SemaDecl.cpp revision 2742496d75ecb733c07c65c9a35cbfaa88ca81e4
1//===--- SemaDecl.cpp - Semantic Analysis for Declarations ----------------===// 2// 3// The LLVM Compiler Infrastructure 4// 5// This file is distributed under the University of Illinois Open Source 6// License. See LICENSE.TXT for details. 7// 8//===----------------------------------------------------------------------===// 9// 10// This file implements semantic analysis for declarations. 11// 12//===----------------------------------------------------------------------===// 13 14#include "Sema.h" 15#include "clang/AST/ASTConsumer.h" 16#include "clang/AST/ASTContext.h" 17#include "clang/AST/Attr.h" 18#include "clang/AST/Builtins.h" 19#include "clang/AST/Decl.h" 20#include "clang/AST/Expr.h" 21#include "clang/AST/Type.h" 22#include "clang/Parse/DeclSpec.h" 23#include "clang/Parse/Scope.h" 24#include "clang/Basic/LangOptions.h" 25#include "clang/Basic/TargetInfo.h" 26#include "clang/Basic/SourceManager.h" 27#include "clang/AST/ExprCXX.h" 28// FIXME: layering (ideally, Sema shouldn't be dependent on Lex API's) 29#include "clang/Lex/Preprocessor.h" 30#include "clang/Lex/HeaderSearch.h" 31#include "llvm/ADT/SmallString.h" 32#include "llvm/ADT/SmallSet.h" 33#include "llvm/ADT/DenseSet.h" 34using namespace clang; 35 36Sema::DeclTy *Sema::isTypeName(const IdentifierInfo &II, Scope *S) { 37 Decl *IIDecl = LookupDecl(&II, Decl::IDNS_Ordinary, S, false); 38 39 if (IIDecl && (isa<TypedefDecl>(IIDecl) || 40 isa<ObjCInterfaceDecl>(IIDecl) || 41 isa<TagDecl>(IIDecl))) 42 return IIDecl; 43 return 0; 44} 45 46void Sema::PushDeclContext(DeclContext *DC) { 47 assert( ( (isa<ObjCMethodDecl>(DC) && isa<TranslationUnitDecl>(CurContext)) 48 || DC->getParent() == CurContext ) && 49 "The next DeclContext should be directly contained in the current one."); 50 CurContext = DC; 51} 52 53void Sema::PopDeclContext() { 54 assert(CurContext && "DeclContext imbalance!"); 55 // If CurContext is a ObjC method, getParent() will return NULL. 56 CurContext = isa<ObjCMethodDecl>(CurContext) 57 ? Context.getTranslationUnitDecl() 58 : CurContext->getParent(); 59} 60 61/// Add this decl to the scope shadowed decl chains. 62void Sema::PushOnScopeChains(NamedDecl *D, Scope *S) { 63 S->AddDecl(D); 64 65 // C++ [basic.scope]p4: 66 // -- exactly one declaration shall declare a class name or 67 // enumeration name that is not a typedef name and the other 68 // declarations shall all refer to the same object or 69 // enumerator, or all refer to functions and function templates; 70 // in this case the class name or enumeration name is hidden. 71 if (TagDecl *TD = dyn_cast<TagDecl>(D)) { 72 // We are pushing the name of a tag (enum or class). 73 IdentifierResolver::ctx_iterator 74 CIT = IdResolver.ctx_begin(TD->getIdentifier(), TD->getDeclContext()); 75 if (CIT != IdResolver.ctx_end(TD->getIdentifier()) && 76 IdResolver.isDeclInScope(*CIT, TD->getDeclContext(), S)) { 77 // There is already a declaration with the same name in the same 78 // scope. It must be found before we find the new declaration, 79 // so swap the order on the shadowed declaration chain. 80 81 IdResolver.AddShadowedDecl(TD, *CIT); 82 return; 83 } 84 } 85 86 IdResolver.AddDecl(D); 87} 88 89void Sema::ActOnPopScope(SourceLocation Loc, Scope *S) { 90 if (S->decl_empty()) return; 91 assert((S->getFlags() & Scope::DeclScope) &&"Scope shouldn't contain decls!"); 92 93 // We only want to remove the decls from the identifier decl chains for local 94 // scopes, when inside a function/method. 95 if (S->getFnParent() == 0) 96 return; 97 98 for (Scope::decl_iterator I = S->decl_begin(), E = S->decl_end(); 99 I != E; ++I) { 100 Decl *TmpD = static_cast<Decl*>(*I); 101 assert(TmpD && "This decl didn't get pushed??"); 102 ScopedDecl *D = dyn_cast<ScopedDecl>(TmpD); 103 assert(D && "This decl isn't a ScopedDecl?"); 104 105 IdentifierInfo *II = D->getIdentifier(); 106 if (!II) continue; 107 108 // Unlink this decl from the identifier. 109 IdResolver.RemoveDecl(D); 110 111 // This will have to be revisited for C++: there we want to nest stuff in 112 // namespace decls etc. Even for C, we might want a top-level translation 113 // unit decl or something. 114 if (!CurFunctionDecl) 115 continue; 116 117 // Chain this decl to the containing function, it now owns the memory for 118 // the decl. 119 D->setNext(CurFunctionDecl->getDeclChain()); 120 CurFunctionDecl->setDeclChain(D); 121 } 122} 123 124/// getObjCInterfaceDecl - Look up a for a class declaration in the scope. 125/// return 0 if one not found. 126ObjCInterfaceDecl *Sema::getObjCInterfaceDecl(IdentifierInfo *Id) { 127 // The third "scope" argument is 0 since we aren't enabling lazy built-in 128 // creation from this context. 129 Decl *IDecl = LookupDecl(Id, Decl::IDNS_Ordinary, 0, false); 130 131 return dyn_cast_or_null<ObjCInterfaceDecl>(IDecl); 132} 133 134/// LookupDecl - Look up the inner-most declaration in the specified 135/// namespace. 136Decl *Sema::LookupDecl(const IdentifierInfo *II, unsigned NSI, 137 Scope *S, bool enableLazyBuiltinCreation) { 138 if (II == 0) return 0; 139 unsigned NS = NSI; 140 if (getLangOptions().CPlusPlus && (NS & Decl::IDNS_Ordinary)) 141 NS |= Decl::IDNS_Tag; 142 143 // Scan up the scope chain looking for a decl that matches this identifier 144 // that is in the appropriate namespace. This search should not take long, as 145 // shadowing of names is uncommon, and deep shadowing is extremely uncommon. 146 for (IdentifierResolver::iterator 147 I = IdResolver.begin(II, CurContext), E = IdResolver.end(II); I != E; ++I) 148 if ((*I)->getIdentifierNamespace() & NS) 149 return *I; 150 151 // If we didn't find a use of this identifier, and if the identifier 152 // corresponds to a compiler builtin, create the decl object for the builtin 153 // now, injecting it into translation unit scope, and return it. 154 if (NS & Decl::IDNS_Ordinary) { 155 if (enableLazyBuiltinCreation) { 156 // If this is a builtin on this (or all) targets, create the decl. 157 if (unsigned BuiltinID = II->getBuiltinID()) 158 return LazilyCreateBuiltin((IdentifierInfo *)II, BuiltinID, S); 159 } 160 if (getLangOptions().ObjC1) { 161 // @interface and @compatibility_alias introduce typedef-like names. 162 // Unlike typedef's, they can only be introduced at file-scope (and are 163 // therefore not scoped decls). They can, however, be shadowed by 164 // other names in IDNS_Ordinary. 165 ObjCInterfaceDeclsTy::iterator IDI = ObjCInterfaceDecls.find(II); 166 if (IDI != ObjCInterfaceDecls.end()) 167 return IDI->second; 168 ObjCAliasTy::iterator I = ObjCAliasDecls.find(II); 169 if (I != ObjCAliasDecls.end()) 170 return I->second->getClassInterface(); 171 } 172 } 173 return 0; 174} 175 176void Sema::InitBuiltinVaListType() { 177 if (!Context.getBuiltinVaListType().isNull()) 178 return; 179 180 IdentifierInfo *VaIdent = &Context.Idents.get("__builtin_va_list"); 181 Decl *VaDecl = LookupDecl(VaIdent, Decl::IDNS_Ordinary, TUScope); 182 TypedefDecl *VaTypedef = cast<TypedefDecl>(VaDecl); 183 Context.setBuiltinVaListType(Context.getTypedefType(VaTypedef)); 184} 185 186/// LazilyCreateBuiltin - The specified Builtin-ID was first used at file scope. 187/// lazily create a decl for it. 188ScopedDecl *Sema::LazilyCreateBuiltin(IdentifierInfo *II, unsigned bid, 189 Scope *S) { 190 Builtin::ID BID = (Builtin::ID)bid; 191 192 if (BID == Builtin::BI__builtin_va_start || 193 BID == Builtin::BI__builtin_va_copy || 194 BID == Builtin::BI__builtin_va_end) 195 InitBuiltinVaListType(); 196 197 QualType R = Context.BuiltinInfo.GetBuiltinType(BID, Context); 198 FunctionDecl *New = FunctionDecl::Create(Context, 199 Context.getTranslationUnitDecl(), 200 SourceLocation(), II, R, 201 FunctionDecl::Extern, false, 0); 202 203 // Create Decl objects for each parameter, adding them to the 204 // FunctionDecl. 205 if (FunctionTypeProto *FT = dyn_cast<FunctionTypeProto>(R)) { 206 llvm::SmallVector<ParmVarDecl*, 16> Params; 207 for (unsigned i = 0, e = FT->getNumArgs(); i != e; ++i) 208 Params.push_back(ParmVarDecl::Create(Context, New, SourceLocation(), 0, 209 FT->getArgType(i), VarDecl::None, 0, 210 0)); 211 New->setParams(&Params[0], Params.size()); 212 } 213 214 215 216 // TUScope is the translation-unit scope to insert this function into. 217 PushOnScopeChains(New, TUScope); 218 return New; 219} 220 221/// MergeTypeDefDecl - We just parsed a typedef 'New' which has the same name 222/// and scope as a previous declaration 'Old'. Figure out how to resolve this 223/// situation, merging decls or emitting diagnostics as appropriate. 224/// 225TypedefDecl *Sema::MergeTypeDefDecl(TypedefDecl *New, Decl *OldD) { 226 // Verify the old decl was also a typedef. 227 TypedefDecl *Old = dyn_cast<TypedefDecl>(OldD); 228 if (!Old) { 229 Diag(New->getLocation(), diag::err_redefinition_different_kind, 230 New->getName()); 231 Diag(OldD->getLocation(), diag::err_previous_definition); 232 return New; 233 } 234 235 // Allow multiple definitions for ObjC built-in typedefs. 236 // FIXME: Verify the underlying types are equivalent! 237 if (getLangOptions().ObjC1 && isBuiltinObjCType(New)) 238 return Old; 239 240 // Redeclaration of a type is a constraint violation (6.7.2.3p1). 241 // Apparently GCC, Intel, and Sun all silently ignore the redeclaration if 242 // *either* declaration is in a system header. The code below implements 243 // this adhoc compatibility rule. FIXME: The following code will not 244 // work properly when compiling ".i" files (containing preprocessed output). 245 SourceManager &SrcMgr = Context.getSourceManager(); 246 const FileEntry *OldDeclFile = SrcMgr.getFileEntryForLoc(Old->getLocation()); 247 const FileEntry *NewDeclFile = SrcMgr.getFileEntryForLoc(New->getLocation()); 248 HeaderSearch &HdrInfo = PP.getHeaderSearchInfo(); 249 DirectoryLookup::DirType OldDirType = HdrInfo.getFileDirFlavor(OldDeclFile); 250 DirectoryLookup::DirType NewDirType = HdrInfo.getFileDirFlavor(NewDeclFile); 251 252 // Allow reclarations in both SystemHeaderDir and ExternCSystemHeaderDir. 253 if ((OldDirType != DirectoryLookup::NormalHeaderDir || 254 NewDirType != DirectoryLookup::NormalHeaderDir) || 255 getLangOptions().Microsoft) 256 return New; 257 258 // TODO: CHECK FOR CONFLICTS, multiple decls with same name in one scope. 259 // TODO: This is totally simplistic. It should handle merging functions 260 // together etc, merging extern int X; int X; ... 261 Diag(New->getLocation(), diag::err_redefinition, New->getName()); 262 Diag(Old->getLocation(), diag::err_previous_definition); 263 return New; 264} 265 266/// DeclhasAttr - returns true if decl Declaration already has the target attribute. 267static bool DeclHasAttr(const Decl *decl, const Attr *target) { 268 for (const Attr *attr = decl->getAttrs(); attr; attr = attr->getNext()) 269 if (attr->getKind() == target->getKind()) 270 return true; 271 272 return false; 273} 274 275/// MergeAttributes - append attributes from the Old decl to the New one. 276static void MergeAttributes(Decl *New, Decl *Old) { 277 Attr *attr = const_cast<Attr*>(Old->getAttrs()), *tmp; 278 279// FIXME: fix this code to cleanup the Old attrs correctly 280 while (attr) { 281 tmp = attr; 282 attr = attr->getNext(); 283 284 if (!DeclHasAttr(New, tmp)) { 285 New->addAttr(tmp); 286 } else { 287 tmp->setNext(0); 288 delete(tmp); 289 } 290 } 291} 292 293/// MergeFunctionDecl - We just parsed a function 'New' from 294/// declarator D which has the same name and scope as a previous 295/// declaration 'Old'. Figure out how to resolve this situation, 296/// merging decls or emitting diagnostics as appropriate. 297/// Redeclaration will be set true if thisNew is a redeclaration OldD. 298FunctionDecl * 299Sema::MergeFunctionDecl(FunctionDecl *New, Decl *OldD, bool &Redeclaration) { 300 Redeclaration = false; 301 // Verify the old decl was also a function. 302 FunctionDecl *Old = dyn_cast<FunctionDecl>(OldD); 303 if (!Old) { 304 Diag(New->getLocation(), diag::err_redefinition_different_kind, 305 New->getName()); 306 Diag(OldD->getLocation(), diag::err_previous_definition); 307 return New; 308 } 309 310 QualType OldQType = Context.getCanonicalType(Old->getType()); 311 QualType NewQType = Context.getCanonicalType(New->getType()); 312 313 // C++ [dcl.fct]p3: 314 // All declarations for a function shall agree exactly in both the 315 // return type and the parameter-type-list. 316 if (getLangOptions().CPlusPlus && OldQType == NewQType) { 317 MergeAttributes(New, Old); 318 Redeclaration = true; 319 return MergeCXXFunctionDecl(New, Old); 320 } 321 322 // C: Function types need to be compatible, not identical. This handles 323 // duplicate function decls like "void f(int); void f(enum X);" properly. 324 if (!getLangOptions().CPlusPlus && 325 Context.functionTypesAreCompatible(OldQType, NewQType)) { 326 MergeAttributes(New, Old); 327 Redeclaration = true; 328 return New; 329 } 330 331 // A function that has already been declared has been redeclared or defined 332 // with a different type- show appropriate diagnostic 333 diag::kind PrevDiag; 334 if (Old->isThisDeclarationADefinition()) 335 PrevDiag = diag::err_previous_definition; 336 else if (Old->isImplicit()) 337 PrevDiag = diag::err_previous_implicit_declaration; 338 else 339 PrevDiag = diag::err_previous_declaration; 340 341 // TODO: CHECK FOR CONFLICTS, multiple decls with same name in one scope. 342 // TODO: This is totally simplistic. It should handle merging functions 343 // together etc, merging extern int X; int X; ... 344 Diag(New->getLocation(), diag::err_conflicting_types, New->getName()); 345 Diag(Old->getLocation(), PrevDiag); 346 return New; 347} 348 349/// equivalentArrayTypes - Used to determine whether two array types are 350/// equivalent. 351/// We need to check this explicitly as an incomplete array definition is 352/// considered a VariableArrayType, so will not match a complete array 353/// definition that would be otherwise equivalent. 354static bool areEquivalentArrayTypes(QualType NewQType, QualType OldQType) { 355 const ArrayType *NewAT = NewQType->getAsArrayType(); 356 const ArrayType *OldAT = OldQType->getAsArrayType(); 357 358 if (!NewAT || !OldAT) 359 return false; 360 361 // If either (or both) array types in incomplete we need to strip off the 362 // outer VariableArrayType. Once the outer VAT is removed the remaining 363 // types must be identical if the array types are to be considered 364 // equivalent. 365 // eg. int[][1] and int[1][1] become 366 // VAT(null, CAT(1, int)) and CAT(1, CAT(1, int)) 367 // removing the outermost VAT gives 368 // CAT(1, int) and CAT(1, int) 369 // which are equal, therefore the array types are equivalent. 370 if (NewAT->isIncompleteArrayType() || OldAT->isIncompleteArrayType()) { 371 if (NewAT->getIndexTypeQualifier() != OldAT->getIndexTypeQualifier()) 372 return false; 373 NewQType = NewAT->getElementType().getCanonicalType(); 374 OldQType = OldAT->getElementType().getCanonicalType(); 375 } 376 377 return NewQType == OldQType; 378} 379 380/// MergeVarDecl - We just parsed a variable 'New' which has the same name 381/// and scope as a previous declaration 'Old'. Figure out how to resolve this 382/// situation, merging decls or emitting diagnostics as appropriate. 383/// 384/// FIXME: Need to carefully consider tentative definition rules (C99 6.9.2p2). 385/// For example, we incorrectly complain about i1, i4 from C99 6.9.2p4. 386/// 387VarDecl *Sema::MergeVarDecl(VarDecl *New, Decl *OldD) { 388 // Verify the old decl was also a variable. 389 VarDecl *Old = dyn_cast<VarDecl>(OldD); 390 if (!Old) { 391 Diag(New->getLocation(), diag::err_redefinition_different_kind, 392 New->getName()); 393 Diag(OldD->getLocation(), diag::err_previous_definition); 394 return New; 395 } 396 397 MergeAttributes(New, Old); 398 399 // Verify the types match. 400 QualType OldCType = Context.getCanonicalType(Old->getType()); 401 QualType NewCType = Context.getCanonicalType(New->getType()); 402 if (OldCType != NewCType && !areEquivalentArrayTypes(NewCType, OldCType)) { 403 Diag(New->getLocation(), diag::err_redefinition, New->getName()); 404 Diag(Old->getLocation(), diag::err_previous_definition); 405 return New; 406 } 407 // C99 6.2.2p4: Check if we have a static decl followed by a non-static. 408 if (New->getStorageClass() == VarDecl::Static && 409 (Old->getStorageClass() == VarDecl::None || 410 Old->getStorageClass() == VarDecl::Extern)) { 411 Diag(New->getLocation(), diag::err_static_non_static, New->getName()); 412 Diag(Old->getLocation(), diag::err_previous_definition); 413 return New; 414 } 415 // C99 6.2.2p4: Check if we have a non-static decl followed by a static. 416 if (New->getStorageClass() != VarDecl::Static && 417 Old->getStorageClass() == VarDecl::Static) { 418 Diag(New->getLocation(), diag::err_non_static_static, New->getName()); 419 Diag(Old->getLocation(), diag::err_previous_definition); 420 return New; 421 } 422 // We've verified the types match, now handle "tentative" definitions. 423 if (Old->isFileVarDecl() && New->isFileVarDecl()) { 424 // Handle C "tentative" external object definitions (C99 6.9.2). 425 bool OldIsTentative = false; 426 bool NewIsTentative = false; 427 428 if (!Old->getInit() && 429 (Old->getStorageClass() == VarDecl::None || 430 Old->getStorageClass() == VarDecl::Static)) 431 OldIsTentative = true; 432 433 // FIXME: this check doesn't work (since the initializer hasn't been 434 // attached yet). This check should be moved to FinalizeDeclaratorGroup. 435 // Unfortunately, by the time we get to FinializeDeclaratorGroup, we've 436 // thrown out the old decl. 437 if (!New->getInit() && 438 (New->getStorageClass() == VarDecl::None || 439 New->getStorageClass() == VarDecl::Static)) 440 ; // change to NewIsTentative = true; once the code is moved. 441 442 if (NewIsTentative || OldIsTentative) 443 return New; 444 } 445 // Handle __private_extern__ just like extern. 446 if (Old->getStorageClass() != VarDecl::Extern && 447 Old->getStorageClass() != VarDecl::PrivateExtern && 448 New->getStorageClass() != VarDecl::Extern && 449 New->getStorageClass() != VarDecl::PrivateExtern) { 450 Diag(New->getLocation(), diag::err_redefinition, New->getName()); 451 Diag(Old->getLocation(), diag::err_previous_definition); 452 } 453 return New; 454} 455 456/// CheckParmsForFunctionDef - Check that the parameters of the given 457/// function are appropriate for the definition of a function. This 458/// takes care of any checks that cannot be performed on the 459/// declaration itself, e.g., that the types of each of the function 460/// parameters are complete. 461bool Sema::CheckParmsForFunctionDef(FunctionDecl *FD) { 462 bool HasInvalidParm = false; 463 for (unsigned p = 0, NumParams = FD->getNumParams(); p < NumParams; ++p) { 464 ParmVarDecl *Param = FD->getParamDecl(p); 465 466 // C99 6.7.5.3p4: the parameters in a parameter type list in a 467 // function declarator that is part of a function definition of 468 // that function shall not have incomplete type. 469 if (Param->getType()->isIncompleteType() && 470 !Param->isInvalidDecl()) { 471 Diag(Param->getLocation(), diag::err_typecheck_decl_incomplete_type, 472 Param->getType().getAsString()); 473 Param->setInvalidDecl(); 474 HasInvalidParm = true; 475 } 476 } 477 478 return HasInvalidParm; 479} 480 481/// CreateImplicitParameter - Creates an implicit function parameter 482/// in the scope S and with the given type. This routine is used, for 483/// example, to create the implicit "self" parameter in an Objective-C 484/// method. 485ParmVarDecl * 486Sema::CreateImplicitParameter(Scope *S, IdentifierInfo *Id, 487 SourceLocation IdLoc, QualType Type) { 488 ParmVarDecl *New = ParmVarDecl::Create(Context, CurContext, IdLoc, Id, Type, 489 VarDecl::None, 0, 0); 490 if (Id) 491 PushOnScopeChains(New, S); 492 493 return New; 494} 495 496/// ParsedFreeStandingDeclSpec - This method is invoked when a declspec with 497/// no declarator (e.g. "struct foo;") is parsed. 498Sema::DeclTy *Sema::ParsedFreeStandingDeclSpec(Scope *S, DeclSpec &DS) { 499 // TODO: emit error on 'int;' or 'const enum foo;'. 500 // TODO: emit error on 'typedef int;' 501 // if (!DS.isMissingDeclaratorOk()) Diag(...); 502 503 return dyn_cast_or_null<TagDecl>(static_cast<Decl *>(DS.getTypeRep())); 504} 505 506bool Sema::CheckSingleInitializer(Expr *&Init, QualType DeclType) { 507 // Get the type before calling CheckSingleAssignmentConstraints(), since 508 // it can promote the expression. 509 QualType InitType = Init->getType(); 510 511 AssignConvertType ConvTy = CheckSingleAssignmentConstraints(DeclType, Init); 512 return DiagnoseAssignmentResult(ConvTy, Init->getLocStart(), DeclType, 513 InitType, Init, "initializing"); 514} 515 516bool Sema::CheckInitExpr(Expr *expr, InitListExpr *IList, unsigned slot, 517 QualType ElementType) { 518 Expr *savExpr = expr; // Might be promoted by CheckSingleInitializer. 519 if (CheckSingleInitializer(expr, ElementType)) 520 return true; // types weren't compatible. 521 522 if (savExpr != expr) // The type was promoted, update initializer list. 523 IList->setInit(slot, expr); 524 return false; 525} 526 527bool Sema::CheckStringLiteralInit(StringLiteral *strLiteral, QualType &DeclT) { 528 if (const IncompleteArrayType *IAT = DeclT->getAsIncompleteArrayType()) { 529 // C99 6.7.8p14. We have an array of character type with unknown size 530 // being initialized to a string literal. 531 llvm::APSInt ConstVal(32); 532 ConstVal = strLiteral->getByteLength() + 1; 533 // Return a new array type (C99 6.7.8p22). 534 DeclT = Context.getConstantArrayType(IAT->getElementType(), ConstVal, 535 ArrayType::Normal, 0); 536 } else if (const ConstantArrayType *CAT = DeclT->getAsConstantArrayType()) { 537 // C99 6.7.8p14. We have an array of character type with known size. 538 if (strLiteral->getByteLength() > (unsigned)CAT->getMaximumElements()) 539 Diag(strLiteral->getSourceRange().getBegin(), 540 diag::warn_initializer_string_for_char_array_too_long, 541 strLiteral->getSourceRange()); 542 } else { 543 assert(0 && "HandleStringLiteralInit(): Invalid array type"); 544 } 545 // Set type from "char *" to "constant array of char". 546 strLiteral->setType(DeclT); 547 // For now, we always return false (meaning success). 548 return false; 549} 550 551StringLiteral *Sema::IsStringLiteralInit(Expr *Init, QualType DeclType) { 552 const ArrayType *AT = DeclType->getAsArrayType(); 553 if (AT && AT->getElementType()->isCharType()) { 554 return dyn_cast<StringLiteral>(Init); 555 } 556 return 0; 557} 558 559// CheckInitializerListTypes - Checks the types of elements of an initializer 560// list. This function is recursive: it calls itself to initialize subelements 561// of aggregate types. Note that the topLevel parameter essentially refers to 562// whether this expression "owns" the initializer list passed in, or if this 563// initialization is taking elements out of a parent initializer. Each 564// call to this function adds zero or more to startIndex, reports any errors, 565// and returns true if it found any inconsistent types. 566bool Sema::CheckInitializerListTypes(InitListExpr*& IList, QualType &DeclType, 567 bool topLevel, unsigned& startIndex) { 568 bool hadError = false; 569 570 if (DeclType->isScalarType()) { 571 // The simplest case: initializing a single scalar 572 if (topLevel) { 573 Diag(IList->getLocStart(), diag::warn_braces_around_scalar_init, 574 IList->getSourceRange()); 575 } 576 if (startIndex < IList->getNumInits()) { 577 Expr* expr = IList->getInit(startIndex); 578 if (InitListExpr *SubInitList = dyn_cast<InitListExpr>(expr)) { 579 // FIXME: Should an error be reported here instead? 580 unsigned newIndex = 0; 581 CheckInitializerListTypes(SubInitList, DeclType, true, newIndex); 582 } else { 583 hadError |= CheckInitExpr(expr, IList, startIndex, DeclType); 584 } 585 ++startIndex; 586 } 587 // FIXME: Should an error be reported for empty initializer list + scalar? 588 } else if (DeclType->isVectorType()) { 589 if (startIndex < IList->getNumInits()) { 590 const VectorType *VT = DeclType->getAsVectorType(); 591 int maxElements = VT->getNumElements(); 592 QualType elementType = VT->getElementType(); 593 594 for (int i = 0; i < maxElements; ++i) { 595 // Don't attempt to go past the end of the init list 596 if (startIndex >= IList->getNumInits()) 597 break; 598 Expr* expr = IList->getInit(startIndex); 599 if (InitListExpr *SubInitList = dyn_cast<InitListExpr>(expr)) { 600 unsigned newIndex = 0; 601 hadError |= CheckInitializerListTypes(SubInitList, elementType, 602 true, newIndex); 603 ++startIndex; 604 } else { 605 hadError |= CheckInitializerListTypes(IList, elementType, 606 false, startIndex); 607 } 608 } 609 } 610 } else if (DeclType->isAggregateType() || DeclType->isUnionType()) { 611 if (DeclType->isStructureType() || DeclType->isUnionType()) { 612 if (startIndex < IList->getNumInits() && !topLevel && 613 Context.typesAreCompatible(IList->getInit(startIndex)->getType(), 614 DeclType)) { 615 // We found a compatible struct; per the standard, this initializes the 616 // struct. (The C standard technically says that this only applies for 617 // initializers for declarations with automatic scope; however, this 618 // construct is unambiguous anyway because a struct cannot contain 619 // a type compatible with itself. We'll output an error when we check 620 // if the initializer is constant.) 621 // FIXME: Is a call to CheckSingleInitializer required here? 622 ++startIndex; 623 } else { 624 RecordDecl* structDecl = DeclType->getAsRecordType()->getDecl(); 625 626 // If the record is invalid, some of it's members are invalid. To avoid 627 // confusion, we forgo checking the intializer for the entire record. 628 if (structDecl->isInvalidDecl()) 629 return true; 630 631 // If structDecl is a forward declaration, this loop won't do anything; 632 // That's okay, because an error should get printed out elsewhere. It 633 // might be worthwhile to skip over the rest of the initializer, though. 634 int numMembers = structDecl->getNumMembers() - 635 structDecl->hasFlexibleArrayMember(); 636 for (int i = 0; i < numMembers; i++) { 637 // Don't attempt to go past the end of the init list 638 if (startIndex >= IList->getNumInits()) 639 break; 640 FieldDecl * curField = structDecl->getMember(i); 641 if (!curField->getIdentifier()) { 642 // Don't initialize unnamed fields, e.g. "int : 20;" 643 continue; 644 } 645 QualType fieldType = curField->getType(); 646 Expr* expr = IList->getInit(startIndex); 647 if (InitListExpr *SubInitList = dyn_cast<InitListExpr>(expr)) { 648 unsigned newStart = 0; 649 hadError |= CheckInitializerListTypes(SubInitList, fieldType, 650 true, newStart); 651 ++startIndex; 652 } else { 653 hadError |= CheckInitializerListTypes(IList, fieldType, 654 false, startIndex); 655 } 656 if (DeclType->isUnionType()) 657 break; 658 } 659 // FIXME: Implement flexible array initialization GCC extension (it's a 660 // really messy extension to implement, unfortunately...the necessary 661 // information isn't actually even here!) 662 } 663 } else if (DeclType->isArrayType()) { 664 // Check for the special-case of initializing an array with a string. 665 if (startIndex < IList->getNumInits()) { 666 if (StringLiteral *lit = IsStringLiteralInit(IList->getInit(startIndex), 667 DeclType)) { 668 CheckStringLiteralInit(lit, DeclType); 669 ++startIndex; 670 if (topLevel && startIndex < IList->getNumInits()) { 671 // We have leftover initializers; warn 672 Diag(IList->getInit(startIndex)->getLocStart(), 673 diag::err_excess_initializers_in_char_array_initializer, 674 IList->getInit(startIndex)->getSourceRange()); 675 } 676 return false; 677 } 678 } 679 int maxElements; 680 if (DeclType->isIncompleteArrayType()) { 681 // FIXME: use a proper constant 682 maxElements = 0x7FFFFFFF; 683 } else if (const VariableArrayType *VAT = 684 DeclType->getAsVariableArrayType()) { 685 // Check for VLAs; in standard C it would be possible to check this 686 // earlier, but I don't know where clang accepts VLAs (gcc accepts 687 // them in all sorts of strange places). 688 Diag(VAT->getSizeExpr()->getLocStart(), 689 diag::err_variable_object_no_init, 690 VAT->getSizeExpr()->getSourceRange()); 691 hadError = true; 692 maxElements = 0x7FFFFFFF; 693 } else { 694 const ConstantArrayType *CAT = DeclType->getAsConstantArrayType(); 695 maxElements = static_cast<int>(CAT->getSize().getZExtValue()); 696 } 697 QualType elementType = DeclType->getAsArrayType()->getElementType(); 698 int numElements = 0; 699 for (int i = 0; i < maxElements; ++i, ++numElements) { 700 // Don't attempt to go past the end of the init list 701 if (startIndex >= IList->getNumInits()) 702 break; 703 Expr* expr = IList->getInit(startIndex); 704 if (InitListExpr *SubInitList = dyn_cast<InitListExpr>(expr)) { 705 unsigned newIndex = 0; 706 hadError |= CheckInitializerListTypes(SubInitList, elementType, 707 true, newIndex); 708 ++startIndex; 709 } else { 710 hadError |= CheckInitializerListTypes(IList, elementType, 711 false, startIndex); 712 } 713 } 714 if (DeclType->isIncompleteArrayType()) { 715 // If this is an incomplete array type, the actual type needs to 716 // be calculated here 717 if (numElements == 0) { 718 // Sizing an array implicitly to zero is not allowed 719 // (It could in theory be allowed, but it doesn't really matter.) 720 Diag(IList->getLocStart(), 721 diag::err_at_least_one_initializer_needed_to_size_array); 722 hadError = true; 723 } else { 724 llvm::APSInt ConstVal(32); 725 ConstVal = numElements; 726 DeclType = Context.getConstantArrayType(elementType, ConstVal, 727 ArrayType::Normal, 0); 728 } 729 } 730 } else { 731 assert(0 && "Aggregate that isn't a function or array?!"); 732 } 733 } else { 734 // In C, all types are either scalars or aggregates, but 735 // additional handling is needed here for C++ (and possibly others?). 736 assert(0 && "Unsupported initializer type"); 737 } 738 739 // If this init list is a base list, we set the type; an initializer doesn't 740 // fundamentally have a type, but this makes the ASTs a bit easier to read 741 if (topLevel) 742 IList->setType(DeclType); 743 744 if (topLevel && startIndex < IList->getNumInits()) { 745 // We have leftover initializers; warn 746 Diag(IList->getInit(startIndex)->getLocStart(), 747 diag::warn_excess_initializers, 748 IList->getInit(startIndex)->getSourceRange()); 749 } 750 return hadError; 751} 752 753bool Sema::CheckInitializerTypes(Expr *&Init, QualType &DeclType) { 754 // C99 6.7.8p3: The type of the entity to be initialized shall be an array 755 // of unknown size ("[]") or an object type that is not a variable array type. 756 if (const VariableArrayType *VAT = DeclType->getAsVariableArrayType()) 757 return Diag(VAT->getSizeExpr()->getLocStart(), 758 diag::err_variable_object_no_init, 759 VAT->getSizeExpr()->getSourceRange()); 760 761 InitListExpr *InitList = dyn_cast<InitListExpr>(Init); 762 if (!InitList) { 763 // FIXME: Handle wide strings 764 if (StringLiteral *strLiteral = IsStringLiteralInit(Init, DeclType)) 765 return CheckStringLiteralInit(strLiteral, DeclType); 766 767 if (DeclType->isArrayType()) 768 return Diag(Init->getLocStart(), 769 diag::err_array_init_list_required, 770 Init->getSourceRange()); 771 772 return CheckSingleInitializer(Init, DeclType); 773 } 774#if 0 775 unsigned newIndex = 0; 776 return CheckInitializerListTypes(InitList, DeclType, true, newIndex); 777#else 778 InitListChecker CheckInitList(this, InitList, DeclType); 779 return CheckInitList.HadError(); 780#endif 781} 782 783Sema::DeclTy * 784Sema::ActOnDeclarator(Scope *S, Declarator &D, DeclTy *lastDecl) { 785 ScopedDecl *LastDeclarator = dyn_cast_or_null<ScopedDecl>((Decl *)lastDecl); 786 IdentifierInfo *II = D.getIdentifier(); 787 788 // All of these full declarators require an identifier. If it doesn't have 789 // one, the ParsedFreeStandingDeclSpec action should be used. 790 if (II == 0) { 791 Diag(D.getDeclSpec().getSourceRange().getBegin(), 792 diag::err_declarator_need_ident, 793 D.getDeclSpec().getSourceRange(), D.getSourceRange()); 794 return 0; 795 } 796 797 // The scope passed in may not be a decl scope. Zip up the scope tree until 798 // we find one that is. 799 while ((S->getFlags() & Scope::DeclScope) == 0) 800 S = S->getParent(); 801 802 // See if this is a redefinition of a variable in the same scope. 803 Decl *PrevDecl = LookupDecl(II, Decl::IDNS_Ordinary, S); 804 ScopedDecl *New; 805 bool InvalidDecl = false; 806 807 // In C++, the previous declaration we find might be a tag type 808 // (class or enum). In this case, the new declaration will hide the 809 // tag type. 810 if (PrevDecl && PrevDecl->getIdentifierNamespace() == Decl::IDNS_Tag) 811 PrevDecl = 0; 812 813 QualType R = GetTypeForDeclarator(D, S); 814 assert(!R.isNull() && "GetTypeForDeclarator() returned null type"); 815 816 if (D.getDeclSpec().getStorageClassSpec() == DeclSpec::SCS_typedef) { 817 // Check that there are no default arguments (C++ only). 818 if (getLangOptions().CPlusPlus) 819 CheckExtraCXXDefaultArguments(D); 820 821 TypedefDecl *NewTD = ParseTypedefDecl(S, D, R, LastDeclarator); 822 if (!NewTD) return 0; 823 824 // Handle attributes prior to checking for duplicates in MergeVarDecl 825 HandleDeclAttributes(NewTD, D.getDeclSpec().getAttributes(), 826 D.getAttributes()); 827 // Merge the decl with the existing one if appropriate. If the decl is 828 // in an outer scope, it isn't the same thing. 829 if (PrevDecl && IdResolver.isDeclInScope(PrevDecl, CurContext, S)) { 830 NewTD = MergeTypeDefDecl(NewTD, PrevDecl); 831 if (NewTD == 0) return 0; 832 } 833 New = NewTD; 834 if (S->getFnParent() == 0) { 835 // C99 6.7.7p2: If a typedef name specifies a variably modified type 836 // then it shall have block scope. 837 if (NewTD->getUnderlyingType()->isVariablyModifiedType()) { 838 // FIXME: Diagnostic needs to be fixed. 839 Diag(D.getIdentifierLoc(), diag::err_typecheck_illegal_vla); 840 InvalidDecl = true; 841 } 842 } 843 } else if (R.getTypePtr()->isFunctionType()) { 844 FunctionDecl::StorageClass SC = FunctionDecl::None; 845 switch (D.getDeclSpec().getStorageClassSpec()) { 846 default: assert(0 && "Unknown storage class!"); 847 case DeclSpec::SCS_auto: 848 case DeclSpec::SCS_register: 849 Diag(D.getIdentifierLoc(), diag::err_typecheck_sclass_func, 850 R.getAsString()); 851 InvalidDecl = true; 852 break; 853 case DeclSpec::SCS_unspecified: SC = FunctionDecl::None; break; 854 case DeclSpec::SCS_extern: SC = FunctionDecl::Extern; break; 855 case DeclSpec::SCS_static: SC = FunctionDecl::Static; break; 856 case DeclSpec::SCS_private_extern: SC = FunctionDecl::PrivateExtern;break; 857 } 858 859 bool isInline = D.getDeclSpec().isInlineSpecified(); 860 FunctionDecl *NewFD = FunctionDecl::Create(Context, CurContext, 861 D.getIdentifierLoc(), 862 II, R, SC, isInline, 863 LastDeclarator); 864 // Handle attributes. 865 HandleDeclAttributes(NewFD, D.getDeclSpec().getAttributes(), 866 D.getAttributes()); 867 868 // Copy the parameter declarations from the declarator D to 869 // the function declaration NewFD, if they are available. 870 if (D.getNumTypeObjects() > 0 && 871 D.getTypeObject(0).Fun.hasPrototype) { 872 DeclaratorChunk::FunctionTypeInfo &FTI = D.getTypeObject(0).Fun; 873 874 // Create Decl objects for each parameter, adding them to the 875 // FunctionDecl. 876 llvm::SmallVector<ParmVarDecl*, 16> Params; 877 878 // Check for C99 6.7.5.3p10 - foo(void) is a non-varargs 879 // function that takes no arguments, not a function that takes a 880 // single void argument. 881 // We let through "const void" here because Sema::GetTypeForDeclarator 882 // already checks for that case. 883 if (FTI.NumArgs == 1 && !FTI.isVariadic && FTI.ArgInfo[0].Ident == 0 && 884 FTI.ArgInfo[0].Param && 885 ((ParmVarDecl*)FTI.ArgInfo[0].Param)->getType()->isVoidType()) { 886 // empty arg list, don't push any params. 887 ParmVarDecl *Param = (ParmVarDecl*)FTI.ArgInfo[0].Param; 888 889 // In C++, the empty parameter-type-list must be spelled "void"; a 890 // typedef of void is not permitted. 891 if (getLangOptions().CPlusPlus && 892 Param->getType().getUnqualifiedType() != Context.VoidTy) { 893 Diag(Param->getLocation(), diag::ext_param_typedef_of_void); 894 } 895 896 } else { 897 for (unsigned i = 0, e = FTI.NumArgs; i != e; ++i) 898 Params.push_back((ParmVarDecl *)FTI.ArgInfo[i].Param); 899 } 900 901 NewFD->setParams(&Params[0], Params.size()); 902 } 903 904 // Merge the decl with the existing one if appropriate. Since C functions 905 // are in a flat namespace, make sure we consider decls in outer scopes. 906 if (PrevDecl && 907 (!getLangOptions().CPlusPlus || 908 IdResolver.isDeclInScope(PrevDecl, CurContext, S)) ) { 909 bool Redeclaration = false; 910 NewFD = MergeFunctionDecl(NewFD, PrevDecl, Redeclaration); 911 if (NewFD == 0) return 0; 912 if (Redeclaration) { 913 NewFD->setPreviousDeclaration(cast<FunctionDecl>(PrevDecl)); 914 } 915 } 916 New = NewFD; 917 918 // In C++, check default arguments now that we have merged decls. 919 if (getLangOptions().CPlusPlus) 920 CheckCXXDefaultArguments(NewFD); 921 } else { 922 // Check that there are no default arguments (C++ only). 923 if (getLangOptions().CPlusPlus) 924 CheckExtraCXXDefaultArguments(D); 925 926 if (R.getTypePtr()->isObjCInterfaceType()) { 927 Diag(D.getIdentifierLoc(), diag::err_statically_allocated_object, 928 D.getIdentifier()->getName()); 929 InvalidDecl = true; 930 } 931 932 VarDecl *NewVD; 933 VarDecl::StorageClass SC; 934 switch (D.getDeclSpec().getStorageClassSpec()) { 935 default: assert(0 && "Unknown storage class!"); 936 case DeclSpec::SCS_unspecified: SC = VarDecl::None; break; 937 case DeclSpec::SCS_extern: SC = VarDecl::Extern; break; 938 case DeclSpec::SCS_static: SC = VarDecl::Static; break; 939 case DeclSpec::SCS_auto: SC = VarDecl::Auto; break; 940 case DeclSpec::SCS_register: SC = VarDecl::Register; break; 941 case DeclSpec::SCS_private_extern: SC = VarDecl::PrivateExtern; break; 942 } 943 if (S->getFnParent() == 0) { 944 // C99 6.9p2: The storage-class specifiers auto and register shall not 945 // appear in the declaration specifiers in an external declaration. 946 if (SC == VarDecl::Auto || SC == VarDecl::Register) { 947 Diag(D.getIdentifierLoc(), diag::err_typecheck_sclass_fscope, 948 R.getAsString()); 949 InvalidDecl = true; 950 } 951 NewVD = VarDecl::Create(Context, CurContext, D.getIdentifierLoc(), 952 II, R, SC, LastDeclarator); 953 } else { 954 NewVD = VarDecl::Create(Context, CurContext, D.getIdentifierLoc(), 955 II, R, SC, LastDeclarator); 956 } 957 // Handle attributes prior to checking for duplicates in MergeVarDecl 958 HandleDeclAttributes(NewVD, D.getDeclSpec().getAttributes(), 959 D.getAttributes()); 960 961 // Emit an error if an address space was applied to decl with local storage. 962 // This includes arrays of objects with address space qualifiers, but not 963 // automatic variables that point to other address spaces. 964 // ISO/IEC TR 18037 S5.1.2 965 if (NewVD->hasLocalStorage() && (NewVD->getType().getAddressSpace() != 0)) { 966 Diag(D.getIdentifierLoc(), diag::err_as_qualified_auto_decl); 967 InvalidDecl = true; 968 } 969 // Merge the decl with the existing one if appropriate. If the decl is 970 // in an outer scope, it isn't the same thing. 971 if (PrevDecl && IdResolver.isDeclInScope(PrevDecl, CurContext, S)) { 972 NewVD = MergeVarDecl(NewVD, PrevDecl); 973 if (NewVD == 0) return 0; 974 } 975 New = NewVD; 976 } 977 978 // If this has an identifier, add it to the scope stack. 979 if (II) 980 PushOnScopeChains(New, S); 981 // If any semantic error occurred, mark the decl as invalid. 982 if (D.getInvalidType() || InvalidDecl) 983 New->setInvalidDecl(); 984 985 return New; 986} 987 988bool Sema::CheckAddressConstantExpressionLValue(const Expr* Init) { 989 switch (Init->getStmtClass()) { 990 default: 991 Diag(Init->getExprLoc(), 992 diag::err_init_element_not_constant, Init->getSourceRange()); 993 return true; 994 case Expr::ParenExprClass: { 995 const ParenExpr* PE = cast<ParenExpr>(Init); 996 return CheckAddressConstantExpressionLValue(PE->getSubExpr()); 997 } 998 case Expr::CompoundLiteralExprClass: 999 return cast<CompoundLiteralExpr>(Init)->isFileScope(); 1000 case Expr::DeclRefExprClass: { 1001 const Decl *D = cast<DeclRefExpr>(Init)->getDecl(); 1002 if (const VarDecl *VD = dyn_cast<VarDecl>(D)) { 1003 if (VD->hasGlobalStorage()) 1004 return false; 1005 Diag(Init->getExprLoc(), 1006 diag::err_init_element_not_constant, Init->getSourceRange()); 1007 return true; 1008 } 1009 if (isa<FunctionDecl>(D)) 1010 return false; 1011 Diag(Init->getExprLoc(), 1012 diag::err_init_element_not_constant, Init->getSourceRange()); 1013 return true; 1014 } 1015 case Expr::MemberExprClass: { 1016 const MemberExpr *M = cast<MemberExpr>(Init); 1017 if (M->isArrow()) 1018 return CheckAddressConstantExpression(M->getBase()); 1019 return CheckAddressConstantExpressionLValue(M->getBase()); 1020 } 1021 case Expr::ArraySubscriptExprClass: { 1022 // FIXME: Should we pedwarn for "x[0+0]" (where x is a pointer)? 1023 const ArraySubscriptExpr *ASE = cast<ArraySubscriptExpr>(Init); 1024 return CheckAddressConstantExpression(ASE->getBase()) || 1025 CheckArithmeticConstantExpression(ASE->getIdx()); 1026 } 1027 case Expr::StringLiteralClass: 1028 case Expr::PreDefinedExprClass: 1029 return false; 1030 case Expr::UnaryOperatorClass: { 1031 const UnaryOperator *Exp = cast<UnaryOperator>(Init); 1032 1033 // C99 6.6p9 1034 if (Exp->getOpcode() == UnaryOperator::Deref) 1035 return CheckAddressConstantExpression(Exp->getSubExpr()); 1036 1037 Diag(Init->getExprLoc(), 1038 diag::err_init_element_not_constant, Init->getSourceRange()); 1039 return true; 1040 } 1041 } 1042} 1043 1044bool Sema::CheckAddressConstantExpression(const Expr* Init) { 1045 switch (Init->getStmtClass()) { 1046 default: 1047 Diag(Init->getExprLoc(), 1048 diag::err_init_element_not_constant, Init->getSourceRange()); 1049 return true; 1050 case Expr::ParenExprClass: { 1051 const ParenExpr* PE = cast<ParenExpr>(Init); 1052 return CheckAddressConstantExpression(PE->getSubExpr()); 1053 } 1054 case Expr::StringLiteralClass: 1055 case Expr::ObjCStringLiteralClass: 1056 return false; 1057 case Expr::CallExprClass: { 1058 const CallExpr *CE = cast<CallExpr>(Init); 1059 if (CE->isBuiltinConstantExpr()) 1060 return false; 1061 Diag(Init->getExprLoc(), 1062 diag::err_init_element_not_constant, Init->getSourceRange()); 1063 return true; 1064 } 1065 case Expr::UnaryOperatorClass: { 1066 const UnaryOperator *Exp = cast<UnaryOperator>(Init); 1067 1068 // C99 6.6p9 1069 if (Exp->getOpcode() == UnaryOperator::AddrOf) 1070 return CheckAddressConstantExpressionLValue(Exp->getSubExpr()); 1071 1072 if (Exp->getOpcode() == UnaryOperator::Extension) 1073 return CheckAddressConstantExpression(Exp->getSubExpr()); 1074 1075 Diag(Init->getExprLoc(), 1076 diag::err_init_element_not_constant, Init->getSourceRange()); 1077 return true; 1078 } 1079 case Expr::BinaryOperatorClass: { 1080 // FIXME: Should we pedwarn for expressions like "a + 1 + 2"? 1081 const BinaryOperator *Exp = cast<BinaryOperator>(Init); 1082 1083 Expr *PExp = Exp->getLHS(); 1084 Expr *IExp = Exp->getRHS(); 1085 if (IExp->getType()->isPointerType()) 1086 std::swap(PExp, IExp); 1087 1088 // FIXME: Should we pedwarn if IExp isn't an integer constant expression? 1089 return CheckAddressConstantExpression(PExp) || 1090 CheckArithmeticConstantExpression(IExp); 1091 } 1092 case Expr::ImplicitCastExprClass: { 1093 const Expr* SubExpr = cast<ImplicitCastExpr>(Init)->getSubExpr(); 1094 1095 // Check for implicit promotion 1096 if (SubExpr->getType()->isFunctionType() || 1097 SubExpr->getType()->isArrayType()) 1098 return CheckAddressConstantExpressionLValue(SubExpr); 1099 1100 // Check for pointer->pointer cast 1101 if (SubExpr->getType()->isPointerType()) 1102 return CheckAddressConstantExpression(SubExpr); 1103 1104 if (SubExpr->getType()->isArithmeticType()) 1105 return CheckArithmeticConstantExpression(SubExpr); 1106 1107 Diag(Init->getExprLoc(), 1108 diag::err_init_element_not_constant, Init->getSourceRange()); 1109 return true; 1110 } 1111 case Expr::CastExprClass: { 1112 const Expr* SubExpr = cast<CastExpr>(Init)->getSubExpr(); 1113 1114 // Check for pointer->pointer cast 1115 if (SubExpr->getType()->isPointerType()) 1116 return CheckAddressConstantExpression(SubExpr); 1117 1118 // FIXME: Should we pedwarn for (int*)(0+0)? 1119 if (SubExpr->getType()->isArithmeticType()) 1120 return CheckArithmeticConstantExpression(SubExpr); 1121 1122 Diag(Init->getExprLoc(), 1123 diag::err_init_element_not_constant, Init->getSourceRange()); 1124 return true; 1125 } 1126 case Expr::ConditionalOperatorClass: { 1127 // FIXME: Should we pedwarn here? 1128 const ConditionalOperator *Exp = cast<ConditionalOperator>(Init); 1129 if (!Exp->getCond()->getType()->isArithmeticType()) { 1130 Diag(Init->getExprLoc(), 1131 diag::err_init_element_not_constant, Init->getSourceRange()); 1132 return true; 1133 } 1134 if (CheckArithmeticConstantExpression(Exp->getCond())) 1135 return true; 1136 if (Exp->getLHS() && 1137 CheckAddressConstantExpression(Exp->getLHS())) 1138 return true; 1139 return CheckAddressConstantExpression(Exp->getRHS()); 1140 } 1141 case Expr::AddrLabelExprClass: 1142 return false; 1143 } 1144} 1145 1146bool Sema::CheckArithmeticConstantExpression(const Expr* Init) { 1147 switch (Init->getStmtClass()) { 1148 default: 1149 Diag(Init->getExprLoc(), 1150 diag::err_init_element_not_constant, Init->getSourceRange()); 1151 return true; 1152 case Expr::ParenExprClass: { 1153 const ParenExpr* PE = cast<ParenExpr>(Init); 1154 return CheckArithmeticConstantExpression(PE->getSubExpr()); 1155 } 1156 case Expr::FloatingLiteralClass: 1157 case Expr::IntegerLiteralClass: 1158 case Expr::CharacterLiteralClass: 1159 case Expr::ImaginaryLiteralClass: 1160 case Expr::TypesCompatibleExprClass: 1161 case Expr::CXXBoolLiteralExprClass: 1162 return false; 1163 case Expr::CallExprClass: { 1164 const CallExpr *CE = cast<CallExpr>(Init); 1165 if (CE->isBuiltinConstantExpr()) 1166 return false; 1167 Diag(Init->getExprLoc(), 1168 diag::err_init_element_not_constant, Init->getSourceRange()); 1169 return true; 1170 } 1171 case Expr::DeclRefExprClass: { 1172 const Decl *D = cast<DeclRefExpr>(Init)->getDecl(); 1173 if (isa<EnumConstantDecl>(D)) 1174 return false; 1175 Diag(Init->getExprLoc(), 1176 diag::err_init_element_not_constant, Init->getSourceRange()); 1177 return true; 1178 } 1179 case Expr::CompoundLiteralExprClass: 1180 // Allow "(vector type){2,4}"; normal C constraints don't allow this, 1181 // but vectors are allowed to be magic. 1182 if (Init->getType()->isVectorType()) 1183 return false; 1184 Diag(Init->getExprLoc(), 1185 diag::err_init_element_not_constant, Init->getSourceRange()); 1186 return true; 1187 case Expr::UnaryOperatorClass: { 1188 const UnaryOperator *Exp = cast<UnaryOperator>(Init); 1189 1190 switch (Exp->getOpcode()) { 1191 // Address, indirect, pre/post inc/dec, etc are not valid constant exprs. 1192 // See C99 6.6p3. 1193 default: 1194 Diag(Init->getExprLoc(), 1195 diag::err_init_element_not_constant, Init->getSourceRange()); 1196 return true; 1197 case UnaryOperator::SizeOf: 1198 case UnaryOperator::AlignOf: 1199 case UnaryOperator::OffsetOf: 1200 // sizeof(E) is a constantexpr if and only if E is not evaluted. 1201 // See C99 6.5.3.4p2 and 6.6p3. 1202 if (Exp->getSubExpr()->getType()->isConstantSizeType()) 1203 return false; 1204 Diag(Init->getExprLoc(), 1205 diag::err_init_element_not_constant, Init->getSourceRange()); 1206 return true; 1207 case UnaryOperator::Extension: 1208 case UnaryOperator::LNot: 1209 case UnaryOperator::Plus: 1210 case UnaryOperator::Minus: 1211 case UnaryOperator::Not: 1212 return CheckArithmeticConstantExpression(Exp->getSubExpr()); 1213 } 1214 } 1215 case Expr::SizeOfAlignOfTypeExprClass: { 1216 const SizeOfAlignOfTypeExpr *Exp = cast<SizeOfAlignOfTypeExpr>(Init); 1217 // Special check for void types, which are allowed as an extension 1218 if (Exp->getArgumentType()->isVoidType()) 1219 return false; 1220 // alignof always evaluates to a constant. 1221 // FIXME: is sizeof(int[3.0]) a constant expression? 1222 if (Exp->isSizeOf() && !Exp->getArgumentType()->isConstantSizeType()) { 1223 Diag(Init->getExprLoc(), 1224 diag::err_init_element_not_constant, Init->getSourceRange()); 1225 return true; 1226 } 1227 return false; 1228 } 1229 case Expr::BinaryOperatorClass: { 1230 const BinaryOperator *Exp = cast<BinaryOperator>(Init); 1231 1232 if (Exp->getLHS()->getType()->isArithmeticType() && 1233 Exp->getRHS()->getType()->isArithmeticType()) { 1234 return CheckArithmeticConstantExpression(Exp->getLHS()) || 1235 CheckArithmeticConstantExpression(Exp->getRHS()); 1236 } 1237 1238 Diag(Init->getExprLoc(), 1239 diag::err_init_element_not_constant, Init->getSourceRange()); 1240 return true; 1241 } 1242 case Expr::ImplicitCastExprClass: 1243 case Expr::CastExprClass: { 1244 const Expr *SubExpr; 1245 if (const CastExpr *C = dyn_cast<CastExpr>(Init)) { 1246 SubExpr = C->getSubExpr(); 1247 } else { 1248 SubExpr = cast<ImplicitCastExpr>(Init)->getSubExpr(); 1249 } 1250 1251 if (SubExpr->getType()->isArithmeticType()) 1252 return CheckArithmeticConstantExpression(SubExpr); 1253 1254 Diag(Init->getExprLoc(), 1255 diag::err_init_element_not_constant, Init->getSourceRange()); 1256 return true; 1257 } 1258 case Expr::ConditionalOperatorClass: { 1259 const ConditionalOperator *Exp = cast<ConditionalOperator>(Init); 1260 if (CheckArithmeticConstantExpression(Exp->getCond())) 1261 return true; 1262 if (Exp->getLHS() && 1263 CheckArithmeticConstantExpression(Exp->getLHS())) 1264 return true; 1265 return CheckArithmeticConstantExpression(Exp->getRHS()); 1266 } 1267 } 1268} 1269 1270bool Sema::CheckForConstantInitializer(Expr *Init, QualType DclT) { 1271 // Look through CXXDefaultArgExprs; they have no meaning in this context. 1272 if (CXXDefaultArgExpr* DAE = dyn_cast<CXXDefaultArgExpr>(Init)) 1273 return CheckForConstantInitializer(DAE->getExpr(), DclT); 1274 1275 if (Init->getType()->isReferenceType()) { 1276 // FIXME: Work out how the heck reference types work 1277 return false; 1278#if 0 1279 // A reference is constant if the address of the expression 1280 // is constant 1281 // We look through initlists here to simplify 1282 // CheckAddressConstantExpressionLValue. 1283 if (InitListExpr *Exp = dyn_cast<InitListExpr>(Init)) { 1284 assert(Exp->getNumInits() > 0 && 1285 "Refernce initializer cannot be empty"); 1286 Init = Exp->getInit(0); 1287 } 1288 return CheckAddressConstantExpressionLValue(Init); 1289#endif 1290 } 1291 1292 if (InitListExpr *Exp = dyn_cast<InitListExpr>(Init)) { 1293 unsigned numInits = Exp->getNumInits(); 1294 for (unsigned i = 0; i < numInits; i++) { 1295 // FIXME: Need to get the type of the declaration for C++, 1296 // because it could be a reference? 1297 if (CheckForConstantInitializer(Exp->getInit(i), 1298 Exp->getInit(i)->getType())) 1299 return true; 1300 } 1301 return false; 1302 } 1303 1304 if (Init->isNullPointerConstant(Context)) 1305 return false; 1306 if (Init->getType()->isArithmeticType()) { 1307 // Special check for pointer cast to int; we allow 1308 // an address constant cast to an integer if the integer 1309 // is of an appropriate width (this sort of code is apparently used 1310 // in some places). 1311 // FIXME: Add pedwarn? 1312 Expr* SubE = 0; 1313 if (ImplicitCastExpr* ICE = dyn_cast<ImplicitCastExpr>(Init)) 1314 SubE = ICE->getSubExpr(); 1315 else if (CastExpr* CE = dyn_cast<CastExpr>(Init)) 1316 SubE = CE->getSubExpr(); 1317 if (SubE && (SubE->getType()->isPointerType() || 1318 SubE->getType()->isArrayType() || 1319 SubE->getType()->isFunctionType())) { 1320 unsigned IntWidth = Context.getTypeSize(Init->getType()); 1321 unsigned PointerWidth = Context.getTypeSize(Context.VoidPtrTy); 1322 if (IntWidth >= PointerWidth) 1323 return CheckAddressConstantExpression(Init); 1324 } 1325 1326 return CheckArithmeticConstantExpression(Init); 1327 } 1328 1329 if (Init->getType()->isPointerType()) 1330 return CheckAddressConstantExpression(Init); 1331 1332 if (Init->getType()->isArrayType()) 1333 return false; 1334 1335 Diag(Init->getExprLoc(), diag::err_init_element_not_constant, 1336 Init->getSourceRange()); 1337 return true; 1338} 1339 1340void Sema::AddInitializerToDecl(DeclTy *dcl, ExprTy *init) { 1341 Decl *RealDecl = static_cast<Decl *>(dcl); 1342 Expr *Init = static_cast<Expr *>(init); 1343 assert(Init && "missing initializer"); 1344 1345 // If there is no declaration, there was an error parsing it. Just ignore 1346 // the initializer. 1347 if (RealDecl == 0) { 1348 delete Init; 1349 return; 1350 } 1351 1352 VarDecl *VDecl = dyn_cast<VarDecl>(RealDecl); 1353 if (!VDecl) { 1354 Diag(dyn_cast<ScopedDecl>(RealDecl)->getLocation(), 1355 diag::err_illegal_initializer); 1356 RealDecl->setInvalidDecl(); 1357 return; 1358 } 1359 // Get the decls type and save a reference for later, since 1360 // CheckInitializerTypes may change it. 1361 QualType DclT = VDecl->getType(), SavT = DclT; 1362 if (VDecl->isBlockVarDecl()) { 1363 VarDecl::StorageClass SC = VDecl->getStorageClass(); 1364 if (SC == VarDecl::Extern) { // C99 6.7.8p5 1365 Diag(VDecl->getLocation(), diag::err_block_extern_cant_init); 1366 VDecl->setInvalidDecl(); 1367 } else if (!VDecl->isInvalidDecl()) { 1368 if (CheckInitializerTypes(Init, DclT)) 1369 VDecl->setInvalidDecl(); 1370 if (SC == VarDecl::Static) // C99 6.7.8p4. 1371 CheckForConstantInitializer(Init, DclT); 1372 } 1373 } else if (VDecl->isFileVarDecl()) { 1374 if (VDecl->getStorageClass() == VarDecl::Extern) 1375 Diag(VDecl->getLocation(), diag::warn_extern_init); 1376 if (!VDecl->isInvalidDecl()) 1377 if (CheckInitializerTypes(Init, DclT)) 1378 VDecl->setInvalidDecl(); 1379 1380 // C99 6.7.8p4. All file scoped initializers need to be constant. 1381 CheckForConstantInitializer(Init, DclT); 1382 } 1383 // If the type changed, it means we had an incomplete type that was 1384 // completed by the initializer. For example: 1385 // int ary[] = { 1, 3, 5 }; 1386 // "ary" transitions from a VariableArrayType to a ConstantArrayType. 1387 if (!VDecl->isInvalidDecl() && (DclT != SavT)) { 1388 VDecl->setType(DclT); 1389 Init->setType(DclT); 1390 } 1391 1392 // Attach the initializer to the decl. 1393 VDecl->setInit(Init); 1394 return; 1395} 1396 1397/// The declarators are chained together backwards, reverse the list. 1398Sema::DeclTy *Sema::FinalizeDeclaratorGroup(Scope *S, DeclTy *group) { 1399 // Often we have single declarators, handle them quickly. 1400 Decl *GroupDecl = static_cast<Decl*>(group); 1401 if (GroupDecl == 0) 1402 return 0; 1403 1404 ScopedDecl *Group = dyn_cast<ScopedDecl>(GroupDecl); 1405 ScopedDecl *NewGroup = 0; 1406 if (Group->getNextDeclarator() == 0) 1407 NewGroup = Group; 1408 else { // reverse the list. 1409 while (Group) { 1410 ScopedDecl *Next = Group->getNextDeclarator(); 1411 Group->setNextDeclarator(NewGroup); 1412 NewGroup = Group; 1413 Group = Next; 1414 } 1415 } 1416 // Perform semantic analysis that depends on having fully processed both 1417 // the declarator and initializer. 1418 for (ScopedDecl *ID = NewGroup; ID; ID = ID->getNextDeclarator()) { 1419 VarDecl *IDecl = dyn_cast<VarDecl>(ID); 1420 if (!IDecl) 1421 continue; 1422 QualType T = IDecl->getType(); 1423 1424 // C99 6.7.5.2p2: If an identifier is declared to be an object with 1425 // static storage duration, it shall not have a variable length array. 1426 if ((IDecl->isFileVarDecl() || IDecl->isBlockVarDecl()) && 1427 IDecl->getStorageClass() == VarDecl::Static) { 1428 if (T->getAsVariableArrayType()) { 1429 Diag(IDecl->getLocation(), diag::err_typecheck_illegal_vla); 1430 IDecl->setInvalidDecl(); 1431 } 1432 } 1433 // Block scope. C99 6.7p7: If an identifier for an object is declared with 1434 // no linkage (C99 6.2.2p6), the type for the object shall be complete... 1435 if (IDecl->isBlockVarDecl() && 1436 IDecl->getStorageClass() != VarDecl::Extern) { 1437 if (T->isIncompleteType() && !IDecl->isInvalidDecl()) { 1438 Diag(IDecl->getLocation(), diag::err_typecheck_decl_incomplete_type, 1439 T.getAsString()); 1440 IDecl->setInvalidDecl(); 1441 } 1442 } 1443 // File scope. C99 6.9.2p2: A declaration of an identifier for and 1444 // object that has file scope without an initializer, and without a 1445 // storage-class specifier or with the storage-class specifier "static", 1446 // constitutes a tentative definition. Note: A tentative definition with 1447 // external linkage is valid (C99 6.2.2p5). 1448 if (IDecl && !IDecl->getInit() && 1449 (IDecl->getStorageClass() == VarDecl::Static || 1450 IDecl->getStorageClass() == VarDecl::None)) { 1451 if (T->isIncompleteArrayType()) { 1452 // C99 6.9.2 (p2, p5): Implicit initialization causes an incomplete 1453 // array to be completed. Don't issue a diagnostic. 1454 } else if (T->isIncompleteType() && !IDecl->isInvalidDecl()) { 1455 // C99 6.9.2p3: If the declaration of an identifier for an object is 1456 // a tentative definition and has internal linkage (C99 6.2.2p3), the 1457 // declared type shall not be an incomplete type. 1458 Diag(IDecl->getLocation(), diag::err_typecheck_decl_incomplete_type, 1459 T.getAsString()); 1460 IDecl->setInvalidDecl(); 1461 } 1462 } 1463 } 1464 return NewGroup; 1465} 1466 1467/// ActOnParamDeclarator - Called from Parser::ParseFunctionDeclarator() 1468/// to introduce parameters into function prototype scope. 1469Sema::DeclTy * 1470Sema::ActOnParamDeclarator(Scope *S, Declarator &D) { 1471 DeclSpec &DS = D.getDeclSpec(); 1472 1473 // Verify C99 6.7.5.3p2: The only SCS allowed is 'register'. 1474 if (DS.getStorageClassSpec() != DeclSpec::SCS_unspecified && 1475 DS.getStorageClassSpec() != DeclSpec::SCS_register) { 1476 Diag(DS.getStorageClassSpecLoc(), 1477 diag::err_invalid_storage_class_in_func_decl); 1478 DS.ClearStorageClassSpecs(); 1479 } 1480 if (DS.isThreadSpecified()) { 1481 Diag(DS.getThreadSpecLoc(), 1482 diag::err_invalid_storage_class_in_func_decl); 1483 DS.ClearStorageClassSpecs(); 1484 } 1485 1486 // Check that there are no default arguments inside the type of this 1487 // parameter (C++ only). 1488 if (getLangOptions().CPlusPlus) 1489 CheckExtraCXXDefaultArguments(D); 1490 1491 // In this context, we *do not* check D.getInvalidType(). If the declarator 1492 // type was invalid, GetTypeForDeclarator() still returns a "valid" type, 1493 // though it will not reflect the user specified type. 1494 QualType parmDeclType = GetTypeForDeclarator(D, S); 1495 1496 assert(!parmDeclType.isNull() && "GetTypeForDeclarator() returned null type"); 1497 1498 // TODO: CHECK FOR CONFLICTS, multiple decls with same name in one scope. 1499 // Can this happen for params? We already checked that they don't conflict 1500 // among each other. Here they can only shadow globals, which is ok. 1501 IdentifierInfo *II = D.getIdentifier(); 1502 if (Decl *PrevDecl = LookupDecl(II, Decl::IDNS_Ordinary, S)) { 1503 if (S->isDeclScope(PrevDecl)) { 1504 Diag(D.getIdentifierLoc(), diag::err_param_redefinition, 1505 dyn_cast<NamedDecl>(PrevDecl)->getName()); 1506 1507 // Recover by removing the name 1508 II = 0; 1509 D.SetIdentifier(0, D.getIdentifierLoc()); 1510 } 1511 } 1512 1513 // Perform the default function/array conversion (C99 6.7.5.3p[7,8]). 1514 // Doing the promotion here has a win and a loss. The win is the type for 1515 // both Decl's and DeclRefExpr's will match (a convenient invariant for the 1516 // code generator). The loss is the orginal type isn't preserved. For example: 1517 // 1518 // void func(int parmvardecl[5]) { // convert "int [5]" to "int *" 1519 // int blockvardecl[5]; 1520 // sizeof(parmvardecl); // size == 4 1521 // sizeof(blockvardecl); // size == 20 1522 // } 1523 // 1524 // For expressions, all implicit conversions are captured using the 1525 // ImplicitCastExpr AST node (we have no such mechanism for Decl's). 1526 // 1527 // FIXME: If a source translation tool needs to see the original type, then 1528 // we need to consider storing both types (in ParmVarDecl)... 1529 // 1530 if (parmDeclType->isArrayType()) { 1531 // int x[restrict 4] -> int *restrict 1532 parmDeclType = Context.getArrayDecayedType(parmDeclType); 1533 } else if (parmDeclType->isFunctionType()) 1534 parmDeclType = Context.getPointerType(parmDeclType); 1535 1536 ParmVarDecl *New = ParmVarDecl::Create(Context, CurContext, 1537 D.getIdentifierLoc(), II, 1538 parmDeclType, VarDecl::None, 1539 0, 0); 1540 1541 if (D.getInvalidType()) 1542 New->setInvalidDecl(); 1543 1544 if (II) 1545 PushOnScopeChains(New, S); 1546 1547 HandleDeclAttributes(New, D.getDeclSpec().getAttributes(), 1548 D.getAttributes()); 1549 return New; 1550 1551} 1552 1553Sema::DeclTy *Sema::ActOnStartOfFunctionDef(Scope *FnBodyScope, Declarator &D) { 1554 assert(CurFunctionDecl == 0 && "Function parsing confused"); 1555 assert(D.getTypeObject(0).Kind == DeclaratorChunk::Function && 1556 "Not a function declarator!"); 1557 DeclaratorChunk::FunctionTypeInfo &FTI = D.getTypeObject(0).Fun; 1558 1559 // Verify 6.9.1p6: 'every identifier in the identifier list shall be declared' 1560 // for a K&R function. 1561 if (!FTI.hasPrototype) { 1562 for (unsigned i = 0, e = FTI.NumArgs; i != e; ++i) { 1563 if (FTI.ArgInfo[i].Param == 0) { 1564 Diag(FTI.ArgInfo[i].IdentLoc, diag::ext_param_not_declared, 1565 FTI.ArgInfo[i].Ident->getName()); 1566 // Implicitly declare the argument as type 'int' for lack of a better 1567 // type. 1568 DeclSpec DS; 1569 const char* PrevSpec; // unused 1570 DS.SetTypeSpecType(DeclSpec::TST_int, FTI.ArgInfo[i].IdentLoc, 1571 PrevSpec); 1572 Declarator ParamD(DS, Declarator::KNRTypeListContext); 1573 ParamD.SetIdentifier(FTI.ArgInfo[i].Ident, FTI.ArgInfo[i].IdentLoc); 1574 FTI.ArgInfo[i].Param = ActOnParamDeclarator(FnBodyScope, ParamD); 1575 } 1576 } 1577 1578 // Since this is a function definition, act as though we have information 1579 // about the arguments. 1580 if (FTI.NumArgs) 1581 FTI.hasPrototype = true; 1582 } else { 1583 // FIXME: Diagnose arguments without names in C. 1584 } 1585 1586 Scope *GlobalScope = FnBodyScope->getParent(); 1587 1588 // See if this is a redefinition. 1589 Decl *PrevDcl = LookupDecl(D.getIdentifier(), Decl::IDNS_Ordinary, 1590 GlobalScope); 1591 if (PrevDcl && IdResolver.isDeclInScope(PrevDcl, CurContext)) { 1592 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(PrevDcl)) { 1593 const FunctionDecl *Definition; 1594 if (FD->getBody(Definition)) { 1595 Diag(D.getIdentifierLoc(), diag::err_redefinition, 1596 D.getIdentifier()->getName()); 1597 Diag(Definition->getLocation(), diag::err_previous_definition); 1598 } 1599 } 1600 } 1601 Decl *decl = static_cast<Decl*>(ActOnDeclarator(GlobalScope, D, 0)); 1602 FunctionDecl *FD = cast<FunctionDecl>(decl); 1603 CurFunctionDecl = FD; 1604 PushDeclContext(FD); 1605 1606 // Check the validity of our function parameters 1607 CheckParmsForFunctionDef(FD); 1608 1609 // Introduce our parameters into the function scope 1610 for (unsigned p = 0, NumParams = FD->getNumParams(); p < NumParams; ++p) { 1611 ParmVarDecl *Param = FD->getParamDecl(p); 1612 // If this has an identifier, add it to the scope stack. 1613 if (Param->getIdentifier()) 1614 PushOnScopeChains(Param, FnBodyScope); 1615 } 1616 1617 return FD; 1618} 1619 1620Sema::DeclTy *Sema::ActOnFinishFunctionBody(DeclTy *D, StmtTy *Body) { 1621 Decl *dcl = static_cast<Decl *>(D); 1622 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(dcl)) { 1623 FD->setBody((Stmt*)Body); 1624 assert(FD == CurFunctionDecl && "Function parsing confused"); 1625 CurFunctionDecl = 0; 1626 } else if (ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(dcl)) { 1627 MD->setBody((Stmt*)Body); 1628 CurMethodDecl = 0; 1629 } 1630 PopDeclContext(); 1631 // Verify and clean out per-function state. 1632 1633 // Check goto/label use. 1634 for (llvm::DenseMap<IdentifierInfo*, LabelStmt*>::iterator 1635 I = LabelMap.begin(), E = LabelMap.end(); I != E; ++I) { 1636 // Verify that we have no forward references left. If so, there was a goto 1637 // or address of a label taken, but no definition of it. Label fwd 1638 // definitions are indicated with a null substmt. 1639 if (I->second->getSubStmt() == 0) { 1640 LabelStmt *L = I->second; 1641 // Emit error. 1642 Diag(L->getIdentLoc(), diag::err_undeclared_label_use, L->getName()); 1643 1644 // At this point, we have gotos that use the bogus label. Stitch it into 1645 // the function body so that they aren't leaked and that the AST is well 1646 // formed. 1647 if (Body) { 1648 L->setSubStmt(new NullStmt(L->getIdentLoc())); 1649 cast<CompoundStmt>((Stmt*)Body)->push_back(L); 1650 } else { 1651 // The whole function wasn't parsed correctly, just delete this. 1652 delete L; 1653 } 1654 } 1655 } 1656 LabelMap.clear(); 1657 1658 return D; 1659} 1660 1661/// ImplicitlyDefineFunction - An undeclared identifier was used in a function 1662/// call, forming a call to an implicitly defined function (per C99 6.5.1p2). 1663ScopedDecl *Sema::ImplicitlyDefineFunction(SourceLocation Loc, 1664 IdentifierInfo &II, Scope *S) { 1665 // Extension in C99. Legal in C90, but warn about it. 1666 if (getLangOptions().C99) 1667 Diag(Loc, diag::ext_implicit_function_decl, II.getName()); 1668 else 1669 Diag(Loc, diag::warn_implicit_function_decl, II.getName()); 1670 1671 // FIXME: handle stuff like: 1672 // void foo() { extern float X(); } 1673 // void bar() { X(); } <-- implicit decl for X in another scope. 1674 1675 // Set a Declarator for the implicit definition: int foo(); 1676 const char *Dummy; 1677 DeclSpec DS; 1678 bool Error = DS.SetTypeSpecType(DeclSpec::TST_int, Loc, Dummy); 1679 Error = Error; // Silence warning. 1680 assert(!Error && "Error setting up implicit decl!"); 1681 Declarator D(DS, Declarator::BlockContext); 1682 D.AddTypeInfo(DeclaratorChunk::getFunction(false, false, 0, 0, Loc)); 1683 D.SetIdentifier(&II, Loc); 1684 1685 // Insert this function into translation-unit scope. 1686 1687 DeclContext *PrevDC = CurContext; 1688 CurContext = Context.getTranslationUnitDecl(); 1689 1690 FunctionDecl *FD = 1691 dyn_cast<FunctionDecl>(static_cast<Decl*>(ActOnDeclarator(TUScope, D, 0))); 1692 FD->setImplicit(); 1693 1694 CurContext = PrevDC; 1695 1696 return FD; 1697} 1698 1699 1700TypedefDecl *Sema::ParseTypedefDecl(Scope *S, Declarator &D, QualType T, 1701 ScopedDecl *LastDeclarator) { 1702 assert(D.getIdentifier() && "Wrong callback for declspec without declarator"); 1703 assert(!T.isNull() && "GetTypeForDeclarator() returned null type"); 1704 1705 // Scope manipulation handled by caller. 1706 TypedefDecl *NewTD = TypedefDecl::Create(Context, CurContext, 1707 D.getIdentifierLoc(), 1708 D.getIdentifier(), 1709 T, LastDeclarator); 1710 if (D.getInvalidType()) 1711 NewTD->setInvalidDecl(); 1712 return NewTD; 1713} 1714 1715/// ActOnTag - This is invoked when we see 'struct foo' or 'struct {'. In the 1716/// former case, Name will be non-null. In the later case, Name will be null. 1717/// TagType indicates what kind of tag this is. TK indicates whether this is a 1718/// reference/declaration/definition of a tag. 1719Sema::DeclTy *Sema::ActOnTag(Scope *S, unsigned TagType, TagKind TK, 1720 SourceLocation KWLoc, IdentifierInfo *Name, 1721 SourceLocation NameLoc, AttributeList *Attr) { 1722 // If this is a use of an existing tag, it must have a name. 1723 assert((Name != 0 || TK == TK_Definition) && 1724 "Nameless record must be a definition!"); 1725 1726 Decl::Kind Kind; 1727 switch (TagType) { 1728 default: assert(0 && "Unknown tag type!"); 1729 case DeclSpec::TST_struct: Kind = Decl::Struct; break; 1730 case DeclSpec::TST_union: Kind = Decl::Union; break; 1731 case DeclSpec::TST_class: Kind = Decl::Class; break; 1732 case DeclSpec::TST_enum: Kind = Decl::Enum; break; 1733 } 1734 1735 // If this is a named struct, check to see if there was a previous forward 1736 // declaration or definition. 1737 // Use ScopedDecl instead of TagDecl, because a NamespaceDecl may come up. 1738 if (ScopedDecl *PrevDecl = 1739 dyn_cast_or_null<ScopedDecl>(LookupDecl(Name, Decl::IDNS_Tag, S))) { 1740 1741 assert((isa<TagDecl>(PrevDecl) || isa<NamespaceDecl>(PrevDecl)) && 1742 "unexpected Decl type"); 1743 if (TagDecl *PrevTagDecl = dyn_cast<TagDecl>(PrevDecl)) { 1744 // If this is a use of a previous tag, or if the tag is already declared in 1745 // the same scope (so that the definition/declaration completes or 1746 // rementions the tag), reuse the decl. 1747 if (TK == TK_Reference || 1748 IdResolver.isDeclInScope(PrevDecl, CurContext, S)) { 1749 // Make sure that this wasn't declared as an enum and now used as a struct 1750 // or something similar. 1751 if (PrevDecl->getKind() != Kind) { 1752 Diag(KWLoc, diag::err_use_with_wrong_tag, Name->getName()); 1753 Diag(PrevDecl->getLocation(), diag::err_previous_use); 1754 } 1755 1756 // If this is a use or a forward declaration, we're good. 1757 if (TK != TK_Definition) 1758 return PrevDecl; 1759 1760 // Diagnose attempts to redefine a tag. 1761 if (PrevTagDecl->isDefinition()) { 1762 Diag(NameLoc, diag::err_redefinition, Name->getName()); 1763 Diag(PrevDecl->getLocation(), diag::err_previous_definition); 1764 // If this is a redefinition, recover by making this struct be 1765 // anonymous, which will make any later references get the previous 1766 // definition. 1767 Name = 0; 1768 } else { 1769 // Okay, this is definition of a previously declared or referenced tag. 1770 // Move the location of the decl to be the definition site. 1771 PrevDecl->setLocation(NameLoc); 1772 return PrevDecl; 1773 } 1774 } 1775 // If we get here, this is a definition of a new struct type in a nested 1776 // scope, e.g. "struct foo; void bar() { struct foo; }", just create a new 1777 // type. 1778 } else { 1779 // The tag name clashes with a namespace name, issue an error and recover 1780 // by making this tag be anonymous. 1781 Diag(NameLoc, diag::err_redefinition_different_kind, Name->getName()); 1782 Diag(PrevDecl->getLocation(), diag::err_previous_definition); 1783 Name = 0; 1784 } 1785 } 1786 1787 // If there is an identifier, use the location of the identifier as the 1788 // location of the decl, otherwise use the location of the struct/union 1789 // keyword. 1790 SourceLocation Loc = NameLoc.isValid() ? NameLoc : KWLoc; 1791 1792 // Otherwise, if this is the first time we've seen this tag, create the decl. 1793 TagDecl *New; 1794 switch (Kind) { 1795 default: assert(0 && "Unknown tag kind!"); 1796 case Decl::Enum: 1797 // FIXME: Tag decls should be chained to any simultaneous vardecls, e.g.: 1798 // enum X { A, B, C } D; D should chain to X. 1799 New = EnumDecl::Create(Context, CurContext, Loc, Name, 0); 1800 // If this is an undefined enum, warn. 1801 if (TK != TK_Definition) Diag(Loc, diag::ext_forward_ref_enum); 1802 break; 1803 case Decl::Union: 1804 case Decl::Struct: 1805 case Decl::Class: 1806 // FIXME: Tag decls should be chained to any simultaneous vardecls, e.g.: 1807 // struct X { int A; } D; D should chain to X. 1808 New = RecordDecl::Create(Context, Kind, CurContext, Loc, Name, 0); 1809 break; 1810 } 1811 1812 // If this has an identifier, add it to the scope stack. 1813 if (Name) { 1814 // The scope passed in may not be a decl scope. Zip up the scope tree until 1815 // we find one that is. 1816 while ((S->getFlags() & Scope::DeclScope) == 0) 1817 S = S->getParent(); 1818 1819 // Add it to the decl chain. 1820 PushOnScopeChains(New, S); 1821 } 1822 1823 HandleDeclAttributes(New, Attr, 0); 1824 return New; 1825} 1826 1827/// ActOnField - Each field of a struct/union/class is passed into this in order 1828/// to create a FieldDecl object for it. 1829Sema::DeclTy *Sema::ActOnField(Scope *S, 1830 SourceLocation DeclStart, 1831 Declarator &D, ExprTy *BitfieldWidth) { 1832 IdentifierInfo *II = D.getIdentifier(); 1833 Expr *BitWidth = (Expr*)BitfieldWidth; 1834 SourceLocation Loc = DeclStart; 1835 if (II) Loc = D.getIdentifierLoc(); 1836 1837 // FIXME: Unnamed fields can be handled in various different ways, for 1838 // example, unnamed unions inject all members into the struct namespace! 1839 1840 1841 if (BitWidth) { 1842 // TODO: Validate. 1843 //printf("WARNING: BITFIELDS IGNORED!\n"); 1844 1845 // 6.7.2.1p3 1846 // 6.7.2.1p4 1847 1848 } else { 1849 // Not a bitfield. 1850 1851 // validate II. 1852 1853 } 1854 1855 QualType T = GetTypeForDeclarator(D, S); 1856 assert(!T.isNull() && "GetTypeForDeclarator() returned null type"); 1857 bool InvalidDecl = false; 1858 1859 // C99 6.7.2.1p8: A member of a structure or union may have any type other 1860 // than a variably modified type. 1861 if (T->isVariablyModifiedType()) { 1862 // FIXME: This diagnostic needs work 1863 Diag(Loc, diag::err_typecheck_illegal_vla, Loc); 1864 InvalidDecl = true; 1865 } 1866 // FIXME: Chain fielddecls together. 1867 FieldDecl *NewFD = FieldDecl::Create(Context, Loc, II, T, BitWidth); 1868 1869 HandleDeclAttributes(NewFD, D.getDeclSpec().getAttributes(), 1870 D.getAttributes()); 1871 1872 if (D.getInvalidType() || InvalidDecl) 1873 NewFD->setInvalidDecl(); 1874 return NewFD; 1875} 1876 1877/// TranslateIvarVisibility - Translate visibility from a token ID to an 1878/// AST enum value. 1879static ObjCIvarDecl::AccessControl 1880TranslateIvarVisibility(tok::ObjCKeywordKind ivarVisibility) { 1881 switch (ivarVisibility) { 1882 case tok::objc_private: return ObjCIvarDecl::Private; 1883 case tok::objc_public: return ObjCIvarDecl::Public; 1884 case tok::objc_protected: return ObjCIvarDecl::Protected; 1885 case tok::objc_package: return ObjCIvarDecl::Package; 1886 default: assert(false && "Unknown visitibility kind"); 1887 } 1888} 1889 1890/// ActOnIvar - Each ivar field of an objective-c class is passed into this 1891/// in order to create an IvarDecl object for it. 1892Sema::DeclTy *Sema::ActOnIvar(Scope *S, 1893 SourceLocation DeclStart, 1894 Declarator &D, ExprTy *BitfieldWidth, 1895 tok::ObjCKeywordKind Visibility) { 1896 IdentifierInfo *II = D.getIdentifier(); 1897 Expr *BitWidth = (Expr*)BitfieldWidth; 1898 SourceLocation Loc = DeclStart; 1899 if (II) Loc = D.getIdentifierLoc(); 1900 1901 // FIXME: Unnamed fields can be handled in various different ways, for 1902 // example, unnamed unions inject all members into the struct namespace! 1903 1904 1905 if (BitWidth) { 1906 // TODO: Validate. 1907 //printf("WARNING: BITFIELDS IGNORED!\n"); 1908 1909 // 6.7.2.1p3 1910 // 6.7.2.1p4 1911 1912 } else { 1913 // Not a bitfield. 1914 1915 // validate II. 1916 1917 } 1918 1919 QualType T = GetTypeForDeclarator(D, S); 1920 assert(!T.isNull() && "GetTypeForDeclarator() returned null type"); 1921 bool InvalidDecl = false; 1922 1923 // C99 6.7.2.1p8: A member of a structure or union may have any type other 1924 // than a variably modified type. 1925 if (T->isVariablyModifiedType()) { 1926 // FIXME: This diagnostic needs work 1927 Diag(Loc, diag::err_typecheck_illegal_vla, Loc); 1928 InvalidDecl = true; 1929 } 1930 1931 ObjCIvarDecl *NewID = ObjCIvarDecl::Create(Context, Loc, II, T); 1932 1933 HandleDeclAttributes(NewID, D.getDeclSpec().getAttributes(), 1934 D.getAttributes()); 1935 1936 if (D.getInvalidType() || InvalidDecl) 1937 NewID->setInvalidDecl(); 1938 // If we have visibility info, make sure the AST is set accordingly. 1939 if (Visibility != tok::objc_not_keyword) 1940 NewID->setAccessControl(TranslateIvarVisibility(Visibility)); 1941 return NewID; 1942} 1943 1944void Sema::ActOnFields(Scope* S, 1945 SourceLocation RecLoc, DeclTy *RecDecl, 1946 DeclTy **Fields, unsigned NumFields, 1947 SourceLocation LBrac, SourceLocation RBrac) { 1948 Decl *EnclosingDecl = static_cast<Decl*>(RecDecl); 1949 assert(EnclosingDecl && "missing record or interface decl"); 1950 RecordDecl *Record = dyn_cast<RecordDecl>(EnclosingDecl); 1951 1952 if (Record && Record->isDefinition()) { 1953 // Diagnose code like: 1954 // struct S { struct S {} X; }; 1955 // We discover this when we complete the outer S. Reject and ignore the 1956 // outer S. 1957 Diag(Record->getLocation(), diag::err_nested_redefinition, 1958 Record->getKindName()); 1959 Diag(RecLoc, diag::err_previous_definition); 1960 Record->setInvalidDecl(); 1961 return; 1962 } 1963 // Verify that all the fields are okay. 1964 unsigned NumNamedMembers = 0; 1965 llvm::SmallVector<FieldDecl*, 32> RecFields; 1966 llvm::SmallSet<const IdentifierInfo*, 32> FieldIDs; 1967 1968 for (unsigned i = 0; i != NumFields; ++i) { 1969 1970 FieldDecl *FD = cast_or_null<FieldDecl>(static_cast<Decl*>(Fields[i])); 1971 assert(FD && "missing field decl"); 1972 1973 // Remember all fields. 1974 RecFields.push_back(FD); 1975 1976 // Get the type for the field. 1977 Type *FDTy = FD->getType().getTypePtr(); 1978 1979 // C99 6.7.2.1p2 - A field may not be a function type. 1980 if (FDTy->isFunctionType()) { 1981 Diag(FD->getLocation(), diag::err_field_declared_as_function, 1982 FD->getName()); 1983 FD->setInvalidDecl(); 1984 EnclosingDecl->setInvalidDecl(); 1985 continue; 1986 } 1987 // C99 6.7.2.1p2 - A field may not be an incomplete type except... 1988 if (FDTy->isIncompleteType()) { 1989 if (!Record) { // Incomplete ivar type is always an error. 1990 Diag(FD->getLocation(), diag::err_field_incomplete, FD->getName()); 1991 FD->setInvalidDecl(); 1992 EnclosingDecl->setInvalidDecl(); 1993 continue; 1994 } 1995 if (i != NumFields-1 || // ... that the last member ... 1996 Record->getKind() != Decl::Struct || // ... of a structure ... 1997 !FDTy->isArrayType()) { //... may have incomplete array type. 1998 Diag(FD->getLocation(), diag::err_field_incomplete, FD->getName()); 1999 FD->setInvalidDecl(); 2000 EnclosingDecl->setInvalidDecl(); 2001 continue; 2002 } 2003 if (NumNamedMembers < 1) { //... must have more than named member ... 2004 Diag(FD->getLocation(), diag::err_flexible_array_empty_struct, 2005 FD->getName()); 2006 FD->setInvalidDecl(); 2007 EnclosingDecl->setInvalidDecl(); 2008 continue; 2009 } 2010 // Okay, we have a legal flexible array member at the end of the struct. 2011 if (Record) 2012 Record->setHasFlexibleArrayMember(true); 2013 } 2014 /// C99 6.7.2.1p2 - a struct ending in a flexible array member cannot be the 2015 /// field of another structure or the element of an array. 2016 if (const RecordType *FDTTy = FDTy->getAsRecordType()) { 2017 if (FDTTy->getDecl()->hasFlexibleArrayMember()) { 2018 // If this is a member of a union, then entire union becomes "flexible". 2019 if (Record && Record->getKind() == Decl::Union) { 2020 Record->setHasFlexibleArrayMember(true); 2021 } else { 2022 // If this is a struct/class and this is not the last element, reject 2023 // it. Note that GCC supports variable sized arrays in the middle of 2024 // structures. 2025 if (i != NumFields-1) { 2026 Diag(FD->getLocation(), diag::err_variable_sized_type_in_struct, 2027 FD->getName()); 2028 FD->setInvalidDecl(); 2029 EnclosingDecl->setInvalidDecl(); 2030 continue; 2031 } 2032 // We support flexible arrays at the end of structs in other structs 2033 // as an extension. 2034 Diag(FD->getLocation(), diag::ext_flexible_array_in_struct, 2035 FD->getName()); 2036 if (Record) 2037 Record->setHasFlexibleArrayMember(true); 2038 } 2039 } 2040 } 2041 /// A field cannot be an Objective-c object 2042 if (FDTy->isObjCInterfaceType()) { 2043 Diag(FD->getLocation(), diag::err_statically_allocated_object, 2044 FD->getName()); 2045 FD->setInvalidDecl(); 2046 EnclosingDecl->setInvalidDecl(); 2047 continue; 2048 } 2049 // Keep track of the number of named members. 2050 if (IdentifierInfo *II = FD->getIdentifier()) { 2051 // Detect duplicate member names. 2052 if (!FieldIDs.insert(II)) { 2053 Diag(FD->getLocation(), diag::err_duplicate_member, II->getName()); 2054 // Find the previous decl. 2055 SourceLocation PrevLoc; 2056 for (unsigned i = 0, e = RecFields.size(); ; ++i) { 2057 assert(i != e && "Didn't find previous def!"); 2058 if (RecFields[i]->getIdentifier() == II) { 2059 PrevLoc = RecFields[i]->getLocation(); 2060 break; 2061 } 2062 } 2063 Diag(PrevLoc, diag::err_previous_definition); 2064 FD->setInvalidDecl(); 2065 EnclosingDecl->setInvalidDecl(); 2066 continue; 2067 } 2068 ++NumNamedMembers; 2069 } 2070 } 2071 2072 // Okay, we successfully defined 'Record'. 2073 if (Record) { 2074 Record->defineBody(&RecFields[0], RecFields.size()); 2075 Consumer.HandleTagDeclDefinition(Record); 2076 } else { 2077 ObjCIvarDecl **ClsFields = reinterpret_cast<ObjCIvarDecl**>(&RecFields[0]); 2078 if (ObjCInterfaceDecl *ID = dyn_cast<ObjCInterfaceDecl>(EnclosingDecl)) 2079 ID->addInstanceVariablesToClass(ClsFields, RecFields.size(), RBrac); 2080 else if (ObjCImplementationDecl *IMPDecl = 2081 dyn_cast<ObjCImplementationDecl>(EnclosingDecl)) { 2082 assert(IMPDecl && "ActOnFields - missing ObjCImplementationDecl"); 2083 IMPDecl->ObjCAddInstanceVariablesToClassImpl(ClsFields, RecFields.size()); 2084 CheckImplementationIvars(IMPDecl, ClsFields, RecFields.size(), RBrac); 2085 } 2086 } 2087} 2088 2089Sema::DeclTy *Sema::ActOnEnumConstant(Scope *S, DeclTy *theEnumDecl, 2090 DeclTy *lastEnumConst, 2091 SourceLocation IdLoc, IdentifierInfo *Id, 2092 SourceLocation EqualLoc, ExprTy *val) { 2093 EnumDecl *TheEnumDecl = cast<EnumDecl>(static_cast<Decl*>(theEnumDecl)); 2094 EnumConstantDecl *LastEnumConst = 2095 cast_or_null<EnumConstantDecl>(static_cast<Decl*>(lastEnumConst)); 2096 Expr *Val = static_cast<Expr*>(val); 2097 2098 // The scope passed in may not be a decl scope. Zip up the scope tree until 2099 // we find one that is. 2100 while ((S->getFlags() & Scope::DeclScope) == 0) 2101 S = S->getParent(); 2102 2103 // Verify that there isn't already something declared with this name in this 2104 // scope. 2105 if (Decl *PrevDecl = LookupDecl(Id, Decl::IDNS_Ordinary, S)) { 2106 if (IdResolver.isDeclInScope(PrevDecl, CurContext, S)) { 2107 if (isa<EnumConstantDecl>(PrevDecl)) 2108 Diag(IdLoc, diag::err_redefinition_of_enumerator, Id->getName()); 2109 else 2110 Diag(IdLoc, diag::err_redefinition, Id->getName()); 2111 Diag(PrevDecl->getLocation(), diag::err_previous_definition); 2112 delete Val; 2113 return 0; 2114 } 2115 } 2116 2117 llvm::APSInt EnumVal(32); 2118 QualType EltTy; 2119 if (Val) { 2120 // Make sure to promote the operand type to int. 2121 UsualUnaryConversions(Val); 2122 2123 // C99 6.7.2.2p2: Make sure we have an integer constant expression. 2124 SourceLocation ExpLoc; 2125 if (!Val->isIntegerConstantExpr(EnumVal, Context, &ExpLoc)) { 2126 Diag(ExpLoc, diag::err_enum_value_not_integer_constant_expr, 2127 Id->getName()); 2128 delete Val; 2129 Val = 0; // Just forget about it. 2130 } else { 2131 EltTy = Val->getType(); 2132 } 2133 } 2134 2135 if (!Val) { 2136 if (LastEnumConst) { 2137 // Assign the last value + 1. 2138 EnumVal = LastEnumConst->getInitVal(); 2139 ++EnumVal; 2140 2141 // Check for overflow on increment. 2142 if (EnumVal < LastEnumConst->getInitVal()) 2143 Diag(IdLoc, diag::warn_enum_value_overflow); 2144 2145 EltTy = LastEnumConst->getType(); 2146 } else { 2147 // First value, set to zero. 2148 EltTy = Context.IntTy; 2149 EnumVal.zextOrTrunc(static_cast<uint32_t>(Context.getTypeSize(EltTy))); 2150 } 2151 } 2152 2153 EnumConstantDecl *New = 2154 EnumConstantDecl::Create(Context, TheEnumDecl, IdLoc, Id, EltTy, 2155 Val, EnumVal, 2156 LastEnumConst); 2157 2158 // Register this decl in the current scope stack. 2159 PushOnScopeChains(New, S); 2160 return New; 2161} 2162 2163void Sema::ActOnEnumBody(SourceLocation EnumLoc, DeclTy *EnumDeclX, 2164 DeclTy **Elements, unsigned NumElements) { 2165 EnumDecl *Enum = cast<EnumDecl>(static_cast<Decl*>(EnumDeclX)); 2166 assert(!Enum->isDefinition() && "Enum redefinitions can't reach here"); 2167 2168 // TODO: If the result value doesn't fit in an int, it must be a long or long 2169 // long value. ISO C does not support this, but GCC does as an extension, 2170 // emit a warning. 2171 unsigned IntWidth = Context.Target.getIntWidth(); 2172 2173 // Verify that all the values are okay, compute the size of the values, and 2174 // reverse the list. 2175 unsigned NumNegativeBits = 0; 2176 unsigned NumPositiveBits = 0; 2177 2178 // Keep track of whether all elements have type int. 2179 bool AllElementsInt = true; 2180 2181 EnumConstantDecl *EltList = 0; 2182 for (unsigned i = 0; i != NumElements; ++i) { 2183 EnumConstantDecl *ECD = 2184 cast_or_null<EnumConstantDecl>(static_cast<Decl*>(Elements[i])); 2185 if (!ECD) continue; // Already issued a diagnostic. 2186 2187 // If the enum value doesn't fit in an int, emit an extension warning. 2188 const llvm::APSInt &InitVal = ECD->getInitVal(); 2189 assert(InitVal.getBitWidth() >= IntWidth && 2190 "Should have promoted value to int"); 2191 if (InitVal.getBitWidth() > IntWidth) { 2192 llvm::APSInt V(InitVal); 2193 V.trunc(IntWidth); 2194 V.extend(InitVal.getBitWidth()); 2195 if (V != InitVal) 2196 Diag(ECD->getLocation(), diag::ext_enum_value_not_int, 2197 InitVal.toString()); 2198 } 2199 2200 // Keep track of the size of positive and negative values. 2201 if (InitVal.isUnsigned() || InitVal.isNonNegative()) 2202 NumPositiveBits = std::max(NumPositiveBits, 2203 (unsigned)InitVal.getActiveBits()); 2204 else 2205 NumNegativeBits = std::max(NumNegativeBits, 2206 (unsigned)InitVal.getMinSignedBits()); 2207 2208 // Keep track of whether every enum element has type int (very commmon). 2209 if (AllElementsInt) 2210 AllElementsInt = ECD->getType() == Context.IntTy; 2211 2212 ECD->setNextDeclarator(EltList); 2213 EltList = ECD; 2214 } 2215 2216 // Figure out the type that should be used for this enum. 2217 // FIXME: Support attribute(packed) on enums and -fshort-enums. 2218 QualType BestType; 2219 unsigned BestWidth; 2220 2221 if (NumNegativeBits) { 2222 // If there is a negative value, figure out the smallest integer type (of 2223 // int/long/longlong) that fits. 2224 if (NumNegativeBits <= IntWidth && NumPositiveBits < IntWidth) { 2225 BestType = Context.IntTy; 2226 BestWidth = IntWidth; 2227 } else { 2228 BestWidth = Context.Target.getLongWidth(); 2229 2230 if (NumNegativeBits <= BestWidth && NumPositiveBits < BestWidth) 2231 BestType = Context.LongTy; 2232 else { 2233 BestWidth = Context.Target.getLongLongWidth(); 2234 2235 if (NumNegativeBits > BestWidth || NumPositiveBits >= BestWidth) 2236 Diag(Enum->getLocation(), diag::warn_enum_too_large); 2237 BestType = Context.LongLongTy; 2238 } 2239 } 2240 } else { 2241 // If there is no negative value, figure out which of uint, ulong, ulonglong 2242 // fits. 2243 if (NumPositiveBits <= IntWidth) { 2244 BestType = Context.UnsignedIntTy; 2245 BestWidth = IntWidth; 2246 } else if (NumPositiveBits <= 2247 (BestWidth = Context.Target.getLongWidth())) { 2248 BestType = Context.UnsignedLongTy; 2249 } else { 2250 BestWidth = Context.Target.getLongLongWidth(); 2251 assert(NumPositiveBits <= BestWidth && 2252 "How could an initializer get larger than ULL?"); 2253 BestType = Context.UnsignedLongLongTy; 2254 } 2255 } 2256 2257 // Loop over all of the enumerator constants, changing their types to match 2258 // the type of the enum if needed. 2259 for (unsigned i = 0; i != NumElements; ++i) { 2260 EnumConstantDecl *ECD = 2261 cast_or_null<EnumConstantDecl>(static_cast<Decl*>(Elements[i])); 2262 if (!ECD) continue; // Already issued a diagnostic. 2263 2264 // Standard C says the enumerators have int type, but we allow, as an 2265 // extension, the enumerators to be larger than int size. If each 2266 // enumerator value fits in an int, type it as an int, otherwise type it the 2267 // same as the enumerator decl itself. This means that in "enum { X = 1U }" 2268 // that X has type 'int', not 'unsigned'. 2269 if (ECD->getType() == Context.IntTy) { 2270 // Make sure the init value is signed. 2271 llvm::APSInt IV = ECD->getInitVal(); 2272 IV.setIsSigned(true); 2273 ECD->setInitVal(IV); 2274 continue; // Already int type. 2275 } 2276 2277 // Determine whether the value fits into an int. 2278 llvm::APSInt InitVal = ECD->getInitVal(); 2279 bool FitsInInt; 2280 if (InitVal.isUnsigned() || !InitVal.isNegative()) 2281 FitsInInt = InitVal.getActiveBits() < IntWidth; 2282 else 2283 FitsInInt = InitVal.getMinSignedBits() <= IntWidth; 2284 2285 // If it fits into an integer type, force it. Otherwise force it to match 2286 // the enum decl type. 2287 QualType NewTy; 2288 unsigned NewWidth; 2289 bool NewSign; 2290 if (FitsInInt) { 2291 NewTy = Context.IntTy; 2292 NewWidth = IntWidth; 2293 NewSign = true; 2294 } else if (ECD->getType() == BestType) { 2295 // Already the right type! 2296 continue; 2297 } else { 2298 NewTy = BestType; 2299 NewWidth = BestWidth; 2300 NewSign = BestType->isSignedIntegerType(); 2301 } 2302 2303 // Adjust the APSInt value. 2304 InitVal.extOrTrunc(NewWidth); 2305 InitVal.setIsSigned(NewSign); 2306 ECD->setInitVal(InitVal); 2307 2308 // Adjust the Expr initializer and type. 2309 ECD->setInitExpr(new ImplicitCastExpr(NewTy, ECD->getInitExpr())); 2310 ECD->setType(NewTy); 2311 } 2312 2313 Enum->defineElements(EltList, BestType); 2314 Consumer.HandleTagDeclDefinition(Enum); 2315} 2316 2317Sema::DeclTy *Sema::ActOnFileScopeAsmDecl(SourceLocation Loc, 2318 ExprTy *expr) { 2319 StringLiteral *AsmString = cast<StringLiteral>((Expr*)expr); 2320 2321 return FileScopeAsmDecl::Create(Context, Loc, AsmString); 2322} 2323 2324Sema::DeclTy* Sema::ActOnLinkageSpec(SourceLocation Loc, 2325 SourceLocation LBrace, 2326 SourceLocation RBrace, 2327 const char *Lang, 2328 unsigned StrSize, 2329 DeclTy *D) { 2330 LinkageSpecDecl::LanguageIDs Language; 2331 Decl *dcl = static_cast<Decl *>(D); 2332 if (strncmp(Lang, "\"C\"", StrSize) == 0) 2333 Language = LinkageSpecDecl::lang_c; 2334 else if (strncmp(Lang, "\"C++\"", StrSize) == 0) 2335 Language = LinkageSpecDecl::lang_cxx; 2336 else { 2337 Diag(Loc, diag::err_bad_language); 2338 return 0; 2339 } 2340 2341 // FIXME: Add all the various semantics of linkage specifications 2342 return LinkageSpecDecl::Create(Context, Loc, Language, dcl); 2343} 2344 2345void Sema::HandleDeclAttribute(Decl *New, AttributeList *Attr) { 2346 2347 switch (Attr->getKind()) { 2348 case AttributeList::AT_vector_size: 2349 if (ValueDecl *vDecl = dyn_cast<ValueDecl>(New)) { 2350 QualType newType = HandleVectorTypeAttribute(vDecl->getType(), Attr); 2351 if (!newType.isNull()) // install the new vector type into the decl 2352 vDecl->setType(newType); 2353 } 2354 if (TypedefDecl *tDecl = dyn_cast<TypedefDecl>(New)) { 2355 QualType newType = HandleVectorTypeAttribute(tDecl->getUnderlyingType(), 2356 Attr); 2357 if (!newType.isNull()) // install the new vector type into the decl 2358 tDecl->setUnderlyingType(newType); 2359 } 2360 break; 2361 case AttributeList::AT_ext_vector_type: 2362 if (TypedefDecl *tDecl = dyn_cast<TypedefDecl>(New)) 2363 HandleExtVectorTypeAttribute(tDecl, Attr); 2364 else 2365 Diag(Attr->getLoc(), 2366 diag::err_typecheck_ext_vector_not_typedef); 2367 break; 2368 case AttributeList::AT_address_space: 2369 if (TypedefDecl *tDecl = dyn_cast<TypedefDecl>(New)) { 2370 QualType newType = HandleAddressSpaceTypeAttribute( 2371 tDecl->getUnderlyingType(), 2372 Attr); 2373 tDecl->setUnderlyingType(newType); 2374 } else if (ValueDecl *vDecl = dyn_cast<ValueDecl>(New)) { 2375 QualType newType = HandleAddressSpaceTypeAttribute(vDecl->getType(), 2376 Attr); 2377 // install the new addr spaced type into the decl 2378 vDecl->setType(newType); 2379 } 2380 break; 2381 case AttributeList::AT_mode: 2382 if (TypedefDecl *tDecl = dyn_cast<TypedefDecl>(New)) { 2383 QualType newType = HandleModeTypeAttribute(tDecl->getUnderlyingType(), 2384 Attr); 2385 tDecl->setUnderlyingType(newType); 2386 } else if (ValueDecl *vDecl = dyn_cast<ValueDecl>(New)) { 2387 QualType newType = HandleModeTypeAttribute(vDecl->getType(), Attr); 2388 vDecl->setType(newType); 2389 } 2390 // FIXME: Diagnostic? 2391 break; 2392 case AttributeList::AT_deprecated: 2393 HandleDeprecatedAttribute(New, Attr); 2394 break; 2395 case AttributeList::AT_visibility: 2396 HandleVisibilityAttribute(New, Attr); 2397 break; 2398 case AttributeList::AT_weak: 2399 HandleWeakAttribute(New, Attr); 2400 break; 2401 case AttributeList::AT_dllimport: 2402 HandleDLLImportAttribute(New, Attr); 2403 break; 2404 case AttributeList::AT_dllexport: 2405 HandleDLLExportAttribute(New, Attr); 2406 break; 2407 case AttributeList::AT_nothrow: 2408 HandleNothrowAttribute(New, Attr); 2409 break; 2410 case AttributeList::AT_stdcall: 2411 HandleStdCallAttribute(New, Attr); 2412 break; 2413 case AttributeList::AT_fastcall: 2414 HandleFastCallAttribute(New, Attr); 2415 break; 2416 case AttributeList::AT_aligned: 2417 HandleAlignedAttribute(New, Attr); 2418 break; 2419 case AttributeList::AT_packed: 2420 HandlePackedAttribute(New, Attr); 2421 break; 2422 case AttributeList::AT_annotate: 2423 HandleAnnotateAttribute(New, Attr); 2424 break; 2425 case AttributeList::AT_noreturn: 2426 HandleNoReturnAttribute(New, Attr); 2427 break; 2428 case AttributeList::AT_format: 2429 HandleFormatAttribute(New, Attr); 2430 break; 2431 case AttributeList::AT_transparent_union: 2432 HandleTransparentUnionAttribute(New, Attr); 2433 break; 2434 default: 2435#if 0 2436 // TODO: when we have the full set of attributes, warn about unknown ones. 2437 Diag(Attr->getLoc(), diag::warn_attribute_ignored, 2438 Attr->getName()->getName()); 2439#endif 2440 break; 2441 } 2442} 2443 2444void Sema::HandleDeclAttributes(Decl *New, AttributeList *declspec_prefix, 2445 AttributeList *declarator_postfix) { 2446 while (declspec_prefix) { 2447 HandleDeclAttribute(New, declspec_prefix); 2448 declspec_prefix = declspec_prefix->getNext(); 2449 } 2450 while (declarator_postfix) { 2451 HandleDeclAttribute(New, declarator_postfix); 2452 declarator_postfix = declarator_postfix->getNext(); 2453 } 2454} 2455 2456void Sema::HandleExtVectorTypeAttribute(TypedefDecl *tDecl, 2457 AttributeList *rawAttr) { 2458 QualType curType = tDecl->getUnderlyingType(); 2459 // check the attribute arguments. 2460 if (rawAttr->getNumArgs() != 1) { 2461 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2462 std::string("1")); 2463 return; 2464 } 2465 Expr *sizeExpr = static_cast<Expr *>(rawAttr->getArg(0)); 2466 llvm::APSInt vecSize(32); 2467 if (!sizeExpr->isIntegerConstantExpr(vecSize, Context)) { 2468 Diag(rawAttr->getLoc(), diag::err_attribute_argument_not_int, 2469 "ext_vector_type", sizeExpr->getSourceRange()); 2470 return; 2471 } 2472 // unlike gcc's vector_size attribute, we do not allow vectors to be defined 2473 // in conjunction with complex types (pointers, arrays, functions, etc.). 2474 Type *canonType = curType.getCanonicalType().getTypePtr(); 2475 if (!(canonType->isIntegerType() || canonType->isRealFloatingType())) { 2476 Diag(rawAttr->getLoc(), diag::err_attribute_invalid_vector_type, 2477 curType.getCanonicalType().getAsString()); 2478 return; 2479 } 2480 // unlike gcc's vector_size attribute, the size is specified as the 2481 // number of elements, not the number of bytes. 2482 unsigned vectorSize = static_cast<unsigned>(vecSize.getZExtValue()); 2483 2484 if (vectorSize == 0) { 2485 Diag(rawAttr->getLoc(), diag::err_attribute_zero_size, 2486 sizeExpr->getSourceRange()); 2487 return; 2488 } 2489 // Instantiate/Install the vector type, the number of elements is > 0. 2490 tDecl->setUnderlyingType(Context.getExtVectorType(curType, vectorSize)); 2491 // Remember this typedef decl, we will need it later for diagnostics. 2492 ExtVectorDecls.push_back(tDecl); 2493} 2494 2495QualType Sema::HandleVectorTypeAttribute(QualType curType, 2496 AttributeList *rawAttr) { 2497 // check the attribute arugments. 2498 if (rawAttr->getNumArgs() != 1) { 2499 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2500 std::string("1")); 2501 return QualType(); 2502 } 2503 Expr *sizeExpr = static_cast<Expr *>(rawAttr->getArg(0)); 2504 llvm::APSInt vecSize(32); 2505 if (!sizeExpr->isIntegerConstantExpr(vecSize, Context)) { 2506 Diag(rawAttr->getLoc(), diag::err_attribute_argument_not_int, 2507 "vector_size", sizeExpr->getSourceRange()); 2508 return QualType(); 2509 } 2510 // navigate to the base type - we need to provide for vector pointers, 2511 // vector arrays, and functions returning vectors. 2512 Type *canonType = curType.getCanonicalType().getTypePtr(); 2513 2514 if (canonType->isPointerType() || canonType->isArrayType() || 2515 canonType->isFunctionType()) { 2516 assert(0 && "HandleVector(): Complex type construction unimplemented"); 2517 /* FIXME: rebuild the type from the inside out, vectorizing the inner type. 2518 do { 2519 if (PointerType *PT = dyn_cast<PointerType>(canonType)) 2520 canonType = PT->getPointeeType().getTypePtr(); 2521 else if (ArrayType *AT = dyn_cast<ArrayType>(canonType)) 2522 canonType = AT->getElementType().getTypePtr(); 2523 else if (FunctionType *FT = dyn_cast<FunctionType>(canonType)) 2524 canonType = FT->getResultType().getTypePtr(); 2525 } while (canonType->isPointerType() || canonType->isArrayType() || 2526 canonType->isFunctionType()); 2527 */ 2528 } 2529 // the base type must be integer or float. 2530 if (!(canonType->isIntegerType() || canonType->isRealFloatingType())) { 2531 Diag(rawAttr->getLoc(), diag::err_attribute_invalid_vector_type, 2532 curType.getCanonicalType().getAsString()); 2533 return QualType(); 2534 } 2535 unsigned typeSize = static_cast<unsigned>(Context.getTypeSize(curType)); 2536 // vecSize is specified in bytes - convert to bits. 2537 unsigned vectorSize = static_cast<unsigned>(vecSize.getZExtValue() * 8); 2538 2539 // the vector size needs to be an integral multiple of the type size. 2540 if (vectorSize % typeSize) { 2541 Diag(rawAttr->getLoc(), diag::err_attribute_invalid_size, 2542 sizeExpr->getSourceRange()); 2543 return QualType(); 2544 } 2545 if (vectorSize == 0) { 2546 Diag(rawAttr->getLoc(), diag::err_attribute_zero_size, 2547 sizeExpr->getSourceRange()); 2548 return QualType(); 2549 } 2550 // Instantiate the vector type, the number of elements is > 0, and not 2551 // required to be a power of 2, unlike GCC. 2552 return Context.getVectorType(curType, vectorSize/typeSize); 2553} 2554 2555void Sema::HandlePackedAttribute(Decl *d, AttributeList *rawAttr) { 2556 // check the attribute arguments. 2557 if (rawAttr->getNumArgs() > 0) { 2558 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2559 std::string("0")); 2560 return; 2561 } 2562 2563 if (TagDecl *TD = dyn_cast<TagDecl>(d)) 2564 TD->addAttr(new PackedAttr); 2565 else if (FieldDecl *FD = dyn_cast<FieldDecl>(d)) { 2566 // If the alignment is less than or equal to 8 bits, the packed attribute 2567 // has no effect. 2568 if (!FD->getType()->isIncompleteType() && 2569 Context.getTypeAlign(FD->getType()) <= 8) 2570 Diag(rawAttr->getLoc(), 2571 diag::warn_attribute_ignored_for_field_of_type, 2572 rawAttr->getName()->getName(), FD->getType().getAsString()); 2573 else 2574 FD->addAttr(new PackedAttr); 2575 } else 2576 Diag(rawAttr->getLoc(), diag::warn_attribute_ignored, 2577 rawAttr->getName()->getName()); 2578} 2579 2580void Sema::HandleNoReturnAttribute(Decl *d, AttributeList *rawAttr) { 2581 // check the attribute arguments. 2582 if (rawAttr->getNumArgs() != 0) { 2583 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2584 std::string("0")); 2585 return; 2586 } 2587 2588 FunctionDecl *Fn = dyn_cast<FunctionDecl>(d); 2589 2590 if (!Fn) { 2591 Diag(rawAttr->getLoc(), diag::warn_attribute_wrong_decl_type, 2592 "noreturn", "function"); 2593 return; 2594 } 2595 2596 d->addAttr(new NoReturnAttr()); 2597} 2598 2599void Sema::HandleDeprecatedAttribute(Decl *d, AttributeList *rawAttr) { 2600 // check the attribute arguments. 2601 if (rawAttr->getNumArgs() != 0) { 2602 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2603 std::string("0")); 2604 return; 2605 } 2606 2607 d->addAttr(new DeprecatedAttr()); 2608} 2609 2610void Sema::HandleVisibilityAttribute(Decl *d, AttributeList *rawAttr) { 2611 // check the attribute arguments. 2612 if (rawAttr->getNumArgs() != 1) { 2613 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2614 std::string("1")); 2615 return; 2616 } 2617 2618 Expr *Arg = static_cast<Expr*>(rawAttr->getArg(0)); 2619 Arg = Arg->IgnoreParenCasts(); 2620 StringLiteral *Str = dyn_cast<StringLiteral>(Arg); 2621 2622 if (Str == 0 || Str->isWide()) { 2623 Diag(rawAttr->getLoc(), diag::err_attribute_argument_n_not_string, 2624 "visibility", std::string("1")); 2625 return; 2626 } 2627 2628 const char *TypeStr = Str->getStrData(); 2629 unsigned TypeLen = Str->getByteLength(); 2630 VisibilityAttr::VisibilityTypes type; 2631 2632 if (TypeLen == 7 && !memcmp(TypeStr, "default", 7)) 2633 type = VisibilityAttr::DefaultVisibility; 2634 else if (TypeLen == 6 && !memcmp(TypeStr, "hidden", 6)) 2635 type = VisibilityAttr::HiddenVisibility; 2636 else if (TypeLen == 8 && !memcmp(TypeStr, "internal", 8)) 2637 type = VisibilityAttr::HiddenVisibility; // FIXME 2638 else if (TypeLen == 9 && !memcmp(TypeStr, "protected", 9)) 2639 type = VisibilityAttr::ProtectedVisibility; 2640 else { 2641 Diag(rawAttr->getLoc(), diag::warn_attribute_type_not_supported, 2642 "visibility", TypeStr); 2643 return; 2644 } 2645 2646 d->addAttr(new VisibilityAttr(type)); 2647} 2648 2649void Sema::HandleWeakAttribute(Decl *d, AttributeList *rawAttr) { 2650 // check the attribute arguments. 2651 if (rawAttr->getNumArgs() != 0) { 2652 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2653 std::string("0")); 2654 return; 2655 } 2656 2657 d->addAttr(new WeakAttr()); 2658} 2659 2660void Sema::HandleDLLImportAttribute(Decl *d, AttributeList *rawAttr) { 2661 // check the attribute arguments. 2662 if (rawAttr->getNumArgs() != 0) { 2663 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2664 std::string("0")); 2665 return; 2666 } 2667 2668 d->addAttr(new DLLImportAttr()); 2669} 2670 2671void Sema::HandleDLLExportAttribute(Decl *d, AttributeList *rawAttr) { 2672 // check the attribute arguments. 2673 if (rawAttr->getNumArgs() != 0) { 2674 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2675 std::string("0")); 2676 return; 2677 } 2678 2679 d->addAttr(new DLLExportAttr()); 2680} 2681 2682void Sema::HandleStdCallAttribute(Decl *d, AttributeList *rawAttr) { 2683 // check the attribute arguments. 2684 if (rawAttr->getNumArgs() != 0) { 2685 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2686 std::string("0")); 2687 return; 2688 } 2689 2690 d->addAttr(new StdCallAttr()); 2691} 2692 2693void Sema::HandleFastCallAttribute(Decl *d, AttributeList *rawAttr) { 2694 // check the attribute arguments. 2695 if (rawAttr->getNumArgs() != 0) { 2696 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2697 std::string("0")); 2698 return; 2699 } 2700 2701 d->addAttr(new FastCallAttr()); 2702} 2703 2704void Sema::HandleNothrowAttribute(Decl *d, AttributeList *rawAttr) { 2705 // check the attribute arguments. 2706 if (rawAttr->getNumArgs() != 0) { 2707 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2708 std::string("0")); 2709 return; 2710 } 2711 2712 d->addAttr(new NoThrowAttr()); 2713} 2714 2715static const FunctionTypeProto *getFunctionProto(Decl *d) { 2716 QualType Ty; 2717 2718 if (ValueDecl *decl = dyn_cast<ValueDecl>(d)) 2719 Ty = decl->getType(); 2720 else if (FieldDecl *decl = dyn_cast<FieldDecl>(d)) 2721 Ty = decl->getType(); 2722 else if (TypedefDecl* decl = dyn_cast<TypedefDecl>(d)) 2723 Ty = decl->getUnderlyingType(); 2724 else 2725 return 0; 2726 2727 if (Ty->isFunctionPointerType()) { 2728 const PointerType *PtrTy = Ty->getAsPointerType(); 2729 Ty = PtrTy->getPointeeType(); 2730 } 2731 2732 if (const FunctionType *FnTy = Ty->getAsFunctionType()) 2733 return dyn_cast<FunctionTypeProto>(FnTy->getAsFunctionType()); 2734 2735 return 0; 2736} 2737 2738static inline bool isNSStringType(QualType T, ASTContext &Ctx) { 2739 if (!T->isPointerType()) 2740 return false; 2741 2742 T = T->getAsPointerType()->getPointeeType().getCanonicalType(); 2743 ObjCInterfaceType* ClsT = dyn_cast<ObjCInterfaceType>(T.getTypePtr()); 2744 2745 if (!ClsT) 2746 return false; 2747 2748 IdentifierInfo* ClsName = ClsT->getDecl()->getIdentifier(); 2749 2750 // FIXME: Should we walk the chain of classes? 2751 return ClsName == &Ctx.Idents.get("NSString") || 2752 ClsName == &Ctx.Idents.get("NSMutableString"); 2753} 2754 2755/// Handle __attribute__((format(type,idx,firstarg))) attributes 2756/// based on http://gcc.gnu.org/onlinedocs/gcc/Function-Attributes.html 2757void Sema::HandleFormatAttribute(Decl *d, AttributeList *rawAttr) { 2758 2759 if (!rawAttr->getParameterName()) { 2760 Diag(rawAttr->getLoc(), diag::err_attribute_argument_n_not_string, 2761 "format", std::string("1")); 2762 return; 2763 } 2764 2765 if (rawAttr->getNumArgs() != 2) { 2766 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2767 std::string("3")); 2768 return; 2769 } 2770 2771 // GCC ignores the format attribute on K&R style function 2772 // prototypes, so we ignore it as well 2773 const FunctionTypeProto *proto = getFunctionProto(d); 2774 2775 if (!proto) { 2776 Diag(rawAttr->getLoc(), diag::warn_attribute_wrong_decl_type, 2777 "format", "function"); 2778 return; 2779 } 2780 2781 // FIXME: in C++ the implicit 'this' function parameter also counts. 2782 // this is needed in order to be compatible with GCC 2783 // the index must start in 1 and the limit is numargs+1 2784 unsigned NumArgs = proto->getNumArgs(); 2785 unsigned FirstIdx = 1; 2786 2787 const char *Format = rawAttr->getParameterName()->getName(); 2788 unsigned FormatLen = rawAttr->getParameterName()->getLength(); 2789 2790 // Normalize the argument, __foo__ becomes foo. 2791 if (FormatLen > 4 && Format[0] == '_' && Format[1] == '_' && 2792 Format[FormatLen - 2] == '_' && Format[FormatLen - 1] == '_') { 2793 Format += 2; 2794 FormatLen -= 4; 2795 } 2796 2797 bool Supported = false; 2798 bool is_NSString = false; 2799 bool is_strftime = false; 2800 2801 switch (FormatLen) { 2802 default: break; 2803 case 5: 2804 Supported = !memcmp(Format, "scanf", 5); 2805 break; 2806 case 6: 2807 Supported = !memcmp(Format, "printf", 6); 2808 break; 2809 case 7: 2810 Supported = !memcmp(Format, "strfmon", 7); 2811 break; 2812 case 8: 2813 Supported = (is_strftime = !memcmp(Format, "strftime", 8)) || 2814 (is_NSString = !memcmp(Format, "NSString", 8)); 2815 break; 2816 } 2817 2818 if (!Supported) { 2819 Diag(rawAttr->getLoc(), diag::warn_attribute_type_not_supported, 2820 "format", rawAttr->getParameterName()->getName()); 2821 return; 2822 } 2823 2824 // checks for the 2nd argument 2825 Expr *IdxExpr = static_cast<Expr *>(rawAttr->getArg(0)); 2826 llvm::APSInt Idx(Context.getTypeSize(IdxExpr->getType())); 2827 if (!IdxExpr->isIntegerConstantExpr(Idx, Context)) { 2828 Diag(rawAttr->getLoc(), diag::err_attribute_argument_n_not_int, 2829 "format", std::string("2"), IdxExpr->getSourceRange()); 2830 return; 2831 } 2832 2833 if (Idx.getZExtValue() < FirstIdx || Idx.getZExtValue() > NumArgs) { 2834 Diag(rawAttr->getLoc(), diag::err_attribute_argument_out_of_bounds, 2835 "format", std::string("2"), IdxExpr->getSourceRange()); 2836 return; 2837 } 2838 2839 // FIXME: Do we need to bounds check? 2840 unsigned ArgIdx = Idx.getZExtValue() - 1; 2841 2842 // make sure the format string is really a string 2843 QualType Ty = proto->getArgType(ArgIdx); 2844 2845 if (is_NSString) { 2846 // FIXME: do we need to check if the type is NSString*? What are 2847 // the semantics? 2848 if (!isNSStringType(Ty, Context)) { 2849 // FIXME: Should highlight the actual expression that has the 2850 // wrong type. 2851 Diag(rawAttr->getLoc(), diag::err_format_attribute_not_NSString, 2852 IdxExpr->getSourceRange()); 2853 return; 2854 } 2855 } 2856 else if (!Ty->isPointerType() || 2857 !Ty->getAsPointerType()->getPointeeType()->isCharType()) { 2858 // FIXME: Should highlight the actual expression that has the 2859 // wrong type. 2860 Diag(rawAttr->getLoc(), diag::err_format_attribute_not_string, 2861 IdxExpr->getSourceRange()); 2862 return; 2863 } 2864 2865 // check the 3rd argument 2866 Expr *FirstArgExpr = static_cast<Expr *>(rawAttr->getArg(1)); 2867 llvm::APSInt FirstArg(Context.getTypeSize(FirstArgExpr->getType())); 2868 if (!FirstArgExpr->isIntegerConstantExpr(FirstArg, Context)) { 2869 Diag(rawAttr->getLoc(), diag::err_attribute_argument_n_not_int, 2870 "format", std::string("3"), FirstArgExpr->getSourceRange()); 2871 return; 2872 } 2873 2874 // check if the function is variadic if the 3rd argument non-zero 2875 if (FirstArg != 0) { 2876 if (proto->isVariadic()) { 2877 ++NumArgs; // +1 for ... 2878 } else { 2879 Diag(d->getLocation(), diag::err_format_attribute_requires_variadic); 2880 return; 2881 } 2882 } 2883 2884 // strftime requires FirstArg to be 0 because it doesn't read from any variable 2885 // the input is just the current time + the format string 2886 if (is_strftime) { 2887 if (FirstArg != 0) { 2888 Diag(rawAttr->getLoc(), diag::err_format_strftime_third_parameter, 2889 FirstArgExpr->getSourceRange()); 2890 return; 2891 } 2892 // if 0 it disables parameter checking (to use with e.g. va_list) 2893 } else if (FirstArg != 0 && FirstArg != NumArgs) { 2894 Diag(rawAttr->getLoc(), diag::err_attribute_argument_out_of_bounds, 2895 "format", std::string("3"), FirstArgExpr->getSourceRange()); 2896 return; 2897 } 2898 2899 d->addAttr(new FormatAttr(std::string(Format, FormatLen), 2900 Idx.getZExtValue(), FirstArg.getZExtValue())); 2901} 2902 2903void Sema::HandleTransparentUnionAttribute(Decl *d, AttributeList *rawAttr) { 2904 // check the attribute arguments. 2905 if (rawAttr->getNumArgs() != 0) { 2906 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2907 std::string("0")); 2908 return; 2909 } 2910 2911 TypeDecl *decl = dyn_cast<TypeDecl>(d); 2912 2913 if (!decl || !Context.getTypeDeclType(decl)->isUnionType()) { 2914 Diag(rawAttr->getLoc(), diag::warn_attribute_wrong_decl_type, 2915 "transparent_union", "union"); 2916 return; 2917 } 2918 2919 //QualType QTy = Context.getTypeDeclType(decl); 2920 //const RecordType *Ty = QTy->getAsUnionType(); 2921 2922// FIXME 2923// Ty->addAttr(new TransparentUnionAttr()); 2924} 2925 2926void Sema::HandleAnnotateAttribute(Decl *d, AttributeList *rawAttr) { 2927 // check the attribute arguments. 2928 if (rawAttr->getNumArgs() != 1) { 2929 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2930 std::string("1")); 2931 return; 2932 } 2933 Expr *argExpr = static_cast<Expr *>(rawAttr->getArg(0)); 2934 StringLiteral *SE = dyn_cast<StringLiteral>(argExpr); 2935 2936 // Make sure that there is a string literal as the annotation's single 2937 // argument. 2938 if (!SE) { 2939 Diag(rawAttr->getLoc(), diag::err_attribute_annotate_no_string); 2940 return; 2941 } 2942 d->addAttr(new AnnotateAttr(std::string(SE->getStrData(), 2943 SE->getByteLength()))); 2944} 2945 2946void Sema::HandleAlignedAttribute(Decl *d, AttributeList *rawAttr) 2947{ 2948 // check the attribute arguments. 2949 if (rawAttr->getNumArgs() > 1) { 2950 Diag(rawAttr->getLoc(), diag::err_attribute_wrong_number_arguments, 2951 std::string("1")); 2952 return; 2953 } 2954 2955 unsigned Align = 0; 2956 2957 if (rawAttr->getNumArgs() == 0) { 2958 // FIXME: This should be the target specific maximum alignment. 2959 // (For now we just use 128 bits which is the maximum on X86. 2960 Align = 128; 2961 return; 2962 } else { 2963 Expr *alignmentExpr = static_cast<Expr *>(rawAttr->getArg(0)); 2964 llvm::APSInt alignment(32); 2965 if (!alignmentExpr->isIntegerConstantExpr(alignment, Context)) { 2966 Diag(rawAttr->getLoc(), diag::err_attribute_argument_not_int, 2967 "aligned", alignmentExpr->getSourceRange()); 2968 return; 2969 } 2970 2971 Align = alignment.getZExtValue() * 8; 2972 } 2973 2974 d->addAttr(new AlignedAttr(Align)); 2975} 2976