1 //===--- SemaStmt.cpp - Semantic Analysis for Statements ------------------===// 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 statements. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "clang/Sema/SemaInternal.h" 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/ASTDiagnostic.h" 17 #include "clang/AST/ASTLambda.h" 18 #include "clang/AST/CharUnits.h" 19 #include "clang/AST/CXXInheritance.h" 20 #include "clang/AST/DeclObjC.h" 21 #include "clang/AST/EvaluatedExprVisitor.h" 22 #include "clang/AST/ExprCXX.h" 23 #include "clang/AST/ExprObjC.h" 24 #include "clang/AST/RecursiveASTVisitor.h" 25 #include "clang/AST/StmtCXX.h" 26 #include "clang/AST/StmtObjC.h" 27 #include "clang/AST/TypeLoc.h" 28 #include "clang/AST/TypeOrdering.h" 29 #include "clang/Basic/TargetInfo.h" 30 #include "clang/Lex/Preprocessor.h" 31 #include "clang/Sema/Initialization.h" 32 #include "clang/Sema/Lookup.h" 33 #include "clang/Sema/Scope.h" 34 #include "clang/Sema/ScopeInfo.h" 35 #include "llvm/ADT/ArrayRef.h" 36 #include "llvm/ADT/DenseMap.h" 37 #include "llvm/ADT/STLExtras.h" 38 #include "llvm/ADT/SmallPtrSet.h" 39 #include "llvm/ADT/SmallString.h" 40 #include "llvm/ADT/SmallVector.h" 41 42 using namespace clang; 43 using namespace sema; 44 45 StmtResult Sema::ActOnExprStmt(ExprResult FE) { 46 if (FE.isInvalid()) 47 return StmtError(); 48 49 FE = ActOnFinishFullExpr(FE.get(), FE.get()->getExprLoc(), 50 /*DiscardedValue*/ true); 51 if (FE.isInvalid()) 52 return StmtError(); 53 54 // C99 6.8.3p2: The expression in an expression statement is evaluated as a 55 // void expression for its side effects. Conversion to void allows any 56 // operand, even incomplete types. 57 58 // Same thing in for stmt first clause (when expr) and third clause. 59 return StmtResult(FE.getAs<Stmt>()); 60 } 61 62 63 StmtResult Sema::ActOnExprStmtError() { 64 DiscardCleanupsInEvaluationContext(); 65 return StmtError(); 66 } 67 68 StmtResult Sema::ActOnNullStmt(SourceLocation SemiLoc, 69 bool HasLeadingEmptyMacro) { 70 return new (Context) NullStmt(SemiLoc, HasLeadingEmptyMacro); 71 } 72 73 StmtResult Sema::ActOnDeclStmt(DeclGroupPtrTy dg, SourceLocation StartLoc, 74 SourceLocation EndLoc) { 75 DeclGroupRef DG = dg.get(); 76 77 // If we have an invalid decl, just return an error. 78 if (DG.isNull()) return StmtError(); 79 80 return new (Context) DeclStmt(DG, StartLoc, EndLoc); 81 } 82 83 void Sema::ActOnForEachDeclStmt(DeclGroupPtrTy dg) { 84 DeclGroupRef DG = dg.get(); 85 86 // If we don't have a declaration, or we have an invalid declaration, 87 // just return. 88 if (DG.isNull() || !DG.isSingleDecl()) 89 return; 90 91 Decl *decl = DG.getSingleDecl(); 92 if (!decl || decl->isInvalidDecl()) 93 return; 94 95 // Only variable declarations are permitted. 96 VarDecl *var = dyn_cast<VarDecl>(decl); 97 if (!var) { 98 Diag(decl->getLocation(), diag::err_non_variable_decl_in_for); 99 decl->setInvalidDecl(); 100 return; 101 } 102 103 // foreach variables are never actually initialized in the way that 104 // the parser came up with. 105 var->setInit(nullptr); 106 107 // In ARC, we don't need to retain the iteration variable of a fast 108 // enumeration loop. Rather than actually trying to catch that 109 // during declaration processing, we remove the consequences here. 110 if (getLangOpts().ObjCAutoRefCount) { 111 QualType type = var->getType(); 112 113 // Only do this if we inferred the lifetime. Inferred lifetime 114 // will show up as a local qualifier because explicit lifetime 115 // should have shown up as an AttributedType instead. 116 if (type.getLocalQualifiers().getObjCLifetime() == Qualifiers::OCL_Strong) { 117 // Add 'const' and mark the variable as pseudo-strong. 118 var->setType(type.withConst()); 119 var->setARCPseudoStrong(true); 120 } 121 } 122 } 123 124 /// Diagnose unused comparisons, both builtin and overloaded operators. 125 /// For '==' and '!=', suggest fixits for '=' or '|='. 126 /// 127 /// Adding a cast to void (or other expression wrappers) will prevent the 128 /// warning from firing. 129 static bool DiagnoseUnusedComparison(Sema &S, const Expr *E) { 130 SourceLocation Loc; 131 bool CanAssign; 132 enum { Equality, Inequality, Relational, ThreeWay } Kind; 133 134 if (const BinaryOperator *Op = dyn_cast<BinaryOperator>(E)) { 135 if (!Op->isComparisonOp()) 136 return false; 137 138 if (Op->getOpcode() == BO_EQ) 139 Kind = Equality; 140 else if (Op->getOpcode() == BO_NE) 141 Kind = Inequality; 142 else if (Op->getOpcode() == BO_Cmp) 143 Kind = ThreeWay; 144 else { 145 assert(Op->isRelationalOp()); 146 Kind = Relational; 147 } 148 Loc = Op->getOperatorLoc(); 149 CanAssign = Op->getLHS()->IgnoreParenImpCasts()->isLValue(); 150 } else if (const CXXOperatorCallExpr *Op = dyn_cast<CXXOperatorCallExpr>(E)) { 151 switch (Op->getOperator()) { 152 case OO_EqualEqual: 153 Kind = Equality; 154 break; 155 case OO_ExclaimEqual: 156 Kind = Inequality; 157 break; 158 case OO_Less: 159 case OO_Greater: 160 case OO_GreaterEqual: 161 case OO_LessEqual: 162 Kind = Relational; 163 break; 164 case OO_Spaceship: 165 Kind = ThreeWay; 166 break; 167 default: 168 return false; 169 } 170 171 Loc = Op->getOperatorLoc(); 172 CanAssign = Op->getArg(0)->IgnoreParenImpCasts()->isLValue(); 173 } else { 174 // Not a typo-prone comparison. 175 return false; 176 } 177 178 // Suppress warnings when the operator, suspicious as it may be, comes from 179 // a macro expansion. 180 if (S.SourceMgr.isMacroBodyExpansion(Loc)) 181 return false; 182 183 S.Diag(Loc, diag::warn_unused_comparison) 184 << (unsigned)Kind << E->getSourceRange(); 185 186 // If the LHS is a plausible entity to assign to, provide a fixit hint to 187 // correct common typos. 188 if (CanAssign) { 189 if (Kind == Inequality) 190 S.Diag(Loc, diag::note_inequality_comparison_to_or_assign) 191 << FixItHint::CreateReplacement(Loc, "|="); 192 else if (Kind == Equality) 193 S.Diag(Loc, diag::note_equality_comparison_to_assign) 194 << FixItHint::CreateReplacement(Loc, "="); 195 } 196 197 return true; 198 } 199 200 void Sema::DiagnoseUnusedExprResult(const Stmt *S) { 201 if (const LabelStmt *Label = dyn_cast_or_null<LabelStmt>(S)) 202 return DiagnoseUnusedExprResult(Label->getSubStmt()); 203 204 const Expr *E = dyn_cast_or_null<Expr>(S); 205 if (!E) 206 return; 207 208 // If we are in an unevaluated expression context, then there can be no unused 209 // results because the results aren't expected to be used in the first place. 210 if (isUnevaluatedContext()) 211 return; 212 213 SourceLocation ExprLoc = E->IgnoreParenImpCasts()->getExprLoc(); 214 // In most cases, we don't want to warn if the expression is written in a 215 // macro body, or if the macro comes from a system header. If the offending 216 // expression is a call to a function with the warn_unused_result attribute, 217 // we warn no matter the location. Because of the order in which the various 218 // checks need to happen, we factor out the macro-related test here. 219 bool ShouldSuppress = 220 SourceMgr.isMacroBodyExpansion(ExprLoc) || 221 SourceMgr.isInSystemMacro(ExprLoc); 222 223 const Expr *WarnExpr; 224 SourceLocation Loc; 225 SourceRange R1, R2; 226 if (!E->isUnusedResultAWarning(WarnExpr, Loc, R1, R2, Context)) 227 return; 228 229 // If this is a GNU statement expression expanded from a macro, it is probably 230 // unused because it is a function-like macro that can be used as either an 231 // expression or statement. Don't warn, because it is almost certainly a 232 // false positive. 233 if (isa<StmtExpr>(E) && Loc.isMacroID()) 234 return; 235 236 // Check if this is the UNREFERENCED_PARAMETER from the Microsoft headers. 237 // That macro is frequently used to suppress "unused parameter" warnings, 238 // but its implementation makes clang's -Wunused-value fire. Prevent this. 239 if (isa<ParenExpr>(E->IgnoreImpCasts()) && Loc.isMacroID()) { 240 SourceLocation SpellLoc = Loc; 241 if (findMacroSpelling(SpellLoc, "UNREFERENCED_PARAMETER")) 242 return; 243 } 244 245 // Okay, we have an unused result. Depending on what the base expression is, 246 // we might want to make a more specific diagnostic. Check for one of these 247 // cases now. 248 unsigned DiagID = diag::warn_unused_expr; 249 if (const ExprWithCleanups *Temps = dyn_cast<ExprWithCleanups>(E)) 250 E = Temps->getSubExpr(); 251 if (const CXXBindTemporaryExpr *TempExpr = dyn_cast<CXXBindTemporaryExpr>(E)) 252 E = TempExpr->getSubExpr(); 253 254 if (DiagnoseUnusedComparison(*this, E)) 255 return; 256 257 E = WarnExpr; 258 if (const CallExpr *CE = dyn_cast<CallExpr>(E)) { 259 if (E->getType()->isVoidType()) 260 return; 261 262 // If the callee has attribute pure, const, or warn_unused_result, warn with 263 // a more specific message to make it clear what is happening. If the call 264 // is written in a macro body, only warn if it has the warn_unused_result 265 // attribute. 266 if (const Decl *FD = CE->getCalleeDecl()) { 267 if (const Attr *A = isa<FunctionDecl>(FD) 268 ? cast<FunctionDecl>(FD)->getUnusedResultAttr() 269 : FD->getAttr<WarnUnusedResultAttr>()) { 270 Diag(Loc, diag::warn_unused_result) << A << R1 << R2; 271 return; 272 } 273 if (ShouldSuppress) 274 return; 275 if (FD->hasAttr<PureAttr>()) { 276 Diag(Loc, diag::warn_unused_call) << R1 << R2 << "pure"; 277 return; 278 } 279 if (FD->hasAttr<ConstAttr>()) { 280 Diag(Loc, diag::warn_unused_call) << R1 << R2 << "const"; 281 return; 282 } 283 } 284 } else if (ShouldSuppress) 285 return; 286 287 if (const ObjCMessageExpr *ME = dyn_cast<ObjCMessageExpr>(E)) { 288 if (getLangOpts().ObjCAutoRefCount && ME->isDelegateInitCall()) { 289 Diag(Loc, diag::err_arc_unused_init_message) << R1; 290 return; 291 } 292 const ObjCMethodDecl *MD = ME->getMethodDecl(); 293 if (MD) { 294 if (const auto *A = MD->getAttr<WarnUnusedResultAttr>()) { 295 Diag(Loc, diag::warn_unused_result) << A << R1 << R2; 296 return; 297 } 298 } 299 } else if (const PseudoObjectExpr *POE = dyn_cast<PseudoObjectExpr>(E)) { 300 const Expr *Source = POE->getSyntacticForm(); 301 if (isa<ObjCSubscriptRefExpr>(Source)) 302 DiagID = diag::warn_unused_container_subscript_expr; 303 else 304 DiagID = diag::warn_unused_property_expr; 305 } else if (const CXXFunctionalCastExpr *FC 306 = dyn_cast<CXXFunctionalCastExpr>(E)) { 307 const Expr *E = FC->getSubExpr(); 308 if (const CXXBindTemporaryExpr *TE = dyn_cast<CXXBindTemporaryExpr>(E)) 309 E = TE->getSubExpr(); 310 if (isa<CXXTemporaryObjectExpr>(E)) 311 return; 312 if (const CXXConstructExpr *CE = dyn_cast<CXXConstructExpr>(E)) 313 if (const CXXRecordDecl *RD = CE->getType()->getAsCXXRecordDecl()) 314 if (!RD->getAttr<WarnUnusedAttr>()) 315 return; 316 } 317 // Diagnose "(void*) blah" as a typo for "(void) blah". 318 else if (const CStyleCastExpr *CE = dyn_cast<CStyleCastExpr>(E)) { 319 TypeSourceInfo *TI = CE->getTypeInfoAsWritten(); 320 QualType T = TI->getType(); 321 322 // We really do want to use the non-canonical type here. 323 if (T == Context.VoidPtrTy) { 324 PointerTypeLoc TL = TI->getTypeLoc().castAs<PointerTypeLoc>(); 325 326 Diag(Loc, diag::warn_unused_voidptr) 327 << FixItHint::CreateRemoval(TL.getStarLoc()); 328 return; 329 } 330 } 331 332 if (E->isGLValue() && E->getType().isVolatileQualified()) { 333 Diag(Loc, diag::warn_unused_volatile) << R1 << R2; 334 return; 335 } 336 337 DiagRuntimeBehavior(Loc, nullptr, PDiag(DiagID) << R1 << R2); 338 } 339 340 void Sema::ActOnStartOfCompoundStmt(bool IsStmtExpr) { 341 PushCompoundScope(IsStmtExpr); 342 } 343 344 void Sema::ActOnFinishOfCompoundStmt() { 345 PopCompoundScope(); 346 } 347 348 sema::CompoundScopeInfo &Sema::getCurCompoundScope() const { 349 return getCurFunction()->CompoundScopes.back(); 350 } 351 352 StmtResult Sema::ActOnCompoundStmt(SourceLocation L, SourceLocation R, 353 ArrayRef<Stmt *> Elts, bool isStmtExpr) { 354 const unsigned NumElts = Elts.size(); 355 356 // If we're in C89 mode, check that we don't have any decls after stmts. If 357 // so, emit an extension diagnostic. 358 if (!getLangOpts().C99 && !getLangOpts().CPlusPlus) { 359 // Note that __extension__ can be around a decl. 360 unsigned i = 0; 361 // Skip over all declarations. 362 for (; i != NumElts && isa<DeclStmt>(Elts[i]); ++i) 363 /*empty*/; 364 365 // We found the end of the list or a statement. Scan for another declstmt. 366 for (; i != NumElts && !isa<DeclStmt>(Elts[i]); ++i) 367 /*empty*/; 368 369 if (i != NumElts) { 370 Decl *D = *cast<DeclStmt>(Elts[i])->decl_begin(); 371 Diag(D->getLocation(), diag::ext_mixed_decls_code); 372 } 373 } 374 // Warn about unused expressions in statements. 375 for (unsigned i = 0; i != NumElts; ++i) { 376 // Ignore statements that are last in a statement expression. 377 if (isStmtExpr && i == NumElts - 1) 378 continue; 379 380 DiagnoseUnusedExprResult(Elts[i]); 381 } 382 383 // Check for suspicious empty body (null statement) in `for' and `while' 384 // statements. Don't do anything for template instantiations, this just adds 385 // noise. 386 if (NumElts != 0 && !CurrentInstantiationScope && 387 getCurCompoundScope().HasEmptyLoopBodies) { 388 for (unsigned i = 0; i != NumElts - 1; ++i) 389 DiagnoseEmptyLoopBody(Elts[i], Elts[i + 1]); 390 } 391 392 return CompoundStmt::Create(Context, Elts, L, R); 393 } 394 395 ExprResult 396 Sema::ActOnCaseExpr(SourceLocation CaseLoc, ExprResult Val) { 397 if (!Val.get()) 398 return Val; 399 400 if (DiagnoseUnexpandedParameterPack(Val.get())) 401 return ExprError(); 402 403 // If we're not inside a switch, let the 'case' statement handling diagnose 404 // this. Just clean up after the expression as best we can. 405 if (!getCurFunction()->SwitchStack.empty()) { 406 Expr *CondExpr = 407 getCurFunction()->SwitchStack.back().getPointer()->getCond(); 408 if (!CondExpr) 409 return ExprError(); 410 QualType CondType = CondExpr->getType(); 411 412 auto CheckAndFinish = [&](Expr *E) { 413 if (CondType->isDependentType() || E->isTypeDependent()) 414 return ExprResult(E); 415 416 if (getLangOpts().CPlusPlus11) { 417 // C++11 [stmt.switch]p2: the constant-expression shall be a converted 418 // constant expression of the promoted type of the switch condition. 419 llvm::APSInt TempVal; 420 return CheckConvertedConstantExpression(E, CondType, TempVal, 421 CCEK_CaseValue); 422 } 423 424 ExprResult ER = E; 425 if (!E->isValueDependent()) 426 ER = VerifyIntegerConstantExpression(E); 427 if (!ER.isInvalid()) 428 ER = DefaultLvalueConversion(ER.get()); 429 if (!ER.isInvalid()) 430 ER = ImpCastExprToType(ER.get(), CondType, CK_IntegralCast); 431 return ER; 432 }; 433 434 ExprResult Converted = CorrectDelayedTyposInExpr(Val, CheckAndFinish); 435 if (Converted.get() == Val.get()) 436 Converted = CheckAndFinish(Val.get()); 437 if (Converted.isInvalid()) 438 return ExprError(); 439 Val = Converted; 440 } 441 442 return ActOnFinishFullExpr(Val.get(), Val.get()->getExprLoc(), false, 443 getLangOpts().CPlusPlus11); 444 } 445 446 StmtResult 447 Sema::ActOnCaseStmt(SourceLocation CaseLoc, ExprResult LHSVal, 448 SourceLocation DotDotDotLoc, ExprResult RHSVal, 449 SourceLocation ColonLoc) { 450 assert((LHSVal.isInvalid() || LHSVal.get()) && "missing LHS value"); 451 assert((DotDotDotLoc.isInvalid() ? RHSVal.isUnset() 452 : RHSVal.isInvalid() || RHSVal.get()) && 453 "missing RHS value"); 454 455 if (getCurFunction()->SwitchStack.empty()) { 456 Diag(CaseLoc, diag::err_case_not_in_switch); 457 return StmtError(); 458 } 459 460 if (LHSVal.isInvalid() || RHSVal.isInvalid()) { 461 getCurFunction()->SwitchStack.back().setInt(true); 462 return StmtError(); 463 } 464 465 auto *CS = CaseStmt::Create(Context, LHSVal.get(), RHSVal.get(), 466 CaseLoc, DotDotDotLoc, ColonLoc); 467 getCurFunction()->SwitchStack.back().getPointer()->addSwitchCase(CS); 468 return CS; 469 } 470 471 /// ActOnCaseStmtBody - This installs a statement as the body of a case. 472 void Sema::ActOnCaseStmtBody(Stmt *caseStmt, Stmt *SubStmt) { 473 DiagnoseUnusedExprResult(SubStmt); 474 475 auto *CS = static_cast<CaseStmt *>(caseStmt); 476 CS->setSubStmt(SubStmt); 477 } 478 479 StmtResult 480 Sema::ActOnDefaultStmt(SourceLocation DefaultLoc, SourceLocation ColonLoc, 481 Stmt *SubStmt, Scope *CurScope) { 482 DiagnoseUnusedExprResult(SubStmt); 483 484 if (getCurFunction()->SwitchStack.empty()) { 485 Diag(DefaultLoc, diag::err_default_not_in_switch); 486 return SubStmt; 487 } 488 489 DefaultStmt *DS = new (Context) DefaultStmt(DefaultLoc, ColonLoc, SubStmt); 490 getCurFunction()->SwitchStack.back().getPointer()->addSwitchCase(DS); 491 return DS; 492 } 493 494 StmtResult 495 Sema::ActOnLabelStmt(SourceLocation IdentLoc, LabelDecl *TheDecl, 496 SourceLocation ColonLoc, Stmt *SubStmt) { 497 // If the label was multiply defined, reject it now. 498 if (TheDecl->getStmt()) { 499 Diag(IdentLoc, diag::err_redefinition_of_label) << TheDecl->getDeclName(); 500 Diag(TheDecl->getLocation(), diag::note_previous_definition); 501 return SubStmt; 502 } 503 504 // Otherwise, things are good. Fill in the declaration and return it. 505 LabelStmt *LS = new (Context) LabelStmt(IdentLoc, TheDecl, SubStmt); 506 TheDecl->setStmt(LS); 507 if (!TheDecl->isGnuLocal()) { 508 TheDecl->setLocStart(IdentLoc); 509 if (!TheDecl->isMSAsmLabel()) { 510 // Don't update the location of MS ASM labels. These will result in 511 // a diagnostic, and changing the location here will mess that up. 512 TheDecl->setLocation(IdentLoc); 513 } 514 } 515 return LS; 516 } 517 518 StmtResult Sema::ActOnAttributedStmt(SourceLocation AttrLoc, 519 ArrayRef<const Attr*> Attrs, 520 Stmt *SubStmt) { 521 // Fill in the declaration and return it. 522 AttributedStmt *LS = AttributedStmt::Create(Context, AttrLoc, Attrs, SubStmt); 523 return LS; 524 } 525 526 namespace { 527 class CommaVisitor : public EvaluatedExprVisitor<CommaVisitor> { 528 typedef EvaluatedExprVisitor<CommaVisitor> Inherited; 529 Sema &SemaRef; 530 public: 531 CommaVisitor(Sema &SemaRef) : Inherited(SemaRef.Context), SemaRef(SemaRef) {} 532 void VisitBinaryOperator(BinaryOperator *E) { 533 if (E->getOpcode() == BO_Comma) 534 SemaRef.DiagnoseCommaOperator(E->getLHS(), E->getExprLoc()); 535 EvaluatedExprVisitor<CommaVisitor>::VisitBinaryOperator(E); 536 } 537 }; 538 } 539 540 StmtResult 541 Sema::ActOnIfStmt(SourceLocation IfLoc, bool IsConstexpr, Stmt *InitStmt, 542 ConditionResult Cond, 543 Stmt *thenStmt, SourceLocation ElseLoc, 544 Stmt *elseStmt) { 545 if (Cond.isInvalid()) 546 Cond = ConditionResult( 547 *this, nullptr, 548 MakeFullExpr(new (Context) OpaqueValueExpr(SourceLocation(), 549 Context.BoolTy, VK_RValue), 550 IfLoc), 551 false); 552 553 Expr *CondExpr = Cond.get().second; 554 // Only call the CommaVisitor when not C89 due to differences in scope flags. 555 if ((getLangOpts().C99 || getLangOpts().CPlusPlus) && 556 !Diags.isIgnored(diag::warn_comma_operator, CondExpr->getExprLoc())) 557 CommaVisitor(*this).Visit(CondExpr); 558 559 if (!elseStmt) 560 DiagnoseEmptyStmtBody(CondExpr->getEndLoc(), thenStmt, 561 diag::warn_empty_if_body); 562 563 return BuildIfStmt(IfLoc, IsConstexpr, InitStmt, Cond, thenStmt, ElseLoc, 564 elseStmt); 565 } 566 567 StmtResult Sema::BuildIfStmt(SourceLocation IfLoc, bool IsConstexpr, 568 Stmt *InitStmt, ConditionResult Cond, 569 Stmt *thenStmt, SourceLocation ElseLoc, 570 Stmt *elseStmt) { 571 if (Cond.isInvalid()) 572 return StmtError(); 573 574 if (IsConstexpr || isa<ObjCAvailabilityCheckExpr>(Cond.get().second)) 575 setFunctionHasBranchProtectedScope(); 576 577 DiagnoseUnusedExprResult(thenStmt); 578 DiagnoseUnusedExprResult(elseStmt); 579 580 return IfStmt::Create(Context, IfLoc, IsConstexpr, InitStmt, Cond.get().first, 581 Cond.get().second, thenStmt, ElseLoc, elseStmt); 582 } 583 584 namespace { 585 struct CaseCompareFunctor { 586 bool operator()(const std::pair<llvm::APSInt, CaseStmt*> &LHS, 587 const llvm::APSInt &RHS) { 588 return LHS.first < RHS; 589 } 590 bool operator()(const std::pair<llvm::APSInt, CaseStmt*> &LHS, 591 const std::pair<llvm::APSInt, CaseStmt*> &RHS) { 592 return LHS.first < RHS.first; 593 } 594 bool operator()(const llvm::APSInt &LHS, 595 const std::pair<llvm::APSInt, CaseStmt*> &RHS) { 596 return LHS < RHS.first; 597 } 598 }; 599 } 600 601 /// CmpCaseVals - Comparison predicate for sorting case values. 602 /// 603 static bool CmpCaseVals(const std::pair<llvm::APSInt, CaseStmt*>& lhs, 604 const std::pair<llvm::APSInt, CaseStmt*>& rhs) { 605 if (lhs.first < rhs.first) 606 return true; 607 608 if (lhs.first == rhs.first && 609 lhs.second->getCaseLoc().getRawEncoding() 610 < rhs.second->getCaseLoc().getRawEncoding()) 611 return true; 612 return false; 613 } 614 615 /// CmpEnumVals - Comparison predicate for sorting enumeration values. 616 /// 617 static bool CmpEnumVals(const std::pair<llvm::APSInt, EnumConstantDecl*>& lhs, 618 const std::pair<llvm::APSInt, EnumConstantDecl*>& rhs) 619 { 620 return lhs.first < rhs.first; 621 } 622 623 /// EqEnumVals - Comparison preficate for uniqing enumeration values. 624 /// 625 static bool EqEnumVals(const std::pair<llvm::APSInt, EnumConstantDecl*>& lhs, 626 const std::pair<llvm::APSInt, EnumConstantDecl*>& rhs) 627 { 628 return lhs.first == rhs.first; 629 } 630 631 /// GetTypeBeforeIntegralPromotion - Returns the pre-promotion type of 632 /// potentially integral-promoted expression @p expr. 633 static QualType GetTypeBeforeIntegralPromotion(const Expr *&E) { 634 if (const auto *CleanUps = dyn_cast<ExprWithCleanups>(E)) 635 E = CleanUps->getSubExpr(); 636 while (const auto *ImpCast = dyn_cast<ImplicitCastExpr>(E)) { 637 if (ImpCast->getCastKind() != CK_IntegralCast) break; 638 E = ImpCast->getSubExpr(); 639 } 640 return E->getType(); 641 } 642 643 ExprResult Sema::CheckSwitchCondition(SourceLocation SwitchLoc, Expr *Cond) { 644 class SwitchConvertDiagnoser : public ICEConvertDiagnoser { 645 Expr *Cond; 646 647 public: 648 SwitchConvertDiagnoser(Expr *Cond) 649 : ICEConvertDiagnoser(/*AllowScopedEnumerations*/true, false, true), 650 Cond(Cond) {} 651 652 SemaDiagnosticBuilder diagnoseNotInt(Sema &S, SourceLocation Loc, 653 QualType T) override { 654 return S.Diag(Loc, diag::err_typecheck_statement_requires_integer) << T; 655 } 656 657 SemaDiagnosticBuilder diagnoseIncomplete( 658 Sema &S, SourceLocation Loc, QualType T) override { 659 return S.Diag(Loc, diag::err_switch_incomplete_class_type) 660 << T << Cond->getSourceRange(); 661 } 662 663 SemaDiagnosticBuilder diagnoseExplicitConv( 664 Sema &S, SourceLocation Loc, QualType T, QualType ConvTy) override { 665 return S.Diag(Loc, diag::err_switch_explicit_conversion) << T << ConvTy; 666 } 667 668 SemaDiagnosticBuilder noteExplicitConv( 669 Sema &S, CXXConversionDecl *Conv, QualType ConvTy) override { 670 return S.Diag(Conv->getLocation(), diag::note_switch_conversion) 671 << ConvTy->isEnumeralType() << ConvTy; 672 } 673 674 SemaDiagnosticBuilder diagnoseAmbiguous(Sema &S, SourceLocation Loc, 675 QualType T) override { 676 return S.Diag(Loc, diag::err_switch_multiple_conversions) << T; 677 } 678 679 SemaDiagnosticBuilder noteAmbiguous( 680 Sema &S, CXXConversionDecl *Conv, QualType ConvTy) override { 681 return S.Diag(Conv->getLocation(), diag::note_switch_conversion) 682 << ConvTy->isEnumeralType() << ConvTy; 683 } 684 685 SemaDiagnosticBuilder diagnoseConversion( 686 Sema &S, SourceLocation Loc, QualType T, QualType ConvTy) override { 687 llvm_unreachable("conversion functions are permitted"); 688 } 689 } SwitchDiagnoser(Cond); 690 691 ExprResult CondResult = 692 PerformContextualImplicitConversion(SwitchLoc, Cond, SwitchDiagnoser); 693 if (CondResult.isInvalid()) 694 return ExprError(); 695 696 // FIXME: PerformContextualImplicitConversion doesn't always tell us if it 697 // failed and produced a diagnostic. 698 Cond = CondResult.get(); 699 if (!Cond->isTypeDependent() && 700 !Cond->getType()->isIntegralOrEnumerationType()) 701 return ExprError(); 702 703 // C99 6.8.4.2p5 - Integer promotions are performed on the controlling expr. 704 return UsualUnaryConversions(Cond); 705 } 706 707 StmtResult Sema::ActOnStartOfSwitchStmt(SourceLocation SwitchLoc, 708 Stmt *InitStmt, ConditionResult Cond) { 709 Expr *CondExpr = Cond.get().second; 710 assert((Cond.isInvalid() || CondExpr) && "switch with no condition"); 711 712 if (CondExpr && !CondExpr->isTypeDependent()) { 713 // We have already converted the expression to an integral or enumeration 714 // type, when we parsed the switch condition. If we don't have an 715 // appropriate type now, enter the switch scope but remember that it's 716 // invalid. 717 assert(CondExpr->getType()->isIntegralOrEnumerationType() && 718 "invalid condition type"); 719 if (CondExpr->isKnownToHaveBooleanValue()) { 720 // switch(bool_expr) {...} is often a programmer error, e.g. 721 // switch(n && mask) { ... } // Doh - should be "n & mask". 722 // One can always use an if statement instead of switch(bool_expr). 723 Diag(SwitchLoc, diag::warn_bool_switch_condition) 724 << CondExpr->getSourceRange(); 725 } 726 } 727 728 setFunctionHasBranchIntoScope(); 729 730 auto *SS = SwitchStmt::Create(Context, InitStmt, Cond.get().first, CondExpr); 731 getCurFunction()->SwitchStack.push_back( 732 FunctionScopeInfo::SwitchInfo(SS, false)); 733 return SS; 734 } 735 736 static void AdjustAPSInt(llvm::APSInt &Val, unsigned BitWidth, bool IsSigned) { 737 Val = Val.extOrTrunc(BitWidth); 738 Val.setIsSigned(IsSigned); 739 } 740 741 /// Check the specified case value is in range for the given unpromoted switch 742 /// type. 743 static void checkCaseValue(Sema &S, SourceLocation Loc, const llvm::APSInt &Val, 744 unsigned UnpromotedWidth, bool UnpromotedSign) { 745 // In C++11 onwards, this is checked by the language rules. 746 if (S.getLangOpts().CPlusPlus11) 747 return; 748 749 // If the case value was signed and negative and the switch expression is 750 // unsigned, don't bother to warn: this is implementation-defined behavior. 751 // FIXME: Introduce a second, default-ignored warning for this case? 752 if (UnpromotedWidth < Val.getBitWidth()) { 753 llvm::APSInt ConvVal(Val); 754 AdjustAPSInt(ConvVal, UnpromotedWidth, UnpromotedSign); 755 AdjustAPSInt(ConvVal, Val.getBitWidth(), Val.isSigned()); 756 // FIXME: Use different diagnostics for overflow in conversion to promoted 757 // type versus "switch expression cannot have this value". Use proper 758 // IntRange checking rather than just looking at the unpromoted type here. 759 if (ConvVal != Val) 760 S.Diag(Loc, diag::warn_case_value_overflow) << Val.toString(10) 761 << ConvVal.toString(10); 762 } 763 } 764 765 typedef SmallVector<std::pair<llvm::APSInt, EnumConstantDecl*>, 64> EnumValsTy; 766 767 /// Returns true if we should emit a diagnostic about this case expression not 768 /// being a part of the enum used in the switch controlling expression. 769 static bool ShouldDiagnoseSwitchCaseNotInEnum(const Sema &S, 770 const EnumDecl *ED, 771 const Expr *CaseExpr, 772 EnumValsTy::iterator &EI, 773 EnumValsTy::iterator &EIEnd, 774 const llvm::APSInt &Val) { 775 if (!ED->isClosed()) 776 return false; 777 778 if (const DeclRefExpr *DRE = 779 dyn_cast<DeclRefExpr>(CaseExpr->IgnoreParenImpCasts())) { 780 if (const VarDecl *VD = dyn_cast<VarDecl>(DRE->getDecl())) { 781 QualType VarType = VD->getType(); 782 QualType EnumType = S.Context.getTypeDeclType(ED); 783 if (VD->hasGlobalStorage() && VarType.isConstQualified() && 784 S.Context.hasSameUnqualifiedType(EnumType, VarType)) 785 return false; 786 } 787 } 788 789 if (ED->hasAttr<FlagEnumAttr>()) 790 return !S.IsValueInFlagEnum(ED, Val, false); 791 792 while (EI != EIEnd && EI->first < Val) 793 EI++; 794 795 if (EI != EIEnd && EI->first == Val) 796 return false; 797 798 return true; 799 } 800 801 static void checkEnumTypesInSwitchStmt(Sema &S, const Expr *Cond, 802 const Expr *Case) { 803 QualType CondType = Cond->getType(); 804 QualType CaseType = Case->getType(); 805 806 const EnumType *CondEnumType = CondType->getAs<EnumType>(); 807 const EnumType *CaseEnumType = CaseType->getAs<EnumType>(); 808 if (!CondEnumType || !CaseEnumType) 809 return; 810 811 // Ignore anonymous enums. 812 if (!CondEnumType->getDecl()->getIdentifier() && 813 !CondEnumType->getDecl()->getTypedefNameForAnonDecl()) 814 return; 815 if (!CaseEnumType->getDecl()->getIdentifier() && 816 !CaseEnumType->getDecl()->getTypedefNameForAnonDecl()) 817 return; 818 819 if (S.Context.hasSameUnqualifiedType(CondType, CaseType)) 820 return; 821 822 S.Diag(Case->getExprLoc(), diag::warn_comparison_of_mixed_enum_types_switch) 823 << CondType << CaseType << Cond->getSourceRange() 824 << Case->getSourceRange(); 825 } 826 827 StmtResult 828 Sema::ActOnFinishSwitchStmt(SourceLocation SwitchLoc, Stmt *Switch, 829 Stmt *BodyStmt) { 830 SwitchStmt *SS = cast<SwitchStmt>(Switch); 831 bool CaseListIsIncomplete = getCurFunction()->SwitchStack.back().getInt(); 832 assert(SS == getCurFunction()->SwitchStack.back().getPointer() && 833 "switch stack missing push/pop!"); 834 835 getCurFunction()->SwitchStack.pop_back(); 836 837 if (!BodyStmt) return StmtError(); 838 SS->setBody(BodyStmt, SwitchLoc); 839 840 Expr *CondExpr = SS->getCond(); 841 if (!CondExpr) return StmtError(); 842 843 QualType CondType = CondExpr->getType(); 844 845 // C++ 6.4.2.p2: 846 // Integral promotions are performed (on the switch condition). 847 // 848 // A case value unrepresentable by the original switch condition 849 // type (before the promotion) doesn't make sense, even when it can 850 // be represented by the promoted type. Therefore we need to find 851 // the pre-promotion type of the switch condition. 852 const Expr *CondExprBeforePromotion = CondExpr; 853 QualType CondTypeBeforePromotion = 854 GetTypeBeforeIntegralPromotion(CondExprBeforePromotion); 855 856 // Get the bitwidth of the switched-on value after promotions. We must 857 // convert the integer case values to this width before comparison. 858 bool HasDependentValue 859 = CondExpr->isTypeDependent() || CondExpr->isValueDependent(); 860 unsigned CondWidth = HasDependentValue ? 0 : Context.getIntWidth(CondType); 861 bool CondIsSigned = CondType->isSignedIntegerOrEnumerationType(); 862 863 // Get the width and signedness that the condition might actually have, for 864 // warning purposes. 865 // FIXME: Grab an IntRange for the condition rather than using the unpromoted 866 // type. 867 unsigned CondWidthBeforePromotion 868 = HasDependentValue ? 0 : Context.getIntWidth(CondTypeBeforePromotion); 869 bool CondIsSignedBeforePromotion 870 = CondTypeBeforePromotion->isSignedIntegerOrEnumerationType(); 871 872 // Accumulate all of the case values in a vector so that we can sort them 873 // and detect duplicates. This vector contains the APInt for the case after 874 // it has been converted to the condition type. 875 typedef SmallVector<std::pair<llvm::APSInt, CaseStmt*>, 64> CaseValsTy; 876 CaseValsTy CaseVals; 877 878 // Keep track of any GNU case ranges we see. The APSInt is the low value. 879 typedef std::vector<std::pair<llvm::APSInt, CaseStmt*> > CaseRangesTy; 880 CaseRangesTy CaseRanges; 881 882 DefaultStmt *TheDefaultStmt = nullptr; 883 884 bool CaseListIsErroneous = false; 885 886 for (SwitchCase *SC = SS->getSwitchCaseList(); SC && !HasDependentValue; 887 SC = SC->getNextSwitchCase()) { 888 889 if (DefaultStmt *DS = dyn_cast<DefaultStmt>(SC)) { 890 if (TheDefaultStmt) { 891 Diag(DS->getDefaultLoc(), diag::err_multiple_default_labels_defined); 892 Diag(TheDefaultStmt->getDefaultLoc(), diag::note_duplicate_case_prev); 893 894 // FIXME: Remove the default statement from the switch block so that 895 // we'll return a valid AST. This requires recursing down the AST and 896 // finding it, not something we are set up to do right now. For now, 897 // just lop the entire switch stmt out of the AST. 898 CaseListIsErroneous = true; 899 } 900 TheDefaultStmt = DS; 901 902 } else { 903 CaseStmt *CS = cast<CaseStmt>(SC); 904 905 Expr *Lo = CS->getLHS(); 906 907 if (Lo->isValueDependent()) { 908 HasDependentValue = true; 909 break; 910 } 911 912 // We already verified that the expression has a constant value; 913 // get that value (prior to conversions). 914 const Expr *LoBeforePromotion = Lo; 915 GetTypeBeforeIntegralPromotion(LoBeforePromotion); 916 llvm::APSInt LoVal = LoBeforePromotion->EvaluateKnownConstInt(Context); 917 918 // Check the unconverted value is within the range of possible values of 919 // the switch expression. 920 checkCaseValue(*this, Lo->getBeginLoc(), LoVal, CondWidthBeforePromotion, 921 CondIsSignedBeforePromotion); 922 923 // FIXME: This duplicates the check performed for warn_not_in_enum below. 924 checkEnumTypesInSwitchStmt(*this, CondExprBeforePromotion, 925 LoBeforePromotion); 926 927 // Convert the value to the same width/sign as the condition. 928 AdjustAPSInt(LoVal, CondWidth, CondIsSigned); 929 930 // If this is a case range, remember it in CaseRanges, otherwise CaseVals. 931 if (CS->getRHS()) { 932 if (CS->getRHS()->isValueDependent()) { 933 HasDependentValue = true; 934 break; 935 } 936 CaseRanges.push_back(std::make_pair(LoVal, CS)); 937 } else 938 CaseVals.push_back(std::make_pair(LoVal, CS)); 939 } 940 } 941 942 if (!HasDependentValue) { 943 // If we don't have a default statement, check whether the 944 // condition is constant. 945 llvm::APSInt ConstantCondValue; 946 bool HasConstantCond = false; 947 if (!HasDependentValue && !TheDefaultStmt) { 948 HasConstantCond = CondExpr->EvaluateAsInt(ConstantCondValue, Context, 949 Expr::SE_AllowSideEffects); 950 assert(!HasConstantCond || 951 (ConstantCondValue.getBitWidth() == CondWidth && 952 ConstantCondValue.isSigned() == CondIsSigned)); 953 } 954 bool ShouldCheckConstantCond = HasConstantCond; 955 956 // Sort all the scalar case values so we can easily detect duplicates. 957 std::stable_sort(CaseVals.begin(), CaseVals.end(), CmpCaseVals); 958 959 if (!CaseVals.empty()) { 960 for (unsigned i = 0, e = CaseVals.size(); i != e; ++i) { 961 if (ShouldCheckConstantCond && 962 CaseVals[i].first == ConstantCondValue) 963 ShouldCheckConstantCond = false; 964 965 if (i != 0 && CaseVals[i].first == CaseVals[i-1].first) { 966 // If we have a duplicate, report it. 967 // First, determine if either case value has a name 968 StringRef PrevString, CurrString; 969 Expr *PrevCase = CaseVals[i-1].second->getLHS()->IgnoreParenCasts(); 970 Expr *CurrCase = CaseVals[i].second->getLHS()->IgnoreParenCasts(); 971 if (DeclRefExpr *DeclRef = dyn_cast<DeclRefExpr>(PrevCase)) { 972 PrevString = DeclRef->getDecl()->getName(); 973 } 974 if (DeclRefExpr *DeclRef = dyn_cast<DeclRefExpr>(CurrCase)) { 975 CurrString = DeclRef->getDecl()->getName(); 976 } 977 SmallString<16> CaseValStr; 978 CaseVals[i-1].first.toString(CaseValStr); 979 980 if (PrevString == CurrString) 981 Diag(CaseVals[i].second->getLHS()->getBeginLoc(), 982 diag::err_duplicate_case) 983 << (PrevString.empty() ? StringRef(CaseValStr) : PrevString); 984 else 985 Diag(CaseVals[i].second->getLHS()->getBeginLoc(), 986 diag::err_duplicate_case_differing_expr) 987 << (PrevString.empty() ? StringRef(CaseValStr) : PrevString) 988 << (CurrString.empty() ? StringRef(CaseValStr) : CurrString) 989 << CaseValStr; 990 991 Diag(CaseVals[i - 1].second->getLHS()->getBeginLoc(), 992 diag::note_duplicate_case_prev); 993 // FIXME: We really want to remove the bogus case stmt from the 994 // substmt, but we have no way to do this right now. 995 CaseListIsErroneous = true; 996 } 997 } 998 } 999 1000 // Detect duplicate case ranges, which usually don't exist at all in 1001 // the first place. 1002 if (!CaseRanges.empty()) { 1003 // Sort all the case ranges by their low value so we can easily detect 1004 // overlaps between ranges. 1005 std::stable_sort(CaseRanges.begin(), CaseRanges.end()); 1006 1007 // Scan the ranges, computing the high values and removing empty ranges. 1008 std::vector<llvm::APSInt> HiVals; 1009 for (unsigned i = 0, e = CaseRanges.size(); i != e; ++i) { 1010 llvm::APSInt &LoVal = CaseRanges[i].first; 1011 CaseStmt *CR = CaseRanges[i].second; 1012 Expr *Hi = CR->getRHS(); 1013 1014 const Expr *HiBeforePromotion = Hi; 1015 GetTypeBeforeIntegralPromotion(HiBeforePromotion); 1016 llvm::APSInt HiVal = HiBeforePromotion->EvaluateKnownConstInt(Context); 1017 1018 // Check the unconverted value is within the range of possible values of 1019 // the switch expression. 1020 checkCaseValue(*this, Hi->getBeginLoc(), HiVal, 1021 CondWidthBeforePromotion, CondIsSignedBeforePromotion); 1022 1023 // Convert the value to the same width/sign as the condition. 1024 AdjustAPSInt(HiVal, CondWidth, CondIsSigned); 1025 1026 // If the low value is bigger than the high value, the case is empty. 1027 if (LoVal > HiVal) { 1028 Diag(CR->getLHS()->getBeginLoc(), diag::warn_case_empty_range) 1029 << SourceRange(CR->getLHS()->getBeginLoc(), Hi->getEndLoc()); 1030 CaseRanges.erase(CaseRanges.begin()+i); 1031 --i; 1032 --e; 1033 continue; 1034 } 1035 1036 if (ShouldCheckConstantCond && 1037 LoVal <= ConstantCondValue && 1038 ConstantCondValue <= HiVal) 1039 ShouldCheckConstantCond = false; 1040 1041 HiVals.push_back(HiVal); 1042 } 1043 1044 // Rescan the ranges, looking for overlap with singleton values and other 1045 // ranges. Since the range list is sorted, we only need to compare case 1046 // ranges with their neighbors. 1047 for (unsigned i = 0, e = CaseRanges.size(); i != e; ++i) { 1048 llvm::APSInt &CRLo = CaseRanges[i].first; 1049 llvm::APSInt &CRHi = HiVals[i]; 1050 CaseStmt *CR = CaseRanges[i].second; 1051 1052 // Check to see whether the case range overlaps with any 1053 // singleton cases. 1054 CaseStmt *OverlapStmt = nullptr; 1055 llvm::APSInt OverlapVal(32); 1056 1057 // Find the smallest value >= the lower bound. If I is in the 1058 // case range, then we have overlap. 1059 CaseValsTy::iterator I = std::lower_bound(CaseVals.begin(), 1060 CaseVals.end(), CRLo, 1061 CaseCompareFunctor()); 1062 if (I != CaseVals.end() && I->first < CRHi) { 1063 OverlapVal = I->first; // Found overlap with scalar. 1064 OverlapStmt = I->second; 1065 } 1066 1067 // Find the smallest value bigger than the upper bound. 1068 I = std::upper_bound(I, CaseVals.end(), CRHi, CaseCompareFunctor()); 1069 if (I != CaseVals.begin() && (I-1)->first >= CRLo) { 1070 OverlapVal = (I-1)->first; // Found overlap with scalar. 1071 OverlapStmt = (I-1)->second; 1072 } 1073 1074 // Check to see if this case stmt overlaps with the subsequent 1075 // case range. 1076 if (i && CRLo <= HiVals[i-1]) { 1077 OverlapVal = HiVals[i-1]; // Found overlap with range. 1078 OverlapStmt = CaseRanges[i-1].second; 1079 } 1080 1081 if (OverlapStmt) { 1082 // If we have a duplicate, report it. 1083 Diag(CR->getLHS()->getBeginLoc(), diag::err_duplicate_case) 1084 << OverlapVal.toString(10); 1085 Diag(OverlapStmt->getLHS()->getBeginLoc(), 1086 diag::note_duplicate_case_prev); 1087 // FIXME: We really want to remove the bogus case stmt from the 1088 // substmt, but we have no way to do this right now. 1089 CaseListIsErroneous = true; 1090 } 1091 } 1092 } 1093 1094 // Complain if we have a constant condition and we didn't find a match. 1095 if (!CaseListIsErroneous && !CaseListIsIncomplete && 1096 ShouldCheckConstantCond) { 1097 // TODO: it would be nice if we printed enums as enums, chars as 1098 // chars, etc. 1099 Diag(CondExpr->getExprLoc(), diag::warn_missing_case_for_condition) 1100 << ConstantCondValue.toString(10) 1101 << CondExpr->getSourceRange(); 1102 } 1103 1104 // Check to see if switch is over an Enum and handles all of its 1105 // values. We only issue a warning if there is not 'default:', but 1106 // we still do the analysis to preserve this information in the AST 1107 // (which can be used by flow-based analyes). 1108 // 1109 const EnumType *ET = CondTypeBeforePromotion->getAs<EnumType>(); 1110 1111 // If switch has default case, then ignore it. 1112 if (!CaseListIsErroneous && !CaseListIsIncomplete && !HasConstantCond && 1113 ET && ET->getDecl()->isCompleteDefinition()) { 1114 const EnumDecl *ED = ET->getDecl(); 1115 EnumValsTy EnumVals; 1116 1117 // Gather all enum values, set their type and sort them, 1118 // allowing easier comparison with CaseVals. 1119 for (auto *EDI : ED->enumerators()) { 1120 llvm::APSInt Val = EDI->getInitVal(); 1121 AdjustAPSInt(Val, CondWidth, CondIsSigned); 1122 EnumVals.push_back(std::make_pair(Val, EDI)); 1123 } 1124 std::stable_sort(EnumVals.begin(), EnumVals.end(), CmpEnumVals); 1125 auto EI = EnumVals.begin(), EIEnd = 1126 std::unique(EnumVals.begin(), EnumVals.end(), EqEnumVals); 1127 1128 // See which case values aren't in enum. 1129 for (CaseValsTy::const_iterator CI = CaseVals.begin(); 1130 CI != CaseVals.end(); CI++) { 1131 Expr *CaseExpr = CI->second->getLHS(); 1132 if (ShouldDiagnoseSwitchCaseNotInEnum(*this, ED, CaseExpr, EI, EIEnd, 1133 CI->first)) 1134 Diag(CaseExpr->getExprLoc(), diag::warn_not_in_enum) 1135 << CondTypeBeforePromotion; 1136 } 1137 1138 // See which of case ranges aren't in enum 1139 EI = EnumVals.begin(); 1140 for (CaseRangesTy::const_iterator RI = CaseRanges.begin(); 1141 RI != CaseRanges.end(); RI++) { 1142 Expr *CaseExpr = RI->second->getLHS(); 1143 if (ShouldDiagnoseSwitchCaseNotInEnum(*this, ED, CaseExpr, EI, EIEnd, 1144 RI->first)) 1145 Diag(CaseExpr->getExprLoc(), diag::warn_not_in_enum) 1146 << CondTypeBeforePromotion; 1147 1148 llvm::APSInt Hi = 1149 RI->second->getRHS()->EvaluateKnownConstInt(Context); 1150 AdjustAPSInt(Hi, CondWidth, CondIsSigned); 1151 1152 CaseExpr = RI->second->getRHS(); 1153 if (ShouldDiagnoseSwitchCaseNotInEnum(*this, ED, CaseExpr, EI, EIEnd, 1154 Hi)) 1155 Diag(CaseExpr->getExprLoc(), diag::warn_not_in_enum) 1156 << CondTypeBeforePromotion; 1157 } 1158 1159 // Check which enum vals aren't in switch 1160 auto CI = CaseVals.begin(); 1161 auto RI = CaseRanges.begin(); 1162 bool hasCasesNotInSwitch = false; 1163 1164 SmallVector<DeclarationName,8> UnhandledNames; 1165 1166 for (EI = EnumVals.begin(); EI != EIEnd; EI++) { 1167 // Don't warn about omitted unavailable EnumConstantDecls. 1168 switch (EI->second->getAvailability()) { 1169 case AR_Deprecated: 1170 // Omitting a deprecated constant is ok; it should never materialize. 1171 case AR_Unavailable: 1172 continue; 1173 1174 case AR_NotYetIntroduced: 1175 // Partially available enum constants should be present. Note that we 1176 // suppress -Wunguarded-availability diagnostics for such uses. 1177 case AR_Available: 1178 break; 1179 } 1180 1181 // Drop unneeded case values 1182 while (CI != CaseVals.end() && CI->first < EI->first) 1183 CI++; 1184 1185 if (CI != CaseVals.end() && CI->first == EI->first) 1186 continue; 1187 1188 // Drop unneeded case ranges 1189 for (; RI != CaseRanges.end(); RI++) { 1190 llvm::APSInt Hi = 1191 RI->second->getRHS()->EvaluateKnownConstInt(Context); 1192 AdjustAPSInt(Hi, CondWidth, CondIsSigned); 1193 if (EI->first <= Hi) 1194 break; 1195 } 1196 1197 if (RI == CaseRanges.end() || EI->first < RI->first) { 1198 hasCasesNotInSwitch = true; 1199 UnhandledNames.push_back(EI->second->getDeclName()); 1200 } 1201 } 1202 1203 if (TheDefaultStmt && UnhandledNames.empty() && ED->isClosedNonFlag()) 1204 Diag(TheDefaultStmt->getDefaultLoc(), diag::warn_unreachable_default); 1205 1206 // Produce a nice diagnostic if multiple values aren't handled. 1207 if (!UnhandledNames.empty()) { 1208 DiagnosticBuilder DB = Diag(CondExpr->getExprLoc(), 1209 TheDefaultStmt ? diag::warn_def_missing_case 1210 : diag::warn_missing_case) 1211 << (int)UnhandledNames.size(); 1212 1213 for (size_t I = 0, E = std::min(UnhandledNames.size(), (size_t)3); 1214 I != E; ++I) 1215 DB << UnhandledNames[I]; 1216 } 1217 1218 if (!hasCasesNotInSwitch) 1219 SS->setAllEnumCasesCovered(); 1220 } 1221 } 1222 1223 if (BodyStmt) 1224 DiagnoseEmptyStmtBody(CondExpr->getEndLoc(), BodyStmt, 1225 diag::warn_empty_switch_body); 1226 1227 // FIXME: If the case list was broken is some way, we don't have a good system 1228 // to patch it up. Instead, just return the whole substmt as broken. 1229 if (CaseListIsErroneous) 1230 return StmtError(); 1231 1232 return SS; 1233 } 1234 1235 void 1236 Sema::DiagnoseAssignmentEnum(QualType DstType, QualType SrcType, 1237 Expr *SrcExpr) { 1238 if (Diags.isIgnored(diag::warn_not_in_enum_assignment, SrcExpr->getExprLoc())) 1239 return; 1240 1241 if (const EnumType *ET = DstType->getAs<EnumType>()) 1242 if (!Context.hasSameUnqualifiedType(SrcType, DstType) && 1243 SrcType->isIntegerType()) { 1244 if (!SrcExpr->isTypeDependent() && !SrcExpr->isValueDependent() && 1245 SrcExpr->isIntegerConstantExpr(Context)) { 1246 // Get the bitwidth of the enum value before promotions. 1247 unsigned DstWidth = Context.getIntWidth(DstType); 1248 bool DstIsSigned = DstType->isSignedIntegerOrEnumerationType(); 1249 1250 llvm::APSInt RhsVal = SrcExpr->EvaluateKnownConstInt(Context); 1251 AdjustAPSInt(RhsVal, DstWidth, DstIsSigned); 1252 const EnumDecl *ED = ET->getDecl(); 1253 1254 if (!ED->isClosed()) 1255 return; 1256 1257 if (ED->hasAttr<FlagEnumAttr>()) { 1258 if (!IsValueInFlagEnum(ED, RhsVal, true)) 1259 Diag(SrcExpr->getExprLoc(), diag::warn_not_in_enum_assignment) 1260 << DstType.getUnqualifiedType(); 1261 } else { 1262 typedef SmallVector<std::pair<llvm::APSInt, EnumConstantDecl *>, 64> 1263 EnumValsTy; 1264 EnumValsTy EnumVals; 1265 1266 // Gather all enum values, set their type and sort them, 1267 // allowing easier comparison with rhs constant. 1268 for (auto *EDI : ED->enumerators()) { 1269 llvm::APSInt Val = EDI->getInitVal(); 1270 AdjustAPSInt(Val, DstWidth, DstIsSigned); 1271 EnumVals.push_back(std::make_pair(Val, EDI)); 1272 } 1273 if (EnumVals.empty()) 1274 return; 1275 std::stable_sort(EnumVals.begin(), EnumVals.end(), CmpEnumVals); 1276 EnumValsTy::iterator EIend = 1277 std::unique(EnumVals.begin(), EnumVals.end(), EqEnumVals); 1278 1279 // See which values aren't in the enum. 1280 EnumValsTy::const_iterator EI = EnumVals.begin(); 1281 while (EI != EIend && EI->first < RhsVal) 1282 EI++; 1283 if (EI == EIend || EI->first != RhsVal) { 1284 Diag(SrcExpr->getExprLoc(), diag::warn_not_in_enum_assignment) 1285 << DstType.getUnqualifiedType(); 1286 } 1287 } 1288 } 1289 } 1290 } 1291 1292 StmtResult Sema::ActOnWhileStmt(SourceLocation WhileLoc, ConditionResult Cond, 1293 Stmt *Body) { 1294 if (Cond.isInvalid()) 1295 return StmtError(); 1296 1297 auto CondVal = Cond.get(); 1298 CheckBreakContinueBinding(CondVal.second); 1299 1300 if (CondVal.second && 1301 !Diags.isIgnored(diag::warn_comma_operator, CondVal.second->getExprLoc())) 1302 CommaVisitor(*this).Visit(CondVal.second); 1303 1304 DiagnoseUnusedExprResult(Body); 1305 1306 if (isa<NullStmt>(Body)) 1307 getCurCompoundScope().setHasEmptyLoopBodies(); 1308 1309 return WhileStmt::Create(Context, CondVal.first, CondVal.second, Body, 1310 WhileLoc); 1311 } 1312 1313 StmtResult 1314 Sema::ActOnDoStmt(SourceLocation DoLoc, Stmt *Body, 1315 SourceLocation WhileLoc, SourceLocation CondLParen, 1316 Expr *Cond, SourceLocation CondRParen) { 1317 assert(Cond && "ActOnDoStmt(): missing expression"); 1318 1319 CheckBreakContinueBinding(Cond); 1320 ExprResult CondResult = CheckBooleanCondition(DoLoc, Cond); 1321 if (CondResult.isInvalid()) 1322 return StmtError(); 1323 Cond = CondResult.get(); 1324 1325 CondResult = ActOnFinishFullExpr(Cond, DoLoc); 1326 if (CondResult.isInvalid()) 1327 return StmtError(); 1328 Cond = CondResult.get(); 1329 1330 // Only call the CommaVisitor for C89 due to differences in scope flags. 1331 if (Cond && !getLangOpts().C99 && !getLangOpts().CPlusPlus && 1332 !Diags.isIgnored(diag::warn_comma_operator, Cond->getExprLoc())) 1333 CommaVisitor(*this).Visit(Cond); 1334 1335 DiagnoseUnusedExprResult(Body); 1336 1337 return new (Context) DoStmt(Body, Cond, DoLoc, WhileLoc, CondRParen); 1338 } 1339 1340 namespace { 1341 // Use SetVector since the diagnostic cares about the ordering of the Decl's. 1342 using DeclSetVector = 1343 llvm::SetVector<VarDecl *, llvm::SmallVector<VarDecl *, 8>, 1344 llvm::SmallPtrSet<VarDecl *, 8>>; 1345 1346 // This visitor will traverse a conditional statement and store all 1347 // the evaluated decls into a vector. Simple is set to true if none 1348 // of the excluded constructs are used. 1349 class DeclExtractor : public EvaluatedExprVisitor<DeclExtractor> { 1350 DeclSetVector &Decls; 1351 SmallVectorImpl<SourceRange> &Ranges; 1352 bool Simple; 1353 public: 1354 typedef EvaluatedExprVisitor<DeclExtractor> Inherited; 1355 1356 DeclExtractor(Sema &S, DeclSetVector &Decls, 1357 SmallVectorImpl<SourceRange> &Ranges) : 1358 Inherited(S.Context), 1359 Decls(Decls), 1360 Ranges(Ranges), 1361 Simple(true) {} 1362 1363 bool isSimple() { return Simple; } 1364 1365 // Replaces the method in EvaluatedExprVisitor. 1366 void VisitMemberExpr(MemberExpr* E) { 1367 Simple = false; 1368 } 1369 1370 // Any Stmt not whitelisted will cause the condition to be marked complex. 1371 void VisitStmt(Stmt *S) { 1372 Simple = false; 1373 } 1374 1375 void VisitBinaryOperator(BinaryOperator *E) { 1376 Visit(E->getLHS()); 1377 Visit(E->getRHS()); 1378 } 1379 1380 void VisitCastExpr(CastExpr *E) { 1381 Visit(E->getSubExpr()); 1382 } 1383 1384 void VisitUnaryOperator(UnaryOperator *E) { 1385 // Skip checking conditionals with derefernces. 1386 if (E->getOpcode() == UO_Deref) 1387 Simple = false; 1388 else 1389 Visit(E->getSubExpr()); 1390 } 1391 1392 void VisitConditionalOperator(ConditionalOperator *E) { 1393 Visit(E->getCond()); 1394 Visit(E->getTrueExpr()); 1395 Visit(E->getFalseExpr()); 1396 } 1397 1398 void VisitParenExpr(ParenExpr *E) { 1399 Visit(E->getSubExpr()); 1400 } 1401 1402 void VisitBinaryConditionalOperator(BinaryConditionalOperator *E) { 1403 Visit(E->getOpaqueValue()->getSourceExpr()); 1404 Visit(E->getFalseExpr()); 1405 } 1406 1407 void VisitIntegerLiteral(IntegerLiteral *E) { } 1408 void VisitFloatingLiteral(FloatingLiteral *E) { } 1409 void VisitCXXBoolLiteralExpr(CXXBoolLiteralExpr *E) { } 1410 void VisitCharacterLiteral(CharacterLiteral *E) { } 1411 void VisitGNUNullExpr(GNUNullExpr *E) { } 1412 void VisitImaginaryLiteral(ImaginaryLiteral *E) { } 1413 1414 void VisitDeclRefExpr(DeclRefExpr *E) { 1415 VarDecl *VD = dyn_cast<VarDecl>(E->getDecl()); 1416 if (!VD) { 1417 // Don't allow unhandled Decl types. 1418 Simple = false; 1419 return; 1420 } 1421 1422 Ranges.push_back(E->getSourceRange()); 1423 1424 Decls.insert(VD); 1425 } 1426 1427 }; // end class DeclExtractor 1428 1429 // DeclMatcher checks to see if the decls are used in a non-evaluated 1430 // context. 1431 class DeclMatcher : public EvaluatedExprVisitor<DeclMatcher> { 1432 DeclSetVector &Decls; 1433 bool FoundDecl; 1434 1435 public: 1436 typedef EvaluatedExprVisitor<DeclMatcher> Inherited; 1437 1438 DeclMatcher(Sema &S, DeclSetVector &Decls, Stmt *Statement) : 1439 Inherited(S.Context), Decls(Decls), FoundDecl(false) { 1440 if (!Statement) return; 1441 1442 Visit(Statement); 1443 } 1444 1445 void VisitReturnStmt(ReturnStmt *S) { 1446 FoundDecl = true; 1447 } 1448 1449 void VisitBreakStmt(BreakStmt *S) { 1450 FoundDecl = true; 1451 } 1452 1453 void VisitGotoStmt(GotoStmt *S) { 1454 FoundDecl = true; 1455 } 1456 1457 void VisitCastExpr(CastExpr *E) { 1458 if (E->getCastKind() == CK_LValueToRValue) 1459 CheckLValueToRValueCast(E->getSubExpr()); 1460 else 1461 Visit(E->getSubExpr()); 1462 } 1463 1464 void CheckLValueToRValueCast(Expr *E) { 1465 E = E->IgnoreParenImpCasts(); 1466 1467 if (isa<DeclRefExpr>(E)) { 1468 return; 1469 } 1470 1471 if (ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E)) { 1472 Visit(CO->getCond()); 1473 CheckLValueToRValueCast(CO->getTrueExpr()); 1474 CheckLValueToRValueCast(CO->getFalseExpr()); 1475 return; 1476 } 1477 1478 if (BinaryConditionalOperator *BCO = 1479 dyn_cast<BinaryConditionalOperator>(E)) { 1480 CheckLValueToRValueCast(BCO->getOpaqueValue()->getSourceExpr()); 1481 CheckLValueToRValueCast(BCO->getFalseExpr()); 1482 return; 1483 } 1484 1485 Visit(E); 1486 } 1487 1488 void VisitDeclRefExpr(DeclRefExpr *E) { 1489 if (VarDecl *VD = dyn_cast<VarDecl>(E->getDecl())) 1490 if (Decls.count(VD)) 1491 FoundDecl = true; 1492 } 1493 1494 void VisitPseudoObjectExpr(PseudoObjectExpr *POE) { 1495 // Only need to visit the semantics for POE. 1496 // SyntaticForm doesn't really use the Decal. 1497 for (auto *S : POE->semantics()) { 1498 if (auto *OVE = dyn_cast<OpaqueValueExpr>(S)) 1499 // Look past the OVE into the expression it binds. 1500 Visit(OVE->getSourceExpr()); 1501 else 1502 Visit(S); 1503 } 1504 } 1505 1506 bool FoundDeclInUse() { return FoundDecl; } 1507 1508 }; // end class DeclMatcher 1509 1510 void CheckForLoopConditionalStatement(Sema &S, Expr *Second, 1511 Expr *Third, Stmt *Body) { 1512 // Condition is empty 1513 if (!Second) return; 1514 1515 if (S.Diags.isIgnored(diag::warn_variables_not_in_loop_body, 1516 Second->getBeginLoc())) 1517 return; 1518 1519 PartialDiagnostic PDiag = S.PDiag(diag::warn_variables_not_in_loop_body); 1520 DeclSetVector Decls; 1521 SmallVector<SourceRange, 10> Ranges; 1522 DeclExtractor DE(S, Decls, Ranges); 1523 DE.Visit(Second); 1524 1525 // Don't analyze complex conditionals. 1526 if (!DE.isSimple()) return; 1527 1528 // No decls found. 1529 if (Decls.size() == 0) return; 1530 1531 // Don't warn on volatile, static, or global variables. 1532 for (auto *VD : Decls) 1533 if (VD->getType().isVolatileQualified() || VD->hasGlobalStorage()) 1534 return; 1535 1536 if (DeclMatcher(S, Decls, Second).FoundDeclInUse() || 1537 DeclMatcher(S, Decls, Third).FoundDeclInUse() || 1538 DeclMatcher(S, Decls, Body).FoundDeclInUse()) 1539 return; 1540 1541 // Load decl names into diagnostic. 1542 if (Decls.size() > 4) { 1543 PDiag << 0; 1544 } else { 1545 PDiag << (unsigned)Decls.size(); 1546 for (auto *VD : Decls) 1547 PDiag << VD->getDeclName(); 1548 } 1549 1550 for (auto Range : Ranges) 1551 PDiag << Range; 1552 1553 S.Diag(Ranges.begin()->getBegin(), PDiag); 1554 } 1555 1556 // If Statement is an incemement or decrement, return true and sets the 1557 // variables Increment and DRE. 1558 bool ProcessIterationStmt(Sema &S, Stmt* Statement, bool &Increment, 1559 DeclRefExpr *&DRE) { 1560 if (auto Cleanups = dyn_cast<ExprWithCleanups>(Statement)) 1561 if (!Cleanups->cleanupsHaveSideEffects()) 1562 Statement = Cleanups->getSubExpr(); 1563 1564 if (UnaryOperator *UO = dyn_cast<UnaryOperator>(Statement)) { 1565 switch (UO->getOpcode()) { 1566 default: return false; 1567 case UO_PostInc: 1568 case UO_PreInc: 1569 Increment = true; 1570 break; 1571 case UO_PostDec: 1572 case UO_PreDec: 1573 Increment = false; 1574 break; 1575 } 1576 DRE = dyn_cast<DeclRefExpr>(UO->getSubExpr()); 1577 return DRE; 1578 } 1579 1580 if (CXXOperatorCallExpr *Call = dyn_cast<CXXOperatorCallExpr>(Statement)) { 1581 FunctionDecl *FD = Call->getDirectCallee(); 1582 if (!FD || !FD->isOverloadedOperator()) return false; 1583 switch (FD->getOverloadedOperator()) { 1584 default: return false; 1585 case OO_PlusPlus: 1586 Increment = true; 1587 break; 1588 case OO_MinusMinus: 1589 Increment = false; 1590 break; 1591 } 1592 DRE = dyn_cast<DeclRefExpr>(Call->getArg(0)); 1593 return DRE; 1594 } 1595 1596 return false; 1597 } 1598 1599 // A visitor to determine if a continue or break statement is a 1600 // subexpression. 1601 class BreakContinueFinder : public ConstEvaluatedExprVisitor<BreakContinueFinder> { 1602 SourceLocation BreakLoc; 1603 SourceLocation ContinueLoc; 1604 bool InSwitch = false; 1605 1606 public: 1607 BreakContinueFinder(Sema &S, const Stmt* Body) : 1608 Inherited(S.Context) { 1609 Visit(Body); 1610 } 1611 1612 typedef ConstEvaluatedExprVisitor<BreakContinueFinder> Inherited; 1613 1614 void VisitContinueStmt(const ContinueStmt* E) { 1615 ContinueLoc = E->getContinueLoc(); 1616 } 1617 1618 void VisitBreakStmt(const BreakStmt* E) { 1619 if (!InSwitch) 1620 BreakLoc = E->getBreakLoc(); 1621 } 1622 1623 void VisitSwitchStmt(const SwitchStmt* S) { 1624 if (const Stmt *Init = S->getInit()) 1625 Visit(Init); 1626 if (const Stmt *CondVar = S->getConditionVariableDeclStmt()) 1627 Visit(CondVar); 1628 if (const Stmt *Cond = S->getCond()) 1629 Visit(Cond); 1630 1631 // Don't return break statements from the body of a switch. 1632 InSwitch = true; 1633 if (const Stmt *Body = S->getBody()) 1634 Visit(Body); 1635 InSwitch = false; 1636 } 1637 1638 void VisitForStmt(const ForStmt *S) { 1639 // Only visit the init statement of a for loop; the body 1640 // has a different break/continue scope. 1641 if (const Stmt *Init = S->getInit()) 1642 Visit(Init); 1643 } 1644 1645 void VisitWhileStmt(const WhileStmt *) { 1646 // Do nothing; the children of a while loop have a different 1647 // break/continue scope. 1648 } 1649 1650 void VisitDoStmt(const DoStmt *) { 1651 // Do nothing; the children of a while loop have a different 1652 // break/continue scope. 1653 } 1654 1655 void VisitCXXForRangeStmt(const CXXForRangeStmt *S) { 1656 // Only visit the initialization of a for loop; the body 1657 // has a different break/continue scope. 1658 if (const Stmt *Init = S->getInit()) 1659 Visit(Init); 1660 if (const Stmt *Range = S->getRangeStmt()) 1661 Visit(Range); 1662 if (const Stmt *Begin = S->getBeginStmt()) 1663 Visit(Begin); 1664 if (const Stmt *End = S->getEndStmt()) 1665 Visit(End); 1666 } 1667 1668 void VisitObjCForCollectionStmt(const ObjCForCollectionStmt *S) { 1669 // Only visit the initialization of a for loop; the body 1670 // has a different break/continue scope. 1671 if (const Stmt *Element = S->getElement()) 1672 Visit(Element); 1673 if (const Stmt *Collection = S->getCollection()) 1674 Visit(Collection); 1675 } 1676 1677 bool ContinueFound() { return ContinueLoc.isValid(); } 1678 bool BreakFound() { return BreakLoc.isValid(); } 1679 SourceLocation GetContinueLoc() { return ContinueLoc; } 1680 SourceLocation GetBreakLoc() { return BreakLoc; } 1681 1682 }; // end class BreakContinueFinder 1683 1684 // Emit a warning when a loop increment/decrement appears twice per loop 1685 // iteration. The conditions which trigger this warning are: 1686 // 1) The last statement in the loop body and the third expression in the 1687 // for loop are both increment or both decrement of the same variable 1688 // 2) No continue statements in the loop body. 1689 void CheckForRedundantIteration(Sema &S, Expr *Third, Stmt *Body) { 1690 // Return when there is nothing to check. 1691 if (!Body || !Third) return; 1692 1693 if (S.Diags.isIgnored(diag::warn_redundant_loop_iteration, 1694 Third->getBeginLoc())) 1695 return; 1696 1697 // Get the last statement from the loop body. 1698 CompoundStmt *CS = dyn_cast<CompoundStmt>(Body); 1699 if (!CS || CS->body_empty()) return; 1700 Stmt *LastStmt = CS->body_back(); 1701 if (!LastStmt) return; 1702 1703 bool LoopIncrement, LastIncrement; 1704 DeclRefExpr *LoopDRE, *LastDRE; 1705 1706 if (!ProcessIterationStmt(S, Third, LoopIncrement, LoopDRE)) return; 1707 if (!ProcessIterationStmt(S, LastStmt, LastIncrement, LastDRE)) return; 1708 1709 // Check that the two statements are both increments or both decrements 1710 // on the same variable. 1711 if (LoopIncrement != LastIncrement || 1712 LoopDRE->getDecl() != LastDRE->getDecl()) return; 1713 1714 if (BreakContinueFinder(S, Body).ContinueFound()) return; 1715 1716 S.Diag(LastDRE->getLocation(), diag::warn_redundant_loop_iteration) 1717 << LastDRE->getDecl() << LastIncrement; 1718 S.Diag(LoopDRE->getLocation(), diag::note_loop_iteration_here) 1719 << LoopIncrement; 1720 } 1721 1722 } // end namespace 1723 1724 1725 void Sema::CheckBreakContinueBinding(Expr *E) { 1726 if (!E || getLangOpts().CPlusPlus) 1727 return; 1728 BreakContinueFinder BCFinder(*this, E); 1729 Scope *BreakParent = CurScope->getBreakParent(); 1730 if (BCFinder.BreakFound() && BreakParent) { 1731 if (BreakParent->getFlags() & Scope::SwitchScope) { 1732 Diag(BCFinder.GetBreakLoc(), diag::warn_break_binds_to_switch); 1733 } else { 1734 Diag(BCFinder.GetBreakLoc(), diag::warn_loop_ctrl_binds_to_inner) 1735 << "break"; 1736 } 1737 } else if (BCFinder.ContinueFound() && CurScope->getContinueParent()) { 1738 Diag(BCFinder.GetContinueLoc(), diag::warn_loop_ctrl_binds_to_inner) 1739 << "continue"; 1740 } 1741 } 1742 1743 StmtResult Sema::ActOnForStmt(SourceLocation ForLoc, SourceLocation LParenLoc, 1744 Stmt *First, ConditionResult Second, 1745 FullExprArg third, SourceLocation RParenLoc, 1746 Stmt *Body) { 1747 if (Second.isInvalid()) 1748 return StmtError(); 1749 1750 if (!getLangOpts().CPlusPlus) { 1751 if (DeclStmt *DS = dyn_cast_or_null<DeclStmt>(First)) { 1752 // C99 6.8.5p3: The declaration part of a 'for' statement shall only 1753 // declare identifiers for objects having storage class 'auto' or 1754 // 'register'. 1755 for (auto *DI : DS->decls()) { 1756 VarDecl *VD = dyn_cast<VarDecl>(DI); 1757 if (VD && VD->isLocalVarDecl() && !VD->hasLocalStorage()) 1758 VD = nullptr; 1759 if (!VD) { 1760 Diag(DI->getLocation(), diag::err_non_local_variable_decl_in_for); 1761 DI->setInvalidDecl(); 1762 } 1763 } 1764 } 1765 } 1766 1767 CheckBreakContinueBinding(Second.get().second); 1768 CheckBreakContinueBinding(third.get()); 1769 1770 if (!Second.get().first) 1771 CheckForLoopConditionalStatement(*this, Second.get().second, third.get(), 1772 Body); 1773 CheckForRedundantIteration(*this, third.get(), Body); 1774 1775 if (Second.get().second && 1776 !Diags.isIgnored(diag::warn_comma_operator, 1777 Second.get().second->getExprLoc())) 1778 CommaVisitor(*this).Visit(Second.get().second); 1779 1780 Expr *Third = third.release().getAs<Expr>(); 1781 1782 DiagnoseUnusedExprResult(First); 1783 DiagnoseUnusedExprResult(Third); 1784 DiagnoseUnusedExprResult(Body); 1785 1786 if (isa<NullStmt>(Body)) 1787 getCurCompoundScope().setHasEmptyLoopBodies(); 1788 1789 return new (Context) 1790 ForStmt(Context, First, Second.get().second, Second.get().first, Third, 1791 Body, ForLoc, LParenLoc, RParenLoc); 1792 } 1793 1794 /// In an Objective C collection iteration statement: 1795 /// for (x in y) 1796 /// x can be an arbitrary l-value expression. Bind it up as a 1797 /// full-expression. 1798 StmtResult Sema::ActOnForEachLValueExpr(Expr *E) { 1799 // Reduce placeholder expressions here. Note that this rejects the 1800 // use of pseudo-object l-values in this position. 1801 ExprResult result = CheckPlaceholderExpr(E); 1802 if (result.isInvalid()) return StmtError(); 1803 E = result.get(); 1804 1805 ExprResult FullExpr = ActOnFinishFullExpr(E); 1806 if (FullExpr.isInvalid()) 1807 return StmtError(); 1808 return StmtResult(static_cast<Stmt*>(FullExpr.get())); 1809 } 1810 1811 ExprResult 1812 Sema::CheckObjCForCollectionOperand(SourceLocation forLoc, Expr *collection) { 1813 if (!collection) 1814 return ExprError(); 1815 1816 ExprResult result = CorrectDelayedTyposInExpr(collection); 1817 if (!result.isUsable()) 1818 return ExprError(); 1819 collection = result.get(); 1820 1821 // Bail out early if we've got a type-dependent expression. 1822 if (collection->isTypeDependent()) return collection; 1823 1824 // Perform normal l-value conversion. 1825 result = DefaultFunctionArrayLvalueConversion(collection); 1826 if (result.isInvalid()) 1827 return ExprError(); 1828 collection = result.get(); 1829 1830 // The operand needs to have object-pointer type. 1831 // TODO: should we do a contextual conversion? 1832 const ObjCObjectPointerType *pointerType = 1833 collection->getType()->getAs<ObjCObjectPointerType>(); 1834 if (!pointerType) 1835 return Diag(forLoc, diag::err_collection_expr_type) 1836 << collection->getType() << collection->getSourceRange(); 1837 1838 // Check that the operand provides 1839 // - countByEnumeratingWithState:objects:count: 1840 const ObjCObjectType *objectType = pointerType->getObjectType(); 1841 ObjCInterfaceDecl *iface = objectType->getInterface(); 1842 1843 // If we have a forward-declared type, we can't do this check. 1844 // Under ARC, it is an error not to have a forward-declared class. 1845 if (iface && 1846 (getLangOpts().ObjCAutoRefCount 1847 ? RequireCompleteType(forLoc, QualType(objectType, 0), 1848 diag::err_arc_collection_forward, collection) 1849 : !isCompleteType(forLoc, QualType(objectType, 0)))) { 1850 // Otherwise, if we have any useful type information, check that 1851 // the type declares the appropriate method. 1852 } else if (iface || !objectType->qual_empty()) { 1853 IdentifierInfo *selectorIdents[] = { 1854 &Context.Idents.get("countByEnumeratingWithState"), 1855 &Context.Idents.get("objects"), 1856 &Context.Idents.get("count") 1857 }; 1858 Selector selector = Context.Selectors.getSelector(3, &selectorIdents[0]); 1859 1860 ObjCMethodDecl *method = nullptr; 1861 1862 // If there's an interface, look in both the public and private APIs. 1863 if (iface) { 1864 method = iface->lookupInstanceMethod(selector); 1865 if (!method) method = iface->lookupPrivateMethod(selector); 1866 } 1867 1868 // Also check protocol qualifiers. 1869 if (!method) 1870 method = LookupMethodInQualifiedType(selector, pointerType, 1871 /*instance*/ true); 1872 1873 // If we didn't find it anywhere, give up. 1874 if (!method) { 1875 Diag(forLoc, diag::warn_collection_expr_type) 1876 << collection->getType() << selector << collection->getSourceRange(); 1877 } 1878 1879 // TODO: check for an incompatible signature? 1880 } 1881 1882 // Wrap up any cleanups in the expression. 1883 return collection; 1884 } 1885 1886 StmtResult 1887 Sema::ActOnObjCForCollectionStmt(SourceLocation ForLoc, 1888 Stmt *First, Expr *collection, 1889 SourceLocation RParenLoc) { 1890 setFunctionHasBranchProtectedScope(); 1891 1892 ExprResult CollectionExprResult = 1893 CheckObjCForCollectionOperand(ForLoc, collection); 1894 1895 if (First) { 1896 QualType FirstType; 1897 if (DeclStmt *DS = dyn_cast<DeclStmt>(First)) { 1898 if (!DS->isSingleDecl()) 1899 return StmtError(Diag((*DS->decl_begin())->getLocation(), 1900 diag::err_toomany_element_decls)); 1901 1902 VarDecl *D = dyn_cast<VarDecl>(DS->getSingleDecl()); 1903 if (!D || D->isInvalidDecl()) 1904 return StmtError(); 1905 1906 FirstType = D->getType(); 1907 // C99 6.8.5p3: The declaration part of a 'for' statement shall only 1908 // declare identifiers for objects having storage class 'auto' or 1909 // 'register'. 1910 if (!D->hasLocalStorage()) 1911 return StmtError(Diag(D->getLocation(), 1912 diag::err_non_local_variable_decl_in_for)); 1913 1914 // If the type contained 'auto', deduce the 'auto' to 'id'. 1915 if (FirstType->getContainedAutoType()) { 1916 OpaqueValueExpr OpaqueId(D->getLocation(), Context.getObjCIdType(), 1917 VK_RValue); 1918 Expr *DeducedInit = &OpaqueId; 1919 if (DeduceAutoType(D->getTypeSourceInfo(), DeducedInit, FirstType) == 1920 DAR_Failed) 1921 DiagnoseAutoDeductionFailure(D, DeducedInit); 1922 if (FirstType.isNull()) { 1923 D->setInvalidDecl(); 1924 return StmtError(); 1925 } 1926 1927 D->setType(FirstType); 1928 1929 if (!inTemplateInstantiation()) { 1930 SourceLocation Loc = 1931 D->getTypeSourceInfo()->getTypeLoc().getBeginLoc(); 1932 Diag(Loc, diag::warn_auto_var_is_id) 1933 << D->getDeclName(); 1934 } 1935 } 1936 1937 } else { 1938 Expr *FirstE = cast<Expr>(First); 1939 if (!FirstE->isTypeDependent() && !FirstE->isLValue()) 1940 return StmtError( 1941 Diag(First->getBeginLoc(), diag::err_selector_element_not_lvalue) 1942 << First->getSourceRange()); 1943 1944 FirstType = static_cast<Expr*>(First)->getType(); 1945 if (FirstType.isConstQualified()) 1946 Diag(ForLoc, diag::err_selector_element_const_type) 1947 << FirstType << First->getSourceRange(); 1948 } 1949 if (!FirstType->isDependentType() && 1950 !FirstType->isObjCObjectPointerType() && 1951 !FirstType->isBlockPointerType()) 1952 return StmtError(Diag(ForLoc, diag::err_selector_element_type) 1953 << FirstType << First->getSourceRange()); 1954 } 1955 1956 if (CollectionExprResult.isInvalid()) 1957 return StmtError(); 1958 1959 CollectionExprResult = ActOnFinishFullExpr(CollectionExprResult.get()); 1960 if (CollectionExprResult.isInvalid()) 1961 return StmtError(); 1962 1963 return new (Context) ObjCForCollectionStmt(First, CollectionExprResult.get(), 1964 nullptr, ForLoc, RParenLoc); 1965 } 1966 1967 /// Finish building a variable declaration for a for-range statement. 1968 /// \return true if an error occurs. 1969 static bool FinishForRangeVarDecl(Sema &SemaRef, VarDecl *Decl, Expr *Init, 1970 SourceLocation Loc, int DiagID) { 1971 if (Decl->getType()->isUndeducedType()) { 1972 ExprResult Res = SemaRef.CorrectDelayedTyposInExpr(Init); 1973 if (!Res.isUsable()) { 1974 Decl->setInvalidDecl(); 1975 return true; 1976 } 1977 Init = Res.get(); 1978 } 1979 1980 // Deduce the type for the iterator variable now rather than leaving it to 1981 // AddInitializerToDecl, so we can produce a more suitable diagnostic. 1982 QualType InitType; 1983 if ((!isa<InitListExpr>(Init) && Init->getType()->isVoidType()) || 1984 SemaRef.DeduceAutoType(Decl->getTypeSourceInfo(), Init, InitType) == 1985 Sema::DAR_Failed) 1986 SemaRef.Diag(Loc, DiagID) << Init->getType(); 1987 if (InitType.isNull()) { 1988 Decl->setInvalidDecl(); 1989 return true; 1990 } 1991 Decl->setType(InitType); 1992 1993 // In ARC, infer lifetime. 1994 // FIXME: ARC may want to turn this into 'const __unsafe_unretained' if 1995 // we're doing the equivalent of fast iteration. 1996 if (SemaRef.getLangOpts().ObjCAutoRefCount && 1997 SemaRef.inferObjCARCLifetime(Decl)) 1998 Decl->setInvalidDecl(); 1999 2000 SemaRef.AddInitializerToDecl(Decl, Init, /*DirectInit=*/false); 2001 SemaRef.FinalizeDeclaration(Decl); 2002 SemaRef.CurContext->addHiddenDecl(Decl); 2003 return false; 2004 } 2005 2006 namespace { 2007 // An enum to represent whether something is dealing with a call to begin() 2008 // or a call to end() in a range-based for loop. 2009 enum BeginEndFunction { 2010 BEF_begin, 2011 BEF_end 2012 }; 2013 2014 /// Produce a note indicating which begin/end function was implicitly called 2015 /// by a C++11 for-range statement. This is often not obvious from the code, 2016 /// nor from the diagnostics produced when analysing the implicit expressions 2017 /// required in a for-range statement. 2018 void NoteForRangeBeginEndFunction(Sema &SemaRef, Expr *E, 2019 BeginEndFunction BEF) { 2020 CallExpr *CE = dyn_cast<CallExpr>(E); 2021 if (!CE) 2022 return; 2023 FunctionDecl *D = dyn_cast<FunctionDecl>(CE->getCalleeDecl()); 2024 if (!D) 2025 return; 2026 SourceLocation Loc = D->getLocation(); 2027 2028 std::string Description; 2029 bool IsTemplate = false; 2030 if (FunctionTemplateDecl *FunTmpl = D->getPrimaryTemplate()) { 2031 Description = SemaRef.getTemplateArgumentBindingsText( 2032 FunTmpl->getTemplateParameters(), *D->getTemplateSpecializationArgs()); 2033 IsTemplate = true; 2034 } 2035 2036 SemaRef.Diag(Loc, diag::note_for_range_begin_end) 2037 << BEF << IsTemplate << Description << E->getType(); 2038 } 2039 2040 /// Build a variable declaration for a for-range statement. 2041 VarDecl *BuildForRangeVarDecl(Sema &SemaRef, SourceLocation Loc, 2042 QualType Type, StringRef Name) { 2043 DeclContext *DC = SemaRef.CurContext; 2044 IdentifierInfo *II = &SemaRef.PP.getIdentifierTable().get(Name); 2045 TypeSourceInfo *TInfo = SemaRef.Context.getTrivialTypeSourceInfo(Type, Loc); 2046 VarDecl *Decl = VarDecl::Create(SemaRef.Context, DC, Loc, Loc, II, Type, 2047 TInfo, SC_None); 2048 Decl->setImplicit(); 2049 return Decl; 2050 } 2051 2052 } 2053 2054 static bool ObjCEnumerationCollection(Expr *Collection) { 2055 return !Collection->isTypeDependent() 2056 && Collection->getType()->getAs<ObjCObjectPointerType>() != nullptr; 2057 } 2058 2059 /// ActOnCXXForRangeStmt - Check and build a C++11 for-range statement. 2060 /// 2061 /// C++11 [stmt.ranged]: 2062 /// A range-based for statement is equivalent to 2063 /// 2064 /// { 2065 /// auto && __range = range-init; 2066 /// for ( auto __begin = begin-expr, 2067 /// __end = end-expr; 2068 /// __begin != __end; 2069 /// ++__begin ) { 2070 /// for-range-declaration = *__begin; 2071 /// statement 2072 /// } 2073 /// } 2074 /// 2075 /// The body of the loop is not available yet, since it cannot be analysed until 2076 /// we have determined the type of the for-range-declaration. 2077 StmtResult Sema::ActOnCXXForRangeStmt(Scope *S, SourceLocation ForLoc, 2078 SourceLocation CoawaitLoc, Stmt *InitStmt, 2079 Stmt *First, SourceLocation ColonLoc, 2080 Expr *Range, SourceLocation RParenLoc, 2081 BuildForRangeKind Kind) { 2082 if (!First) 2083 return StmtError(); 2084 2085 if (Range && ObjCEnumerationCollection(Range)) { 2086 // FIXME: Support init-statements in Objective-C++20 ranged for statement. 2087 if (InitStmt) 2088 return Diag(InitStmt->getBeginLoc(), diag::err_objc_for_range_init_stmt) 2089 << InitStmt->getSourceRange(); 2090 return ActOnObjCForCollectionStmt(ForLoc, First, Range, RParenLoc); 2091 } 2092 2093 DeclStmt *DS = dyn_cast<DeclStmt>(First); 2094 assert(DS && "first part of for range not a decl stmt"); 2095 2096 if (!DS->isSingleDecl()) { 2097 Diag(DS->getBeginLoc(), diag::err_type_defined_in_for_range); 2098 return StmtError(); 2099 } 2100 2101 Decl *LoopVar = DS->getSingleDecl(); 2102 if (LoopVar->isInvalidDecl() || !Range || 2103 DiagnoseUnexpandedParameterPack(Range, UPPC_Expression)) { 2104 LoopVar->setInvalidDecl(); 2105 return StmtError(); 2106 } 2107 2108 // Build the coroutine state immediately and not later during template 2109 // instantiation 2110 if (!CoawaitLoc.isInvalid()) { 2111 if (!ActOnCoroutineBodyStart(S, CoawaitLoc, "co_await")) 2112 return StmtError(); 2113 } 2114 2115 // Build auto && __range = range-init 2116 // Divide by 2, since the variables are in the inner scope (loop body). 2117 const auto DepthStr = std::to_string(S->getDepth() / 2); 2118 SourceLocation RangeLoc = Range->getBeginLoc(); 2119 VarDecl *RangeVar = BuildForRangeVarDecl(*this, RangeLoc, 2120 Context.getAutoRRefDeductType(), 2121 std::string("__range") + DepthStr); 2122 if (FinishForRangeVarDecl(*this, RangeVar, Range, RangeLoc, 2123 diag::err_for_range_deduction_failure)) { 2124 LoopVar->setInvalidDecl(); 2125 return StmtError(); 2126 } 2127 2128 // Claim the type doesn't contain auto: we've already done the checking. 2129 DeclGroupPtrTy RangeGroup = 2130 BuildDeclaratorGroup(MutableArrayRef<Decl *>((Decl **)&RangeVar, 1)); 2131 StmtResult RangeDecl = ActOnDeclStmt(RangeGroup, RangeLoc, RangeLoc); 2132 if (RangeDecl.isInvalid()) { 2133 LoopVar->setInvalidDecl(); 2134 return StmtError(); 2135 } 2136 2137 return BuildCXXForRangeStmt( 2138 ForLoc, CoawaitLoc, InitStmt, ColonLoc, RangeDecl.get(), 2139 /*BeginStmt=*/nullptr, /*EndStmt=*/nullptr, 2140 /*Cond=*/nullptr, /*Inc=*/nullptr, DS, RParenLoc, Kind); 2141 } 2142 2143 /// Create the initialization, compare, and increment steps for 2144 /// the range-based for loop expression. 2145 /// This function does not handle array-based for loops, 2146 /// which are created in Sema::BuildCXXForRangeStmt. 2147 /// 2148 /// \returns a ForRangeStatus indicating success or what kind of error occurred. 2149 /// BeginExpr and EndExpr are set and FRS_Success is returned on success; 2150 /// CandidateSet and BEF are set and some non-success value is returned on 2151 /// failure. 2152 static Sema::ForRangeStatus 2153 BuildNonArrayForRange(Sema &SemaRef, Expr *BeginRange, Expr *EndRange, 2154 QualType RangeType, VarDecl *BeginVar, VarDecl *EndVar, 2155 SourceLocation ColonLoc, SourceLocation CoawaitLoc, 2156 OverloadCandidateSet *CandidateSet, ExprResult *BeginExpr, 2157 ExprResult *EndExpr, BeginEndFunction *BEF) { 2158 DeclarationNameInfo BeginNameInfo( 2159 &SemaRef.PP.getIdentifierTable().get("begin"), ColonLoc); 2160 DeclarationNameInfo EndNameInfo(&SemaRef.PP.getIdentifierTable().get("end"), 2161 ColonLoc); 2162 2163 LookupResult BeginMemberLookup(SemaRef, BeginNameInfo, 2164 Sema::LookupMemberName); 2165 LookupResult EndMemberLookup(SemaRef, EndNameInfo, Sema::LookupMemberName); 2166 2167 auto BuildBegin = [&] { 2168 *BEF = BEF_begin; 2169 Sema::ForRangeStatus RangeStatus = 2170 SemaRef.BuildForRangeBeginEndCall(ColonLoc, ColonLoc, BeginNameInfo, 2171 BeginMemberLookup, CandidateSet, 2172 BeginRange, BeginExpr); 2173 2174 if (RangeStatus != Sema::FRS_Success) { 2175 if (RangeStatus == Sema::FRS_DiagnosticIssued) 2176 SemaRef.Diag(BeginRange->getBeginLoc(), diag::note_in_for_range) 2177 << ColonLoc << BEF_begin << BeginRange->getType(); 2178 return RangeStatus; 2179 } 2180 if (!CoawaitLoc.isInvalid()) { 2181 // FIXME: getCurScope() should not be used during template instantiation. 2182 // We should pick up the set of unqualified lookup results for operator 2183 // co_await during the initial parse. 2184 *BeginExpr = SemaRef.ActOnCoawaitExpr(SemaRef.getCurScope(), ColonLoc, 2185 BeginExpr->get()); 2186 if (BeginExpr->isInvalid()) 2187 return Sema::FRS_DiagnosticIssued; 2188 } 2189 if (FinishForRangeVarDecl(SemaRef, BeginVar, BeginExpr->get(), ColonLoc, 2190 diag::err_for_range_iter_deduction_failure)) { 2191 NoteForRangeBeginEndFunction(SemaRef, BeginExpr->get(), *BEF); 2192 return Sema::FRS_DiagnosticIssued; 2193 } 2194 return Sema::FRS_Success; 2195 }; 2196 2197 auto BuildEnd = [&] { 2198 *BEF = BEF_end; 2199 Sema::ForRangeStatus RangeStatus = 2200 SemaRef.BuildForRangeBeginEndCall(ColonLoc, ColonLoc, EndNameInfo, 2201 EndMemberLookup, CandidateSet, 2202 EndRange, EndExpr); 2203 if (RangeStatus != Sema::FRS_Success) { 2204 if (RangeStatus == Sema::FRS_DiagnosticIssued) 2205 SemaRef.Diag(EndRange->getBeginLoc(), diag::note_in_for_range) 2206 << ColonLoc << BEF_end << EndRange->getType(); 2207 return RangeStatus; 2208 } 2209 if (FinishForRangeVarDecl(SemaRef, EndVar, EndExpr->get(), ColonLoc, 2210 diag::err_for_range_iter_deduction_failure)) { 2211 NoteForRangeBeginEndFunction(SemaRef, EndExpr->get(), *BEF); 2212 return Sema::FRS_DiagnosticIssued; 2213 } 2214 return Sema::FRS_Success; 2215 }; 2216 2217 if (CXXRecordDecl *D = RangeType->getAsCXXRecordDecl()) { 2218 // - if _RangeT is a class type, the unqualified-ids begin and end are 2219 // looked up in the scope of class _RangeT as if by class member access 2220 // lookup (3.4.5), and if either (or both) finds at least one 2221 // declaration, begin-expr and end-expr are __range.begin() and 2222 // __range.end(), respectively; 2223 SemaRef.LookupQualifiedName(BeginMemberLookup, D); 2224 if (BeginMemberLookup.isAmbiguous()) 2225 return Sema::FRS_DiagnosticIssued; 2226 2227 SemaRef.LookupQualifiedName(EndMemberLookup, D); 2228 if (EndMemberLookup.isAmbiguous()) 2229 return Sema::FRS_DiagnosticIssued; 2230 2231 if (BeginMemberLookup.empty() != EndMemberLookup.empty()) { 2232 // Look up the non-member form of the member we didn't find, first. 2233 // This way we prefer a "no viable 'end'" diagnostic over a "i found 2234 // a 'begin' but ignored it because there was no member 'end'" 2235 // diagnostic. 2236 auto BuildNonmember = [&]( 2237 BeginEndFunction BEFFound, LookupResult &Found, 2238 llvm::function_ref<Sema::ForRangeStatus()> BuildFound, 2239 llvm::function_ref<Sema::ForRangeStatus()> BuildNotFound) { 2240 LookupResult OldFound = std::move(Found); 2241 Found.clear(); 2242 2243 if (Sema::ForRangeStatus Result = BuildNotFound()) 2244 return Result; 2245 2246 switch (BuildFound()) { 2247 case Sema::FRS_Success: 2248 return Sema::FRS_Success; 2249 2250 case Sema::FRS_NoViableFunction: 2251 SemaRef.Diag(BeginRange->getBeginLoc(), diag::err_for_range_invalid) 2252 << BeginRange->getType() << BEFFound; 2253 CandidateSet->NoteCandidates(SemaRef, OCD_AllCandidates, BeginRange); 2254 LLVM_FALLTHROUGH; 2255 2256 case Sema::FRS_DiagnosticIssued: 2257 for (NamedDecl *D : OldFound) { 2258 SemaRef.Diag(D->getLocation(), 2259 diag::note_for_range_member_begin_end_ignored) 2260 << BeginRange->getType() << BEFFound; 2261 } 2262 return Sema::FRS_DiagnosticIssued; 2263 } 2264 llvm_unreachable("unexpected ForRangeStatus"); 2265 }; 2266 if (BeginMemberLookup.empty()) 2267 return BuildNonmember(BEF_end, EndMemberLookup, BuildEnd, BuildBegin); 2268 return BuildNonmember(BEF_begin, BeginMemberLookup, BuildBegin, BuildEnd); 2269 } 2270 } else { 2271 // - otherwise, begin-expr and end-expr are begin(__range) and 2272 // end(__range), respectively, where begin and end are looked up with 2273 // argument-dependent lookup (3.4.2). For the purposes of this name 2274 // lookup, namespace std is an associated namespace. 2275 } 2276 2277 if (Sema::ForRangeStatus Result = BuildBegin()) 2278 return Result; 2279 return BuildEnd(); 2280 } 2281 2282 /// Speculatively attempt to dereference an invalid range expression. 2283 /// If the attempt fails, this function will return a valid, null StmtResult 2284 /// and emit no diagnostics. 2285 static StmtResult RebuildForRangeWithDereference(Sema &SemaRef, Scope *S, 2286 SourceLocation ForLoc, 2287 SourceLocation CoawaitLoc, 2288 Stmt *InitStmt, 2289 Stmt *LoopVarDecl, 2290 SourceLocation ColonLoc, 2291 Expr *Range, 2292 SourceLocation RangeLoc, 2293 SourceLocation RParenLoc) { 2294 // Determine whether we can rebuild the for-range statement with a 2295 // dereferenced range expression. 2296 ExprResult AdjustedRange; 2297 { 2298 Sema::SFINAETrap Trap(SemaRef); 2299 2300 AdjustedRange = SemaRef.BuildUnaryOp(S, RangeLoc, UO_Deref, Range); 2301 if (AdjustedRange.isInvalid()) 2302 return StmtResult(); 2303 2304 StmtResult SR = SemaRef.ActOnCXXForRangeStmt( 2305 S, ForLoc, CoawaitLoc, InitStmt, LoopVarDecl, ColonLoc, 2306 AdjustedRange.get(), RParenLoc, Sema::BFRK_Check); 2307 if (SR.isInvalid()) 2308 return StmtResult(); 2309 } 2310 2311 // The attempt to dereference worked well enough that it could produce a valid 2312 // loop. Produce a fixit, and rebuild the loop with diagnostics enabled, in 2313 // case there are any other (non-fatal) problems with it. 2314 SemaRef.Diag(RangeLoc, diag::err_for_range_dereference) 2315 << Range->getType() << FixItHint::CreateInsertion(RangeLoc, "*"); 2316 return SemaRef.ActOnCXXForRangeStmt( 2317 S, ForLoc, CoawaitLoc, InitStmt, LoopVarDecl, ColonLoc, 2318 AdjustedRange.get(), RParenLoc, Sema::BFRK_Rebuild); 2319 } 2320 2321 namespace { 2322 /// RAII object to automatically invalidate a declaration if an error occurs. 2323 struct InvalidateOnErrorScope { 2324 InvalidateOnErrorScope(Sema &SemaRef, Decl *D, bool Enabled) 2325 : Trap(SemaRef.Diags), D(D), Enabled(Enabled) {} 2326 ~InvalidateOnErrorScope() { 2327 if (Enabled && Trap.hasErrorOccurred()) 2328 D->setInvalidDecl(); 2329 } 2330 2331 DiagnosticErrorTrap Trap; 2332 Decl *D; 2333 bool Enabled; 2334 }; 2335 } 2336 2337 /// BuildCXXForRangeStmt - Build or instantiate a C++11 for-range statement. 2338 StmtResult Sema::BuildCXXForRangeStmt(SourceLocation ForLoc, 2339 SourceLocation CoawaitLoc, Stmt *InitStmt, 2340 SourceLocation ColonLoc, Stmt *RangeDecl, 2341 Stmt *Begin, Stmt *End, Expr *Cond, 2342 Expr *Inc, Stmt *LoopVarDecl, 2343 SourceLocation RParenLoc, 2344 BuildForRangeKind Kind) { 2345 // FIXME: This should not be used during template instantiation. We should 2346 // pick up the set of unqualified lookup results for the != and + operators 2347 // in the initial parse. 2348 // 2349 // Testcase (accepts-invalid): 2350 // template<typename T> void f() { for (auto x : T()) {} } 2351 // namespace N { struct X { X begin(); X end(); int operator*(); }; } 2352 // bool operator!=(N::X, N::X); void operator++(N::X); 2353 // void g() { f<N::X>(); } 2354 Scope *S = getCurScope(); 2355 2356 DeclStmt *RangeDS = cast<DeclStmt>(RangeDecl); 2357 VarDecl *RangeVar = cast<VarDecl>(RangeDS->getSingleDecl()); 2358 QualType RangeVarType = RangeVar->getType(); 2359 2360 DeclStmt *LoopVarDS = cast<DeclStmt>(LoopVarDecl); 2361 VarDecl *LoopVar = cast<VarDecl>(LoopVarDS->getSingleDecl()); 2362 2363 // If we hit any errors, mark the loop variable as invalid if its type 2364 // contains 'auto'. 2365 InvalidateOnErrorScope Invalidate(*this, LoopVar, 2366 LoopVar->getType()->isUndeducedType()); 2367 2368 StmtResult BeginDeclStmt = Begin; 2369 StmtResult EndDeclStmt = End; 2370 ExprResult NotEqExpr = Cond, IncrExpr = Inc; 2371 2372 if (RangeVarType->isDependentType()) { 2373 // The range is implicitly used as a placeholder when it is dependent. 2374 RangeVar->markUsed(Context); 2375 2376 // Deduce any 'auto's in the loop variable as 'DependentTy'. We'll fill 2377 // them in properly when we instantiate the loop. 2378 if (!LoopVar->isInvalidDecl() && Kind != BFRK_Check) { 2379 if (auto *DD = dyn_cast<DecompositionDecl>(LoopVar)) 2380 for (auto *Binding : DD->bindings()) 2381 Binding->setType(Context.DependentTy); 2382 LoopVar->setType(SubstAutoType(LoopVar->getType(), Context.DependentTy)); 2383 } 2384 } else if (!BeginDeclStmt.get()) { 2385 SourceLocation RangeLoc = RangeVar->getLocation(); 2386 2387 const QualType RangeVarNonRefType = RangeVarType.getNonReferenceType(); 2388 2389 ExprResult BeginRangeRef = BuildDeclRefExpr(RangeVar, RangeVarNonRefType, 2390 VK_LValue, ColonLoc); 2391 if (BeginRangeRef.isInvalid()) 2392 return StmtError(); 2393 2394 ExprResult EndRangeRef = BuildDeclRefExpr(RangeVar, RangeVarNonRefType, 2395 VK_LValue, ColonLoc); 2396 if (EndRangeRef.isInvalid()) 2397 return StmtError(); 2398 2399 QualType AutoType = Context.getAutoDeductType(); 2400 Expr *Range = RangeVar->getInit(); 2401 if (!Range) 2402 return StmtError(); 2403 QualType RangeType = Range->getType(); 2404 2405 if (RequireCompleteType(RangeLoc, RangeType, 2406 diag::err_for_range_incomplete_type)) 2407 return StmtError(); 2408 2409 // Build auto __begin = begin-expr, __end = end-expr. 2410 // Divide by 2, since the variables are in the inner scope (loop body). 2411 const auto DepthStr = std::to_string(S->getDepth() / 2); 2412 VarDecl *BeginVar = BuildForRangeVarDecl(*this, ColonLoc, AutoType, 2413 std::string("__begin") + DepthStr); 2414 VarDecl *EndVar = BuildForRangeVarDecl(*this, ColonLoc, AutoType, 2415 std::string("__end") + DepthStr); 2416 2417 // Build begin-expr and end-expr and attach to __begin and __end variables. 2418 ExprResult BeginExpr, EndExpr; 2419 if (const ArrayType *UnqAT = RangeType->getAsArrayTypeUnsafe()) { 2420 // - if _RangeT is an array type, begin-expr and end-expr are __range and 2421 // __range + __bound, respectively, where __bound is the array bound. If 2422 // _RangeT is an array of unknown size or an array of incomplete type, 2423 // the program is ill-formed; 2424 2425 // begin-expr is __range. 2426 BeginExpr = BeginRangeRef; 2427 if (!CoawaitLoc.isInvalid()) { 2428 BeginExpr = ActOnCoawaitExpr(S, ColonLoc, BeginExpr.get()); 2429 if (BeginExpr.isInvalid()) 2430 return StmtError(); 2431 } 2432 if (FinishForRangeVarDecl(*this, BeginVar, BeginRangeRef.get(), ColonLoc, 2433 diag::err_for_range_iter_deduction_failure)) { 2434 NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin); 2435 return StmtError(); 2436 } 2437 2438 // Find the array bound. 2439 ExprResult BoundExpr; 2440 if (const ConstantArrayType *CAT = dyn_cast<ConstantArrayType>(UnqAT)) 2441 BoundExpr = IntegerLiteral::Create( 2442 Context, CAT->getSize(), Context.getPointerDiffType(), RangeLoc); 2443 else if (const VariableArrayType *VAT = 2444 dyn_cast<VariableArrayType>(UnqAT)) { 2445 // For a variably modified type we can't just use the expression within 2446 // the array bounds, since we don't want that to be re-evaluated here. 2447 // Rather, we need to determine what it was when the array was first 2448 // created - so we resort to using sizeof(vla)/sizeof(element). 2449 // For e.g. 2450 // void f(int b) { 2451 // int vla[b]; 2452 // b = -1; <-- This should not affect the num of iterations below 2453 // for (int &c : vla) { .. } 2454 // } 2455 2456 // FIXME: This results in codegen generating IR that recalculates the 2457 // run-time number of elements (as opposed to just using the IR Value 2458 // that corresponds to the run-time value of each bound that was 2459 // generated when the array was created.) If this proves too embarrassing 2460 // even for unoptimized IR, consider passing a magic-value/cookie to 2461 // codegen that then knows to simply use that initial llvm::Value (that 2462 // corresponds to the bound at time of array creation) within 2463 // getelementptr. But be prepared to pay the price of increasing a 2464 // customized form of coupling between the two components - which could 2465 // be hard to maintain as the codebase evolves. 2466 2467 ExprResult SizeOfVLAExprR = ActOnUnaryExprOrTypeTraitExpr( 2468 EndVar->getLocation(), UETT_SizeOf, 2469 /*isType=*/true, 2470 CreateParsedType(VAT->desugar(), Context.getTrivialTypeSourceInfo( 2471 VAT->desugar(), RangeLoc)) 2472 .getAsOpaquePtr(), 2473 EndVar->getSourceRange()); 2474 if (SizeOfVLAExprR.isInvalid()) 2475 return StmtError(); 2476 2477 ExprResult SizeOfEachElementExprR = ActOnUnaryExprOrTypeTraitExpr( 2478 EndVar->getLocation(), UETT_SizeOf, 2479 /*isType=*/true, 2480 CreateParsedType(VAT->desugar(), 2481 Context.getTrivialTypeSourceInfo( 2482 VAT->getElementType(), RangeLoc)) 2483 .getAsOpaquePtr(), 2484 EndVar->getSourceRange()); 2485 if (SizeOfEachElementExprR.isInvalid()) 2486 return StmtError(); 2487 2488 BoundExpr = 2489 ActOnBinOp(S, EndVar->getLocation(), tok::slash, 2490 SizeOfVLAExprR.get(), SizeOfEachElementExprR.get()); 2491 if (BoundExpr.isInvalid()) 2492 return StmtError(); 2493 2494 } else { 2495 // Can't be a DependentSizedArrayType or an IncompleteArrayType since 2496 // UnqAT is not incomplete and Range is not type-dependent. 2497 llvm_unreachable("Unexpected array type in for-range"); 2498 } 2499 2500 // end-expr is __range + __bound. 2501 EndExpr = ActOnBinOp(S, ColonLoc, tok::plus, EndRangeRef.get(), 2502 BoundExpr.get()); 2503 if (EndExpr.isInvalid()) 2504 return StmtError(); 2505 if (FinishForRangeVarDecl(*this, EndVar, EndExpr.get(), ColonLoc, 2506 diag::err_for_range_iter_deduction_failure)) { 2507 NoteForRangeBeginEndFunction(*this, EndExpr.get(), BEF_end); 2508 return StmtError(); 2509 } 2510 } else { 2511 OverloadCandidateSet CandidateSet(RangeLoc, 2512 OverloadCandidateSet::CSK_Normal); 2513 BeginEndFunction BEFFailure; 2514 ForRangeStatus RangeStatus = BuildNonArrayForRange( 2515 *this, BeginRangeRef.get(), EndRangeRef.get(), RangeType, BeginVar, 2516 EndVar, ColonLoc, CoawaitLoc, &CandidateSet, &BeginExpr, &EndExpr, 2517 &BEFFailure); 2518 2519 if (Kind == BFRK_Build && RangeStatus == FRS_NoViableFunction && 2520 BEFFailure == BEF_begin) { 2521 // If the range is being built from an array parameter, emit a 2522 // a diagnostic that it is being treated as a pointer. 2523 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Range)) { 2524 if (ParmVarDecl *PVD = dyn_cast<ParmVarDecl>(DRE->getDecl())) { 2525 QualType ArrayTy = PVD->getOriginalType(); 2526 QualType PointerTy = PVD->getType(); 2527 if (PointerTy->isPointerType() && ArrayTy->isArrayType()) { 2528 Diag(Range->getBeginLoc(), diag::err_range_on_array_parameter) 2529 << RangeLoc << PVD << ArrayTy << PointerTy; 2530 Diag(PVD->getLocation(), diag::note_declared_at); 2531 return StmtError(); 2532 } 2533 } 2534 } 2535 2536 // If building the range failed, try dereferencing the range expression 2537 // unless a diagnostic was issued or the end function is problematic. 2538 StmtResult SR = RebuildForRangeWithDereference(*this, S, ForLoc, 2539 CoawaitLoc, InitStmt, 2540 LoopVarDecl, ColonLoc, 2541 Range, RangeLoc, 2542 RParenLoc); 2543 if (SR.isInvalid() || SR.isUsable()) 2544 return SR; 2545 } 2546 2547 // Otherwise, emit diagnostics if we haven't already. 2548 if (RangeStatus == FRS_NoViableFunction) { 2549 Expr *Range = BEFFailure ? EndRangeRef.get() : BeginRangeRef.get(); 2550 Diag(Range->getBeginLoc(), diag::err_for_range_invalid) 2551 << RangeLoc << Range->getType() << BEFFailure; 2552 CandidateSet.NoteCandidates(*this, OCD_AllCandidates, Range); 2553 } 2554 // Return an error if no fix was discovered. 2555 if (RangeStatus != FRS_Success) 2556 return StmtError(); 2557 } 2558 2559 assert(!BeginExpr.isInvalid() && !EndExpr.isInvalid() && 2560 "invalid range expression in for loop"); 2561 2562 // C++11 [dcl.spec.auto]p7: BeginType and EndType must be the same. 2563 // C++1z removes this restriction. 2564 QualType BeginType = BeginVar->getType(), EndType = EndVar->getType(); 2565 if (!Context.hasSameType(BeginType, EndType)) { 2566 Diag(RangeLoc, getLangOpts().CPlusPlus17 2567 ? diag::warn_for_range_begin_end_types_differ 2568 : diag::ext_for_range_begin_end_types_differ) 2569 << BeginType << EndType; 2570 NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin); 2571 NoteForRangeBeginEndFunction(*this, EndExpr.get(), BEF_end); 2572 } 2573 2574 BeginDeclStmt = 2575 ActOnDeclStmt(ConvertDeclToDeclGroup(BeginVar), ColonLoc, ColonLoc); 2576 EndDeclStmt = 2577 ActOnDeclStmt(ConvertDeclToDeclGroup(EndVar), ColonLoc, ColonLoc); 2578 2579 const QualType BeginRefNonRefType = BeginType.getNonReferenceType(); 2580 ExprResult BeginRef = BuildDeclRefExpr(BeginVar, BeginRefNonRefType, 2581 VK_LValue, ColonLoc); 2582 if (BeginRef.isInvalid()) 2583 return StmtError(); 2584 2585 ExprResult EndRef = BuildDeclRefExpr(EndVar, EndType.getNonReferenceType(), 2586 VK_LValue, ColonLoc); 2587 if (EndRef.isInvalid()) 2588 return StmtError(); 2589 2590 // Build and check __begin != __end expression. 2591 NotEqExpr = ActOnBinOp(S, ColonLoc, tok::exclaimequal, 2592 BeginRef.get(), EndRef.get()); 2593 if (!NotEqExpr.isInvalid()) 2594 NotEqExpr = CheckBooleanCondition(ColonLoc, NotEqExpr.get()); 2595 if (!NotEqExpr.isInvalid()) 2596 NotEqExpr = ActOnFinishFullExpr(NotEqExpr.get()); 2597 if (NotEqExpr.isInvalid()) { 2598 Diag(RangeLoc, diag::note_for_range_invalid_iterator) 2599 << RangeLoc << 0 << BeginRangeRef.get()->getType(); 2600 NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin); 2601 if (!Context.hasSameType(BeginType, EndType)) 2602 NoteForRangeBeginEndFunction(*this, EndExpr.get(), BEF_end); 2603 return StmtError(); 2604 } 2605 2606 // Build and check ++__begin expression. 2607 BeginRef = BuildDeclRefExpr(BeginVar, BeginRefNonRefType, 2608 VK_LValue, ColonLoc); 2609 if (BeginRef.isInvalid()) 2610 return StmtError(); 2611 2612 IncrExpr = ActOnUnaryOp(S, ColonLoc, tok::plusplus, BeginRef.get()); 2613 if (!IncrExpr.isInvalid() && CoawaitLoc.isValid()) 2614 // FIXME: getCurScope() should not be used during template instantiation. 2615 // We should pick up the set of unqualified lookup results for operator 2616 // co_await during the initial parse. 2617 IncrExpr = ActOnCoawaitExpr(S, CoawaitLoc, IncrExpr.get()); 2618 if (!IncrExpr.isInvalid()) 2619 IncrExpr = ActOnFinishFullExpr(IncrExpr.get()); 2620 if (IncrExpr.isInvalid()) { 2621 Diag(RangeLoc, diag::note_for_range_invalid_iterator) 2622 << RangeLoc << 2 << BeginRangeRef.get()->getType() ; 2623 NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin); 2624 return StmtError(); 2625 } 2626 2627 // Build and check *__begin expression. 2628 BeginRef = BuildDeclRefExpr(BeginVar, BeginRefNonRefType, 2629 VK_LValue, ColonLoc); 2630 if (BeginRef.isInvalid()) 2631 return StmtError(); 2632 2633 ExprResult DerefExpr = ActOnUnaryOp(S, ColonLoc, tok::star, BeginRef.get()); 2634 if (DerefExpr.isInvalid()) { 2635 Diag(RangeLoc, diag::note_for_range_invalid_iterator) 2636 << RangeLoc << 1 << BeginRangeRef.get()->getType(); 2637 NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin); 2638 return StmtError(); 2639 } 2640 2641 // Attach *__begin as initializer for VD. Don't touch it if we're just 2642 // trying to determine whether this would be a valid range. 2643 if (!LoopVar->isInvalidDecl() && Kind != BFRK_Check) { 2644 AddInitializerToDecl(LoopVar, DerefExpr.get(), /*DirectInit=*/false); 2645 if (LoopVar->isInvalidDecl()) 2646 NoteForRangeBeginEndFunction(*this, BeginExpr.get(), BEF_begin); 2647 } 2648 } 2649 2650 // Don't bother to actually allocate the result if we're just trying to 2651 // determine whether it would be valid. 2652 if (Kind == BFRK_Check) 2653 return StmtResult(); 2654 2655 return new (Context) CXXForRangeStmt( 2656 InitStmt, RangeDS, cast_or_null<DeclStmt>(BeginDeclStmt.get()), 2657 cast_or_null<DeclStmt>(EndDeclStmt.get()), NotEqExpr.get(), 2658 IncrExpr.get(), LoopVarDS, /*Body=*/nullptr, ForLoc, CoawaitLoc, 2659 ColonLoc, RParenLoc); 2660 } 2661 2662 /// FinishObjCForCollectionStmt - Attach the body to a objective-C foreach 2663 /// statement. 2664 StmtResult Sema::FinishObjCForCollectionStmt(Stmt *S, Stmt *B) { 2665 if (!S || !B) 2666 return StmtError(); 2667 ObjCForCollectionStmt * ForStmt = cast<ObjCForCollectionStmt>(S); 2668 2669 ForStmt->setBody(B); 2670 return S; 2671 } 2672 2673 // Warn when the loop variable is a const reference that creates a copy. 2674 // Suggest using the non-reference type for copies. If a copy can be prevented 2675 // suggest the const reference type that would do so. 2676 // For instance, given "for (const &Foo : Range)", suggest 2677 // "for (const Foo : Range)" to denote a copy is made for the loop. If 2678 // possible, also suggest "for (const &Bar : Range)" if this type prevents 2679 // the copy altogether. 2680 static void DiagnoseForRangeReferenceVariableCopies(Sema &SemaRef, 2681 const VarDecl *VD, 2682 QualType RangeInitType) { 2683 const Expr *InitExpr = VD->getInit(); 2684 if (!InitExpr) 2685 return; 2686 2687 QualType VariableType = VD->getType(); 2688 2689 if (auto Cleanups = dyn_cast<ExprWithCleanups>(InitExpr)) 2690 if (!Cleanups->cleanupsHaveSideEffects()) 2691 InitExpr = Cleanups->getSubExpr(); 2692 2693 const MaterializeTemporaryExpr *MTE = 2694 dyn_cast<MaterializeTemporaryExpr>(InitExpr); 2695 2696 // No copy made. 2697 if (!MTE) 2698 return; 2699 2700 const Expr *E = MTE->GetTemporaryExpr()->IgnoreImpCasts(); 2701 2702 // Searching for either UnaryOperator for dereference of a pointer or 2703 // CXXOperatorCallExpr for handling iterators. 2704 while (!isa<CXXOperatorCallExpr>(E) && !isa<UnaryOperator>(E)) { 2705 if (const CXXConstructExpr *CCE = dyn_cast<CXXConstructExpr>(E)) { 2706 E = CCE->getArg(0); 2707 } else if (const CXXMemberCallExpr *Call = dyn_cast<CXXMemberCallExpr>(E)) { 2708 const MemberExpr *ME = cast<MemberExpr>(Call->getCallee()); 2709 E = ME->getBase(); 2710 } else { 2711 const MaterializeTemporaryExpr *MTE = cast<MaterializeTemporaryExpr>(E); 2712 E = MTE->GetTemporaryExpr(); 2713 } 2714 E = E->IgnoreImpCasts(); 2715 } 2716 2717 bool ReturnsReference = false; 2718 if (isa<UnaryOperator>(E)) { 2719 ReturnsReference = true; 2720 } else { 2721 const CXXOperatorCallExpr *Call = cast<CXXOperatorCallExpr>(E); 2722 const FunctionDecl *FD = Call->getDirectCallee(); 2723 QualType ReturnType = FD->getReturnType(); 2724 ReturnsReference = ReturnType->isReferenceType(); 2725 } 2726 2727 if (ReturnsReference) { 2728 // Loop variable creates a temporary. Suggest either to go with 2729 // non-reference loop variable to indicate a copy is made, or 2730 // the correct time to bind a const reference. 2731 SemaRef.Diag(VD->getLocation(), diag::warn_for_range_const_reference_copy) 2732 << VD << VariableType << E->getType(); 2733 QualType NonReferenceType = VariableType.getNonReferenceType(); 2734 NonReferenceType.removeLocalConst(); 2735 QualType NewReferenceType = 2736 SemaRef.Context.getLValueReferenceType(E->getType().withConst()); 2737 SemaRef.Diag(VD->getBeginLoc(), diag::note_use_type_or_non_reference) 2738 << NonReferenceType << NewReferenceType << VD->getSourceRange(); 2739 } else { 2740 // The range always returns a copy, so a temporary is always created. 2741 // Suggest removing the reference from the loop variable. 2742 SemaRef.Diag(VD->getLocation(), diag::warn_for_range_variable_always_copy) 2743 << VD << RangeInitType; 2744 QualType NonReferenceType = VariableType.getNonReferenceType(); 2745 NonReferenceType.removeLocalConst(); 2746 SemaRef.Diag(VD->getBeginLoc(), diag::note_use_non_reference_type) 2747 << NonReferenceType << VD->getSourceRange(); 2748 } 2749 } 2750 2751 // Warns when the loop variable can be changed to a reference type to 2752 // prevent a copy. For instance, if given "for (const Foo x : Range)" suggest 2753 // "for (const Foo &x : Range)" if this form does not make a copy. 2754 static void DiagnoseForRangeConstVariableCopies(Sema &SemaRef, 2755 const VarDecl *VD) { 2756 const Expr *InitExpr = VD->getInit(); 2757 if (!InitExpr) 2758 return; 2759 2760 QualType VariableType = VD->getType(); 2761 2762 if (const CXXConstructExpr *CE = dyn_cast<CXXConstructExpr>(InitExpr)) { 2763 if (!CE->getConstructor()->isCopyConstructor()) 2764 return; 2765 } else if (const CastExpr *CE = dyn_cast<CastExpr>(InitExpr)) { 2766 if (CE->getCastKind() != CK_LValueToRValue) 2767 return; 2768 } else { 2769 return; 2770 } 2771 2772 // TODO: Determine a maximum size that a POD type can be before a diagnostic 2773 // should be emitted. Also, only ignore POD types with trivial copy 2774 // constructors. 2775 if (VariableType.isPODType(SemaRef.Context)) 2776 return; 2777 2778 // Suggest changing from a const variable to a const reference variable 2779 // if doing so will prevent a copy. 2780 SemaRef.Diag(VD->getLocation(), diag::warn_for_range_copy) 2781 << VD << VariableType << InitExpr->getType(); 2782 SemaRef.Diag(VD->getBeginLoc(), diag::note_use_reference_type) 2783 << SemaRef.Context.getLValueReferenceType(VariableType) 2784 << VD->getSourceRange(); 2785 } 2786 2787 /// DiagnoseForRangeVariableCopies - Diagnose three cases and fixes for them. 2788 /// 1) for (const foo &x : foos) where foos only returns a copy. Suggest 2789 /// using "const foo x" to show that a copy is made 2790 /// 2) for (const bar &x : foos) where bar is a temporary initialized by bar. 2791 /// Suggest either "const bar x" to keep the copying or "const foo& x" to 2792 /// prevent the copy. 2793 /// 3) for (const foo x : foos) where x is constructed from a reference foo. 2794 /// Suggest "const foo &x" to prevent the copy. 2795 static void DiagnoseForRangeVariableCopies(Sema &SemaRef, 2796 const CXXForRangeStmt *ForStmt) { 2797 if (SemaRef.Diags.isIgnored(diag::warn_for_range_const_reference_copy, 2798 ForStmt->getBeginLoc()) && 2799 SemaRef.Diags.isIgnored(diag::warn_for_range_variable_always_copy, 2800 ForStmt->getBeginLoc()) && 2801 SemaRef.Diags.isIgnored(diag::warn_for_range_copy, 2802 ForStmt->getBeginLoc())) { 2803 return; 2804 } 2805 2806 const VarDecl *VD = ForStmt->getLoopVariable(); 2807 if (!VD) 2808 return; 2809 2810 QualType VariableType = VD->getType(); 2811 2812 if (VariableType->isIncompleteType()) 2813 return; 2814 2815 const Expr *InitExpr = VD->getInit(); 2816 if (!InitExpr) 2817 return; 2818 2819 if (VariableType->isReferenceType()) { 2820 DiagnoseForRangeReferenceVariableCopies(SemaRef, VD, 2821 ForStmt->getRangeInit()->getType()); 2822 } else if (VariableType.isConstQualified()) { 2823 DiagnoseForRangeConstVariableCopies(SemaRef, VD); 2824 } 2825 } 2826 2827 /// FinishCXXForRangeStmt - Attach the body to a C++0x for-range statement. 2828 /// This is a separate step from ActOnCXXForRangeStmt because analysis of the 2829 /// body cannot be performed until after the type of the range variable is 2830 /// determined. 2831 StmtResult Sema::FinishCXXForRangeStmt(Stmt *S, Stmt *B) { 2832 if (!S || !B) 2833 return StmtError(); 2834 2835 if (isa<ObjCForCollectionStmt>(S)) 2836 return FinishObjCForCollectionStmt(S, B); 2837 2838 CXXForRangeStmt *ForStmt = cast<CXXForRangeStmt>(S); 2839 ForStmt->setBody(B); 2840 2841 DiagnoseEmptyStmtBody(ForStmt->getRParenLoc(), B, 2842 diag::warn_empty_range_based_for_body); 2843 2844 DiagnoseForRangeVariableCopies(*this, ForStmt); 2845 2846 return S; 2847 } 2848 2849 StmtResult Sema::ActOnGotoStmt(SourceLocation GotoLoc, 2850 SourceLocation LabelLoc, 2851 LabelDecl *TheDecl) { 2852 setFunctionHasBranchIntoScope(); 2853 TheDecl->markUsed(Context); 2854 return new (Context) GotoStmt(TheDecl, GotoLoc, LabelLoc); 2855 } 2856 2857 StmtResult 2858 Sema::ActOnIndirectGotoStmt(SourceLocation GotoLoc, SourceLocation StarLoc, 2859 Expr *E) { 2860 // Convert operand to void* 2861 if (!E->isTypeDependent()) { 2862 QualType ETy = E->getType(); 2863 QualType DestTy = Context.getPointerType(Context.VoidTy.withConst()); 2864 ExprResult ExprRes = E; 2865 AssignConvertType ConvTy = 2866 CheckSingleAssignmentConstraints(DestTy, ExprRes); 2867 if (ExprRes.isInvalid()) 2868 return StmtError(); 2869 E = ExprRes.get(); 2870 if (DiagnoseAssignmentResult(ConvTy, StarLoc, DestTy, ETy, E, AA_Passing)) 2871 return StmtError(); 2872 } 2873 2874 ExprResult ExprRes = ActOnFinishFullExpr(E); 2875 if (ExprRes.isInvalid()) 2876 return StmtError(); 2877 E = ExprRes.get(); 2878 2879 setFunctionHasIndirectGoto(); 2880 2881 return new (Context) IndirectGotoStmt(GotoLoc, StarLoc, E); 2882 } 2883 2884 static void CheckJumpOutOfSEHFinally(Sema &S, SourceLocation Loc, 2885 const Scope &DestScope) { 2886 if (!S.CurrentSEHFinally.empty() && 2887 DestScope.Contains(*S.CurrentSEHFinally.back())) { 2888 S.Diag(Loc, diag::warn_jump_out_of_seh_finally); 2889 } 2890 } 2891 2892 StmtResult 2893 Sema::ActOnContinueStmt(SourceLocation ContinueLoc, Scope *CurScope) { 2894 Scope *S = CurScope->getContinueParent(); 2895 if (!S) { 2896 // C99 6.8.6.2p1: A break shall appear only in or as a loop body. 2897 return StmtError(Diag(ContinueLoc, diag::err_continue_not_in_loop)); 2898 } 2899 CheckJumpOutOfSEHFinally(*this, ContinueLoc, *S); 2900 2901 return new (Context) ContinueStmt(ContinueLoc); 2902 } 2903 2904 StmtResult 2905 Sema::ActOnBreakStmt(SourceLocation BreakLoc, Scope *CurScope) { 2906 Scope *S = CurScope->getBreakParent(); 2907 if (!S) { 2908 // C99 6.8.6.3p1: A break shall appear only in or as a switch/loop body. 2909 return StmtError(Diag(BreakLoc, diag::err_break_not_in_loop_or_switch)); 2910 } 2911 if (S->isOpenMPLoopScope()) 2912 return StmtError(Diag(BreakLoc, diag::err_omp_loop_cannot_use_stmt) 2913 << "break"); 2914 CheckJumpOutOfSEHFinally(*this, BreakLoc, *S); 2915 2916 return new (Context) BreakStmt(BreakLoc); 2917 } 2918 2919 /// Determine whether the given expression is a candidate for 2920 /// copy elision in either a return statement or a throw expression. 2921 /// 2922 /// \param ReturnType If we're determining the copy elision candidate for 2923 /// a return statement, this is the return type of the function. If we're 2924 /// determining the copy elision candidate for a throw expression, this will 2925 /// be a NULL type. 2926 /// 2927 /// \param E The expression being returned from the function or block, or 2928 /// being thrown. 2929 /// 2930 /// \param CESK Whether we allow function parameters or 2931 /// id-expressions that could be moved out of the function to be considered NRVO 2932 /// candidates. C++ prohibits these for NRVO itself, but we re-use this logic to 2933 /// determine whether we should try to move as part of a return or throw (which 2934 /// does allow function parameters). 2935 /// 2936 /// \returns The NRVO candidate variable, if the return statement may use the 2937 /// NRVO, or NULL if there is no such candidate. 2938 VarDecl *Sema::getCopyElisionCandidate(QualType ReturnType, Expr *E, 2939 CopyElisionSemanticsKind CESK) { 2940 // - in a return statement in a function [where] ... 2941 // ... the expression is the name of a non-volatile automatic object ... 2942 DeclRefExpr *DR = dyn_cast<DeclRefExpr>(E->IgnoreParens()); 2943 if (!DR || DR->refersToEnclosingVariableOrCapture()) 2944 return nullptr; 2945 VarDecl *VD = dyn_cast<VarDecl>(DR->getDecl()); 2946 if (!VD) 2947 return nullptr; 2948 2949 if (isCopyElisionCandidate(ReturnType, VD, CESK)) 2950 return VD; 2951 return nullptr; 2952 } 2953 2954 bool Sema::isCopyElisionCandidate(QualType ReturnType, const VarDecl *VD, 2955 CopyElisionSemanticsKind CESK) { 2956 QualType VDType = VD->getType(); 2957 // - in a return statement in a function with ... 2958 // ... a class return type ... 2959 if (!ReturnType.isNull() && !ReturnType->isDependentType()) { 2960 if (!ReturnType->isRecordType()) 2961 return false; 2962 // ... the same cv-unqualified type as the function return type ... 2963 // When considering moving this expression out, allow dissimilar types. 2964 if (!(CESK & CES_AllowDifferentTypes) && !VDType->isDependentType() && 2965 !Context.hasSameUnqualifiedType(ReturnType, VDType)) 2966 return false; 2967 } 2968 2969 // ...object (other than a function or catch-clause parameter)... 2970 if (VD->getKind() != Decl::Var && 2971 !((CESK & CES_AllowParameters) && VD->getKind() == Decl::ParmVar)) 2972 return false; 2973 if (!(CESK & CES_AllowExceptionVariables) && VD->isExceptionVariable()) 2974 return false; 2975 2976 // ...automatic... 2977 if (!VD->hasLocalStorage()) return false; 2978 2979 // Return false if VD is a __block variable. We don't want to implicitly move 2980 // out of a __block variable during a return because we cannot assume the 2981 // variable will no longer be used. 2982 if (VD->hasAttr<BlocksAttr>()) return false; 2983 2984 if (CESK & CES_AllowDifferentTypes) 2985 return true; 2986 2987 // ...non-volatile... 2988 if (VD->getType().isVolatileQualified()) return false; 2989 2990 // Variables with higher required alignment than their type's ABI 2991 // alignment cannot use NRVO. 2992 if (!VD->getType()->isDependentType() && VD->hasAttr<AlignedAttr>() && 2993 Context.getDeclAlign(VD) > Context.getTypeAlignInChars(VD->getType())) 2994 return false; 2995 2996 return true; 2997 } 2998 2999 /// Try to perform the initialization of a potentially-movable value, 3000 /// which is the operand to a return or throw statement. 3001 /// 3002 /// This routine implements C++14 [class.copy]p32, which attempts to treat 3003 /// returned lvalues as rvalues in certain cases (to prefer move construction), 3004 /// then falls back to treating them as lvalues if that failed. 3005 /// 3006 /// \param ConvertingConstructorsOnly If true, follow [class.copy]p32 and reject 3007 /// resolutions that find non-constructors, such as derived-to-base conversions 3008 /// or `operator T()&&` member functions. If false, do consider such 3009 /// conversion sequences. 3010 /// 3011 /// \param Res We will fill this in if move-initialization was possible. 3012 /// If move-initialization is not possible, such that we must fall back to 3013 /// treating the operand as an lvalue, we will leave Res in its original 3014 /// invalid state. 3015 static void TryMoveInitialization(Sema& S, 3016 const InitializedEntity &Entity, 3017 const VarDecl *NRVOCandidate, 3018 QualType ResultType, 3019 Expr *&Value, 3020 bool ConvertingConstructorsOnly, 3021 ExprResult &Res) { 3022 ImplicitCastExpr AsRvalue(ImplicitCastExpr::OnStack, Value->getType(), 3023 CK_NoOp, Value, VK_XValue); 3024 3025 Expr *InitExpr = &AsRvalue; 3026 3027 InitializationKind Kind = InitializationKind::CreateCopy( 3028 Value->getBeginLoc(), Value->getBeginLoc()); 3029 3030 InitializationSequence Seq(S, Entity, Kind, InitExpr); 3031 3032 if (!Seq) 3033 return; 3034 3035 for (const InitializationSequence::Step &Step : Seq.steps()) { 3036 if (Step.Kind != InitializationSequence::SK_ConstructorInitialization && 3037 Step.Kind != InitializationSequence::SK_UserConversion) 3038 continue; 3039 3040 FunctionDecl *FD = Step.Function.Function; 3041 if (ConvertingConstructorsOnly) { 3042 if (isa<CXXConstructorDecl>(FD)) { 3043 // C++14 [class.copy]p32: 3044 // [...] If the first overload resolution fails or was not performed, 3045 // or if the type of the first parameter of the selected constructor 3046 // is not an rvalue reference to the object's type (possibly 3047 // cv-qualified), overload resolution is performed again, considering 3048 // the object as an lvalue. 3049 const RValueReferenceType *RRefType = 3050 FD->getParamDecl(0)->getType()->getAs<RValueReferenceType>(); 3051 if (!RRefType) 3052 break; 3053 if (!S.Context.hasSameUnqualifiedType(RRefType->getPointeeType(), 3054 NRVOCandidate->getType())) 3055 break; 3056 } else { 3057 continue; 3058 } 3059 } else { 3060 if (isa<CXXConstructorDecl>(FD)) { 3061 // Check that overload resolution selected a constructor taking an 3062 // rvalue reference. If it selected an lvalue reference, then we 3063 // didn't need to cast this thing to an rvalue in the first place. 3064 if (!isa<RValueReferenceType>(FD->getParamDecl(0)->getType())) 3065 break; 3066 } else if (isa<CXXMethodDecl>(FD)) { 3067 // Check that overload resolution selected a conversion operator 3068 // taking an rvalue reference. 3069 if (cast<CXXMethodDecl>(FD)->getRefQualifier() != RQ_RValue) 3070 break; 3071 } else { 3072 continue; 3073 } 3074 } 3075 3076 // Promote "AsRvalue" to the heap, since we now need this 3077 // expression node to persist. 3078 Value = ImplicitCastExpr::Create(S.Context, Value->getType(), CK_NoOp, 3079 Value, nullptr, VK_XValue); 3080 3081 // Complete type-checking the initialization of the return type 3082 // using the constructor we found. 3083 Res = Seq.Perform(S, Entity, Kind, Value); 3084 } 3085 } 3086 3087 /// Perform the initialization of a potentially-movable value, which 3088 /// is the result of return value. 3089 /// 3090 /// This routine implements C++14 [class.copy]p32, which attempts to treat 3091 /// returned lvalues as rvalues in certain cases (to prefer move construction), 3092 /// then falls back to treating them as lvalues if that failed. 3093 ExprResult 3094 Sema::PerformMoveOrCopyInitialization(const InitializedEntity &Entity, 3095 const VarDecl *NRVOCandidate, 3096 QualType ResultType, 3097 Expr *Value, 3098 bool AllowNRVO) { 3099 // C++14 [class.copy]p32: 3100 // When the criteria for elision of a copy/move operation are met, but not for 3101 // an exception-declaration, and the object to be copied is designated by an 3102 // lvalue, or when the expression in a return statement is a (possibly 3103 // parenthesized) id-expression that names an object with automatic storage 3104 // duration declared in the body or parameter-declaration-clause of the 3105 // innermost enclosing function or lambda-expression, overload resolution to 3106 // select the constructor for the copy is first performed as if the object 3107 // were designated by an rvalue. 3108 ExprResult Res = ExprError(); 3109 3110 if (AllowNRVO) { 3111 bool AffectedByCWG1579 = false; 3112 3113 if (!NRVOCandidate) { 3114 NRVOCandidate = getCopyElisionCandidate(ResultType, Value, CES_Default); 3115 if (NRVOCandidate && 3116 !getDiagnostics().isIgnored(diag::warn_return_std_move_in_cxx11, 3117 Value->getExprLoc())) { 3118 const VarDecl *NRVOCandidateInCXX11 = 3119 getCopyElisionCandidate(ResultType, Value, CES_FormerDefault); 3120 AffectedByCWG1579 = (!NRVOCandidateInCXX11); 3121 } 3122 } 3123 3124 if (NRVOCandidate) { 3125 TryMoveInitialization(*this, Entity, NRVOCandidate, ResultType, Value, 3126 true, Res); 3127 } 3128 3129 if (!Res.isInvalid() && AffectedByCWG1579) { 3130 QualType QT = NRVOCandidate->getType(); 3131 if (QT.getNonReferenceType() 3132 .getUnqualifiedType() 3133 .isTriviallyCopyableType(Context)) { 3134 // Adding 'std::move' around a trivially copyable variable is probably 3135 // pointless. Don't suggest it. 3136 } else { 3137 // Common cases for this are returning unique_ptr<Derived> from a 3138 // function of return type unique_ptr<Base>, or returning T from a 3139 // function of return type Expected<T>. This is totally fine in a 3140 // post-CWG1579 world, but was not fine before. 3141 assert(!ResultType.isNull()); 3142 SmallString<32> Str; 3143 Str += "std::move("; 3144 Str += NRVOCandidate->getDeclName().getAsString(); 3145 Str += ")"; 3146 Diag(Value->getExprLoc(), diag::warn_return_std_move_in_cxx11) 3147 << Value->getSourceRange() 3148 << NRVOCandidate->getDeclName() << ResultType << QT; 3149 Diag(Value->getExprLoc(), diag::note_add_std_move_in_cxx11) 3150 << FixItHint::CreateReplacement(Value->getSourceRange(), Str); 3151 } 3152 } else if (Res.isInvalid() && 3153 !getDiagnostics().isIgnored(diag::warn_return_std_move, 3154 Value->getExprLoc())) { 3155 const VarDecl *FakeNRVOCandidate = 3156 getCopyElisionCandidate(QualType(), Value, CES_AsIfByStdMove); 3157 if (FakeNRVOCandidate) { 3158 QualType QT = FakeNRVOCandidate->getType(); 3159 if (QT->isLValueReferenceType()) { 3160 // Adding 'std::move' around an lvalue reference variable's name is 3161 // dangerous. Don't suggest it. 3162 } else if (QT.getNonReferenceType() 3163 .getUnqualifiedType() 3164 .isTriviallyCopyableType(Context)) { 3165 // Adding 'std::move' around a trivially copyable variable is probably 3166 // pointless. Don't suggest it. 3167 } else { 3168 ExprResult FakeRes = ExprError(); 3169 Expr *FakeValue = Value; 3170 TryMoveInitialization(*this, Entity, FakeNRVOCandidate, ResultType, 3171 FakeValue, false, FakeRes); 3172 if (!FakeRes.isInvalid()) { 3173 bool IsThrow = 3174 (Entity.getKind() == InitializedEntity::EK_Exception); 3175 SmallString<32> Str; 3176 Str += "std::move("; 3177 Str += FakeNRVOCandidate->getDeclName().getAsString(); 3178 Str += ")"; 3179 Diag(Value->getExprLoc(), diag::warn_return_std_move) 3180 << Value->getSourceRange() 3181 << FakeNRVOCandidate->getDeclName() << IsThrow; 3182 Diag(Value->getExprLoc(), diag::note_add_std_move) 3183 << FixItHint::CreateReplacement(Value->getSourceRange(), Str); 3184 } 3185 } 3186 } 3187 } 3188 } 3189 3190 // Either we didn't meet the criteria for treating an lvalue as an rvalue, 3191 // above, or overload resolution failed. Either way, we need to try 3192 // (again) now with the return value expression as written. 3193 if (Res.isInvalid()) 3194 Res = PerformCopyInitialization(Entity, SourceLocation(), Value); 3195 3196 return Res; 3197 } 3198 3199 /// Determine whether the declared return type of the specified function 3200 /// contains 'auto'. 3201 static bool hasDeducedReturnType(FunctionDecl *FD) { 3202 const FunctionProtoType *FPT = 3203 FD->getTypeSourceInfo()->getType()->castAs<FunctionProtoType>(); 3204 return FPT->getReturnType()->isUndeducedType(); 3205 } 3206 3207 /// ActOnCapScopeReturnStmt - Utility routine to type-check return statements 3208 /// for capturing scopes. 3209 /// 3210 StmtResult 3211 Sema::ActOnCapScopeReturnStmt(SourceLocation ReturnLoc, Expr *RetValExp) { 3212 // If this is the first return we've seen, infer the return type. 3213 // [expr.prim.lambda]p4 in C++11; block literals follow the same rules. 3214 CapturingScopeInfo *CurCap = cast<CapturingScopeInfo>(getCurFunction()); 3215 QualType FnRetType = CurCap->ReturnType; 3216 LambdaScopeInfo *CurLambda = dyn_cast<LambdaScopeInfo>(CurCap); 3217 bool HasDeducedReturnType = 3218 CurLambda && hasDeducedReturnType(CurLambda->CallOperator); 3219 3220 if (ExprEvalContexts.back().Context == 3221 ExpressionEvaluationContext::DiscardedStatement && 3222 (HasDeducedReturnType || CurCap->HasImplicitReturnType)) { 3223 if (RetValExp) { 3224 ExprResult ER = ActOnFinishFullExpr(RetValExp, ReturnLoc); 3225 if (ER.isInvalid()) 3226 return StmtError(); 3227 RetValExp = ER.get(); 3228 } 3229 return new (Context) ReturnStmt(ReturnLoc, RetValExp, nullptr); 3230 } 3231 3232 if (HasDeducedReturnType) { 3233 // In C++1y, the return type may involve 'auto'. 3234 // FIXME: Blocks might have a return type of 'auto' explicitly specified. 3235 FunctionDecl *FD = CurLambda->CallOperator; 3236 if (CurCap->ReturnType.isNull()) 3237 CurCap->ReturnType = FD->getReturnType(); 3238 3239 AutoType *AT = CurCap->ReturnType->getContainedAutoType(); 3240 assert(AT && "lost auto type from lambda return type"); 3241 if (DeduceFunctionTypeFromReturnExpr(FD, ReturnLoc, RetValExp, AT)) { 3242 FD->setInvalidDecl(); 3243 return StmtError(); 3244 } 3245 CurCap->ReturnType = FnRetType = FD->getReturnType(); 3246 } else if (CurCap->HasImplicitReturnType) { 3247 // For blocks/lambdas with implicit return types, we check each return 3248 // statement individually, and deduce the common return type when the block 3249 // or lambda is completed. 3250 // FIXME: Fold this into the 'auto' codepath above. 3251 if (RetValExp && !isa<InitListExpr>(RetValExp)) { 3252 ExprResult Result = DefaultFunctionArrayLvalueConversion(RetValExp); 3253 if (Result.isInvalid()) 3254 return StmtError(); 3255 RetValExp = Result.get(); 3256 3257 // DR1048: even prior to C++14, we should use the 'auto' deduction rules 3258 // when deducing a return type for a lambda-expression (or by extension 3259 // for a block). These rules differ from the stated C++11 rules only in 3260 // that they remove top-level cv-qualifiers. 3261 if (!CurContext->isDependentContext()) 3262 FnRetType = RetValExp->getType().getUnqualifiedType(); 3263 else 3264 FnRetType = CurCap->ReturnType = Context.DependentTy; 3265 } else { 3266 if (RetValExp) { 3267 // C++11 [expr.lambda.prim]p4 bans inferring the result from an 3268 // initializer list, because it is not an expression (even 3269 // though we represent it as one). We still deduce 'void'. 3270 Diag(ReturnLoc, diag::err_lambda_return_init_list) 3271 << RetValExp->getSourceRange(); 3272 } 3273 3274 FnRetType = Context.VoidTy; 3275 } 3276 3277 // Although we'll properly infer the type of the block once it's completed, 3278 // make sure we provide a return type now for better error recovery. 3279 if (CurCap->ReturnType.isNull()) 3280 CurCap->ReturnType = FnRetType; 3281 } 3282 assert(!FnRetType.isNull()); 3283 3284 if (BlockScopeInfo *CurBlock = dyn_cast<BlockScopeInfo>(CurCap)) { 3285 if (CurBlock->FunctionType->getAs<FunctionType>()->getNoReturnAttr()) { 3286 Diag(ReturnLoc, diag::err_noreturn_block_has_return_expr); 3287 return StmtError(); 3288 } 3289 } else if (CapturedRegionScopeInfo *CurRegion = 3290 dyn_cast<CapturedRegionScopeInfo>(CurCap)) { 3291 Diag(ReturnLoc, diag::err_return_in_captured_stmt) << CurRegion->getRegionName(); 3292 return StmtError(); 3293 } else { 3294 assert(CurLambda && "unknown kind of captured scope"); 3295 if (CurLambda->CallOperator->getType()->getAs<FunctionType>() 3296 ->getNoReturnAttr()) { 3297 Diag(ReturnLoc, diag::err_noreturn_lambda_has_return_expr); 3298 return StmtError(); 3299 } 3300 } 3301 3302 // Otherwise, verify that this result type matches the previous one. We are 3303 // pickier with blocks than for normal functions because we don't have GCC 3304 // compatibility to worry about here. 3305 const VarDecl *NRVOCandidate = nullptr; 3306 if (FnRetType->isDependentType()) { 3307 // Delay processing for now. TODO: there are lots of dependent 3308 // types we can conclusively prove aren't void. 3309 } else if (FnRetType->isVoidType()) { 3310 if (RetValExp && !isa<InitListExpr>(RetValExp) && 3311 !(getLangOpts().CPlusPlus && 3312 (RetValExp->isTypeDependent() || 3313 RetValExp->getType()->isVoidType()))) { 3314 if (!getLangOpts().CPlusPlus && 3315 RetValExp->getType()->isVoidType()) 3316 Diag(ReturnLoc, diag::ext_return_has_void_expr) << "literal" << 2; 3317 else { 3318 Diag(ReturnLoc, diag::err_return_block_has_expr); 3319 RetValExp = nullptr; 3320 } 3321 } 3322 } else if (!RetValExp) { 3323 return StmtError(Diag(ReturnLoc, diag::err_block_return_missing_expr)); 3324 } else if (!RetValExp->isTypeDependent()) { 3325 // we have a non-void block with an expression, continue checking 3326 3327 // C99 6.8.6.4p3(136): The return statement is not an assignment. The 3328 // overlap restriction of subclause 6.5.16.1 does not apply to the case of 3329 // function return. 3330 3331 // In C++ the return statement is handled via a copy initialization. 3332 // the C version of which boils down to CheckSingleAssignmentConstraints. 3333 NRVOCandidate = getCopyElisionCandidate(FnRetType, RetValExp, CES_Strict); 3334 InitializedEntity Entity = InitializedEntity::InitializeResult(ReturnLoc, 3335 FnRetType, 3336 NRVOCandidate != nullptr); 3337 ExprResult Res = PerformMoveOrCopyInitialization(Entity, NRVOCandidate, 3338 FnRetType, RetValExp); 3339 if (Res.isInvalid()) { 3340 // FIXME: Cleanup temporaries here, anyway? 3341 return StmtError(); 3342 } 3343 RetValExp = Res.get(); 3344 CheckReturnValExpr(RetValExp, FnRetType, ReturnLoc); 3345 } else { 3346 NRVOCandidate = getCopyElisionCandidate(FnRetType, RetValExp, CES_Strict); 3347 } 3348 3349 if (RetValExp) { 3350 ExprResult ER = ActOnFinishFullExpr(RetValExp, ReturnLoc); 3351 if (ER.isInvalid()) 3352 return StmtError(); 3353 RetValExp = ER.get(); 3354 } 3355 ReturnStmt *Result = new (Context) ReturnStmt(ReturnLoc, RetValExp, 3356 NRVOCandidate); 3357 3358 // If we need to check for the named return value optimization, 3359 // or if we need to infer the return type, 3360 // save the return statement in our scope for later processing. 3361 if (CurCap->HasImplicitReturnType || NRVOCandidate) 3362 FunctionScopes.back()->Returns.push_back(Result); 3363 3364 if (FunctionScopes.back()->FirstReturnLoc.isInvalid()) 3365 FunctionScopes.back()->FirstReturnLoc = ReturnLoc; 3366 3367 return Result; 3368 } 3369 3370 namespace { 3371 /// Marks all typedefs in all local classes in a type referenced. 3372 /// 3373 /// In a function like 3374 /// auto f() { 3375 /// struct S { typedef int a; }; 3376 /// return S(); 3377 /// } 3378 /// 3379 /// the local type escapes and could be referenced in some TUs but not in 3380 /// others. Pretend that all local typedefs are always referenced, to not warn 3381 /// on this. This isn't necessary if f has internal linkage, or the typedef 3382 /// is private. 3383 class LocalTypedefNameReferencer 3384 : public RecursiveASTVisitor<LocalTypedefNameReferencer> { 3385 public: 3386 LocalTypedefNameReferencer(Sema &S) : S(S) {} 3387 bool VisitRecordType(const RecordType *RT); 3388 private: 3389 Sema &S; 3390 }; 3391 bool LocalTypedefNameReferencer::VisitRecordType(const RecordType *RT) { 3392 auto *R = dyn_cast<CXXRecordDecl>(RT->getDecl()); 3393 if (!R || !R->isLocalClass() || !R->isLocalClass()->isExternallyVisible() || 3394 R->isDependentType()) 3395 return true; 3396 for (auto *TmpD : R->decls()) 3397 if (auto *T = dyn_cast<TypedefNameDecl>(TmpD)) 3398 if (T->getAccess() != AS_private || R->hasFriends()) 3399 S.MarkAnyDeclReferenced(T->getLocation(), T, /*OdrUse=*/false); 3400 return true; 3401 } 3402 } 3403 3404 TypeLoc Sema::getReturnTypeLoc(FunctionDecl *FD) const { 3405 TypeLoc TL = FD->getTypeSourceInfo()->getTypeLoc().IgnoreParens(); 3406 while (auto ATL = TL.getAs<AttributedTypeLoc>()) 3407 TL = ATL.getModifiedLoc().IgnoreParens(); 3408 return TL.castAs<FunctionProtoTypeLoc>().getReturnLoc(); 3409 } 3410 3411 /// Deduce the return type for a function from a returned expression, per 3412 /// C++1y [dcl.spec.auto]p6. 3413 bool Sema::DeduceFunctionTypeFromReturnExpr(FunctionDecl *FD, 3414 SourceLocation ReturnLoc, 3415 Expr *&RetExpr, 3416 AutoType *AT) { 3417 // If this is the conversion function for a lambda, we choose to deduce it 3418 // type from the corresponding call operator, not from the synthesized return 3419 // statement within it. See Sema::DeduceReturnType. 3420 if (isLambdaConversionOperator(FD)) 3421 return false; 3422 3423 TypeLoc OrigResultType = getReturnTypeLoc(FD); 3424 QualType Deduced; 3425 3426 if (RetExpr && isa<InitListExpr>(RetExpr)) { 3427 // If the deduction is for a return statement and the initializer is 3428 // a braced-init-list, the program is ill-formed. 3429 Diag(RetExpr->getExprLoc(), 3430 getCurLambda() ? diag::err_lambda_return_init_list 3431 : diag::err_auto_fn_return_init_list) 3432 << RetExpr->getSourceRange(); 3433 return true; 3434 } 3435 3436 if (FD->isDependentContext()) { 3437 // C++1y [dcl.spec.auto]p12: 3438 // Return type deduction [...] occurs when the definition is 3439 // instantiated even if the function body contains a return 3440 // statement with a non-type-dependent operand. 3441 assert(AT->isDeduced() && "should have deduced to dependent type"); 3442 return false; 3443 } 3444 3445 if (RetExpr) { 3446 // Otherwise, [...] deduce a value for U using the rules of template 3447 // argument deduction. 3448 DeduceAutoResult DAR = DeduceAutoType(OrigResultType, RetExpr, Deduced); 3449 3450 if (DAR == DAR_Failed && !FD->isInvalidDecl()) 3451 Diag(RetExpr->getExprLoc(), diag::err_auto_fn_deduction_failure) 3452 << OrigResultType.getType() << RetExpr->getType(); 3453 3454 if (DAR != DAR_Succeeded) 3455 return true; 3456 3457 // If a local type is part of the returned type, mark its fields as 3458 // referenced. 3459 LocalTypedefNameReferencer Referencer(*this); 3460 Referencer.TraverseType(RetExpr->getType()); 3461 } else { 3462 // In the case of a return with no operand, the initializer is considered 3463 // to be void(). 3464 // 3465 // Deduction here can only succeed if the return type is exactly 'cv auto' 3466 // or 'decltype(auto)', so just check for that case directly. 3467 if (!OrigResultType.getType()->getAs<AutoType>()) { 3468 Diag(ReturnLoc, diag::err_auto_fn_return_void_but_not_auto) 3469 << OrigResultType.getType(); 3470 return true; 3471 } 3472 // We always deduce U = void in this case. 3473 Deduced = SubstAutoType(OrigResultType.getType(), Context.VoidTy); 3474 if (Deduced.isNull()) 3475 return true; 3476 } 3477 3478 // If a function with a declared return type that contains a placeholder type 3479 // has multiple return statements, the return type is deduced for each return 3480 // statement. [...] if the type deduced is not the same in each deduction, 3481 // the program is ill-formed. 3482 QualType DeducedT = AT->getDeducedType(); 3483 if (!DeducedT.isNull() && !FD->isInvalidDecl()) { 3484 AutoType *NewAT = Deduced->getContainedAutoType(); 3485 // It is possible that NewAT->getDeducedType() is null. When that happens, 3486 // we should not crash, instead we ignore this deduction. 3487 if (NewAT->getDeducedType().isNull()) 3488 return false; 3489 3490 CanQualType OldDeducedType = Context.getCanonicalFunctionResultType( 3491 DeducedT); 3492 CanQualType NewDeducedType = Context.getCanonicalFunctionResultType( 3493 NewAT->getDeducedType()); 3494 if (!FD->isDependentContext() && OldDeducedType != NewDeducedType) { 3495 const LambdaScopeInfo *LambdaSI = getCurLambda(); 3496 if (LambdaSI && LambdaSI->HasImplicitReturnType) { 3497 Diag(ReturnLoc, diag::err_typecheck_missing_return_type_incompatible) 3498 << NewAT->getDeducedType() << DeducedT 3499 << true /*IsLambda*/; 3500 } else { 3501 Diag(ReturnLoc, diag::err_auto_fn_different_deductions) 3502 << (AT->isDecltypeAuto() ? 1 : 0) 3503 << NewAT->getDeducedType() << DeducedT; 3504 } 3505 return true; 3506 } 3507 } else if (!FD->isInvalidDecl()) { 3508 // Update all declarations of the function to have the deduced return type. 3509 Context.adjustDeducedFunctionResultType(FD, Deduced); 3510 } 3511 3512 return false; 3513 } 3514 3515 StmtResult 3516 Sema::ActOnReturnStmt(SourceLocation ReturnLoc, Expr *RetValExp, 3517 Scope *CurScope) { 3518 StmtResult R = BuildReturnStmt(ReturnLoc, RetValExp); 3519 if (R.isInvalid() || ExprEvalContexts.back().Context == 3520 ExpressionEvaluationContext::DiscardedStatement) 3521 return R; 3522 3523 if (VarDecl *VD = 3524 const_cast<VarDecl*>(cast<ReturnStmt>(R.get())->getNRVOCandidate())) { 3525 CurScope->addNRVOCandidate(VD); 3526 } else { 3527 CurScope->setNoNRVO(); 3528 } 3529 3530 CheckJumpOutOfSEHFinally(*this, ReturnLoc, *CurScope->getFnParent()); 3531 3532 return R; 3533 } 3534 3535 StmtResult Sema::BuildReturnStmt(SourceLocation ReturnLoc, Expr *RetValExp) { 3536 // Check for unexpanded parameter packs. 3537 if (RetValExp && DiagnoseUnexpandedParameterPack(RetValExp)) 3538 return StmtError(); 3539 3540 if (isa<CapturingScopeInfo>(getCurFunction())) 3541 return ActOnCapScopeReturnStmt(ReturnLoc, RetValExp); 3542 3543 QualType FnRetType; 3544 QualType RelatedRetType; 3545 const AttrVec *Attrs = nullptr; 3546 bool isObjCMethod = false; 3547 3548 if (const FunctionDecl *FD = getCurFunctionDecl()) { 3549 FnRetType = FD->getReturnType(); 3550 if (FD->hasAttrs()) 3551 Attrs = &FD->getAttrs(); 3552 if (FD->isNoReturn()) 3553 Diag(ReturnLoc, diag::warn_noreturn_function_has_return_expr) 3554 << FD->getDeclName(); 3555 if (FD->isMain() && RetValExp) 3556 if (isa<CXXBoolLiteralExpr>(RetValExp)) 3557 Diag(ReturnLoc, diag::warn_main_returns_bool_literal) 3558 << RetValExp->getSourceRange(); 3559 } else if (ObjCMethodDecl *MD = getCurMethodDecl()) { 3560 FnRetType = MD->getReturnType(); 3561 isObjCMethod = true; 3562 if (MD->hasAttrs()) 3563 Attrs = &MD->getAttrs(); 3564 if (MD->hasRelatedResultType() && MD->getClassInterface()) { 3565 // In the implementation of a method with a related return type, the 3566 // type used to type-check the validity of return statements within the 3567 // method body is a pointer to the type of the class being implemented. 3568 RelatedRetType = Context.getObjCInterfaceType(MD->getClassInterface()); 3569 RelatedRetType = Context.getObjCObjectPointerType(RelatedRetType); 3570 } 3571 } else // If we don't have a function/method context, bail. 3572 return StmtError(); 3573 3574 // C++1z: discarded return statements are not considered when deducing a 3575 // return type. 3576 if (ExprEvalContexts.back().Context == 3577 ExpressionEvaluationContext::DiscardedStatement && 3578 FnRetType->getContainedAutoType()) { 3579 if (RetValExp) { 3580 ExprResult ER = ActOnFinishFullExpr(RetValExp, ReturnLoc); 3581 if (ER.isInvalid()) 3582 return StmtError(); 3583 RetValExp = ER.get(); 3584 } 3585 return new (Context) ReturnStmt(ReturnLoc, RetValExp, nullptr); 3586 } 3587 3588 // FIXME: Add a flag to the ScopeInfo to indicate whether we're performing 3589 // deduction. 3590 if (getLangOpts().CPlusPlus14) { 3591 if (AutoType *AT = FnRetType->getContainedAutoType()) { 3592 FunctionDecl *FD = cast<FunctionDecl>(CurContext); 3593 if (DeduceFunctionTypeFromReturnExpr(FD, ReturnLoc, RetValExp, AT)) { 3594 FD->setInvalidDecl(); 3595 return StmtError(); 3596 } else { 3597 FnRetType = FD->getReturnType(); 3598 } 3599 } 3600 } 3601 3602 bool HasDependentReturnType = FnRetType->isDependentType(); 3603 3604 ReturnStmt *Result = nullptr; 3605 if (FnRetType->isVoidType()) { 3606 if (RetValExp) { 3607 if (isa<InitListExpr>(RetValExp)) { 3608 // We simply never allow init lists as the return value of void 3609 // functions. This is compatible because this was never allowed before, 3610 // so there's no legacy code to deal with. 3611 NamedDecl *CurDecl = getCurFunctionOrMethodDecl(); 3612 int FunctionKind = 0; 3613 if (isa<ObjCMethodDecl>(CurDecl)) 3614 FunctionKind = 1; 3615 else if (isa<CXXConstructorDecl>(CurDecl)) 3616 FunctionKind = 2; 3617 else if (isa<CXXDestructorDecl>(CurDecl)) 3618 FunctionKind = 3; 3619 3620 Diag(ReturnLoc, diag::err_return_init_list) 3621 << CurDecl->getDeclName() << FunctionKind 3622 << RetValExp->getSourceRange(); 3623 3624 // Drop the expression. 3625 RetValExp = nullptr; 3626 } else if (!RetValExp->isTypeDependent()) { 3627 // C99 6.8.6.4p1 (ext_ since GCC warns) 3628 unsigned D = diag::ext_return_has_expr; 3629 if (RetValExp->getType()->isVoidType()) { 3630 NamedDecl *CurDecl = getCurFunctionOrMethodDecl(); 3631 if (isa<CXXConstructorDecl>(CurDecl) || 3632 isa<CXXDestructorDecl>(CurDecl)) 3633 D = diag::err_ctor_dtor_returns_void; 3634 else 3635 D = diag::ext_return_has_void_expr; 3636 } 3637 else { 3638 ExprResult Result = RetValExp; 3639 Result = IgnoredValueConversions(Result.get()); 3640 if (Result.isInvalid()) 3641 return StmtError(); 3642 RetValExp = Result.get(); 3643 RetValExp = ImpCastExprToType(RetValExp, 3644 Context.VoidTy, CK_ToVoid).get(); 3645 } 3646 // return of void in constructor/destructor is illegal in C++. 3647 if (D == diag::err_ctor_dtor_returns_void) { 3648 NamedDecl *CurDecl = getCurFunctionOrMethodDecl(); 3649 Diag(ReturnLoc, D) 3650 << CurDecl->getDeclName() << isa<CXXDestructorDecl>(CurDecl) 3651 << RetValExp->getSourceRange(); 3652 } 3653 // return (some void expression); is legal in C++. 3654 else if (D != diag::ext_return_has_void_expr || 3655 !getLangOpts().CPlusPlus) { 3656 NamedDecl *CurDecl = getCurFunctionOrMethodDecl(); 3657 3658 int FunctionKind = 0; 3659 if (isa<ObjCMethodDecl>(CurDecl)) 3660 FunctionKind = 1; 3661 else if (isa<CXXConstructorDecl>(CurDecl)) 3662 FunctionKind = 2; 3663 else if (isa<CXXDestructorDecl>(CurDecl)) 3664 FunctionKind = 3; 3665 3666 Diag(ReturnLoc, D) 3667 << CurDecl->getDeclName() << FunctionKind 3668 << RetValExp->getSourceRange(); 3669 } 3670 } 3671 3672 if (RetValExp) { 3673 ExprResult ER = ActOnFinishFullExpr(RetValExp, ReturnLoc); 3674 if (ER.isInvalid()) 3675 return StmtError(); 3676 RetValExp = ER.get(); 3677 } 3678 } 3679 3680 Result = new (Context) ReturnStmt(ReturnLoc, RetValExp, nullptr); 3681 } else if (!RetValExp && !HasDependentReturnType) { 3682 FunctionDecl *FD = getCurFunctionDecl(); 3683 3684 unsigned DiagID; 3685 if (getLangOpts().CPlusPlus11 && FD && FD->isConstexpr()) { 3686 // C++11 [stmt.return]p2 3687 DiagID = diag::err_constexpr_return_missing_expr; 3688 FD->setInvalidDecl(); 3689 } else if (getLangOpts().C99) { 3690 // C99 6.8.6.4p1 (ext_ since GCC warns) 3691 DiagID = diag::ext_return_missing_expr; 3692 } else { 3693 // C90 6.6.6.4p4 3694 DiagID = diag::warn_return_missing_expr; 3695 } 3696 3697 if (FD) 3698 Diag(ReturnLoc, DiagID) << FD->getIdentifier() << 0/*fn*/; 3699 else 3700 Diag(ReturnLoc, DiagID) << getCurMethodDecl()->getDeclName() << 1/*meth*/; 3701 3702 Result = new (Context) ReturnStmt(ReturnLoc); 3703 } else { 3704 assert(RetValExp || HasDependentReturnType); 3705 const VarDecl *NRVOCandidate = nullptr; 3706 3707 QualType RetType = RelatedRetType.isNull() ? FnRetType : RelatedRetType; 3708 3709 // C99 6.8.6.4p3(136): The return statement is not an assignment. The 3710 // overlap restriction of subclause 6.5.16.1 does not apply to the case of 3711 // function return. 3712 3713 // In C++ the return statement is handled via a copy initialization, 3714 // the C version of which boils down to CheckSingleAssignmentConstraints. 3715 if (RetValExp) 3716 NRVOCandidate = getCopyElisionCandidate(FnRetType, RetValExp, CES_Strict); 3717 if (!HasDependentReturnType && !RetValExp->isTypeDependent()) { 3718 // we have a non-void function with an expression, continue checking 3719 InitializedEntity Entity = InitializedEntity::InitializeResult(ReturnLoc, 3720 RetType, 3721 NRVOCandidate != nullptr); 3722 ExprResult Res = PerformMoveOrCopyInitialization(Entity, NRVOCandidate, 3723 RetType, RetValExp); 3724 if (Res.isInvalid()) { 3725 // FIXME: Clean up temporaries here anyway? 3726 return StmtError(); 3727 } 3728 RetValExp = Res.getAs<Expr>(); 3729 3730 // If we have a related result type, we need to implicitly 3731 // convert back to the formal result type. We can't pretend to 3732 // initialize the result again --- we might end double-retaining 3733 // --- so instead we initialize a notional temporary. 3734 if (!RelatedRetType.isNull()) { 3735 Entity = InitializedEntity::InitializeRelatedResult(getCurMethodDecl(), 3736 FnRetType); 3737 Res = PerformCopyInitialization(Entity, ReturnLoc, RetValExp); 3738 if (Res.isInvalid()) { 3739 // FIXME: Clean up temporaries here anyway? 3740 return StmtError(); 3741 } 3742 RetValExp = Res.getAs<Expr>(); 3743 } 3744 3745 CheckReturnValExpr(RetValExp, FnRetType, ReturnLoc, isObjCMethod, Attrs, 3746 getCurFunctionDecl()); 3747 } 3748 3749 if (RetValExp) { 3750 ExprResult ER = ActOnFinishFullExpr(RetValExp, ReturnLoc); 3751 if (ER.isInvalid()) 3752 return StmtError(); 3753 RetValExp = ER.get(); 3754 } 3755 Result = new (Context) ReturnStmt(ReturnLoc, RetValExp, NRVOCandidate); 3756 } 3757 3758 // If we need to check for the named return value optimization, save the 3759 // return statement in our scope for later processing. 3760 if (Result->getNRVOCandidate()) 3761 FunctionScopes.back()->Returns.push_back(Result); 3762 3763 if (FunctionScopes.back()->FirstReturnLoc.isInvalid()) 3764 FunctionScopes.back()->FirstReturnLoc = ReturnLoc; 3765 3766 return Result; 3767 } 3768 3769 StmtResult 3770 Sema::ActOnObjCAtCatchStmt(SourceLocation AtLoc, 3771 SourceLocation RParen, Decl *Parm, 3772 Stmt *Body) { 3773 VarDecl *Var = cast_or_null<VarDecl>(Parm); 3774 if (Var && Var->isInvalidDecl()) 3775 return StmtError(); 3776 3777 return new (Context) ObjCAtCatchStmt(AtLoc, RParen, Var, Body); 3778 } 3779 3780 StmtResult 3781 Sema::ActOnObjCAtFinallyStmt(SourceLocation AtLoc, Stmt *Body) { 3782 return new (Context) ObjCAtFinallyStmt(AtLoc, Body); 3783 } 3784 3785 StmtResult 3786 Sema::ActOnObjCAtTryStmt(SourceLocation AtLoc, Stmt *Try, 3787 MultiStmtArg CatchStmts, Stmt *Finally) { 3788 if (!getLangOpts().ObjCExceptions) 3789 Diag(AtLoc, diag::err_objc_exceptions_disabled) << "@try"; 3790 3791 setFunctionHasBranchProtectedScope(); 3792 unsigned NumCatchStmts = CatchStmts.size(); 3793 return ObjCAtTryStmt::Create(Context, AtLoc, Try, CatchStmts.data(), 3794 NumCatchStmts, Finally); 3795 } 3796 3797 StmtResult Sema::BuildObjCAtThrowStmt(SourceLocation AtLoc, Expr *Throw) { 3798 if (Throw) { 3799 ExprResult Result = DefaultLvalueConversion(Throw); 3800 if (Result.isInvalid()) 3801 return StmtError(); 3802 3803 Result = ActOnFinishFullExpr(Result.get()); 3804 if (Result.isInvalid()) 3805 return StmtError(); 3806 Throw = Result.get(); 3807 3808 QualType ThrowType = Throw->getType(); 3809 // Make sure the expression type is an ObjC pointer or "void *". 3810 if (!ThrowType->isDependentType() && 3811 !ThrowType->isObjCObjectPointerType()) { 3812 const PointerType *PT = ThrowType->getAs<PointerType>(); 3813 if (!PT || !PT->getPointeeType()->isVoidType()) 3814 return StmtError(Diag(AtLoc, diag::err_objc_throw_expects_object) 3815 << Throw->getType() << Throw->getSourceRange()); 3816 } 3817 } 3818 3819 return new (Context) ObjCAtThrowStmt(AtLoc, Throw); 3820 } 3821 3822 StmtResult 3823 Sema::ActOnObjCAtThrowStmt(SourceLocation AtLoc, Expr *Throw, 3824 Scope *CurScope) { 3825 if (!getLangOpts().ObjCExceptions) 3826 Diag(AtLoc, diag::err_objc_exceptions_disabled) << "@throw"; 3827 3828 if (!Throw) { 3829 // @throw without an expression designates a rethrow (which must occur 3830 // in the context of an @catch clause). 3831 Scope *AtCatchParent = CurScope; 3832 while (AtCatchParent && !AtCatchParent->isAtCatchScope()) 3833 AtCatchParent = AtCatchParent->getParent(); 3834 if (!AtCatchParent) 3835 return StmtError(Diag(AtLoc, diag::err_rethrow_used_outside_catch)); 3836 } 3837 return BuildObjCAtThrowStmt(AtLoc, Throw); 3838 } 3839 3840 ExprResult 3841 Sema::ActOnObjCAtSynchronizedOperand(SourceLocation atLoc, Expr *operand) { 3842 ExprResult result = DefaultLvalueConversion(operand); 3843 if (result.isInvalid()) 3844 return ExprError(); 3845 operand = result.get(); 3846 3847 // Make sure the expression type is an ObjC pointer or "void *". 3848 QualType type = operand->getType(); 3849 if (!type->isDependentType() && 3850 !type->isObjCObjectPointerType()) { 3851 const PointerType *pointerType = type->getAs<PointerType>(); 3852 if (!pointerType || !pointerType->getPointeeType()->isVoidType()) { 3853 if (getLangOpts().CPlusPlus) { 3854 if (RequireCompleteType(atLoc, type, 3855 diag::err_incomplete_receiver_type)) 3856 return Diag(atLoc, diag::err_objc_synchronized_expects_object) 3857 << type << operand->getSourceRange(); 3858 3859 ExprResult result = PerformContextuallyConvertToObjCPointer(operand); 3860 if (result.isInvalid()) 3861 return ExprError(); 3862 if (!result.isUsable()) 3863 return Diag(atLoc, diag::err_objc_synchronized_expects_object) 3864 << type << operand->getSourceRange(); 3865 3866 operand = result.get(); 3867 } else { 3868 return Diag(atLoc, diag::err_objc_synchronized_expects_object) 3869 << type << operand->getSourceRange(); 3870 } 3871 } 3872 } 3873 3874 // The operand to @synchronized is a full-expression. 3875 return ActOnFinishFullExpr(operand); 3876 } 3877 3878 StmtResult 3879 Sema::ActOnObjCAtSynchronizedStmt(SourceLocation AtLoc, Expr *SyncExpr, 3880 Stmt *SyncBody) { 3881 // We can't jump into or indirect-jump out of a @synchronized block. 3882 setFunctionHasBranchProtectedScope(); 3883 return new (Context) ObjCAtSynchronizedStmt(AtLoc, SyncExpr, SyncBody); 3884 } 3885 3886 /// ActOnCXXCatchBlock - Takes an exception declaration and a handler block 3887 /// and creates a proper catch handler from them. 3888 StmtResult 3889 Sema::ActOnCXXCatchBlock(SourceLocation CatchLoc, Decl *ExDecl, 3890 Stmt *HandlerBlock) { 3891 // There's nothing to test that ActOnExceptionDecl didn't already test. 3892 return new (Context) 3893 CXXCatchStmt(CatchLoc, cast_or_null<VarDecl>(ExDecl), HandlerBlock); 3894 } 3895 3896 StmtResult 3897 Sema::ActOnObjCAutoreleasePoolStmt(SourceLocation AtLoc, Stmt *Body) { 3898 setFunctionHasBranchProtectedScope(); 3899 return new (Context) ObjCAutoreleasePoolStmt(AtLoc, Body); 3900 } 3901 3902 namespace { 3903 class CatchHandlerType { 3904 QualType QT; 3905 unsigned IsPointer : 1; 3906 3907 // This is a special constructor to be used only with DenseMapInfo's 3908 // getEmptyKey() and getTombstoneKey() functions. 3909 friend struct llvm::DenseMapInfo<CatchHandlerType>; 3910 enum Unique { ForDenseMap }; 3911 CatchHandlerType(QualType QT, Unique) : QT(QT), IsPointer(false) {} 3912 3913 public: 3914 /// Used when creating a CatchHandlerType from a handler type; will determine 3915 /// whether the type is a pointer or reference and will strip off the top 3916 /// level pointer and cv-qualifiers. 3917 CatchHandlerType(QualType Q) : QT(Q), IsPointer(false) { 3918 if (QT->isPointerType()) 3919 IsPointer = true; 3920 3921 if (IsPointer || QT->isReferenceType()) 3922 QT = QT->getPointeeType(); 3923 QT = QT.getUnqualifiedType(); 3924 } 3925 3926 /// Used when creating a CatchHandlerType from a base class type; pretends the 3927 /// type passed in had the pointer qualifier, does not need to get an 3928 /// unqualified type. 3929 CatchHandlerType(QualType QT, bool IsPointer) 3930 : QT(QT), IsPointer(IsPointer) {} 3931 3932 QualType underlying() const { return QT; } 3933 bool isPointer() const { return IsPointer; } 3934 3935 friend bool operator==(const CatchHandlerType &LHS, 3936 const CatchHandlerType &RHS) { 3937 // If the pointer qualification does not match, we can return early. 3938 if (LHS.IsPointer != RHS.IsPointer) 3939 return false; 3940 // Otherwise, check the underlying type without cv-qualifiers. 3941 return LHS.QT == RHS.QT; 3942 } 3943 }; 3944 } // namespace 3945 3946 namespace llvm { 3947 template <> struct DenseMapInfo<CatchHandlerType> { 3948 static CatchHandlerType getEmptyKey() { 3949 return CatchHandlerType(DenseMapInfo<QualType>::getEmptyKey(), 3950 CatchHandlerType::ForDenseMap); 3951 } 3952 3953 static CatchHandlerType getTombstoneKey() { 3954 return CatchHandlerType(DenseMapInfo<QualType>::getTombstoneKey(), 3955 CatchHandlerType::ForDenseMap); 3956 } 3957 3958 static unsigned getHashValue(const CatchHandlerType &Base) { 3959 return DenseMapInfo<QualType>::getHashValue(Base.underlying()); 3960 } 3961 3962 static bool isEqual(const CatchHandlerType &LHS, 3963 const CatchHandlerType &RHS) { 3964 return LHS == RHS; 3965 } 3966 }; 3967 } 3968 3969 namespace { 3970 class CatchTypePublicBases { 3971 ASTContext &Ctx; 3972 const llvm::DenseMap<CatchHandlerType, CXXCatchStmt *> &TypesToCheck; 3973 const bool CheckAgainstPointer; 3974 3975 CXXCatchStmt *FoundHandler; 3976 CanQualType FoundHandlerType; 3977 3978 public: 3979 CatchTypePublicBases( 3980 ASTContext &Ctx, 3981 const llvm::DenseMap<CatchHandlerType, CXXCatchStmt *> &T, bool C) 3982 : Ctx(Ctx), TypesToCheck(T), CheckAgainstPointer(C), 3983 FoundHandler(nullptr) {} 3984 3985 CXXCatchStmt *getFoundHandler() const { return FoundHandler; } 3986 CanQualType getFoundHandlerType() const { return FoundHandlerType; } 3987 3988 bool operator()(const CXXBaseSpecifier *S, CXXBasePath &) { 3989 if (S->getAccessSpecifier() == AccessSpecifier::AS_public) { 3990 CatchHandlerType Check(S->getType(), CheckAgainstPointer); 3991 const auto &M = TypesToCheck; 3992 auto I = M.find(Check); 3993 if (I != M.end()) { 3994 FoundHandler = I->second; 3995 FoundHandlerType = Ctx.getCanonicalType(S->getType()); 3996 return true; 3997 } 3998 } 3999 return false; 4000 } 4001 }; 4002 } 4003 4004 /// ActOnCXXTryBlock - Takes a try compound-statement and a number of 4005 /// handlers and creates a try statement from them. 4006 StmtResult Sema::ActOnCXXTryBlock(SourceLocation TryLoc, Stmt *TryBlock, 4007 ArrayRef<Stmt *> Handlers) { 4008 // Don't report an error if 'try' is used in system headers. 4009 if (!getLangOpts().CXXExceptions && 4010 !getSourceManager().isInSystemHeader(TryLoc) && 4011 (!getLangOpts().OpenMPIsDevice || 4012 !getLangOpts().OpenMPHostCXXExceptions || 4013 isInOpenMPTargetExecutionDirective() || 4014 isInOpenMPDeclareTargetContext())) 4015 Diag(TryLoc, diag::err_exceptions_disabled) << "try"; 4016 4017 // Exceptions aren't allowed in CUDA device code. 4018 if (getLangOpts().CUDA) 4019 CUDADiagIfDeviceCode(TryLoc, diag::err_cuda_device_exceptions) 4020 << "try" << CurrentCUDATarget(); 4021 4022 if (getCurScope() && getCurScope()->isOpenMPSimdDirectiveScope()) 4023 Diag(TryLoc, diag::err_omp_simd_region_cannot_use_stmt) << "try"; 4024 4025 sema::FunctionScopeInfo *FSI = getCurFunction(); 4026 4027 // C++ try is incompatible with SEH __try. 4028 if (!getLangOpts().Borland && FSI->FirstSEHTryLoc.isValid()) { 4029 Diag(TryLoc, diag::err_mixing_cxx_try_seh_try); 4030 Diag(FSI->FirstSEHTryLoc, diag::note_conflicting_try_here) << "'__try'"; 4031 } 4032 4033 const unsigned NumHandlers = Handlers.size(); 4034 assert(!Handlers.empty() && 4035 "The parser shouldn't call this if there are no handlers."); 4036 4037 llvm::DenseMap<CatchHandlerType, CXXCatchStmt *> HandledTypes; 4038 for (unsigned i = 0; i < NumHandlers; ++i) { 4039 CXXCatchStmt *H = cast<CXXCatchStmt>(Handlers[i]); 4040 4041 // Diagnose when the handler is a catch-all handler, but it isn't the last 4042 // handler for the try block. [except.handle]p5. Also, skip exception 4043 // declarations that are invalid, since we can't usefully report on them. 4044 if (!H->getExceptionDecl()) { 4045 if (i < NumHandlers - 1) 4046 return StmtError(Diag(H->getBeginLoc(), diag::err_early_catch_all)); 4047 continue; 4048 } else if (H->getExceptionDecl()->isInvalidDecl()) 4049 continue; 4050 4051 // Walk the type hierarchy to diagnose when this type has already been 4052 // handled (duplication), or cannot be handled (derivation inversion). We 4053 // ignore top-level cv-qualifiers, per [except.handle]p3 4054 CatchHandlerType HandlerCHT = 4055 (QualType)Context.getCanonicalType(H->getCaughtType()); 4056 4057 // We can ignore whether the type is a reference or a pointer; we need the 4058 // underlying declaration type in order to get at the underlying record 4059 // decl, if there is one. 4060 QualType Underlying = HandlerCHT.underlying(); 4061 if (auto *RD = Underlying->getAsCXXRecordDecl()) { 4062 if (!RD->hasDefinition()) 4063 continue; 4064 // Check that none of the public, unambiguous base classes are in the 4065 // map ([except.handle]p1). Give the base classes the same pointer 4066 // qualification as the original type we are basing off of. This allows 4067 // comparison against the handler type using the same top-level pointer 4068 // as the original type. 4069 CXXBasePaths Paths; 4070 Paths.setOrigin(RD); 4071 CatchTypePublicBases CTPB(Context, HandledTypes, HandlerCHT.isPointer()); 4072 if (RD->lookupInBases(CTPB, Paths)) { 4073 const CXXCatchStmt *Problem = CTPB.getFoundHandler(); 4074 if (!Paths.isAmbiguous(CTPB.getFoundHandlerType())) { 4075 Diag(H->getExceptionDecl()->getTypeSpecStartLoc(), 4076 diag::warn_exception_caught_by_earlier_handler) 4077 << H->getCaughtType(); 4078 Diag(Problem->getExceptionDecl()->getTypeSpecStartLoc(), 4079 diag::note_previous_exception_handler) 4080 << Problem->getCaughtType(); 4081 } 4082 } 4083 } 4084 4085 // Add the type the list of ones we have handled; diagnose if we've already 4086 // handled it. 4087 auto R = HandledTypes.insert(std::make_pair(H->getCaughtType(), H)); 4088 if (!R.second) { 4089 const CXXCatchStmt *Problem = R.first->second; 4090 Diag(H->getExceptionDecl()->getTypeSpecStartLoc(), 4091 diag::warn_exception_caught_by_earlier_handler) 4092 << H->getCaughtType(); 4093 Diag(Problem->getExceptionDecl()->getTypeSpecStartLoc(), 4094 diag::note_previous_exception_handler) 4095 << Problem->getCaughtType(); 4096 } 4097 } 4098 4099 FSI->setHasCXXTry(TryLoc); 4100 4101 return CXXTryStmt::Create(Context, TryLoc, TryBlock, Handlers); 4102 } 4103 4104 StmtResult Sema::ActOnSEHTryBlock(bool IsCXXTry, SourceLocation TryLoc, 4105 Stmt *TryBlock, Stmt *Handler) { 4106 assert(TryBlock && Handler); 4107 4108 sema::FunctionScopeInfo *FSI = getCurFunction(); 4109 4110 // SEH __try is incompatible with C++ try. Borland appears to support this, 4111 // however. 4112 if (!getLangOpts().Borland) { 4113 if (FSI->FirstCXXTryLoc.isValid()) { 4114 Diag(TryLoc, diag::err_mixing_cxx_try_seh_try); 4115 Diag(FSI->FirstCXXTryLoc, diag::note_conflicting_try_here) << "'try'"; 4116 } 4117 } 4118 4119 FSI->setHasSEHTry(TryLoc); 4120 4121 // Reject __try in Obj-C methods, blocks, and captured decls, since we don't 4122 // track if they use SEH. 4123 DeclContext *DC = CurContext; 4124 while (DC && !DC->isFunctionOrMethod()) 4125 DC = DC->getParent(); 4126 FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(DC); 4127 if (FD) 4128 FD->setUsesSEHTry(true); 4129 else 4130 Diag(TryLoc, diag::err_seh_try_outside_functions); 4131 4132 // Reject __try on unsupported targets. 4133 if (!Context.getTargetInfo().isSEHTrySupported()) 4134 Diag(TryLoc, diag::err_seh_try_unsupported); 4135 4136 return SEHTryStmt::Create(Context, IsCXXTry, TryLoc, TryBlock, Handler); 4137 } 4138 4139 StmtResult 4140 Sema::ActOnSEHExceptBlock(SourceLocation Loc, 4141 Expr *FilterExpr, 4142 Stmt *Block) { 4143 assert(FilterExpr && Block); 4144 4145 if(!FilterExpr->getType()->isIntegerType()) { 4146 return StmtError(Diag(FilterExpr->getExprLoc(), 4147 diag::err_filter_expression_integral) 4148 << FilterExpr->getType()); 4149 } 4150 4151 return SEHExceptStmt::Create(Context,Loc,FilterExpr,Block); 4152 } 4153 4154 void Sema::ActOnStartSEHFinallyBlock() { 4155 CurrentSEHFinally.push_back(CurScope); 4156 } 4157 4158 void Sema::ActOnAbortSEHFinallyBlock() { 4159 CurrentSEHFinally.pop_back(); 4160 } 4161 4162 StmtResult Sema::ActOnFinishSEHFinallyBlock(SourceLocation Loc, Stmt *Block) { 4163 assert(Block); 4164 CurrentSEHFinally.pop_back(); 4165 return SEHFinallyStmt::Create(Context, Loc, Block); 4166 } 4167 4168 StmtResult 4169 Sema::ActOnSEHLeaveStmt(SourceLocation Loc, Scope *CurScope) { 4170 Scope *SEHTryParent = CurScope; 4171 while (SEHTryParent && !SEHTryParent->isSEHTryScope()) 4172 SEHTryParent = SEHTryParent->getParent(); 4173 if (!SEHTryParent) 4174 return StmtError(Diag(Loc, diag::err_ms___leave_not_in___try)); 4175 CheckJumpOutOfSEHFinally(*this, Loc, *SEHTryParent); 4176 4177 return new (Context) SEHLeaveStmt(Loc); 4178 } 4179 4180 StmtResult Sema::BuildMSDependentExistsStmt(SourceLocation KeywordLoc, 4181 bool IsIfExists, 4182 NestedNameSpecifierLoc QualifierLoc, 4183 DeclarationNameInfo NameInfo, 4184 Stmt *Nested) 4185 { 4186 return new (Context) MSDependentExistsStmt(KeywordLoc, IsIfExists, 4187 QualifierLoc, NameInfo, 4188 cast<CompoundStmt>(Nested)); 4189 } 4190 4191 4192 StmtResult Sema::ActOnMSDependentExistsStmt(SourceLocation KeywordLoc, 4193 bool IsIfExists, 4194 CXXScopeSpec &SS, 4195 UnqualifiedId &Name, 4196 Stmt *Nested) { 4197 return BuildMSDependentExistsStmt(KeywordLoc, IsIfExists, 4198 SS.getWithLocInContext(Context), 4199 GetNameFromUnqualifiedId(Name), 4200 Nested); 4201 } 4202 4203 RecordDecl* 4204 Sema::CreateCapturedStmtRecordDecl(CapturedDecl *&CD, SourceLocation Loc, 4205 unsigned NumParams) { 4206 DeclContext *DC = CurContext; 4207 while (!(DC->isFunctionOrMethod() || DC->isRecord() || DC->isFileContext())) 4208 DC = DC->getParent(); 4209 4210 RecordDecl *RD = nullptr; 4211 if (getLangOpts().CPlusPlus) 4212 RD = CXXRecordDecl::Create(Context, TTK_Struct, DC, Loc, Loc, 4213 /*Id=*/nullptr); 4214 else 4215 RD = RecordDecl::Create(Context, TTK_Struct, DC, Loc, Loc, /*Id=*/nullptr); 4216 4217 RD->setCapturedRecord(); 4218 DC->addDecl(RD); 4219 RD->setImplicit(); 4220 RD->startDefinition(); 4221 4222 assert(NumParams > 0 && "CapturedStmt requires context parameter"); 4223 CD = CapturedDecl::Create(Context, CurContext, NumParams); 4224 DC->addDecl(CD); 4225 return RD; 4226 } 4227 4228 static void 4229 buildCapturedStmtCaptureList(SmallVectorImpl<CapturedStmt::Capture> &Captures, 4230 SmallVectorImpl<Expr *> &CaptureInits, 4231 ArrayRef<sema::Capture> Candidates) { 4232 for (const sema::Capture &Cap : Candidates) { 4233 if (Cap.isThisCapture()) { 4234 Captures.push_back(CapturedStmt::Capture(Cap.getLocation(), 4235 CapturedStmt::VCK_This)); 4236 CaptureInits.push_back(Cap.getInitExpr()); 4237 continue; 4238 } else if (Cap.isVLATypeCapture()) { 4239 Captures.push_back( 4240 CapturedStmt::Capture(Cap.getLocation(), CapturedStmt::VCK_VLAType)); 4241 CaptureInits.push_back(nullptr); 4242 continue; 4243 } 4244 4245 Captures.push_back(CapturedStmt::Capture(Cap.getLocation(), 4246 Cap.isReferenceCapture() 4247 ? CapturedStmt::VCK_ByRef 4248 : CapturedStmt::VCK_ByCopy, 4249 Cap.getVariable())); 4250 CaptureInits.push_back(Cap.getInitExpr()); 4251 } 4252 } 4253 4254 void Sema::ActOnCapturedRegionStart(SourceLocation Loc, Scope *CurScope, 4255 CapturedRegionKind Kind, 4256 unsigned NumParams) { 4257 CapturedDecl *CD = nullptr; 4258 RecordDecl *RD = CreateCapturedStmtRecordDecl(CD, Loc, NumParams); 4259 4260 // Build the context parameter 4261 DeclContext *DC = CapturedDecl::castToDeclContext(CD); 4262 IdentifierInfo *ParamName = &Context.Idents.get("__context"); 4263 QualType ParamType = Context.getPointerType(Context.getTagDeclType(RD)); 4264 auto *Param = 4265 ImplicitParamDecl::Create(Context, DC, Loc, ParamName, ParamType, 4266 ImplicitParamDecl::CapturedContext); 4267 DC->addDecl(Param); 4268 4269 CD->setContextParam(0, Param); 4270 4271 // Enter the capturing scope for this captured region. 4272 PushCapturedRegionScope(CurScope, CD, RD, Kind); 4273 4274 if (CurScope) 4275 PushDeclContext(CurScope, CD); 4276 else 4277 CurContext = CD; 4278 4279 PushExpressionEvaluationContext( 4280 ExpressionEvaluationContext::PotentiallyEvaluated); 4281 } 4282 4283 void Sema::ActOnCapturedRegionStart(SourceLocation Loc, Scope *CurScope, 4284 CapturedRegionKind Kind, 4285 ArrayRef<CapturedParamNameType> Params) { 4286 CapturedDecl *CD = nullptr; 4287 RecordDecl *RD = CreateCapturedStmtRecordDecl(CD, Loc, Params.size()); 4288 4289 // Build the context parameter 4290 DeclContext *DC = CapturedDecl::castToDeclContext(CD); 4291 bool ContextIsFound = false; 4292 unsigned ParamNum = 0; 4293 for (ArrayRef<CapturedParamNameType>::iterator I = Params.begin(), 4294 E = Params.end(); 4295 I != E; ++I, ++ParamNum) { 4296 if (I->second.isNull()) { 4297 assert(!ContextIsFound && 4298 "null type has been found already for '__context' parameter"); 4299 IdentifierInfo *ParamName = &Context.Idents.get("__context"); 4300 QualType ParamType = Context.getPointerType(Context.getTagDeclType(RD)) 4301 .withConst() 4302 .withRestrict(); 4303 auto *Param = 4304 ImplicitParamDecl::Create(Context, DC, Loc, ParamName, ParamType, 4305 ImplicitParamDecl::CapturedContext); 4306 DC->addDecl(Param); 4307 CD->setContextParam(ParamNum, Param); 4308 ContextIsFound = true; 4309 } else { 4310 IdentifierInfo *ParamName = &Context.Idents.get(I->first); 4311 auto *Param = 4312 ImplicitParamDecl::Create(Context, DC, Loc, ParamName, I->second, 4313 ImplicitParamDecl::CapturedContext); 4314 DC->addDecl(Param); 4315 CD->setParam(ParamNum, Param); 4316 } 4317 } 4318 assert(ContextIsFound && "no null type for '__context' parameter"); 4319 if (!ContextIsFound) { 4320 // Add __context implicitly if it is not specified. 4321 IdentifierInfo *ParamName = &Context.Idents.get("__context"); 4322 QualType ParamType = Context.getPointerType(Context.getTagDeclType(RD)); 4323 auto *Param = 4324 ImplicitParamDecl::Create(Context, DC, Loc, ParamName, ParamType, 4325 ImplicitParamDecl::CapturedContext); 4326 DC->addDecl(Param); 4327 CD->setContextParam(ParamNum, Param); 4328 } 4329 // Enter the capturing scope for this captured region. 4330 PushCapturedRegionScope(CurScope, CD, RD, Kind); 4331 4332 if (CurScope) 4333 PushDeclContext(CurScope, CD); 4334 else 4335 CurContext = CD; 4336 4337 PushExpressionEvaluationContext( 4338 ExpressionEvaluationContext::PotentiallyEvaluated); 4339 } 4340 4341 void Sema::ActOnCapturedRegionError() { 4342 DiscardCleanupsInEvaluationContext(); 4343 PopExpressionEvaluationContext(); 4344 4345 CapturedRegionScopeInfo *RSI = getCurCapturedRegion(); 4346 RecordDecl *Record = RSI->TheRecordDecl; 4347 Record->setInvalidDecl(); 4348 4349 SmallVector<Decl*, 4> Fields(Record->fields()); 4350 ActOnFields(/*Scope=*/nullptr, Record->getLocation(), Record, Fields, 4351 SourceLocation(), SourceLocation(), ParsedAttributesView()); 4352 4353 PopDeclContext(); 4354 PopFunctionScopeInfo(); 4355 } 4356 4357 StmtResult Sema::ActOnCapturedRegionEnd(Stmt *S) { 4358 CapturedRegionScopeInfo *RSI = getCurCapturedRegion(); 4359 4360 SmallVector<CapturedStmt::Capture, 4> Captures; 4361 SmallVector<Expr *, 4> CaptureInits; 4362 buildCapturedStmtCaptureList(Captures, CaptureInits, RSI->Captures); 4363 4364 CapturedDecl *CD = RSI->TheCapturedDecl; 4365 RecordDecl *RD = RSI->TheRecordDecl; 4366 4367 CapturedStmt *Res = CapturedStmt::Create( 4368 getASTContext(), S, static_cast<CapturedRegionKind>(RSI->CapRegionKind), 4369 Captures, CaptureInits, CD, RD); 4370 4371 CD->setBody(Res->getCapturedStmt()); 4372 RD->completeDefinition(); 4373 4374 DiscardCleanupsInEvaluationContext(); 4375 PopExpressionEvaluationContext(); 4376 4377 PopDeclContext(); 4378 PopFunctionScopeInfo(); 4379 4380 return Res; 4381 } 4382