 431 } 432 continue; 433 } 434 const RawComment *RedeclComment = getRawCommentForDeclNoCache(Redecl); 435 if (RedeclComment) { 436 cacheRawCommentForDecl(*Redecl, *RedeclComment); 437 if (OriginalDecl) 438 *OriginalDecl = Redecl; 439 return RedeclComment; 440 } 441 CommentlessRedeclChains[CanonicalD] = Redecl; 442 } 443 444 if (OriginalDecl) 445 *OriginalDecl = nullptr; 446 return nullptr; 447 } 448 449 void ASTContext::cacheRawCommentForDecl(const Decl &OriginalD, 450 const RawComment &Comment) const { 451 assert(Comment.isDocumentation() || LangOpts.CommentOpts.ParseAllComments); 452 DeclRawComments.try_emplace(&OriginalD, &Comment); 453 const Decl *const CanonicalDecl = OriginalD.getCanonicalDecl(); 454 RedeclChainComments.try_emplace(CanonicalDecl, &OriginalD); 455 CommentlessRedeclChains.erase(CanonicalDecl); 456 } 457 458 static void addRedeclaredMethods(const ObjCMethodDecl *ObjCMethod, 459 SmallVectorImpl<const NamedDecl *> &Redeclared) { 460 const DeclContext *DC = ObjCMethod->getDeclContext(); 461 if (const auto *IMD = dyn_cast<ObjCImplDecl>(DC)) { 462 const ObjCInterfaceDecl *ID = IMD->getClassInterface(); 463 if (!ID) 464 return; 465 // Add redeclared method here. 466 for (const auto *Ext : ID->known_extensions()) { 467 if (ObjCMethodDecl *RedeclaredMethod = 468 Ext->getMethod(ObjCMethod->getSelector(), 469 ObjCMethod->isInstanceMethod())) 470 Redeclared.push_back(RedeclaredMethod); 471 } 472 } 473 } 474 475 void ASTContext::attachCommentsToJustParsedDecls(ArrayRef<Decl *> Decls, 476 const Preprocessor *PP) { 477 if (Comments.empty() || Decls.empty()) 478 return; 479 480 FileID File; 481 for (Decl *D : Decls) { 482 SourceLocation Loc = D->getLocation(); 483 if (Loc.isValid()) { 484 // See if there are any new comments that are not attached to a decl. 485 // The location doesn't have to be precise - we care only about the file. 486 File = SourceMgr.getDecomposedLoc(Loc).first; 487 break; 488 } 489 } 490 491 if (File.isInvalid()) 492 return; 493 494 auto CommentsInThisFile = Comments.getCommentsInFile(File); 495 if (!CommentsInThisFile || CommentsInThisFile->empty() || 496 CommentsInThisFile->rbegin()->second->isAttached()) 497 return; 498 499 // There is at least one comment not attached to a decl. 500 // Maybe it should be attached to one of Decls? 501 // 502 // Note that this way we pick up not only comments that precede the 503 // declaration, but also comments that *follow* the declaration -- thanks to 504 // the lookahead in the lexer: we've consumed the semicolon and looked 505 // ahead through comments. 506 507 for (const Decl *D : Decls) { 508 assert(D); 509 if (D->isInvalidDecl()) 510 continue; 511 512 D = &adjustDeclToTemplate(*D); 513 514 const SourceLocation DeclLoc = getDeclLocForCommentSearch(D, SourceMgr); 515 516 if (DeclLoc.isInvalid() || !DeclLoc.isFileID()) 517 continue; 518 519 if (DeclRawComments.count(D) > 0) 520 continue; 521 522 if (RawComment *const DocComment = 523 getRawCommentForDeclNoCacheImpl(D, DeclLoc, *CommentsInThisFile)) { 524 cacheRawCommentForDecl(*D, *DocComment); 525 comments::FullComment *FC = DocComment->parse(*this, PP, D); 526 ParsedComments[D->getCanonicalDecl()] = FC; 527 } 528 } 529 } 530 531 comments::FullComment *ASTContext::cloneFullComment(comments::FullComment *FC, 532 const Decl *D) const { 533 auto *ThisDeclInfo = new (*this) comments::DeclInfo; 534 ThisDeclInfo->CommentDecl = D; 535 ThisDeclInfo->IsFilled = false; 536 ThisDeclInfo->fill(); 537 ThisDeclInfo->CommentDecl = FC->getDecl(); 538 if (!ThisDeclInfo->TemplateParameters) 539 ThisDeclInfo->TemplateParameters = FC->getDeclInfo()->TemplateParameters; 540 comments::FullComment *CFC = 541 new (*this) comments::FullComment(FC->getBlocks(), 542 ThisDeclInfo); 543 return CFC; 544 } 545 546 comments::FullComment *ASTContext::getLocalCommentForDeclUncached(const Decl *D) const { 547 const RawComment *RC = getRawCommentForDeclNoCache(D); 548 return RC ? RC->parse(*this, nullptr, D) : nullptr; 549 } 550 551 comments::FullComment *ASTContext::getCommentForDecl( 552 const Decl *D, 553 const Preprocessor *PP) const { 554 if (!D || D->isInvalidDecl()) 555 return nullptr; 556 D = &adjustDeclToTemplate(*D); 557 558 const Decl *Canonical = D->getCanonicalDecl(); 559 llvm::DenseMap<const Decl *, comments::FullComment *>::iterator Pos = 560 ParsedComments.find(Canonical); 561 562 if (Pos != ParsedComments.end()) { 563 if (Canonical != D) { 564 comments::FullComment *FC = Pos->second; 565 comments::FullComment *CFC = cloneFullComment(FC, D); 566 return CFC; 567 } 568 return Pos->second; 569 } 570 571 const Decl *OriginalDecl = nullptr; 572 573 const RawComment *RC = getRawCommentForAnyRedecl(D, &OriginalDecl); 574 if (!RC) { 575 if (isa<ObjCMethodDecl>(D) || isa<FunctionDecl>(D)) { 576 SmallVector<const NamedDecl*, 8> Overridden; 577 const auto *OMD = dyn_cast<ObjCMethodDecl>(D); 578 if (OMD && OMD->isPropertyAccessor()) 579 if (const ObjCPropertyDecl *PDecl = OMD->findPropertyDecl()) 580 if (comments::FullComment *FC = getCommentForDecl(PDecl, PP)) 581 return cloneFullComment(FC, D); 582 if (OMD) 583 addRedeclaredMethods(OMD, Overridden); 584 getOverriddenMethods(dyn_cast<NamedDecl>(D), Overridden); 585 for (unsigned i = 0, e = Overridden.size(); i < e; i++) 586 if (comments::FullComment *FC = getCommentForDecl(Overridden[i], PP)) 587 return cloneFullComment(FC, D); 588 } 589 else if (const auto *TD = dyn_cast<TypedefNameDecl>(D)) { 590 // Attach any tag type's documentation to its typedef if latter 591 // does not have one of its own. 592 QualType QT = TD->getUnderlyingType(); 593 if (const auto *TT = QT->getAs<TagType>()) 594 if (const Decl *TD = TT->getDecl()) 595 if (comments::FullComment *FC = getCommentForDecl(TD, PP)) 596 return cloneFullComment(FC, D); 597 } 598 else if (const auto *IC = dyn_cast<ObjCInterfaceDecl>(D)) { 599 while (IC->getSuperClass()) { 600 IC = IC->getSuperClass(); 601 if (comments::FullComment *FC = getCommentForDecl(IC, PP)) 602 return cloneFullComment(FC, D); 603 } 604 } 605 else if (const auto *CD = dyn_cast<ObjCCategoryDecl>(D)) { 606 if (const ObjCInterfaceDecl *IC = CD->getClassInterface()) 607 if (comments::FullComment *FC = getCommentForDecl(IC, PP)) 608 return cloneFullComment(FC, D); 609 } 610 else if (const auto *RD = dyn_cast<CXXRecordDecl>(D)) { 611 if (!(RD = RD->getDefinition())) 612 return nullptr; 613 // Check non-virtual bases. 614 for (const auto &I : RD->bases()) { 615 if (I.isVirtual() || (I.getAccessSpecifier() != AS_public)) 616 continue; 617 QualType Ty = I.getType(); 618 if (Ty.isNull()) 619 continue; 620 if (const CXXRecordDecl *NonVirtualBase = Ty->getAsCXXRecordDecl()) { 621 if (!(NonVirtualBase= NonVirtualBase->getDefinition())) 622 continue; 623 624 if (comments::FullComment *FC = getCommentForDecl((NonVirtualBase), PP)) 625 return cloneFullComment(FC, D); 626 } 627 } 628 // Check virtual bases. 629 for (const auto &I : RD->vbases()) { 630 if (I.getAccessSpecifier() != AS_public) 631 continue; 632 QualType Ty = I.getType(); 633 if (Ty.isNull()) 634 continue; 635 if (const CXXRecordDecl *VirtualBase = Ty->getAsCXXRecordDecl()) { 636 if (!(VirtualBase= VirtualBase->getDefinition())) 637 continue; 638 if (comments::FullComment *FC = getCommentForDecl((VirtualBase), PP)) 639 return cloneFullComment(FC, D); 640 } 641 } 642 } 643 return nullptr; 644 } 645 646 // If the RawComment was attached to other redeclaration of this Decl, we 647 // should parse the comment in context of that other Decl. This is important 648 // because comments can contain references to parameter names which can be 649 // different across redeclarations. 650 if (D != OriginalDecl && OriginalDecl) 651 return getCommentForDecl(OriginalDecl, PP); 652 653 comments::FullComment *FC = RC->parse(*this, PP, D); 654 ParsedComments[Canonical] = FC; 655 return FC; 656 } 657 658 void 659 ASTContext::CanonicalTemplateTemplateParm::Profile(llvm::FoldingSetNodeID &ID, 660 const ASTContext &C, 661 TemplateTemplateParmDecl *Parm) { 662 ID.AddInteger(Parm->getDepth()); 663 ID.AddInteger(Parm->getPosition()); 664 ID.AddBoolean(Parm->isParameterPack()); 665 666 TemplateParameterList *Params = Parm->getTemplateParameters(); 667 ID.AddInteger(Params->size()); 668 for (TemplateParameterList::const_iterator P = Params->begin(), 669 PEnd = Params->end(); 670 P != PEnd; ++P) { 671 if (const auto *TTP = dyn_cast<TemplateTypeParmDecl>(*P)) { 672 ID.AddInteger(0); 673 ID.AddBoolean(TTP->isParameterPack()); 674 const TypeConstraint *TC = TTP->getTypeConstraint(); 675 ID.AddBoolean(TC != nullptr); 676 if (TC) 677 TC->getImmediatelyDeclaredConstraint()->Profile(ID, C, 678 /*Canonical=*/true); 679 if (TTP->isExpandedParameterPack()) { 680 ID.AddBoolean(true); 681 ID.AddInteger(TTP->getNumExpansionParameters()); 682 } else 683 ID.AddBoolean(false); 684 continue; 685 } 686 687 if (const auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(*P)) { 688 ID.AddInteger(1); 689 ID.AddBoolean(NTTP->isParameterPack()); 690 ID.AddPointer(NTTP->getType().getCanonicalType().getAsOpaquePtr()); 691 if (NTTP->isExpandedParameterPack()) { 692 ID.AddBoolean(true); 693 ID.AddInteger(NTTP->getNumExpansionTypes()); 694 for (unsigned I = 0, N = NTTP->getNumExpansionTypes(); I != N; ++I) { 695 QualType T = NTTP->getExpansionType(I); 696 ID.AddPointer(T.getCanonicalType().getAsOpaquePtr()); 697 } 698 } else 699 ID.AddBoolean(false); 700 continue; 701 } 702 703 auto *TTP = cast<TemplateTemplateParmDecl>(*P); 704 ID.AddInteger(2); 705 Profile(ID, C, TTP); 706 } 707 Expr *RequiresClause = Parm->getTemplateParameters()->getRequiresClause(); 708 ID.AddBoolean(RequiresClause != nullptr); 709 if (RequiresClause) 710 RequiresClause->Profile(ID, C, /*Canonical=*/true); 711 } 712 713 static Expr * 714 canonicalizeImmediatelyDeclaredConstraint(const ASTContext &C, Expr *IDC, 715 QualType ConstrainedType) { 716 // This is a bit ugly - we need to form a new immediately-declared 717 // constraint that references the new parameter; this would ideally 718 // require semantic analysis (e.g. template<C T> struct S {}; - the 719 // converted arguments of C<T> could be an argument pack if C is 720 // declared as template<typename... T> concept C = ...). 721 // We don't have semantic analysis here so we dig deep into the 722 // ready-made constraint expr and change the thing manually. 723 ConceptSpecializationExpr *CSE; 724 if (const auto *Fold = dyn_cast<CXXFoldExpr>(IDC)) 725 CSE = cast<ConceptSpecializationExpr>(Fold->getLHS()); 726 else 727 CSE = cast<ConceptSpecializationExpr>(IDC); 728 ArrayRef<TemplateArgument> OldConverted = CSE->getTemplateArguments(); 729 SmallVector<TemplateArgument, 3> NewConverted; 730 NewConverted.reserve(OldConverted.size()); 731 if (OldConverted.front().getKind() == TemplateArgument::Pack) { 732 // The case: 733 // template<typename... T> concept C = true; 734 // template<C<int> T> struct S; -> constraint is C<{T, int}> 735 NewConverted.push_back(ConstrainedType); 736 for (auto &Arg : OldConverted.front().pack_elements().drop_front(1)) 737 NewConverted.push_back(Arg); 738 TemplateArgument NewPack(NewConverted); 739 740 NewConverted.clear(); 741 NewConverted.push_back(NewPack); 742 assert(OldConverted.size() == 1 && 743 "Template parameter pack should be the last parameter"); 744 } else { 745 assert(OldConverted.front().getKind() == TemplateArgument::Type && 746 "Unexpected first argument kind for immediately-declared " 747 "constraint"); 748 NewConverted.push_back(ConstrainedType); 749 for (auto &Arg : OldConverted.drop_front(1)) 750 NewConverted.push_back(Arg); 751 } 752 Expr *NewIDC = ConceptSpecializationExpr::Create( 753 C, CSE->getNamedConcept(), NewConverted, nullptr, 754 CSE->isInstantiationDependent(), CSE->containsUnexpandedParameterPack()); 755 756 if (auto *OrigFold = dyn_cast<CXXFoldExpr>(IDC)) 757 NewIDC = new (C) CXXFoldExpr( 758 OrigFold->getType(), /*Callee*/nullptr, SourceLocation(), NewIDC, 759 BinaryOperatorKind::BO_LAnd, SourceLocation(), /*RHS=*/nullptr, 760 SourceLocation(), /*NumExpansions=*/None); 761 return NewIDC; 762 } 763 764 TemplateTemplateParmDecl * 765 ASTContext::getCanonicalTemplateTemplateParmDecl( 766 TemplateTemplateParmDecl *TTP) const { 767 // Check if we already have a canonical template template parameter. 768 llvm::FoldingSetNodeID ID; 769 CanonicalTemplateTemplateParm::Profile(ID, *this, TTP); 770 void *InsertPos = nullptr; 771 CanonicalTemplateTemplateParm *Canonical 772 = CanonTemplateTemplateParms.FindNodeOrInsertPos(ID, InsertPos); 773 if (Canonical) 774 return Canonical->getParam(); 775 776 // Build a canonical template parameter list. 777 TemplateParameterList *Params = TTP->getTemplateParameters(); 778 SmallVector<NamedDecl *, 4> CanonParams; 779 CanonParams.reserve(Params->size()); 780 for (TemplateParameterList::const_iterator P = Params->begin(), 781 PEnd = Params->end(); 782 P != PEnd; ++P) { 783 if (const auto *TTP = dyn_cast<TemplateTypeParmDecl>(*P)) { 784 TemplateTypeParmDecl *NewTTP = TemplateTypeParmDecl::Create(*this, 785 getTranslationUnitDecl(), SourceLocation(), SourceLocation(), 786 TTP->getDepth(), TTP->getIndex(), nullptr, false, 787 TTP->isParameterPack(), TTP->hasTypeConstraint(), 788 TTP->isExpandedParameterPack() ? 789 llvm::Optional<unsigned>(TTP->getNumExpansionParameters()) : None); 790 if (const auto *TC = TTP->getTypeConstraint()) { 791 QualType ParamAsArgument(NewTTP->getTypeForDecl(), 0); 792 Expr *NewIDC = canonicalizeImmediatelyDeclaredConstraint( 793 *this, TC->getImmediatelyDeclaredConstraint(), 794 ParamAsArgument); 795 TemplateArgumentListInfo CanonArgsAsWritten; 796 if (auto *Args = TC->getTemplateArgsAsWritten()) 797 for (const auto &ArgLoc : Args->arguments()) 798 CanonArgsAsWritten.addArgument( 799 TemplateArgumentLoc(ArgLoc.getArgument(), 800 TemplateArgumentLocInfo())); 801 NewTTP->setTypeConstraint( 802 NestedNameSpecifierLoc(), 803 DeclarationNameInfo(TC->getNamedConcept()->getDeclName(), 804 SourceLocation()), /*FoundDecl=*/nullptr, 805 // Actually canonicalizing a TemplateArgumentLoc is difficult so we 806 // simply omit the ArgsAsWritten 807 TC->getNamedConcept(), /*ArgsAsWritten=*/nullptr, NewIDC); 808 } 809 CanonParams.push_back(NewTTP); 810 } else if (const auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(*P)) { 811 QualType T = getCanonicalType(NTTP->getType()); 812 TypeSourceInfo *TInfo = getTrivialTypeSourceInfo(T); 813 NonTypeTemplateParmDecl *Param; 814 if (NTTP->isExpandedParameterPack()) { 815 SmallVector<QualType, 2> ExpandedTypes; 816 SmallVector<TypeSourceInfo *, 2> ExpandedTInfos; 817 for (unsigned I = 0, N = NTTP->getNumExpansionTypes(); I != N; ++I) { 818 ExpandedTypes.push_back(getCanonicalType(NTTP->getExpansionType(I))); 819 ExpandedTInfos.push_back( 820 getTrivialTypeSourceInfo(ExpandedTypes.back())); 821 } 822 823 Param = NonTypeTemplateParmDecl::Create(*this, getTranslationUnitDecl(), 824 SourceLocation(), 825 SourceLocation(), 826 NTTP->getDepth(), 827 NTTP->getPosition(), nullptr, 828 T, 829 TInfo, 830 ExpandedTypes, 831 ExpandedTInfos); 832 } else { 833 Param = NonTypeTemplateParmDecl::Create(*this, getTranslationUnitDecl(), 834 SourceLocation(), 835 SourceLocation(), 836 NTTP->getDepth(), 837 NTTP->getPosition(), nullptr, 838 T, 839 NTTP->isParameterPack(), 840 TInfo); 841 } 842 if (AutoType *AT = T->getContainedAutoType()) { 843 if (AT->isConstrained()) { 844 Param->setPlaceholderTypeConstraint( 845 canonicalizeImmediatelyDeclaredConstraint( 846 *this, NTTP->getPlaceholderTypeConstraint(), T)); 847 } 848 } 849 CanonParams.push_back(Param); 850 851 } else 852 CanonParams.push_back(getCanonicalTemplateTemplateParmDecl( 853 cast<TemplateTemplateParmDecl>(*P))); 854 } 855 856 Expr *CanonRequiresClause = nullptr; 857 if (Expr *RequiresClause = TTP->getTemplateParameters()->getRequiresClause()) 858 CanonRequiresClause = RequiresClause; 859 860 TemplateTemplateParmDecl *CanonTTP 861 = TemplateTemplateParmDecl::Create(*this, getTranslationUnitDecl(), 862 SourceLocation(), TTP->getDepth(), 863 TTP->getPosition(), 864 TTP->isParameterPack(), 865 nullptr, 866 TemplateParameterList::Create(*this, SourceLocation(), 867 SourceLocation(), 868 CanonParams, 869 SourceLocation(), 870 CanonRequiresClause)); 871 872 // Get the new insert position for the node we care about. 873 Canonical = CanonTemplateTemplateParms.FindNodeOrInsertPos(ID, InsertPos); 874 assert(!Canonical && "Shouldn't be in the map!"); 875 (void)Canonical; 876 877 // Create the canonical template template parameter entry. 878 Canonical = new (*this) CanonicalTemplateTemplateParm(CanonTTP); 879 CanonTemplateTemplateParms.InsertNode(Canonical, InsertPos); 880 return CanonTTP; 881 } 882 883 TargetCXXABI::Kind ASTContext::getCXXABIKind() const { 884 auto Kind = getTargetInfo().getCXXABI().getKind(); 885 return getLangOpts().CXXABI.getValueOr(Kind); 886 } 887 888 CXXABI *ASTContext::createCXXABI(const TargetInfo &T) { 889 if (!LangOpts.CPlusPlus) return nullptr; 890 891 switch (getCXXABIKind()) { 892 case TargetCXXABI::AppleARM64: 893 case TargetCXXABI::Fuchsia: 894 case TargetCXXABI::GenericARM: // Same as Itanium at this level 895 case TargetCXXABI::iOS: 896 case TargetCXXABI::WatchOS: 897 case TargetCXXABI::GenericAArch64: 898 case TargetCXXABI::GenericMIPS: 899 case TargetCXXABI::GenericItanium: 900 case TargetCXXABI::WebAssembly: 901 case TargetCXXABI::XL: 902 return CreateItaniumCXXABI(*this); 903 case TargetCXXABI::Microsoft: 904 return CreateMicrosoftCXXABI(*this); 905 } 906 llvm_unreachable("Invalid CXXABI type!"); 907 } 908 909 interp::Context &ASTContext::getInterpContext() { 910 if (!InterpContext) { 911 InterpContext.reset(new interp::Context(*this)); 912 } 913 return *InterpContext.get(); 914 } 915 916 ParentMapContext &ASTContext::getParentMapContext() { 917 if (!ParentMapCtx) 918 ParentMapCtx.reset(new ParentMapContext(*this)); 919 return *ParentMapCtx.get(); 920 } 921 922 static const LangASMap *getAddressSpaceMap(const TargetInfo &T, 923 const LangOptions &LOpts) { 924 if (LOpts.FakeAddressSpaceMap) { 925 // The fake address space map must have a distinct entry for each 926 // language-specific address space. 927 static const unsigned FakeAddrSpaceMap[] = { 928 0, // Default 929 1, // opencl_global 930 3, // opencl_local 931 2, // opencl_constant 932 0, // opencl_private 933 4, // opencl_generic 934 5, // opencl_global_device 935 6, // opencl_global_host 936 7, // cuda_device 937 8, // cuda_constant 938 9, // cuda_shared 939 1, // sycl_global 940 5, // sycl_global_device 941 6, // sycl_global_host 942 3, // sycl_local 943 0, // sycl_private 944 10, // ptr32_sptr 945 11, // ptr32_uptr 946 12 // ptr64 947 }; 948 return &FakeAddrSpaceMap; 949 } else { 950 return &T.getAddressSpaceMap(); 951 } 952 } 953 954 static bool isAddrSpaceMapManglingEnabled(const TargetInfo &TI, 955 const LangOptions &LangOpts) { 956 switch (LangOpts.getAddressSpaceMapMangling()) { 957 case LangOptions::ASMM_Target: 958 return TI.useAddressSpaceMapMangling(); 959 case LangOptions::ASMM_On: 960 return true; 961 case LangOptions::ASMM_Off: 962 return false; 963 } 964 llvm_unreachable("getAddressSpaceMapMangling() doesn't cover anything."); 965 } 966 967 ASTContext::ASTContext(LangOptions &LOpts, SourceManager &SM, 968 IdentifierTable &idents, SelectorTable &sels, 969 Builtin::Context &builtins, TranslationUnitKind TUKind) 970 : ConstantArrayTypes(this_()), FunctionProtoTypes(this_()), 971 TemplateSpecializationTypes(this_()), 972 DependentTemplateSpecializationTypes(this_()), AutoTypes(this_()), 973 SubstTemplateTemplateParmPacks(this_()), 974 CanonTemplateTemplateParms(this_()), SourceMgr(SM), LangOpts(LOpts), 975 NoSanitizeL(new NoSanitizeList(LangOpts.NoSanitizeFiles, SM)), 976 XRayFilter(new XRayFunctionFilter(LangOpts.XRayAlwaysInstrumentFiles, 977 LangOpts.XRayNeverInstrumentFiles, 978 LangOpts.XRayAttrListFiles, SM)), 979 ProfList(new ProfileList(LangOpts.ProfileListFiles, SM)), 980 PrintingPolicy(LOpts), Idents(idents), Selectors(sels), 981 BuiltinInfo(builtins), TUKind(TUKind), DeclarationNames(*this), 982 Comments(SM), CommentCommandTraits(BumpAlloc, LOpts.CommentOpts), 983 CompCategories(this_()), LastSDM(nullptr, 0) { 984 addTranslationUnitDecl(); 985 } 986 987 ASTContext::~ASTContext() { 988 // Release the DenseMaps associated with DeclContext objects. 989 // FIXME: Is this the ideal solution? 990 ReleaseDeclContextMaps(); 991 992 // Call all of the deallocation functions on all of their targets. 993 for (auto &Pair : Deallocations) 994 (Pair.first)(Pair.second); 995 996 // ASTRecordLayout objects in ASTRecordLayouts must always be destroyed 997 // because they can contain DenseMaps. 998 for (llvm::DenseMap<const ObjCContainerDecl*, 999 const ASTRecordLayout*>::iterator 1000 I = ObjCLayouts.begin(), E = ObjCLayouts.end(); I != E; ) 1001 // Increment in loop to prevent using deallocated memory. 1002 if (auto *R = const_cast<ASTRecordLayout *>((I++)->second)) 1003 R->Destroy(*this); 1004 1005 for (llvm::DenseMap<const RecordDecl*, const ASTRecordLayout*>::iterator 1006 I = ASTRecordLayouts.begin(), E = ASTRecordLayouts.end(); I != E; ) { 1007 // Increment in loop to prevent using deallocated memory. 1008 if (auto *R = const_cast<ASTRecordLayout *>((I++)->second)) 1009 R->Destroy(*this); 1010 } 1011 1012 for (llvm::DenseMap<const Decl*, AttrVec*>::iterator A = DeclAttrs.begin(), 1013 AEnd = DeclAttrs.end(); 1014 A != AEnd; ++A) 1015 A->second->~AttrVec(); 1016 1017 for (const auto &Value : ModuleInitializers) 1018 Value.second->~PerModuleInitializers(); 1019 } 1020 1021 void ASTContext::setTraversalScope(const std::vector<Decl *> &TopLevelDecls) { 1022 TraversalScope = TopLevelDecls; 1023 getParentMapContext().clear(); 1024 } 1025 1026 void ASTContext::AddDeallocation(void (*Callback)(void *), void *Data) const { 1027 Deallocations.push_back({Callback, Data}); 1028 } 1029 1030 void 1031 ASTContext::setExternalSource(IntrusiveRefCntPtr<ExternalASTSource> Source) { 1032 ExternalSource = std::move(Source); 1033 } 1034 1035 void ASTContext::PrintStats() const { 1036 llvm::errs() << "\n*** AST Context Stats:\n"; 1037 llvm::errs() << " " << Types.size() << " types total.\n"; 1038 1039 unsigned counts[] = { 1040 #define TYPE(Name, Parent) 0, 1041 #define ABSTRACT_TYPE(Name, Parent) 1042 #include "clang/AST/TypeNodes.inc" 1043 0 // Extra 1044 }; 1045 1046 for (unsigned i = 0, e = Types.size(); i != e; ++i) { 1047 Type *T = Types[i]; 1048 counts[(unsigned)T->getTypeClass()]++; 1049 } 1050 1051 unsigned Idx = 0; 1052 unsigned TotalBytes = 0; 1053 #define TYPE(Name, Parent) \ 1054 if (counts[Idx]) \ 1055 llvm::errs() << " " << counts[Idx] << " " << #Name \ 1056 << " types, " << sizeof(Name##Type) << " each " \ 1057 << "(" << counts[Idx] * sizeof(Name##Type) \ 1058 << " bytes)\n"; \ 1059 TotalBytes += counts[Idx] * sizeof(Name##Type); \ 1060 ++Idx; 1061 #define ABSTRACT_TYPE(Name, Parent) 1062 #include "clang/AST/TypeNodes.inc" 1063 1064 llvm::errs() << "Total bytes = " << TotalBytes << "\n"; 1065 1066 // Implicit special member functions. 1067 llvm::errs() << NumImplicitDefaultConstructorsDeclared << "/" 1068 << NumImplicitDefaultConstructors 1069 << " implicit default constructors created\n"; 1070 llvm::errs() << NumImplicitCopyConstructorsDeclared << "/" 1071 << NumImplicitCopyConstructors 1072 << " implicit copy constructors created\n"; 1073 if (getLangOpts().CPlusPlus) 1074 llvm::errs() << NumImplicitMoveConstructorsDeclared << "/" 1075 << NumImplicitMoveConstructors 1076 << " implicit move constructors created\n"; 1077 llvm::errs() << NumImplicitCopyAssignmentOperatorsDeclared << "/" 1078 << NumImplicitCopyAssignmentOperators 1079 << " implicit copy assignment operators created\n"; 1080 if (getLangOpts().CPlusPlus) 1081 llvm::errs() << NumImplicitMoveAssignmentOperatorsDeclared << "/" 1082 << NumImplicitMoveAssignmentOperators 1083 << " implicit move assignment operators created\n"; 1084 llvm::errs() << NumImplicitDestructorsDeclared << "/" 1085 << NumImplicitDestructors 1086 << " implicit destructors created\n"; 1087 1088 if (ExternalSource) { 1089 llvm::errs() << "\n"; 1090 ExternalSource->PrintStats(); 1091 } 1092 1093 BumpAlloc.PrintStats(); 1094 } 1095 1096 void ASTContext::mergeDefinitionIntoModule(NamedDecl *ND, Module *M, 1097 bool NotifyListeners) { 1098 if (NotifyListeners) 1099 if (auto *Listener = getASTMutationListener()) 1100 Listener->RedefinedHiddenDefinition(ND, M); 1101 1102 MergedDefModules[cast<NamedDecl>(ND->getCanonicalDecl())].push_back(M); 1103 } 1104 1105 void ASTContext::deduplicateMergedDefinitonsFor(NamedDecl *ND) { 1106 auto It = MergedDefModules.find(cast<NamedDecl>(ND->getCanonicalDecl())); 1107 if (It == MergedDefModules.end()) 1108 return; 1109 1110 auto &Merged = It->second; 1111 llvm::DenseSet<Module*> Found; 1112 for (Module *&M : Merged) 1113 if (!Found.insert(M).second) 1114 M = nullptr; 1115 Merged.erase(std::remove(Merged.begin(), Merged.end(), nullptr), Merged.end()); 1116 } 1117 1118 ArrayRef<Module *> 1119 ASTContext::getModulesWithMergedDefinition(const NamedDecl *Def) { 1120 auto MergedIt = 1121 MergedDefModules.find(cast<NamedDecl>(Def->getCanonicalDecl())); 1122 if (MergedIt == MergedDefModules.end()) 1123 return None; 1124 return MergedIt->second; 1125 } 1126 1127 void ASTContext::PerModuleInitializers::resolve(ASTContext &Ctx) { 1128 if (LazyInitializers.empty()) 1129 return; 1130 1131 auto *Source = Ctx.getExternalSource(); 1132 assert(Source && "lazy initializers but no external source"); 1133 1134 auto LazyInits = std::move(LazyInitializers); 1135 LazyInitializers.clear(); 1136 1137 for (auto ID : LazyInits) 1138 Initializers.push_back(Source->GetExternalDecl(ID)); 1139 1140 assert(LazyInitializers.empty() && 1141 "GetExternalDecl for lazy module initializer added more inits"); 1142 } 1143 1144 void ASTContext::addModuleInitializer(Module *M, Decl *D) { 1145 // One special case: if we add a module initializer that imports another 1146 // module, and that module's only initializer is an ImportDecl, simplify. 1147 if (const auto *ID = dyn_cast<ImportDecl>(D)) { 1148 auto It = ModuleInitializers.find(ID->getImportedModule()); 1149 1150 // Maybe the ImportDecl does nothing at all. (Common case.) 1151 if (It == ModuleInitializers.end()) 1152 return; 1153 1154 // Maybe the ImportDecl only imports another ImportDecl. 1155 auto &Imported = *It->second; 1156 if (Imported.Initializers.size() + Imported.LazyInitializers.size() == 1) { 1157 Imported.resolve(*this); 1158 auto *OnlyDecl = Imported.Initializers.front(); 1159 if (isa<ImportDecl>(OnlyDecl)) 1160 D = OnlyDecl; 1161 } 1162 } 1163 1164 auto *&Inits = ModuleInitializers[M]; 1165 if (!Inits) 1166 Inits = new (*this) PerModuleInitializers; 1167 Inits->Initializers.push_back(D); 1168 } 1169 1170 void ASTContext::addLazyModuleInitializers(Module *M, ArrayRef<uint32_t> IDs) { 1171 auto *&Inits = ModuleInitializers[M]; 1172 if (!Inits) 1173 Inits = new (*this) PerModuleInitializers; 1174 Inits->LazyInitializers.insert(Inits->LazyInitializers.end(), 1175 IDs.begin(), IDs.end()); 1176 } 1177 1178 ArrayRef<Decl *> ASTContext::getModuleInitializers(Module *M) { 1179 auto It = ModuleInitializers.find(M); 1180 if (It == ModuleInitializers.end()) 1181 return None; 1182 1183 auto *Inits = It->second; 1184 Inits->resolve(*this); 1185 return Inits->Initializers; 1186 } 1187 1188 ExternCContextDecl *ASTContext::getExternCContextDecl() const { 1189 if (!ExternCContext) 1190 ExternCContext = ExternCContextDecl::Create(*this, getTranslationUnitDecl()); 1191 1192 return ExternCContext; 1193 } 1194 1195 BuiltinTemplateDecl * 1196 ASTContext::buildBuiltinTemplateDecl(BuiltinTemplateKind BTK, 1197 const IdentifierInfo *II) const { 1198 auto *BuiltinTemplate = 1199 BuiltinTemplateDecl::Create(*this, getTranslationUnitDecl(), II, BTK); 1200 BuiltinTemplate->setImplicit(); 1201 getTranslationUnitDecl()->addDecl(BuiltinTemplate); 1202 1203 return BuiltinTemplate; 1204 } 1205 1206 BuiltinTemplateDecl * 1207 ASTContext::getMakeIntegerSeqDecl() const { 1208 if (!MakeIntegerSeqDecl) 1209 MakeIntegerSeqDecl = buildBuiltinTemplateDecl(BTK__make_integer_seq, 1210 getMakeIntegerSeqName()); 1211 return MakeIntegerSeqDecl; 1212 } 1213 1214 BuiltinTemplateDecl * 1215 ASTContext::getTypePackElementDecl() const { 1216 if (!TypePackElementDecl) 1217 TypePackElementDecl = buildBuiltinTemplateDecl(BTK__type_pack_element, 1218 getTypePackElementName()); 1219 return TypePackElementDecl; 1220 } 1221 1222 RecordDecl *ASTContext::buildImplicitRecord(StringRef Name, 1223 RecordDecl::TagKind TK) const { 1224 SourceLocation Loc; 1225 RecordDecl *NewDecl; 1226 if (getLangOpts().CPlusPlus) 1227 NewDecl = CXXRecordDecl::Create(*this, TK, getTranslationUnitDecl(), Loc, 1228 Loc, &Idents.get(Name)); 1229 else 1230 NewDecl = RecordDecl::Create(*this, TK, getTranslationUnitDecl(), Loc, Loc, 1231 &Idents.get(Name)); 1232 NewDecl->setImplicit(); 1233 NewDecl->addAttr(TypeVisibilityAttr::CreateImplicit( 1234 const_cast<ASTContext &>(*this), TypeVisibilityAttr::Default)); 1235 return NewDecl; 1236 } 1237 1238 TypedefDecl *ASTContext::buildImplicitTypedef(QualType T, 1239 StringRef Name) const { 1240 TypeSourceInfo *TInfo = getTrivialTypeSourceInfo(T); 1241 TypedefDecl *NewDecl = TypedefDecl::Create( 1242 const_cast<ASTContext &>(*this), getTranslationUnitDecl(), 1243 SourceLocation(), SourceLocation(), &Idents.get(Name), TInfo); 1244 NewDecl->setImplicit(); 1245 return NewDecl; 1246 } 1247 1248 TypedefDecl *ASTContext::getInt128Decl() const { 1249 if (!Int128Decl) 1250 Int128Decl = buildImplicitTypedef(Int128Ty, "__int128_t"); 1251 return Int128Decl; 1252 } 1253 1254 TypedefDecl *ASTContext::getUInt128Decl() const { 1255 if (!UInt128Decl) 1256 UInt128Decl = buildImplicitTypedef(UnsignedInt128Ty, "__uint128_t"); 1257 return UInt128Decl; 1258 } 1259 1260 void ASTContext::InitBuiltinType(CanQualType &R, BuiltinType::Kind K) { 1261 auto *Ty = new (*this, TypeAlignment) BuiltinType(K); 1262 R = CanQualType::CreateUnsafe(QualType(Ty, 0)); 1263 Types.push_back(Ty); 1264 } 1265 1266 void ASTContext::InitBuiltinTypes(const TargetInfo &Target, 1267 const TargetInfo *AuxTarget) { 1268 assert((!this->Target || this->Target == &Target) && 1269 "Incorrect target reinitialization"); 1270 assert(VoidTy.isNull() && "Context reinitialized?"); 1271 1272 this->Target = &Target; 1273 this->AuxTarget = AuxTarget; 1274 1275 ABI.reset(createCXXABI(Target)); 1276 AddrSpaceMap = getAddressSpaceMap(Target, LangOpts); 1277 AddrSpaceMapMangling = isAddrSpaceMapManglingEnabled(Target, LangOpts); 1278 1279 // C99 6.2.5p19. 1280 InitBuiltinType(VoidTy, BuiltinType::Void); 1281 1282 // C99 6.2.5p2. 1283 InitBuiltinType(BoolTy, BuiltinType::Bool); 1284 // C99 6.2.5p3. 1285 if (LangOpts.CharIsSigned) 1286 InitBuiltinType(CharTy, BuiltinType::Char_S); 1287 else 1288 InitBuiltinType(CharTy, BuiltinType::Char_U); 1289 // C99 6.2.5p4. 1290 InitBuiltinType(SignedCharTy, BuiltinType::SChar); 1291 InitBuiltinType(ShortTy, BuiltinType::Short); 1292 InitBuiltinType(IntTy, BuiltinType::Int); 1293 InitBuiltinType(LongTy, BuiltinType::Long); 1294 InitBuiltinType(LongLongTy, BuiltinType::LongLong); 1295 1296 // C99 6.2.5p6. 1297 InitBuiltinType(UnsignedCharTy, BuiltinType::UChar); 1298 InitBuiltinType(UnsignedShortTy, BuiltinType::UShort); 1299 InitBuiltinType(UnsignedIntTy, BuiltinType::UInt); 1300 InitBuiltinType(UnsignedLongTy, BuiltinType::ULong); 1301 InitBuiltinType(UnsignedLongLongTy, BuiltinType::ULongLong); 1302 1303 // C99 6.2.5p10. 1304 InitBuiltinType(FloatTy, BuiltinType::Float); 1305 InitBuiltinType(DoubleTy, BuiltinType::Double); 1306 InitBuiltinType(LongDoubleTy, BuiltinType::LongDouble); 1307 1308 // GNU extension, __float128 for IEEE quadruple precision 1309 InitBuiltinType(Float128Ty, BuiltinType::Float128); 1310 1311 // C11 extension ISO/IEC TS 18661-3 1312 InitBuiltinType(Float16Ty, BuiltinType::Float16); 1313 1314 // ISO/IEC JTC1 SC22 WG14 N1169 Extension 1315 InitBuiltinType(ShortAccumTy, BuiltinType::ShortAccum); 1316 InitBuiltinType(AccumTy, BuiltinType::Accum); 1317 InitBuiltinType(LongAccumTy, BuiltinType::LongAccum); 1318 InitBuiltinType(UnsignedShortAccumTy, BuiltinType::UShortAccum); 1319 InitBuiltinType(UnsignedAccumTy, BuiltinType::UAccum); 1320 InitBuiltinType(UnsignedLongAccumTy, BuiltinType::ULongAccum); 1321 InitBuiltinType(ShortFractTy, BuiltinType::ShortFract); 1322 InitBuiltinType(FractTy, BuiltinType::Fract); 1323 InitBuiltinType(LongFractTy, BuiltinType::LongFract); 1324 InitBuiltinType(UnsignedShortFractTy, BuiltinType::UShortFract); 1325 InitBuiltinType(UnsignedFractTy, BuiltinType::UFract); 1326 InitBuiltinType(UnsignedLongFractTy, BuiltinType::ULongFract); 1327 InitBuiltinType(SatShortAccumTy, BuiltinType::SatShortAccum); 1328 InitBuiltinType(SatAccumTy, BuiltinType::SatAccum); 1329 InitBuiltinType(SatLongAccumTy, BuiltinType::SatLongAccum); 1330 InitBuiltinType(SatUnsignedShortAccumTy, BuiltinType::SatUShortAccum); 1331 InitBuiltinType(SatUnsignedAccumTy, BuiltinType::SatUAccum); 1332 InitBuiltinType(SatUnsignedLongAccumTy, BuiltinType::SatULongAccum); 1333 InitBuiltinType(SatShortFractTy, BuiltinType::SatShortFract); 1334 InitBuiltinType(SatFractTy, BuiltinType::SatFract); 1335 InitBuiltinType(SatLongFractTy, BuiltinType::SatLongFract); 1336 InitBuiltinType(SatUnsignedShortFractTy, BuiltinType::SatUShortFract); 1337 InitBuiltinType(SatUnsignedFractTy, BuiltinType::SatUFract); 1338 InitBuiltinType(SatUnsignedLongFractTy, BuiltinType::SatULongFract); 1339 1340 // GNU extension, 128-bit integers. 1341 InitBuiltinType(Int128Ty, BuiltinType::Int128); 1342 InitBuiltinType(UnsignedInt128Ty, BuiltinType::UInt128); 1343 1344 // C++ 3.9.1p5 1345 if (TargetInfo::isTypeSigned(Target.getWCharType())) 1346 InitBuiltinType(WCharTy, BuiltinType::WChar_S); 1347 else // -fshort-wchar makes wchar_t be unsigned. 1348 InitBuiltinType(WCharTy, BuiltinType::WChar_U); 1349 if (LangOpts.CPlusPlus && LangOpts.WChar) 1350 WideCharTy = WCharTy; 1351 else { 1352 // C99 (or C++ using -fno-wchar). 1353 WideCharTy = getFromTargetType(Target.getWCharType()); 1354 } 1355 1356 WIntTy = getFromTargetType(Target.getWIntType()); 1357 1358 // C++20 (proposed) 1359 InitBuiltinType(Char8Ty, BuiltinType::Char8); 1360 1361 if (LangOpts.CPlusPlus) // C++0x 3.9.1p5, extension for C++ 1362 InitBuiltinType(Char16Ty, BuiltinType::Char16); 1363 else // C99 1364 Char16Ty = getFromTargetType(Target.getChar16Type()); 1365 1366 if (LangOpts.CPlusPlus) // C++0x 3.9.1p5, extension for C++ 1367 InitBuiltinType(Char32Ty, BuiltinType::Char32); 1368 else // C99 1369 Char32Ty = getFromTargetType(Target.getChar32Type()); 1370 1371 // Placeholder type for type-dependent expressions whose type is 1372 // completely unknown. No code should ever check a type against 1373 // DependentTy and users should never see it; however, it is here to 1374 // help diagnose failures to properly check for type-dependent 1375 // expressions. 1376 InitBuiltinType(DependentTy, BuiltinType::Dependent); 1377 1378 // Placeholder type for functions. 1379 InitBuiltinType(OverloadTy, BuiltinType::Overload); 1380 1381 // Placeholder type for bound members. 1382 InitBuiltinType(BoundMemberTy, BuiltinType::BoundMember); 1383 1384 // Placeholder type for pseudo-objects. 1385 InitBuiltinType(PseudoObjectTy, BuiltinType::PseudoObject); 1386 1387 // "any" type; useful for debugger-like clients. 1388 InitBuiltinType(UnknownAnyTy, BuiltinType::UnknownAny); 1389 1390 // Placeholder type for unbridged ARC casts. 1391 InitBuiltinType(ARCUnbridgedCastTy, BuiltinType::ARCUnbridgedCast); 1392 1393 // Placeholder type for builtin functions. 1394 InitBuiltinType(BuiltinFnTy, BuiltinType::BuiltinFn); 1395 1396 // Placeholder type for OMP array sections. 1397 if (LangOpts.OpenMP) { 1398 InitBuiltinType(OMPArraySectionTy, BuiltinType::OMPArraySection); 1399 InitBuiltinType(OMPArrayShapingTy, BuiltinType::OMPArrayShaping); 1400 InitBuiltinType(OMPIteratorTy, BuiltinType::OMPIterator); 1401 } 1402 if (LangOpts.MatrixTypes) 1403 InitBuiltinType(IncompleteMatrixIdxTy, BuiltinType::IncompleteMatrixIdx); 1404 1405 // C99 6.2.5p11. 1406 FloatComplexTy = getComplexType(FloatTy); 1407 DoubleComplexTy = getComplexType(DoubleTy); 1408 LongDoubleComplexTy = getComplexType(LongDoubleTy); 1409 Float128ComplexTy = getComplexType(Float128Ty); 1410 1411 // Builtin types for 'id', 'Class', and 'SEL'. 1412 InitBuiltinType(ObjCBuiltinIdTy, BuiltinType::ObjCId); 1413 InitBuiltinType(ObjCBuiltinClassTy, BuiltinType::ObjCClass); 1414 InitBuiltinType(ObjCBuiltinSelTy, BuiltinType::ObjCSel); 1415 1416 if (LangOpts.OpenCL) { 1417 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \ 1418 InitBuiltinType(SingletonId, BuiltinType::Id); 1419 #include "clang/Basic/OpenCLImageTypes.def" 1420 1421 InitBuiltinType(OCLSamplerTy, BuiltinType::OCLSampler); 1422 InitBuiltinType(OCLEventTy, BuiltinType::OCLEvent); 1423 InitBuiltinType(OCLClkEventTy, BuiltinType::OCLClkEvent); 1424 InitBuiltinType(OCLQueueTy, BuiltinType::OCLQueue); 1425 InitBuiltinType(OCLReserveIDTy, BuiltinType::OCLReserveID); 1426 1427 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \ 1428 InitBuiltinType(Id##Ty, BuiltinType::Id); 1429 #include "clang/Basic/OpenCLExtensionTypes.def" 1430 } 1431 1432 if (Target.hasAArch64SVETypes()) { 1433 #define SVE_TYPE(Name, Id, SingletonId) \ 1434 InitBuiltinType(SingletonId, BuiltinType::Id); 1435 #include "clang/Basic/AArch64SVEACLETypes.def" 1436 } 1437 1438 if (Target.getTriple().isPPC64() && 1439 Target.hasFeature("paired-vector-memops")) { 1440 if (Target.hasFeature("mma")) { 1441 #define PPC_VECTOR_MMA_TYPE(Name, Id, Size) \ 1442 InitBuiltinType(Id##Ty, BuiltinType::Id); 1443 #include "clang/Basic/PPCTypes.def" 1444 } 1445 #define PPC_VECTOR_VSX_TYPE(Name, Id, Size) \ 1446 InitBuiltinType(Id##Ty, BuiltinType::Id); 1447 #include "clang/Basic/PPCTypes.def" 1448 } 1449 1450 if (Target.hasRISCVVTypes()) { 1451 #define RVV_TYPE(Name, Id, SingletonId) \ 1452 InitBuiltinType(SingletonId, BuiltinType::Id); 1453 #include "clang/Basic/RISCVVTypes.def" 1454 } 1455 1456 // Builtin type for __objc_yes and __objc_no 1457 ObjCBuiltinBoolTy = (Target.useSignedCharForObjCBool() ? 1458 SignedCharTy : BoolTy); 1459 1460 ObjCConstantStringType = QualType(); 1461 1462 ObjCSuperType = QualType(); 1463 1464 // void * type 1465 if (LangOpts.OpenCLGenericAddressSpace) { 1466 auto Q = VoidTy.getQualifiers(); 1467 Q.setAddressSpace(LangAS::opencl_generic); 1468 VoidPtrTy = getPointerType(getCanonicalType( 1469 getQualifiedType(VoidTy.getUnqualifiedType(), Q))); 1470 } else { 1471 VoidPtrTy = getPointerType(VoidTy); 1472 } 1473 1474 // nullptr type (C++0x 2.14.7) 1475 InitBuiltinType(NullPtrTy, BuiltinType::NullPtr); 1476 1477 // half type (OpenCL 6.1.1.1) / ARM NEON __fp16 1478 InitBuiltinType(HalfTy, BuiltinType::Half); 1479 1480 InitBuiltinType(BFloat16Ty, BuiltinType::BFloat16); 1481 1482 // Builtin type used to help define __builtin_va_list. 1483 VaListTagDecl = nullptr; 1484 1485 // MSVC predeclares struct _GUID, and we need it to create MSGuidDecls. 1486 if (LangOpts.MicrosoftExt || LangOpts.Borland) { 1487 MSGuidTagDecl = buildImplicitRecord("_GUID"); 1488 getTranslationUnitDecl()->addDecl(MSGuidTagDecl); 1489 } 1490 } 1491 1492 DiagnosticsEngine &ASTContext::getDiagnostics() const { 1493 return SourceMgr.getDiagnostics(); 1494 } 1495 1496 AttrVec& ASTContext::getDeclAttrs(const Decl *D) { 1497 AttrVec *&Result = DeclAttrs[D]; 1498 if (!Result) { 1499 void *Mem = Allocate(sizeof(AttrVec)); 1500 Result = new (Mem) AttrVec; 1501 } 1502 1503 return *Result; 1504 } 1505 1506 /// Erase the attributes corresponding to the given declaration. 1507 void ASTContext::eraseDeclAttrs(const Decl *D) { 1508 llvm::DenseMap<const Decl*, AttrVec*>::iterator Pos = DeclAttrs.find(D); 1509 if (Pos != DeclAttrs.end()) { 1510 Pos->second->~AttrVec(); 1511 DeclAttrs.erase(Pos); 1512 } 1513 } 1514 1515 // FIXME: Remove ? 1516 MemberSpecializationInfo * 1517 ASTContext::getInstantiatedFromStaticDataMember(const VarDecl *Var) { 1518 assert(Var->isStaticDataMember() && "Not a static data member"); 1519 return getTemplateOrSpecializationInfo(Var) 1520 .dyn_cast<MemberSpecializationInfo *>(); 1521 } 1522 1523 ASTContext::TemplateOrSpecializationInfo 1524 ASTContext::getTemplateOrSpecializationInfo(const VarDecl *Var) { 1525 llvm::DenseMap<const VarDecl *, TemplateOrSpecializationInfo>::iterator Pos = 1526 TemplateOrInstantiation.find(Var); 1527 if (Pos == TemplateOrInstantiation.end()) 1528 return {}; 1529 1530 return Pos->second; 1531 } 1532 1533 void 1534 ASTContext::setInstantiatedFromStaticDataMember(VarDecl *Inst, VarDecl *Tmpl, 1535 TemplateSpecializationKind TSK, 1536 SourceLocation PointOfInstantiation) { 1537 assert(Inst->isStaticDataMember() && "Not a static data member"); 1538 assert(Tmpl->isStaticDataMember() && "Not a static data member"); 1539 setTemplateOrSpecializationInfo(Inst, new (*this) MemberSpecializationInfo( 1540 Tmpl, TSK, PointOfInstantiation)); 1541 } 1542 1543 void 1544 ASTContext::setTemplateOrSpecializationInfo(VarDecl *Inst, 1545 TemplateOrSpecializationInfo TSI) { 1546 assert(!TemplateOrInstantiation[Inst] && 1547 "Already noted what the variable was instantiated from"); 1548 TemplateOrInstantiation[Inst] = TSI; 1549 } 1550 1551 NamedDecl * 1552 ASTContext::getInstantiatedFromUsingDecl(NamedDecl *UUD) { 1553 auto Pos = InstantiatedFromUsingDecl.find(UUD); 1554 if (Pos == InstantiatedFromUsingDecl.end()) 1555 return nullptr; 1556 1557 return Pos->second; 1558 } 1559 1560 void 1561 ASTContext::setInstantiatedFromUsingDecl(NamedDecl *Inst, NamedDecl *Pattern) { 1562 assert((isa<UsingDecl>(Pattern) || 1563 isa<UnresolvedUsingValueDecl>(Pattern) || 1564 isa<UnresolvedUsingTypenameDecl>(Pattern)) && 1565 "pattern decl is not a using decl"); 1566 assert((isa<UsingDecl>(Inst) || 1567 isa<UnresolvedUsingValueDecl>(Inst) || 1568 isa<UnresolvedUsingTypenameDecl>(Inst)) && 1569 "instantiation did not produce a using decl"); 1570 assert(!InstantiatedFromUsingDecl[Inst] && "pattern already exists"); 1571 InstantiatedFromUsingDecl[Inst] = Pattern; 1572 } 1573 1574 UsingEnumDecl * 1575 ASTContext::getInstantiatedFromUsingEnumDecl(UsingEnumDecl *UUD) { 1576 auto Pos = InstantiatedFromUsingEnumDecl.find(UUD); 1577 if (Pos == InstantiatedFromUsingEnumDecl.end()) 1578 return nullptr; 1579 1580 return Pos->second; 1581 } 1582 1583 void ASTContext::setInstantiatedFromUsingEnumDecl(UsingEnumDecl *Inst, 1584 UsingEnumDecl *Pattern) { 1585 assert(!InstantiatedFromUsingEnumDecl[Inst] && "pattern already exists"); 1586 InstantiatedFromUsingEnumDecl[Inst] = Pattern; 1587 } 1588 1589 UsingShadowDecl * 1590 ASTContext::getInstantiatedFromUsingShadowDecl(UsingShadowDecl *Inst) { 1591 llvm::DenseMap<UsingShadowDecl*, UsingShadowDecl*>::const_iterator Pos 1592 = InstantiatedFromUsingShadowDecl.find(Inst); 1593 if (Pos == InstantiatedFromUsingShadowDecl.end()) 1594 return nullptr; 1595 1596 return Pos->second; 1597 } 1598 1599 void 1600 ASTContext::setInstantiatedFromUsingShadowDecl(UsingShadowDecl *Inst, 1601 UsingShadowDecl *Pattern) { 1602 assert(!InstantiatedFromUsingShadowDecl[Inst] && "pattern already exists"); 1603 InstantiatedFromUsingShadowDecl[Inst] = Pattern; 1604 } 1605 1606 FieldDecl *ASTContext::getInstantiatedFromUnnamedFieldDecl(FieldDecl *Field) { 1607 llvm::DenseMap<FieldDecl *, FieldDecl *>::iterator Pos 1608 = InstantiatedFromUnnamedFieldDecl.find(Field); 1609 if (Pos == InstantiatedFromUnnamedFieldDecl.end()) 1610 return nullptr; 1611 1612 return Pos->second; 1613 } 1614 1615 void ASTContext::setInstantiatedFromUnnamedFieldDecl(FieldDecl *Inst, 1616 FieldDecl *Tmpl) { 1617 assert(!Inst->getDeclName() && "Instantiated field decl is not unnamed"); 1618 assert(!Tmpl->getDeclName() && "Template field decl is not unnamed"); 1619 assert(!InstantiatedFromUnnamedFieldDecl[Inst] && 1620 "Already noted what unnamed field was instantiated from"); 1621 1622 InstantiatedFromUnnamedFieldDecl[Inst] = Tmpl; 1623 } 1624 1625 ASTContext::overridden_cxx_method_iterator 1626 ASTContext::overridden_methods_begin(const CXXMethodDecl *Method) const { 1627 return overridden_methods(Method).begin(); 1628 } 1629 1630 ASTContext::overridden_cxx_method_iterator 1631 ASTContext::overridden_methods_end(const CXXMethodDecl *Method) const { 1632 return overridden_methods(Method).end(); 1633 } 1634 1635 unsigned 1636 ASTContext::overridden_methods_size(const CXXMethodDecl *Method) const { 1637 auto Range = overridden_methods(Method); 1638 return Range.end() - Range.begin(); 1639 } 1640 1641 ASTContext::overridden_method_range 1642 ASTContext::overridden_methods(const CXXMethodDecl *Method) const { 1643 llvm::DenseMap<const CXXMethodDecl *, CXXMethodVector>::const_iterator Pos = 1644 OverriddenMethods.find(Method->getCanonicalDecl()); 1645 if (Pos == OverriddenMethods.end()) 1646 return overridden_method_range(nullptr, nullptr); 1647 return overridden_method_range(Pos->second.begin(), Pos->second.end()); 1648 } 1649 1650 void ASTContext::addOverriddenMethod(const CXXMethodDecl *Method, 1651 const CXXMethodDecl *Overridden) { 1652 assert(Method->isCanonicalDecl() && Overridden->isCanonicalDecl()); 1653 OverriddenMethods[Method].push_back(Overridden); 1654 } 1655 1656 void ASTContext::getOverriddenMethods( 1657 const NamedDecl *D, 1658 SmallVectorImpl<const NamedDecl *> &Overridden) const { 1659 assert(D); 1660 1661 if (const auto *CXXMethod = dyn_cast<CXXMethodDecl>(D)) { 1662 Overridden.append(overridden_methods_begin(CXXMethod), 1663 overridden_methods_end(CXXMethod)); 1664 return; 1665 } 1666 1667 const auto *Method = dyn_cast<ObjCMethodDecl>(D); 1668 if (!Method) 1669 return; 1670 1671 SmallVector<const ObjCMethodDecl *, 8> OverDecls; 1672 Method->getOverriddenMethods(OverDecls); 1673 Overridden.append(OverDecls.begin(), OverDecls.end()); 1674 } 1675 1676 void ASTContext::addedLocalImportDecl(ImportDecl *Import) { 1677 assert(!Import->getNextLocalImport() && 1678 "Import declaration already in the chain"); 1679 assert(!Import->isFromASTFile() && "Non-local import declaration"); 1680 if (!FirstLocalImport) { 1681 FirstLocalImport = Import; 1682 LastLocalImport = Import; 1683 return; 1684 } 1685 1686 LastLocalImport->setNextLocalImport(Import); 1687 LastLocalImport = Import; 1688 } 1689 1690 //===----------------------------------------------------------------------===// 1691 // Type Sizing and Analysis 1692 //===----------------------------------------------------------------------===// 1693 1694 /// getFloatTypeSemantics - Return the APFloat 'semantics' for the specified 1695 /// scalar floating point type. 1696 const llvm::fltSemantics &ASTContext::getFloatTypeSemantics(QualType T) const { 1697 switch (T->castAs<BuiltinType>()->getKind()) { 1698 default: 1699 llvm_unreachable("Not a floating point type!"); 1700 case BuiltinType::BFloat16: 1701 return Target->getBFloat16Format(); 1702 case BuiltinType::Float16: 1703 case BuiltinType::Half: 1704 return Target->getHalfFormat(); 1705 case BuiltinType::Float: return Target->getFloatFormat(); 1706 case BuiltinType::Double: return Target->getDoubleFormat(); 1707 case BuiltinType::LongDouble: 1708 if (getLangOpts().OpenMP && getLangOpts().OpenMPIsDevice) 1709 return AuxTarget->getLongDoubleFormat(); 1710 return Target->getLongDoubleFormat(); 1711 case BuiltinType::Float128: 1712 if (getLangOpts().OpenMP && getLangOpts().OpenMPIsDevice) 1713 return AuxTarget->getFloat128Format(); 1714 return Target->getFloat128Format(); 1715 } 1716 } 1717 1718 CharUnits ASTContext::getDeclAlign(const Decl *D, bool ForAlignof) const { 1719 unsigned Align = Target->getCharWidth(); 1720 1721 bool UseAlignAttrOnly = false; 1722 if (unsigned AlignFromAttr = D->getMaxAlignment()) { 1723 Align = AlignFromAttr; 1724 1725 // __attribute__((aligned)) can increase or decrease alignment 1726 // *except* on a struct or struct member, where it only increases 1727 // alignment unless 'packed' is also specified. 1728 // 1729 // It is an error for alignas to decrease alignment, so we can 1730 // ignore that possibility; Sema should diagnose it. 1731 if (isa<FieldDecl>(D)) { 1732 UseAlignAttrOnly = D->hasAttr<PackedAttr>() || 1733 cast<FieldDecl>(D)->getParent()->hasAttr<PackedAttr>(); 1734 } else { 1735 UseAlignAttrOnly = true; 1736 } 1737 } 1738 else if (isa<FieldDecl>(D)) 1739 UseAlignAttrOnly = 1740 D->hasAttr<PackedAttr>() || 1741 cast<FieldDecl>(D)->getParent()->hasAttr<PackedAttr>(); 1742 1743 // If we're using the align attribute only, just ignore everything 1744 // else about the declaration and its type. 1745 if (UseAlignAttrOnly) { 1746 // do nothing 1747 } else if (const auto *VD = dyn_cast<ValueDecl>(D)) { 1748 QualType T = VD->getType(); 1749 if (const auto *RT = T->getAs<ReferenceType>()) { 1750 if (ForAlignof) 1751 T = RT->getPointeeType(); 1752 else 1753 T = getPointerType(RT->getPointeeType()); 1754 } 1755 QualType BaseT = getBaseElementType(T); 1756 if (T->isFunctionType()) 1757 Align = getTypeInfoImpl(T.getTypePtr()).Align; 1758 else if (!BaseT->isIncompleteType()) { 1759 // Adjust alignments of declarations with array type by the 1760 // large-array alignment on the target. 1761 if (const ArrayType *arrayType = getAsArrayType(T)) { 1762 unsigned MinWidth = Target->getLargeArrayMinWidth(); 1763 if (!ForAlignof && MinWidth) { 1764 if (isa<VariableArrayType>(arrayType)) 1765 Align = std::max(Align, Target->getLargeArrayAlign()); 1766 else if (isa<ConstantArrayType>(arrayType) && 1767 MinWidth <= getTypeSize(cast<ConstantArrayType>(arrayType))) 1768 Align = std::max(Align, Target->getLargeArrayAlign()); 1769 } 1770 } 1771 Align = std::max(Align, getPreferredTypeAlign(T.getTypePtr())); 1772 if (BaseT.getQualifiers().hasUnaligned()) 1773 Align = Target->getCharWidth(); 1774 if (const auto *VD = dyn_cast<VarDecl>(D)) { 1775 if (VD->hasGlobalStorage() && !ForAlignof) { 1776 uint64_t TypeSize = getTypeSize(T.getTypePtr()); 1777 Align = std::max(Align, getTargetInfo().getMinGlobalAlign(TypeSize)); 1778 } 1779 } 1780 } 1781 1782 // Fields can be subject to extra alignment constraints, like if 1783 // the field is packed, the struct is packed, or the struct has a 1784 // a max-field-alignment constraint (#pragma pack). So calculate 1785 // the actual alignment of the field within the struct, and then 1786 // (as we're expected to) constrain that by the alignment of the type. 1787 if (const auto *Field = dyn_cast<FieldDecl>(VD)) { 1788 const RecordDecl *Parent = Field->getParent(); 1789 // We can only produce a sensible answer if the record is valid. 1790 if (!Parent->isInvalidDecl()) { 1791 const ASTRecordLayout &Layout = getASTRecordLayout(Parent); 1792 1793 // Start with the record's overall alignment. 1794 unsigned FieldAlign = toBits(Layout.getAlignment()); 1795 1796 // Use the GCD of that and the offset within the record. 1797 uint64_t Offset = Layout.getFieldOffset(Field->getFieldIndex()); 1798 if (Offset > 0) { 1799 // Alignment is always a power of 2, so the GCD will be a power of 2, 1800 // which means we get to do this crazy thing instead of Euclid's. 1801 uint64_t LowBitOfOffset = Offset & (~Offset + 1); 1802 if (LowBitOfOffset < FieldAlign) 1803 FieldAlign = static_cast<unsigned>(LowBitOfOffset); 1804 } 1805 1806 Align = std::min(Align, FieldAlign); 1807 } 1808 } 1809 } 1810 1811 // Some targets have hard limitation on the maximum requestable alignment in 1812 // aligned attribute for static variables. 1813 const unsigned MaxAlignedAttr = getTargetInfo().getMaxAlignedAttribute(); 1814 const auto *VD = dyn_cast<VarDecl>(D); 1815 if (MaxAlignedAttr && VD && VD->getStorageClass() == SC_Static) 1816 Align = std::min(Align, MaxAlignedAttr); 1817 1818 return toCharUnitsFromBits(Align); 1819 } 1820 1821 CharUnits ASTContext::getExnObjectAlignment() const { 1822 return toCharUnitsFromBits(Target->getExnObjectAlignment()); 1823 } 1824 1825 // getTypeInfoDataSizeInChars - Return the size of a type, in 1826 // chars. If the type is a record, its data size is returned. This is 1827 // the size of the memcpy that's performed when assigning this type 1828 // using a trivial copy/move assignment operator. 1829 TypeInfoChars ASTContext::getTypeInfoDataSizeInChars(QualType T) const { 1830 TypeInfoChars Info = getTypeInfoInChars(T); 1831 1832 // In C++, objects can sometimes be allocated into the tail padding 1833 // of a base-class subobject. We decide whether that's possible 1834 // during class layout, so here we can just trust the layout results. 1835 if (getLangOpts().CPlusPlus) { 1836 if (const auto *RT = T->getAs<RecordType>()) { 1837 const ASTRecordLayout &layout = getASTRecordLayout(RT->getDecl()); 1838 Info.Width = layout.getDataSize(); 1839 } 1840 } 1841 1842 return Info; 1843 } 1844 1845 /// getConstantArrayInfoInChars - Performing the computation in CharUnits 1846 /// instead of in bits prevents overflowing the uint64_t for some large arrays. 1847 TypeInfoChars 1848 static getConstantArrayInfoInChars(const ASTContext &Context, 1849 const ConstantArrayType *CAT) { 1850 TypeInfoChars EltInfo = Context.getTypeInfoInChars(CAT->getElementType()); 1851 uint64_t Size = CAT->getSize().getZExtValue(); 1852 assert((Size == 0 || static_cast<uint64_t>(EltInfo.Width.getQuantity()) <= 1853 (uint64_t)(-1)/Size) && 1854 "Overflow in array type char size evaluation"); 1855 uint64_t Width = EltInfo.Width.getQuantity() * Size; 1856 unsigned Align = EltInfo.Align.getQuantity(); 1857 if (!Context.getTargetInfo().getCXXABI().isMicrosoft() || 1858 Context.getTargetInfo().getPointerWidth(0) == 64) 1859 Width = llvm::alignTo(Width, Align); 1860 return TypeInfoChars(CharUnits::fromQuantity(Width), 1861 CharUnits::fromQuantity(Align), 1862 EltInfo.AlignIsRequired); 1863 } 1864 1865 TypeInfoChars ASTContext::getTypeInfoInChars(const Type *T) const { 1866 if (const auto *CAT = dyn_cast<ConstantArrayType>(T)) 1867 return getConstantArrayInfoInChars(*this, CAT); 1868 TypeInfo Info = getTypeInfo(T); 1869 return TypeInfoChars(toCharUnitsFromBits(Info.Width), 1870 toCharUnitsFromBits(Info.Align), 1871 Info.AlignIsRequired); 1872 } 1873 1874 TypeInfoChars ASTContext::getTypeInfoInChars(QualType T) const { 1875 return getTypeInfoInChars(T.getTypePtr()); 1876 } 1877 1878 bool ASTContext::isAlignmentRequired(const Type *T) const { 1879 return getTypeInfo(T).AlignIsRequired; 1880 } 1881 1882 bool ASTContext::isAlignmentRequired(QualType T) const { 1883 return isAlignmentRequired(T.getTypePtr()); 1884 } 1885 1886 unsigned ASTContext::getTypeAlignIfKnown(QualType T, 1887 bool NeedsPreferredAlignment) const { 1888 // An alignment on a typedef overrides anything else. 1889 if (const auto *TT = T->getAs<TypedefType>()) 1890 if (unsigned Align = TT->getDecl()->getMaxAlignment()) 1891 return Align; 1892 1893 // If we have an (array of) complete type, we're done. 1894 T = getBaseElementType(T); 1895 if (!T->isIncompleteType()) 1896 return NeedsPreferredAlignment ? getPreferredTypeAlign(T) : getTypeAlign(T); 1897 1898 // If we had an array type, its element type might be a typedef 1899 // type with an alignment attribute. 1900 if (const auto *TT = T->getAs<TypedefType>()) 1901 if (unsigned Align = TT->getDecl()->getMaxAlignment()) 1902 return Align; 1903 1904 // Otherwise, see if the declaration of the type had an attribute. 1905 if (const auto *TT = T->getAs<TagType>()) 1906 return TT->getDecl()->getMaxAlignment(); 1907 1908 return 0; 1909 } 1910 1911 TypeInfo ASTContext::getTypeInfo(const Type *T) const { 1912 TypeInfoMap::iterator I = MemoizedTypeInfo.find(T); 1913 if (I != MemoizedTypeInfo.end()) 1914 return I->second; 1915 1916 // This call can invalidate MemoizedTypeInfo[T], so we need a second lookup. 1917 TypeInfo TI = getTypeInfoImpl(T); 1918 MemoizedTypeInfo[T] = TI; 1919 return TI; 1920 } 1921 1922 /// getTypeInfoImpl - Return the size of the specified type, in bits. This 1923 /// method does not work on incomplete types. 1924 /// 1925 /// FIXME: Pointers into different addr spaces could have different sizes and 1926 /// alignment requirements: getPointerInfo should take an AddrSpace, this 1927 /// should take a QualType, &c. 1928 TypeInfo ASTContext::getTypeInfoImpl(const Type *T) const { 1929 uint64_t Width = 0; 1930 unsigned Align = 8; 1931 bool AlignIsRequired = false; 1932 unsigned AS = 0; 1933 switch (T->getTypeClass()) { 1934 #define TYPE(Class, Base) 1935 #define ABSTRACT_TYPE(Class, Base) 1936 #define NON_CANONICAL_TYPE(Class, Base) 1937 #define DEPENDENT_TYPE(Class, Base) case Type::Class: 1938 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(Class, Base) \ 1939 case Type::Class: \ 1940 assert(!T->isDependentType() && "should not see dependent types here"); \ 1941 return getTypeInfo(cast<Class##Type>(T)->desugar().getTypePtr()); 1942 #include "clang/AST/TypeNodes.inc" 1943 llvm_unreachable("Should not see dependent types"); 1944 1945 case Type::FunctionNoProto: 1946 case Type::FunctionProto: 1947 // GCC extension: alignof(function) = 32 bits 1948 Width = 0; 1949 Align = 32; 1950 break; 1951 1952 case Type::IncompleteArray: 1953 case Type::VariableArray: 1954 case Type::ConstantArray: { 1955 // Model non-constant sized arrays as size zero, but track the alignment. 1956 uint64_t Size = 0; 1957 if (const auto *CAT = dyn_cast<ConstantArrayType>(T)) 1958 Size = CAT->getSize().getZExtValue(); 1959 1960 TypeInfo EltInfo = getTypeInfo(cast<ArrayType>(T)->getElementType()); 1961 assert((Size == 0 || EltInfo.Width <= (uint64_t)(-1) / Size) && 1962 "Overflow in array type bit size evaluation"); 1963 Width = EltInfo.Width * Size; 1964 Align = EltInfo.Align; 1965 AlignIsRequired = EltInfo.AlignIsRequired; 1966 if (!getTargetInfo().getCXXABI().isMicrosoft() || 1967 getTargetInfo().getPointerWidth(0) == 64) 1968 Width = llvm::alignTo(Width, Align); 1969 break; 1970 } 1971 1972 case Type::ExtVector: 1973 case Type::Vector: { 1974 const auto *VT = cast<VectorType>(T); 1975 TypeInfo EltInfo = getTypeInfo(VT->getElementType()); 1976 Width = EltInfo.Width * VT->getNumElements(); 1977 Align = Width; 1978 // If the alignment is not a power of 2, round up to the next power of 2. 1979 // This happens for non-power-of-2 length vectors. 1980 if (Align & (Align-1)) { 1981 Align = llvm::NextPowerOf2(Align); 1982 Width = llvm::alignTo(Width, Align); 1983 } 1984 // Adjust the alignment based on the target max. 1985 uint64_t TargetVectorAlign = Target->getMaxVectorAlign(); 1986 if (TargetVectorAlign && TargetVectorAlign < Align) 1987 Align = TargetVectorAlign; 1988 if (VT->getVectorKind() == VectorType::SveFixedLengthDataVector) 1989 // Adjust the alignment for fixed-length SVE vectors. This is important 1990 // for non-power-of-2 vector lengths. 1991 Align = 128; 1992 else if (VT->getVectorKind() == VectorType::SveFixedLengthPredicateVector) 1993 // Adjust the alignment for fixed-length SVE predicates. 1994 Align = 16; 1995 break; 1996 } 1997 1998 case Type::ConstantMatrix: { 1999 const auto *MT = cast<ConstantMatrixType>(T); 2000 TypeInfo ElementInfo = getTypeInfo(MT->getElementType()); 2001 // The internal layout of a matrix value is implementation defined. 2002 // Initially be ABI compatible with arrays with respect to alignment and 2003 // size. 2004 Width = ElementInfo.Width * MT->getNumRows() * MT->getNumColumns(); 2005 Align = ElementInfo.Align; 2006 break; 2007 } 2008 2009 case Type::Builtin: 2010 switch (cast<BuiltinType>(T)->getKind()) { 2011 default: llvm_unreachable("Unknown builtin type!"); 2012 case BuiltinType::Void: 2013 // GCC extension: alignof(void) = 8 bits. 2014 Width = 0; 2015 Align = 8; 2016 break; 2017 case BuiltinType::Bool: 2018 Width = Target->getBoolWidth(); 2019 Align = Target->getBoolAlign(); 2020 break; 2021 case BuiltinType::Char_S: 2022 case BuiltinType::Char_U: 2023 case BuiltinType::UChar: 2024 case BuiltinType::SChar: 2025 case BuiltinType::Char8: 2026 Width = Target->getCharWidth(); 2027 Align = Target->getCharAlign(); 2028 break; 2029 case BuiltinType::WChar_S: 2030 case BuiltinType::WChar_U: 2031 Width = Target->getWCharWidth(); 2032 Align = Target->getWCharAlign(); 2033 break; 2034 case BuiltinType::Char16: 2035 Width = Target->getChar16Width(); 2036 Align = Target->getChar16Align(); 2037 break; 2038 case BuiltinType::Char32: 2039 Width = Target->getChar32Width(); 2040 Align = Target->getChar32Align(); 2041 break; 2042 case BuiltinType::UShort: 2043 case BuiltinType::Short: 2044 Width = Target->getShortWidth(); 2045 Align = Target->getShortAlign(); 2046 break; 2047 case BuiltinType::UInt: 2048 case BuiltinType::Int: 2049 Width = Target->getIntWidth(); 2050 Align = Target->getIntAlign(); 2051 break; 2052 case BuiltinType::ULong: 2053 case BuiltinType::Long: 2054 Width = Target->getLongWidth(); 2055 Align = Target->getLongAlign(); 2056 break; 2057 case BuiltinType::ULongLong: 2058 case BuiltinType::LongLong: 2059 Width = Target->getLongLongWidth(); 2060 Align = Target->getLongLongAlign(); 2061 break; 2062 case BuiltinType::Int128: 2063 case BuiltinType::UInt128: 2064 Width = 128; 2065 Align = 128; // int128_t is 128-bit aligned on all targets. 2066 break; 2067 case BuiltinType::ShortAccum: 2068 case BuiltinType::UShortAccum: 2069 case BuiltinType::SatShortAccum: 2070 case BuiltinType::SatUShortAccum: 2071 Width = Target->getShortAccumWidth(); 2072 Align = Target->getShortAccumAlign(); 2073 break; 2074 case BuiltinType::Accum: 2075 case BuiltinType::UAccum: 2076 case BuiltinType::SatAccum: 2077 case BuiltinType::SatUAccum: 2078 Width = Target->getAccumWidth(); 2079 Align = Target->getAccumAlign(); 2080 break; 2081 case BuiltinType::LongAccum: 2082 case BuiltinType::ULongAccum: 2083 case BuiltinType::SatLongAccum: 2084 case BuiltinType::SatULongAccum: 2085 Width = Target->getLongAccumWidth(); 2086 Align = Target->getLongAccumAlign(); 2087 break; 2088 case BuiltinType::ShortFract: 2089 case BuiltinType::UShortFract: 2090 case BuiltinType::SatShortFract: 2091 case BuiltinType::SatUShortFract: 2092 Width = Target->getShortFractWidth(); 2093 Align = Target->getShortFractAlign(); 2094 break; 2095 case BuiltinType::Fract: 2096 case BuiltinType::UFract: 2097 case BuiltinType::SatFract: 2098 case BuiltinType::SatUFract: 2099 Width = Target->getFractWidth(); 2100 Align = Target->getFractAlign(); 2101 break; 2102 case BuiltinType::LongFract: 2103 case BuiltinType::ULongFract: 2104 case BuiltinType::SatLongFract: 2105 case BuiltinType::SatULongFract: 2106 Width = Target->getLongFractWidth(); 2107 Align = Target->getLongFractAlign(); 2108 break; 2109 case BuiltinType::BFloat16: 2110 Width = Target->getBFloat16Width(); 2111 Align = Target->getBFloat16Align(); 2112 break; 2113 case BuiltinType::Float16: 2114 case BuiltinType::Half: 2115 if (Target->hasFloat16Type() || !getLangOpts().OpenMP || 2116 !getLangOpts().OpenMPIsDevice) { 2117 Width = Target->getHalfWidth(); 2118 Align = Target->getHalfAlign(); 2119 } else { 2120 assert(getLangOpts().OpenMP && getLangOpts().OpenMPIsDevice && 2121 "Expected OpenMP device compilation."); 2122 Width = AuxTarget->getHalfWidth(); 2123 Align = AuxTarget->getHalfAlign(); 2124 } 2125 break; 2126 case BuiltinType::Float: 2127 Width = Target->getFloatWidth(); 2128 Align = Target->getFloatAlign(); 2129 break; 2130 case BuiltinType::Double: 2131 Width = Target->getDoubleWidth(); 2132 Align = Target->getDoubleAlign(); 2133 break; 2134 case BuiltinType::LongDouble: 2135 if (getLangOpts().OpenMP && getLangOpts().OpenMPIsDevice && 2136 (Target->getLongDoubleWidth() != AuxTarget->getLongDoubleWidth() || 2137 Target->getLongDoubleAlign() != AuxTarget->getLongDoubleAlign())) { 2138 Width = AuxTarget->getLongDoubleWidth(); 2139 Align = AuxTarget->getLongDoubleAlign(); 2140 } else { 2141 Width = Target->getLongDoubleWidth(); 2142 Align = Target->getLongDoubleAlign(); 2143 } 2144 break; 2145 case BuiltinType::Float128: 2146 if (Target->hasFloat128Type() || !getLangOpts().OpenMP || 2147 !getLangOpts().OpenMPIsDevice) { 2148 Width = Target->getFloat128Width(); 2149 Align = Target->getFloat128Align(); 2150 } else { 2151 assert(getLangOpts().OpenMP && getLangOpts().OpenMPIsDevice && 2152 "Expected OpenMP device compilation."); 2153 Width = AuxTarget->getFloat128Width(); 2154 Align = AuxTarget->getFloat128Align(); 2155 } 2156 break; 2157 case BuiltinType::NullPtr: 2158 Width = Target->getPointerWidth(0); // C++ 3.9.1p11: sizeof(nullptr_t) 2159 Align = Target->getPointerAlign(0); // == sizeof(void*) 2160 break; 2161 case BuiltinType::ObjCId: 2162 case BuiltinType::ObjCClass: 2163 case BuiltinType::ObjCSel: 2164 Width = Target->getPointerWidth(0); 2165 Align = Target->getPointerAlign(0); 2166 break; 2167 case BuiltinType::OCLSampler: 2168 case BuiltinType::OCLEvent: 2169 case BuiltinType::OCLClkEvent: 2170 case BuiltinType::OCLQueue: 2171 case BuiltinType::OCLReserveID: 2172 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \ 2173 case BuiltinType::Id: 2174 #include "clang/Basic/OpenCLImageTypes.def" 2175 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \ 2176 case BuiltinType::Id: 2177 #include "clang/Basic/OpenCLExtensionTypes.def" 2178 AS = getTargetAddressSpace( 2179 Target->getOpenCLTypeAddrSpace(getOpenCLTypeKind(T))); 2180 Width = Target->getPointerWidth(AS); 2181 Align = Target->getPointerAlign(AS); 2182 break; 2183 // The SVE types are effectively target-specific. The length of an 2184 // SVE_VECTOR_TYPE is only known at runtime, but it is always a multiple 2185 // of 128 bits. There is one predicate bit for each vector byte, so the 2186 // length of an SVE_PREDICATE_TYPE is always a multiple of 16 bits. 2187 // 2188 // Because the length is only known at runtime, we use a dummy value 2189 // of 0 for the static length. The alignment values are those defined 2190 // by the Procedure Call Standard for the Arm Architecture. 2191 #define SVE_VECTOR_TYPE(Name, MangledName, Id, SingletonId, NumEls, ElBits, \ 2192 IsSigned, IsFP, IsBF) \ 2193 case BuiltinType::Id: \ 2194 Width = 0; \ 2195 Align = 128; \ 2196 break; 2197 #define SVE_PREDICATE_TYPE(Name, MangledName, Id, SingletonId, NumEls) \ 2198 case BuiltinType::Id: \ 2199 Width = 0; \ 2200 Align = 16; \ 2201 break; 2202 #include "clang/Basic/AArch64SVEACLETypes.def" 2203 #define PPC_VECTOR_TYPE(Name, Id, Size) \ 2204 case BuiltinType::Id: \ 2205 Width = Size; \ 2206 Align = Size; \ 2207 break; 2208 #include "clang/Basic/PPCTypes.def" 2209 #define RVV_VECTOR_TYPE(Name, Id, SingletonId, ElKind, ElBits, NF, IsSigned, \ 2210 IsFP) \ 2211 case BuiltinType::Id: \ 2212 Width = 0; \ 2213 Align = ElBits; \ 2214 break; 2215 #define RVV_PREDICATE_TYPE(Name, Id, SingletonId, ElKind) \ 2216 case BuiltinType::Id: \ 2217 Width = 0; \ 2218 Align = 8; \ 2219 break; 2220 #include "clang/Basic/RISCVVTypes.def" 2221 } 2222 break; 2223 case Type::ObjCObjectPointer: 2224 Width = Target->getPointerWidth(0); 2225 Align = Target->getPointerAlign(0); 2226 break; 2227 case Type::BlockPointer: 2228 AS = getTargetAddressSpace(cast<BlockPointerType>(T)->getPointeeType()); 2229 Width = Target->getPointerWidth(AS); 2230 Align = Target->getPointerAlign(AS); 2231 break; 2232 case Type::LValueReference: 2233 case Type::RValueReference: 2234 // alignof and sizeof should never enter this code path here, so we go 2235 // the pointer route. 2236 AS = getTargetAddressSpace(cast<ReferenceType>(T)->getPointeeType()); 2237 Width = Target->getPointerWidth(AS); 2238 Align = Target->getPointerAlign(AS); 2239 break; 2240 case Type::Pointer: 2241 AS = getTargetAddressSpace(cast<PointerType>(T)->getPointeeType()); 2242 Width = Target->getPointerWidth(AS); 2243 Align = Target->getPointerAlign(AS); 2244 break; 2245 case Type::MemberPointer: { 2246 const auto *MPT = cast<MemberPointerType>(T); 2247 CXXABI::MemberPointerInfo MPI = ABI->getMemberPointerInfo(MPT); 2248 Width = MPI.Width; 2249 Align = MPI.Align; 2250 break; 2251 } 2252 case Type::Complex: { 2253 // Complex types have the same alignment as their elements, but twice the 2254 // size. 2255 TypeInfo EltInfo = getTypeInfo(cast<ComplexType>(T)->getElementType()); 2256 Width = EltInfo.Width * 2; 2257 Align = EltInfo.Align; 2258 break; 2259 } 2260 case Type::ObjCObject: 2261 return getTypeInfo(cast<ObjCObjectType>(T)->getBaseType().getTypePtr()); 2262 case Type::Adjusted: 2263 case Type::Decayed: 2264 return getTypeInfo(cast<AdjustedType>(T)->getAdjustedType().getTypePtr()); 2265 case Type::ObjCInterface: { 2266 const auto *ObjCI = cast<ObjCInterfaceType>(T); 2267 if (ObjCI->getDecl()->isInvalidDecl()) { 2268 Width = 8; 2269 Align = 8; 2270 break; 2271 } 2272 const ASTRecordLayout &Layout = getASTObjCInterfaceLayout(ObjCI->getDecl()); 2273 Width = toBits(Layout.getSize()); 2274 Align = toBits(Layout.getAlignment()); 2275 break; 2276 } 2277 case Type::ExtInt: { 2278 const auto *EIT = cast<ExtIntType>(T); 2279 Align = 2280 std::min(static_cast<unsigned>(std::max( 2281 getCharWidth(), llvm::PowerOf2Ceil(EIT->getNumBits()))), 2282 Target->getLongLongAlign()); 2283 Width = llvm::alignTo(EIT->getNumBits(), Align); 2284 break; 2285 } 2286 case Type::Record: 2287 case Type::Enum: { 2288 const auto *TT = cast<TagType>(T); 2289 2290 if (TT->getDecl()->isInvalidDecl()) { 2291 Width = 8; 2292 Align = 8; 2293 break; 2294 } 2295 2296 if (const auto *ET = dyn_cast<EnumType>(TT)) { 2297 const EnumDecl *ED = ET->getDecl(); 2298 TypeInfo Info = 2299 getTypeInfo(ED->getIntegerType()->getUnqualifiedDesugaredType()); 2300 if (unsigned AttrAlign = ED->getMaxAlignment()) { 2301 Info.Align = AttrAlign; 2302 Info.AlignIsRequired = true; 2303 } 2304 return Info; 2305 } 2306 2307 const auto *RT = cast<RecordType>(TT); 2308 const RecordDecl *RD = RT->getDecl(); 2309 const ASTRecordLayout &Layout = getASTRecordLayout(RD); 2310 Width = toBits(Layout.getSize()); 2311 Align = toBits(Layout.getAlignment()); 2312 AlignIsRequired = RD->hasAttr<AlignedAttr>(); 2313 break; 2314 } 2315 2316 case Type::SubstTemplateTypeParm: 2317 return getTypeInfo(cast<SubstTemplateTypeParmType>(T)-> 2318 getReplacementType().getTypePtr()); 2319 2320 case Type::Auto: 2321 case Type::DeducedTemplateSpecialization: { 2322 const auto *A = cast<DeducedType>(T); 2323 assert(!A->getDeducedType().isNull() && 2324 "cannot request the size of an undeduced or dependent auto type"); 2325 return getTypeInfo(A->getDeducedType().getTypePtr()); 2326 } 2327 2328 case Type::Paren: 2329 return getTypeInfo(cast<ParenType>(T)->getInnerType().getTypePtr()); 2330 2331 case Type::MacroQualified: 2332 return getTypeInfo( 2333 cast<MacroQualifiedType>(T)->getUnderlyingType().getTypePtr()); 2334 2335 case Type::ObjCTypeParam: 2336 return getTypeInfo(cast<ObjCTypeParamType>(T)->desugar().getTypePtr()); 2337 2338 case Type::Typedef: { 2339 const TypedefNameDecl *Typedef = cast<TypedefType>(T)->getDecl(); 2340 TypeInfo Info = getTypeInfo(Typedef->getUnderlyingType().getTypePtr()); 2341 // If the typedef has an aligned attribute on it, it overrides any computed 2342 // alignment we have. This violates the GCC documentation (which says that 2343 // attribute(aligned) can only round up) but matches its implementation. 2344 if (unsigned AttrAlign = Typedef->getMaxAlignment()) { 2345 Align = AttrAlign; 2346 AlignIsRequired = true; 2347 } else { 2348 Align = Info.Align; 2349 AlignIsRequired = Info.AlignIsRequired; 2350 } 2351 Width = Info.Width; 2352 break; 2353 } 2354 2355 case Type::Elaborated: 2356 return getTypeInfo(cast<ElaboratedType>(T)->getNamedType().getTypePtr()); 2357 2358 case Type::Attributed: 2359 return getTypeInfo( 2360 cast<AttributedType>(T)->getEquivalentType().getTypePtr()); 2361 2362 case Type::Atomic: { 2363 // Start with the base type information. 2364 TypeInfo Info = getTypeInfo(cast<AtomicType>(T)->getValueType()); 2365 Width = Info.Width; 2366 Align = Info.Align; 2367 2368 if (!Width) { 2369 // An otherwise zero-sized type should still generate an 2370 // atomic operation. 2371 Width = Target->getCharWidth(); 2372 assert(Align); 2373 } else if (Width <= Target->getMaxAtomicPromoteWidth()) { 2374 // If the size of the type doesn't exceed the platform's max 2375 // atomic promotion width, make the size and alignment more 2376 // favorable to atomic operations: 2377 2378 // Round the size up to a power of 2. 2379 if (!llvm::isPowerOf2_64(Width)) 2380 Width = llvm::NextPowerOf2(Width); 2381 2382 // Set the alignment equal to the size. 2383 Align = static_cast<unsigned>(Width); 2384 } 2385 } 2386 break; 2387 2388 case Type::Pipe: 2389 Width = Target->getPointerWidth(getTargetAddressSpace(LangAS::opencl_global)); 2390 Align = Target->getPointerAlign(getTargetAddressSpace(LangAS::opencl_global)); 2391 break; 2392 } 2393 2394 assert(llvm::isPowerOf2_32(Align) && "Alignment must be power of 2"); 2395 return TypeInfo(Width, Align, AlignIsRequired); 2396 } 2397 2398 unsigned ASTContext::getTypeUnadjustedAlign(const Type *T) const { 2399 UnadjustedAlignMap::iterator I = MemoizedUnadjustedAlign.find(T); 2400 if (I != MemoizedUnadjustedAlign.end()) 2401 return I->second; 2402 2403 unsigned UnadjustedAlign; 2404 if (const auto *RT = T->getAs<RecordType>()) { 2405 const RecordDecl *RD = RT->getDecl(); 2406 const ASTRecordLayout &Layout = getASTRecordLayout(RD); 2407 UnadjustedAlign = toBits(Layout.getUnadjustedAlignment()); 2408 } else if (const auto *ObjCI = T->getAs<ObjCInterfaceType>()) { 2409 const ASTRecordLayout &Layout = getASTObjCInterfaceLayout(ObjCI->getDecl()); 2410 UnadjustedAlign = toBits(Layout.getUnadjustedAlignment()); 2411 } else { 2412 UnadjustedAlign = getTypeAlign(T->getUnqualifiedDesugaredType()); 2413 } 2414 2415 MemoizedUnadjustedAlign[T] = UnadjustedAlign; 2416 return UnadjustedAlign; 2417 } 2418 2419 unsigned ASTContext::getOpenMPDefaultSimdAlign(QualType T) const { 2420 unsigned SimdAlign = getTargetInfo().getSimdDefaultAlign(); 2421 return SimdAlign; 2422 } 2423 2424 /// toCharUnitsFromBits - Convert a size in bits to a size in characters. 2425 CharUnits ASTContext::toCharUnitsFromBits(int64_t BitSize) const { 2426 return CharUnits::fromQuantity(BitSize / getCharWidth()); 2427 } 2428 2429 /// toBits - Convert a size in characters to a size in characters. 2430 int64_t ASTContext::toBits(CharUnits CharSize) const { 2431 return CharSize.getQuantity() * getCharWidth(); 2432 } 2433 2434 /// getTypeSizeInChars - Return the size of the specified type, in characters. 2435 /// This method does not work on incomplete types. 2436 CharUnits ASTContext::getTypeSizeInChars(QualType T) const { 2437 return getTypeInfoInChars(T).Width; 2438 } 2439 CharUnits ASTContext::getTypeSizeInChars(const Type *T) const { 2440 return getTypeInfoInChars(T).Width; 2441 } 2442 2443 /// getTypeAlignInChars - Return the ABI-specified alignment of a type, in 2444 /// characters. This method does not work on incomplete types. 2445 CharUnits ASTContext::getTypeAlignInChars(QualType T) const { 2446 return toCharUnitsFromBits(getTypeAlign(T)); 2447 } 2448 CharUnits ASTContext::getTypeAlignInChars(const Type *T) const { 2449 return toCharUnitsFromBits(getTypeAlign(T)); 2450 } 2451 2452 /// getTypeUnadjustedAlignInChars - Return the ABI-specified alignment of a 2453 /// type, in characters, before alignment adustments. This method does 2454 /// not work on incomplete types. 2455 CharUnits ASTContext::getTypeUnadjustedAlignInChars(QualType T) const { 2456 return toCharUnitsFromBits(getTypeUnadjustedAlign(T)); 2457 } 2458 CharUnits ASTContext::getTypeUnadjustedAlignInChars(const Type *T) const { 2459 return toCharUnitsFromBits(getTypeUnadjustedAlign(T)); 2460 } 2461 2462 /// getPreferredTypeAlign - Return the "preferred" alignment of the specified 2463 /// type for the current target in bits. This can be different than the ABI 2464 /// alignment in cases where it is beneficial for performance or backwards 2465 /// compatibility preserving to overalign a data type. (Note: despite the name, 2466 /// the preferred alignment is ABI-impacting, and not an optimization.) 2467 unsigned ASTContext::getPreferredTypeAlign(const Type *T) const { 2468 TypeInfo TI = getTypeInfo(T); 2469 unsigned ABIAlign = TI.Align; 2470 2471 T = T->getBaseElementTypeUnsafe(); 2472 2473 // The preferred alignment of member pointers is that of a pointer. 2474 if (T->isMemberPointerType()) 2475 return getPreferredTypeAlign(getPointerDiffType().getTypePtr()); 2476 2477 if (!Target->allowsLargerPreferedTypeAlignment()) 2478 return ABIAlign; 2479 2480 if (const auto *RT = T->getAs<RecordType>()) { 2481 if (TI.AlignIsRequired || RT->getDecl()->isInvalidDecl()) 2482 return ABIAlign; 2483 2484 unsigned PreferredAlign = static_cast<unsigned>( 2485 toBits(getASTRecordLayout(RT->getDecl()).PreferredAlignment)); 2486 assert(PreferredAlign >= ABIAlign && 2487 "PreferredAlign should be at least as large as ABIAlign."); 2488 return PreferredAlign; 2489 } 2490 2491 // Double (and, for targets supporting AIX `power` alignment, long double) and 2492 // long long should be naturally aligned (despite requiring less alignment) if 2493 // possible. 2494 if (const auto *CT = T->getAs<ComplexType>()) 2495 T = CT->getElementType().getTypePtr(); 2496 if (const auto *ET = T->getAs<EnumType>()) 2497 T = ET->getDecl()->getIntegerType().getTypePtr(); 2498 if (T->isSpecificBuiltinType(BuiltinType::Double) || 2499 T->isSpecificBuiltinType(BuiltinType::LongLong) || 2500 T->isSpecificBuiltinType(BuiltinType::ULongLong) || 2501 (T->isSpecificBuiltinType(BuiltinType::LongDouble) && 2502 Target->defaultsToAIXPowerAlignment())) 2503 // Don't increase the alignment if an alignment attribute was specified on a 2504 // typedef declaration. 2505 if (!TI.AlignIsRequired) 2506 return std::max(ABIAlign, (unsigned)getTypeSize(T)); 2507 2508 return ABIAlign; 2509 } 2510 2511 /// getTargetDefaultAlignForAttributeAligned - Return the default alignment 2512 /// for __attribute__((aligned)) on this target, to be used if no alignment 2513 /// value is specified. 2514 unsigned ASTContext::getTargetDefaultAlignForAttributeAligned() const { 2515 return getTargetInfo().getDefaultAlignForAttributeAligned(); 2516 } 2517 2518 /// getAlignOfGlobalVar - Return the alignment in bits that should be given 2519 /// to a global variable of the specified type. 2520 unsigned ASTContext::getAlignOfGlobalVar(QualType T) const { 2521 uint64_t TypeSize = getTypeSize(T.getTypePtr()); 2522 return std::max(getPreferredTypeAlign(T), 2523 getTargetInfo().getMinGlobalAlign(TypeSize)); 2524 } 2525 2526 /// getAlignOfGlobalVarInChars - Return the alignment in characters that 2527 /// should be given to a global variable of the specified type. 2528 CharUnits ASTContext::getAlignOfGlobalVarInChars(QualType T) const { 2529 return toCharUnitsFromBits(getAlignOfGlobalVar(T)); 2530 } 2531 2532 CharUnits ASTContext::getOffsetOfBaseWithVBPtr(const CXXRecordDecl *RD) const { 2533 CharUnits Offset = CharUnits::Zero(); 2534 const ASTRecordLayout *Layout = &getASTRecordLayout(RD); 2535 while (const CXXRecordDecl *Base = Layout->getBaseSharingVBPtr()) { 2536 Offset += Layout->getBaseClassOffset(Base); 2537 Layout = &getASTRecordLayout(Base); 2538 } 2539 return Offset; 2540 } 2541 2542 CharUnits ASTContext::getMemberPointerPathAdjustment(const APValue &MP) const { 2543 const ValueDecl *MPD = MP.getMemberPointerDecl(); 2544 CharUnits ThisAdjustment = CharUnits::Zero(); 2545 ArrayRef<const CXXRecordDecl*> Path = MP.getMemberPointerPath(); 2546 bool DerivedMember = MP.isMemberPointerToDerivedMember(); 2547 const CXXRecordDecl *RD = cast<CXXRecordDecl>(MPD->getDeclContext()); 2548 for (unsigned I = 0, N = Path.size(); I != N; ++I) { 2549 const CXXRecordDecl *Base = RD; 2550 const CXXRecordDecl *Derived = Path[I]; 2551 if (DerivedMember) 2552 std::swap(Base, Derived); 2553 ThisAdjustment += getASTRecordLayout(Derived).getBaseClassOffset(Base); 2554 RD = Path[I]; 2555 } 2556 if (DerivedMember) 2557 ThisAdjustment = -ThisAdjustment; 2558 return ThisAdjustment; 2559 } 2560 2561 /// DeepCollectObjCIvars - 2562 /// This routine first collects all declared, but not synthesized, ivars in 2563 /// super class and then collects all ivars, including those synthesized for 2564 /// current class. This routine is used for implementation of current class 2565 /// when all ivars, declared and synthesized are known. 2566 void ASTContext::DeepCollectObjCIvars(const ObjCInterfaceDecl *OI, 2567 bool leafClass, 2568 SmallVectorImpl<const ObjCIvarDecl*> &Ivars) const { 2569 if (const ObjCInterfaceDecl *SuperClass = OI->getSuperClass()) 2570 DeepCollectObjCIvars(SuperClass, false, Ivars); 2571 if (!leafClass) { 2572 for (const auto *I : OI->ivars()) 2573 Ivars.push_back(I); 2574 } else { 2575 auto *IDecl = const_cast<ObjCInterfaceDecl *>(OI); 2576 for (const ObjCIvarDecl *Iv = IDecl->all_declared_ivar_begin(); Iv; 2577 Iv= Iv->getNextIvar()) 2578 Ivars.push_back(Iv); 2579 } 2580 } 2581 2582 /// CollectInheritedProtocols - Collect all protocols in current class and 2583 /// those inherited by it. 2584 void ASTContext::CollectInheritedProtocols(const Decl *CDecl, 2585 llvm::SmallPtrSet<ObjCProtocolDecl*, 8> &Protocols) { 2586 if (const auto *OI = dyn_cast<ObjCInterfaceDecl>(CDecl)) { 2587 // We can use protocol_iterator here instead of 2588 // all_referenced_protocol_iterator since we are walking all categories. 2589 for (auto *Proto : OI->all_referenced_protocols()) { 2590 CollectInheritedProtocols(Proto, Protocols); 2591 } 2592 2593 // Categories of this Interface. 2594 for (const auto *Cat : OI->visible_categories()) 2595 CollectInheritedProtocols(Cat, Protocols); 2596 2597 if (ObjCInterfaceDecl *SD = OI->getSuperClass()) 2598 while (SD) { 2599 CollectInheritedProtocols(SD, Protocols); 2600 SD = SD->getSuperClass(); 2601 } 2602 } else if (const auto *OC = dyn_cast<ObjCCategoryDecl>(CDecl)) { 2603 for (auto *Proto : OC->protocols()) { 2604 CollectInheritedProtocols(Proto, Protocols); 2605 } 2606 } else if (const auto *OP = dyn_cast<ObjCProtocolDecl>(CDecl)) { 2607 // Insert the protocol. 2608 if (!Protocols.insert( 2609 const_cast<ObjCProtocolDecl *>(OP->getCanonicalDecl())).second) 2610 return; 2611 2612 for (auto *Proto : OP->protocols()) 2613 CollectInheritedProtocols(Proto, Protocols); 2614 } 2615 } 2616 2617 static bool unionHasUniqueObjectRepresentations(const ASTContext &Context, 2618 const RecordDecl *RD) { 2619 assert(RD->isUnion() && "Must be union type"); 2620 CharUnits UnionSize = Context.getTypeSizeInChars(RD->getTypeForDecl()); 2621 2622 for (const auto *Field : RD->fields()) { 2623 if (!Context.hasUniqueObjectRepresentations(Field->getType())) 2624 return false; 2625 CharUnits FieldSize = Context.getTypeSizeInChars(Field->getType()); 2626 if (FieldSize != UnionSize) 2627 return false; 2628 } 2629 return !RD->field_empty(); 2630 } 2631 2632 static bool isStructEmpty(QualType Ty) { 2633 const RecordDecl *RD = Ty->castAs<RecordType>()->getDecl(); 2634 2635 if (!RD->field_empty()) 2636 return false; 2637 2638 if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RD)) 2639 return ClassDecl->isEmpty(); 2640 2641 return true; 2642 } 2643 2644 static llvm::Optional<int64_t> 2645 structHasUniqueObjectRepresentations(const ASTContext &Context, 2646 const RecordDecl *RD) { 2647 assert(!RD->isUnion() && "Must be struct/class type"); 2648 const auto &Layout = Context.getASTRecordLayout(RD); 2649 2650 int64_t CurOffsetInBits = 0; 2651 if (const auto *ClassDecl = dyn_cast<CXXRecordDecl>(RD)) { 2652 if (ClassDecl->isDynamicClass()) 2653 return llvm::None; 2654 2655 SmallVector<std::pair<QualType, int64_t>, 4> Bases; 2656 for (const auto &Base : ClassDecl->bases()) { 2657 // Empty types can be inherited from, and non-empty types can potentially 2658 // have tail padding, so just make sure there isn't an error. 2659 if (!isStructEmpty(Base.getType())) { 2660 llvm::Optional<int64_t> Size = structHasUniqueObjectRepresentations( 2661 Context, Base.getType()->castAs<RecordType>()->getDecl()); 2662 if (!Size) 2663 return llvm::None; 2664 Bases.emplace_back(Base.getType(), Size.getValue()); 2665 } 2666 } 2667 2668 llvm::sort(Bases, [&](const std::pair<QualType, int64_t> &L, 2669 const std::pair<QualType, int64_t> &R) { 2670 return Layout.getBaseClassOffset(L.first->getAsCXXRecordDecl()) < 2671 Layout.getBaseClassOffset(R.first->getAsCXXRecordDecl()); 2672 }); 2673 2674 for (const auto &Base : Bases) { 2675 int64_t BaseOffset = Context.toBits( 2676 Layout.getBaseClassOffset(Base.first->getAsCXXRecordDecl())); 2677 int64_t BaseSize = Base.second; 2678 if (BaseOffset != CurOffsetInBits) 2679 return llvm::None; 2680 CurOffsetInBits = BaseOffset + BaseSize; 2681 } 2682 } 2683 2684 for (const auto *Field : RD->fields()) { 2685 if (!Field->getType()->isReferenceType() && 2686 !Context.hasUniqueObjectRepresentations(Field->getType())) 2687 return llvm::None; 2688 2689 int64_t FieldSizeInBits = 2690 Context.toBits(Context.getTypeSizeInChars(Field->getType())); 2691 if (Field->isBitField()) { 2692 int64_t BitfieldSize = Field->getBitWidthValue(Context); 2693 2694 if (BitfieldSize > FieldSizeInBits) 2695 return llvm::None; 2696 FieldSizeInBits = BitfieldSize; 2697 } 2698 2699 int64_t FieldOffsetInBits = Context.getFieldOffset(Field); 2700 2701 if (FieldOffsetInBits != CurOffsetInBits) 2702 return llvm::None; 2703 2704 CurOffsetInBits = FieldSizeInBits + FieldOffsetInBits; 2705 } 2706 2707 return CurOffsetInBits; 2708 } 2709 2710 bool ASTContext::hasUniqueObjectRepresentations(QualType Ty) const { 2711 // C++17 [meta.unary.prop]: 2712 // The predicate condition for a template specialization 2713 // has_unique_object_representations<T> shall be 2714 // satisfied if and only if: 2715 // (9.1) - T is trivially copyable, and 2716 // (9.2) - any two objects of type T with the same value have the same 2717 // object representation, where two objects 2718 // of array or non-union class type are considered to have the same value 2719 // if their respective sequences of 2720 // direct subobjects have the same values, and two objects of union type 2721 // are considered to have the same 2722 // value if they have the same active member and the corresponding members 2723 // have the same value. 2724 // The set of scalar types for which this condition holds is 2725 // implementation-defined. [ Note: If a type has padding 2726 // bits, the condition does not hold; otherwise, the condition holds true 2727 // for unsigned integral types. -- end note ] 2728 assert(!Ty.isNull() && "Null QualType sent to unique object rep check"); 2729 2730 // Arrays are unique only if their element type is unique. 2731 if (Ty->isArrayType()) 2732 return hasUniqueObjectRepresentations(getBaseElementType(Ty)); 2733 2734 // (9.1) - T is trivially copyable... 2735 if (!Ty.isTriviallyCopyableType(*this)) 2736 return false; 2737 2738 // All integrals and enums are unique. 2739 if (Ty->isIntegralOrEnumerationType()) 2740 return true; 2741 2742 // All other pointers are unique. 2743 if (Ty->isPointerType()) 2744 return true; 2745 2746 if (Ty->isMemberPointerType()) { 2747 const auto *MPT = Ty->getAs<MemberPointerType>(); 2748 return !ABI->getMemberPointerInfo(MPT).HasPadding; 2749 } 2750 2751 if (Ty->isRecordType()) { 2752 const RecordDecl *Record = Ty->castAs<RecordType>()->getDecl(); 2753 2754 if (Record->isInvalidDecl()) 2755 return false; 2756 2757 if (Record->isUnion()) 2758 return unionHasUniqueObjectRepresentations(*this, Record); 2759 2760 Optional<int64_t> StructSize = 2761 structHasUniqueObjectRepresentations(*this, Record); 2762 2763 return StructSize && 2764 StructSize.getValue() == static_cast<int64_t>(getTypeSize(Ty)); 2765 } 2766 2767 // FIXME: More cases to handle here (list by rsmith): 2768 // vectors (careful about, eg, vector of 3 foo) 2769 // _Complex int and friends 2770 // _Atomic T 2771 // Obj-C block pointers 2772 // Obj-C object pointers 2773 // and perhaps OpenCL's various builtin types (pipe, sampler_t, event_t, 2774 // clk_event_t, queue_t, reserve_id_t) 2775 // There're also Obj-C class types and the Obj-C selector type, but I think it 2776 // makes sense for those to return false here. 2777 2778 return false; 2779 } 2780 2781 unsigned ASTContext::CountNonClassIvars(const ObjCInterfaceDecl *OI) const { 2782 unsigned count = 0; 2783 // Count ivars declared in class extension. 2784 for (const auto *Ext : OI->known_extensions()) 2785 count += Ext->ivar_size(); 2786 2787 // Count ivar defined in this class's implementation. This 2788 // includes synthesized ivars. 2789 if (ObjCImplementationDecl *ImplDecl = OI->getImplementation()) 2790 count += ImplDecl->ivar_size(); 2791 2792 return count; 2793 } 2794 2795 bool ASTContext::isSentinelNullExpr(const Expr *E) { 2796 if (!E) 2797 return false; 2798 2799 // nullptr_t is always treated as null. 2800 if (E->getType()->isNullPtrType()) return true; 2801 2802 if (E->getType()->isAnyPointerType() && 2803 E->IgnoreParenCasts()->isNullPointerConstant(*this, 2804 Expr::NPC_ValueDependentIsNull)) 2805 return true; 2806 2807 // Unfortunately, __null has type 'int'. 2808 if (isa<GNUNullExpr>(E)) return true; 2809 2810 return false; 2811 } 2812 2813 /// Get the implementation of ObjCInterfaceDecl, or nullptr if none 2814 /// exists. 2815 ObjCImplementationDecl *ASTContext::getObjCImplementation(ObjCInterfaceDecl *D) { 2816 llvm::DenseMap<ObjCContainerDecl*, ObjCImplDecl*>::iterator 2817 I = ObjCImpls.find(D); 2818 if (I != ObjCImpls.end()) 2819 return cast<ObjCImplementationDecl>(I->second); 2820 return nullptr; 2821 } 2822 2823 /// Get the implementation of ObjCCategoryDecl, or nullptr if none 2824 /// exists. 2825 ObjCCategoryImplDecl *ASTContext::getObjCImplementation(ObjCCategoryDecl *D) { 2826 llvm::DenseMap<ObjCContainerDecl*, ObjCImplDecl*>::iterator 2827 I = ObjCImpls.find(D); 2828 if (I != ObjCImpls.end()) 2829 return cast<ObjCCategoryImplDecl>(I->second); 2830 return nullptr; 2831 } 2832 2833 /// Set the implementation of ObjCInterfaceDecl. 2834 void ASTContext::setObjCImplementation(ObjCInterfaceDecl *IFaceD, 2835 ObjCImplementationDecl *ImplD) { 2836 assert(IFaceD && ImplD && "Passed null params"); 2837 ObjCImpls[IFaceD] = ImplD; 2838 } 2839 2840 /// Set the implementation of ObjCCategoryDecl. 2841 void ASTContext::setObjCImplementation(ObjCCategoryDecl *CatD, 2842 ObjCCategoryImplDecl *ImplD) { 2843 assert(CatD && ImplD && "Passed null params"); 2844 ObjCImpls[CatD] = ImplD; 2845 } 2846 2847 const ObjCMethodDecl * 2848 ASTContext::getObjCMethodRedeclaration(const ObjCMethodDecl *MD) const { 2849 return ObjCMethodRedecls.lookup(MD); 2850 } 2851 2852 void ASTContext::setObjCMethodRedeclaration(const ObjCMethodDecl *MD, 2853 const ObjCMethodDecl *Redecl) { 2854 assert(!getObjCMethodRedeclaration(MD) && "MD already has a redeclaration"); 2855 ObjCMethodRedecls[MD] = Redecl; 2856 } 2857 2858 const ObjCInterfaceDecl *ASTContext::getObjContainingInterface( 2859 const NamedDecl *ND) const { 2860 if (const auto *ID = dyn_cast<ObjCInterfaceDecl>(ND->getDeclContext())) 2861 return ID; 2862 if (const auto *CD = dyn_cast<ObjCCategoryDecl>(ND->getDeclContext())) 2863 return CD->getClassInterface(); 2864 if (const auto *IMD = dyn_cast<ObjCImplDecl>(ND->getDeclContext())) 2865 return IMD->getClassInterface(); 2866 2867 return nullptr; 2868 } 2869 2870 /// Get the copy initialization expression of VarDecl, or nullptr if 2871 /// none exists. 2872 BlockVarCopyInit ASTContext::getBlockVarCopyInit(const VarDecl *VD) const { 2873 assert(VD && "Passed null params"); 2874 assert(VD->hasAttr<BlocksAttr>() && 2875 "getBlockVarCopyInits - not __block var"); 2876 auto I = BlockVarCopyInits.find(VD); 2877 if (I != BlockVarCopyInits.end()) 2878 return I->second; 2879 return {nullptr, false}; 2880 } 2881 2882 /// Set the copy initialization expression of a block var decl. 2883 void ASTContext::setBlockVarCopyInit(const VarDecl*VD, Expr *CopyExpr, 2884 bool CanThrow) { 2885 assert(VD && CopyExpr && "Passed null params"); 2886 assert(VD->hasAttr<BlocksAttr>() && 2887 "setBlockVarCopyInits - not __block var"); 2888 BlockVarCopyInits[VD].setExprAndFlag(CopyExpr, CanThrow); 2889 } 2890 2891 TypeSourceInfo *ASTContext::CreateTypeSourceInfo(QualType T, 2892 unsigned DataSize) const { 2893 if (!DataSize) 2894 DataSize = TypeLoc::getFullDataSizeForType(T); 2895 else 2896 assert(DataSize == TypeLoc::getFullDataSizeForType(T) && 2897 "incorrect data size provided to CreateTypeSourceInfo!"); 2898 2899 auto *TInfo = 2900 (TypeSourceInfo*)BumpAlloc.Allocate(sizeof(TypeSourceInfo) + DataSize, 8); 2901 new (TInfo) TypeSourceInfo(T); 2902 return TInfo; 2903 } 2904 2905 TypeSourceInfo *ASTContext::getTrivialTypeSourceInfo(QualType T, 2906 SourceLocation L) const { 2907 TypeSourceInfo *DI = CreateTypeSourceInfo(T); 2908 DI->getTypeLoc().initialize(const_cast<ASTContext &>(*this), L); 2909 return DI; 2910 } 2911 2912 const ASTRecordLayout & 2913 ASTContext::getASTObjCInterfaceLayout(const ObjCInterfaceDecl *D) const { 2914 return getObjCLayout(D, nullptr); 2915 } 2916 2917 const ASTRecordLayout & 2918 ASTContext::getASTObjCImplementationLayout( 2919 const ObjCImplementationDecl *D) const { 2920 return getObjCLayout(D->getClassInterface(), D); 2921 } 2922 2923 //===----------------------------------------------------------------------===// 2924 // Type creation/memoization methods 2925 //===----------------------------------------------------------------------===// 2926 2927 QualType 2928 ASTContext::getExtQualType(const Type *baseType, Qualifiers quals) const { 2929 unsigned fastQuals = quals.getFastQualifiers(); 2930 quals.removeFastQualifiers(); 2931 2932 // Check if we've already instantiated this type. 2933 llvm::FoldingSetNodeID ID; 2934 ExtQuals::Profile(ID, baseType, quals); 2935 void *insertPos = nullptr; 2936 if (ExtQuals *eq = ExtQualNodes.FindNodeOrInsertPos(ID, insertPos)) { 2937 assert(eq->getQualifiers() == quals); 2938 return QualType(eq, fastQuals); 2939 } 2940 2941 // If the base type is not canonical, make the appropriate canonical type. 2942 QualType canon; 2943 if (!baseType->isCanonicalUnqualified()) { 2944 SplitQualType canonSplit = baseType->getCanonicalTypeInternal().split(); 2945 canonSplit.Quals.addConsistentQualifiers(quals); 2946 canon = getExtQualType(canonSplit.Ty, canonSplit.Quals); 2947 2948 // Re-find the insert position. 2949 (void) ExtQualNodes.FindNodeOrInsertPos(ID, insertPos); 2950 } 2951 2952 auto *eq = new (*this, TypeAlignment) ExtQuals(baseType, canon, quals); 2953 ExtQualNodes.InsertNode(eq, insertPos); 2954 return QualType(eq, fastQuals); 2955 } 2956 2957 QualType ASTContext::getAddrSpaceQualType(QualType T, 2958 LangAS AddressSpace) const { 2959 QualType CanT = getCanonicalType(T); 2960 if (CanT.getAddressSpace() == AddressSpace) 2961 return T; 2962 2963 // If we are composing extended qualifiers together, merge together 2964 // into one ExtQuals node. 2965 QualifierCollector Quals; 2966 const Type *TypeNode = Quals.strip(T); 2967 2968 // If this type already has an address space specified, it cannot get 2969 // another one. 2970 assert(!Quals.hasAddressSpace() && 2971 "Type cannot be in multiple addr spaces!"); 2972 Quals.addAddressSpace(AddressSpace); 2973 2974 return getExtQualType(TypeNode, Quals); 2975 } 2976 2977 QualType ASTContext::removeAddrSpaceQualType(QualType T) const { 2978 // If the type is not qualified with an address space, just return it 2979 // immediately. 2980 if (!T.hasAddressSpace()) 2981 return T; 2982 2983 // If we are composing extended qualifiers together, merge together 2984 // into one ExtQuals node. 2985 QualifierCollector Quals; 2986 const Type *TypeNode; 2987 2988 while (T.hasAddressSpace()) { 2989 TypeNode = Quals.strip(T); 2990 2991 // If the type no longer has an address space after stripping qualifiers, 2992 // jump out. 2993 if (!QualType(TypeNode, 0).hasAddressSpace()) 2994 break; 2995 2996 // There might be sugar in the way. Strip it and try again. 2997 T = T.getSingleStepDesugaredType(*this); 2998 } 2999 3000 Quals.removeAddressSpace(); 3001 3002 // Removal of the address space can mean there are no longer any 3003 // non-fast qualifiers, so creating an ExtQualType isn't possible (asserts) 3004 // or required. 3005 if (Quals.hasNonFastQualifiers()) 3006 return getExtQualType(TypeNode, Quals); 3007 else 3008 return QualType(TypeNode, Quals.getFastQualifiers()); 3009 } 3010 3011 QualType ASTContext::getObjCGCQualType(QualType T, 3012 Qualifiers::GC GCAttr) const { 3013 QualType CanT = getCanonicalType(T); 3014 if (CanT.getObjCGCAttr() == GCAttr) 3015 return T; 3016 3017 if (const auto *ptr = T->getAs<PointerType>()) { 3018 QualType Pointee = ptr->getPointeeType(); 3019 if (Pointee->isAnyPointerType()) { 3020 QualType ResultType = getObjCGCQualType(Pointee, GCAttr); 3021 return getPointerType(ResultType); 3022 } 3023 } 3024 3025 // If we are composing extended qualifiers together, merge together 3026 // into one ExtQuals node. 3027 QualifierCollector Quals; 3028 const Type *TypeNode = Quals.strip(T); 3029 3030 // If this type already has an ObjCGC specified, it cannot get 3031 // another one. 3032 assert(!Quals.hasObjCGCAttr() && 3033 "Type cannot have multiple ObjCGCs!"); 3034 Quals.addObjCGCAttr(GCAttr); 3035 3036 return getExtQualType(TypeNode, Quals); 3037 } 3038 3039 QualType ASTContext::removePtrSizeAddrSpace(QualType T) const { 3040 if (const PointerType *Ptr = T->getAs<PointerType>()) { 3041 QualType Pointee = Ptr->getPointeeType(); 3042 if (isPtrSizeAddressSpace(Pointee.getAddressSpace())) { 3043 return getPointerType(removeAddrSpaceQualType(Pointee)); 3044 } 3045 } 3046 return T; 3047 } 3048 3049 const FunctionType *ASTContext::adjustFunctionType(const FunctionType *T, 3050 FunctionType::ExtInfo Info) { 3051 if (T->getExtInfo() == Info) 3052 return T; 3053 3054 QualType Result; 3055 if (const auto *FNPT = dyn_cast<FunctionNoProtoType>(T)) { 3056 Result = getFunctionNoProtoType(FNPT->getReturnType(), Info); 3057 } else { 3058 const auto *FPT = cast<FunctionProtoType>(T); 3059 FunctionProtoType::ExtProtoInfo EPI = FPT->getExtProtoInfo(); 3060 EPI.ExtInfo = Info; 3061 Result = getFunctionType(FPT->getReturnType(), FPT->getParamTypes(), EPI); 3062 } 3063 3064 return cast<FunctionType>(Result.getTypePtr()); 3065 } 3066 3067 void ASTContext::adjustDeducedFunctionResultType(FunctionDecl *FD, 3068 QualType ResultType) { 3069 FD = FD->getMostRecentDecl(); 3070 while (true) { 3071 const auto *FPT = FD->getType()->castAs<FunctionProtoType>(); 3072 FunctionProtoType::ExtProtoInfo EPI = FPT->getExtProtoInfo(); 3073 FD->setType(getFunctionType(ResultType, FPT->getParamTypes(), EPI)); 3074 if (FunctionDecl *Next = FD->getPreviousDecl()) 3075 FD = Next; 3076 else 3077 break; 3078 } 3079 if (ASTMutationListener *L = getASTMutationListener()) 3080 L->DeducedReturnType(FD, ResultType); 3081 } 3082 3083 /// Get a function type and produce the equivalent function type with the 3084 /// specified exception specification. Type sugar that can be present on a 3085 /// declaration of a function with an exception specification is permitted 3086 /// and preserved. Other type sugar (for instance, typedefs) is not. 3087 QualType ASTContext::getFunctionTypeWithExceptionSpec( 3088 QualType Orig, const FunctionProtoType::ExceptionSpecInfo &ESI) { 3089 // Might have some parens. 3090 if (const auto *PT = dyn_cast<ParenType>(Orig)) 3091 return getParenType( 3092 getFunctionTypeWithExceptionSpec(PT->getInnerType(), ESI)); 3093 3094 // Might be wrapped in a macro qualified type. 3095 if (const auto *MQT = dyn_cast<MacroQualifiedType>(Orig)) 3096 return getMacroQualifiedType( 3097 getFunctionTypeWithExceptionSpec(MQT->getUnderlyingType(), ESI), 3098 MQT->getMacroIdentifier()); 3099 3100 // Might have a calling-convention attribute. 3101 if (const auto *AT = dyn_cast<AttributedType>(Orig)) 3102 return getAttributedType( 3103 AT->getAttrKind(), 3104 getFunctionTypeWithExceptionSpec(AT->getModifiedType(), ESI), 3105 getFunctionTypeWithExceptionSpec(AT->getEquivalentType(), ESI)); 3106 3107 // Anything else must be a function type. Rebuild it with the new exception 3108 // specification. 3109 const auto *Proto = Orig->castAs<FunctionProtoType>(); 3110 return getFunctionType( 3111 Proto->getReturnType(), Proto->getParamTypes(), 3112 Proto->getExtProtoInfo().withExceptionSpec(ESI)); 3113 } 3114 3115 bool ASTContext::hasSameFunctionTypeIgnoringExceptionSpec(QualType T, 3116 QualType U) { 3117 return hasSameType(T, U) || 3118 (getLangOpts().CPlusPlus17 && 3119 hasSameType(getFunctionTypeWithExceptionSpec(T, EST_None), 3120 getFunctionTypeWithExceptionSpec(U, EST_None))); 3121 } 3122 3123 QualType ASTContext::getFunctionTypeWithoutPtrSizes(QualType T) { 3124 if (const auto *Proto = T->getAs<FunctionProtoType>()) { 3125 QualType RetTy = removePtrSizeAddrSpace(Proto->getReturnType()); 3126 SmallVector<QualType, 16> Args(Proto->param_types()); 3127 for (unsigned i = 0, n = Args.size(); i != n; ++i) 3128 Args[i] = removePtrSizeAddrSpace(Args[i]); 3129 return getFunctionType(RetTy, Args, Proto->getExtProtoInfo()); 3130 } 3131 3132 if (const FunctionNoProtoType *Proto = T->getAs<FunctionNoProtoType>()) { 3133 QualType RetTy = removePtrSizeAddrSpace(Proto->getReturnType()); 3134 return getFunctionNoProtoType(RetTy, Proto->getExtInfo()); 3135 } 3136 3137 return T; 3138 } 3139 3140 bool ASTContext::hasSameFunctionTypeIgnoringPtrSizes(QualType T, QualType U) { 3141 return hasSameType(T, U) || 3142 hasSameType(getFunctionTypeWithoutPtrSizes(T), 3143 getFunctionTypeWithoutPtrSizes(U)); 3144 } 3145 3146 void ASTContext::adjustExceptionSpec( 3147 FunctionDecl *FD, const FunctionProtoType::ExceptionSpecInfo &ESI, 3148 bool AsWritten) { 3149 // Update the type. 3150 QualType Updated = 3151 getFunctionTypeWithExceptionSpec(FD->getType(), ESI); 3152 FD->setType(Updated); 3153 3154 if (!AsWritten) 3155 return; 3156 3157 // Update the type in the type source information too. 3158 if (TypeSourceInfo *TSInfo = FD->getTypeSourceInfo()) { 3159 // If the type and the type-as-written differ, we may need to update 3160 // the type-as-written too. 3161 if (TSInfo->getType() != FD->getType()) 3162 Updated = getFunctionTypeWithExceptionSpec(TSInfo->getType(), ESI); 3163 3164 // FIXME: When we get proper type location information for exceptions, 3165 // we'll also have to rebuild the TypeSourceInfo. For now, we just patch 3166 // up the TypeSourceInfo; 3167 assert(TypeLoc::getFullDataSizeForType(Updated) == 3168 TypeLoc::getFullDataSizeForType(TSInfo->getType()) && 3169 "TypeLoc size mismatch from updating exception specification"); 3170 TSInfo->overrideType(Updated); 3171 } 3172 } 3173 3174 /// getComplexType - Return the uniqued reference to the type for a complex 3175 /// number with the specified element type. 3176 QualType ASTContext::getComplexType(QualType T) const { 3177 // Unique pointers, to guarantee there is only one pointer of a particular 3178 // structure. 3179 llvm::FoldingSetNodeID ID; 3180 ComplexType::Profile(ID, T); 3181 3182 void *InsertPos = nullptr; 3183 if (ComplexType *CT = ComplexTypes.FindNodeOrInsertPos(ID, InsertPos)) 3184 return QualType(CT, 0); 3185 3186 // If the pointee type isn't canonical, this won't be a canonical type either, 3187 // so fill in the canonical type field. 3188 QualType Canonical; 3189 if (!T.isCanonical()) { 3190 Canonical = getComplexType(getCanonicalType(T)); 3191 3192 // Get the new insert position for the node we care about. 3193 ComplexType *NewIP = ComplexTypes.FindNodeOrInsertPos(ID, InsertPos); 3194 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3195 } 3196 auto *New = new (*this, TypeAlignment) ComplexType(T, Canonical); 3197 Types.push_back(New); 3198 ComplexTypes.InsertNode(New, InsertPos); 3199 return QualType(New, 0); 3200 } 3201 3202 /// getPointerType - Return the uniqued reference to the type for a pointer to 3203 /// the specified type. 3204 QualType ASTContext::getPointerType(QualType T) const { 3205 // Unique pointers, to guarantee there is only one pointer of a particular 3206 // structure. 3207 llvm::FoldingSetNodeID ID; 3208 PointerType::Profile(ID, T); 3209 3210 void *InsertPos = nullptr; 3211 if (PointerType *PT = PointerTypes.FindNodeOrInsertPos(ID, InsertPos)) 3212 return QualType(PT, 0); 3213 3214 // If the pointee type isn't canonical, this won't be a canonical type either, 3215 // so fill in the canonical type field. 3216 QualType Canonical; 3217 if (!T.isCanonical()) { 3218 Canonical = getPointerType(getCanonicalType(T)); 3219 3220 // Get the new insert position for the node we care about. 3221 PointerType *NewIP = PointerTypes.FindNodeOrInsertPos(ID, InsertPos); 3222 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3223 } 3224 auto *New = new (*this, TypeAlignment) PointerType(T, Canonical); 3225 Types.push_back(New); 3226 PointerTypes.InsertNode(New, InsertPos); 3227 return QualType(New, 0); 3228 } 3229 3230 QualType ASTContext::getAdjustedType(QualType Orig, QualType New) const { 3231 llvm::FoldingSetNodeID ID; 3232 AdjustedType::Profile(ID, Orig, New); 3233 void *InsertPos = nullptr; 3234 AdjustedType *AT = AdjustedTypes.FindNodeOrInsertPos(ID, InsertPos); 3235 if (AT) 3236 return QualType(AT, 0); 3237 3238 QualType Canonical = getCanonicalType(New); 3239 3240 // Get the new insert position for the node we care about. 3241 AT = AdjustedTypes.FindNodeOrInsertPos(ID, InsertPos); 3242 assert(!AT && "Shouldn't be in the map!"); 3243 3244 AT = new (*this, TypeAlignment) 3245 AdjustedType(Type::Adjusted, Orig, New, Canonical); 3246 Types.push_back(AT); 3247 AdjustedTypes.InsertNode(AT, InsertPos); 3248 return QualType(AT, 0); 3249 } 3250 3251 QualType ASTContext::getDecayedType(QualType T) const { 3252 assert((T->isArrayType() || T->isFunctionType()) && "T does not decay"); 3253 3254 QualType Decayed; 3255 3256 // C99 6.7.5.3p7: 3257 // A declaration of a parameter as "array of type" shall be 3258 // adjusted to "qualified pointer to type", where the type 3259 // qualifiers (if any) are those specified within the [ and ] of 3260 // the array type derivation. 3261 if (T->isArrayType()) 3262 Decayed = getArrayDecayedType(T); 3263 3264 // C99 6.7.5.3p8: 3265 // A declaration of a parameter as "function returning type" 3266 // shall be adjusted to "pointer to function returning type", as 3267 // in 6.3.2.1. 3268 if (T->isFunctionType()) 3269 Decayed = getPointerType(T); 3270 3271 llvm::FoldingSetNodeID ID; 3272 AdjustedType::Profile(ID, T, Decayed); 3273 void *InsertPos = nullptr; 3274 AdjustedType *AT = AdjustedTypes.FindNodeOrInsertPos(ID, InsertPos); 3275 if (AT) 3276 return QualType(AT, 0); 3277 3278 QualType Canonical = getCanonicalType(Decayed); 3279 3280 // Get the new insert position for the node we care about. 3281 AT = AdjustedTypes.FindNodeOrInsertPos(ID, InsertPos); 3282 assert(!AT && "Shouldn't be in the map!"); 3283 3284 AT = new (*this, TypeAlignment) DecayedType(T, Decayed, Canonical); 3285 Types.push_back(AT); 3286 AdjustedTypes.InsertNode(AT, InsertPos); 3287 return QualType(AT, 0); 3288 } 3289 3290 /// getBlockPointerType - Return the uniqued reference to the type for 3291 /// a pointer to the specified block. 3292 QualType ASTContext::getBlockPointerType(QualType T) const { 3293 assert(T->isFunctionType() && "block of function types only"); 3294 // Unique pointers, to guarantee there is only one block of a particular 3295 // structure. 3296 llvm::FoldingSetNodeID ID; 3297 BlockPointerType::Profile(ID, T); 3298 3299 void *InsertPos = nullptr; 3300 if (BlockPointerType *PT = 3301 BlockPointerTypes.FindNodeOrInsertPos(ID, InsertPos)) 3302 return QualType(PT, 0); 3303 3304 // If the block pointee type isn't canonical, this won't be a canonical 3305 // type either so fill in the canonical type field. 3306 QualType Canonical; 3307 if (!T.isCanonical()) { 3308 Canonical = getBlockPointerType(getCanonicalType(T)); 3309 3310 // Get the new insert position for the node we care about. 3311 BlockPointerType *NewIP = 3312 BlockPointerTypes.FindNodeOrInsertPos(ID, InsertPos); 3313 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3314 } 3315 auto *New = new (*this, TypeAlignment) BlockPointerType(T, Canonical); 3316 Types.push_back(New); 3317 BlockPointerTypes.InsertNode(New, InsertPos); 3318 return QualType(New, 0); 3319 } 3320 3321 /// getLValueReferenceType - Return the uniqued reference to the type for an 3322 /// lvalue reference to the specified type. 3323 QualType 3324 ASTContext::getLValueReferenceType(QualType T, bool SpelledAsLValue) const { 3325 assert(getCanonicalType(T) != OverloadTy && 3326 "Unresolved overloaded function type"); 3327 3328 // Unique pointers, to guarantee there is only one pointer of a particular 3329 // structure. 3330 llvm::FoldingSetNodeID ID; 3331 ReferenceType::Profile(ID, T, SpelledAsLValue); 3332 3333 void *InsertPos = nullptr; 3334 if (LValueReferenceType *RT = 3335 LValueReferenceTypes.FindNodeOrInsertPos(ID, InsertPos)) 3336 return QualType(RT, 0); 3337 3338 const auto *InnerRef = T->getAs<ReferenceType>(); 3339 3340 // If the referencee type isn't canonical, this won't be a canonical type 3341 // either, so fill in the canonical type field. 3342 QualType Canonical; 3343 if (!SpelledAsLValue || InnerRef || !T.isCanonical()) { 3344 QualType PointeeType = (InnerRef ? InnerRef->getPointeeType() : T); 3345 Canonical = getLValueReferenceType(getCanonicalType(PointeeType)); 3346 3347 // Get the new insert position for the node we care about. 3348 LValueReferenceType *NewIP = 3349 LValueReferenceTypes.FindNodeOrInsertPos(ID, InsertPos); 3350 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3351 } 3352 3353 auto *New = new (*this, TypeAlignment) LValueReferenceType(T, Canonical, 3354 SpelledAsLValue); 3355 Types.push_back(New); 3356 LValueReferenceTypes.InsertNode(New, InsertPos); 3357 3358 return QualType(New, 0); 3359 } 3360 3361 /// getRValueReferenceType - Return the uniqued reference to the type for an 3362 /// rvalue reference to the specified type. 3363 QualType ASTContext::getRValueReferenceType(QualType T) const { 3364 // Unique pointers, to guarantee there is only one pointer of a particular 3365 // structure. 3366 llvm::FoldingSetNodeID ID; 3367 ReferenceType::Profile(ID, T, false); 3368 3369 void *InsertPos = nullptr; 3370 if (RValueReferenceType *RT = 3371 RValueReferenceTypes.FindNodeOrInsertPos(ID, InsertPos)) 3372 return QualType(RT, 0); 3373 3374 const auto *InnerRef = T->getAs<ReferenceType>(); 3375 3376 // If the referencee type isn't canonical, this won't be a canonical type 3377 // either, so fill in the canonical type field. 3378 QualType Canonical; 3379 if (InnerRef || !T.isCanonical()) { 3380 QualType PointeeType = (InnerRef ? InnerRef->getPointeeType() : T); 3381 Canonical = getRValueReferenceType(getCanonicalType(PointeeType)); 3382 3383 // Get the new insert position for the node we care about. 3384 RValueReferenceType *NewIP = 3385 RValueReferenceTypes.FindNodeOrInsertPos(ID, InsertPos); 3386 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3387 } 3388 3389 auto *New = new (*this, TypeAlignment) RValueReferenceType(T, Canonical); 3390 Types.push_back(New); 3391 RValueReferenceTypes.InsertNode(New, InsertPos); 3392 return QualType(New, 0); 3393 } 3394 3395 /// getMemberPointerType - Return the uniqued reference to the type for a 3396 /// member pointer to the specified type, in the specified class. 3397 QualType ASTContext::getMemberPointerType(QualType T, const Type *Cls) const { 3398 // Unique pointers, to guarantee there is only one pointer of a particular 3399 // structure. 3400 llvm::FoldingSetNodeID ID; 3401 MemberPointerType::Profile(ID, T, Cls); 3402 3403 void *InsertPos = nullptr; 3404 if (MemberPointerType *PT = 3405 MemberPointerTypes.FindNodeOrInsertPos(ID, InsertPos)) 3406 return QualType(PT, 0); 3407 3408 // If the pointee or class type isn't canonical, this won't be a canonical 3409 // type either, so fill in the canonical type field. 3410 QualType Canonical; 3411 if (!T.isCanonical() || !Cls->isCanonicalUnqualified()) { 3412 Canonical = getMemberPointerType(getCanonicalType(T),getCanonicalType(Cls)); 3413 3414 // Get the new insert position for the node we care about. 3415 MemberPointerType *NewIP = 3416 MemberPointerTypes.FindNodeOrInsertPos(ID, InsertPos); 3417 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3418 } 3419 auto *New = new (*this, TypeAlignment) MemberPointerType(T, Cls, Canonical); 3420 Types.push_back(New); 3421 MemberPointerTypes.InsertNode(New, InsertPos); 3422 return QualType(New, 0); 3423 } 3424 3425 /// getConstantArrayType - Return the unique reference to the type for an 3426 /// array of the specified element type. 3427 QualType ASTContext::getConstantArrayType(QualType EltTy, 3428 const llvm::APInt &ArySizeIn, 3429 const Expr *SizeExpr, 3430 ArrayType::ArraySizeModifier ASM, 3431 unsigned IndexTypeQuals) const { 3432 assert((EltTy->isDependentType() || 3433 EltTy->isIncompleteType() || EltTy->isConstantSizeType()) && 3434 "Constant array of VLAs is illegal!"); 3435 3436 // We only need the size as part of the type if it's instantiation-dependent. 3437 if (SizeExpr && !SizeExpr->isInstantiationDependent()) 3438 SizeExpr = nullptr; 3439 3440 // Convert the array size into a canonical width matching the pointer size for 3441 // the target. 3442 llvm::APInt ArySize(ArySizeIn); 3443 ArySize = ArySize.zextOrTrunc(Target->getMaxPointerWidth()); 3444 3445 llvm::FoldingSetNodeID ID; 3446 ConstantArrayType::Profile(ID, *this, EltTy, ArySize, SizeExpr, ASM, 3447 IndexTypeQuals); 3448 3449 void *InsertPos = nullptr; 3450 if (ConstantArrayType *ATP = 3451 ConstantArrayTypes.FindNodeOrInsertPos(ID, InsertPos)) 3452 return QualType(ATP, 0); 3453 3454 // If the element type isn't canonical or has qualifiers, or the array bound 3455 // is instantiation-dependent, this won't be a canonical type either, so fill 3456 // in the canonical type field. 3457 QualType Canon; 3458 if (!EltTy.isCanonical() || EltTy.hasLocalQualifiers() || SizeExpr) { 3459 SplitQualType canonSplit = getCanonicalType(EltTy).split(); 3460 Canon = getConstantArrayType(QualType(canonSplit.Ty, 0), ArySize, nullptr, 3461 ASM, IndexTypeQuals); 3462 Canon = getQualifiedType(Canon, canonSplit.Quals); 3463 3464 // Get the new insert position for the node we care about. 3465 ConstantArrayType *NewIP = 3466 ConstantArrayTypes.FindNodeOrInsertPos(ID, InsertPos); 3467 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3468 } 3469 3470 void *Mem = Allocate( 3471 ConstantArrayType::totalSizeToAlloc<const Expr *>(SizeExpr ? 1 : 0), 3472 TypeAlignment); 3473 auto *New = new (Mem) 3474 ConstantArrayType(EltTy, Canon, ArySize, SizeExpr, ASM, IndexTypeQuals); 3475 ConstantArrayTypes.InsertNode(New, InsertPos); 3476 Types.push_back(New); 3477 return QualType(New, 0); 3478 } 3479 3480 /// getVariableArrayDecayedType - Turns the given type, which may be 3481 /// variably-modified, into the corresponding type with all the known 3482 /// sizes replaced with [*]. 3483 QualType ASTContext::getVariableArrayDecayedType(QualType type) const { 3484 // Vastly most common case. 3485 if (!type->isVariablyModifiedType()) return type; 3486 3487 QualType result; 3488 3489 SplitQualType split = type.getSplitDesugaredType(); 3490 const Type *ty = split.Ty; 3491 switch (ty->getTypeClass()) { 3492 #define TYPE(Class, Base) 3493 #define ABSTRACT_TYPE(Class, Base) 3494 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class: 3495 #include "clang/AST/TypeNodes.inc" 3496 llvm_unreachable("didn't desugar past all non-canonical types?"); 3497 3498 // These types should never be variably-modified. 3499 case Type::Builtin: 3500 case Type::Complex: 3501 case Type::Vector: 3502 case Type::DependentVector: 3503 case Type::ExtVector: 3504 case Type::DependentSizedExtVector: 3505 case Type::ConstantMatrix: 3506 case Type::DependentSizedMatrix: 3507 case Type::DependentAddressSpace: 3508 case Type::ObjCObject: 3509 case Type::ObjCInterface: 3510 case Type::ObjCObjectPointer: 3511 case Type::Record: 3512 case Type::Enum: 3513 case Type::UnresolvedUsing: 3514 case Type::TypeOfExpr: 3515 case Type::TypeOf: 3516 case Type::Decltype: 3517 case Type::UnaryTransform: 3518 case Type::DependentName: 3519 case Type::InjectedClassName: 3520 case Type::TemplateSpecialization: 3521 case Type::DependentTemplateSpecialization: 3522 case Type::TemplateTypeParm: 3523 case Type::SubstTemplateTypeParmPack: 3524 case Type::Auto: 3525 case Type::DeducedTemplateSpecialization: 3526 case Type::PackExpansion: 3527 case Type::ExtInt: 3528 case Type::DependentExtInt: 3529 llvm_unreachable("type should never be variably-modified"); 3530 3531 // These types can be variably-modified but should never need to 3532 // further decay. 3533 case Type::FunctionNoProto: 3534 case Type::FunctionProto: 3535 case Type::BlockPointer: 3536 case Type::MemberPointer: 3537 case Type::Pipe: 3538 return type; 3539 3540 // These types can be variably-modified. All these modifications 3541 // preserve structure except as noted by comments. 3542 // TODO: if we ever care about optimizing VLAs, there are no-op 3543 // optimizations available here. 3544 case Type::Pointer: 3545 result = getPointerType(getVariableArrayDecayedType( 3546 cast<PointerType>(ty)->getPointeeType())); 3547 break; 3548 3549 case Type::LValueReference: { 3550 const auto *lv = cast<LValueReferenceType>(ty); 3551 result = getLValueReferenceType( 3552 getVariableArrayDecayedType(lv->getPointeeType()), 3553 lv->isSpelledAsLValue()); 3554 break; 3555 } 3556 3557 case Type::RValueReference: { 3558 const auto *lv = cast<RValueReferenceType>(ty); 3559 result = getRValueReferenceType( 3560 getVariableArrayDecayedType(lv->getPointeeType())); 3561 break; 3562 } 3563 3564 case Type::Atomic: { 3565 const auto *at = cast<AtomicType>(ty); 3566 result = getAtomicType(getVariableArrayDecayedType(at->getValueType())); 3567 break; 3568 } 3569 3570 case Type::ConstantArray: { 3571 const auto *cat = cast<ConstantArrayType>(ty); 3572 result = getConstantArrayType( 3573 getVariableArrayDecayedType(cat->getElementType()), 3574 cat->getSize(), 3575 cat->getSizeExpr(), 3576 cat->getSizeModifier(), 3577 cat->getIndexTypeCVRQualifiers()); 3578 break; 3579 } 3580 3581 case Type::DependentSizedArray: { 3582 const auto *dat = cast<DependentSizedArrayType>(ty); 3583 result = getDependentSizedArrayType( 3584 getVariableArrayDecayedType(dat->getElementType()), 3585 dat->getSizeExpr(), 3586 dat->getSizeModifier(), 3587 dat->getIndexTypeCVRQualifiers(), 3588 dat->getBracketsRange()); 3589 break; 3590 } 3591 3592 // Turn incomplete types into [*] types. 3593 case Type::IncompleteArray: { 3594 const auto *iat = cast<IncompleteArrayType>(ty); 3595 result = getVariableArrayType( 3596 getVariableArrayDecayedType(iat->getElementType()), 3597 /*size*/ nullptr, 3598 ArrayType::Normal, 3599 iat->getIndexTypeCVRQualifiers(), 3600 SourceRange()); 3601 break; 3602 } 3603 3604 // Turn VLA types into [*] types. 3605 case Type::VariableArray: { 3606 const auto *vat = cast<VariableArrayType>(ty); 3607 result = getVariableArrayType( 3608 getVariableArrayDecayedType(vat->getElementType()), 3609 /*size*/ nullptr, 3610 ArrayType::Star, 3611 vat->getIndexTypeCVRQualifiers(), 3612 vat->getBracketsRange()); 3613 break; 3614 } 3615 } 3616 3617 // Apply the top-level qualifiers from the original. 3618 return getQualifiedType(result, split.Quals); 3619 } 3620 3621 /// getVariableArrayType - Returns a non-unique reference to the type for a 3622 /// variable array of the specified element type. 3623 QualType ASTContext::getVariableArrayType(QualType EltTy, 3624 Expr *NumElts, 3625 ArrayType::ArraySizeModifier ASM, 3626 unsigned IndexTypeQuals, 3627 SourceRange Brackets) const { 3628 // Since we don't unique expressions, it isn't possible to unique VLA's 3629 // that have an expression provided for their size. 3630 QualType Canon; 3631 3632 // Be sure to pull qualifiers off the element type. 3633 if (!EltTy.isCanonical() || EltTy.hasLocalQualifiers()) { 3634 SplitQualType canonSplit = getCanonicalType(EltTy).split(); 3635 Canon = getVariableArrayType(QualType(canonSplit.Ty, 0), NumElts, ASM, 3636 IndexTypeQuals, Brackets); 3637 Canon = getQualifiedType(Canon, canonSplit.Quals); 3638 } 3639 3640 auto *New = new (*this, TypeAlignment) 3641 VariableArrayType(EltTy, Canon, NumElts, ASM, IndexTypeQuals, Brackets); 3642 3643 VariableArrayTypes.push_back(New); 3644 Types.push_back(New); 3645 return QualType(New, 0); 3646 } 3647 3648 /// getDependentSizedArrayType - Returns a non-unique reference to 3649 /// the type for a dependently-sized array of the specified element 3650 /// type. 3651 QualType ASTContext::getDependentSizedArrayType(QualType elementType, 3652 Expr *numElements, 3653 ArrayType::ArraySizeModifier ASM, 3654 unsigned elementTypeQuals, 3655 SourceRange brackets) const { 3656 assert((!numElements || numElements->isTypeDependent() || 3657 numElements->isValueDependent()) && 3658 "Size must be type- or value-dependent!"); 3659 3660 // Dependently-sized array types that do not have a specified number 3661 // of elements will have their sizes deduced from a dependent 3662 // initializer. We do no canonicalization here at all, which is okay 3663 // because they can't be used in most locations. 3664 if (!numElements) { 3665 auto *newType 3666 = new (*this, TypeAlignment) 3667 DependentSizedArrayType(*this, elementType, QualType(), 3668 numElements, ASM, elementTypeQuals, 3669 brackets); 3670 Types.push_back(newType); 3671 return QualType(newType, 0); 3672 } 3673 3674 // Otherwise, we actually build a new type every time, but we 3675 // also build a canonical type. 3676 3677 SplitQualType canonElementType = getCanonicalType(elementType).split(); 3678 3679 void *insertPos = nullptr; 3680 llvm::FoldingSetNodeID ID; 3681 DependentSizedArrayType::Profile(ID, *this, 3682 QualType(canonElementType.Ty, 0), 3683 ASM, elementTypeQuals, numElements); 3684 3685 // Look for an existing type with these properties. 3686 DependentSizedArrayType *canonTy = 3687 DependentSizedArrayTypes.FindNodeOrInsertPos(ID, insertPos); 3688 3689 // If we don't have one, build one. 3690 if (!canonTy) { 3691 canonTy = new (*this, TypeAlignment) 3692 DependentSizedArrayType(*this, QualType(canonElementType.Ty, 0), 3693 QualType(), numElements, ASM, elementTypeQuals, 3694 brackets); 3695 DependentSizedArrayTypes.InsertNode(canonTy, insertPos); 3696 Types.push_back(canonTy); 3697 } 3698 3699 // Apply qualifiers from the element type to the array. 3700 QualType canon = getQualifiedType(QualType(canonTy,0), 3701 canonElementType.Quals); 3702 3703 // If we didn't need extra canonicalization for the element type or the size 3704 // expression, then just use that as our result. 3705 if (QualType(canonElementType.Ty, 0) == elementType && 3706 canonTy->getSizeExpr() == numElements) 3707 return canon; 3708 3709 // Otherwise, we need to build a type which follows the spelling 3710 // of the element type. 3711 auto *sugaredType 3712 = new (*this, TypeAlignment) 3713 DependentSizedArrayType(*this, elementType, canon, numElements, 3714 ASM, elementTypeQuals, brackets); 3715 Types.push_back(sugaredType); 3716 return QualType(sugaredType, 0); 3717 } 3718 3719 QualType ASTContext::getIncompleteArrayType(QualType elementType, 3720 ArrayType::ArraySizeModifier ASM, 3721 unsigned elementTypeQuals) const { 3722 llvm::FoldingSetNodeID ID; 3723 IncompleteArrayType::Profile(ID, elementType, ASM, elementTypeQuals); 3724 3725 void *insertPos = nullptr; 3726 if (IncompleteArrayType *iat = 3727 IncompleteArrayTypes.FindNodeOrInsertPos(ID, insertPos)) 3728 return QualType(iat, 0); 3729 3730 // If the element type isn't canonical, this won't be a canonical type 3731 // either, so fill in the canonical type field. We also have to pull 3732 // qualifiers off the element type. 3733 QualType canon; 3734 3735 if (!elementType.isCanonical() || elementType.hasLocalQualifiers()) { 3736 SplitQualType canonSplit = getCanonicalType(elementType).split(); 3737 canon = getIncompleteArrayType(QualType(canonSplit.Ty, 0), 3738 ASM, elementTypeQuals); 3739 canon = getQualifiedType(canon, canonSplit.Quals); 3740 3741 // Get the new insert position for the node we care about. 3742 IncompleteArrayType *existing = 3743 IncompleteArrayTypes.FindNodeOrInsertPos(ID, insertPos); 3744 assert(!existing && "Shouldn't be in the map!"); (void) existing; 3745 } 3746 3747 auto *newType = new (*this, TypeAlignment) 3748 IncompleteArrayType(elementType, canon, ASM, elementTypeQuals); 3749 3750 IncompleteArrayTypes.InsertNode(newType, insertPos); 3751 Types.push_back(newType); 3752 return QualType(newType, 0); 3753 } 3754 3755 ASTContext::BuiltinVectorTypeInfo 3756 ASTContext::getBuiltinVectorTypeInfo(const BuiltinType *Ty) const { 3757 #define SVE_INT_ELTTY(BITS, ELTS, SIGNED, NUMVECTORS) \ 3758 {getIntTypeForBitwidth(BITS, SIGNED), llvm::ElementCount::getScalable(ELTS), \ 3759 NUMVECTORS}; 3760 3761 #define SVE_ELTTY(ELTTY, ELTS, NUMVECTORS) \ 3762 {ELTTY, llvm::ElementCount::getScalable(ELTS), NUMVECTORS}; 3763 3764 switch (Ty->getKind()) { 3765 default: 3766 llvm_unreachable("Unsupported builtin vector type"); 3767 case BuiltinType::SveInt8: 3768 return SVE_INT_ELTTY(8, 16, true, 1); 3769 case BuiltinType::SveUint8: 3770 return SVE_INT_ELTTY(8, 16, false, 1); 3771 case BuiltinType::SveInt8x2: 3772 return SVE_INT_ELTTY(8, 16, true, 2); 3773 case BuiltinType::SveUint8x2: 3774 return SVE_INT_ELTTY(8, 16, false, 2); 3775 case BuiltinType::SveInt8x3: 3776 return SVE_INT_ELTTY(8, 16, true, 3); 3777 case BuiltinType::SveUint8x3: 3778 return SVE_INT_ELTTY(8, 16, false, 3); 3779 case BuiltinType::SveInt8x4: 3780 return SVE_INT_ELTTY(8, 16, true, 4); 3781 case BuiltinType::SveUint8x4: 3782 return SVE_INT_ELTTY(8, 16, false, 4); 3783 case BuiltinType::SveInt16: 3784 return SVE_INT_ELTTY(16, 8, true, 1); 3785 case BuiltinType::SveUint16: 3786 return SVE_INT_ELTTY(16, 8, false, 1); 3787 case BuiltinType::SveInt16x2: 3788 return SVE_INT_ELTTY(16, 8, true, 2); 3789 case BuiltinType::SveUint16x2: 3790 return SVE_INT_ELTTY(16, 8, false, 2); 3791 case BuiltinType::SveInt16x3: 3792 return SVE_INT_ELTTY(16, 8, true, 3); 3793 case BuiltinType::SveUint16x3: 3794 return SVE_INT_ELTTY(16, 8, false, 3); 3795 case BuiltinType::SveInt16x4: 3796 return SVE_INT_ELTTY(16, 8, true, 4); 3797 case BuiltinType::SveUint16x4: 3798 return SVE_INT_ELTTY(16, 8, false, 4); 3799 case BuiltinType::SveInt32: 3800 return SVE_INT_ELTTY(32, 4, true, 1); 3801 case BuiltinType::SveUint32: 3802 return SVE_INT_ELTTY(32, 4, false, 1); 3803 case BuiltinType::SveInt32x2: 3804 return SVE_INT_ELTTY(32, 4, true, 2); 3805 case BuiltinType::SveUint32x2: 3806 return SVE_INT_ELTTY(32, 4, false, 2); 3807 case BuiltinType::SveInt32x3: 3808 return SVE_INT_ELTTY(32, 4, true, 3); 3809 case BuiltinType::SveUint32x3: 3810 return SVE_INT_ELTTY(32, 4, false, 3); 3811 case BuiltinType::SveInt32x4: 3812 return SVE_INT_ELTTY(32, 4, true, 4); 3813 case BuiltinType::SveUint32x4: 3814 return SVE_INT_ELTTY(32, 4, false, 4); 3815 case BuiltinType::SveInt64: 3816 return SVE_INT_ELTTY(64, 2, true, 1); 3817 case BuiltinType::SveUint64: 3818 return SVE_INT_ELTTY(64, 2, false, 1); 3819 case BuiltinType::SveInt64x2: 3820 return SVE_INT_ELTTY(64, 2, true, 2); 3821 case BuiltinType::SveUint64x2: 3822 return SVE_INT_ELTTY(64, 2, false, 2); 3823 case BuiltinType::SveInt64x3: 3824 return SVE_INT_ELTTY(64, 2, true, 3); 3825 case BuiltinType::SveUint64x3: 3826 return SVE_INT_ELTTY(64, 2, false, 3); 3827 case BuiltinType::SveInt64x4: 3828 return SVE_INT_ELTTY(64, 2, true, 4); 3829 case BuiltinType::SveUint64x4: 3830 return SVE_INT_ELTTY(64, 2, false, 4); 3831 case BuiltinType::SveBool: 3832 return SVE_ELTTY(BoolTy, 16, 1); 3833 case BuiltinType::SveFloat16: 3834 return SVE_ELTTY(HalfTy, 8, 1); 3835 case BuiltinType::SveFloat16x2: 3836 return SVE_ELTTY(HalfTy, 8, 2); 3837 case BuiltinType::SveFloat16x3: 3838 return SVE_ELTTY(HalfTy, 8, 3); 3839 case BuiltinType::SveFloat16x4: 3840 return SVE_ELTTY(HalfTy, 8, 4); 3841 case BuiltinType::SveFloat32: 3842 return SVE_ELTTY(FloatTy, 4, 1); 3843 case BuiltinType::SveFloat32x2: 3844 return SVE_ELTTY(FloatTy, 4, 2); 3845 case BuiltinType::SveFloat32x3: 3846 return SVE_ELTTY(FloatTy, 4, 3); 3847 case BuiltinType::SveFloat32x4: 3848 return SVE_ELTTY(FloatTy, 4, 4); 3849 case BuiltinType::SveFloat64: 3850 return SVE_ELTTY(DoubleTy, 2, 1); 3851 case BuiltinType::SveFloat64x2: 3852 return SVE_ELTTY(DoubleTy, 2, 2); 3853 case BuiltinType::SveFloat64x3: 3854 return SVE_ELTTY(DoubleTy, 2, 3); 3855 case BuiltinType::SveFloat64x4: 3856 return SVE_ELTTY(DoubleTy, 2, 4); 3857 case BuiltinType::SveBFloat16: 3858 return SVE_ELTTY(BFloat16Ty, 8, 1); 3859 case BuiltinType::SveBFloat16x2: 3860 return SVE_ELTTY(BFloat16Ty, 8, 2); 3861 case BuiltinType::SveBFloat16x3: 3862 return SVE_ELTTY(BFloat16Ty, 8, 3); 3863 case BuiltinType::SveBFloat16x4: 3864 return SVE_ELTTY(BFloat16Ty, 8, 4); 3865 #define RVV_VECTOR_TYPE_INT(Name, Id, SingletonId, NumEls, ElBits, NF, \ 3866 IsSigned) \ 3867 case BuiltinType::Id: \ 3868 return {getIntTypeForBitwidth(ElBits, IsSigned), \ 3869 llvm::ElementCount::getScalable(NumEls), NF}; 3870 #define RVV_VECTOR_TYPE_FLOAT(Name, Id, SingletonId, NumEls, ElBits, NF) \ 3871 case BuiltinType::Id: \ 3872 return {ElBits == 16 ? Float16Ty : (ElBits == 32 ? FloatTy : DoubleTy), \ 3873 llvm::ElementCount::getScalable(NumEls), NF}; 3874 #define RVV_PREDICATE_TYPE(Name, Id, SingletonId, NumEls) \ 3875 case BuiltinType::Id: \ 3876 return {BoolTy, llvm::ElementCount::getScalable(NumEls), 1}; 3877 #include "clang/Basic/RISCVVTypes.def" 3878 } 3879 } 3880 3881 /// getScalableVectorType - Return the unique reference to a scalable vector 3882 /// type of the specified element type and size. VectorType must be a built-in 3883 /// type. 3884 QualType ASTContext::getScalableVectorType(QualType EltTy, 3885 unsigned NumElts) const { 3886 if (Target->hasAArch64SVETypes()) { 3887 uint64_t EltTySize = getTypeSize(EltTy); 3888 #define SVE_VECTOR_TYPE(Name, MangledName, Id, SingletonId, NumEls, ElBits, \ 3889 IsSigned, IsFP, IsBF) \ 3890 if (!EltTy->isBooleanType() && \ 3891 ((EltTy->hasIntegerRepresentation() && \ 3892 EltTy->hasSignedIntegerRepresentation() == IsSigned) || \ 3893 (EltTy->hasFloatingRepresentation() && !EltTy->isBFloat16Type() && \ 3894 IsFP && !IsBF) || \ 3895 (EltTy->hasFloatingRepresentation() && EltTy->isBFloat16Type() && \ 3896 IsBF && !IsFP)) && \ 3897 EltTySize == ElBits && NumElts == NumEls) { \ 3898 return SingletonId; \ 3899 } 3900 #define SVE_PREDICATE_TYPE(Name, MangledName, Id, SingletonId, NumEls) \ 3901 if (EltTy->isBooleanType() && NumElts == NumEls) \ 3902 return SingletonId; 3903 #include "clang/Basic/AArch64SVEACLETypes.def" 3904 } else if (Target->hasRISCVVTypes()) { 3905 uint64_t EltTySize = getTypeSize(EltTy); 3906 #define RVV_VECTOR_TYPE(Name, Id, SingletonId, NumEls, ElBits, NF, IsSigned, \ 3907 IsFP) \ 3908 if (!EltTy->isBooleanType() && \ 3909 ((EltTy->hasIntegerRepresentation() && \ 3910 EltTy->hasSignedIntegerRepresentation() == IsSigned) || \ 3911 (EltTy->hasFloatingRepresentation() && IsFP)) && \ 3912 EltTySize == ElBits && NumElts == NumEls) \ 3913 return SingletonId; 3914 #define RVV_PREDICATE_TYPE(Name, Id, SingletonId, NumEls) \ 3915 if (EltTy->isBooleanType() && NumElts == NumEls) \ 3916 return SingletonId; 3917 #include "clang/Basic/RISCVVTypes.def" 3918 } 3919 return QualType(); 3920 } 3921 3922 /// getVectorType - Return the unique reference to a vector type of 3923 /// the specified element type and size. VectorType must be a built-in type. 3924 QualType ASTContext::getVectorType(QualType vecType, unsigned NumElts, 3925 VectorType::VectorKind VecKind) const { 3926 assert(vecType->isBuiltinType()); 3927 3928 // Check if we've already instantiated a vector of this type. 3929 llvm::FoldingSetNodeID ID; 3930 VectorType::Profile(ID, vecType, NumElts, Type::Vector, VecKind); 3931 3932 void *InsertPos = nullptr; 3933 if (VectorType *VTP = VectorTypes.FindNodeOrInsertPos(ID, InsertPos)) 3934 return QualType(VTP, 0); 3935 3936 // If the element type isn't canonical, this won't be a canonical type either, 3937 // so fill in the canonical type field. 3938 QualType Canonical; 3939 if (!vecType.isCanonical()) { 3940 Canonical = getVectorType(getCanonicalType(vecType), NumElts, VecKind); 3941 3942 // Get the new insert position for the node we care about. 3943 VectorType *NewIP = VectorTypes.FindNodeOrInsertPos(ID, InsertPos); 3944 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 3945 } 3946 auto *New = new (*this, TypeAlignment) 3947 VectorType(vecType, NumElts, Canonical, VecKind); 3948 VectorTypes.InsertNode(New, InsertPos); 3949 Types.push_back(New); 3950 return QualType(New, 0); 3951 } 3952 3953 QualType 3954 ASTContext::getDependentVectorType(QualType VecType, Expr *SizeExpr, 3955 SourceLocation AttrLoc, 3956 VectorType::VectorKind VecKind) const { 3957 llvm::FoldingSetNodeID ID; 3958 DependentVectorType::Profile(ID, *this, getCanonicalType(VecType), SizeExpr, 3959 VecKind); 3960 void *InsertPos = nullptr; 3961 DependentVectorType *Canon = 3962 DependentVectorTypes.FindNodeOrInsertPos(ID, InsertPos); 3963 DependentVectorType *New; 3964 3965 if (Canon) { 3966 New = new (*this, TypeAlignment) DependentVectorType( 3967 *this, VecType, QualType(Canon, 0), SizeExpr, AttrLoc, VecKind); 3968 } else { 3969 QualType CanonVecTy = getCanonicalType(VecType); 3970 if (CanonVecTy == VecType) { 3971 New = new (*this, TypeAlignment) DependentVectorType( 3972 *this, VecType, QualType(), SizeExpr, AttrLoc, VecKind); 3973 3974 DependentVectorType *CanonCheck = 3975 DependentVectorTypes.FindNodeOrInsertPos(ID, InsertPos); 3976 assert(!CanonCheck && 3977 "Dependent-sized vector_size canonical type broken"); 3978 (void)CanonCheck; 3979 DependentVectorTypes.InsertNode(New, InsertPos); 3980 } else { 3981 QualType CanonTy = getDependentVectorType(CanonVecTy, SizeExpr, 3982 SourceLocation(), VecKind); 3983 New = new (*this, TypeAlignment) DependentVectorType( 3984 *this, VecType, CanonTy, SizeExpr, AttrLoc, VecKind); 3985 } 3986 } 3987 3988 Types.push_back(New); 3989 return QualType(New, 0); 3990 } 3991 3992 /// getExtVectorType - Return the unique reference to an extended vector type of 3993 /// the specified element type and size. VectorType must be a built-in type. 3994 QualType 3995 ASTContext::getExtVectorType(QualType vecType, unsigned NumElts) const { 3996 assert(vecType->isBuiltinType() || vecType->isDependentType()); 3997 3998 // Check if we've already instantiated a vector of this type. 3999 llvm::FoldingSetNodeID ID; 4000 VectorType::Profile(ID, vecType, NumElts, Type::ExtVector, 4001 VectorType::GenericVector); 4002 void *InsertPos = nullptr; 4003 if (VectorType *VTP = VectorTypes.FindNodeOrInsertPos(ID, InsertPos)) 4004 return QualType(VTP, 0); 4005 4006 // If the element type isn't canonical, this won't be a canonical type either, 4007 // so fill in the canonical type field. 4008 QualType Canonical; 4009 if (!vecType.isCanonical()) { 4010 Canonical = getExtVectorType(getCanonicalType(vecType), NumElts); 4011 4012 // Get the new insert position for the node we care about. 4013 VectorType *NewIP = VectorTypes.FindNodeOrInsertPos(ID, InsertPos); 4014 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 4015 } 4016 auto *New = new (*this, TypeAlignment) 4017 ExtVectorType(vecType, NumElts, Canonical); 4018 VectorTypes.InsertNode(New, InsertPos); 4019 Types.push_back(New); 4020 return QualType(New, 0); 4021 } 4022 4023 QualType 4024 ASTContext::getDependentSizedExtVectorType(QualType vecType, 4025 Expr *SizeExpr, 4026 SourceLocation AttrLoc) const { 4027 llvm::FoldingSetNodeID ID; 4028 DependentSizedExtVectorType::Profile(ID, *this, getCanonicalType(vecType), 4029 SizeExpr); 4030 4031 void *InsertPos = nullptr; 4032 DependentSizedExtVectorType *Canon 4033 = DependentSizedExtVectorTypes.FindNodeOrInsertPos(ID, InsertPos); 4034 DependentSizedExtVectorType *New; 4035 if (Canon) { 4036 // We already have a canonical version of this array type; use it as 4037 // the canonical type for a newly-built type. 4038 New = new (*this, TypeAlignment) 4039 DependentSizedExtVectorType(*this, vecType, QualType(Canon, 0), 4040 SizeExpr, AttrLoc); 4041 } else { 4042 QualType CanonVecTy = getCanonicalType(vecType); 4043 if (CanonVecTy == vecType) { 4044 New = new (*this, TypeAlignment) 4045 DependentSizedExtVectorType(*this, vecType, QualType(), SizeExpr, 4046 AttrLoc); 4047 4048 DependentSizedExtVectorType *CanonCheck 4049 = DependentSizedExtVectorTypes.FindNodeOrInsertPos(ID, InsertPos); 4050 assert(!CanonCheck && "Dependent-sized ext_vector canonical type broken"); 4051 (void)CanonCheck; 4052 DependentSizedExtVectorTypes.InsertNode(New, InsertPos); 4053 } else { 4054 QualType CanonExtTy = getDependentSizedExtVectorType(CanonVecTy, SizeExpr, 4055 SourceLocation()); 4056 New = new (*this, TypeAlignment) DependentSizedExtVectorType( 4057 *this, vecType, CanonExtTy, SizeExpr, AttrLoc); 4058 } 4059 } 4060 4061 Types.push_back(New); 4062 return QualType(New, 0); 4063 } 4064 4065 QualType ASTContext::getConstantMatrixType(QualType ElementTy, unsigned NumRows, 4066 unsigned NumColumns) const { 4067 llvm::FoldingSetNodeID ID; 4068 ConstantMatrixType::Profile(ID, ElementTy, NumRows, NumColumns, 4069 Type::ConstantMatrix); 4070 4071 assert(MatrixType::isValidElementType(ElementTy) && 4072 "need a valid element type"); 4073 assert(ConstantMatrixType::isDimensionValid(NumRows) && 4074 ConstantMatrixType::isDimensionValid(NumColumns) && 4075 "need valid matrix dimensions"); 4076 void *InsertPos = nullptr; 4077 if (ConstantMatrixType *MTP = MatrixTypes.FindNodeOrInsertPos(ID, InsertPos)) 4078 return QualType(MTP, 0); 4079 4080 QualType Canonical; 4081 if (!ElementTy.isCanonical()) { 4082 Canonical = 4083 getConstantMatrixType(getCanonicalType(ElementTy), NumRows, NumColumns); 4084 4085 ConstantMatrixType *NewIP = MatrixTypes.FindNodeOrInsertPos(ID, InsertPos); 4086 assert(!NewIP && "Matrix type shouldn't already exist in the map"); 4087 (void)NewIP; 4088 } 4089 4090 auto *New = new (*this, TypeAlignment) 4091 ConstantMatrixType(ElementTy, NumRows, NumColumns, Canonical); 4092 MatrixTypes.InsertNode(New, InsertPos); 4093 Types.push_back(New); 4094 return QualType(New, 0); 4095 } 4096 4097 QualType ASTContext::getDependentSizedMatrixType(QualType ElementTy, 4098 Expr *RowExpr, 4099 Expr *ColumnExpr, 4100 SourceLocation AttrLoc) const { 4101 QualType CanonElementTy = getCanonicalType(ElementTy); 4102 llvm::FoldingSetNodeID ID; 4103 DependentSizedMatrixType::Profile(ID, *this, CanonElementTy, RowExpr, 4104 ColumnExpr); 4105 4106 void *InsertPos = nullptr; 4107 DependentSizedMatrixType *Canon = 4108 DependentSizedMatrixTypes.FindNodeOrInsertPos(ID, InsertPos); 4109 4110 if (!Canon) { 4111 Canon = new (*this, TypeAlignment) DependentSizedMatrixType( 4112 *this, CanonElementTy, QualType(), RowExpr, ColumnExpr, AttrLoc); 4113 #ifndef NDEBUG 4114 DependentSizedMatrixType *CanonCheck = 4115 DependentSizedMatrixTypes.FindNodeOrInsertPos(ID, InsertPos); 4116 assert(!CanonCheck && "Dependent-sized matrix canonical type broken"); 4117 #endif 4118 DependentSizedMatrixTypes.InsertNode(Canon, InsertPos); 4119 Types.push_back(Canon); 4120 } 4121 4122 // Already have a canonical version of the matrix type 4123 // 4124 // If it exactly matches the requested type, use it directly. 4125 if (Canon->getElementType() == ElementTy && Canon->getRowExpr() == RowExpr && 4126 Canon->getRowExpr() == ColumnExpr) 4127 return QualType(Canon, 0); 4128 4129 // Use Canon as the canonical type for newly-built type. 4130 DependentSizedMatrixType *New = new (*this, TypeAlignment) 4131 DependentSizedMatrixType(*this, ElementTy, QualType(Canon, 0), RowExpr, 4132 ColumnExpr, AttrLoc); 4133 Types.push_back(New); 4134 return QualType(New, 0); 4135 } 4136 4137 QualType ASTContext::getDependentAddressSpaceType(QualType PointeeType, 4138 Expr *AddrSpaceExpr, 4139 SourceLocation AttrLoc) const { 4140 assert(AddrSpaceExpr->isInstantiationDependent()); 4141 4142 QualType canonPointeeType = getCanonicalType(PointeeType); 4143 4144 void *insertPos = nullptr; 4145 llvm::FoldingSetNodeID ID; 4146 DependentAddressSpaceType::Profile(ID, *this, canonPointeeType, 4147 AddrSpaceExpr); 4148 4149 DependentAddressSpaceType *canonTy = 4150 DependentAddressSpaceTypes.FindNodeOrInsertPos(ID, insertPos); 4151 4152 if (!canonTy) { 4153 canonTy = new (*this, TypeAlignment) 4154 DependentAddressSpaceType(*this, canonPointeeType, 4155 QualType(), AddrSpaceExpr, AttrLoc); 4156 DependentAddressSpaceTypes.InsertNode(canonTy, insertPos); 4157 Types.push_back(canonTy); 4158 } 4159 4160 if (canonPointeeType == PointeeType && 4161 canonTy->getAddrSpaceExpr() == AddrSpaceExpr) 4162 return QualType(canonTy, 0); 4163 4164 auto *sugaredType 4165 = new (*this, TypeAlignment) 4166 DependentAddressSpaceType(*this, PointeeType, QualType(canonTy, 0), 4167 AddrSpaceExpr, AttrLoc); 4168 Types.push_back(sugaredType); 4169 return QualType(sugaredType, 0); 4170 } 4171 4172 /// Determine whether \p T is canonical as the result type of a function. 4173 static bool isCanonicalResultType(QualType T) { 4174 return T.isCanonical() && 4175 (T.getObjCLifetime() == Qualifiers::OCL_None || 4176 T.getObjCLifetime() == Qualifiers::OCL_ExplicitNone); 4177 } 4178 4179 /// getFunctionNoProtoType - Return a K&R style C function type like 'int()'. 4180 QualType 4181 ASTContext::getFunctionNoProtoType(QualType ResultTy, 4182 const FunctionType::ExtInfo &Info) const { 4183 // Unique functions, to guarantee there is only one function of a particular 4184 // structure. 4185 llvm::FoldingSetNodeID ID; 4186 FunctionNoProtoType::Profile(ID, ResultTy, Info); 4187 4188 void *InsertPos = nullptr; 4189 if (FunctionNoProtoType *FT = 4190 FunctionNoProtoTypes.FindNodeOrInsertPos(ID, InsertPos)) 4191 return QualType(FT, 0); 4192 4193 QualType Canonical; 4194 if (!isCanonicalResultType(ResultTy)) { 4195 Canonical = 4196 getFunctionNoProtoType(getCanonicalFunctionResultType(ResultTy), Info); 4197 4198 // Get the new insert position for the node we care about. 4199 FunctionNoProtoType *NewIP = 4200 FunctionNoProtoTypes.FindNodeOrInsertPos(ID, InsertPos); 4201 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 4202 } 4203 4204 auto *New = new (*this, TypeAlignment) 4205 FunctionNoProtoType(ResultTy, Canonical, Info); 4206 Types.push_back(New); 4207 FunctionNoProtoTypes.InsertNode(New, InsertPos); 4208 return QualType(New, 0); 4209 } 4210 4211 CanQualType 4212 ASTContext::getCanonicalFunctionResultType(QualType ResultType) const { 4213 CanQualType CanResultType = getCanonicalType(ResultType); 4214 4215 // Canonical result types do not have ARC lifetime qualifiers. 4216 if (CanResultType.getQualifiers().hasObjCLifetime()) { 4217 Qualifiers Qs = CanResultType.getQualifiers(); 4218 Qs.removeObjCLifetime(); 4219 return CanQualType::CreateUnsafe( 4220 getQualifiedType(CanResultType.getUnqualifiedType(), Qs)); 4221 } 4222 4223 return CanResultType; 4224 } 4225 4226 static bool isCanonicalExceptionSpecification( 4227 const FunctionProtoType::ExceptionSpecInfo &ESI, bool NoexceptInType) { 4228 if (ESI.Type == EST_None) 4229 return true; 4230 if (!NoexceptInType) 4231 return false; 4232 4233 // C++17 onwards: exception specification is part of the type, as a simple 4234 // boolean "can this function type throw". 4235 if (ESI.Type == EST_BasicNoexcept) 4236 return true; 4237 4238 // A noexcept(expr) specification is (possibly) canonical if expr is 4239 // value-dependent. 4240 if (ESI.Type == EST_DependentNoexcept) 4241 return true; 4242 4243 // A dynamic exception specification is canonical if it only contains pack 4244 // expansions (so we can't tell whether it's non-throwing) and all its 4245 // contained types are canonical. 4246 if (ESI.Type == EST_Dynamic) { 4247 bool AnyPackExpansions = false; 4248 for (QualType ET : ESI.Exceptions) { 4249 if (!ET.isCanonical()) 4250 return false; 4251 if (ET->getAs<PackExpansionType>()) 4252 AnyPackExpansions = true; 4253 } 4254 return AnyPackExpansions; 4255 } 4256 4257 return false; 4258 } 4259 4260 QualType ASTContext::getFunctionTypeInternal( 4261 QualType ResultTy, ArrayRef<QualType> ArgArray, 4262 const FunctionProtoType::ExtProtoInfo &EPI, bool OnlyWantCanonical) const { 4263 size_t NumArgs = ArgArray.size(); 4264 4265 // Unique functions, to guarantee there is only one function of a particular 4266 // structure. 4267 llvm::FoldingSetNodeID ID; 4268 FunctionProtoType::Profile(ID, ResultTy, ArgArray.begin(), NumArgs, EPI, 4269 *this, true); 4270 4271 QualType Canonical; 4272 bool Unique = false; 4273 4274 void *InsertPos = nullptr; 4275 if (FunctionProtoType *FPT = 4276 FunctionProtoTypes.FindNodeOrInsertPos(ID, InsertPos)) { 4277 QualType Existing = QualType(FPT, 0); 4278 4279 // If we find a pre-existing equivalent FunctionProtoType, we can just reuse 4280 // it so long as our exception specification doesn't contain a dependent 4281 // noexcept expression, or we're just looking for a canonical type. 4282 // Otherwise, we're going to need to create a type 4283 // sugar node to hold the concrete expression. 4284 if (OnlyWantCanonical || !isComputedNoexcept(EPI.ExceptionSpec.Type) || 4285 EPI.ExceptionSpec.NoexceptExpr == FPT->getNoexceptExpr()) 4286 return Existing; 4287 4288 // We need a new type sugar node for this one, to hold the new noexcept 4289 // expression. We do no canonicalization here, but that's OK since we don't 4290 // expect to see the same noexcept expression much more than once. 4291 Canonical = getCanonicalType(Existing); 4292 Unique = true; 4293 } 4294 4295 bool NoexceptInType = getLangOpts().CPlusPlus17; 4296 bool IsCanonicalExceptionSpec = 4297 isCanonicalExceptionSpecification(EPI.ExceptionSpec, NoexceptInType); 4298 4299 // Determine whether the type being created is already canonical or not. 4300 bool isCanonical = !Unique && IsCanonicalExceptionSpec && 4301 isCanonicalResultType(ResultTy) && !EPI.HasTrailingReturn; 4302 for (unsigned i = 0; i != NumArgs && isCanonical; ++i) 4303 if (!ArgArray[i].isCanonicalAsParam()) 4304 isCanonical = false; 4305 4306 if (OnlyWantCanonical) 4307 assert(isCanonical && 4308 "given non-canonical parameters constructing canonical type"); 4309 4310 // If this type isn't canonical, get the canonical version of it if we don't 4311 // already have it. The exception spec is only partially part of the 4312 // canonical type, and only in C++17 onwards. 4313 if (!isCanonical && Canonical.isNull()) { 4314 SmallVector<QualType, 16> CanonicalArgs; 4315 CanonicalArgs.reserve(NumArgs); 4316 for (unsigned i = 0; i != NumArgs; ++i) 4317 CanonicalArgs.push_back(getCanonicalParamType(ArgArray[i])); 4318 4319 llvm::SmallVector<QualType, 8> ExceptionTypeStorage; 4320 FunctionProtoType::ExtProtoInfo CanonicalEPI = EPI; 4321 CanonicalEPI.HasTrailingReturn = false; 4322 4323 if (IsCanonicalExceptionSpec) { 4324 // Exception spec is already OK. 4325 } else if (NoexceptInType) { 4326 switch (EPI.ExceptionSpec.Type) { 4327 case EST_Unparsed: case EST_Unevaluated: case EST_Uninstantiated: 4328 // We don't know yet. It shouldn't matter what we pick here; no-one 4329 // should ever look at this. 4330 LLVM_FALLTHROUGH; 4331 case EST_None: case EST_MSAny: case EST_NoexceptFalse: 4332 CanonicalEPI.ExceptionSpec.Type = EST_None; 4333 break; 4334 4335 // A dynamic exception specification is almost always "not noexcept", 4336 // with the exception that a pack expansion might expand to no types. 4337 case EST_Dynamic: { 4338 bool AnyPacks = false; 4339 for (QualType ET : EPI.ExceptionSpec.Exceptions) { 4340 if (ET->getAs<PackExpansionType>()) 4341 AnyPacks = true; 4342 ExceptionTypeStorage.push_back(getCanonicalType(ET)); 4343 } 4344 if (!AnyPacks) 4345 CanonicalEPI.ExceptionSpec.Type = EST_None; 4346 else { 4347 CanonicalEPI.ExceptionSpec.Type = EST_Dynamic; 4348 CanonicalEPI.ExceptionSpec.Exceptions = ExceptionTypeStorage; 4349 } 4350 break; 4351 } 4352 4353 case EST_DynamicNone: 4354 case EST_BasicNoexcept: 4355 case EST_NoexceptTrue: 4356 case EST_NoThrow: 4357 CanonicalEPI.ExceptionSpec.Type = EST_BasicNoexcept; 4358 break; 4359 4360 case EST_DependentNoexcept: 4361 llvm_unreachable("dependent noexcept is already canonical"); 4362 } 4363 } else { 4364 CanonicalEPI.ExceptionSpec = FunctionProtoType::ExceptionSpecInfo(); 4365 } 4366 4367 // Adjust the canonical function result type. 4368 CanQualType CanResultTy = getCanonicalFunctionResultType(ResultTy); 4369 Canonical = 4370 getFunctionTypeInternal(CanResultTy, CanonicalArgs, CanonicalEPI, true); 4371 4372 // Get the new insert position for the node we care about. 4373 FunctionProtoType *NewIP = 4374 FunctionProtoTypes.FindNodeOrInsertPos(ID, InsertPos); 4375 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 4376 } 4377 4378 // Compute the needed size to hold this FunctionProtoType and the 4379 // various trailing objects. 4380 auto ESH = FunctionProtoType::getExceptionSpecSize( 4381 EPI.ExceptionSpec.Type, EPI.ExceptionSpec.Exceptions.size()); 4382 size_t Size = FunctionProtoType::totalSizeToAlloc< 4383 QualType, SourceLocation, FunctionType::FunctionTypeExtraBitfields, 4384 FunctionType::ExceptionType, Expr *, FunctionDecl *, 4385 FunctionProtoType::ExtParameterInfo, Qualifiers>( 4386 NumArgs, EPI.Variadic, 4387 FunctionProtoType::hasExtraBitfields(EPI.ExceptionSpec.Type), 4388 ESH.NumExceptionType, ESH.NumExprPtr, ESH.NumFunctionDeclPtr, 4389 EPI.ExtParameterInfos ? NumArgs : 0, 4390 EPI.TypeQuals.hasNonFastQualifiers() ? 1 : 0); 4391 4392 auto *FTP = (FunctionProtoType *)Allocate(Size, TypeAlignment); 4393 FunctionProtoType::ExtProtoInfo newEPI = EPI; 4394 new (FTP) FunctionProtoType(ResultTy, ArgArray, Canonical, newEPI); 4395 Types.push_back(FTP); 4396 if (!Unique) 4397 FunctionProtoTypes.InsertNode(FTP, InsertPos); 4398 return QualType(FTP, 0); 4399 } 4400 4401 QualType ASTContext::getPipeType(QualType T, bool ReadOnly) const { 4402 llvm::FoldingSetNodeID ID; 4403 PipeType::Profile(ID, T, ReadOnly); 4404 4405 void *InsertPos = nullptr; 4406 if (PipeType *PT = PipeTypes.FindNodeOrInsertPos(ID, InsertPos)) 4407 return QualType(PT, 0); 4408 4409 // If the pipe element type isn't canonical, this won't be a canonical type 4410 // either, so fill in the canonical type field. 4411 QualType Canonical; 4412 if (!T.isCanonical()) { 4413 Canonical = getPipeType(getCanonicalType(T), ReadOnly); 4414 4415 // Get the new insert position for the node we care about. 4416 PipeType *NewIP = PipeTypes.FindNodeOrInsertPos(ID, InsertPos); 4417 assert(!NewIP && "Shouldn't be in the map!"); 4418 (void)NewIP; 4419 } 4420 auto *New = new (*this, TypeAlignment) PipeType(T, Canonical, ReadOnly); 4421 Types.push_back(New); 4422 PipeTypes.InsertNode(New, InsertPos); 4423 return QualType(New, 0); 4424 } 4425 4426 QualType ASTContext::adjustStringLiteralBaseType(QualType Ty) const { 4427 // OpenCL v1.1 s6.5.3: a string literal is in the constant address space. 4428 return LangOpts.OpenCL ? getAddrSpaceQualType(Ty, LangAS::opencl_constant) 4429 : Ty; 4430 } 4431 4432 QualType ASTContext::getReadPipeType(QualType T) const { 4433 return getPipeType(T, true); 4434 } 4435 4436 QualType ASTContext::getWritePipeType(QualType T) const { 4437 return getPipeType(T, false); 4438 } 4439 4440 QualType ASTContext::getExtIntType(bool IsUnsigned, unsigned NumBits) const { 4441 llvm::FoldingSetNodeID ID; 4442 ExtIntType::Profile(ID, IsUnsigned, NumBits); 4443 4444 void *InsertPos = nullptr; 4445 if (ExtIntType *EIT = ExtIntTypes.FindNodeOrInsertPos(ID, InsertPos)) 4446 return QualType(EIT, 0); 4447 4448 auto *New = new (*this, TypeAlignment) ExtIntType(IsUnsigned, NumBits); 4449 ExtIntTypes.InsertNode(New, InsertPos); 4450 Types.push_back(New); 4451 return QualType(New, 0); 4452 } 4453 4454 QualType ASTContext::getDependentExtIntType(bool IsUnsigned, 4455 Expr *NumBitsExpr) const { 4456 assert(NumBitsExpr->isInstantiationDependent() && "Only good for dependent"); 4457 llvm::FoldingSetNodeID ID; 4458 DependentExtIntType::Profile(ID, *this, IsUnsigned, NumBitsExpr); 4459 4460 void *InsertPos = nullptr; 4461 if (DependentExtIntType *Existing = 4462 DependentExtIntTypes.FindNodeOrInsertPos(ID, InsertPos)) 4463 return QualType(Existing, 0); 4464 4465 auto *New = new (*this, TypeAlignment) 4466 DependentExtIntType(*this, IsUnsigned, NumBitsExpr); 4467 DependentExtIntTypes.InsertNode(New, InsertPos); 4468 4469 Types.push_back(New); 4470 return QualType(New, 0); 4471 } 4472 4473 #ifndef NDEBUG 4474 static bool NeedsInjectedClassNameType(const RecordDecl *D) { 4475 if (!isa<CXXRecordDecl>(D)) return false; 4476 const auto *RD = cast<CXXRecordDecl>(D); 4477 if (isa<ClassTemplatePartialSpecializationDecl>(RD)) 4478 return true; 4479 if (RD->getDescribedClassTemplate() && 4480 !isa<ClassTemplateSpecializationDecl>(RD)) 4481 return true; 4482 return false; 4483 } 4484 #endif 4485 4486 /// getInjectedClassNameType - Return the unique reference to the 4487 /// injected class name type for the specified templated declaration. 4488 QualType ASTContext::getInjectedClassNameType(CXXRecordDecl *Decl, 4489 QualType TST) const { 4490 assert(NeedsInjectedClassNameType(Decl)); 4491 if (Decl->TypeForDecl) { 4492 assert(isa<InjectedClassNameType>(Decl->TypeForDecl)); 4493 } else if (CXXRecordDecl *PrevDecl = Decl->getPreviousDecl()) { 4494 assert(PrevDecl->TypeForDecl && "previous declaration has no type"); 4495 Decl->TypeForDecl = PrevDecl->TypeForDecl; 4496 assert(isa<InjectedClassNameType>(Decl->TypeForDecl)); 4497 } else { 4498 Type *newType = 4499 new (*this, TypeAlignment) InjectedClassNameType(Decl, TST); 4500 Decl->TypeForDecl = newType; 4501 Types.push_back(newType); 4502 } 4503 return QualType(Decl->TypeForDecl, 0); 4504 } 4505 4506 /// getTypeDeclType - Return the unique reference to the type for the 4507 /// specified type declaration. 4508 QualType ASTContext::getTypeDeclTypeSlow(const TypeDecl *Decl) const { 4509 assert(Decl && "Passed null for Decl param"); 4510 assert(!Decl->TypeForDecl && "TypeForDecl present in slow case"); 4511 4512 if (const auto *Typedef = dyn_cast<TypedefNameDecl>(Decl)) 4513 return getTypedefType(Typedef); 4514 4515 assert(!isa<TemplateTypeParmDecl>(Decl) && 4516 "Template type parameter types are always available."); 4517 4518 if (const auto *Record = dyn_cast<RecordDecl>(Decl)) { 4519 assert(Record->isFirstDecl() && "struct/union has previous declaration"); 4520 assert(!NeedsInjectedClassNameType(Record)); 4521 return getRecordType(Record); 4522 } else if (const auto *Enum = dyn_cast<EnumDecl>(Decl)) { 4523 assert(Enum->isFirstDecl() && "enum has previous declaration"); 4524 return getEnumType(Enum); 4525 } else if (const auto *Using = dyn_cast<UnresolvedUsingTypenameDecl>(Decl)) { 4526 Type *newType = new (*this, TypeAlignment) UnresolvedUsingType(Using); 4527 Decl->TypeForDecl = newType; 4528 Types.push_back(newType); 4529 } else 4530 llvm_unreachable("TypeDecl without a type?"); 4531 4532 return QualType(Decl->TypeForDecl, 0); 4533 } 4534 4535 /// getTypedefType - Return the unique reference to the type for the 4536 /// specified typedef name decl. 4537 QualType ASTContext::getTypedefType(const TypedefNameDecl *Decl, 4538 QualType Underlying) const { 4539 if (Decl->TypeForDecl) return QualType(Decl->TypeForDecl, 0); 4540 4541 if (Underlying.isNull()) 4542 Underlying = Decl->getUnderlyingType(); 4543 QualType Canonical = getCanonicalType(Underlying); 4544 auto *newType = new (*this, TypeAlignment) 4545 TypedefType(Type::Typedef, Decl, Underlying, Canonical); 4546 Decl->TypeForDecl = newType; 4547 Types.push_back(newType); 4548 return QualType(newType, 0); 4549 } 4550 4551 QualType ASTContext::getRecordType(const RecordDecl *Decl) const { 4552 if (Decl->TypeForDecl) return QualType(Decl->TypeForDecl, 0); 4553 4554 if (const RecordDecl *PrevDecl = Decl->getPreviousDecl()) 4555 if (PrevDecl->TypeForDecl) 4556 return QualType(Decl->TypeForDecl = PrevDecl->TypeForDecl, 0); 4557 4558 auto *newType = new (*this, TypeAlignment) RecordType(Decl); 4559 Decl->TypeForDecl = newType; 4560 Types.push_back(newType); 4561 return QualType(newType, 0); 4562 } 4563 4564 QualType ASTContext::getEnumType(const EnumDecl *Decl) const { 4565 if (Decl->TypeForDecl) return QualType(Decl->TypeForDecl, 0); 4566 4567 if (const EnumDecl *PrevDecl = Decl->getPreviousDecl()) 4568 if (PrevDecl->TypeForDecl) 4569 return QualType(Decl->TypeForDecl = PrevDecl->TypeForDecl, 0); 4570 4571 auto *newType = new (*this, TypeAlignment) EnumType(Decl); 4572 Decl->TypeForDecl = newType; 4573 Types.push_back(newType); 4574 return QualType(newType, 0); 4575 } 4576 4577 QualType ASTContext::getAttributedType(attr::Kind attrKind, 4578 QualType modifiedType, 4579 QualType equivalentType) { 4580 llvm::FoldingSetNodeID id; 4581 AttributedType::Profile(id, attrKind, modifiedType, equivalentType); 4582 4583 void *insertPos = nullptr; 4584 AttributedType *type = AttributedTypes.FindNodeOrInsertPos(id, insertPos); 4585 if (type) return QualType(type, 0); 4586 4587 QualType canon = getCanonicalType(equivalentType); 4588 type = new (*this, TypeAlignment) 4589 AttributedType(canon, attrKind, modifiedType, equivalentType); 4590 4591 Types.push_back(type); 4592 AttributedTypes.InsertNode(type, insertPos); 4593 4594 return QualType(type, 0); 4595 } 4596 4597 /// Retrieve a substitution-result type. 4598 QualType 4599 ASTContext::getSubstTemplateTypeParmType(const TemplateTypeParmType *Parm, 4600 QualType Replacement) const { 4601 assert(Replacement.isCanonical() 4602 && "replacement types must always be canonical"); 4603 4604 llvm::FoldingSetNodeID ID; 4605 SubstTemplateTypeParmType::Profile(ID, Parm, Replacement); 4606 void *InsertPos = nullptr; 4607 SubstTemplateTypeParmType *SubstParm 4608 = SubstTemplateTypeParmTypes.FindNodeOrInsertPos(ID, InsertPos); 4609 4610 if (!SubstParm) { 4611 SubstParm = new (*this, TypeAlignment) 4612 SubstTemplateTypeParmType(Parm, Replacement); 4613 Types.push_back(SubstParm); 4614 SubstTemplateTypeParmTypes.InsertNode(SubstParm, InsertPos); 4615 } 4616 4617 return QualType(SubstParm, 0); 4618 } 4619 4620 /// Retrieve a 4621 QualType ASTContext::getSubstTemplateTypeParmPackType( 4622 const TemplateTypeParmType *Parm, 4623 const TemplateArgument &ArgPack) { 4624 #ifndef NDEBUG 4625 for (const auto &P : ArgPack.pack_elements()) { 4626 assert(P.getKind() == TemplateArgument::Type &&"Pack contains a non-type"); 4627 assert(P.getAsType().isCanonical() && "Pack contains non-canonical type"); 4628 } 4629 #endif 4630 4631 llvm::FoldingSetNodeID ID; 4632 SubstTemplateTypeParmPackType::Profile(ID, Parm, ArgPack); 4633 void *InsertPos = nullptr; 4634 if (SubstTemplateTypeParmPackType *SubstParm 4635 = SubstTemplateTypeParmPackTypes.FindNodeOrInsertPos(ID, InsertPos)) 4636 return QualType(SubstParm, 0); 4637 4638 QualType Canon; 4639 if (!Parm->isCanonicalUnqualified()) { 4640 Canon = getCanonicalType(QualType(Parm, 0)); 4641 Canon = getSubstTemplateTypeParmPackType(cast<TemplateTypeParmType>(Canon), 4642 ArgPack); 4643 SubstTemplateTypeParmPackTypes.FindNodeOrInsertPos(ID, InsertPos); 4644 } 4645 4646 auto *SubstParm 4647 = new (*this, TypeAlignment) SubstTemplateTypeParmPackType(Parm, Canon, 4648 ArgPack); 4649 Types.push_back(SubstParm); 4650 SubstTemplateTypeParmPackTypes.InsertNode(SubstParm, InsertPos); 4651 return QualType(SubstParm, 0); 4652 } 4653 4654 /// Retrieve the template type parameter type for a template 4655 /// parameter or parameter pack with the given depth, index, and (optionally) 4656 /// name. 4657 QualType ASTContext::getTemplateTypeParmType(unsigned Depth, unsigned Index, 4658 bool ParameterPack, 4659 TemplateTypeParmDecl *TTPDecl) const { 4660 llvm::FoldingSetNodeID ID; 4661 TemplateTypeParmType::Profile(ID, Depth, Index, ParameterPack, TTPDecl); 4662 void *InsertPos = nullptr; 4663 TemplateTypeParmType *TypeParm 4664 = TemplateTypeParmTypes.FindNodeOrInsertPos(ID, InsertPos); 4665 4666 if (TypeParm) 4667 return QualType(TypeParm, 0); 4668 4669 if (TTPDecl) { 4670 QualType Canon = getTemplateTypeParmType(Depth, Index, ParameterPack); 4671 TypeParm = new (*this, TypeAlignment) TemplateTypeParmType(TTPDecl, Canon); 4672 4673 TemplateTypeParmType *TypeCheck 4674 = TemplateTypeParmTypes.FindNodeOrInsertPos(ID, InsertPos); 4675 assert(!TypeCheck && "Template type parameter canonical type broken"); 4676 (void)TypeCheck; 4677 } else 4678 TypeParm = new (*this, TypeAlignment) 4679 TemplateTypeParmType(Depth, Index, ParameterPack); 4680 4681 Types.push_back(TypeParm); 4682 TemplateTypeParmTypes.InsertNode(TypeParm, InsertPos); 4683 4684 return QualType(TypeParm, 0); 4685 } 4686 4687 TypeSourceInfo * 4688 ASTContext::getTemplateSpecializationTypeInfo(TemplateName Name, 4689 SourceLocation NameLoc, 4690 const TemplateArgumentListInfo &Args, 4691 QualType Underlying) const { 4692 assert(!Name.getAsDependentTemplateName() && 4693 "No dependent template names here!"); 4694 QualType TST = getTemplateSpecializationType(Name, Args, Underlying); 4695 4696 TypeSourceInfo *DI = CreateTypeSourceInfo(TST); 4697 TemplateSpecializationTypeLoc TL = 4698 DI->getTypeLoc().castAs<TemplateSpecializationTypeLoc>(); 4699 TL.setTemplateKeywordLoc(SourceLocation()); 4700 TL.setTemplateNameLoc(NameLoc); 4701 TL.setLAngleLoc(Args.getLAngleLoc()); 4702 TL.setRAngleLoc(Args.getRAngleLoc()); 4703 for (unsigned i = 0, e = TL.getNumArgs(); i != e; ++i) 4704 TL.setArgLocInfo(i, Args[i].getLocInfo()); 4705 return DI; 4706 } 4707 4708 QualType 4709 ASTContext::getTemplateSpecializationType(TemplateName Template, 4710 const TemplateArgumentListInfo &Args, 4711 QualType Underlying) const { 4712 assert(!Template.getAsDependentTemplateName() && 4713 "No dependent template names here!"); 4714 4715 SmallVector<TemplateArgument, 4> ArgVec; 4716 ArgVec.reserve(Args.size()); 4717 for (const TemplateArgumentLoc &Arg : Args.arguments()) 4718 ArgVec.push_back(Arg.getArgument()); 4719 4720 return getTemplateSpecializationType(Template, ArgVec, Underlying); 4721 } 4722 4723 #ifndef NDEBUG 4724 static bool hasAnyPackExpansions(ArrayRef<TemplateArgument> Args) { 4725 for (const TemplateArgument &Arg : Args) 4726 if (Arg.isPackExpansion()) 4727 return true; 4728 4729 return true; 4730 } 4731 #endif 4732 4733 QualType 4734 ASTContext::getTemplateSpecializationType(TemplateName Template, 4735 ArrayRef<TemplateArgument> Args, 4736 QualType Underlying) const { 4737 assert(!Template.getAsDependentTemplateName() && 4738 "No dependent template names here!"); 4739 // Look through qualified template names. 4740 if (QualifiedTemplateName *QTN = Template.getAsQualifiedTemplateName()) 4741 Template = TemplateName(QTN->getTemplateDecl()); 4742 4743 bool IsTypeAlias = 4744 Template.getAsTemplateDecl() && 4745 isa<TypeAliasTemplateDecl>(Template.getAsTemplateDecl()); 4746 QualType CanonType; 4747 if (!Underlying.isNull()) 4748 CanonType = getCanonicalType(Underlying); 4749 else { 4750 // We can get here with an alias template when the specialization contains 4751 // a pack expansion that does not match up with a parameter pack. 4752 assert((!IsTypeAlias || hasAnyPackExpansions(Args)) && 4753 "Caller must compute aliased type"); 4754 IsTypeAlias = false; 4755 CanonType = getCanonicalTemplateSpecializationType(Template, Args); 4756 } 4757 4758 // Allocate the (non-canonical) template specialization type, but don't 4759 // try to unique it: these types typically have location information that 4760 // we don't unique and don't want to lose. 4761 void *Mem = Allocate(sizeof(TemplateSpecializationType) + 4762 sizeof(TemplateArgument) * Args.size() + 4763 (IsTypeAlias? sizeof(QualType) : 0), 4764 TypeAlignment); 4765 auto *Spec 4766 = new (Mem) TemplateSpecializationType(Template, Args, CanonType, 4767 IsTypeAlias ? Underlying : QualType()); 4768 4769 Types.push_back(Spec); 4770 return QualType(Spec, 0); 4771 } 4772 4773 QualType ASTContext::getCanonicalTemplateSpecializationType( 4774 TemplateName Template, ArrayRef<TemplateArgument> Args) const { 4775 assert(!Template.getAsDependentTemplateName() && 4776 "No dependent template names here!"); 4777 4778 // Look through qualified template names. 4779 if (QualifiedTemplateName *QTN = Template.getAsQualifiedTemplateName()) 4780 Template = TemplateName(QTN->getTemplateDecl()); 4781 4782 // Build the canonical template specialization type. 4783 TemplateName CanonTemplate = getCanonicalTemplateName(Template); 4784 SmallVector<TemplateArgument, 4> CanonArgs; 4785 unsigned NumArgs = Args.size(); 4786 CanonArgs.reserve(NumArgs); 4787 for (const TemplateArgument &Arg : Args) 4788 CanonArgs.push_back(getCanonicalTemplateArgument(Arg)); 4789 4790 // Determine whether this canonical template specialization type already 4791 // exists. 4792 llvm::FoldingSetNodeID ID; 4793 TemplateSpecializationType::Profile(ID, CanonTemplate, 4794 CanonArgs, *this); 4795 4796 void *InsertPos = nullptr; 4797 TemplateSpecializationType *Spec 4798 = TemplateSpecializationTypes.FindNodeOrInsertPos(ID, InsertPos); 4799 4800 if (!Spec) { 4801 // Allocate a new canonical template specialization type. 4802 void *Mem = Allocate((sizeof(TemplateSpecializationType) + 4803 sizeof(TemplateArgument) * NumArgs), 4804 TypeAlignment); 4805 Spec = new (Mem) TemplateSpecializationType(CanonTemplate, 4806 CanonArgs, 4807 QualType(), QualType()); 4808 Types.push_back(Spec); 4809 TemplateSpecializationTypes.InsertNode(Spec, InsertPos); 4810 } 4811 4812 assert(Spec->isDependentType() && 4813 "Non-dependent template-id type must have a canonical type"); 4814 return QualType(Spec, 0); 4815 } 4816 4817 QualType ASTContext::getElaboratedType(ElaboratedTypeKeyword Keyword, 4818 NestedNameSpecifier *NNS, 4819 QualType NamedType, 4820 TagDecl *OwnedTagDecl) const { 4821 llvm::FoldingSetNodeID ID; 4822 ElaboratedType::Profile(ID, Keyword, NNS, NamedType, OwnedTagDecl); 4823 4824 void *InsertPos = nullptr; 4825 ElaboratedType *T = ElaboratedTypes.FindNodeOrInsertPos(ID, InsertPos); 4826 if (T) 4827 return QualType(T, 0); 4828 4829 QualType Canon = NamedType; 4830 if (!Canon.isCanonical()) { 4831 Canon = getCanonicalType(NamedType); 4832 ElaboratedType *CheckT = ElaboratedTypes.FindNodeOrInsertPos(ID, InsertPos); 4833 assert(!CheckT && "Elaborated canonical type broken"); 4834 (void)CheckT; 4835 } 4836 4837 void *Mem = Allocate(ElaboratedType::totalSizeToAlloc<TagDecl *>(!!OwnedTagDecl), 4838 TypeAlignment); 4839 T = new (Mem) ElaboratedType(Keyword, NNS, NamedType, Canon, OwnedTagDecl); 4840 4841 Types.push_back(T); 4842 ElaboratedTypes.InsertNode(T, InsertPos); 4843 return QualType(T, 0); 4844 } 4845 4846 QualType 4847 ASTContext::getParenType(QualType InnerType) const { 4848 llvm::FoldingSetNodeID ID; 4849 ParenType::Profile(ID, InnerType); 4850 4851 void *InsertPos = nullptr; 4852 ParenType *T = ParenTypes.FindNodeOrInsertPos(ID, InsertPos); 4853 if (T) 4854 return QualType(T, 0); 4855 4856 QualType Canon = InnerType; 4857 if (!Canon.isCanonical()) { 4858 Canon = getCanonicalType(InnerType); 4859 ParenType *CheckT = ParenTypes.FindNodeOrInsertPos(ID, InsertPos); 4860 assert(!CheckT && "Paren canonical type broken"); 4861 (void)CheckT; 4862 } 4863 4864 T = new (*this, TypeAlignment) ParenType(InnerType, Canon); 4865 Types.push_back(T); 4866 ParenTypes.InsertNode(T, InsertPos); 4867 return QualType(T, 0); 4868 } 4869 4870 QualType 4871 ASTContext::getMacroQualifiedType(QualType UnderlyingTy, 4872 const IdentifierInfo *MacroII) const { 4873 QualType Canon = UnderlyingTy; 4874 if (!Canon.isCanonical()) 4875 Canon = getCanonicalType(UnderlyingTy); 4876 4877 auto *newType = new (*this, TypeAlignment) 4878 MacroQualifiedType(UnderlyingTy, Canon, MacroII); 4879 Types.push_back(newType); 4880 return QualType(newType, 0); 4881 } 4882 4883 QualType ASTContext::getDependentNameType(ElaboratedTypeKeyword Keyword, 4884 NestedNameSpecifier *NNS, 4885 const IdentifierInfo *Name, 4886 QualType Canon) const { 4887 if (Canon.isNull()) { 4888 NestedNameSpecifier *CanonNNS = getCanonicalNestedNameSpecifier(NNS); 4889 if (CanonNNS != NNS) 4890 Canon = getDependentNameType(Keyword, CanonNNS, Name); 4891 } 4892 4893 llvm::FoldingSetNodeID ID; 4894 DependentNameType::Profile(ID, Keyword, NNS, Name); 4895 4896 void *InsertPos = nullptr; 4897 DependentNameType *T 4898 = DependentNameTypes.FindNodeOrInsertPos(ID, InsertPos); 4899 if (T) 4900 return QualType(T, 0); 4901 4902 T = new (*this, TypeAlignment) DependentNameType(Keyword, NNS, Name, Canon); 4903 Types.push_back(T); 4904 DependentNameTypes.InsertNode(T, InsertPos); 4905 return QualType(T, 0); 4906 } 4907 4908 QualType 4909 ASTContext::getDependentTemplateSpecializationType( 4910 ElaboratedTypeKeyword Keyword, 4911 NestedNameSpecifier *NNS, 4912 const IdentifierInfo *Name, 4913 const TemplateArgumentListInfo &Args) const { 4914 // TODO: avoid this copy 4915 SmallVector<TemplateArgument, 16> ArgCopy; 4916 for (unsigned I = 0, E = Args.size(); I != E; ++I) 4917 ArgCopy.push_back(Args[I].getArgument()); 4918 return getDependentTemplateSpecializationType(Keyword, NNS, Name, ArgCopy); 4919 } 4920 4921 QualType 4922 ASTContext::getDependentTemplateSpecializationType( 4923 ElaboratedTypeKeyword Keyword, 4924 NestedNameSpecifier *NNS, 4925 const IdentifierInfo *Name, 4926 ArrayRef<TemplateArgument> Args) const { 4927 assert((!NNS || NNS->isDependent()) && 4928 "nested-name-specifier must be dependent"); 4929 4930 llvm::FoldingSetNodeID ID; 4931 DependentTemplateSpecializationType::Profile(ID, *this, Keyword, NNS, 4932 Name, Args); 4933 4934 void *InsertPos = nullptr; 4935 DependentTemplateSpecializationType *T 4936 = DependentTemplateSpecializationTypes.FindNodeOrInsertPos(ID, InsertPos); 4937 if (T) 4938 return QualType(T, 0); 4939 4940 NestedNameSpecifier *CanonNNS = getCanonicalNestedNameSpecifier(NNS); 4941 4942 ElaboratedTypeKeyword CanonKeyword = Keyword; 4943 if (Keyword == ETK_None) CanonKeyword = ETK_Typename; 4944 4945 bool AnyNonCanonArgs = false; 4946 unsigned NumArgs = Args.size(); 4947 SmallVector<TemplateArgument, 16> CanonArgs(NumArgs); 4948 for (unsigned I = 0; I != NumArgs; ++I) { 4949 CanonArgs[I] = getCanonicalTemplateArgument(Args[I]); 4950 if (!CanonArgs[I].structurallyEquals(Args[I])) 4951 AnyNonCanonArgs = true; 4952 } 4953 4954 QualType Canon; 4955 if (AnyNonCanonArgs || CanonNNS != NNS || CanonKeyword != Keyword) { 4956 Canon = getDependentTemplateSpecializationType(CanonKeyword, CanonNNS, 4957 Name, 4958 CanonArgs); 4959 4960 // Find the insert position again. 4961 DependentTemplateSpecializationTypes.FindNodeOrInsertPos(ID, InsertPos); 4962 } 4963 4964 void *Mem = Allocate((sizeof(DependentTemplateSpecializationType) + 4965 sizeof(TemplateArgument) * NumArgs), 4966 TypeAlignment); 4967 T = new (Mem) DependentTemplateSpecializationType(Keyword, NNS, 4968 Name, Args, Canon); 4969 Types.push_back(T); 4970 DependentTemplateSpecializationTypes.InsertNode(T, InsertPos); 4971 return QualType(T, 0); 4972 } 4973 4974 TemplateArgument ASTContext::getInjectedTemplateArg(NamedDecl *Param) { 4975 TemplateArgument Arg; 4976 if (const auto *TTP = dyn_cast<TemplateTypeParmDecl>(Param)) { 4977 QualType ArgType = getTypeDeclType(TTP); 4978 if (TTP->isParameterPack()) 4979 ArgType = getPackExpansionType(ArgType, None); 4980 4981 Arg = TemplateArgument(ArgType); 4982 } else if (auto *NTTP = dyn_cast<NonTypeTemplateParmDecl>(Param)) { 4983 QualType T = 4984 NTTP->getType().getNonPackExpansionType().getNonLValueExprType(*this); 4985 // For class NTTPs, ensure we include the 'const' so the type matches that 4986 // of a real template argument. 4987 // FIXME: It would be more faithful to model this as something like an 4988 // lvalue-to-rvalue conversion applied to a const-qualified lvalue. 4989 if (T->isRecordType()) 4990 T.addConst(); 4991 Expr *E = new (*this) DeclRefExpr( 4992 *this, NTTP, /*enclosing*/ false, T, 4993 Expr::getValueKindForType(NTTP->getType()), NTTP->getLocation()); 4994 4995 if (NTTP->isParameterPack()) 4996 E = new (*this) PackExpansionExpr(DependentTy, E, NTTP->getLocation(), 4997 None); 4998 Arg = TemplateArgument(E); 4999 } else { 5000 auto *TTP = cast<TemplateTemplateParmDecl>(Param); 5001 if (TTP->isParameterPack()) 5002 Arg = TemplateArgument(TemplateName(TTP), Optional<unsigned>()); 5003 else 5004 Arg = TemplateArgument(TemplateName(TTP)); 5005 } 5006 5007 if (Param->isTemplateParameterPack()) 5008 Arg = TemplateArgument::CreatePackCopy(*this, Arg); 5009 5010 return Arg; 5011 } 5012 5013 void 5014 ASTContext::getInjectedTemplateArgs(const TemplateParameterList *Params, 5015 SmallVectorImpl<TemplateArgument> &Args) { 5016 Args.reserve(Args.size() + Params->size()); 5017 5018 for (NamedDecl *Param : *Params) 5019 Args.push_back(getInjectedTemplateArg(Param)); 5020 } 5021 5022 QualType ASTContext::getPackExpansionType(QualType Pattern, 5023 Optional<unsigned> NumExpansions, 5024 bool ExpectPackInType) { 5025 assert((!ExpectPackInType || Pattern->containsUnexpandedParameterPack()) && 5026 "Pack expansions must expand one or more parameter packs"); 5027 5028 llvm::FoldingSetNodeID ID; 5029 PackExpansionType::Profile(ID, Pattern, NumExpansions); 5030 5031 void *InsertPos = nullptr; 5032 PackExpansionType *T = PackExpansionTypes.FindNodeOrInsertPos(ID, InsertPos); 5033 if (T) 5034 return QualType(T, 0); 5035 5036 QualType Canon; 5037 if (!Pattern.isCanonical()) { 5038 Canon = getPackExpansionType(getCanonicalType(Pattern), NumExpansions, 5039 /*ExpectPackInType=*/false); 5040 5041 // Find the insert position again, in case we inserted an element into 5042 // PackExpansionTypes and invalidated our insert position. 5043 PackExpansionTypes.FindNodeOrInsertPos(ID, InsertPos); 5044 } 5045 5046 T = new (*this, TypeAlignment) 5047 PackExpansionType(Pattern, Canon, NumExpansions); 5048 Types.push_back(T); 5049 PackExpansionTypes.InsertNode(T, InsertPos); 5050 return QualType(T, 0); 5051 } 5052 5053 /// CmpProtocolNames - Comparison predicate for sorting protocols 5054 /// alphabetically. 5055 static int CmpProtocolNames(ObjCProtocolDecl *const *LHS, 5056 ObjCProtocolDecl *const *RHS) { 5057 return DeclarationName::compare((*LHS)->getDeclName(), (*RHS)->getDeclName()); 5058 } 5059 5060 static bool areSortedAndUniqued(ArrayRef<ObjCProtocolDecl *> Protocols) { 5061 if (Protocols.empty()) return true; 5062 5063 if (Protocols[0]->getCanonicalDecl() != Protocols[0]) 5064 return false; 5065 5066 for (unsigned i = 1; i != Protocols.size(); ++i) 5067 if (CmpProtocolNames(&Protocols[i - 1], &Protocols[i]) >= 0 || 5068 Protocols[i]->getCanonicalDecl() != Protocols[i]) 5069 return false; 5070 return true; 5071 } 5072 5073 static void 5074 SortAndUniqueProtocols(SmallVectorImpl<ObjCProtocolDecl *> &Protocols) { 5075 // Sort protocols, keyed by name. 5076 llvm::array_pod_sort(Protocols.begin(), Protocols.end(), CmpProtocolNames); 5077 5078 // Canonicalize. 5079 for (ObjCProtocolDecl *&P : Protocols) 5080 P = P->getCanonicalDecl(); 5081 5082 // Remove duplicates. 5083 auto ProtocolsEnd = std::unique(Protocols.begin(), Protocols.end()); 5084 Protocols.erase(ProtocolsEnd, Protocols.end()); 5085 } 5086 5087 QualType ASTContext::getObjCObjectType(QualType BaseType, 5088 ObjCProtocolDecl * const *Protocols, 5089 unsigned NumProtocols) const { 5090 return getObjCObjectType(BaseType, {}, 5091 llvm::makeArrayRef(Protocols, NumProtocols), 5092 /*isKindOf=*/false); 5093 } 5094 5095 QualType ASTContext::getObjCObjectType( 5096 QualType baseType, 5097 ArrayRef<QualType> typeArgs, 5098 ArrayRef<ObjCProtocolDecl *> protocols, 5099 bool isKindOf) const { 5100 // If the base type is an interface and there aren't any protocols or 5101 // type arguments to add, then the interface type will do just fine. 5102 if (typeArgs.empty() && protocols.empty() && !isKindOf && 5103 isa<ObjCInterfaceType>(baseType)) 5104 return baseType; 5105 5106 // Look in the folding set for an existing type. 5107 llvm::FoldingSetNodeID ID; 5108 ObjCObjectTypeImpl::Profile(ID, baseType, typeArgs, protocols, isKindOf); 5109 void *InsertPos = nullptr; 5110 if (ObjCObjectType *QT = ObjCObjectTypes.FindNodeOrInsertPos(ID, InsertPos)) 5111 return QualType(QT, 0); 5112 5113 // Determine the type arguments to be used for canonicalization, 5114 // which may be explicitly specified here or written on the base 5115 // type. 5116 ArrayRef<QualType> effectiveTypeArgs = typeArgs; 5117 if (effectiveTypeArgs.empty()) { 5118 if (const auto *baseObject = baseType->getAs<ObjCObjectType>()) 5119 effectiveTypeArgs = baseObject->getTypeArgs(); 5120 } 5121 5122 // Build the canonical type, which has the canonical base type and a 5123 // sorted-and-uniqued list of protocols and the type arguments 5124 // canonicalized. 5125 QualType canonical; 5126 bool typeArgsAreCanonical = std::all_of(effectiveTypeArgs.begin(), 5127 effectiveTypeArgs.end(), 5128 [&](QualType type) { 5129 return type.isCanonical(); 5130 }); 5131 bool protocolsSorted = areSortedAndUniqued(protocols); 5132 if (!typeArgsAreCanonical || !protocolsSorted || !baseType.isCanonical()) { 5133 // Determine the canonical type arguments. 5134 ArrayRef<QualType> canonTypeArgs; 5135 SmallVector<QualType, 4> canonTypeArgsVec; 5136 if (!typeArgsAreCanonical) { 5137 canonTypeArgsVec.reserve(effectiveTypeArgs.size()); 5138 for (auto typeArg : effectiveTypeArgs) 5139 canonTypeArgsVec.push_back(getCanonicalType(typeArg)); 5140 canonTypeArgs = canonTypeArgsVec; 5141 } else { 5142 canonTypeArgs = effectiveTypeArgs; 5143 } 5144 5145 ArrayRef<ObjCProtocolDecl *> canonProtocols; 5146 SmallVector<ObjCProtocolDecl*, 8> canonProtocolsVec; 5147 if (!protocolsSorted) { 5148 canonProtocolsVec.append(protocols.begin(), protocols.end()); 5149 SortAndUniqueProtocols(canonProtocolsVec); 5150 canonProtocols = canonProtocolsVec; 5151 } else { 5152 canonProtocols = protocols; 5153 } 5154 5155 canonical = getObjCObjectType(getCanonicalType(baseType), canonTypeArgs, 5156 canonProtocols, isKindOf); 5157 5158 // Regenerate InsertPos. 5159 ObjCObjectTypes.FindNodeOrInsertPos(ID, InsertPos); 5160 } 5161 5162 unsigned size = sizeof(ObjCObjectTypeImpl); 5163 size += typeArgs.size() * sizeof(QualType); 5164 size += protocols.size() * sizeof(ObjCProtocolDecl *); 5165 void *mem = Allocate(size, TypeAlignment); 5166 auto *T = 5167 new (mem) ObjCObjectTypeImpl(canonical, baseType, typeArgs, protocols, 5168 isKindOf); 5169 5170 Types.push_back(T); 5171 ObjCObjectTypes.InsertNode(T, InsertPos); 5172 return QualType(T, 0); 5173 } 5174 5175 /// Apply Objective-C protocol qualifiers to the given type. 5176 /// If this is for the canonical type of a type parameter, we can apply 5177 /// protocol qualifiers on the ObjCObjectPointerType. 5178 QualType 5179 ASTContext::applyObjCProtocolQualifiers(QualType type, 5180 ArrayRef<ObjCProtocolDecl *> protocols, bool &hasError, 5181 bool allowOnPointerType) const { 5182 hasError = false; 5183 5184 if (const auto *objT = dyn_cast<ObjCTypeParamType>(type.getTypePtr())) { 5185 return getObjCTypeParamType(objT->getDecl(), protocols); 5186 } 5187 5188 // Apply protocol qualifiers to ObjCObjectPointerType. 5189 if (allowOnPointerType) { 5190 if (const auto *objPtr = 5191 dyn_cast<ObjCObjectPointerType>(type.getTypePtr())) { 5192 const ObjCObjectType *objT = objPtr->getObjectType(); 5193 // Merge protocol lists and construct ObjCObjectType. 5194 SmallVector<ObjCProtocolDecl*, 8> protocolsVec; 5195 protocolsVec.append(objT->qual_begin(), 5196 objT->qual_end()); 5197 protocolsVec.append(protocols.begin(), protocols.end()); 5198 ArrayRef<ObjCProtocolDecl *> protocols = protocolsVec; 5199 type = getObjCObjectType( 5200 objT->getBaseType(), 5201 objT->getTypeArgsAsWritten(), 5202 protocols, 5203 objT->isKindOfTypeAsWritten()); 5204 return getObjCObjectPointerType(type); 5205 } 5206 } 5207 5208 // Apply protocol qualifiers to ObjCObjectType. 5209 if (const auto *objT = dyn_cast<ObjCObjectType>(type.getTypePtr())){ 5210 // FIXME: Check for protocols to which the class type is already 5211 // known to conform. 5212 5213 return getObjCObjectType(objT->getBaseType(), 5214 objT->getTypeArgsAsWritten(), 5215 protocols, 5216 objT->isKindOfTypeAsWritten()); 5217 } 5218 5219 // If the canonical type is ObjCObjectType, ... 5220 if (type->isObjCObjectType()) { 5221 // Silently overwrite any existing protocol qualifiers. 5222 // TODO: determine whether that's the right thing to do. 5223 5224 // FIXME: Check for protocols to which the class type is already 5225 // known to conform. 5226 return getObjCObjectType(type, {}, protocols, false); 5227 } 5228 5229 // id<protocol-list> 5230 if (type->isObjCIdType()) { 5231 const auto *objPtr = type->castAs<ObjCObjectPointerType>(); 5232 type = getObjCObjectType(ObjCBuiltinIdTy, {}, protocols, 5233 objPtr->isKindOfType()); 5234 return getObjCObjectPointerType(type); 5235 } 5236 5237 // Class<protocol-list> 5238 if (type->isObjCClassType()) { 5239 const auto *objPtr = type->castAs<ObjCObjectPointerType>(); 5240 type = getObjCObjectType(ObjCBuiltinClassTy, {}, protocols, 5241 objPtr->isKindOfType()); 5242 return getObjCObjectPointerType(type); 5243 } 5244 5245 hasError = true; 5246 return type; 5247 } 5248 5249 QualType 5250 ASTContext::getObjCTypeParamType(const ObjCTypeParamDecl *Decl, 5251 ArrayRef<ObjCProtocolDecl *> protocols) const { 5252 // Look in the folding set for an existing type. 5253 llvm::FoldingSetNodeID ID; 5254 ObjCTypeParamType::Profile(ID, Decl, Decl->getUnderlyingType(), protocols); 5255 void *InsertPos = nullptr; 5256 if (ObjCTypeParamType *TypeParam = 5257 ObjCTypeParamTypes.FindNodeOrInsertPos(ID, InsertPos)) 5258 return QualType(TypeParam, 0); 5259 5260 // We canonicalize to the underlying type. 5261 QualType Canonical = getCanonicalType(Decl->getUnderlyingType()); 5262 if (!protocols.empty()) { 5263 // Apply the protocol qualifers. 5264 bool hasError; 5265 Canonical = getCanonicalType(applyObjCProtocolQualifiers( 5266 Canonical, protocols, hasError, true /*allowOnPointerType*/)); 5267 assert(!hasError && "Error when apply protocol qualifier to bound type"); 5268 } 5269 5270 unsigned size = sizeof(ObjCTypeParamType); 5271 size += protocols.size() * sizeof(ObjCProtocolDecl *); 5272 void *mem = Allocate(size, TypeAlignment); 5273 auto *newType = new (mem) ObjCTypeParamType(Decl, Canonical, protocols); 5274 5275 Types.push_back(newType); 5276 ObjCTypeParamTypes.InsertNode(newType, InsertPos); 5277 return QualType(newType, 0); 5278 } 5279 5280 void ASTContext::adjustObjCTypeParamBoundType(const ObjCTypeParamDecl *Orig, 5281 ObjCTypeParamDecl *New) const { 5282 New->setTypeSourceInfo(getTrivialTypeSourceInfo(Orig->getUnderlyingType())); 5283 // Update TypeForDecl after updating TypeSourceInfo. 5284 auto NewTypeParamTy = cast<ObjCTypeParamType>(New->getTypeForDecl()); 5285 SmallVector<ObjCProtocolDecl *, 8> protocols; 5286 protocols.append(NewTypeParamTy->qual_begin(), NewTypeParamTy->qual_end()); 5287 QualType UpdatedTy = getObjCTypeParamType(New, protocols); 5288 New->setTypeForDecl(UpdatedTy.getTypePtr()); 5289 } 5290 5291 /// ObjCObjectAdoptsQTypeProtocols - Checks that protocols in IC's 5292 /// protocol list adopt all protocols in QT's qualified-id protocol 5293 /// list. 5294 bool ASTContext::ObjCObjectAdoptsQTypeProtocols(QualType QT, 5295 ObjCInterfaceDecl *IC) { 5296 if (!QT->isObjCQualifiedIdType()) 5297 return false; 5298 5299 if (const auto *OPT = QT->getAs<ObjCObjectPointerType>()) { 5300 // If both the right and left sides have qualifiers. 5301 for (auto *Proto : OPT->quals()) { 5302 if (!IC->ClassImplementsProtocol(Proto, false)) 5303 return false; 5304 } 5305 return true; 5306 } 5307 return false; 5308 } 5309 5310 /// QIdProtocolsAdoptObjCObjectProtocols - Checks that protocols in 5311 /// QT's qualified-id protocol list adopt all protocols in IDecl's list 5312 /// of protocols. 5313 bool ASTContext::QIdProtocolsAdoptObjCObjectProtocols(QualType QT, 5314 ObjCInterfaceDecl *IDecl) { 5315 if (!QT->isObjCQualifiedIdType()) 5316 return false; 5317 const auto *OPT = QT->getAs<ObjCObjectPointerType>(); 5318 if (!OPT) 5319 return false; 5320 if (!IDecl->hasDefinition()) 5321 return false; 5322 llvm::SmallPtrSet<ObjCProtocolDecl *, 8> InheritedProtocols; 5323 CollectInheritedProtocols(IDecl, InheritedProtocols); 5324 if (InheritedProtocols.empty()) 5325 return false; 5326 // Check that if every protocol in list of id<plist> conforms to a protocol 5327 // of IDecl's, then bridge casting is ok. 5328 bool Conforms = false; 5329 for (auto *Proto : OPT->quals()) { 5330 Conforms = false; 5331 for (auto *PI : InheritedProtocols) { 5332 if (ProtocolCompatibleWithProtocol(Proto, PI)) { 5333 Conforms = true; 5334 break; 5335 } 5336 } 5337 if (!Conforms) 5338 break; 5339 } 5340 if (Conforms) 5341 return true; 5342 5343 for (auto *PI : InheritedProtocols) { 5344 // If both the right and left sides have qualifiers. 5345 bool Adopts = false; 5346 for (auto *Proto : OPT->quals()) { 5347 // return 'true' if 'PI' is in the inheritance hierarchy of Proto 5348 if ((Adopts = ProtocolCompatibleWithProtocol(PI, Proto))) 5349 break; 5350 } 5351 if (!Adopts) 5352 return false; 5353 } 5354 return true; 5355 } 5356 5357 /// getObjCObjectPointerType - Return a ObjCObjectPointerType type for 5358 /// the given object type. 5359 QualType ASTContext::getObjCObjectPointerType(QualType ObjectT) const { 5360 llvm::FoldingSetNodeID ID; 5361 ObjCObjectPointerType::Profile(ID, ObjectT); 5362 5363 void *InsertPos = nullptr; 5364 if (ObjCObjectPointerType *QT = 5365 ObjCObjectPointerTypes.FindNodeOrInsertPos(ID, InsertPos)) 5366 return QualType(QT, 0); 5367 5368 // Find the canonical object type. 5369 QualType Canonical; 5370 if (!ObjectT.isCanonical()) { 5371 Canonical = getObjCObjectPointerType(getCanonicalType(ObjectT)); 5372 5373 // Regenerate InsertPos. 5374 ObjCObjectPointerTypes.FindNodeOrInsertPos(ID, InsertPos); 5375 } 5376 5377 // No match. 5378 void *Mem = Allocate(sizeof(ObjCObjectPointerType), TypeAlignment); 5379 auto *QType = 5380 new (Mem) ObjCObjectPointerType(Canonical, ObjectT); 5381 5382 Types.push_back(QType); 5383 ObjCObjectPointerTypes.InsertNode(QType, InsertPos); 5384 return QualType(QType, 0); 5385 } 5386 5387 /// getObjCInterfaceType - Return the unique reference to the type for the 5388 /// specified ObjC interface decl. The list of protocols is optional. 5389 QualType ASTContext::getObjCInterfaceType(const ObjCInterfaceDecl *Decl, 5390 ObjCInterfaceDecl *PrevDecl) const { 5391 if (Decl->TypeForDecl) 5392 return QualType(Decl->TypeForDecl, 0); 5393 5394 if (PrevDecl) { 5395 assert(PrevDecl->TypeForDecl && "previous decl has no TypeForDecl"); 5396 Decl->TypeForDecl = PrevDecl->TypeForDecl; 5397 return QualType(PrevDecl->TypeForDecl, 0); 5398 } 5399 5400 // Prefer the definition, if there is one. 5401 if (const ObjCInterfaceDecl *Def = Decl->getDefinition()) 5402 Decl = Def; 5403 5404 void *Mem = Allocate(sizeof(ObjCInterfaceType), TypeAlignment); 5405 auto *T = new (Mem) ObjCInterfaceType(Decl); 5406 Decl->TypeForDecl = T; 5407 Types.push_back(T); 5408 return QualType(T, 0); 5409 } 5410 5411 /// getTypeOfExprType - Unlike many "get<Type>" functions, we can't unique 5412 /// TypeOfExprType AST's (since expression's are never shared). For example, 5413 /// multiple declarations that refer to "typeof(x)" all contain different 5414 /// DeclRefExpr's. This doesn't effect the type checker, since it operates 5415 /// on canonical type's (which are always unique). 5416 QualType ASTContext::getTypeOfExprType(Expr *tofExpr) const { 5417 TypeOfExprType *toe; 5418 if (tofExpr->isTypeDependent()) { 5419 llvm::FoldingSetNodeID ID; 5420 DependentTypeOfExprType::Profile(ID, *this, tofExpr); 5421 5422 void *InsertPos = nullptr; 5423 DependentTypeOfExprType *Canon 5424 = DependentTypeOfExprTypes.FindNodeOrInsertPos(ID, InsertPos); 5425 if (Canon) { 5426 // We already have a "canonical" version of an identical, dependent 5427 // typeof(expr) type. Use that as our canonical type. 5428 toe = new (*this, TypeAlignment) TypeOfExprType(tofExpr, 5429 QualType((TypeOfExprType*)Canon, 0)); 5430 } else { 5431 // Build a new, canonical typeof(expr) type. 5432 Canon 5433 = new (*this, TypeAlignment) DependentTypeOfExprType(*this, tofExpr); 5434 DependentTypeOfExprTypes.InsertNode(Canon, InsertPos); 5435 toe = Canon; 5436 } 5437 } else { 5438 QualType Canonical = getCanonicalType(tofExpr->getType()); 5439 toe = new (*this, TypeAlignment) TypeOfExprType(tofExpr, Canonical); 5440 } 5441 Types.push_back(toe); 5442 return QualType(toe, 0); 5443 } 5444 5445 /// getTypeOfType - Unlike many "get<Type>" functions, we don't unique 5446 /// TypeOfType nodes. The only motivation to unique these nodes would be 5447 /// memory savings. Since typeof(t) is fairly uncommon, space shouldn't be 5448 /// an issue. This doesn't affect the type checker, since it operates 5449 /// on canonical types (which are always unique). 5450 QualType ASTContext::getTypeOfType(QualType tofType) const { 5451 QualType Canonical = getCanonicalType(tofType); 5452 auto *tot = new (*this, TypeAlignment) TypeOfType(tofType, Canonical); 5453 Types.push_back(tot); 5454 return QualType(tot, 0); 5455 } 5456 5457 /// getReferenceQualifiedType - Given an expr, will return the type for 5458 /// that expression, as in [dcl.type.simple]p4 but without taking id-expressions 5459 /// and class member access into account. 5460 QualType ASTContext::getReferenceQualifiedType(const Expr *E) const { 5461 // C++11 [dcl.type.simple]p4: 5462 // [...] 5463 QualType T = E->getType(); 5464 switch (E->getValueKind()) { 5465 // - otherwise, if e is an xvalue, decltype(e) is T&&, where T is the 5466 // type of e; 5467 case VK_XValue: 5468 return getRValueReferenceType(T); 5469 // - otherwise, if e is an lvalue, decltype(e) is T&, where T is the 5470 // type of e; 5471 case VK_LValue: 5472 return getLValueReferenceType(T); 5473 // - otherwise, decltype(e) is the type of e. 5474 case VK_PRValue: 5475 return T; 5476 } 5477 llvm_unreachable("Unknown value kind"); 5478 } 5479 5480 /// Unlike many "get<Type>" functions, we don't unique DecltypeType 5481 /// nodes. This would never be helpful, since each such type has its own 5482 /// expression, and would not give a significant memory saving, since there 5483 /// is an Expr tree under each such type. 5484 QualType ASTContext::getDecltypeType(Expr *e, QualType UnderlyingType) const { 5485 DecltypeType *dt; 5486 5487 // C++11 [temp.type]p2: 5488 // If an expression e involves a template parameter, decltype(e) denotes a 5489 // unique dependent type. Two such decltype-specifiers refer to the same 5490 // type only if their expressions are equivalent (14.5.6.1). 5491 if (e->isInstantiationDependent()) { 5492 llvm::FoldingSetNodeID ID; 5493 DependentDecltypeType::Profile(ID, *this, e); 5494 5495 void *InsertPos = nullptr; 5496 DependentDecltypeType *Canon 5497 = DependentDecltypeTypes.FindNodeOrInsertPos(ID, InsertPos); 5498 if (!Canon) { 5499 // Build a new, canonical decltype(expr) type. 5500 Canon = new (*this, TypeAlignment) DependentDecltypeType(*this, e); 5501 DependentDecltypeTypes.InsertNode(Canon, InsertPos); 5502 } 5503 dt = new (*this, TypeAlignment) 5504 DecltypeType(e, UnderlyingType, QualType((DecltypeType *)Canon, 0)); 5505 } else { 5506 dt = new (*this, TypeAlignment) 5507 DecltypeType(e, UnderlyingType, getCanonicalType(UnderlyingType)); 5508 } 5509 Types.push_back(dt); 5510 return QualType(dt, 0); 5511 } 5512 5513 /// getUnaryTransformationType - We don't unique these, since the memory 5514 /// savings are minimal and these are rare. 5515 QualType ASTContext::getUnaryTransformType(QualType BaseType, 5516 QualType UnderlyingType, 5517 UnaryTransformType::UTTKind Kind) 5518 const { 5519 UnaryTransformType *ut = nullptr; 5520 5521 if (BaseType->isDependentType()) { 5522 // Look in the folding set for an existing type. 5523 llvm::FoldingSetNodeID ID; 5524 DependentUnaryTransformType::Profile(ID, getCanonicalType(BaseType), Kind); 5525 5526 void *InsertPos = nullptr; 5527 DependentUnaryTransformType *Canon 5528 = DependentUnaryTransformTypes.FindNodeOrInsertPos(ID, InsertPos); 5529 5530 if (!Canon) { 5531 // Build a new, canonical __underlying_type(type) type. 5532 Canon = new (*this, TypeAlignment) 5533 DependentUnaryTransformType(*this, getCanonicalType(BaseType), 5534 Kind); 5535 DependentUnaryTransformTypes.InsertNode(Canon, InsertPos); 5536 } 5537 ut = new (*this, TypeAlignment) UnaryTransformType (BaseType, 5538 QualType(), Kind, 5539 QualType(Canon, 0)); 5540 } else { 5541 QualType CanonType = getCanonicalType(UnderlyingType); 5542 ut = new (*this, TypeAlignment) UnaryTransformType (BaseType, 5543 UnderlyingType, Kind, 5544 CanonType); 5545 } 5546 Types.push_back(ut); 5547 return QualType(ut, 0); 5548 } 5549 5550 /// getAutoType - Return the uniqued reference to the 'auto' type which has been 5551 /// deduced to the given type, or to the canonical undeduced 'auto' type, or the 5552 /// canonical deduced-but-dependent 'auto' type. 5553 QualType 5554 ASTContext::getAutoType(QualType DeducedType, AutoTypeKeyword Keyword, 5555 bool IsDependent, bool IsPack, 5556 ConceptDecl *TypeConstraintConcept, 5557 ArrayRef<TemplateArgument> TypeConstraintArgs) const { 5558 assert((!IsPack || IsDependent) && "only use IsPack for a dependent pack"); 5559 if (DeducedType.isNull() && Keyword == AutoTypeKeyword::Auto && 5560 !TypeConstraintConcept && !IsDependent) 5561 return getAutoDeductType(); 5562 5563 // Look in the folding set for an existing type. 5564 void *InsertPos = nullptr; 5565 llvm::FoldingSetNodeID ID; 5566 AutoType::Profile(ID, *this, DeducedType, Keyword, IsDependent, 5567 TypeConstraintConcept, TypeConstraintArgs); 5568 if (AutoType *AT = AutoTypes.FindNodeOrInsertPos(ID, InsertPos)) 5569 return QualType(AT, 0); 5570 5571 void *Mem = Allocate(sizeof(AutoType) + 5572 sizeof(TemplateArgument) * TypeConstraintArgs.size(), 5573 TypeAlignment); 5574 auto *AT = new (Mem) AutoType( 5575 DeducedType, Keyword, 5576 (IsDependent ? TypeDependence::DependentInstantiation 5577 : TypeDependence::None) | 5578 (IsPack ? TypeDependence::UnexpandedPack : TypeDependence::None), 5579 TypeConstraintConcept, TypeConstraintArgs); 5580 Types.push_back(AT); 5581 if (InsertPos) 5582 AutoTypes.InsertNode(AT, InsertPos); 5583 return QualType(AT, 0); 5584 } 5585 5586 /// Return the uniqued reference to the deduced template specialization type 5587 /// which has been deduced to the given type, or to the canonical undeduced 5588 /// such type, or the canonical deduced-but-dependent such type. 5589 QualType ASTContext::getDeducedTemplateSpecializationType( 5590 TemplateName Template, QualType DeducedType, bool IsDependent) const { 5591 // Look in the folding set for an existing type. 5592 void *InsertPos = nullptr; 5593 llvm::FoldingSetNodeID ID; 5594 DeducedTemplateSpecializationType::Profile(ID, Template, DeducedType, 5595 IsDependent); 5596 if (DeducedTemplateSpecializationType *DTST = 5597 DeducedTemplateSpecializationTypes.FindNodeOrInsertPos(ID, InsertPos)) 5598 return QualType(DTST, 0); 5599 5600 auto *DTST = new (*this, TypeAlignment) 5601 DeducedTemplateSpecializationType(Template, DeducedType, IsDependent); 5602 Types.push_back(DTST); 5603 if (InsertPos) 5604 DeducedTemplateSpecializationTypes.InsertNode(DTST, InsertPos); 5605 return QualType(DTST, 0); 5606 } 5607 5608 /// getAtomicType - Return the uniqued reference to the atomic type for 5609 /// the given value type. 5610 QualType ASTContext::getAtomicType(QualType T) const { 5611 // Unique pointers, to guarantee there is only one pointer of a particular 5612 // structure. 5613 llvm::FoldingSetNodeID ID; 5614 AtomicType::Profile(ID, T); 5615 5616 void *InsertPos = nullptr; 5617 if (AtomicType *AT = AtomicTypes.FindNodeOrInsertPos(ID, InsertPos)) 5618 return QualType(AT, 0); 5619 5620 // If the atomic value type isn't canonical, this won't be a canonical type 5621 // either, so fill in the canonical type field. 5622 QualType Canonical; 5623 if (!T.isCanonical()) { 5624 Canonical = getAtomicType(getCanonicalType(T)); 5625 5626 // Get the new insert position for the node we care about. 5627 AtomicType *NewIP = AtomicTypes.FindNodeOrInsertPos(ID, InsertPos); 5628 assert(!NewIP && "Shouldn't be in the map!"); (void)NewIP; 5629 } 5630 auto *New = new (*this, TypeAlignment) AtomicType(T, Canonical); 5631 Types.push_back(New); 5632 AtomicTypes.InsertNode(New, InsertPos); 5633 return QualType(New, 0); 5634 } 5635 5636 /// getAutoDeductType - Get type pattern for deducing against 'auto'. 5637 QualType ASTContext::getAutoDeductType() const { 5638 if (AutoDeductTy.isNull()) 5639 AutoDeductTy = QualType(new (*this, TypeAlignment) 5640 AutoType(QualType(), AutoTypeKeyword::Auto, 5641 TypeDependence::None, 5642 /*concept*/ nullptr, /*args*/ {}), 5643 0); 5644 return AutoDeductTy; 5645 } 5646 5647 /// getAutoRRefDeductType - Get type pattern for deducing against 'auto &&'. 5648 QualType ASTContext::getAutoRRefDeductType() const { 5649 if (AutoRRefDeductTy.isNull()) 5650 AutoRRefDeductTy = getRValueReferenceType(getAutoDeductType()); 5651 assert(!AutoRRefDeductTy.isNull() && "can't build 'auto &&' pattern"); 5652 return AutoRRefDeductTy; 5653 } 5654 5655 /// getTagDeclType - Return the unique reference to the type for the 5656 /// specified TagDecl (struct/union/class/enum) decl. 5657 QualType ASTContext::getTagDeclType(const TagDecl *Decl) const { 5658 assert(Decl); 5659 // FIXME: What is the design on getTagDeclType when it requires casting 5660 // away const? mutable? 5661 return getTypeDeclType(const_cast<TagDecl*>(Decl)); 5662 } 5663 5664 /// getSizeType - Return the unique type for "size_t" (C99 7.17), the result 5665 /// of the sizeof operator (C99 6.5.3.4p4). The value is target dependent and 5666 /// needs to agree with the definition in <stddef.h>. 5667 CanQualType ASTContext::getSizeType() const { 5668 return getFromTargetType(Target->getSizeType()); 5669 } 5670 5671 /// Return the unique signed counterpart of the integer type 5672 /// corresponding to size_t. 5673 CanQualType ASTContext::getSignedSizeType() const { 5674 return getFromTargetType(Target->getSignedSizeType()); 5675 } 5676 5677 /// getIntMaxType - Return the unique type for "intmax_t" (C99 7.18.1.5). 5678 CanQualType ASTContext::getIntMaxType() const { 5679 return getFromTargetType(Target->getIntMaxType()); 5680 } 5681 5682 /// getUIntMaxType - Return the unique type for "uintmax_t" (C99 7.18.1.5). 5683 CanQualType ASTContext::getUIntMaxType() const { 5684 return getFromTargetType(Target->getUIntMaxType()); 5685 } 5686 5687 /// getSignedWCharType - Return the type of "signed wchar_t". 5688 /// Used when in C++, as a GCC extension. 5689 QualType ASTContext::getSignedWCharType() const { 5690 // FIXME: derive from "Target" ? 5691 return WCharTy; 5692 } 5693 5694 /// getUnsignedWCharType - Return the type of "unsigned wchar_t". 5695 /// Used when in C++, as a GCC extension. 5696 QualType ASTContext::getUnsignedWCharType() const { 5697 // FIXME: derive from "Target" ? 5698 return UnsignedIntTy; 5699 } 5700 5701 QualType ASTContext::getIntPtrType() const { 5702 return getFromTargetType(Target->getIntPtrType()); 5703 } 5704 5705 QualType ASTContext::getUIntPtrType() const { 5706 return getCorrespondingUnsignedType(getIntPtrType()); 5707 } 5708 5709 /// getPointerDiffType - Return the unique type for "ptrdiff_t" (C99 7.17) 5710 /// defined in <stddef.h>. Pointer - pointer requires this (C99 6.5.6p9). 5711 QualType ASTContext::getPointerDiffType() const { 5712 return getFromTargetType(Target->getPtrDiffType(0)); 5713 } 5714 5715 /// Return the unique unsigned counterpart of "ptrdiff_t" 5716 /// integer type. The standard (C11 7.21.6.1p7) refers to this type 5717 /// in the definition of %tu format specifier. 5718 QualType ASTContext::getUnsignedPointerDiffType() const { 5719 return getFromTargetType(Target->getUnsignedPtrDiffType(0)); 5720 } 5721 5722 /// Return the unique type for "pid_t" defined in 5723 /// <sys/types.h>. We need this to compute the correct type for vfork(). 5724 QualType ASTContext::getProcessIDType() const { 5725 return getFromTargetType(Target->getProcessIDType()); 5726 } 5727 5728 //===----------------------------------------------------------------------===// 5729 // Type Operators 5730 //===----------------------------------------------------------------------===// 5731 5732 CanQualType ASTContext::getCanonicalParamType(QualType T) const { 5733 // Push qualifiers into arrays, and then discard any remaining 5734 // qualifiers. 5735 T = getCanonicalType(T); 5736 T = getVariableArrayDecayedType(T); 5737 const Type *Ty = T.getTypePtr(); 5738 QualType Result; 5739 if (isa<ArrayType>(Ty)) { 5740 Result = getArrayDecayedType(QualType(Ty,0)); 5741 } else if (isa<FunctionType>(Ty)) { 5742 Result = getPointerType(QualType(Ty, 0)); 5743 } else { 5744 Result = QualType(Ty, 0); 5745 } 5746 5747 return CanQualType::CreateUnsafe(Result); 5748 } 5749 5750 QualType ASTContext::getUnqualifiedArrayType(QualType type, 5751 Qualifiers &quals) { 5752 SplitQualType splitType = type.getSplitUnqualifiedType(); 5753 5754 // FIXME: getSplitUnqualifiedType() actually walks all the way to 5755 // the unqualified desugared type and then drops it on the floor. 5756 // We then have to strip that sugar back off with 5757 // getUnqualifiedDesugaredType(), which is silly. 5758 const auto *AT = 5759 dyn_cast<ArrayType>(splitType.Ty->getUnqualifiedDesugaredType()); 5760 5761 // If we don't have an array, just use the results in splitType. 5762 if (!AT) { 5763 quals = splitType.Quals; 5764 return QualType(splitType.Ty, 0); 5765 } 5766 5767 // Otherwise, recurse on the array's element type. 5768 QualType elementType = AT->getElementType(); 5769 QualType unqualElementType = getUnqualifiedArrayType(elementType, quals); 5770 5771 // If that didn't change the element type, AT has no qualifiers, so we 5772 // can just use the results in splitType. 5773 if (elementType == unqualElementType) { 5774 assert(quals.empty()); // from the recursive call 5775 quals = splitType.Quals; 5776 return QualType(splitType.Ty, 0); 5777 } 5778 5779 // Otherwise, add in the qualifiers from the outermost type, then 5780 // build the type back up. 5781 quals.addConsistentQualifiers(splitType.Quals); 5782 5783 if (const auto *CAT = dyn_cast<ConstantArrayType>(AT)) { 5784 return getConstantArrayType(unqualElementType, CAT->getSize(), 5785 CAT->getSizeExpr(), CAT->getSizeModifier(), 0); 5786 } 5787 5788 if (const auto *IAT = dyn_cast<IncompleteArrayType>(AT)) { 5789 return getIncompleteArrayType(unqualElementType, IAT->getSizeModifier(), 0); 5790 } 5791 5792 if (const auto *VAT = dyn_cast<VariableArrayType>(AT)) { 5793 return getVariableArrayType(unqualElementType, 5794 VAT->getSizeExpr(), 5795 VAT->getSizeModifier(), 5796 VAT->getIndexTypeCVRQualifiers(), 5797 VAT->getBracketsRange()); 5798 } 5799 5800 const auto *DSAT = cast<DependentSizedArrayType>(AT); 5801 return getDependentSizedArrayType(unqualElementType, DSAT->getSizeExpr(), 5802 DSAT->getSizeModifier(), 0, 5803 SourceRange()); 5804 } 5805 5806 /// Attempt to unwrap two types that may both be array types with the same bound 5807 /// (or both be array types of unknown bound) for the purpose of comparing the 5808 /// cv-decomposition of two types per C++ [conv.qual]. 5809 void ASTContext::UnwrapSimilarArrayTypes(QualType &T1, QualType &T2) { 5810 while (true) { 5811 auto *AT1 = getAsArrayType(T1); 5812 if (!AT1) 5813 return; 5814 5815 auto *AT2 = getAsArrayType(T2); 5816 if (!AT2) 5817 return; 5818 5819 // If we don't have two array types with the same constant bound nor two 5820 // incomplete array types, we've unwrapped everything we can. 5821 if (auto *CAT1 = dyn_cast<ConstantArrayType>(AT1)) { 5822 auto *CAT2 = dyn_cast<ConstantArrayType>(AT2); 5823 if (!CAT2 || CAT1->getSize() != CAT2->getSize()) 5824 return; 5825 } else if (!isa<IncompleteArrayType>(AT1) || 5826 !isa<IncompleteArrayType>(AT2)) { 5827 return; 5828 } 5829 5830 T1 = AT1->getElementType(); 5831 T2 = AT2->getElementType(); 5832 } 5833 } 5834 5835 /// Attempt to unwrap two types that may be similar (C++ [conv.qual]). 5836 /// 5837 /// If T1 and T2 are both pointer types of the same kind, or both array types 5838 /// with the same bound, unwraps layers from T1 and T2 until a pointer type is 5839 /// unwrapped. Top-level qualifiers on T1 and T2 are ignored. 5840 /// 5841 /// This function will typically be called in a loop that successively 5842 /// "unwraps" pointer and pointer-to-member types to compare them at each 5843 /// level. 5844 /// 5845 /// \return \c true if a pointer type was unwrapped, \c false if we reached a 5846 /// pair of types that can't be unwrapped further. 5847 bool ASTContext::UnwrapSimilarTypes(QualType &T1, QualType &T2) { 5848 UnwrapSimilarArrayTypes(T1, T2); 5849 5850 const auto *T1PtrType = T1->getAs<PointerType>(); 5851 const auto *T2PtrType = T2->getAs<PointerType>(); 5852 if (T1PtrType && T2PtrType) { 5853 T1 = T1PtrType->getPointeeType(); 5854 T2 = T2PtrType->getPointeeType(); 5855 return true; 5856 } 5857 5858 const auto *T1MPType = T1->getAs<MemberPointerType>(); 5859 const auto *T2MPType = T2->getAs<MemberPointerType>(); 5860 if (T1MPType && T2MPType && 5861 hasSameUnqualifiedType(QualType(T1MPType->getClass(), 0), 5862 QualType(T2MPType->getClass(), 0))) { 5863 T1 = T1MPType->getPointeeType(); 5864 T2 = T2MPType->getPointeeType(); 5865 return true; 5866 } 5867 5868 if (getLangOpts().ObjC) { 5869 const auto *T1OPType = T1->getAs<ObjCObjectPointerType>(); 5870 const auto *T2OPType = T2->getAs<ObjCObjectPointerType>(); 5871 if (T1OPType && T2OPType) { 5872 T1 = T1OPType->getPointeeType(); 5873 T2 = T2OPType->getPointeeType(); 5874 return true; 5875 } 5876 } 5877 5878 // FIXME: Block pointers, too? 5879 5880 return false; 5881 } 5882 5883 bool ASTContext::hasSimilarType(QualType T1, QualType T2) { 5884 while (true) { 5885 Qualifiers Quals; 5886 T1 = getUnqualifiedArrayType(T1, Quals); 5887 T2 = getUnqualifiedArrayType(T2, Quals); 5888 if (hasSameType(T1, T2)) 5889 return true; 5890 if (!UnwrapSimilarTypes(T1, T2)) 5891 return false; 5892 } 5893 } 5894 5895 bool ASTContext::hasCvrSimilarType(QualType T1, QualType T2) { 5896 while (true) { 5897 Qualifiers Quals1, Quals2; 5898 T1 = getUnqualifiedArrayType(T1, Quals1); 5899 T2 = getUnqualifiedArrayType(T2, Quals2); 5900 5901 Quals1.removeCVRQualifiers(); 5902 Quals2.removeCVRQualifiers(); 5903 if (Quals1 != Quals2) 5904 return false; 5905 5906 if (hasSameType(T1, T2)) 5907 return true; 5908 5909 if (!UnwrapSimilarTypes(T1, T2)) 5910 return false; 5911 } 5912 } 5913 5914 DeclarationNameInfo 5915 ASTContext::getNameForTemplate(TemplateName Name, 5916 SourceLocation NameLoc) const { 5917 switch (Name.getKind()) { 5918 case TemplateName::QualifiedTemplate: 5919 case TemplateName::Template: 5920 // DNInfo work in progress: CHECKME: what about DNLoc? 5921 return DeclarationNameInfo(Name.getAsTemplateDecl()->getDeclName(), 5922 NameLoc); 5923 5924 case TemplateName::OverloadedTemplate: { 5925 OverloadedTemplateStorage *Storage = Name.getAsOverloadedTemplate(); 5926 // DNInfo work in progress: CHECKME: what about DNLoc? 5927 return DeclarationNameInfo((*Storage->begin())->getDeclName(), NameLoc); 5928 } 5929 5930 case TemplateName::AssumedTemplate: { 5931 AssumedTemplateStorage *Storage = Name.getAsAssumedTemplateName(); 5932 return DeclarationNameInfo(Storage->getDeclName(), NameLoc); 5933 } 5934 5935 case TemplateName::DependentTemplate: { 5936 DependentTemplateName *DTN = Name.getAsDependentTemplateName(); 5937 DeclarationName DName; 5938 if (DTN->isIdentifier()) { 5939 DName = DeclarationNames.getIdentifier(DTN->getIdentifier()); 5940 return DeclarationNameInfo(DName, NameLoc); 5941 } else { 5942 DName = DeclarationNames.getCXXOperatorName(DTN->getOperator()); 5943 // DNInfo work in progress: FIXME: source locations? 5944 DeclarationNameLoc DNLoc = 5945 DeclarationNameLoc::makeCXXOperatorNameLoc(SourceRange()); 5946 return DeclarationNameInfo(DName, NameLoc, DNLoc); 5947 } 5948 } 5949 5950 case TemplateName::SubstTemplateTemplateParm: { 5951 SubstTemplateTemplateParmStorage *subst 5952 = Name.getAsSubstTemplateTemplateParm(); 5953 return DeclarationNameInfo(subst->getParameter()->getDeclName(), 5954 NameLoc); 5955 } 5956 5957 case TemplateName::SubstTemplateTemplateParmPack: { 5958 SubstTemplateTemplateParmPackStorage *subst 5959 = Name.getAsSubstTemplateTemplateParmPack(); 5960 return DeclarationNameInfo(subst->getParameterPack()->getDeclName(), 5961 NameLoc); 5962 } 5963 } 5964 5965 llvm_unreachable("bad template name kind!"); 5966 } 5967 5968 TemplateName ASTContext::getCanonicalTemplateName(TemplateName Name) const { 5969 switch (Name.getKind()) { 5970 case TemplateName::QualifiedTemplate: 5971 case TemplateName::Template: { 5972 TemplateDecl *Template = Name.getAsTemplateDecl(); 5973 if (auto *TTP = dyn_cast<TemplateTemplateParmDecl>(Template)) 5974 Template = getCanonicalTemplateTemplateParmDecl(TTP); 5975 5976 // The canonical template name is the canonical template declaration. 5977 return TemplateName(cast<TemplateDecl>(Template->getCanonicalDecl())); 5978 } 5979 5980 case TemplateName::OverloadedTemplate: 5981 case TemplateName::AssumedTemplate: 5982 llvm_unreachable("cannot canonicalize unresolved template"); 5983 5984 case TemplateName::DependentTemplate: { 5985 DependentTemplateName *DTN = Name.getAsDependentTemplateName(); 5986 assert(DTN && "Non-dependent template names must refer to template decls."); 5987 return DTN->CanonicalTemplateName; 5988 } 5989 5990 case TemplateName::SubstTemplateTemplateParm: { 5991 SubstTemplateTemplateParmStorage *subst 5992 = Name.getAsSubstTemplateTemplateParm(); 5993 return getCanonicalTemplateName(subst->getReplacement()); 5994 } 5995 5996 case TemplateName::SubstTemplateTemplateParmPack: { 5997 SubstTemplateTemplateParmPackStorage *subst 5998 = Name.getAsSubstTemplateTemplateParmPack(); 5999 TemplateTemplateParmDecl *canonParameter 6000 = getCanonicalTemplateTemplateParmDecl(subst->getParameterPack()); 6001 TemplateArgument canonArgPack 6002 = getCanonicalTemplateArgument(subst->getArgumentPack()); 6003 return getSubstTemplateTemplateParmPack(canonParameter, canonArgPack); 6004 } 6005 } 6006 6007 llvm_unreachable("bad template name!"); 6008 } 6009 6010 bool ASTContext::hasSameTemplateName(TemplateName X, TemplateName Y) { 6011 X = getCanonicalTemplateName(X); 6012 Y = getCanonicalTemplateName(Y); 6013 return X.getAsVoidPointer() == Y.getAsVoidPointer(); 6014 } 6015 6016 TemplateArgument 6017 ASTContext::getCanonicalTemplateArgument(const TemplateArgument &Arg) const { 6018 switch (Arg.getKind()) { 6019 case TemplateArgument::Null: 6020 return Arg; 6021 6022 case TemplateArgument::Expression: 6023 return Arg; 6024 6025 case TemplateArgument::Declaration: { 6026 auto *D = cast<ValueDecl>(Arg.getAsDecl()->getCanonicalDecl()); 6027 return TemplateArgument(D, Arg.getParamTypeForDecl()); 6028 } 6029 6030 case TemplateArgument::NullPtr: 6031 return TemplateArgument(getCanonicalType(Arg.getNullPtrType()), 6032 /*isNullPtr*/true); 6033 6034 case TemplateArgument::Template: 6035 return TemplateArgument(getCanonicalTemplateName(Arg.getAsTemplate())); 6036 6037 case TemplateArgument::TemplateExpansion: 6038 return TemplateArgument(getCanonicalTemplateName( 6039 Arg.getAsTemplateOrTemplatePattern()), 6040 Arg.getNumTemplateExpansions()); 6041 6042 case TemplateArgument::Integral: 6043 return TemplateArgument(Arg, getCanonicalType(Arg.getIntegralType())); 6044 6045 case TemplateArgument::Type: 6046 return TemplateArgument(getCanonicalType(Arg.getAsType())); 6047 6048 case TemplateArgument::Pack: { 6049 if (Arg.pack_size() == 0) 6050 return Arg; 6051 6052 auto *CanonArgs = new (*this) TemplateArgument[Arg.pack_size()]; 6053 unsigned Idx = 0; 6054 for (TemplateArgument::pack_iterator A = Arg.pack_begin(), 6055 AEnd = Arg.pack_end(); 6056 A != AEnd; (void)++A, ++Idx) 6057 CanonArgs[Idx] = getCanonicalTemplateArgument(*A); 6058 6059 return TemplateArgument(llvm::makeArrayRef(CanonArgs, Arg.pack_size())); 6060 } 6061 } 6062 6063 // Silence GCC warning 6064 llvm_unreachable("Unhandled template argument kind"); 6065 } 6066 6067 NestedNameSpecifier * 6068 ASTContext::getCanonicalNestedNameSpecifier(NestedNameSpecifier *NNS) const { 6069 if (!NNS) 6070 return nullptr; 6071 6072 switch (NNS->getKind()) { 6073 case NestedNameSpecifier::Identifier: 6074 // Canonicalize the prefix but keep the identifier the same. 6075 return NestedNameSpecifier::Create(*this, 6076 getCanonicalNestedNameSpecifier(NNS->getPrefix()), 6077 NNS->getAsIdentifier()); 6078 6079 case NestedNameSpecifier::Namespace: 6080 // A namespace is canonical; build a nested-name-specifier with 6081 // this namespace and no prefix. 6082 return NestedNameSpecifier::Create(*this, nullptr, 6083 NNS->getAsNamespace()->getOriginalNamespace()); 6084 6085 case NestedNameSpecifier::NamespaceAlias: 6086 // A namespace is canonical; build a nested-name-specifier with 6087 // this namespace and no prefix. 6088 return NestedNameSpecifier::Create(*this, nullptr, 6089 NNS->getAsNamespaceAlias()->getNamespace() 6090 ->getOriginalNamespace()); 6091 6092 // The difference between TypeSpec and TypeSpecWithTemplate is that the 6093 // latter will have the 'template' keyword when printed. 6094 case NestedNameSpecifier::TypeSpec: 6095 case NestedNameSpecifier::TypeSpecWithTemplate: { 6096 const Type *T = getCanonicalType(NNS->getAsType()); 6097 6098 // If we have some kind of dependent-named type (e.g., "typename T::type"), 6099 // break it apart into its prefix and identifier, then reconsititute those 6100 // as the canonical nested-name-specifier. This is required to canonicalize 6101 // a dependent nested-name-specifier involving typedefs of dependent-name 6102 // types, e.g., 6103 // typedef typename T::type T1; 6104 // typedef typename T1::type T2; 6105 if (const auto *DNT = T->getAs<DependentNameType>()) 6106 return NestedNameSpecifier::Create( 6107 *this, DNT->getQualifier(), 6108 const_cast<IdentifierInfo *>(DNT->getIdentifier())); 6109 if (const auto *DTST = T->getAs<DependentTemplateSpecializationType>()) 6110 return NestedNameSpecifier::Create(*this, DTST->getQualifier(), true, 6111 const_cast<Type *>(T)); 6112 6113 // TODO: Set 'Template' parameter to true for other template types. 6114 return NestedNameSpecifier::Create(*this, nullptr, false, 6115 const_cast<Type *>(T)); 6116 } 6117 6118 case NestedNameSpecifier::Global: 6119 case NestedNameSpecifier::Super: 6120 // The global specifier and __super specifer are canonical and unique. 6121 return NNS; 6122 } 6123 6124 llvm_unreachable("Invalid NestedNameSpecifier::Kind!"); 6125 } 6126 6127 const ArrayType *ASTContext::getAsArrayType(QualType T) const { 6128 // Handle the non-qualified case efficiently. 6129 if (!T.hasLocalQualifiers()) { 6130 // Handle the common positive case fast. 6131 if (const auto *AT = dyn_cast<ArrayType>(T)) 6132 return AT; 6133 } 6134 6135 // Handle the common negative case fast. 6136 if (!isa<ArrayType>(T.getCanonicalType())) 6137 return nullptr; 6138 6139 // Apply any qualifiers from the array type to the element type. This 6140 // implements C99 6.7.3p8: "If the specification of an array type includes 6141 // any type qualifiers, the element type is so qualified, not the array type." 6142 6143 // If we get here, we either have type qualifiers on the type, or we have 6144 // sugar such as a typedef in the way. If we have type qualifiers on the type 6145 // we must propagate them down into the element type. 6146 6147 SplitQualType split = T.getSplitDesugaredType(); 6148 Qualifiers qs = split.Quals; 6149 6150 // If we have a simple case, just return now. 6151 const auto *ATy = dyn_cast<ArrayType>(split.Ty); 6152 if (!ATy || qs.empty()) 6153 return ATy; 6154 6155 // Otherwise, we have an array and we have qualifiers on it. Push the 6156 // qualifiers into the array element type and return a new array type. 6157 QualType NewEltTy = getQualifiedType(ATy->getElementType(), qs); 6158 6159 if (const auto *CAT = dyn_cast<ConstantArrayType>(ATy)) 6160 return cast<ArrayType>(getConstantArrayType(NewEltTy, CAT->getSize(), 6161 CAT->getSizeExpr(), 6162 CAT->getSizeModifier(), 6163 CAT->getIndexTypeCVRQualifiers())); 6164 if (const auto *IAT = dyn_cast<IncompleteArrayType>(ATy)) 6165 return cast<ArrayType>(getIncompleteArrayType(NewEltTy, 6166 IAT->getSizeModifier(), 6167 IAT->getIndexTypeCVRQualifiers())); 6168 6169 if (const auto *DSAT = dyn_cast<DependentSizedArrayType>(ATy)) 6170 return cast<ArrayType>( 6171 getDependentSizedArrayType(NewEltTy, 6172 DSAT->getSizeExpr(), 6173 DSAT->getSizeModifier(), 6174 DSAT->getIndexTypeCVRQualifiers(), 6175 DSAT->getBracketsRange())); 6176 6177 const auto *VAT = cast<VariableArrayType>(ATy); 6178 return cast<ArrayType>(getVariableArrayType(NewEltTy, 6179 VAT->getSizeExpr(), 6180 VAT->getSizeModifier(), 6181 VAT->getIndexTypeCVRQualifiers(), 6182 VAT->getBracketsRange())); 6183 } 6184 6185 QualType ASTContext::getAdjustedParameterType(QualType T) const { 6186 if (T->isArrayType() || T->isFunctionType()) 6187 return getDecayedType(T); 6188 return T; 6189 } 6190 6191 QualType ASTContext::getSignatureParameterType(QualType T) const { 6192 T = getVariableArrayDecayedType(T); 6193 T = getAdjustedParameterType(T); 6194 return T.getUnqualifiedType(); 6195 } 6196 6197 QualType ASTContext::getExceptionObjectType(QualType T) const { 6198 // C++ [except.throw]p3: 6199 // A throw-expression initializes a temporary object, called the exception 6200 // object, the type of which is determined by removing any top-level 6201 // cv-qualifiers from the static type of the operand of throw and adjusting 6202 // the type from "array of T" or "function returning T" to "pointer to T" 6203 // or "pointer to function returning T", [...] 6204 T = getVariableArrayDecayedType(T); 6205 if (T->isArrayType() || T->isFunctionType()) 6206 T = getDecayedType(T); 6207 return T.getUnqualifiedType(); 6208 } 6209 6210 /// getArrayDecayedType - Return the properly qualified result of decaying the 6211 /// specified array type to a pointer. This operation is non-trivial when 6212 /// handling typedefs etc. The canonical type of "T" must be an array type, 6213 /// this returns a pointer to a properly qualified element of the array. 6214 /// 6215 /// See C99 6.7.5.3p7 and C99 6.3.2.1p3. 6216 QualType ASTContext::getArrayDecayedType(QualType Ty) const { 6217 // Get the element type with 'getAsArrayType' so that we don't lose any 6218 // typedefs in the element type of the array. This also handles propagation 6219 // of type qualifiers from the array type into the element type if present 6220 // (C99 6.7.3p8). 6221 const ArrayType *PrettyArrayType = getAsArrayType(Ty); 6222 assert(PrettyArrayType && "Not an array type!"); 6223 6224 QualType PtrTy = getPointerType(PrettyArrayType->getElementType()); 6225 6226 // int x[restrict 4] -> int *restrict 6227 QualType Result = getQualifiedType(PtrTy, 6228 PrettyArrayType->getIndexTypeQualifiers()); 6229 6230 // int x[_Nullable] -> int * _Nullable 6231 if (auto Nullability = Ty->getNullability(*this)) { 6232 Result = const_cast<ASTContext *>(this)->getAttributedType( 6233 AttributedType::getNullabilityAttrKind(*Nullability), Result, Result); 6234 } 6235 return Result; 6236 } 6237 6238 QualType ASTContext::getBaseElementType(const ArrayType *array) const { 6239 return getBaseElementType(array->getElementType()); 6240 } 6241 6242 QualType ASTContext::getBaseElementType(QualType type) const { 6243 Qualifiers qs; 6244 while (true) { 6245 SplitQualType split = type.getSplitDesugaredType(); 6246 const ArrayType *array = split.Ty->getAsArrayTypeUnsafe(); 6247 if (!array) break; 6248 6249 type = array->getElementType(); 6250 qs.addConsistentQualifiers(split.Quals); 6251 } 6252 6253 return getQualifiedType(type, qs); 6254 } 6255 6256 /// getConstantArrayElementCount - Returns number of constant array elements. 6257 uint64_t 6258 ASTContext::getConstantArrayElementCount(const ConstantArrayType *CA) const { 6259 uint64_t ElementCount = 1; 6260 do { 6261 ElementCount *= CA->getSize().getZExtValue(); 6262 CA = dyn_cast_or_null<ConstantArrayType>( 6263 CA->getElementType()->getAsArrayTypeUnsafe()); 6264 } while (CA); 6265 return ElementCount; 6266 } 6267 6268 /// getFloatingRank - Return a relative rank for floating point types. 6269 /// This routine will assert if passed a built-in type that isn't a float. 6270 static FloatingRank getFloatingRank(QualType T) { 6271 if (const auto *CT = T->getAs<ComplexType>()) 6272 return getFloatingRank(CT->getElementType()); 6273 6274 switch (T->castAs<BuiltinType>()->getKind()) { 6275 default: llvm_unreachable("getFloatingRank(): not a floating type"); 6276 case BuiltinType::Float16: return Float16Rank; 6277 case BuiltinType::Half: return HalfRank; 6278 case BuiltinType::Float: return FloatRank; 6279 case BuiltinType::Double: return DoubleRank; 6280 case BuiltinType::LongDouble: return LongDoubleRank; 6281 case BuiltinType::Float128: return Float128Rank; 6282 case BuiltinType::BFloat16: return BFloat16Rank; 6283 } 6284 } 6285 6286 /// getFloatingTypeOfSizeWithinDomain - Returns a real floating 6287 /// point or a complex type (based on typeDomain/typeSize). 6288 /// 'typeDomain' is a real floating point or complex type. 6289 /// 'typeSize' is a real floating point or complex type. 6290 QualType ASTContext::getFloatingTypeOfSizeWithinDomain(QualType Size, 6291 QualType Domain) const { 6292 FloatingRank EltRank = getFloatingRank(Size); 6293 if (Domain->isComplexType()) { 6294 switch (EltRank) { 6295 case BFloat16Rank: llvm_unreachable("Complex bfloat16 is not supported"); 6296 case Float16Rank: 6297 case HalfRank: llvm_unreachable("Complex half is not supported"); 6298 case FloatRank: return FloatComplexTy; 6299 case DoubleRank: return DoubleComplexTy; 6300 case LongDoubleRank: return LongDoubleComplexTy; 6301 case Float128Rank: return Float128ComplexTy; 6302 } 6303 } 6304 6305 assert(Domain->isRealFloatingType() && "Unknown domain!"); 6306 switch (EltRank) { 6307 case Float16Rank: return HalfTy; 6308 case BFloat16Rank: return BFloat16Ty; 6309 case HalfRank: return HalfTy; 6310 case FloatRank: return FloatTy; 6311 case DoubleRank: return DoubleTy; 6312 case LongDoubleRank: return LongDoubleTy; 6313 case Float128Rank: return Float128Ty; 6314 } 6315 llvm_unreachable("getFloatingRank(): illegal value for rank"); 6316 } 6317 6318 /// getFloatingTypeOrder - Compare the rank of the two specified floating 6319 /// point types, ignoring the domain of the type (i.e. 'double' == 6320 /// '_Complex double'). If LHS > RHS, return 1. If LHS == RHS, return 0. If 6321 /// LHS < RHS, return -1. 6322 int ASTContext::getFloatingTypeOrder(QualType LHS, QualType RHS) const { 6323 FloatingRank LHSR = getFloatingRank(LHS); 6324 FloatingRank RHSR = getFloatingRank(RHS); 6325 6326 if (LHSR == RHSR) 6327 return 0; 6328 if (LHSR > RHSR) 6329 return 1; 6330 return -1; 6331 } 6332 6333 int ASTContext::getFloatingTypeSemanticOrder(QualType LHS, QualType RHS) const { 6334 if (&getFloatTypeSemantics(LHS) == &getFloatTypeSemantics(RHS)) 6335 return 0; 6336 return getFloatingTypeOrder(LHS, RHS); 6337 } 6338 6339 /// getIntegerRank - Return an integer conversion rank (C99 6.3.1.1p1). This 6340 /// routine will assert if passed a built-in type that isn't an integer or enum, 6341 /// or if it is not canonicalized. 6342 unsigned ASTContext::getIntegerRank(const Type *T) const { 6343 assert(T->isCanonicalUnqualified() && "T should be canonicalized"); 6344 6345 // Results in this 'losing' to any type of the same size, but winning if 6346 // larger. 6347 if (const auto *EIT = dyn_cast<ExtIntType>(T)) 6348 return 0 + (EIT->getNumBits() << 3); 6349 6350 switch (cast<BuiltinType>(T)->getKind()) { 6351 default: llvm_unreachable("getIntegerRank(): not a built-in integer"); 6352 case BuiltinType::Bool: 6353 return 1 + (getIntWidth(BoolTy) << 3); 6354 case BuiltinType::Char_S: 6355 case BuiltinType::Char_U: 6356 case BuiltinType::SChar: 6357 case BuiltinType::UChar: 6358 return 2 + (getIntWidth(CharTy) << 3); 6359 case BuiltinType::Short: 6360 case BuiltinType::UShort: 6361 return 3 + (getIntWidth(ShortTy) << 3); 6362 case BuiltinType::Int: 6363 case BuiltinType::UInt: 6364 return 4 + (getIntWidth(IntTy) << 3); 6365 case BuiltinType::Long: 6366 case BuiltinType::ULong: 6367 return 5 + (getIntWidth(LongTy) << 3); 6368 case BuiltinType::LongLong: 6369 case BuiltinType::ULongLong: 6370 return 6 + (getIntWidth(LongLongTy) << 3); 6371 case BuiltinType::Int128: 6372 case BuiltinType::UInt128: 6373 return 7 + (getIntWidth(Int128Ty) << 3); 6374 } 6375 } 6376 6377 /// Whether this is a promotable bitfield reference according 6378 /// to C99 6.3.1.1p2, bullet 2 (and GCC extensions). 6379 /// 6380 /// \returns the type this bit-field will promote to, or NULL if no 6381 /// promotion occurs. 6382 QualType ASTContext::isPromotableBitField(Expr *E) const { 6383 if (E->isTypeDependent() || E->isValueDependent()) 6384 return {}; 6385 6386 // C++ [conv.prom]p5: 6387 // If the bit-field has an enumerated type, it is treated as any other 6388 // value of that type for promotion purposes. 6389 if (getLangOpts().CPlusPlus && E->getType()->isEnumeralType()) 6390 return {}; 6391 6392 // FIXME: We should not do this unless E->refersToBitField() is true. This 6393 // matters in C where getSourceBitField() will find bit-fields for various 6394 // cases where the source expression is not a bit-field designator. 6395 6396 FieldDecl *Field = E->getSourceBitField(); // FIXME: conditional bit-fields? 6397 if (!Field) 6398 return {}; 6399 6400 QualType FT = Field->getType(); 6401 6402 uint64_t BitWidth = Field->getBitWidthValue(*this); 6403 uint64_t IntSize = getTypeSize(IntTy); 6404 // C++ [conv.prom]p5: 6405 // A prvalue for an integral bit-field can be converted to a prvalue of type 6406 // int if int can represent all the values of the bit-field; otherwise, it 6407 // can be converted to unsigned int if unsigned int can represent all the 6408 // values of the bit-field. If the bit-field is larger yet, no integral 6409 // promotion applies to it. 6410 // C11 6.3.1.1/2: 6411 // [For a bit-field of type _Bool, int, signed int, or unsigned int:] 6412 // If an int can represent all values of the original type (as restricted by 6413 // the width, for a bit-field), the value is converted to an int; otherwise, 6414 // it is converted to an unsigned int. 6415 // 6416 // FIXME: C does not permit promotion of a 'long : 3' bitfield to int. 6417 // We perform that promotion here to match GCC and C++. 6418 // FIXME: C does not permit promotion of an enum bit-field whose rank is 6419 // greater than that of 'int'. We perform that promotion to match GCC. 6420 if (BitWidth < IntSize) 6421 return IntTy; 6422 6423 if (BitWidth == IntSize) 6424 return FT->isSignedIntegerType() ? IntTy : UnsignedIntTy; 6425 6426 // Bit-fields wider than int are not subject to promotions, and therefore act 6427 // like the base type. GCC has some weird bugs in this area that we 6428 // deliberately do not follow (GCC follows a pre-standard resolution to 6429 // C's DR315 which treats bit-width as being part of the type, and this leaks 6430 // into their semantics in some cases). 6431 return {}; 6432 } 6433 6434 /// getPromotedIntegerType - Returns the type that Promotable will 6435 /// promote to: C99 6.3.1.1p2, assuming that Promotable is a promotable 6436 /// integer type. 6437 QualType ASTContext::getPromotedIntegerType(QualType Promotable) const { 6438 assert(!Promotable.isNull()); 6439 assert(Promotable->isPromotableIntegerType()); 6440 if (const auto *ET = Promotable->getAs<EnumType>()) 6441 return ET->getDecl()->getPromotionType(); 6442 6443 if (const auto *BT = Promotable->getAs<BuiltinType>()) { 6444 // C++ [conv.prom]: A prvalue of type char16_t, char32_t, or wchar_t 6445 // (3.9.1) can be converted to a prvalue of the first of the following 6446 // types that can represent all the values of its underlying type: 6447 // int, unsigned int, long int, unsigned long int, long long int, or 6448 // unsigned long long int [...] 6449 // FIXME: Is there some better way to compute this? 6450 if (BT->getKind() == BuiltinType::WChar_S || 6451 BT->getKind() == BuiltinType::WChar_U || 6452 BT->getKind() == BuiltinType::Char8 || 6453 BT->getKind() == BuiltinType::Char16 || 6454 BT->getKind() == BuiltinType::Char32) { 6455 bool FromIsSigned = BT->getKind() == BuiltinType::WChar_S; 6456 uint64_t FromSize = getTypeSize(BT); 6457 QualType PromoteTypes[] = { IntTy, UnsignedIntTy, LongTy, UnsignedLongTy, 6458 LongLongTy, UnsignedLongLongTy }; 6459 for (size_t Idx = 0; Idx < llvm::array_lengthof(PromoteTypes); ++Idx) { 6460 uint64_t ToSize = getTypeSize(PromoteTypes[Idx]); 6461 if (FromSize < ToSize || 6462 (FromSize == ToSize && 6463 FromIsSigned == PromoteTypes[Idx]->isSignedIntegerType())) 6464 return PromoteTypes[Idx]; 6465 } 6466 llvm_unreachable("char type should fit into long long"); 6467 } 6468 } 6469 6470 // At this point, we should have a signed or unsigned integer type. 6471 if (Promotable->isSignedIntegerType()) 6472 return IntTy; 6473 uint64_t PromotableSize = getIntWidth(Promotable); 6474 uint64_t IntSize = getIntWidth(IntTy); 6475 assert(Promotable->isUnsignedIntegerType() && PromotableSize <= IntSize); 6476 return (PromotableSize != IntSize) ? IntTy : UnsignedIntTy; 6477 } 6478 6479 /// Recurses in pointer/array types until it finds an objc retainable 6480 /// type and returns its ownership. 6481 Qualifiers::ObjCLifetime ASTContext::getInnerObjCOwnership(QualType T) const { 6482 while (!T.isNull()) { 6483 if (T.getObjCLifetime() != Qualifiers::OCL_None) 6484 return T.getObjCLifetime(); 6485 if (T->isArrayType()) 6486 T = getBaseElementType(T); 6487 else if (const auto *PT = T->getAs<PointerType>()) 6488 T = PT->getPointeeType(); 6489 else if (const auto *RT = T->getAs<ReferenceType>()) 6490 T = RT->getPointeeType(); 6491 else 6492 break; 6493 } 6494 6495 return Qualifiers::OCL_None; 6496 } 6497 6498 static const Type *getIntegerTypeForEnum(const EnumType *ET) { 6499 // Incomplete enum types are not treated as integer types. 6500 // FIXME: In C++, enum types are never integer types. 6501 if (ET->getDecl()->isComplete() && !ET->getDecl()->isScoped()) 6502 return ET->getDecl()->getIntegerType().getTypePtr(); 6503 return nullptr; 6504 } 6505 6506 /// getIntegerTypeOrder - Returns the highest ranked integer type: 6507 /// C99 6.3.1.8p1. If LHS > RHS, return 1. If LHS == RHS, return 0. If 6508 /// LHS < RHS, return -1. 6509 int ASTContext::getIntegerTypeOrder(QualType LHS, QualType RHS) const { 6510 const Type *LHSC = getCanonicalType(LHS).getTypePtr(); 6511 const Type *RHSC = getCanonicalType(RHS).getTypePtr(); 6512 6513 // Unwrap enums to their underlying type. 6514 if (const auto *ET = dyn_cast<EnumType>(LHSC)) 6515 LHSC = getIntegerTypeForEnum(ET); 6516 if (const auto *ET = dyn_cast<EnumType>(RHSC)) 6517 RHSC = getIntegerTypeForEnum(ET); 6518 6519 if (LHSC == RHSC) return 0; 6520 6521 bool LHSUnsigned = LHSC->isUnsignedIntegerType(); 6522 bool RHSUnsigned = RHSC->isUnsignedIntegerType(); 6523 6524 unsigned LHSRank = getIntegerRank(LHSC); 6525 unsigned RHSRank = getIntegerRank(RHSC); 6526 6527 if (LHSUnsigned == RHSUnsigned) { // Both signed or both unsigned. 6528 if (LHSRank == RHSRank) return 0; 6529 return LHSRank > RHSRank ? 1 : -1; 6530 } 6531 6532 // Otherwise, the LHS is signed and the RHS is unsigned or visa versa. 6533 if (LHSUnsigned) { 6534 // If the unsigned [LHS] type is larger, return it. 6535 if (LHSRank >= RHSRank) 6536 return 1; 6537 6538 // If the signed type can represent all values of the unsigned type, it 6539 // wins. Because we are dealing with 2's complement and types that are 6540 // powers of two larger than each other, this is always safe. 6541 return -1; 6542 } 6543 6544 // If the unsigned [RHS] type is larger, return it. 6545 if (RHSRank >= LHSRank) 6546 return -1; 6547 6548 // If the signed type can represent all values of the unsigned type, it 6549 // wins. Because we are dealing with 2's complement and types that are 6550 // powers of two larger than each other, this is always safe. 6551 return 1; 6552 } 6553 6554 TypedefDecl *ASTContext::getCFConstantStringDecl() const { 6555 if (CFConstantStringTypeDecl) 6556 return CFConstantStringTypeDecl; 6557 6558 assert(!CFConstantStringTagDecl && 6559 "tag and typedef should be initialized together"); 6560 CFConstantStringTagDecl = buildImplicitRecord("__NSConstantString_tag"); 6561 CFConstantStringTagDecl->startDefinition(); 6562 6563 struct { 6564 QualType Type; 6565 const char *Name; 6566 } Fields[5]; 6567 unsigned Count = 0; 6568 6569 /// Objective-C ABI 6570 /// 6571 /// typedef struct __NSConstantString_tag { 6572 /// const int *isa; 6573 /// int flags; 6574 /// const char *str; 6575 /// long length; 6576 /// } __NSConstantString; 6577 /// 6578 /// Swift ABI (4.1, 4.2) 6579 /// 6580 /// typedef struct __NSConstantString_tag { 6581 /// uintptr_t _cfisa; 6582 /// uintptr_t _swift_rc; 6583 /// _Atomic(uint64_t) _cfinfoa; 6584 /// const char *_ptr; 6585 /// uint32_t _length; 6586 /// } __NSConstantString; 6587 /// 6588 /// Swift ABI (5.0) 6589 /// 6590 /// typedef struct __NSConstantString_tag { 6591 /// uintptr_t _cfisa; 6592 /// uintptr_t _swift_rc; 6593 /// _Atomic(uint64_t) _cfinfoa; 6594 /// const char *_ptr; 6595 /// uintptr_t _length; 6596 /// } __NSConstantString; 6597 6598 const auto CFRuntime = getLangOpts().CFRuntime; 6599 if (static_cast<unsigned>(CFRuntime) < 6600 static_cast<unsigned>(LangOptions::CoreFoundationABI::Swift)) { 6601 Fields[Count++] = { getPointerType(IntTy.withConst()), "isa" }; 6602 Fields[Count++] = { IntTy, "flags" }; 6603 Fields[Count++] = { getPointerType(CharTy.withConst()), "str" }; 6604 Fields[Count++] = { LongTy, "length" }; 6605 } else { 6606 Fields[Count++] = { getUIntPtrType(), "_cfisa" }; 6607 Fields[Count++] = { getUIntPtrType(), "_swift_rc" }; 6608 Fields[Count++] = { getFromTargetType(Target->getUInt64Type()), "_swift_rc" }; 6609 Fields[Count++] = { getPointerType(CharTy.withConst()), "_ptr" }; 6610 if (CFRuntime == LangOptions::CoreFoundationABI::Swift4_1 || 6611 CFRuntime == LangOptions::CoreFoundationABI::Swift4_2) 6612 Fields[Count++] = { IntTy, "_ptr" }; 6613 else 6614 Fields[Count++] = { getUIntPtrType(), "_ptr" }; 6615 } 6616 6617 // Create fields 6618 for (unsigned i = 0; i < Count; ++i) { 6619 FieldDecl *Field = 6620 FieldDecl::Create(*this, CFConstantStringTagDecl, SourceLocation(), 6621 SourceLocation(), &Idents.get(Fields[i].Name), 6622 Fields[i].Type, /*TInfo=*/nullptr, 6623 /*BitWidth=*/nullptr, /*Mutable=*/false, ICIS_NoInit); 6624 Field->setAccess(AS_public); 6625 CFConstantStringTagDecl->addDecl(Field); 6626 } 6627 6628 CFConstantStringTagDecl->completeDefinition(); 6629 // This type is designed to be compatible with NSConstantString, but cannot 6630 // use the same name, since NSConstantString is an interface. 6631 auto tagType = getTagDeclType(CFConstantStringTagDecl); 6632 CFConstantStringTypeDecl = 6633 buildImplicitTypedef(tagType, "__NSConstantString"); 6634 6635 return CFConstantStringTypeDecl; 6636 } 6637 6638 RecordDecl *ASTContext::getCFConstantStringTagDecl() const { 6639 if (!CFConstantStringTagDecl) 6640 getCFConstantStringDecl(); // Build the tag and the typedef. 6641 return CFConstantStringTagDecl; 6642 } 6643 6644 // getCFConstantStringType - Return the type used for constant CFStrings. 6645 QualType ASTContext::getCFConstantStringType() const { 6646 return getTypedefType(getCFConstantStringDecl()); 6647 } 6648 6649 QualType ASTContext::getObjCSuperType() const { 6650 if (ObjCSuperType.isNull()) { 6651 RecordDecl *ObjCSuperTypeDecl = buildImplicitRecord("objc_super"); 6652 getTranslationUnitDecl()->addDecl(ObjCSuperTypeDecl); 6653 ObjCSuperType = getTagDeclType(ObjCSuperTypeDecl); 6654 } 6655 return ObjCSuperType; 6656 } 6657 6658 void ASTContext::setCFConstantStringType(QualType T) { 6659 const auto *TD = T->castAs<TypedefType>(); 6660 CFConstantStringTypeDecl = cast<TypedefDecl>(TD->getDecl()); 6661 const auto *TagType = 6662 CFConstantStringTypeDecl->getUnderlyingType()->castAs<RecordType>(); 6663 CFConstantStringTagDecl = TagType->getDecl(); 6664 } 6665 6666 QualType ASTContext::getBlockDescriptorType() const { 6667 if (BlockDescriptorType) 6668 return getTagDeclType(BlockDescriptorType); 6669 6670 RecordDecl *RD; 6671 // FIXME: Needs the FlagAppleBlock bit. 6672 RD = buildImplicitRecord("__block_descriptor"); 6673 RD->startDefinition(); 6674 6675 QualType FieldTypes[] = { 6676 UnsignedLongTy, 6677 UnsignedLongTy, 6678 }; 6679 6680 static const char *const FieldNames[] = { 6681 "reserved", 6682 "Size" 6683 }; 6684 6685 for (size_t i = 0; i < 2; ++i) { 6686 FieldDecl *Field = FieldDecl::Create( 6687 *this, RD, SourceLocation(), SourceLocation(), 6688 &Idents.get(FieldNames[i]), FieldTypes[i], /*TInfo=*/nullptr, 6689 /*BitWidth=*/nullptr, /*Mutable=*/false, ICIS_NoInit); 6690 Field->setAccess(AS_public); 6691 RD->addDecl(Field); 6692 } 6693 6694 RD->completeDefinition(); 6695 6696 BlockDescriptorType = RD; 6697 6698 return getTagDeclType(BlockDescriptorType); 6699 } 6700 6701 QualType ASTContext::getBlockDescriptorExtendedType() const { 6702 if (BlockDescriptorExtendedType) 6703 return getTagDeclType(BlockDescriptorExtendedType); 6704 6705 RecordDecl *RD; 6706 // FIXME: Needs the FlagAppleBlock bit. 6707 RD = buildImplicitRecord("__block_descriptor_withcopydispose"); 6708 RD->startDefinition(); 6709 6710 QualType FieldTypes[] = { 6711 UnsignedLongTy, 6712 UnsignedLongTy, 6713 getPointerType(VoidPtrTy), 6714 getPointerType(VoidPtrTy) 6715 }; 6716 6717 static const char *const FieldNames[] = { 6718 "reserved", 6719 "Size", 6720 "CopyFuncPtr", 6721 "DestroyFuncPtr" 6722 }; 6723 6724 for (size_t i = 0; i < 4; ++i) { 6725 FieldDecl *Field = FieldDecl::Create( 6726 *this, RD, SourceLocation(), SourceLocation(), 6727 &Idents.get(FieldNames[i]), FieldTypes[i], /*TInfo=*/nullptr, 6728 /*BitWidth=*/nullptr, 6729 /*Mutable=*/false, ICIS_NoInit); 6730 Field->setAccess(AS_public); 6731 RD->addDecl(Field); 6732 } 6733 6734 RD->completeDefinition(); 6735 6736 BlockDescriptorExtendedType = RD; 6737 return getTagDeclType(BlockDescriptorExtendedType); 6738 } 6739 6740 OpenCLTypeKind ASTContext::getOpenCLTypeKind(const Type *T) const { 6741 const auto *BT = dyn_cast<BuiltinType>(T); 6742 6743 if (!BT) { 6744 if (isa<PipeType>(T)) 6745 return OCLTK_Pipe; 6746 6747 return OCLTK_Default; 6748 } 6749 6750 switch (BT->getKind()) { 6751 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \ 6752 case BuiltinType::Id: \ 6753 return OCLTK_Image; 6754 #include "clang/Basic/OpenCLImageTypes.def" 6755 6756 case BuiltinType::OCLClkEvent: 6757 return OCLTK_ClkEvent; 6758 6759 case BuiltinType::OCLEvent: 6760 return OCLTK_Event; 6761 6762 case BuiltinType::OCLQueue: 6763 return OCLTK_Queue; 6764 6765 case BuiltinType::OCLReserveID: 6766 return OCLTK_ReserveID; 6767 6768 case BuiltinType::OCLSampler: 6769 return OCLTK_Sampler; 6770 6771 default: 6772 return OCLTK_Default; 6773 } 6774 } 6775 6776 LangAS ASTContext::getOpenCLTypeAddrSpace(const Type *T) const { 6777 return Target->getOpenCLTypeAddrSpace(getOpenCLTypeKind(T)); 6778 } 6779 6780 /// BlockRequiresCopying - Returns true if byref variable "D" of type "Ty" 6781 /// requires copy/dispose. Note that this must match the logic 6782 /// in buildByrefHelpers. 6783 bool ASTContext::BlockRequiresCopying(QualType Ty, 6784 const VarDecl *D) { 6785 if (const CXXRecordDecl *record = Ty->getAsCXXRecordDecl()) { 6786 const Expr *copyExpr = getBlockVarCopyInit(D).getCopyExpr(); 6787 if (!copyExpr && record->hasTrivialDestructor()) return false; 6788 6789 return true; 6790 } 6791 6792 // The block needs copy/destroy helpers if Ty is non-trivial to destructively 6793 // move or destroy. 6794 if (Ty.isNonTrivialToPrimitiveDestructiveMove() || Ty.isDestructedType()) 6795 return true; 6796 6797 if (!Ty->isObjCRetainableType()) return false; 6798 6799 Qualifiers qs = Ty.getQualifiers(); 6800 6801 // If we have lifetime, that dominates. 6802 if (Qualifiers::ObjCLifetime lifetime = qs.getObjCLifetime()) { 6803 switch (lifetime) { 6804 case Qualifiers::OCL_None: llvm_unreachable("impossible"); 6805 6806 // These are just bits as far as the runtime is concerned. 6807 case Qualifiers::OCL_ExplicitNone: 6808 case Qualifiers::OCL_Autoreleasing: 6809 return false; 6810 6811 // These cases should have been taken care of when checking the type's 6812 // non-triviality. 6813 case Qualifiers::OCL_Weak: 6814 case Qualifiers::OCL_Strong: 6815 llvm_unreachable("impossible"); 6816 } 6817 llvm_unreachable("fell out of lifetime switch!"); 6818 } 6819 return (Ty->isBlockPointerType() || isObjCNSObjectType(Ty) || 6820 Ty->isObjCObjectPointerType()); 6821 } 6822 6823 bool ASTContext::getByrefLifetime(QualType Ty, 6824 Qualifiers::ObjCLifetime &LifeTime, 6825 bool &HasByrefExtendedLayout) const { 6826 if (!getLangOpts().ObjC || 6827 getLangOpts().getGC() != LangOptions::NonGC) 6828 return false; 6829 6830 HasByrefExtendedLayout = false; 6831 if (Ty->isRecordType()) { 6832 HasByrefExtendedLayout = true; 6833 LifeTime = Qualifiers::OCL_None; 6834 } else if ((LifeTime = Ty.getObjCLifetime())) { 6835 // Honor the ARC qualifiers. 6836 } else if (Ty->isObjCObjectPointerType() || Ty->isBlockPointerType()) { 6837 // The MRR rule. 6838 LifeTime = Qualifiers::OCL_ExplicitNone; 6839 } else { 6840 LifeTime = Qualifiers::OCL_None; 6841 } 6842 return true; 6843 } 6844 6845 CanQualType ASTContext::getNSUIntegerType() const { 6846 assert(Target && "Expected target to be initialized"); 6847 const llvm::Triple &T = Target->getTriple(); 6848 // Windows is LLP64 rather than LP64 6849 if (T.isOSWindows() && T.isArch64Bit()) 6850 return UnsignedLongLongTy; 6851 return UnsignedLongTy; 6852 } 6853 6854 CanQualType ASTContext::getNSIntegerType() const { 6855 assert(Target && "Expected target to be initialized"); 6856 const llvm::Triple &T = Target->getTriple(); 6857 // Windows is LLP64 rather than LP64 6858 if (T.isOSWindows() && T.isArch64Bit()) 6859 return LongLongTy; 6860 return LongTy; 6861 } 6862 6863 TypedefDecl *ASTContext::getObjCInstanceTypeDecl() { 6864 if (!ObjCInstanceTypeDecl) 6865 ObjCInstanceTypeDecl = 6866 buildImplicitTypedef(getObjCIdType(), "instancetype"); 6867 return ObjCInstanceTypeDecl; 6868 } 6869 6870 // This returns true if a type has been typedefed to BOOL: 6871 // typedef <type> BOOL; 6872 static bool isTypeTypedefedAsBOOL(QualType T) { 6873 if (const auto *TT = dyn_cast<TypedefType>(T)) 6874 if (IdentifierInfo *II = TT->getDecl()->getIdentifier()) 6875 return II->isStr("BOOL"); 6876 6877 return false; 6878 } 6879 6880 /// getObjCEncodingTypeSize returns size of type for objective-c encoding 6881 /// purpose. 6882 CharUnits ASTContext::getObjCEncodingTypeSize(QualType type) const { 6883 if (!type->isIncompleteArrayType() && type->isIncompleteType()) 6884 return CharUnits::Zero(); 6885 6886 CharUnits sz = getTypeSizeInChars(type); 6887 6888 // Make all integer and enum types at least as large as an int 6889 if (sz.isPositive() && type->isIntegralOrEnumerationType()) 6890 sz = std::max(sz, getTypeSizeInChars(IntTy)); 6891 // Treat arrays as pointers, since that's how they're passed in. 6892 else if (type->isArrayType()) 6893 sz = getTypeSizeInChars(VoidPtrTy); 6894 return sz; 6895 } 6896 6897 bool ASTContext::isMSStaticDataMemberInlineDefinition(const VarDecl *VD) const { 6898 return getTargetInfo().getCXXABI().isMicrosoft() && 6899 VD->isStaticDataMember() && 6900 VD->getType()->isIntegralOrEnumerationType() && 6901 !VD->getFirstDecl()->isOutOfLine() && VD->getFirstDecl()->hasInit(); 6902 } 6903 6904 ASTContext::InlineVariableDefinitionKind 6905 ASTContext::getInlineVariableDefinitionKind(const VarDecl *VD) const { 6906 if (!VD->isInline()) 6907 return InlineVariableDefinitionKind::None; 6908 6909 // In almost all cases, it's a weak definition. 6910 auto *First = VD->getFirstDecl(); 6911 if (First->isInlineSpecified() || !First->isStaticDataMember()) 6912 return InlineVariableDefinitionKind::Weak; 6913 6914 // If there's a file-context declaration in this translation unit, it's a 6915 // non-discardable definition. 6916 for (auto *D : VD->redecls()) 6917 if (D->getLexicalDeclContext()->isFileContext() && 6918 !D->isInlineSpecified() && (D->isConstexpr() || First->isConstexpr())) 6919 return InlineVariableDefinitionKind::Strong; 6920 6921 // If we've not seen one yet, we don't know. 6922 return InlineVariableDefinitionKind::WeakUnknown; 6923 } 6924 6925 static std::string charUnitsToString(const CharUnits &CU) { 6926 return llvm::itostr(CU.getQuantity()); 6927 } 6928 6929 /// getObjCEncodingForBlock - Return the encoded type for this block 6930 /// declaration. 6931 std::string ASTContext::getObjCEncodingForBlock(const BlockExpr *Expr) const { 6932 std::string S; 6933 6934 const BlockDecl *Decl = Expr->getBlockDecl(); 6935 QualType BlockTy = 6936 Expr->getType()->castAs<BlockPointerType>()->getPointeeType(); 6937 QualType BlockReturnTy = BlockTy->castAs<FunctionType>()->getReturnType(); 6938 // Encode result type. 6939 if (getLangOpts().EncodeExtendedBlockSig) 6940 getObjCEncodingForMethodParameter(Decl::OBJC_TQ_None, BlockReturnTy, S, 6941 true /*Extended*/); 6942 else 6943 getObjCEncodingForType(BlockReturnTy, S); 6944 // Compute size of all parameters. 6945 // Start with computing size of a pointer in number of bytes. 6946 // FIXME: There might(should) be a better way of doing this computation! 6947 CharUnits PtrSize = getTypeSizeInChars(VoidPtrTy); 6948 CharUnits ParmOffset = PtrSize; 6949 for (auto PI : Decl->parameters()) { 6950 QualType PType = PI->getType(); 6951 CharUnits sz = getObjCEncodingTypeSize(PType); 6952 if (sz.isZero()) 6953 continue; 6954 assert(sz.isPositive() && "BlockExpr - Incomplete param type"); 6955 ParmOffset += sz; 6956 } 6957 // Size of the argument frame 6958 S += charUnitsToString(ParmOffset); 6959 // Block pointer and offset. 6960 S += "@?0"; 6961 6962 // Argument types. 6963 ParmOffset = PtrSize; 6964 for (auto PVDecl : Decl->parameters()) { 6965 QualType PType = PVDecl->getOriginalType(); 6966 if (const auto *AT = 6967 dyn_cast<ArrayType>(PType->getCanonicalTypeInternal())) { 6968 // Use array's original type only if it has known number of 6969 // elements. 6970 if (!isa<ConstantArrayType>(AT)) 6971 PType = PVDecl->getType(); 6972 } else if (PType->isFunctionType()) 6973 PType = PVDecl->getType(); 6974 if (getLangOpts().EncodeExtendedBlockSig) 6975 getObjCEncodingForMethodParameter(Decl::OBJC_TQ_None, PType, 6976 S, true /*Extended*/); 6977 else 6978 getObjCEncodingForType(PType, S); 6979 S += charUnitsToString(ParmOffset); 6980 ParmOffset += getObjCEncodingTypeSize(PType); 6981 } 6982 6983 return S; 6984 } 6985 6986 std::string 6987 ASTContext::getObjCEncodingForFunctionDecl(const FunctionDecl *Decl) const { 6988 std::string S; 6989 // Encode result type. 6990 getObjCEncodingForType(Decl->getReturnType(), S); 6991 CharUnits ParmOffset; 6992 // Compute size of all parameters. 6993 for (auto PI : Decl->parameters()) { 6994 QualType PType = PI->getType(); 6995 CharUnits sz = getObjCEncodingTypeSize(PType); 6996 if (sz.isZero()) 6997 continue; 6998 6999 assert(sz.isPositive() && 7000 "getObjCEncodingForFunctionDecl - Incomplete param type"); 7001 ParmOffset += sz; 7002 } 7003 S += charUnitsToString(ParmOffset); 7004 ParmOffset = CharUnits::Zero(); 7005 7006 // Argument types. 7007 for (auto PVDecl : Decl->parameters()) { 7008 QualType PType = PVDecl->getOriginalType(); 7009 if (const auto *AT = 7010 dyn_cast<ArrayType>(PType->getCanonicalTypeInternal())) { 7011 // Use array's original type only if it has known number of 7012 // elements. 7013 if (!isa<ConstantArrayType>(AT)) 7014 PType = PVDecl->getType(); 7015 } else if (PType->isFunctionType()) 7016 PType = PVDecl->getType(); 7017 getObjCEncodingForType(PType, S); 7018 S += charUnitsToString(ParmOffset); 7019 ParmOffset += getObjCEncodingTypeSize(PType); 7020 } 7021 7022 return S; 7023 } 7024 7025 /// getObjCEncodingForMethodParameter - Return the encoded type for a single 7026 /// method parameter or return type. If Extended, include class names and 7027 /// block object types. 7028 void ASTContext::getObjCEncodingForMethodParameter(Decl::ObjCDeclQualifier QT, 7029 QualType T, std::string& S, 7030 bool Extended) const { 7031 // Encode type qualifer, 'in', 'inout', etc. for the parameter. 7032 getObjCEncodingForTypeQualifier(QT, S); 7033 // Encode parameter type. 7034 ObjCEncOptions Options = ObjCEncOptions() 7035 .setExpandPointedToStructures() 7036 .setExpandStructures() 7037 .setIsOutermostType(); 7038 if (Extended) 7039 Options.setEncodeBlockParameters().setEncodeClassNames(); 7040 getObjCEncodingForTypeImpl(T, S, Options, /*Field=*/nullptr); 7041 } 7042 7043 /// getObjCEncodingForMethodDecl - Return the encoded type for this method 7044 /// declaration. 7045 std::string ASTContext::getObjCEncodingForMethodDecl(const ObjCMethodDecl *Decl, 7046 bool Extended) const { 7047 // FIXME: This is not very efficient. 7048 // Encode return type. 7049 std::string S; 7050 getObjCEncodingForMethodParameter(Decl->getObjCDeclQualifier(), 7051 Decl->getReturnType(), S, Extended); 7052 // Compute size of all parameters. 7053 // Start with computing size of a pointer in number of bytes. 7054 // FIXME: There might(should) be a better way of doing this computation! 7055 CharUnits PtrSize = getTypeSizeInChars(VoidPtrTy); 7056 // The first two arguments (self and _cmd) are pointers; account for 7057 // their size. 7058 CharUnits ParmOffset = 2 * PtrSize; 7059 for (ObjCMethodDecl::param_const_iterator PI = Decl->param_begin(), 7060 E = Decl->sel_param_end(); PI != E; ++PI) { 7061 QualType PType = (*PI)->getType(); 7062 CharUnits sz = getObjCEncodingTypeSize(PType); 7063 if (sz.isZero()) 7064 continue; 7065 7066 assert(sz.isPositive() && 7067 "getObjCEncodingForMethodDecl - Incomplete param type"); 7068 ParmOffset += sz; 7069 } 7070 S += charUnitsToString(ParmOffset); 7071 S += "@0:"; 7072 S += charUnitsToString(PtrSize); 7073 7074 // Argument types. 7075 ParmOffset = 2 * PtrSize; 7076 for (ObjCMethodDecl::param_const_iterator PI = Decl->param_begin(), 7077 E = Decl->sel_param_end(); PI != E; ++PI) { 7078 const ParmVarDecl *PVDecl = *PI; 7079 QualType PType = PVDecl->getOriginalType(); 7080 if (const auto *AT = 7081 dyn_cast<ArrayType>(PType->getCanonicalTypeInternal())) { 7082 // Use array's original type only if it has known number of 7083 // elements. 7084 if (!isa<ConstantArrayType>(AT)) 7085 PType = PVDecl->getType(); 7086 } else if (PType->isFunctionType()) 7087 PType = PVDecl->getType(); 7088 getObjCEncodingForMethodParameter(PVDecl->getObjCDeclQualifier(), 7089 PType, S, Extended); 7090 S += charUnitsToString(ParmOffset); 7091 ParmOffset += getObjCEncodingTypeSize(PType); 7092 } 7093 7094 return S; 7095 } 7096 7097 ObjCPropertyImplDecl * 7098 ASTContext::getObjCPropertyImplDeclForPropertyDecl( 7099 const ObjCPropertyDecl *PD, 7100 const Decl *Container) const { 7101 if (!Container) 7102 return nullptr; 7103 if (const auto *CID = dyn_cast<ObjCCategoryImplDecl>(Container)) { 7104 for (auto *PID : CID->property_impls()) 7105 if (PID->getPropertyDecl() == PD) 7106 return PID; 7107 } else { 7108 const auto *OID = cast<ObjCImplementationDecl>(Container); 7109 for (auto *PID : OID->property_impls()) 7110 if (PID->getPropertyDecl() == PD) 7111 return PID; 7112 } 7113 return nullptr; 7114 } 7115 7116 /// getObjCEncodingForPropertyDecl - Return the encoded type for this 7117 /// property declaration. If non-NULL, Container must be either an 7118 /// ObjCCategoryImplDecl or ObjCImplementationDecl; it should only be 7119 /// NULL when getting encodings for protocol properties. 7120 /// Property attributes are stored as a comma-delimited C string. The simple 7121 /// attributes readonly and bycopy are encoded as single characters. The 7122 /// parametrized attributes, getter=name, setter=name, and ivar=name, are 7123 /// encoded as single characters, followed by an identifier. Property types 7124 /// are also encoded as a parametrized attribute. The characters used to encode 7125 /// these attributes are defined by the following enumeration: 7126 /// @code 7127 /// enum PropertyAttributes { 7128 /// kPropertyReadOnly = 'R', // property is read-only. 7129 /// kPropertyBycopy = 'C', // property is a copy of the value last assigned 7130 /// kPropertyByref = '&', // property is a reference to the value last assigned 7131 /// kPropertyDynamic = 'D', // property is dynamic 7132 /// kPropertyGetter = 'G', // followed by getter selector name 7133 /// kPropertySetter = 'S', // followed by setter selector name 7134 /// kPropertyInstanceVariable = 'V' // followed by instance variable name 7135 /// kPropertyType = 'T' // followed by old-style type encoding. 7136 /// kPropertyWeak = 'W' // 'weak' property 7137 /// kPropertyStrong = 'P' // property GC'able 7138 /// kPropertyNonAtomic = 'N' // property non-atomic 7139 /// }; 7140 /// @endcode 7141 std::string 7142 ASTContext::getObjCEncodingForPropertyDecl(const ObjCPropertyDecl *PD, 7143 const Decl *Container) const { 7144 // Collect information from the property implementation decl(s). 7145 bool Dynamic = false; 7146 ObjCPropertyImplDecl *SynthesizePID = nullptr; 7147 7148 if (ObjCPropertyImplDecl *PropertyImpDecl = 7149 getObjCPropertyImplDeclForPropertyDecl(PD, Container)) { 7150 if (PropertyImpDecl->getPropertyImplementation() == ObjCPropertyImplDecl::Dynamic) 7151 Dynamic = true; 7152 else 7153 SynthesizePID = PropertyImpDecl; 7154 } 7155 7156 // FIXME: This is not very efficient. 7157 std::string S = "T"; 7158 7159 // Encode result type. 7160 // GCC has some special rules regarding encoding of properties which 7161 // closely resembles encoding of ivars. 7162 getObjCEncodingForPropertyType(PD->getType(), S); 7163 7164 if (PD->isReadOnly()) { 7165 S += ",R"; 7166 if (PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_copy) 7167 S += ",C"; 7168 if (PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_retain) 7169 S += ",&"; 7170 if (PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_weak) 7171 S += ",W"; 7172 } else { 7173 switch (PD->getSetterKind()) { 7174 case ObjCPropertyDecl::Assign: break; 7175 case ObjCPropertyDecl::Copy: S += ",C"; break; 7176 case ObjCPropertyDecl::Retain: S += ",&"; break; 7177 case ObjCPropertyDecl::Weak: S += ",W"; break; 7178 } 7179 } 7180 7181 // It really isn't clear at all what this means, since properties 7182 // are "dynamic by default". 7183 if (Dynamic) 7184 S += ",D"; 7185 7186 if (PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_nonatomic) 7187 S += ",N"; 7188 7189 if (PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_getter) { 7190 S += ",G"; 7191 S += PD->getGetterName().getAsString(); 7192 } 7193 7194 if (PD->getPropertyAttributes() & ObjCPropertyAttribute::kind_setter) { 7195 S += ",S"; 7196 S += PD->getSetterName().getAsString(); 7197 } 7198 7199 if (SynthesizePID) { 7200 const ObjCIvarDecl *OID = SynthesizePID->getPropertyIvarDecl(); 7201 S += ",V"; 7202 S += OID->getNameAsString(); 7203 } 7204 7205 // FIXME: OBJCGC: weak & strong 7206 return S; 7207 } 7208 7209 /// getLegacyIntegralTypeEncoding - 7210 /// Another legacy compatibility encoding: 32-bit longs are encoded as 7211 /// 'l' or 'L' , but not always. For typedefs, we need to use 7212 /// 'i' or 'I' instead if encoding a struct field, or a pointer! 7213 void ASTContext::getLegacyIntegralTypeEncoding (QualType &PointeeTy) const { 7214 if (isa<TypedefType>(PointeeTy.getTypePtr())) { 7215 if (const auto *BT = PointeeTy->getAs<BuiltinType>()) { 7216 if (BT->getKind() == BuiltinType::ULong && getIntWidth(PointeeTy) == 32) 7217 PointeeTy = UnsignedIntTy; 7218 else 7219 if (BT->getKind() == BuiltinType::Long && getIntWidth(PointeeTy) == 32) 7220 PointeeTy = IntTy; 7221 } 7222 } 7223 } 7224 7225 void ASTContext::getObjCEncodingForType(QualType T, std::string& S, 7226 const FieldDecl *Field, 7227 QualType *NotEncodedT) const { 7228 // We follow the behavior of gcc, expanding structures which are 7229 // directly pointed to, and expanding embedded structures. Note that 7230 // these rules are sufficient to prevent recursive encoding of the 7231 // same type. 7232 getObjCEncodingForTypeImpl(T, S, 7233 ObjCEncOptions() 7234 .setExpandPointedToStructures() 7235 .setExpandStructures() 7236 .setIsOutermostType(), 7237 Field, NotEncodedT); 7238 } 7239 7240 void ASTContext::getObjCEncodingForPropertyType(QualType T, 7241 std::string& S) const { 7242 // Encode result type. 7243 // GCC has some special rules regarding encoding of properties which 7244 // closely resembles encoding of ivars. 7245 getObjCEncodingForTypeImpl(T, S, 7246 ObjCEncOptions() 7247 .setExpandPointedToStructures() 7248 .setExpandStructures() 7249 .setIsOutermostType() 7250 .setEncodingProperty(), 7251 /*Field=*/nullptr); 7252 } 7253 7254 static char getObjCEncodingForPrimitiveType(const ASTContext *C, 7255 const BuiltinType *BT) { 7256 BuiltinType::Kind kind = BT->getKind(); 7257 switch (kind) { 7258 case BuiltinType::Void: return 'v'; 7259 case BuiltinType::Bool: return 'B'; 7260 case BuiltinType::Char8: 7261 case BuiltinType::Char_U: 7262 case BuiltinType::UChar: return 'C'; 7263 case BuiltinType::Char16: 7264 case BuiltinType::UShort: return 'S'; 7265 case BuiltinType::Char32: 7266 case BuiltinType::UInt: return 'I'; 7267 case BuiltinType::ULong: 7268 return C->getTargetInfo().getLongWidth() == 32 ? 'L' : 'Q'; 7269 case BuiltinType::UInt128: return 'T'; 7270 case BuiltinType::ULongLong: return 'Q'; 7271 case BuiltinType::Char_S: 7272 case BuiltinType::SChar: return 'c'; 7273 case BuiltinType::Short: return 's'; 7274 case BuiltinType::WChar_S: 7275 case BuiltinType::WChar_U: 7276 case BuiltinType::Int: return 'i'; 7277 case BuiltinType::Long: 7278 return C->getTargetInfo().getLongWidth() == 32 ? 'l' : 'q'; 7279 case BuiltinType::LongLong: return 'q'; 7280 case BuiltinType::Int128: return 't'; 7281 case BuiltinType::Float: return 'f'; 7282 case BuiltinType::Double: return 'd'; 7283 case BuiltinType::LongDouble: return 'D'; 7284 case BuiltinType::NullPtr: return '*'; // like char* 7285 7286 case BuiltinType::BFloat16: 7287 case BuiltinType::Float16: 7288 case BuiltinType::Float128: 7289 case BuiltinType::Half: 7290 case BuiltinType::ShortAccum: 7291 case BuiltinType::Accum: 7292 case BuiltinType::LongAccum: 7293 case BuiltinType::UShortAccum: 7294 case BuiltinType::UAccum: 7295 case BuiltinType::ULongAccum: 7296 case BuiltinType::ShortFract: 7297 case BuiltinType::Fract: 7298 case BuiltinType::LongFract: 7299 case BuiltinType::UShortFract: 7300 case BuiltinType::UFract: 7301 case BuiltinType::ULongFract: 7302 case BuiltinType::SatShortAccum: 7303 case BuiltinType::SatAccum: 7304 case BuiltinType::SatLongAccum: 7305 case BuiltinType::SatUShortAccum: 7306 case BuiltinType::SatUAccum: 7307 case BuiltinType::SatULongAccum: 7308 case BuiltinType::SatShortFract: 7309 case BuiltinType::SatFract: 7310 case BuiltinType::SatLongFract: 7311 case BuiltinType::SatUShortFract: 7312 case BuiltinType::SatUFract: 7313 case BuiltinType::SatULongFract: 7314 // FIXME: potentially need @encodes for these! 7315 return ' '; 7316 7317 #define SVE_TYPE(Name, Id, SingletonId) \ 7318 case BuiltinType::Id: 7319 #include "clang/Basic/AArch64SVEACLETypes.def" 7320 #define RVV_TYPE(Name, Id, SingletonId) case BuiltinType::Id: 7321 #include "clang/Basic/RISCVVTypes.def" 7322 { 7323 DiagnosticsEngine &Diags = C->getDiagnostics(); 7324 unsigned DiagID = Diags.getCustomDiagID(DiagnosticsEngine::Error, 7325 "cannot yet @encode type %0"); 7326 Diags.Report(DiagID) << BT->getName(C->getPrintingPolicy()); 7327 return ' '; 7328 } 7329 7330 case BuiltinType::ObjCId: 7331 case BuiltinType::ObjCClass: 7332 case BuiltinType::ObjCSel: 7333 llvm_unreachable("@encoding ObjC primitive type"); 7334 7335 // OpenCL and placeholder types don't need @encodings. 7336 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \ 7337 case BuiltinType::Id: 7338 #include "clang/Basic/OpenCLImageTypes.def" 7339 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \ 7340 case BuiltinType::Id: 7341 #include "clang/Basic/OpenCLExtensionTypes.def" 7342 case BuiltinType::OCLEvent: 7343 case BuiltinType::OCLClkEvent: 7344 case BuiltinType::OCLQueue: 7345 case BuiltinType::OCLReserveID: 7346 case BuiltinType::OCLSampler: 7347 case BuiltinType::Dependent: 7348 #define PPC_VECTOR_TYPE(Name, Id, Size) \ 7349 case BuiltinType::Id: 7350 #include "clang/Basic/PPCTypes.def" 7351 #define BUILTIN_TYPE(KIND, ID) 7352 #define PLACEHOLDER_TYPE(KIND, ID) \ 7353 case BuiltinType::KIND: 7354 #include "clang/AST/BuiltinTypes.def" 7355 llvm_unreachable("invalid builtin type for @encode"); 7356 } 7357 llvm_unreachable("invalid BuiltinType::Kind value"); 7358 } 7359 7360 static char ObjCEncodingForEnumType(const ASTContext *C, const EnumType *ET) { 7361 EnumDecl *Enum = ET->getDecl(); 7362 7363 // The encoding of an non-fixed enum type is always 'i', regardless of size. 7364 if (!Enum->isFixed()) 7365 return 'i'; 7366 7367 // The encoding of a fixed enum type matches its fixed underlying type. 7368 const auto *BT = Enum->getIntegerType()->castAs<BuiltinType>(); 7369 return getObjCEncodingForPrimitiveType(C, BT); 7370 } 7371 7372 static void EncodeBitField(const ASTContext *Ctx, std::string& S, 7373 QualType T, const FieldDecl *FD) { 7374 assert(FD->isBitField() && "not a bitfield - getObjCEncodingForTypeImpl"); 7375 S += 'b'; 7376 // The NeXT runtime encodes bit fields as b followed by the number of bits. 7377 // The GNU runtime requires more information; bitfields are encoded as b, 7378 // then the offset (in bits) of the first element, then the type of the 7379 // bitfield, then the size in bits. For example, in this structure: 7380 // 7381 // struct 7382 // { 7383 // int integer; 7384 // int flags:2; 7385 // }; 7386 // On a 32-bit system, the encoding for flags would be b2 for the NeXT 7387 // runtime, but b32i2 for the GNU runtime. The reason for this extra 7388 // information is not especially sensible, but we're stuck with it for 7389 // compatibility with GCC, although providing it breaks anything that 7390 // actually uses runtime introspection and wants to work on both runtimes... 7391 if (Ctx->getLangOpts().ObjCRuntime.isGNUFamily()) { 7392 uint64_t Offset; 7393 7394 if (const auto *IVD = dyn_cast<ObjCIvarDecl>(FD)) { 7395 Offset = Ctx->lookupFieldBitOffset(IVD->getContainingInterface(), nullptr, 7396 IVD); 7397 } else { 7398 const RecordDecl *RD = FD->getParent(); 7399 const ASTRecordLayout &RL = Ctx->getASTRecordLayout(RD); 7400 Offset = RL.getFieldOffset(FD->getFieldIndex()); 7401 } 7402 7403 S += llvm::utostr(Offset); 7404 7405 if (const auto *ET = T->getAs<EnumType>()) 7406 S += ObjCEncodingForEnumType(Ctx, ET); 7407 else { 7408 const auto *BT = T->castAs<BuiltinType>(); 7409 S += getObjCEncodingForPrimitiveType(Ctx, BT); 7410 } 7411 } 7412 S += llvm::utostr(FD->getBitWidthValue(*Ctx)); 7413 } 7414 7415 // Helper function for determining whether the encoded type string would include 7416 // a template specialization type. 7417 static bool hasTemplateSpecializationInEncodedString(const Type *T, 7418 bool VisitBasesAndFields) { 7419 T = T->getBaseElementTypeUnsafe(); 7420 7421 if (auto *PT = T->getAs<PointerType>()) 7422 return hasTemplateSpecializationInEncodedString( 7423 PT->getPointeeType().getTypePtr(), false); 7424 7425 auto *CXXRD = T->getAsCXXRecordDecl(); 7426 7427 if (!CXXRD) 7428 return false; 7429 7430 if (isa<ClassTemplateSpecializationDecl>(CXXRD)) 7431 return true; 7432 7433 if (!CXXRD->hasDefinition() || !VisitBasesAndFields) 7434 return false; 7435 7436 for (auto B : CXXRD->bases()) 7437 if (hasTemplateSpecializationInEncodedString(B.getType().getTypePtr(), 7438 true)) 7439 return true; 7440 7441 for (auto *FD : CXXRD->fields()) 7442 if (hasTemplateSpecializationInEncodedString(FD->getType().getTypePtr(), 7443 true)) 7444 return true; 7445 7446 return false; 7447 } 7448 7449 // FIXME: Use SmallString for accumulating string. 7450 void ASTContext::getObjCEncodingForTypeImpl(QualType T, std::string &S, 7451 const ObjCEncOptions Options, 7452 const FieldDecl *FD, 7453 QualType *NotEncodedT) const { 7454 CanQualType CT = getCanonicalType(T); 7455 switch (CT->getTypeClass()) { 7456 case Type::Builtin: 7457 case Type::Enum: 7458 if (FD && FD->isBitField()) 7459 return EncodeBitField(this, S, T, FD); 7460 if (const auto *BT = dyn_cast<BuiltinType>(CT)) 7461 S += getObjCEncodingForPrimitiveType(this, BT); 7462 else 7463 S += ObjCEncodingForEnumType(this, cast<EnumType>(CT)); 7464 return; 7465 7466 case Type::Complex: 7467 S += 'j'; 7468 getObjCEncodingForTypeImpl(T->castAs<ComplexType>()->getElementType(), S, 7469 ObjCEncOptions(), 7470 /*Field=*/nullptr); 7471 return; 7472 7473 case Type::Atomic: 7474 S += 'A'; 7475 getObjCEncodingForTypeImpl(T->castAs<AtomicType>()->getValueType(), S, 7476 ObjCEncOptions(), 7477 /*Field=*/nullptr); 7478 return; 7479 7480 // encoding for pointer or reference types. 7481 case Type::Pointer: 7482 case Type::LValueReference: 7483 case Type::RValueReference: { 7484 QualType PointeeTy; 7485 if (isa<PointerType>(CT)) { 7486 const auto *PT = T->castAs<PointerType>(); 7487 if (PT->isObjCSelType()) { 7488 S += ':'; 7489 return; 7490 } 7491 PointeeTy = PT->getPointeeType(); 7492 } else { 7493 PointeeTy = T->castAs<ReferenceType>()->getPointeeType(); 7494 } 7495 7496 bool isReadOnly = false; 7497 // For historical/compatibility reasons, the read-only qualifier of the 7498 // pointee gets emitted _before_ the '^'. The read-only qualifier of 7499 // the pointer itself gets ignored, _unless_ we are looking at a typedef! 7500 // Also, do not emit the 'r' for anything but the outermost type! 7501 if (isa<TypedefType>(T.getTypePtr())) { 7502 if (Options.IsOutermostType() && T.isConstQualified()) { 7503 isReadOnly = true; 7504 S += 'r'; 7505 } 7506 } else if (Options.IsOutermostType()) { 7507 QualType P = PointeeTy; 7508 while (auto PT = P->getAs<PointerType>()) 7509 P = PT->getPointeeType(); 7510 if (P.isConstQualified()) { 7511 isReadOnly = true; 7512 S += 'r'; 7513 } 7514 } 7515 if (isReadOnly) { 7516 // Another legacy compatibility encoding. Some ObjC qualifier and type 7517 // combinations need to be rearranged. 7518 // Rewrite "in const" from "nr" to "rn" 7519 if (StringRef(S).endswith("nr")) 7520 S.replace(S.end()-2, S.end(), "rn"); 7521 } 7522 7523 if (PointeeTy->isCharType()) { 7524 // char pointer types should be encoded as '*' unless it is a 7525 // type that has been typedef'd to 'BOOL'. 7526 if (!isTypeTypedefedAsBOOL(PointeeTy)) { 7527 S += '*'; 7528 return; 7529 } 7530 } else if (const auto *RTy = PointeeTy->getAs<RecordType>()) { 7531 // GCC binary compat: Need to convert "struct objc_class *" to "#". 7532 if (RTy->getDecl()->getIdentifier() == &Idents.get("objc_class")) { 7533 S += '#'; 7534 return; 7535 } 7536 // GCC binary compat: Need to convert "struct objc_object *" to "@". 7537 if (RTy->getDecl()->getIdentifier() == &Idents.get("objc_object")) { 7538 S += '@'; 7539 return; 7540 } 7541 // If the encoded string for the class includes template names, just emit 7542 // "^v" for pointers to the class. 7543 if (getLangOpts().CPlusPlus && 7544 (!getLangOpts().EncodeCXXClassTemplateSpec && 7545 hasTemplateSpecializationInEncodedString( 7546 RTy, Options.ExpandPointedToStructures()))) { 7547 S += "^v"; 7548 return; 7549 } 7550 // fall through... 7551 } 7552 S += '^'; 7553 getLegacyIntegralTypeEncoding(PointeeTy); 7554 7555 ObjCEncOptions NewOptions; 7556 if (Options.ExpandPointedToStructures()) 7557 NewOptions.setExpandStructures(); 7558 getObjCEncodingForTypeImpl(PointeeTy, S, NewOptions, 7559 /*Field=*/nullptr, NotEncodedT); 7560 return; 7561 } 7562 7563 case Type::ConstantArray: 7564 case Type::IncompleteArray: 7565 case Type::VariableArray: { 7566 const auto *AT = cast<ArrayType>(CT); 7567 7568 if (isa<IncompleteArrayType>(AT) && !Options.IsStructField()) { 7569 // Incomplete arrays are encoded as a pointer to the array element. 7570 S += '^'; 7571 7572 getObjCEncodingForTypeImpl( 7573 AT->getElementType(), S, 7574 Options.keepingOnly(ObjCEncOptions().setExpandStructures()), FD); 7575 } else { 7576 S += '['; 7577 7578 if (const auto *CAT = dyn_cast<ConstantArrayType>(AT)) 7579 S += llvm::utostr(CAT->getSize().getZExtValue()); 7580 else { 7581 //Variable length arrays are encoded as a regular array with 0 elements. 7582 assert((isa<VariableArrayType>(AT) || isa<IncompleteArrayType>(AT)) && 7583 "Unknown array type!"); 7584 S += '0'; 7585 } 7586 7587 getObjCEncodingForTypeImpl( 7588 AT->getElementType(), S, 7589 Options.keepingOnly(ObjCEncOptions().setExpandStructures()), FD, 7590 NotEncodedT); 7591 S += ']'; 7592 } 7593 return; 7594 } 7595 7596 case Type::FunctionNoProto: 7597 case Type::FunctionProto: 7598 S += '?'; 7599 return; 7600 7601 case Type::Record: { 7602 RecordDecl *RDecl = cast<RecordType>(CT)->getDecl(); 7603 S += RDecl->isUnion() ? '(' : '{'; 7604 // Anonymous structures print as '?' 7605 if (const IdentifierInfo *II = RDecl->getIdentifier()) { 7606 S += II->getName(); 7607 if (const auto *Spec = dyn_cast<ClassTemplateSpecializationDecl>(RDecl)) { 7608 const TemplateArgumentList &TemplateArgs = Spec->getTemplateArgs(); 7609 llvm::raw_string_ostream OS(S); 7610 printTemplateArgumentList(OS, TemplateArgs.asArray(), 7611 getPrintingPolicy()); 7612 } 7613 } else { 7614 S += '?'; 7615 } 7616 if (Options.ExpandStructures()) { 7617 S += '='; 7618 if (!RDecl->isUnion()) { 7619 getObjCEncodingForStructureImpl(RDecl, S, FD, true, NotEncodedT); 7620 } else { 7621 for (const auto *Field : RDecl->fields()) { 7622 if (FD) { 7623 S += '"'; 7624 S += Field->getNameAsString(); 7625 S += '"'; 7626 } 7627 7628 // Special case bit-fields. 7629 if (Field->isBitField()) { 7630 getObjCEncodingForTypeImpl(Field->getType(), S, 7631 ObjCEncOptions().setExpandStructures(), 7632 Field); 7633 } else { 7634 QualType qt = Field->getType(); 7635 getLegacyIntegralTypeEncoding(qt); 7636 getObjCEncodingForTypeImpl( 7637 qt, S, 7638 ObjCEncOptions().setExpandStructures().setIsStructField(), FD, 7639 NotEncodedT); 7640 } 7641 } 7642 } 7643 } 7644 S += RDecl->isUnion() ? ')' : '}'; 7645 return; 7646 } 7647 7648 case Type::BlockPointer: { 7649 const auto *BT = T->castAs<BlockPointerType>(); 7650 S += "@?"; // Unlike a pointer-to-function, which is "^?". 7651 if (Options.EncodeBlockParameters()) { 7652 const auto *FT = BT->getPointeeType()->castAs<FunctionType>(); 7653 7654 S += '<'; 7655 // Block return type 7656 getObjCEncodingForTypeImpl(FT->getReturnType(), S, 7657 Options.forComponentType(), FD, NotEncodedT); 7658 // Block self 7659 S += "@?"; 7660 // Block parameters 7661 if (const auto *FPT = dyn_cast<FunctionProtoType>(FT)) { 7662 for (const auto &I : FPT->param_types()) 7663 getObjCEncodingForTypeImpl(I, S, Options.forComponentType(), FD, 7664 NotEncodedT); 7665 } 7666 S += '>'; 7667 } 7668 return; 7669 } 7670 7671 case Type::ObjCObject: { 7672 // hack to match legacy encoding of *id and *Class 7673 QualType Ty = getObjCObjectPointerType(CT); 7674 if (Ty->isObjCIdType()) { 7675 S += "{objc_object=}"; 7676 return; 7677 } 7678 else if (Ty->isObjCClassType()) { 7679 S += "{objc_class=}"; 7680 return; 7681 } 7682 // TODO: Double check to make sure this intentionally falls through. 7683 LLVM_FALLTHROUGH; 7684 } 7685 7686 case Type::ObjCInterface: { 7687 // Ignore protocol qualifiers when mangling at this level. 7688 // @encode(class_name) 7689 ObjCInterfaceDecl *OI = T->castAs<ObjCObjectType>()->getInterface(); 7690 S += '{'; 7691 S += OI->getObjCRuntimeNameAsString(); 7692 if (Options.ExpandStructures()) { 7693 S += '='; 7694 SmallVector<const ObjCIvarDecl*, 32> Ivars; 7695 DeepCollectObjCIvars(OI, true, Ivars); 7696 for (unsigned i = 0, e = Ivars.size(); i != e; ++i) { 7697 const FieldDecl *Field = Ivars[i]; 7698 if (Field->isBitField()) 7699 getObjCEncodingForTypeImpl(Field->getType(), S, 7700 ObjCEncOptions().setExpandStructures(), 7701 Field); 7702 else 7703 getObjCEncodingForTypeImpl(Field->getType(), S, 7704 ObjCEncOptions().setExpandStructures(), FD, 7705 NotEncodedT); 7706 } 7707 } 7708 S += '}'; 7709 return; 7710 } 7711 7712 case Type::ObjCObjectPointer: { 7713 const auto *OPT = T->castAs<ObjCObjectPointerType>(); 7714 if (OPT->isObjCIdType()) { 7715 S += '@'; 7716 return; 7717 } 7718 7719 if (OPT->isObjCClassType() || OPT->isObjCQualifiedClassType()) { 7720 // FIXME: Consider if we need to output qualifiers for 'Class<p>'. 7721 // Since this is a binary compatibility issue, need to consult with 7722 // runtime folks. Fortunately, this is a *very* obscure construct. 7723 S += '#'; 7724 return; 7725 } 7726 7727 if (OPT->isObjCQualifiedIdType()) { 7728 getObjCEncodingForTypeImpl( 7729 getObjCIdType(), S, 7730 Options.keepingOnly(ObjCEncOptions() 7731 .setExpandPointedToStructures() 7732 .setExpandStructures()), 7733 FD); 7734 if (FD || Options.EncodingProperty() || Options.EncodeClassNames()) { 7735 // Note that we do extended encoding of protocol qualifer list 7736 // Only when doing ivar or property encoding. 7737 S += '"'; 7738 for (const auto *I : OPT->quals()) { 7739 S += '<'; 7740 S += I->getObjCRuntimeNameAsString(); 7741 S += '>'; 7742 } 7743 S += '"'; 7744 } 7745 return; 7746 } 7747 7748 S += '@'; 7749 if (OPT->getInterfaceDecl() && 7750 (FD || Options.EncodingProperty() || Options.EncodeClassNames())) { 7751 S += '"'; 7752 S += OPT->getInterfaceDecl()->getObjCRuntimeNameAsString(); 7753 for (const auto *I : OPT->quals()) { 7754 S += '<'; 7755 S += I->getObjCRuntimeNameAsString(); 7756 S += '>'; 7757 } 7758 S += '"'; 7759 } 7760 return; 7761 } 7762 7763 // gcc just blithely ignores member pointers. 7764 // FIXME: we should do better than that. 'M' is available. 7765 case Type::MemberPointer: 7766 // This matches gcc's encoding, even though technically it is insufficient. 7767 //FIXME. We should do a better job than gcc. 7768 case Type::Vector: 7769 case Type::ExtVector: 7770 // Until we have a coherent encoding of these three types, issue warning. 7771 if (NotEncodedT) 7772 *NotEncodedT = T; 7773 return; 7774 7775 case Type::ConstantMatrix: 7776 if (NotEncodedT) 7777 *NotEncodedT = T; 7778 return; 7779 7780 // We could see an undeduced auto type here during error recovery. 7781 // Just ignore it. 7782 case Type::Auto: 7783 case Type::DeducedTemplateSpecialization: 7784 return; 7785 7786 case Type::Pipe: 7787 case Type::ExtInt: 7788 #define ABSTRACT_TYPE(KIND, BASE) 7789 #define TYPE(KIND, BASE) 7790 #define DEPENDENT_TYPE(KIND, BASE) \ 7791 case Type::KIND: 7792 #define NON_CANONICAL_TYPE(KIND, BASE) \ 7793 case Type::KIND: 7794 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(KIND, BASE) \ 7795 case Type::KIND: 7796 #include "clang/AST/TypeNodes.inc" 7797 llvm_unreachable("@encode for dependent type!"); 7798 } 7799 llvm_unreachable("bad type kind!"); 7800 } 7801 7802 void ASTContext::getObjCEncodingForStructureImpl(RecordDecl *RDecl, 7803 std::string &S, 7804 const FieldDecl *FD, 7805 bool includeVBases, 7806 QualType *NotEncodedT) const { 7807 assert(RDecl && "Expected non-null RecordDecl"); 7808 assert(!RDecl->isUnion() && "Should not be called for unions"); 7809 if (!RDecl->getDefinition() || RDecl->getDefinition()->isInvalidDecl()) 7810 return; 7811 7812 const auto *CXXRec = dyn_cast<CXXRecordDecl>(RDecl); 7813 std::multimap<uint64_t, NamedDecl *> FieldOrBaseOffsets; 7814 const ASTRecordLayout &layout = getASTRecordLayout(RDecl); 7815 7816 if (CXXRec) { 7817 for (const auto &BI : CXXRec->bases()) { 7818 if (!BI.isVirtual()) { 7819 CXXRecordDecl *base = BI.getType()->getAsCXXRecordDecl(); 7820 if (base->isEmpty()) 7821 continue; 7822 uint64_t offs = toBits(layout.getBaseClassOffset(base)); 7823 FieldOrBaseOffsets.insert(FieldOrBaseOffsets.upper_bound(offs), 7824 std::make_pair(offs, base)); 7825 } 7826 } 7827 } 7828 7829 unsigned i = 0; 7830 for (FieldDecl *Field : RDecl->fields()) { 7831 if (!Field->isZeroLengthBitField(*this) && Field->isZeroSize(*this)) 7832 continue; 7833 uint64_t offs = layout.getFieldOffset(i); 7834 FieldOrBaseOffsets.insert(FieldOrBaseOffsets.upper_bound(offs), 7835 std::make_pair(offs, Field)); 7836 ++i; 7837 } 7838 7839 if (CXXRec && includeVBases) { 7840 for (const auto &BI : CXXRec->vbases()) { 7841 CXXRecordDecl *base = BI.getType()->getAsCXXRecordDecl(); 7842 if (base->isEmpty()) 7843 continue; 7844 uint64_t offs = toBits(layout.getVBaseClassOffset(base)); 7845 if (offs >= uint64_t(toBits(layout.getNonVirtualSize())) && 7846 FieldOrBaseOffsets.find(offs) == FieldOrBaseOffsets.end()) 7847 FieldOrBaseOffsets.insert(FieldOrBaseOffsets.end(), 7848 std::make_pair(offs, base)); 7849 } 7850 } 7851 7852 CharUnits size; 7853 if (CXXRec) { 7854 size = includeVBases ? layout.getSize() : layout.getNonVirtualSize(); 7855 } else { 7856 size = layout.getSize(); 7857 } 7858 7859 #ifndef NDEBUG 7860 uint64_t CurOffs = 0; 7861 #endif 7862 std::multimap<uint64_t, NamedDecl *>::iterator 7863 CurLayObj = FieldOrBaseOffsets.begin(); 7864 7865 if (CXXRec && CXXRec->isDynamicClass() && 7866 (CurLayObj == FieldOrBaseOffsets.end() || CurLayObj->first != 0)) { 7867 if (FD) { 7868 S += "\"_vptr$"; 7869 std::string recname = CXXRec->getNameAsString(); 7870 if (recname.empty()) recname = "?"; 7871 S += recname; 7872 S += '"'; 7873 } 7874 S += "^^?"; 7875 #ifndef NDEBUG 7876 CurOffs += getTypeSize(VoidPtrTy); 7877 #endif 7878 } 7879 7880 if (!RDecl->hasFlexibleArrayMember()) { 7881 // Mark the end of the structure. 7882 uint64_t offs = toBits(size); 7883 FieldOrBaseOffsets.insert(FieldOrBaseOffsets.upper_bound(offs), 7884 std::make_pair(offs, nullptr)); 7885 } 7886 7887 for (; CurLayObj != FieldOrBaseOffsets.end(); ++CurLayObj) { 7888 #ifndef NDEBUG 7889 assert(CurOffs <= CurLayObj->first); 7890 if (CurOffs < CurLayObj->first) { 7891 uint64_t padding = CurLayObj->first - CurOffs; 7892 // FIXME: There doesn't seem to be a way to indicate in the encoding that 7893 // packing/alignment of members is different that normal, in which case 7894 // the encoding will be out-of-sync with the real layout. 7895 // If the runtime switches to just consider the size of types without 7896 // taking into account alignment, we could make padding explicit in the 7897 // encoding (e.g. using arrays of chars). The encoding strings would be 7898 // longer then though. 7899 CurOffs += padding; 7900 } 7901 #endif 7902 7903 NamedDecl *dcl = CurLayObj->second; 7904 if (!dcl) 7905 break; // reached end of structure. 7906 7907 if (auto *base = dyn_cast<CXXRecordDecl>(dcl)) { 7908 // We expand the bases without their virtual bases since those are going 7909 // in the initial structure. Note that this differs from gcc which 7910 // expands virtual bases each time one is encountered in the hierarchy, 7911 // making the encoding type bigger than it really is. 7912 getObjCEncodingForStructureImpl(base, S, FD, /*includeVBases*/false, 7913 NotEncodedT); 7914 assert(!base->isEmpty()); 7915 #ifndef NDEBUG 7916 CurOffs += toBits(getASTRecordLayout(base).getNonVirtualSize()); 7917 #endif 7918 } else { 7919 const auto *field = cast<FieldDecl>(dcl); 7920 if (FD) { 7921 S += '"'; 7922 S += field->getNameAsString(); 7923 S += '"'; 7924 } 7925 7926 if (field->isBitField()) { 7927 EncodeBitField(this, S, field->getType(), field); 7928 #ifndef NDEBUG 7929 CurOffs += field->getBitWidthValue(*this); 7930 #endif 7931 } else { 7932 QualType qt = field->getType(); 7933 getLegacyIntegralTypeEncoding(qt); 7934 getObjCEncodingForTypeImpl( 7935 qt, S, ObjCEncOptions().setExpandStructures().setIsStructField(), 7936 FD, NotEncodedT); 7937 #ifndef NDEBUG 7938 CurOffs += getTypeSize(field->getType()); 7939 #endif 7940 } 7941 } 7942 } 7943 } 7944 7945 void ASTContext::getObjCEncodingForTypeQualifier(Decl::ObjCDeclQualifier QT, 7946 std::string& S) const { 7947 if (QT & Decl::OBJC_TQ_In) 7948 S += 'n'; 7949 if (QT & Decl::OBJC_TQ_Inout) 7950 S += 'N'; 7951 if (QT & Decl::OBJC_TQ_Out) 7952 S += 'o'; 7953 if (QT & Decl::OBJC_TQ_Bycopy) 7954 S += 'O'; 7955 if (QT & Decl::OBJC_TQ_Byref) 7956 S += 'R'; 7957 if (QT & Decl::OBJC_TQ_Oneway) 7958 S += 'V'; 7959 } 7960 7961 TypedefDecl *ASTContext::getObjCIdDecl() const { 7962 if (!ObjCIdDecl) { 7963 QualType T = getObjCObjectType(ObjCBuiltinIdTy, {}, {}); 7964 T = getObjCObjectPointerType(T); 7965 ObjCIdDecl = buildImplicitTypedef(T, "id"); 7966 } 7967 return ObjCIdDecl; 7968 } 7969 7970 TypedefDecl *ASTContext::getObjCSelDecl() const { 7971 if (!ObjCSelDecl) { 7972 QualType T = getPointerType(ObjCBuiltinSelTy); 7973 ObjCSelDecl = buildImplicitTypedef(T, "SEL"); 7974 } 7975 return ObjCSelDecl; 7976 } 7977 7978 TypedefDecl *ASTContext::getObjCClassDecl() const { 7979 if (!ObjCClassDecl) { 7980 QualType T = getObjCObjectType(ObjCBuiltinClassTy, {}, {}); 7981 T = getObjCObjectPointerType(T); 7982 ObjCClassDecl = buildImplicitTypedef(T, "Class"); 7983 } 7984 return ObjCClassDecl; 7985 } 7986 7987 ObjCInterfaceDecl *ASTContext::getObjCProtocolDecl() const { 7988 if (!ObjCProtocolClassDecl) { 7989 ObjCProtocolClassDecl 7990 = ObjCInterfaceDecl::Create(*this, getTranslationUnitDecl(), 7991 SourceLocation(), 7992 &Idents.get("Protocol"), 7993 /*typeParamList=*/nullptr, 7994 /*PrevDecl=*/nullptr, 7995 SourceLocation(), true); 7996 } 7997 7998 return ObjCProtocolClassDecl; 7999 } 8000 8001 //===----------------------------------------------------------------------===// 8002 // __builtin_va_list Construction Functions 8003 //===----------------------------------------------------------------------===// 8004 8005 static TypedefDecl *CreateCharPtrNamedVaListDecl(const ASTContext *Context, 8006 StringRef Name) { 8007 // typedef char* __builtin[_ms]_va_list; 8008 QualType T = Context->getPointerType(Context->CharTy); 8009 return Context->buildImplicitTypedef(T, Name); 8010 } 8011 8012 static TypedefDecl *CreateMSVaListDecl(const ASTContext *Context) { 8013 return CreateCharPtrNamedVaListDecl(Context, "__builtin_ms_va_list"); 8014 } 8015 8016 static TypedefDecl *CreateCharPtrBuiltinVaListDecl(const ASTContext *Context) { 8017 return CreateCharPtrNamedVaListDecl(Context, "__builtin_va_list"); 8018 } 8019 8020 static TypedefDecl *CreateVoidPtrBuiltinVaListDecl(const ASTContext *Context) { 8021 // typedef void* __builtin_va_list; 8022 QualType T = Context->getPointerType(Context->VoidTy); 8023 return Context->buildImplicitTypedef(T, "__builtin_va_list"); 8024 } 8025 8026 static TypedefDecl * 8027 CreateAArch64ABIBuiltinVaListDecl(const ASTContext *Context) { 8028 RecordDecl *VaListTagDecl = Context->buildImplicitRecord("__va_list"); 8029 // namespace std { struct __va_list { 8030 // Note that we create the namespace even in C. This is intentional so that 8031 // the type is consistent between C and C++, which is important in cases where 8032 // the types need to match between translation units (e.g. with 8033 // -fsanitize=cfi-icall). Ideally we wouldn't have created this namespace at 8034 // all, but it's now part of the ABI (e.g. in mangled names), so we can't 8035 // change it. 8036 auto *NS = NamespaceDecl::Create( 8037 const_cast<ASTContext &>(*Context), Context->getTranslationUnitDecl(), 8038 /*Inline*/ false, SourceLocation(), SourceLocation(), 8039 &Context->Idents.get("std"), 8040 /*PrevDecl*/ nullptr); 8041 NS->setImplicit(); 8042 VaListTagDecl->setDeclContext(NS); 8043 8044 VaListTagDecl->startDefinition(); 8045 8046 const size_t NumFields = 5; 8047 QualType FieldTypes[NumFields]; 8048 const char *FieldNames[NumFields]; 8049 8050 // void *__stack; 8051 FieldTypes[0] = Context->getPointerType(Context->VoidTy); 8052 FieldNames[0] = "__stack"; 8053 8054 // void *__gr_top; 8055 FieldTypes[1] = Context->getPointerType(Context->VoidTy); 8056 FieldNames[1] = "__gr_top"; 8057 8058 // void *__vr_top; 8059 FieldTypes[2] = Context->getPointerType(Context->VoidTy); 8060 FieldNames[2] = "__vr_top"; 8061 8062 // int __gr_offs; 8063 FieldTypes[3] = Context->IntTy; 8064 FieldNames[3] = "__gr_offs"; 8065 8066 // int __vr_offs; 8067 FieldTypes[4] = Context->IntTy; 8068 FieldNames[4] = "__vr_offs"; 8069 8070 // Create fields 8071 for (unsigned i = 0; i < NumFields; ++i) { 8072 FieldDecl *Field = FieldDecl::Create(const_cast<ASTContext &>(*Context), 8073 VaListTagDecl, 8074 SourceLocation(), 8075 SourceLocation(), 8076 &Context->Idents.get(FieldNames[i]), 8077 FieldTypes[i], /*TInfo=*/nullptr, 8078 /*BitWidth=*/nullptr, 8079 /*Mutable=*/false, 8080 ICIS_NoInit); 8081 Field->setAccess(AS_public); 8082 VaListTagDecl->addDecl(Field); 8083 } 8084 VaListTagDecl->completeDefinition(); 8085 Context->VaListTagDecl = VaListTagDecl; 8086 QualType VaListTagType = Context->getRecordType(VaListTagDecl); 8087 8088 // } __builtin_va_list; 8089 return Context->buildImplicitTypedef(VaListTagType, "__builtin_va_list"); 8090 } 8091 8092 static TypedefDecl *CreatePowerABIBuiltinVaListDecl(const ASTContext *Context) { 8093 // typedef struct __va_list_tag { 8094 RecordDecl *VaListTagDecl; 8095 8096 VaListTagDecl = Context->buildImplicitRecord("__va_list_tag"); 8097 VaListTagDecl->startDefinition(); 8098 8099 const size_t NumFields = 5; 8100 QualType FieldTypes[NumFields]; 8101 const char *FieldNames[NumFields]; 8102 8103 // unsigned char gpr; 8104 FieldTypes[0] = Context->UnsignedCharTy; 8105 FieldNames[0] = "gpr"; 8106 8107 // unsigned char fpr; 8108 FieldTypes[1] = Context->UnsignedCharTy; 8109 FieldNames[1] = "fpr"; 8110 8111 // unsigned short reserved; 8112 FieldTypes[2] = Context->UnsignedShortTy; 8113 FieldNames[2] = "reserved"; 8114 8115 // void* overflow_arg_area; 8116 FieldTypes[3] = Context->getPointerType(Context->VoidTy); 8117 FieldNames[3] = "overflow_arg_area"; 8118 8119 // void* reg_save_area; 8120 FieldTypes[4] = Context->getPointerType(Context->VoidTy); 8121 FieldNames[4] = "reg_save_area"; 8122 8123 // Create fields 8124 for (unsigned i = 0; i < NumFields; ++i) { 8125 FieldDecl *Field = FieldDecl::Create(*Context, VaListTagDecl, 8126 SourceLocation(), 8127 SourceLocation(), 8128 &Context->Idents.get(FieldNames[i]), 8129 FieldTypes[i], /*TInfo=*/nullptr, 8130 /*BitWidth=*/nullptr, 8131 /*Mutable=*/false, 8132 ICIS_NoInit); 8133 Field->setAccess(AS_public); 8134 VaListTagDecl->addDecl(Field); 8135 } 8136 VaListTagDecl->completeDefinition(); 8137 Context->VaListTagDecl = VaListTagDecl; 8138 QualType VaListTagType = Context->getRecordType(VaListTagDecl); 8139 8140 // } __va_list_tag; 8141 TypedefDecl *VaListTagTypedefDecl = 8142 Context->buildImplicitTypedef(VaListTagType, "__va_list_tag"); 8143 8144 QualType VaListTagTypedefType = 8145 Context->getTypedefType(VaListTagTypedefDecl); 8146 8147 // typedef __va_list_tag __builtin_va_list[1]; 8148 llvm::APInt Size(Context->getTypeSize(Context->getSizeType()), 1); 8149 QualType VaListTagArrayType 8150 = Context->getConstantArrayType(VaListTagTypedefType, 8151 Size, nullptr, ArrayType::Normal, 0); 8152 return Context->buildImplicitTypedef(VaListTagArrayType, "__builtin_va_list"); 8153 } 8154 8155 static TypedefDecl * 8156 CreateX86_64ABIBuiltinVaListDecl(const ASTContext *Context) { 8157 // struct __va_list_tag { 8158 RecordDecl *VaListTagDecl; 8159 VaListTagDecl = Context->buildImplicitRecord("__va_list_tag"); 8160 VaListTagDecl->startDefinition(); 8161 8162 const size_t NumFields = 4; 8163 QualType FieldTypes[NumFields]; 8164 const char *FieldNames[NumFields]; 8165 8166 // unsigned gp_offset; 8167 FieldTypes[0] = Context->UnsignedIntTy; 8168 FieldNames[0] = "gp_offset"; 8169 8170 // unsigned fp_offset; 8171 FieldTypes[1] = Context->UnsignedIntTy; 8172 FieldNames[1] = "fp_offset"; 8173 8174 // void* overflow_arg_area; 8175 FieldTypes[2] = Context->getPointerType(Context->VoidTy); 8176 FieldNames[2] = "overflow_arg_area"; 8177 8178 // void* reg_save_area; 8179 FieldTypes[3] = Context->getPointerType(Context->VoidTy); 8180 FieldNames[3] = "reg_save_area"; 8181 8182 // Create fields 8183 for (unsigned i = 0; i < NumFields; ++i) { 8184 FieldDecl *Field = FieldDecl::Create(const_cast<ASTContext &>(*Context), 8185 VaListTagDecl, 8186 SourceLocation(), 8187 SourceLocation(), 8188 &Context->Idents.get(FieldNames[i]), 8189 FieldTypes[i], /*TInfo=*/nullptr, 8190 /*BitWidth=*/nullptr, 8191 /*Mutable=*/false, 8192 ICIS_NoInit); 8193 Field->setAccess(AS_public); 8194 VaListTagDecl->addDecl(Field); 8195 } 8196 VaListTagDecl->completeDefinition(); 8197 Context->VaListTagDecl = VaListTagDecl; 8198 QualType VaListTagType = Context->getRecordType(VaListTagDecl); 8199 8200 // }; 8201 8202 // typedef struct __va_list_tag __builtin_va_list[1]; 8203 llvm::APInt Size(Context->getTypeSize(Context->getSizeType()), 1); 8204 QualType VaListTagArrayType = Context->getConstantArrayType( 8205 VaListTagType, Size, nullptr, ArrayType::Normal, 0); 8206 return Context->buildImplicitTypedef(VaListTagArrayType, "__builtin_va_list"); 8207 } 8208 8209 static TypedefDecl *CreatePNaClABIBuiltinVaListDecl(const ASTContext *Context) { 8210 // typedef int __builtin_va_list[4]; 8211 llvm::APInt Size(Context->getTypeSize(Context->getSizeType()), 4); 8212 QualType IntArrayType = Context->getConstantArrayType( 8213 Context->IntTy, Size, nullptr, ArrayType::Normal, 0); 8214 return Context->buildImplicitTypedef(IntArrayType, "__builtin_va_list"); 8215 } 8216 8217 static TypedefDecl * 8218 CreateAAPCSABIBuiltinVaListDecl(const ASTContext *Context) { 8219 // struct __va_list 8220 RecordDecl *VaListDecl = Context->buildImplicitRecord("__va_list"); 8221 if (Context->getLangOpts().CPlusPlus) { 8222 // namespace std { struct __va_list { 8223 NamespaceDecl *NS; 8224 NS = NamespaceDecl::Create(const_cast<ASTContext &>(*Context), 8225 Context->getTranslationUnitDecl(), 8226 /*Inline*/false, SourceLocation(), 8227 SourceLocation(), &Context->Idents.get("std"), 8228 /*PrevDecl*/ nullptr); 8229 NS->setImplicit(); 8230 VaListDecl->setDeclContext(NS); 8231 } 8232 8233 VaListDecl->startDefinition(); 8234 8235 // void * __ap; 8236 FieldDecl *Field = FieldDecl::Create(const_cast<ASTContext &>(*Context), 8237 VaListDecl, 8238 SourceLocation(), 8239 SourceLocation(), 8240 &Context->Idents.get("__ap"), 8241 Context->getPointerType(Context->VoidTy), 8242 /*TInfo=*/nullptr, 8243 /*BitWidth=*/nullptr, 8244 /*Mutable=*/false, 8245 ICIS_NoInit); 8246 Field->setAccess(AS_public); 8247 VaListDecl->addDecl(Field); 8248 8249 // }; 8250 VaListDecl->completeDefinition(); 8251 Context->VaListTagDecl = VaListDecl; 8252 8253 // typedef struct __va_list __builtin_va_list; 8254 QualType T = Context->getRecordType(VaListDecl); 8255 return Context->buildImplicitTypedef(T, "__builtin_va_list"); 8256 } 8257 8258 static TypedefDecl * 8259 CreateSystemZBuiltinVaListDecl(const ASTContext *Context) { 8260 // struct __va_list_tag { 8261 RecordDecl *VaListTagDecl; 8262 VaListTagDecl = Context->buildImplicitRecord("__va_list_tag"); 8263 VaListTagDecl->startDefinition(); 8264 8265 const size_t NumFields = 4; 8266 QualType FieldTypes[NumFields]; 8267 const char *FieldNames[NumFields]; 8268 8269 // long __gpr; 8270 FieldTypes[0] = Context->LongTy; 8271 FieldNames[0] = "__gpr"; 8272 8273 // long __fpr; 8274 FieldTypes[1] = Context->LongTy; 8275 FieldNames[1] = "__fpr"; 8276 8277 // void *__overflow_arg_area; 8278 FieldTypes[2] = Context->getPointerType(Context->VoidTy); 8279 FieldNames[2] = "__overflow_arg_area"; 8280 8281 // void *__reg_save_area; 8282 FieldTypes[3] = Context->getPointerType(Context->VoidTy); 8283 FieldNames[3] = "__reg_save_area"; 8284 8285 // Create fields 8286 for (unsigned i = 0; i < NumFields; ++i) { 8287 FieldDecl *Field = FieldDecl::Create(const_cast<ASTContext &>(*Context), 8288 VaListTagDecl, 8289 SourceLocation(), 8290 SourceLocation(), 8291 &Context->Idents.get(FieldNames[i]), 8292 FieldTypes[i], /*TInfo=*/nullptr, 8293 /*BitWidth=*/nullptr, 8294 /*Mutable=*/false, 8295 ICIS_NoInit); 8296 Field->setAccess(AS_public); 8297 VaListTagDecl->addDecl(Field); 8298 } 8299 VaListTagDecl->completeDefinition(); 8300 Context->VaListTagDecl = VaListTagDecl; 8301 QualType VaListTagType = Context->getRecordType(VaListTagDecl); 8302 8303 // }; 8304 8305 // typedef __va_list_tag __builtin_va_list[1]; 8306 llvm::APInt Size(Context->getTypeSize(Context->getSizeType()), 1); 8307 QualType VaListTagArrayType = Context->getConstantArrayType( 8308 VaListTagType, Size, nullptr, ArrayType::Normal, 0); 8309 8310 return Context->buildImplicitTypedef(VaListTagArrayType, "__builtin_va_list"); 8311 } 8312 8313 static TypedefDecl *CreateHexagonBuiltinVaListDecl(const ASTContext *Context) { 8314 // typedef struct __va_list_tag { 8315 RecordDecl *VaListTagDecl; 8316 VaListTagDecl = Context->buildImplicitRecord("__va_list_tag"); 8317 VaListTagDecl->startDefinition(); 8318 8319 const size_t NumFields = 3; 8320 QualType FieldTypes[NumFields]; 8321 const char *FieldNames[NumFields]; 8322 8323 // void *CurrentSavedRegisterArea; 8324 FieldTypes[0] = Context->getPointerType(Context->VoidTy); 8325 FieldNames[0] = "__current_saved_reg_area_pointer"; 8326 8327 // void *SavedRegAreaEnd; 8328 FieldTypes[1] = Context->getPointerType(Context->VoidTy); 8329 FieldNames[1] = "__saved_reg_area_end_pointer"; 8330 8331 // void *OverflowArea; 8332 FieldTypes[2] = Context->getPointerType(Context->VoidTy); 8333 FieldNames[2] = "__overflow_area_pointer"; 8334 8335 // Create fields 8336 for (unsigned i = 0; i < NumFields; ++i) { 8337 FieldDecl *Field = FieldDecl::Create( 8338 const_cast<ASTContext &>(*Context), VaListTagDecl, SourceLocation(), 8339 SourceLocation(), &Context->Idents.get(FieldNames[i]), FieldTypes[i], 8340 /*TInfo=*/0, 8341 /*BitWidth=*/0, 8342 /*Mutable=*/false, ICIS_NoInit); 8343 Field->setAccess(AS_public); 8344 VaListTagDecl->addDecl(Field); 8345 } 8346 VaListTagDecl->completeDefinition(); 8347 Context->VaListTagDecl = VaListTagDecl; 8348 QualType VaListTagType = Context->getRecordType(VaListTagDecl); 8349 8350 // } __va_list_tag; 8351 TypedefDecl *VaListTagTypedefDecl = 8352 Context->buildImplicitTypedef(VaListTagType, "__va_list_tag"); 8353 8354 QualType VaListTagTypedefType = Context->getTypedefType(VaListTagTypedefDecl); 8355 8356 // typedef __va_list_tag __builtin_va_list[1]; 8357 llvm::APInt Size(Context->getTypeSize(Context->getSizeType()), 1); 8358 QualType VaListTagArrayType = Context->getConstantArrayType( 8359 VaListTagTypedefType, Size, nullptr, ArrayType::Normal, 0); 8360 8361 return Context->buildImplicitTypedef(VaListTagArrayType, "__builtin_va_list"); 8362 } 8363 8364 static TypedefDecl *CreateVaListDecl(const ASTContext *Context, 8365 TargetInfo::BuiltinVaListKind Kind) { 8366 switch (Kind) { 8367 case TargetInfo::CharPtrBuiltinVaList: 8368 return CreateCharPtrBuiltinVaListDecl(Context); 8369 case TargetInfo::VoidPtrBuiltinVaList: 8370 return CreateVoidPtrBuiltinVaListDecl(Context); 8371 case TargetInfo::AArch64ABIBuiltinVaList: 8372 return CreateAArch64ABIBuiltinVaListDecl(Context); 8373 case TargetInfo::PowerABIBuiltinVaList: 8374 return CreatePowerABIBuiltinVaListDecl(Context); 8375 case TargetInfo::X86_64ABIBuiltinVaList: 8376 return CreateX86_64ABIBuiltinVaListDecl(Context); 8377 case TargetInfo::PNaClABIBuiltinVaList: 8378 return CreatePNaClABIBuiltinVaListDecl(Context); 8379 case TargetInfo::AAPCSABIBuiltinVaList: 8380 return CreateAAPCSABIBuiltinVaListDecl(Context); 8381 case TargetInfo::SystemZBuiltinVaList: 8382 return CreateSystemZBuiltinVaListDecl(Context); 8383 case TargetInfo::HexagonBuiltinVaList: 8384 return CreateHexagonBuiltinVaListDecl(Context); 8385 } 8386 8387 llvm_unreachable("Unhandled __builtin_va_list type kind"); 8388 } 8389 8390 TypedefDecl *ASTContext::getBuiltinVaListDecl() const { 8391 if (!BuiltinVaListDecl) { 8392 BuiltinVaListDecl = CreateVaListDecl(this, Target->getBuiltinVaListKind()); 8393 assert(BuiltinVaListDecl->isImplicit()); 8394 } 8395 8396 return BuiltinVaListDecl; 8397 } 8398 8399 Decl *ASTContext::getVaListTagDecl() const { 8400 // Force the creation of VaListTagDecl by building the __builtin_va_list 8401 // declaration. 8402 if (!VaListTagDecl) 8403 (void)getBuiltinVaListDecl(); 8404 8405 return VaListTagDecl; 8406 } 8407 8408 TypedefDecl *ASTContext::getBuiltinMSVaListDecl() const { 8409 if (!BuiltinMSVaListDecl) 8410 BuiltinMSVaListDecl = CreateMSVaListDecl(this); 8411 8412 return BuiltinMSVaListDecl; 8413 } 8414 8415 bool ASTContext::canBuiltinBeRedeclared(const FunctionDecl *FD) const { 8416 return BuiltinInfo.canBeRedeclared(FD->getBuiltinID()); 8417 } 8418 8419 void ASTContext::setObjCConstantStringInterface(ObjCInterfaceDecl *Decl) { 8420 assert(ObjCConstantStringType.isNull() && 8421 "'NSConstantString' type already set!"); 8422 8423 ObjCConstantStringType = getObjCInterfaceType(Decl); 8424 } 8425 8426 /// Retrieve the template name that corresponds to a non-empty 8427 /// lookup. 8428 TemplateName 8429 ASTContext::getOverloadedTemplateName(UnresolvedSetIterator Begin, 8430 UnresolvedSetIterator End) const { 8431 unsigned size = End - Begin; 8432 assert(size > 1 && "set is not overloaded!"); 8433 8434 void *memory = Allocate(sizeof(OverloadedTemplateStorage) + 8435 size * sizeof(FunctionTemplateDecl*)); 8436 auto *OT = new (memory) OverloadedTemplateStorage(size); 8437 8438 NamedDecl **Storage = OT->getStorage(); 8439 for (UnresolvedSetIterator I = Begin; I != End; ++I) { 8440 NamedDecl *D = *I; 8441 assert(isa<FunctionTemplateDecl>(D) || 8442 isa<UnresolvedUsingValueDecl>(D) || 8443 (isa<UsingShadowDecl>(D) && 8444 isa<FunctionTemplateDecl>(D->getUnderlyingDecl()))); 8445 *Storage++ = D; 8446 } 8447 8448 return TemplateName(OT); 8449 } 8450 8451 /// Retrieve a template name representing an unqualified-id that has been 8452 /// assumed to name a template for ADL purposes. 8453 TemplateName ASTContext::getAssumedTemplateName(DeclarationName Name) const { 8454 auto *OT = new (*this) AssumedTemplateStorage(Name); 8455 return TemplateName(OT); 8456 } 8457 8458 /// Retrieve the template name that represents a qualified 8459 /// template name such as \c std::vector. 8460 TemplateName 8461 ASTContext::getQualifiedTemplateName(NestedNameSpecifier *NNS, 8462 bool TemplateKeyword, 8463 TemplateDecl *Template) const { 8464 assert(NNS && "Missing nested-name-specifier in qualified template name"); 8465 8466 // FIXME: Canonicalization? 8467 llvm::FoldingSetNodeID ID; 8468 QualifiedTemplateName::Profile(ID, NNS, TemplateKeyword, Template); 8469 8470 void *InsertPos = nullptr; 8471 QualifiedTemplateName *QTN = 8472 QualifiedTemplateNames.FindNodeOrInsertPos(ID, InsertPos); 8473 if (!QTN) { 8474 QTN = new (*this, alignof(QualifiedTemplateName)) 8475 QualifiedTemplateName(NNS, TemplateKeyword, Template); 8476 QualifiedTemplateNames.InsertNode(QTN, InsertPos); 8477 } 8478 8479 return TemplateName(QTN); 8480 } 8481 8482 /// Retrieve the template name that represents a dependent 8483 /// template name such as \c MetaFun::template apply. 8484 TemplateName 8485 ASTContext::getDependentTemplateName(NestedNameSpecifier *NNS, 8486 const IdentifierInfo *Name) const { 8487 assert((!NNS || NNS->isDependent()) && 8488 "Nested name specifier must be dependent"); 8489 8490 llvm::FoldingSetNodeID ID; 8491 DependentTemplateName::Profile(ID, NNS, Name); 8492 8493 void *InsertPos = nullptr; 8494 DependentTemplateName *QTN = 8495 DependentTemplateNames.FindNodeOrInsertPos(ID, InsertPos); 8496 8497 if (QTN) 8498 return TemplateName(QTN); 8499 8500 NestedNameSpecifier *CanonNNS = getCanonicalNestedNameSpecifier(NNS); 8501 if (CanonNNS == NNS) { 8502 QTN = new (*this, alignof(DependentTemplateName)) 8503 DependentTemplateName(NNS, Name); 8504 } else { 8505 TemplateName Canon = getDependentTemplateName(CanonNNS, Name); 8506 QTN = new (*this, alignof(DependentTemplateName)) 8507 DependentTemplateName(NNS, Name, Canon); 8508 DependentTemplateName *CheckQTN = 8509 DependentTemplateNames.FindNodeOrInsertPos(ID, InsertPos); 8510 assert(!CheckQTN && "Dependent type name canonicalization broken"); 8511 (void)CheckQTN; 8512 } 8513 8514 DependentTemplateNames.InsertNode(QTN, InsertPos); 8515 return TemplateName(QTN); 8516 } 8517 8518 /// Retrieve the template name that represents a dependent 8519 /// template name such as \c MetaFun::template operator+. 8520 TemplateName 8521 ASTContext::getDependentTemplateName(NestedNameSpecifier *NNS, 8522 OverloadedOperatorKind Operator) const { 8523 assert((!NNS || NNS->isDependent()) && 8524 "Nested name specifier must be dependent"); 8525 8526 llvm::FoldingSetNodeID ID; 8527 DependentTemplateName::Profile(ID, NNS, Operator); 8528 8529 void *InsertPos = nullptr; 8530 DependentTemplateName *QTN 8531 = DependentTemplateNames.FindNodeOrInsertPos(ID, InsertPos); 8532 8533 if (QTN) 8534 return TemplateName(QTN); 8535 8536 NestedNameSpecifier *CanonNNS = getCanonicalNestedNameSpecifier(NNS); 8537 if (CanonNNS == NNS) { 8538 QTN = new (*this, alignof(DependentTemplateName)) 8539 DependentTemplateName(NNS, Operator); 8540 } else { 8541 TemplateName Canon = getDependentTemplateName(CanonNNS, Operator); 8542 QTN = new (*this, alignof(DependentTemplateName)) 8543 DependentTemplateName(NNS, Operator, Canon); 8544 8545 DependentTemplateName *CheckQTN 8546 = DependentTemplateNames.FindNodeOrInsertPos(ID, InsertPos); 8547 assert(!CheckQTN && "Dependent template name canonicalization broken"); 8548 (void)CheckQTN; 8549 } 8550 8551 DependentTemplateNames.InsertNode(QTN, InsertPos); 8552 return TemplateName(QTN); 8553 } 8554 8555 TemplateName 8556 ASTContext::getSubstTemplateTemplateParm(TemplateTemplateParmDecl *param, 8557 TemplateName replacement) const { 8558 llvm::FoldingSetNodeID ID; 8559 SubstTemplateTemplateParmStorage::Profile(ID, param, replacement); 8560 8561 void *insertPos = nullptr; 8562 SubstTemplateTemplateParmStorage *subst 8563 = SubstTemplateTemplateParms.FindNodeOrInsertPos(ID, insertPos); 8564 8565 if (!subst) { 8566 subst = new (*this) SubstTemplateTemplateParmStorage(param, replacement); 8567 SubstTemplateTemplateParms.InsertNode(subst, insertPos); 8568 } 8569 8570 return TemplateName(subst); 8571 } 8572 8573 TemplateName 8574 ASTContext::getSubstTemplateTemplateParmPack(TemplateTemplateParmDecl *Param, 8575 const TemplateArgument &ArgPack) const { 8576 auto &Self = const_cast<ASTContext &>(*this); 8577 llvm::FoldingSetNodeID ID; 8578 SubstTemplateTemplateParmPackStorage::Profile(ID, Self, Param, ArgPack); 8579 8580 void *InsertPos = nullptr; 8581 SubstTemplateTemplateParmPackStorage *Subst 8582 = SubstTemplateTemplateParmPacks.FindNodeOrInsertPos(ID, InsertPos); 8583 8584 if (!Subst) { 8585 Subst = new (*this) SubstTemplateTemplateParmPackStorage(Param, 8586 ArgPack.pack_size(), 8587 ArgPack.pack_begin()); 8588 SubstTemplateTemplateParmPacks.InsertNode(Subst, InsertPos); 8589 } 8590 8591 return TemplateName(Subst); 8592 } 8593 8594 /// getFromTargetType - Given one of the integer types provided by 8595 /// TargetInfo, produce the corresponding type. The unsigned @p Type 8596 /// is actually a value of type @c TargetInfo::IntType. 8597 CanQualType ASTContext::getFromTargetType(unsigned Type) const { 8598 switch (Type) { 8599 case TargetInfo::NoInt: return {}; 8600 case TargetInfo::SignedChar: return SignedCharTy; 8601 case TargetInfo::UnsignedChar: return UnsignedCharTy; 8602 case TargetInfo::SignedShort: return ShortTy; 8603 case TargetInfo::UnsignedShort: return UnsignedShortTy; 8604 case TargetInfo::SignedInt: return IntTy; 8605 case TargetInfo::UnsignedInt: return UnsignedIntTy; 8606 case TargetInfo::SignedLong: return LongTy; 8607 case TargetInfo::UnsignedLong: return UnsignedLongTy; 8608 case TargetInfo::SignedLongLong: return LongLongTy; 8609 case TargetInfo::UnsignedLongLong: return UnsignedLongLongTy; 8610 } 8611 8612 llvm_unreachable("Unhandled TargetInfo::IntType value"); 8613 } 8614 8615 //===----------------------------------------------------------------------===// 8616 // Type Predicates. 8617 //===----------------------------------------------------------------------===// 8618 8619 /// getObjCGCAttr - Returns one of GCNone, Weak or Strong objc's 8620 /// garbage collection attribute. 8621 /// 8622 Qualifiers::GC ASTContext::getObjCGCAttrKind(QualType Ty) const { 8623 if (getLangOpts().getGC() == LangOptions::NonGC) 8624 return Qualifiers::GCNone; 8625 8626 assert(getLangOpts().ObjC); 8627 Qualifiers::GC GCAttrs = Ty.getObjCGCAttr(); 8628 8629 // Default behaviour under objective-C's gc is for ObjC pointers 8630 // (or pointers to them) be treated as though they were declared 8631 // as __strong. 8632 if (GCAttrs == Qualifiers::GCNone) { 8633 if (Ty->isObjCObjectPointerType() || Ty->isBlockPointerType()) 8634 return Qualifiers::Strong; 8635 else if (Ty->isPointerType()) 8636 return getObjCGCAttrKind(Ty->castAs<PointerType>()->getPointeeType()); 8637 } else { 8638 // It's not valid to set GC attributes on anything that isn't a 8639 // pointer. 8640 #ifndef NDEBUG 8641 QualType CT = Ty->getCanonicalTypeInternal(); 8642 while (const auto *AT = dyn_cast<ArrayType>(CT)) 8643 CT = AT->getElementType(); 8644 assert(CT->isAnyPointerType() || CT->isBlockPointerType()); 8645 #endif 8646 } 8647 return GCAttrs; 8648 } 8649 8650 //===----------------------------------------------------------------------===// 8651 // Type Compatibility Testing 8652 //===----------------------------------------------------------------------===// 8653 8654 /// areCompatVectorTypes - Return true if the two specified vector types are 8655 /// compatible. 8656 static bool areCompatVectorTypes(const VectorType *LHS, 8657 const VectorType *RHS) { 8658 assert(LHS->isCanonicalUnqualified() && RHS->isCanonicalUnqualified()); 8659 return LHS->getElementType() == RHS->getElementType() && 8660 LHS->getNumElements() == RHS->getNumElements(); 8661 } 8662 8663 /// areCompatMatrixTypes - Return true if the two specified matrix types are 8664 /// compatible. 8665 static bool areCompatMatrixTypes(const ConstantMatrixType *LHS, 8666 const ConstantMatrixType *RHS) { 8667 assert(LHS->isCanonicalUnqualified() && RHS->isCanonicalUnqualified()); 8668 return LHS->getElementType() == RHS->getElementType() && 8669 LHS->getNumRows() == RHS->getNumRows() && 8670 LHS->getNumColumns() == RHS->getNumColumns(); 8671 } 8672 8673 bool ASTContext::areCompatibleVectorTypes(QualType FirstVec, 8674 QualType SecondVec) { 8675 assert(FirstVec->isVectorType() && "FirstVec should be a vector type"); 8676 assert(SecondVec->isVectorType() && "SecondVec should be a vector type"); 8677 8678 if (hasSameUnqualifiedType(FirstVec, SecondVec)) 8679 return true; 8680 8681 // Treat Neon vector types and most AltiVec vector types as if they are the 8682 // equivalent GCC vector types. 8683 const auto *First = FirstVec->castAs<VectorType>(); 8684 const auto *Second = SecondVec->castAs<VectorType>(); 8685 if (First->getNumElements() == Second->getNumElements() && 8686 hasSameType(First->getElementType(), Second->getElementType()) && 8687 First->getVectorKind() != VectorType::AltiVecPixel && 8688 First->getVectorKind() != VectorType::AltiVecBool && 8689 Second->getVectorKind() != VectorType::AltiVecPixel && 8690 Second->getVectorKind() != VectorType::AltiVecBool && 8691 First->getVectorKind() != VectorType::SveFixedLengthDataVector && 8692 First->getVectorKind() != VectorType::SveFixedLengthPredicateVector && 8693 Second->getVectorKind() != VectorType::SveFixedLengthDataVector && 8694 Second->getVectorKind() != VectorType::SveFixedLengthPredicateVector) 8695 return true; 8696 8697 return false; 8698 } 8699 8700 /// getSVETypeSize - Return SVE vector or predicate register size. 8701 static uint64_t getSVETypeSize(ASTContext &Context, const BuiltinType *Ty) { 8702 assert(Ty->isVLSTBuiltinType() && "Invalid SVE Type"); 8703 return Ty->getKind() == BuiltinType::SveBool 8704 ? Context.getLangOpts().ArmSveVectorBits / Context.getCharWidth() 8705 : Context.getLangOpts().ArmSveVectorBits; 8706 } 8707 8708 bool ASTContext::areCompatibleSveTypes(QualType FirstType, 8709 QualType SecondType) { 8710 assert(((FirstType->isSizelessBuiltinType() && SecondType->isVectorType()) || 8711 (FirstType->isVectorType() && SecondType->isSizelessBuiltinType())) && 8712 "Expected SVE builtin type and vector type!"); 8713 8714 auto IsValidCast = [this](QualType FirstType, QualType SecondType) { 8715 if (const auto *BT = FirstType->getAs<BuiltinType>()) { 8716 if (const auto *VT = SecondType->getAs<VectorType>()) { 8717 // Predicates have the same representation as uint8 so we also have to 8718 // check the kind to make these types incompatible. 8719 if (VT->getVectorKind() == VectorType::SveFixedLengthPredicateVector) 8720 return BT->getKind() == BuiltinType::SveBool; 8721 else if (VT->getVectorKind() == VectorType::SveFixedLengthDataVector) 8722 return VT->getElementType().getCanonicalType() == 8723 FirstType->getSveEltType(*this); 8724 else if (VT->getVectorKind() == VectorType::GenericVector) 8725 return getTypeSize(SecondType) == getSVETypeSize(*this, BT) && 8726 hasSameType(VT->getElementType(), 8727 getBuiltinVectorTypeInfo(BT).ElementType); 8728 } 8729 } 8730 return false; 8731 }; 8732 8733 return IsValidCast(FirstType, SecondType) || 8734 IsValidCast(SecondType, FirstType); 8735 } 8736 8737 bool ASTContext::areLaxCompatibleSveTypes(QualType FirstType, 8738 QualType SecondType) { 8739 assert(((FirstType->isSizelessBuiltinType() && SecondType->isVectorType()) || 8740 (FirstType->isVectorType() && SecondType->isSizelessBuiltinType())) && 8741 "Expected SVE builtin type and vector type!"); 8742 8743 auto IsLaxCompatible = [this](QualType FirstType, QualType SecondType) { 8744 const auto *BT = FirstType->getAs<BuiltinType>(); 8745 if (!BT) 8746 return false; 8747 8748 const auto *VecTy = SecondType->getAs<VectorType>(); 8749 if (VecTy && 8750 (VecTy->getVectorKind() == VectorType::SveFixedLengthDataVector || 8751 VecTy->getVectorKind() == VectorType::GenericVector)) { 8752 const LangOptions::LaxVectorConversionKind LVCKind = 8753 getLangOpts().getLaxVectorConversions(); 8754 8755 // Can not convert between sve predicates and sve vectors because of 8756 // different size. 8757 if (BT->getKind() == BuiltinType::SveBool && 8758 VecTy->getVectorKind() == VectorType::SveFixedLengthDataVector) 8759 return false; 8760 8761 // If __ARM_FEATURE_SVE_BITS != N do not allow GNU vector lax conversion. 8762 // "Whenever __ARM_FEATURE_SVE_BITS==N, GNUT implicitly 8763 // converts to VLAT and VLAT implicitly converts to GNUT." 8764 // ACLE Spec Version 00bet6, 3.7.3.2. Behavior common to vectors and 8765 // predicates. 8766 if (VecTy->getVectorKind() == VectorType::GenericVector && 8767 getTypeSize(SecondType) != getSVETypeSize(*this, BT)) 8768 return false; 8769 8770 // If -flax-vector-conversions=all is specified, the types are 8771 // certainly compatible. 8772 if (LVCKind == LangOptions::LaxVectorConversionKind::All) 8773 return true; 8774 8775 // If -flax-vector-conversions=integer is specified, the types are 8776 // compatible if the elements are integer types. 8777 if (LVCKind == LangOptions::LaxVectorConversionKind::Integer) 8778 return VecTy->getElementType().getCanonicalType()->isIntegerType() && 8779 FirstType->getSveEltType(*this)->isIntegerType(); 8780 } 8781 8782 return false; 8783 }; 8784 8785 return IsLaxCompatible(FirstType, SecondType) || 8786 IsLaxCompatible(SecondType, FirstType); 8787 } 8788 8789 bool ASTContext::hasDirectOwnershipQualifier(QualType Ty) const { 8790 while (true) { 8791 // __strong id 8792 if (const AttributedType *Attr = dyn_cast<AttributedType>(Ty)) { 8793 if (Attr->getAttrKind() == attr::ObjCOwnership) 8794 return true; 8795 8796 Ty = Attr->getModifiedType(); 8797 8798 // X *__strong (...) 8799 } else if (const ParenType *Paren = dyn_cast<ParenType>(Ty)) { 8800 Ty = Paren->getInnerType(); 8801 8802 // We do not want to look through typedefs, typeof(expr), 8803 // typeof(type), or any other way that the type is somehow 8804 // abstracted. 8805 } else { 8806 return false; 8807 } 8808 } 8809 } 8810 8811 //===----------------------------------------------------------------------===// 8812 // ObjCQualifiedIdTypesAreCompatible - Compatibility testing for qualified id's. 8813 //===----------------------------------------------------------------------===// 8814 8815 /// ProtocolCompatibleWithProtocol - return 'true' if 'lProto' is in the 8816 /// inheritance hierarchy of 'rProto'. 8817 bool 8818 ASTContext::ProtocolCompatibleWithProtocol(ObjCProtocolDecl *lProto, 8819 ObjCProtocolDecl *rProto) const { 8820 if (declaresSameEntity(lProto, rProto)) 8821 return true; 8822 for (auto *PI : rProto->protocols()) 8823 if (ProtocolCompatibleWithProtocol(lProto, PI)) 8824 return true; 8825 return false; 8826 } 8827 8828 /// ObjCQualifiedClassTypesAreCompatible - compare Class<pr,...> and 8829 /// Class<pr1, ...>. 8830 bool ASTContext::ObjCQualifiedClassTypesAreCompatible( 8831 const ObjCObjectPointerType *lhs, const ObjCObjectPointerType *rhs) { 8832 for (auto *lhsProto : lhs->quals()) { 8833 bool match = false; 8834 for (auto *rhsProto : rhs->quals()) { 8835 if (ProtocolCompatibleWithProtocol(lhsProto, rhsProto)) { 8836 match = true; 8837 break; 8838 } 8839 } 8840 if (!match) 8841 return false; 8842 } 8843 return true; 8844 } 8845 8846 /// ObjCQualifiedIdTypesAreCompatible - We know that one of lhs/rhs is an 8847 /// ObjCQualifiedIDType. 8848 bool ASTContext::ObjCQualifiedIdTypesAreCompatible( 8849 const ObjCObjectPointerType *lhs, const ObjCObjectPointerType *rhs, 8850 bool compare) { 8851 // Allow id<P..> and an 'id' in all cases. 8852 if (lhs->isObjCIdType() || rhs->isObjCIdType()) 8853 return true; 8854 8855 // Don't allow id<P..> to convert to Class or Class<P..> in either direction. 8856 if (lhs->isObjCClassType() || lhs->isObjCQualifiedClassType() || 8857 rhs->isObjCClassType() || rhs->isObjCQualifiedClassType()) 8858 return false; 8859 8860 if (lhs->isObjCQualifiedIdType()) { 8861 if (rhs->qual_empty()) { 8862 // If the RHS is a unqualified interface pointer "NSString*", 8863 // make sure we check the class hierarchy. 8864 if (ObjCInterfaceDecl *rhsID = rhs->getInterfaceDecl()) { 8865 for (auto *I : lhs->quals()) { 8866 // when comparing an id<P> on lhs with a static type on rhs, 8867 // see if static class implements all of id's protocols, directly or 8868 // through its super class and categories. 8869 if (!rhsID->ClassImplementsProtocol(I, true)) 8870 return false; 8871 } 8872 } 8873 // If there are no qualifiers and no interface, we have an 'id'. 8874 return true; 8875 } 8876 // Both the right and left sides have qualifiers. 8877 for (auto *lhsProto : lhs->quals()) { 8878 bool match = false; 8879 8880 // when comparing an id<P> on lhs with a static type on rhs, 8881 // see if static class implements all of id's protocols, directly or 8882 // through its super class and categories. 8883 for (auto *rhsProto : rhs->quals()) { 8884 if (ProtocolCompatibleWithProtocol(lhsProto, rhsProto) || 8885 (compare && ProtocolCompatibleWithProtocol(rhsProto, lhsProto))) { 8886 match = true; 8887 break; 8888 } 8889 } 8890 // If the RHS is a qualified interface pointer "NSString<P>*", 8891 // make sure we check the class hierarchy. 8892 if (ObjCInterfaceDecl *rhsID = rhs->getInterfaceDecl()) { 8893 for (auto *I : lhs->quals()) { 8894 // when comparing an id<P> on lhs with a static type on rhs, 8895 // see if static class implements all of id's protocols, directly or 8896 // through its super class and categories. 8897 if (rhsID->ClassImplementsProtocol(I, true)) { 8898 match = true; 8899 break; 8900 } 8901 } 8902 } 8903 if (!match) 8904 return false; 8905 } 8906 8907 return true; 8908 } 8909 8910 assert(rhs->isObjCQualifiedIdType() && "One of the LHS/RHS should be id<x>"); 8911 8912 if (lhs->getInterfaceType()) { 8913 // If both the right and left sides have qualifiers. 8914 for (auto *lhsProto : lhs->quals()) { 8915 bool match = false; 8916 8917 // when comparing an id<P> on rhs with a static type on lhs, 8918 // see if static class implements all of id's protocols, directly or 8919 // through its super class and categories. 8920 // First, lhs protocols in the qualifier list must be found, direct 8921 // or indirect in rhs's qualifier list or it is a mismatch. 8922 for (auto *rhsProto : rhs->quals()) { 8923 if (ProtocolCompatibleWithProtocol(lhsProto, rhsProto) || 8924 (compare && ProtocolCompatibleWithProtocol(rhsProto, lhsProto))) { 8925 match = true; 8926 break; 8927 } 8928 } 8929 if (!match) 8930 return false; 8931 } 8932 8933 // Static class's protocols, or its super class or category protocols 8934 // must be found, direct or indirect in rhs's qualifier list or it is a mismatch. 8935 if (ObjCInterfaceDecl *lhsID = lhs->getInterfaceDecl()) { 8936 llvm::SmallPtrSet<ObjCProtocolDecl *, 8> LHSInheritedProtocols; 8937 CollectInheritedProtocols(lhsID, LHSInheritedProtocols); 8938 // This is rather dubious but matches gcc's behavior. If lhs has 8939 // no type qualifier and its class has no static protocol(s) 8940 // assume that it is mismatch. 8941 if (LHSInheritedProtocols.empty() && lhs->qual_empty()) 8942 return false; 8943 for (auto *lhsProto : LHSInheritedProtocols) { 8944 bool match = false; 8945 for (auto *rhsProto : rhs->quals()) { 8946 if (ProtocolCompatibleWithProtocol(lhsProto, rhsProto) || 8947 (compare && ProtocolCompatibleWithProtocol(rhsProto, lhsProto))) { 8948 match = true; 8949 break; 8950 } 8951 } 8952 if (!match) 8953 return false; 8954 } 8955 } 8956 return true; 8957 } 8958 return false; 8959 } 8960 8961 /// canAssignObjCInterfaces - Return true if the two interface types are 8962 /// compatible for assignment from RHS to LHS. This handles validation of any 8963 /// protocol qualifiers on the LHS or RHS. 8964 bool ASTContext::canAssignObjCInterfaces(const ObjCObjectPointerType *LHSOPT, 8965 const ObjCObjectPointerType *RHSOPT) { 8966 const ObjCObjectType* LHS = LHSOPT->getObjectType(); 8967 const ObjCObjectType* RHS = RHSOPT->getObjectType(); 8968 8969 // If either type represents the built-in 'id' type, return true. 8970 if (LHS->isObjCUnqualifiedId() || RHS->isObjCUnqualifiedId()) 8971 return true; 8972 8973 // Function object that propagates a successful result or handles 8974 // __kindof types. 8975 auto finish = [&](bool succeeded) -> bool { 8976 if (succeeded) 8977 return true; 8978 8979 if (!RHS->isKindOfType()) 8980 return false; 8981 8982 // Strip off __kindof and protocol qualifiers, then check whether 8983 // we can assign the other way. 8984 return canAssignObjCInterfaces(RHSOPT->stripObjCKindOfTypeAndQuals(*this), 8985 LHSOPT->stripObjCKindOfTypeAndQuals(*this)); 8986 }; 8987 8988 // Casts from or to id<P> are allowed when the other side has compatible 8989 // protocols. 8990 if (LHS->isObjCQualifiedId() || RHS->isObjCQualifiedId()) { 8991 return finish(ObjCQualifiedIdTypesAreCompatible(LHSOPT, RHSOPT, false)); 8992 } 8993 8994 // Verify protocol compatibility for casts from Class<P1> to Class<P2>. 8995 if (LHS->isObjCQualifiedClass() && RHS->isObjCQualifiedClass()) { 8996 return finish(ObjCQualifiedClassTypesAreCompatible(LHSOPT, RHSOPT)); 8997 } 8998 8999 // Casts from Class to Class<Foo>, or vice-versa, are allowed. 9000 if (LHS->isObjCClass() && RHS->isObjCClass()) { 9001 return true; 9002 } 9003 9004 // If we have 2 user-defined types, fall into that path. 9005 if (LHS->getInterface() && RHS->getInterface()) { 9006 return finish(canAssignObjCInterfaces(LHS, RHS)); 9007 } 9008 9009 return false; 9010 } 9011 9012 /// canAssignObjCInterfacesInBlockPointer - This routine is specifically written 9013 /// for providing type-safety for objective-c pointers used to pass/return 9014 /// arguments in block literals. When passed as arguments, passing 'A*' where 9015 /// 'id' is expected is not OK. Passing 'Sub *" where 'Super *" is expected is 9016 /// not OK. For the return type, the opposite is not OK. 9017 bool ASTContext::canAssignObjCInterfacesInBlockPointer( 9018 const ObjCObjectPointerType *LHSOPT, 9019 const ObjCObjectPointerType *RHSOPT, 9020 bool BlockReturnType) { 9021 9022 // Function object that propagates a successful result or handles 9023 // __kindof types. 9024 auto finish = [&](bool succeeded) -> bool { 9025 if (succeeded) 9026 return true; 9027 9028 const ObjCObjectPointerType *Expected = BlockReturnType ? RHSOPT : LHSOPT; 9029 if (!Expected->isKindOfType()) 9030 return false; 9031 9032 // Strip off __kindof and protocol qualifiers, then check whether 9033 // we can assign the other way. 9034 return canAssignObjCInterfacesInBlockPointer( 9035 RHSOPT->stripObjCKindOfTypeAndQuals(*this), 9036 LHSOPT->stripObjCKindOfTypeAndQuals(*this), 9037 BlockReturnType); 9038 }; 9039 9040 if (RHSOPT->isObjCBuiltinType() || LHSOPT->isObjCIdType()) 9041 return true; 9042 9043 if (LHSOPT->isObjCBuiltinType()) { 9044 return finish(RHSOPT->isObjCBuiltinType() || 9045 RHSOPT->isObjCQualifiedIdType()); 9046 } 9047 9048 if (LHSOPT->isObjCQualifiedIdType() || RHSOPT->isObjCQualifiedIdType()) { 9049 if (getLangOpts().CompatibilityQualifiedIdBlockParamTypeChecking) 9050 // Use for block parameters previous type checking for compatibility. 9051 return finish(ObjCQualifiedIdTypesAreCompatible(LHSOPT, RHSOPT, false) || 9052 // Or corrected type checking as in non-compat mode. 9053 (!BlockReturnType && 9054 ObjCQualifiedIdTypesAreCompatible(RHSOPT, LHSOPT, false))); 9055 else 9056 return finish(ObjCQualifiedIdTypesAreCompatible( 9057 (BlockReturnType ? LHSOPT : RHSOPT), 9058 (BlockReturnType ? RHSOPT : LHSOPT), false)); 9059 } 9060 9061 const ObjCInterfaceType* LHS = LHSOPT->getInterfaceType(); 9062 const ObjCInterfaceType* RHS = RHSOPT->getInterfaceType(); 9063 if (LHS && RHS) { // We have 2 user-defined types. 9064 if (LHS != RHS) { 9065 if (LHS->getDecl()->isSuperClassOf(RHS->getDecl())) 9066 return finish(BlockReturnType); 9067 if (RHS->getDecl()->isSuperClassOf(LHS->getDecl())) 9068 return finish(!BlockReturnType); 9069 } 9070 else 9071 return true; 9072 } 9073 return false; 9074 } 9075 9076 /// Comparison routine for Objective-C protocols to be used with 9077 /// llvm::array_pod_sort. 9078 static int compareObjCProtocolsByName(ObjCProtocolDecl * const *lhs, 9079 ObjCProtocolDecl * const *rhs) { 9080 return (*lhs)->getName().compare((*rhs)->getName()); 9081 } 9082 9083 /// getIntersectionOfProtocols - This routine finds the intersection of set 9084 /// of protocols inherited from two distinct objective-c pointer objects with 9085 /// the given common base. 9086 /// It is used to build composite qualifier list of the composite type of 9087 /// the conditional expression involving two objective-c pointer objects. 9088 static 9089 void getIntersectionOfProtocols(ASTContext &Context, 9090 const ObjCInterfaceDecl *CommonBase, 9091 const ObjCObjectPointerType *LHSOPT, 9092 const ObjCObjectPointerType *RHSOPT, 9093 SmallVectorImpl<ObjCProtocolDecl *> &IntersectionSet) { 9094 9095 const ObjCObjectType* LHS = LHSOPT->getObjectType(); 9096 const ObjCObjectType* RHS = RHSOPT->getObjectType(); 9097 assert(LHS->getInterface() && "LHS must have an interface base"); 9098 assert(RHS->getInterface() && "RHS must have an interface base"); 9099 9100 // Add all of the protocols for the LHS. 9101 llvm::SmallPtrSet<ObjCProtocolDecl *, 8> LHSProtocolSet; 9102 9103 // Start with the protocol qualifiers. 9104 for (auto proto : LHS->quals()) { 9105 Context.CollectInheritedProtocols(proto, LHSProtocolSet); 9106 } 9107 9108 // Also add the protocols associated with the LHS interface. 9109 Context.CollectInheritedProtocols(LHS->getInterface(), LHSProtocolSet); 9110 9111 // Add all of the protocols for the RHS. 9112 llvm::SmallPtrSet<ObjCProtocolDecl *, 8> RHSProtocolSet; 9113 9114 // Start with the protocol qualifiers. 9115 for (auto proto : RHS->quals()) { 9116 Context.CollectInheritedProtocols(proto, RHSProtocolSet); 9117 } 9118 9119 // Also add the protocols associated with the RHS interface. 9120 Context.CollectInheritedProtocols(RHS->getInterface(), RHSProtocolSet); 9121 9122 // Compute the intersection of the collected protocol sets. 9123 for (auto proto : LHSProtocolSet) { 9124 if (RHSProtocolSet.count(proto)) 9125 IntersectionSet.push_back(proto); 9126 } 9127 9128 // Compute the set of protocols that is implied by either the common type or 9129 // the protocols within the intersection. 9130 llvm::SmallPtrSet<ObjCProtocolDecl *, 8> ImpliedProtocols; 9131 Context.CollectInheritedProtocols(CommonBase, ImpliedProtocols); 9132 9133 // Remove any implied protocols from the list of inherited protocols. 9134 if (!ImpliedProtocols.empty()) { 9135 IntersectionSet.erase( 9136 std::remove_if(IntersectionSet.begin(), 9137 IntersectionSet.end(), 9138 [&](ObjCProtocolDecl *proto) -> bool { 9139 return ImpliedProtocols.count(proto) > 0; 9140 }), 9141 IntersectionSet.end()); 9142 } 9143 9144 // Sort the remaining protocols by name. 9145 llvm::array_pod_sort(IntersectionSet.begin(), IntersectionSet.end(), 9146 compareObjCProtocolsByName); 9147 } 9148 9149 /// Determine whether the first type is a subtype of the second. 9150 static bool canAssignObjCObjectTypes(ASTContext &ctx, QualType lhs, 9151 QualType rhs) { 9152 // Common case: two object pointers. 9153 const auto *lhsOPT = lhs->getAs<ObjCObjectPointerType>(); 9154 const auto *rhsOPT = rhs->getAs<ObjCObjectPointerType>(); 9155 if (lhsOPT && rhsOPT) 9156 return ctx.canAssignObjCInterfaces(lhsOPT, rhsOPT); 9157 9158 // Two block pointers. 9159 const auto *lhsBlock = lhs->getAs<BlockPointerType>(); 9160 const auto *rhsBlock = rhs->getAs<BlockPointerType>(); 9161 if (lhsBlock && rhsBlock) 9162 return ctx.typesAreBlockPointerCompatible(lhs, rhs); 9163 9164 // If either is an unqualified 'id' and the other is a block, it's 9165 // acceptable. 9166 if ((lhsOPT && lhsOPT->isObjCIdType() && rhsBlock) || 9167 (rhsOPT && rhsOPT->isObjCIdType() && lhsBlock)) 9168 return true; 9169 9170 return false; 9171 } 9172 9173 // Check that the given Objective-C type argument lists are equivalent. 9174 static bool sameObjCTypeArgs(ASTContext &ctx, 9175 const ObjCInterfaceDecl *iface, 9176 ArrayRef<QualType> lhsArgs, 9177 ArrayRef<QualType> rhsArgs, 9178 bool stripKindOf) { 9179 if (lhsArgs.size() != rhsArgs.size()) 9180 return false; 9181 9182 ObjCTypeParamList *typeParams = iface->getTypeParamList(); 9183 for (unsigned i = 0, n = lhsArgs.size(); i != n; ++i) { 9184 if (ctx.hasSameType(lhsArgs[i], rhsArgs[i])) 9185 continue; 9186 9187 switch (typeParams->begin()[i]->getVariance()) { 9188 case ObjCTypeParamVariance::Invariant: 9189 if (!stripKindOf || 9190 !ctx.hasSameType(lhsArgs[i].stripObjCKindOfType(ctx), 9191 rhsArgs[i].stripObjCKindOfType(ctx))) { 9192 return false; 9193 } 9194 break; 9195 9196 case ObjCTypeParamVariance::Covariant: 9197 if (!canAssignObjCObjectTypes(ctx, lhsArgs[i], rhsArgs[i])) 9198 return false; 9199 break; 9200 9201 case ObjCTypeParamVariance::Contravariant: 9202 if (!canAssignObjCObjectTypes(ctx, rhsArgs[i], lhsArgs[i])) 9203 return false; 9204 break; 9205 } 9206 } 9207 9208 return true; 9209 } 9210 9211 QualType ASTContext::areCommonBaseCompatible( 9212 const ObjCObjectPointerType *Lptr, 9213 const ObjCObjectPointerType *Rptr) { 9214 const ObjCObjectType *LHS = Lptr->getObjectType(); 9215 const ObjCObjectType *RHS = Rptr->getObjectType(); 9216 const ObjCInterfaceDecl* LDecl = LHS->getInterface(); 9217 const ObjCInterfaceDecl* RDecl = RHS->getInterface(); 9218 9219 if (!LDecl || !RDecl) 9220 return {}; 9221 9222 // When either LHS or RHS is a kindof type, we should return a kindof type. 9223 // For example, for common base of kindof(ASub1) and kindof(ASub2), we return 9224 // kindof(A). 9225 bool anyKindOf = LHS->isKindOfType() || RHS->isKindOfType(); 9226 9227 // Follow the left-hand side up the class hierarchy until we either hit a 9228 // root or find the RHS. Record the ancestors in case we don't find it. 9229 llvm::SmallDenseMap<const ObjCInterfaceDecl *, const ObjCObjectType *, 4> 9230 LHSAncestors; 9231 while (true) { 9232 // Record this ancestor. We'll need this if the common type isn't in the 9233 // path from the LHS to the root. 9234 LHSAncestors[LHS->getInterface()->getCanonicalDecl()] = LHS; 9235 9236 if (declaresSameEntity(LHS->getInterface(), RDecl)) { 9237 // Get the type arguments. 9238 ArrayRef<QualType> LHSTypeArgs = LHS->getTypeArgsAsWritten(); 9239 bool anyChanges = false; 9240 if (LHS->isSpecialized() && RHS->isSpecialized()) { 9241 // Both have type arguments, compare them. 9242 if (!sameObjCTypeArgs(*this, LHS->getInterface(), 9243 LHS->getTypeArgs(), RHS->getTypeArgs(), 9244 /*stripKindOf=*/true)) 9245 return {}; 9246 } else if (LHS->isSpecialized() != RHS->isSpecialized()) { 9247 // If only one has type arguments, the result will not have type 9248 // arguments. 9249 LHSTypeArgs = {}; 9250 anyChanges = true; 9251 } 9252 9253 // Compute the intersection of protocols. 9254 SmallVector<ObjCProtocolDecl *, 8> Protocols; 9255 getIntersectionOfProtocols(*this, LHS->getInterface(), Lptr, Rptr, 9256 Protocols); 9257 if (!Protocols.empty()) 9258 anyChanges = true; 9259 9260 // If anything in the LHS will have changed, build a new result type. 9261 // If we need to return a kindof type but LHS is not a kindof type, we 9262 // build a new result type. 9263 if (anyChanges || LHS->isKindOfType() != anyKindOf) { 9264 QualType Result = getObjCInterfaceType(LHS->getInterface()); 9265 Result = getObjCObjectType(Result, LHSTypeArgs, Protocols, 9266 anyKindOf || LHS->isKindOfType()); 9267 return getObjCObjectPointerType(Result); 9268 } 9269 9270 return getObjCObjectPointerType(QualType(LHS, 0)); 9271 } 9272 9273 // Find the superclass. 9274 QualType LHSSuperType = LHS->getSuperClassType(); 9275 if (LHSSuperType.isNull()) 9276 break; 9277 9278 LHS = LHSSuperType->castAs<ObjCObjectType>(); 9279 } 9280 9281 // We didn't find anything by following the LHS to its root; now check 9282 // the RHS against the cached set of ancestors. 9283 while (true) { 9284 auto KnownLHS = LHSAncestors.find(RHS->getInterface()->getCanonicalDecl()); 9285 if (KnownLHS != LHSAncestors.end()) { 9286 LHS = KnownLHS->second; 9287 9288 // Get the type arguments. 9289 ArrayRef<QualType> RHSTypeArgs = RHS->getTypeArgsAsWritten(); 9290 bool anyChanges = false; 9291 if (LHS->isSpecialized() && RHS->isSpecialized()) { 9292 // Both have type arguments, compare them. 9293 if (!sameObjCTypeArgs(*this, LHS->getInterface(), 9294 LHS->getTypeArgs(), RHS->getTypeArgs(), 9295 /*stripKindOf=*/true)) 9296 return {}; 9297 } else if (LHS->isSpecialized() != RHS->isSpecialized()) { 9298 // If only one has type arguments, the result will not have type 9299 // arguments. 9300 RHSTypeArgs = {}; 9301 anyChanges = true; 9302 } 9303 9304 // Compute the intersection of protocols. 9305 SmallVector<ObjCProtocolDecl *, 8> Protocols; 9306 getIntersectionOfProtocols(*this, RHS->getInterface(), Lptr, Rptr, 9307 Protocols); 9308 if (!Protocols.empty()) 9309 anyChanges = true; 9310 9311 // If we need to return a kindof type but RHS is not a kindof type, we 9312 // build a new result type. 9313 if (anyChanges || RHS->isKindOfType() != anyKindOf) { 9314 QualType Result = getObjCInterfaceType(RHS->getInterface()); 9315 Result = getObjCObjectType(Result, RHSTypeArgs, Protocols, 9316 anyKindOf || RHS->isKindOfType()); 9317 return getObjCObjectPointerType(Result); 9318 } 9319 9320 return getObjCObjectPointerType(QualType(RHS, 0)); 9321 } 9322 9323 // Find the superclass of the RHS. 9324 QualType RHSSuperType = RHS->getSuperClassType(); 9325 if (RHSSuperType.isNull()) 9326 break; 9327 9328 RHS = RHSSuperType->castAs<ObjCObjectType>(); 9329 } 9330 9331 return {}; 9332 } 9333 9334 bool ASTContext::canAssignObjCInterfaces(const ObjCObjectType *LHS, 9335 const ObjCObjectType *RHS) { 9336 assert(LHS->getInterface() && "LHS is not an interface type"); 9337 assert(RHS->getInterface() && "RHS is not an interface type"); 9338 9339 // Verify that the base decls are compatible: the RHS must be a subclass of 9340 // the LHS. 9341 ObjCInterfaceDecl *LHSInterface = LHS->getInterface(); 9342 bool IsSuperClass = LHSInterface->isSuperClassOf(RHS->getInterface()); 9343 if (!IsSuperClass) 9344 return false; 9345 9346 // If the LHS has protocol qualifiers, determine whether all of them are 9347 // satisfied by the RHS (i.e., the RHS has a superset of the protocols in the 9348 // LHS). 9349 if (LHS->getNumProtocols() > 0) { 9350 // OK if conversion of LHS to SuperClass results in narrowing of types 9351 // ; i.e., SuperClass may implement at least one of the protocols 9352 // in LHS's protocol list. Example, SuperObj<P1> = lhs<P1,P2> is ok. 9353 // But not SuperObj<P1,P2,P3> = lhs<P1,P2>. 9354 llvm::SmallPtrSet<ObjCProtocolDecl *, 8> SuperClassInheritedProtocols; 9355 CollectInheritedProtocols(RHS->getInterface(), SuperClassInheritedProtocols); 9356 // Also, if RHS has explicit quelifiers, include them for comparing with LHS's 9357 // qualifiers. 9358 for (auto *RHSPI : RHS->quals()) 9359 CollectInheritedProtocols(RHSPI, SuperClassInheritedProtocols); 9360 // If there is no protocols associated with RHS, it is not a match. 9361 if (SuperClassInheritedProtocols.empty()) 9362 return false; 9363 9364 for (const auto *LHSProto : LHS->quals()) { 9365 bool SuperImplementsProtocol = false; 9366 for (auto *SuperClassProto : SuperClassInheritedProtocols) 9367 if (SuperClassProto->lookupProtocolNamed(LHSProto->getIdentifier())) { 9368 SuperImplementsProtocol = true; 9369 break; 9370 } 9371 if (!SuperImplementsProtocol) 9372 return false; 9373 } 9374 } 9375 9376 // If the LHS is specialized, we may need to check type arguments. 9377 if (LHS->isSpecialized()) { 9378 // Follow the superclass chain until we've matched the LHS class in the 9379 // hierarchy. This substitutes type arguments through. 9380 const ObjCObjectType *RHSSuper = RHS; 9381 while (!declaresSameEntity(RHSSuper->getInterface(), LHSInterface)) 9382 RHSSuper = RHSSuper->getSuperClassType()->castAs<ObjCObjectType>(); 9383 9384 // If the RHS is specializd, compare type arguments. 9385 if (RHSSuper->isSpecialized() && 9386 !sameObjCTypeArgs(*this, LHS->getInterface(), 9387 LHS->getTypeArgs(), RHSSuper->getTypeArgs(), 9388 /*stripKindOf=*/true)) { 9389 return false; 9390 } 9391 } 9392 9393 return true; 9394 } 9395 9396 bool ASTContext::areComparableObjCPointerTypes(QualType LHS, QualType RHS) { 9397 // get the "pointed to" types 9398 const auto *LHSOPT = LHS->getAs<ObjCObjectPointerType>(); 9399 const auto *RHSOPT = RHS->getAs<ObjCObjectPointerType>(); 9400 9401 if (!LHSOPT || !RHSOPT) 9402 return false; 9403 9404 return canAssignObjCInterfaces(LHSOPT, RHSOPT) || 9405 canAssignObjCInterfaces(RHSOPT, LHSOPT); 9406 } 9407 9408 bool ASTContext::canBindObjCObjectType(QualType To, QualType From) { 9409 return canAssignObjCInterfaces( 9410 getObjCObjectPointerType(To)->castAs<ObjCObjectPointerType>(), 9411 getObjCObjectPointerType(From)->castAs<ObjCObjectPointerType>()); 9412 } 9413 9414 /// typesAreCompatible - C99 6.7.3p9: For two qualified types to be compatible, 9415 /// both shall have the identically qualified version of a compatible type. 9416 /// C99 6.2.7p1: Two types have compatible types if their types are the 9417 /// same. See 6.7.[2,3,5] for additional rules. 9418 bool ASTContext::typesAreCompatible(QualType LHS, QualType RHS, 9419 bool CompareUnqualified) { 9420 if (getLangOpts().CPlusPlus) 9421 return hasSameType(LHS, RHS); 9422 9423 return !mergeTypes(LHS, RHS, false, CompareUnqualified).isNull(); 9424 } 9425 9426 bool ASTContext::propertyTypesAreCompatible(QualType LHS, QualType RHS) { 9427 return typesAreCompatible(LHS, RHS); 9428 } 9429 9430 bool ASTContext::typesAreBlockPointerCompatible(QualType LHS, QualType RHS) { 9431 return !mergeTypes(LHS, RHS, true).isNull(); 9432 } 9433 9434 /// mergeTransparentUnionType - if T is a transparent union type and a member 9435 /// of T is compatible with SubType, return the merged type, else return 9436 /// QualType() 9437 QualType ASTContext::mergeTransparentUnionType(QualType T, QualType SubType, 9438 bool OfBlockPointer, 9439 bool Unqualified) { 9440 if (const RecordType *UT = T->getAsUnionType()) { 9441 RecordDecl *UD = UT->getDecl(); 9442 if (UD->hasAttr<TransparentUnionAttr>()) { 9443 for (const auto *I : UD->fields()) { 9444 QualType ET = I->getType().getUnqualifiedType(); 9445 QualType MT = mergeTypes(ET, SubType, OfBlockPointer, Unqualified); 9446 if (!MT.isNull()) 9447 return MT; 9448 } 9449 } 9450 } 9451 9452 return {}; 9453 } 9454 9455 /// mergeFunctionParameterTypes - merge two types which appear as function 9456 /// parameter types 9457 QualType ASTContext::mergeFunctionParameterTypes(QualType lhs, QualType rhs, 9458 bool OfBlockPointer, 9459 bool Unqualified) { 9460 // GNU extension: two types are compatible if they appear as a function 9461 // argument, one of the types is a transparent union type and the other 9462 // type is compatible with a union member 9463 QualType lmerge = mergeTransparentUnionType(lhs, rhs, OfBlockPointer, 9464 Unqualified); 9465 if (!lmerge.isNull()) 9466 return lmerge; 9467 9468 QualType rmerge = mergeTransparentUnionType(rhs, lhs, OfBlockPointer, 9469 Unqualified); 9470 if (!rmerge.isNull()) 9471 return rmerge; 9472 9473 return mergeTypes(lhs, rhs, OfBlockPointer, Unqualified); 9474 } 9475 9476 QualType ASTContext::mergeFunctionTypes(QualType lhs, QualType rhs, 9477 bool OfBlockPointer, bool Unqualified, 9478 bool AllowCXX) { 9479 const auto *lbase = lhs->castAs<FunctionType>(); 9480 const auto *rbase = rhs->castAs<FunctionType>(); 9481 const auto *lproto = dyn_cast<FunctionProtoType>(lbase); 9482 const auto *rproto = dyn_cast<FunctionProtoType>(rbase); 9483 bool allLTypes = true; 9484 bool allRTypes = true; 9485 9486 // Check return type 9487 QualType retType; 9488 if (OfBlockPointer) { 9489 QualType RHS = rbase->getReturnType(); 9490 QualType LHS = lbase->getReturnType(); 9491 bool UnqualifiedResult = Unqualified; 9492 if (!UnqualifiedResult) 9493 UnqualifiedResult = (!RHS.hasQualifiers() && LHS.hasQualifiers()); 9494 retType = mergeTypes(LHS, RHS, true, UnqualifiedResult, true); 9495 } 9496 else 9497 retType = mergeTypes(lbase->getReturnType(), rbase->getReturnType(), false, 9498 Unqualified); 9499 if (retType.isNull()) 9500 return {}; 9501 9502 if (Unqualified) 9503 retType = retType.getUnqualifiedType(); 9504 9505 CanQualType LRetType = getCanonicalType(lbase->getReturnType()); 9506 CanQualType RRetType = getCanonicalType(rbase->getReturnType()); 9507 if (Unqualified) { 9508 LRetType = LRetType.getUnqualifiedType(); 9509 RRetType = RRetType.getUnqualifiedType(); 9510 } 9511 9512 if (getCanonicalType(retType) != LRetType) 9513 allLTypes = false; 9514 if (getCanonicalType(retType) != RRetType) 9515 allRTypes = false; 9516 9517 // FIXME: double check this 9518 // FIXME: should we error if lbase->getRegParmAttr() != 0 && 9519 // rbase->getRegParmAttr() != 0 && 9520 // lbase->getRegParmAttr() != rbase->getRegParmAttr()? 9521 FunctionType::ExtInfo lbaseInfo = lbase->getExtInfo(); 9522 FunctionType::ExtInfo rbaseInfo = rbase->getExtInfo(); 9523 9524 // Compatible functions must have compatible calling conventions 9525 if (lbaseInfo.getCC() != rbaseInfo.getCC()) 9526 return {}; 9527 9528 // Regparm is part of the calling convention. 9529 if (lbaseInfo.getHasRegParm() != rbaseInfo.getHasRegParm()) 9530 return {}; 9531 if (lbaseInfo.getRegParm() != rbaseInfo.getRegParm()) 9532 return {}; 9533 9534 if (lbaseInfo.getProducesResult() != rbaseInfo.getProducesResult()) 9535 return {}; 9536 if (lbaseInfo.getNoCallerSavedRegs() != rbaseInfo.getNoCallerSavedRegs()) 9537 return {}; 9538 if (lbaseInfo.getNoCfCheck() != rbaseInfo.getNoCfCheck()) 9539 return {}; 9540 9541 // FIXME: some uses, e.g. conditional exprs, really want this to be 'both'. 9542 bool NoReturn = lbaseInfo.getNoReturn() || rbaseInfo.getNoReturn(); 9543 9544 if (lbaseInfo.getNoReturn() != NoReturn) 9545 allLTypes = false; 9546 if (rbaseInfo.getNoReturn() != NoReturn) 9547 allRTypes = false; 9548 9549 FunctionType::ExtInfo einfo = lbaseInfo.withNoReturn(NoReturn); 9550 9551 if (lproto && rproto) { // two C99 style function prototypes 9552 assert((AllowCXX || 9553 (!lproto->hasExceptionSpec() && !rproto->hasExceptionSpec())) && 9554 "C++ shouldn't be here"); 9555 // Compatible functions must have the same number of parameters 9556 if (lproto->getNumParams() != rproto->getNumParams()) 9557 return {}; 9558 9559 // Variadic and non-variadic functions aren't compatible 9560 if (lproto->isVariadic() != rproto->isVariadic()) 9561 return {}; 9562 9563 if (lproto->getMethodQuals() != rproto->getMethodQuals()) 9564 return {}; 9565 9566 SmallVector<FunctionProtoType::ExtParameterInfo, 4> newParamInfos; 9567 bool canUseLeft, canUseRight; 9568 if (!mergeExtParameterInfo(lproto, rproto, canUseLeft, canUseRight, 9569 newParamInfos)) 9570 return {}; 9571 9572 if (!canUseLeft) 9573 allLTypes = false; 9574 if (!canUseRight) 9575 allRTypes = false; 9576 9577 // Check parameter type compatibility 9578 SmallVector<QualType, 10> types; 9579 for (unsigned i = 0, n = lproto->getNumParams(); i < n; i++) { 9580 QualType lParamType = lproto->getParamType(i).getUnqualifiedType(); 9581 QualType rParamType = rproto->getParamType(i).getUnqualifiedType(); 9582 QualType paramType = mergeFunctionParameterTypes( 9583 lParamType, rParamType, OfBlockPointer, Unqualified); 9584 if (paramType.isNull()) 9585 return {}; 9586 9587 if (Unqualified) 9588 paramType = paramType.getUnqualifiedType(); 9589 9590 types.push_back(paramType); 9591 if (Unqualified) { 9592 lParamType = lParamType.getUnqualifiedType(); 9593 rParamType = rParamType.getUnqualifiedType(); 9594 } 9595 9596 if (getCanonicalType(paramType) != getCanonicalType(lParamType)) 9597 allLTypes = false; 9598 if (getCanonicalType(paramType) != getCanonicalType(rParamType)) 9599 allRTypes = false; 9600 } 9601 9602 if (allLTypes) return lhs; 9603 if (allRTypes) return rhs; 9604 9605 FunctionProtoType::ExtProtoInfo EPI = lproto->getExtProtoInfo(); 9606 EPI.ExtInfo = einfo; 9607 EPI.ExtParameterInfos = 9608 newParamInfos.empty() ? nullptr : newParamInfos.data(); 9609 return getFunctionType(retType, types, EPI); 9610 } 9611 9612 if (lproto) allRTypes = false; 9613 if (rproto) allLTypes = false; 9614 9615 const FunctionProtoType *proto = lproto ? lproto : rproto; 9616 if (proto) { 9617 assert((AllowCXX || !proto->hasExceptionSpec()) && "C++ shouldn't be here"); 9618 if (proto->isVariadic()) 9619 return {}; 9620 // Check that the types are compatible with the types that 9621 // would result from default argument promotions (C99 6.7.5.3p15). 9622 // The only types actually affected are promotable integer 9623 // types and floats, which would be passed as a different 9624 // type depending on whether the prototype is visible. 9625 for (unsigned i = 0, n = proto->getNumParams(); i < n; ++i) { 9626 QualType paramTy = proto->getParamType(i); 9627 9628 // Look at the converted type of enum types, since that is the type used 9629 // to pass enum values. 9630 if (const auto *Enum = paramTy->getAs<EnumType>()) { 9631 paramTy = Enum->getDecl()->getIntegerType(); 9632 if (paramTy.isNull()) 9633 return {}; 9634 } 9635 9636 if (paramTy->isPromotableIntegerType() || 9637 getCanonicalType(paramTy).getUnqualifiedType() == FloatTy) 9638 return {}; 9639 } 9640 9641 if (allLTypes) return lhs; 9642 if (allRTypes) return rhs; 9643 9644 FunctionProtoType::ExtProtoInfo EPI = proto->getExtProtoInfo(); 9645 EPI.ExtInfo = einfo; 9646 return getFunctionType(retType, proto->getParamTypes(), EPI); 9647 } 9648 9649 if (allLTypes) return lhs; 9650 if (allRTypes) return rhs; 9651 return getFunctionNoProtoType(retType, einfo); 9652 } 9653 9654 /// Given that we have an enum type and a non-enum type, try to merge them. 9655 static QualType mergeEnumWithInteger(ASTContext &Context, const EnumType *ET, 9656 QualType other, bool isBlockReturnType) { 9657 // C99 6.7.2.2p4: Each enumerated type shall be compatible with char, 9658 // a signed integer type, or an unsigned integer type. 9659 // Compatibility is based on the underlying type, not the promotion 9660 // type. 9661 QualType underlyingType = ET->getDecl()->getIntegerType(); 9662 if (underlyingType.isNull()) 9663 return {}; 9664 if (Context.hasSameType(underlyingType, other)) 9665 return other; 9666 9667 // In block return types, we're more permissive and accept any 9668 // integral type of the same size. 9669 if (isBlockReturnType && other->isIntegerType() && 9670 Context.getTypeSize(underlyingType) == Context.getTypeSize(other)) 9671 return other; 9672 9673 return {}; 9674 } 9675 9676 QualType ASTContext::mergeTypes(QualType LHS, QualType RHS, 9677 bool OfBlockPointer, 9678 bool Unqualified, bool BlockReturnType) { 9679 // C++ [expr]: If an expression initially has the type "reference to T", the 9680 // type is adjusted to "T" prior to any further analysis, the expression 9681 // designates the object or function denoted by the reference, and the 9682 // expression is an lvalue unless the reference is an rvalue reference and 9683 // the expression is a function call (possibly inside parentheses). 9684 if (LHS->getAs<ReferenceType>() || RHS->getAs<ReferenceType>()) 9685 return {}; 9686 9687 if (Unqualified) { 9688 LHS = LHS.getUnqualifiedType(); 9689 RHS = RHS.getUnqualifiedType(); 9690 } 9691 9692 QualType LHSCan = getCanonicalType(LHS), 9693 RHSCan = getCanonicalType(RHS); 9694 9695 // If two types are identical, they are compatible. 9696 if (LHSCan == RHSCan) 9697 return LHS; 9698 9699 // If the qualifiers are different, the types aren't compatible... mostly. 9700 Qualifiers LQuals = LHSCan.getLocalQualifiers(); 9701 Qualifiers RQuals = RHSCan.getLocalQualifiers(); 9702 if (LQuals != RQuals) { 9703 // If any of these qualifiers are different, we have a type 9704 // mismatch. 9705 if (LQuals.getCVRQualifiers() != RQuals.getCVRQualifiers() || 9706 LQuals.getAddressSpace() != RQuals.getAddressSpace() || 9707 LQuals.getObjCLifetime() != RQuals.getObjCLifetime() || 9708 LQuals.hasUnaligned() != RQuals.hasUnaligned()) 9709 return {}; 9710 9711 // Exactly one GC qualifier difference is allowed: __strong is 9712 // okay if the other type has no GC qualifier but is an Objective 9713 // C object pointer (i.e. implicitly strong by default). We fix 9714 // this by pretending that the unqualified type was actually 9715 // qualified __strong. 9716 Qualifiers::GC GC_L = LQuals.getObjCGCAttr(); 9717 Qualifiers::GC GC_R = RQuals.getObjCGCAttr(); 9718 assert((GC_L != GC_R) && "unequal qualifier sets had only equal elements"); 9719 9720 if (GC_L == Qualifiers::Weak || GC_R == Qualifiers::Weak) 9721 return {}; 9722 9723 if (GC_L == Qualifiers::Strong && RHSCan->isObjCObjectPointerType()) { 9724 return mergeTypes(LHS, getObjCGCQualType(RHS, Qualifiers::Strong)); 9725 } 9726 if (GC_R == Qualifiers::Strong && LHSCan->isObjCObjectPointerType()) { 9727 return mergeTypes(getObjCGCQualType(LHS, Qualifiers::Strong), RHS); 9728 } 9729 return {}; 9730 } 9731 9732 // Okay, qualifiers are equal. 9733 9734 Type::TypeClass LHSClass = LHSCan->getTypeClass(); 9735 Type::TypeClass RHSClass = RHSCan->getTypeClass(); 9736 9737 // We want to consider the two function types to be the same for these 9738 // comparisons, just force one to the other. 9739 if (LHSClass == Type::FunctionProto) LHSClass = Type::FunctionNoProto; 9740 if (RHSClass == Type::FunctionProto) RHSClass = Type::FunctionNoProto; 9741 9742 // Same as above for arrays 9743 if (LHSClass == Type::VariableArray || LHSClass == Type::IncompleteArray) 9744 LHSClass = Type::ConstantArray; 9745 if (RHSClass == Type::VariableArray || RHSClass == Type::IncompleteArray) 9746 RHSClass = Type::ConstantArray; 9747 9748 // ObjCInterfaces are just specialized ObjCObjects. 9749 if (LHSClass == Type::ObjCInterface) LHSClass = Type::ObjCObject; 9750 if (RHSClass == Type::ObjCInterface) RHSClass = Type::ObjCObject; 9751 9752 // Canonicalize ExtVector -> Vector. 9753 if (LHSClass == Type::ExtVector) LHSClass = Type::Vector; 9754 if (RHSClass == Type::ExtVector) RHSClass = Type::Vector; 9755 9756 // If the canonical type classes don't match. 9757 if (LHSClass != RHSClass) { 9758 // Note that we only have special rules for turning block enum 9759 // returns into block int returns, not vice-versa. 9760 if (const auto *ETy = LHS->getAs<EnumType>()) { 9761 return mergeEnumWithInteger(*this, ETy, RHS, false); 9762 } 9763 if (const EnumType* ETy = RHS->getAs<EnumType>()) { 9764 return mergeEnumWithInteger(*this, ETy, LHS, BlockReturnType); 9765 } 9766 // allow block pointer type to match an 'id' type. 9767 if (OfBlockPointer && !BlockReturnType) { 9768 if (LHS->isObjCIdType() && RHS->isBlockPointerType()) 9769 return LHS; 9770 if (RHS->isObjCIdType() && LHS->isBlockPointerType()) 9771 return RHS; 9772 } 9773 9774 return {}; 9775 } 9776 9777 // The canonical type classes match. 9778 switch (LHSClass) { 9779 #define TYPE(Class, Base) 9780 #define ABSTRACT_TYPE(Class, Base) 9781 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(Class, Base) case Type::Class: 9782 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class: 9783 #define DEPENDENT_TYPE(Class, Base) case Type::Class: 9784 #include "clang/AST/TypeNodes.inc" 9785 llvm_unreachable("Non-canonical and dependent types shouldn't get here"); 9786 9787 case Type::Auto: 9788 case Type::DeducedTemplateSpecialization: 9789 case Type::LValueReference: 9790 case Type::RValueReference: 9791 case Type::MemberPointer: 9792 llvm_unreachable("C++ should never be in mergeTypes"); 9793 9794 case Type::ObjCInterface: 9795 case Type::IncompleteArray: 9796 case Type::VariableArray: 9797 case Type::FunctionProto: 9798 case Type::ExtVector: 9799 llvm_unreachable("Types are eliminated above"); 9800 9801 case Type::Pointer: 9802 { 9803 // Merge two pointer types, while trying to preserve typedef info 9804 QualType LHSPointee = LHS->castAs<PointerType>()->getPointeeType(); 9805 QualType RHSPointee = RHS->castAs<PointerType>()->getPointeeType(); 9806 if (Unqualified) { 9807 LHSPointee = LHSPointee.getUnqualifiedType(); 9808 RHSPointee = RHSPointee.getUnqualifiedType(); 9809 } 9810 QualType ResultType = mergeTypes(LHSPointee, RHSPointee, false, 9811 Unqualified); 9812 if (ResultType.isNull()) 9813 return {}; 9814 if (getCanonicalType(LHSPointee) == getCanonicalType(ResultType)) 9815 return LHS; 9816 if (getCanonicalType(RHSPointee) == getCanonicalType(ResultType)) 9817 return RHS; 9818 return getPointerType(ResultType); 9819 } 9820 case Type::BlockPointer: 9821 { 9822 // Merge two block pointer types, while trying to preserve typedef info 9823 QualType LHSPointee = LHS->castAs<BlockPointerType>()->getPointeeType(); 9824 QualType RHSPointee = RHS->castAs<BlockPointerType>()->getPointeeType(); 9825 if (Unqualified) { 9826 LHSPointee = LHSPointee.getUnqualifiedType(); 9827 RHSPointee = RHSPointee.getUnqualifiedType(); 9828 } 9829 if (getLangOpts().OpenCL) { 9830 Qualifiers LHSPteeQual = LHSPointee.getQualifiers(); 9831 Qualifiers RHSPteeQual = RHSPointee.getQualifiers(); 9832 // Blocks can't be an expression in a ternary operator (OpenCL v2.0 9833 // 6.12.5) thus the following check is asymmetric. 9834 if (!LHSPteeQual.isAddressSpaceSupersetOf(RHSPteeQual)) 9835 return {}; 9836 LHSPteeQual.removeAddressSpace(); 9837 RHSPteeQual.removeAddressSpace(); 9838 LHSPointee = 9839 QualType(LHSPointee.getTypePtr(), LHSPteeQual.getAsOpaqueValue()); 9840 RHSPointee = 9841 QualType(RHSPointee.getTypePtr(), RHSPteeQual.getAsOpaqueValue()); 9842 } 9843 QualType ResultType = mergeTypes(LHSPointee, RHSPointee, OfBlockPointer, 9844 Unqualified); 9845 if (ResultType.isNull()) 9846 return {}; 9847 if (getCanonicalType(LHSPointee) == getCanonicalType(ResultType)) 9848 return LHS; 9849 if (getCanonicalType(RHSPointee) == getCanonicalType(ResultType)) 9850 return RHS; 9851 return getBlockPointerType(ResultType); 9852 } 9853 case Type::Atomic: 9854 { 9855 // Merge two pointer types, while trying to preserve typedef info 9856 QualType LHSValue = LHS->castAs<AtomicType>()->getValueType(); 9857 QualType RHSValue = RHS->castAs<AtomicType>()->getValueType(); 9858 if (Unqualified) { 9859 LHSValue = LHSValue.getUnqualifiedType(); 9860 RHSValue = RHSValue.getUnqualifiedType(); 9861 } 9862 QualType ResultType = mergeTypes(LHSValue, RHSValue, false, 9863 Unqualified); 9864 if (ResultType.isNull()) 9865 return {}; 9866 if (getCanonicalType(LHSValue) == getCanonicalType(ResultType)) 9867 return LHS; 9868 if (getCanonicalType(RHSValue) == getCanonicalType(ResultType)) 9869 return RHS; 9870 return getAtomicType(ResultType); 9871 } 9872 case Type::ConstantArray: 9873 { 9874 const ConstantArrayType* LCAT = getAsConstantArrayType(LHS); 9875 const ConstantArrayType* RCAT = getAsConstantArrayType(RHS); 9876 if (LCAT && RCAT && RCAT->getSize() != LCAT->getSize()) 9877 return {}; 9878 9879 QualType LHSElem = getAsArrayType(LHS)->getElementType(); 9880 QualType RHSElem = getAsArrayType(RHS)->getElementType(); 9881 if (Unqualified) { 9882 LHSElem = LHSElem.getUnqualifiedType(); 9883 RHSElem = RHSElem.getUnqualifiedType(); 9884 } 9885 9886 QualType ResultType = mergeTypes(LHSElem, RHSElem, false, Unqualified); 9887 if (ResultType.isNull()) 9888 return {}; 9889 9890 const VariableArrayType* LVAT = getAsVariableArrayType(LHS); 9891 const VariableArrayType* RVAT = getAsVariableArrayType(RHS); 9892 9893 // If either side is a variable array, and both are complete, check whether 9894 // the current dimension is definite. 9895 if (LVAT || RVAT) { 9896 auto SizeFetch = [this](const VariableArrayType* VAT, 9897 const ConstantArrayType* CAT) 9898 -> std::pair<bool,llvm::APInt> { 9899 if (VAT) { 9900 Optional<llvm::APSInt> TheInt; 9901 Expr *E = VAT->getSizeExpr(); 9902 if (E && (TheInt = E->getIntegerConstantExpr(*this))) 9903 return std::make_pair(true, *TheInt); 9904 return std::make_pair(false, llvm::APSInt()); 9905 } 9906 if (CAT) 9907 return std::make_pair(true, CAT->getSize()); 9908 return std::make_pair(false, llvm::APInt()); 9909 }; 9910 9911 bool HaveLSize, HaveRSize; 9912 llvm::APInt LSize, RSize; 9913 std::tie(HaveLSize, LSize) = SizeFetch(LVAT, LCAT); 9914 std::tie(HaveRSize, RSize) = SizeFetch(RVAT, RCAT); 9915 if (HaveLSize && HaveRSize && !llvm::APInt::isSameValue(LSize, RSize)) 9916 return {}; // Definite, but unequal, array dimension 9917 } 9918 9919 if (LCAT && getCanonicalType(LHSElem) == getCanonicalType(ResultType)) 9920 return LHS; 9921 if (RCAT && getCanonicalType(RHSElem) == getCanonicalType(ResultType)) 9922 return RHS; 9923 if (LCAT) 9924 return getConstantArrayType(ResultType, LCAT->getSize(), 9925 LCAT->getSizeExpr(), 9926 ArrayType::ArraySizeModifier(), 0); 9927 if (RCAT) 9928 return getConstantArrayType(ResultType, RCAT->getSize(), 9929 RCAT->getSizeExpr(), 9930 ArrayType::ArraySizeModifier(), 0); 9931 if (LVAT && getCanonicalType(LHSElem) == getCanonicalType(ResultType)) 9932 return LHS; 9933 if (RVAT && getCanonicalType(RHSElem) == getCanonicalType(ResultType)) 9934 return RHS; 9935 if (LVAT) { 9936 // FIXME: This isn't correct! But tricky to implement because 9937 // the array's size has to be the size of LHS, but the type 9938 // has to be different. 9939 return LHS; 9940 } 9941 if (RVAT) { 9942 // FIXME: This isn't correct! But tricky to implement because 9943 // the array's size has to be the size of RHS, but the type 9944 // has to be different. 9945 return RHS; 9946 } 9947 if (getCanonicalType(LHSElem) == getCanonicalType(ResultType)) return LHS; 9948 if (getCanonicalType(RHSElem) == getCanonicalType(ResultType)) return RHS; 9949 return getIncompleteArrayType(ResultType, 9950 ArrayType::ArraySizeModifier(), 0); 9951 } 9952 case Type::FunctionNoProto: 9953 return mergeFunctionTypes(LHS, RHS, OfBlockPointer, Unqualified); 9954 case Type::Record: 9955 case Type::Enum: 9956 return {}; 9957 case Type::Builtin: 9958 // Only exactly equal builtin types are compatible, which is tested above. 9959 return {}; 9960 case Type::Complex: 9961 // Distinct complex types are incompatible. 9962 return {}; 9963 case Type::Vector: 9964 // FIXME: The merged type should be an ExtVector! 9965 if (areCompatVectorTypes(LHSCan->castAs<VectorType>(), 9966 RHSCan->castAs<VectorType>())) 9967 return LHS; 9968 return {}; 9969 case Type::ConstantMatrix: 9970 if (areCompatMatrixTypes(LHSCan->castAs<ConstantMatrixType>(), 9971 RHSCan->castAs<ConstantMatrixType>())) 9972 return LHS; 9973 return {}; 9974 case Type::ObjCObject: { 9975 // Check if the types are assignment compatible. 9976 // FIXME: This should be type compatibility, e.g. whether 9977 // "LHS x; RHS x;" at global scope is legal. 9978 if (canAssignObjCInterfaces(LHS->castAs<ObjCObjectType>(), 9979 RHS->castAs<ObjCObjectType>())) 9980 return LHS; 9981 return {}; 9982 } 9983 case Type::ObjCObjectPointer: 9984 if (OfBlockPointer) { 9985 if (canAssignObjCInterfacesInBlockPointer( 9986 LHS->castAs<ObjCObjectPointerType>(), 9987 RHS->castAs<ObjCObjectPointerType>(), BlockReturnType)) 9988 return LHS; 9989 return {}; 9990 } 9991 if (canAssignObjCInterfaces(LHS->castAs<ObjCObjectPointerType>(), 9992 RHS->castAs<ObjCObjectPointerType>())) 9993 return LHS; 9994 return {}; 9995 case Type::Pipe: 9996 assert(LHS != RHS && 9997 "Equivalent pipe types should have already been handled!"); 9998 return {}; 9999 case Type::ExtInt: { 10000 // Merge two ext-int types, while trying to preserve typedef info. 10001 bool LHSUnsigned = LHS->castAs<ExtIntType>()->isUnsigned(); 10002 bool RHSUnsigned = RHS->castAs<ExtIntType>()->isUnsigned(); 10003 unsigned LHSBits = LHS->castAs<ExtIntType>()->getNumBits(); 10004 unsigned RHSBits = RHS->castAs<ExtIntType>()->getNumBits(); 10005 10006 // Like unsigned/int, shouldn't have a type if they dont match. 10007 if (LHSUnsigned != RHSUnsigned) 10008 return {}; 10009 10010 if (LHSBits != RHSBits) 10011 return {}; 10012 return LHS; 10013 } 10014 } 10015 10016 llvm_unreachable("Invalid Type::Class!"); 10017 } 10018 10019 bool ASTContext::mergeExtParameterInfo( 10020 const FunctionProtoType *FirstFnType, const FunctionProtoType *SecondFnType, 10021 bool &CanUseFirst, bool &CanUseSecond, 10022 SmallVectorImpl<FunctionProtoType::ExtParameterInfo> &NewParamInfos) { 10023 assert(NewParamInfos.empty() && "param info list not empty"); 10024 CanUseFirst = CanUseSecond = true; 10025 bool FirstHasInfo = FirstFnType->hasExtParameterInfos(); 10026 bool SecondHasInfo = SecondFnType->hasExtParameterInfos(); 10027 10028 // Fast path: if the first type doesn't have ext parameter infos, 10029 // we match if and only if the second type also doesn't have them. 10030 if (!FirstHasInfo && !SecondHasInfo) 10031 return true; 10032 10033 bool NeedParamInfo = false; 10034 size_t E = FirstHasInfo ? FirstFnType->getExtParameterInfos().size() 10035 : SecondFnType->getExtParameterInfos().size(); 10036 10037 for (size_t I = 0; I < E; ++I) { 10038 FunctionProtoType::ExtParameterInfo FirstParam, SecondParam; 10039 if (FirstHasInfo) 10040 FirstParam = FirstFnType->getExtParameterInfo(I); 10041 if (SecondHasInfo) 10042 SecondParam = SecondFnType->getExtParameterInfo(I); 10043 10044 // Cannot merge unless everything except the noescape flag matches. 10045 if (FirstParam.withIsNoEscape(false) != SecondParam.withIsNoEscape(false)) 10046 return false; 10047 10048 bool FirstNoEscape = FirstParam.isNoEscape(); 10049 bool SecondNoEscape = SecondParam.isNoEscape(); 10050 bool IsNoEscape = FirstNoEscape && SecondNoEscape; 10051 NewParamInfos.push_back(FirstParam.withIsNoEscape(IsNoEscape)); 10052 if (NewParamInfos.back().getOpaqueValue()) 10053 NeedParamInfo = true; 10054 if (FirstNoEscape != IsNoEscape) 10055 CanUseFirst = false; 10056 if (SecondNoEscape != IsNoEscape) 10057 CanUseSecond = false; 10058 } 10059 10060 if (!NeedParamInfo) 10061 NewParamInfos.clear(); 10062 10063 return true; 10064 } 10065 10066 void ASTContext::ResetObjCLayout(const ObjCContainerDecl *CD) { 10067 ObjCLayouts[CD] = nullptr; 10068 } 10069 10070 /// mergeObjCGCQualifiers - This routine merges ObjC's GC attribute of 'LHS' and 10071 /// 'RHS' attributes and returns the merged version; including for function 10072 /// return types. 10073 QualType ASTContext::mergeObjCGCQualifiers(QualType LHS, QualType RHS) { 10074 QualType LHSCan = getCanonicalType(LHS), 10075 RHSCan = getCanonicalType(RHS); 10076 // If two types are identical, they are compatible. 10077 if (LHSCan == RHSCan) 10078 return LHS; 10079 if (RHSCan->isFunctionType()) { 10080 if (!LHSCan->isFunctionType()) 10081 return {}; 10082 QualType OldReturnType = 10083 cast<FunctionType>(RHSCan.getTypePtr())->getReturnType(); 10084 QualType NewReturnType = 10085 cast<FunctionType>(LHSCan.getTypePtr())->getReturnType(); 10086 QualType ResReturnType = 10087 mergeObjCGCQualifiers(NewReturnType, OldReturnType); 10088 if (ResReturnType.isNull()) 10089 return {}; 10090 if (ResReturnType == NewReturnType || ResReturnType == OldReturnType) { 10091 // id foo(); ... __strong id foo(); or: __strong id foo(); ... id foo(); 10092 // In either case, use OldReturnType to build the new function type. 10093 const auto *F = LHS->castAs<FunctionType>(); 10094 if (const auto *FPT = cast<FunctionProtoType>(F)) { 10095 FunctionProtoType::ExtProtoInfo EPI = FPT->getExtProtoInfo(); 10096 EPI.ExtInfo = getFunctionExtInfo(LHS); 10097 QualType ResultType = 10098 getFunctionType(OldReturnType, FPT->getParamTypes(), EPI); 10099 return ResultType; 10100 } 10101 } 10102 return {}; 10103 } 10104 10105 // If the qualifiers are different, the types can still be merged. 10106 Qualifiers LQuals = LHSCan.getLocalQualifiers(); 10107 Qualifiers RQuals = RHSCan.getLocalQualifiers(); 10108 if (LQuals != RQuals) { 10109 // If any of these qualifiers are different, we have a type mismatch. 10110 if (LQuals.getCVRQualifiers() != RQuals.getCVRQualifiers() || 10111 LQuals.getAddressSpace() != RQuals.getAddressSpace()) 10112 return {}; 10113 10114 // Exactly one GC qualifier difference is allowed: __strong is 10115 // okay if the other type has no GC qualifier but is an Objective 10116 // C object pointer (i.e. implicitly strong by default). We fix 10117 // this by pretending that the unqualified type was actually 10118 // qualified __strong. 10119 Qualifiers::GC GC_L = LQuals.getObjCGCAttr(); 10120 Qualifiers::GC GC_R = RQuals.getObjCGCAttr(); 10121 assert((GC_L != GC_R) && "unequal qualifier sets had only equal elements"); 10122 10123 if (GC_L == Qualifiers::Weak || GC_R == Qualifiers::Weak) 10124 return {}; 10125 10126 if (GC_L == Qualifiers::Strong) 10127 return LHS; 10128 if (GC_R == Qualifiers::Strong) 10129 return RHS; 10130 return {}; 10131 } 10132 10133 if (LHSCan->isObjCObjectPointerType() && RHSCan->isObjCObjectPointerType()) { 10134 QualType LHSBaseQT = LHS->castAs<ObjCObjectPointerType>()->getPointeeType(); 10135 QualType RHSBaseQT = RHS->castAs<ObjCObjectPointerType>()->getPointeeType(); 10136 QualType ResQT = mergeObjCGCQualifiers(LHSBaseQT, RHSBaseQT); 10137 if (ResQT == LHSBaseQT) 10138 return LHS; 10139 if (ResQT == RHSBaseQT) 10140 return RHS; 10141 } 10142 return {}; 10143 } 10144 10145 //===----------------------------------------------------------------------===// 10146 // Integer Predicates 10147 //===----------------------------------------------------------------------===// 10148 10149 unsigned ASTContext::getIntWidth(QualType T) const { 10150 if (const auto *ET = T->getAs<EnumType>()) 10151 T = ET->getDecl()->getIntegerType(); 10152 if (T->isBooleanType()) 10153 return 1; 10154 if(const auto *EIT = T->getAs<ExtIntType>()) 10155 return EIT->getNumBits(); 10156 // For builtin types, just use the standard type sizing method 10157 return (unsigned)getTypeSize(T); 10158 } 10159 10160 QualType ASTContext::getCorrespondingUnsignedType(QualType T) const { 10161 assert((T->hasSignedIntegerRepresentation() || T->isSignedFixedPointType()) && 10162 "Unexpected type"); 10163 10164 // Turn <4 x signed int> -> <4 x unsigned int> 10165 if (const auto *VTy = T->getAs<VectorType>()) 10166 return getVectorType(getCorrespondingUnsignedType(VTy->getElementType()), 10167 VTy->getNumElements(), VTy->getVectorKind()); 10168 10169 // For _ExtInt, return an unsigned _ExtInt with same width. 10170 if (const auto *EITy = T->getAs<ExtIntType>()) 10171 return getExtIntType(/*IsUnsigned=*/true, EITy->getNumBits()); 10172 10173 // For enums, get the underlying integer type of the enum, and let the general 10174 // integer type signchanging code handle it. 10175 if (const auto *ETy = T->getAs<EnumType>()) 10176 T = ETy->getDecl()->getIntegerType(); 10177 10178 switch (T->castAs<BuiltinType>()->getKind()) { 10179 case BuiltinType::Char_S: 10180 case BuiltinType::SChar: 10181 return UnsignedCharTy; 10182 case BuiltinType::Short: 10183 return UnsignedShortTy; 10184 case BuiltinType::Int: 10185 return UnsignedIntTy; 10186 case BuiltinType::Long: 10187 return UnsignedLongTy; 10188 case BuiltinType::LongLong: 10189 return UnsignedLongLongTy; 10190 case BuiltinType::Int128: 10191 return UnsignedInt128Ty; 10192 // wchar_t is special. It is either signed or not, but when it's signed, 10193 // there's no matching "unsigned wchar_t". Therefore we return the unsigned 10194 // version of it's underlying type instead. 10195 case BuiltinType::WChar_S: 10196 return getUnsignedWCharType(); 10197 10198 case BuiltinType::ShortAccum: 10199 return UnsignedShortAccumTy; 10200 case BuiltinType::Accum: 10201 return UnsignedAccumTy; 10202 case BuiltinType::LongAccum: 10203 return UnsignedLongAccumTy; 10204 case BuiltinType::SatShortAccum: 10205 return SatUnsignedShortAccumTy; 10206 case BuiltinType::SatAccum: 10207 return SatUnsignedAccumTy; 10208 case BuiltinType::SatLongAccum: 10209 return SatUnsignedLongAccumTy; 10210 case BuiltinType::ShortFract: 10211 return UnsignedShortFractTy; 10212 case BuiltinType::Fract: 10213 return UnsignedFractTy; 10214 case BuiltinType::LongFract: 10215 return UnsignedLongFractTy; 10216 case BuiltinType::SatShortFract: 10217 return SatUnsignedShortFractTy; 10218 case BuiltinType::SatFract: 10219 return SatUnsignedFractTy; 10220 case BuiltinType::SatLongFract: 10221 return SatUnsignedLongFractTy; 10222 default: 10223 llvm_unreachable("Unexpected signed integer or fixed point type"); 10224 } 10225 } 10226 10227 QualType ASTContext::getCorrespondingSignedType(QualType T) const { 10228 assert((T->hasUnsignedIntegerRepresentation() || 10229 T->isUnsignedFixedPointType()) && 10230 "Unexpected type"); 10231 10232 // Turn <4 x unsigned int> -> <4 x signed int> 10233 if (const auto *VTy = T->getAs<VectorType>()) 10234 return getVectorType(getCorrespondingSignedType(VTy->getElementType()), 10235 VTy->getNumElements(), VTy->getVectorKind()); 10236 10237 // For _ExtInt, return a signed _ExtInt with same width. 10238 if (const auto *EITy = T->getAs<ExtIntType>()) 10239 return getExtIntType(/*IsUnsigned=*/false, EITy->getNumBits()); 10240 10241 // For enums, get the underlying integer type of the enum, and let the general 10242 // integer type signchanging code handle it. 10243 if (const auto *ETy = T->getAs<EnumType>()) 10244 T = ETy->getDecl()->getIntegerType(); 10245 10246 switch (T->castAs<BuiltinType>()->getKind()) { 10247 case BuiltinType::Char_U: 10248 case BuiltinType::UChar: 10249 return SignedCharTy; 10250 case BuiltinType::UShort: 10251 return ShortTy; 10252 case BuiltinType::UInt: 10253 return IntTy; 10254 case BuiltinType::ULong: 10255 return LongTy; 10256 case BuiltinType::ULongLong: 10257 return LongLongTy; 10258 case BuiltinType::UInt128: 10259 return Int128Ty; 10260 // wchar_t is special. It is either unsigned or not, but when it's unsigned, 10261 // there's no matching "signed wchar_t". Therefore we return the signed 10262 // version of it's underlying type instead. 10263 case BuiltinType::WChar_U: 10264 return getSignedWCharType(); 10265 10266 case BuiltinType::UShortAccum: 10267 return ShortAccumTy; 10268 case BuiltinType::UAccum: 10269 return AccumTy; 10270 case BuiltinType::ULongAccum: 10271 return LongAccumTy; 10272 case BuiltinType::SatUShortAccum: 10273 return SatShortAccumTy; 10274 case BuiltinType::SatUAccum: 10275 return SatAccumTy; 10276 case BuiltinType::SatULongAccum: 10277 return SatLongAccumTy; 10278 case BuiltinType::UShortFract: 10279 return ShortFractTy; 10280 case BuiltinType::UFract: 10281 return FractTy; 10282 case BuiltinType::ULongFract: 10283 return LongFractTy; 10284 case BuiltinType::SatUShortFract: 10285 return SatShortFractTy; 10286 case BuiltinType::SatUFract: 10287 return SatFractTy; 10288 case BuiltinType::SatULongFract: 10289 return SatLongFractTy; 10290 default: 10291 llvm_unreachable("Unexpected unsigned integer or fixed point type"); 10292 } 10293 } 10294 10295 ASTMutationListener::~ASTMutationListener() = default; 10296 10297 void ASTMutationListener::DeducedReturnType(const FunctionDecl *FD, 10298 QualType ReturnType) {} 10299 10300 //===----------------------------------------------------------------------===// 10301 // Builtin Type Computation 10302 //===----------------------------------------------------------------------===// 10303 10304 /// DecodeTypeFromStr - This decodes one type descriptor from Str, advancing the 10305 /// pointer over the consumed characters. This returns the resultant type. If 10306 /// AllowTypeModifiers is false then modifier like * are not parsed, just basic 10307 /// types. This allows "v2i*" to be parsed as a pointer to a v2i instead of 10308 /// a vector of "i*". 10309 /// 10310 /// RequiresICE is filled in on return to indicate whether the value is required 10311 /// to be an Integer Constant Expression. 10312 static QualType DecodeTypeFromStr(const char *&Str, const ASTContext &Context, 10313 ASTContext::GetBuiltinTypeError &Error, 10314 bool &RequiresICE, 10315 bool AllowTypeModifiers) { 10316 // Modifiers. 10317 int HowLong = 0; 10318 bool Signed = false, Unsigned = false; 10319 RequiresICE = false; 10320 10321 // Read the prefixed modifiers first. 10322 bool Done = false; 10323 #ifndef NDEBUG 10324 bool IsSpecial = false; 10325 #endif 10326 while (!Done) { 10327 switch (*Str++) { 10328 default: Done = true; --Str; break; 10329 case 'I': 10330 RequiresICE = true; 10331 break; 10332 case 'S': 10333 assert(!Unsigned && "Can't use both 'S' and 'U' modifiers!"); 10334 assert(!Signed && "Can't use 'S' modifier multiple times!"); 10335 Signed = true; 10336 break; 10337 case 'U': 10338 assert(!Signed && "Can't use both 'S' and 'U' modifiers!"); 10339 assert(!Unsigned && "Can't use 'U' modifier multiple times!"); 10340 Unsigned = true; 10341 break; 10342 case 'L': 10343 assert(!IsSpecial && "Can't use 'L' with 'W', 'N', 'Z' or 'O' modifiers"); 10344 assert(HowLong <= 2 && "Can't have LLLL modifier"); 10345 ++HowLong; 10346 break; 10347 case 'N': 10348 // 'N' behaves like 'L' for all non LP64 targets and 'int' otherwise. 10349 assert(!IsSpecial && "Can't use two 'N', 'W', 'Z' or 'O' modifiers!"); 10350 assert(HowLong == 0 && "Can't use both 'L' and 'N' modifiers!"); 10351 #ifndef NDEBUG 10352 IsSpecial = true; 10353 #endif 10354 if (Context.getTargetInfo().getLongWidth() == 32) 10355 ++HowLong; 10356 break; 10357 case 'W': 10358 // This modifier represents int64 type. 10359 assert(!IsSpecial && "Can't use two 'N', 'W', 'Z' or 'O' modifiers!"); 10360 assert(HowLong == 0 && "Can't use both 'L' and 'W' modifiers!"); 10361 #ifndef NDEBUG 10362 IsSpecial = true; 10363 #endif 10364 switch (Context.getTargetInfo().getInt64Type()) { 10365 default: 10366 llvm_unreachable("Unexpected integer type"); 10367 case TargetInfo::SignedLong: 10368 HowLong = 1; 10369 break; 10370 case TargetInfo::SignedLongLong: 10371 HowLong = 2; 10372 break; 10373 } 10374 break; 10375 case 'Z': 10376 // This modifier represents int32 type. 10377 assert(!IsSpecial && "Can't use two 'N', 'W', 'Z' or 'O' modifiers!"); 10378 assert(HowLong == 0 && "Can't use both 'L' and 'Z' modifiers!"); 10379 #ifndef NDEBUG 10380 IsSpecial = true; 10381 #endif 10382 switch (Context.getTargetInfo().getIntTypeByWidth(32, true)) { 10383 default: 10384 llvm_unreachable("Unexpected integer type"); 10385 case TargetInfo::SignedInt: 10386 HowLong = 0; 10387 break; 10388 case TargetInfo::SignedLong: 10389 HowLong = 1; 10390 break; 10391 case TargetInfo::SignedLongLong: 10392 HowLong = 2; 10393 break; 10394 } 10395 break; 10396 case 'O': 10397 assert(!IsSpecial && "Can't use two 'N', 'W', 'Z' or 'O' modifiers!"); 10398 assert(HowLong == 0 && "Can't use both 'L' and 'O' modifiers!"); 10399 #ifndef NDEBUG 10400 IsSpecial = true; 10401 #endif 10402 if (Context.getLangOpts().OpenCL) 10403 HowLong = 1; 10404 else 10405 HowLong = 2; 10406 break; 10407 } 10408 } 10409 10410 QualType Type; 10411 10412 // Read the base type. 10413 switch (*Str++) { 10414 default: llvm_unreachable("Unknown builtin type letter!"); 10415 case 'x': 10416 assert(HowLong == 0 && !Signed && !Unsigned && 10417 "Bad modifiers used with 'x'!"); 10418 Type = Context.Float16Ty; 10419 break; 10420 case 'y': 10421 assert(HowLong == 0 && !Signed && !Unsigned && 10422 "Bad modifiers used with 'y'!"); 10423 Type = Context.BFloat16Ty; 10424 break; 10425 case 'v': 10426 assert(HowLong == 0 && !Signed && !Unsigned && 10427 "Bad modifiers used with 'v'!"); 10428 Type = Context.VoidTy; 10429 break; 10430 case 'h': 10431 assert(HowLong == 0 && !Signed && !Unsigned && 10432 "Bad modifiers used with 'h'!"); 10433 Type = Context.HalfTy; 10434 break; 10435 case 'f': 10436 assert(HowLong == 0 && !Signed && !Unsigned && 10437 "Bad modifiers used with 'f'!"); 10438 Type = Context.FloatTy; 10439 break; 10440 case 'd': 10441 assert(HowLong < 3 && !Signed && !Unsigned && 10442 "Bad modifiers used with 'd'!"); 10443 if (HowLong == 1) 10444 Type = Context.LongDoubleTy; 10445 else if (HowLong == 2) 10446 Type = Context.Float128Ty; 10447 else 10448 Type = Context.DoubleTy; 10449 break; 10450 case 's': 10451 assert(HowLong == 0 && "Bad modifiers used with 's'!"); 10452 if (Unsigned) 10453 Type = Context.UnsignedShortTy; 10454 else 10455 Type = Context.ShortTy; 10456 break; 10457 case 'i': 10458 if (HowLong == 3) 10459 Type = Unsigned ? Context.UnsignedInt128Ty : Context.Int128Ty; 10460 else if (HowLong == 2) 10461 Type = Unsigned ? Context.UnsignedLongLongTy : Context.LongLongTy; 10462 else if (HowLong == 1) 10463 Type = Unsigned ? Context.UnsignedLongTy : Context.LongTy; 10464 else 10465 Type = Unsigned ? Context.UnsignedIntTy : Context.IntTy; 10466 break; 10467 case 'c': 10468 assert(HowLong == 0 && "Bad modifiers used with 'c'!"); 10469 if (Signed) 10470 Type = Context.SignedCharTy; 10471 else if (Unsigned) 10472 Type = Context.UnsignedCharTy; 10473 else 10474 Type = Context.CharTy; 10475 break; 10476 case 'b': // boolean 10477 assert(HowLong == 0 && !Signed && !Unsigned && "Bad modifiers for 'b'!"); 10478 Type = Context.BoolTy; 10479 break; 10480 case 'z': // size_t. 10481 assert(HowLong == 0 && !Signed && !Unsigned && "Bad modifiers for 'z'!"); 10482 Type = Context.getSizeType(); 10483 break; 10484 case 'w': // wchar_t. 10485 assert(HowLong == 0 && !Signed && !Unsigned && "Bad modifiers for 'w'!"); 10486 Type = Context.getWideCharType(); 10487 break; 10488 case 'F': 10489 Type = Context.getCFConstantStringType(); 10490 break; 10491 case 'G': 10492 Type = Context.getObjCIdType(); 10493 break; 10494 case 'H': 10495 Type = Context.getObjCSelType(); 10496 break; 10497 case 'M': 10498 Type = Context.getObjCSuperType(); 10499 break; 10500 case 'a': 10501 Type = Context.getBuiltinVaListType(); 10502 assert(!Type.isNull() && "builtin va list type not initialized!"); 10503 break; 10504 case 'A': 10505 // This is a "reference" to a va_list; however, what exactly 10506 // this means depends on how va_list is defined. There are two 10507 // different kinds of va_list: ones passed by value, and ones 10508 // passed by reference. An example of a by-value va_list is 10509 // x86, where va_list is a char*. An example of by-ref va_list 10510 // is x86-64, where va_list is a __va_list_tag[1]. For x86, 10511 // we want this argument to be a char*&; for x86-64, we want 10512 // it to be a __va_list_tag*. 10513 Type = Context.getBuiltinVaListType(); 10514 assert(!Type.isNull() && "builtin va list type not initialized!"); 10515 if (Type->isArrayType()) 10516 Type = Context.getArrayDecayedType(Type); 10517 else 10518 Type = Context.getLValueReferenceType(Type); 10519 break; 10520 case 'q': { 10521 char *End; 10522 unsigned NumElements = strtoul(Str, &End, 10); 10523 assert(End != Str && "Missing vector size"); 10524 Str = End; 10525 10526 QualType ElementType = DecodeTypeFromStr(Str, Context, Error, 10527 RequiresICE, false); 10528 assert(!RequiresICE && "Can't require vector ICE"); 10529 10530 Type = Context.getScalableVectorType(ElementType, NumElements); 10531 break; 10532 } 10533 case 'V': { 10534 char *End; 10535 unsigned NumElements = strtoul(Str, &End, 10); 10536 assert(End != Str && "Missing vector size"); 10537 Str = End; 10538 10539 QualType ElementType = DecodeTypeFromStr(Str, Context, Error, 10540 RequiresICE, false); 10541 assert(!RequiresICE && "Can't require vector ICE"); 10542 10543 // TODO: No way to make AltiVec vectors in builtins yet. 10544 Type = Context.getVectorType(ElementType, NumElements, 10545 VectorType::GenericVector); 10546 break; 10547 } 10548 case 'E': { 10549 char *End; 10550 10551 unsigned NumElements = strtoul(Str, &End, 10); 10552 assert(End != Str && "Missing vector size"); 10553 10554 Str = End; 10555 10556 QualType ElementType = DecodeTypeFromStr(Str, Context, Error, RequiresICE, 10557 false); 10558 Type = Context.getExtVectorType(ElementType, NumElements); 10559 break; 10560 } 10561 case 'X': { 10562 QualType ElementType = DecodeTypeFromStr(Str, Context, Error, RequiresICE, 10563 false); 10564 assert(!RequiresICE && "Can't require complex ICE"); 10565 Type = Context.getComplexType(ElementType); 10566 break; 10567 } 10568 case 'Y': 10569 Type = Context.getPointerDiffType(); 10570 break; 10571 case 'P': 10572 Type = Context.getFILEType(); 10573 if (Type.isNull()) { 10574 Error = ASTContext::GE_Missing_stdio; 10575 return {}; 10576 } 10577 break; 10578 case 'J': 10579 if (Signed) 10580 Type = Context.getsigjmp_bufType(); 10581 else 10582 Type = Context.getjmp_bufType(); 10583 10584 if (Type.isNull()) { 10585 Error = ASTContext::GE_Missing_setjmp; 10586 return {}; 10587 } 10588 break; 10589 case 'K': 10590 assert(HowLong == 0 && !Signed && !Unsigned && "Bad modifiers for 'K'!"); 10591 Type = Context.getucontext_tType(); 10592 10593 if (Type.isNull()) { 10594 Error = ASTContext::GE_Missing_ucontext; 10595 return {}; 10596 } 10597 break; 10598 case 'p': 10599 Type = Context.getProcessIDType(); 10600 break; 10601 } 10602 10603 // If there are modifiers and if we're allowed to parse them, go for it. 10604 Done = !AllowTypeModifiers; 10605 while (!Done) { 10606 switch (char c = *Str++) { 10607 default: Done = true; --Str; break; 10608 case '*': 10609 case '&': { 10610 // Both pointers and references can have their pointee types 10611 // qualified with an address space. 10612 char *End; 10613 unsigned AddrSpace = strtoul(Str, &End, 10); 10614 if (End != Str) { 10615 // Note AddrSpace == 0 is not the same as an unspecified address space. 10616 Type = Context.getAddrSpaceQualType( 10617 Type, 10618 Context.getLangASForBuiltinAddressSpace(AddrSpace)); 10619 Str = End; 10620 } 10621 if (c == '*') 10622 Type = Context.getPointerType(Type); 10623 else 10624 Type = Context.getLValueReferenceType(Type); 10625 break; 10626 } 10627 // FIXME: There's no way to have a built-in with an rvalue ref arg. 10628 case 'C': 10629 Type = Type.withConst(); 10630 break; 10631 case 'D': 10632 Type = Context.getVolatileType(Type); 10633 break; 10634 case 'R': 10635 Type = Type.withRestrict(); 10636 break; 10637 } 10638 } 10639 10640 assert((!RequiresICE || Type->isIntegralOrEnumerationType()) && 10641 "Integer constant 'I' type must be an integer"); 10642 10643 return Type; 10644 } 10645 10646 // On some targets such as PowerPC, some of the builtins are defined with custom 10647 // type decriptors for target-dependent types. These descriptors are decoded in 10648 // other functions, but it may be useful to be able to fall back to default 10649 // descriptor decoding to define builtins mixing target-dependent and target- 10650 // independent types. This function allows decoding one type descriptor with 10651 // default decoding. 10652 QualType ASTContext::DecodeTypeStr(const char *&Str, const ASTContext &Context, 10653 GetBuiltinTypeError &Error, bool &RequireICE, 10654 bool AllowTypeModifiers) const { 10655 return DecodeTypeFromStr(Str, Context, Error, RequireICE, AllowTypeModifiers); 10656 } 10657 10658 /// GetBuiltinType - Return the type for the specified builtin. 10659 QualType ASTContext::GetBuiltinType(unsigned Id, 10660 GetBuiltinTypeError &Error, 10661 unsigned *IntegerConstantArgs) const { 10662 const char *TypeStr = BuiltinInfo.getTypeString(Id); 10663 if (TypeStr[0] == '\0') { 10664 Error = GE_Missing_type; 10665 return {}; 10666 } 10667 10668 SmallVector<QualType, 8> ArgTypes; 10669 10670 bool RequiresICE = false; 10671 Error = GE_None; 10672 QualType ResType = DecodeTypeFromStr(TypeStr, *this, Error, 10673 RequiresICE, true); 10674 if (Error != GE_None) 10675 return {}; 10676 10677 assert(!RequiresICE && "Result of intrinsic cannot be required to be an ICE"); 10678 10679 while (TypeStr[0] && TypeStr[0] != '.') { 10680 QualType Ty = DecodeTypeFromStr(TypeStr, *this, Error, RequiresICE, true); 10681 if (Error != GE_None) 10682 return {}; 10683 10684 // If this argument is required to be an IntegerConstantExpression and the 10685 // caller cares, fill in the bitmask we return. 10686 if (RequiresICE && IntegerConstantArgs) 10687 *IntegerConstantArgs |= 1 << ArgTypes.size(); 10688 10689 // Do array -> pointer decay. The builtin should use the decayed type. 10690 if (Ty->isArrayType()) 10691 Ty = getArrayDecayedType(Ty); 10692 10693 ArgTypes.push_back(Ty); 10694 } 10695 10696 if (Id == Builtin::BI__GetExceptionInfo) 10697 return {}; 10698 10699 assert((TypeStr[0] != '.' || TypeStr[1] == 0) && 10700 "'.' should only occur at end of builtin type list!"); 10701 10702 bool Variadic = (TypeStr[0] == '.'); 10703 10704 FunctionType::ExtInfo EI(getDefaultCallingConvention( 10705 Variadic, /*IsCXXMethod=*/false, /*IsBuiltin=*/true)); 10706 if (BuiltinInfo.isNoReturn(Id)) EI = EI.withNoReturn(true); 10707 10708 10709 // We really shouldn't be making a no-proto type here. 10710 if (ArgTypes.empty() && Variadic && !getLangOpts().CPlusPlus) 10711 return getFunctionNoProtoType(ResType, EI); 10712 10713 FunctionProtoType::ExtProtoInfo EPI; 10714 EPI.ExtInfo = EI; 10715 EPI.Variadic = Variadic; 10716 if (getLangOpts().CPlusPlus && BuiltinInfo.isNoThrow(Id)) 10717 EPI.ExceptionSpec.Type = 10718 getLangOpts().CPlusPlus11 ? EST_BasicNoexcept : EST_DynamicNone; 10719 10720 return getFunctionType(ResType, ArgTypes, EPI); 10721 } 10722 10723 static GVALinkage basicGVALinkageForFunction(const ASTContext &Context, 10724 const FunctionDecl *FD) { 10725 if (!FD->isExternallyVisible()) 10726 return GVA_Internal; 10727 10728 // Non-user-provided functions get emitted as weak definitions with every 10729 // use, no matter whether they've been explicitly instantiated etc. 10730 if (const auto *MD = dyn_cast<CXXMethodDecl>(FD)) 10731 if (!MD->isUserProvided()) 10732 return GVA_DiscardableODR; 10733 10734 GVALinkage External; 10735 switch (FD->getTemplateSpecializationKind()) { 10736 case TSK_Undeclared: 10737 case TSK_ExplicitSpecialization: 10738 External = GVA_StrongExternal; 10739 break; 10740 10741 case TSK_ExplicitInstantiationDefinition: 10742 return GVA_StrongODR; 10743 10744 // C++11 [temp.explicit]p10: 10745 // [ Note: The intent is that an inline function that is the subject of 10746 // an explicit instantiation declaration will still be implicitly 10747 // instantiated when used so that the body can be considered for 10748 // inlining, but that no out-of-line copy of the inline function would be 10749 // generated in the translation unit. -- end note ] 10750 case TSK_ExplicitInstantiationDeclaration: 10751 return GVA_AvailableExternally; 10752 10753 case TSK_ImplicitInstantiation: 10754 External = GVA_DiscardableODR; 10755 break; 10756 } 10757 10758 if (!FD->isInlined()) 10759 return External; 10760 10761 if ((!Context.getLangOpts().CPlusPlus && 10762 !Context.getTargetInfo().getCXXABI().isMicrosoft() && 10763 !FD->hasAttr<DLLExportAttr>()) || 10764 FD->hasAttr<GNUInlineAttr>()) { 10765 // FIXME: This doesn't match gcc's behavior for dllexport inline functions. 10766 10767 // GNU or C99 inline semantics. Determine whether this symbol should be 10768 // externally visible. 10769 if (FD->isInlineDefinitionExternallyVisible()) 10770 return External; 10771 10772 // C99 inline semantics, where the symbol is not externally visible. 10773 return GVA_AvailableExternally; 10774 } 10775 10776 // Functions specified with extern and inline in -fms-compatibility mode 10777 // forcibly get emitted. While the body of the function cannot be later 10778 // replaced, the function definition cannot be discarded. 10779 if (FD->isMSExternInline()) 10780 return GVA_StrongODR; 10781 10782 return GVA_DiscardableODR; 10783 } 10784 10785 static GVALinkage adjustGVALinkageForAttributes(const ASTContext &Context, 10786 const Decl *D, GVALinkage L) { 10787 // See http://msdn.microsoft.com/en-us/library/xa0d9ste.aspx 10788 // dllexport/dllimport on inline functions. 10789 if (D->hasAttr<DLLImportAttr>()) { 10790 if (L == GVA_DiscardableODR || L == GVA_StrongODR) 10791 return GVA_AvailableExternally; 10792 } else if (D->hasAttr<DLLExportAttr>()) { 10793 if (L == GVA_DiscardableODR) 10794 return GVA_StrongODR; 10795 } else if (Context.getLangOpts().CUDA && Context.getLangOpts().CUDAIsDevice) { 10796 // Device-side functions with __global__ attribute must always be 10797 // visible externally so they can be launched from host. 10798 if (D->hasAttr<CUDAGlobalAttr>() && 10799 (L == GVA_DiscardableODR || L == GVA_Internal)) 10800 return GVA_StrongODR; 10801 // Single source offloading languages like CUDA/HIP need to be able to 10802 // access static device variables from host code of the same compilation 10803 // unit. This is done by externalizing the static variable with a shared 10804 // name between the host and device compilation which is the same for the 10805 // same compilation unit whereas different among different compilation 10806 // units. 10807 if (Context.shouldExternalizeStaticVar(D)) 10808 return GVA_StrongExternal; 10809 } 10810 return L; 10811 } 10812 10813 /// Adjust the GVALinkage for a declaration based on what an external AST source 10814 /// knows about whether there can be other definitions of this declaration. 10815 static GVALinkage 10816 adjustGVALinkageForExternalDefinitionKind(const ASTContext &Ctx, const Decl *D, 10817 GVALinkage L) { 10818 ExternalASTSource *Source = Ctx.getExternalSource(); 10819 if (!Source) 10820 return L; 10821 10822 switch (Source->hasExternalDefinitions(D)) { 10823 case ExternalASTSource::EK_Never: 10824 // Other translation units rely on us to provide the definition. 10825 if (L == GVA_DiscardableODR) 10826 return GVA_StrongODR; 10827 break; 10828 10829 case ExternalASTSource::EK_Always: 10830 return GVA_AvailableExternally; 10831 10832 case ExternalASTSource::EK_ReplyHazy: 10833 break; 10834 } 10835 return L; 10836 } 10837 10838 GVALinkage ASTContext::GetGVALinkageForFunction(const FunctionDecl *FD) const { 10839 return adjustGVALinkageForExternalDefinitionKind(*this, FD, 10840 adjustGVALinkageForAttributes(*this, FD, 10841 basicGVALinkageForFunction(*this, FD))); 10842 } 10843 10844 static GVALinkage basicGVALinkageForVariable(const ASTContext &Context, 10845 const VarDecl *VD) { 10846 if (!VD->isExternallyVisible()) 10847 return GVA_Internal; 10848 10849 if (VD->isStaticLocal()) { 10850 const DeclContext *LexicalContext = VD->getParentFunctionOrMethod(); 10851 while (LexicalContext && !isa<FunctionDecl>(LexicalContext)) 10852 LexicalContext = LexicalContext->getLexicalParent(); 10853 10854 // ObjC Blocks can create local variables that don't have a FunctionDecl 10855 // LexicalContext. 10856 if (!LexicalContext) 10857 return GVA_DiscardableODR; 10858 10859 // Otherwise, let the static local variable inherit its linkage from the 10860 // nearest enclosing function. 10861 auto StaticLocalLinkage = 10862 Context.GetGVALinkageForFunction(cast<FunctionDecl>(LexicalContext)); 10863 10864 // Itanium ABI 5.2.2: "Each COMDAT group [for a static local variable] must 10865 // be emitted in any object with references to the symbol for the object it 10866 // contains, whether inline or out-of-line." 10867 // Similar behavior is observed with MSVC. An alternative ABI could use 10868 // StrongODR/AvailableExternally to match the function, but none are 10869 // known/supported currently. 10870 if (StaticLocalLinkage == GVA_StrongODR || 10871 StaticLocalLinkage == GVA_AvailableExternally) 10872 return GVA_DiscardableODR; 10873 return StaticLocalLinkage; 10874 } 10875 10876 // MSVC treats in-class initialized static data members as definitions. 10877 // By giving them non-strong linkage, out-of-line definitions won't 10878 // cause link errors. 10879 if (Context.isMSStaticDataMemberInlineDefinition(VD)) 10880 return GVA_DiscardableODR; 10881 10882 // Most non-template variables have strong linkage; inline variables are 10883 // linkonce_odr or (occasionally, for compatibility) weak_odr. 10884 GVALinkage StrongLinkage; 10885 switch (Context.getInlineVariableDefinitionKind(VD)) { 10886 case ASTContext::InlineVariableDefinitionKind::None: 10887 StrongLinkage = GVA_StrongExternal; 10888 break; 10889 case ASTContext::InlineVariableDefinitionKind::Weak: 10890 case ASTContext::InlineVariableDefinitionKind::WeakUnknown: 10891 StrongLinkage = GVA_DiscardableODR; 10892 break; 10893 case ASTContext::InlineVariableDefinitionKind::Strong: 10894 StrongLinkage = GVA_StrongODR; 10895 break; 10896 } 10897 10898 switch (VD->getTemplateSpecializationKind()) { 10899 case TSK_Undeclared: 10900 return StrongLinkage; 10901 10902 case TSK_ExplicitSpecialization: 10903 return Context.getTargetInfo().getCXXABI().isMicrosoft() && 10904 VD->isStaticDataMember() 10905 ? GVA_StrongODR 10906 : StrongLinkage; 10907 10908 case TSK_ExplicitInstantiationDefinition: 10909 return GVA_StrongODR; 10910 10911 case TSK_ExplicitInstantiationDeclaration: 10912 return GVA_AvailableExternally; 10913 10914 case TSK_ImplicitInstantiation: 10915 return GVA_DiscardableODR; 10916 } 10917 10918 llvm_unreachable("Invalid Linkage!"); 10919 } 10920 10921 GVALinkage ASTContext::GetGVALinkageForVariable(const VarDecl *VD) { 10922 return adjustGVALinkageForExternalDefinitionKind(*this, VD, 10923 adjustGVALinkageForAttributes(*this, VD, 10924 basicGVALinkageForVariable(*this, VD))); 10925 } 10926 10927 bool ASTContext::DeclMustBeEmitted(const Decl *D) { 10928 if (const auto *VD = dyn_cast<VarDecl>(D)) { 10929 if (!VD->isFileVarDecl()) 10930 return false; 10931 // Global named register variables (GNU extension) are never emitted. 10932 if (VD->getStorageClass() == SC_Register) 10933 return false; 10934 if (VD->getDescribedVarTemplate() || 10935 isa<VarTemplatePartialSpecializationDecl>(VD)) 10936 return false; 10937 } else if (const auto *FD = dyn_cast<FunctionDecl>(D)) { 10938 // We never need to emit an uninstantiated function template. 10939 if (FD->getTemplatedKind() == FunctionDecl::TK_FunctionTemplate) 10940 return false; 10941 } else if (isa<PragmaCommentDecl>(D)) 10942 return true; 10943 else if (isa<PragmaDetectMismatchDecl>(D)) 10944 return true; 10945 else if (isa<OMPRequiresDecl>(D)) 10946 return true; 10947 else if (isa<OMPThreadPrivateDecl>(D)) 10948 return !D->getDeclContext()->isDependentContext(); 10949 else if (isa<OMPAllocateDecl>(D)) 10950 return !D->getDeclContext()->isDependentContext(); 10951 else if (isa<OMPDeclareReductionDecl>(D) || isa<OMPDeclareMapperDecl>(D)) 10952 return !D->getDeclContext()->isDependentContext(); 10953 else if (isa<ImportDecl>(D)) 10954 return true; 10955 else 10956 return false; 10957 10958 // If this is a member of a class template, we do not need to emit it. 10959 if (D->getDeclContext()->isDependentContext()) 10960 return false; 10961 10962 // Weak references don't produce any output by themselves. 10963 if (D->hasAttr<WeakRefAttr>()) 10964 return false; 10965 10966 // Aliases and used decls are required. 10967 if (D->hasAttr<AliasAttr>() || D->hasAttr<UsedAttr>()) 10968 return true; 10969 10970 if (const auto *FD = dyn_cast<FunctionDecl>(D)) { 10971 // Forward declarations aren't required. 10972 if (!FD->doesThisDeclarationHaveABody()) 10973 return FD->doesDeclarationForceExternallyVisibleDefinition(); 10974 10975 // Constructors and destructors are required. 10976 if (FD->hasAttr<ConstructorAttr>() || FD->hasAttr<DestructorAttr>()) 10977 return true; 10978 10979 // The key function for a class is required. This rule only comes 10980 // into play when inline functions can be key functions, though. 10981 if (getTargetInfo().getCXXABI().canKeyFunctionBeInline()) { 10982 if (const auto *MD = dyn_cast<CXXMethodDecl>(FD)) { 10983 const CXXRecordDecl *RD = MD->getParent(); 10984 if (MD->isOutOfLine() && RD->isDynamicClass()) { 10985 const CXXMethodDecl *KeyFunc = getCurrentKeyFunction(RD); 10986 if (KeyFunc && KeyFunc->getCanonicalDecl() == MD->getCanonicalDecl()) 10987 return true; 10988 } 10989 } 10990 } 10991 10992 GVALinkage Linkage = GetGVALinkageForFunction(FD); 10993 10994 // static, static inline, always_inline, and extern inline functions can 10995 // always be deferred. Normal inline functions can be deferred in C99/C++. 10996 // Implicit template instantiations can also be deferred in C++. 10997 return !isDiscardableGVALinkage(Linkage); 10998 } 10999 11000 const auto *VD = cast<VarDecl>(D); 11001 assert(VD->isFileVarDecl() && "Expected file scoped var"); 11002 11003 // If the decl is marked as `declare target to`, it should be emitted for the 11004 // host and for the device. 11005 if (LangOpts.OpenMP && 11006 OMPDeclareTargetDeclAttr::isDeclareTargetDeclaration(VD)) 11007 return true; 11008 11009 if (VD->isThisDeclarationADefinition() == VarDecl::DeclarationOnly && 11010 !isMSStaticDataMemberInlineDefinition(VD)) 11011 return false; 11012 11013 // Variables that can be needed in other TUs are required. 11014 auto Linkage = GetGVALinkageForVariable(VD); 11015 if (!isDiscardableGVALinkage(Linkage)) 11016 return true; 11017 11018 // We never need to emit a variable that is available in another TU. 11019 if (Linkage == GVA_AvailableExternally) 11020 return false; 11021 11022 // Variables that have destruction with side-effects are required. 11023 if (VD->needsDestruction(*this)) 11024 return true; 11025 11026 // Variables that have initialization with side-effects are required. 11027 if (VD->getInit() && VD->getInit()->HasSideEffects(*this) && 11028 // We can get a value-dependent initializer during error recovery. 11029 (VD->getInit()->isValueDependent() || !VD->evaluateValue())) 11030 return true; 11031 11032 // Likewise, variables with tuple-like bindings are required if their 11033 // bindings have side-effects. 11034 if (const auto *DD = dyn_cast<DecompositionDecl>(VD)) 11035 for (const auto *BD : DD->bindings()) 11036 if (const auto *BindingVD = BD->getHoldingVar()) 11037 if (DeclMustBeEmitted(BindingVD)) 11038 return true; 11039 11040 return false; 11041 } 11042 11043 void ASTContext::forEachMultiversionedFunctionVersion( 11044 const FunctionDecl *FD, 11045 llvm::function_ref<void(FunctionDecl *)> Pred) const { 11046 assert(FD->isMultiVersion() && "Only valid for multiversioned functions"); 11047 llvm::SmallDenseSet<const FunctionDecl*, 4> SeenDecls; 11048 FD = FD->getMostRecentDecl(); 11049 // FIXME: The order of traversal here matters and depends on the order of 11050 // lookup results, which happens to be (mostly) oldest-to-newest, but we 11051 // shouldn't rely on that. 11052 for (auto *CurDecl : 11053 FD->getDeclContext()->getRedeclContext()->lookup(FD->getDeclName())) { 11054 FunctionDecl *CurFD = CurDecl->getAsFunction()->getMostRecentDecl(); 11055 if (CurFD && hasSameType(CurFD->getType(), FD->getType()) && 11056 std::end(SeenDecls) == llvm::find(SeenDecls, CurFD)) { 11057 SeenDecls.insert(CurFD); 11058 Pred(CurFD); 11059 } 11060 } 11061 } 11062 11063 CallingConv ASTContext::getDefaultCallingConvention(bool IsVariadic, 11064 bool IsCXXMethod, 11065 bool IsBuiltin) const { 11066 // Pass through to the C++ ABI object 11067 if (IsCXXMethod) 11068 return ABI->getDefaultMethodCallConv(IsVariadic); 11069 11070 // Builtins ignore user-specified default calling convention and remain the 11071 // Target's default calling convention. 11072 if (!IsBuiltin) { 11073 switch (LangOpts.getDefaultCallingConv()) { 11074 case LangOptions::DCC_None: 11075 break; 11076 case LangOptions::DCC_CDecl: 11077 return CC_C; 11078 case LangOptions::DCC_FastCall: 11079 if (getTargetInfo().hasFeature("sse2") && !IsVariadic) 11080 return CC_X86FastCall; 11081 break; 11082 case LangOptions::DCC_StdCall: 11083 if (!IsVariadic) 11084 return CC_X86StdCall; 11085 break; 11086 case LangOptions::DCC_VectorCall: 11087 // __vectorcall cannot be applied to variadic functions. 11088 if (!IsVariadic) 11089 return CC_X86VectorCall; 11090 break; 11091 case LangOptions::DCC_RegCall: 11092 // __regcall cannot be applied to variadic functions. 11093 if (!IsVariadic) 11094 return CC_X86RegCall; 11095 break; 11096 } 11097 } 11098 return Target->getDefaultCallingConv(); 11099 } 11100 11101 bool ASTContext::isNearlyEmpty(const CXXRecordDecl *RD) const { 11102 // Pass through to the C++ ABI object 11103 return ABI->isNearlyEmpty(RD); 11104 } 11105 11106 VTableContextBase *ASTContext::getVTableContext() { 11107 if (!VTContext.get()) { 11108 auto ABI = Target->getCXXABI(); 11109 if (ABI.isMicrosoft()) 11110 VTContext.reset(new MicrosoftVTableContext(*this)); 11111 else { 11112 auto ComponentLayout = getLangOpts().RelativeCXXABIVTables 11113 ? ItaniumVTableContext::Relative 11114 : ItaniumVTableContext::Pointer; 11115 VTContext.reset(new ItaniumVTableContext(*this, ComponentLayout)); 11116 } 11117 } 11118 return VTContext.get(); 11119 } 11120 11121 MangleContext *ASTContext::createMangleContext(const TargetInfo *T) { 11122 if (!T) 11123 T = Target; 11124 switch (T->getCXXABI().getKind()) { 11125 case TargetCXXABI::AppleARM64: 11126 case TargetCXXABI::Fuchsia: 11127 case TargetCXXABI::GenericAArch64: 11128 case TargetCXXABI::GenericItanium: 11129 case TargetCXXABI::GenericARM: 11130 case TargetCXXABI::GenericMIPS: 11131 case TargetCXXABI::iOS: 11132 case TargetCXXABI::WebAssembly: 11133 case TargetCXXABI::WatchOS: 11134 case TargetCXXABI::XL: 11135 return ItaniumMangleContext::create(*this, getDiagnostics()); 11136 case TargetCXXABI::Microsoft: 11137 return MicrosoftMangleContext::create(*this, getDiagnostics()); 11138 } 11139 llvm_unreachable("Unsupported ABI"); 11140 } 11141 11142 MangleContext *ASTContext::createDeviceMangleContext(const TargetInfo &T) { 11143 assert(T.getCXXABI().getKind() != TargetCXXABI::Microsoft && 11144 "Device mangle context does not support Microsoft mangling."); 11145 switch (T.getCXXABI().getKind()) { 11146 case TargetCXXABI::AppleARM64: 11147 case TargetCXXABI::Fuchsia: 11148 case TargetCXXABI::GenericAArch64: 11149 case TargetCXXABI::GenericItanium: 11150 case TargetCXXABI::GenericARM: 11151 case TargetCXXABI::GenericMIPS: 11152 case TargetCXXABI::iOS: 11153 case TargetCXXABI::WebAssembly: 11154 case TargetCXXABI::WatchOS: 11155 case TargetCXXABI::XL: 11156 return ItaniumMangleContext::create( 11157 *this, getDiagnostics(), 11158 [](ASTContext &, const NamedDecl *ND) -> llvm::Optional<unsigned> { 11159 if (const auto *RD = dyn_cast<CXXRecordDecl>(ND)) 11160 return RD->getDeviceLambdaManglingNumber(); 11161 return llvm::None; 11162 }); 11163 case TargetCXXABI::Microsoft: 11164 return MicrosoftMangleContext::create(*this, getDiagnostics()); 11165 } 11166 llvm_unreachable("Unsupported ABI"); 11167 } 11168 11169 CXXABI::~CXXABI() = default; 11170 11171 size_t ASTContext::getSideTableAllocatedMemory() const { 11172 return ASTRecordLayouts.getMemorySize() + 11173 llvm::capacity_in_bytes(ObjCLayouts) + 11174 llvm::capacity_in_bytes(KeyFunctions) + 11175 llvm::capacity_in_bytes(ObjCImpls) + 11176 llvm::capacity_in_bytes(BlockVarCopyInits) + 11177 llvm::capacity_in_bytes(DeclAttrs) + 11178 llvm::capacity_in_bytes(TemplateOrInstantiation) + 11179 llvm::capacity_in_bytes(InstantiatedFromUsingDecl) + 11180 llvm::capacity_in_bytes(InstantiatedFromUsingShadowDecl) + 11181 llvm::capacity_in_bytes(InstantiatedFromUnnamedFieldDecl) + 11182 llvm::capacity_in_bytes(OverriddenMethods) + 11183 llvm::capacity_in_bytes(Types) + 11184 llvm::capacity_in_bytes(VariableArrayTypes); 11185 } 11186 11187 /// getIntTypeForBitwidth - 11188 /// sets integer QualTy according to specified details: 11189 /// bitwidth, signed/unsigned. 11190 /// Returns empty type if there is no appropriate target types. 11191 QualType ASTContext::getIntTypeForBitwidth(unsigned DestWidth, 11192 unsigned Signed) const { 11193 TargetInfo::IntType Ty = getTargetInfo().getIntTypeByWidth(DestWidth, Signed); 11194 CanQualType QualTy = getFromTargetType(Ty); 11195 if (!QualTy && DestWidth == 128) 11196 return Signed ? Int128Ty : UnsignedInt128Ty; 11197 return QualTy; 11198 } 11199 11200 /// getRealTypeForBitwidth - 11201 /// sets floating point QualTy according to specified bitwidth. 11202 /// Returns empty type if there is no appropriate target types. 11203 QualType ASTContext::getRealTypeForBitwidth(unsigned DestWidth, 11204 bool ExplicitIEEE) const { 11205 TargetInfo::RealType Ty = 11206 getTargetInfo().getRealTypeByWidth(DestWidth, ExplicitIEEE); 11207 switch (Ty) { 11208 case TargetInfo::Float: 11209 return FloatTy; 11210 case TargetInfo::Double: 11211 return DoubleTy; 11212 case TargetInfo::LongDouble: 11213 return LongDoubleTy; 11214 case TargetInfo::Float128: 11215 return Float128Ty; 11216 case TargetInfo::NoFloat: 11217 return {}; 11218 } 11219 11220 llvm_unreachable("Unhandled TargetInfo::RealType value"); 11221 } 11222 11223 void ASTContext::setManglingNumber(const NamedDecl *ND, unsigned Number) { 11224 if (Number > 1) 11225 MangleNumbers[ND] = Number; 11226 } 11227 11228 unsigned ASTContext::getManglingNumber(const NamedDecl *ND) const { 11229 auto I = MangleNumbers.find(ND); 11230 return I != MangleNumbers.end() ? I->second : 1; 11231 } 11232 11233 void ASTContext::setStaticLocalNumber(const VarDecl *VD, unsigned Number) { 11234 if (Number > 1) 11235 StaticLocalNumbers[VD] = Number; 11236 } 11237 11238 unsigned ASTContext::getStaticLocalNumber(const VarDecl *VD) const { 11239 auto I = StaticLocalNumbers.find(VD); 11240 return I != StaticLocalNumbers.end() ? I->second : 1; 11241 } 11242 11243 MangleNumberingContext & 11244 ASTContext::getManglingNumberContext(const DeclContext *DC) { 11245 assert(LangOpts.CPlusPlus); // We don't need mangling numbers for plain C. 11246 std::unique_ptr<MangleNumberingContext> &MCtx = MangleNumberingContexts[DC]; 11247 if (!MCtx) 11248 MCtx = createMangleNumberingContext(); 11249 return *MCtx; 11250 } 11251 11252 MangleNumberingContext & 11253 ASTContext::getManglingNumberContext(NeedExtraManglingDecl_t, const Decl *D) { 11254 assert(LangOpts.CPlusPlus); // We don't need mangling numbers for plain C. 11255 std::unique_ptr<MangleNumberingContext> &MCtx = 11256 ExtraMangleNumberingContexts[D]; 11257 if (!MCtx) 11258 MCtx = createMangleNumberingContext(); 11259 return *MCtx; 11260 } 11261 11262 std::unique_ptr<MangleNumberingContext> 11263 ASTContext::createMangleNumberingContext() const { 11264 return ABI->createMangleNumberingContext(); 11265 } 11266 11267 const CXXConstructorDecl * 11268 ASTContext::getCopyConstructorForExceptionObject(CXXRecordDecl *RD) { 11269 return ABI->getCopyConstructorForExceptionObject( 11270 cast<CXXRecordDecl>(RD->getFirstDecl())); 11271 } 11272 11273 void ASTContext::addCopyConstructorForExceptionObject(CXXRecordDecl *RD, 11274 CXXConstructorDecl *CD) { 11275 return ABI->addCopyConstructorForExceptionObject( 11276 cast<CXXRecordDecl>(RD->getFirstDecl()), 11277 cast<CXXConstructorDecl>(CD->getFirstDecl())); 11278 } 11279 11280 void ASTContext::addTypedefNameForUnnamedTagDecl(TagDecl *TD, 11281 TypedefNameDecl *DD) { 11282 return ABI->addTypedefNameForUnnamedTagDecl(TD, DD); 11283 } 11284 11285 TypedefNameDecl * 11286 ASTContext::getTypedefNameForUnnamedTagDecl(const TagDecl *TD) { 11287 return ABI->getTypedefNameForUnnamedTagDecl(TD); 11288 } 11289 11290 void ASTContext::addDeclaratorForUnnamedTagDecl(TagDecl *TD, 11291 DeclaratorDecl *DD) { 11292 return ABI->addDeclaratorForUnnamedTagDecl(TD, DD); 11293 } 11294 11295 DeclaratorDecl *ASTContext::getDeclaratorForUnnamedTagDecl(const TagDecl *TD) { 11296 return ABI->getDeclaratorForUnnamedTagDecl(TD); 11297 } 11298 11299 void ASTContext::setParameterIndex(const ParmVarDecl *D, unsigned int index) { 11300 ParamIndices[D] = index; 11301 } 11302 11303 unsigned ASTContext::getParameterIndex(const ParmVarDecl *D) const { 11304 ParameterIndexTable::const_iterator I = ParamIndices.find(D); 11305 assert(I != ParamIndices.end() && 11306 "ParmIndices lacks entry set by ParmVarDecl"); 11307 return I->second; 11308 } 11309 11310 QualType ASTContext::getStringLiteralArrayType(QualType EltTy, 11311 unsigned Length) const { 11312 // A C++ string literal has a const-qualified element type (C++ 2.13.4p1). 11313 if (getLangOpts().CPlusPlus || getLangOpts().ConstStrings) 11314 EltTy = EltTy.withConst(); 11315 11316 EltTy = adjustStringLiteralBaseType(EltTy); 11317 11318 // Get an array type for the string, according to C99 6.4.5. This includes 11319 // the null terminator character. 11320 return getConstantArrayType(EltTy, llvm::APInt(32, Length + 1), nullptr, 11321 ArrayType::Normal, /*IndexTypeQuals*/ 0); 11322 } 11323 11324 StringLiteral * 11325 ASTContext::getPredefinedStringLiteralFromCache(StringRef Key) const { 11326 StringLiteral *&Result = StringLiteralCache[Key]; 11327 if (!Result) 11328 Result = StringLiteral::Create( 11329 *this, Key, StringLiteral::Ascii, 11330 /*Pascal*/ false, getStringLiteralArrayType(CharTy, Key.size()), 11331 SourceLocation()); 11332 return Result; 11333 } 11334 11335 MSGuidDecl * 11336 ASTContext::getMSGuidDecl(MSGuidDecl::Parts Parts) const { 11337 assert(MSGuidTagDecl && "building MS GUID without MS extensions?"); 11338 11339 llvm::FoldingSetNodeID ID; 11340 MSGuidDecl::Profile(ID, Parts); 11341 11342 void *InsertPos; 11343 if (MSGuidDecl *Existing = MSGuidDecls.FindNodeOrInsertPos(ID, InsertPos)) 11344 return Existing; 11345 11346 QualType GUIDType = getMSGuidType().withConst(); 11347 MSGuidDecl *New = MSGuidDecl::Create(*this, GUIDType, Parts); 11348 MSGuidDecls.InsertNode(New, InsertPos); 11349 return New; 11350 } 11351 11352 TemplateParamObjectDecl * 11353 ASTContext::getTemplateParamObjectDecl(QualType T, const APValue &V) const { 11354 assert(T->isRecordType() && "template param object of unexpected type"); 11355 11356 // C++ [temp.param]p8: 11357 // [...] a static storage duration object of type 'const T' [...] 11358 T.addConst(); 11359 11360 llvm::FoldingSetNodeID ID; 11361 TemplateParamObjectDecl::Profile(ID, T, V); 11362 11363 void *InsertPos; 11364 if (TemplateParamObjectDecl *Existing = 11365 TemplateParamObjectDecls.FindNodeOrInsertPos(ID, InsertPos)) 11366 return Existing; 11367 11368 TemplateParamObjectDecl *New = TemplateParamObjectDecl::Create(*this, T, V); 11369 TemplateParamObjectDecls.InsertNode(New, InsertPos); 11370 return New; 11371 } 11372 11373 bool ASTContext::AtomicUsesUnsupportedLibcall(const AtomicExpr *E) const { 11374 const llvm::Triple &T = getTargetInfo().getTriple(); 11375 if (!T.isOSDarwin()) 11376 return false; 11377 11378 if (!(T.isiOS() && T.isOSVersionLT(7)) && 11379 !(T.isMacOSX() && T.isOSVersionLT(10, 9))) 11380 return false; 11381 11382 QualType AtomicTy = E->getPtr()->getType()->getPointeeType(); 11383 CharUnits sizeChars = getTypeSizeInChars(AtomicTy); 11384 uint64_t Size = sizeChars.getQuantity(); 11385 CharUnits alignChars = getTypeAlignInChars(AtomicTy); 11386 unsigned Align = alignChars.getQuantity(); 11387 unsigned MaxInlineWidthInBits = getTargetInfo().getMaxAtomicInlineWidth(); 11388 return (Size != Align || toBits(sizeChars) > MaxInlineWidthInBits); 11389 } 11390 11391 bool 11392 ASTContext::ObjCMethodsAreEqual(const ObjCMethodDecl *MethodDecl, 11393 const ObjCMethodDecl *MethodImpl) { 11394 // No point trying to match an unavailable/deprecated mothod. 11395 if (MethodDecl->hasAttr<UnavailableAttr>() 11396 || MethodDecl->hasAttr<DeprecatedAttr>()) 11397 return false; 11398 if (MethodDecl->getObjCDeclQualifier() != 11399 MethodImpl->getObjCDeclQualifier()) 11400 return false; 11401 if (!hasSameType(MethodDecl->getReturnType(), MethodImpl->getReturnType())) 11402 return false; 11403 11404 if (MethodDecl->param_size() != MethodImpl->param_size()) 11405 return false; 11406 11407 for (ObjCMethodDecl::param_const_iterator IM = MethodImpl->param_begin(), 11408 IF = MethodDecl->param_begin(), EM = MethodImpl->param_end(), 11409 EF = MethodDecl->param_end(); 11410 IM != EM && IF != EF; ++IM, ++IF) { 11411 const ParmVarDecl *DeclVar = (*IF); 11412 const ParmVarDecl *ImplVar = (*IM); 11413 if (ImplVar->getObjCDeclQualifier() != DeclVar->getObjCDeclQualifier()) 11414 return false; 11415 if (!hasSameType(DeclVar->getType(), ImplVar->getType())) 11416 return false; 11417 } 11418 11419 return (MethodDecl->isVariadic() == MethodImpl->isVariadic()); 11420 } 11421 11422 uint64_t ASTContext::getTargetNullPointerValue(QualType QT) const { 11423 LangAS AS; 11424 if (QT->getUnqualifiedDesugaredType()->isNullPtrType()) 11425 AS = LangAS::Default; 11426 else 11427 AS = QT->getPointeeType().getAddressSpace(); 11428 11429 return getTargetInfo().getNullPointerValue(AS); 11430 } 11431 11432 unsigned ASTContext::getTargetAddressSpace(LangAS AS) const { 11433 if (isTargetAddressSpace(AS)) 11434 return toTargetAddressSpace(AS); 11435 else 11436 return (*AddrSpaceMap)[(unsigned)AS]; 11437 } 11438 11439 QualType ASTContext::getCorrespondingSaturatedType(QualType Ty) const { 11440 assert(Ty->isFixedPointType()); 11441 11442 if (Ty->isSaturatedFixedPointType()) return Ty; 11443 11444 switch (Ty->castAs<BuiltinType>()->getKind()) { 11445 default: 11446 llvm_unreachable("Not a fixed point type!"); 11447 case BuiltinType::ShortAccum: 11448 return SatShortAccumTy; 11449 case BuiltinType::Accum: 11450 return SatAccumTy; 11451 case BuiltinType::LongAccum: 11452 return SatLongAccumTy; 11453 case BuiltinType::UShortAccum: 11454 return SatUnsignedShortAccumTy; 11455 case BuiltinType::UAccum: 11456 return SatUnsignedAccumTy; 11457 case BuiltinType::ULongAccum: 11458 return SatUnsignedLongAccumTy; 11459 case BuiltinType::ShortFract: 11460 return SatShortFractTy; 11461 case BuiltinType::Fract: 11462 return SatFractTy; 11463 case BuiltinType::LongFract: 11464 return SatLongFractTy; 11465 case BuiltinType::UShortFract: 11466 return SatUnsignedShortFractTy; 11467 case BuiltinType::UFract: 11468 return SatUnsignedFractTy; 11469 case BuiltinType::ULongFract: 11470 return SatUnsignedLongFractTy; 11471 } 11472 } 11473 11474 LangAS ASTContext::getLangASForBuiltinAddressSpace(unsigned AS) const { 11475 if (LangOpts.OpenCL) 11476 return getTargetInfo().getOpenCLBuiltinAddressSpace(AS); 11477 11478 if (LangOpts.CUDA) 11479 return getTargetInfo().getCUDABuiltinAddressSpace(AS); 11480 11481 return getLangASFromTargetAS(AS); 11482 } 11483 11484 // Explicitly instantiate this in case a Redeclarable<T> is used from a TU that 11485 // doesn't include ASTContext.h 11486 template 11487 clang::LazyGenerationalUpdatePtr< 11488 const Decl *, Decl *, &ExternalASTSource::CompleteRedeclChain>::ValueType 11489 clang::LazyGenerationalUpdatePtr< 11490 const Decl *, Decl *, &ExternalASTSource::CompleteRedeclChain>::makeValue( 11491 const clang::ASTContext &Ctx, Decl *Value); 11492 11493 unsigned char ASTContext::getFixedPointScale(QualType Ty) const { 11494 assert(Ty->isFixedPointType()); 11495 11496 const TargetInfo &Target = getTargetInfo(); 11497 switch (Ty->castAs<BuiltinType>()->getKind()) { 11498 default: 11499 llvm_unreachable("Not a fixed point type!"); 11500 case BuiltinType::ShortAccum: 11501 case BuiltinType::SatShortAccum: 11502 return Target.getShortAccumScale(); 11503 case BuiltinType::Accum: 11504 case BuiltinType::SatAccum: 11505 return Target.getAccumScale(); 11506 case BuiltinType::LongAccum: 11507 case BuiltinType::SatLongAccum: 11508 return Target.getLongAccumScale(); 11509 case BuiltinType::UShortAccum: 11510 case BuiltinType::SatUShortAccum: 11511 return Target.getUnsignedShortAccumScale(); 11512 case BuiltinType::UAccum: 11513 case BuiltinType::SatUAccum: 11514 return Target.getUnsignedAccumScale(); 11515 case BuiltinType::ULongAccum: 11516 case BuiltinType::SatULongAccum: 11517 return Target.getUnsignedLongAccumScale(); 11518 case BuiltinType::ShortFract: 11519 case BuiltinType::SatShortFract: 11520 return Target.getShortFractScale(); 11521 case BuiltinType::Fract: 11522 case BuiltinType::SatFract: 11523 return Target.getFractScale(); 11524 case BuiltinType::LongFract: 11525 case BuiltinType::SatLongFract: 11526 return Target.getLongFractScale(); 11527 case BuiltinType::UShortFract: 11528 case BuiltinType::SatUShortFract: 11529 return Target.getUnsignedShortFractScale(); 11530 case BuiltinType::UFract: 11531 case BuiltinType::SatUFract: 11532 return Target.getUnsignedFractScale(); 11533 case BuiltinType::ULongFract: 11534 case BuiltinType::SatULongFract: 11535 return Target.getUnsignedLongFractScale(); 11536 } 11537 } 11538 11539 unsigned char ASTContext::getFixedPointIBits(QualType Ty) const { 11540 assert(Ty->isFixedPointType()); 11541 11542 const TargetInfo &Target = getTargetInfo(); 11543 switch (Ty->castAs<BuiltinType>()->getKind()) { 11544 default: 11545 llvm_unreachable("Not a fixed point type!"); 11546 case BuiltinType::ShortAccum: 11547 case BuiltinType::SatShortAccum: 11548 return Target.getShortAccumIBits(); 11549 case BuiltinType::Accum: 11550 case BuiltinType::SatAccum: 11551 return Target.getAccumIBits(); 11552 case BuiltinType::LongAccum: 11553 case BuiltinType::SatLongAccum: 11554 return Target.getLongAccumIBits(); 11555 case BuiltinType::UShortAccum: 11556 case BuiltinType::SatUShortAccum: 11557 return Target.getUnsignedShortAccumIBits(); 11558 case BuiltinType::UAccum: 11559 case BuiltinType::SatUAccum: 11560 return Target.getUnsignedAccumIBits(); 11561 case BuiltinType::ULongAccum: 11562 case BuiltinType::SatULongAccum: 11563 return Target.getUnsignedLongAccumIBits(); 11564 case BuiltinType::ShortFract: 11565 case BuiltinType::SatShortFract: 11566 case BuiltinType::Fract: 11567 case BuiltinType::SatFract: 11568 case BuiltinType::LongFract: 11569 case BuiltinType::SatLongFract: 11570 case BuiltinType::UShortFract: 11571 case BuiltinType::SatUShortFract: 11572 case BuiltinType::UFract: 11573 case BuiltinType::SatUFract: 11574 case BuiltinType::ULongFract: 11575 case BuiltinType::SatULongFract: 11576 return 0; 11577 } 11578 } 11579 11580 llvm::FixedPointSemantics 11581 ASTContext::getFixedPointSemantics(QualType Ty) const { 11582 assert((Ty->isFixedPointType() || Ty->isIntegerType()) && 11583 "Can only get the fixed point semantics for a " 11584 "fixed point or integer type."); 11585 if (Ty->isIntegerType()) 11586 return llvm::FixedPointSemantics::GetIntegerSemantics( 11587 getIntWidth(Ty), Ty->isSignedIntegerType()); 11588 11589 bool isSigned = Ty->isSignedFixedPointType(); 11590 return llvm::FixedPointSemantics( 11591 static_cast<unsigned>(getTypeSize(Ty)), getFixedPointScale(Ty), isSigned, 11592 Ty->isSaturatedFixedPointType(), 11593 !isSigned && getTargetInfo().doUnsignedFixedPointTypesHavePadding()); 11594 } 11595 11596 llvm::APFixedPoint ASTContext::getFixedPointMax(QualType Ty) const { 11597 assert(Ty->isFixedPointType()); 11598 return llvm::APFixedPoint::getMax(getFixedPointSemantics(Ty)); 11599 } 11600 11601 llvm::APFixedPoint ASTContext::getFixedPointMin(QualType Ty) const { 11602 assert(Ty->isFixedPointType()); 11603 return llvm::APFixedPoint::getMin(getFixedPointSemantics(Ty)); 11604 } 11605 11606 QualType ASTContext::getCorrespondingSignedFixedPointType(QualType Ty) const { 11607 assert(Ty->isUnsignedFixedPointType() && 11608 "Expected unsigned fixed point type"); 11609 11610 switch (Ty->castAs<BuiltinType>()->getKind()) { 11611 case BuiltinType::UShortAccum: 11612 return ShortAccumTy; 11613 case BuiltinType::UAccum: 11614 return AccumTy; 11615 case BuiltinType::ULongAccum: 11616 return LongAccumTy; 11617 case BuiltinType::SatUShortAccum: 11618 return SatShortAccumTy; 11619 case BuiltinType::SatUAccum: 11620 return SatAccumTy; 11621 case BuiltinType::SatULongAccum: 11622 return SatLongAccumTy; 11623 case BuiltinType::UShortFract: 11624 return ShortFractTy; 11625 case BuiltinType::UFract: 11626 return FractTy; 11627 case BuiltinType::ULongFract: 11628 return LongFractTy; 11629 case BuiltinType::SatUShortFract: 11630 return SatShortFractTy; 11631 case BuiltinType::SatUFract: 11632 return SatFractTy; 11633 case BuiltinType::SatULongFract: 11634 return SatLongFractTy; 11635 default: 11636 llvm_unreachable("Unexpected unsigned fixed point type"); 11637 } 11638 } 11639 11640 ParsedTargetAttr 11641 ASTContext::filterFunctionTargetAttrs(const TargetAttr *TD) const { 11642 assert(TD != nullptr); 11643 ParsedTargetAttr ParsedAttr = TD->parse(); 11644 11645 ParsedAttr.Features.erase( 11646 llvm::remove_if(ParsedAttr.Features, 11647 [&](const std::string &Feat) { 11648 return !Target->isValidFeatureName( 11649 StringRef{Feat}.substr(1)); 11650 }), 11651 ParsedAttr.Features.end()); 11652 return ParsedAttr; 11653 } 11654 11655 void ASTContext::getFunctionFeatureMap(llvm::StringMap<bool> &FeatureMap, 11656 const FunctionDecl *FD) const { 11657 if (FD) 11658 getFunctionFeatureMap(FeatureMap, GlobalDecl().getWithDecl(FD)); 11659 else 11660 Target->initFeatureMap(FeatureMap, getDiagnostics(), 11661 Target->getTargetOpts().CPU, 11662 Target->getTargetOpts().Features); 11663 } 11664 11665 // Fills in the supplied string map with the set of target features for the 11666 // passed in function. 11667 void ASTContext::getFunctionFeatureMap(llvm::StringMap<bool> &FeatureMap, 11668 GlobalDecl GD) const { 11669 StringRef TargetCPU = Target->getTargetOpts().CPU; 11670 const FunctionDecl *FD = GD.getDecl()->getAsFunction(); 11671 if (const auto *TD = FD->getAttr<TargetAttr>()) { 11672 ParsedTargetAttr ParsedAttr = filterFunctionTargetAttrs(TD); 11673 11674 // Make a copy of the features as passed on the command line into the 11675 // beginning of the additional features from the function to override. 11676 ParsedAttr.Features.insert( 11677 ParsedAttr.Features.begin(), 11678 Target->getTargetOpts().FeaturesAsWritten.begin(), 11679 Target->getTargetOpts().FeaturesAsWritten.end()); 11680 11681 if (ParsedAttr.Architecture != "" && 11682 Target->isValidCPUName(ParsedAttr.Architecture)) 11683 TargetCPU = ParsedAttr.Architecture; 11684 11685 // Now populate the feature map, first with the TargetCPU which is either 11686 // the default or a new one from the target attribute string. Then we'll use 11687 // the passed in features (FeaturesAsWritten) along with the new ones from 11688 // the attribute. 11689 Target->initFeatureMap(FeatureMap, getDiagnostics(), TargetCPU, 11690 ParsedAttr.Features); 11691 } else if (const auto *SD = FD->getAttr<CPUSpecificAttr>()) { 11692 llvm::SmallVector<StringRef, 32> FeaturesTmp; 11693 Target->getCPUSpecificCPUDispatchFeatures( 11694 SD->getCPUName(GD.getMultiVersionIndex())->getName(), FeaturesTmp); 11695 std::vector<std::string> Features(FeaturesTmp.begin(), FeaturesTmp.end()); 11696 Target->initFeatureMap(FeatureMap, getDiagnostics(), TargetCPU, Features); 11697 } else { 11698 FeatureMap = Target->getTargetOpts().FeatureMap; 11699 } 11700 } 11701 11702 OMPTraitInfo &ASTContext::getNewOMPTraitInfo() { 11703 OMPTraitInfoVector.emplace_back(new OMPTraitInfo()); 11704 return *OMPTraitInfoVector.back(); 11705 } 11706 11707 const StreamingDiagnostic &clang:: 11708 operator<<(const StreamingDiagnostic &DB, 11709 const ASTContext::SectionInfo &Section) { 11710 if (Section.Decl) 11711 return DB << Section.Decl; 11712 return DB << "a prior #pragma section"; 11713 } 11714 11715 bool ASTContext::mayExternalizeStaticVar(const Decl *D) const { 11716 bool IsStaticVar = 11717 isa<VarDecl>(D) && cast<VarDecl>(D)->getStorageClass() == SC_Static; 11718 bool IsExplicitDeviceVar = (D->hasAttr<CUDADeviceAttr>() && 11719 !D->getAttr<CUDADeviceAttr>()->isImplicit()) || 11720 (D->hasAttr<CUDAConstantAttr>() && 11721 !D->getAttr<CUDAConstantAttr>()->isImplicit()); 11722 // CUDA/HIP: static managed variables need to be externalized since it is 11723 // a declaration in IR, therefore cannot have internal linkage. 11724 return IsStaticVar && 11725 (D->hasAttr<HIPManagedAttr>() || IsExplicitDeviceVar); 11726 } 11727 11728 bool ASTContext::shouldExternalizeStaticVar(const Decl *D) const { 11729 return mayExternalizeStaticVar(D) && 11730 (D->hasAttr<HIPManagedAttr>() || 11731 CUDADeviceVarODRUsedByHost.count(cast<VarDecl>(D))); 11732 } 11733 11734 StringRef ASTContext::getCUIDHash() const { 11735 if (!CUIDHash.empty()) 11736 return CUIDHash; 11737 if (LangOpts.CUID.empty()) 11738 return StringRef(); 11739 CUIDHash = llvm::utohexstr(llvm::MD5Hash(LangOpts.CUID), /*LowerCase=*/true); 11740 return CUIDHash; 11741 } 11742 11743 // Get the closest named parent, so we can order the sycl naming decls somewhere 11744 // that mangling is meaningful. 11745 static const DeclContext *GetNamedParent(const CXXRecordDecl *RD) { 11746 const DeclContext *DC = RD->getDeclContext(); 11747 11748 while (!isa<NamedDecl, TranslationUnitDecl>(DC)) 11749 DC = DC->getParent(); 11750 return DC; 11751 } 11752 11753 void ASTContext::AddSYCLKernelNamingDecl(const CXXRecordDecl *RD) { 11754 assert(getLangOpts().isSYCL() && "Only valid for SYCL programs"); 11755 RD = RD->getCanonicalDecl(); 11756 const DeclContext *DC = GetNamedParent(RD); 11757 11758 assert(RD->getLocation().isValid() && 11759 "Invalid location on kernel naming decl"); 11760 11761 (void)SYCLKernelNamingTypes[DC].insert(RD); 11762 } 11763 11764 bool ASTContext::IsSYCLKernelNamingDecl(const NamedDecl *ND) const { 11765 assert(getLangOpts().isSYCL() && "Only valid for SYCL programs"); 11766 const auto *RD = dyn_cast<CXXRecordDecl>(ND); 11767 if (!RD) 11768 return false; 11769 RD = RD->getCanonicalDecl(); 11770 const DeclContext *DC = GetNamedParent(RD); 11771 11772 auto Itr = SYCLKernelNamingTypes.find(DC); 11773 11774 if (Itr == SYCLKernelNamingTypes.end()) 11775 return false; 11776 11777 return Itr->getSecond().count(RD); 11778 } 11779 11780 // Filters the Decls list to those that share the lambda mangling with the 11781 // passed RD. 11782 void ASTContext::FilterSYCLKernelNamingDecls( 11783 const CXXRecordDecl *RD, 11784 llvm::SmallVectorImpl<const CXXRecordDecl *> &Decls) { 11785 11786 if (!SYCLKernelFilterContext) 11787 SYCLKernelFilterContext.reset( 11788 ItaniumMangleContext::create(*this, getDiagnostics())); 11789 11790 llvm::SmallString<128> LambdaSig; 11791 llvm::raw_svector_ostream Out(LambdaSig); 11792 SYCLKernelFilterContext->mangleLambdaSig(RD, Out); 11793 11794 llvm::erase_if(Decls, [this, &LambdaSig](const CXXRecordDecl *LocalRD) { 11795 llvm::SmallString<128> LocalLambdaSig; 11796 llvm::raw_svector_ostream LocalOut(LocalLambdaSig); 11797 SYCLKernelFilterContext->mangleLambdaSig(LocalRD, LocalOut); 11798 return LambdaSig != LocalLambdaSig; 11799 }); 11800 } 11801 11802 unsigned ASTContext::GetSYCLKernelNamingIndex(const NamedDecl *ND) { 11803 assert(getLangOpts().isSYCL() && "Only valid for SYCL programs"); 11804 assert(IsSYCLKernelNamingDecl(ND) && 11805 "Lambda not involved in mangling asked for a naming index?"); 11806 11807 const CXXRecordDecl *RD = cast<CXXRecordDecl>(ND)->getCanonicalDecl(); 11808 const DeclContext *DC = GetNamedParent(RD); 11809 11810 auto Itr = SYCLKernelNamingTypes.find(DC); 11811 assert(Itr != SYCLKernelNamingTypes.end() && "Not a valid DeclContext?"); 11812 11813 const llvm::SmallPtrSet<const CXXRecordDecl *, 4> &Set = Itr->getSecond(); 11814 11815 llvm::SmallVector<const CXXRecordDecl *> Decls{Set.begin(), Set.end()}; 11816 11817 FilterSYCLKernelNamingDecls(RD, Decls); 11818 11819 llvm::sort(Decls, [](const CXXRecordDecl *LHS, const CXXRecordDecl *RHS) { 11820 return LHS->getLambdaManglingNumber() < RHS->getLambdaManglingNumber(); 11821 }); 11822 11823 return llvm::find(Decls, RD) - Decls.begin(); 11824 } 11825