1 //===- SemaChecking.cpp - Extra Semantic Checking -------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements extra semantic analysis beyond what is enforced 10 // by the C type system. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "clang/AST/APValue.h" 15 #include "clang/AST/ASTContext.h" 16 #include "clang/AST/Attr.h" 17 #include "clang/AST/AttrIterator.h" 18 #include "clang/AST/CharUnits.h" 19 #include "clang/AST/Decl.h" 20 #include "clang/AST/DeclBase.h" 21 #include "clang/AST/DeclCXX.h" 22 #include "clang/AST/DeclObjC.h" 23 #include "clang/AST/DeclarationName.h" 24 #include "clang/AST/EvaluatedExprVisitor.h" 25 #include "clang/AST/Expr.h" 26 #include "clang/AST/ExprCXX.h" 27 #include "clang/AST/ExprObjC.h" 28 #include "clang/AST/ExprOpenMP.h" 29 #include "clang/AST/FormatString.h" 30 #include "clang/AST/NSAPI.h" 31 #include "clang/AST/NonTrivialTypeVisitor.h" 32 #include "clang/AST/OperationKinds.h" 33 #include "clang/AST/Stmt.h" 34 #include "clang/AST/TemplateBase.h" 35 #include "clang/AST/Type.h" 36 #include "clang/AST/TypeLoc.h" 37 #include "clang/AST/UnresolvedSet.h" 38 #include "clang/Basic/AddressSpaces.h" 39 #include "clang/Basic/CharInfo.h" 40 #include "clang/Basic/Diagnostic.h" 41 #include "clang/Basic/IdentifierTable.h" 42 #include "clang/Basic/LLVM.h" 43 #include "clang/Basic/LangOptions.h" 44 #include "clang/Basic/OpenCLOptions.h" 45 #include "clang/Basic/OperatorKinds.h" 46 #include "clang/Basic/PartialDiagnostic.h" 47 #include "clang/Basic/SourceLocation.h" 48 #include "clang/Basic/SourceManager.h" 49 #include "clang/Basic/Specifiers.h" 50 #include "clang/Basic/SyncScope.h" 51 #include "clang/Basic/TargetBuiltins.h" 52 #include "clang/Basic/TargetCXXABI.h" 53 #include "clang/Basic/TargetInfo.h" 54 #include "clang/Basic/TypeTraits.h" 55 #include "clang/Lex/Lexer.h" // TODO: Extract static functions to fix layering. 56 #include "clang/Sema/Initialization.h" 57 #include "clang/Sema/Lookup.h" 58 #include "clang/Sema/Ownership.h" 59 #include "clang/Sema/Scope.h" 60 #include "clang/Sema/ScopeInfo.h" 61 #include "clang/Sema/Sema.h" 62 #include "clang/Sema/SemaInternal.h" 63 #include "llvm/ADT/APFloat.h" 64 #include "llvm/ADT/APInt.h" 65 #include "llvm/ADT/APSInt.h" 66 #include "llvm/ADT/ArrayRef.h" 67 #include "llvm/ADT/DenseMap.h" 68 #include "llvm/ADT/FoldingSet.h" 69 #include "llvm/ADT/None.h" 70 #include "llvm/ADT/Optional.h" 71 #include "llvm/ADT/STLExtras.h" 72 #include "llvm/ADT/SmallBitVector.h" 73 #include "llvm/ADT/SmallPtrSet.h" 74 #include "llvm/ADT/SmallString.h" 75 #include "llvm/ADT/SmallVector.h" 76 #include "llvm/ADT/StringRef.h" 77 #include "llvm/ADT/StringSwitch.h" 78 #include "llvm/ADT/Triple.h" 79 #include "llvm/Support/AtomicOrdering.h" 80 #include "llvm/Support/Casting.h" 81 #include "llvm/Support/Compiler.h" 82 #include "llvm/Support/ConvertUTF.h" 83 #include "llvm/Support/ErrorHandling.h" 84 #include "llvm/Support/Format.h" 85 #include "llvm/Support/Locale.h" 86 #include "llvm/Support/MathExtras.h" 87 #include "llvm/Support/SaveAndRestore.h" 88 #include "llvm/Support/raw_ostream.h" 89 #include <algorithm> 90 #include <cassert> 91 #include <cstddef> 92 #include <cstdint> 93 #include <functional> 94 #include <limits> 95 #include <string> 96 #include <tuple> 97 #include <utility> 98 99 using namespace clang; 100 using namespace sema; 101 102 SourceLocation Sema::getLocationOfStringLiteralByte(const StringLiteral *SL, 103 unsigned ByteNo) const { 104 return SL->getLocationOfByte(ByteNo, getSourceManager(), LangOpts, 105 Context.getTargetInfo()); 106 } 107 108 /// Checks that a call expression's argument count is the desired number. 109 /// This is useful when doing custom type-checking. Returns true on error. 110 static bool checkArgCount(Sema &S, CallExpr *call, unsigned desiredArgCount) { 111 unsigned argCount = call->getNumArgs(); 112 if (argCount == desiredArgCount) return false; 113 114 if (argCount < desiredArgCount) 115 return S.Diag(call->getEndLoc(), diag::err_typecheck_call_too_few_args) 116 << 0 /*function call*/ << desiredArgCount << argCount 117 << call->getSourceRange(); 118 119 // Highlight all the excess arguments. 120 SourceRange range(call->getArg(desiredArgCount)->getBeginLoc(), 121 call->getArg(argCount - 1)->getEndLoc()); 122 123 return S.Diag(range.getBegin(), diag::err_typecheck_call_too_many_args) 124 << 0 /*function call*/ << desiredArgCount << argCount 125 << call->getArg(1)->getSourceRange(); 126 } 127 128 /// Check that the first argument to __builtin_annotation is an integer 129 /// and the second argument is a non-wide string literal. 130 static bool SemaBuiltinAnnotation(Sema &S, CallExpr *TheCall) { 131 if (checkArgCount(S, TheCall, 2)) 132 return true; 133 134 // First argument should be an integer. 135 Expr *ValArg = TheCall->getArg(0); 136 QualType Ty = ValArg->getType(); 137 if (!Ty->isIntegerType()) { 138 S.Diag(ValArg->getBeginLoc(), diag::err_builtin_annotation_first_arg) 139 << ValArg->getSourceRange(); 140 return true; 141 } 142 143 // Second argument should be a constant string. 144 Expr *StrArg = TheCall->getArg(1)->IgnoreParenCasts(); 145 StringLiteral *Literal = dyn_cast<StringLiteral>(StrArg); 146 if (!Literal || !Literal->isAscii()) { 147 S.Diag(StrArg->getBeginLoc(), diag::err_builtin_annotation_second_arg) 148 << StrArg->getSourceRange(); 149 return true; 150 } 151 152 TheCall->setType(Ty); 153 return false; 154 } 155 156 static bool SemaBuiltinMSVCAnnotation(Sema &S, CallExpr *TheCall) { 157 // We need at least one argument. 158 if (TheCall->getNumArgs() < 1) { 159 S.Diag(TheCall->getEndLoc(), diag::err_typecheck_call_too_few_args_at_least) 160 << 0 << 1 << TheCall->getNumArgs() 161 << TheCall->getCallee()->getSourceRange(); 162 return true; 163 } 164 165 // All arguments should be wide string literals. 166 for (Expr *Arg : TheCall->arguments()) { 167 auto *Literal = dyn_cast<StringLiteral>(Arg->IgnoreParenCasts()); 168 if (!Literal || !Literal->isWide()) { 169 S.Diag(Arg->getBeginLoc(), diag::err_msvc_annotation_wide_str) 170 << Arg->getSourceRange(); 171 return true; 172 } 173 } 174 175 return false; 176 } 177 178 /// Check that the argument to __builtin_addressof is a glvalue, and set the 179 /// result type to the corresponding pointer type. 180 static bool SemaBuiltinAddressof(Sema &S, CallExpr *TheCall) { 181 if (checkArgCount(S, TheCall, 1)) 182 return true; 183 184 ExprResult Arg(TheCall->getArg(0)); 185 QualType ResultType = S.CheckAddressOfOperand(Arg, TheCall->getBeginLoc()); 186 if (ResultType.isNull()) 187 return true; 188 189 TheCall->setArg(0, Arg.get()); 190 TheCall->setType(ResultType); 191 return false; 192 } 193 194 /// Check the number of arguments and set the result type to 195 /// the argument type. 196 static bool SemaBuiltinPreserveAI(Sema &S, CallExpr *TheCall) { 197 if (checkArgCount(S, TheCall, 1)) 198 return true; 199 200 TheCall->setType(TheCall->getArg(0)->getType()); 201 return false; 202 } 203 204 static bool SemaBuiltinOverflow(Sema &S, CallExpr *TheCall) { 205 if (checkArgCount(S, TheCall, 3)) 206 return true; 207 208 // First two arguments should be integers. 209 for (unsigned I = 0; I < 2; ++I) { 210 ExprResult Arg = TheCall->getArg(I); 211 QualType Ty = Arg.get()->getType(); 212 if (!Ty->isIntegerType()) { 213 S.Diag(Arg.get()->getBeginLoc(), diag::err_overflow_builtin_must_be_int) 214 << Ty << Arg.get()->getSourceRange(); 215 return true; 216 } 217 InitializedEntity Entity = InitializedEntity::InitializeParameter( 218 S.getASTContext(), Ty, /*consume*/ false); 219 Arg = S.PerformCopyInitialization(Entity, SourceLocation(), Arg); 220 if (Arg.isInvalid()) 221 return true; 222 TheCall->setArg(I, Arg.get()); 223 } 224 225 // Third argument should be a pointer to a non-const integer. 226 // IRGen correctly handles volatile, restrict, and address spaces, and 227 // the other qualifiers aren't possible. 228 { 229 ExprResult Arg = TheCall->getArg(2); 230 QualType Ty = Arg.get()->getType(); 231 const auto *PtrTy = Ty->getAs<PointerType>(); 232 if (!(PtrTy && PtrTy->getPointeeType()->isIntegerType() && 233 !PtrTy->getPointeeType().isConstQualified())) { 234 S.Diag(Arg.get()->getBeginLoc(), 235 diag::err_overflow_builtin_must_be_ptr_int) 236 << Ty << Arg.get()->getSourceRange(); 237 return true; 238 } 239 InitializedEntity Entity = InitializedEntity::InitializeParameter( 240 S.getASTContext(), Ty, /*consume*/ false); 241 Arg = S.PerformCopyInitialization(Entity, SourceLocation(), Arg); 242 if (Arg.isInvalid()) 243 return true; 244 TheCall->setArg(2, Arg.get()); 245 } 246 return false; 247 } 248 249 static bool SemaBuiltinCallWithStaticChain(Sema &S, CallExpr *BuiltinCall) { 250 if (checkArgCount(S, BuiltinCall, 2)) 251 return true; 252 253 SourceLocation BuiltinLoc = BuiltinCall->getBeginLoc(); 254 Expr *Builtin = BuiltinCall->getCallee()->IgnoreImpCasts(); 255 Expr *Call = BuiltinCall->getArg(0); 256 Expr *Chain = BuiltinCall->getArg(1); 257 258 if (Call->getStmtClass() != Stmt::CallExprClass) { 259 S.Diag(BuiltinLoc, diag::err_first_argument_to_cwsc_not_call) 260 << Call->getSourceRange(); 261 return true; 262 } 263 264 auto CE = cast<CallExpr>(Call); 265 if (CE->getCallee()->getType()->isBlockPointerType()) { 266 S.Diag(BuiltinLoc, diag::err_first_argument_to_cwsc_block_call) 267 << Call->getSourceRange(); 268 return true; 269 } 270 271 const Decl *TargetDecl = CE->getCalleeDecl(); 272 if (const FunctionDecl *FD = dyn_cast_or_null<FunctionDecl>(TargetDecl)) 273 if (FD->getBuiltinID()) { 274 S.Diag(BuiltinLoc, diag::err_first_argument_to_cwsc_builtin_call) 275 << Call->getSourceRange(); 276 return true; 277 } 278 279 if (isa<CXXPseudoDestructorExpr>(CE->getCallee()->IgnoreParens())) { 280 S.Diag(BuiltinLoc, diag::err_first_argument_to_cwsc_pdtor_call) 281 << Call->getSourceRange(); 282 return true; 283 } 284 285 ExprResult ChainResult = S.UsualUnaryConversions(Chain); 286 if (ChainResult.isInvalid()) 287 return true; 288 if (!ChainResult.get()->getType()->isPointerType()) { 289 S.Diag(BuiltinLoc, diag::err_second_argument_to_cwsc_not_pointer) 290 << Chain->getSourceRange(); 291 return true; 292 } 293 294 QualType ReturnTy = CE->getCallReturnType(S.Context); 295 QualType ArgTys[2] = { ReturnTy, ChainResult.get()->getType() }; 296 QualType BuiltinTy = S.Context.getFunctionType( 297 ReturnTy, ArgTys, FunctionProtoType::ExtProtoInfo()); 298 QualType BuiltinPtrTy = S.Context.getPointerType(BuiltinTy); 299 300 Builtin = 301 S.ImpCastExprToType(Builtin, BuiltinPtrTy, CK_BuiltinFnToFnPtr).get(); 302 303 BuiltinCall->setType(CE->getType()); 304 BuiltinCall->setValueKind(CE->getValueKind()); 305 BuiltinCall->setObjectKind(CE->getObjectKind()); 306 BuiltinCall->setCallee(Builtin); 307 BuiltinCall->setArg(1, ChainResult.get()); 308 309 return false; 310 } 311 312 /// Check a call to BuiltinID for buffer overflows. If BuiltinID is a 313 /// __builtin_*_chk function, then use the object size argument specified in the 314 /// source. Otherwise, infer the object size using __builtin_object_size. 315 void Sema::checkFortifiedBuiltinMemoryFunction(FunctionDecl *FD, 316 CallExpr *TheCall) { 317 // FIXME: There are some more useful checks we could be doing here: 318 // - Analyze the format string of sprintf to see how much of buffer is used. 319 // - Evaluate strlen of strcpy arguments, use as object size. 320 321 if (TheCall->isValueDependent() || TheCall->isTypeDependent() || 322 isConstantEvaluated()) 323 return; 324 325 unsigned BuiltinID = FD->getBuiltinID(/*ConsiderWrappers=*/true); 326 if (!BuiltinID) 327 return; 328 329 unsigned DiagID = 0; 330 bool IsChkVariant = false; 331 unsigned SizeIndex, ObjectIndex; 332 switch (BuiltinID) { 333 default: 334 return; 335 case Builtin::BI__builtin___memcpy_chk: 336 case Builtin::BI__builtin___memmove_chk: 337 case Builtin::BI__builtin___memset_chk: 338 case Builtin::BI__builtin___strlcat_chk: 339 case Builtin::BI__builtin___strlcpy_chk: 340 case Builtin::BI__builtin___strncat_chk: 341 case Builtin::BI__builtin___strncpy_chk: 342 case Builtin::BI__builtin___stpncpy_chk: 343 case Builtin::BI__builtin___memccpy_chk: { 344 DiagID = diag::warn_builtin_chk_overflow; 345 IsChkVariant = true; 346 SizeIndex = TheCall->getNumArgs() - 2; 347 ObjectIndex = TheCall->getNumArgs() - 1; 348 break; 349 } 350 351 case Builtin::BI__builtin___snprintf_chk: 352 case Builtin::BI__builtin___vsnprintf_chk: { 353 DiagID = diag::warn_builtin_chk_overflow; 354 IsChkVariant = true; 355 SizeIndex = 1; 356 ObjectIndex = 3; 357 break; 358 } 359 360 case Builtin::BIstrncat: 361 case Builtin::BI__builtin_strncat: 362 case Builtin::BIstrncpy: 363 case Builtin::BI__builtin_strncpy: 364 case Builtin::BIstpncpy: 365 case Builtin::BI__builtin_stpncpy: { 366 // Whether these functions overflow depends on the runtime strlen of the 367 // string, not just the buffer size, so emitting the "always overflow" 368 // diagnostic isn't quite right. We should still diagnose passing a buffer 369 // size larger than the destination buffer though; this is a runtime abort 370 // in _FORTIFY_SOURCE mode, and is quite suspicious otherwise. 371 DiagID = diag::warn_fortify_source_size_mismatch; 372 SizeIndex = TheCall->getNumArgs() - 1; 373 ObjectIndex = 0; 374 break; 375 } 376 377 case Builtin::BImemcpy: 378 case Builtin::BI__builtin_memcpy: 379 case Builtin::BImemmove: 380 case Builtin::BI__builtin_memmove: 381 case Builtin::BImemset: 382 case Builtin::BI__builtin_memset: { 383 DiagID = diag::warn_fortify_source_overflow; 384 SizeIndex = TheCall->getNumArgs() - 1; 385 ObjectIndex = 0; 386 break; 387 } 388 case Builtin::BIsnprintf: 389 case Builtin::BI__builtin_snprintf: 390 case Builtin::BIvsnprintf: 391 case Builtin::BI__builtin_vsnprintf: { 392 DiagID = diag::warn_fortify_source_size_mismatch; 393 SizeIndex = 1; 394 ObjectIndex = 0; 395 break; 396 } 397 } 398 399 llvm::APSInt ObjectSize; 400 // For __builtin___*_chk, the object size is explicitly provided by the caller 401 // (usually using __builtin_object_size). Use that value to check this call. 402 if (IsChkVariant) { 403 Expr::EvalResult Result; 404 Expr *SizeArg = TheCall->getArg(ObjectIndex); 405 if (!SizeArg->EvaluateAsInt(Result, getASTContext())) 406 return; 407 ObjectSize = Result.Val.getInt(); 408 409 // Otherwise, try to evaluate an imaginary call to __builtin_object_size. 410 } else { 411 // If the parameter has a pass_object_size attribute, then we should use its 412 // (potentially) more strict checking mode. Otherwise, conservatively assume 413 // type 0. 414 int BOSType = 0; 415 if (const auto *POS = 416 FD->getParamDecl(ObjectIndex)->getAttr<PassObjectSizeAttr>()) 417 BOSType = POS->getType(); 418 419 Expr *ObjArg = TheCall->getArg(ObjectIndex); 420 uint64_t Result; 421 if (!ObjArg->tryEvaluateObjectSize(Result, getASTContext(), BOSType)) 422 return; 423 // Get the object size in the target's size_t width. 424 const TargetInfo &TI = getASTContext().getTargetInfo(); 425 unsigned SizeTypeWidth = TI.getTypeWidth(TI.getSizeType()); 426 ObjectSize = llvm::APSInt::getUnsigned(Result).extOrTrunc(SizeTypeWidth); 427 } 428 429 // Evaluate the number of bytes of the object that this call will use. 430 Expr::EvalResult Result; 431 Expr *UsedSizeArg = TheCall->getArg(SizeIndex); 432 if (!UsedSizeArg->EvaluateAsInt(Result, getASTContext())) 433 return; 434 llvm::APSInt UsedSize = Result.Val.getInt(); 435 436 if (UsedSize.ule(ObjectSize)) 437 return; 438 439 StringRef FunctionName = getASTContext().BuiltinInfo.getName(BuiltinID); 440 // Skim off the details of whichever builtin was called to produce a better 441 // diagnostic, as it's unlikley that the user wrote the __builtin explicitly. 442 if (IsChkVariant) { 443 FunctionName = FunctionName.drop_front(std::strlen("__builtin___")); 444 FunctionName = FunctionName.drop_back(std::strlen("_chk")); 445 } else if (FunctionName.startswith("__builtin_")) { 446 FunctionName = FunctionName.drop_front(std::strlen("__builtin_")); 447 } 448 449 DiagRuntimeBehavior(TheCall->getBeginLoc(), TheCall, 450 PDiag(DiagID) 451 << FunctionName << ObjectSize.toString(/*Radix=*/10) 452 << UsedSize.toString(/*Radix=*/10)); 453 } 454 455 static bool SemaBuiltinSEHScopeCheck(Sema &SemaRef, CallExpr *TheCall, 456 Scope::ScopeFlags NeededScopeFlags, 457 unsigned DiagID) { 458 // Scopes aren't available during instantiation. Fortunately, builtin 459 // functions cannot be template args so they cannot be formed through template 460 // instantiation. Therefore checking once during the parse is sufficient. 461 if (SemaRef.inTemplateInstantiation()) 462 return false; 463 464 Scope *S = SemaRef.getCurScope(); 465 while (S && !S->isSEHExceptScope()) 466 S = S->getParent(); 467 if (!S || !(S->getFlags() & NeededScopeFlags)) { 468 auto *DRE = cast<DeclRefExpr>(TheCall->getCallee()->IgnoreParenCasts()); 469 SemaRef.Diag(TheCall->getExprLoc(), DiagID) 470 << DRE->getDecl()->getIdentifier(); 471 return true; 472 } 473 474 return false; 475 } 476 477 static inline bool isBlockPointer(Expr *Arg) { 478 return Arg->getType()->isBlockPointerType(); 479 } 480 481 /// OpenCL C v2.0, s6.13.17.2 - Checks that the block parameters are all local 482 /// void*, which is a requirement of device side enqueue. 483 static bool checkOpenCLBlockArgs(Sema &S, Expr *BlockArg) { 484 const BlockPointerType *BPT = 485 cast<BlockPointerType>(BlockArg->getType().getCanonicalType()); 486 ArrayRef<QualType> Params = 487 BPT->getPointeeType()->castAs<FunctionProtoType>()->getParamTypes(); 488 unsigned ArgCounter = 0; 489 bool IllegalParams = false; 490 // Iterate through the block parameters until either one is found that is not 491 // a local void*, or the block is valid. 492 for (ArrayRef<QualType>::iterator I = Params.begin(), E = Params.end(); 493 I != E; ++I, ++ArgCounter) { 494 if (!(*I)->isPointerType() || !(*I)->getPointeeType()->isVoidType() || 495 (*I)->getPointeeType().getQualifiers().getAddressSpace() != 496 LangAS::opencl_local) { 497 // Get the location of the error. If a block literal has been passed 498 // (BlockExpr) then we can point straight to the offending argument, 499 // else we just point to the variable reference. 500 SourceLocation ErrorLoc; 501 if (isa<BlockExpr>(BlockArg)) { 502 BlockDecl *BD = cast<BlockExpr>(BlockArg)->getBlockDecl(); 503 ErrorLoc = BD->getParamDecl(ArgCounter)->getBeginLoc(); 504 } else if (isa<DeclRefExpr>(BlockArg)) { 505 ErrorLoc = cast<DeclRefExpr>(BlockArg)->getBeginLoc(); 506 } 507 S.Diag(ErrorLoc, 508 diag::err_opencl_enqueue_kernel_blocks_non_local_void_args); 509 IllegalParams = true; 510 } 511 } 512 513 return IllegalParams; 514 } 515 516 static bool checkOpenCLSubgroupExt(Sema &S, CallExpr *Call) { 517 if (!S.getOpenCLOptions().isEnabled("cl_khr_subgroups")) { 518 S.Diag(Call->getBeginLoc(), diag::err_opencl_requires_extension) 519 << 1 << Call->getDirectCallee() << "cl_khr_subgroups"; 520 return true; 521 } 522 return false; 523 } 524 525 static bool SemaOpenCLBuiltinNDRangeAndBlock(Sema &S, CallExpr *TheCall) { 526 if (checkArgCount(S, TheCall, 2)) 527 return true; 528 529 if (checkOpenCLSubgroupExt(S, TheCall)) 530 return true; 531 532 // First argument is an ndrange_t type. 533 Expr *NDRangeArg = TheCall->getArg(0); 534 if (NDRangeArg->getType().getUnqualifiedType().getAsString() != "ndrange_t") { 535 S.Diag(NDRangeArg->getBeginLoc(), diag::err_opencl_builtin_expected_type) 536 << TheCall->getDirectCallee() << "'ndrange_t'"; 537 return true; 538 } 539 540 Expr *BlockArg = TheCall->getArg(1); 541 if (!isBlockPointer(BlockArg)) { 542 S.Diag(BlockArg->getBeginLoc(), diag::err_opencl_builtin_expected_type) 543 << TheCall->getDirectCallee() << "block"; 544 return true; 545 } 546 return checkOpenCLBlockArgs(S, BlockArg); 547 } 548 549 /// OpenCL C v2.0, s6.13.17.6 - Check the argument to the 550 /// get_kernel_work_group_size 551 /// and get_kernel_preferred_work_group_size_multiple builtin functions. 552 static bool SemaOpenCLBuiltinKernelWorkGroupSize(Sema &S, CallExpr *TheCall) { 553 if (checkArgCount(S, TheCall, 1)) 554 return true; 555 556 Expr *BlockArg = TheCall->getArg(0); 557 if (!isBlockPointer(BlockArg)) { 558 S.Diag(BlockArg->getBeginLoc(), diag::err_opencl_builtin_expected_type) 559 << TheCall->getDirectCallee() << "block"; 560 return true; 561 } 562 return checkOpenCLBlockArgs(S, BlockArg); 563 } 564 565 /// Diagnose integer type and any valid implicit conversion to it. 566 static bool checkOpenCLEnqueueIntType(Sema &S, Expr *E, 567 const QualType &IntType); 568 569 static bool checkOpenCLEnqueueLocalSizeArgs(Sema &S, CallExpr *TheCall, 570 unsigned Start, unsigned End) { 571 bool IllegalParams = false; 572 for (unsigned I = Start; I <= End; ++I) 573 IllegalParams |= checkOpenCLEnqueueIntType(S, TheCall->getArg(I), 574 S.Context.getSizeType()); 575 return IllegalParams; 576 } 577 578 /// OpenCL v2.0, s6.13.17.1 - Check that sizes are provided for all 579 /// 'local void*' parameter of passed block. 580 static bool checkOpenCLEnqueueVariadicArgs(Sema &S, CallExpr *TheCall, 581 Expr *BlockArg, 582 unsigned NumNonVarArgs) { 583 const BlockPointerType *BPT = 584 cast<BlockPointerType>(BlockArg->getType().getCanonicalType()); 585 unsigned NumBlockParams = 586 BPT->getPointeeType()->castAs<FunctionProtoType>()->getNumParams(); 587 unsigned TotalNumArgs = TheCall->getNumArgs(); 588 589 // For each argument passed to the block, a corresponding uint needs to 590 // be passed to describe the size of the local memory. 591 if (TotalNumArgs != NumBlockParams + NumNonVarArgs) { 592 S.Diag(TheCall->getBeginLoc(), 593 diag::err_opencl_enqueue_kernel_local_size_args); 594 return true; 595 } 596 597 // Check that the sizes of the local memory are specified by integers. 598 return checkOpenCLEnqueueLocalSizeArgs(S, TheCall, NumNonVarArgs, 599 TotalNumArgs - 1); 600 } 601 602 /// OpenCL C v2.0, s6.13.17 - Enqueue kernel function contains four different 603 /// overload formats specified in Table 6.13.17.1. 604 /// int enqueue_kernel(queue_t queue, 605 /// kernel_enqueue_flags_t flags, 606 /// const ndrange_t ndrange, 607 /// void (^block)(void)) 608 /// int enqueue_kernel(queue_t queue, 609 /// kernel_enqueue_flags_t flags, 610 /// const ndrange_t ndrange, 611 /// uint num_events_in_wait_list, 612 /// clk_event_t *event_wait_list, 613 /// clk_event_t *event_ret, 614 /// void (^block)(void)) 615 /// int enqueue_kernel(queue_t queue, 616 /// kernel_enqueue_flags_t flags, 617 /// const ndrange_t ndrange, 618 /// void (^block)(local void*, ...), 619 /// uint size0, ...) 620 /// int enqueue_kernel(queue_t queue, 621 /// kernel_enqueue_flags_t flags, 622 /// const ndrange_t ndrange, 623 /// uint num_events_in_wait_list, 624 /// clk_event_t *event_wait_list, 625 /// clk_event_t *event_ret, 626 /// void (^block)(local void*, ...), 627 /// uint size0, ...) 628 static bool SemaOpenCLBuiltinEnqueueKernel(Sema &S, CallExpr *TheCall) { 629 unsigned NumArgs = TheCall->getNumArgs(); 630 631 if (NumArgs < 4) { 632 S.Diag(TheCall->getBeginLoc(), 633 diag::err_typecheck_call_too_few_args_at_least) 634 << 0 << 4 << NumArgs; 635 return true; 636 } 637 638 Expr *Arg0 = TheCall->getArg(0); 639 Expr *Arg1 = TheCall->getArg(1); 640 Expr *Arg2 = TheCall->getArg(2); 641 Expr *Arg3 = TheCall->getArg(3); 642 643 // First argument always needs to be a queue_t type. 644 if (!Arg0->getType()->isQueueT()) { 645 S.Diag(TheCall->getArg(0)->getBeginLoc(), 646 diag::err_opencl_builtin_expected_type) 647 << TheCall->getDirectCallee() << S.Context.OCLQueueTy; 648 return true; 649 } 650 651 // Second argument always needs to be a kernel_enqueue_flags_t enum value. 652 if (!Arg1->getType()->isIntegerType()) { 653 S.Diag(TheCall->getArg(1)->getBeginLoc(), 654 diag::err_opencl_builtin_expected_type) 655 << TheCall->getDirectCallee() << "'kernel_enqueue_flags_t' (i.e. uint)"; 656 return true; 657 } 658 659 // Third argument is always an ndrange_t type. 660 if (Arg2->getType().getUnqualifiedType().getAsString() != "ndrange_t") { 661 S.Diag(TheCall->getArg(2)->getBeginLoc(), 662 diag::err_opencl_builtin_expected_type) 663 << TheCall->getDirectCallee() << "'ndrange_t'"; 664 return true; 665 } 666 667 // With four arguments, there is only one form that the function could be 668 // called in: no events and no variable arguments. 669 if (NumArgs == 4) { 670 // check that the last argument is the right block type. 671 if (!isBlockPointer(Arg3)) { 672 S.Diag(Arg3->getBeginLoc(), diag::err_opencl_builtin_expected_type) 673 << TheCall->getDirectCallee() << "block"; 674 return true; 675 } 676 // we have a block type, check the prototype 677 const BlockPointerType *BPT = 678 cast<BlockPointerType>(Arg3->getType().getCanonicalType()); 679 if (BPT->getPointeeType()->castAs<FunctionProtoType>()->getNumParams() > 0) { 680 S.Diag(Arg3->getBeginLoc(), 681 diag::err_opencl_enqueue_kernel_blocks_no_args); 682 return true; 683 } 684 return false; 685 } 686 // we can have block + varargs. 687 if (isBlockPointer(Arg3)) 688 return (checkOpenCLBlockArgs(S, Arg3) || 689 checkOpenCLEnqueueVariadicArgs(S, TheCall, Arg3, 4)); 690 // last two cases with either exactly 7 args or 7 args and varargs. 691 if (NumArgs >= 7) { 692 // check common block argument. 693 Expr *Arg6 = TheCall->getArg(6); 694 if (!isBlockPointer(Arg6)) { 695 S.Diag(Arg6->getBeginLoc(), diag::err_opencl_builtin_expected_type) 696 << TheCall->getDirectCallee() << "block"; 697 return true; 698 } 699 if (checkOpenCLBlockArgs(S, Arg6)) 700 return true; 701 702 // Forth argument has to be any integer type. 703 if (!Arg3->getType()->isIntegerType()) { 704 S.Diag(TheCall->getArg(3)->getBeginLoc(), 705 diag::err_opencl_builtin_expected_type) 706 << TheCall->getDirectCallee() << "integer"; 707 return true; 708 } 709 // check remaining common arguments. 710 Expr *Arg4 = TheCall->getArg(4); 711 Expr *Arg5 = TheCall->getArg(5); 712 713 // Fifth argument is always passed as a pointer to clk_event_t. 714 if (!Arg4->isNullPointerConstant(S.Context, 715 Expr::NPC_ValueDependentIsNotNull) && 716 !Arg4->getType()->getPointeeOrArrayElementType()->isClkEventT()) { 717 S.Diag(TheCall->getArg(4)->getBeginLoc(), 718 diag::err_opencl_builtin_expected_type) 719 << TheCall->getDirectCallee() 720 << S.Context.getPointerType(S.Context.OCLClkEventTy); 721 return true; 722 } 723 724 // Sixth argument is always passed as a pointer to clk_event_t. 725 if (!Arg5->isNullPointerConstant(S.Context, 726 Expr::NPC_ValueDependentIsNotNull) && 727 !(Arg5->getType()->isPointerType() && 728 Arg5->getType()->getPointeeType()->isClkEventT())) { 729 S.Diag(TheCall->getArg(5)->getBeginLoc(), 730 diag::err_opencl_builtin_expected_type) 731 << TheCall->getDirectCallee() 732 << S.Context.getPointerType(S.Context.OCLClkEventTy); 733 return true; 734 } 735 736 if (NumArgs == 7) 737 return false; 738 739 return checkOpenCLEnqueueVariadicArgs(S, TheCall, Arg6, 7); 740 } 741 742 // None of the specific case has been detected, give generic error 743 S.Diag(TheCall->getBeginLoc(), 744 diag::err_opencl_enqueue_kernel_incorrect_args); 745 return true; 746 } 747 748 /// Returns OpenCL access qual. 749 static OpenCLAccessAttr *getOpenCLArgAccess(const Decl *D) { 750 return D->getAttr<OpenCLAccessAttr>(); 751 } 752 753 /// Returns true if pipe element type is different from the pointer. 754 static bool checkOpenCLPipeArg(Sema &S, CallExpr *Call) { 755 const Expr *Arg0 = Call->getArg(0); 756 // First argument type should always be pipe. 757 if (!Arg0->getType()->isPipeType()) { 758 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_first_arg) 759 << Call->getDirectCallee() << Arg0->getSourceRange(); 760 return true; 761 } 762 OpenCLAccessAttr *AccessQual = 763 getOpenCLArgAccess(cast<DeclRefExpr>(Arg0)->getDecl()); 764 // Validates the access qualifier is compatible with the call. 765 // OpenCL v2.0 s6.13.16 - The access qualifiers for pipe should only be 766 // read_only and write_only, and assumed to be read_only if no qualifier is 767 // specified. 768 switch (Call->getDirectCallee()->getBuiltinID()) { 769 case Builtin::BIread_pipe: 770 case Builtin::BIreserve_read_pipe: 771 case Builtin::BIcommit_read_pipe: 772 case Builtin::BIwork_group_reserve_read_pipe: 773 case Builtin::BIsub_group_reserve_read_pipe: 774 case Builtin::BIwork_group_commit_read_pipe: 775 case Builtin::BIsub_group_commit_read_pipe: 776 if (!(!AccessQual || AccessQual->isReadOnly())) { 777 S.Diag(Arg0->getBeginLoc(), 778 diag::err_opencl_builtin_pipe_invalid_access_modifier) 779 << "read_only" << Arg0->getSourceRange(); 780 return true; 781 } 782 break; 783 case Builtin::BIwrite_pipe: 784 case Builtin::BIreserve_write_pipe: 785 case Builtin::BIcommit_write_pipe: 786 case Builtin::BIwork_group_reserve_write_pipe: 787 case Builtin::BIsub_group_reserve_write_pipe: 788 case Builtin::BIwork_group_commit_write_pipe: 789 case Builtin::BIsub_group_commit_write_pipe: 790 if (!(AccessQual && AccessQual->isWriteOnly())) { 791 S.Diag(Arg0->getBeginLoc(), 792 diag::err_opencl_builtin_pipe_invalid_access_modifier) 793 << "write_only" << Arg0->getSourceRange(); 794 return true; 795 } 796 break; 797 default: 798 break; 799 } 800 return false; 801 } 802 803 /// Returns true if pipe element type is different from the pointer. 804 static bool checkOpenCLPipePacketType(Sema &S, CallExpr *Call, unsigned Idx) { 805 const Expr *Arg0 = Call->getArg(0); 806 const Expr *ArgIdx = Call->getArg(Idx); 807 const PipeType *PipeTy = cast<PipeType>(Arg0->getType()); 808 const QualType EltTy = PipeTy->getElementType(); 809 const PointerType *ArgTy = ArgIdx->getType()->getAs<PointerType>(); 810 // The Idx argument should be a pointer and the type of the pointer and 811 // the type of pipe element should also be the same. 812 if (!ArgTy || 813 !S.Context.hasSameType( 814 EltTy, ArgTy->getPointeeType()->getCanonicalTypeInternal())) { 815 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_invalid_arg) 816 << Call->getDirectCallee() << S.Context.getPointerType(EltTy) 817 << ArgIdx->getType() << ArgIdx->getSourceRange(); 818 return true; 819 } 820 return false; 821 } 822 823 // Performs semantic analysis for the read/write_pipe call. 824 // \param S Reference to the semantic analyzer. 825 // \param Call A pointer to the builtin call. 826 // \return True if a semantic error has been found, false otherwise. 827 static bool SemaBuiltinRWPipe(Sema &S, CallExpr *Call) { 828 // OpenCL v2.0 s6.13.16.2 - The built-in read/write 829 // functions have two forms. 830 switch (Call->getNumArgs()) { 831 case 2: 832 if (checkOpenCLPipeArg(S, Call)) 833 return true; 834 // The call with 2 arguments should be 835 // read/write_pipe(pipe T, T*). 836 // Check packet type T. 837 if (checkOpenCLPipePacketType(S, Call, 1)) 838 return true; 839 break; 840 841 case 4: { 842 if (checkOpenCLPipeArg(S, Call)) 843 return true; 844 // The call with 4 arguments should be 845 // read/write_pipe(pipe T, reserve_id_t, uint, T*). 846 // Check reserve_id_t. 847 if (!Call->getArg(1)->getType()->isReserveIDT()) { 848 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_invalid_arg) 849 << Call->getDirectCallee() << S.Context.OCLReserveIDTy 850 << Call->getArg(1)->getType() << Call->getArg(1)->getSourceRange(); 851 return true; 852 } 853 854 // Check the index. 855 const Expr *Arg2 = Call->getArg(2); 856 if (!Arg2->getType()->isIntegerType() && 857 !Arg2->getType()->isUnsignedIntegerType()) { 858 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_invalid_arg) 859 << Call->getDirectCallee() << S.Context.UnsignedIntTy 860 << Arg2->getType() << Arg2->getSourceRange(); 861 return true; 862 } 863 864 // Check packet type T. 865 if (checkOpenCLPipePacketType(S, Call, 3)) 866 return true; 867 } break; 868 default: 869 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_arg_num) 870 << Call->getDirectCallee() << Call->getSourceRange(); 871 return true; 872 } 873 874 return false; 875 } 876 877 // Performs a semantic analysis on the {work_group_/sub_group_ 878 // /_}reserve_{read/write}_pipe 879 // \param S Reference to the semantic analyzer. 880 // \param Call The call to the builtin function to be analyzed. 881 // \return True if a semantic error was found, false otherwise. 882 static bool SemaBuiltinReserveRWPipe(Sema &S, CallExpr *Call) { 883 if (checkArgCount(S, Call, 2)) 884 return true; 885 886 if (checkOpenCLPipeArg(S, Call)) 887 return true; 888 889 // Check the reserve size. 890 if (!Call->getArg(1)->getType()->isIntegerType() && 891 !Call->getArg(1)->getType()->isUnsignedIntegerType()) { 892 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_invalid_arg) 893 << Call->getDirectCallee() << S.Context.UnsignedIntTy 894 << Call->getArg(1)->getType() << Call->getArg(1)->getSourceRange(); 895 return true; 896 } 897 898 // Since return type of reserve_read/write_pipe built-in function is 899 // reserve_id_t, which is not defined in the builtin def file , we used int 900 // as return type and need to override the return type of these functions. 901 Call->setType(S.Context.OCLReserveIDTy); 902 903 return false; 904 } 905 906 // Performs a semantic analysis on {work_group_/sub_group_ 907 // /_}commit_{read/write}_pipe 908 // \param S Reference to the semantic analyzer. 909 // \param Call The call to the builtin function to be analyzed. 910 // \return True if a semantic error was found, false otherwise. 911 static bool SemaBuiltinCommitRWPipe(Sema &S, CallExpr *Call) { 912 if (checkArgCount(S, Call, 2)) 913 return true; 914 915 if (checkOpenCLPipeArg(S, Call)) 916 return true; 917 918 // Check reserve_id_t. 919 if (!Call->getArg(1)->getType()->isReserveIDT()) { 920 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_invalid_arg) 921 << Call->getDirectCallee() << S.Context.OCLReserveIDTy 922 << Call->getArg(1)->getType() << Call->getArg(1)->getSourceRange(); 923 return true; 924 } 925 926 return false; 927 } 928 929 // Performs a semantic analysis on the call to built-in Pipe 930 // Query Functions. 931 // \param S Reference to the semantic analyzer. 932 // \param Call The call to the builtin function to be analyzed. 933 // \return True if a semantic error was found, false otherwise. 934 static bool SemaBuiltinPipePackets(Sema &S, CallExpr *Call) { 935 if (checkArgCount(S, Call, 1)) 936 return true; 937 938 if (!Call->getArg(0)->getType()->isPipeType()) { 939 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_pipe_first_arg) 940 << Call->getDirectCallee() << Call->getArg(0)->getSourceRange(); 941 return true; 942 } 943 944 return false; 945 } 946 947 // OpenCL v2.0 s6.13.9 - Address space qualifier functions. 948 // Performs semantic analysis for the to_global/local/private call. 949 // \param S Reference to the semantic analyzer. 950 // \param BuiltinID ID of the builtin function. 951 // \param Call A pointer to the builtin call. 952 // \return True if a semantic error has been found, false otherwise. 953 static bool SemaOpenCLBuiltinToAddr(Sema &S, unsigned BuiltinID, 954 CallExpr *Call) { 955 if (Call->getNumArgs() != 1) { 956 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_to_addr_arg_num) 957 << Call->getDirectCallee() << Call->getSourceRange(); 958 return true; 959 } 960 961 auto RT = Call->getArg(0)->getType(); 962 if (!RT->isPointerType() || RT->getPointeeType() 963 .getAddressSpace() == LangAS::opencl_constant) { 964 S.Diag(Call->getBeginLoc(), diag::err_opencl_builtin_to_addr_invalid_arg) 965 << Call->getArg(0) << Call->getDirectCallee() << Call->getSourceRange(); 966 return true; 967 } 968 969 if (RT->getPointeeType().getAddressSpace() != LangAS::opencl_generic) { 970 S.Diag(Call->getArg(0)->getBeginLoc(), 971 diag::warn_opencl_generic_address_space_arg) 972 << Call->getDirectCallee()->getNameInfo().getAsString() 973 << Call->getArg(0)->getSourceRange(); 974 } 975 976 RT = RT->getPointeeType(); 977 auto Qual = RT.getQualifiers(); 978 switch (BuiltinID) { 979 case Builtin::BIto_global: 980 Qual.setAddressSpace(LangAS::opencl_global); 981 break; 982 case Builtin::BIto_local: 983 Qual.setAddressSpace(LangAS::opencl_local); 984 break; 985 case Builtin::BIto_private: 986 Qual.setAddressSpace(LangAS::opencl_private); 987 break; 988 default: 989 llvm_unreachable("Invalid builtin function"); 990 } 991 Call->setType(S.Context.getPointerType(S.Context.getQualifiedType( 992 RT.getUnqualifiedType(), Qual))); 993 994 return false; 995 } 996 997 static ExprResult SemaBuiltinLaunder(Sema &S, CallExpr *TheCall) { 998 if (checkArgCount(S, TheCall, 1)) 999 return ExprError(); 1000 1001 // Compute __builtin_launder's parameter type from the argument. 1002 // The parameter type is: 1003 // * The type of the argument if it's not an array or function type, 1004 // Otherwise, 1005 // * The decayed argument type. 1006 QualType ParamTy = [&]() { 1007 QualType ArgTy = TheCall->getArg(0)->getType(); 1008 if (const ArrayType *Ty = ArgTy->getAsArrayTypeUnsafe()) 1009 return S.Context.getPointerType(Ty->getElementType()); 1010 if (ArgTy->isFunctionType()) { 1011 return S.Context.getPointerType(ArgTy); 1012 } 1013 return ArgTy; 1014 }(); 1015 1016 TheCall->setType(ParamTy); 1017 1018 auto DiagSelect = [&]() -> llvm::Optional<unsigned> { 1019 if (!ParamTy->isPointerType()) 1020 return 0; 1021 if (ParamTy->isFunctionPointerType()) 1022 return 1; 1023 if (ParamTy->isVoidPointerType()) 1024 return 2; 1025 return llvm::Optional<unsigned>{}; 1026 }(); 1027 if (DiagSelect.hasValue()) { 1028 S.Diag(TheCall->getBeginLoc(), diag::err_builtin_launder_invalid_arg) 1029 << DiagSelect.getValue() << TheCall->getSourceRange(); 1030 return ExprError(); 1031 } 1032 1033 // We either have an incomplete class type, or we have a class template 1034 // whose instantiation has not been forced. Example: 1035 // 1036 // template <class T> struct Foo { T value; }; 1037 // Foo<int> *p = nullptr; 1038 // auto *d = __builtin_launder(p); 1039 if (S.RequireCompleteType(TheCall->getBeginLoc(), ParamTy->getPointeeType(), 1040 diag::err_incomplete_type)) 1041 return ExprError(); 1042 1043 assert(ParamTy->getPointeeType()->isObjectType() && 1044 "Unhandled non-object pointer case"); 1045 1046 InitializedEntity Entity = 1047 InitializedEntity::InitializeParameter(S.Context, ParamTy, false); 1048 ExprResult Arg = 1049 S.PerformCopyInitialization(Entity, SourceLocation(), TheCall->getArg(0)); 1050 if (Arg.isInvalid()) 1051 return ExprError(); 1052 TheCall->setArg(0, Arg.get()); 1053 1054 return TheCall; 1055 } 1056 1057 // Emit an error and return true if the current architecture is not in the list 1058 // of supported architectures. 1059 static bool 1060 CheckBuiltinTargetSupport(Sema &S, unsigned BuiltinID, CallExpr *TheCall, 1061 ArrayRef<llvm::Triple::ArchType> SupportedArchs) { 1062 llvm::Triple::ArchType CurArch = 1063 S.getASTContext().getTargetInfo().getTriple().getArch(); 1064 if (llvm::is_contained(SupportedArchs, CurArch)) 1065 return false; 1066 S.Diag(TheCall->getBeginLoc(), diag::err_builtin_target_unsupported) 1067 << TheCall->getSourceRange(); 1068 return true; 1069 } 1070 1071 ExprResult 1072 Sema::CheckBuiltinFunctionCall(FunctionDecl *FDecl, unsigned BuiltinID, 1073 CallExpr *TheCall) { 1074 ExprResult TheCallResult(TheCall); 1075 1076 // Find out if any arguments are required to be integer constant expressions. 1077 unsigned ICEArguments = 0; 1078 ASTContext::GetBuiltinTypeError Error; 1079 Context.GetBuiltinType(BuiltinID, Error, &ICEArguments); 1080 if (Error != ASTContext::GE_None) 1081 ICEArguments = 0; // Don't diagnose previously diagnosed errors. 1082 1083 // If any arguments are required to be ICE's, check and diagnose. 1084 for (unsigned ArgNo = 0; ICEArguments != 0; ++ArgNo) { 1085 // Skip arguments not required to be ICE's. 1086 if ((ICEArguments & (1 << ArgNo)) == 0) continue; 1087 1088 llvm::APSInt Result; 1089 if (SemaBuiltinConstantArg(TheCall, ArgNo, Result)) 1090 return true; 1091 ICEArguments &= ~(1 << ArgNo); 1092 } 1093 1094 switch (BuiltinID) { 1095 case Builtin::BI__builtin___CFStringMakeConstantString: 1096 assert(TheCall->getNumArgs() == 1 && 1097 "Wrong # arguments to builtin CFStringMakeConstantString"); 1098 if (CheckObjCString(TheCall->getArg(0))) 1099 return ExprError(); 1100 break; 1101 case Builtin::BI__builtin_ms_va_start: 1102 case Builtin::BI__builtin_stdarg_start: 1103 case Builtin::BI__builtin_va_start: 1104 if (SemaBuiltinVAStart(BuiltinID, TheCall)) 1105 return ExprError(); 1106 break; 1107 case Builtin::BI__va_start: { 1108 switch (Context.getTargetInfo().getTriple().getArch()) { 1109 case llvm::Triple::aarch64: 1110 case llvm::Triple::arm: 1111 case llvm::Triple::thumb: 1112 if (SemaBuiltinVAStartARMMicrosoft(TheCall)) 1113 return ExprError(); 1114 break; 1115 default: 1116 if (SemaBuiltinVAStart(BuiltinID, TheCall)) 1117 return ExprError(); 1118 break; 1119 } 1120 break; 1121 } 1122 1123 // The acquire, release, and no fence variants are ARM and AArch64 only. 1124 case Builtin::BI_interlockedbittestandset_acq: 1125 case Builtin::BI_interlockedbittestandset_rel: 1126 case Builtin::BI_interlockedbittestandset_nf: 1127 case Builtin::BI_interlockedbittestandreset_acq: 1128 case Builtin::BI_interlockedbittestandreset_rel: 1129 case Builtin::BI_interlockedbittestandreset_nf: 1130 if (CheckBuiltinTargetSupport( 1131 *this, BuiltinID, TheCall, 1132 {llvm::Triple::arm, llvm::Triple::thumb, llvm::Triple::aarch64})) 1133 return ExprError(); 1134 break; 1135 1136 // The 64-bit bittest variants are x64, ARM, and AArch64 only. 1137 case Builtin::BI_bittest64: 1138 case Builtin::BI_bittestandcomplement64: 1139 case Builtin::BI_bittestandreset64: 1140 case Builtin::BI_bittestandset64: 1141 case Builtin::BI_interlockedbittestandreset64: 1142 case Builtin::BI_interlockedbittestandset64: 1143 if (CheckBuiltinTargetSupport(*this, BuiltinID, TheCall, 1144 {llvm::Triple::x86_64, llvm::Triple::arm, 1145 llvm::Triple::thumb, llvm::Triple::aarch64})) 1146 return ExprError(); 1147 break; 1148 1149 case Builtin::BI__builtin_isgreater: 1150 case Builtin::BI__builtin_isgreaterequal: 1151 case Builtin::BI__builtin_isless: 1152 case Builtin::BI__builtin_islessequal: 1153 case Builtin::BI__builtin_islessgreater: 1154 case Builtin::BI__builtin_isunordered: 1155 if (SemaBuiltinUnorderedCompare(TheCall)) 1156 return ExprError(); 1157 break; 1158 case Builtin::BI__builtin_fpclassify: 1159 if (SemaBuiltinFPClassification(TheCall, 6)) 1160 return ExprError(); 1161 break; 1162 case Builtin::BI__builtin_isfinite: 1163 case Builtin::BI__builtin_isinf: 1164 case Builtin::BI__builtin_isinf_sign: 1165 case Builtin::BI__builtin_isnan: 1166 case Builtin::BI__builtin_isnormal: 1167 case Builtin::BI__builtin_signbit: 1168 case Builtin::BI__builtin_signbitf: 1169 case Builtin::BI__builtin_signbitl: 1170 if (SemaBuiltinFPClassification(TheCall, 1)) 1171 return ExprError(); 1172 break; 1173 case Builtin::BI__builtin_shufflevector: 1174 return SemaBuiltinShuffleVector(TheCall); 1175 // TheCall will be freed by the smart pointer here, but that's fine, since 1176 // SemaBuiltinShuffleVector guts it, but then doesn't release it. 1177 case Builtin::BI__builtin_prefetch: 1178 if (SemaBuiltinPrefetch(TheCall)) 1179 return ExprError(); 1180 break; 1181 case Builtin::BI__builtin_alloca_with_align: 1182 if (SemaBuiltinAllocaWithAlign(TheCall)) 1183 return ExprError(); 1184 LLVM_FALLTHROUGH; 1185 case Builtin::BI__builtin_alloca: 1186 Diag(TheCall->getBeginLoc(), diag::warn_alloca) 1187 << TheCall->getDirectCallee(); 1188 break; 1189 case Builtin::BI__assume: 1190 case Builtin::BI__builtin_assume: 1191 if (SemaBuiltinAssume(TheCall)) 1192 return ExprError(); 1193 break; 1194 case Builtin::BI__builtin_assume_aligned: 1195 if (SemaBuiltinAssumeAligned(TheCall)) 1196 return ExprError(); 1197 break; 1198 case Builtin::BI__builtin_dynamic_object_size: 1199 case Builtin::BI__builtin_object_size: 1200 if (SemaBuiltinConstantArgRange(TheCall, 1, 0, 3)) 1201 return ExprError(); 1202 break; 1203 case Builtin::BI__builtin_longjmp: 1204 if (SemaBuiltinLongjmp(TheCall)) 1205 return ExprError(); 1206 break; 1207 case Builtin::BI__builtin_setjmp: 1208 if (SemaBuiltinSetjmp(TheCall)) 1209 return ExprError(); 1210 break; 1211 case Builtin::BI_setjmp: 1212 case Builtin::BI_setjmpex: 1213 if (checkArgCount(*this, TheCall, 1)) 1214 return true; 1215 break; 1216 case Builtin::BI__builtin_classify_type: 1217 if (checkArgCount(*this, TheCall, 1)) return true; 1218 TheCall->setType(Context.IntTy); 1219 break; 1220 case Builtin::BI__builtin_constant_p: { 1221 if (checkArgCount(*this, TheCall, 1)) return true; 1222 ExprResult Arg = DefaultFunctionArrayLvalueConversion(TheCall->getArg(0)); 1223 if (Arg.isInvalid()) return true; 1224 TheCall->setArg(0, Arg.get()); 1225 TheCall->setType(Context.IntTy); 1226 break; 1227 } 1228 case Builtin::BI__builtin_launder: 1229 return SemaBuiltinLaunder(*this, TheCall); 1230 case Builtin::BI__sync_fetch_and_add: 1231 case Builtin::BI__sync_fetch_and_add_1: 1232 case Builtin::BI__sync_fetch_and_add_2: 1233 case Builtin::BI__sync_fetch_and_add_4: 1234 case Builtin::BI__sync_fetch_and_add_8: 1235 case Builtin::BI__sync_fetch_and_add_16: 1236 case Builtin::BI__sync_fetch_and_sub: 1237 case Builtin::BI__sync_fetch_and_sub_1: 1238 case Builtin::BI__sync_fetch_and_sub_2: 1239 case Builtin::BI__sync_fetch_and_sub_4: 1240 case Builtin::BI__sync_fetch_and_sub_8: 1241 case Builtin::BI__sync_fetch_and_sub_16: 1242 case Builtin::BI__sync_fetch_and_or: 1243 case Builtin::BI__sync_fetch_and_or_1: 1244 case Builtin::BI__sync_fetch_and_or_2: 1245 case Builtin::BI__sync_fetch_and_or_4: 1246 case Builtin::BI__sync_fetch_and_or_8: 1247 case Builtin::BI__sync_fetch_and_or_16: 1248 case Builtin::BI__sync_fetch_and_and: 1249 case Builtin::BI__sync_fetch_and_and_1: 1250 case Builtin::BI__sync_fetch_and_and_2: 1251 case Builtin::BI__sync_fetch_and_and_4: 1252 case Builtin::BI__sync_fetch_and_and_8: 1253 case Builtin::BI__sync_fetch_and_and_16: 1254 case Builtin::BI__sync_fetch_and_xor: 1255 case Builtin::BI__sync_fetch_and_xor_1: 1256 case Builtin::BI__sync_fetch_and_xor_2: 1257 case Builtin::BI__sync_fetch_and_xor_4: 1258 case Builtin::BI__sync_fetch_and_xor_8: 1259 case Builtin::BI__sync_fetch_and_xor_16: 1260 case Builtin::BI__sync_fetch_and_nand: 1261 case Builtin::BI__sync_fetch_and_nand_1: 1262 case Builtin::BI__sync_fetch_and_nand_2: 1263 case Builtin::BI__sync_fetch_and_nand_4: 1264 case Builtin::BI__sync_fetch_and_nand_8: 1265 case Builtin::BI__sync_fetch_and_nand_16: 1266 case Builtin::BI__sync_add_and_fetch: 1267 case Builtin::BI__sync_add_and_fetch_1: 1268 case Builtin::BI__sync_add_and_fetch_2: 1269 case Builtin::BI__sync_add_and_fetch_4: 1270 case Builtin::BI__sync_add_and_fetch_8: 1271 case Builtin::BI__sync_add_and_fetch_16: 1272 case Builtin::BI__sync_sub_and_fetch: 1273 case Builtin::BI__sync_sub_and_fetch_1: 1274 case Builtin::BI__sync_sub_and_fetch_2: 1275 case Builtin::BI__sync_sub_and_fetch_4: 1276 case Builtin::BI__sync_sub_and_fetch_8: 1277 case Builtin::BI__sync_sub_and_fetch_16: 1278 case Builtin::BI__sync_and_and_fetch: 1279 case Builtin::BI__sync_and_and_fetch_1: 1280 case Builtin::BI__sync_and_and_fetch_2: 1281 case Builtin::BI__sync_and_and_fetch_4: 1282 case Builtin::BI__sync_and_and_fetch_8: 1283 case Builtin::BI__sync_and_and_fetch_16: 1284 case Builtin::BI__sync_or_and_fetch: 1285 case Builtin::BI__sync_or_and_fetch_1: 1286 case Builtin::BI__sync_or_and_fetch_2: 1287 case Builtin::BI__sync_or_and_fetch_4: 1288 case Builtin::BI__sync_or_and_fetch_8: 1289 case Builtin::BI__sync_or_and_fetch_16: 1290 case Builtin::BI__sync_xor_and_fetch: 1291 case Builtin::BI__sync_xor_and_fetch_1: 1292 case Builtin::BI__sync_xor_and_fetch_2: 1293 case Builtin::BI__sync_xor_and_fetch_4: 1294 case Builtin::BI__sync_xor_and_fetch_8: 1295 case Builtin::BI__sync_xor_and_fetch_16: 1296 case Builtin::BI__sync_nand_and_fetch: 1297 case Builtin::BI__sync_nand_and_fetch_1: 1298 case Builtin::BI__sync_nand_and_fetch_2: 1299 case Builtin::BI__sync_nand_and_fetch_4: 1300 case Builtin::BI__sync_nand_and_fetch_8: 1301 case Builtin::BI__sync_nand_and_fetch_16: 1302 case Builtin::BI__sync_val_compare_and_swap: 1303 case Builtin::BI__sync_val_compare_and_swap_1: 1304 case Builtin::BI__sync_val_compare_and_swap_2: 1305 case Builtin::BI__sync_val_compare_and_swap_4: 1306 case Builtin::BI__sync_val_compare_and_swap_8: 1307 case Builtin::BI__sync_val_compare_and_swap_16: 1308 case Builtin::BI__sync_bool_compare_and_swap: 1309 case Builtin::BI__sync_bool_compare_and_swap_1: 1310 case Builtin::BI__sync_bool_compare_and_swap_2: 1311 case Builtin::BI__sync_bool_compare_and_swap_4: 1312 case Builtin::BI__sync_bool_compare_and_swap_8: 1313 case Builtin::BI__sync_bool_compare_and_swap_16: 1314 case Builtin::BI__sync_lock_test_and_set: 1315 case Builtin::BI__sync_lock_test_and_set_1: 1316 case Builtin::BI__sync_lock_test_and_set_2: 1317 case Builtin::BI__sync_lock_test_and_set_4: 1318 case Builtin::BI__sync_lock_test_and_set_8: 1319 case Builtin::BI__sync_lock_test_and_set_16: 1320 case Builtin::BI__sync_lock_release: 1321 case Builtin::BI__sync_lock_release_1: 1322 case Builtin::BI__sync_lock_release_2: 1323 case Builtin::BI__sync_lock_release_4: 1324 case Builtin::BI__sync_lock_release_8: 1325 case Builtin::BI__sync_lock_release_16: 1326 case Builtin::BI__sync_swap: 1327 case Builtin::BI__sync_swap_1: 1328 case Builtin::BI__sync_swap_2: 1329 case Builtin::BI__sync_swap_4: 1330 case Builtin::BI__sync_swap_8: 1331 case Builtin::BI__sync_swap_16: 1332 return SemaBuiltinAtomicOverloaded(TheCallResult); 1333 case Builtin::BI__sync_synchronize: 1334 Diag(TheCall->getBeginLoc(), diag::warn_atomic_implicit_seq_cst) 1335 << TheCall->getCallee()->getSourceRange(); 1336 break; 1337 case Builtin::BI__builtin_nontemporal_load: 1338 case Builtin::BI__builtin_nontemporal_store: 1339 return SemaBuiltinNontemporalOverloaded(TheCallResult); 1340 #define BUILTIN(ID, TYPE, ATTRS) 1341 #define ATOMIC_BUILTIN(ID, TYPE, ATTRS) \ 1342 case Builtin::BI##ID: \ 1343 return SemaAtomicOpsOverloaded(TheCallResult, AtomicExpr::AO##ID); 1344 #include "clang/Basic/Builtins.def" 1345 case Builtin::BI__annotation: 1346 if (SemaBuiltinMSVCAnnotation(*this, TheCall)) 1347 return ExprError(); 1348 break; 1349 case Builtin::BI__builtin_annotation: 1350 if (SemaBuiltinAnnotation(*this, TheCall)) 1351 return ExprError(); 1352 break; 1353 case Builtin::BI__builtin_addressof: 1354 if (SemaBuiltinAddressof(*this, TheCall)) 1355 return ExprError(); 1356 break; 1357 case Builtin::BI__builtin_add_overflow: 1358 case Builtin::BI__builtin_sub_overflow: 1359 case Builtin::BI__builtin_mul_overflow: 1360 if (SemaBuiltinOverflow(*this, TheCall)) 1361 return ExprError(); 1362 break; 1363 case Builtin::BI__builtin_operator_new: 1364 case Builtin::BI__builtin_operator_delete: { 1365 bool IsDelete = BuiltinID == Builtin::BI__builtin_operator_delete; 1366 ExprResult Res = 1367 SemaBuiltinOperatorNewDeleteOverloaded(TheCallResult, IsDelete); 1368 if (Res.isInvalid()) 1369 CorrectDelayedTyposInExpr(TheCallResult.get()); 1370 return Res; 1371 } 1372 case Builtin::BI__builtin_dump_struct: { 1373 // We first want to ensure we are called with 2 arguments 1374 if (checkArgCount(*this, TheCall, 2)) 1375 return ExprError(); 1376 // Ensure that the first argument is of type 'struct XX *' 1377 const Expr *PtrArg = TheCall->getArg(0)->IgnoreParenImpCasts(); 1378 const QualType PtrArgType = PtrArg->getType(); 1379 if (!PtrArgType->isPointerType() || 1380 !PtrArgType->getPointeeType()->isRecordType()) { 1381 Diag(PtrArg->getBeginLoc(), diag::err_typecheck_convert_incompatible) 1382 << PtrArgType << "structure pointer" << 1 << 0 << 3 << 1 << PtrArgType 1383 << "structure pointer"; 1384 return ExprError(); 1385 } 1386 1387 // Ensure that the second argument is of type 'FunctionType' 1388 const Expr *FnPtrArg = TheCall->getArg(1)->IgnoreImpCasts(); 1389 const QualType FnPtrArgType = FnPtrArg->getType(); 1390 if (!FnPtrArgType->isPointerType()) { 1391 Diag(FnPtrArg->getBeginLoc(), diag::err_typecheck_convert_incompatible) 1392 << FnPtrArgType << "'int (*)(const char *, ...)'" << 1 << 0 << 3 << 2 1393 << FnPtrArgType << "'int (*)(const char *, ...)'"; 1394 return ExprError(); 1395 } 1396 1397 const auto *FuncType = 1398 FnPtrArgType->getPointeeType()->getAs<FunctionType>(); 1399 1400 if (!FuncType) { 1401 Diag(FnPtrArg->getBeginLoc(), diag::err_typecheck_convert_incompatible) 1402 << FnPtrArgType << "'int (*)(const char *, ...)'" << 1 << 0 << 3 << 2 1403 << FnPtrArgType << "'int (*)(const char *, ...)'"; 1404 return ExprError(); 1405 } 1406 1407 if (const auto *FT = dyn_cast<FunctionProtoType>(FuncType)) { 1408 if (!FT->getNumParams()) { 1409 Diag(FnPtrArg->getBeginLoc(), diag::err_typecheck_convert_incompatible) 1410 << FnPtrArgType << "'int (*)(const char *, ...)'" << 1 << 0 << 3 1411 << 2 << FnPtrArgType << "'int (*)(const char *, ...)'"; 1412 return ExprError(); 1413 } 1414 QualType PT = FT->getParamType(0); 1415 if (!FT->isVariadic() || FT->getReturnType() != Context.IntTy || 1416 !PT->isPointerType() || !PT->getPointeeType()->isCharType() || 1417 !PT->getPointeeType().isConstQualified()) { 1418 Diag(FnPtrArg->getBeginLoc(), diag::err_typecheck_convert_incompatible) 1419 << FnPtrArgType << "'int (*)(const char *, ...)'" << 1 << 0 << 3 1420 << 2 << FnPtrArgType << "'int (*)(const char *, ...)'"; 1421 return ExprError(); 1422 } 1423 } 1424 1425 TheCall->setType(Context.IntTy); 1426 break; 1427 } 1428 case Builtin::BI__builtin_preserve_access_index: 1429 if (SemaBuiltinPreserveAI(*this, TheCall)) 1430 return ExprError(); 1431 break; 1432 case Builtin::BI__builtin_call_with_static_chain: 1433 if (SemaBuiltinCallWithStaticChain(*this, TheCall)) 1434 return ExprError(); 1435 break; 1436 case Builtin::BI__exception_code: 1437 case Builtin::BI_exception_code: 1438 if (SemaBuiltinSEHScopeCheck(*this, TheCall, Scope::SEHExceptScope, 1439 diag::err_seh___except_block)) 1440 return ExprError(); 1441 break; 1442 case Builtin::BI__exception_info: 1443 case Builtin::BI_exception_info: 1444 if (SemaBuiltinSEHScopeCheck(*this, TheCall, Scope::SEHFilterScope, 1445 diag::err_seh___except_filter)) 1446 return ExprError(); 1447 break; 1448 case Builtin::BI__GetExceptionInfo: 1449 if (checkArgCount(*this, TheCall, 1)) 1450 return ExprError(); 1451 1452 if (CheckCXXThrowOperand( 1453 TheCall->getBeginLoc(), 1454 Context.getExceptionObjectType(FDecl->getParamDecl(0)->getType()), 1455 TheCall)) 1456 return ExprError(); 1457 1458 TheCall->setType(Context.VoidPtrTy); 1459 break; 1460 // OpenCL v2.0, s6.13.16 - Pipe functions 1461 case Builtin::BIread_pipe: 1462 case Builtin::BIwrite_pipe: 1463 // Since those two functions are declared with var args, we need a semantic 1464 // check for the argument. 1465 if (SemaBuiltinRWPipe(*this, TheCall)) 1466 return ExprError(); 1467 break; 1468 case Builtin::BIreserve_read_pipe: 1469 case Builtin::BIreserve_write_pipe: 1470 case Builtin::BIwork_group_reserve_read_pipe: 1471 case Builtin::BIwork_group_reserve_write_pipe: 1472 if (SemaBuiltinReserveRWPipe(*this, TheCall)) 1473 return ExprError(); 1474 break; 1475 case Builtin::BIsub_group_reserve_read_pipe: 1476 case Builtin::BIsub_group_reserve_write_pipe: 1477 if (checkOpenCLSubgroupExt(*this, TheCall) || 1478 SemaBuiltinReserveRWPipe(*this, TheCall)) 1479 return ExprError(); 1480 break; 1481 case Builtin::BIcommit_read_pipe: 1482 case Builtin::BIcommit_write_pipe: 1483 case Builtin::BIwork_group_commit_read_pipe: 1484 case Builtin::BIwork_group_commit_write_pipe: 1485 if (SemaBuiltinCommitRWPipe(*this, TheCall)) 1486 return ExprError(); 1487 break; 1488 case Builtin::BIsub_group_commit_read_pipe: 1489 case Builtin::BIsub_group_commit_write_pipe: 1490 if (checkOpenCLSubgroupExt(*this, TheCall) || 1491 SemaBuiltinCommitRWPipe(*this, TheCall)) 1492 return ExprError(); 1493 break; 1494 case Builtin::BIget_pipe_num_packets: 1495 case Builtin::BIget_pipe_max_packets: 1496 if (SemaBuiltinPipePackets(*this, TheCall)) 1497 return ExprError(); 1498 break; 1499 case Builtin::BIto_global: 1500 case Builtin::BIto_local: 1501 case Builtin::BIto_private: 1502 if (SemaOpenCLBuiltinToAddr(*this, BuiltinID, TheCall)) 1503 return ExprError(); 1504 break; 1505 // OpenCL v2.0, s6.13.17 - Enqueue kernel functions. 1506 case Builtin::BIenqueue_kernel: 1507 if (SemaOpenCLBuiltinEnqueueKernel(*this, TheCall)) 1508 return ExprError(); 1509 break; 1510 case Builtin::BIget_kernel_work_group_size: 1511 case Builtin::BIget_kernel_preferred_work_group_size_multiple: 1512 if (SemaOpenCLBuiltinKernelWorkGroupSize(*this, TheCall)) 1513 return ExprError(); 1514 break; 1515 case Builtin::BIget_kernel_max_sub_group_size_for_ndrange: 1516 case Builtin::BIget_kernel_sub_group_count_for_ndrange: 1517 if (SemaOpenCLBuiltinNDRangeAndBlock(*this, TheCall)) 1518 return ExprError(); 1519 break; 1520 case Builtin::BI__builtin_os_log_format: 1521 case Builtin::BI__builtin_os_log_format_buffer_size: 1522 if (SemaBuiltinOSLogFormat(TheCall)) 1523 return ExprError(); 1524 break; 1525 } 1526 1527 // Since the target specific builtins for each arch overlap, only check those 1528 // of the arch we are compiling for. 1529 if (Context.BuiltinInfo.isTSBuiltin(BuiltinID)) { 1530 switch (Context.getTargetInfo().getTriple().getArch()) { 1531 case llvm::Triple::arm: 1532 case llvm::Triple::armeb: 1533 case llvm::Triple::thumb: 1534 case llvm::Triple::thumbeb: 1535 if (CheckARMBuiltinFunctionCall(BuiltinID, TheCall)) 1536 return ExprError(); 1537 break; 1538 case llvm::Triple::aarch64: 1539 case llvm::Triple::aarch64_32: 1540 case llvm::Triple::aarch64_be: 1541 if (CheckAArch64BuiltinFunctionCall(BuiltinID, TheCall)) 1542 return ExprError(); 1543 break; 1544 case llvm::Triple::bpfeb: 1545 case llvm::Triple::bpfel: 1546 if (CheckBPFBuiltinFunctionCall(BuiltinID, TheCall)) 1547 return ExprError(); 1548 break; 1549 case llvm::Triple::hexagon: 1550 if (CheckHexagonBuiltinFunctionCall(BuiltinID, TheCall)) 1551 return ExprError(); 1552 break; 1553 case llvm::Triple::mips: 1554 case llvm::Triple::mipsel: 1555 case llvm::Triple::mips64: 1556 case llvm::Triple::mips64el: 1557 if (CheckMipsBuiltinFunctionCall(BuiltinID, TheCall)) 1558 return ExprError(); 1559 break; 1560 case llvm::Triple::systemz: 1561 if (CheckSystemZBuiltinFunctionCall(BuiltinID, TheCall)) 1562 return ExprError(); 1563 break; 1564 case llvm::Triple::x86: 1565 case llvm::Triple::x86_64: 1566 if (CheckX86BuiltinFunctionCall(BuiltinID, TheCall)) 1567 return ExprError(); 1568 break; 1569 case llvm::Triple::ppc: 1570 case llvm::Triple::ppc64: 1571 case llvm::Triple::ppc64le: 1572 if (CheckPPCBuiltinFunctionCall(BuiltinID, TheCall)) 1573 return ExprError(); 1574 break; 1575 default: 1576 break; 1577 } 1578 } 1579 1580 return TheCallResult; 1581 } 1582 1583 // Get the valid immediate range for the specified NEON type code. 1584 static unsigned RFT(unsigned t, bool shift = false, bool ForceQuad = false) { 1585 NeonTypeFlags Type(t); 1586 int IsQuad = ForceQuad ? true : Type.isQuad(); 1587 switch (Type.getEltType()) { 1588 case NeonTypeFlags::Int8: 1589 case NeonTypeFlags::Poly8: 1590 return shift ? 7 : (8 << IsQuad) - 1; 1591 case NeonTypeFlags::Int16: 1592 case NeonTypeFlags::Poly16: 1593 return shift ? 15 : (4 << IsQuad) - 1; 1594 case NeonTypeFlags::Int32: 1595 return shift ? 31 : (2 << IsQuad) - 1; 1596 case NeonTypeFlags::Int64: 1597 case NeonTypeFlags::Poly64: 1598 return shift ? 63 : (1 << IsQuad) - 1; 1599 case NeonTypeFlags::Poly128: 1600 return shift ? 127 : (1 << IsQuad) - 1; 1601 case NeonTypeFlags::Float16: 1602 assert(!shift && "cannot shift float types!"); 1603 return (4 << IsQuad) - 1; 1604 case NeonTypeFlags::Float32: 1605 assert(!shift && "cannot shift float types!"); 1606 return (2 << IsQuad) - 1; 1607 case NeonTypeFlags::Float64: 1608 assert(!shift && "cannot shift float types!"); 1609 return (1 << IsQuad) - 1; 1610 } 1611 llvm_unreachable("Invalid NeonTypeFlag!"); 1612 } 1613 1614 /// getNeonEltType - Return the QualType corresponding to the elements of 1615 /// the vector type specified by the NeonTypeFlags. This is used to check 1616 /// the pointer arguments for Neon load/store intrinsics. 1617 static QualType getNeonEltType(NeonTypeFlags Flags, ASTContext &Context, 1618 bool IsPolyUnsigned, bool IsInt64Long) { 1619 switch (Flags.getEltType()) { 1620 case NeonTypeFlags::Int8: 1621 return Flags.isUnsigned() ? Context.UnsignedCharTy : Context.SignedCharTy; 1622 case NeonTypeFlags::Int16: 1623 return Flags.isUnsigned() ? Context.UnsignedShortTy : Context.ShortTy; 1624 case NeonTypeFlags::Int32: 1625 return Flags.isUnsigned() ? Context.UnsignedIntTy : Context.IntTy; 1626 case NeonTypeFlags::Int64: 1627 if (IsInt64Long) 1628 return Flags.isUnsigned() ? Context.UnsignedLongTy : Context.LongTy; 1629 else 1630 return Flags.isUnsigned() ? Context.UnsignedLongLongTy 1631 : Context.LongLongTy; 1632 case NeonTypeFlags::Poly8: 1633 return IsPolyUnsigned ? Context.UnsignedCharTy : Context.SignedCharTy; 1634 case NeonTypeFlags::Poly16: 1635 return IsPolyUnsigned ? Context.UnsignedShortTy : Context.ShortTy; 1636 case NeonTypeFlags::Poly64: 1637 if (IsInt64Long) 1638 return Context.UnsignedLongTy; 1639 else 1640 return Context.UnsignedLongLongTy; 1641 case NeonTypeFlags::Poly128: 1642 break; 1643 case NeonTypeFlags::Float16: 1644 return Context.HalfTy; 1645 case NeonTypeFlags::Float32: 1646 return Context.FloatTy; 1647 case NeonTypeFlags::Float64: 1648 return Context.DoubleTy; 1649 } 1650 llvm_unreachable("Invalid NeonTypeFlag!"); 1651 } 1652 1653 bool Sema::CheckNeonBuiltinFunctionCall(unsigned BuiltinID, CallExpr *TheCall) { 1654 llvm::APSInt Result; 1655 uint64_t mask = 0; 1656 unsigned TV = 0; 1657 int PtrArgNum = -1; 1658 bool HasConstPtr = false; 1659 switch (BuiltinID) { 1660 #define GET_NEON_OVERLOAD_CHECK 1661 #include "clang/Basic/arm_neon.inc" 1662 #include "clang/Basic/arm_fp16.inc" 1663 #undef GET_NEON_OVERLOAD_CHECK 1664 } 1665 1666 // For NEON intrinsics which are overloaded on vector element type, validate 1667 // the immediate which specifies which variant to emit. 1668 unsigned ImmArg = TheCall->getNumArgs()-1; 1669 if (mask) { 1670 if (SemaBuiltinConstantArg(TheCall, ImmArg, Result)) 1671 return true; 1672 1673 TV = Result.getLimitedValue(64); 1674 if ((TV > 63) || (mask & (1ULL << TV)) == 0) 1675 return Diag(TheCall->getBeginLoc(), diag::err_invalid_neon_type_code) 1676 << TheCall->getArg(ImmArg)->getSourceRange(); 1677 } 1678 1679 if (PtrArgNum >= 0) { 1680 // Check that pointer arguments have the specified type. 1681 Expr *Arg = TheCall->getArg(PtrArgNum); 1682 if (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(Arg)) 1683 Arg = ICE->getSubExpr(); 1684 ExprResult RHS = DefaultFunctionArrayLvalueConversion(Arg); 1685 QualType RHSTy = RHS.get()->getType(); 1686 1687 llvm::Triple::ArchType Arch = Context.getTargetInfo().getTriple().getArch(); 1688 bool IsPolyUnsigned = Arch == llvm::Triple::aarch64 || 1689 Arch == llvm::Triple::aarch64_32 || 1690 Arch == llvm::Triple::aarch64_be; 1691 bool IsInt64Long = 1692 Context.getTargetInfo().getInt64Type() == TargetInfo::SignedLong; 1693 QualType EltTy = 1694 getNeonEltType(NeonTypeFlags(TV), Context, IsPolyUnsigned, IsInt64Long); 1695 if (HasConstPtr) 1696 EltTy = EltTy.withConst(); 1697 QualType LHSTy = Context.getPointerType(EltTy); 1698 AssignConvertType ConvTy; 1699 ConvTy = CheckSingleAssignmentConstraints(LHSTy, RHS); 1700 if (RHS.isInvalid()) 1701 return true; 1702 if (DiagnoseAssignmentResult(ConvTy, Arg->getBeginLoc(), LHSTy, RHSTy, 1703 RHS.get(), AA_Assigning)) 1704 return true; 1705 } 1706 1707 // For NEON intrinsics which take an immediate value as part of the 1708 // instruction, range check them here. 1709 unsigned i = 0, l = 0, u = 0; 1710 switch (BuiltinID) { 1711 default: 1712 return false; 1713 #define GET_NEON_IMMEDIATE_CHECK 1714 #include "clang/Basic/arm_neon.inc" 1715 #include "clang/Basic/arm_fp16.inc" 1716 #undef GET_NEON_IMMEDIATE_CHECK 1717 } 1718 1719 return SemaBuiltinConstantArgRange(TheCall, i, l, u + l); 1720 } 1721 1722 bool Sema::CheckMVEBuiltinFunctionCall(unsigned BuiltinID, CallExpr *TheCall) { 1723 switch (BuiltinID) { 1724 default: 1725 return false; 1726 #include "clang/Basic/arm_mve_builtin_sema.inc" 1727 } 1728 } 1729 1730 bool Sema::CheckARMBuiltinExclusiveCall(unsigned BuiltinID, CallExpr *TheCall, 1731 unsigned MaxWidth) { 1732 assert((BuiltinID == ARM::BI__builtin_arm_ldrex || 1733 BuiltinID == ARM::BI__builtin_arm_ldaex || 1734 BuiltinID == ARM::BI__builtin_arm_strex || 1735 BuiltinID == ARM::BI__builtin_arm_stlex || 1736 BuiltinID == AArch64::BI__builtin_arm_ldrex || 1737 BuiltinID == AArch64::BI__builtin_arm_ldaex || 1738 BuiltinID == AArch64::BI__builtin_arm_strex || 1739 BuiltinID == AArch64::BI__builtin_arm_stlex) && 1740 "unexpected ARM builtin"); 1741 bool IsLdrex = BuiltinID == ARM::BI__builtin_arm_ldrex || 1742 BuiltinID == ARM::BI__builtin_arm_ldaex || 1743 BuiltinID == AArch64::BI__builtin_arm_ldrex || 1744 BuiltinID == AArch64::BI__builtin_arm_ldaex; 1745 1746 DeclRefExpr *DRE =cast<DeclRefExpr>(TheCall->getCallee()->IgnoreParenCasts()); 1747 1748 // Ensure that we have the proper number of arguments. 1749 if (checkArgCount(*this, TheCall, IsLdrex ? 1 : 2)) 1750 return true; 1751 1752 // Inspect the pointer argument of the atomic builtin. This should always be 1753 // a pointer type, whose element is an integral scalar or pointer type. 1754 // Because it is a pointer type, we don't have to worry about any implicit 1755 // casts here. 1756 Expr *PointerArg = TheCall->getArg(IsLdrex ? 0 : 1); 1757 ExprResult PointerArgRes = DefaultFunctionArrayLvalueConversion(PointerArg); 1758 if (PointerArgRes.isInvalid()) 1759 return true; 1760 PointerArg = PointerArgRes.get(); 1761 1762 const PointerType *pointerType = PointerArg->getType()->getAs<PointerType>(); 1763 if (!pointerType) { 1764 Diag(DRE->getBeginLoc(), diag::err_atomic_builtin_must_be_pointer) 1765 << PointerArg->getType() << PointerArg->getSourceRange(); 1766 return true; 1767 } 1768 1769 // ldrex takes a "const volatile T*" and strex takes a "volatile T*". Our next 1770 // task is to insert the appropriate casts into the AST. First work out just 1771 // what the appropriate type is. 1772 QualType ValType = pointerType->getPointeeType(); 1773 QualType AddrType = ValType.getUnqualifiedType().withVolatile(); 1774 if (IsLdrex) 1775 AddrType.addConst(); 1776 1777 // Issue a warning if the cast is dodgy. 1778 CastKind CastNeeded = CK_NoOp; 1779 if (!AddrType.isAtLeastAsQualifiedAs(ValType)) { 1780 CastNeeded = CK_BitCast; 1781 Diag(DRE->getBeginLoc(), diag::ext_typecheck_convert_discards_qualifiers) 1782 << PointerArg->getType() << Context.getPointerType(AddrType) 1783 << AA_Passing << PointerArg->getSourceRange(); 1784 } 1785 1786 // Finally, do the cast and replace the argument with the corrected version. 1787 AddrType = Context.getPointerType(AddrType); 1788 PointerArgRes = ImpCastExprToType(PointerArg, AddrType, CastNeeded); 1789 if (PointerArgRes.isInvalid()) 1790 return true; 1791 PointerArg = PointerArgRes.get(); 1792 1793 TheCall->setArg(IsLdrex ? 0 : 1, PointerArg); 1794 1795 // In general, we allow ints, floats and pointers to be loaded and stored. 1796 if (!ValType->isIntegerType() && !ValType->isAnyPointerType() && 1797 !ValType->isBlockPointerType() && !ValType->isFloatingType()) { 1798 Diag(DRE->getBeginLoc(), diag::err_atomic_builtin_must_be_pointer_intfltptr) 1799 << PointerArg->getType() << PointerArg->getSourceRange(); 1800 return true; 1801 } 1802 1803 // But ARM doesn't have instructions to deal with 128-bit versions. 1804 if (Context.getTypeSize(ValType) > MaxWidth) { 1805 assert(MaxWidth == 64 && "Diagnostic unexpectedly inaccurate"); 1806 Diag(DRE->getBeginLoc(), diag::err_atomic_exclusive_builtin_pointer_size) 1807 << PointerArg->getType() << PointerArg->getSourceRange(); 1808 return true; 1809 } 1810 1811 switch (ValType.getObjCLifetime()) { 1812 case Qualifiers::OCL_None: 1813 case Qualifiers::OCL_ExplicitNone: 1814 // okay 1815 break; 1816 1817 case Qualifiers::OCL_Weak: 1818 case Qualifiers::OCL_Strong: 1819 case Qualifiers::OCL_Autoreleasing: 1820 Diag(DRE->getBeginLoc(), diag::err_arc_atomic_ownership) 1821 << ValType << PointerArg->getSourceRange(); 1822 return true; 1823 } 1824 1825 if (IsLdrex) { 1826 TheCall->setType(ValType); 1827 return false; 1828 } 1829 1830 // Initialize the argument to be stored. 1831 ExprResult ValArg = TheCall->getArg(0); 1832 InitializedEntity Entity = InitializedEntity::InitializeParameter( 1833 Context, ValType, /*consume*/ false); 1834 ValArg = PerformCopyInitialization(Entity, SourceLocation(), ValArg); 1835 if (ValArg.isInvalid()) 1836 return true; 1837 TheCall->setArg(0, ValArg.get()); 1838 1839 // __builtin_arm_strex always returns an int. It's marked as such in the .def, 1840 // but the custom checker bypasses all default analysis. 1841 TheCall->setType(Context.IntTy); 1842 return false; 1843 } 1844 1845 bool Sema::CheckARMBuiltinFunctionCall(unsigned BuiltinID, CallExpr *TheCall) { 1846 if (BuiltinID == ARM::BI__builtin_arm_ldrex || 1847 BuiltinID == ARM::BI__builtin_arm_ldaex || 1848 BuiltinID == ARM::BI__builtin_arm_strex || 1849 BuiltinID == ARM::BI__builtin_arm_stlex) { 1850 return CheckARMBuiltinExclusiveCall(BuiltinID, TheCall, 64); 1851 } 1852 1853 if (BuiltinID == ARM::BI__builtin_arm_prefetch) { 1854 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 1) || 1855 SemaBuiltinConstantArgRange(TheCall, 2, 0, 1); 1856 } 1857 1858 if (BuiltinID == ARM::BI__builtin_arm_rsr64 || 1859 BuiltinID == ARM::BI__builtin_arm_wsr64) 1860 return SemaBuiltinARMSpecialReg(BuiltinID, TheCall, 0, 3, false); 1861 1862 if (BuiltinID == ARM::BI__builtin_arm_rsr || 1863 BuiltinID == ARM::BI__builtin_arm_rsrp || 1864 BuiltinID == ARM::BI__builtin_arm_wsr || 1865 BuiltinID == ARM::BI__builtin_arm_wsrp) 1866 return SemaBuiltinARMSpecialReg(BuiltinID, TheCall, 0, 5, true); 1867 1868 if (CheckNeonBuiltinFunctionCall(BuiltinID, TheCall)) 1869 return true; 1870 if (CheckMVEBuiltinFunctionCall(BuiltinID, TheCall)) 1871 return true; 1872 1873 // For intrinsics which take an immediate value as part of the instruction, 1874 // range check them here. 1875 // FIXME: VFP Intrinsics should error if VFP not present. 1876 switch (BuiltinID) { 1877 default: return false; 1878 case ARM::BI__builtin_arm_ssat: 1879 return SemaBuiltinConstantArgRange(TheCall, 1, 1, 32); 1880 case ARM::BI__builtin_arm_usat: 1881 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 31); 1882 case ARM::BI__builtin_arm_ssat16: 1883 return SemaBuiltinConstantArgRange(TheCall, 1, 1, 16); 1884 case ARM::BI__builtin_arm_usat16: 1885 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 15); 1886 case ARM::BI__builtin_arm_vcvtr_f: 1887 case ARM::BI__builtin_arm_vcvtr_d: 1888 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 1); 1889 case ARM::BI__builtin_arm_dmb: 1890 case ARM::BI__builtin_arm_dsb: 1891 case ARM::BI__builtin_arm_isb: 1892 case ARM::BI__builtin_arm_dbg: 1893 return SemaBuiltinConstantArgRange(TheCall, 0, 0, 15); 1894 } 1895 } 1896 1897 bool Sema::CheckAArch64BuiltinFunctionCall(unsigned BuiltinID, 1898 CallExpr *TheCall) { 1899 if (BuiltinID == AArch64::BI__builtin_arm_ldrex || 1900 BuiltinID == AArch64::BI__builtin_arm_ldaex || 1901 BuiltinID == AArch64::BI__builtin_arm_strex || 1902 BuiltinID == AArch64::BI__builtin_arm_stlex) { 1903 return CheckARMBuiltinExclusiveCall(BuiltinID, TheCall, 128); 1904 } 1905 1906 if (BuiltinID == AArch64::BI__builtin_arm_prefetch) { 1907 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 1) || 1908 SemaBuiltinConstantArgRange(TheCall, 2, 0, 2) || 1909 SemaBuiltinConstantArgRange(TheCall, 3, 0, 1) || 1910 SemaBuiltinConstantArgRange(TheCall, 4, 0, 1); 1911 } 1912 1913 if (BuiltinID == AArch64::BI__builtin_arm_rsr64 || 1914 BuiltinID == AArch64::BI__builtin_arm_wsr64) 1915 return SemaBuiltinARMSpecialReg(BuiltinID, TheCall, 0, 5, true); 1916 1917 // Memory Tagging Extensions (MTE) Intrinsics 1918 if (BuiltinID == AArch64::BI__builtin_arm_irg || 1919 BuiltinID == AArch64::BI__builtin_arm_addg || 1920 BuiltinID == AArch64::BI__builtin_arm_gmi || 1921 BuiltinID == AArch64::BI__builtin_arm_ldg || 1922 BuiltinID == AArch64::BI__builtin_arm_stg || 1923 BuiltinID == AArch64::BI__builtin_arm_subp) { 1924 return SemaBuiltinARMMemoryTaggingCall(BuiltinID, TheCall); 1925 } 1926 1927 if (BuiltinID == AArch64::BI__builtin_arm_rsr || 1928 BuiltinID == AArch64::BI__builtin_arm_rsrp || 1929 BuiltinID == AArch64::BI__builtin_arm_wsr || 1930 BuiltinID == AArch64::BI__builtin_arm_wsrp) 1931 return SemaBuiltinARMSpecialReg(BuiltinID, TheCall, 0, 5, true); 1932 1933 // Only check the valid encoding range. Any constant in this range would be 1934 // converted to a register of the form S1_2_C3_C4_5. Let the hardware throw 1935 // an exception for incorrect registers. This matches MSVC behavior. 1936 if (BuiltinID == AArch64::BI_ReadStatusReg || 1937 BuiltinID == AArch64::BI_WriteStatusReg) 1938 return SemaBuiltinConstantArgRange(TheCall, 0, 0, 0x7fff); 1939 1940 if (BuiltinID == AArch64::BI__getReg) 1941 return SemaBuiltinConstantArgRange(TheCall, 0, 0, 31); 1942 1943 if (CheckNeonBuiltinFunctionCall(BuiltinID, TheCall)) 1944 return true; 1945 1946 // For intrinsics which take an immediate value as part of the instruction, 1947 // range check them here. 1948 unsigned i = 0, l = 0, u = 0; 1949 switch (BuiltinID) { 1950 default: return false; 1951 case AArch64::BI__builtin_arm_dmb: 1952 case AArch64::BI__builtin_arm_dsb: 1953 case AArch64::BI__builtin_arm_isb: l = 0; u = 15; break; 1954 case AArch64::BI__builtin_arm_tcancel: l = 0; u = 65535; break; 1955 } 1956 1957 return SemaBuiltinConstantArgRange(TheCall, i, l, u + l); 1958 } 1959 1960 bool Sema::CheckBPFBuiltinFunctionCall(unsigned BuiltinID, 1961 CallExpr *TheCall) { 1962 assert(BuiltinID == BPF::BI__builtin_preserve_field_info && 1963 "unexpected ARM builtin"); 1964 1965 if (checkArgCount(*this, TheCall, 2)) 1966 return true; 1967 1968 // The first argument needs to be a record field access. 1969 // If it is an array element access, we delay decision 1970 // to BPF backend to check whether the access is a 1971 // field access or not. 1972 Expr *Arg = TheCall->getArg(0); 1973 if (Arg->getType()->getAsPlaceholderType() || 1974 (Arg->IgnoreParens()->getObjectKind() != OK_BitField && 1975 !dyn_cast<MemberExpr>(Arg->IgnoreParens()) && 1976 !dyn_cast<ArraySubscriptExpr>(Arg->IgnoreParens()))) { 1977 Diag(Arg->getBeginLoc(), diag::err_preserve_field_info_not_field) 1978 << 1 << Arg->getSourceRange(); 1979 return true; 1980 } 1981 1982 // The second argument needs to be a constant int 1983 llvm::APSInt Value; 1984 if (!TheCall->getArg(1)->isIntegerConstantExpr(Value, Context)) { 1985 Diag(Arg->getBeginLoc(), diag::err_preserve_field_info_not_const) 1986 << 2 << Arg->getSourceRange(); 1987 return true; 1988 } 1989 1990 TheCall->setType(Context.UnsignedIntTy); 1991 return false; 1992 } 1993 1994 bool Sema::CheckHexagonBuiltinCpu(unsigned BuiltinID, CallExpr *TheCall) { 1995 struct BuiltinAndString { 1996 unsigned BuiltinID; 1997 const char *Str; 1998 }; 1999 2000 static BuiltinAndString ValidCPU[] = { 2001 { Hexagon::BI__builtin_HEXAGON_A6_vcmpbeq_notany, "v65,v66" }, 2002 { Hexagon::BI__builtin_HEXAGON_A6_vminub_RdP, "v62,v65,v66" }, 2003 { Hexagon::BI__builtin_HEXAGON_F2_dfadd, "v66" }, 2004 { Hexagon::BI__builtin_HEXAGON_F2_dfsub, "v66" }, 2005 { Hexagon::BI__builtin_HEXAGON_M2_mnaci, "v66" }, 2006 { Hexagon::BI__builtin_HEXAGON_M6_vabsdiffb, "v62,v65,v66" }, 2007 { Hexagon::BI__builtin_HEXAGON_M6_vabsdiffub, "v62,v65,v66" }, 2008 { Hexagon::BI__builtin_HEXAGON_S2_mask, "v66" }, 2009 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_acc, "v60,v62,v65,v66" }, 2010 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_and, "v60,v62,v65,v66" }, 2011 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_nac, "v60,v62,v65,v66" }, 2012 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_or, "v60,v62,v65,v66" }, 2013 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p, "v60,v62,v65,v66" }, 2014 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_xacc, "v60,v62,v65,v66" }, 2015 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_acc, "v60,v62,v65,v66" }, 2016 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_and, "v60,v62,v65,v66" }, 2017 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_nac, "v60,v62,v65,v66" }, 2018 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_or, "v60,v62,v65,v66" }, 2019 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r, "v60,v62,v65,v66" }, 2020 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_xacc, "v60,v62,v65,v66" }, 2021 { Hexagon::BI__builtin_HEXAGON_S6_vsplatrbp, "v62,v65,v66" }, 2022 { Hexagon::BI__builtin_HEXAGON_S6_vtrunehb_ppp, "v62,v65,v66" }, 2023 { Hexagon::BI__builtin_HEXAGON_S6_vtrunohb_ppp, "v62,v65,v66" }, 2024 }; 2025 2026 static BuiltinAndString ValidHVX[] = { 2027 { Hexagon::BI__builtin_HEXAGON_V6_hi, "v60,v62,v65,v66" }, 2028 { Hexagon::BI__builtin_HEXAGON_V6_hi_128B, "v60,v62,v65,v66" }, 2029 { Hexagon::BI__builtin_HEXAGON_V6_lo, "v60,v62,v65,v66" }, 2030 { Hexagon::BI__builtin_HEXAGON_V6_lo_128B, "v60,v62,v65,v66" }, 2031 { Hexagon::BI__builtin_HEXAGON_V6_extractw, "v60,v62,v65,v66" }, 2032 { Hexagon::BI__builtin_HEXAGON_V6_extractw_128B, "v60,v62,v65,v66" }, 2033 { Hexagon::BI__builtin_HEXAGON_V6_lvsplatb, "v62,v65,v66" }, 2034 { Hexagon::BI__builtin_HEXAGON_V6_lvsplatb_128B, "v62,v65,v66" }, 2035 { Hexagon::BI__builtin_HEXAGON_V6_lvsplath, "v62,v65,v66" }, 2036 { Hexagon::BI__builtin_HEXAGON_V6_lvsplath_128B, "v62,v65,v66" }, 2037 { Hexagon::BI__builtin_HEXAGON_V6_lvsplatw, "v60,v62,v65,v66" }, 2038 { Hexagon::BI__builtin_HEXAGON_V6_lvsplatw_128B, "v60,v62,v65,v66" }, 2039 { Hexagon::BI__builtin_HEXAGON_V6_pred_and, "v60,v62,v65,v66" }, 2040 { Hexagon::BI__builtin_HEXAGON_V6_pred_and_128B, "v60,v62,v65,v66" }, 2041 { Hexagon::BI__builtin_HEXAGON_V6_pred_and_n, "v60,v62,v65,v66" }, 2042 { Hexagon::BI__builtin_HEXAGON_V6_pred_and_n_128B, "v60,v62,v65,v66" }, 2043 { Hexagon::BI__builtin_HEXAGON_V6_pred_not, "v60,v62,v65,v66" }, 2044 { Hexagon::BI__builtin_HEXAGON_V6_pred_not_128B, "v60,v62,v65,v66" }, 2045 { Hexagon::BI__builtin_HEXAGON_V6_pred_or, "v60,v62,v65,v66" }, 2046 { Hexagon::BI__builtin_HEXAGON_V6_pred_or_128B, "v60,v62,v65,v66" }, 2047 { Hexagon::BI__builtin_HEXAGON_V6_pred_or_n, "v60,v62,v65,v66" }, 2048 { Hexagon::BI__builtin_HEXAGON_V6_pred_or_n_128B, "v60,v62,v65,v66" }, 2049 { Hexagon::BI__builtin_HEXAGON_V6_pred_scalar2, "v60,v62,v65,v66" }, 2050 { Hexagon::BI__builtin_HEXAGON_V6_pred_scalar2_128B, "v60,v62,v65,v66" }, 2051 { Hexagon::BI__builtin_HEXAGON_V6_pred_scalar2v2, "v62,v65,v66" }, 2052 { Hexagon::BI__builtin_HEXAGON_V6_pred_scalar2v2_128B, "v62,v65,v66" }, 2053 { Hexagon::BI__builtin_HEXAGON_V6_pred_xor, "v60,v62,v65,v66" }, 2054 { Hexagon::BI__builtin_HEXAGON_V6_pred_xor_128B, "v60,v62,v65,v66" }, 2055 { Hexagon::BI__builtin_HEXAGON_V6_shuffeqh, "v62,v65,v66" }, 2056 { Hexagon::BI__builtin_HEXAGON_V6_shuffeqh_128B, "v62,v65,v66" }, 2057 { Hexagon::BI__builtin_HEXAGON_V6_shuffeqw, "v62,v65,v66" }, 2058 { Hexagon::BI__builtin_HEXAGON_V6_shuffeqw_128B, "v62,v65,v66" }, 2059 { Hexagon::BI__builtin_HEXAGON_V6_vabsb, "v65,v66" }, 2060 { Hexagon::BI__builtin_HEXAGON_V6_vabsb_128B, "v65,v66" }, 2061 { Hexagon::BI__builtin_HEXAGON_V6_vabsb_sat, "v65,v66" }, 2062 { Hexagon::BI__builtin_HEXAGON_V6_vabsb_sat_128B, "v65,v66" }, 2063 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffh, "v60,v62,v65,v66" }, 2064 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffh_128B, "v60,v62,v65,v66" }, 2065 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffub, "v60,v62,v65,v66" }, 2066 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffub_128B, "v60,v62,v65,v66" }, 2067 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffuh, "v60,v62,v65,v66" }, 2068 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffuh_128B, "v60,v62,v65,v66" }, 2069 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffw, "v60,v62,v65,v66" }, 2070 { Hexagon::BI__builtin_HEXAGON_V6_vabsdiffw_128B, "v60,v62,v65,v66" }, 2071 { Hexagon::BI__builtin_HEXAGON_V6_vabsh, "v60,v62,v65,v66" }, 2072 { Hexagon::BI__builtin_HEXAGON_V6_vabsh_128B, "v60,v62,v65,v66" }, 2073 { Hexagon::BI__builtin_HEXAGON_V6_vabsh_sat, "v60,v62,v65,v66" }, 2074 { Hexagon::BI__builtin_HEXAGON_V6_vabsh_sat_128B, "v60,v62,v65,v66" }, 2075 { Hexagon::BI__builtin_HEXAGON_V6_vabsw, "v60,v62,v65,v66" }, 2076 { Hexagon::BI__builtin_HEXAGON_V6_vabsw_128B, "v60,v62,v65,v66" }, 2077 { Hexagon::BI__builtin_HEXAGON_V6_vabsw_sat, "v60,v62,v65,v66" }, 2078 { Hexagon::BI__builtin_HEXAGON_V6_vabsw_sat_128B, "v60,v62,v65,v66" }, 2079 { Hexagon::BI__builtin_HEXAGON_V6_vaddb, "v60,v62,v65,v66" }, 2080 { Hexagon::BI__builtin_HEXAGON_V6_vaddb_128B, "v60,v62,v65,v66" }, 2081 { Hexagon::BI__builtin_HEXAGON_V6_vaddb_dv, "v60,v62,v65,v66" }, 2082 { Hexagon::BI__builtin_HEXAGON_V6_vaddb_dv_128B, "v60,v62,v65,v66" }, 2083 { Hexagon::BI__builtin_HEXAGON_V6_vaddbsat, "v62,v65,v66" }, 2084 { Hexagon::BI__builtin_HEXAGON_V6_vaddbsat_128B, "v62,v65,v66" }, 2085 { Hexagon::BI__builtin_HEXAGON_V6_vaddbsat_dv, "v62,v65,v66" }, 2086 { Hexagon::BI__builtin_HEXAGON_V6_vaddbsat_dv_128B, "v62,v65,v66" }, 2087 { Hexagon::BI__builtin_HEXAGON_V6_vaddcarry, "v62,v65,v66" }, 2088 { Hexagon::BI__builtin_HEXAGON_V6_vaddcarry_128B, "v62,v65,v66" }, 2089 { Hexagon::BI__builtin_HEXAGON_V6_vaddcarrysat, "v66" }, 2090 { Hexagon::BI__builtin_HEXAGON_V6_vaddcarrysat_128B, "v66" }, 2091 { Hexagon::BI__builtin_HEXAGON_V6_vaddclbh, "v62,v65,v66" }, 2092 { Hexagon::BI__builtin_HEXAGON_V6_vaddclbh_128B, "v62,v65,v66" }, 2093 { Hexagon::BI__builtin_HEXAGON_V6_vaddclbw, "v62,v65,v66" }, 2094 { Hexagon::BI__builtin_HEXAGON_V6_vaddclbw_128B, "v62,v65,v66" }, 2095 { Hexagon::BI__builtin_HEXAGON_V6_vaddh, "v60,v62,v65,v66" }, 2096 { Hexagon::BI__builtin_HEXAGON_V6_vaddh_128B, "v60,v62,v65,v66" }, 2097 { Hexagon::BI__builtin_HEXAGON_V6_vaddh_dv, "v60,v62,v65,v66" }, 2098 { Hexagon::BI__builtin_HEXAGON_V6_vaddh_dv_128B, "v60,v62,v65,v66" }, 2099 { Hexagon::BI__builtin_HEXAGON_V6_vaddhsat, "v60,v62,v65,v66" }, 2100 { Hexagon::BI__builtin_HEXAGON_V6_vaddhsat_128B, "v60,v62,v65,v66" }, 2101 { Hexagon::BI__builtin_HEXAGON_V6_vaddhsat_dv, "v60,v62,v65,v66" }, 2102 { Hexagon::BI__builtin_HEXAGON_V6_vaddhsat_dv_128B, "v60,v62,v65,v66" }, 2103 { Hexagon::BI__builtin_HEXAGON_V6_vaddhw, "v60,v62,v65,v66" }, 2104 { Hexagon::BI__builtin_HEXAGON_V6_vaddhw_128B, "v60,v62,v65,v66" }, 2105 { Hexagon::BI__builtin_HEXAGON_V6_vaddhw_acc, "v62,v65,v66" }, 2106 { Hexagon::BI__builtin_HEXAGON_V6_vaddhw_acc_128B, "v62,v65,v66" }, 2107 { Hexagon::BI__builtin_HEXAGON_V6_vaddubh, "v60,v62,v65,v66" }, 2108 { Hexagon::BI__builtin_HEXAGON_V6_vaddubh_128B, "v60,v62,v65,v66" }, 2109 { Hexagon::BI__builtin_HEXAGON_V6_vaddubh_acc, "v62,v65,v66" }, 2110 { Hexagon::BI__builtin_HEXAGON_V6_vaddubh_acc_128B, "v62,v65,v66" }, 2111 { Hexagon::BI__builtin_HEXAGON_V6_vaddubsat, "v60,v62,v65,v66" }, 2112 { Hexagon::BI__builtin_HEXAGON_V6_vaddubsat_128B, "v60,v62,v65,v66" }, 2113 { Hexagon::BI__builtin_HEXAGON_V6_vaddubsat_dv, "v60,v62,v65,v66" }, 2114 { Hexagon::BI__builtin_HEXAGON_V6_vaddubsat_dv_128B, "v60,v62,v65,v66" }, 2115 { Hexagon::BI__builtin_HEXAGON_V6_vaddububb_sat, "v62,v65,v66" }, 2116 { Hexagon::BI__builtin_HEXAGON_V6_vaddububb_sat_128B, "v62,v65,v66" }, 2117 { Hexagon::BI__builtin_HEXAGON_V6_vadduhsat, "v60,v62,v65,v66" }, 2118 { Hexagon::BI__builtin_HEXAGON_V6_vadduhsat_128B, "v60,v62,v65,v66" }, 2119 { Hexagon::BI__builtin_HEXAGON_V6_vadduhsat_dv, "v60,v62,v65,v66" }, 2120 { Hexagon::BI__builtin_HEXAGON_V6_vadduhsat_dv_128B, "v60,v62,v65,v66" }, 2121 { Hexagon::BI__builtin_HEXAGON_V6_vadduhw, "v60,v62,v65,v66" }, 2122 { Hexagon::BI__builtin_HEXAGON_V6_vadduhw_128B, "v60,v62,v65,v66" }, 2123 { Hexagon::BI__builtin_HEXAGON_V6_vadduhw_acc, "v62,v65,v66" }, 2124 { Hexagon::BI__builtin_HEXAGON_V6_vadduhw_acc_128B, "v62,v65,v66" }, 2125 { Hexagon::BI__builtin_HEXAGON_V6_vadduwsat, "v62,v65,v66" }, 2126 { Hexagon::BI__builtin_HEXAGON_V6_vadduwsat_128B, "v62,v65,v66" }, 2127 { Hexagon::BI__builtin_HEXAGON_V6_vadduwsat_dv, "v62,v65,v66" }, 2128 { Hexagon::BI__builtin_HEXAGON_V6_vadduwsat_dv_128B, "v62,v65,v66" }, 2129 { Hexagon::BI__builtin_HEXAGON_V6_vaddw, "v60,v62,v65,v66" }, 2130 { Hexagon::BI__builtin_HEXAGON_V6_vaddw_128B, "v60,v62,v65,v66" }, 2131 { Hexagon::BI__builtin_HEXAGON_V6_vaddw_dv, "v60,v62,v65,v66" }, 2132 { Hexagon::BI__builtin_HEXAGON_V6_vaddw_dv_128B, "v60,v62,v65,v66" }, 2133 { Hexagon::BI__builtin_HEXAGON_V6_vaddwsat, "v60,v62,v65,v66" }, 2134 { Hexagon::BI__builtin_HEXAGON_V6_vaddwsat_128B, "v60,v62,v65,v66" }, 2135 { Hexagon::BI__builtin_HEXAGON_V6_vaddwsat_dv, "v60,v62,v65,v66" }, 2136 { Hexagon::BI__builtin_HEXAGON_V6_vaddwsat_dv_128B, "v60,v62,v65,v66" }, 2137 { Hexagon::BI__builtin_HEXAGON_V6_valignb, "v60,v62,v65,v66" }, 2138 { Hexagon::BI__builtin_HEXAGON_V6_valignb_128B, "v60,v62,v65,v66" }, 2139 { Hexagon::BI__builtin_HEXAGON_V6_valignbi, "v60,v62,v65,v66" }, 2140 { Hexagon::BI__builtin_HEXAGON_V6_valignbi_128B, "v60,v62,v65,v66" }, 2141 { Hexagon::BI__builtin_HEXAGON_V6_vand, "v60,v62,v65,v66" }, 2142 { Hexagon::BI__builtin_HEXAGON_V6_vand_128B, "v60,v62,v65,v66" }, 2143 { Hexagon::BI__builtin_HEXAGON_V6_vandnqrt, "v62,v65,v66" }, 2144 { Hexagon::BI__builtin_HEXAGON_V6_vandnqrt_128B, "v62,v65,v66" }, 2145 { Hexagon::BI__builtin_HEXAGON_V6_vandnqrt_acc, "v62,v65,v66" }, 2146 { Hexagon::BI__builtin_HEXAGON_V6_vandnqrt_acc_128B, "v62,v65,v66" }, 2147 { Hexagon::BI__builtin_HEXAGON_V6_vandqrt, "v60,v62,v65,v66" }, 2148 { Hexagon::BI__builtin_HEXAGON_V6_vandqrt_128B, "v60,v62,v65,v66" }, 2149 { Hexagon::BI__builtin_HEXAGON_V6_vandqrt_acc, "v60,v62,v65,v66" }, 2150 { Hexagon::BI__builtin_HEXAGON_V6_vandqrt_acc_128B, "v60,v62,v65,v66" }, 2151 { Hexagon::BI__builtin_HEXAGON_V6_vandvnqv, "v62,v65,v66" }, 2152 { Hexagon::BI__builtin_HEXAGON_V6_vandvnqv_128B, "v62,v65,v66" }, 2153 { Hexagon::BI__builtin_HEXAGON_V6_vandvqv, "v62,v65,v66" }, 2154 { Hexagon::BI__builtin_HEXAGON_V6_vandvqv_128B, "v62,v65,v66" }, 2155 { Hexagon::BI__builtin_HEXAGON_V6_vandvrt, "v60,v62,v65,v66" }, 2156 { Hexagon::BI__builtin_HEXAGON_V6_vandvrt_128B, "v60,v62,v65,v66" }, 2157 { Hexagon::BI__builtin_HEXAGON_V6_vandvrt_acc, "v60,v62,v65,v66" }, 2158 { Hexagon::BI__builtin_HEXAGON_V6_vandvrt_acc_128B, "v60,v62,v65,v66" }, 2159 { Hexagon::BI__builtin_HEXAGON_V6_vaslh, "v60,v62,v65,v66" }, 2160 { Hexagon::BI__builtin_HEXAGON_V6_vaslh_128B, "v60,v62,v65,v66" }, 2161 { Hexagon::BI__builtin_HEXAGON_V6_vaslh_acc, "v65,v66" }, 2162 { Hexagon::BI__builtin_HEXAGON_V6_vaslh_acc_128B, "v65,v66" }, 2163 { Hexagon::BI__builtin_HEXAGON_V6_vaslhv, "v60,v62,v65,v66" }, 2164 { Hexagon::BI__builtin_HEXAGON_V6_vaslhv_128B, "v60,v62,v65,v66" }, 2165 { Hexagon::BI__builtin_HEXAGON_V6_vaslw, "v60,v62,v65,v66" }, 2166 { Hexagon::BI__builtin_HEXAGON_V6_vaslw_128B, "v60,v62,v65,v66" }, 2167 { Hexagon::BI__builtin_HEXAGON_V6_vaslw_acc, "v60,v62,v65,v66" }, 2168 { Hexagon::BI__builtin_HEXAGON_V6_vaslw_acc_128B, "v60,v62,v65,v66" }, 2169 { Hexagon::BI__builtin_HEXAGON_V6_vaslwv, "v60,v62,v65,v66" }, 2170 { Hexagon::BI__builtin_HEXAGON_V6_vaslwv_128B, "v60,v62,v65,v66" }, 2171 { Hexagon::BI__builtin_HEXAGON_V6_vasrh, "v60,v62,v65,v66" }, 2172 { Hexagon::BI__builtin_HEXAGON_V6_vasrh_128B, "v60,v62,v65,v66" }, 2173 { Hexagon::BI__builtin_HEXAGON_V6_vasrh_acc, "v65,v66" }, 2174 { Hexagon::BI__builtin_HEXAGON_V6_vasrh_acc_128B, "v65,v66" }, 2175 { Hexagon::BI__builtin_HEXAGON_V6_vasrhbrndsat, "v60,v62,v65,v66" }, 2176 { Hexagon::BI__builtin_HEXAGON_V6_vasrhbrndsat_128B, "v60,v62,v65,v66" }, 2177 { Hexagon::BI__builtin_HEXAGON_V6_vasrhbsat, "v62,v65,v66" }, 2178 { Hexagon::BI__builtin_HEXAGON_V6_vasrhbsat_128B, "v62,v65,v66" }, 2179 { Hexagon::BI__builtin_HEXAGON_V6_vasrhubrndsat, "v60,v62,v65,v66" }, 2180 { Hexagon::BI__builtin_HEXAGON_V6_vasrhubrndsat_128B, "v60,v62,v65,v66" }, 2181 { Hexagon::BI__builtin_HEXAGON_V6_vasrhubsat, "v60,v62,v65,v66" }, 2182 { Hexagon::BI__builtin_HEXAGON_V6_vasrhubsat_128B, "v60,v62,v65,v66" }, 2183 { Hexagon::BI__builtin_HEXAGON_V6_vasrhv, "v60,v62,v65,v66" }, 2184 { Hexagon::BI__builtin_HEXAGON_V6_vasrhv_128B, "v60,v62,v65,v66" }, 2185 { Hexagon::BI__builtin_HEXAGON_V6_vasr_into, "v66" }, 2186 { Hexagon::BI__builtin_HEXAGON_V6_vasr_into_128B, "v66" }, 2187 { Hexagon::BI__builtin_HEXAGON_V6_vasruhubrndsat, "v65,v66" }, 2188 { Hexagon::BI__builtin_HEXAGON_V6_vasruhubrndsat_128B, "v65,v66" }, 2189 { Hexagon::BI__builtin_HEXAGON_V6_vasruhubsat, "v65,v66" }, 2190 { Hexagon::BI__builtin_HEXAGON_V6_vasruhubsat_128B, "v65,v66" }, 2191 { Hexagon::BI__builtin_HEXAGON_V6_vasruwuhrndsat, "v62,v65,v66" }, 2192 { Hexagon::BI__builtin_HEXAGON_V6_vasruwuhrndsat_128B, "v62,v65,v66" }, 2193 { Hexagon::BI__builtin_HEXAGON_V6_vasruwuhsat, "v65,v66" }, 2194 { Hexagon::BI__builtin_HEXAGON_V6_vasruwuhsat_128B, "v65,v66" }, 2195 { Hexagon::BI__builtin_HEXAGON_V6_vasrw, "v60,v62,v65,v66" }, 2196 { Hexagon::BI__builtin_HEXAGON_V6_vasrw_128B, "v60,v62,v65,v66" }, 2197 { Hexagon::BI__builtin_HEXAGON_V6_vasrw_acc, "v60,v62,v65,v66" }, 2198 { Hexagon::BI__builtin_HEXAGON_V6_vasrw_acc_128B, "v60,v62,v65,v66" }, 2199 { Hexagon::BI__builtin_HEXAGON_V6_vasrwh, "v60,v62,v65,v66" }, 2200 { Hexagon::BI__builtin_HEXAGON_V6_vasrwh_128B, "v60,v62,v65,v66" }, 2201 { Hexagon::BI__builtin_HEXAGON_V6_vasrwhrndsat, "v60,v62,v65,v66" }, 2202 { Hexagon::BI__builtin_HEXAGON_V6_vasrwhrndsat_128B, "v60,v62,v65,v66" }, 2203 { Hexagon::BI__builtin_HEXAGON_V6_vasrwhsat, "v60,v62,v65,v66" }, 2204 { Hexagon::BI__builtin_HEXAGON_V6_vasrwhsat_128B, "v60,v62,v65,v66" }, 2205 { Hexagon::BI__builtin_HEXAGON_V6_vasrwuhrndsat, "v62,v65,v66" }, 2206 { Hexagon::BI__builtin_HEXAGON_V6_vasrwuhrndsat_128B, "v62,v65,v66" }, 2207 { Hexagon::BI__builtin_HEXAGON_V6_vasrwuhsat, "v60,v62,v65,v66" }, 2208 { Hexagon::BI__builtin_HEXAGON_V6_vasrwuhsat_128B, "v60,v62,v65,v66" }, 2209 { Hexagon::BI__builtin_HEXAGON_V6_vasrwv, "v60,v62,v65,v66" }, 2210 { Hexagon::BI__builtin_HEXAGON_V6_vasrwv_128B, "v60,v62,v65,v66" }, 2211 { Hexagon::BI__builtin_HEXAGON_V6_vassign, "v60,v62,v65,v66" }, 2212 { Hexagon::BI__builtin_HEXAGON_V6_vassign_128B, "v60,v62,v65,v66" }, 2213 { Hexagon::BI__builtin_HEXAGON_V6_vassignp, "v60,v62,v65,v66" }, 2214 { Hexagon::BI__builtin_HEXAGON_V6_vassignp_128B, "v60,v62,v65,v66" }, 2215 { Hexagon::BI__builtin_HEXAGON_V6_vavgb, "v65,v66" }, 2216 { Hexagon::BI__builtin_HEXAGON_V6_vavgb_128B, "v65,v66" }, 2217 { Hexagon::BI__builtin_HEXAGON_V6_vavgbrnd, "v65,v66" }, 2218 { Hexagon::BI__builtin_HEXAGON_V6_vavgbrnd_128B, "v65,v66" }, 2219 { Hexagon::BI__builtin_HEXAGON_V6_vavgh, "v60,v62,v65,v66" }, 2220 { Hexagon::BI__builtin_HEXAGON_V6_vavgh_128B, "v60,v62,v65,v66" }, 2221 { Hexagon::BI__builtin_HEXAGON_V6_vavghrnd, "v60,v62,v65,v66" }, 2222 { Hexagon::BI__builtin_HEXAGON_V6_vavghrnd_128B, "v60,v62,v65,v66" }, 2223 { Hexagon::BI__builtin_HEXAGON_V6_vavgub, "v60,v62,v65,v66" }, 2224 { Hexagon::BI__builtin_HEXAGON_V6_vavgub_128B, "v60,v62,v65,v66" }, 2225 { Hexagon::BI__builtin_HEXAGON_V6_vavgubrnd, "v60,v62,v65,v66" }, 2226 { Hexagon::BI__builtin_HEXAGON_V6_vavgubrnd_128B, "v60,v62,v65,v66" }, 2227 { Hexagon::BI__builtin_HEXAGON_V6_vavguh, "v60,v62,v65,v66" }, 2228 { Hexagon::BI__builtin_HEXAGON_V6_vavguh_128B, "v60,v62,v65,v66" }, 2229 { Hexagon::BI__builtin_HEXAGON_V6_vavguhrnd, "v60,v62,v65,v66" }, 2230 { Hexagon::BI__builtin_HEXAGON_V6_vavguhrnd_128B, "v60,v62,v65,v66" }, 2231 { Hexagon::BI__builtin_HEXAGON_V6_vavguw, "v65,v66" }, 2232 { Hexagon::BI__builtin_HEXAGON_V6_vavguw_128B, "v65,v66" }, 2233 { Hexagon::BI__builtin_HEXAGON_V6_vavguwrnd, "v65,v66" }, 2234 { Hexagon::BI__builtin_HEXAGON_V6_vavguwrnd_128B, "v65,v66" }, 2235 { Hexagon::BI__builtin_HEXAGON_V6_vavgw, "v60,v62,v65,v66" }, 2236 { Hexagon::BI__builtin_HEXAGON_V6_vavgw_128B, "v60,v62,v65,v66" }, 2237 { Hexagon::BI__builtin_HEXAGON_V6_vavgwrnd, "v60,v62,v65,v66" }, 2238 { Hexagon::BI__builtin_HEXAGON_V6_vavgwrnd_128B, "v60,v62,v65,v66" }, 2239 { Hexagon::BI__builtin_HEXAGON_V6_vcl0h, "v60,v62,v65,v66" }, 2240 { Hexagon::BI__builtin_HEXAGON_V6_vcl0h_128B, "v60,v62,v65,v66" }, 2241 { Hexagon::BI__builtin_HEXAGON_V6_vcl0w, "v60,v62,v65,v66" }, 2242 { Hexagon::BI__builtin_HEXAGON_V6_vcl0w_128B, "v60,v62,v65,v66" }, 2243 { Hexagon::BI__builtin_HEXAGON_V6_vcombine, "v60,v62,v65,v66" }, 2244 { Hexagon::BI__builtin_HEXAGON_V6_vcombine_128B, "v60,v62,v65,v66" }, 2245 { Hexagon::BI__builtin_HEXAGON_V6_vd0, "v60,v62,v65,v66" }, 2246 { Hexagon::BI__builtin_HEXAGON_V6_vd0_128B, "v60,v62,v65,v66" }, 2247 { Hexagon::BI__builtin_HEXAGON_V6_vdd0, "v65,v66" }, 2248 { Hexagon::BI__builtin_HEXAGON_V6_vdd0_128B, "v65,v66" }, 2249 { Hexagon::BI__builtin_HEXAGON_V6_vdealb, "v60,v62,v65,v66" }, 2250 { Hexagon::BI__builtin_HEXAGON_V6_vdealb_128B, "v60,v62,v65,v66" }, 2251 { Hexagon::BI__builtin_HEXAGON_V6_vdealb4w, "v60,v62,v65,v66" }, 2252 { Hexagon::BI__builtin_HEXAGON_V6_vdealb4w_128B, "v60,v62,v65,v66" }, 2253 { Hexagon::BI__builtin_HEXAGON_V6_vdealh, "v60,v62,v65,v66" }, 2254 { Hexagon::BI__builtin_HEXAGON_V6_vdealh_128B, "v60,v62,v65,v66" }, 2255 { Hexagon::BI__builtin_HEXAGON_V6_vdealvdd, "v60,v62,v65,v66" }, 2256 { Hexagon::BI__builtin_HEXAGON_V6_vdealvdd_128B, "v60,v62,v65,v66" }, 2257 { Hexagon::BI__builtin_HEXAGON_V6_vdelta, "v60,v62,v65,v66" }, 2258 { Hexagon::BI__builtin_HEXAGON_V6_vdelta_128B, "v60,v62,v65,v66" }, 2259 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus, "v60,v62,v65,v66" }, 2260 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_128B, "v60,v62,v65,v66" }, 2261 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_acc, "v60,v62,v65,v66" }, 2262 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_acc_128B, "v60,v62,v65,v66" }, 2263 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_dv, "v60,v62,v65,v66" }, 2264 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_dv_128B, "v60,v62,v65,v66" }, 2265 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_dv_acc, "v60,v62,v65,v66" }, 2266 { Hexagon::BI__builtin_HEXAGON_V6_vdmpybus_dv_acc_128B, "v60,v62,v65,v66" }, 2267 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb, "v60,v62,v65,v66" }, 2268 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_128B, "v60,v62,v65,v66" }, 2269 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_acc, "v60,v62,v65,v66" }, 2270 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_acc_128B, "v60,v62,v65,v66" }, 2271 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_dv, "v60,v62,v65,v66" }, 2272 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_dv_128B, "v60,v62,v65,v66" }, 2273 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_dv_acc, "v60,v62,v65,v66" }, 2274 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhb_dv_acc_128B, "v60,v62,v65,v66" }, 2275 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhisat, "v60,v62,v65,v66" }, 2276 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhisat_128B, "v60,v62,v65,v66" }, 2277 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhisat_acc, "v60,v62,v65,v66" }, 2278 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhisat_acc_128B, "v60,v62,v65,v66" }, 2279 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsat, "v60,v62,v65,v66" }, 2280 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsat_128B, "v60,v62,v65,v66" }, 2281 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsat_acc, "v60,v62,v65,v66" }, 2282 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsat_acc_128B, "v60,v62,v65,v66" }, 2283 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsuisat, "v60,v62,v65,v66" }, 2284 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsuisat_128B, "v60,v62,v65,v66" }, 2285 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsuisat_acc, "v60,v62,v65,v66" }, 2286 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsuisat_acc_128B, "v60,v62,v65,v66" }, 2287 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsusat, "v60,v62,v65,v66" }, 2288 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsusat_128B, "v60,v62,v65,v66" }, 2289 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsusat_acc, "v60,v62,v65,v66" }, 2290 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhsusat_acc_128B, "v60,v62,v65,v66" }, 2291 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhvsat, "v60,v62,v65,v66" }, 2292 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhvsat_128B, "v60,v62,v65,v66" }, 2293 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhvsat_acc, "v60,v62,v65,v66" }, 2294 { Hexagon::BI__builtin_HEXAGON_V6_vdmpyhvsat_acc_128B, "v60,v62,v65,v66" }, 2295 { Hexagon::BI__builtin_HEXAGON_V6_vdsaduh, "v60,v62,v65,v66" }, 2296 { Hexagon::BI__builtin_HEXAGON_V6_vdsaduh_128B, "v60,v62,v65,v66" }, 2297 { Hexagon::BI__builtin_HEXAGON_V6_vdsaduh_acc, "v60,v62,v65,v66" }, 2298 { Hexagon::BI__builtin_HEXAGON_V6_vdsaduh_acc_128B, "v60,v62,v65,v66" }, 2299 { Hexagon::BI__builtin_HEXAGON_V6_veqb, "v60,v62,v65,v66" }, 2300 { Hexagon::BI__builtin_HEXAGON_V6_veqb_128B, "v60,v62,v65,v66" }, 2301 { Hexagon::BI__builtin_HEXAGON_V6_veqb_and, "v60,v62,v65,v66" }, 2302 { Hexagon::BI__builtin_HEXAGON_V6_veqb_and_128B, "v60,v62,v65,v66" }, 2303 { Hexagon::BI__builtin_HEXAGON_V6_veqb_or, "v60,v62,v65,v66" }, 2304 { Hexagon::BI__builtin_HEXAGON_V6_veqb_or_128B, "v60,v62,v65,v66" }, 2305 { Hexagon::BI__builtin_HEXAGON_V6_veqb_xor, "v60,v62,v65,v66" }, 2306 { Hexagon::BI__builtin_HEXAGON_V6_veqb_xor_128B, "v60,v62,v65,v66" }, 2307 { Hexagon::BI__builtin_HEXAGON_V6_veqh, "v60,v62,v65,v66" }, 2308 { Hexagon::BI__builtin_HEXAGON_V6_veqh_128B, "v60,v62,v65,v66" }, 2309 { Hexagon::BI__builtin_HEXAGON_V6_veqh_and, "v60,v62,v65,v66" }, 2310 { Hexagon::BI__builtin_HEXAGON_V6_veqh_and_128B, "v60,v62,v65,v66" }, 2311 { Hexagon::BI__builtin_HEXAGON_V6_veqh_or, "v60,v62,v65,v66" }, 2312 { Hexagon::BI__builtin_HEXAGON_V6_veqh_or_128B, "v60,v62,v65,v66" }, 2313 { Hexagon::BI__builtin_HEXAGON_V6_veqh_xor, "v60,v62,v65,v66" }, 2314 { Hexagon::BI__builtin_HEXAGON_V6_veqh_xor_128B, "v60,v62,v65,v66" }, 2315 { Hexagon::BI__builtin_HEXAGON_V6_veqw, "v60,v62,v65,v66" }, 2316 { Hexagon::BI__builtin_HEXAGON_V6_veqw_128B, "v60,v62,v65,v66" }, 2317 { Hexagon::BI__builtin_HEXAGON_V6_veqw_and, "v60,v62,v65,v66" }, 2318 { Hexagon::BI__builtin_HEXAGON_V6_veqw_and_128B, "v60,v62,v65,v66" }, 2319 { Hexagon::BI__builtin_HEXAGON_V6_veqw_or, "v60,v62,v65,v66" }, 2320 { Hexagon::BI__builtin_HEXAGON_V6_veqw_or_128B, "v60,v62,v65,v66" }, 2321 { Hexagon::BI__builtin_HEXAGON_V6_veqw_xor, "v60,v62,v65,v66" }, 2322 { Hexagon::BI__builtin_HEXAGON_V6_veqw_xor_128B, "v60,v62,v65,v66" }, 2323 { Hexagon::BI__builtin_HEXAGON_V6_vgtb, "v60,v62,v65,v66" }, 2324 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_128B, "v60,v62,v65,v66" }, 2325 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_and, "v60,v62,v65,v66" }, 2326 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_and_128B, "v60,v62,v65,v66" }, 2327 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_or, "v60,v62,v65,v66" }, 2328 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_or_128B, "v60,v62,v65,v66" }, 2329 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_xor, "v60,v62,v65,v66" }, 2330 { Hexagon::BI__builtin_HEXAGON_V6_vgtb_xor_128B, "v60,v62,v65,v66" }, 2331 { Hexagon::BI__builtin_HEXAGON_V6_vgth, "v60,v62,v65,v66" }, 2332 { Hexagon::BI__builtin_HEXAGON_V6_vgth_128B, "v60,v62,v65,v66" }, 2333 { Hexagon::BI__builtin_HEXAGON_V6_vgth_and, "v60,v62,v65,v66" }, 2334 { Hexagon::BI__builtin_HEXAGON_V6_vgth_and_128B, "v60,v62,v65,v66" }, 2335 { Hexagon::BI__builtin_HEXAGON_V6_vgth_or, "v60,v62,v65,v66" }, 2336 { Hexagon::BI__builtin_HEXAGON_V6_vgth_or_128B, "v60,v62,v65,v66" }, 2337 { Hexagon::BI__builtin_HEXAGON_V6_vgth_xor, "v60,v62,v65,v66" }, 2338 { Hexagon::BI__builtin_HEXAGON_V6_vgth_xor_128B, "v60,v62,v65,v66" }, 2339 { Hexagon::BI__builtin_HEXAGON_V6_vgtub, "v60,v62,v65,v66" }, 2340 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_128B, "v60,v62,v65,v66" }, 2341 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_and, "v60,v62,v65,v66" }, 2342 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_and_128B, "v60,v62,v65,v66" }, 2343 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_or, "v60,v62,v65,v66" }, 2344 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_or_128B, "v60,v62,v65,v66" }, 2345 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_xor, "v60,v62,v65,v66" }, 2346 { Hexagon::BI__builtin_HEXAGON_V6_vgtub_xor_128B, "v60,v62,v65,v66" }, 2347 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh, "v60,v62,v65,v66" }, 2348 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_128B, "v60,v62,v65,v66" }, 2349 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_and, "v60,v62,v65,v66" }, 2350 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_and_128B, "v60,v62,v65,v66" }, 2351 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_or, "v60,v62,v65,v66" }, 2352 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_or_128B, "v60,v62,v65,v66" }, 2353 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_xor, "v60,v62,v65,v66" }, 2354 { Hexagon::BI__builtin_HEXAGON_V6_vgtuh_xor_128B, "v60,v62,v65,v66" }, 2355 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw, "v60,v62,v65,v66" }, 2356 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_128B, "v60,v62,v65,v66" }, 2357 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_and, "v60,v62,v65,v66" }, 2358 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_and_128B, "v60,v62,v65,v66" }, 2359 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_or, "v60,v62,v65,v66" }, 2360 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_or_128B, "v60,v62,v65,v66" }, 2361 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_xor, "v60,v62,v65,v66" }, 2362 { Hexagon::BI__builtin_HEXAGON_V6_vgtuw_xor_128B, "v60,v62,v65,v66" }, 2363 { Hexagon::BI__builtin_HEXAGON_V6_vgtw, "v60,v62,v65,v66" }, 2364 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_128B, "v60,v62,v65,v66" }, 2365 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_and, "v60,v62,v65,v66" }, 2366 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_and_128B, "v60,v62,v65,v66" }, 2367 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_or, "v60,v62,v65,v66" }, 2368 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_or_128B, "v60,v62,v65,v66" }, 2369 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_xor, "v60,v62,v65,v66" }, 2370 { Hexagon::BI__builtin_HEXAGON_V6_vgtw_xor_128B, "v60,v62,v65,v66" }, 2371 { Hexagon::BI__builtin_HEXAGON_V6_vinsertwr, "v60,v62,v65,v66" }, 2372 { Hexagon::BI__builtin_HEXAGON_V6_vinsertwr_128B, "v60,v62,v65,v66" }, 2373 { Hexagon::BI__builtin_HEXAGON_V6_vlalignb, "v60,v62,v65,v66" }, 2374 { Hexagon::BI__builtin_HEXAGON_V6_vlalignb_128B, "v60,v62,v65,v66" }, 2375 { Hexagon::BI__builtin_HEXAGON_V6_vlalignbi, "v60,v62,v65,v66" }, 2376 { Hexagon::BI__builtin_HEXAGON_V6_vlalignbi_128B, "v60,v62,v65,v66" }, 2377 { Hexagon::BI__builtin_HEXAGON_V6_vlsrb, "v62,v65,v66" }, 2378 { Hexagon::BI__builtin_HEXAGON_V6_vlsrb_128B, "v62,v65,v66" }, 2379 { Hexagon::BI__builtin_HEXAGON_V6_vlsrh, "v60,v62,v65,v66" }, 2380 { Hexagon::BI__builtin_HEXAGON_V6_vlsrh_128B, "v60,v62,v65,v66" }, 2381 { Hexagon::BI__builtin_HEXAGON_V6_vlsrhv, "v60,v62,v65,v66" }, 2382 { Hexagon::BI__builtin_HEXAGON_V6_vlsrhv_128B, "v60,v62,v65,v66" }, 2383 { Hexagon::BI__builtin_HEXAGON_V6_vlsrw, "v60,v62,v65,v66" }, 2384 { Hexagon::BI__builtin_HEXAGON_V6_vlsrw_128B, "v60,v62,v65,v66" }, 2385 { Hexagon::BI__builtin_HEXAGON_V6_vlsrwv, "v60,v62,v65,v66" }, 2386 { Hexagon::BI__builtin_HEXAGON_V6_vlsrwv_128B, "v60,v62,v65,v66" }, 2387 { Hexagon::BI__builtin_HEXAGON_V6_vlut4, "v65,v66" }, 2388 { Hexagon::BI__builtin_HEXAGON_V6_vlut4_128B, "v65,v66" }, 2389 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb, "v60,v62,v65,v66" }, 2390 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_128B, "v60,v62,v65,v66" }, 2391 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvbi, "v62,v65,v66" }, 2392 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvbi_128B, "v62,v65,v66" }, 2393 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_nm, "v62,v65,v66" }, 2394 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_nm_128B, "v62,v65,v66" }, 2395 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_oracc, "v60,v62,v65,v66" }, 2396 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_oracc_128B, "v60,v62,v65,v66" }, 2397 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_oracci, "v62,v65,v66" }, 2398 { Hexagon::BI__builtin_HEXAGON_V6_vlutvvb_oracci_128B, "v62,v65,v66" }, 2399 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh, "v60,v62,v65,v66" }, 2400 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_128B, "v60,v62,v65,v66" }, 2401 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwhi, "v62,v65,v66" }, 2402 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwhi_128B, "v62,v65,v66" }, 2403 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_nm, "v62,v65,v66" }, 2404 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_nm_128B, "v62,v65,v66" }, 2405 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_oracc, "v60,v62,v65,v66" }, 2406 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_oracc_128B, "v60,v62,v65,v66" }, 2407 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_oracci, "v62,v65,v66" }, 2408 { Hexagon::BI__builtin_HEXAGON_V6_vlutvwh_oracci_128B, "v62,v65,v66" }, 2409 { Hexagon::BI__builtin_HEXAGON_V6_vmaxb, "v62,v65,v66" }, 2410 { Hexagon::BI__builtin_HEXAGON_V6_vmaxb_128B, "v62,v65,v66" }, 2411 { Hexagon::BI__builtin_HEXAGON_V6_vmaxh, "v60,v62,v65,v66" }, 2412 { Hexagon::BI__builtin_HEXAGON_V6_vmaxh_128B, "v60,v62,v65,v66" }, 2413 { Hexagon::BI__builtin_HEXAGON_V6_vmaxub, "v60,v62,v65,v66" }, 2414 { Hexagon::BI__builtin_HEXAGON_V6_vmaxub_128B, "v60,v62,v65,v66" }, 2415 { Hexagon::BI__builtin_HEXAGON_V6_vmaxuh, "v60,v62,v65,v66" }, 2416 { Hexagon::BI__builtin_HEXAGON_V6_vmaxuh_128B, "v60,v62,v65,v66" }, 2417 { Hexagon::BI__builtin_HEXAGON_V6_vmaxw, "v60,v62,v65,v66" }, 2418 { Hexagon::BI__builtin_HEXAGON_V6_vmaxw_128B, "v60,v62,v65,v66" }, 2419 { Hexagon::BI__builtin_HEXAGON_V6_vminb, "v62,v65,v66" }, 2420 { Hexagon::BI__builtin_HEXAGON_V6_vminb_128B, "v62,v65,v66" }, 2421 { Hexagon::BI__builtin_HEXAGON_V6_vminh, "v60,v62,v65,v66" }, 2422 { Hexagon::BI__builtin_HEXAGON_V6_vminh_128B, "v60,v62,v65,v66" }, 2423 { Hexagon::BI__builtin_HEXAGON_V6_vminub, "v60,v62,v65,v66" }, 2424 { Hexagon::BI__builtin_HEXAGON_V6_vminub_128B, "v60,v62,v65,v66" }, 2425 { Hexagon::BI__builtin_HEXAGON_V6_vminuh, "v60,v62,v65,v66" }, 2426 { Hexagon::BI__builtin_HEXAGON_V6_vminuh_128B, "v60,v62,v65,v66" }, 2427 { Hexagon::BI__builtin_HEXAGON_V6_vminw, "v60,v62,v65,v66" }, 2428 { Hexagon::BI__builtin_HEXAGON_V6_vminw_128B, "v60,v62,v65,v66" }, 2429 { Hexagon::BI__builtin_HEXAGON_V6_vmpabus, "v60,v62,v65,v66" }, 2430 { Hexagon::BI__builtin_HEXAGON_V6_vmpabus_128B, "v60,v62,v65,v66" }, 2431 { Hexagon::BI__builtin_HEXAGON_V6_vmpabus_acc, "v60,v62,v65,v66" }, 2432 { Hexagon::BI__builtin_HEXAGON_V6_vmpabus_acc_128B, "v60,v62,v65,v66" }, 2433 { Hexagon::BI__builtin_HEXAGON_V6_vmpabusv, "v60,v62,v65,v66" }, 2434 { Hexagon::BI__builtin_HEXAGON_V6_vmpabusv_128B, "v60,v62,v65,v66" }, 2435 { Hexagon::BI__builtin_HEXAGON_V6_vmpabuu, "v65,v66" }, 2436 { Hexagon::BI__builtin_HEXAGON_V6_vmpabuu_128B, "v65,v66" }, 2437 { Hexagon::BI__builtin_HEXAGON_V6_vmpabuu_acc, "v65,v66" }, 2438 { Hexagon::BI__builtin_HEXAGON_V6_vmpabuu_acc_128B, "v65,v66" }, 2439 { Hexagon::BI__builtin_HEXAGON_V6_vmpabuuv, "v60,v62,v65,v66" }, 2440 { Hexagon::BI__builtin_HEXAGON_V6_vmpabuuv_128B, "v60,v62,v65,v66" }, 2441 { Hexagon::BI__builtin_HEXAGON_V6_vmpahb, "v60,v62,v65,v66" }, 2442 { Hexagon::BI__builtin_HEXAGON_V6_vmpahb_128B, "v60,v62,v65,v66" }, 2443 { Hexagon::BI__builtin_HEXAGON_V6_vmpahb_acc, "v60,v62,v65,v66" }, 2444 { Hexagon::BI__builtin_HEXAGON_V6_vmpahb_acc_128B, "v60,v62,v65,v66" }, 2445 { Hexagon::BI__builtin_HEXAGON_V6_vmpahhsat, "v65,v66" }, 2446 { Hexagon::BI__builtin_HEXAGON_V6_vmpahhsat_128B, "v65,v66" }, 2447 { Hexagon::BI__builtin_HEXAGON_V6_vmpauhb, "v62,v65,v66" }, 2448 { Hexagon::BI__builtin_HEXAGON_V6_vmpauhb_128B, "v62,v65,v66" }, 2449 { Hexagon::BI__builtin_HEXAGON_V6_vmpauhb_acc, "v62,v65,v66" }, 2450 { Hexagon::BI__builtin_HEXAGON_V6_vmpauhb_acc_128B, "v62,v65,v66" }, 2451 { Hexagon::BI__builtin_HEXAGON_V6_vmpauhuhsat, "v65,v66" }, 2452 { Hexagon::BI__builtin_HEXAGON_V6_vmpauhuhsat_128B, "v65,v66" }, 2453 { Hexagon::BI__builtin_HEXAGON_V6_vmpsuhuhsat, "v65,v66" }, 2454 { Hexagon::BI__builtin_HEXAGON_V6_vmpsuhuhsat_128B, "v65,v66" }, 2455 { Hexagon::BI__builtin_HEXAGON_V6_vmpybus, "v60,v62,v65,v66" }, 2456 { Hexagon::BI__builtin_HEXAGON_V6_vmpybus_128B, "v60,v62,v65,v66" }, 2457 { Hexagon::BI__builtin_HEXAGON_V6_vmpybus_acc, "v60,v62,v65,v66" }, 2458 { Hexagon::BI__builtin_HEXAGON_V6_vmpybus_acc_128B, "v60,v62,v65,v66" }, 2459 { Hexagon::BI__builtin_HEXAGON_V6_vmpybusv, "v60,v62,v65,v66" }, 2460 { Hexagon::BI__builtin_HEXAGON_V6_vmpybusv_128B, "v60,v62,v65,v66" }, 2461 { Hexagon::BI__builtin_HEXAGON_V6_vmpybusv_acc, "v60,v62,v65,v66" }, 2462 { Hexagon::BI__builtin_HEXAGON_V6_vmpybusv_acc_128B, "v60,v62,v65,v66" }, 2463 { Hexagon::BI__builtin_HEXAGON_V6_vmpybv, "v60,v62,v65,v66" }, 2464 { Hexagon::BI__builtin_HEXAGON_V6_vmpybv_128B, "v60,v62,v65,v66" }, 2465 { Hexagon::BI__builtin_HEXAGON_V6_vmpybv_acc, "v60,v62,v65,v66" }, 2466 { Hexagon::BI__builtin_HEXAGON_V6_vmpybv_acc_128B, "v60,v62,v65,v66" }, 2467 { Hexagon::BI__builtin_HEXAGON_V6_vmpyewuh, "v60,v62,v65,v66" }, 2468 { Hexagon::BI__builtin_HEXAGON_V6_vmpyewuh_128B, "v60,v62,v65,v66" }, 2469 { Hexagon::BI__builtin_HEXAGON_V6_vmpyewuh_64, "v62,v65,v66" }, 2470 { Hexagon::BI__builtin_HEXAGON_V6_vmpyewuh_64_128B, "v62,v65,v66" }, 2471 { Hexagon::BI__builtin_HEXAGON_V6_vmpyh, "v60,v62,v65,v66" }, 2472 { Hexagon::BI__builtin_HEXAGON_V6_vmpyh_128B, "v60,v62,v65,v66" }, 2473 { Hexagon::BI__builtin_HEXAGON_V6_vmpyh_acc, "v65,v66" }, 2474 { Hexagon::BI__builtin_HEXAGON_V6_vmpyh_acc_128B, "v65,v66" }, 2475 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhsat_acc, "v60,v62,v65,v66" }, 2476 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhsat_acc_128B, "v60,v62,v65,v66" }, 2477 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhsrs, "v60,v62,v65,v66" }, 2478 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhsrs_128B, "v60,v62,v65,v66" }, 2479 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhss, "v60,v62,v65,v66" }, 2480 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhss_128B, "v60,v62,v65,v66" }, 2481 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhus, "v60,v62,v65,v66" }, 2482 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhus_128B, "v60,v62,v65,v66" }, 2483 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhus_acc, "v60,v62,v65,v66" }, 2484 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhus_acc_128B, "v60,v62,v65,v66" }, 2485 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhv, "v60,v62,v65,v66" }, 2486 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhv_128B, "v60,v62,v65,v66" }, 2487 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhv_acc, "v60,v62,v65,v66" }, 2488 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhv_acc_128B, "v60,v62,v65,v66" }, 2489 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhvsrs, "v60,v62,v65,v66" }, 2490 { Hexagon::BI__builtin_HEXAGON_V6_vmpyhvsrs_128B, "v60,v62,v65,v66" }, 2491 { Hexagon::BI__builtin_HEXAGON_V6_vmpyieoh, "v60,v62,v65,v66" }, 2492 { Hexagon::BI__builtin_HEXAGON_V6_vmpyieoh_128B, "v60,v62,v65,v66" }, 2493 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiewh_acc, "v60,v62,v65,v66" }, 2494 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiewh_acc_128B, "v60,v62,v65,v66" }, 2495 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiewuh, "v60,v62,v65,v66" }, 2496 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiewuh_128B, "v60,v62,v65,v66" }, 2497 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiewuh_acc, "v60,v62,v65,v66" }, 2498 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiewuh_acc_128B, "v60,v62,v65,v66" }, 2499 { Hexagon::BI__builtin_HEXAGON_V6_vmpyih, "v60,v62,v65,v66" }, 2500 { Hexagon::BI__builtin_HEXAGON_V6_vmpyih_128B, "v60,v62,v65,v66" }, 2501 { Hexagon::BI__builtin_HEXAGON_V6_vmpyih_acc, "v60,v62,v65,v66" }, 2502 { Hexagon::BI__builtin_HEXAGON_V6_vmpyih_acc_128B, "v60,v62,v65,v66" }, 2503 { Hexagon::BI__builtin_HEXAGON_V6_vmpyihb, "v60,v62,v65,v66" }, 2504 { Hexagon::BI__builtin_HEXAGON_V6_vmpyihb_128B, "v60,v62,v65,v66" }, 2505 { Hexagon::BI__builtin_HEXAGON_V6_vmpyihb_acc, "v60,v62,v65,v66" }, 2506 { Hexagon::BI__builtin_HEXAGON_V6_vmpyihb_acc_128B, "v60,v62,v65,v66" }, 2507 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiowh, "v60,v62,v65,v66" }, 2508 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiowh_128B, "v60,v62,v65,v66" }, 2509 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwb, "v60,v62,v65,v66" }, 2510 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwb_128B, "v60,v62,v65,v66" }, 2511 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwb_acc, "v60,v62,v65,v66" }, 2512 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwb_acc_128B, "v60,v62,v65,v66" }, 2513 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwh, "v60,v62,v65,v66" }, 2514 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwh_128B, "v60,v62,v65,v66" }, 2515 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwh_acc, "v60,v62,v65,v66" }, 2516 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwh_acc_128B, "v60,v62,v65,v66" }, 2517 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwub, "v62,v65,v66" }, 2518 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwub_128B, "v62,v65,v66" }, 2519 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwub_acc, "v62,v65,v66" }, 2520 { Hexagon::BI__builtin_HEXAGON_V6_vmpyiwub_acc_128B, "v62,v65,v66" }, 2521 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh, "v60,v62,v65,v66" }, 2522 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_128B, "v60,v62,v65,v66" }, 2523 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_64_acc, "v62,v65,v66" }, 2524 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_64_acc_128B, "v62,v65,v66" }, 2525 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_rnd, "v60,v62,v65,v66" }, 2526 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_rnd_128B, "v60,v62,v65,v66" }, 2527 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_rnd_sacc, "v60,v62,v65,v66" }, 2528 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_rnd_sacc_128B, "v60,v62,v65,v66" }, 2529 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_sacc, "v60,v62,v65,v66" }, 2530 { Hexagon::BI__builtin_HEXAGON_V6_vmpyowh_sacc_128B, "v60,v62,v65,v66" }, 2531 { Hexagon::BI__builtin_HEXAGON_V6_vmpyub, "v60,v62,v65,v66" }, 2532 { Hexagon::BI__builtin_HEXAGON_V6_vmpyub_128B, "v60,v62,v65,v66" }, 2533 { Hexagon::BI__builtin_HEXAGON_V6_vmpyub_acc, "v60,v62,v65,v66" }, 2534 { Hexagon::BI__builtin_HEXAGON_V6_vmpyub_acc_128B, "v60,v62,v65,v66" }, 2535 { Hexagon::BI__builtin_HEXAGON_V6_vmpyubv, "v60,v62,v65,v66" }, 2536 { Hexagon::BI__builtin_HEXAGON_V6_vmpyubv_128B, "v60,v62,v65,v66" }, 2537 { Hexagon::BI__builtin_HEXAGON_V6_vmpyubv_acc, "v60,v62,v65,v66" }, 2538 { Hexagon::BI__builtin_HEXAGON_V6_vmpyubv_acc_128B, "v60,v62,v65,v66" }, 2539 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuh, "v60,v62,v65,v66" }, 2540 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuh_128B, "v60,v62,v65,v66" }, 2541 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuh_acc, "v60,v62,v65,v66" }, 2542 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuh_acc_128B, "v60,v62,v65,v66" }, 2543 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhe, "v65,v66" }, 2544 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhe_128B, "v65,v66" }, 2545 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhe_acc, "v65,v66" }, 2546 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhe_acc_128B, "v65,v66" }, 2547 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhv, "v60,v62,v65,v66" }, 2548 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhv_128B, "v60,v62,v65,v66" }, 2549 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhv_acc, "v60,v62,v65,v66" }, 2550 { Hexagon::BI__builtin_HEXAGON_V6_vmpyuhv_acc_128B, "v60,v62,v65,v66" }, 2551 { Hexagon::BI__builtin_HEXAGON_V6_vmux, "v60,v62,v65,v66" }, 2552 { Hexagon::BI__builtin_HEXAGON_V6_vmux_128B, "v60,v62,v65,v66" }, 2553 { Hexagon::BI__builtin_HEXAGON_V6_vnavgb, "v65,v66" }, 2554 { Hexagon::BI__builtin_HEXAGON_V6_vnavgb_128B, "v65,v66" }, 2555 { Hexagon::BI__builtin_HEXAGON_V6_vnavgh, "v60,v62,v65,v66" }, 2556 { Hexagon::BI__builtin_HEXAGON_V6_vnavgh_128B, "v60,v62,v65,v66" }, 2557 { Hexagon::BI__builtin_HEXAGON_V6_vnavgub, "v60,v62,v65,v66" }, 2558 { Hexagon::BI__builtin_HEXAGON_V6_vnavgub_128B, "v60,v62,v65,v66" }, 2559 { Hexagon::BI__builtin_HEXAGON_V6_vnavgw, "v60,v62,v65,v66" }, 2560 { Hexagon::BI__builtin_HEXAGON_V6_vnavgw_128B, "v60,v62,v65,v66" }, 2561 { Hexagon::BI__builtin_HEXAGON_V6_vnormamth, "v60,v62,v65,v66" }, 2562 { Hexagon::BI__builtin_HEXAGON_V6_vnormamth_128B, "v60,v62,v65,v66" }, 2563 { Hexagon::BI__builtin_HEXAGON_V6_vnormamtw, "v60,v62,v65,v66" }, 2564 { Hexagon::BI__builtin_HEXAGON_V6_vnormamtw_128B, "v60,v62,v65,v66" }, 2565 { Hexagon::BI__builtin_HEXAGON_V6_vnot, "v60,v62,v65,v66" }, 2566 { Hexagon::BI__builtin_HEXAGON_V6_vnot_128B, "v60,v62,v65,v66" }, 2567 { Hexagon::BI__builtin_HEXAGON_V6_vor, "v60,v62,v65,v66" }, 2568 { Hexagon::BI__builtin_HEXAGON_V6_vor_128B, "v60,v62,v65,v66" }, 2569 { Hexagon::BI__builtin_HEXAGON_V6_vpackeb, "v60,v62,v65,v66" }, 2570 { Hexagon::BI__builtin_HEXAGON_V6_vpackeb_128B, "v60,v62,v65,v66" }, 2571 { Hexagon::BI__builtin_HEXAGON_V6_vpackeh, "v60,v62,v65,v66" }, 2572 { Hexagon::BI__builtin_HEXAGON_V6_vpackeh_128B, "v60,v62,v65,v66" }, 2573 { Hexagon::BI__builtin_HEXAGON_V6_vpackhb_sat, "v60,v62,v65,v66" }, 2574 { Hexagon::BI__builtin_HEXAGON_V6_vpackhb_sat_128B, "v60,v62,v65,v66" }, 2575 { Hexagon::BI__builtin_HEXAGON_V6_vpackhub_sat, "v60,v62,v65,v66" }, 2576 { Hexagon::BI__builtin_HEXAGON_V6_vpackhub_sat_128B, "v60,v62,v65,v66" }, 2577 { Hexagon::BI__builtin_HEXAGON_V6_vpackob, "v60,v62,v65,v66" }, 2578 { Hexagon::BI__builtin_HEXAGON_V6_vpackob_128B, "v60,v62,v65,v66" }, 2579 { Hexagon::BI__builtin_HEXAGON_V6_vpackoh, "v60,v62,v65,v66" }, 2580 { Hexagon::BI__builtin_HEXAGON_V6_vpackoh_128B, "v60,v62,v65,v66" }, 2581 { Hexagon::BI__builtin_HEXAGON_V6_vpackwh_sat, "v60,v62,v65,v66" }, 2582 { Hexagon::BI__builtin_HEXAGON_V6_vpackwh_sat_128B, "v60,v62,v65,v66" }, 2583 { Hexagon::BI__builtin_HEXAGON_V6_vpackwuh_sat, "v60,v62,v65,v66" }, 2584 { Hexagon::BI__builtin_HEXAGON_V6_vpackwuh_sat_128B, "v60,v62,v65,v66" }, 2585 { Hexagon::BI__builtin_HEXAGON_V6_vpopcounth, "v60,v62,v65,v66" }, 2586 { Hexagon::BI__builtin_HEXAGON_V6_vpopcounth_128B, "v60,v62,v65,v66" }, 2587 { Hexagon::BI__builtin_HEXAGON_V6_vprefixqb, "v65,v66" }, 2588 { Hexagon::BI__builtin_HEXAGON_V6_vprefixqb_128B, "v65,v66" }, 2589 { Hexagon::BI__builtin_HEXAGON_V6_vprefixqh, "v65,v66" }, 2590 { Hexagon::BI__builtin_HEXAGON_V6_vprefixqh_128B, "v65,v66" }, 2591 { Hexagon::BI__builtin_HEXAGON_V6_vprefixqw, "v65,v66" }, 2592 { Hexagon::BI__builtin_HEXAGON_V6_vprefixqw_128B, "v65,v66" }, 2593 { Hexagon::BI__builtin_HEXAGON_V6_vrdelta, "v60,v62,v65,v66" }, 2594 { Hexagon::BI__builtin_HEXAGON_V6_vrdelta_128B, "v60,v62,v65,v66" }, 2595 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybub_rtt, "v65" }, 2596 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybub_rtt_128B, "v65" }, 2597 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybub_rtt_acc, "v65" }, 2598 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybub_rtt_acc_128B, "v65" }, 2599 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybus, "v60,v62,v65,v66" }, 2600 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybus_128B, "v60,v62,v65,v66" }, 2601 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybus_acc, "v60,v62,v65,v66" }, 2602 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybus_acc_128B, "v60,v62,v65,v66" }, 2603 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi, "v60,v62,v65,v66" }, 2604 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi_128B, "v60,v62,v65,v66" }, 2605 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi_acc, "v60,v62,v65,v66" }, 2606 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi_acc_128B, "v60,v62,v65,v66" }, 2607 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusv, "v60,v62,v65,v66" }, 2608 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusv_128B, "v60,v62,v65,v66" }, 2609 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusv_acc, "v60,v62,v65,v66" }, 2610 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusv_acc_128B, "v60,v62,v65,v66" }, 2611 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybv, "v60,v62,v65,v66" }, 2612 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybv_128B, "v60,v62,v65,v66" }, 2613 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybv_acc, "v60,v62,v65,v66" }, 2614 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybv_acc_128B, "v60,v62,v65,v66" }, 2615 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub, "v60,v62,v65,v66" }, 2616 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_128B, "v60,v62,v65,v66" }, 2617 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_acc, "v60,v62,v65,v66" }, 2618 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_acc_128B, "v60,v62,v65,v66" }, 2619 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi, "v60,v62,v65,v66" }, 2620 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi_128B, "v60,v62,v65,v66" }, 2621 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi_acc, "v60,v62,v65,v66" }, 2622 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi_acc_128B, "v60,v62,v65,v66" }, 2623 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_rtt, "v65" }, 2624 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_rtt_128B, "v65" }, 2625 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_rtt_acc, "v65" }, 2626 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyub_rtt_acc_128B, "v65" }, 2627 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubv, "v60,v62,v65,v66" }, 2628 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubv_128B, "v60,v62,v65,v66" }, 2629 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubv_acc, "v60,v62,v65,v66" }, 2630 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubv_acc_128B, "v60,v62,v65,v66" }, 2631 { Hexagon::BI__builtin_HEXAGON_V6_vror, "v60,v62,v65,v66" }, 2632 { Hexagon::BI__builtin_HEXAGON_V6_vror_128B, "v60,v62,v65,v66" }, 2633 { Hexagon::BI__builtin_HEXAGON_V6_vrotr, "v66" }, 2634 { Hexagon::BI__builtin_HEXAGON_V6_vrotr_128B, "v66" }, 2635 { Hexagon::BI__builtin_HEXAGON_V6_vroundhb, "v60,v62,v65,v66" }, 2636 { Hexagon::BI__builtin_HEXAGON_V6_vroundhb_128B, "v60,v62,v65,v66" }, 2637 { Hexagon::BI__builtin_HEXAGON_V6_vroundhub, "v60,v62,v65,v66" }, 2638 { Hexagon::BI__builtin_HEXAGON_V6_vroundhub_128B, "v60,v62,v65,v66" }, 2639 { Hexagon::BI__builtin_HEXAGON_V6_vrounduhub, "v62,v65,v66" }, 2640 { Hexagon::BI__builtin_HEXAGON_V6_vrounduhub_128B, "v62,v65,v66" }, 2641 { Hexagon::BI__builtin_HEXAGON_V6_vrounduwuh, "v62,v65,v66" }, 2642 { Hexagon::BI__builtin_HEXAGON_V6_vrounduwuh_128B, "v62,v65,v66" }, 2643 { Hexagon::BI__builtin_HEXAGON_V6_vroundwh, "v60,v62,v65,v66" }, 2644 { Hexagon::BI__builtin_HEXAGON_V6_vroundwh_128B, "v60,v62,v65,v66" }, 2645 { Hexagon::BI__builtin_HEXAGON_V6_vroundwuh, "v60,v62,v65,v66" }, 2646 { Hexagon::BI__builtin_HEXAGON_V6_vroundwuh_128B, "v60,v62,v65,v66" }, 2647 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi, "v60,v62,v65,v66" }, 2648 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi_128B, "v60,v62,v65,v66" }, 2649 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi_acc, "v60,v62,v65,v66" }, 2650 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi_acc_128B, "v60,v62,v65,v66" }, 2651 { Hexagon::BI__builtin_HEXAGON_V6_vsatdw, "v66" }, 2652 { Hexagon::BI__builtin_HEXAGON_V6_vsatdw_128B, "v66" }, 2653 { Hexagon::BI__builtin_HEXAGON_V6_vsathub, "v60,v62,v65,v66" }, 2654 { Hexagon::BI__builtin_HEXAGON_V6_vsathub_128B, "v60,v62,v65,v66" }, 2655 { Hexagon::BI__builtin_HEXAGON_V6_vsatuwuh, "v62,v65,v66" }, 2656 { Hexagon::BI__builtin_HEXAGON_V6_vsatuwuh_128B, "v62,v65,v66" }, 2657 { Hexagon::BI__builtin_HEXAGON_V6_vsatwh, "v60,v62,v65,v66" }, 2658 { Hexagon::BI__builtin_HEXAGON_V6_vsatwh_128B, "v60,v62,v65,v66" }, 2659 { Hexagon::BI__builtin_HEXAGON_V6_vsb, "v60,v62,v65,v66" }, 2660 { Hexagon::BI__builtin_HEXAGON_V6_vsb_128B, "v60,v62,v65,v66" }, 2661 { Hexagon::BI__builtin_HEXAGON_V6_vsh, "v60,v62,v65,v66" }, 2662 { Hexagon::BI__builtin_HEXAGON_V6_vsh_128B, "v60,v62,v65,v66" }, 2663 { Hexagon::BI__builtin_HEXAGON_V6_vshufeh, "v60,v62,v65,v66" }, 2664 { Hexagon::BI__builtin_HEXAGON_V6_vshufeh_128B, "v60,v62,v65,v66" }, 2665 { Hexagon::BI__builtin_HEXAGON_V6_vshuffb, "v60,v62,v65,v66" }, 2666 { Hexagon::BI__builtin_HEXAGON_V6_vshuffb_128B, "v60,v62,v65,v66" }, 2667 { Hexagon::BI__builtin_HEXAGON_V6_vshuffeb, "v60,v62,v65,v66" }, 2668 { Hexagon::BI__builtin_HEXAGON_V6_vshuffeb_128B, "v60,v62,v65,v66" }, 2669 { Hexagon::BI__builtin_HEXAGON_V6_vshuffh, "v60,v62,v65,v66" }, 2670 { Hexagon::BI__builtin_HEXAGON_V6_vshuffh_128B, "v60,v62,v65,v66" }, 2671 { Hexagon::BI__builtin_HEXAGON_V6_vshuffob, "v60,v62,v65,v66" }, 2672 { Hexagon::BI__builtin_HEXAGON_V6_vshuffob_128B, "v60,v62,v65,v66" }, 2673 { Hexagon::BI__builtin_HEXAGON_V6_vshuffvdd, "v60,v62,v65,v66" }, 2674 { Hexagon::BI__builtin_HEXAGON_V6_vshuffvdd_128B, "v60,v62,v65,v66" }, 2675 { Hexagon::BI__builtin_HEXAGON_V6_vshufoeb, "v60,v62,v65,v66" }, 2676 { Hexagon::BI__builtin_HEXAGON_V6_vshufoeb_128B, "v60,v62,v65,v66" }, 2677 { Hexagon::BI__builtin_HEXAGON_V6_vshufoeh, "v60,v62,v65,v66" }, 2678 { Hexagon::BI__builtin_HEXAGON_V6_vshufoeh_128B, "v60,v62,v65,v66" }, 2679 { Hexagon::BI__builtin_HEXAGON_V6_vshufoh, "v60,v62,v65,v66" }, 2680 { Hexagon::BI__builtin_HEXAGON_V6_vshufoh_128B, "v60,v62,v65,v66" }, 2681 { Hexagon::BI__builtin_HEXAGON_V6_vsubb, "v60,v62,v65,v66" }, 2682 { Hexagon::BI__builtin_HEXAGON_V6_vsubb_128B, "v60,v62,v65,v66" }, 2683 { Hexagon::BI__builtin_HEXAGON_V6_vsubb_dv, "v60,v62,v65,v66" }, 2684 { Hexagon::BI__builtin_HEXAGON_V6_vsubb_dv_128B, "v60,v62,v65,v66" }, 2685 { Hexagon::BI__builtin_HEXAGON_V6_vsubbsat, "v62,v65,v66" }, 2686 { Hexagon::BI__builtin_HEXAGON_V6_vsubbsat_128B, "v62,v65,v66" }, 2687 { Hexagon::BI__builtin_HEXAGON_V6_vsubbsat_dv, "v62,v65,v66" }, 2688 { Hexagon::BI__builtin_HEXAGON_V6_vsubbsat_dv_128B, "v62,v65,v66" }, 2689 { Hexagon::BI__builtin_HEXAGON_V6_vsubcarry, "v62,v65,v66" }, 2690 { Hexagon::BI__builtin_HEXAGON_V6_vsubcarry_128B, "v62,v65,v66" }, 2691 { Hexagon::BI__builtin_HEXAGON_V6_vsubh, "v60,v62,v65,v66" }, 2692 { Hexagon::BI__builtin_HEXAGON_V6_vsubh_128B, "v60,v62,v65,v66" }, 2693 { Hexagon::BI__builtin_HEXAGON_V6_vsubh_dv, "v60,v62,v65,v66" }, 2694 { Hexagon::BI__builtin_HEXAGON_V6_vsubh_dv_128B, "v60,v62,v65,v66" }, 2695 { Hexagon::BI__builtin_HEXAGON_V6_vsubhsat, "v60,v62,v65,v66" }, 2696 { Hexagon::BI__builtin_HEXAGON_V6_vsubhsat_128B, "v60,v62,v65,v66" }, 2697 { Hexagon::BI__builtin_HEXAGON_V6_vsubhsat_dv, "v60,v62,v65,v66" }, 2698 { Hexagon::BI__builtin_HEXAGON_V6_vsubhsat_dv_128B, "v60,v62,v65,v66" }, 2699 { Hexagon::BI__builtin_HEXAGON_V6_vsubhw, "v60,v62,v65,v66" }, 2700 { Hexagon::BI__builtin_HEXAGON_V6_vsubhw_128B, "v60,v62,v65,v66" }, 2701 { Hexagon::BI__builtin_HEXAGON_V6_vsububh, "v60,v62,v65,v66" }, 2702 { Hexagon::BI__builtin_HEXAGON_V6_vsububh_128B, "v60,v62,v65,v66" }, 2703 { Hexagon::BI__builtin_HEXAGON_V6_vsububsat, "v60,v62,v65,v66" }, 2704 { Hexagon::BI__builtin_HEXAGON_V6_vsububsat_128B, "v60,v62,v65,v66" }, 2705 { Hexagon::BI__builtin_HEXAGON_V6_vsububsat_dv, "v60,v62,v65,v66" }, 2706 { Hexagon::BI__builtin_HEXAGON_V6_vsububsat_dv_128B, "v60,v62,v65,v66" }, 2707 { Hexagon::BI__builtin_HEXAGON_V6_vsubububb_sat, "v62,v65,v66" }, 2708 { Hexagon::BI__builtin_HEXAGON_V6_vsubububb_sat_128B, "v62,v65,v66" }, 2709 { Hexagon::BI__builtin_HEXAGON_V6_vsubuhsat, "v60,v62,v65,v66" }, 2710 { Hexagon::BI__builtin_HEXAGON_V6_vsubuhsat_128B, "v60,v62,v65,v66" }, 2711 { Hexagon::BI__builtin_HEXAGON_V6_vsubuhsat_dv, "v60,v62,v65,v66" }, 2712 { Hexagon::BI__builtin_HEXAGON_V6_vsubuhsat_dv_128B, "v60,v62,v65,v66" }, 2713 { Hexagon::BI__builtin_HEXAGON_V6_vsubuhw, "v60,v62,v65,v66" }, 2714 { Hexagon::BI__builtin_HEXAGON_V6_vsubuhw_128B, "v60,v62,v65,v66" }, 2715 { Hexagon::BI__builtin_HEXAGON_V6_vsubuwsat, "v62,v65,v66" }, 2716 { Hexagon::BI__builtin_HEXAGON_V6_vsubuwsat_128B, "v62,v65,v66" }, 2717 { Hexagon::BI__builtin_HEXAGON_V6_vsubuwsat_dv, "v62,v65,v66" }, 2718 { Hexagon::BI__builtin_HEXAGON_V6_vsubuwsat_dv_128B, "v62,v65,v66" }, 2719 { Hexagon::BI__builtin_HEXAGON_V6_vsubw, "v60,v62,v65,v66" }, 2720 { Hexagon::BI__builtin_HEXAGON_V6_vsubw_128B, "v60,v62,v65,v66" }, 2721 { Hexagon::BI__builtin_HEXAGON_V6_vsubw_dv, "v60,v62,v65,v66" }, 2722 { Hexagon::BI__builtin_HEXAGON_V6_vsubw_dv_128B, "v60,v62,v65,v66" }, 2723 { Hexagon::BI__builtin_HEXAGON_V6_vsubwsat, "v60,v62,v65,v66" }, 2724 { Hexagon::BI__builtin_HEXAGON_V6_vsubwsat_128B, "v60,v62,v65,v66" }, 2725 { Hexagon::BI__builtin_HEXAGON_V6_vsubwsat_dv, "v60,v62,v65,v66" }, 2726 { Hexagon::BI__builtin_HEXAGON_V6_vsubwsat_dv_128B, "v60,v62,v65,v66" }, 2727 { Hexagon::BI__builtin_HEXAGON_V6_vswap, "v60,v62,v65,v66" }, 2728 { Hexagon::BI__builtin_HEXAGON_V6_vswap_128B, "v60,v62,v65,v66" }, 2729 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyb, "v60,v62,v65,v66" }, 2730 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyb_128B, "v60,v62,v65,v66" }, 2731 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyb_acc, "v60,v62,v65,v66" }, 2732 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyb_acc_128B, "v60,v62,v65,v66" }, 2733 { Hexagon::BI__builtin_HEXAGON_V6_vtmpybus, "v60,v62,v65,v66" }, 2734 { Hexagon::BI__builtin_HEXAGON_V6_vtmpybus_128B, "v60,v62,v65,v66" }, 2735 { Hexagon::BI__builtin_HEXAGON_V6_vtmpybus_acc, "v60,v62,v65,v66" }, 2736 { Hexagon::BI__builtin_HEXAGON_V6_vtmpybus_acc_128B, "v60,v62,v65,v66" }, 2737 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyhb, "v60,v62,v65,v66" }, 2738 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyhb_128B, "v60,v62,v65,v66" }, 2739 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyhb_acc, "v60,v62,v65,v66" }, 2740 { Hexagon::BI__builtin_HEXAGON_V6_vtmpyhb_acc_128B, "v60,v62,v65,v66" }, 2741 { Hexagon::BI__builtin_HEXAGON_V6_vunpackb, "v60,v62,v65,v66" }, 2742 { Hexagon::BI__builtin_HEXAGON_V6_vunpackb_128B, "v60,v62,v65,v66" }, 2743 { Hexagon::BI__builtin_HEXAGON_V6_vunpackh, "v60,v62,v65,v66" }, 2744 { Hexagon::BI__builtin_HEXAGON_V6_vunpackh_128B, "v60,v62,v65,v66" }, 2745 { Hexagon::BI__builtin_HEXAGON_V6_vunpackob, "v60,v62,v65,v66" }, 2746 { Hexagon::BI__builtin_HEXAGON_V6_vunpackob_128B, "v60,v62,v65,v66" }, 2747 { Hexagon::BI__builtin_HEXAGON_V6_vunpackoh, "v60,v62,v65,v66" }, 2748 { Hexagon::BI__builtin_HEXAGON_V6_vunpackoh_128B, "v60,v62,v65,v66" }, 2749 { Hexagon::BI__builtin_HEXAGON_V6_vunpackub, "v60,v62,v65,v66" }, 2750 { Hexagon::BI__builtin_HEXAGON_V6_vunpackub_128B, "v60,v62,v65,v66" }, 2751 { Hexagon::BI__builtin_HEXAGON_V6_vunpackuh, "v60,v62,v65,v66" }, 2752 { Hexagon::BI__builtin_HEXAGON_V6_vunpackuh_128B, "v60,v62,v65,v66" }, 2753 { Hexagon::BI__builtin_HEXAGON_V6_vxor, "v60,v62,v65,v66" }, 2754 { Hexagon::BI__builtin_HEXAGON_V6_vxor_128B, "v60,v62,v65,v66" }, 2755 { Hexagon::BI__builtin_HEXAGON_V6_vzb, "v60,v62,v65,v66" }, 2756 { Hexagon::BI__builtin_HEXAGON_V6_vzb_128B, "v60,v62,v65,v66" }, 2757 { Hexagon::BI__builtin_HEXAGON_V6_vzh, "v60,v62,v65,v66" }, 2758 { Hexagon::BI__builtin_HEXAGON_V6_vzh_128B, "v60,v62,v65,v66" }, 2759 }; 2760 2761 // Sort the tables on first execution so we can binary search them. 2762 auto SortCmp = [](const BuiltinAndString &LHS, const BuiltinAndString &RHS) { 2763 return LHS.BuiltinID < RHS.BuiltinID; 2764 }; 2765 static const bool SortOnce = 2766 (llvm::sort(ValidCPU, SortCmp), 2767 llvm::sort(ValidHVX, SortCmp), true); 2768 (void)SortOnce; 2769 auto LowerBoundCmp = [](const BuiltinAndString &BI, unsigned BuiltinID) { 2770 return BI.BuiltinID < BuiltinID; 2771 }; 2772 2773 const TargetInfo &TI = Context.getTargetInfo(); 2774 2775 const BuiltinAndString *FC = 2776 llvm::lower_bound(ValidCPU, BuiltinID, LowerBoundCmp); 2777 if (FC != std::end(ValidCPU) && FC->BuiltinID == BuiltinID) { 2778 const TargetOptions &Opts = TI.getTargetOpts(); 2779 StringRef CPU = Opts.CPU; 2780 if (!CPU.empty()) { 2781 assert(CPU.startswith("hexagon") && "Unexpected CPU name"); 2782 CPU.consume_front("hexagon"); 2783 SmallVector<StringRef, 3> CPUs; 2784 StringRef(FC->Str).split(CPUs, ','); 2785 if (llvm::none_of(CPUs, [CPU](StringRef S) { return S == CPU; })) 2786 return Diag(TheCall->getBeginLoc(), 2787 diag::err_hexagon_builtin_unsupported_cpu); 2788 } 2789 } 2790 2791 const BuiltinAndString *FH = 2792 llvm::lower_bound(ValidHVX, BuiltinID, LowerBoundCmp); 2793 if (FH != std::end(ValidHVX) && FH->BuiltinID == BuiltinID) { 2794 if (!TI.hasFeature("hvx")) 2795 return Diag(TheCall->getBeginLoc(), 2796 diag::err_hexagon_builtin_requires_hvx); 2797 2798 SmallVector<StringRef, 3> HVXs; 2799 StringRef(FH->Str).split(HVXs, ','); 2800 bool IsValid = llvm::any_of(HVXs, 2801 [&TI] (StringRef V) { 2802 std::string F = "hvx" + V.str(); 2803 return TI.hasFeature(F); 2804 }); 2805 if (!IsValid) 2806 return Diag(TheCall->getBeginLoc(), 2807 diag::err_hexagon_builtin_unsupported_hvx); 2808 } 2809 2810 return false; 2811 } 2812 2813 bool Sema::CheckHexagonBuiltinArgument(unsigned BuiltinID, CallExpr *TheCall) { 2814 struct ArgInfo { 2815 uint8_t OpNum; 2816 bool IsSigned; 2817 uint8_t BitWidth; 2818 uint8_t Align; 2819 }; 2820 struct BuiltinInfo { 2821 unsigned BuiltinID; 2822 ArgInfo Infos[2]; 2823 }; 2824 2825 static BuiltinInfo Infos[] = { 2826 { Hexagon::BI__builtin_circ_ldd, {{ 3, true, 4, 3 }} }, 2827 { Hexagon::BI__builtin_circ_ldw, {{ 3, true, 4, 2 }} }, 2828 { Hexagon::BI__builtin_circ_ldh, {{ 3, true, 4, 1 }} }, 2829 { Hexagon::BI__builtin_circ_lduh, {{ 3, true, 4, 0 }} }, 2830 { Hexagon::BI__builtin_circ_ldb, {{ 3, true, 4, 0 }} }, 2831 { Hexagon::BI__builtin_circ_ldub, {{ 3, true, 4, 0 }} }, 2832 { Hexagon::BI__builtin_circ_std, {{ 3, true, 4, 3 }} }, 2833 { Hexagon::BI__builtin_circ_stw, {{ 3, true, 4, 2 }} }, 2834 { Hexagon::BI__builtin_circ_sth, {{ 3, true, 4, 1 }} }, 2835 { Hexagon::BI__builtin_circ_sthhi, {{ 3, true, 4, 1 }} }, 2836 { Hexagon::BI__builtin_circ_stb, {{ 3, true, 4, 0 }} }, 2837 2838 { Hexagon::BI__builtin_HEXAGON_L2_loadrub_pci, {{ 1, true, 4, 0 }} }, 2839 { Hexagon::BI__builtin_HEXAGON_L2_loadrb_pci, {{ 1, true, 4, 0 }} }, 2840 { Hexagon::BI__builtin_HEXAGON_L2_loadruh_pci, {{ 1, true, 4, 1 }} }, 2841 { Hexagon::BI__builtin_HEXAGON_L2_loadrh_pci, {{ 1, true, 4, 1 }} }, 2842 { Hexagon::BI__builtin_HEXAGON_L2_loadri_pci, {{ 1, true, 4, 2 }} }, 2843 { Hexagon::BI__builtin_HEXAGON_L2_loadrd_pci, {{ 1, true, 4, 3 }} }, 2844 { Hexagon::BI__builtin_HEXAGON_S2_storerb_pci, {{ 1, true, 4, 0 }} }, 2845 { Hexagon::BI__builtin_HEXAGON_S2_storerh_pci, {{ 1, true, 4, 1 }} }, 2846 { Hexagon::BI__builtin_HEXAGON_S2_storerf_pci, {{ 1, true, 4, 1 }} }, 2847 { Hexagon::BI__builtin_HEXAGON_S2_storeri_pci, {{ 1, true, 4, 2 }} }, 2848 { Hexagon::BI__builtin_HEXAGON_S2_storerd_pci, {{ 1, true, 4, 3 }} }, 2849 2850 { Hexagon::BI__builtin_HEXAGON_A2_combineii, {{ 1, true, 8, 0 }} }, 2851 { Hexagon::BI__builtin_HEXAGON_A2_tfrih, {{ 1, false, 16, 0 }} }, 2852 { Hexagon::BI__builtin_HEXAGON_A2_tfril, {{ 1, false, 16, 0 }} }, 2853 { Hexagon::BI__builtin_HEXAGON_A2_tfrpi, {{ 0, true, 8, 0 }} }, 2854 { Hexagon::BI__builtin_HEXAGON_A4_bitspliti, {{ 1, false, 5, 0 }} }, 2855 { Hexagon::BI__builtin_HEXAGON_A4_cmpbeqi, {{ 1, false, 8, 0 }} }, 2856 { Hexagon::BI__builtin_HEXAGON_A4_cmpbgti, {{ 1, true, 8, 0 }} }, 2857 { Hexagon::BI__builtin_HEXAGON_A4_cround_ri, {{ 1, false, 5, 0 }} }, 2858 { Hexagon::BI__builtin_HEXAGON_A4_round_ri, {{ 1, false, 5, 0 }} }, 2859 { Hexagon::BI__builtin_HEXAGON_A4_round_ri_sat, {{ 1, false, 5, 0 }} }, 2860 { Hexagon::BI__builtin_HEXAGON_A4_vcmpbeqi, {{ 1, false, 8, 0 }} }, 2861 { Hexagon::BI__builtin_HEXAGON_A4_vcmpbgti, {{ 1, true, 8, 0 }} }, 2862 { Hexagon::BI__builtin_HEXAGON_A4_vcmpbgtui, {{ 1, false, 7, 0 }} }, 2863 { Hexagon::BI__builtin_HEXAGON_A4_vcmpheqi, {{ 1, true, 8, 0 }} }, 2864 { Hexagon::BI__builtin_HEXAGON_A4_vcmphgti, {{ 1, true, 8, 0 }} }, 2865 { Hexagon::BI__builtin_HEXAGON_A4_vcmphgtui, {{ 1, false, 7, 0 }} }, 2866 { Hexagon::BI__builtin_HEXAGON_A4_vcmpweqi, {{ 1, true, 8, 0 }} }, 2867 { Hexagon::BI__builtin_HEXAGON_A4_vcmpwgti, {{ 1, true, 8, 0 }} }, 2868 { Hexagon::BI__builtin_HEXAGON_A4_vcmpwgtui, {{ 1, false, 7, 0 }} }, 2869 { Hexagon::BI__builtin_HEXAGON_C2_bitsclri, {{ 1, false, 6, 0 }} }, 2870 { Hexagon::BI__builtin_HEXAGON_C2_muxii, {{ 2, true, 8, 0 }} }, 2871 { Hexagon::BI__builtin_HEXAGON_C4_nbitsclri, {{ 1, false, 6, 0 }} }, 2872 { Hexagon::BI__builtin_HEXAGON_F2_dfclass, {{ 1, false, 5, 0 }} }, 2873 { Hexagon::BI__builtin_HEXAGON_F2_dfimm_n, {{ 0, false, 10, 0 }} }, 2874 { Hexagon::BI__builtin_HEXAGON_F2_dfimm_p, {{ 0, false, 10, 0 }} }, 2875 { Hexagon::BI__builtin_HEXAGON_F2_sfclass, {{ 1, false, 5, 0 }} }, 2876 { Hexagon::BI__builtin_HEXAGON_F2_sfimm_n, {{ 0, false, 10, 0 }} }, 2877 { Hexagon::BI__builtin_HEXAGON_F2_sfimm_p, {{ 0, false, 10, 0 }} }, 2878 { Hexagon::BI__builtin_HEXAGON_M4_mpyri_addi, {{ 2, false, 6, 0 }} }, 2879 { Hexagon::BI__builtin_HEXAGON_M4_mpyri_addr_u2, {{ 1, false, 6, 2 }} }, 2880 { Hexagon::BI__builtin_HEXAGON_S2_addasl_rrri, {{ 2, false, 3, 0 }} }, 2881 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_p_acc, {{ 2, false, 6, 0 }} }, 2882 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_p_and, {{ 2, false, 6, 0 }} }, 2883 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_p, {{ 1, false, 6, 0 }} }, 2884 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_p_nac, {{ 2, false, 6, 0 }} }, 2885 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_p_or, {{ 2, false, 6, 0 }} }, 2886 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_p_xacc, {{ 2, false, 6, 0 }} }, 2887 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r_acc, {{ 2, false, 5, 0 }} }, 2888 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r_and, {{ 2, false, 5, 0 }} }, 2889 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r, {{ 1, false, 5, 0 }} }, 2890 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r_nac, {{ 2, false, 5, 0 }} }, 2891 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r_or, {{ 2, false, 5, 0 }} }, 2892 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r_sat, {{ 1, false, 5, 0 }} }, 2893 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_r_xacc, {{ 2, false, 5, 0 }} }, 2894 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_vh, {{ 1, false, 4, 0 }} }, 2895 { Hexagon::BI__builtin_HEXAGON_S2_asl_i_vw, {{ 1, false, 5, 0 }} }, 2896 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p_acc, {{ 2, false, 6, 0 }} }, 2897 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p_and, {{ 2, false, 6, 0 }} }, 2898 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p, {{ 1, false, 6, 0 }} }, 2899 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p_nac, {{ 2, false, 6, 0 }} }, 2900 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p_or, {{ 2, false, 6, 0 }} }, 2901 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p_rnd_goodsyntax, 2902 {{ 1, false, 6, 0 }} }, 2903 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_p_rnd, {{ 1, false, 6, 0 }} }, 2904 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r_acc, {{ 2, false, 5, 0 }} }, 2905 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r_and, {{ 2, false, 5, 0 }} }, 2906 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r, {{ 1, false, 5, 0 }} }, 2907 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r_nac, {{ 2, false, 5, 0 }} }, 2908 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r_or, {{ 2, false, 5, 0 }} }, 2909 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r_rnd_goodsyntax, 2910 {{ 1, false, 5, 0 }} }, 2911 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_r_rnd, {{ 1, false, 5, 0 }} }, 2912 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_svw_trun, {{ 1, false, 5, 0 }} }, 2913 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_vh, {{ 1, false, 4, 0 }} }, 2914 { Hexagon::BI__builtin_HEXAGON_S2_asr_i_vw, {{ 1, false, 5, 0 }} }, 2915 { Hexagon::BI__builtin_HEXAGON_S2_clrbit_i, {{ 1, false, 5, 0 }} }, 2916 { Hexagon::BI__builtin_HEXAGON_S2_extractu, {{ 1, false, 5, 0 }, 2917 { 2, false, 5, 0 }} }, 2918 { Hexagon::BI__builtin_HEXAGON_S2_extractup, {{ 1, false, 6, 0 }, 2919 { 2, false, 6, 0 }} }, 2920 { Hexagon::BI__builtin_HEXAGON_S2_insert, {{ 2, false, 5, 0 }, 2921 { 3, false, 5, 0 }} }, 2922 { Hexagon::BI__builtin_HEXAGON_S2_insertp, {{ 2, false, 6, 0 }, 2923 { 3, false, 6, 0 }} }, 2924 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_p_acc, {{ 2, false, 6, 0 }} }, 2925 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_p_and, {{ 2, false, 6, 0 }} }, 2926 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_p, {{ 1, false, 6, 0 }} }, 2927 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_p_nac, {{ 2, false, 6, 0 }} }, 2928 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_p_or, {{ 2, false, 6, 0 }} }, 2929 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_p_xacc, {{ 2, false, 6, 0 }} }, 2930 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_r_acc, {{ 2, false, 5, 0 }} }, 2931 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_r_and, {{ 2, false, 5, 0 }} }, 2932 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_r, {{ 1, false, 5, 0 }} }, 2933 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_r_nac, {{ 2, false, 5, 0 }} }, 2934 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_r_or, {{ 2, false, 5, 0 }} }, 2935 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_r_xacc, {{ 2, false, 5, 0 }} }, 2936 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_vh, {{ 1, false, 4, 0 }} }, 2937 { Hexagon::BI__builtin_HEXAGON_S2_lsr_i_vw, {{ 1, false, 5, 0 }} }, 2938 { Hexagon::BI__builtin_HEXAGON_S2_setbit_i, {{ 1, false, 5, 0 }} }, 2939 { Hexagon::BI__builtin_HEXAGON_S2_tableidxb_goodsyntax, 2940 {{ 2, false, 4, 0 }, 2941 { 3, false, 5, 0 }} }, 2942 { Hexagon::BI__builtin_HEXAGON_S2_tableidxd_goodsyntax, 2943 {{ 2, false, 4, 0 }, 2944 { 3, false, 5, 0 }} }, 2945 { Hexagon::BI__builtin_HEXAGON_S2_tableidxh_goodsyntax, 2946 {{ 2, false, 4, 0 }, 2947 { 3, false, 5, 0 }} }, 2948 { Hexagon::BI__builtin_HEXAGON_S2_tableidxw_goodsyntax, 2949 {{ 2, false, 4, 0 }, 2950 { 3, false, 5, 0 }} }, 2951 { Hexagon::BI__builtin_HEXAGON_S2_togglebit_i, {{ 1, false, 5, 0 }} }, 2952 { Hexagon::BI__builtin_HEXAGON_S2_tstbit_i, {{ 1, false, 5, 0 }} }, 2953 { Hexagon::BI__builtin_HEXAGON_S2_valignib, {{ 2, false, 3, 0 }} }, 2954 { Hexagon::BI__builtin_HEXAGON_S2_vspliceib, {{ 2, false, 3, 0 }} }, 2955 { Hexagon::BI__builtin_HEXAGON_S4_addi_asl_ri, {{ 2, false, 5, 0 }} }, 2956 { Hexagon::BI__builtin_HEXAGON_S4_addi_lsr_ri, {{ 2, false, 5, 0 }} }, 2957 { Hexagon::BI__builtin_HEXAGON_S4_andi_asl_ri, {{ 2, false, 5, 0 }} }, 2958 { Hexagon::BI__builtin_HEXAGON_S4_andi_lsr_ri, {{ 2, false, 5, 0 }} }, 2959 { Hexagon::BI__builtin_HEXAGON_S4_clbaddi, {{ 1, true , 6, 0 }} }, 2960 { Hexagon::BI__builtin_HEXAGON_S4_clbpaddi, {{ 1, true, 6, 0 }} }, 2961 { Hexagon::BI__builtin_HEXAGON_S4_extract, {{ 1, false, 5, 0 }, 2962 { 2, false, 5, 0 }} }, 2963 { Hexagon::BI__builtin_HEXAGON_S4_extractp, {{ 1, false, 6, 0 }, 2964 { 2, false, 6, 0 }} }, 2965 { Hexagon::BI__builtin_HEXAGON_S4_lsli, {{ 0, true, 6, 0 }} }, 2966 { Hexagon::BI__builtin_HEXAGON_S4_ntstbit_i, {{ 1, false, 5, 0 }} }, 2967 { Hexagon::BI__builtin_HEXAGON_S4_ori_asl_ri, {{ 2, false, 5, 0 }} }, 2968 { Hexagon::BI__builtin_HEXAGON_S4_ori_lsr_ri, {{ 2, false, 5, 0 }} }, 2969 { Hexagon::BI__builtin_HEXAGON_S4_subi_asl_ri, {{ 2, false, 5, 0 }} }, 2970 { Hexagon::BI__builtin_HEXAGON_S4_subi_lsr_ri, {{ 2, false, 5, 0 }} }, 2971 { Hexagon::BI__builtin_HEXAGON_S4_vrcrotate_acc, {{ 3, false, 2, 0 }} }, 2972 { Hexagon::BI__builtin_HEXAGON_S4_vrcrotate, {{ 2, false, 2, 0 }} }, 2973 { Hexagon::BI__builtin_HEXAGON_S5_asrhub_rnd_sat_goodsyntax, 2974 {{ 1, false, 4, 0 }} }, 2975 { Hexagon::BI__builtin_HEXAGON_S5_asrhub_sat, {{ 1, false, 4, 0 }} }, 2976 { Hexagon::BI__builtin_HEXAGON_S5_vasrhrnd_goodsyntax, 2977 {{ 1, false, 4, 0 }} }, 2978 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p, {{ 1, false, 6, 0 }} }, 2979 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_acc, {{ 2, false, 6, 0 }} }, 2980 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_and, {{ 2, false, 6, 0 }} }, 2981 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_nac, {{ 2, false, 6, 0 }} }, 2982 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_or, {{ 2, false, 6, 0 }} }, 2983 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_p_xacc, {{ 2, false, 6, 0 }} }, 2984 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r, {{ 1, false, 5, 0 }} }, 2985 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_acc, {{ 2, false, 5, 0 }} }, 2986 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_and, {{ 2, false, 5, 0 }} }, 2987 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_nac, {{ 2, false, 5, 0 }} }, 2988 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_or, {{ 2, false, 5, 0 }} }, 2989 { Hexagon::BI__builtin_HEXAGON_S6_rol_i_r_xacc, {{ 2, false, 5, 0 }} }, 2990 { Hexagon::BI__builtin_HEXAGON_V6_valignbi, {{ 2, false, 3, 0 }} }, 2991 { Hexagon::BI__builtin_HEXAGON_V6_valignbi_128B, {{ 2, false, 3, 0 }} }, 2992 { Hexagon::BI__builtin_HEXAGON_V6_vlalignbi, {{ 2, false, 3, 0 }} }, 2993 { Hexagon::BI__builtin_HEXAGON_V6_vlalignbi_128B, {{ 2, false, 3, 0 }} }, 2994 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi, {{ 2, false, 1, 0 }} }, 2995 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi_128B, {{ 2, false, 1, 0 }} }, 2996 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi_acc, {{ 3, false, 1, 0 }} }, 2997 { Hexagon::BI__builtin_HEXAGON_V6_vrmpybusi_acc_128B, 2998 {{ 3, false, 1, 0 }} }, 2999 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi, {{ 2, false, 1, 0 }} }, 3000 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi_128B, {{ 2, false, 1, 0 }} }, 3001 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi_acc, {{ 3, false, 1, 0 }} }, 3002 { Hexagon::BI__builtin_HEXAGON_V6_vrmpyubi_acc_128B, 3003 {{ 3, false, 1, 0 }} }, 3004 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi, {{ 2, false, 1, 0 }} }, 3005 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi_128B, {{ 2, false, 1, 0 }} }, 3006 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi_acc, {{ 3, false, 1, 0 }} }, 3007 { Hexagon::BI__builtin_HEXAGON_V6_vrsadubi_acc_128B, 3008 {{ 3, false, 1, 0 }} }, 3009 }; 3010 3011 // Use a dynamically initialized static to sort the table exactly once on 3012 // first run. 3013 static const bool SortOnce = 3014 (llvm::sort(Infos, 3015 [](const BuiltinInfo &LHS, const BuiltinInfo &RHS) { 3016 return LHS.BuiltinID < RHS.BuiltinID; 3017 }), 3018 true); 3019 (void)SortOnce; 3020 3021 const BuiltinInfo *F = llvm::partition_point( 3022 Infos, [=](const BuiltinInfo &BI) { return BI.BuiltinID < BuiltinID; }); 3023 if (F == std::end(Infos) || F->BuiltinID != BuiltinID) 3024 return false; 3025 3026 bool Error = false; 3027 3028 for (const ArgInfo &A : F->Infos) { 3029 // Ignore empty ArgInfo elements. 3030 if (A.BitWidth == 0) 3031 continue; 3032 3033 int32_t Min = A.IsSigned ? -(1 << (A.BitWidth - 1)) : 0; 3034 int32_t Max = (1 << (A.IsSigned ? A.BitWidth - 1 : A.BitWidth)) - 1; 3035 if (!A.Align) { 3036 Error |= SemaBuiltinConstantArgRange(TheCall, A.OpNum, Min, Max); 3037 } else { 3038 unsigned M = 1 << A.Align; 3039 Min *= M; 3040 Max *= M; 3041 Error |= SemaBuiltinConstantArgRange(TheCall, A.OpNum, Min, Max) | 3042 SemaBuiltinConstantArgMultiple(TheCall, A.OpNum, M); 3043 } 3044 } 3045 return Error; 3046 } 3047 3048 bool Sema::CheckHexagonBuiltinFunctionCall(unsigned BuiltinID, 3049 CallExpr *TheCall) { 3050 return CheckHexagonBuiltinCpu(BuiltinID, TheCall) || 3051 CheckHexagonBuiltinArgument(BuiltinID, TheCall); 3052 } 3053 3054 3055 // CheckMipsBuiltinFunctionCall - Checks the constant value passed to the 3056 // intrinsic is correct. The switch statement is ordered by DSP, MSA. The 3057 // ordering for DSP is unspecified. MSA is ordered by the data format used 3058 // by the underlying instruction i.e., df/m, df/n and then by size. 3059 // 3060 // FIXME: The size tests here should instead be tablegen'd along with the 3061 // definitions from include/clang/Basic/BuiltinsMips.def. 3062 // FIXME: GCC is strict on signedness for some of these intrinsics, we should 3063 // be too. 3064 bool Sema::CheckMipsBuiltinFunctionCall(unsigned BuiltinID, CallExpr *TheCall) { 3065 unsigned i = 0, l = 0, u = 0, m = 0; 3066 switch (BuiltinID) { 3067 default: return false; 3068 case Mips::BI__builtin_mips_wrdsp: i = 1; l = 0; u = 63; break; 3069 case Mips::BI__builtin_mips_rddsp: i = 0; l = 0; u = 63; break; 3070 case Mips::BI__builtin_mips_append: i = 2; l = 0; u = 31; break; 3071 case Mips::BI__builtin_mips_balign: i = 2; l = 0; u = 3; break; 3072 case Mips::BI__builtin_mips_precr_sra_ph_w: i = 2; l = 0; u = 31; break; 3073 case Mips::BI__builtin_mips_precr_sra_r_ph_w: i = 2; l = 0; u = 31; break; 3074 case Mips::BI__builtin_mips_prepend: i = 2; l = 0; u = 31; break; 3075 // MSA intrinsics. Instructions (which the intrinsics maps to) which use the 3076 // df/m field. 3077 // These intrinsics take an unsigned 3 bit immediate. 3078 case Mips::BI__builtin_msa_bclri_b: 3079 case Mips::BI__builtin_msa_bnegi_b: 3080 case Mips::BI__builtin_msa_bseti_b: 3081 case Mips::BI__builtin_msa_sat_s_b: 3082 case Mips::BI__builtin_msa_sat_u_b: 3083 case Mips::BI__builtin_msa_slli_b: 3084 case Mips::BI__builtin_msa_srai_b: 3085 case Mips::BI__builtin_msa_srari_b: 3086 case Mips::BI__builtin_msa_srli_b: 3087 case Mips::BI__builtin_msa_srlri_b: i = 1; l = 0; u = 7; break; 3088 case Mips::BI__builtin_msa_binsli_b: 3089 case Mips::BI__builtin_msa_binsri_b: i = 2; l = 0; u = 7; break; 3090 // These intrinsics take an unsigned 4 bit immediate. 3091 case Mips::BI__builtin_msa_bclri_h: 3092 case Mips::BI__builtin_msa_bnegi_h: 3093 case Mips::BI__builtin_msa_bseti_h: 3094 case Mips::BI__builtin_msa_sat_s_h: 3095 case Mips::BI__builtin_msa_sat_u_h: 3096 case Mips::BI__builtin_msa_slli_h: 3097 case Mips::BI__builtin_msa_srai_h: 3098 case Mips::BI__builtin_msa_srari_h: 3099 case Mips::BI__builtin_msa_srli_h: 3100 case Mips::BI__builtin_msa_srlri_h: i = 1; l = 0; u = 15; break; 3101 case Mips::BI__builtin_msa_binsli_h: 3102 case Mips::BI__builtin_msa_binsri_h: i = 2; l = 0; u = 15; break; 3103 // These intrinsics take an unsigned 5 bit immediate. 3104 // The first block of intrinsics actually have an unsigned 5 bit field, 3105 // not a df/n field. 3106 case Mips::BI__builtin_msa_cfcmsa: 3107 case Mips::BI__builtin_msa_ctcmsa: i = 0; l = 0; u = 31; break; 3108 case Mips::BI__builtin_msa_clei_u_b: 3109 case Mips::BI__builtin_msa_clei_u_h: 3110 case Mips::BI__builtin_msa_clei_u_w: 3111 case Mips::BI__builtin_msa_clei_u_d: 3112 case Mips::BI__builtin_msa_clti_u_b: 3113 case Mips::BI__builtin_msa_clti_u_h: 3114 case Mips::BI__builtin_msa_clti_u_w: 3115 case Mips::BI__builtin_msa_clti_u_d: 3116 case Mips::BI__builtin_msa_maxi_u_b: 3117 case Mips::BI__builtin_msa_maxi_u_h: 3118 case Mips::BI__builtin_msa_maxi_u_w: 3119 case Mips::BI__builtin_msa_maxi_u_d: 3120 case Mips::BI__builtin_msa_mini_u_b: 3121 case Mips::BI__builtin_msa_mini_u_h: 3122 case Mips::BI__builtin_msa_mini_u_w: 3123 case Mips::BI__builtin_msa_mini_u_d: 3124 case Mips::BI__builtin_msa_addvi_b: 3125 case Mips::BI__builtin_msa_addvi_h: 3126 case Mips::BI__builtin_msa_addvi_w: 3127 case Mips::BI__builtin_msa_addvi_d: 3128 case Mips::BI__builtin_msa_bclri_w: 3129 case Mips::BI__builtin_msa_bnegi_w: 3130 case Mips::BI__builtin_msa_bseti_w: 3131 case Mips::BI__builtin_msa_sat_s_w: 3132 case Mips::BI__builtin_msa_sat_u_w: 3133 case Mips::BI__builtin_msa_slli_w: 3134 case Mips::BI__builtin_msa_srai_w: 3135 case Mips::BI__builtin_msa_srari_w: 3136 case Mips::BI__builtin_msa_srli_w: 3137 case Mips::BI__builtin_msa_srlri_w: 3138 case Mips::BI__builtin_msa_subvi_b: 3139 case Mips::BI__builtin_msa_subvi_h: 3140 case Mips::BI__builtin_msa_subvi_w: 3141 case Mips::BI__builtin_msa_subvi_d: i = 1; l = 0; u = 31; break; 3142 case Mips::BI__builtin_msa_binsli_w: 3143 case Mips::BI__builtin_msa_binsri_w: i = 2; l = 0; u = 31; break; 3144 // These intrinsics take an unsigned 6 bit immediate. 3145 case Mips::BI__builtin_msa_bclri_d: 3146 case Mips::BI__builtin_msa_bnegi_d: 3147 case Mips::BI__builtin_msa_bseti_d: 3148 case Mips::BI__builtin_msa_sat_s_d: 3149 case Mips::BI__builtin_msa_sat_u_d: 3150 case Mips::BI__builtin_msa_slli_d: 3151 case Mips::BI__builtin_msa_srai_d: 3152 case Mips::BI__builtin_msa_srari_d: 3153 case Mips::BI__builtin_msa_srli_d: 3154 case Mips::BI__builtin_msa_srlri_d: i = 1; l = 0; u = 63; break; 3155 case Mips::BI__builtin_msa_binsli_d: 3156 case Mips::BI__builtin_msa_binsri_d: i = 2; l = 0; u = 63; break; 3157 // These intrinsics take a signed 5 bit immediate. 3158 case Mips::BI__builtin_msa_ceqi_b: 3159 case Mips::BI__builtin_msa_ceqi_h: 3160 case Mips::BI__builtin_msa_ceqi_w: 3161 case Mips::BI__builtin_msa_ceqi_d: 3162 case Mips::BI__builtin_msa_clti_s_b: 3163 case Mips::BI__builtin_msa_clti_s_h: 3164 case Mips::BI__builtin_msa_clti_s_w: 3165 case Mips::BI__builtin_msa_clti_s_d: 3166 case Mips::BI__builtin_msa_clei_s_b: 3167 case Mips::BI__builtin_msa_clei_s_h: 3168 case Mips::BI__builtin_msa_clei_s_w: 3169 case Mips::BI__builtin_msa_clei_s_d: 3170 case Mips::BI__builtin_msa_maxi_s_b: 3171 case Mips::BI__builtin_msa_maxi_s_h: 3172 case Mips::BI__builtin_msa_maxi_s_w: 3173 case Mips::BI__builtin_msa_maxi_s_d: 3174 case Mips::BI__builtin_msa_mini_s_b: 3175 case Mips::BI__builtin_msa_mini_s_h: 3176 case Mips::BI__builtin_msa_mini_s_w: 3177 case Mips::BI__builtin_msa_mini_s_d: i = 1; l = -16; u = 15; break; 3178 // These intrinsics take an unsigned 8 bit immediate. 3179 case Mips::BI__builtin_msa_andi_b: 3180 case Mips::BI__builtin_msa_nori_b: 3181 case Mips::BI__builtin_msa_ori_b: 3182 case Mips::BI__builtin_msa_shf_b: 3183 case Mips::BI__builtin_msa_shf_h: 3184 case Mips::BI__builtin_msa_shf_w: 3185 case Mips::BI__builtin_msa_xori_b: i = 1; l = 0; u = 255; break; 3186 case Mips::BI__builtin_msa_bseli_b: 3187 case Mips::BI__builtin_msa_bmnzi_b: 3188 case Mips::BI__builtin_msa_bmzi_b: i = 2; l = 0; u = 255; break; 3189 // df/n format 3190 // These intrinsics take an unsigned 4 bit immediate. 3191 case Mips::BI__builtin_msa_copy_s_b: 3192 case Mips::BI__builtin_msa_copy_u_b: 3193 case Mips::BI__builtin_msa_insve_b: 3194 case Mips::BI__builtin_msa_splati_b: i = 1; l = 0; u = 15; break; 3195 case Mips::BI__builtin_msa_sldi_b: i = 2; l = 0; u = 15; break; 3196 // These intrinsics take an unsigned 3 bit immediate. 3197 case Mips::BI__builtin_msa_copy_s_h: 3198 case Mips::BI__builtin_msa_copy_u_h: 3199 case Mips::BI__builtin_msa_insve_h: 3200 case Mips::BI__builtin_msa_splati_h: i = 1; l = 0; u = 7; break; 3201 case Mips::BI__builtin_msa_sldi_h: i = 2; l = 0; u = 7; break; 3202 // These intrinsics take an unsigned 2 bit immediate. 3203 case Mips::BI__builtin_msa_copy_s_w: 3204 case Mips::BI__builtin_msa_copy_u_w: 3205 case Mips::BI__builtin_msa_insve_w: 3206 case Mips::BI__builtin_msa_splati_w: i = 1; l = 0; u = 3; break; 3207 case Mips::BI__builtin_msa_sldi_w: i = 2; l = 0; u = 3; break; 3208 // These intrinsics take an unsigned 1 bit immediate. 3209 case Mips::BI__builtin_msa_copy_s_d: 3210 case Mips::BI__builtin_msa_copy_u_d: 3211 case Mips::BI__builtin_msa_insve_d: 3212 case Mips::BI__builtin_msa_splati_d: i = 1; l = 0; u = 1; break; 3213 case Mips::BI__builtin_msa_sldi_d: i = 2; l = 0; u = 1; break; 3214 // Memory offsets and immediate loads. 3215 // These intrinsics take a signed 10 bit immediate. 3216 case Mips::BI__builtin_msa_ldi_b: i = 0; l = -128; u = 255; break; 3217 case Mips::BI__builtin_msa_ldi_h: 3218 case Mips::BI__builtin_msa_ldi_w: 3219 case Mips::BI__builtin_msa_ldi_d: i = 0; l = -512; u = 511; break; 3220 case Mips::BI__builtin_msa_ld_b: i = 1; l = -512; u = 511; m = 1; break; 3221 case Mips::BI__builtin_msa_ld_h: i = 1; l = -1024; u = 1022; m = 2; break; 3222 case Mips::BI__builtin_msa_ld_w: i = 1; l = -2048; u = 2044; m = 4; break; 3223 case Mips::BI__builtin_msa_ld_d: i = 1; l = -4096; u = 4088; m = 8; break; 3224 case Mips::BI__builtin_msa_st_b: i = 2; l = -512; u = 511; m = 1; break; 3225 case Mips::BI__builtin_msa_st_h: i = 2; l = -1024; u = 1022; m = 2; break; 3226 case Mips::BI__builtin_msa_st_w: i = 2; l = -2048; u = 2044; m = 4; break; 3227 case Mips::BI__builtin_msa_st_d: i = 2; l = -4096; u = 4088; m = 8; break; 3228 } 3229 3230 if (!m) 3231 return SemaBuiltinConstantArgRange(TheCall, i, l, u); 3232 3233 return SemaBuiltinConstantArgRange(TheCall, i, l, u) || 3234 SemaBuiltinConstantArgMultiple(TheCall, i, m); 3235 } 3236 3237 bool Sema::CheckPPCBuiltinFunctionCall(unsigned BuiltinID, CallExpr *TheCall) { 3238 unsigned i = 0, l = 0, u = 0; 3239 bool Is64BitBltin = BuiltinID == PPC::BI__builtin_divde || 3240 BuiltinID == PPC::BI__builtin_divdeu || 3241 BuiltinID == PPC::BI__builtin_bpermd; 3242 bool IsTarget64Bit = Context.getTargetInfo() 3243 .getTypeWidth(Context 3244 .getTargetInfo() 3245 .getIntPtrType()) == 64; 3246 bool IsBltinExtDiv = BuiltinID == PPC::BI__builtin_divwe || 3247 BuiltinID == PPC::BI__builtin_divweu || 3248 BuiltinID == PPC::BI__builtin_divde || 3249 BuiltinID == PPC::BI__builtin_divdeu; 3250 3251 if (Is64BitBltin && !IsTarget64Bit) 3252 return Diag(TheCall->getBeginLoc(), diag::err_64_bit_builtin_32_bit_tgt) 3253 << TheCall->getSourceRange(); 3254 3255 if ((IsBltinExtDiv && !Context.getTargetInfo().hasFeature("extdiv")) || 3256 (BuiltinID == PPC::BI__builtin_bpermd && 3257 !Context.getTargetInfo().hasFeature("bpermd"))) 3258 return Diag(TheCall->getBeginLoc(), diag::err_ppc_builtin_only_on_pwr7) 3259 << TheCall->getSourceRange(); 3260 3261 auto SemaVSXCheck = [&](CallExpr *TheCall) -> bool { 3262 if (!Context.getTargetInfo().hasFeature("vsx")) 3263 return Diag(TheCall->getBeginLoc(), diag::err_ppc_builtin_only_on_pwr7) 3264 << TheCall->getSourceRange(); 3265 return false; 3266 }; 3267 3268 switch (BuiltinID) { 3269 default: return false; 3270 case PPC::BI__builtin_altivec_crypto_vshasigmaw: 3271 case PPC::BI__builtin_altivec_crypto_vshasigmad: 3272 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 1) || 3273 SemaBuiltinConstantArgRange(TheCall, 2, 0, 15); 3274 case PPC::BI__builtin_altivec_dss: 3275 return SemaBuiltinConstantArgRange(TheCall, 0, 0, 3); 3276 case PPC::BI__builtin_tbegin: 3277 case PPC::BI__builtin_tend: i = 0; l = 0; u = 1; break; 3278 case PPC::BI__builtin_tsr: i = 0; l = 0; u = 7; break; 3279 case PPC::BI__builtin_tabortwc: 3280 case PPC::BI__builtin_tabortdc: i = 0; l = 0; u = 31; break; 3281 case PPC::BI__builtin_tabortwci: 3282 case PPC::BI__builtin_tabortdci: 3283 return SemaBuiltinConstantArgRange(TheCall, 0, 0, 31) || 3284 SemaBuiltinConstantArgRange(TheCall, 2, 0, 31); 3285 case PPC::BI__builtin_altivec_dst: 3286 case PPC::BI__builtin_altivec_dstt: 3287 case PPC::BI__builtin_altivec_dstst: 3288 case PPC::BI__builtin_altivec_dststt: 3289 return SemaBuiltinConstantArgRange(TheCall, 2, 0, 3); 3290 case PPC::BI__builtin_vsx_xxpermdi: 3291 case PPC::BI__builtin_vsx_xxsldwi: 3292 return SemaBuiltinVSX(TheCall); 3293 case PPC::BI__builtin_unpack_vector_int128: 3294 return SemaVSXCheck(TheCall) || 3295 SemaBuiltinConstantArgRange(TheCall, 1, 0, 1); 3296 case PPC::BI__builtin_pack_vector_int128: 3297 return SemaVSXCheck(TheCall); 3298 } 3299 return SemaBuiltinConstantArgRange(TheCall, i, l, u); 3300 } 3301 3302 bool Sema::CheckSystemZBuiltinFunctionCall(unsigned BuiltinID, 3303 CallExpr *TheCall) { 3304 if (BuiltinID == SystemZ::BI__builtin_tabort) { 3305 Expr *Arg = TheCall->getArg(0); 3306 llvm::APSInt AbortCode(32); 3307 if (Arg->isIntegerConstantExpr(AbortCode, Context) && 3308 AbortCode.getSExtValue() >= 0 && AbortCode.getSExtValue() < 256) 3309 return Diag(Arg->getBeginLoc(), diag::err_systemz_invalid_tabort_code) 3310 << Arg->getSourceRange(); 3311 } 3312 3313 // For intrinsics which take an immediate value as part of the instruction, 3314 // range check them here. 3315 unsigned i = 0, l = 0, u = 0; 3316 switch (BuiltinID) { 3317 default: return false; 3318 case SystemZ::BI__builtin_s390_lcbb: i = 1; l = 0; u = 15; break; 3319 case SystemZ::BI__builtin_s390_verimb: 3320 case SystemZ::BI__builtin_s390_verimh: 3321 case SystemZ::BI__builtin_s390_verimf: 3322 case SystemZ::BI__builtin_s390_verimg: i = 3; l = 0; u = 255; break; 3323 case SystemZ::BI__builtin_s390_vfaeb: 3324 case SystemZ::BI__builtin_s390_vfaeh: 3325 case SystemZ::BI__builtin_s390_vfaef: 3326 case SystemZ::BI__builtin_s390_vfaebs: 3327 case SystemZ::BI__builtin_s390_vfaehs: 3328 case SystemZ::BI__builtin_s390_vfaefs: 3329 case SystemZ::BI__builtin_s390_vfaezb: 3330 case SystemZ::BI__builtin_s390_vfaezh: 3331 case SystemZ::BI__builtin_s390_vfaezf: 3332 case SystemZ::BI__builtin_s390_vfaezbs: 3333 case SystemZ::BI__builtin_s390_vfaezhs: 3334 case SystemZ::BI__builtin_s390_vfaezfs: i = 2; l = 0; u = 15; break; 3335 case SystemZ::BI__builtin_s390_vfisb: 3336 case SystemZ::BI__builtin_s390_vfidb: 3337 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 15) || 3338 SemaBuiltinConstantArgRange(TheCall, 2, 0, 15); 3339 case SystemZ::BI__builtin_s390_vftcisb: 3340 case SystemZ::BI__builtin_s390_vftcidb: i = 1; l = 0; u = 4095; break; 3341 case SystemZ::BI__builtin_s390_vlbb: i = 1; l = 0; u = 15; break; 3342 case SystemZ::BI__builtin_s390_vpdi: i = 2; l = 0; u = 15; break; 3343 case SystemZ::BI__builtin_s390_vsldb: i = 2; l = 0; u = 15; break; 3344 case SystemZ::BI__builtin_s390_vstrcb: 3345 case SystemZ::BI__builtin_s390_vstrch: 3346 case SystemZ::BI__builtin_s390_vstrcf: 3347 case SystemZ::BI__builtin_s390_vstrczb: 3348 case SystemZ::BI__builtin_s390_vstrczh: 3349 case SystemZ::BI__builtin_s390_vstrczf: 3350 case SystemZ::BI__builtin_s390_vstrcbs: 3351 case SystemZ::BI__builtin_s390_vstrchs: 3352 case SystemZ::BI__builtin_s390_vstrcfs: 3353 case SystemZ::BI__builtin_s390_vstrczbs: 3354 case SystemZ::BI__builtin_s390_vstrczhs: 3355 case SystemZ::BI__builtin_s390_vstrczfs: i = 3; l = 0; u = 15; break; 3356 case SystemZ::BI__builtin_s390_vmslg: i = 3; l = 0; u = 15; break; 3357 case SystemZ::BI__builtin_s390_vfminsb: 3358 case SystemZ::BI__builtin_s390_vfmaxsb: 3359 case SystemZ::BI__builtin_s390_vfmindb: 3360 case SystemZ::BI__builtin_s390_vfmaxdb: i = 2; l = 0; u = 15; break; 3361 case SystemZ::BI__builtin_s390_vsld: i = 2; l = 0; u = 7; break; 3362 case SystemZ::BI__builtin_s390_vsrd: i = 2; l = 0; u = 7; break; 3363 } 3364 return SemaBuiltinConstantArgRange(TheCall, i, l, u); 3365 } 3366 3367 /// SemaBuiltinCpuSupports - Handle __builtin_cpu_supports(char *). 3368 /// This checks that the target supports __builtin_cpu_supports and 3369 /// that the string argument is constant and valid. 3370 static bool SemaBuiltinCpuSupports(Sema &S, CallExpr *TheCall) { 3371 Expr *Arg = TheCall->getArg(0); 3372 3373 // Check if the argument is a string literal. 3374 if (!isa<StringLiteral>(Arg->IgnoreParenImpCasts())) 3375 return S.Diag(TheCall->getBeginLoc(), diag::err_expr_not_string_literal) 3376 << Arg->getSourceRange(); 3377 3378 // Check the contents of the string. 3379 StringRef Feature = 3380 cast<StringLiteral>(Arg->IgnoreParenImpCasts())->getString(); 3381 if (!S.Context.getTargetInfo().validateCpuSupports(Feature)) 3382 return S.Diag(TheCall->getBeginLoc(), diag::err_invalid_cpu_supports) 3383 << Arg->getSourceRange(); 3384 return false; 3385 } 3386 3387 /// SemaBuiltinCpuIs - Handle __builtin_cpu_is(char *). 3388 /// This checks that the target supports __builtin_cpu_is and 3389 /// that the string argument is constant and valid. 3390 static bool SemaBuiltinCpuIs(Sema &S, CallExpr *TheCall) { 3391 Expr *Arg = TheCall->getArg(0); 3392 3393 // Check if the argument is a string literal. 3394 if (!isa<StringLiteral>(Arg->IgnoreParenImpCasts())) 3395 return S.Diag(TheCall->getBeginLoc(), diag::err_expr_not_string_literal) 3396 << Arg->getSourceRange(); 3397 3398 // Check the contents of the string. 3399 StringRef Feature = 3400 cast<StringLiteral>(Arg->IgnoreParenImpCasts())->getString(); 3401 if (!S.Context.getTargetInfo().validateCpuIs(Feature)) 3402 return S.Diag(TheCall->getBeginLoc(), diag::err_invalid_cpu_is) 3403 << Arg->getSourceRange(); 3404 return false; 3405 } 3406 3407 // Check if the rounding mode is legal. 3408 bool Sema::CheckX86BuiltinRoundingOrSAE(unsigned BuiltinID, CallExpr *TheCall) { 3409 // Indicates if this instruction has rounding control or just SAE. 3410 bool HasRC = false; 3411 3412 unsigned ArgNum = 0; 3413 switch (BuiltinID) { 3414 default: 3415 return false; 3416 case X86::BI__builtin_ia32_vcvttsd2si32: 3417 case X86::BI__builtin_ia32_vcvttsd2si64: 3418 case X86::BI__builtin_ia32_vcvttsd2usi32: 3419 case X86::BI__builtin_ia32_vcvttsd2usi64: 3420 case X86::BI__builtin_ia32_vcvttss2si32: 3421 case X86::BI__builtin_ia32_vcvttss2si64: 3422 case X86::BI__builtin_ia32_vcvttss2usi32: 3423 case X86::BI__builtin_ia32_vcvttss2usi64: 3424 ArgNum = 1; 3425 break; 3426 case X86::BI__builtin_ia32_maxpd512: 3427 case X86::BI__builtin_ia32_maxps512: 3428 case X86::BI__builtin_ia32_minpd512: 3429 case X86::BI__builtin_ia32_minps512: 3430 ArgNum = 2; 3431 break; 3432 case X86::BI__builtin_ia32_cvtps2pd512_mask: 3433 case X86::BI__builtin_ia32_cvttpd2dq512_mask: 3434 case X86::BI__builtin_ia32_cvttpd2qq512_mask: 3435 case X86::BI__builtin_ia32_cvttpd2udq512_mask: 3436 case X86::BI__builtin_ia32_cvttpd2uqq512_mask: 3437 case X86::BI__builtin_ia32_cvttps2dq512_mask: 3438 case X86::BI__builtin_ia32_cvttps2qq512_mask: 3439 case X86::BI__builtin_ia32_cvttps2udq512_mask: 3440 case X86::BI__builtin_ia32_cvttps2uqq512_mask: 3441 case X86::BI__builtin_ia32_exp2pd_mask: 3442 case X86::BI__builtin_ia32_exp2ps_mask: 3443 case X86::BI__builtin_ia32_getexppd512_mask: 3444 case X86::BI__builtin_ia32_getexpps512_mask: 3445 case X86::BI__builtin_ia32_rcp28pd_mask: 3446 case X86::BI__builtin_ia32_rcp28ps_mask: 3447 case X86::BI__builtin_ia32_rsqrt28pd_mask: 3448 case X86::BI__builtin_ia32_rsqrt28ps_mask: 3449 case X86::BI__builtin_ia32_vcomisd: 3450 case X86::BI__builtin_ia32_vcomiss: 3451 case X86::BI__builtin_ia32_vcvtph2ps512_mask: 3452 ArgNum = 3; 3453 break; 3454 case X86::BI__builtin_ia32_cmppd512_mask: 3455 case X86::BI__builtin_ia32_cmpps512_mask: 3456 case X86::BI__builtin_ia32_cmpsd_mask: 3457 case X86::BI__builtin_ia32_cmpss_mask: 3458 case X86::BI__builtin_ia32_cvtss2sd_round_mask: 3459 case X86::BI__builtin_ia32_getexpsd128_round_mask: 3460 case X86::BI__builtin_ia32_getexpss128_round_mask: 3461 case X86::BI__builtin_ia32_getmantpd512_mask: 3462 case X86::BI__builtin_ia32_getmantps512_mask: 3463 case X86::BI__builtin_ia32_maxsd_round_mask: 3464 case X86::BI__builtin_ia32_maxss_round_mask: 3465 case X86::BI__builtin_ia32_minsd_round_mask: 3466 case X86::BI__builtin_ia32_minss_round_mask: 3467 case X86::BI__builtin_ia32_rcp28sd_round_mask: 3468 case X86::BI__builtin_ia32_rcp28ss_round_mask: 3469 case X86::BI__builtin_ia32_reducepd512_mask: 3470 case X86::BI__builtin_ia32_reduceps512_mask: 3471 case X86::BI__builtin_ia32_rndscalepd_mask: 3472 case X86::BI__builtin_ia32_rndscaleps_mask: 3473 case X86::BI__builtin_ia32_rsqrt28sd_round_mask: 3474 case X86::BI__builtin_ia32_rsqrt28ss_round_mask: 3475 ArgNum = 4; 3476 break; 3477 case X86::BI__builtin_ia32_fixupimmpd512_mask: 3478 case X86::BI__builtin_ia32_fixupimmpd512_maskz: 3479 case X86::BI__builtin_ia32_fixupimmps512_mask: 3480 case X86::BI__builtin_ia32_fixupimmps512_maskz: 3481 case X86::BI__builtin_ia32_fixupimmsd_mask: 3482 case X86::BI__builtin_ia32_fixupimmsd_maskz: 3483 case X86::BI__builtin_ia32_fixupimmss_mask: 3484 case X86::BI__builtin_ia32_fixupimmss_maskz: 3485 case X86::BI__builtin_ia32_getmantsd_round_mask: 3486 case X86::BI__builtin_ia32_getmantss_round_mask: 3487 case X86::BI__builtin_ia32_rangepd512_mask: 3488 case X86::BI__builtin_ia32_rangeps512_mask: 3489 case X86::BI__builtin_ia32_rangesd128_round_mask: 3490 case X86::BI__builtin_ia32_rangess128_round_mask: 3491 case X86::BI__builtin_ia32_reducesd_mask: 3492 case X86::BI__builtin_ia32_reducess_mask: 3493 case X86::BI__builtin_ia32_rndscalesd_round_mask: 3494 case X86::BI__builtin_ia32_rndscaless_round_mask: 3495 ArgNum = 5; 3496 break; 3497 case X86::BI__builtin_ia32_vcvtsd2si64: 3498 case X86::BI__builtin_ia32_vcvtsd2si32: 3499 case X86::BI__builtin_ia32_vcvtsd2usi32: 3500 case X86::BI__builtin_ia32_vcvtsd2usi64: 3501 case X86::BI__builtin_ia32_vcvtss2si32: 3502 case X86::BI__builtin_ia32_vcvtss2si64: 3503 case X86::BI__builtin_ia32_vcvtss2usi32: 3504 case X86::BI__builtin_ia32_vcvtss2usi64: 3505 case X86::BI__builtin_ia32_sqrtpd512: 3506 case X86::BI__builtin_ia32_sqrtps512: 3507 ArgNum = 1; 3508 HasRC = true; 3509 break; 3510 case X86::BI__builtin_ia32_addpd512: 3511 case X86::BI__builtin_ia32_addps512: 3512 case X86::BI__builtin_ia32_divpd512: 3513 case X86::BI__builtin_ia32_divps512: 3514 case X86::BI__builtin_ia32_mulpd512: 3515 case X86::BI__builtin_ia32_mulps512: 3516 case X86::BI__builtin_ia32_subpd512: 3517 case X86::BI__builtin_ia32_subps512: 3518 case X86::BI__builtin_ia32_cvtsi2sd64: 3519 case X86::BI__builtin_ia32_cvtsi2ss32: 3520 case X86::BI__builtin_ia32_cvtsi2ss64: 3521 case X86::BI__builtin_ia32_cvtusi2sd64: 3522 case X86::BI__builtin_ia32_cvtusi2ss32: 3523 case X86::BI__builtin_ia32_cvtusi2ss64: 3524 ArgNum = 2; 3525 HasRC = true; 3526 break; 3527 case X86::BI__builtin_ia32_cvtdq2ps512_mask: 3528 case X86::BI__builtin_ia32_cvtudq2ps512_mask: 3529 case X86::BI__builtin_ia32_cvtpd2ps512_mask: 3530 case X86::BI__builtin_ia32_cvtpd2dq512_mask: 3531 case X86::BI__builtin_ia32_cvtpd2qq512_mask: 3532 case X86::BI__builtin_ia32_cvtpd2udq512_mask: 3533 case X86::BI__builtin_ia32_cvtpd2uqq512_mask: 3534 case X86::BI__builtin_ia32_cvtps2dq512_mask: 3535 case X86::BI__builtin_ia32_cvtps2qq512_mask: 3536 case X86::BI__builtin_ia32_cvtps2udq512_mask: 3537 case X86::BI__builtin_ia32_cvtps2uqq512_mask: 3538 case X86::BI__builtin_ia32_cvtqq2pd512_mask: 3539 case X86::BI__builtin_ia32_cvtqq2ps512_mask: 3540 case X86::BI__builtin_ia32_cvtuqq2pd512_mask: 3541 case X86::BI__builtin_ia32_cvtuqq2ps512_mask: 3542 ArgNum = 3; 3543 HasRC = true; 3544 break; 3545 case X86::BI__builtin_ia32_addss_round_mask: 3546 case X86::BI__builtin_ia32_addsd_round_mask: 3547 case X86::BI__builtin_ia32_divss_round_mask: 3548 case X86::BI__builtin_ia32_divsd_round_mask: 3549 case X86::BI__builtin_ia32_mulss_round_mask: 3550 case X86::BI__builtin_ia32_mulsd_round_mask: 3551 case X86::BI__builtin_ia32_subss_round_mask: 3552 case X86::BI__builtin_ia32_subsd_round_mask: 3553 case X86::BI__builtin_ia32_scalefpd512_mask: 3554 case X86::BI__builtin_ia32_scalefps512_mask: 3555 case X86::BI__builtin_ia32_scalefsd_round_mask: 3556 case X86::BI__builtin_ia32_scalefss_round_mask: 3557 case X86::BI__builtin_ia32_cvtsd2ss_round_mask: 3558 case X86::BI__builtin_ia32_sqrtsd_round_mask: 3559 case X86::BI__builtin_ia32_sqrtss_round_mask: 3560 case X86::BI__builtin_ia32_vfmaddsd3_mask: 3561 case X86::BI__builtin_ia32_vfmaddsd3_maskz: 3562 case X86::BI__builtin_ia32_vfmaddsd3_mask3: 3563 case X86::BI__builtin_ia32_vfmaddss3_mask: 3564 case X86::BI__builtin_ia32_vfmaddss3_maskz: 3565 case X86::BI__builtin_ia32_vfmaddss3_mask3: 3566 case X86::BI__builtin_ia32_vfmaddpd512_mask: 3567 case X86::BI__builtin_ia32_vfmaddpd512_maskz: 3568 case X86::BI__builtin_ia32_vfmaddpd512_mask3: 3569 case X86::BI__builtin_ia32_vfmsubpd512_mask3: 3570 case X86::BI__builtin_ia32_vfmaddps512_mask: 3571 case X86::BI__builtin_ia32_vfmaddps512_maskz: 3572 case X86::BI__builtin_ia32_vfmaddps512_mask3: 3573 case X86::BI__builtin_ia32_vfmsubps512_mask3: 3574 case X86::BI__builtin_ia32_vfmaddsubpd512_mask: 3575 case X86::BI__builtin_ia32_vfmaddsubpd512_maskz: 3576 case X86::BI__builtin_ia32_vfmaddsubpd512_mask3: 3577 case X86::BI__builtin_ia32_vfmsubaddpd512_mask3: 3578 case X86::BI__builtin_ia32_vfmaddsubps512_mask: 3579 case X86::BI__builtin_ia32_vfmaddsubps512_maskz: 3580 case X86::BI__builtin_ia32_vfmaddsubps512_mask3: 3581 case X86::BI__builtin_ia32_vfmsubaddps512_mask3: 3582 ArgNum = 4; 3583 HasRC = true; 3584 break; 3585 } 3586 3587 llvm::APSInt Result; 3588 3589 // We can't check the value of a dependent argument. 3590 Expr *Arg = TheCall->getArg(ArgNum); 3591 if (Arg->isTypeDependent() || Arg->isValueDependent()) 3592 return false; 3593 3594 // Check constant-ness first. 3595 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 3596 return true; 3597 3598 // Make sure rounding mode is either ROUND_CUR_DIRECTION or ROUND_NO_EXC bit 3599 // is set. If the intrinsic has rounding control(bits 1:0), make sure its only 3600 // combined with ROUND_NO_EXC. If the intrinsic does not have rounding 3601 // control, allow ROUND_NO_EXC and ROUND_CUR_DIRECTION together. 3602 if (Result == 4/*ROUND_CUR_DIRECTION*/ || 3603 Result == 8/*ROUND_NO_EXC*/ || 3604 (!HasRC && Result == 12/*ROUND_CUR_DIRECTION|ROUND_NO_EXC*/) || 3605 (HasRC && Result.getZExtValue() >= 8 && Result.getZExtValue() <= 11)) 3606 return false; 3607 3608 return Diag(TheCall->getBeginLoc(), diag::err_x86_builtin_invalid_rounding) 3609 << Arg->getSourceRange(); 3610 } 3611 3612 // Check if the gather/scatter scale is legal. 3613 bool Sema::CheckX86BuiltinGatherScatterScale(unsigned BuiltinID, 3614 CallExpr *TheCall) { 3615 unsigned ArgNum = 0; 3616 switch (BuiltinID) { 3617 default: 3618 return false; 3619 case X86::BI__builtin_ia32_gatherpfdpd: 3620 case X86::BI__builtin_ia32_gatherpfdps: 3621 case X86::BI__builtin_ia32_gatherpfqpd: 3622 case X86::BI__builtin_ia32_gatherpfqps: 3623 case X86::BI__builtin_ia32_scatterpfdpd: 3624 case X86::BI__builtin_ia32_scatterpfdps: 3625 case X86::BI__builtin_ia32_scatterpfqpd: 3626 case X86::BI__builtin_ia32_scatterpfqps: 3627 ArgNum = 3; 3628 break; 3629 case X86::BI__builtin_ia32_gatherd_pd: 3630 case X86::BI__builtin_ia32_gatherd_pd256: 3631 case X86::BI__builtin_ia32_gatherq_pd: 3632 case X86::BI__builtin_ia32_gatherq_pd256: 3633 case X86::BI__builtin_ia32_gatherd_ps: 3634 case X86::BI__builtin_ia32_gatherd_ps256: 3635 case X86::BI__builtin_ia32_gatherq_ps: 3636 case X86::BI__builtin_ia32_gatherq_ps256: 3637 case X86::BI__builtin_ia32_gatherd_q: 3638 case X86::BI__builtin_ia32_gatherd_q256: 3639 case X86::BI__builtin_ia32_gatherq_q: 3640 case X86::BI__builtin_ia32_gatherq_q256: 3641 case X86::BI__builtin_ia32_gatherd_d: 3642 case X86::BI__builtin_ia32_gatherd_d256: 3643 case X86::BI__builtin_ia32_gatherq_d: 3644 case X86::BI__builtin_ia32_gatherq_d256: 3645 case X86::BI__builtin_ia32_gather3div2df: 3646 case X86::BI__builtin_ia32_gather3div2di: 3647 case X86::BI__builtin_ia32_gather3div4df: 3648 case X86::BI__builtin_ia32_gather3div4di: 3649 case X86::BI__builtin_ia32_gather3div4sf: 3650 case X86::BI__builtin_ia32_gather3div4si: 3651 case X86::BI__builtin_ia32_gather3div8sf: 3652 case X86::BI__builtin_ia32_gather3div8si: 3653 case X86::BI__builtin_ia32_gather3siv2df: 3654 case X86::BI__builtin_ia32_gather3siv2di: 3655 case X86::BI__builtin_ia32_gather3siv4df: 3656 case X86::BI__builtin_ia32_gather3siv4di: 3657 case X86::BI__builtin_ia32_gather3siv4sf: 3658 case X86::BI__builtin_ia32_gather3siv4si: 3659 case X86::BI__builtin_ia32_gather3siv8sf: 3660 case X86::BI__builtin_ia32_gather3siv8si: 3661 case X86::BI__builtin_ia32_gathersiv8df: 3662 case X86::BI__builtin_ia32_gathersiv16sf: 3663 case X86::BI__builtin_ia32_gatherdiv8df: 3664 case X86::BI__builtin_ia32_gatherdiv16sf: 3665 case X86::BI__builtin_ia32_gathersiv8di: 3666 case X86::BI__builtin_ia32_gathersiv16si: 3667 case X86::BI__builtin_ia32_gatherdiv8di: 3668 case X86::BI__builtin_ia32_gatherdiv16si: 3669 case X86::BI__builtin_ia32_scatterdiv2df: 3670 case X86::BI__builtin_ia32_scatterdiv2di: 3671 case X86::BI__builtin_ia32_scatterdiv4df: 3672 case X86::BI__builtin_ia32_scatterdiv4di: 3673 case X86::BI__builtin_ia32_scatterdiv4sf: 3674 case X86::BI__builtin_ia32_scatterdiv4si: 3675 case X86::BI__builtin_ia32_scatterdiv8sf: 3676 case X86::BI__builtin_ia32_scatterdiv8si: 3677 case X86::BI__builtin_ia32_scattersiv2df: 3678 case X86::BI__builtin_ia32_scattersiv2di: 3679 case X86::BI__builtin_ia32_scattersiv4df: 3680 case X86::BI__builtin_ia32_scattersiv4di: 3681 case X86::BI__builtin_ia32_scattersiv4sf: 3682 case X86::BI__builtin_ia32_scattersiv4si: 3683 case X86::BI__builtin_ia32_scattersiv8sf: 3684 case X86::BI__builtin_ia32_scattersiv8si: 3685 case X86::BI__builtin_ia32_scattersiv8df: 3686 case X86::BI__builtin_ia32_scattersiv16sf: 3687 case X86::BI__builtin_ia32_scatterdiv8df: 3688 case X86::BI__builtin_ia32_scatterdiv16sf: 3689 case X86::BI__builtin_ia32_scattersiv8di: 3690 case X86::BI__builtin_ia32_scattersiv16si: 3691 case X86::BI__builtin_ia32_scatterdiv8di: 3692 case X86::BI__builtin_ia32_scatterdiv16si: 3693 ArgNum = 4; 3694 break; 3695 } 3696 3697 llvm::APSInt Result; 3698 3699 // We can't check the value of a dependent argument. 3700 Expr *Arg = TheCall->getArg(ArgNum); 3701 if (Arg->isTypeDependent() || Arg->isValueDependent()) 3702 return false; 3703 3704 // Check constant-ness first. 3705 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 3706 return true; 3707 3708 if (Result == 1 || Result == 2 || Result == 4 || Result == 8) 3709 return false; 3710 3711 return Diag(TheCall->getBeginLoc(), diag::err_x86_builtin_invalid_scale) 3712 << Arg->getSourceRange(); 3713 } 3714 3715 static bool isX86_32Builtin(unsigned BuiltinID) { 3716 // These builtins only work on x86-32 targets. 3717 switch (BuiltinID) { 3718 case X86::BI__builtin_ia32_readeflags_u32: 3719 case X86::BI__builtin_ia32_writeeflags_u32: 3720 return true; 3721 } 3722 3723 return false; 3724 } 3725 3726 bool Sema::CheckX86BuiltinFunctionCall(unsigned BuiltinID, CallExpr *TheCall) { 3727 if (BuiltinID == X86::BI__builtin_cpu_supports) 3728 return SemaBuiltinCpuSupports(*this, TheCall); 3729 3730 if (BuiltinID == X86::BI__builtin_cpu_is) 3731 return SemaBuiltinCpuIs(*this, TheCall); 3732 3733 // Check for 32-bit only builtins on a 64-bit target. 3734 const llvm::Triple &TT = Context.getTargetInfo().getTriple(); 3735 if (TT.getArch() != llvm::Triple::x86 && isX86_32Builtin(BuiltinID)) 3736 return Diag(TheCall->getCallee()->getBeginLoc(), 3737 diag::err_32_bit_builtin_64_bit_tgt); 3738 3739 // If the intrinsic has rounding or SAE make sure its valid. 3740 if (CheckX86BuiltinRoundingOrSAE(BuiltinID, TheCall)) 3741 return true; 3742 3743 // If the intrinsic has a gather/scatter scale immediate make sure its valid. 3744 if (CheckX86BuiltinGatherScatterScale(BuiltinID, TheCall)) 3745 return true; 3746 3747 // For intrinsics which take an immediate value as part of the instruction, 3748 // range check them here. 3749 int i = 0, l = 0, u = 0; 3750 switch (BuiltinID) { 3751 default: 3752 return false; 3753 case X86::BI__builtin_ia32_vec_ext_v2si: 3754 case X86::BI__builtin_ia32_vec_ext_v2di: 3755 case X86::BI__builtin_ia32_vextractf128_pd256: 3756 case X86::BI__builtin_ia32_vextractf128_ps256: 3757 case X86::BI__builtin_ia32_vextractf128_si256: 3758 case X86::BI__builtin_ia32_extract128i256: 3759 case X86::BI__builtin_ia32_extractf64x4_mask: 3760 case X86::BI__builtin_ia32_extracti64x4_mask: 3761 case X86::BI__builtin_ia32_extractf32x8_mask: 3762 case X86::BI__builtin_ia32_extracti32x8_mask: 3763 case X86::BI__builtin_ia32_extractf64x2_256_mask: 3764 case X86::BI__builtin_ia32_extracti64x2_256_mask: 3765 case X86::BI__builtin_ia32_extractf32x4_256_mask: 3766 case X86::BI__builtin_ia32_extracti32x4_256_mask: 3767 i = 1; l = 0; u = 1; 3768 break; 3769 case X86::BI__builtin_ia32_vec_set_v2di: 3770 case X86::BI__builtin_ia32_vinsertf128_pd256: 3771 case X86::BI__builtin_ia32_vinsertf128_ps256: 3772 case X86::BI__builtin_ia32_vinsertf128_si256: 3773 case X86::BI__builtin_ia32_insert128i256: 3774 case X86::BI__builtin_ia32_insertf32x8: 3775 case X86::BI__builtin_ia32_inserti32x8: 3776 case X86::BI__builtin_ia32_insertf64x4: 3777 case X86::BI__builtin_ia32_inserti64x4: 3778 case X86::BI__builtin_ia32_insertf64x2_256: 3779 case X86::BI__builtin_ia32_inserti64x2_256: 3780 case X86::BI__builtin_ia32_insertf32x4_256: 3781 case X86::BI__builtin_ia32_inserti32x4_256: 3782 i = 2; l = 0; u = 1; 3783 break; 3784 case X86::BI__builtin_ia32_vpermilpd: 3785 case X86::BI__builtin_ia32_vec_ext_v4hi: 3786 case X86::BI__builtin_ia32_vec_ext_v4si: 3787 case X86::BI__builtin_ia32_vec_ext_v4sf: 3788 case X86::BI__builtin_ia32_vec_ext_v4di: 3789 case X86::BI__builtin_ia32_extractf32x4_mask: 3790 case X86::BI__builtin_ia32_extracti32x4_mask: 3791 case X86::BI__builtin_ia32_extractf64x2_512_mask: 3792 case X86::BI__builtin_ia32_extracti64x2_512_mask: 3793 i = 1; l = 0; u = 3; 3794 break; 3795 case X86::BI_mm_prefetch: 3796 case X86::BI__builtin_ia32_vec_ext_v8hi: 3797 case X86::BI__builtin_ia32_vec_ext_v8si: 3798 i = 1; l = 0; u = 7; 3799 break; 3800 case X86::BI__builtin_ia32_sha1rnds4: 3801 case X86::BI__builtin_ia32_blendpd: 3802 case X86::BI__builtin_ia32_shufpd: 3803 case X86::BI__builtin_ia32_vec_set_v4hi: 3804 case X86::BI__builtin_ia32_vec_set_v4si: 3805 case X86::BI__builtin_ia32_vec_set_v4di: 3806 case X86::BI__builtin_ia32_shuf_f32x4_256: 3807 case X86::BI__builtin_ia32_shuf_f64x2_256: 3808 case X86::BI__builtin_ia32_shuf_i32x4_256: 3809 case X86::BI__builtin_ia32_shuf_i64x2_256: 3810 case X86::BI__builtin_ia32_insertf64x2_512: 3811 case X86::BI__builtin_ia32_inserti64x2_512: 3812 case X86::BI__builtin_ia32_insertf32x4: 3813 case X86::BI__builtin_ia32_inserti32x4: 3814 i = 2; l = 0; u = 3; 3815 break; 3816 case X86::BI__builtin_ia32_vpermil2pd: 3817 case X86::BI__builtin_ia32_vpermil2pd256: 3818 case X86::BI__builtin_ia32_vpermil2ps: 3819 case X86::BI__builtin_ia32_vpermil2ps256: 3820 i = 3; l = 0; u = 3; 3821 break; 3822 case X86::BI__builtin_ia32_cmpb128_mask: 3823 case X86::BI__builtin_ia32_cmpw128_mask: 3824 case X86::BI__builtin_ia32_cmpd128_mask: 3825 case X86::BI__builtin_ia32_cmpq128_mask: 3826 case X86::BI__builtin_ia32_cmpb256_mask: 3827 case X86::BI__builtin_ia32_cmpw256_mask: 3828 case X86::BI__builtin_ia32_cmpd256_mask: 3829 case X86::BI__builtin_ia32_cmpq256_mask: 3830 case X86::BI__builtin_ia32_cmpb512_mask: 3831 case X86::BI__builtin_ia32_cmpw512_mask: 3832 case X86::BI__builtin_ia32_cmpd512_mask: 3833 case X86::BI__builtin_ia32_cmpq512_mask: 3834 case X86::BI__builtin_ia32_ucmpb128_mask: 3835 case X86::BI__builtin_ia32_ucmpw128_mask: 3836 case X86::BI__builtin_ia32_ucmpd128_mask: 3837 case X86::BI__builtin_ia32_ucmpq128_mask: 3838 case X86::BI__builtin_ia32_ucmpb256_mask: 3839 case X86::BI__builtin_ia32_ucmpw256_mask: 3840 case X86::BI__builtin_ia32_ucmpd256_mask: 3841 case X86::BI__builtin_ia32_ucmpq256_mask: 3842 case X86::BI__builtin_ia32_ucmpb512_mask: 3843 case X86::BI__builtin_ia32_ucmpw512_mask: 3844 case X86::BI__builtin_ia32_ucmpd512_mask: 3845 case X86::BI__builtin_ia32_ucmpq512_mask: 3846 case X86::BI__builtin_ia32_vpcomub: 3847 case X86::BI__builtin_ia32_vpcomuw: 3848 case X86::BI__builtin_ia32_vpcomud: 3849 case X86::BI__builtin_ia32_vpcomuq: 3850 case X86::BI__builtin_ia32_vpcomb: 3851 case X86::BI__builtin_ia32_vpcomw: 3852 case X86::BI__builtin_ia32_vpcomd: 3853 case X86::BI__builtin_ia32_vpcomq: 3854 case X86::BI__builtin_ia32_vec_set_v8hi: 3855 case X86::BI__builtin_ia32_vec_set_v8si: 3856 i = 2; l = 0; u = 7; 3857 break; 3858 case X86::BI__builtin_ia32_vpermilpd256: 3859 case X86::BI__builtin_ia32_roundps: 3860 case X86::BI__builtin_ia32_roundpd: 3861 case X86::BI__builtin_ia32_roundps256: 3862 case X86::BI__builtin_ia32_roundpd256: 3863 case X86::BI__builtin_ia32_getmantpd128_mask: 3864 case X86::BI__builtin_ia32_getmantpd256_mask: 3865 case X86::BI__builtin_ia32_getmantps128_mask: 3866 case X86::BI__builtin_ia32_getmantps256_mask: 3867 case X86::BI__builtin_ia32_getmantpd512_mask: 3868 case X86::BI__builtin_ia32_getmantps512_mask: 3869 case X86::BI__builtin_ia32_vec_ext_v16qi: 3870 case X86::BI__builtin_ia32_vec_ext_v16hi: 3871 i = 1; l = 0; u = 15; 3872 break; 3873 case X86::BI__builtin_ia32_pblendd128: 3874 case X86::BI__builtin_ia32_blendps: 3875 case X86::BI__builtin_ia32_blendpd256: 3876 case X86::BI__builtin_ia32_shufpd256: 3877 case X86::BI__builtin_ia32_roundss: 3878 case X86::BI__builtin_ia32_roundsd: 3879 case X86::BI__builtin_ia32_rangepd128_mask: 3880 case X86::BI__builtin_ia32_rangepd256_mask: 3881 case X86::BI__builtin_ia32_rangepd512_mask: 3882 case X86::BI__builtin_ia32_rangeps128_mask: 3883 case X86::BI__builtin_ia32_rangeps256_mask: 3884 case X86::BI__builtin_ia32_rangeps512_mask: 3885 case X86::BI__builtin_ia32_getmantsd_round_mask: 3886 case X86::BI__builtin_ia32_getmantss_round_mask: 3887 case X86::BI__builtin_ia32_vec_set_v16qi: 3888 case X86::BI__builtin_ia32_vec_set_v16hi: 3889 i = 2; l = 0; u = 15; 3890 break; 3891 case X86::BI__builtin_ia32_vec_ext_v32qi: 3892 i = 1; l = 0; u = 31; 3893 break; 3894 case X86::BI__builtin_ia32_cmpps: 3895 case X86::BI__builtin_ia32_cmpss: 3896 case X86::BI__builtin_ia32_cmppd: 3897 case X86::BI__builtin_ia32_cmpsd: 3898 case X86::BI__builtin_ia32_cmpps256: 3899 case X86::BI__builtin_ia32_cmppd256: 3900 case X86::BI__builtin_ia32_cmpps128_mask: 3901 case X86::BI__builtin_ia32_cmppd128_mask: 3902 case X86::BI__builtin_ia32_cmpps256_mask: 3903 case X86::BI__builtin_ia32_cmppd256_mask: 3904 case X86::BI__builtin_ia32_cmpps512_mask: 3905 case X86::BI__builtin_ia32_cmppd512_mask: 3906 case X86::BI__builtin_ia32_cmpsd_mask: 3907 case X86::BI__builtin_ia32_cmpss_mask: 3908 case X86::BI__builtin_ia32_vec_set_v32qi: 3909 i = 2; l = 0; u = 31; 3910 break; 3911 case X86::BI__builtin_ia32_permdf256: 3912 case X86::BI__builtin_ia32_permdi256: 3913 case X86::BI__builtin_ia32_permdf512: 3914 case X86::BI__builtin_ia32_permdi512: 3915 case X86::BI__builtin_ia32_vpermilps: 3916 case X86::BI__builtin_ia32_vpermilps256: 3917 case X86::BI__builtin_ia32_vpermilpd512: 3918 case X86::BI__builtin_ia32_vpermilps512: 3919 case X86::BI__builtin_ia32_pshufd: 3920 case X86::BI__builtin_ia32_pshufd256: 3921 case X86::BI__builtin_ia32_pshufd512: 3922 case X86::BI__builtin_ia32_pshufhw: 3923 case X86::BI__builtin_ia32_pshufhw256: 3924 case X86::BI__builtin_ia32_pshufhw512: 3925 case X86::BI__builtin_ia32_pshuflw: 3926 case X86::BI__builtin_ia32_pshuflw256: 3927 case X86::BI__builtin_ia32_pshuflw512: 3928 case X86::BI__builtin_ia32_vcvtps2ph: 3929 case X86::BI__builtin_ia32_vcvtps2ph_mask: 3930 case X86::BI__builtin_ia32_vcvtps2ph256: 3931 case X86::BI__builtin_ia32_vcvtps2ph256_mask: 3932 case X86::BI__builtin_ia32_vcvtps2ph512_mask: 3933 case X86::BI__builtin_ia32_rndscaleps_128_mask: 3934 case X86::BI__builtin_ia32_rndscalepd_128_mask: 3935 case X86::BI__builtin_ia32_rndscaleps_256_mask: 3936 case X86::BI__builtin_ia32_rndscalepd_256_mask: 3937 case X86::BI__builtin_ia32_rndscaleps_mask: 3938 case X86::BI__builtin_ia32_rndscalepd_mask: 3939 case X86::BI__builtin_ia32_reducepd128_mask: 3940 case X86::BI__builtin_ia32_reducepd256_mask: 3941 case X86::BI__builtin_ia32_reducepd512_mask: 3942 case X86::BI__builtin_ia32_reduceps128_mask: 3943 case X86::BI__builtin_ia32_reduceps256_mask: 3944 case X86::BI__builtin_ia32_reduceps512_mask: 3945 case X86::BI__builtin_ia32_prold512: 3946 case X86::BI__builtin_ia32_prolq512: 3947 case X86::BI__builtin_ia32_prold128: 3948 case X86::BI__builtin_ia32_prold256: 3949 case X86::BI__builtin_ia32_prolq128: 3950 case X86::BI__builtin_ia32_prolq256: 3951 case X86::BI__builtin_ia32_prord512: 3952 case X86::BI__builtin_ia32_prorq512: 3953 case X86::BI__builtin_ia32_prord128: 3954 case X86::BI__builtin_ia32_prord256: 3955 case X86::BI__builtin_ia32_prorq128: 3956 case X86::BI__builtin_ia32_prorq256: 3957 case X86::BI__builtin_ia32_fpclasspd128_mask: 3958 case X86::BI__builtin_ia32_fpclasspd256_mask: 3959 case X86::BI__builtin_ia32_fpclassps128_mask: 3960 case X86::BI__builtin_ia32_fpclassps256_mask: 3961 case X86::BI__builtin_ia32_fpclassps512_mask: 3962 case X86::BI__builtin_ia32_fpclasspd512_mask: 3963 case X86::BI__builtin_ia32_fpclasssd_mask: 3964 case X86::BI__builtin_ia32_fpclassss_mask: 3965 case X86::BI__builtin_ia32_pslldqi128_byteshift: 3966 case X86::BI__builtin_ia32_pslldqi256_byteshift: 3967 case X86::BI__builtin_ia32_pslldqi512_byteshift: 3968 case X86::BI__builtin_ia32_psrldqi128_byteshift: 3969 case X86::BI__builtin_ia32_psrldqi256_byteshift: 3970 case X86::BI__builtin_ia32_psrldqi512_byteshift: 3971 case X86::BI__builtin_ia32_kshiftliqi: 3972 case X86::BI__builtin_ia32_kshiftlihi: 3973 case X86::BI__builtin_ia32_kshiftlisi: 3974 case X86::BI__builtin_ia32_kshiftlidi: 3975 case X86::BI__builtin_ia32_kshiftriqi: 3976 case X86::BI__builtin_ia32_kshiftrihi: 3977 case X86::BI__builtin_ia32_kshiftrisi: 3978 case X86::BI__builtin_ia32_kshiftridi: 3979 i = 1; l = 0; u = 255; 3980 break; 3981 case X86::BI__builtin_ia32_vperm2f128_pd256: 3982 case X86::BI__builtin_ia32_vperm2f128_ps256: 3983 case X86::BI__builtin_ia32_vperm2f128_si256: 3984 case X86::BI__builtin_ia32_permti256: 3985 case X86::BI__builtin_ia32_pblendw128: 3986 case X86::BI__builtin_ia32_pblendw256: 3987 case X86::BI__builtin_ia32_blendps256: 3988 case X86::BI__builtin_ia32_pblendd256: 3989 case X86::BI__builtin_ia32_palignr128: 3990 case X86::BI__builtin_ia32_palignr256: 3991 case X86::BI__builtin_ia32_palignr512: 3992 case X86::BI__builtin_ia32_alignq512: 3993 case X86::BI__builtin_ia32_alignd512: 3994 case X86::BI__builtin_ia32_alignd128: 3995 case X86::BI__builtin_ia32_alignd256: 3996 case X86::BI__builtin_ia32_alignq128: 3997 case X86::BI__builtin_ia32_alignq256: 3998 case X86::BI__builtin_ia32_vcomisd: 3999 case X86::BI__builtin_ia32_vcomiss: 4000 case X86::BI__builtin_ia32_shuf_f32x4: 4001 case X86::BI__builtin_ia32_shuf_f64x2: 4002 case X86::BI__builtin_ia32_shuf_i32x4: 4003 case X86::BI__builtin_ia32_shuf_i64x2: 4004 case X86::BI__builtin_ia32_shufpd512: 4005 case X86::BI__builtin_ia32_shufps: 4006 case X86::BI__builtin_ia32_shufps256: 4007 case X86::BI__builtin_ia32_shufps512: 4008 case X86::BI__builtin_ia32_dbpsadbw128: 4009 case X86::BI__builtin_ia32_dbpsadbw256: 4010 case X86::BI__builtin_ia32_dbpsadbw512: 4011 case X86::BI__builtin_ia32_vpshldd128: 4012 case X86::BI__builtin_ia32_vpshldd256: 4013 case X86::BI__builtin_ia32_vpshldd512: 4014 case X86::BI__builtin_ia32_vpshldq128: 4015 case X86::BI__builtin_ia32_vpshldq256: 4016 case X86::BI__builtin_ia32_vpshldq512: 4017 case X86::BI__builtin_ia32_vpshldw128: 4018 case X86::BI__builtin_ia32_vpshldw256: 4019 case X86::BI__builtin_ia32_vpshldw512: 4020 case X86::BI__builtin_ia32_vpshrdd128: 4021 case X86::BI__builtin_ia32_vpshrdd256: 4022 case X86::BI__builtin_ia32_vpshrdd512: 4023 case X86::BI__builtin_ia32_vpshrdq128: 4024 case X86::BI__builtin_ia32_vpshrdq256: 4025 case X86::BI__builtin_ia32_vpshrdq512: 4026 case X86::BI__builtin_ia32_vpshrdw128: 4027 case X86::BI__builtin_ia32_vpshrdw256: 4028 case X86::BI__builtin_ia32_vpshrdw512: 4029 i = 2; l = 0; u = 255; 4030 break; 4031 case X86::BI__builtin_ia32_fixupimmpd512_mask: 4032 case X86::BI__builtin_ia32_fixupimmpd512_maskz: 4033 case X86::BI__builtin_ia32_fixupimmps512_mask: 4034 case X86::BI__builtin_ia32_fixupimmps512_maskz: 4035 case X86::BI__builtin_ia32_fixupimmsd_mask: 4036 case X86::BI__builtin_ia32_fixupimmsd_maskz: 4037 case X86::BI__builtin_ia32_fixupimmss_mask: 4038 case X86::BI__builtin_ia32_fixupimmss_maskz: 4039 case X86::BI__builtin_ia32_fixupimmpd128_mask: 4040 case X86::BI__builtin_ia32_fixupimmpd128_maskz: 4041 case X86::BI__builtin_ia32_fixupimmpd256_mask: 4042 case X86::BI__builtin_ia32_fixupimmpd256_maskz: 4043 case X86::BI__builtin_ia32_fixupimmps128_mask: 4044 case X86::BI__builtin_ia32_fixupimmps128_maskz: 4045 case X86::BI__builtin_ia32_fixupimmps256_mask: 4046 case X86::BI__builtin_ia32_fixupimmps256_maskz: 4047 case X86::BI__builtin_ia32_pternlogd512_mask: 4048 case X86::BI__builtin_ia32_pternlogd512_maskz: 4049 case X86::BI__builtin_ia32_pternlogq512_mask: 4050 case X86::BI__builtin_ia32_pternlogq512_maskz: 4051 case X86::BI__builtin_ia32_pternlogd128_mask: 4052 case X86::BI__builtin_ia32_pternlogd128_maskz: 4053 case X86::BI__builtin_ia32_pternlogd256_mask: 4054 case X86::BI__builtin_ia32_pternlogd256_maskz: 4055 case X86::BI__builtin_ia32_pternlogq128_mask: 4056 case X86::BI__builtin_ia32_pternlogq128_maskz: 4057 case X86::BI__builtin_ia32_pternlogq256_mask: 4058 case X86::BI__builtin_ia32_pternlogq256_maskz: 4059 i = 3; l = 0; u = 255; 4060 break; 4061 case X86::BI__builtin_ia32_gatherpfdpd: 4062 case X86::BI__builtin_ia32_gatherpfdps: 4063 case X86::BI__builtin_ia32_gatherpfqpd: 4064 case X86::BI__builtin_ia32_gatherpfqps: 4065 case X86::BI__builtin_ia32_scatterpfdpd: 4066 case X86::BI__builtin_ia32_scatterpfdps: 4067 case X86::BI__builtin_ia32_scatterpfqpd: 4068 case X86::BI__builtin_ia32_scatterpfqps: 4069 i = 4; l = 2; u = 3; 4070 break; 4071 case X86::BI__builtin_ia32_reducesd_mask: 4072 case X86::BI__builtin_ia32_reducess_mask: 4073 case X86::BI__builtin_ia32_rndscalesd_round_mask: 4074 case X86::BI__builtin_ia32_rndscaless_round_mask: 4075 i = 4; l = 0; u = 255; 4076 break; 4077 } 4078 4079 // Note that we don't force a hard error on the range check here, allowing 4080 // template-generated or macro-generated dead code to potentially have out-of- 4081 // range values. These need to code generate, but don't need to necessarily 4082 // make any sense. We use a warning that defaults to an error. 4083 return SemaBuiltinConstantArgRange(TheCall, i, l, u, /*RangeIsError*/ false); 4084 } 4085 4086 /// Given a FunctionDecl's FormatAttr, attempts to populate the FomatStringInfo 4087 /// parameter with the FormatAttr's correct format_idx and firstDataArg. 4088 /// Returns true when the format fits the function and the FormatStringInfo has 4089 /// been populated. 4090 bool Sema::getFormatStringInfo(const FormatAttr *Format, bool IsCXXMember, 4091 FormatStringInfo *FSI) { 4092 FSI->HasVAListArg = Format->getFirstArg() == 0; 4093 FSI->FormatIdx = Format->getFormatIdx() - 1; 4094 FSI->FirstDataArg = FSI->HasVAListArg ? 0 : Format->getFirstArg() - 1; 4095 4096 // The way the format attribute works in GCC, the implicit this argument 4097 // of member functions is counted. However, it doesn't appear in our own 4098 // lists, so decrement format_idx in that case. 4099 if (IsCXXMember) { 4100 if(FSI->FormatIdx == 0) 4101 return false; 4102 --FSI->FormatIdx; 4103 if (FSI->FirstDataArg != 0) 4104 --FSI->FirstDataArg; 4105 } 4106 return true; 4107 } 4108 4109 /// Checks if a the given expression evaluates to null. 4110 /// 4111 /// Returns true if the value evaluates to null. 4112 static bool CheckNonNullExpr(Sema &S, const Expr *Expr) { 4113 // If the expression has non-null type, it doesn't evaluate to null. 4114 if (auto nullability 4115 = Expr->IgnoreImplicit()->getType()->getNullability(S.Context)) { 4116 if (*nullability == NullabilityKind::NonNull) 4117 return false; 4118 } 4119 4120 // As a special case, transparent unions initialized with zero are 4121 // considered null for the purposes of the nonnull attribute. 4122 if (const RecordType *UT = Expr->getType()->getAsUnionType()) { 4123 if (UT->getDecl()->hasAttr<TransparentUnionAttr>()) 4124 if (const CompoundLiteralExpr *CLE = 4125 dyn_cast<CompoundLiteralExpr>(Expr)) 4126 if (const InitListExpr *ILE = 4127 dyn_cast<InitListExpr>(CLE->getInitializer())) 4128 Expr = ILE->getInit(0); 4129 } 4130 4131 bool Result; 4132 return (!Expr->isValueDependent() && 4133 Expr->EvaluateAsBooleanCondition(Result, S.Context) && 4134 !Result); 4135 } 4136 4137 static void CheckNonNullArgument(Sema &S, 4138 const Expr *ArgExpr, 4139 SourceLocation CallSiteLoc) { 4140 if (CheckNonNullExpr(S, ArgExpr)) 4141 S.DiagRuntimeBehavior(CallSiteLoc, ArgExpr, 4142 S.PDiag(diag::warn_null_arg) 4143 << ArgExpr->getSourceRange()); 4144 } 4145 4146 bool Sema::GetFormatNSStringIdx(const FormatAttr *Format, unsigned &Idx) { 4147 FormatStringInfo FSI; 4148 if ((GetFormatStringType(Format) == FST_NSString) && 4149 getFormatStringInfo(Format, false, &FSI)) { 4150 Idx = FSI.FormatIdx; 4151 return true; 4152 } 4153 return false; 4154 } 4155 4156 /// Diagnose use of %s directive in an NSString which is being passed 4157 /// as formatting string to formatting method. 4158 static void 4159 DiagnoseCStringFormatDirectiveInCFAPI(Sema &S, 4160 const NamedDecl *FDecl, 4161 Expr **Args, 4162 unsigned NumArgs) { 4163 unsigned Idx = 0; 4164 bool Format = false; 4165 ObjCStringFormatFamily SFFamily = FDecl->getObjCFStringFormattingFamily(); 4166 if (SFFamily == ObjCStringFormatFamily::SFF_CFString) { 4167 Idx = 2; 4168 Format = true; 4169 } 4170 else 4171 for (const auto *I : FDecl->specific_attrs<FormatAttr>()) { 4172 if (S.GetFormatNSStringIdx(I, Idx)) { 4173 Format = true; 4174 break; 4175 } 4176 } 4177 if (!Format || NumArgs <= Idx) 4178 return; 4179 const Expr *FormatExpr = Args[Idx]; 4180 if (const CStyleCastExpr *CSCE = dyn_cast<CStyleCastExpr>(FormatExpr)) 4181 FormatExpr = CSCE->getSubExpr(); 4182 const StringLiteral *FormatString; 4183 if (const ObjCStringLiteral *OSL = 4184 dyn_cast<ObjCStringLiteral>(FormatExpr->IgnoreParenImpCasts())) 4185 FormatString = OSL->getString(); 4186 else 4187 FormatString = dyn_cast<StringLiteral>(FormatExpr->IgnoreParenImpCasts()); 4188 if (!FormatString) 4189 return; 4190 if (S.FormatStringHasSArg(FormatString)) { 4191 S.Diag(FormatExpr->getExprLoc(), diag::warn_objc_cdirective_format_string) 4192 << "%s" << 1 << 1; 4193 S.Diag(FDecl->getLocation(), diag::note_entity_declared_at) 4194 << FDecl->getDeclName(); 4195 } 4196 } 4197 4198 /// Determine whether the given type has a non-null nullability annotation. 4199 static bool isNonNullType(ASTContext &ctx, QualType type) { 4200 if (auto nullability = type->getNullability(ctx)) 4201 return *nullability == NullabilityKind::NonNull; 4202 4203 return false; 4204 } 4205 4206 static void CheckNonNullArguments(Sema &S, 4207 const NamedDecl *FDecl, 4208 const FunctionProtoType *Proto, 4209 ArrayRef<const Expr *> Args, 4210 SourceLocation CallSiteLoc) { 4211 assert((FDecl || Proto) && "Need a function declaration or prototype"); 4212 4213 // Already checked by by constant evaluator. 4214 if (S.isConstantEvaluated()) 4215 return; 4216 // Check the attributes attached to the method/function itself. 4217 llvm::SmallBitVector NonNullArgs; 4218 if (FDecl) { 4219 // Handle the nonnull attribute on the function/method declaration itself. 4220 for (const auto *NonNull : FDecl->specific_attrs<NonNullAttr>()) { 4221 if (!NonNull->args_size()) { 4222 // Easy case: all pointer arguments are nonnull. 4223 for (const auto *Arg : Args) 4224 if (S.isValidPointerAttrType(Arg->getType())) 4225 CheckNonNullArgument(S, Arg, CallSiteLoc); 4226 return; 4227 } 4228 4229 for (const ParamIdx &Idx : NonNull->args()) { 4230 unsigned IdxAST = Idx.getASTIndex(); 4231 if (IdxAST >= Args.size()) 4232 continue; 4233 if (NonNullArgs.empty()) 4234 NonNullArgs.resize(Args.size()); 4235 NonNullArgs.set(IdxAST); 4236 } 4237 } 4238 } 4239 4240 if (FDecl && (isa<FunctionDecl>(FDecl) || isa<ObjCMethodDecl>(FDecl))) { 4241 // Handle the nonnull attribute on the parameters of the 4242 // function/method. 4243 ArrayRef<ParmVarDecl*> parms; 4244 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(FDecl)) 4245 parms = FD->parameters(); 4246 else 4247 parms = cast<ObjCMethodDecl>(FDecl)->parameters(); 4248 4249 unsigned ParamIndex = 0; 4250 for (ArrayRef<ParmVarDecl*>::iterator I = parms.begin(), E = parms.end(); 4251 I != E; ++I, ++ParamIndex) { 4252 const ParmVarDecl *PVD = *I; 4253 if (PVD->hasAttr<NonNullAttr>() || 4254 isNonNullType(S.Context, PVD->getType())) { 4255 if (NonNullArgs.empty()) 4256 NonNullArgs.resize(Args.size()); 4257 4258 NonNullArgs.set(ParamIndex); 4259 } 4260 } 4261 } else { 4262 // If we have a non-function, non-method declaration but no 4263 // function prototype, try to dig out the function prototype. 4264 if (!Proto) { 4265 if (const ValueDecl *VD = dyn_cast<ValueDecl>(FDecl)) { 4266 QualType type = VD->getType().getNonReferenceType(); 4267 if (auto pointerType = type->getAs<PointerType>()) 4268 type = pointerType->getPointeeType(); 4269 else if (auto blockType = type->getAs<BlockPointerType>()) 4270 type = blockType->getPointeeType(); 4271 // FIXME: data member pointers? 4272 4273 // Dig out the function prototype, if there is one. 4274 Proto = type->getAs<FunctionProtoType>(); 4275 } 4276 } 4277 4278 // Fill in non-null argument information from the nullability 4279 // information on the parameter types (if we have them). 4280 if (Proto) { 4281 unsigned Index = 0; 4282 for (auto paramType : Proto->getParamTypes()) { 4283 if (isNonNullType(S.Context, paramType)) { 4284 if (NonNullArgs.empty()) 4285 NonNullArgs.resize(Args.size()); 4286 4287 NonNullArgs.set(Index); 4288 } 4289 4290 ++Index; 4291 } 4292 } 4293 } 4294 4295 // Check for non-null arguments. 4296 for (unsigned ArgIndex = 0, ArgIndexEnd = NonNullArgs.size(); 4297 ArgIndex != ArgIndexEnd; ++ArgIndex) { 4298 if (NonNullArgs[ArgIndex]) 4299 CheckNonNullArgument(S, Args[ArgIndex], CallSiteLoc); 4300 } 4301 } 4302 4303 /// Handles the checks for format strings, non-POD arguments to vararg 4304 /// functions, NULL arguments passed to non-NULL parameters, and diagnose_if 4305 /// attributes. 4306 void Sema::checkCall(NamedDecl *FDecl, const FunctionProtoType *Proto, 4307 const Expr *ThisArg, ArrayRef<const Expr *> Args, 4308 bool IsMemberFunction, SourceLocation Loc, 4309 SourceRange Range, VariadicCallType CallType) { 4310 // FIXME: We should check as much as we can in the template definition. 4311 if (CurContext->isDependentContext()) 4312 return; 4313 4314 // Printf and scanf checking. 4315 llvm::SmallBitVector CheckedVarArgs; 4316 if (FDecl) { 4317 for (const auto *I : FDecl->specific_attrs<FormatAttr>()) { 4318 // Only create vector if there are format attributes. 4319 CheckedVarArgs.resize(Args.size()); 4320 4321 CheckFormatArguments(I, Args, IsMemberFunction, CallType, Loc, Range, 4322 CheckedVarArgs); 4323 } 4324 } 4325 4326 // Refuse POD arguments that weren't caught by the format string 4327 // checks above. 4328 auto *FD = dyn_cast_or_null<FunctionDecl>(FDecl); 4329 if (CallType != VariadicDoesNotApply && 4330 (!FD || FD->getBuiltinID() != Builtin::BI__noop)) { 4331 unsigned NumParams = Proto ? Proto->getNumParams() 4332 : FDecl && isa<FunctionDecl>(FDecl) 4333 ? cast<FunctionDecl>(FDecl)->getNumParams() 4334 : FDecl && isa<ObjCMethodDecl>(FDecl) 4335 ? cast<ObjCMethodDecl>(FDecl)->param_size() 4336 : 0; 4337 4338 for (unsigned ArgIdx = NumParams; ArgIdx < Args.size(); ++ArgIdx) { 4339 // Args[ArgIdx] can be null in malformed code. 4340 if (const Expr *Arg = Args[ArgIdx]) { 4341 if (CheckedVarArgs.empty() || !CheckedVarArgs[ArgIdx]) 4342 checkVariadicArgument(Arg, CallType); 4343 } 4344 } 4345 } 4346 4347 if (FDecl || Proto) { 4348 CheckNonNullArguments(*this, FDecl, Proto, Args, Loc); 4349 4350 // Type safety checking. 4351 if (FDecl) { 4352 for (const auto *I : FDecl->specific_attrs<ArgumentWithTypeTagAttr>()) 4353 CheckArgumentWithTypeTag(I, Args, Loc); 4354 } 4355 } 4356 4357 if (FD) 4358 diagnoseArgDependentDiagnoseIfAttrs(FD, ThisArg, Args, Loc); 4359 } 4360 4361 /// CheckConstructorCall - Check a constructor call for correctness and safety 4362 /// properties not enforced by the C type system. 4363 void Sema::CheckConstructorCall(FunctionDecl *FDecl, 4364 ArrayRef<const Expr *> Args, 4365 const FunctionProtoType *Proto, 4366 SourceLocation Loc) { 4367 VariadicCallType CallType = 4368 Proto->isVariadic() ? VariadicConstructor : VariadicDoesNotApply; 4369 checkCall(FDecl, Proto, /*ThisArg=*/nullptr, Args, /*IsMemberFunction=*/true, 4370 Loc, SourceRange(), CallType); 4371 } 4372 4373 /// CheckFunctionCall - Check a direct function call for various correctness 4374 /// and safety properties not strictly enforced by the C type system. 4375 bool Sema::CheckFunctionCall(FunctionDecl *FDecl, CallExpr *TheCall, 4376 const FunctionProtoType *Proto) { 4377 bool IsMemberOperatorCall = isa<CXXOperatorCallExpr>(TheCall) && 4378 isa<CXXMethodDecl>(FDecl); 4379 bool IsMemberFunction = isa<CXXMemberCallExpr>(TheCall) || 4380 IsMemberOperatorCall; 4381 VariadicCallType CallType = getVariadicCallType(FDecl, Proto, 4382 TheCall->getCallee()); 4383 Expr** Args = TheCall->getArgs(); 4384 unsigned NumArgs = TheCall->getNumArgs(); 4385 4386 Expr *ImplicitThis = nullptr; 4387 if (IsMemberOperatorCall) { 4388 // If this is a call to a member operator, hide the first argument 4389 // from checkCall. 4390 // FIXME: Our choice of AST representation here is less than ideal. 4391 ImplicitThis = Args[0]; 4392 ++Args; 4393 --NumArgs; 4394 } else if (IsMemberFunction) 4395 ImplicitThis = 4396 cast<CXXMemberCallExpr>(TheCall)->getImplicitObjectArgument(); 4397 4398 checkCall(FDecl, Proto, ImplicitThis, llvm::makeArrayRef(Args, NumArgs), 4399 IsMemberFunction, TheCall->getRParenLoc(), 4400 TheCall->getCallee()->getSourceRange(), CallType); 4401 4402 IdentifierInfo *FnInfo = FDecl->getIdentifier(); 4403 // None of the checks below are needed for functions that don't have 4404 // simple names (e.g., C++ conversion functions). 4405 if (!FnInfo) 4406 return false; 4407 4408 CheckAbsoluteValueFunction(TheCall, FDecl); 4409 CheckMaxUnsignedZero(TheCall, FDecl); 4410 4411 if (getLangOpts().ObjC) 4412 DiagnoseCStringFormatDirectiveInCFAPI(*this, FDecl, Args, NumArgs); 4413 4414 unsigned CMId = FDecl->getMemoryFunctionKind(); 4415 if (CMId == 0) 4416 return false; 4417 4418 // Handle memory setting and copying functions. 4419 if (CMId == Builtin::BIstrlcpy || CMId == Builtin::BIstrlcat) 4420 CheckStrlcpycatArguments(TheCall, FnInfo); 4421 else if (CMId == Builtin::BIstrncat) 4422 CheckStrncatArguments(TheCall, FnInfo); 4423 else 4424 CheckMemaccessArguments(TheCall, CMId, FnInfo); 4425 4426 return false; 4427 } 4428 4429 bool Sema::CheckObjCMethodCall(ObjCMethodDecl *Method, SourceLocation lbrac, 4430 ArrayRef<const Expr *> Args) { 4431 VariadicCallType CallType = 4432 Method->isVariadic() ? VariadicMethod : VariadicDoesNotApply; 4433 4434 checkCall(Method, nullptr, /*ThisArg=*/nullptr, Args, 4435 /*IsMemberFunction=*/false, lbrac, Method->getSourceRange(), 4436 CallType); 4437 4438 return false; 4439 } 4440 4441 bool Sema::CheckPointerCall(NamedDecl *NDecl, CallExpr *TheCall, 4442 const FunctionProtoType *Proto) { 4443 QualType Ty; 4444 if (const auto *V = dyn_cast<VarDecl>(NDecl)) 4445 Ty = V->getType().getNonReferenceType(); 4446 else if (const auto *F = dyn_cast<FieldDecl>(NDecl)) 4447 Ty = F->getType().getNonReferenceType(); 4448 else 4449 return false; 4450 4451 if (!Ty->isBlockPointerType() && !Ty->isFunctionPointerType() && 4452 !Ty->isFunctionProtoType()) 4453 return false; 4454 4455 VariadicCallType CallType; 4456 if (!Proto || !Proto->isVariadic()) { 4457 CallType = VariadicDoesNotApply; 4458 } else if (Ty->isBlockPointerType()) { 4459 CallType = VariadicBlock; 4460 } else { // Ty->isFunctionPointerType() 4461 CallType = VariadicFunction; 4462 } 4463 4464 checkCall(NDecl, Proto, /*ThisArg=*/nullptr, 4465 llvm::makeArrayRef(TheCall->getArgs(), TheCall->getNumArgs()), 4466 /*IsMemberFunction=*/false, TheCall->getRParenLoc(), 4467 TheCall->getCallee()->getSourceRange(), CallType); 4468 4469 return false; 4470 } 4471 4472 /// Checks function calls when a FunctionDecl or a NamedDecl is not available, 4473 /// such as function pointers returned from functions. 4474 bool Sema::CheckOtherCall(CallExpr *TheCall, const FunctionProtoType *Proto) { 4475 VariadicCallType CallType = getVariadicCallType(/*FDecl=*/nullptr, Proto, 4476 TheCall->getCallee()); 4477 checkCall(/*FDecl=*/nullptr, Proto, /*ThisArg=*/nullptr, 4478 llvm::makeArrayRef(TheCall->getArgs(), TheCall->getNumArgs()), 4479 /*IsMemberFunction=*/false, TheCall->getRParenLoc(), 4480 TheCall->getCallee()->getSourceRange(), CallType); 4481 4482 return false; 4483 } 4484 4485 static bool isValidOrderingForOp(int64_t Ordering, AtomicExpr::AtomicOp Op) { 4486 if (!llvm::isValidAtomicOrderingCABI(Ordering)) 4487 return false; 4488 4489 auto OrderingCABI = (llvm::AtomicOrderingCABI)Ordering; 4490 switch (Op) { 4491 case AtomicExpr::AO__c11_atomic_init: 4492 case AtomicExpr::AO__opencl_atomic_init: 4493 llvm_unreachable("There is no ordering argument for an init"); 4494 4495 case AtomicExpr::AO__c11_atomic_load: 4496 case AtomicExpr::AO__opencl_atomic_load: 4497 case AtomicExpr::AO__atomic_load_n: 4498 case AtomicExpr::AO__atomic_load: 4499 return OrderingCABI != llvm::AtomicOrderingCABI::release && 4500 OrderingCABI != llvm::AtomicOrderingCABI::acq_rel; 4501 4502 case AtomicExpr::AO__c11_atomic_store: 4503 case AtomicExpr::AO__opencl_atomic_store: 4504 case AtomicExpr::AO__atomic_store: 4505 case AtomicExpr::AO__atomic_store_n: 4506 return OrderingCABI != llvm::AtomicOrderingCABI::consume && 4507 OrderingCABI != llvm::AtomicOrderingCABI::acquire && 4508 OrderingCABI != llvm::AtomicOrderingCABI::acq_rel; 4509 4510 default: 4511 return true; 4512 } 4513 } 4514 4515 ExprResult Sema::SemaAtomicOpsOverloaded(ExprResult TheCallResult, 4516 AtomicExpr::AtomicOp Op) { 4517 CallExpr *TheCall = cast<CallExpr>(TheCallResult.get()); 4518 DeclRefExpr *DRE =cast<DeclRefExpr>(TheCall->getCallee()->IgnoreParenCasts()); 4519 MultiExprArg Args{TheCall->getArgs(), TheCall->getNumArgs()}; 4520 return BuildAtomicExpr({TheCall->getBeginLoc(), TheCall->getEndLoc()}, 4521 DRE->getSourceRange(), TheCall->getRParenLoc(), Args, 4522 Op); 4523 } 4524 4525 ExprResult Sema::BuildAtomicExpr(SourceRange CallRange, SourceRange ExprRange, 4526 SourceLocation RParenLoc, MultiExprArg Args, 4527 AtomicExpr::AtomicOp Op, 4528 AtomicArgumentOrder ArgOrder) { 4529 // All the non-OpenCL operations take one of the following forms. 4530 // The OpenCL operations take the __c11 forms with one extra argument for 4531 // synchronization scope. 4532 enum { 4533 // C __c11_atomic_init(A *, C) 4534 Init, 4535 4536 // C __c11_atomic_load(A *, int) 4537 Load, 4538 4539 // void __atomic_load(A *, CP, int) 4540 LoadCopy, 4541 4542 // void __atomic_store(A *, CP, int) 4543 Copy, 4544 4545 // C __c11_atomic_add(A *, M, int) 4546 Arithmetic, 4547 4548 // C __atomic_exchange_n(A *, CP, int) 4549 Xchg, 4550 4551 // void __atomic_exchange(A *, C *, CP, int) 4552 GNUXchg, 4553 4554 // bool __c11_atomic_compare_exchange_strong(A *, C *, CP, int, int) 4555 C11CmpXchg, 4556 4557 // bool __atomic_compare_exchange(A *, C *, CP, bool, int, int) 4558 GNUCmpXchg 4559 } Form = Init; 4560 4561 const unsigned NumForm = GNUCmpXchg + 1; 4562 const unsigned NumArgs[] = { 2, 2, 3, 3, 3, 3, 4, 5, 6 }; 4563 const unsigned NumVals[] = { 1, 0, 1, 1, 1, 1, 2, 2, 3 }; 4564 // where: 4565 // C is an appropriate type, 4566 // A is volatile _Atomic(C) for __c11 builtins and is C for GNU builtins, 4567 // CP is C for __c11 builtins and GNU _n builtins and is C * otherwise, 4568 // M is C if C is an integer, and ptrdiff_t if C is a pointer, and 4569 // the int parameters are for orderings. 4570 4571 static_assert(sizeof(NumArgs)/sizeof(NumArgs[0]) == NumForm 4572 && sizeof(NumVals)/sizeof(NumVals[0]) == NumForm, 4573 "need to update code for modified forms"); 4574 static_assert(AtomicExpr::AO__c11_atomic_init == 0 && 4575 AtomicExpr::AO__c11_atomic_fetch_xor + 1 == 4576 AtomicExpr::AO__atomic_load, 4577 "need to update code for modified C11 atomics"); 4578 bool IsOpenCL = Op >= AtomicExpr::AO__opencl_atomic_init && 4579 Op <= AtomicExpr::AO__opencl_atomic_fetch_max; 4580 bool IsC11 = (Op >= AtomicExpr::AO__c11_atomic_init && 4581 Op <= AtomicExpr::AO__c11_atomic_fetch_xor) || 4582 IsOpenCL; 4583 bool IsN = Op == AtomicExpr::AO__atomic_load_n || 4584 Op == AtomicExpr::AO__atomic_store_n || 4585 Op == AtomicExpr::AO__atomic_exchange_n || 4586 Op == AtomicExpr::AO__atomic_compare_exchange_n; 4587 bool IsAddSub = false; 4588 bool IsMinMax = false; 4589 4590 switch (Op) { 4591 case AtomicExpr::AO__c11_atomic_init: 4592 case AtomicExpr::AO__opencl_atomic_init: 4593 Form = Init; 4594 break; 4595 4596 case AtomicExpr::AO__c11_atomic_load: 4597 case AtomicExpr::AO__opencl_atomic_load: 4598 case AtomicExpr::AO__atomic_load_n: 4599 Form = Load; 4600 break; 4601 4602 case AtomicExpr::AO__atomic_load: 4603 Form = LoadCopy; 4604 break; 4605 4606 case AtomicExpr::AO__c11_atomic_store: 4607 case AtomicExpr::AO__opencl_atomic_store: 4608 case AtomicExpr::AO__atomic_store: 4609 case AtomicExpr::AO__atomic_store_n: 4610 Form = Copy; 4611 break; 4612 4613 case AtomicExpr::AO__c11_atomic_fetch_add: 4614 case AtomicExpr::AO__c11_atomic_fetch_sub: 4615 case AtomicExpr::AO__opencl_atomic_fetch_add: 4616 case AtomicExpr::AO__opencl_atomic_fetch_sub: 4617 case AtomicExpr::AO__opencl_atomic_fetch_min: 4618 case AtomicExpr::AO__opencl_atomic_fetch_max: 4619 case AtomicExpr::AO__atomic_fetch_add: 4620 case AtomicExpr::AO__atomic_fetch_sub: 4621 case AtomicExpr::AO__atomic_add_fetch: 4622 case AtomicExpr::AO__atomic_sub_fetch: 4623 IsAddSub = true; 4624 LLVM_FALLTHROUGH; 4625 case AtomicExpr::AO__c11_atomic_fetch_and: 4626 case AtomicExpr::AO__c11_atomic_fetch_or: 4627 case AtomicExpr::AO__c11_atomic_fetch_xor: 4628 case AtomicExpr::AO__opencl_atomic_fetch_and: 4629 case AtomicExpr::AO__opencl_atomic_fetch_or: 4630 case AtomicExpr::AO__opencl_atomic_fetch_xor: 4631 case AtomicExpr::AO__atomic_fetch_and: 4632 case AtomicExpr::AO__atomic_fetch_or: 4633 case AtomicExpr::AO__atomic_fetch_xor: 4634 case AtomicExpr::AO__atomic_fetch_nand: 4635 case AtomicExpr::AO__atomic_and_fetch: 4636 case AtomicExpr::AO__atomic_or_fetch: 4637 case AtomicExpr::AO__atomic_xor_fetch: 4638 case AtomicExpr::AO__atomic_nand_fetch: 4639 Form = Arithmetic; 4640 break; 4641 4642 case AtomicExpr::AO__atomic_fetch_min: 4643 case AtomicExpr::AO__atomic_fetch_max: 4644 IsMinMax = true; 4645 Form = Arithmetic; 4646 break; 4647 4648 case AtomicExpr::AO__c11_atomic_exchange: 4649 case AtomicExpr::AO__opencl_atomic_exchange: 4650 case AtomicExpr::AO__atomic_exchange_n: 4651 Form = Xchg; 4652 break; 4653 4654 case AtomicExpr::AO__atomic_exchange: 4655 Form = GNUXchg; 4656 break; 4657 4658 case AtomicExpr::AO__c11_atomic_compare_exchange_strong: 4659 case AtomicExpr::AO__c11_atomic_compare_exchange_weak: 4660 case AtomicExpr::AO__opencl_atomic_compare_exchange_strong: 4661 case AtomicExpr::AO__opencl_atomic_compare_exchange_weak: 4662 Form = C11CmpXchg; 4663 break; 4664 4665 case AtomicExpr::AO__atomic_compare_exchange: 4666 case AtomicExpr::AO__atomic_compare_exchange_n: 4667 Form = GNUCmpXchg; 4668 break; 4669 } 4670 4671 unsigned AdjustedNumArgs = NumArgs[Form]; 4672 if (IsOpenCL && Op != AtomicExpr::AO__opencl_atomic_init) 4673 ++AdjustedNumArgs; 4674 // Check we have the right number of arguments. 4675 if (Args.size() < AdjustedNumArgs) { 4676 Diag(CallRange.getEnd(), diag::err_typecheck_call_too_few_args) 4677 << 0 << AdjustedNumArgs << static_cast<unsigned>(Args.size()) 4678 << ExprRange; 4679 return ExprError(); 4680 } else if (Args.size() > AdjustedNumArgs) { 4681 Diag(Args[AdjustedNumArgs]->getBeginLoc(), 4682 diag::err_typecheck_call_too_many_args) 4683 << 0 << AdjustedNumArgs << static_cast<unsigned>(Args.size()) 4684 << ExprRange; 4685 return ExprError(); 4686 } 4687 4688 // Inspect the first argument of the atomic operation. 4689 Expr *Ptr = Args[0]; 4690 ExprResult ConvertedPtr = DefaultFunctionArrayLvalueConversion(Ptr); 4691 if (ConvertedPtr.isInvalid()) 4692 return ExprError(); 4693 4694 Ptr = ConvertedPtr.get(); 4695 const PointerType *pointerType = Ptr->getType()->getAs<PointerType>(); 4696 if (!pointerType) { 4697 Diag(ExprRange.getBegin(), diag::err_atomic_builtin_must_be_pointer) 4698 << Ptr->getType() << Ptr->getSourceRange(); 4699 return ExprError(); 4700 } 4701 4702 // For a __c11 builtin, this should be a pointer to an _Atomic type. 4703 QualType AtomTy = pointerType->getPointeeType(); // 'A' 4704 QualType ValType = AtomTy; // 'C' 4705 if (IsC11) { 4706 if (!AtomTy->isAtomicType()) { 4707 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_atomic) 4708 << Ptr->getType() << Ptr->getSourceRange(); 4709 return ExprError(); 4710 } 4711 if ((Form != Load && Form != LoadCopy && AtomTy.isConstQualified()) || 4712 AtomTy.getAddressSpace() == LangAS::opencl_constant) { 4713 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_non_const_atomic) 4714 << (AtomTy.isConstQualified() ? 0 : 1) << Ptr->getType() 4715 << Ptr->getSourceRange(); 4716 return ExprError(); 4717 } 4718 ValType = AtomTy->castAs<AtomicType>()->getValueType(); 4719 } else if (Form != Load && Form != LoadCopy) { 4720 if (ValType.isConstQualified()) { 4721 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_non_const_pointer) 4722 << Ptr->getType() << Ptr->getSourceRange(); 4723 return ExprError(); 4724 } 4725 } 4726 4727 // For an arithmetic operation, the implied arithmetic must be well-formed. 4728 if (Form == Arithmetic) { 4729 // gcc does not enforce these rules for GNU atomics, but we do so for sanity. 4730 if (IsAddSub && !ValType->isIntegerType() 4731 && !ValType->isPointerType()) { 4732 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_atomic_int_or_ptr) 4733 << IsC11 << Ptr->getType() << Ptr->getSourceRange(); 4734 return ExprError(); 4735 } 4736 if (IsMinMax) { 4737 const BuiltinType *BT = ValType->getAs<BuiltinType>(); 4738 if (!BT || (BT->getKind() != BuiltinType::Int && 4739 BT->getKind() != BuiltinType::UInt)) { 4740 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_int32_or_ptr); 4741 return ExprError(); 4742 } 4743 } 4744 if (!IsAddSub && !IsMinMax && !ValType->isIntegerType()) { 4745 Diag(ExprRange.getBegin(), diag::err_atomic_op_bitwise_needs_atomic_int) 4746 << IsC11 << Ptr->getType() << Ptr->getSourceRange(); 4747 return ExprError(); 4748 } 4749 if (IsC11 && ValType->isPointerType() && 4750 RequireCompleteType(Ptr->getBeginLoc(), ValType->getPointeeType(), 4751 diag::err_incomplete_type)) { 4752 return ExprError(); 4753 } 4754 } else if (IsN && !ValType->isIntegerType() && !ValType->isPointerType()) { 4755 // For __atomic_*_n operations, the value type must be a scalar integral or 4756 // pointer type which is 1, 2, 4, 8 or 16 bytes in length. 4757 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_atomic_int_or_ptr) 4758 << IsC11 << Ptr->getType() << Ptr->getSourceRange(); 4759 return ExprError(); 4760 } 4761 4762 if (!IsC11 && !AtomTy.isTriviallyCopyableType(Context) && 4763 !AtomTy->isScalarType()) { 4764 // For GNU atomics, require a trivially-copyable type. This is not part of 4765 // the GNU atomics specification, but we enforce it for sanity. 4766 Diag(ExprRange.getBegin(), diag::err_atomic_op_needs_trivial_copy) 4767 << Ptr->getType() << Ptr->getSourceRange(); 4768 return ExprError(); 4769 } 4770 4771 switch (ValType.getObjCLifetime()) { 4772 case Qualifiers::OCL_None: 4773 case Qualifiers::OCL_ExplicitNone: 4774 // okay 4775 break; 4776 4777 case Qualifiers::OCL_Weak: 4778 case Qualifiers::OCL_Strong: 4779 case Qualifiers::OCL_Autoreleasing: 4780 // FIXME: Can this happen? By this point, ValType should be known 4781 // to be trivially copyable. 4782 Diag(ExprRange.getBegin(), diag::err_arc_atomic_ownership) 4783 << ValType << Ptr->getSourceRange(); 4784 return ExprError(); 4785 } 4786 4787 // All atomic operations have an overload which takes a pointer to a volatile 4788 // 'A'. We shouldn't let the volatile-ness of the pointee-type inject itself 4789 // into the result or the other operands. Similarly atomic_load takes a 4790 // pointer to a const 'A'. 4791 ValType.removeLocalVolatile(); 4792 ValType.removeLocalConst(); 4793 QualType ResultType = ValType; 4794 if (Form == Copy || Form == LoadCopy || Form == GNUXchg || 4795 Form == Init) 4796 ResultType = Context.VoidTy; 4797 else if (Form == C11CmpXchg || Form == GNUCmpXchg) 4798 ResultType = Context.BoolTy; 4799 4800 // The type of a parameter passed 'by value'. In the GNU atomics, such 4801 // arguments are actually passed as pointers. 4802 QualType ByValType = ValType; // 'CP' 4803 bool IsPassedByAddress = false; 4804 if (!IsC11 && !IsN) { 4805 ByValType = Ptr->getType(); 4806 IsPassedByAddress = true; 4807 } 4808 4809 SmallVector<Expr *, 5> APIOrderedArgs; 4810 if (ArgOrder == Sema::AtomicArgumentOrder::AST) { 4811 APIOrderedArgs.push_back(Args[0]); 4812 switch (Form) { 4813 case Init: 4814 case Load: 4815 APIOrderedArgs.push_back(Args[1]); // Val1/Order 4816 break; 4817 case LoadCopy: 4818 case Copy: 4819 case Arithmetic: 4820 case Xchg: 4821 APIOrderedArgs.push_back(Args[2]); // Val1 4822 APIOrderedArgs.push_back(Args[1]); // Order 4823 break; 4824 case GNUXchg: 4825 APIOrderedArgs.push_back(Args[2]); // Val1 4826 APIOrderedArgs.push_back(Args[3]); // Val2 4827 APIOrderedArgs.push_back(Args[1]); // Order 4828 break; 4829 case C11CmpXchg: 4830 APIOrderedArgs.push_back(Args[2]); // Val1 4831 APIOrderedArgs.push_back(Args[4]); // Val2 4832 APIOrderedArgs.push_back(Args[1]); // Order 4833 APIOrderedArgs.push_back(Args[3]); // OrderFail 4834 break; 4835 case GNUCmpXchg: 4836 APIOrderedArgs.push_back(Args[2]); // Val1 4837 APIOrderedArgs.push_back(Args[4]); // Val2 4838 APIOrderedArgs.push_back(Args[5]); // Weak 4839 APIOrderedArgs.push_back(Args[1]); // Order 4840 APIOrderedArgs.push_back(Args[3]); // OrderFail 4841 break; 4842 } 4843 } else 4844 APIOrderedArgs.append(Args.begin(), Args.end()); 4845 4846 // The first argument's non-CV pointer type is used to deduce the type of 4847 // subsequent arguments, except for: 4848 // - weak flag (always converted to bool) 4849 // - memory order (always converted to int) 4850 // - scope (always converted to int) 4851 for (unsigned i = 0; i != APIOrderedArgs.size(); ++i) { 4852 QualType Ty; 4853 if (i < NumVals[Form] + 1) { 4854 switch (i) { 4855 case 0: 4856 // The first argument is always a pointer. It has a fixed type. 4857 // It is always dereferenced, a nullptr is undefined. 4858 CheckNonNullArgument(*this, APIOrderedArgs[i], ExprRange.getBegin()); 4859 // Nothing else to do: we already know all we want about this pointer. 4860 continue; 4861 case 1: 4862 // The second argument is the non-atomic operand. For arithmetic, this 4863 // is always passed by value, and for a compare_exchange it is always 4864 // passed by address. For the rest, GNU uses by-address and C11 uses 4865 // by-value. 4866 assert(Form != Load); 4867 if (Form == Init || (Form == Arithmetic && ValType->isIntegerType())) 4868 Ty = ValType; 4869 else if (Form == Copy || Form == Xchg) { 4870 if (IsPassedByAddress) { 4871 // The value pointer is always dereferenced, a nullptr is undefined. 4872 CheckNonNullArgument(*this, APIOrderedArgs[i], 4873 ExprRange.getBegin()); 4874 } 4875 Ty = ByValType; 4876 } else if (Form == Arithmetic) 4877 Ty = Context.getPointerDiffType(); 4878 else { 4879 Expr *ValArg = APIOrderedArgs[i]; 4880 // The value pointer is always dereferenced, a nullptr is undefined. 4881 CheckNonNullArgument(*this, ValArg, ExprRange.getBegin()); 4882 LangAS AS = LangAS::Default; 4883 // Keep address space of non-atomic pointer type. 4884 if (const PointerType *PtrTy = 4885 ValArg->getType()->getAs<PointerType>()) { 4886 AS = PtrTy->getPointeeType().getAddressSpace(); 4887 } 4888 Ty = Context.getPointerType( 4889 Context.getAddrSpaceQualType(ValType.getUnqualifiedType(), AS)); 4890 } 4891 break; 4892 case 2: 4893 // The third argument to compare_exchange / GNU exchange is the desired 4894 // value, either by-value (for the C11 and *_n variant) or as a pointer. 4895 if (IsPassedByAddress) 4896 CheckNonNullArgument(*this, APIOrderedArgs[i], ExprRange.getBegin()); 4897 Ty = ByValType; 4898 break; 4899 case 3: 4900 // The fourth argument to GNU compare_exchange is a 'weak' flag. 4901 Ty = Context.BoolTy; 4902 break; 4903 } 4904 } else { 4905 // The order(s) and scope are always converted to int. 4906 Ty = Context.IntTy; 4907 } 4908 4909 InitializedEntity Entity = 4910 InitializedEntity::InitializeParameter(Context, Ty, false); 4911 ExprResult Arg = APIOrderedArgs[i]; 4912 Arg = PerformCopyInitialization(Entity, SourceLocation(), Arg); 4913 if (Arg.isInvalid()) 4914 return true; 4915 APIOrderedArgs[i] = Arg.get(); 4916 } 4917 4918 // Permute the arguments into a 'consistent' order. 4919 SmallVector<Expr*, 5> SubExprs; 4920 SubExprs.push_back(Ptr); 4921 switch (Form) { 4922 case Init: 4923 // Note, AtomicExpr::getVal1() has a special case for this atomic. 4924 SubExprs.push_back(APIOrderedArgs[1]); // Val1 4925 break; 4926 case Load: 4927 SubExprs.push_back(APIOrderedArgs[1]); // Order 4928 break; 4929 case LoadCopy: 4930 case Copy: 4931 case Arithmetic: 4932 case Xchg: 4933 SubExprs.push_back(APIOrderedArgs[2]); // Order 4934 SubExprs.push_back(APIOrderedArgs[1]); // Val1 4935 break; 4936 case GNUXchg: 4937 // Note, AtomicExpr::getVal2() has a special case for this atomic. 4938 SubExprs.push_back(APIOrderedArgs[3]); // Order 4939 SubExprs.push_back(APIOrderedArgs[1]); // Val1 4940 SubExprs.push_back(APIOrderedArgs[2]); // Val2 4941 break; 4942 case C11CmpXchg: 4943 SubExprs.push_back(APIOrderedArgs[3]); // Order 4944 SubExprs.push_back(APIOrderedArgs[1]); // Val1 4945 SubExprs.push_back(APIOrderedArgs[4]); // OrderFail 4946 SubExprs.push_back(APIOrderedArgs[2]); // Val2 4947 break; 4948 case GNUCmpXchg: 4949 SubExprs.push_back(APIOrderedArgs[4]); // Order 4950 SubExprs.push_back(APIOrderedArgs[1]); // Val1 4951 SubExprs.push_back(APIOrderedArgs[5]); // OrderFail 4952 SubExprs.push_back(APIOrderedArgs[2]); // Val2 4953 SubExprs.push_back(APIOrderedArgs[3]); // Weak 4954 break; 4955 } 4956 4957 if (SubExprs.size() >= 2 && Form != Init) { 4958 llvm::APSInt Result(32); 4959 if (SubExprs[1]->isIntegerConstantExpr(Result, Context) && 4960 !isValidOrderingForOp(Result.getSExtValue(), Op)) 4961 Diag(SubExprs[1]->getBeginLoc(), 4962 diag::warn_atomic_op_has_invalid_memory_order) 4963 << SubExprs[1]->getSourceRange(); 4964 } 4965 4966 if (auto ScopeModel = AtomicExpr::getScopeModel(Op)) { 4967 auto *Scope = Args[Args.size() - 1]; 4968 llvm::APSInt Result(32); 4969 if (Scope->isIntegerConstantExpr(Result, Context) && 4970 !ScopeModel->isValid(Result.getZExtValue())) { 4971 Diag(Scope->getBeginLoc(), diag::err_atomic_op_has_invalid_synch_scope) 4972 << Scope->getSourceRange(); 4973 } 4974 SubExprs.push_back(Scope); 4975 } 4976 4977 AtomicExpr *AE = new (Context) 4978 AtomicExpr(ExprRange.getBegin(), SubExprs, ResultType, Op, RParenLoc); 4979 4980 if ((Op == AtomicExpr::AO__c11_atomic_load || 4981 Op == AtomicExpr::AO__c11_atomic_store || 4982 Op == AtomicExpr::AO__opencl_atomic_load || 4983 Op == AtomicExpr::AO__opencl_atomic_store ) && 4984 Context.AtomicUsesUnsupportedLibcall(AE)) 4985 Diag(AE->getBeginLoc(), diag::err_atomic_load_store_uses_lib) 4986 << ((Op == AtomicExpr::AO__c11_atomic_load || 4987 Op == AtomicExpr::AO__opencl_atomic_load) 4988 ? 0 4989 : 1); 4990 4991 return AE; 4992 } 4993 4994 /// checkBuiltinArgument - Given a call to a builtin function, perform 4995 /// normal type-checking on the given argument, updating the call in 4996 /// place. This is useful when a builtin function requires custom 4997 /// type-checking for some of its arguments but not necessarily all of 4998 /// them. 4999 /// 5000 /// Returns true on error. 5001 static bool checkBuiltinArgument(Sema &S, CallExpr *E, unsigned ArgIndex) { 5002 FunctionDecl *Fn = E->getDirectCallee(); 5003 assert(Fn && "builtin call without direct callee!"); 5004 5005 ParmVarDecl *Param = Fn->getParamDecl(ArgIndex); 5006 InitializedEntity Entity = 5007 InitializedEntity::InitializeParameter(S.Context, Param); 5008 5009 ExprResult Arg = E->getArg(0); 5010 Arg = S.PerformCopyInitialization(Entity, SourceLocation(), Arg); 5011 if (Arg.isInvalid()) 5012 return true; 5013 5014 E->setArg(ArgIndex, Arg.get()); 5015 return false; 5016 } 5017 5018 /// We have a call to a function like __sync_fetch_and_add, which is an 5019 /// overloaded function based on the pointer type of its first argument. 5020 /// The main BuildCallExpr routines have already promoted the types of 5021 /// arguments because all of these calls are prototyped as void(...). 5022 /// 5023 /// This function goes through and does final semantic checking for these 5024 /// builtins, as well as generating any warnings. 5025 ExprResult 5026 Sema::SemaBuiltinAtomicOverloaded(ExprResult TheCallResult) { 5027 CallExpr *TheCall = static_cast<CallExpr *>(TheCallResult.get()); 5028 Expr *Callee = TheCall->getCallee(); 5029 DeclRefExpr *DRE = cast<DeclRefExpr>(Callee->IgnoreParenCasts()); 5030 FunctionDecl *FDecl = cast<FunctionDecl>(DRE->getDecl()); 5031 5032 // Ensure that we have at least one argument to do type inference from. 5033 if (TheCall->getNumArgs() < 1) { 5034 Diag(TheCall->getEndLoc(), diag::err_typecheck_call_too_few_args_at_least) 5035 << 0 << 1 << TheCall->getNumArgs() << Callee->getSourceRange(); 5036 return ExprError(); 5037 } 5038 5039 // Inspect the first argument of the atomic builtin. This should always be 5040 // a pointer type, whose element is an integral scalar or pointer type. 5041 // Because it is a pointer type, we don't have to worry about any implicit 5042 // casts here. 5043 // FIXME: We don't allow floating point scalars as input. 5044 Expr *FirstArg = TheCall->getArg(0); 5045 ExprResult FirstArgResult = DefaultFunctionArrayLvalueConversion(FirstArg); 5046 if (FirstArgResult.isInvalid()) 5047 return ExprError(); 5048 FirstArg = FirstArgResult.get(); 5049 TheCall->setArg(0, FirstArg); 5050 5051 const PointerType *pointerType = FirstArg->getType()->getAs<PointerType>(); 5052 if (!pointerType) { 5053 Diag(DRE->getBeginLoc(), diag::err_atomic_builtin_must_be_pointer) 5054 << FirstArg->getType() << FirstArg->getSourceRange(); 5055 return ExprError(); 5056 } 5057 5058 QualType ValType = pointerType->getPointeeType(); 5059 if (!ValType->isIntegerType() && !ValType->isAnyPointerType() && 5060 !ValType->isBlockPointerType()) { 5061 Diag(DRE->getBeginLoc(), diag::err_atomic_builtin_must_be_pointer_intptr) 5062 << FirstArg->getType() << FirstArg->getSourceRange(); 5063 return ExprError(); 5064 } 5065 5066 if (ValType.isConstQualified()) { 5067 Diag(DRE->getBeginLoc(), diag::err_atomic_builtin_cannot_be_const) 5068 << FirstArg->getType() << FirstArg->getSourceRange(); 5069 return ExprError(); 5070 } 5071 5072 switch (ValType.getObjCLifetime()) { 5073 case Qualifiers::OCL_None: 5074 case Qualifiers::OCL_ExplicitNone: 5075 // okay 5076 break; 5077 5078 case Qualifiers::OCL_Weak: 5079 case Qualifiers::OCL_Strong: 5080 case Qualifiers::OCL_Autoreleasing: 5081 Diag(DRE->getBeginLoc(), diag::err_arc_atomic_ownership) 5082 << ValType << FirstArg->getSourceRange(); 5083 return ExprError(); 5084 } 5085 5086 // Strip any qualifiers off ValType. 5087 ValType = ValType.getUnqualifiedType(); 5088 5089 // The majority of builtins return a value, but a few have special return 5090 // types, so allow them to override appropriately below. 5091 QualType ResultType = ValType; 5092 5093 // We need to figure out which concrete builtin this maps onto. For example, 5094 // __sync_fetch_and_add with a 2 byte object turns into 5095 // __sync_fetch_and_add_2. 5096 #define BUILTIN_ROW(x) \ 5097 { Builtin::BI##x##_1, Builtin::BI##x##_2, Builtin::BI##x##_4, \ 5098 Builtin::BI##x##_8, Builtin::BI##x##_16 } 5099 5100 static const unsigned BuiltinIndices[][5] = { 5101 BUILTIN_ROW(__sync_fetch_and_add), 5102 BUILTIN_ROW(__sync_fetch_and_sub), 5103 BUILTIN_ROW(__sync_fetch_and_or), 5104 BUILTIN_ROW(__sync_fetch_and_and), 5105 BUILTIN_ROW(__sync_fetch_and_xor), 5106 BUILTIN_ROW(__sync_fetch_and_nand), 5107 5108 BUILTIN_ROW(__sync_add_and_fetch), 5109 BUILTIN_ROW(__sync_sub_and_fetch), 5110 BUILTIN_ROW(__sync_and_and_fetch), 5111 BUILTIN_ROW(__sync_or_and_fetch), 5112 BUILTIN_ROW(__sync_xor_and_fetch), 5113 BUILTIN_ROW(__sync_nand_and_fetch), 5114 5115 BUILTIN_ROW(__sync_val_compare_and_swap), 5116 BUILTIN_ROW(__sync_bool_compare_and_swap), 5117 BUILTIN_ROW(__sync_lock_test_and_set), 5118 BUILTIN_ROW(__sync_lock_release), 5119 BUILTIN_ROW(__sync_swap) 5120 }; 5121 #undef BUILTIN_ROW 5122 5123 // Determine the index of the size. 5124 unsigned SizeIndex; 5125 switch (Context.getTypeSizeInChars(ValType).getQuantity()) { 5126 case 1: SizeIndex = 0; break; 5127 case 2: SizeIndex = 1; break; 5128 case 4: SizeIndex = 2; break; 5129 case 8: SizeIndex = 3; break; 5130 case 16: SizeIndex = 4; break; 5131 default: 5132 Diag(DRE->getBeginLoc(), diag::err_atomic_builtin_pointer_size) 5133 << FirstArg->getType() << FirstArg->getSourceRange(); 5134 return ExprError(); 5135 } 5136 5137 // Each of these builtins has one pointer argument, followed by some number of 5138 // values (0, 1 or 2) followed by a potentially empty varags list of stuff 5139 // that we ignore. Find out which row of BuiltinIndices to read from as well 5140 // as the number of fixed args. 5141 unsigned BuiltinID = FDecl->getBuiltinID(); 5142 unsigned BuiltinIndex, NumFixed = 1; 5143 bool WarnAboutSemanticsChange = false; 5144 switch (BuiltinID) { 5145 default: llvm_unreachable("Unknown overloaded atomic builtin!"); 5146 case Builtin::BI__sync_fetch_and_add: 5147 case Builtin::BI__sync_fetch_and_add_1: 5148 case Builtin::BI__sync_fetch_and_add_2: 5149 case Builtin::BI__sync_fetch_and_add_4: 5150 case Builtin::BI__sync_fetch_and_add_8: 5151 case Builtin::BI__sync_fetch_and_add_16: 5152 BuiltinIndex = 0; 5153 break; 5154 5155 case Builtin::BI__sync_fetch_and_sub: 5156 case Builtin::BI__sync_fetch_and_sub_1: 5157 case Builtin::BI__sync_fetch_and_sub_2: 5158 case Builtin::BI__sync_fetch_and_sub_4: 5159 case Builtin::BI__sync_fetch_and_sub_8: 5160 case Builtin::BI__sync_fetch_and_sub_16: 5161 BuiltinIndex = 1; 5162 break; 5163 5164 case Builtin::BI__sync_fetch_and_or: 5165 case Builtin::BI__sync_fetch_and_or_1: 5166 case Builtin::BI__sync_fetch_and_or_2: 5167 case Builtin::BI__sync_fetch_and_or_4: 5168 case Builtin::BI__sync_fetch_and_or_8: 5169 case Builtin::BI__sync_fetch_and_or_16: 5170 BuiltinIndex = 2; 5171 break; 5172 5173 case Builtin::BI__sync_fetch_and_and: 5174 case Builtin::BI__sync_fetch_and_and_1: 5175 case Builtin::BI__sync_fetch_and_and_2: 5176 case Builtin::BI__sync_fetch_and_and_4: 5177 case Builtin::BI__sync_fetch_and_and_8: 5178 case Builtin::BI__sync_fetch_and_and_16: 5179 BuiltinIndex = 3; 5180 break; 5181 5182 case Builtin::BI__sync_fetch_and_xor: 5183 case Builtin::BI__sync_fetch_and_xor_1: 5184 case Builtin::BI__sync_fetch_and_xor_2: 5185 case Builtin::BI__sync_fetch_and_xor_4: 5186 case Builtin::BI__sync_fetch_and_xor_8: 5187 case Builtin::BI__sync_fetch_and_xor_16: 5188 BuiltinIndex = 4; 5189 break; 5190 5191 case Builtin::BI__sync_fetch_and_nand: 5192 case Builtin::BI__sync_fetch_and_nand_1: 5193 case Builtin::BI__sync_fetch_and_nand_2: 5194 case Builtin::BI__sync_fetch_and_nand_4: 5195 case Builtin::BI__sync_fetch_and_nand_8: 5196 case Builtin::BI__sync_fetch_and_nand_16: 5197 BuiltinIndex = 5; 5198 WarnAboutSemanticsChange = true; 5199 break; 5200 5201 case Builtin::BI__sync_add_and_fetch: 5202 case Builtin::BI__sync_add_and_fetch_1: 5203 case Builtin::BI__sync_add_and_fetch_2: 5204 case Builtin::BI__sync_add_and_fetch_4: 5205 case Builtin::BI__sync_add_and_fetch_8: 5206 case Builtin::BI__sync_add_and_fetch_16: 5207 BuiltinIndex = 6; 5208 break; 5209 5210 case Builtin::BI__sync_sub_and_fetch: 5211 case Builtin::BI__sync_sub_and_fetch_1: 5212 case Builtin::BI__sync_sub_and_fetch_2: 5213 case Builtin::BI__sync_sub_and_fetch_4: 5214 case Builtin::BI__sync_sub_and_fetch_8: 5215 case Builtin::BI__sync_sub_and_fetch_16: 5216 BuiltinIndex = 7; 5217 break; 5218 5219 case Builtin::BI__sync_and_and_fetch: 5220 case Builtin::BI__sync_and_and_fetch_1: 5221 case Builtin::BI__sync_and_and_fetch_2: 5222 case Builtin::BI__sync_and_and_fetch_4: 5223 case Builtin::BI__sync_and_and_fetch_8: 5224 case Builtin::BI__sync_and_and_fetch_16: 5225 BuiltinIndex = 8; 5226 break; 5227 5228 case Builtin::BI__sync_or_and_fetch: 5229 case Builtin::BI__sync_or_and_fetch_1: 5230 case Builtin::BI__sync_or_and_fetch_2: 5231 case Builtin::BI__sync_or_and_fetch_4: 5232 case Builtin::BI__sync_or_and_fetch_8: 5233 case Builtin::BI__sync_or_and_fetch_16: 5234 BuiltinIndex = 9; 5235 break; 5236 5237 case Builtin::BI__sync_xor_and_fetch: 5238 case Builtin::BI__sync_xor_and_fetch_1: 5239 case Builtin::BI__sync_xor_and_fetch_2: 5240 case Builtin::BI__sync_xor_and_fetch_4: 5241 case Builtin::BI__sync_xor_and_fetch_8: 5242 case Builtin::BI__sync_xor_and_fetch_16: 5243 BuiltinIndex = 10; 5244 break; 5245 5246 case Builtin::BI__sync_nand_and_fetch: 5247 case Builtin::BI__sync_nand_and_fetch_1: 5248 case Builtin::BI__sync_nand_and_fetch_2: 5249 case Builtin::BI__sync_nand_and_fetch_4: 5250 case Builtin::BI__sync_nand_and_fetch_8: 5251 case Builtin::BI__sync_nand_and_fetch_16: 5252 BuiltinIndex = 11; 5253 WarnAboutSemanticsChange = true; 5254 break; 5255 5256 case Builtin::BI__sync_val_compare_and_swap: 5257 case Builtin::BI__sync_val_compare_and_swap_1: 5258 case Builtin::BI__sync_val_compare_and_swap_2: 5259 case Builtin::BI__sync_val_compare_and_swap_4: 5260 case Builtin::BI__sync_val_compare_and_swap_8: 5261 case Builtin::BI__sync_val_compare_and_swap_16: 5262 BuiltinIndex = 12; 5263 NumFixed = 2; 5264 break; 5265 5266 case Builtin::BI__sync_bool_compare_and_swap: 5267 case Builtin::BI__sync_bool_compare_and_swap_1: 5268 case Builtin::BI__sync_bool_compare_and_swap_2: 5269 case Builtin::BI__sync_bool_compare_and_swap_4: 5270 case Builtin::BI__sync_bool_compare_and_swap_8: 5271 case Builtin::BI__sync_bool_compare_and_swap_16: 5272 BuiltinIndex = 13; 5273 NumFixed = 2; 5274 ResultType = Context.BoolTy; 5275 break; 5276 5277 case Builtin::BI__sync_lock_test_and_set: 5278 case Builtin::BI__sync_lock_test_and_set_1: 5279 case Builtin::BI__sync_lock_test_and_set_2: 5280 case Builtin::BI__sync_lock_test_and_set_4: 5281 case Builtin::BI__sync_lock_test_and_set_8: 5282 case Builtin::BI__sync_lock_test_and_set_16: 5283 BuiltinIndex = 14; 5284 break; 5285 5286 case Builtin::BI__sync_lock_release: 5287 case Builtin::BI__sync_lock_release_1: 5288 case Builtin::BI__sync_lock_release_2: 5289 case Builtin::BI__sync_lock_release_4: 5290 case Builtin::BI__sync_lock_release_8: 5291 case Builtin::BI__sync_lock_release_16: 5292 BuiltinIndex = 15; 5293 NumFixed = 0; 5294 ResultType = Context.VoidTy; 5295 break; 5296 5297 case Builtin::BI__sync_swap: 5298 case Builtin::BI__sync_swap_1: 5299 case Builtin::BI__sync_swap_2: 5300 case Builtin::BI__sync_swap_4: 5301 case Builtin::BI__sync_swap_8: 5302 case Builtin::BI__sync_swap_16: 5303 BuiltinIndex = 16; 5304 break; 5305 } 5306 5307 // Now that we know how many fixed arguments we expect, first check that we 5308 // have at least that many. 5309 if (TheCall->getNumArgs() < 1+NumFixed) { 5310 Diag(TheCall->getEndLoc(), diag::err_typecheck_call_too_few_args_at_least) 5311 << 0 << 1 + NumFixed << TheCall->getNumArgs() 5312 << Callee->getSourceRange(); 5313 return ExprError(); 5314 } 5315 5316 Diag(TheCall->getEndLoc(), diag::warn_atomic_implicit_seq_cst) 5317 << Callee->getSourceRange(); 5318 5319 if (WarnAboutSemanticsChange) { 5320 Diag(TheCall->getEndLoc(), diag::warn_sync_fetch_and_nand_semantics_change) 5321 << Callee->getSourceRange(); 5322 } 5323 5324 // Get the decl for the concrete builtin from this, we can tell what the 5325 // concrete integer type we should convert to is. 5326 unsigned NewBuiltinID = BuiltinIndices[BuiltinIndex][SizeIndex]; 5327 const char *NewBuiltinName = Context.BuiltinInfo.getName(NewBuiltinID); 5328 FunctionDecl *NewBuiltinDecl; 5329 if (NewBuiltinID == BuiltinID) 5330 NewBuiltinDecl = FDecl; 5331 else { 5332 // Perform builtin lookup to avoid redeclaring it. 5333 DeclarationName DN(&Context.Idents.get(NewBuiltinName)); 5334 LookupResult Res(*this, DN, DRE->getBeginLoc(), LookupOrdinaryName); 5335 LookupName(Res, TUScope, /*AllowBuiltinCreation=*/true); 5336 assert(Res.getFoundDecl()); 5337 NewBuiltinDecl = dyn_cast<FunctionDecl>(Res.getFoundDecl()); 5338 if (!NewBuiltinDecl) 5339 return ExprError(); 5340 } 5341 5342 // The first argument --- the pointer --- has a fixed type; we 5343 // deduce the types of the rest of the arguments accordingly. Walk 5344 // the remaining arguments, converting them to the deduced value type. 5345 for (unsigned i = 0; i != NumFixed; ++i) { 5346 ExprResult Arg = TheCall->getArg(i+1); 5347 5348 // GCC does an implicit conversion to the pointer or integer ValType. This 5349 // can fail in some cases (1i -> int**), check for this error case now. 5350 // Initialize the argument. 5351 InitializedEntity Entity = InitializedEntity::InitializeParameter(Context, 5352 ValType, /*consume*/ false); 5353 Arg = PerformCopyInitialization(Entity, SourceLocation(), Arg); 5354 if (Arg.isInvalid()) 5355 return ExprError(); 5356 5357 // Okay, we have something that *can* be converted to the right type. Check 5358 // to see if there is a potentially weird extension going on here. This can 5359 // happen when you do an atomic operation on something like an char* and 5360 // pass in 42. The 42 gets converted to char. This is even more strange 5361 // for things like 45.123 -> char, etc. 5362 // FIXME: Do this check. 5363 TheCall->setArg(i+1, Arg.get()); 5364 } 5365 5366 // Create a new DeclRefExpr to refer to the new decl. 5367 DeclRefExpr *NewDRE = DeclRefExpr::Create( 5368 Context, DRE->getQualifierLoc(), SourceLocation(), NewBuiltinDecl, 5369 /*enclosing*/ false, DRE->getLocation(), Context.BuiltinFnTy, 5370 DRE->getValueKind(), nullptr, nullptr, DRE->isNonOdrUse()); 5371 5372 // Set the callee in the CallExpr. 5373 // FIXME: This loses syntactic information. 5374 QualType CalleePtrTy = Context.getPointerType(NewBuiltinDecl->getType()); 5375 ExprResult PromotedCall = ImpCastExprToType(NewDRE, CalleePtrTy, 5376 CK_BuiltinFnToFnPtr); 5377 TheCall->setCallee(PromotedCall.get()); 5378 5379 // Change the result type of the call to match the original value type. This 5380 // is arbitrary, but the codegen for these builtins ins design to handle it 5381 // gracefully. 5382 TheCall->setType(ResultType); 5383 5384 return TheCallResult; 5385 } 5386 5387 /// SemaBuiltinNontemporalOverloaded - We have a call to 5388 /// __builtin_nontemporal_store or __builtin_nontemporal_load, which is an 5389 /// overloaded function based on the pointer type of its last argument. 5390 /// 5391 /// This function goes through and does final semantic checking for these 5392 /// builtins. 5393 ExprResult Sema::SemaBuiltinNontemporalOverloaded(ExprResult TheCallResult) { 5394 CallExpr *TheCall = (CallExpr *)TheCallResult.get(); 5395 DeclRefExpr *DRE = 5396 cast<DeclRefExpr>(TheCall->getCallee()->IgnoreParenCasts()); 5397 FunctionDecl *FDecl = cast<FunctionDecl>(DRE->getDecl()); 5398 unsigned BuiltinID = FDecl->getBuiltinID(); 5399 assert((BuiltinID == Builtin::BI__builtin_nontemporal_store || 5400 BuiltinID == Builtin::BI__builtin_nontemporal_load) && 5401 "Unexpected nontemporal load/store builtin!"); 5402 bool isStore = BuiltinID == Builtin::BI__builtin_nontemporal_store; 5403 unsigned numArgs = isStore ? 2 : 1; 5404 5405 // Ensure that we have the proper number of arguments. 5406 if (checkArgCount(*this, TheCall, numArgs)) 5407 return ExprError(); 5408 5409 // Inspect the last argument of the nontemporal builtin. This should always 5410 // be a pointer type, from which we imply the type of the memory access. 5411 // Because it is a pointer type, we don't have to worry about any implicit 5412 // casts here. 5413 Expr *PointerArg = TheCall->getArg(numArgs - 1); 5414 ExprResult PointerArgResult = 5415 DefaultFunctionArrayLvalueConversion(PointerArg); 5416 5417 if (PointerArgResult.isInvalid()) 5418 return ExprError(); 5419 PointerArg = PointerArgResult.get(); 5420 TheCall->setArg(numArgs - 1, PointerArg); 5421 5422 const PointerType *pointerType = PointerArg->getType()->getAs<PointerType>(); 5423 if (!pointerType) { 5424 Diag(DRE->getBeginLoc(), diag::err_nontemporal_builtin_must_be_pointer) 5425 << PointerArg->getType() << PointerArg->getSourceRange(); 5426 return ExprError(); 5427 } 5428 5429 QualType ValType = pointerType->getPointeeType(); 5430 5431 // Strip any qualifiers off ValType. 5432 ValType = ValType.getUnqualifiedType(); 5433 if (!ValType->isIntegerType() && !ValType->isAnyPointerType() && 5434 !ValType->isBlockPointerType() && !ValType->isFloatingType() && 5435 !ValType->isVectorType()) { 5436 Diag(DRE->getBeginLoc(), 5437 diag::err_nontemporal_builtin_must_be_pointer_intfltptr_or_vector) 5438 << PointerArg->getType() << PointerArg->getSourceRange(); 5439 return ExprError(); 5440 } 5441 5442 if (!isStore) { 5443 TheCall->setType(ValType); 5444 return TheCallResult; 5445 } 5446 5447 ExprResult ValArg = TheCall->getArg(0); 5448 InitializedEntity Entity = InitializedEntity::InitializeParameter( 5449 Context, ValType, /*consume*/ false); 5450 ValArg = PerformCopyInitialization(Entity, SourceLocation(), ValArg); 5451 if (ValArg.isInvalid()) 5452 return ExprError(); 5453 5454 TheCall->setArg(0, ValArg.get()); 5455 TheCall->setType(Context.VoidTy); 5456 return TheCallResult; 5457 } 5458 5459 /// CheckObjCString - Checks that the argument to the builtin 5460 /// CFString constructor is correct 5461 /// Note: It might also make sense to do the UTF-16 conversion here (would 5462 /// simplify the backend). 5463 bool Sema::CheckObjCString(Expr *Arg) { 5464 Arg = Arg->IgnoreParenCasts(); 5465 StringLiteral *Literal = dyn_cast<StringLiteral>(Arg); 5466 5467 if (!Literal || !Literal->isAscii()) { 5468 Diag(Arg->getBeginLoc(), diag::err_cfstring_literal_not_string_constant) 5469 << Arg->getSourceRange(); 5470 return true; 5471 } 5472 5473 if (Literal->containsNonAsciiOrNull()) { 5474 StringRef String = Literal->getString(); 5475 unsigned NumBytes = String.size(); 5476 SmallVector<llvm::UTF16, 128> ToBuf(NumBytes); 5477 const llvm::UTF8 *FromPtr = (const llvm::UTF8 *)String.data(); 5478 llvm::UTF16 *ToPtr = &ToBuf[0]; 5479 5480 llvm::ConversionResult Result = 5481 llvm::ConvertUTF8toUTF16(&FromPtr, FromPtr + NumBytes, &ToPtr, 5482 ToPtr + NumBytes, llvm::strictConversion); 5483 // Check for conversion failure. 5484 if (Result != llvm::conversionOK) 5485 Diag(Arg->getBeginLoc(), diag::warn_cfstring_truncated) 5486 << Arg->getSourceRange(); 5487 } 5488 return false; 5489 } 5490 5491 /// CheckObjCString - Checks that the format string argument to the os_log() 5492 /// and os_trace() functions is correct, and converts it to const char *. 5493 ExprResult Sema::CheckOSLogFormatStringArg(Expr *Arg) { 5494 Arg = Arg->IgnoreParenCasts(); 5495 auto *Literal = dyn_cast<StringLiteral>(Arg); 5496 if (!Literal) { 5497 if (auto *ObjcLiteral = dyn_cast<ObjCStringLiteral>(Arg)) { 5498 Literal = ObjcLiteral->getString(); 5499 } 5500 } 5501 5502 if (!Literal || (!Literal->isAscii() && !Literal->isUTF8())) { 5503 return ExprError( 5504 Diag(Arg->getBeginLoc(), diag::err_os_log_format_not_string_constant) 5505 << Arg->getSourceRange()); 5506 } 5507 5508 ExprResult Result(Literal); 5509 QualType ResultTy = Context.getPointerType(Context.CharTy.withConst()); 5510 InitializedEntity Entity = 5511 InitializedEntity::InitializeParameter(Context, ResultTy, false); 5512 Result = PerformCopyInitialization(Entity, SourceLocation(), Result); 5513 return Result; 5514 } 5515 5516 /// Check that the user is calling the appropriate va_start builtin for the 5517 /// target and calling convention. 5518 static bool checkVAStartABI(Sema &S, unsigned BuiltinID, Expr *Fn) { 5519 const llvm::Triple &TT = S.Context.getTargetInfo().getTriple(); 5520 bool IsX64 = TT.getArch() == llvm::Triple::x86_64; 5521 bool IsAArch64 = (TT.getArch() == llvm::Triple::aarch64 || 5522 TT.getArch() == llvm::Triple::aarch64_32); 5523 bool IsWindows = TT.isOSWindows(); 5524 bool IsMSVAStart = BuiltinID == Builtin::BI__builtin_ms_va_start; 5525 if (IsX64 || IsAArch64) { 5526 CallingConv CC = CC_C; 5527 if (const FunctionDecl *FD = S.getCurFunctionDecl()) 5528 CC = FD->getType()->castAs<FunctionType>()->getCallConv(); 5529 if (IsMSVAStart) { 5530 // Don't allow this in System V ABI functions. 5531 if (CC == CC_X86_64SysV || (!IsWindows && CC != CC_Win64)) 5532 return S.Diag(Fn->getBeginLoc(), 5533 diag::err_ms_va_start_used_in_sysv_function); 5534 } else { 5535 // On x86-64/AArch64 Unix, don't allow this in Win64 ABI functions. 5536 // On x64 Windows, don't allow this in System V ABI functions. 5537 // (Yes, that means there's no corresponding way to support variadic 5538 // System V ABI functions on Windows.) 5539 if ((IsWindows && CC == CC_X86_64SysV) || 5540 (!IsWindows && CC == CC_Win64)) 5541 return S.Diag(Fn->getBeginLoc(), 5542 diag::err_va_start_used_in_wrong_abi_function) 5543 << !IsWindows; 5544 } 5545 return false; 5546 } 5547 5548 if (IsMSVAStart) 5549 return S.Diag(Fn->getBeginLoc(), diag::err_builtin_x64_aarch64_only); 5550 return false; 5551 } 5552 5553 static bool checkVAStartIsInVariadicFunction(Sema &S, Expr *Fn, 5554 ParmVarDecl **LastParam = nullptr) { 5555 // Determine whether the current function, block, or obj-c method is variadic 5556 // and get its parameter list. 5557 bool IsVariadic = false; 5558 ArrayRef<ParmVarDecl *> Params; 5559 DeclContext *Caller = S.CurContext; 5560 if (auto *Block = dyn_cast<BlockDecl>(Caller)) { 5561 IsVariadic = Block->isVariadic(); 5562 Params = Block->parameters(); 5563 } else if (auto *FD = dyn_cast<FunctionDecl>(Caller)) { 5564 IsVariadic = FD->isVariadic(); 5565 Params = FD->parameters(); 5566 } else if (auto *MD = dyn_cast<ObjCMethodDecl>(Caller)) { 5567 IsVariadic = MD->isVariadic(); 5568 // FIXME: This isn't correct for methods (results in bogus warning). 5569 Params = MD->parameters(); 5570 } else if (isa<CapturedDecl>(Caller)) { 5571 // We don't support va_start in a CapturedDecl. 5572 S.Diag(Fn->getBeginLoc(), diag::err_va_start_captured_stmt); 5573 return true; 5574 } else { 5575 // This must be some other declcontext that parses exprs. 5576 S.Diag(Fn->getBeginLoc(), diag::err_va_start_outside_function); 5577 return true; 5578 } 5579 5580 if (!IsVariadic) { 5581 S.Diag(Fn->getBeginLoc(), diag::err_va_start_fixed_function); 5582 return true; 5583 } 5584 5585 if (LastParam) 5586 *LastParam = Params.empty() ? nullptr : Params.back(); 5587 5588 return false; 5589 } 5590 5591 /// Check the arguments to '__builtin_va_start' or '__builtin_ms_va_start' 5592 /// for validity. Emit an error and return true on failure; return false 5593 /// on success. 5594 bool Sema::SemaBuiltinVAStart(unsigned BuiltinID, CallExpr *TheCall) { 5595 Expr *Fn = TheCall->getCallee(); 5596 5597 if (checkVAStartABI(*this, BuiltinID, Fn)) 5598 return true; 5599 5600 if (TheCall->getNumArgs() > 2) { 5601 Diag(TheCall->getArg(2)->getBeginLoc(), 5602 diag::err_typecheck_call_too_many_args) 5603 << 0 /*function call*/ << 2 << TheCall->getNumArgs() 5604 << Fn->getSourceRange() 5605 << SourceRange(TheCall->getArg(2)->getBeginLoc(), 5606 (*(TheCall->arg_end() - 1))->getEndLoc()); 5607 return true; 5608 } 5609 5610 if (TheCall->getNumArgs() < 2) { 5611 return Diag(TheCall->getEndLoc(), 5612 diag::err_typecheck_call_too_few_args_at_least) 5613 << 0 /*function call*/ << 2 << TheCall->getNumArgs(); 5614 } 5615 5616 // Type-check the first argument normally. 5617 if (checkBuiltinArgument(*this, TheCall, 0)) 5618 return true; 5619 5620 // Check that the current function is variadic, and get its last parameter. 5621 ParmVarDecl *LastParam; 5622 if (checkVAStartIsInVariadicFunction(*this, Fn, &LastParam)) 5623 return true; 5624 5625 // Verify that the second argument to the builtin is the last argument of the 5626 // current function or method. 5627 bool SecondArgIsLastNamedArgument = false; 5628 const Expr *Arg = TheCall->getArg(1)->IgnoreParenCasts(); 5629 5630 // These are valid if SecondArgIsLastNamedArgument is false after the next 5631 // block. 5632 QualType Type; 5633 SourceLocation ParamLoc; 5634 bool IsCRegister = false; 5635 5636 if (const DeclRefExpr *DR = dyn_cast<DeclRefExpr>(Arg)) { 5637 if (const ParmVarDecl *PV = dyn_cast<ParmVarDecl>(DR->getDecl())) { 5638 SecondArgIsLastNamedArgument = PV == LastParam; 5639 5640 Type = PV->getType(); 5641 ParamLoc = PV->getLocation(); 5642 IsCRegister = 5643 PV->getStorageClass() == SC_Register && !getLangOpts().CPlusPlus; 5644 } 5645 } 5646 5647 if (!SecondArgIsLastNamedArgument) 5648 Diag(TheCall->getArg(1)->getBeginLoc(), 5649 diag::warn_second_arg_of_va_start_not_last_named_param); 5650 else if (IsCRegister || Type->isReferenceType() || 5651 Type->isSpecificBuiltinType(BuiltinType::Float) || [=] { 5652 // Promotable integers are UB, but enumerations need a bit of 5653 // extra checking to see what their promotable type actually is. 5654 if (!Type->isPromotableIntegerType()) 5655 return false; 5656 if (!Type->isEnumeralType()) 5657 return true; 5658 const EnumDecl *ED = Type->castAs<EnumType>()->getDecl(); 5659 return !(ED && 5660 Context.typesAreCompatible(ED->getPromotionType(), Type)); 5661 }()) { 5662 unsigned Reason = 0; 5663 if (Type->isReferenceType()) Reason = 1; 5664 else if (IsCRegister) Reason = 2; 5665 Diag(Arg->getBeginLoc(), diag::warn_va_start_type_is_undefined) << Reason; 5666 Diag(ParamLoc, diag::note_parameter_type) << Type; 5667 } 5668 5669 TheCall->setType(Context.VoidTy); 5670 return false; 5671 } 5672 5673 bool Sema::SemaBuiltinVAStartARMMicrosoft(CallExpr *Call) { 5674 // void __va_start(va_list *ap, const char *named_addr, size_t slot_size, 5675 // const char *named_addr); 5676 5677 Expr *Func = Call->getCallee(); 5678 5679 if (Call->getNumArgs() < 3) 5680 return Diag(Call->getEndLoc(), 5681 diag::err_typecheck_call_too_few_args_at_least) 5682 << 0 /*function call*/ << 3 << Call->getNumArgs(); 5683 5684 // Type-check the first argument normally. 5685 if (checkBuiltinArgument(*this, Call, 0)) 5686 return true; 5687 5688 // Check that the current function is variadic. 5689 if (checkVAStartIsInVariadicFunction(*this, Func)) 5690 return true; 5691 5692 // __va_start on Windows does not validate the parameter qualifiers 5693 5694 const Expr *Arg1 = Call->getArg(1)->IgnoreParens(); 5695 const Type *Arg1Ty = Arg1->getType().getCanonicalType().getTypePtr(); 5696 5697 const Expr *Arg2 = Call->getArg(2)->IgnoreParens(); 5698 const Type *Arg2Ty = Arg2->getType().getCanonicalType().getTypePtr(); 5699 5700 const QualType &ConstCharPtrTy = 5701 Context.getPointerType(Context.CharTy.withConst()); 5702 if (!Arg1Ty->isPointerType() || 5703 Arg1Ty->getPointeeType().withoutLocalFastQualifiers() != Context.CharTy) 5704 Diag(Arg1->getBeginLoc(), diag::err_typecheck_convert_incompatible) 5705 << Arg1->getType() << ConstCharPtrTy << 1 /* different class */ 5706 << 0 /* qualifier difference */ 5707 << 3 /* parameter mismatch */ 5708 << 2 << Arg1->getType() << ConstCharPtrTy; 5709 5710 const QualType SizeTy = Context.getSizeType(); 5711 if (Arg2Ty->getCanonicalTypeInternal().withoutLocalFastQualifiers() != SizeTy) 5712 Diag(Arg2->getBeginLoc(), diag::err_typecheck_convert_incompatible) 5713 << Arg2->getType() << SizeTy << 1 /* different class */ 5714 << 0 /* qualifier difference */ 5715 << 3 /* parameter mismatch */ 5716 << 3 << Arg2->getType() << SizeTy; 5717 5718 return false; 5719 } 5720 5721 /// SemaBuiltinUnorderedCompare - Handle functions like __builtin_isgreater and 5722 /// friends. This is declared to take (...), so we have to check everything. 5723 bool Sema::SemaBuiltinUnorderedCompare(CallExpr *TheCall) { 5724 if (TheCall->getNumArgs() < 2) 5725 return Diag(TheCall->getEndLoc(), diag::err_typecheck_call_too_few_args) 5726 << 0 << 2 << TheCall->getNumArgs() /*function call*/; 5727 if (TheCall->getNumArgs() > 2) 5728 return Diag(TheCall->getArg(2)->getBeginLoc(), 5729 diag::err_typecheck_call_too_many_args) 5730 << 0 /*function call*/ << 2 << TheCall->getNumArgs() 5731 << SourceRange(TheCall->getArg(2)->getBeginLoc(), 5732 (*(TheCall->arg_end() - 1))->getEndLoc()); 5733 5734 ExprResult OrigArg0 = TheCall->getArg(0); 5735 ExprResult OrigArg1 = TheCall->getArg(1); 5736 5737 // Do standard promotions between the two arguments, returning their common 5738 // type. 5739 QualType Res = UsualArithmeticConversions(OrigArg0, OrigArg1, false); 5740 if (OrigArg0.isInvalid() || OrigArg1.isInvalid()) 5741 return true; 5742 5743 // Make sure any conversions are pushed back into the call; this is 5744 // type safe since unordered compare builtins are declared as "_Bool 5745 // foo(...)". 5746 TheCall->setArg(0, OrigArg0.get()); 5747 TheCall->setArg(1, OrigArg1.get()); 5748 5749 if (OrigArg0.get()->isTypeDependent() || OrigArg1.get()->isTypeDependent()) 5750 return false; 5751 5752 // If the common type isn't a real floating type, then the arguments were 5753 // invalid for this operation. 5754 if (Res.isNull() || !Res->isRealFloatingType()) 5755 return Diag(OrigArg0.get()->getBeginLoc(), 5756 diag::err_typecheck_call_invalid_ordered_compare) 5757 << OrigArg0.get()->getType() << OrigArg1.get()->getType() 5758 << SourceRange(OrigArg0.get()->getBeginLoc(), 5759 OrigArg1.get()->getEndLoc()); 5760 5761 return false; 5762 } 5763 5764 /// SemaBuiltinSemaBuiltinFPClassification - Handle functions like 5765 /// __builtin_isnan and friends. This is declared to take (...), so we have 5766 /// to check everything. We expect the last argument to be a floating point 5767 /// value. 5768 bool Sema::SemaBuiltinFPClassification(CallExpr *TheCall, unsigned NumArgs) { 5769 if (TheCall->getNumArgs() < NumArgs) 5770 return Diag(TheCall->getEndLoc(), diag::err_typecheck_call_too_few_args) 5771 << 0 << NumArgs << TheCall->getNumArgs() /*function call*/; 5772 if (TheCall->getNumArgs() > NumArgs) 5773 return Diag(TheCall->getArg(NumArgs)->getBeginLoc(), 5774 diag::err_typecheck_call_too_many_args) 5775 << 0 /*function call*/ << NumArgs << TheCall->getNumArgs() 5776 << SourceRange(TheCall->getArg(NumArgs)->getBeginLoc(), 5777 (*(TheCall->arg_end() - 1))->getEndLoc()); 5778 5779 Expr *OrigArg = TheCall->getArg(NumArgs-1); 5780 5781 if (OrigArg->isTypeDependent()) 5782 return false; 5783 5784 // This operation requires a non-_Complex floating-point number. 5785 if (!OrigArg->getType()->isRealFloatingType()) 5786 return Diag(OrigArg->getBeginLoc(), 5787 diag::err_typecheck_call_invalid_unary_fp) 5788 << OrigArg->getType() << OrigArg->getSourceRange(); 5789 5790 // If this is an implicit conversion from float -> float, double, or 5791 // long double, remove it. 5792 if (ImplicitCastExpr *Cast = dyn_cast<ImplicitCastExpr>(OrigArg)) { 5793 // Only remove standard FloatCasts, leaving other casts inplace 5794 if (Cast->getCastKind() == CK_FloatingCast) { 5795 Expr *CastArg = Cast->getSubExpr(); 5796 if (CastArg->getType()->isSpecificBuiltinType(BuiltinType::Float)) { 5797 assert( 5798 (Cast->getType()->isSpecificBuiltinType(BuiltinType::Double) || 5799 Cast->getType()->isSpecificBuiltinType(BuiltinType::Float) || 5800 Cast->getType()->isSpecificBuiltinType(BuiltinType::LongDouble)) && 5801 "promotion from float to either float, double, or long double is " 5802 "the only expected cast here"); 5803 Cast->setSubExpr(nullptr); 5804 TheCall->setArg(NumArgs-1, CastArg); 5805 } 5806 } 5807 } 5808 5809 return false; 5810 } 5811 5812 // Customized Sema Checking for VSX builtins that have the following signature: 5813 // vector [...] builtinName(vector [...], vector [...], const int); 5814 // Which takes the same type of vectors (any legal vector type) for the first 5815 // two arguments and takes compile time constant for the third argument. 5816 // Example builtins are : 5817 // vector double vec_xxpermdi(vector double, vector double, int); 5818 // vector short vec_xxsldwi(vector short, vector short, int); 5819 bool Sema::SemaBuiltinVSX(CallExpr *TheCall) { 5820 unsigned ExpectedNumArgs = 3; 5821 if (TheCall->getNumArgs() < ExpectedNumArgs) 5822 return Diag(TheCall->getEndLoc(), 5823 diag::err_typecheck_call_too_few_args_at_least) 5824 << 0 /*function call*/ << ExpectedNumArgs << TheCall->getNumArgs() 5825 << TheCall->getSourceRange(); 5826 5827 if (TheCall->getNumArgs() > ExpectedNumArgs) 5828 return Diag(TheCall->getEndLoc(), 5829 diag::err_typecheck_call_too_many_args_at_most) 5830 << 0 /*function call*/ << ExpectedNumArgs << TheCall->getNumArgs() 5831 << TheCall->getSourceRange(); 5832 5833 // Check the third argument is a compile time constant 5834 llvm::APSInt Value; 5835 if(!TheCall->getArg(2)->isIntegerConstantExpr(Value, Context)) 5836 return Diag(TheCall->getBeginLoc(), 5837 diag::err_vsx_builtin_nonconstant_argument) 5838 << 3 /* argument index */ << TheCall->getDirectCallee() 5839 << SourceRange(TheCall->getArg(2)->getBeginLoc(), 5840 TheCall->getArg(2)->getEndLoc()); 5841 5842 QualType Arg1Ty = TheCall->getArg(0)->getType(); 5843 QualType Arg2Ty = TheCall->getArg(1)->getType(); 5844 5845 // Check the type of argument 1 and argument 2 are vectors. 5846 SourceLocation BuiltinLoc = TheCall->getBeginLoc(); 5847 if ((!Arg1Ty->isVectorType() && !Arg1Ty->isDependentType()) || 5848 (!Arg2Ty->isVectorType() && !Arg2Ty->isDependentType())) { 5849 return Diag(BuiltinLoc, diag::err_vec_builtin_non_vector) 5850 << TheCall->getDirectCallee() 5851 << SourceRange(TheCall->getArg(0)->getBeginLoc(), 5852 TheCall->getArg(1)->getEndLoc()); 5853 } 5854 5855 // Check the first two arguments are the same type. 5856 if (!Context.hasSameUnqualifiedType(Arg1Ty, Arg2Ty)) { 5857 return Diag(BuiltinLoc, diag::err_vec_builtin_incompatible_vector) 5858 << TheCall->getDirectCallee() 5859 << SourceRange(TheCall->getArg(0)->getBeginLoc(), 5860 TheCall->getArg(1)->getEndLoc()); 5861 } 5862 5863 // When default clang type checking is turned off and the customized type 5864 // checking is used, the returning type of the function must be explicitly 5865 // set. Otherwise it is _Bool by default. 5866 TheCall->setType(Arg1Ty); 5867 5868 return false; 5869 } 5870 5871 /// SemaBuiltinShuffleVector - Handle __builtin_shufflevector. 5872 // This is declared to take (...), so we have to check everything. 5873 ExprResult Sema::SemaBuiltinShuffleVector(CallExpr *TheCall) { 5874 if (TheCall->getNumArgs() < 2) 5875 return ExprError(Diag(TheCall->getEndLoc(), 5876 diag::err_typecheck_call_too_few_args_at_least) 5877 << 0 /*function call*/ << 2 << TheCall->getNumArgs() 5878 << TheCall->getSourceRange()); 5879 5880 // Determine which of the following types of shufflevector we're checking: 5881 // 1) unary, vector mask: (lhs, mask) 5882 // 2) binary, scalar mask: (lhs, rhs, index, ..., index) 5883 QualType resType = TheCall->getArg(0)->getType(); 5884 unsigned numElements = 0; 5885 5886 if (!TheCall->getArg(0)->isTypeDependent() && 5887 !TheCall->getArg(1)->isTypeDependent()) { 5888 QualType LHSType = TheCall->getArg(0)->getType(); 5889 QualType RHSType = TheCall->getArg(1)->getType(); 5890 5891 if (!LHSType->isVectorType() || !RHSType->isVectorType()) 5892 return ExprError( 5893 Diag(TheCall->getBeginLoc(), diag::err_vec_builtin_non_vector) 5894 << TheCall->getDirectCallee() 5895 << SourceRange(TheCall->getArg(0)->getBeginLoc(), 5896 TheCall->getArg(1)->getEndLoc())); 5897 5898 numElements = LHSType->castAs<VectorType>()->getNumElements(); 5899 unsigned numResElements = TheCall->getNumArgs() - 2; 5900 5901 // Check to see if we have a call with 2 vector arguments, the unary shuffle 5902 // with mask. If so, verify that RHS is an integer vector type with the 5903 // same number of elts as lhs. 5904 if (TheCall->getNumArgs() == 2) { 5905 if (!RHSType->hasIntegerRepresentation() || 5906 RHSType->castAs<VectorType>()->getNumElements() != numElements) 5907 return ExprError(Diag(TheCall->getBeginLoc(), 5908 diag::err_vec_builtin_incompatible_vector) 5909 << TheCall->getDirectCallee() 5910 << SourceRange(TheCall->getArg(1)->getBeginLoc(), 5911 TheCall->getArg(1)->getEndLoc())); 5912 } else if (!Context.hasSameUnqualifiedType(LHSType, RHSType)) { 5913 return ExprError(Diag(TheCall->getBeginLoc(), 5914 diag::err_vec_builtin_incompatible_vector) 5915 << TheCall->getDirectCallee() 5916 << SourceRange(TheCall->getArg(0)->getBeginLoc(), 5917 TheCall->getArg(1)->getEndLoc())); 5918 } else if (numElements != numResElements) { 5919 QualType eltType = LHSType->castAs<VectorType>()->getElementType(); 5920 resType = Context.getVectorType(eltType, numResElements, 5921 VectorType::GenericVector); 5922 } 5923 } 5924 5925 for (unsigned i = 2; i < TheCall->getNumArgs(); i++) { 5926 if (TheCall->getArg(i)->isTypeDependent() || 5927 TheCall->getArg(i)->isValueDependent()) 5928 continue; 5929 5930 llvm::APSInt Result(32); 5931 if (!TheCall->getArg(i)->isIntegerConstantExpr(Result, Context)) 5932 return ExprError(Diag(TheCall->getBeginLoc(), 5933 diag::err_shufflevector_nonconstant_argument) 5934 << TheCall->getArg(i)->getSourceRange()); 5935 5936 // Allow -1 which will be translated to undef in the IR. 5937 if (Result.isSigned() && Result.isAllOnesValue()) 5938 continue; 5939 5940 if (Result.getActiveBits() > 64 || Result.getZExtValue() >= numElements*2) 5941 return ExprError(Diag(TheCall->getBeginLoc(), 5942 diag::err_shufflevector_argument_too_large) 5943 << TheCall->getArg(i)->getSourceRange()); 5944 } 5945 5946 SmallVector<Expr*, 32> exprs; 5947 5948 for (unsigned i = 0, e = TheCall->getNumArgs(); i != e; i++) { 5949 exprs.push_back(TheCall->getArg(i)); 5950 TheCall->setArg(i, nullptr); 5951 } 5952 5953 return new (Context) ShuffleVectorExpr(Context, exprs, resType, 5954 TheCall->getCallee()->getBeginLoc(), 5955 TheCall->getRParenLoc()); 5956 } 5957 5958 /// SemaConvertVectorExpr - Handle __builtin_convertvector 5959 ExprResult Sema::SemaConvertVectorExpr(Expr *E, TypeSourceInfo *TInfo, 5960 SourceLocation BuiltinLoc, 5961 SourceLocation RParenLoc) { 5962 ExprValueKind VK = VK_RValue; 5963 ExprObjectKind OK = OK_Ordinary; 5964 QualType DstTy = TInfo->getType(); 5965 QualType SrcTy = E->getType(); 5966 5967 if (!SrcTy->isVectorType() && !SrcTy->isDependentType()) 5968 return ExprError(Diag(BuiltinLoc, 5969 diag::err_convertvector_non_vector) 5970 << E->getSourceRange()); 5971 if (!DstTy->isVectorType() && !DstTy->isDependentType()) 5972 return ExprError(Diag(BuiltinLoc, 5973 diag::err_convertvector_non_vector_type)); 5974 5975 if (!SrcTy->isDependentType() && !DstTy->isDependentType()) { 5976 unsigned SrcElts = SrcTy->castAs<VectorType>()->getNumElements(); 5977 unsigned DstElts = DstTy->castAs<VectorType>()->getNumElements(); 5978 if (SrcElts != DstElts) 5979 return ExprError(Diag(BuiltinLoc, 5980 diag::err_convertvector_incompatible_vector) 5981 << E->getSourceRange()); 5982 } 5983 5984 return new (Context) 5985 ConvertVectorExpr(E, TInfo, DstTy, VK, OK, BuiltinLoc, RParenLoc); 5986 } 5987 5988 /// SemaBuiltinPrefetch - Handle __builtin_prefetch. 5989 // This is declared to take (const void*, ...) and can take two 5990 // optional constant int args. 5991 bool Sema::SemaBuiltinPrefetch(CallExpr *TheCall) { 5992 unsigned NumArgs = TheCall->getNumArgs(); 5993 5994 if (NumArgs > 3) 5995 return Diag(TheCall->getEndLoc(), 5996 diag::err_typecheck_call_too_many_args_at_most) 5997 << 0 /*function call*/ << 3 << NumArgs << TheCall->getSourceRange(); 5998 5999 // Argument 0 is checked for us and the remaining arguments must be 6000 // constant integers. 6001 for (unsigned i = 1; i != NumArgs; ++i) 6002 if (SemaBuiltinConstantArgRange(TheCall, i, 0, i == 1 ? 1 : 3)) 6003 return true; 6004 6005 return false; 6006 } 6007 6008 /// SemaBuiltinAssume - Handle __assume (MS Extension). 6009 // __assume does not evaluate its arguments, and should warn if its argument 6010 // has side effects. 6011 bool Sema::SemaBuiltinAssume(CallExpr *TheCall) { 6012 Expr *Arg = TheCall->getArg(0); 6013 if (Arg->isInstantiationDependent()) return false; 6014 6015 if (Arg->HasSideEffects(Context)) 6016 Diag(Arg->getBeginLoc(), diag::warn_assume_side_effects) 6017 << Arg->getSourceRange() 6018 << cast<FunctionDecl>(TheCall->getCalleeDecl())->getIdentifier(); 6019 6020 return false; 6021 } 6022 6023 /// Handle __builtin_alloca_with_align. This is declared 6024 /// as (size_t, size_t) where the second size_t must be a power of 2 greater 6025 /// than 8. 6026 bool Sema::SemaBuiltinAllocaWithAlign(CallExpr *TheCall) { 6027 // The alignment must be a constant integer. 6028 Expr *Arg = TheCall->getArg(1); 6029 6030 // We can't check the value of a dependent argument. 6031 if (!Arg->isTypeDependent() && !Arg->isValueDependent()) { 6032 if (const auto *UE = 6033 dyn_cast<UnaryExprOrTypeTraitExpr>(Arg->IgnoreParenImpCasts())) 6034 if (UE->getKind() == UETT_AlignOf || 6035 UE->getKind() == UETT_PreferredAlignOf) 6036 Diag(TheCall->getBeginLoc(), diag::warn_alloca_align_alignof) 6037 << Arg->getSourceRange(); 6038 6039 llvm::APSInt Result = Arg->EvaluateKnownConstInt(Context); 6040 6041 if (!Result.isPowerOf2()) 6042 return Diag(TheCall->getBeginLoc(), diag::err_alignment_not_power_of_two) 6043 << Arg->getSourceRange(); 6044 6045 if (Result < Context.getCharWidth()) 6046 return Diag(TheCall->getBeginLoc(), diag::err_alignment_too_small) 6047 << (unsigned)Context.getCharWidth() << Arg->getSourceRange(); 6048 6049 if (Result > std::numeric_limits<int32_t>::max()) 6050 return Diag(TheCall->getBeginLoc(), diag::err_alignment_too_big) 6051 << std::numeric_limits<int32_t>::max() << Arg->getSourceRange(); 6052 } 6053 6054 return false; 6055 } 6056 6057 /// Handle __builtin_assume_aligned. This is declared 6058 /// as (const void*, size_t, ...) and can take one optional constant int arg. 6059 bool Sema::SemaBuiltinAssumeAligned(CallExpr *TheCall) { 6060 unsigned NumArgs = TheCall->getNumArgs(); 6061 6062 if (NumArgs > 3) 6063 return Diag(TheCall->getEndLoc(), 6064 diag::err_typecheck_call_too_many_args_at_most) 6065 << 0 /*function call*/ << 3 << NumArgs << TheCall->getSourceRange(); 6066 6067 // The alignment must be a constant integer. 6068 Expr *Arg = TheCall->getArg(1); 6069 6070 // We can't check the value of a dependent argument. 6071 if (!Arg->isTypeDependent() && !Arg->isValueDependent()) { 6072 llvm::APSInt Result; 6073 if (SemaBuiltinConstantArg(TheCall, 1, Result)) 6074 return true; 6075 6076 if (!Result.isPowerOf2()) 6077 return Diag(TheCall->getBeginLoc(), diag::err_alignment_not_power_of_two) 6078 << Arg->getSourceRange(); 6079 6080 // Alignment calculations can wrap around if it's greater than 2**29. 6081 unsigned MaximumAlignment = 536870912; 6082 if (Result > MaximumAlignment) 6083 Diag(TheCall->getBeginLoc(), diag::warn_assume_aligned_too_great) 6084 << Arg->getSourceRange() << MaximumAlignment; 6085 } 6086 6087 if (NumArgs > 2) { 6088 ExprResult Arg(TheCall->getArg(2)); 6089 InitializedEntity Entity = InitializedEntity::InitializeParameter(Context, 6090 Context.getSizeType(), false); 6091 Arg = PerformCopyInitialization(Entity, SourceLocation(), Arg); 6092 if (Arg.isInvalid()) return true; 6093 TheCall->setArg(2, Arg.get()); 6094 } 6095 6096 return false; 6097 } 6098 6099 bool Sema::SemaBuiltinOSLogFormat(CallExpr *TheCall) { 6100 unsigned BuiltinID = 6101 cast<FunctionDecl>(TheCall->getCalleeDecl())->getBuiltinID(); 6102 bool IsSizeCall = BuiltinID == Builtin::BI__builtin_os_log_format_buffer_size; 6103 6104 unsigned NumArgs = TheCall->getNumArgs(); 6105 unsigned NumRequiredArgs = IsSizeCall ? 1 : 2; 6106 if (NumArgs < NumRequiredArgs) { 6107 return Diag(TheCall->getEndLoc(), diag::err_typecheck_call_too_few_args) 6108 << 0 /* function call */ << NumRequiredArgs << NumArgs 6109 << TheCall->getSourceRange(); 6110 } 6111 if (NumArgs >= NumRequiredArgs + 0x100) { 6112 return Diag(TheCall->getEndLoc(), 6113 diag::err_typecheck_call_too_many_args_at_most) 6114 << 0 /* function call */ << (NumRequiredArgs + 0xff) << NumArgs 6115 << TheCall->getSourceRange(); 6116 } 6117 unsigned i = 0; 6118 6119 // For formatting call, check buffer arg. 6120 if (!IsSizeCall) { 6121 ExprResult Arg(TheCall->getArg(i)); 6122 InitializedEntity Entity = InitializedEntity::InitializeParameter( 6123 Context, Context.VoidPtrTy, false); 6124 Arg = PerformCopyInitialization(Entity, SourceLocation(), Arg); 6125 if (Arg.isInvalid()) 6126 return true; 6127 TheCall->setArg(i, Arg.get()); 6128 i++; 6129 } 6130 6131 // Check string literal arg. 6132 unsigned FormatIdx = i; 6133 { 6134 ExprResult Arg = CheckOSLogFormatStringArg(TheCall->getArg(i)); 6135 if (Arg.isInvalid()) 6136 return true; 6137 TheCall->setArg(i, Arg.get()); 6138 i++; 6139 } 6140 6141 // Make sure variadic args are scalar. 6142 unsigned FirstDataArg = i; 6143 while (i < NumArgs) { 6144 ExprResult Arg = DefaultVariadicArgumentPromotion( 6145 TheCall->getArg(i), VariadicFunction, nullptr); 6146 if (Arg.isInvalid()) 6147 return true; 6148 CharUnits ArgSize = Context.getTypeSizeInChars(Arg.get()->getType()); 6149 if (ArgSize.getQuantity() >= 0x100) { 6150 return Diag(Arg.get()->getEndLoc(), diag::err_os_log_argument_too_big) 6151 << i << (int)ArgSize.getQuantity() << 0xff 6152 << TheCall->getSourceRange(); 6153 } 6154 TheCall->setArg(i, Arg.get()); 6155 i++; 6156 } 6157 6158 // Check formatting specifiers. NOTE: We're only doing this for the non-size 6159 // call to avoid duplicate diagnostics. 6160 if (!IsSizeCall) { 6161 llvm::SmallBitVector CheckedVarArgs(NumArgs, false); 6162 ArrayRef<const Expr *> Args(TheCall->getArgs(), TheCall->getNumArgs()); 6163 bool Success = CheckFormatArguments( 6164 Args, /*HasVAListArg*/ false, FormatIdx, FirstDataArg, FST_OSLog, 6165 VariadicFunction, TheCall->getBeginLoc(), SourceRange(), 6166 CheckedVarArgs); 6167 if (!Success) 6168 return true; 6169 } 6170 6171 if (IsSizeCall) { 6172 TheCall->setType(Context.getSizeType()); 6173 } else { 6174 TheCall->setType(Context.VoidPtrTy); 6175 } 6176 return false; 6177 } 6178 6179 /// SemaBuiltinConstantArg - Handle a check if argument ArgNum of CallExpr 6180 /// TheCall is a constant expression. 6181 bool Sema::SemaBuiltinConstantArg(CallExpr *TheCall, int ArgNum, 6182 llvm::APSInt &Result) { 6183 Expr *Arg = TheCall->getArg(ArgNum); 6184 DeclRefExpr *DRE =cast<DeclRefExpr>(TheCall->getCallee()->IgnoreParenCasts()); 6185 FunctionDecl *FDecl = cast<FunctionDecl>(DRE->getDecl()); 6186 6187 if (Arg->isTypeDependent() || Arg->isValueDependent()) return false; 6188 6189 if (!Arg->isIntegerConstantExpr(Result, Context)) 6190 return Diag(TheCall->getBeginLoc(), diag::err_constant_integer_arg_type) 6191 << FDecl->getDeclName() << Arg->getSourceRange(); 6192 6193 return false; 6194 } 6195 6196 /// SemaBuiltinConstantArgRange - Handle a check if argument ArgNum of CallExpr 6197 /// TheCall is a constant expression in the range [Low, High]. 6198 bool Sema::SemaBuiltinConstantArgRange(CallExpr *TheCall, int ArgNum, 6199 int Low, int High, bool RangeIsError) { 6200 if (isConstantEvaluated()) 6201 return false; 6202 llvm::APSInt Result; 6203 6204 // We can't check the value of a dependent argument. 6205 Expr *Arg = TheCall->getArg(ArgNum); 6206 if (Arg->isTypeDependent() || Arg->isValueDependent()) 6207 return false; 6208 6209 // Check constant-ness first. 6210 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 6211 return true; 6212 6213 if (Result.getSExtValue() < Low || Result.getSExtValue() > High) { 6214 if (RangeIsError) 6215 return Diag(TheCall->getBeginLoc(), diag::err_argument_invalid_range) 6216 << Result.toString(10) << Low << High << Arg->getSourceRange(); 6217 else 6218 // Defer the warning until we know if the code will be emitted so that 6219 // dead code can ignore this. 6220 DiagRuntimeBehavior(TheCall->getBeginLoc(), TheCall, 6221 PDiag(diag::warn_argument_invalid_range) 6222 << Result.toString(10) << Low << High 6223 << Arg->getSourceRange()); 6224 } 6225 6226 return false; 6227 } 6228 6229 /// SemaBuiltinConstantArgMultiple - Handle a check if argument ArgNum of CallExpr 6230 /// TheCall is a constant expression is a multiple of Num.. 6231 bool Sema::SemaBuiltinConstantArgMultiple(CallExpr *TheCall, int ArgNum, 6232 unsigned Num) { 6233 llvm::APSInt Result; 6234 6235 // We can't check the value of a dependent argument. 6236 Expr *Arg = TheCall->getArg(ArgNum); 6237 if (Arg->isTypeDependent() || Arg->isValueDependent()) 6238 return false; 6239 6240 // Check constant-ness first. 6241 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 6242 return true; 6243 6244 if (Result.getSExtValue() % Num != 0) 6245 return Diag(TheCall->getBeginLoc(), diag::err_argument_not_multiple) 6246 << Num << Arg->getSourceRange(); 6247 6248 return false; 6249 } 6250 6251 /// SemaBuiltinConstantArgPower2 - Check if argument ArgNum of TheCall is a 6252 /// constant expression representing a power of 2. 6253 bool Sema::SemaBuiltinConstantArgPower2(CallExpr *TheCall, int ArgNum) { 6254 llvm::APSInt Result; 6255 6256 // We can't check the value of a dependent argument. 6257 Expr *Arg = TheCall->getArg(ArgNum); 6258 if (Arg->isTypeDependent() || Arg->isValueDependent()) 6259 return false; 6260 6261 // Check constant-ness first. 6262 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 6263 return true; 6264 6265 // Bit-twiddling to test for a power of 2: for x > 0, x & (x-1) is zero if 6266 // and only if x is a power of 2. 6267 if (Result.isStrictlyPositive() && (Result & (Result - 1)) == 0) 6268 return false; 6269 6270 return Diag(TheCall->getBeginLoc(), diag::err_argument_not_power_of_2) 6271 << Arg->getSourceRange(); 6272 } 6273 6274 static bool IsShiftedByte(llvm::APSInt Value) { 6275 if (Value.isNegative()) 6276 return false; 6277 6278 // Check if it's a shifted byte, by shifting it down 6279 while (true) { 6280 // If the value fits in the bottom byte, the check passes. 6281 if (Value < 0x100) 6282 return true; 6283 6284 // Otherwise, if the value has _any_ bits in the bottom byte, the check 6285 // fails. 6286 if ((Value & 0xFF) != 0) 6287 return false; 6288 6289 // If the bottom 8 bits are all 0, but something above that is nonzero, 6290 // then shifting the value right by 8 bits won't affect whether it's a 6291 // shifted byte or not. So do that, and go round again. 6292 Value >>= 8; 6293 } 6294 } 6295 6296 /// SemaBuiltinConstantArgShiftedByte - Check if argument ArgNum of TheCall is 6297 /// a constant expression representing an arbitrary byte value shifted left by 6298 /// a multiple of 8 bits. 6299 bool Sema::SemaBuiltinConstantArgShiftedByte(CallExpr *TheCall, int ArgNum) { 6300 llvm::APSInt Result; 6301 6302 // We can't check the value of a dependent argument. 6303 Expr *Arg = TheCall->getArg(ArgNum); 6304 if (Arg->isTypeDependent() || Arg->isValueDependent()) 6305 return false; 6306 6307 // Check constant-ness first. 6308 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 6309 return true; 6310 6311 if (IsShiftedByte(Result)) 6312 return false; 6313 6314 return Diag(TheCall->getBeginLoc(), diag::err_argument_not_shifted_byte) 6315 << Arg->getSourceRange(); 6316 } 6317 6318 /// SemaBuiltinConstantArgShiftedByteOr0xFF - Check if argument ArgNum of 6319 /// TheCall is a constant expression representing either a shifted byte value, 6320 /// or a value of the form 0x??FF (i.e. a member of the arithmetic progression 6321 /// 0x00FF, 0x01FF, ..., 0xFFFF). This strange range check is needed for some 6322 /// Arm MVE intrinsics. 6323 bool Sema::SemaBuiltinConstantArgShiftedByteOrXXFF(CallExpr *TheCall, 6324 int ArgNum) { 6325 llvm::APSInt Result; 6326 6327 // We can't check the value of a dependent argument. 6328 Expr *Arg = TheCall->getArg(ArgNum); 6329 if (Arg->isTypeDependent() || Arg->isValueDependent()) 6330 return false; 6331 6332 // Check constant-ness first. 6333 if (SemaBuiltinConstantArg(TheCall, ArgNum, Result)) 6334 return true; 6335 6336 // Check to see if it's in either of the required forms. 6337 if (IsShiftedByte(Result) || 6338 (Result > 0 && Result < 0x10000 && (Result & 0xFF) == 0xFF)) 6339 return false; 6340 6341 return Diag(TheCall->getBeginLoc(), 6342 diag::err_argument_not_shifted_byte_or_xxff) 6343 << Arg->getSourceRange(); 6344 } 6345 6346 /// SemaBuiltinARMMemoryTaggingCall - Handle calls of memory tagging extensions 6347 bool Sema::SemaBuiltinARMMemoryTaggingCall(unsigned BuiltinID, CallExpr *TheCall) { 6348 if (BuiltinID == AArch64::BI__builtin_arm_irg) { 6349 if (checkArgCount(*this, TheCall, 2)) 6350 return true; 6351 Expr *Arg0 = TheCall->getArg(0); 6352 Expr *Arg1 = TheCall->getArg(1); 6353 6354 ExprResult FirstArg = DefaultFunctionArrayLvalueConversion(Arg0); 6355 if (FirstArg.isInvalid()) 6356 return true; 6357 QualType FirstArgType = FirstArg.get()->getType(); 6358 if (!FirstArgType->isAnyPointerType()) 6359 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_must_be_pointer) 6360 << "first" << FirstArgType << Arg0->getSourceRange(); 6361 TheCall->setArg(0, FirstArg.get()); 6362 6363 ExprResult SecArg = DefaultLvalueConversion(Arg1); 6364 if (SecArg.isInvalid()) 6365 return true; 6366 QualType SecArgType = SecArg.get()->getType(); 6367 if (!SecArgType->isIntegerType()) 6368 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_must_be_integer) 6369 << "second" << SecArgType << Arg1->getSourceRange(); 6370 6371 // Derive the return type from the pointer argument. 6372 TheCall->setType(FirstArgType); 6373 return false; 6374 } 6375 6376 if (BuiltinID == AArch64::BI__builtin_arm_addg) { 6377 if (checkArgCount(*this, TheCall, 2)) 6378 return true; 6379 6380 Expr *Arg0 = TheCall->getArg(0); 6381 ExprResult FirstArg = DefaultFunctionArrayLvalueConversion(Arg0); 6382 if (FirstArg.isInvalid()) 6383 return true; 6384 QualType FirstArgType = FirstArg.get()->getType(); 6385 if (!FirstArgType->isAnyPointerType()) 6386 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_must_be_pointer) 6387 << "first" << FirstArgType << Arg0->getSourceRange(); 6388 TheCall->setArg(0, FirstArg.get()); 6389 6390 // Derive the return type from the pointer argument. 6391 TheCall->setType(FirstArgType); 6392 6393 // Second arg must be an constant in range [0,15] 6394 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 15); 6395 } 6396 6397 if (BuiltinID == AArch64::BI__builtin_arm_gmi) { 6398 if (checkArgCount(*this, TheCall, 2)) 6399 return true; 6400 Expr *Arg0 = TheCall->getArg(0); 6401 Expr *Arg1 = TheCall->getArg(1); 6402 6403 ExprResult FirstArg = DefaultFunctionArrayLvalueConversion(Arg0); 6404 if (FirstArg.isInvalid()) 6405 return true; 6406 QualType FirstArgType = FirstArg.get()->getType(); 6407 if (!FirstArgType->isAnyPointerType()) 6408 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_must_be_pointer) 6409 << "first" << FirstArgType << Arg0->getSourceRange(); 6410 6411 QualType SecArgType = Arg1->getType(); 6412 if (!SecArgType->isIntegerType()) 6413 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_must_be_integer) 6414 << "second" << SecArgType << Arg1->getSourceRange(); 6415 TheCall->setType(Context.IntTy); 6416 return false; 6417 } 6418 6419 if (BuiltinID == AArch64::BI__builtin_arm_ldg || 6420 BuiltinID == AArch64::BI__builtin_arm_stg) { 6421 if (checkArgCount(*this, TheCall, 1)) 6422 return true; 6423 Expr *Arg0 = TheCall->getArg(0); 6424 ExprResult FirstArg = DefaultFunctionArrayLvalueConversion(Arg0); 6425 if (FirstArg.isInvalid()) 6426 return true; 6427 6428 QualType FirstArgType = FirstArg.get()->getType(); 6429 if (!FirstArgType->isAnyPointerType()) 6430 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_must_be_pointer) 6431 << "first" << FirstArgType << Arg0->getSourceRange(); 6432 TheCall->setArg(0, FirstArg.get()); 6433 6434 // Derive the return type from the pointer argument. 6435 if (BuiltinID == AArch64::BI__builtin_arm_ldg) 6436 TheCall->setType(FirstArgType); 6437 return false; 6438 } 6439 6440 if (BuiltinID == AArch64::BI__builtin_arm_subp) { 6441 Expr *ArgA = TheCall->getArg(0); 6442 Expr *ArgB = TheCall->getArg(1); 6443 6444 ExprResult ArgExprA = DefaultFunctionArrayLvalueConversion(ArgA); 6445 ExprResult ArgExprB = DefaultFunctionArrayLvalueConversion(ArgB); 6446 6447 if (ArgExprA.isInvalid() || ArgExprB.isInvalid()) 6448 return true; 6449 6450 QualType ArgTypeA = ArgExprA.get()->getType(); 6451 QualType ArgTypeB = ArgExprB.get()->getType(); 6452 6453 auto isNull = [&] (Expr *E) -> bool { 6454 return E->isNullPointerConstant( 6455 Context, Expr::NPC_ValueDependentIsNotNull); }; 6456 6457 // argument should be either a pointer or null 6458 if (!ArgTypeA->isAnyPointerType() && !isNull(ArgA)) 6459 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_null_or_pointer) 6460 << "first" << ArgTypeA << ArgA->getSourceRange(); 6461 6462 if (!ArgTypeB->isAnyPointerType() && !isNull(ArgB)) 6463 return Diag(TheCall->getBeginLoc(), diag::err_memtag_arg_null_or_pointer) 6464 << "second" << ArgTypeB << ArgB->getSourceRange(); 6465 6466 // Ensure Pointee types are compatible 6467 if (ArgTypeA->isAnyPointerType() && !isNull(ArgA) && 6468 ArgTypeB->isAnyPointerType() && !isNull(ArgB)) { 6469 QualType pointeeA = ArgTypeA->getPointeeType(); 6470 QualType pointeeB = ArgTypeB->getPointeeType(); 6471 if (!Context.typesAreCompatible( 6472 Context.getCanonicalType(pointeeA).getUnqualifiedType(), 6473 Context.getCanonicalType(pointeeB).getUnqualifiedType())) { 6474 return Diag(TheCall->getBeginLoc(), diag::err_typecheck_sub_ptr_compatible) 6475 << ArgTypeA << ArgTypeB << ArgA->getSourceRange() 6476 << ArgB->getSourceRange(); 6477 } 6478 } 6479 6480 // at least one argument should be pointer type 6481 if (!ArgTypeA->isAnyPointerType() && !ArgTypeB->isAnyPointerType()) 6482 return Diag(TheCall->getBeginLoc(), diag::err_memtag_any2arg_pointer) 6483 << ArgTypeA << ArgTypeB << ArgA->getSourceRange(); 6484 6485 if (isNull(ArgA)) // adopt type of the other pointer 6486 ArgExprA = ImpCastExprToType(ArgExprA.get(), ArgTypeB, CK_NullToPointer); 6487 6488 if (isNull(ArgB)) 6489 ArgExprB = ImpCastExprToType(ArgExprB.get(), ArgTypeA, CK_NullToPointer); 6490 6491 TheCall->setArg(0, ArgExprA.get()); 6492 TheCall->setArg(1, ArgExprB.get()); 6493 TheCall->setType(Context.LongLongTy); 6494 return false; 6495 } 6496 assert(false && "Unhandled ARM MTE intrinsic"); 6497 return true; 6498 } 6499 6500 /// SemaBuiltinARMSpecialReg - Handle a check if argument ArgNum of CallExpr 6501 /// TheCall is an ARM/AArch64 special register string literal. 6502 bool Sema::SemaBuiltinARMSpecialReg(unsigned BuiltinID, CallExpr *TheCall, 6503 int ArgNum, unsigned ExpectedFieldNum, 6504 bool AllowName) { 6505 bool IsARMBuiltin = BuiltinID == ARM::BI__builtin_arm_rsr64 || 6506 BuiltinID == ARM::BI__builtin_arm_wsr64 || 6507 BuiltinID == ARM::BI__builtin_arm_rsr || 6508 BuiltinID == ARM::BI__builtin_arm_rsrp || 6509 BuiltinID == ARM::BI__builtin_arm_wsr || 6510 BuiltinID == ARM::BI__builtin_arm_wsrp; 6511 bool IsAArch64Builtin = BuiltinID == AArch64::BI__builtin_arm_rsr64 || 6512 BuiltinID == AArch64::BI__builtin_arm_wsr64 || 6513 BuiltinID == AArch64::BI__builtin_arm_rsr || 6514 BuiltinID == AArch64::BI__builtin_arm_rsrp || 6515 BuiltinID == AArch64::BI__builtin_arm_wsr || 6516 BuiltinID == AArch64::BI__builtin_arm_wsrp; 6517 assert((IsARMBuiltin || IsAArch64Builtin) && "Unexpected ARM builtin."); 6518 6519 // We can't check the value of a dependent argument. 6520 Expr *Arg = TheCall->getArg(ArgNum); 6521 if (Arg->isTypeDependent() || Arg->isValueDependent()) 6522 return false; 6523 6524 // Check if the argument is a string literal. 6525 if (!isa<StringLiteral>(Arg->IgnoreParenImpCasts())) 6526 return Diag(TheCall->getBeginLoc(), diag::err_expr_not_string_literal) 6527 << Arg->getSourceRange(); 6528 6529 // Check the type of special register given. 6530 StringRef Reg = cast<StringLiteral>(Arg->IgnoreParenImpCasts())->getString(); 6531 SmallVector<StringRef, 6> Fields; 6532 Reg.split(Fields, ":"); 6533 6534 if (Fields.size() != ExpectedFieldNum && !(AllowName && Fields.size() == 1)) 6535 return Diag(TheCall->getBeginLoc(), diag::err_arm_invalid_specialreg) 6536 << Arg->getSourceRange(); 6537 6538 // If the string is the name of a register then we cannot check that it is 6539 // valid here but if the string is of one the forms described in ACLE then we 6540 // can check that the supplied fields are integers and within the valid 6541 // ranges. 6542 if (Fields.size() > 1) { 6543 bool FiveFields = Fields.size() == 5; 6544 6545 bool ValidString = true; 6546 if (IsARMBuiltin) { 6547 ValidString &= Fields[0].startswith_lower("cp") || 6548 Fields[0].startswith_lower("p"); 6549 if (ValidString) 6550 Fields[0] = 6551 Fields[0].drop_front(Fields[0].startswith_lower("cp") ? 2 : 1); 6552 6553 ValidString &= Fields[2].startswith_lower("c"); 6554 if (ValidString) 6555 Fields[2] = Fields[2].drop_front(1); 6556 6557 if (FiveFields) { 6558 ValidString &= Fields[3].startswith_lower("c"); 6559 if (ValidString) 6560 Fields[3] = Fields[3].drop_front(1); 6561 } 6562 } 6563 6564 SmallVector<int, 5> Ranges; 6565 if (FiveFields) 6566 Ranges.append({IsAArch64Builtin ? 1 : 15, 7, 15, 15, 7}); 6567 else 6568 Ranges.append({15, 7, 15}); 6569 6570 for (unsigned i=0; i<Fields.size(); ++i) { 6571 int IntField; 6572 ValidString &= !Fields[i].getAsInteger(10, IntField); 6573 ValidString &= (IntField >= 0 && IntField <= Ranges[i]); 6574 } 6575 6576 if (!ValidString) 6577 return Diag(TheCall->getBeginLoc(), diag::err_arm_invalid_specialreg) 6578 << Arg->getSourceRange(); 6579 } else if (IsAArch64Builtin && Fields.size() == 1) { 6580 // If the register name is one of those that appear in the condition below 6581 // and the special register builtin being used is one of the write builtins, 6582 // then we require that the argument provided for writing to the register 6583 // is an integer constant expression. This is because it will be lowered to 6584 // an MSR (immediate) instruction, so we need to know the immediate at 6585 // compile time. 6586 if (TheCall->getNumArgs() != 2) 6587 return false; 6588 6589 std::string RegLower = Reg.lower(); 6590 if (RegLower != "spsel" && RegLower != "daifset" && RegLower != "daifclr" && 6591 RegLower != "pan" && RegLower != "uao") 6592 return false; 6593 6594 return SemaBuiltinConstantArgRange(TheCall, 1, 0, 15); 6595 } 6596 6597 return false; 6598 } 6599 6600 /// SemaBuiltinLongjmp - Handle __builtin_longjmp(void *env[5], int val). 6601 /// This checks that the target supports __builtin_longjmp and 6602 /// that val is a constant 1. 6603 bool Sema::SemaBuiltinLongjmp(CallExpr *TheCall) { 6604 if (!Context.getTargetInfo().hasSjLjLowering()) 6605 return Diag(TheCall->getBeginLoc(), diag::err_builtin_longjmp_unsupported) 6606 << SourceRange(TheCall->getBeginLoc(), TheCall->getEndLoc()); 6607 6608 Expr *Arg = TheCall->getArg(1); 6609 llvm::APSInt Result; 6610 6611 // TODO: This is less than ideal. Overload this to take a value. 6612 if (SemaBuiltinConstantArg(TheCall, 1, Result)) 6613 return true; 6614 6615 if (Result != 1) 6616 return Diag(TheCall->getBeginLoc(), diag::err_builtin_longjmp_invalid_val) 6617 << SourceRange(Arg->getBeginLoc(), Arg->getEndLoc()); 6618 6619 return false; 6620 } 6621 6622 /// SemaBuiltinSetjmp - Handle __builtin_setjmp(void *env[5]). 6623 /// This checks that the target supports __builtin_setjmp. 6624 bool Sema::SemaBuiltinSetjmp(CallExpr *TheCall) { 6625 if (!Context.getTargetInfo().hasSjLjLowering()) 6626 return Diag(TheCall->getBeginLoc(), diag::err_builtin_setjmp_unsupported) 6627 << SourceRange(TheCall->getBeginLoc(), TheCall->getEndLoc()); 6628 return false; 6629 } 6630 6631 namespace { 6632 6633 class UncoveredArgHandler { 6634 enum { Unknown = -1, AllCovered = -2 }; 6635 6636 signed FirstUncoveredArg = Unknown; 6637 SmallVector<const Expr *, 4> DiagnosticExprs; 6638 6639 public: 6640 UncoveredArgHandler() = default; 6641 6642 bool hasUncoveredArg() const { 6643 return (FirstUncoveredArg >= 0); 6644 } 6645 6646 unsigned getUncoveredArg() const { 6647 assert(hasUncoveredArg() && "no uncovered argument"); 6648 return FirstUncoveredArg; 6649 } 6650 6651 void setAllCovered() { 6652 // A string has been found with all arguments covered, so clear out 6653 // the diagnostics. 6654 DiagnosticExprs.clear(); 6655 FirstUncoveredArg = AllCovered; 6656 } 6657 6658 void Update(signed NewFirstUncoveredArg, const Expr *StrExpr) { 6659 assert(NewFirstUncoveredArg >= 0 && "Outside range"); 6660 6661 // Don't update if a previous string covers all arguments. 6662 if (FirstUncoveredArg == AllCovered) 6663 return; 6664 6665 // UncoveredArgHandler tracks the highest uncovered argument index 6666 // and with it all the strings that match this index. 6667 if (NewFirstUncoveredArg == FirstUncoveredArg) 6668 DiagnosticExprs.push_back(StrExpr); 6669 else if (NewFirstUncoveredArg > FirstUncoveredArg) { 6670 DiagnosticExprs.clear(); 6671 DiagnosticExprs.push_back(StrExpr); 6672 FirstUncoveredArg = NewFirstUncoveredArg; 6673 } 6674 } 6675 6676 void Diagnose(Sema &S, bool IsFunctionCall, const Expr *ArgExpr); 6677 }; 6678 6679 enum StringLiteralCheckType { 6680 SLCT_NotALiteral, 6681 SLCT_UncheckedLiteral, 6682 SLCT_CheckedLiteral 6683 }; 6684 6685 } // namespace 6686 6687 static void sumOffsets(llvm::APSInt &Offset, llvm::APSInt Addend, 6688 BinaryOperatorKind BinOpKind, 6689 bool AddendIsRight) { 6690 unsigned BitWidth = Offset.getBitWidth(); 6691 unsigned AddendBitWidth = Addend.getBitWidth(); 6692 // There might be negative interim results. 6693 if (Addend.isUnsigned()) { 6694 Addend = Addend.zext(++AddendBitWidth); 6695 Addend.setIsSigned(true); 6696 } 6697 // Adjust the bit width of the APSInts. 6698 if (AddendBitWidth > BitWidth) { 6699 Offset = Offset.sext(AddendBitWidth); 6700 BitWidth = AddendBitWidth; 6701 } else if (BitWidth > AddendBitWidth) { 6702 Addend = Addend.sext(BitWidth); 6703 } 6704 6705 bool Ov = false; 6706 llvm::APSInt ResOffset = Offset; 6707 if (BinOpKind == BO_Add) 6708 ResOffset = Offset.sadd_ov(Addend, Ov); 6709 else { 6710 assert(AddendIsRight && BinOpKind == BO_Sub && 6711 "operator must be add or sub with addend on the right"); 6712 ResOffset = Offset.ssub_ov(Addend, Ov); 6713 } 6714 6715 // We add an offset to a pointer here so we should support an offset as big as 6716 // possible. 6717 if (Ov) { 6718 assert(BitWidth <= std::numeric_limits<unsigned>::max() / 2 && 6719 "index (intermediate) result too big"); 6720 Offset = Offset.sext(2 * BitWidth); 6721 sumOffsets(Offset, Addend, BinOpKind, AddendIsRight); 6722 return; 6723 } 6724 6725 Offset = ResOffset; 6726 } 6727 6728 namespace { 6729 6730 // This is a wrapper class around StringLiteral to support offsetted string 6731 // literals as format strings. It takes the offset into account when returning 6732 // the string and its length or the source locations to display notes correctly. 6733 class FormatStringLiteral { 6734 const StringLiteral *FExpr; 6735 int64_t Offset; 6736 6737 public: 6738 FormatStringLiteral(const StringLiteral *fexpr, int64_t Offset = 0) 6739 : FExpr(fexpr), Offset(Offset) {} 6740 6741 StringRef getString() const { 6742 return FExpr->getString().drop_front(Offset); 6743 } 6744 6745 unsigned getByteLength() const { 6746 return FExpr->getByteLength() - getCharByteWidth() * Offset; 6747 } 6748 6749 unsigned getLength() const { return FExpr->getLength() - Offset; } 6750 unsigned getCharByteWidth() const { return FExpr->getCharByteWidth(); } 6751 6752 StringLiteral::StringKind getKind() const { return FExpr->getKind(); } 6753 6754 QualType getType() const { return FExpr->getType(); } 6755 6756 bool isAscii() const { return FExpr->isAscii(); } 6757 bool isWide() const { return FExpr->isWide(); } 6758 bool isUTF8() const { return FExpr->isUTF8(); } 6759 bool isUTF16() const { return FExpr->isUTF16(); } 6760 bool isUTF32() const { return FExpr->isUTF32(); } 6761 bool isPascal() const { return FExpr->isPascal(); } 6762 6763 SourceLocation getLocationOfByte( 6764 unsigned ByteNo, const SourceManager &SM, const LangOptions &Features, 6765 const TargetInfo &Target, unsigned *StartToken = nullptr, 6766 unsigned *StartTokenByteOffset = nullptr) const { 6767 return FExpr->getLocationOfByte(ByteNo + Offset, SM, Features, Target, 6768 StartToken, StartTokenByteOffset); 6769 } 6770 6771 SourceLocation getBeginLoc() const LLVM_READONLY { 6772 return FExpr->getBeginLoc().getLocWithOffset(Offset); 6773 } 6774 6775 SourceLocation getEndLoc() const LLVM_READONLY { return FExpr->getEndLoc(); } 6776 }; 6777 6778 } // namespace 6779 6780 static void CheckFormatString(Sema &S, const FormatStringLiteral *FExpr, 6781 const Expr *OrigFormatExpr, 6782 ArrayRef<const Expr *> Args, 6783 bool HasVAListArg, unsigned format_idx, 6784 unsigned firstDataArg, 6785 Sema::FormatStringType Type, 6786 bool inFunctionCall, 6787 Sema::VariadicCallType CallType, 6788 llvm::SmallBitVector &CheckedVarArgs, 6789 UncoveredArgHandler &UncoveredArg, 6790 bool IgnoreStringsWithoutSpecifiers); 6791 6792 // Determine if an expression is a string literal or constant string. 6793 // If this function returns false on the arguments to a function expecting a 6794 // format string, we will usually need to emit a warning. 6795 // True string literals are then checked by CheckFormatString. 6796 static StringLiteralCheckType 6797 checkFormatStringExpr(Sema &S, const Expr *E, ArrayRef<const Expr *> Args, 6798 bool HasVAListArg, unsigned format_idx, 6799 unsigned firstDataArg, Sema::FormatStringType Type, 6800 Sema::VariadicCallType CallType, bool InFunctionCall, 6801 llvm::SmallBitVector &CheckedVarArgs, 6802 UncoveredArgHandler &UncoveredArg, 6803 llvm::APSInt Offset, 6804 bool IgnoreStringsWithoutSpecifiers = false) { 6805 if (S.isConstantEvaluated()) 6806 return SLCT_NotALiteral; 6807 tryAgain: 6808 assert(Offset.isSigned() && "invalid offset"); 6809 6810 if (E->isTypeDependent() || E->isValueDependent()) 6811 return SLCT_NotALiteral; 6812 6813 E = E->IgnoreParenCasts(); 6814 6815 if (E->isNullPointerConstant(S.Context, Expr::NPC_ValueDependentIsNotNull)) 6816 // Technically -Wformat-nonliteral does not warn about this case. 6817 // The behavior of printf and friends in this case is implementation 6818 // dependent. Ideally if the format string cannot be null then 6819 // it should have a 'nonnull' attribute in the function prototype. 6820 return SLCT_UncheckedLiteral; 6821 6822 switch (E->getStmtClass()) { 6823 case Stmt::BinaryConditionalOperatorClass: 6824 case Stmt::ConditionalOperatorClass: { 6825 // The expression is a literal if both sub-expressions were, and it was 6826 // completely checked only if both sub-expressions were checked. 6827 const AbstractConditionalOperator *C = 6828 cast<AbstractConditionalOperator>(E); 6829 6830 // Determine whether it is necessary to check both sub-expressions, for 6831 // example, because the condition expression is a constant that can be 6832 // evaluated at compile time. 6833 bool CheckLeft = true, CheckRight = true; 6834 6835 bool Cond; 6836 if (C->getCond()->EvaluateAsBooleanCondition(Cond, S.getASTContext(), 6837 S.isConstantEvaluated())) { 6838 if (Cond) 6839 CheckRight = false; 6840 else 6841 CheckLeft = false; 6842 } 6843 6844 // We need to maintain the offsets for the right and the left hand side 6845 // separately to check if every possible indexed expression is a valid 6846 // string literal. They might have different offsets for different string 6847 // literals in the end. 6848 StringLiteralCheckType Left; 6849 if (!CheckLeft) 6850 Left = SLCT_UncheckedLiteral; 6851 else { 6852 Left = checkFormatStringExpr(S, C->getTrueExpr(), Args, 6853 HasVAListArg, format_idx, firstDataArg, 6854 Type, CallType, InFunctionCall, 6855 CheckedVarArgs, UncoveredArg, Offset, 6856 IgnoreStringsWithoutSpecifiers); 6857 if (Left == SLCT_NotALiteral || !CheckRight) { 6858 return Left; 6859 } 6860 } 6861 6862 StringLiteralCheckType Right = checkFormatStringExpr( 6863 S, C->getFalseExpr(), Args, HasVAListArg, format_idx, firstDataArg, 6864 Type, CallType, InFunctionCall, CheckedVarArgs, UncoveredArg, Offset, 6865 IgnoreStringsWithoutSpecifiers); 6866 6867 return (CheckLeft && Left < Right) ? Left : Right; 6868 } 6869 6870 case Stmt::ImplicitCastExprClass: 6871 E = cast<ImplicitCastExpr>(E)->getSubExpr(); 6872 goto tryAgain; 6873 6874 case Stmt::OpaqueValueExprClass: 6875 if (const Expr *src = cast<OpaqueValueExpr>(E)->getSourceExpr()) { 6876 E = src; 6877 goto tryAgain; 6878 } 6879 return SLCT_NotALiteral; 6880 6881 case Stmt::PredefinedExprClass: 6882 // While __func__, etc., are technically not string literals, they 6883 // cannot contain format specifiers and thus are not a security 6884 // liability. 6885 return SLCT_UncheckedLiteral; 6886 6887 case Stmt::DeclRefExprClass: { 6888 const DeclRefExpr *DR = cast<DeclRefExpr>(E); 6889 6890 // As an exception, do not flag errors for variables binding to 6891 // const string literals. 6892 if (const VarDecl *VD = dyn_cast<VarDecl>(DR->getDecl())) { 6893 bool isConstant = false; 6894 QualType T = DR->getType(); 6895 6896 if (const ArrayType *AT = S.Context.getAsArrayType(T)) { 6897 isConstant = AT->getElementType().isConstant(S.Context); 6898 } else if (const PointerType *PT = T->getAs<PointerType>()) { 6899 isConstant = T.isConstant(S.Context) && 6900 PT->getPointeeType().isConstant(S.Context); 6901 } else if (T->isObjCObjectPointerType()) { 6902 // In ObjC, there is usually no "const ObjectPointer" type, 6903 // so don't check if the pointee type is constant. 6904 isConstant = T.isConstant(S.Context); 6905 } 6906 6907 if (isConstant) { 6908 if (const Expr *Init = VD->getAnyInitializer()) { 6909 // Look through initializers like const char c[] = { "foo" } 6910 if (const InitListExpr *InitList = dyn_cast<InitListExpr>(Init)) { 6911 if (InitList->isStringLiteralInit()) 6912 Init = InitList->getInit(0)->IgnoreParenImpCasts(); 6913 } 6914 return checkFormatStringExpr(S, Init, Args, 6915 HasVAListArg, format_idx, 6916 firstDataArg, Type, CallType, 6917 /*InFunctionCall*/ false, CheckedVarArgs, 6918 UncoveredArg, Offset); 6919 } 6920 } 6921 6922 // For vprintf* functions (i.e., HasVAListArg==true), we add a 6923 // special check to see if the format string is a function parameter 6924 // of the function calling the printf function. If the function 6925 // has an attribute indicating it is a printf-like function, then we 6926 // should suppress warnings concerning non-literals being used in a call 6927 // to a vprintf function. For example: 6928 // 6929 // void 6930 // logmessage(char const *fmt __attribute__ (format (printf, 1, 2)), ...){ 6931 // va_list ap; 6932 // va_start(ap, fmt); 6933 // vprintf(fmt, ap); // Do NOT emit a warning about "fmt". 6934 // ... 6935 // } 6936 if (HasVAListArg) { 6937 if (const ParmVarDecl *PV = dyn_cast<ParmVarDecl>(VD)) { 6938 if (const NamedDecl *ND = dyn_cast<NamedDecl>(PV->getDeclContext())) { 6939 int PVIndex = PV->getFunctionScopeIndex() + 1; 6940 for (const auto *PVFormat : ND->specific_attrs<FormatAttr>()) { 6941 // adjust for implicit parameter 6942 if (const CXXMethodDecl *MD = dyn_cast<CXXMethodDecl>(ND)) 6943 if (MD->isInstance()) 6944 ++PVIndex; 6945 // We also check if the formats are compatible. 6946 // We can't pass a 'scanf' string to a 'printf' function. 6947 if (PVIndex == PVFormat->getFormatIdx() && 6948 Type == S.GetFormatStringType(PVFormat)) 6949 return SLCT_UncheckedLiteral; 6950 } 6951 } 6952 } 6953 } 6954 } 6955 6956 return SLCT_NotALiteral; 6957 } 6958 6959 case Stmt::CallExprClass: 6960 case Stmt::CXXMemberCallExprClass: { 6961 const CallExpr *CE = cast<CallExpr>(E); 6962 if (const NamedDecl *ND = dyn_cast_or_null<NamedDecl>(CE->getCalleeDecl())) { 6963 bool IsFirst = true; 6964 StringLiteralCheckType CommonResult; 6965 for (const auto *FA : ND->specific_attrs<FormatArgAttr>()) { 6966 const Expr *Arg = CE->getArg(FA->getFormatIdx().getASTIndex()); 6967 StringLiteralCheckType Result = checkFormatStringExpr( 6968 S, Arg, Args, HasVAListArg, format_idx, firstDataArg, Type, 6969 CallType, InFunctionCall, CheckedVarArgs, UncoveredArg, Offset, 6970 IgnoreStringsWithoutSpecifiers); 6971 if (IsFirst) { 6972 CommonResult = Result; 6973 IsFirst = false; 6974 } 6975 } 6976 if (!IsFirst) 6977 return CommonResult; 6978 6979 if (const auto *FD = dyn_cast<FunctionDecl>(ND)) { 6980 unsigned BuiltinID = FD->getBuiltinID(); 6981 if (BuiltinID == Builtin::BI__builtin___CFStringMakeConstantString || 6982 BuiltinID == Builtin::BI__builtin___NSStringMakeConstantString) { 6983 const Expr *Arg = CE->getArg(0); 6984 return checkFormatStringExpr(S, Arg, Args, 6985 HasVAListArg, format_idx, 6986 firstDataArg, Type, CallType, 6987 InFunctionCall, CheckedVarArgs, 6988 UncoveredArg, Offset, 6989 IgnoreStringsWithoutSpecifiers); 6990 } 6991 } 6992 } 6993 6994 return SLCT_NotALiteral; 6995 } 6996 case Stmt::ObjCMessageExprClass: { 6997 const auto *ME = cast<ObjCMessageExpr>(E); 6998 if (const auto *MD = ME->getMethodDecl()) { 6999 if (const auto *FA = MD->getAttr<FormatArgAttr>()) { 7000 // As a special case heuristic, if we're using the method -[NSBundle 7001 // localizedStringForKey:value:table:], ignore any key strings that lack 7002 // format specifiers. The idea is that if the key doesn't have any 7003 // format specifiers then its probably just a key to map to the 7004 // localized strings. If it does have format specifiers though, then its 7005 // likely that the text of the key is the format string in the 7006 // programmer's language, and should be checked. 7007 const ObjCInterfaceDecl *IFace; 7008 if (MD->isInstanceMethod() && (IFace = MD->getClassInterface()) && 7009 IFace->getIdentifier()->isStr("NSBundle") && 7010 MD->getSelector().isKeywordSelector( 7011 {"localizedStringForKey", "value", "table"})) { 7012 IgnoreStringsWithoutSpecifiers = true; 7013 } 7014 7015 const Expr *Arg = ME->getArg(FA->getFormatIdx().getASTIndex()); 7016 return checkFormatStringExpr( 7017 S, Arg, Args, HasVAListArg, format_idx, firstDataArg, Type, 7018 CallType, InFunctionCall, CheckedVarArgs, UncoveredArg, Offset, 7019 IgnoreStringsWithoutSpecifiers); 7020 } 7021 } 7022 7023 return SLCT_NotALiteral; 7024 } 7025 case Stmt::ObjCStringLiteralClass: 7026 case Stmt::StringLiteralClass: { 7027 const StringLiteral *StrE = nullptr; 7028 7029 if (const ObjCStringLiteral *ObjCFExpr = dyn_cast<ObjCStringLiteral>(E)) 7030 StrE = ObjCFExpr->getString(); 7031 else 7032 StrE = cast<StringLiteral>(E); 7033 7034 if (StrE) { 7035 if (Offset.isNegative() || Offset > StrE->getLength()) { 7036 // TODO: It would be better to have an explicit warning for out of 7037 // bounds literals. 7038 return SLCT_NotALiteral; 7039 } 7040 FormatStringLiteral FStr(StrE, Offset.sextOrTrunc(64).getSExtValue()); 7041 CheckFormatString(S, &FStr, E, Args, HasVAListArg, format_idx, 7042 firstDataArg, Type, InFunctionCall, CallType, 7043 CheckedVarArgs, UncoveredArg, 7044 IgnoreStringsWithoutSpecifiers); 7045 return SLCT_CheckedLiteral; 7046 } 7047 7048 return SLCT_NotALiteral; 7049 } 7050 case Stmt::BinaryOperatorClass: { 7051 const BinaryOperator *BinOp = cast<BinaryOperator>(E); 7052 7053 // A string literal + an int offset is still a string literal. 7054 if (BinOp->isAdditiveOp()) { 7055 Expr::EvalResult LResult, RResult; 7056 7057 bool LIsInt = BinOp->getLHS()->EvaluateAsInt( 7058 LResult, S.Context, Expr::SE_NoSideEffects, S.isConstantEvaluated()); 7059 bool RIsInt = BinOp->getRHS()->EvaluateAsInt( 7060 RResult, S.Context, Expr::SE_NoSideEffects, S.isConstantEvaluated()); 7061 7062 if (LIsInt != RIsInt) { 7063 BinaryOperatorKind BinOpKind = BinOp->getOpcode(); 7064 7065 if (LIsInt) { 7066 if (BinOpKind == BO_Add) { 7067 sumOffsets(Offset, LResult.Val.getInt(), BinOpKind, RIsInt); 7068 E = BinOp->getRHS(); 7069 goto tryAgain; 7070 } 7071 } else { 7072 sumOffsets(Offset, RResult.Val.getInt(), BinOpKind, RIsInt); 7073 E = BinOp->getLHS(); 7074 goto tryAgain; 7075 } 7076 } 7077 } 7078 7079 return SLCT_NotALiteral; 7080 } 7081 case Stmt::UnaryOperatorClass: { 7082 const UnaryOperator *UnaOp = cast<UnaryOperator>(E); 7083 auto ASE = dyn_cast<ArraySubscriptExpr>(UnaOp->getSubExpr()); 7084 if (UnaOp->getOpcode() == UO_AddrOf && ASE) { 7085 Expr::EvalResult IndexResult; 7086 if (ASE->getRHS()->EvaluateAsInt(IndexResult, S.Context, 7087 Expr::SE_NoSideEffects, 7088 S.isConstantEvaluated())) { 7089 sumOffsets(Offset, IndexResult.Val.getInt(), BO_Add, 7090 /*RHS is int*/ true); 7091 E = ASE->getBase(); 7092 goto tryAgain; 7093 } 7094 } 7095 7096 return SLCT_NotALiteral; 7097 } 7098 7099 default: 7100 return SLCT_NotALiteral; 7101 } 7102 } 7103 7104 Sema::FormatStringType Sema::GetFormatStringType(const FormatAttr *Format) { 7105 return llvm::StringSwitch<FormatStringType>(Format->getType()->getName()) 7106 .Case("scanf", FST_Scanf) 7107 .Cases("printf", "printf0", FST_Printf) 7108 .Cases("NSString", "CFString", FST_NSString) 7109 .Case("strftime", FST_Strftime) 7110 .Case("strfmon", FST_Strfmon) 7111 .Cases("kprintf", "cmn_err", "vcmn_err", "zcmn_err", FST_Kprintf) 7112 .Case("freebsd_kprintf", FST_FreeBSDKPrintf) 7113 .Case("os_trace", FST_OSLog) 7114 .Case("os_log", FST_OSLog) 7115 .Default(FST_Unknown); 7116 } 7117 7118 /// CheckFormatArguments - Check calls to printf and scanf (and similar 7119 /// functions) for correct use of format strings. 7120 /// Returns true if a format string has been fully checked. 7121 bool Sema::CheckFormatArguments(const FormatAttr *Format, 7122 ArrayRef<const Expr *> Args, 7123 bool IsCXXMember, 7124 VariadicCallType CallType, 7125 SourceLocation Loc, SourceRange Range, 7126 llvm::SmallBitVector &CheckedVarArgs) { 7127 FormatStringInfo FSI; 7128 if (getFormatStringInfo(Format, IsCXXMember, &FSI)) 7129 return CheckFormatArguments(Args, FSI.HasVAListArg, FSI.FormatIdx, 7130 FSI.FirstDataArg, GetFormatStringType(Format), 7131 CallType, Loc, Range, CheckedVarArgs); 7132 return false; 7133 } 7134 7135 bool Sema::CheckFormatArguments(ArrayRef<const Expr *> Args, 7136 bool HasVAListArg, unsigned format_idx, 7137 unsigned firstDataArg, FormatStringType Type, 7138 VariadicCallType CallType, 7139 SourceLocation Loc, SourceRange Range, 7140 llvm::SmallBitVector &CheckedVarArgs) { 7141 // CHECK: printf/scanf-like function is called with no format string. 7142 if (format_idx >= Args.size()) { 7143 Diag(Loc, diag::warn_missing_format_string) << Range; 7144 return false; 7145 } 7146 7147 const Expr *OrigFormatExpr = Args[format_idx]->IgnoreParenCasts(); 7148 7149 // CHECK: format string is not a string literal. 7150 // 7151 // Dynamically generated format strings are difficult to 7152 // automatically vet at compile time. Requiring that format strings 7153 // are string literals: (1) permits the checking of format strings by 7154 // the compiler and thereby (2) can practically remove the source of 7155 // many format string exploits. 7156 7157 // Format string can be either ObjC string (e.g. @"%d") or 7158 // C string (e.g. "%d") 7159 // ObjC string uses the same format specifiers as C string, so we can use 7160 // the same format string checking logic for both ObjC and C strings. 7161 UncoveredArgHandler UncoveredArg; 7162 StringLiteralCheckType CT = 7163 checkFormatStringExpr(*this, OrigFormatExpr, Args, HasVAListArg, 7164 format_idx, firstDataArg, Type, CallType, 7165 /*IsFunctionCall*/ true, CheckedVarArgs, 7166 UncoveredArg, 7167 /*no string offset*/ llvm::APSInt(64, false) = 0); 7168 7169 // Generate a diagnostic where an uncovered argument is detected. 7170 if (UncoveredArg.hasUncoveredArg()) { 7171 unsigned ArgIdx = UncoveredArg.getUncoveredArg() + firstDataArg; 7172 assert(ArgIdx < Args.size() && "ArgIdx outside bounds"); 7173 UncoveredArg.Diagnose(*this, /*IsFunctionCall*/true, Args[ArgIdx]); 7174 } 7175 7176 if (CT != SLCT_NotALiteral) 7177 // Literal format string found, check done! 7178 return CT == SLCT_CheckedLiteral; 7179 7180 // Strftime is particular as it always uses a single 'time' argument, 7181 // so it is safe to pass a non-literal string. 7182 if (Type == FST_Strftime) 7183 return false; 7184 7185 // Do not emit diag when the string param is a macro expansion and the 7186 // format is either NSString or CFString. This is a hack to prevent 7187 // diag when using the NSLocalizedString and CFCopyLocalizedString macros 7188 // which are usually used in place of NS and CF string literals. 7189 SourceLocation FormatLoc = Args[format_idx]->getBeginLoc(); 7190 if (Type == FST_NSString && SourceMgr.isInSystemMacro(FormatLoc)) 7191 return false; 7192 7193 // If there are no arguments specified, warn with -Wformat-security, otherwise 7194 // warn only with -Wformat-nonliteral. 7195 if (Args.size() == firstDataArg) { 7196 Diag(FormatLoc, diag::warn_format_nonliteral_noargs) 7197 << OrigFormatExpr->getSourceRange(); 7198 switch (Type) { 7199 default: 7200 break; 7201 case FST_Kprintf: 7202 case FST_FreeBSDKPrintf: 7203 case FST_Printf: 7204 Diag(FormatLoc, diag::note_format_security_fixit) 7205 << FixItHint::CreateInsertion(FormatLoc, "\"%s\", "); 7206 break; 7207 case FST_NSString: 7208 Diag(FormatLoc, diag::note_format_security_fixit) 7209 << FixItHint::CreateInsertion(FormatLoc, "@\"%@\", "); 7210 break; 7211 } 7212 } else { 7213 Diag(FormatLoc, diag::warn_format_nonliteral) 7214 << OrigFormatExpr->getSourceRange(); 7215 } 7216 return false; 7217 } 7218 7219 namespace { 7220 7221 class CheckFormatHandler : public analyze_format_string::FormatStringHandler { 7222 protected: 7223 Sema &S; 7224 const FormatStringLiteral *FExpr; 7225 const Expr *OrigFormatExpr; 7226 const Sema::FormatStringType FSType; 7227 const unsigned FirstDataArg; 7228 const unsigned NumDataArgs; 7229 const char *Beg; // Start of format string. 7230 const bool HasVAListArg; 7231 ArrayRef<const Expr *> Args; 7232 unsigned FormatIdx; 7233 llvm::SmallBitVector CoveredArgs; 7234 bool usesPositionalArgs = false; 7235 bool atFirstArg = true; 7236 bool inFunctionCall; 7237 Sema::VariadicCallType CallType; 7238 llvm::SmallBitVector &CheckedVarArgs; 7239 UncoveredArgHandler &UncoveredArg; 7240 7241 public: 7242 CheckFormatHandler(Sema &s, const FormatStringLiteral *fexpr, 7243 const Expr *origFormatExpr, 7244 const Sema::FormatStringType type, unsigned firstDataArg, 7245 unsigned numDataArgs, const char *beg, bool hasVAListArg, 7246 ArrayRef<const Expr *> Args, unsigned formatIdx, 7247 bool inFunctionCall, Sema::VariadicCallType callType, 7248 llvm::SmallBitVector &CheckedVarArgs, 7249 UncoveredArgHandler &UncoveredArg) 7250 : S(s), FExpr(fexpr), OrigFormatExpr(origFormatExpr), FSType(type), 7251 FirstDataArg(firstDataArg), NumDataArgs(numDataArgs), Beg(beg), 7252 HasVAListArg(hasVAListArg), Args(Args), FormatIdx(formatIdx), 7253 inFunctionCall(inFunctionCall), CallType(callType), 7254 CheckedVarArgs(CheckedVarArgs), UncoveredArg(UncoveredArg) { 7255 CoveredArgs.resize(numDataArgs); 7256 CoveredArgs.reset(); 7257 } 7258 7259 void DoneProcessing(); 7260 7261 void HandleIncompleteSpecifier(const char *startSpecifier, 7262 unsigned specifierLen) override; 7263 7264 void HandleInvalidLengthModifier( 7265 const analyze_format_string::FormatSpecifier &FS, 7266 const analyze_format_string::ConversionSpecifier &CS, 7267 const char *startSpecifier, unsigned specifierLen, 7268 unsigned DiagID); 7269 7270 void HandleNonStandardLengthModifier( 7271 const analyze_format_string::FormatSpecifier &FS, 7272 const char *startSpecifier, unsigned specifierLen); 7273 7274 void HandleNonStandardConversionSpecifier( 7275 const analyze_format_string::ConversionSpecifier &CS, 7276 const char *startSpecifier, unsigned specifierLen); 7277 7278 void HandlePosition(const char *startPos, unsigned posLen) override; 7279 7280 void HandleInvalidPosition(const char *startSpecifier, 7281 unsigned specifierLen, 7282 analyze_format_string::PositionContext p) override; 7283 7284 void HandleZeroPosition(const char *startPos, unsigned posLen) override; 7285 7286 void HandleNullChar(const char *nullCharacter) override; 7287 7288 template <typename Range> 7289 static void 7290 EmitFormatDiagnostic(Sema &S, bool inFunctionCall, const Expr *ArgumentExpr, 7291 const PartialDiagnostic &PDiag, SourceLocation StringLoc, 7292 bool IsStringLocation, Range StringRange, 7293 ArrayRef<FixItHint> Fixit = None); 7294 7295 protected: 7296 bool HandleInvalidConversionSpecifier(unsigned argIndex, SourceLocation Loc, 7297 const char *startSpec, 7298 unsigned specifierLen, 7299 const char *csStart, unsigned csLen); 7300 7301 void HandlePositionalNonpositionalArgs(SourceLocation Loc, 7302 const char *startSpec, 7303 unsigned specifierLen); 7304 7305 SourceRange getFormatStringRange(); 7306 CharSourceRange getSpecifierRange(const char *startSpecifier, 7307 unsigned specifierLen); 7308 SourceLocation getLocationOfByte(const char *x); 7309 7310 const Expr *getDataArg(unsigned i) const; 7311 7312 bool CheckNumArgs(const analyze_format_string::FormatSpecifier &FS, 7313 const analyze_format_string::ConversionSpecifier &CS, 7314 const char *startSpecifier, unsigned specifierLen, 7315 unsigned argIndex); 7316 7317 template <typename Range> 7318 void EmitFormatDiagnostic(PartialDiagnostic PDiag, SourceLocation StringLoc, 7319 bool IsStringLocation, Range StringRange, 7320 ArrayRef<FixItHint> Fixit = None); 7321 }; 7322 7323 } // namespace 7324 7325 SourceRange CheckFormatHandler::getFormatStringRange() { 7326 return OrigFormatExpr->getSourceRange(); 7327 } 7328 7329 CharSourceRange CheckFormatHandler:: 7330 getSpecifierRange(const char *startSpecifier, unsigned specifierLen) { 7331 SourceLocation Start = getLocationOfByte(startSpecifier); 7332 SourceLocation End = getLocationOfByte(startSpecifier + specifierLen - 1); 7333 7334 // Advance the end SourceLocation by one due to half-open ranges. 7335 End = End.getLocWithOffset(1); 7336 7337 return CharSourceRange::getCharRange(Start, End); 7338 } 7339 7340 SourceLocation CheckFormatHandler::getLocationOfByte(const char *x) { 7341 return FExpr->getLocationOfByte(x - Beg, S.getSourceManager(), 7342 S.getLangOpts(), S.Context.getTargetInfo()); 7343 } 7344 7345 void CheckFormatHandler::HandleIncompleteSpecifier(const char *startSpecifier, 7346 unsigned specifierLen){ 7347 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_incomplete_specifier), 7348 getLocationOfByte(startSpecifier), 7349 /*IsStringLocation*/true, 7350 getSpecifierRange(startSpecifier, specifierLen)); 7351 } 7352 7353 void CheckFormatHandler::HandleInvalidLengthModifier( 7354 const analyze_format_string::FormatSpecifier &FS, 7355 const analyze_format_string::ConversionSpecifier &CS, 7356 const char *startSpecifier, unsigned specifierLen, unsigned DiagID) { 7357 using namespace analyze_format_string; 7358 7359 const LengthModifier &LM = FS.getLengthModifier(); 7360 CharSourceRange LMRange = getSpecifierRange(LM.getStart(), LM.getLength()); 7361 7362 // See if we know how to fix this length modifier. 7363 Optional<LengthModifier> FixedLM = FS.getCorrectedLengthModifier(); 7364 if (FixedLM) { 7365 EmitFormatDiagnostic(S.PDiag(DiagID) << LM.toString() << CS.toString(), 7366 getLocationOfByte(LM.getStart()), 7367 /*IsStringLocation*/true, 7368 getSpecifierRange(startSpecifier, specifierLen)); 7369 7370 S.Diag(getLocationOfByte(LM.getStart()), diag::note_format_fix_specifier) 7371 << FixedLM->toString() 7372 << FixItHint::CreateReplacement(LMRange, FixedLM->toString()); 7373 7374 } else { 7375 FixItHint Hint; 7376 if (DiagID == diag::warn_format_nonsensical_length) 7377 Hint = FixItHint::CreateRemoval(LMRange); 7378 7379 EmitFormatDiagnostic(S.PDiag(DiagID) << LM.toString() << CS.toString(), 7380 getLocationOfByte(LM.getStart()), 7381 /*IsStringLocation*/true, 7382 getSpecifierRange(startSpecifier, specifierLen), 7383 Hint); 7384 } 7385 } 7386 7387 void CheckFormatHandler::HandleNonStandardLengthModifier( 7388 const analyze_format_string::FormatSpecifier &FS, 7389 const char *startSpecifier, unsigned specifierLen) { 7390 using namespace analyze_format_string; 7391 7392 const LengthModifier &LM = FS.getLengthModifier(); 7393 CharSourceRange LMRange = getSpecifierRange(LM.getStart(), LM.getLength()); 7394 7395 // See if we know how to fix this length modifier. 7396 Optional<LengthModifier> FixedLM = FS.getCorrectedLengthModifier(); 7397 if (FixedLM) { 7398 EmitFormatDiagnostic(S.PDiag(diag::warn_format_non_standard) 7399 << LM.toString() << 0, 7400 getLocationOfByte(LM.getStart()), 7401 /*IsStringLocation*/true, 7402 getSpecifierRange(startSpecifier, specifierLen)); 7403 7404 S.Diag(getLocationOfByte(LM.getStart()), diag::note_format_fix_specifier) 7405 << FixedLM->toString() 7406 << FixItHint::CreateReplacement(LMRange, FixedLM->toString()); 7407 7408 } else { 7409 EmitFormatDiagnostic(S.PDiag(diag::warn_format_non_standard) 7410 << LM.toString() << 0, 7411 getLocationOfByte(LM.getStart()), 7412 /*IsStringLocation*/true, 7413 getSpecifierRange(startSpecifier, specifierLen)); 7414 } 7415 } 7416 7417 void CheckFormatHandler::HandleNonStandardConversionSpecifier( 7418 const analyze_format_string::ConversionSpecifier &CS, 7419 const char *startSpecifier, unsigned specifierLen) { 7420 using namespace analyze_format_string; 7421 7422 // See if we know how to fix this conversion specifier. 7423 Optional<ConversionSpecifier> FixedCS = CS.getStandardSpecifier(); 7424 if (FixedCS) { 7425 EmitFormatDiagnostic(S.PDiag(diag::warn_format_non_standard) 7426 << CS.toString() << /*conversion specifier*/1, 7427 getLocationOfByte(CS.getStart()), 7428 /*IsStringLocation*/true, 7429 getSpecifierRange(startSpecifier, specifierLen)); 7430 7431 CharSourceRange CSRange = getSpecifierRange(CS.getStart(), CS.getLength()); 7432 S.Diag(getLocationOfByte(CS.getStart()), diag::note_format_fix_specifier) 7433 << FixedCS->toString() 7434 << FixItHint::CreateReplacement(CSRange, FixedCS->toString()); 7435 } else { 7436 EmitFormatDiagnostic(S.PDiag(diag::warn_format_non_standard) 7437 << CS.toString() << /*conversion specifier*/1, 7438 getLocationOfByte(CS.getStart()), 7439 /*IsStringLocation*/true, 7440 getSpecifierRange(startSpecifier, specifierLen)); 7441 } 7442 } 7443 7444 void CheckFormatHandler::HandlePosition(const char *startPos, 7445 unsigned posLen) { 7446 EmitFormatDiagnostic(S.PDiag(diag::warn_format_non_standard_positional_arg), 7447 getLocationOfByte(startPos), 7448 /*IsStringLocation*/true, 7449 getSpecifierRange(startPos, posLen)); 7450 } 7451 7452 void 7453 CheckFormatHandler::HandleInvalidPosition(const char *startPos, unsigned posLen, 7454 analyze_format_string::PositionContext p) { 7455 EmitFormatDiagnostic(S.PDiag(diag::warn_format_invalid_positional_specifier) 7456 << (unsigned) p, 7457 getLocationOfByte(startPos), /*IsStringLocation*/true, 7458 getSpecifierRange(startPos, posLen)); 7459 } 7460 7461 void CheckFormatHandler::HandleZeroPosition(const char *startPos, 7462 unsigned posLen) { 7463 EmitFormatDiagnostic(S.PDiag(diag::warn_format_zero_positional_specifier), 7464 getLocationOfByte(startPos), 7465 /*IsStringLocation*/true, 7466 getSpecifierRange(startPos, posLen)); 7467 } 7468 7469 void CheckFormatHandler::HandleNullChar(const char *nullCharacter) { 7470 if (!isa<ObjCStringLiteral>(OrigFormatExpr)) { 7471 // The presence of a null character is likely an error. 7472 EmitFormatDiagnostic( 7473 S.PDiag(diag::warn_printf_format_string_contains_null_char), 7474 getLocationOfByte(nullCharacter), /*IsStringLocation*/true, 7475 getFormatStringRange()); 7476 } 7477 } 7478 7479 // Note that this may return NULL if there was an error parsing or building 7480 // one of the argument expressions. 7481 const Expr *CheckFormatHandler::getDataArg(unsigned i) const { 7482 return Args[FirstDataArg + i]; 7483 } 7484 7485 void CheckFormatHandler::DoneProcessing() { 7486 // Does the number of data arguments exceed the number of 7487 // format conversions in the format string? 7488 if (!HasVAListArg) { 7489 // Find any arguments that weren't covered. 7490 CoveredArgs.flip(); 7491 signed notCoveredArg = CoveredArgs.find_first(); 7492 if (notCoveredArg >= 0) { 7493 assert((unsigned)notCoveredArg < NumDataArgs); 7494 UncoveredArg.Update(notCoveredArg, OrigFormatExpr); 7495 } else { 7496 UncoveredArg.setAllCovered(); 7497 } 7498 } 7499 } 7500 7501 void UncoveredArgHandler::Diagnose(Sema &S, bool IsFunctionCall, 7502 const Expr *ArgExpr) { 7503 assert(hasUncoveredArg() && DiagnosticExprs.size() > 0 && 7504 "Invalid state"); 7505 7506 if (!ArgExpr) 7507 return; 7508 7509 SourceLocation Loc = ArgExpr->getBeginLoc(); 7510 7511 if (S.getSourceManager().isInSystemMacro(Loc)) 7512 return; 7513 7514 PartialDiagnostic PDiag = S.PDiag(diag::warn_printf_data_arg_not_used); 7515 for (auto E : DiagnosticExprs) 7516 PDiag << E->getSourceRange(); 7517 7518 CheckFormatHandler::EmitFormatDiagnostic( 7519 S, IsFunctionCall, DiagnosticExprs[0], 7520 PDiag, Loc, /*IsStringLocation*/false, 7521 DiagnosticExprs[0]->getSourceRange()); 7522 } 7523 7524 bool 7525 CheckFormatHandler::HandleInvalidConversionSpecifier(unsigned argIndex, 7526 SourceLocation Loc, 7527 const char *startSpec, 7528 unsigned specifierLen, 7529 const char *csStart, 7530 unsigned csLen) { 7531 bool keepGoing = true; 7532 if (argIndex < NumDataArgs) { 7533 // Consider the argument coverered, even though the specifier doesn't 7534 // make sense. 7535 CoveredArgs.set(argIndex); 7536 } 7537 else { 7538 // If argIndex exceeds the number of data arguments we 7539 // don't issue a warning because that is just a cascade of warnings (and 7540 // they may have intended '%%' anyway). We don't want to continue processing 7541 // the format string after this point, however, as we will like just get 7542 // gibberish when trying to match arguments. 7543 keepGoing = false; 7544 } 7545 7546 StringRef Specifier(csStart, csLen); 7547 7548 // If the specifier in non-printable, it could be the first byte of a UTF-8 7549 // sequence. In that case, print the UTF-8 code point. If not, print the byte 7550 // hex value. 7551 std::string CodePointStr; 7552 if (!llvm::sys::locale::isPrint(*csStart)) { 7553 llvm::UTF32 CodePoint; 7554 const llvm::UTF8 **B = reinterpret_cast<const llvm::UTF8 **>(&csStart); 7555 const llvm::UTF8 *E = 7556 reinterpret_cast<const llvm::UTF8 *>(csStart + csLen); 7557 llvm::ConversionResult Result = 7558 llvm::convertUTF8Sequence(B, E, &CodePoint, llvm::strictConversion); 7559 7560 if (Result != llvm::conversionOK) { 7561 unsigned char FirstChar = *csStart; 7562 CodePoint = (llvm::UTF32)FirstChar; 7563 } 7564 7565 llvm::raw_string_ostream OS(CodePointStr); 7566 if (CodePoint < 256) 7567 OS << "\\x" << llvm::format("%02x", CodePoint); 7568 else if (CodePoint <= 0xFFFF) 7569 OS << "\\u" << llvm::format("%04x", CodePoint); 7570 else 7571 OS << "\\U" << llvm::format("%08x", CodePoint); 7572 OS.flush(); 7573 Specifier = CodePointStr; 7574 } 7575 7576 EmitFormatDiagnostic( 7577 S.PDiag(diag::warn_format_invalid_conversion) << Specifier, Loc, 7578 /*IsStringLocation*/ true, getSpecifierRange(startSpec, specifierLen)); 7579 7580 return keepGoing; 7581 } 7582 7583 void 7584 CheckFormatHandler::HandlePositionalNonpositionalArgs(SourceLocation Loc, 7585 const char *startSpec, 7586 unsigned specifierLen) { 7587 EmitFormatDiagnostic( 7588 S.PDiag(diag::warn_format_mix_positional_nonpositional_args), 7589 Loc, /*isStringLoc*/true, getSpecifierRange(startSpec, specifierLen)); 7590 } 7591 7592 bool 7593 CheckFormatHandler::CheckNumArgs( 7594 const analyze_format_string::FormatSpecifier &FS, 7595 const analyze_format_string::ConversionSpecifier &CS, 7596 const char *startSpecifier, unsigned specifierLen, unsigned argIndex) { 7597 7598 if (argIndex >= NumDataArgs) { 7599 PartialDiagnostic PDiag = FS.usesPositionalArg() 7600 ? (S.PDiag(diag::warn_printf_positional_arg_exceeds_data_args) 7601 << (argIndex+1) << NumDataArgs) 7602 : S.PDiag(diag::warn_printf_insufficient_data_args); 7603 EmitFormatDiagnostic( 7604 PDiag, getLocationOfByte(CS.getStart()), /*IsStringLocation*/true, 7605 getSpecifierRange(startSpecifier, specifierLen)); 7606 7607 // Since more arguments than conversion tokens are given, by extension 7608 // all arguments are covered, so mark this as so. 7609 UncoveredArg.setAllCovered(); 7610 return false; 7611 } 7612 return true; 7613 } 7614 7615 template<typename Range> 7616 void CheckFormatHandler::EmitFormatDiagnostic(PartialDiagnostic PDiag, 7617 SourceLocation Loc, 7618 bool IsStringLocation, 7619 Range StringRange, 7620 ArrayRef<FixItHint> FixIt) { 7621 EmitFormatDiagnostic(S, inFunctionCall, Args[FormatIdx], PDiag, 7622 Loc, IsStringLocation, StringRange, FixIt); 7623 } 7624 7625 /// If the format string is not within the function call, emit a note 7626 /// so that the function call and string are in diagnostic messages. 7627 /// 7628 /// \param InFunctionCall if true, the format string is within the function 7629 /// call and only one diagnostic message will be produced. Otherwise, an 7630 /// extra note will be emitted pointing to location of the format string. 7631 /// 7632 /// \param ArgumentExpr the expression that is passed as the format string 7633 /// argument in the function call. Used for getting locations when two 7634 /// diagnostics are emitted. 7635 /// 7636 /// \param PDiag the callee should already have provided any strings for the 7637 /// diagnostic message. This function only adds locations and fixits 7638 /// to diagnostics. 7639 /// 7640 /// \param Loc primary location for diagnostic. If two diagnostics are 7641 /// required, one will be at Loc and a new SourceLocation will be created for 7642 /// the other one. 7643 /// 7644 /// \param IsStringLocation if true, Loc points to the format string should be 7645 /// used for the note. Otherwise, Loc points to the argument list and will 7646 /// be used with PDiag. 7647 /// 7648 /// \param StringRange some or all of the string to highlight. This is 7649 /// templated so it can accept either a CharSourceRange or a SourceRange. 7650 /// 7651 /// \param FixIt optional fix it hint for the format string. 7652 template <typename Range> 7653 void CheckFormatHandler::EmitFormatDiagnostic( 7654 Sema &S, bool InFunctionCall, const Expr *ArgumentExpr, 7655 const PartialDiagnostic &PDiag, SourceLocation Loc, bool IsStringLocation, 7656 Range StringRange, ArrayRef<FixItHint> FixIt) { 7657 if (InFunctionCall) { 7658 const Sema::SemaDiagnosticBuilder &D = S.Diag(Loc, PDiag); 7659 D << StringRange; 7660 D << FixIt; 7661 } else { 7662 S.Diag(IsStringLocation ? ArgumentExpr->getExprLoc() : Loc, PDiag) 7663 << ArgumentExpr->getSourceRange(); 7664 7665 const Sema::SemaDiagnosticBuilder &Note = 7666 S.Diag(IsStringLocation ? Loc : StringRange.getBegin(), 7667 diag::note_format_string_defined); 7668 7669 Note << StringRange; 7670 Note << FixIt; 7671 } 7672 } 7673 7674 //===--- CHECK: Printf format string checking ------------------------------===// 7675 7676 namespace { 7677 7678 class CheckPrintfHandler : public CheckFormatHandler { 7679 public: 7680 CheckPrintfHandler(Sema &s, const FormatStringLiteral *fexpr, 7681 const Expr *origFormatExpr, 7682 const Sema::FormatStringType type, unsigned firstDataArg, 7683 unsigned numDataArgs, bool isObjC, const char *beg, 7684 bool hasVAListArg, ArrayRef<const Expr *> Args, 7685 unsigned formatIdx, bool inFunctionCall, 7686 Sema::VariadicCallType CallType, 7687 llvm::SmallBitVector &CheckedVarArgs, 7688 UncoveredArgHandler &UncoveredArg) 7689 : CheckFormatHandler(s, fexpr, origFormatExpr, type, firstDataArg, 7690 numDataArgs, beg, hasVAListArg, Args, formatIdx, 7691 inFunctionCall, CallType, CheckedVarArgs, 7692 UncoveredArg) {} 7693 7694 bool isObjCContext() const { return FSType == Sema::FST_NSString; } 7695 7696 /// Returns true if '%@' specifiers are allowed in the format string. 7697 bool allowsObjCArg() const { 7698 return FSType == Sema::FST_NSString || FSType == Sema::FST_OSLog || 7699 FSType == Sema::FST_OSTrace; 7700 } 7701 7702 bool HandleInvalidPrintfConversionSpecifier( 7703 const analyze_printf::PrintfSpecifier &FS, 7704 const char *startSpecifier, 7705 unsigned specifierLen) override; 7706 7707 void handleInvalidMaskType(StringRef MaskType) override; 7708 7709 bool HandlePrintfSpecifier(const analyze_printf::PrintfSpecifier &FS, 7710 const char *startSpecifier, 7711 unsigned specifierLen) override; 7712 bool checkFormatExpr(const analyze_printf::PrintfSpecifier &FS, 7713 const char *StartSpecifier, 7714 unsigned SpecifierLen, 7715 const Expr *E); 7716 7717 bool HandleAmount(const analyze_format_string::OptionalAmount &Amt, unsigned k, 7718 const char *startSpecifier, unsigned specifierLen); 7719 void HandleInvalidAmount(const analyze_printf::PrintfSpecifier &FS, 7720 const analyze_printf::OptionalAmount &Amt, 7721 unsigned type, 7722 const char *startSpecifier, unsigned specifierLen); 7723 void HandleFlag(const analyze_printf::PrintfSpecifier &FS, 7724 const analyze_printf::OptionalFlag &flag, 7725 const char *startSpecifier, unsigned specifierLen); 7726 void HandleIgnoredFlag(const analyze_printf::PrintfSpecifier &FS, 7727 const analyze_printf::OptionalFlag &ignoredFlag, 7728 const analyze_printf::OptionalFlag &flag, 7729 const char *startSpecifier, unsigned specifierLen); 7730 bool checkForCStrMembers(const analyze_printf::ArgType &AT, 7731 const Expr *E); 7732 7733 void HandleEmptyObjCModifierFlag(const char *startFlag, 7734 unsigned flagLen) override; 7735 7736 void HandleInvalidObjCModifierFlag(const char *startFlag, 7737 unsigned flagLen) override; 7738 7739 void HandleObjCFlagsWithNonObjCConversion(const char *flagsStart, 7740 const char *flagsEnd, 7741 const char *conversionPosition) 7742 override; 7743 }; 7744 7745 } // namespace 7746 7747 bool CheckPrintfHandler::HandleInvalidPrintfConversionSpecifier( 7748 const analyze_printf::PrintfSpecifier &FS, 7749 const char *startSpecifier, 7750 unsigned specifierLen) { 7751 const analyze_printf::PrintfConversionSpecifier &CS = 7752 FS.getConversionSpecifier(); 7753 7754 return HandleInvalidConversionSpecifier(FS.getArgIndex(), 7755 getLocationOfByte(CS.getStart()), 7756 startSpecifier, specifierLen, 7757 CS.getStart(), CS.getLength()); 7758 } 7759 7760 void CheckPrintfHandler::handleInvalidMaskType(StringRef MaskType) { 7761 S.Diag(getLocationOfByte(MaskType.data()), diag::err_invalid_mask_type_size); 7762 } 7763 7764 bool CheckPrintfHandler::HandleAmount( 7765 const analyze_format_string::OptionalAmount &Amt, 7766 unsigned k, const char *startSpecifier, 7767 unsigned specifierLen) { 7768 if (Amt.hasDataArgument()) { 7769 if (!HasVAListArg) { 7770 unsigned argIndex = Amt.getArgIndex(); 7771 if (argIndex >= NumDataArgs) { 7772 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_asterisk_missing_arg) 7773 << k, 7774 getLocationOfByte(Amt.getStart()), 7775 /*IsStringLocation*/true, 7776 getSpecifierRange(startSpecifier, specifierLen)); 7777 // Don't do any more checking. We will just emit 7778 // spurious errors. 7779 return false; 7780 } 7781 7782 // Type check the data argument. It should be an 'int'. 7783 // Although not in conformance with C99, we also allow the argument to be 7784 // an 'unsigned int' as that is a reasonably safe case. GCC also 7785 // doesn't emit a warning for that case. 7786 CoveredArgs.set(argIndex); 7787 const Expr *Arg = getDataArg(argIndex); 7788 if (!Arg) 7789 return false; 7790 7791 QualType T = Arg->getType(); 7792 7793 const analyze_printf::ArgType &AT = Amt.getArgType(S.Context); 7794 assert(AT.isValid()); 7795 7796 if (!AT.matchesType(S.Context, T)) { 7797 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_asterisk_wrong_type) 7798 << k << AT.getRepresentativeTypeName(S.Context) 7799 << T << Arg->getSourceRange(), 7800 getLocationOfByte(Amt.getStart()), 7801 /*IsStringLocation*/true, 7802 getSpecifierRange(startSpecifier, specifierLen)); 7803 // Don't do any more checking. We will just emit 7804 // spurious errors. 7805 return false; 7806 } 7807 } 7808 } 7809 return true; 7810 } 7811 7812 void CheckPrintfHandler::HandleInvalidAmount( 7813 const analyze_printf::PrintfSpecifier &FS, 7814 const analyze_printf::OptionalAmount &Amt, 7815 unsigned type, 7816 const char *startSpecifier, 7817 unsigned specifierLen) { 7818 const analyze_printf::PrintfConversionSpecifier &CS = 7819 FS.getConversionSpecifier(); 7820 7821 FixItHint fixit = 7822 Amt.getHowSpecified() == analyze_printf::OptionalAmount::Constant 7823 ? FixItHint::CreateRemoval(getSpecifierRange(Amt.getStart(), 7824 Amt.getConstantLength())) 7825 : FixItHint(); 7826 7827 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_nonsensical_optional_amount) 7828 << type << CS.toString(), 7829 getLocationOfByte(Amt.getStart()), 7830 /*IsStringLocation*/true, 7831 getSpecifierRange(startSpecifier, specifierLen), 7832 fixit); 7833 } 7834 7835 void CheckPrintfHandler::HandleFlag(const analyze_printf::PrintfSpecifier &FS, 7836 const analyze_printf::OptionalFlag &flag, 7837 const char *startSpecifier, 7838 unsigned specifierLen) { 7839 // Warn about pointless flag with a fixit removal. 7840 const analyze_printf::PrintfConversionSpecifier &CS = 7841 FS.getConversionSpecifier(); 7842 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_nonsensical_flag) 7843 << flag.toString() << CS.toString(), 7844 getLocationOfByte(flag.getPosition()), 7845 /*IsStringLocation*/true, 7846 getSpecifierRange(startSpecifier, specifierLen), 7847 FixItHint::CreateRemoval( 7848 getSpecifierRange(flag.getPosition(), 1))); 7849 } 7850 7851 void CheckPrintfHandler::HandleIgnoredFlag( 7852 const analyze_printf::PrintfSpecifier &FS, 7853 const analyze_printf::OptionalFlag &ignoredFlag, 7854 const analyze_printf::OptionalFlag &flag, 7855 const char *startSpecifier, 7856 unsigned specifierLen) { 7857 // Warn about ignored flag with a fixit removal. 7858 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_ignored_flag) 7859 << ignoredFlag.toString() << flag.toString(), 7860 getLocationOfByte(ignoredFlag.getPosition()), 7861 /*IsStringLocation*/true, 7862 getSpecifierRange(startSpecifier, specifierLen), 7863 FixItHint::CreateRemoval( 7864 getSpecifierRange(ignoredFlag.getPosition(), 1))); 7865 } 7866 7867 void CheckPrintfHandler::HandleEmptyObjCModifierFlag(const char *startFlag, 7868 unsigned flagLen) { 7869 // Warn about an empty flag. 7870 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_empty_objc_flag), 7871 getLocationOfByte(startFlag), 7872 /*IsStringLocation*/true, 7873 getSpecifierRange(startFlag, flagLen)); 7874 } 7875 7876 void CheckPrintfHandler::HandleInvalidObjCModifierFlag(const char *startFlag, 7877 unsigned flagLen) { 7878 // Warn about an invalid flag. 7879 auto Range = getSpecifierRange(startFlag, flagLen); 7880 StringRef flag(startFlag, flagLen); 7881 EmitFormatDiagnostic(S.PDiag(diag::warn_printf_invalid_objc_flag) << flag, 7882 getLocationOfByte(startFlag), 7883 /*IsStringLocation*/true, 7884 Range, FixItHint::CreateRemoval(Range)); 7885 } 7886 7887 void CheckPrintfHandler::HandleObjCFlagsWithNonObjCConversion( 7888 const char *flagsStart, const char *flagsEnd, const char *conversionPosition) { 7889 // Warn about using '[...]' without a '@' conversion. 7890 auto Range = getSpecifierRange(flagsStart, flagsEnd - flagsStart + 1); 7891 auto diag = diag::warn_printf_ObjCflags_without_ObjCConversion; 7892 EmitFormatDiagnostic(S.PDiag(diag) << StringRef(conversionPosition, 1), 7893 getLocationOfByte(conversionPosition), 7894 /*IsStringLocation*/true, 7895 Range, FixItHint::CreateRemoval(Range)); 7896 } 7897 7898 // Determines if the specified is a C++ class or struct containing 7899 // a member with the specified name and kind (e.g. a CXXMethodDecl named 7900 // "c_str()"). 7901 template<typename MemberKind> 7902 static llvm::SmallPtrSet<MemberKind*, 1> 7903 CXXRecordMembersNamed(StringRef Name, Sema &S, QualType Ty) { 7904 const RecordType *RT = Ty->getAs<RecordType>(); 7905 llvm::SmallPtrSet<MemberKind*, 1> Results; 7906 7907 if (!RT) 7908 return Results; 7909 const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(RT->getDecl()); 7910 if (!RD || !RD->getDefinition()) 7911 return Results; 7912 7913 LookupResult R(S, &S.Context.Idents.get(Name), SourceLocation(), 7914 Sema::LookupMemberName); 7915 R.suppressDiagnostics(); 7916 7917 // We just need to include all members of the right kind turned up by the 7918 // filter, at this point. 7919 if (S.LookupQualifiedName(R, RT->getDecl())) 7920 for (LookupResult::iterator I = R.begin(), E = R.end(); I != E; ++I) { 7921 NamedDecl *decl = (*I)->getUnderlyingDecl(); 7922 if (MemberKind *FK = dyn_cast<MemberKind>(decl)) 7923 Results.insert(FK); 7924 } 7925 return Results; 7926 } 7927 7928 /// Check if we could call '.c_str()' on an object. 7929 /// 7930 /// FIXME: This returns the wrong results in some cases (if cv-qualifiers don't 7931 /// allow the call, or if it would be ambiguous). 7932 bool Sema::hasCStrMethod(const Expr *E) { 7933 using MethodSet = llvm::SmallPtrSet<CXXMethodDecl *, 1>; 7934 7935 MethodSet Results = 7936 CXXRecordMembersNamed<CXXMethodDecl>("c_str", *this, E->getType()); 7937 for (MethodSet::iterator MI = Results.begin(), ME = Results.end(); 7938 MI != ME; ++MI) 7939 if ((*MI)->getMinRequiredArguments() == 0) 7940 return true; 7941 return false; 7942 } 7943 7944 // Check if a (w)string was passed when a (w)char* was needed, and offer a 7945 // better diagnostic if so. AT is assumed to be valid. 7946 // Returns true when a c_str() conversion method is found. 7947 bool CheckPrintfHandler::checkForCStrMembers( 7948 const analyze_printf::ArgType &AT, const Expr *E) { 7949 using MethodSet = llvm::SmallPtrSet<CXXMethodDecl *, 1>; 7950 7951 MethodSet Results = 7952 CXXRecordMembersNamed<CXXMethodDecl>("c_str", S, E->getType()); 7953 7954 for (MethodSet::iterator MI = Results.begin(), ME = Results.end(); 7955 MI != ME; ++MI) { 7956 const CXXMethodDecl *Method = *MI; 7957 if (Method->getMinRequiredArguments() == 0 && 7958 AT.matchesType(S.Context, Method->getReturnType())) { 7959 // FIXME: Suggest parens if the expression needs them. 7960 SourceLocation EndLoc = S.getLocForEndOfToken(E->getEndLoc()); 7961 S.Diag(E->getBeginLoc(), diag::note_printf_c_str) 7962 << "c_str()" << FixItHint::CreateInsertion(EndLoc, ".c_str()"); 7963 return true; 7964 } 7965 } 7966 7967 return false; 7968 } 7969 7970 bool 7971 CheckPrintfHandler::HandlePrintfSpecifier(const analyze_printf::PrintfSpecifier 7972 &FS, 7973 const char *startSpecifier, 7974 unsigned specifierLen) { 7975 using namespace analyze_format_string; 7976 using namespace analyze_printf; 7977 7978 const PrintfConversionSpecifier &CS = FS.getConversionSpecifier(); 7979 7980 if (FS.consumesDataArgument()) { 7981 if (atFirstArg) { 7982 atFirstArg = false; 7983 usesPositionalArgs = FS.usesPositionalArg(); 7984 } 7985 else if (usesPositionalArgs != FS.usesPositionalArg()) { 7986 HandlePositionalNonpositionalArgs(getLocationOfByte(CS.getStart()), 7987 startSpecifier, specifierLen); 7988 return false; 7989 } 7990 } 7991 7992 // First check if the field width, precision, and conversion specifier 7993 // have matching data arguments. 7994 if (!HandleAmount(FS.getFieldWidth(), /* field width */ 0, 7995 startSpecifier, specifierLen)) { 7996 return false; 7997 } 7998 7999 if (!HandleAmount(FS.getPrecision(), /* precision */ 1, 8000 startSpecifier, specifierLen)) { 8001 return false; 8002 } 8003 8004 if (!CS.consumesDataArgument()) { 8005 // FIXME: Technically specifying a precision or field width here 8006 // makes no sense. Worth issuing a warning at some point. 8007 return true; 8008 } 8009 8010 // Consume the argument. 8011 unsigned argIndex = FS.getArgIndex(); 8012 if (argIndex < NumDataArgs) { 8013 // The check to see if the argIndex is valid will come later. 8014 // We set the bit here because we may exit early from this 8015 // function if we encounter some other error. 8016 CoveredArgs.set(argIndex); 8017 } 8018 8019 // FreeBSD kernel extensions. 8020 if (CS.getKind() == ConversionSpecifier::FreeBSDbArg || 8021 CS.getKind() == ConversionSpecifier::FreeBSDDArg) { 8022 // We need at least two arguments. 8023 if (!CheckNumArgs(FS, CS, startSpecifier, specifierLen, argIndex + 1)) 8024 return false; 8025 8026 // Claim the second argument. 8027 CoveredArgs.set(argIndex + 1); 8028 8029 // Type check the first argument (int for %b, pointer for %D) 8030 const Expr *Ex = getDataArg(argIndex); 8031 const analyze_printf::ArgType &AT = 8032 (CS.getKind() == ConversionSpecifier::FreeBSDbArg) ? 8033 ArgType(S.Context.IntTy) : ArgType::CPointerTy; 8034 if (AT.isValid() && !AT.matchesType(S.Context, Ex->getType())) 8035 EmitFormatDiagnostic( 8036 S.PDiag(diag::warn_format_conversion_argument_type_mismatch) 8037 << AT.getRepresentativeTypeName(S.Context) << Ex->getType() 8038 << false << Ex->getSourceRange(), 8039 Ex->getBeginLoc(), /*IsStringLocation*/ false, 8040 getSpecifierRange(startSpecifier, specifierLen)); 8041 8042 // Type check the second argument (char * for both %b and %D) 8043 Ex = getDataArg(argIndex + 1); 8044 const analyze_printf::ArgType &AT2 = ArgType::CStrTy; 8045 if (AT2.isValid() && !AT2.matchesType(S.Context, Ex->getType())) 8046 EmitFormatDiagnostic( 8047 S.PDiag(diag::warn_format_conversion_argument_type_mismatch) 8048 << AT2.getRepresentativeTypeName(S.Context) << Ex->getType() 8049 << false << Ex->getSourceRange(), 8050 Ex->getBeginLoc(), /*IsStringLocation*/ false, 8051 getSpecifierRange(startSpecifier, specifierLen)); 8052 8053 return true; 8054 } 8055 8056 // Check for using an Objective-C specific conversion specifier 8057 // in a non-ObjC literal. 8058 if (!allowsObjCArg() && CS.isObjCArg()) { 8059 return HandleInvalidPrintfConversionSpecifier(FS, startSpecifier, 8060 specifierLen); 8061 } 8062 8063 // %P can only be used with os_log. 8064 if (FSType != Sema::FST_OSLog && CS.getKind() == ConversionSpecifier::PArg) { 8065 return HandleInvalidPrintfConversionSpecifier(FS, startSpecifier, 8066 specifierLen); 8067 } 8068 8069 // %n is not allowed with os_log. 8070 if (FSType == Sema::FST_OSLog && CS.getKind() == ConversionSpecifier::nArg) { 8071 EmitFormatDiagnostic(S.PDiag(diag::warn_os_log_format_narg), 8072 getLocationOfByte(CS.getStart()), 8073 /*IsStringLocation*/ false, 8074 getSpecifierRange(startSpecifier, specifierLen)); 8075 8076 return true; 8077 } 8078 8079 // Only scalars are allowed for os_trace. 8080 if (FSType == Sema::FST_OSTrace && 8081 (CS.getKind() == ConversionSpecifier::PArg || 8082 CS.getKind() == ConversionSpecifier::sArg || 8083 CS.getKind() == ConversionSpecifier::ObjCObjArg)) { 8084 return HandleInvalidPrintfConversionSpecifier(FS, startSpecifier, 8085 specifierLen); 8086 } 8087 8088 // Check for use of public/private annotation outside of os_log(). 8089 if (FSType != Sema::FST_OSLog) { 8090 if (FS.isPublic().isSet()) { 8091 EmitFormatDiagnostic(S.PDiag(diag::warn_format_invalid_annotation) 8092 << "public", 8093 getLocationOfByte(FS.isPublic().getPosition()), 8094 /*IsStringLocation*/ false, 8095 getSpecifierRange(startSpecifier, specifierLen)); 8096 } 8097 if (FS.isPrivate().isSet()) { 8098 EmitFormatDiagnostic(S.PDiag(diag::warn_format_invalid_annotation) 8099 << "private", 8100 getLocationOfByte(FS.isPrivate().getPosition()), 8101 /*IsStringLocation*/ false, 8102 getSpecifierRange(startSpecifier, specifierLen)); 8103 } 8104 } 8105 8106 // Check for invalid use of field width 8107 if (!FS.hasValidFieldWidth()) { 8108 HandleInvalidAmount(FS, FS.getFieldWidth(), /* field width */ 0, 8109 startSpecifier, specifierLen); 8110 } 8111 8112 // Check for invalid use of precision 8113 if (!FS.hasValidPrecision()) { 8114 HandleInvalidAmount(FS, FS.getPrecision(), /* precision */ 1, 8115 startSpecifier, specifierLen); 8116 } 8117 8118 // Precision is mandatory for %P specifier. 8119 if (CS.getKind() == ConversionSpecifier::PArg && 8120 FS.getPrecision().getHowSpecified() == OptionalAmount::NotSpecified) { 8121 EmitFormatDiagnostic(S.PDiag(diag::warn_format_P_no_precision), 8122 getLocationOfByte(startSpecifier), 8123 /*IsStringLocation*/ false, 8124 getSpecifierRange(startSpecifier, specifierLen)); 8125 } 8126 8127 // Check each flag does not conflict with any other component. 8128 if (!FS.hasValidThousandsGroupingPrefix()) 8129 HandleFlag(FS, FS.hasThousandsGrouping(), startSpecifier, specifierLen); 8130 if (!FS.hasValidLeadingZeros()) 8131 HandleFlag(FS, FS.hasLeadingZeros(), startSpecifier, specifierLen); 8132 if (!FS.hasValidPlusPrefix()) 8133 HandleFlag(FS, FS.hasPlusPrefix(), startSpecifier, specifierLen); 8134 if (!FS.hasValidSpacePrefix()) 8135 HandleFlag(FS, FS.hasSpacePrefix(), startSpecifier, specifierLen); 8136 if (!FS.hasValidAlternativeForm()) 8137 HandleFlag(FS, FS.hasAlternativeForm(), startSpecifier, specifierLen); 8138 if (!FS.hasValidLeftJustified()) 8139 HandleFlag(FS, FS.isLeftJustified(), startSpecifier, specifierLen); 8140 8141 // Check that flags are not ignored by another flag 8142 if (FS.hasSpacePrefix() && FS.hasPlusPrefix()) // ' ' ignored by '+' 8143 HandleIgnoredFlag(FS, FS.hasSpacePrefix(), FS.hasPlusPrefix(), 8144 startSpecifier, specifierLen); 8145 if (FS.hasLeadingZeros() && FS.isLeftJustified()) // '0' ignored by '-' 8146 HandleIgnoredFlag(FS, FS.hasLeadingZeros(), FS.isLeftJustified(), 8147 startSpecifier, specifierLen); 8148 8149 // Check the length modifier is valid with the given conversion specifier. 8150 if (!FS.hasValidLengthModifier(S.getASTContext().getTargetInfo(), 8151 S.getLangOpts())) 8152 HandleInvalidLengthModifier(FS, CS, startSpecifier, specifierLen, 8153 diag::warn_format_nonsensical_length); 8154 else if (!FS.hasStandardLengthModifier()) 8155 HandleNonStandardLengthModifier(FS, startSpecifier, specifierLen); 8156 else if (!FS.hasStandardLengthConversionCombination()) 8157 HandleInvalidLengthModifier(FS, CS, startSpecifier, specifierLen, 8158 diag::warn_format_non_standard_conversion_spec); 8159 8160 if (!FS.hasStandardConversionSpecifier(S.getLangOpts())) 8161 HandleNonStandardConversionSpecifier(CS, startSpecifier, specifierLen); 8162 8163 // The remaining checks depend on the data arguments. 8164 if (HasVAListArg) 8165 return true; 8166 8167 if (!CheckNumArgs(FS, CS, startSpecifier, specifierLen, argIndex)) 8168 return false; 8169 8170 const Expr *Arg = getDataArg(argIndex); 8171 if (!Arg) 8172 return true; 8173 8174 return checkFormatExpr(FS, startSpecifier, specifierLen, Arg); 8175 } 8176 8177 static bool requiresParensToAddCast(const Expr *E) { 8178 // FIXME: We should have a general way to reason about operator 8179 // precedence and whether parens are actually needed here. 8180 // Take care of a few common cases where they aren't. 8181 const Expr *Inside = E->IgnoreImpCasts(); 8182 if (const PseudoObjectExpr *POE = dyn_cast<PseudoObjectExpr>(Inside)) 8183 Inside = POE->getSyntacticForm()->IgnoreImpCasts(); 8184 8185 switch (Inside->getStmtClass()) { 8186 case Stmt::ArraySubscriptExprClass: 8187 case Stmt::CallExprClass: 8188 case Stmt::CharacterLiteralClass: 8189 case Stmt::CXXBoolLiteralExprClass: 8190 case Stmt::DeclRefExprClass: 8191 case Stmt::FloatingLiteralClass: 8192 case Stmt::IntegerLiteralClass: 8193 case Stmt::MemberExprClass: 8194 case Stmt::ObjCArrayLiteralClass: 8195 case Stmt::ObjCBoolLiteralExprClass: 8196 case Stmt::ObjCBoxedExprClass: 8197 case Stmt::ObjCDictionaryLiteralClass: 8198 case Stmt::ObjCEncodeExprClass: 8199 case Stmt::ObjCIvarRefExprClass: 8200 case Stmt::ObjCMessageExprClass: 8201 case Stmt::ObjCPropertyRefExprClass: 8202 case Stmt::ObjCStringLiteralClass: 8203 case Stmt::ObjCSubscriptRefExprClass: 8204 case Stmt::ParenExprClass: 8205 case Stmt::StringLiteralClass: 8206 case Stmt::UnaryOperatorClass: 8207 return false; 8208 default: 8209 return true; 8210 } 8211 } 8212 8213 static std::pair<QualType, StringRef> 8214 shouldNotPrintDirectly(const ASTContext &Context, 8215 QualType IntendedTy, 8216 const Expr *E) { 8217 // Use a 'while' to peel off layers of typedefs. 8218 QualType TyTy = IntendedTy; 8219 while (const TypedefType *UserTy = TyTy->getAs<TypedefType>()) { 8220 StringRef Name = UserTy->getDecl()->getName(); 8221 QualType CastTy = llvm::StringSwitch<QualType>(Name) 8222 .Case("CFIndex", Context.getNSIntegerType()) 8223 .Case("NSInteger", Context.getNSIntegerType()) 8224 .Case("NSUInteger", Context.getNSUIntegerType()) 8225 .Case("SInt32", Context.IntTy) 8226 .Case("UInt32", Context.UnsignedIntTy) 8227 .Default(QualType()); 8228 8229 if (!CastTy.isNull()) 8230 return std::make_pair(CastTy, Name); 8231 8232 TyTy = UserTy->desugar(); 8233 } 8234 8235 // Strip parens if necessary. 8236 if (const ParenExpr *PE = dyn_cast<ParenExpr>(E)) 8237 return shouldNotPrintDirectly(Context, 8238 PE->getSubExpr()->getType(), 8239 PE->getSubExpr()); 8240 8241 // If this is a conditional expression, then its result type is constructed 8242 // via usual arithmetic conversions and thus there might be no necessary 8243 // typedef sugar there. Recurse to operands to check for NSInteger & 8244 // Co. usage condition. 8245 if (const ConditionalOperator *CO = dyn_cast<ConditionalOperator>(E)) { 8246 QualType TrueTy, FalseTy; 8247 StringRef TrueName, FalseName; 8248 8249 std::tie(TrueTy, TrueName) = 8250 shouldNotPrintDirectly(Context, 8251 CO->getTrueExpr()->getType(), 8252 CO->getTrueExpr()); 8253 std::tie(FalseTy, FalseName) = 8254 shouldNotPrintDirectly(Context, 8255 CO->getFalseExpr()->getType(), 8256 CO->getFalseExpr()); 8257 8258 if (TrueTy == FalseTy) 8259 return std::make_pair(TrueTy, TrueName); 8260 else if (TrueTy.isNull()) 8261 return std::make_pair(FalseTy, FalseName); 8262 else if (FalseTy.isNull()) 8263 return std::make_pair(TrueTy, TrueName); 8264 } 8265 8266 return std::make_pair(QualType(), StringRef()); 8267 } 8268 8269 /// Return true if \p ICE is an implicit argument promotion of an arithmetic 8270 /// type. Bit-field 'promotions' from a higher ranked type to a lower ranked 8271 /// type do not count. 8272 static bool 8273 isArithmeticArgumentPromotion(Sema &S, const ImplicitCastExpr *ICE) { 8274 QualType From = ICE->getSubExpr()->getType(); 8275 QualType To = ICE->getType(); 8276 // It's an integer promotion if the destination type is the promoted 8277 // source type. 8278 if (ICE->getCastKind() == CK_IntegralCast && 8279 From->isPromotableIntegerType() && 8280 S.Context.getPromotedIntegerType(From) == To) 8281 return true; 8282 // Look through vector types, since we do default argument promotion for 8283 // those in OpenCL. 8284 if (const auto *VecTy = From->getAs<ExtVectorType>()) 8285 From = VecTy->getElementType(); 8286 if (const auto *VecTy = To->getAs<ExtVectorType>()) 8287 To = VecTy->getElementType(); 8288 // It's a floating promotion if the source type is a lower rank. 8289 return ICE->getCastKind() == CK_FloatingCast && 8290 S.Context.getFloatingTypeOrder(From, To) < 0; 8291 } 8292 8293 bool 8294 CheckPrintfHandler::checkFormatExpr(const analyze_printf::PrintfSpecifier &FS, 8295 const char *StartSpecifier, 8296 unsigned SpecifierLen, 8297 const Expr *E) { 8298 using namespace analyze_format_string; 8299 using namespace analyze_printf; 8300 8301 // Now type check the data expression that matches the 8302 // format specifier. 8303 const analyze_printf::ArgType &AT = FS.getArgType(S.Context, isObjCContext()); 8304 if (!AT.isValid()) 8305 return true; 8306 8307 QualType ExprTy = E->getType(); 8308 while (const TypeOfExprType *TET = dyn_cast<TypeOfExprType>(ExprTy)) { 8309 ExprTy = TET->getUnderlyingExpr()->getType(); 8310 } 8311 8312 // Diagnose attempts to print a boolean value as a character. Unlike other 8313 // -Wformat diagnostics, this is fine from a type perspective, but it still 8314 // doesn't make sense. 8315 if (FS.getConversionSpecifier().getKind() == ConversionSpecifier::cArg && 8316 E->isKnownToHaveBooleanValue()) { 8317 const CharSourceRange &CSR = 8318 getSpecifierRange(StartSpecifier, SpecifierLen); 8319 SmallString<4> FSString; 8320 llvm::raw_svector_ostream os(FSString); 8321 FS.toString(os); 8322 EmitFormatDiagnostic(S.PDiag(diag::warn_format_bool_as_character) 8323 << FSString, 8324 E->getExprLoc(), false, CSR); 8325 return true; 8326 } 8327 8328 analyze_printf::ArgType::MatchKind Match = AT.matchesType(S.Context, ExprTy); 8329 if (Match == analyze_printf::ArgType::Match) 8330 return true; 8331 8332 // Look through argument promotions for our error message's reported type. 8333 // This includes the integral and floating promotions, but excludes array 8334 // and function pointer decay (seeing that an argument intended to be a 8335 // string has type 'char [6]' is probably more confusing than 'char *') and 8336 // certain bitfield promotions (bitfields can be 'demoted' to a lesser type). 8337 if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) { 8338 if (isArithmeticArgumentPromotion(S, ICE)) { 8339 E = ICE->getSubExpr(); 8340 ExprTy = E->getType(); 8341 8342 // Check if we didn't match because of an implicit cast from a 'char' 8343 // or 'short' to an 'int'. This is done because printf is a varargs 8344 // function. 8345 if (ICE->getType() == S.Context.IntTy || 8346 ICE->getType() == S.Context.UnsignedIntTy) { 8347 // All further checking is done on the subexpression 8348 const analyze_printf::ArgType::MatchKind ImplicitMatch = 8349 AT.matchesType(S.Context, ExprTy); 8350 if (ImplicitMatch == analyze_printf::ArgType::Match) 8351 return true; 8352 if (ImplicitMatch == ArgType::NoMatchPedantic || 8353 ImplicitMatch == ArgType::NoMatchTypeConfusion) 8354 Match = ImplicitMatch; 8355 } 8356 } 8357 } else if (const CharacterLiteral *CL = dyn_cast<CharacterLiteral>(E)) { 8358 // Special case for 'a', which has type 'int' in C. 8359 // Note, however, that we do /not/ want to treat multibyte constants like 8360 // 'MooV' as characters! This form is deprecated but still exists. 8361 if (ExprTy == S.Context.IntTy) 8362 if (llvm::isUIntN(S.Context.getCharWidth(), CL->getValue())) 8363 ExprTy = S.Context.CharTy; 8364 } 8365 8366 // Look through enums to their underlying type. 8367 bool IsEnum = false; 8368 if (auto EnumTy = ExprTy->getAs<EnumType>()) { 8369 ExprTy = EnumTy->getDecl()->getIntegerType(); 8370 IsEnum = true; 8371 } 8372 8373 // %C in an Objective-C context prints a unichar, not a wchar_t. 8374 // If the argument is an integer of some kind, believe the %C and suggest 8375 // a cast instead of changing the conversion specifier. 8376 QualType IntendedTy = ExprTy; 8377 if (isObjCContext() && 8378 FS.getConversionSpecifier().getKind() == ConversionSpecifier::CArg) { 8379 if (ExprTy->isIntegralOrUnscopedEnumerationType() && 8380 !ExprTy->isCharType()) { 8381 // 'unichar' is defined as a typedef of unsigned short, but we should 8382 // prefer using the typedef if it is visible. 8383 IntendedTy = S.Context.UnsignedShortTy; 8384 8385 // While we are here, check if the value is an IntegerLiteral that happens 8386 // to be within the valid range. 8387 if (const IntegerLiteral *IL = dyn_cast<IntegerLiteral>(E)) { 8388 const llvm::APInt &V = IL->getValue(); 8389 if (V.getActiveBits() <= S.Context.getTypeSize(IntendedTy)) 8390 return true; 8391 } 8392 8393 LookupResult Result(S, &S.Context.Idents.get("unichar"), E->getBeginLoc(), 8394 Sema::LookupOrdinaryName); 8395 if (S.LookupName(Result, S.getCurScope())) { 8396 NamedDecl *ND = Result.getFoundDecl(); 8397 if (TypedefNameDecl *TD = dyn_cast<TypedefNameDecl>(ND)) 8398 if (TD->getUnderlyingType() == IntendedTy) 8399 IntendedTy = S.Context.getTypedefType(TD); 8400 } 8401 } 8402 } 8403 8404 // Special-case some of Darwin's platform-independence types by suggesting 8405 // casts to primitive types that are known to be large enough. 8406 bool ShouldNotPrintDirectly = false; StringRef CastTyName; 8407 if (S.Context.getTargetInfo().getTriple().isOSDarwin()) { 8408 QualType CastTy; 8409 std::tie(CastTy, CastTyName) = shouldNotPrintDirectly(S.Context, IntendedTy, E); 8410 if (!CastTy.isNull()) { 8411 // %zi/%zu and %td/%tu are OK to use for NSInteger/NSUInteger of type int 8412 // (long in ASTContext). Only complain to pedants. 8413 if ((CastTyName == "NSInteger" || CastTyName == "NSUInteger") && 8414 (AT.isSizeT() || AT.isPtrdiffT()) && 8415 AT.matchesType(S.Context, CastTy)) 8416 Match = ArgType::NoMatchPedantic; 8417 IntendedTy = CastTy; 8418 ShouldNotPrintDirectly = true; 8419 } 8420 } 8421 8422 // We may be able to offer a FixItHint if it is a supported type. 8423 PrintfSpecifier fixedFS = FS; 8424 bool Success = 8425 fixedFS.fixType(IntendedTy, S.getLangOpts(), S.Context, isObjCContext()); 8426 8427 if (Success) { 8428 // Get the fix string from the fixed format specifier 8429 SmallString<16> buf; 8430 llvm::raw_svector_ostream os(buf); 8431 fixedFS.toString(os); 8432 8433 CharSourceRange SpecRange = getSpecifierRange(StartSpecifier, SpecifierLen); 8434 8435 if (IntendedTy == ExprTy && !ShouldNotPrintDirectly) { 8436 unsigned Diag; 8437 switch (Match) { 8438 case ArgType::Match: llvm_unreachable("expected non-matching"); 8439 case ArgType::NoMatchPedantic: 8440 Diag = diag::warn_format_conversion_argument_type_mismatch_pedantic; 8441 break; 8442 case ArgType::NoMatchTypeConfusion: 8443 Diag = diag::warn_format_conversion_argument_type_mismatch_confusion; 8444 break; 8445 case ArgType::NoMatch: 8446 Diag = diag::warn_format_conversion_argument_type_mismatch; 8447 break; 8448 } 8449 8450 // In this case, the specifier is wrong and should be changed to match 8451 // the argument. 8452 EmitFormatDiagnostic(S.PDiag(Diag) 8453 << AT.getRepresentativeTypeName(S.Context) 8454 << IntendedTy << IsEnum << E->getSourceRange(), 8455 E->getBeginLoc(), 8456 /*IsStringLocation*/ false, SpecRange, 8457 FixItHint::CreateReplacement(SpecRange, os.str())); 8458 } else { 8459 // The canonical type for formatting this value is different from the 8460 // actual type of the expression. (This occurs, for example, with Darwin's 8461 // NSInteger on 32-bit platforms, where it is typedef'd as 'int', but 8462 // should be printed as 'long' for 64-bit compatibility.) 8463 // Rather than emitting a normal format/argument mismatch, we want to 8464 // add a cast to the recommended type (and correct the format string 8465 // if necessary). 8466 SmallString<16> CastBuf; 8467 llvm::raw_svector_ostream CastFix(CastBuf); 8468 CastFix << "("; 8469 IntendedTy.print(CastFix, S.Context.getPrintingPolicy()); 8470 CastFix << ")"; 8471 8472 SmallVector<FixItHint,4> Hints; 8473 if (!AT.matchesType(S.Context, IntendedTy) || ShouldNotPrintDirectly) 8474 Hints.push_back(FixItHint::CreateReplacement(SpecRange, os.str())); 8475 8476 if (const CStyleCastExpr *CCast = dyn_cast<CStyleCastExpr>(E)) { 8477 // If there's already a cast present, just replace it. 8478 SourceRange CastRange(CCast->getLParenLoc(), CCast->getRParenLoc()); 8479 Hints.push_back(FixItHint::CreateReplacement(CastRange, CastFix.str())); 8480 8481 } else if (!requiresParensToAddCast(E)) { 8482 // If the expression has high enough precedence, 8483 // just write the C-style cast. 8484 Hints.push_back( 8485 FixItHint::CreateInsertion(E->getBeginLoc(), CastFix.str())); 8486 } else { 8487 // Otherwise, add parens around the expression as well as the cast. 8488 CastFix << "("; 8489 Hints.push_back( 8490 FixItHint::CreateInsertion(E->getBeginLoc(), CastFix.str())); 8491 8492 SourceLocation After = S.getLocForEndOfToken(E->getEndLoc()); 8493 Hints.push_back(FixItHint::CreateInsertion(After, ")")); 8494 } 8495 8496 if (ShouldNotPrintDirectly) { 8497 // The expression has a type that should not be printed directly. 8498 // We extract the name from the typedef because we don't want to show 8499 // the underlying type in the diagnostic. 8500 StringRef Name; 8501 if (const TypedefType *TypedefTy = dyn_cast<TypedefType>(ExprTy)) 8502 Name = TypedefTy->getDecl()->getName(); 8503 else 8504 Name = CastTyName; 8505 unsigned Diag = Match == ArgType::NoMatchPedantic 8506 ? diag::warn_format_argument_needs_cast_pedantic 8507 : diag::warn_format_argument_needs_cast; 8508 EmitFormatDiagnostic(S.PDiag(Diag) << Name << IntendedTy << IsEnum 8509 << E->getSourceRange(), 8510 E->getBeginLoc(), /*IsStringLocation=*/false, 8511 SpecRange, Hints); 8512 } else { 8513 // In this case, the expression could be printed using a different 8514 // specifier, but we've decided that the specifier is probably correct 8515 // and we should cast instead. Just use the normal warning message. 8516 EmitFormatDiagnostic( 8517 S.PDiag(diag::warn_format_conversion_argument_type_mismatch) 8518 << AT.getRepresentativeTypeName(S.Context) << ExprTy << IsEnum 8519 << E->getSourceRange(), 8520 E->getBeginLoc(), /*IsStringLocation*/ false, SpecRange, Hints); 8521 } 8522 } 8523 } else { 8524 const CharSourceRange &CSR = getSpecifierRange(StartSpecifier, 8525 SpecifierLen); 8526 // Since the warning for passing non-POD types to variadic functions 8527 // was deferred until now, we emit a warning for non-POD 8528 // arguments here. 8529 switch (S.isValidVarArgType(ExprTy)) { 8530 case Sema::VAK_Valid: 8531 case Sema::VAK_ValidInCXX11: { 8532 unsigned Diag; 8533 switch (Match) { 8534 case ArgType::Match: llvm_unreachable("expected non-matching"); 8535 case ArgType::NoMatchPedantic: 8536 Diag = diag::warn_format_conversion_argument_type_mismatch_pedantic; 8537 break; 8538 case ArgType::NoMatchTypeConfusion: 8539 Diag = diag::warn_format_conversion_argument_type_mismatch_confusion; 8540 break; 8541 case ArgType::NoMatch: 8542 Diag = diag::warn_format_conversion_argument_type_mismatch; 8543 break; 8544 } 8545 8546 EmitFormatDiagnostic( 8547 S.PDiag(Diag) << AT.getRepresentativeTypeName(S.Context) << ExprTy 8548 << IsEnum << CSR << E->getSourceRange(), 8549 E->getBeginLoc(), /*IsStringLocation*/ false, CSR); 8550 break; 8551 } 8552 case Sema::VAK_Undefined: 8553 case Sema::VAK_MSVCUndefined: 8554 EmitFormatDiagnostic(S.PDiag(diag::warn_non_pod_vararg_with_format_string) 8555 << S.getLangOpts().CPlusPlus11 << ExprTy 8556 << CallType 8557 << AT.getRepresentativeTypeName(S.Context) << CSR 8558 << E->getSourceRange(), 8559 E->getBeginLoc(), /*IsStringLocation*/ false, CSR); 8560 checkForCStrMembers(AT, E); 8561 break; 8562 8563 case Sema::VAK_Invalid: 8564 if (ExprTy->isObjCObjectType()) 8565 EmitFormatDiagnostic( 8566 S.PDiag(diag::err_cannot_pass_objc_interface_to_vararg_format) 8567 << S.getLangOpts().CPlusPlus11 << ExprTy << CallType 8568 << AT.getRepresentativeTypeName(S.Context) << CSR 8569 << E->getSourceRange(), 8570 E->getBeginLoc(), /*IsStringLocation*/ false, CSR); 8571 else 8572 // FIXME: If this is an initializer list, suggest removing the braces 8573 // or inserting a cast to the target type. 8574 S.Diag(E->getBeginLoc(), diag::err_cannot_pass_to_vararg_format) 8575 << isa<InitListExpr>(E) << ExprTy << CallType 8576 << AT.getRepresentativeTypeName(S.Context) << E->getSourceRange(); 8577 break; 8578 } 8579 8580 assert(FirstDataArg + FS.getArgIndex() < CheckedVarArgs.size() && 8581 "format string specifier index out of range"); 8582 CheckedVarArgs[FirstDataArg + FS.getArgIndex()] = true; 8583 } 8584 8585 return true; 8586 } 8587 8588 //===--- CHECK: Scanf format string checking ------------------------------===// 8589 8590 namespace { 8591 8592 class CheckScanfHandler : public CheckFormatHandler { 8593 public: 8594 CheckScanfHandler(Sema &s, const FormatStringLiteral *fexpr, 8595 const Expr *origFormatExpr, Sema::FormatStringType type, 8596 unsigned firstDataArg, unsigned numDataArgs, 8597 const char *beg, bool hasVAListArg, 8598 ArrayRef<const Expr *> Args, unsigned formatIdx, 8599 bool inFunctionCall, Sema::VariadicCallType CallType, 8600 llvm::SmallBitVector &CheckedVarArgs, 8601 UncoveredArgHandler &UncoveredArg) 8602 : CheckFormatHandler(s, fexpr, origFormatExpr, type, firstDataArg, 8603 numDataArgs, beg, hasVAListArg, Args, formatIdx, 8604 inFunctionCall, CallType, CheckedVarArgs, 8605 UncoveredArg) {} 8606 8607 bool HandleScanfSpecifier(const analyze_scanf::ScanfSpecifier &FS, 8608 const char *startSpecifier, 8609 unsigned specifierLen) override; 8610 8611 bool HandleInvalidScanfConversionSpecifier( 8612 const analyze_scanf::ScanfSpecifier &FS, 8613 const char *startSpecifier, 8614 unsigned specifierLen) override; 8615 8616 void HandleIncompleteScanList(const char *start, const char *end) override; 8617 }; 8618 8619 } // namespace 8620 8621 void CheckScanfHandler::HandleIncompleteScanList(const char *start, 8622 const char *end) { 8623 EmitFormatDiagnostic(S.PDiag(diag::warn_scanf_scanlist_incomplete), 8624 getLocationOfByte(end), /*IsStringLocation*/true, 8625 getSpecifierRange(start, end - start)); 8626 } 8627 8628 bool CheckScanfHandler::HandleInvalidScanfConversionSpecifier( 8629 const analyze_scanf::ScanfSpecifier &FS, 8630 const char *startSpecifier, 8631 unsigned specifierLen) { 8632 const analyze_scanf::ScanfConversionSpecifier &CS = 8633 FS.getConversionSpecifier(); 8634 8635 return HandleInvalidConversionSpecifier(FS.getArgIndex(), 8636 getLocationOfByte(CS.getStart()), 8637 startSpecifier, specifierLen, 8638 CS.getStart(), CS.getLength()); 8639 } 8640 8641 bool CheckScanfHandler::HandleScanfSpecifier( 8642 const analyze_scanf::ScanfSpecifier &FS, 8643 const char *startSpecifier, 8644 unsigned specifierLen) { 8645 using namespace analyze_scanf; 8646 using namespace analyze_format_string; 8647 8648 const ScanfConversionSpecifier &CS = FS.getConversionSpecifier(); 8649 8650 // Handle case where '%' and '*' don't consume an argument. These shouldn't 8651 // be used to decide if we are using positional arguments consistently. 8652 if (FS.consumesDataArgument()) { 8653 if (atFirstArg) { 8654 atFirstArg = false; 8655 usesPositionalArgs = FS.usesPositionalArg(); 8656 } 8657 else if (usesPositionalArgs != FS.usesPositionalArg()) { 8658 HandlePositionalNonpositionalArgs(getLocationOfByte(CS.getStart()), 8659 startSpecifier, specifierLen); 8660 return false; 8661 } 8662 } 8663 8664 // Check if the field with is non-zero. 8665 const OptionalAmount &Amt = FS.getFieldWidth(); 8666 if (Amt.getHowSpecified() == OptionalAmount::Constant) { 8667 if (Amt.getConstantAmount() == 0) { 8668 const CharSourceRange &R = getSpecifierRange(Amt.getStart(), 8669 Amt.getConstantLength()); 8670 EmitFormatDiagnostic(S.PDiag(diag::warn_scanf_nonzero_width), 8671 getLocationOfByte(Amt.getStart()), 8672 /*IsStringLocation*/true, R, 8673 FixItHint::CreateRemoval(R)); 8674 } 8675 } 8676 8677 if (!FS.consumesDataArgument()) { 8678 // FIXME: Technically specifying a precision or field width here 8679 // makes no sense. Worth issuing a warning at some point. 8680 return true; 8681 } 8682 8683 // Consume the argument. 8684 unsigned argIndex = FS.getArgIndex(); 8685 if (argIndex < NumDataArgs) { 8686 // The check to see if the argIndex is valid will come later. 8687 // We set the bit here because we may exit early from this 8688 // function if we encounter some other error. 8689 CoveredArgs.set(argIndex); 8690 } 8691 8692 // Check the length modifier is valid with the given conversion specifier. 8693 if (!FS.hasValidLengthModifier(S.getASTContext().getTargetInfo(), 8694 S.getLangOpts())) 8695 HandleInvalidLengthModifier(FS, CS, startSpecifier, specifierLen, 8696 diag::warn_format_nonsensical_length); 8697 else if (!FS.hasStandardLengthModifier()) 8698 HandleNonStandardLengthModifier(FS, startSpecifier, specifierLen); 8699 else if (!FS.hasStandardLengthConversionCombination()) 8700 HandleInvalidLengthModifier(FS, CS, startSpecifier, specifierLen, 8701 diag::warn_format_non_standard_conversion_spec); 8702 8703 if (!FS.hasStandardConversionSpecifier(S.getLangOpts())) 8704 HandleNonStandardConversionSpecifier(CS, startSpecifier, specifierLen); 8705 8706 // The remaining checks depend on the data arguments. 8707 if (HasVAListArg) 8708 return true; 8709 8710 if (!CheckNumArgs(FS, CS, startSpecifier, specifierLen, argIndex)) 8711 return false; 8712 8713 // Check that the argument type matches the format specifier. 8714 const Expr *Ex = getDataArg(argIndex); 8715 if (!Ex) 8716 return true; 8717 8718 const analyze_format_string::ArgType &AT = FS.getArgType(S.Context); 8719 8720 if (!AT.isValid()) { 8721 return true; 8722 } 8723 8724 analyze_format_string::ArgType::MatchKind Match = 8725 AT.matchesType(S.Context, Ex->getType()); 8726 bool Pedantic = Match == analyze_format_string::ArgType::NoMatchPedantic; 8727 if (Match == analyze_format_string::ArgType::Match) 8728 return true; 8729 8730 ScanfSpecifier fixedFS = FS; 8731 bool Success = fixedFS.fixType(Ex->getType(), Ex->IgnoreImpCasts()->getType(), 8732 S.getLangOpts(), S.Context); 8733 8734 unsigned Diag = 8735 Pedantic ? diag::warn_format_conversion_argument_type_mismatch_pedantic 8736 : diag::warn_format_conversion_argument_type_mismatch; 8737 8738 if (Success) { 8739 // Get the fix string from the fixed format specifier. 8740 SmallString<128> buf; 8741 llvm::raw_svector_ostream os(buf); 8742 fixedFS.toString(os); 8743 8744 EmitFormatDiagnostic( 8745 S.PDiag(Diag) << AT.getRepresentativeTypeName(S.Context) 8746 << Ex->getType() << false << Ex->getSourceRange(), 8747 Ex->getBeginLoc(), 8748 /*IsStringLocation*/ false, 8749 getSpecifierRange(startSpecifier, specifierLen), 8750 FixItHint::CreateReplacement( 8751 getSpecifierRange(startSpecifier, specifierLen), os.str())); 8752 } else { 8753 EmitFormatDiagnostic(S.PDiag(Diag) 8754 << AT.getRepresentativeTypeName(S.Context) 8755 << Ex->getType() << false << Ex->getSourceRange(), 8756 Ex->getBeginLoc(), 8757 /*IsStringLocation*/ false, 8758 getSpecifierRange(startSpecifier, specifierLen)); 8759 } 8760 8761 return true; 8762 } 8763 8764 static void CheckFormatString(Sema &S, const FormatStringLiteral *FExpr, 8765 const Expr *OrigFormatExpr, 8766 ArrayRef<const Expr *> Args, 8767 bool HasVAListArg, unsigned format_idx, 8768 unsigned firstDataArg, 8769 Sema::FormatStringType Type, 8770 bool inFunctionCall, 8771 Sema::VariadicCallType CallType, 8772 llvm::SmallBitVector &CheckedVarArgs, 8773 UncoveredArgHandler &UncoveredArg, 8774 bool IgnoreStringsWithoutSpecifiers) { 8775 // CHECK: is the format string a wide literal? 8776 if (!FExpr->isAscii() && !FExpr->isUTF8()) { 8777 CheckFormatHandler::EmitFormatDiagnostic( 8778 S, inFunctionCall, Args[format_idx], 8779 S.PDiag(diag::warn_format_string_is_wide_literal), FExpr->getBeginLoc(), 8780 /*IsStringLocation*/ true, OrigFormatExpr->getSourceRange()); 8781 return; 8782 } 8783 8784 // Str - The format string. NOTE: this is NOT null-terminated! 8785 StringRef StrRef = FExpr->getString(); 8786 const char *Str = StrRef.data(); 8787 // Account for cases where the string literal is truncated in a declaration. 8788 const ConstantArrayType *T = 8789 S.Context.getAsConstantArrayType(FExpr->getType()); 8790 assert(T && "String literal not of constant array type!"); 8791 size_t TypeSize = T->getSize().getZExtValue(); 8792 size_t StrLen = std::min(std::max(TypeSize, size_t(1)) - 1, StrRef.size()); 8793 const unsigned numDataArgs = Args.size() - firstDataArg; 8794 8795 if (IgnoreStringsWithoutSpecifiers && 8796 !analyze_format_string::parseFormatStringHasFormattingSpecifiers( 8797 Str, Str + StrLen, S.getLangOpts(), S.Context.getTargetInfo())) 8798 return; 8799 8800 // Emit a warning if the string literal is truncated and does not contain an 8801 // embedded null character. 8802 if (TypeSize <= StrRef.size() && 8803 StrRef.substr(0, TypeSize).find('\0') == StringRef::npos) { 8804 CheckFormatHandler::EmitFormatDiagnostic( 8805 S, inFunctionCall, Args[format_idx], 8806 S.PDiag(diag::warn_printf_format_string_not_null_terminated), 8807 FExpr->getBeginLoc(), 8808 /*IsStringLocation=*/true, OrigFormatExpr->getSourceRange()); 8809 return; 8810 } 8811 8812 // CHECK: empty format string? 8813 if (StrLen == 0 && numDataArgs > 0) { 8814 CheckFormatHandler::EmitFormatDiagnostic( 8815 S, inFunctionCall, Args[format_idx], 8816 S.PDiag(diag::warn_empty_format_string), FExpr->getBeginLoc(), 8817 /*IsStringLocation*/ true, OrigFormatExpr->getSourceRange()); 8818 return; 8819 } 8820 8821 if (Type == Sema::FST_Printf || Type == Sema::FST_NSString || 8822 Type == Sema::FST_FreeBSDKPrintf || Type == Sema::FST_OSLog || 8823 Type == Sema::FST_OSTrace) { 8824 CheckPrintfHandler H( 8825 S, FExpr, OrigFormatExpr, Type, firstDataArg, numDataArgs, 8826 (Type == Sema::FST_NSString || Type == Sema::FST_OSTrace), Str, 8827 HasVAListArg, Args, format_idx, inFunctionCall, CallType, 8828 CheckedVarArgs, UncoveredArg); 8829 8830 if (!analyze_format_string::ParsePrintfString(H, Str, Str + StrLen, 8831 S.getLangOpts(), 8832 S.Context.getTargetInfo(), 8833 Type == Sema::FST_FreeBSDKPrintf)) 8834 H.DoneProcessing(); 8835 } else if (Type == Sema::FST_Scanf) { 8836 CheckScanfHandler H(S, FExpr, OrigFormatExpr, Type, firstDataArg, 8837 numDataArgs, Str, HasVAListArg, Args, format_idx, 8838 inFunctionCall, CallType, CheckedVarArgs, UncoveredArg); 8839 8840 if (!analyze_format_string::ParseScanfString(H, Str, Str + StrLen, 8841 S.getLangOpts(), 8842 S.Context.getTargetInfo())) 8843 H.DoneProcessing(); 8844 } // TODO: handle other formats 8845 } 8846 8847 bool Sema::FormatStringHasSArg(const StringLiteral *FExpr) { 8848 // Str - The format string. NOTE: this is NOT null-terminated! 8849 StringRef StrRef = FExpr->getString(); 8850 const char *Str = StrRef.data(); 8851 // Account for cases where the string literal is truncated in a declaration. 8852 const ConstantArrayType *T = Context.getAsConstantArrayType(FExpr->getType()); 8853 assert(T && "String literal not of constant array type!"); 8854 size_t TypeSize = T->getSize().getZExtValue(); 8855 size_t StrLen = std::min(std::max(TypeSize, size_t(1)) - 1, StrRef.size()); 8856 return analyze_format_string::ParseFormatStringHasSArg(Str, Str + StrLen, 8857 getLangOpts(), 8858 Context.getTargetInfo()); 8859 } 8860 8861 //===--- CHECK: Warn on use of wrong absolute value function. -------------===// 8862 8863 // Returns the related absolute value function that is larger, of 0 if one 8864 // does not exist. 8865 static unsigned getLargerAbsoluteValueFunction(unsigned AbsFunction) { 8866 switch (AbsFunction) { 8867 default: 8868 return 0; 8869 8870 case Builtin::BI__builtin_abs: 8871 return Builtin::BI__builtin_labs; 8872 case Builtin::BI__builtin_labs: 8873 return Builtin::BI__builtin_llabs; 8874 case Builtin::BI__builtin_llabs: 8875 return 0; 8876 8877 case Builtin::BI__builtin_fabsf: 8878 return Builtin::BI__builtin_fabs; 8879 case Builtin::BI__builtin_fabs: 8880 return Builtin::BI__builtin_fabsl; 8881 case Builtin::BI__builtin_fabsl: 8882 return 0; 8883 8884 case Builtin::BI__builtin_cabsf: 8885 return Builtin::BI__builtin_cabs; 8886 case Builtin::BI__builtin_cabs: 8887 return Builtin::BI__builtin_cabsl; 8888 case Builtin::BI__builtin_cabsl: 8889 return 0; 8890 8891 case Builtin::BIabs: 8892 return Builtin::BIlabs; 8893 case Builtin::BIlabs: 8894 return Builtin::BIllabs; 8895 case Builtin::BIllabs: 8896 return 0; 8897 8898 case Builtin::BIfabsf: 8899 return Builtin::BIfabs; 8900 case Builtin::BIfabs: 8901 return Builtin::BIfabsl; 8902 case Builtin::BIfabsl: 8903 return 0; 8904 8905 case Builtin::BIcabsf: 8906 return Builtin::BIcabs; 8907 case Builtin::BIcabs: 8908 return Builtin::BIcabsl; 8909 case Builtin::BIcabsl: 8910 return 0; 8911 } 8912 } 8913 8914 // Returns the argument type of the absolute value function. 8915 static QualType getAbsoluteValueArgumentType(ASTContext &Context, 8916 unsigned AbsType) { 8917 if (AbsType == 0) 8918 return QualType(); 8919 8920 ASTContext::GetBuiltinTypeError Error = ASTContext::GE_None; 8921 QualType BuiltinType = Context.GetBuiltinType(AbsType, Error); 8922 if (Error != ASTContext::GE_None) 8923 return QualType(); 8924 8925 const FunctionProtoType *FT = BuiltinType->getAs<FunctionProtoType>(); 8926 if (!FT) 8927 return QualType(); 8928 8929 if (FT->getNumParams() != 1) 8930 return QualType(); 8931 8932 return FT->getParamType(0); 8933 } 8934 8935 // Returns the best absolute value function, or zero, based on type and 8936 // current absolute value function. 8937 static unsigned getBestAbsFunction(ASTContext &Context, QualType ArgType, 8938 unsigned AbsFunctionKind) { 8939 unsigned BestKind = 0; 8940 uint64_t ArgSize = Context.getTypeSize(ArgType); 8941 for (unsigned Kind = AbsFunctionKind; Kind != 0; 8942 Kind = getLargerAbsoluteValueFunction(Kind)) { 8943 QualType ParamType = getAbsoluteValueArgumentType(Context, Kind); 8944 if (Context.getTypeSize(ParamType) >= ArgSize) { 8945 if (BestKind == 0) 8946 BestKind = Kind; 8947 else if (Context.hasSameType(ParamType, ArgType)) { 8948 BestKind = Kind; 8949 break; 8950 } 8951 } 8952 } 8953 return BestKind; 8954 } 8955 8956 enum AbsoluteValueKind { 8957 AVK_Integer, 8958 AVK_Floating, 8959 AVK_Complex 8960 }; 8961 8962 static AbsoluteValueKind getAbsoluteValueKind(QualType T) { 8963 if (T->isIntegralOrEnumerationType()) 8964 return AVK_Integer; 8965 if (T->isRealFloatingType()) 8966 return AVK_Floating; 8967 if (T->isAnyComplexType()) 8968 return AVK_Complex; 8969 8970 llvm_unreachable("Type not integer, floating, or complex"); 8971 } 8972 8973 // Changes the absolute value function to a different type. Preserves whether 8974 // the function is a builtin. 8975 static unsigned changeAbsFunction(unsigned AbsKind, 8976 AbsoluteValueKind ValueKind) { 8977 switch (ValueKind) { 8978 case AVK_Integer: 8979 switch (AbsKind) { 8980 default: 8981 return 0; 8982 case Builtin::BI__builtin_fabsf: 8983 case Builtin::BI__builtin_fabs: 8984 case Builtin::BI__builtin_fabsl: 8985 case Builtin::BI__builtin_cabsf: 8986 case Builtin::BI__builtin_cabs: 8987 case Builtin::BI__builtin_cabsl: 8988 return Builtin::BI__builtin_abs; 8989 case Builtin::BIfabsf: 8990 case Builtin::BIfabs: 8991 case Builtin::BIfabsl: 8992 case Builtin::BIcabsf: 8993 case Builtin::BIcabs: 8994 case Builtin::BIcabsl: 8995 return Builtin::BIabs; 8996 } 8997 case AVK_Floating: 8998 switch (AbsKind) { 8999 default: 9000 return 0; 9001 case Builtin::BI__builtin_abs: 9002 case Builtin::BI__builtin_labs: 9003 case Builtin::BI__builtin_llabs: 9004 case Builtin::BI__builtin_cabsf: 9005 case Builtin::BI__builtin_cabs: 9006 case Builtin::BI__builtin_cabsl: 9007 return Builtin::BI__builtin_fabsf; 9008 case Builtin::BIabs: 9009 case Builtin::BIlabs: 9010 case Builtin::BIllabs: 9011 case Builtin::BIcabsf: 9012 case Builtin::BIcabs: 9013 case Builtin::BIcabsl: 9014 return Builtin::BIfabsf; 9015 } 9016 case AVK_Complex: 9017 switch (AbsKind) { 9018 default: 9019 return 0; 9020 case Builtin::BI__builtin_abs: 9021 case Builtin::BI__builtin_labs: 9022 case Builtin::BI__builtin_llabs: 9023 case Builtin::BI__builtin_fabsf: 9024 case Builtin::BI__builtin_fabs: 9025 case Builtin::BI__builtin_fabsl: 9026 return Builtin::BI__builtin_cabsf; 9027 case Builtin::BIabs: 9028 case Builtin::BIlabs: 9029 case Builtin::BIllabs: 9030 case Builtin::BIfabsf: 9031 case Builtin::BIfabs: 9032 case Builtin::BIfabsl: 9033 return Builtin::BIcabsf; 9034 } 9035 } 9036 llvm_unreachable("Unable to convert function"); 9037 } 9038 9039 static unsigned getAbsoluteValueFunctionKind(const FunctionDecl *FDecl) { 9040 const IdentifierInfo *FnInfo = FDecl->getIdentifier(); 9041 if (!FnInfo) 9042 return 0; 9043 9044 switch (FDecl->getBuiltinID()) { 9045 default: 9046 return 0; 9047 case Builtin::BI__builtin_abs: 9048 case Builtin::BI__builtin_fabs: 9049 case Builtin::BI__builtin_fabsf: 9050 case Builtin::BI__builtin_fabsl: 9051 case Builtin::BI__builtin_labs: 9052 case Builtin::BI__builtin_llabs: 9053 case Builtin::BI__builtin_cabs: 9054 case Builtin::BI__builtin_cabsf: 9055 case Builtin::BI__builtin_cabsl: 9056 case Builtin::BIabs: 9057 case Builtin::BIlabs: 9058 case Builtin::BIllabs: 9059 case Builtin::BIfabs: 9060 case Builtin::BIfabsf: 9061 case Builtin::BIfabsl: 9062 case Builtin::BIcabs: 9063 case Builtin::BIcabsf: 9064 case Builtin::BIcabsl: 9065 return FDecl->getBuiltinID(); 9066 } 9067 llvm_unreachable("Unknown Builtin type"); 9068 } 9069 9070 // If the replacement is valid, emit a note with replacement function. 9071 // Additionally, suggest including the proper header if not already included. 9072 static void emitReplacement(Sema &S, SourceLocation Loc, SourceRange Range, 9073 unsigned AbsKind, QualType ArgType) { 9074 bool EmitHeaderHint = true; 9075 const char *HeaderName = nullptr; 9076 const char *FunctionName = nullptr; 9077 if (S.getLangOpts().CPlusPlus && !ArgType->isAnyComplexType()) { 9078 FunctionName = "std::abs"; 9079 if (ArgType->isIntegralOrEnumerationType()) { 9080 HeaderName = "cstdlib"; 9081 } else if (ArgType->isRealFloatingType()) { 9082 HeaderName = "cmath"; 9083 } else { 9084 llvm_unreachable("Invalid Type"); 9085 } 9086 9087 // Lookup all std::abs 9088 if (NamespaceDecl *Std = S.getStdNamespace()) { 9089 LookupResult R(S, &S.Context.Idents.get("abs"), Loc, Sema::LookupAnyName); 9090 R.suppressDiagnostics(); 9091 S.LookupQualifiedName(R, Std); 9092 9093 for (const auto *I : R) { 9094 const FunctionDecl *FDecl = nullptr; 9095 if (const UsingShadowDecl *UsingD = dyn_cast<UsingShadowDecl>(I)) { 9096 FDecl = dyn_cast<FunctionDecl>(UsingD->getTargetDecl()); 9097 } else { 9098 FDecl = dyn_cast<FunctionDecl>(I); 9099 } 9100 if (!FDecl) 9101 continue; 9102 9103 // Found std::abs(), check that they are the right ones. 9104 if (FDecl->getNumParams() != 1) 9105 continue; 9106 9107 // Check that the parameter type can handle the argument. 9108 QualType ParamType = FDecl->getParamDecl(0)->getType(); 9109 if (getAbsoluteValueKind(ArgType) == getAbsoluteValueKind(ParamType) && 9110 S.Context.getTypeSize(ArgType) <= 9111 S.Context.getTypeSize(ParamType)) { 9112 // Found a function, don't need the header hint. 9113 EmitHeaderHint = false; 9114 break; 9115 } 9116 } 9117 } 9118 } else { 9119 FunctionName = S.Context.BuiltinInfo.getName(AbsKind); 9120 HeaderName = S.Context.BuiltinInfo.getHeaderName(AbsKind); 9121 9122 if (HeaderName) { 9123 DeclarationName DN(&S.Context.Idents.get(FunctionName)); 9124 LookupResult R(S, DN, Loc, Sema::LookupAnyName); 9125 R.suppressDiagnostics(); 9126 S.LookupName(R, S.getCurScope()); 9127 9128 if (R.isSingleResult()) { 9129 FunctionDecl *FD = dyn_cast<FunctionDecl>(R.getFoundDecl()); 9130 if (FD && FD->getBuiltinID() == AbsKind) { 9131 EmitHeaderHint = false; 9132 } else { 9133 return; 9134 } 9135 } else if (!R.empty()) { 9136 return; 9137 } 9138 } 9139 } 9140 9141 S.Diag(Loc, diag::note_replace_abs_function) 9142 << FunctionName << FixItHint::CreateReplacement(Range, FunctionName); 9143 9144 if (!HeaderName) 9145 return; 9146 9147 if (!EmitHeaderHint) 9148 return; 9149 9150 S.Diag(Loc, diag::note_include_header_or_declare) << HeaderName 9151 << FunctionName; 9152 } 9153 9154 template <std::size_t StrLen> 9155 static bool IsStdFunction(const FunctionDecl *FDecl, 9156 const char (&Str)[StrLen]) { 9157 if (!FDecl) 9158 return false; 9159 if (!FDecl->getIdentifier() || !FDecl->getIdentifier()->isStr(Str)) 9160 return false; 9161 if (!FDecl->isInStdNamespace()) 9162 return false; 9163 9164 return true; 9165 } 9166 9167 // Warn when using the wrong abs() function. 9168 void Sema::CheckAbsoluteValueFunction(const CallExpr *Call, 9169 const FunctionDecl *FDecl) { 9170 if (Call->getNumArgs() != 1) 9171 return; 9172 9173 unsigned AbsKind = getAbsoluteValueFunctionKind(FDecl); 9174 bool IsStdAbs = IsStdFunction(FDecl, "abs"); 9175 if (AbsKind == 0 && !IsStdAbs) 9176 return; 9177 9178 QualType ArgType = Call->getArg(0)->IgnoreParenImpCasts()->getType(); 9179 QualType ParamType = Call->getArg(0)->getType(); 9180 9181 // Unsigned types cannot be negative. Suggest removing the absolute value 9182 // function call. 9183 if (ArgType->isUnsignedIntegerType()) { 9184 const char *FunctionName = 9185 IsStdAbs ? "std::abs" : Context.BuiltinInfo.getName(AbsKind); 9186 Diag(Call->getExprLoc(), diag::warn_unsigned_abs) << ArgType << ParamType; 9187 Diag(Call->getExprLoc(), diag::note_remove_abs) 9188 << FunctionName 9189 << FixItHint::CreateRemoval(Call->getCallee()->getSourceRange()); 9190 return; 9191 } 9192 9193 // Taking the absolute value of a pointer is very suspicious, they probably 9194 // wanted to index into an array, dereference a pointer, call a function, etc. 9195 if (ArgType->isPointerType() || ArgType->canDecayToPointerType()) { 9196 unsigned DiagType = 0; 9197 if (ArgType->isFunctionType()) 9198 DiagType = 1; 9199 else if (ArgType->isArrayType()) 9200 DiagType = 2; 9201 9202 Diag(Call->getExprLoc(), diag::warn_pointer_abs) << DiagType << ArgType; 9203 return; 9204 } 9205 9206 // std::abs has overloads which prevent most of the absolute value problems 9207 // from occurring. 9208 if (IsStdAbs) 9209 return; 9210 9211 AbsoluteValueKind ArgValueKind = getAbsoluteValueKind(ArgType); 9212 AbsoluteValueKind ParamValueKind = getAbsoluteValueKind(ParamType); 9213 9214 // The argument and parameter are the same kind. Check if they are the right 9215 // size. 9216 if (ArgValueKind == ParamValueKind) { 9217 if (Context.getTypeSize(ArgType) <= Context.getTypeSize(ParamType)) 9218 return; 9219 9220 unsigned NewAbsKind = getBestAbsFunction(Context, ArgType, AbsKind); 9221 Diag(Call->getExprLoc(), diag::warn_abs_too_small) 9222 << FDecl << ArgType << ParamType; 9223 9224 if (NewAbsKind == 0) 9225 return; 9226 9227 emitReplacement(*this, Call->getExprLoc(), 9228 Call->getCallee()->getSourceRange(), NewAbsKind, ArgType); 9229 return; 9230 } 9231 9232 // ArgValueKind != ParamValueKind 9233 // The wrong type of absolute value function was used. Attempt to find the 9234 // proper one. 9235 unsigned NewAbsKind = changeAbsFunction(AbsKind, ArgValueKind); 9236 NewAbsKind = getBestAbsFunction(Context, ArgType, NewAbsKind); 9237 if (NewAbsKind == 0) 9238 return; 9239 9240 Diag(Call->getExprLoc(), diag::warn_wrong_absolute_value_type) 9241 << FDecl << ParamValueKind << ArgValueKind; 9242 9243 emitReplacement(*this, Call->getExprLoc(), 9244 Call->getCallee()->getSourceRange(), NewAbsKind, ArgType); 9245 } 9246 9247 //===--- CHECK: Warn on use of std::max and unsigned zero. r---------------===// 9248 void Sema::CheckMaxUnsignedZero(const CallExpr *Call, 9249 const FunctionDecl *FDecl) { 9250 if (!Call || !FDecl) return; 9251 9252 // Ignore template specializations and macros. 9253 if (inTemplateInstantiation()) return; 9254 if (Call->getExprLoc().isMacroID()) return; 9255 9256 // Only care about the one template argument, two function parameter std::max 9257 if (Call->getNumArgs() != 2) return; 9258 if (!IsStdFunction(FDecl, "max")) return; 9259 const auto * ArgList = FDecl->getTemplateSpecializationArgs(); 9260 if (!ArgList) return; 9261 if (ArgList->size() != 1) return; 9262 9263 // Check that template type argument is unsigned integer. 9264 const auto& TA = ArgList->get(0); 9265 if (TA.getKind() != TemplateArgument::Type) return; 9266 QualType ArgType = TA.getAsType(); 9267 if (!ArgType->isUnsignedIntegerType()) return; 9268 9269 // See if either argument is a literal zero. 9270 auto IsLiteralZeroArg = [](const Expr* E) -> bool { 9271 const auto *MTE = dyn_cast<MaterializeTemporaryExpr>(E); 9272 if (!MTE) return false; 9273 const auto *Num = dyn_cast<IntegerLiteral>(MTE->GetTemporaryExpr()); 9274 if (!Num) return false; 9275 if (Num->getValue() != 0) return false; 9276 return true; 9277 }; 9278 9279 const Expr *FirstArg = Call->getArg(0); 9280 const Expr *SecondArg = Call->getArg(1); 9281 const bool IsFirstArgZero = IsLiteralZeroArg(FirstArg); 9282 const bool IsSecondArgZero = IsLiteralZeroArg(SecondArg); 9283 9284 // Only warn when exactly one argument is zero. 9285 if (IsFirstArgZero == IsSecondArgZero) return; 9286 9287 SourceRange FirstRange = FirstArg->getSourceRange(); 9288 SourceRange SecondRange = SecondArg->getSourceRange(); 9289 9290 SourceRange ZeroRange = IsFirstArgZero ? FirstRange : SecondRange; 9291 9292 Diag(Call->getExprLoc(), diag::warn_max_unsigned_zero) 9293 << IsFirstArgZero << Call->getCallee()->getSourceRange() << ZeroRange; 9294 9295 // Deduce what parts to remove so that "std::max(0u, foo)" becomes "(foo)". 9296 SourceRange RemovalRange; 9297 if (IsFirstArgZero) { 9298 RemovalRange = SourceRange(FirstRange.getBegin(), 9299 SecondRange.getBegin().getLocWithOffset(-1)); 9300 } else { 9301 RemovalRange = SourceRange(getLocForEndOfToken(FirstRange.getEnd()), 9302 SecondRange.getEnd()); 9303 } 9304 9305 Diag(Call->getExprLoc(), diag::note_remove_max_call) 9306 << FixItHint::CreateRemoval(Call->getCallee()->getSourceRange()) 9307 << FixItHint::CreateRemoval(RemovalRange); 9308 } 9309 9310 //===--- CHECK: Standard memory functions ---------------------------------===// 9311 9312 /// Takes the expression passed to the size_t parameter of functions 9313 /// such as memcmp, strncat, etc and warns if it's a comparison. 9314 /// 9315 /// This is to catch typos like `if (memcmp(&a, &b, sizeof(a) > 0))`. 9316 static bool CheckMemorySizeofForComparison(Sema &S, const Expr *E, 9317 IdentifierInfo *FnName, 9318 SourceLocation FnLoc, 9319 SourceLocation RParenLoc) { 9320 const BinaryOperator *Size = dyn_cast<BinaryOperator>(E); 9321 if (!Size) 9322 return false; 9323 9324 // if E is binop and op is <=>, >, <, >=, <=, ==, &&, ||: 9325 if (!Size->isComparisonOp() && !Size->isLogicalOp()) 9326 return false; 9327 9328 SourceRange SizeRange = Size->getSourceRange(); 9329 S.Diag(Size->getOperatorLoc(), diag::warn_memsize_comparison) 9330 << SizeRange << FnName; 9331 S.Diag(FnLoc, diag::note_memsize_comparison_paren) 9332 << FnName 9333 << FixItHint::CreateInsertion( 9334 S.getLocForEndOfToken(Size->getLHS()->getEndLoc()), ")") 9335 << FixItHint::CreateRemoval(RParenLoc); 9336 S.Diag(SizeRange.getBegin(), diag::note_memsize_comparison_cast_silence) 9337 << FixItHint::CreateInsertion(SizeRange.getBegin(), "(size_t)(") 9338 << FixItHint::CreateInsertion(S.getLocForEndOfToken(SizeRange.getEnd()), 9339 ")"); 9340 9341 return true; 9342 } 9343 9344 /// Determine whether the given type is or contains a dynamic class type 9345 /// (e.g., whether it has a vtable). 9346 static const CXXRecordDecl *getContainedDynamicClass(QualType T, 9347 bool &IsContained) { 9348 // Look through array types while ignoring qualifiers. 9349 const Type *Ty = T->getBaseElementTypeUnsafe(); 9350 IsContained = false; 9351 9352 const CXXRecordDecl *RD = Ty->getAsCXXRecordDecl(); 9353 RD = RD ? RD->getDefinition() : nullptr; 9354 if (!RD || RD->isInvalidDecl()) 9355 return nullptr; 9356 9357 if (RD->isDynamicClass()) 9358 return RD; 9359 9360 // Check all the fields. If any bases were dynamic, the class is dynamic. 9361 // It's impossible for a class to transitively contain itself by value, so 9362 // infinite recursion is impossible. 9363 for (auto *FD : RD->fields()) { 9364 bool SubContained; 9365 if (const CXXRecordDecl *ContainedRD = 9366 getContainedDynamicClass(FD->getType(), SubContained)) { 9367 IsContained = true; 9368 return ContainedRD; 9369 } 9370 } 9371 9372 return nullptr; 9373 } 9374 9375 static const UnaryExprOrTypeTraitExpr *getAsSizeOfExpr(const Expr *E) { 9376 if (const auto *Unary = dyn_cast<UnaryExprOrTypeTraitExpr>(E)) 9377 if (Unary->getKind() == UETT_SizeOf) 9378 return Unary; 9379 return nullptr; 9380 } 9381 9382 /// If E is a sizeof expression, returns its argument expression, 9383 /// otherwise returns NULL. 9384 static const Expr *getSizeOfExprArg(const Expr *E) { 9385 if (const UnaryExprOrTypeTraitExpr *SizeOf = getAsSizeOfExpr(E)) 9386 if (!SizeOf->isArgumentType()) 9387 return SizeOf->getArgumentExpr()->IgnoreParenImpCasts(); 9388 return nullptr; 9389 } 9390 9391 /// If E is a sizeof expression, returns its argument type. 9392 static QualType getSizeOfArgType(const Expr *E) { 9393 if (const UnaryExprOrTypeTraitExpr *SizeOf = getAsSizeOfExpr(E)) 9394 return SizeOf->getTypeOfArgument(); 9395 return QualType(); 9396 } 9397 9398 namespace { 9399 9400 struct SearchNonTrivialToInitializeField 9401 : DefaultInitializedTypeVisitor<SearchNonTrivialToInitializeField> { 9402 using Super = 9403 DefaultInitializedTypeVisitor<SearchNonTrivialToInitializeField>; 9404 9405 SearchNonTrivialToInitializeField(const Expr *E, Sema &S) : E(E), S(S) {} 9406 9407 void visitWithKind(QualType::PrimitiveDefaultInitializeKind PDIK, QualType FT, 9408 SourceLocation SL) { 9409 if (const auto *AT = asDerived().getContext().getAsArrayType(FT)) { 9410 asDerived().visitArray(PDIK, AT, SL); 9411 return; 9412 } 9413 9414 Super::visitWithKind(PDIK, FT, SL); 9415 } 9416 9417 void visitARCStrong(QualType FT, SourceLocation SL) { 9418 S.DiagRuntimeBehavior(SL, E, S.PDiag(diag::note_nontrivial_field) << 1); 9419 } 9420 void visitARCWeak(QualType FT, SourceLocation SL) { 9421 S.DiagRuntimeBehavior(SL, E, S.PDiag(diag::note_nontrivial_field) << 1); 9422 } 9423 void visitStruct(QualType FT, SourceLocation SL) { 9424 for (const FieldDecl *FD : FT->castAs<RecordType>()->getDecl()->fields()) 9425 visit(FD->getType(), FD->getLocation()); 9426 } 9427 void visitArray(QualType::PrimitiveDefaultInitializeKind PDIK, 9428 const ArrayType *AT, SourceLocation SL) { 9429 visit(getContext().getBaseElementType(AT), SL); 9430 } 9431 void visitTrivial(QualType FT, SourceLocation SL) {} 9432 9433 static void diag(QualType RT, const Expr *E, Sema &S) { 9434 SearchNonTrivialToInitializeField(E, S).visitStruct(RT, SourceLocation()); 9435 } 9436 9437 ASTContext &getContext() { return S.getASTContext(); } 9438 9439 const Expr *E; 9440 Sema &S; 9441 }; 9442 9443 struct SearchNonTrivialToCopyField 9444 : CopiedTypeVisitor<SearchNonTrivialToCopyField, false> { 9445 using Super = CopiedTypeVisitor<SearchNonTrivialToCopyField, false>; 9446 9447 SearchNonTrivialToCopyField(const Expr *E, Sema &S) : E(E), S(S) {} 9448 9449 void visitWithKind(QualType::PrimitiveCopyKind PCK, QualType FT, 9450 SourceLocation SL) { 9451 if (const auto *AT = asDerived().getContext().getAsArrayType(FT)) { 9452 asDerived().visitArray(PCK, AT, SL); 9453 return; 9454 } 9455 9456 Super::visitWithKind(PCK, FT, SL); 9457 } 9458 9459 void visitARCStrong(QualType FT, SourceLocation SL) { 9460 S.DiagRuntimeBehavior(SL, E, S.PDiag(diag::note_nontrivial_field) << 0); 9461 } 9462 void visitARCWeak(QualType FT, SourceLocation SL) { 9463 S.DiagRuntimeBehavior(SL, E, S.PDiag(diag::note_nontrivial_field) << 0); 9464 } 9465 void visitStruct(QualType FT, SourceLocation SL) { 9466 for (const FieldDecl *FD : FT->castAs<RecordType>()->getDecl()->fields()) 9467 visit(FD->getType(), FD->getLocation()); 9468 } 9469 void visitArray(QualType::PrimitiveCopyKind PCK, const ArrayType *AT, 9470 SourceLocation SL) { 9471 visit(getContext().getBaseElementType(AT), SL); 9472 } 9473 void preVisit(QualType::PrimitiveCopyKind PCK, QualType FT, 9474 SourceLocation SL) {} 9475 void visitTrivial(QualType FT, SourceLocation SL) {} 9476 void visitVolatileTrivial(QualType FT, SourceLocation SL) {} 9477 9478 static void diag(QualType RT, const Expr *E, Sema &S) { 9479 SearchNonTrivialToCopyField(E, S).visitStruct(RT, SourceLocation()); 9480 } 9481 9482 ASTContext &getContext() { return S.getASTContext(); } 9483 9484 const Expr *E; 9485 Sema &S; 9486 }; 9487 9488 } 9489 9490 /// Detect if \c SizeofExpr is likely to calculate the sizeof an object. 9491 static bool doesExprLikelyComputeSize(const Expr *SizeofExpr) { 9492 SizeofExpr = SizeofExpr->IgnoreParenImpCasts(); 9493 9494 if (const auto *BO = dyn_cast<BinaryOperator>(SizeofExpr)) { 9495 if (BO->getOpcode() != BO_Mul && BO->getOpcode() != BO_Add) 9496 return false; 9497 9498 return doesExprLikelyComputeSize(BO->getLHS()) || 9499 doesExprLikelyComputeSize(BO->getRHS()); 9500 } 9501 9502 return getAsSizeOfExpr(SizeofExpr) != nullptr; 9503 } 9504 9505 /// Check if the ArgLoc originated from a macro passed to the call at CallLoc. 9506 /// 9507 /// \code 9508 /// #define MACRO 0 9509 /// foo(MACRO); 9510 /// foo(0); 9511 /// \endcode 9512 /// 9513 /// This should return true for the first call to foo, but not for the second 9514 /// (regardless of whether foo is a macro or function). 9515 static bool isArgumentExpandedFromMacro(SourceManager &SM, 9516 SourceLocation CallLoc, 9517 SourceLocation ArgLoc) { 9518 if (!CallLoc.isMacroID()) 9519 return SM.getFileID(CallLoc) != SM.getFileID(ArgLoc); 9520 9521 return SM.getFileID(SM.getImmediateMacroCallerLoc(CallLoc)) != 9522 SM.getFileID(SM.getImmediateMacroCallerLoc(ArgLoc)); 9523 } 9524 9525 /// Diagnose cases like 'memset(buf, sizeof(buf), 0)', which should have the 9526 /// last two arguments transposed. 9527 static void CheckMemaccessSize(Sema &S, unsigned BId, const CallExpr *Call) { 9528 if (BId != Builtin::BImemset && BId != Builtin::BIbzero) 9529 return; 9530 9531 const Expr *SizeArg = 9532 Call->getArg(BId == Builtin::BImemset ? 2 : 1)->IgnoreImpCasts(); 9533 9534 auto isLiteralZero = [](const Expr *E) { 9535 return isa<IntegerLiteral>(E) && cast<IntegerLiteral>(E)->getValue() == 0; 9536 }; 9537 9538 // If we're memsetting or bzeroing 0 bytes, then this is likely an error. 9539 SourceLocation CallLoc = Call->getRParenLoc(); 9540 SourceManager &SM = S.getSourceManager(); 9541 if (isLiteralZero(SizeArg) && 9542 !isArgumentExpandedFromMacro(SM, CallLoc, SizeArg->getExprLoc())) { 9543 9544 SourceLocation DiagLoc = SizeArg->getExprLoc(); 9545 9546 // Some platforms #define bzero to __builtin_memset. See if this is the 9547 // case, and if so, emit a better diagnostic. 9548 if (BId == Builtin::BIbzero || 9549 (CallLoc.isMacroID() && Lexer::getImmediateMacroName( 9550 CallLoc, SM, S.getLangOpts()) == "bzero")) { 9551 S.Diag(DiagLoc, diag::warn_suspicious_bzero_size); 9552 S.Diag(DiagLoc, diag::note_suspicious_bzero_size_silence); 9553 } else if (!isLiteralZero(Call->getArg(1)->IgnoreImpCasts())) { 9554 S.Diag(DiagLoc, diag::warn_suspicious_sizeof_memset) << 0; 9555 S.Diag(DiagLoc, diag::note_suspicious_sizeof_memset_silence) << 0; 9556 } 9557 return; 9558 } 9559 9560 // If the second argument to a memset is a sizeof expression and the third 9561 // isn't, this is also likely an error. This should catch 9562 // 'memset(buf, sizeof(buf), 0xff)'. 9563 if (BId == Builtin::BImemset && 9564 doesExprLikelyComputeSize(Call->getArg(1)) && 9565 !doesExprLikelyComputeSize(Call->getArg(2))) { 9566 SourceLocation DiagLoc = Call->getArg(1)->getExprLoc(); 9567 S.Diag(DiagLoc, diag::warn_suspicious_sizeof_memset) << 1; 9568 S.Diag(DiagLoc, diag::note_suspicious_sizeof_memset_silence) << 1; 9569 return; 9570 } 9571 } 9572 9573 /// Check for dangerous or invalid arguments to memset(). 9574 /// 9575 /// This issues warnings on known problematic, dangerous or unspecified 9576 /// arguments to the standard 'memset', 'memcpy', 'memmove', and 'memcmp' 9577 /// function calls. 9578 /// 9579 /// \param Call The call expression to diagnose. 9580 void Sema::CheckMemaccessArguments(const CallExpr *Call, 9581 unsigned BId, 9582 IdentifierInfo *FnName) { 9583 assert(BId != 0); 9584 9585 // It is possible to have a non-standard definition of memset. Validate 9586 // we have enough arguments, and if not, abort further checking. 9587 unsigned ExpectedNumArgs = 9588 (BId == Builtin::BIstrndup || BId == Builtin::BIbzero ? 2 : 3); 9589 if (Call->getNumArgs() < ExpectedNumArgs) 9590 return; 9591 9592 unsigned LastArg = (BId == Builtin::BImemset || BId == Builtin::BIbzero || 9593 BId == Builtin::BIstrndup ? 1 : 2); 9594 unsigned LenArg = 9595 (BId == Builtin::BIbzero || BId == Builtin::BIstrndup ? 1 : 2); 9596 const Expr *LenExpr = Call->getArg(LenArg)->IgnoreParenImpCasts(); 9597 9598 if (CheckMemorySizeofForComparison(*this, LenExpr, FnName, 9599 Call->getBeginLoc(), Call->getRParenLoc())) 9600 return; 9601 9602 // Catch cases like 'memset(buf, sizeof(buf), 0)'. 9603 CheckMemaccessSize(*this, BId, Call); 9604 9605 // We have special checking when the length is a sizeof expression. 9606 QualType SizeOfArgTy = getSizeOfArgType(LenExpr); 9607 const Expr *SizeOfArg = getSizeOfExprArg(LenExpr); 9608 llvm::FoldingSetNodeID SizeOfArgID; 9609 9610 // Although widely used, 'bzero' is not a standard function. Be more strict 9611 // with the argument types before allowing diagnostics and only allow the 9612 // form bzero(ptr, sizeof(...)). 9613 QualType FirstArgTy = Call->getArg(0)->IgnoreParenImpCasts()->getType(); 9614 if (BId == Builtin::BIbzero && !FirstArgTy->getAs<PointerType>()) 9615 return; 9616 9617 for (unsigned ArgIdx = 0; ArgIdx != LastArg; ++ArgIdx) { 9618 const Expr *Dest = Call->getArg(ArgIdx)->IgnoreParenImpCasts(); 9619 SourceRange ArgRange = Call->getArg(ArgIdx)->getSourceRange(); 9620 9621 QualType DestTy = Dest->getType(); 9622 QualType PointeeTy; 9623 if (const PointerType *DestPtrTy = DestTy->getAs<PointerType>()) { 9624 PointeeTy = DestPtrTy->getPointeeType(); 9625 9626 // Never warn about void type pointers. This can be used to suppress 9627 // false positives. 9628 if (PointeeTy->isVoidType()) 9629 continue; 9630 9631 // Catch "memset(p, 0, sizeof(p))" -- needs to be sizeof(*p). Do this by 9632 // actually comparing the expressions for equality. Because computing the 9633 // expression IDs can be expensive, we only do this if the diagnostic is 9634 // enabled. 9635 if (SizeOfArg && 9636 !Diags.isIgnored(diag::warn_sizeof_pointer_expr_memaccess, 9637 SizeOfArg->getExprLoc())) { 9638 // We only compute IDs for expressions if the warning is enabled, and 9639 // cache the sizeof arg's ID. 9640 if (SizeOfArgID == llvm::FoldingSetNodeID()) 9641 SizeOfArg->Profile(SizeOfArgID, Context, true); 9642 llvm::FoldingSetNodeID DestID; 9643 Dest->Profile(DestID, Context, true); 9644 if (DestID == SizeOfArgID) { 9645 // TODO: For strncpy() and friends, this could suggest sizeof(dst) 9646 // over sizeof(src) as well. 9647 unsigned ActionIdx = 0; // Default is to suggest dereferencing. 9648 StringRef ReadableName = FnName->getName(); 9649 9650 if (const UnaryOperator *UnaryOp = dyn_cast<UnaryOperator>(Dest)) 9651 if (UnaryOp->getOpcode() == UO_AddrOf) 9652 ActionIdx = 1; // If its an address-of operator, just remove it. 9653 if (!PointeeTy->isIncompleteType() && 9654 (Context.getTypeSize(PointeeTy) == Context.getCharWidth())) 9655 ActionIdx = 2; // If the pointee's size is sizeof(char), 9656 // suggest an explicit length. 9657 9658 // If the function is defined as a builtin macro, do not show macro 9659 // expansion. 9660 SourceLocation SL = SizeOfArg->getExprLoc(); 9661 SourceRange DSR = Dest->getSourceRange(); 9662 SourceRange SSR = SizeOfArg->getSourceRange(); 9663 SourceManager &SM = getSourceManager(); 9664 9665 if (SM.isMacroArgExpansion(SL)) { 9666 ReadableName = Lexer::getImmediateMacroName(SL, SM, LangOpts); 9667 SL = SM.getSpellingLoc(SL); 9668 DSR = SourceRange(SM.getSpellingLoc(DSR.getBegin()), 9669 SM.getSpellingLoc(DSR.getEnd())); 9670 SSR = SourceRange(SM.getSpellingLoc(SSR.getBegin()), 9671 SM.getSpellingLoc(SSR.getEnd())); 9672 } 9673 9674 DiagRuntimeBehavior(SL, SizeOfArg, 9675 PDiag(diag::warn_sizeof_pointer_expr_memaccess) 9676 << ReadableName 9677 << PointeeTy 9678 << DestTy 9679 << DSR 9680 << SSR); 9681 DiagRuntimeBehavior(SL, SizeOfArg, 9682 PDiag(diag::warn_sizeof_pointer_expr_memaccess_note) 9683 << ActionIdx 9684 << SSR); 9685 9686 break; 9687 } 9688 } 9689 9690 // Also check for cases where the sizeof argument is the exact same 9691 // type as the memory argument, and where it points to a user-defined 9692 // record type. 9693 if (SizeOfArgTy != QualType()) { 9694 if (PointeeTy->isRecordType() && 9695 Context.typesAreCompatible(SizeOfArgTy, DestTy)) { 9696 DiagRuntimeBehavior(LenExpr->getExprLoc(), Dest, 9697 PDiag(diag::warn_sizeof_pointer_type_memaccess) 9698 << FnName << SizeOfArgTy << ArgIdx 9699 << PointeeTy << Dest->getSourceRange() 9700 << LenExpr->getSourceRange()); 9701 break; 9702 } 9703 } 9704 } else if (DestTy->isArrayType()) { 9705 PointeeTy = DestTy; 9706 } 9707 9708 if (PointeeTy == QualType()) 9709 continue; 9710 9711 // Always complain about dynamic classes. 9712 bool IsContained; 9713 if (const CXXRecordDecl *ContainedRD = 9714 getContainedDynamicClass(PointeeTy, IsContained)) { 9715 9716 unsigned OperationType = 0; 9717 const bool IsCmp = BId == Builtin::BImemcmp || BId == Builtin::BIbcmp; 9718 // "overwritten" if we're warning about the destination for any call 9719 // but memcmp; otherwise a verb appropriate to the call. 9720 if (ArgIdx != 0 || IsCmp) { 9721 if (BId == Builtin::BImemcpy) 9722 OperationType = 1; 9723 else if(BId == Builtin::BImemmove) 9724 OperationType = 2; 9725 else if (IsCmp) 9726 OperationType = 3; 9727 } 9728 9729 DiagRuntimeBehavior(Dest->getExprLoc(), Dest, 9730 PDiag(diag::warn_dyn_class_memaccess) 9731 << (IsCmp ? ArgIdx + 2 : ArgIdx) << FnName 9732 << IsContained << ContainedRD << OperationType 9733 << Call->getCallee()->getSourceRange()); 9734 } else if (PointeeTy.hasNonTrivialObjCLifetime() && 9735 BId != Builtin::BImemset) 9736 DiagRuntimeBehavior( 9737 Dest->getExprLoc(), Dest, 9738 PDiag(diag::warn_arc_object_memaccess) 9739 << ArgIdx << FnName << PointeeTy 9740 << Call->getCallee()->getSourceRange()); 9741 else if (const auto *RT = PointeeTy->getAs<RecordType>()) { 9742 if ((BId == Builtin::BImemset || BId == Builtin::BIbzero) && 9743 RT->getDecl()->isNonTrivialToPrimitiveDefaultInitialize()) { 9744 DiagRuntimeBehavior(Dest->getExprLoc(), Dest, 9745 PDiag(diag::warn_cstruct_memaccess) 9746 << ArgIdx << FnName << PointeeTy << 0); 9747 SearchNonTrivialToInitializeField::diag(PointeeTy, Dest, *this); 9748 } else if ((BId == Builtin::BImemcpy || BId == Builtin::BImemmove) && 9749 RT->getDecl()->isNonTrivialToPrimitiveCopy()) { 9750 DiagRuntimeBehavior(Dest->getExprLoc(), Dest, 9751 PDiag(diag::warn_cstruct_memaccess) 9752 << ArgIdx << FnName << PointeeTy << 1); 9753 SearchNonTrivialToCopyField::diag(PointeeTy, Dest, *this); 9754 } else { 9755 continue; 9756 } 9757 } else 9758 continue; 9759 9760 DiagRuntimeBehavior( 9761 Dest->getExprLoc(), Dest, 9762 PDiag(diag::note_bad_memaccess_silence) 9763 << FixItHint::CreateInsertion(ArgRange.getBegin(), "(void*)")); 9764 break; 9765 } 9766 } 9767 9768 // A little helper routine: ignore addition and subtraction of integer literals. 9769 // This intentionally does not ignore all integer constant expressions because 9770 // we don't want to remove sizeof(). 9771 static const Expr *ignoreLiteralAdditions(const Expr *Ex, ASTContext &Ctx) { 9772 Ex = Ex->IgnoreParenCasts(); 9773 9774 while (true) { 9775 const BinaryOperator * BO = dyn_cast<BinaryOperator>(Ex); 9776 if (!BO || !BO->isAdditiveOp()) 9777 break; 9778 9779 const Expr *RHS = BO->getRHS()->IgnoreParenCasts(); 9780 const Expr *LHS = BO->getLHS()->IgnoreParenCasts(); 9781 9782 if (isa<IntegerLiteral>(RHS)) 9783 Ex = LHS; 9784 else if (isa<IntegerLiteral>(LHS)) 9785 Ex = RHS; 9786 else 9787 break; 9788 } 9789 9790 return Ex; 9791 } 9792 9793 static bool isConstantSizeArrayWithMoreThanOneElement(QualType Ty, 9794 ASTContext &Context) { 9795 // Only handle constant-sized or VLAs, but not flexible members. 9796 if (const ConstantArrayType *CAT = Context.getAsConstantArrayType(Ty)) { 9797 // Only issue the FIXIT for arrays of size > 1. 9798 if (CAT->getSize().getSExtValue() <= 1) 9799 return false; 9800 } else if (!Ty->isVariableArrayType()) { 9801 return false; 9802 } 9803 return true; 9804 } 9805 9806 // Warn if the user has made the 'size' argument to strlcpy or strlcat 9807 // be the size of the source, instead of the destination. 9808 void Sema::CheckStrlcpycatArguments(const CallExpr *Call, 9809 IdentifierInfo *FnName) { 9810 9811 // Don't crash if the user has the wrong number of arguments 9812 unsigned NumArgs = Call->getNumArgs(); 9813 if ((NumArgs != 3) && (NumArgs != 4)) 9814 return; 9815 9816 const Expr *SrcArg = ignoreLiteralAdditions(Call->getArg(1), Context); 9817 const Expr *SizeArg = ignoreLiteralAdditions(Call->getArg(2), Context); 9818 const Expr *CompareWithSrc = nullptr; 9819 9820 if (CheckMemorySizeofForComparison(*this, SizeArg, FnName, 9821 Call->getBeginLoc(), Call->getRParenLoc())) 9822 return; 9823 9824 // Look for 'strlcpy(dst, x, sizeof(x))' 9825 if (const Expr *Ex = getSizeOfExprArg(SizeArg)) 9826 CompareWithSrc = Ex; 9827 else { 9828 // Look for 'strlcpy(dst, x, strlen(x))' 9829 if (const CallExpr *SizeCall = dyn_cast<CallExpr>(SizeArg)) { 9830 if (SizeCall->getBuiltinCallee() == Builtin::BIstrlen && 9831 SizeCall->getNumArgs() == 1) 9832 CompareWithSrc = ignoreLiteralAdditions(SizeCall->getArg(0), Context); 9833 } 9834 } 9835 9836 if (!CompareWithSrc) 9837 return; 9838 9839 // Determine if the argument to sizeof/strlen is equal to the source 9840 // argument. In principle there's all kinds of things you could do 9841 // here, for instance creating an == expression and evaluating it with 9842 // EvaluateAsBooleanCondition, but this uses a more direct technique: 9843 const DeclRefExpr *SrcArgDRE = dyn_cast<DeclRefExpr>(SrcArg); 9844 if (!SrcArgDRE) 9845 return; 9846 9847 const DeclRefExpr *CompareWithSrcDRE = dyn_cast<DeclRefExpr>(CompareWithSrc); 9848 if (!CompareWithSrcDRE || 9849 SrcArgDRE->getDecl() != CompareWithSrcDRE->getDecl()) 9850 return; 9851 9852 const Expr *OriginalSizeArg = Call->getArg(2); 9853 Diag(CompareWithSrcDRE->getBeginLoc(), diag::warn_strlcpycat_wrong_size) 9854 << OriginalSizeArg->getSourceRange() << FnName; 9855 9856 // Output a FIXIT hint if the destination is an array (rather than a 9857 // pointer to an array). This could be enhanced to handle some 9858 // pointers if we know the actual size, like if DstArg is 'array+2' 9859 // we could say 'sizeof(array)-2'. 9860 const Expr *DstArg = Call->getArg(0)->IgnoreParenImpCasts(); 9861 if (!isConstantSizeArrayWithMoreThanOneElement(DstArg->getType(), Context)) 9862 return; 9863 9864 SmallString<128> sizeString; 9865 llvm::raw_svector_ostream OS(sizeString); 9866 OS << "sizeof("; 9867 DstArg->printPretty(OS, nullptr, getPrintingPolicy()); 9868 OS << ")"; 9869 9870 Diag(OriginalSizeArg->getBeginLoc(), diag::note_strlcpycat_wrong_size) 9871 << FixItHint::CreateReplacement(OriginalSizeArg->getSourceRange(), 9872 OS.str()); 9873 } 9874 9875 /// Check if two expressions refer to the same declaration. 9876 static bool referToTheSameDecl(const Expr *E1, const Expr *E2) { 9877 if (const DeclRefExpr *D1 = dyn_cast_or_null<DeclRefExpr>(E1)) 9878 if (const DeclRefExpr *D2 = dyn_cast_or_null<DeclRefExpr>(E2)) 9879 return D1->getDecl() == D2->getDecl(); 9880 return false; 9881 } 9882 9883 static const Expr *getStrlenExprArg(const Expr *E) { 9884 if (const CallExpr *CE = dyn_cast<CallExpr>(E)) { 9885 const FunctionDecl *FD = CE->getDirectCallee(); 9886 if (!FD || FD->getMemoryFunctionKind() != Builtin::BIstrlen) 9887 return nullptr; 9888 return CE->getArg(0)->IgnoreParenCasts(); 9889 } 9890 return nullptr; 9891 } 9892 9893 // Warn on anti-patterns as the 'size' argument to strncat. 9894 // The correct size argument should look like following: 9895 // strncat(dst, src, sizeof(dst) - strlen(dest) - 1); 9896 void Sema::CheckStrncatArguments(const CallExpr *CE, 9897 IdentifierInfo *FnName) { 9898 // Don't crash if the user has the wrong number of arguments. 9899 if (CE->getNumArgs() < 3) 9900 return; 9901 const Expr *DstArg = CE->getArg(0)->IgnoreParenCasts(); 9902 const Expr *SrcArg = CE->getArg(1)->IgnoreParenCasts(); 9903 const Expr *LenArg = CE->getArg(2)->IgnoreParenCasts(); 9904 9905 if (CheckMemorySizeofForComparison(*this, LenArg, FnName, CE->getBeginLoc(), 9906 CE->getRParenLoc())) 9907 return; 9908 9909 // Identify common expressions, which are wrongly used as the size argument 9910 // to strncat and may lead to buffer overflows. 9911 unsigned PatternType = 0; 9912 if (const Expr *SizeOfArg = getSizeOfExprArg(LenArg)) { 9913 // - sizeof(dst) 9914 if (referToTheSameDecl(SizeOfArg, DstArg)) 9915 PatternType = 1; 9916 // - sizeof(src) 9917 else if (referToTheSameDecl(SizeOfArg, SrcArg)) 9918 PatternType = 2; 9919 } else if (const BinaryOperator *BE = dyn_cast<BinaryOperator>(LenArg)) { 9920 if (BE->getOpcode() == BO_Sub) { 9921 const Expr *L = BE->getLHS()->IgnoreParenCasts(); 9922 const Expr *R = BE->getRHS()->IgnoreParenCasts(); 9923 // - sizeof(dst) - strlen(dst) 9924 if (referToTheSameDecl(DstArg, getSizeOfExprArg(L)) && 9925 referToTheSameDecl(DstArg, getStrlenExprArg(R))) 9926 PatternType = 1; 9927 // - sizeof(src) - (anything) 9928 else if (referToTheSameDecl(SrcArg, getSizeOfExprArg(L))) 9929 PatternType = 2; 9930 } 9931 } 9932 9933 if (PatternType == 0) 9934 return; 9935 9936 // Generate the diagnostic. 9937 SourceLocation SL = LenArg->getBeginLoc(); 9938 SourceRange SR = LenArg->getSourceRange(); 9939 SourceManager &SM = getSourceManager(); 9940 9941 // If the function is defined as a builtin macro, do not show macro expansion. 9942 if (SM.isMacroArgExpansion(SL)) { 9943 SL = SM.getSpellingLoc(SL); 9944 SR = SourceRange(SM.getSpellingLoc(SR.getBegin()), 9945 SM.getSpellingLoc(SR.getEnd())); 9946 } 9947 9948 // Check if the destination is an array (rather than a pointer to an array). 9949 QualType DstTy = DstArg->getType(); 9950 bool isKnownSizeArray = isConstantSizeArrayWithMoreThanOneElement(DstTy, 9951 Context); 9952 if (!isKnownSizeArray) { 9953 if (PatternType == 1) 9954 Diag(SL, diag::warn_strncat_wrong_size) << SR; 9955 else 9956 Diag(SL, diag::warn_strncat_src_size) << SR; 9957 return; 9958 } 9959 9960 if (PatternType == 1) 9961 Diag(SL, diag::warn_strncat_large_size) << SR; 9962 else 9963 Diag(SL, diag::warn_strncat_src_size) << SR; 9964 9965 SmallString<128> sizeString; 9966 llvm::raw_svector_ostream OS(sizeString); 9967 OS << "sizeof("; 9968 DstArg->printPretty(OS, nullptr, getPrintingPolicy()); 9969 OS << ") - "; 9970 OS << "strlen("; 9971 DstArg->printPretty(OS, nullptr, getPrintingPolicy()); 9972 OS << ") - 1"; 9973 9974 Diag(SL, diag::note_strncat_wrong_size) 9975 << FixItHint::CreateReplacement(SR, OS.str()); 9976 } 9977 9978 void 9979 Sema::CheckReturnValExpr(Expr *RetValExp, QualType lhsType, 9980 SourceLocation ReturnLoc, 9981 bool isObjCMethod, 9982 const AttrVec *Attrs, 9983 const FunctionDecl *FD) { 9984 // Check if the return value is null but should not be. 9985 if (((Attrs && hasSpecificAttr<ReturnsNonNullAttr>(*Attrs)) || 9986 (!isObjCMethod && isNonNullType(Context, lhsType))) && 9987 CheckNonNullExpr(*this, RetValExp)) 9988 Diag(ReturnLoc, diag::warn_null_ret) 9989 << (isObjCMethod ? 1 : 0) << RetValExp->getSourceRange(); 9990 9991 // C++11 [basic.stc.dynamic.allocation]p4: 9992 // If an allocation function declared with a non-throwing 9993 // exception-specification fails to allocate storage, it shall return 9994 // a null pointer. Any other allocation function that fails to allocate 9995 // storage shall indicate failure only by throwing an exception [...] 9996 if (FD) { 9997 OverloadedOperatorKind Op = FD->getOverloadedOperator(); 9998 if (Op == OO_New || Op == OO_Array_New) { 9999 const FunctionProtoType *Proto 10000 = FD->getType()->castAs<FunctionProtoType>(); 10001 if (!Proto->isNothrow(/*ResultIfDependent*/true) && 10002 CheckNonNullExpr(*this, RetValExp)) 10003 Diag(ReturnLoc, diag::warn_operator_new_returns_null) 10004 << FD << getLangOpts().CPlusPlus11; 10005 } 10006 } 10007 } 10008 10009 //===--- CHECK: Floating-Point comparisons (-Wfloat-equal) ---------------===// 10010 10011 /// Check for comparisons of floating point operands using != and ==. 10012 /// Issue a warning if these are no self-comparisons, as they are not likely 10013 /// to do what the programmer intended. 10014 void Sema::CheckFloatComparison(SourceLocation Loc, Expr* LHS, Expr *RHS) { 10015 Expr* LeftExprSansParen = LHS->IgnoreParenImpCasts(); 10016 Expr* RightExprSansParen = RHS->IgnoreParenImpCasts(); 10017 10018 // Special case: check for x == x (which is OK). 10019 // Do not emit warnings for such cases. 10020 if (DeclRefExpr* DRL = dyn_cast<DeclRefExpr>(LeftExprSansParen)) 10021 if (DeclRefExpr* DRR = dyn_cast<DeclRefExpr>(RightExprSansParen)) 10022 if (DRL->getDecl() == DRR->getDecl()) 10023 return; 10024 10025 // Special case: check for comparisons against literals that can be exactly 10026 // represented by APFloat. In such cases, do not emit a warning. This 10027 // is a heuristic: often comparison against such literals are used to 10028 // detect if a value in a variable has not changed. This clearly can 10029 // lead to false negatives. 10030 if (FloatingLiteral* FLL = dyn_cast<FloatingLiteral>(LeftExprSansParen)) { 10031 if (FLL->isExact()) 10032 return; 10033 } else 10034 if (FloatingLiteral* FLR = dyn_cast<FloatingLiteral>(RightExprSansParen)) 10035 if (FLR->isExact()) 10036 return; 10037 10038 // Check for comparisons with builtin types. 10039 if (CallExpr* CL = dyn_cast<CallExpr>(LeftExprSansParen)) 10040 if (CL->getBuiltinCallee()) 10041 return; 10042 10043 if (CallExpr* CR = dyn_cast<CallExpr>(RightExprSansParen)) 10044 if (CR->getBuiltinCallee()) 10045 return; 10046 10047 // Emit the diagnostic. 10048 Diag(Loc, diag::warn_floatingpoint_eq) 10049 << LHS->getSourceRange() << RHS->getSourceRange(); 10050 } 10051 10052 //===--- CHECK: Integer mixed-sign comparisons (-Wsign-compare) --------===// 10053 //===--- CHECK: Lossy implicit conversions (-Wconversion) --------------===// 10054 10055 namespace { 10056 10057 /// Structure recording the 'active' range of an integer-valued 10058 /// expression. 10059 struct IntRange { 10060 /// The number of bits active in the int. 10061 unsigned Width; 10062 10063 /// True if the int is known not to have negative values. 10064 bool NonNegative; 10065 10066 IntRange(unsigned Width, bool NonNegative) 10067 : Width(Width), NonNegative(NonNegative) {} 10068 10069 /// Returns the range of the bool type. 10070 static IntRange forBoolType() { 10071 return IntRange(1, true); 10072 } 10073 10074 /// Returns the range of an opaque value of the given integral type. 10075 static IntRange forValueOfType(ASTContext &C, QualType T) { 10076 return forValueOfCanonicalType(C, 10077 T->getCanonicalTypeInternal().getTypePtr()); 10078 } 10079 10080 /// Returns the range of an opaque value of a canonical integral type. 10081 static IntRange forValueOfCanonicalType(ASTContext &C, const Type *T) { 10082 assert(T->isCanonicalUnqualified()); 10083 10084 if (const VectorType *VT = dyn_cast<VectorType>(T)) 10085 T = VT->getElementType().getTypePtr(); 10086 if (const ComplexType *CT = dyn_cast<ComplexType>(T)) 10087 T = CT->getElementType().getTypePtr(); 10088 if (const AtomicType *AT = dyn_cast<AtomicType>(T)) 10089 T = AT->getValueType().getTypePtr(); 10090 10091 if (!C.getLangOpts().CPlusPlus) { 10092 // For enum types in C code, use the underlying datatype. 10093 if (const EnumType *ET = dyn_cast<EnumType>(T)) 10094 T = ET->getDecl()->getIntegerType().getDesugaredType(C).getTypePtr(); 10095 } else if (const EnumType *ET = dyn_cast<EnumType>(T)) { 10096 // For enum types in C++, use the known bit width of the enumerators. 10097 EnumDecl *Enum = ET->getDecl(); 10098 // In C++11, enums can have a fixed underlying type. Use this type to 10099 // compute the range. 10100 if (Enum->isFixed()) { 10101 return IntRange(C.getIntWidth(QualType(T, 0)), 10102 !ET->isSignedIntegerOrEnumerationType()); 10103 } 10104 10105 unsigned NumPositive = Enum->getNumPositiveBits(); 10106 unsigned NumNegative = Enum->getNumNegativeBits(); 10107 10108 if (NumNegative == 0) 10109 return IntRange(NumPositive, true/*NonNegative*/); 10110 else 10111 return IntRange(std::max(NumPositive + 1, NumNegative), 10112 false/*NonNegative*/); 10113 } 10114 10115 const BuiltinType *BT = cast<BuiltinType>(T); 10116 assert(BT->isInteger()); 10117 10118 return IntRange(C.getIntWidth(QualType(T, 0)), BT->isUnsignedInteger()); 10119 } 10120 10121 /// Returns the "target" range of a canonical integral type, i.e. 10122 /// the range of values expressible in the type. 10123 /// 10124 /// This matches forValueOfCanonicalType except that enums have the 10125 /// full range of their type, not the range of their enumerators. 10126 static IntRange forTargetOfCanonicalType(ASTContext &C, const Type *T) { 10127 assert(T->isCanonicalUnqualified()); 10128 10129 if (const VectorType *VT = dyn_cast<VectorType>(T)) 10130 T = VT->getElementType().getTypePtr(); 10131 if (const ComplexType *CT = dyn_cast<ComplexType>(T)) 10132 T = CT->getElementType().getTypePtr(); 10133 if (const AtomicType *AT = dyn_cast<AtomicType>(T)) 10134 T = AT->getValueType().getTypePtr(); 10135 if (const EnumType *ET = dyn_cast<EnumType>(T)) 10136 T = C.getCanonicalType(ET->getDecl()->getIntegerType()).getTypePtr(); 10137 10138 const BuiltinType *BT = cast<BuiltinType>(T); 10139 assert(BT->isInteger()); 10140 10141 return IntRange(C.getIntWidth(QualType(T, 0)), BT->isUnsignedInteger()); 10142 } 10143 10144 /// Returns the supremum of two ranges: i.e. their conservative merge. 10145 static IntRange join(IntRange L, IntRange R) { 10146 return IntRange(std::max(L.Width, R.Width), 10147 L.NonNegative && R.NonNegative); 10148 } 10149 10150 /// Returns the infinum of two ranges: i.e. their aggressive merge. 10151 static IntRange meet(IntRange L, IntRange R) { 10152 return IntRange(std::min(L.Width, R.Width), 10153 L.NonNegative || R.NonNegative); 10154 } 10155 }; 10156 10157 } // namespace 10158 10159 static IntRange GetValueRange(ASTContext &C, llvm::APSInt &value, 10160 unsigned MaxWidth) { 10161 if (value.isSigned() && value.isNegative()) 10162 return IntRange(value.getMinSignedBits(), false); 10163 10164 if (value.getBitWidth() > MaxWidth) 10165 value = value.trunc(MaxWidth); 10166 10167 // isNonNegative() just checks the sign bit without considering 10168 // signedness. 10169 return IntRange(value.getActiveBits(), true); 10170 } 10171 10172 static IntRange GetValueRange(ASTContext &C, APValue &result, QualType Ty, 10173 unsigned MaxWidth) { 10174 if (result.isInt()) 10175 return GetValueRange(C, result.getInt(), MaxWidth); 10176 10177 if (result.isVector()) { 10178 IntRange R = GetValueRange(C, result.getVectorElt(0), Ty, MaxWidth); 10179 for (unsigned i = 1, e = result.getVectorLength(); i != e; ++i) { 10180 IntRange El = GetValueRange(C, result.getVectorElt(i), Ty, MaxWidth); 10181 R = IntRange::join(R, El); 10182 } 10183 return R; 10184 } 10185 10186 if (result.isComplexInt()) { 10187 IntRange R = GetValueRange(C, result.getComplexIntReal(), MaxWidth); 10188 IntRange I = GetValueRange(C, result.getComplexIntImag(), MaxWidth); 10189 return IntRange::join(R, I); 10190 } 10191 10192 // This can happen with lossless casts to intptr_t of "based" lvalues. 10193 // Assume it might use arbitrary bits. 10194 // FIXME: The only reason we need to pass the type in here is to get 10195 // the sign right on this one case. It would be nice if APValue 10196 // preserved this. 10197 assert(result.isLValue() || result.isAddrLabelDiff()); 10198 return IntRange(MaxWidth, Ty->isUnsignedIntegerOrEnumerationType()); 10199 } 10200 10201 static QualType GetExprType(const Expr *E) { 10202 QualType Ty = E->getType(); 10203 if (const AtomicType *AtomicRHS = Ty->getAs<AtomicType>()) 10204 Ty = AtomicRHS->getValueType(); 10205 return Ty; 10206 } 10207 10208 /// Pseudo-evaluate the given integer expression, estimating the 10209 /// range of values it might take. 10210 /// 10211 /// \param MaxWidth - the width to which the value will be truncated 10212 static IntRange GetExprRange(ASTContext &C, const Expr *E, unsigned MaxWidth, 10213 bool InConstantContext) { 10214 E = E->IgnoreParens(); 10215 10216 // Try a full evaluation first. 10217 Expr::EvalResult result; 10218 if (E->EvaluateAsRValue(result, C, InConstantContext)) 10219 return GetValueRange(C, result.Val, GetExprType(E), MaxWidth); 10220 10221 // I think we only want to look through implicit casts here; if the 10222 // user has an explicit widening cast, we should treat the value as 10223 // being of the new, wider type. 10224 if (const auto *CE = dyn_cast<ImplicitCastExpr>(E)) { 10225 if (CE->getCastKind() == CK_NoOp || CE->getCastKind() == CK_LValueToRValue) 10226 return GetExprRange(C, CE->getSubExpr(), MaxWidth, InConstantContext); 10227 10228 IntRange OutputTypeRange = IntRange::forValueOfType(C, GetExprType(CE)); 10229 10230 bool isIntegerCast = CE->getCastKind() == CK_IntegralCast || 10231 CE->getCastKind() == CK_BooleanToSignedIntegral; 10232 10233 // Assume that non-integer casts can span the full range of the type. 10234 if (!isIntegerCast) 10235 return OutputTypeRange; 10236 10237 IntRange SubRange = GetExprRange(C, CE->getSubExpr(), 10238 std::min(MaxWidth, OutputTypeRange.Width), 10239 InConstantContext); 10240 10241 // Bail out if the subexpr's range is as wide as the cast type. 10242 if (SubRange.Width >= OutputTypeRange.Width) 10243 return OutputTypeRange; 10244 10245 // Otherwise, we take the smaller width, and we're non-negative if 10246 // either the output type or the subexpr is. 10247 return IntRange(SubRange.Width, 10248 SubRange.NonNegative || OutputTypeRange.NonNegative); 10249 } 10250 10251 if (const auto *CO = dyn_cast<ConditionalOperator>(E)) { 10252 // If we can fold the condition, just take that operand. 10253 bool CondResult; 10254 if (CO->getCond()->EvaluateAsBooleanCondition(CondResult, C)) 10255 return GetExprRange(C, 10256 CondResult ? CO->getTrueExpr() : CO->getFalseExpr(), 10257 MaxWidth, InConstantContext); 10258 10259 // Otherwise, conservatively merge. 10260 IntRange L = 10261 GetExprRange(C, CO->getTrueExpr(), MaxWidth, InConstantContext); 10262 IntRange R = 10263 GetExprRange(C, CO->getFalseExpr(), MaxWidth, InConstantContext); 10264 return IntRange::join(L, R); 10265 } 10266 10267 if (const auto *BO = dyn_cast<BinaryOperator>(E)) { 10268 switch (BO->getOpcode()) { 10269 case BO_Cmp: 10270 llvm_unreachable("builtin <=> should have class type"); 10271 10272 // Boolean-valued operations are single-bit and positive. 10273 case BO_LAnd: 10274 case BO_LOr: 10275 case BO_LT: 10276 case BO_GT: 10277 case BO_LE: 10278 case BO_GE: 10279 case BO_EQ: 10280 case BO_NE: 10281 return IntRange::forBoolType(); 10282 10283 // The type of the assignments is the type of the LHS, so the RHS 10284 // is not necessarily the same type. 10285 case BO_MulAssign: 10286 case BO_DivAssign: 10287 case BO_RemAssign: 10288 case BO_AddAssign: 10289 case BO_SubAssign: 10290 case BO_XorAssign: 10291 case BO_OrAssign: 10292 // TODO: bitfields? 10293 return IntRange::forValueOfType(C, GetExprType(E)); 10294 10295 // Simple assignments just pass through the RHS, which will have 10296 // been coerced to the LHS type. 10297 case BO_Assign: 10298 // TODO: bitfields? 10299 return GetExprRange(C, BO->getRHS(), MaxWidth, InConstantContext); 10300 10301 // Operations with opaque sources are black-listed. 10302 case BO_PtrMemD: 10303 case BO_PtrMemI: 10304 return IntRange::forValueOfType(C, GetExprType(E)); 10305 10306 // Bitwise-and uses the *infinum* of the two source ranges. 10307 case BO_And: 10308 case BO_AndAssign: 10309 return IntRange::meet( 10310 GetExprRange(C, BO->getLHS(), MaxWidth, InConstantContext), 10311 GetExprRange(C, BO->getRHS(), MaxWidth, InConstantContext)); 10312 10313 // Left shift gets black-listed based on a judgement call. 10314 case BO_Shl: 10315 // ...except that we want to treat '1 << (blah)' as logically 10316 // positive. It's an important idiom. 10317 if (IntegerLiteral *I 10318 = dyn_cast<IntegerLiteral>(BO->getLHS()->IgnoreParenCasts())) { 10319 if (I->getValue() == 1) { 10320 IntRange R = IntRange::forValueOfType(C, GetExprType(E)); 10321 return IntRange(R.Width, /*NonNegative*/ true); 10322 } 10323 } 10324 LLVM_FALLTHROUGH; 10325 10326 case BO_ShlAssign: 10327 return IntRange::forValueOfType(C, GetExprType(E)); 10328 10329 // Right shift by a constant can narrow its left argument. 10330 case BO_Shr: 10331 case BO_ShrAssign: { 10332 IntRange L = GetExprRange(C, BO->getLHS(), MaxWidth, InConstantContext); 10333 10334 // If the shift amount is a positive constant, drop the width by 10335 // that much. 10336 llvm::APSInt shift; 10337 if (BO->getRHS()->isIntegerConstantExpr(shift, C) && 10338 shift.isNonNegative()) { 10339 unsigned zext = shift.getZExtValue(); 10340 if (zext >= L.Width) 10341 L.Width = (L.NonNegative ? 0 : 1); 10342 else 10343 L.Width -= zext; 10344 } 10345 10346 return L; 10347 } 10348 10349 // Comma acts as its right operand. 10350 case BO_Comma: 10351 return GetExprRange(C, BO->getRHS(), MaxWidth, InConstantContext); 10352 10353 // Black-list pointer subtractions. 10354 case BO_Sub: 10355 if (BO->getLHS()->getType()->isPointerType()) 10356 return IntRange::forValueOfType(C, GetExprType(E)); 10357 break; 10358 10359 // The width of a division result is mostly determined by the size 10360 // of the LHS. 10361 case BO_Div: { 10362 // Don't 'pre-truncate' the operands. 10363 unsigned opWidth = C.getIntWidth(GetExprType(E)); 10364 IntRange L = GetExprRange(C, BO->getLHS(), opWidth, InConstantContext); 10365 10366 // If the divisor is constant, use that. 10367 llvm::APSInt divisor; 10368 if (BO->getRHS()->isIntegerConstantExpr(divisor, C)) { 10369 unsigned log2 = divisor.logBase2(); // floor(log_2(divisor)) 10370 if (log2 >= L.Width) 10371 L.Width = (L.NonNegative ? 0 : 1); 10372 else 10373 L.Width = std::min(L.Width - log2, MaxWidth); 10374 return L; 10375 } 10376 10377 // Otherwise, just use the LHS's width. 10378 IntRange R = GetExprRange(C, BO->getRHS(), opWidth, InConstantContext); 10379 return IntRange(L.Width, L.NonNegative && R.NonNegative); 10380 } 10381 10382 // The result of a remainder can't be larger than the result of 10383 // either side. 10384 case BO_Rem: { 10385 // Don't 'pre-truncate' the operands. 10386 unsigned opWidth = C.getIntWidth(GetExprType(E)); 10387 IntRange L = GetExprRange(C, BO->getLHS(), opWidth, InConstantContext); 10388 IntRange R = GetExprRange(C, BO->getRHS(), opWidth, InConstantContext); 10389 10390 IntRange meet = IntRange::meet(L, R); 10391 meet.Width = std::min(meet.Width, MaxWidth); 10392 return meet; 10393 } 10394 10395 // The default behavior is okay for these. 10396 case BO_Mul: 10397 case BO_Add: 10398 case BO_Xor: 10399 case BO_Or: 10400 break; 10401 } 10402 10403 // The default case is to treat the operation as if it were closed 10404 // on the narrowest type that encompasses both operands. 10405 IntRange L = GetExprRange(C, BO->getLHS(), MaxWidth, InConstantContext); 10406 IntRange R = GetExprRange(C, BO->getRHS(), MaxWidth, InConstantContext); 10407 return IntRange::join(L, R); 10408 } 10409 10410 if (const auto *UO = dyn_cast<UnaryOperator>(E)) { 10411 switch (UO->getOpcode()) { 10412 // Boolean-valued operations are white-listed. 10413 case UO_LNot: 10414 return IntRange::forBoolType(); 10415 10416 // Operations with opaque sources are black-listed. 10417 case UO_Deref: 10418 case UO_AddrOf: // should be impossible 10419 return IntRange::forValueOfType(C, GetExprType(E)); 10420 10421 default: 10422 return GetExprRange(C, UO->getSubExpr(), MaxWidth, InConstantContext); 10423 } 10424 } 10425 10426 if (const auto *OVE = dyn_cast<OpaqueValueExpr>(E)) 10427 return GetExprRange(C, OVE->getSourceExpr(), MaxWidth, InConstantContext); 10428 10429 if (const auto *BitField = E->getSourceBitField()) 10430 return IntRange(BitField->getBitWidthValue(C), 10431 BitField->getType()->isUnsignedIntegerOrEnumerationType()); 10432 10433 return IntRange::forValueOfType(C, GetExprType(E)); 10434 } 10435 10436 static IntRange GetExprRange(ASTContext &C, const Expr *E, 10437 bool InConstantContext) { 10438 return GetExprRange(C, E, C.getIntWidth(GetExprType(E)), InConstantContext); 10439 } 10440 10441 /// Checks whether the given value, which currently has the given 10442 /// source semantics, has the same value when coerced through the 10443 /// target semantics. 10444 static bool IsSameFloatAfterCast(const llvm::APFloat &value, 10445 const llvm::fltSemantics &Src, 10446 const llvm::fltSemantics &Tgt) { 10447 llvm::APFloat truncated = value; 10448 10449 bool ignored; 10450 truncated.convert(Src, llvm::APFloat::rmNearestTiesToEven, &ignored); 10451 truncated.convert(Tgt, llvm::APFloat::rmNearestTiesToEven, &ignored); 10452 10453 return truncated.bitwiseIsEqual(value); 10454 } 10455 10456 /// Checks whether the given value, which currently has the given 10457 /// source semantics, has the same value when coerced through the 10458 /// target semantics. 10459 /// 10460 /// The value might be a vector of floats (or a complex number). 10461 static bool IsSameFloatAfterCast(const APValue &value, 10462 const llvm::fltSemantics &Src, 10463 const llvm::fltSemantics &Tgt) { 10464 if (value.isFloat()) 10465 return IsSameFloatAfterCast(value.getFloat(), Src, Tgt); 10466 10467 if (value.isVector()) { 10468 for (unsigned i = 0, e = value.getVectorLength(); i != e; ++i) 10469 if (!IsSameFloatAfterCast(value.getVectorElt(i), Src, Tgt)) 10470 return false; 10471 return true; 10472 } 10473 10474 assert(value.isComplexFloat()); 10475 return (IsSameFloatAfterCast(value.getComplexFloatReal(), Src, Tgt) && 10476 IsSameFloatAfterCast(value.getComplexFloatImag(), Src, Tgt)); 10477 } 10478 10479 static void AnalyzeImplicitConversions(Sema &S, Expr *E, SourceLocation CC, 10480 bool IsListInit = false); 10481 10482 static bool IsEnumConstOrFromMacro(Sema &S, Expr *E) { 10483 // Suppress cases where we are comparing against an enum constant. 10484 if (const DeclRefExpr *DR = 10485 dyn_cast<DeclRefExpr>(E->IgnoreParenImpCasts())) 10486 if (isa<EnumConstantDecl>(DR->getDecl())) 10487 return true; 10488 10489 // Suppress cases where the value is expanded from a macro, unless that macro 10490 // is how a language represents a boolean literal. This is the case in both C 10491 // and Objective-C. 10492 SourceLocation BeginLoc = E->getBeginLoc(); 10493 if (BeginLoc.isMacroID()) { 10494 StringRef MacroName = Lexer::getImmediateMacroName( 10495 BeginLoc, S.getSourceManager(), S.getLangOpts()); 10496 return MacroName != "YES" && MacroName != "NO" && 10497 MacroName != "true" && MacroName != "false"; 10498 } 10499 10500 return false; 10501 } 10502 10503 static bool isKnownToHaveUnsignedValue(Expr *E) { 10504 return E->getType()->isIntegerType() && 10505 (!E->getType()->isSignedIntegerType() || 10506 !E->IgnoreParenImpCasts()->getType()->isSignedIntegerType()); 10507 } 10508 10509 namespace { 10510 /// The promoted range of values of a type. In general this has the 10511 /// following structure: 10512 /// 10513 /// |-----------| . . . |-----------| 10514 /// ^ ^ ^ ^ 10515 /// Min HoleMin HoleMax Max 10516 /// 10517 /// ... where there is only a hole if a signed type is promoted to unsigned 10518 /// (in which case Min and Max are the smallest and largest representable 10519 /// values). 10520 struct PromotedRange { 10521 // Min, or HoleMax if there is a hole. 10522 llvm::APSInt PromotedMin; 10523 // Max, or HoleMin if there is a hole. 10524 llvm::APSInt PromotedMax; 10525 10526 PromotedRange(IntRange R, unsigned BitWidth, bool Unsigned) { 10527 if (R.Width == 0) 10528 PromotedMin = PromotedMax = llvm::APSInt(BitWidth, Unsigned); 10529 else if (R.Width >= BitWidth && !Unsigned) { 10530 // Promotion made the type *narrower*. This happens when promoting 10531 // a < 32-bit unsigned / <= 32-bit signed bit-field to 'signed int'. 10532 // Treat all values of 'signed int' as being in range for now. 10533 PromotedMin = llvm::APSInt::getMinValue(BitWidth, Unsigned); 10534 PromotedMax = llvm::APSInt::getMaxValue(BitWidth, Unsigned); 10535 } else { 10536 PromotedMin = llvm::APSInt::getMinValue(R.Width, R.NonNegative) 10537 .extOrTrunc(BitWidth); 10538 PromotedMin.setIsUnsigned(Unsigned); 10539 10540 PromotedMax = llvm::APSInt::getMaxValue(R.Width, R.NonNegative) 10541 .extOrTrunc(BitWidth); 10542 PromotedMax.setIsUnsigned(Unsigned); 10543 } 10544 } 10545 10546 // Determine whether this range is contiguous (has no hole). 10547 bool isContiguous() const { return PromotedMin <= PromotedMax; } 10548 10549 // Where a constant value is within the range. 10550 enum ComparisonResult { 10551 LT = 0x1, 10552 LE = 0x2, 10553 GT = 0x4, 10554 GE = 0x8, 10555 EQ = 0x10, 10556 NE = 0x20, 10557 InRangeFlag = 0x40, 10558 10559 Less = LE | LT | NE, 10560 Min = LE | InRangeFlag, 10561 InRange = InRangeFlag, 10562 Max = GE | InRangeFlag, 10563 Greater = GE | GT | NE, 10564 10565 OnlyValue = LE | GE | EQ | InRangeFlag, 10566 InHole = NE 10567 }; 10568 10569 ComparisonResult compare(const llvm::APSInt &Value) const { 10570 assert(Value.getBitWidth() == PromotedMin.getBitWidth() && 10571 Value.isUnsigned() == PromotedMin.isUnsigned()); 10572 if (!isContiguous()) { 10573 assert(Value.isUnsigned() && "discontiguous range for signed compare"); 10574 if (Value.isMinValue()) return Min; 10575 if (Value.isMaxValue()) return Max; 10576 if (Value >= PromotedMin) return InRange; 10577 if (Value <= PromotedMax) return InRange; 10578 return InHole; 10579 } 10580 10581 switch (llvm::APSInt::compareValues(Value, PromotedMin)) { 10582 case -1: return Less; 10583 case 0: return PromotedMin == PromotedMax ? OnlyValue : Min; 10584 case 1: 10585 switch (llvm::APSInt::compareValues(Value, PromotedMax)) { 10586 case -1: return InRange; 10587 case 0: return Max; 10588 case 1: return Greater; 10589 } 10590 } 10591 10592 llvm_unreachable("impossible compare result"); 10593 } 10594 10595 static llvm::Optional<StringRef> 10596 constantValue(BinaryOperatorKind Op, ComparisonResult R, bool ConstantOnRHS) { 10597 if (Op == BO_Cmp) { 10598 ComparisonResult LTFlag = LT, GTFlag = GT; 10599 if (ConstantOnRHS) std::swap(LTFlag, GTFlag); 10600 10601 if (R & EQ) return StringRef("'std::strong_ordering::equal'"); 10602 if (R & LTFlag) return StringRef("'std::strong_ordering::less'"); 10603 if (R & GTFlag) return StringRef("'std::strong_ordering::greater'"); 10604 return llvm::None; 10605 } 10606 10607 ComparisonResult TrueFlag, FalseFlag; 10608 if (Op == BO_EQ) { 10609 TrueFlag = EQ; 10610 FalseFlag = NE; 10611 } else if (Op == BO_NE) { 10612 TrueFlag = NE; 10613 FalseFlag = EQ; 10614 } else { 10615 if ((Op == BO_LT || Op == BO_GE) ^ ConstantOnRHS) { 10616 TrueFlag = LT; 10617 FalseFlag = GE; 10618 } else { 10619 TrueFlag = GT; 10620 FalseFlag = LE; 10621 } 10622 if (Op == BO_GE || Op == BO_LE) 10623 std::swap(TrueFlag, FalseFlag); 10624 } 10625 if (R & TrueFlag) 10626 return StringRef("true"); 10627 if (R & FalseFlag) 10628 return StringRef("false"); 10629 return llvm::None; 10630 } 10631 }; 10632 } 10633 10634 static bool HasEnumType(Expr *E) { 10635 // Strip off implicit integral promotions. 10636 while (ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(E)) { 10637 if (ICE->getCastKind() != CK_IntegralCast && 10638 ICE->getCastKind() != CK_NoOp) 10639 break; 10640 E = ICE->getSubExpr(); 10641 } 10642 10643 return E->getType()->isEnumeralType(); 10644 } 10645 10646 static int classifyConstantValue(Expr *Constant) { 10647 // The values of this enumeration are used in the diagnostics 10648 // diag::warn_out_of_range_compare and diag::warn_tautological_bool_compare. 10649 enum ConstantValueKind { 10650 Miscellaneous = 0, 10651 LiteralTrue, 10652 LiteralFalse 10653 }; 10654 if (auto *BL = dyn_cast<CXXBoolLiteralExpr>(Constant)) 10655 return BL->getValue() ? ConstantValueKind::LiteralTrue 10656 : ConstantValueKind::LiteralFalse; 10657 return ConstantValueKind::Miscellaneous; 10658 } 10659 10660 static bool CheckTautologicalComparison(Sema &S, BinaryOperator *E, 10661 Expr *Constant, Expr *Other, 10662 const llvm::APSInt &Value, 10663 bool RhsConstant) { 10664 if (S.inTemplateInstantiation()) 10665 return false; 10666 10667 Expr *OriginalOther = Other; 10668 10669 Constant = Constant->IgnoreParenImpCasts(); 10670 Other = Other->IgnoreParenImpCasts(); 10671 10672 // Suppress warnings on tautological comparisons between values of the same 10673 // enumeration type. There are only two ways we could warn on this: 10674 // - If the constant is outside the range of representable values of 10675 // the enumeration. In such a case, we should warn about the cast 10676 // to enumeration type, not about the comparison. 10677 // - If the constant is the maximum / minimum in-range value. For an 10678 // enumeratin type, such comparisons can be meaningful and useful. 10679 if (Constant->getType()->isEnumeralType() && 10680 S.Context.hasSameUnqualifiedType(Constant->getType(), Other->getType())) 10681 return false; 10682 10683 // TODO: Investigate using GetExprRange() to get tighter bounds 10684 // on the bit ranges. 10685 QualType OtherT = Other->getType(); 10686 if (const auto *AT = OtherT->getAs<AtomicType>()) 10687 OtherT = AT->getValueType(); 10688 IntRange OtherRange = IntRange::forValueOfType(S.Context, OtherT); 10689 10690 // Special case for ObjC BOOL on targets where its a typedef for a signed char 10691 // (Namely, macOS). 10692 bool IsObjCSignedCharBool = S.getLangOpts().ObjC && 10693 S.NSAPIObj->isObjCBOOLType(OtherT) && 10694 OtherT->isSpecificBuiltinType(BuiltinType::SChar); 10695 10696 // Whether we're treating Other as being a bool because of the form of 10697 // expression despite it having another type (typically 'int' in C). 10698 bool OtherIsBooleanDespiteType = 10699 !OtherT->isBooleanType() && Other->isKnownToHaveBooleanValue(); 10700 if (OtherIsBooleanDespiteType || IsObjCSignedCharBool) 10701 OtherRange = IntRange::forBoolType(); 10702 10703 // Determine the promoted range of the other type and see if a comparison of 10704 // the constant against that range is tautological. 10705 PromotedRange OtherPromotedRange(OtherRange, Value.getBitWidth(), 10706 Value.isUnsigned()); 10707 auto Cmp = OtherPromotedRange.compare(Value); 10708 auto Result = PromotedRange::constantValue(E->getOpcode(), Cmp, RhsConstant); 10709 if (!Result) 10710 return false; 10711 10712 // Suppress the diagnostic for an in-range comparison if the constant comes 10713 // from a macro or enumerator. We don't want to diagnose 10714 // 10715 // some_long_value <= INT_MAX 10716 // 10717 // when sizeof(int) == sizeof(long). 10718 bool InRange = Cmp & PromotedRange::InRangeFlag; 10719 if (InRange && IsEnumConstOrFromMacro(S, Constant)) 10720 return false; 10721 10722 // If this is a comparison to an enum constant, include that 10723 // constant in the diagnostic. 10724 const EnumConstantDecl *ED = nullptr; 10725 if (const DeclRefExpr *DR = dyn_cast<DeclRefExpr>(Constant)) 10726 ED = dyn_cast<EnumConstantDecl>(DR->getDecl()); 10727 10728 // Should be enough for uint128 (39 decimal digits) 10729 SmallString<64> PrettySourceValue; 10730 llvm::raw_svector_ostream OS(PrettySourceValue); 10731 if (ED) { 10732 OS << '\'' << *ED << "' (" << Value << ")"; 10733 } else if (auto *BL = dyn_cast<ObjCBoolLiteralExpr>( 10734 Constant->IgnoreParenImpCasts())) { 10735 OS << (BL->getValue() ? "YES" : "NO"); 10736 } else { 10737 OS << Value; 10738 } 10739 10740 if (IsObjCSignedCharBool) { 10741 S.DiagRuntimeBehavior(E->getOperatorLoc(), E, 10742 S.PDiag(diag::warn_tautological_compare_objc_bool) 10743 << OS.str() << *Result); 10744 return true; 10745 } 10746 10747 // FIXME: We use a somewhat different formatting for the in-range cases and 10748 // cases involving boolean values for historical reasons. We should pick a 10749 // consistent way of presenting these diagnostics. 10750 if (!InRange || Other->isKnownToHaveBooleanValue()) { 10751 10752 S.DiagRuntimeBehavior( 10753 E->getOperatorLoc(), E, 10754 S.PDiag(!InRange ? diag::warn_out_of_range_compare 10755 : diag::warn_tautological_bool_compare) 10756 << OS.str() << classifyConstantValue(Constant) << OtherT 10757 << OtherIsBooleanDespiteType << *Result 10758 << E->getLHS()->getSourceRange() << E->getRHS()->getSourceRange()); 10759 } else { 10760 unsigned Diag = (isKnownToHaveUnsignedValue(OriginalOther) && Value == 0) 10761 ? (HasEnumType(OriginalOther) 10762 ? diag::warn_unsigned_enum_always_true_comparison 10763 : diag::warn_unsigned_always_true_comparison) 10764 : diag::warn_tautological_constant_compare; 10765 10766 S.Diag(E->getOperatorLoc(), Diag) 10767 << RhsConstant << OtherT << E->getOpcodeStr() << OS.str() << *Result 10768 << E->getLHS()->getSourceRange() << E->getRHS()->getSourceRange(); 10769 } 10770 10771 return true; 10772 } 10773 10774 /// Analyze the operands of the given comparison. Implements the 10775 /// fallback case from AnalyzeComparison. 10776 static void AnalyzeImpConvsInComparison(Sema &S, BinaryOperator *E) { 10777 AnalyzeImplicitConversions(S, E->getLHS(), E->getOperatorLoc()); 10778 AnalyzeImplicitConversions(S, E->getRHS(), E->getOperatorLoc()); 10779 } 10780 10781 /// Implements -Wsign-compare. 10782 /// 10783 /// \param E the binary operator to check for warnings 10784 static void AnalyzeComparison(Sema &S, BinaryOperator *E) { 10785 // The type the comparison is being performed in. 10786 QualType T = E->getLHS()->getType(); 10787 10788 // Only analyze comparison operators where both sides have been converted to 10789 // the same type. 10790 if (!S.Context.hasSameUnqualifiedType(T, E->getRHS()->getType())) 10791 return AnalyzeImpConvsInComparison(S, E); 10792 10793 // Don't analyze value-dependent comparisons directly. 10794 if (E->isValueDependent()) 10795 return AnalyzeImpConvsInComparison(S, E); 10796 10797 Expr *LHS = E->getLHS(); 10798 Expr *RHS = E->getRHS(); 10799 10800 if (T->isIntegralType(S.Context)) { 10801 llvm::APSInt RHSValue; 10802 llvm::APSInt LHSValue; 10803 10804 bool IsRHSIntegralLiteral = RHS->isIntegerConstantExpr(RHSValue, S.Context); 10805 bool IsLHSIntegralLiteral = LHS->isIntegerConstantExpr(LHSValue, S.Context); 10806 10807 // We don't care about expressions whose result is a constant. 10808 if (IsRHSIntegralLiteral && IsLHSIntegralLiteral) 10809 return AnalyzeImpConvsInComparison(S, E); 10810 10811 // We only care about expressions where just one side is literal 10812 if (IsRHSIntegralLiteral ^ IsLHSIntegralLiteral) { 10813 // Is the constant on the RHS or LHS? 10814 const bool RhsConstant = IsRHSIntegralLiteral; 10815 Expr *Const = RhsConstant ? RHS : LHS; 10816 Expr *Other = RhsConstant ? LHS : RHS; 10817 const llvm::APSInt &Value = RhsConstant ? RHSValue : LHSValue; 10818 10819 // Check whether an integer constant comparison results in a value 10820 // of 'true' or 'false'. 10821 if (CheckTautologicalComparison(S, E, Const, Other, Value, RhsConstant)) 10822 return AnalyzeImpConvsInComparison(S, E); 10823 } 10824 } 10825 10826 if (!T->hasUnsignedIntegerRepresentation()) { 10827 // We don't do anything special if this isn't an unsigned integral 10828 // comparison: we're only interested in integral comparisons, and 10829 // signed comparisons only happen in cases we don't care to warn about. 10830 return AnalyzeImpConvsInComparison(S, E); 10831 } 10832 10833 LHS = LHS->IgnoreParenImpCasts(); 10834 RHS = RHS->IgnoreParenImpCasts(); 10835 10836 if (!S.getLangOpts().CPlusPlus) { 10837 // Avoid warning about comparison of integers with different signs when 10838 // RHS/LHS has a `typeof(E)` type whose sign is different from the sign of 10839 // the type of `E`. 10840 if (const auto *TET = dyn_cast<TypeOfExprType>(LHS->getType())) 10841 LHS = TET->getUnderlyingExpr()->IgnoreParenImpCasts(); 10842 if (const auto *TET = dyn_cast<TypeOfExprType>(RHS->getType())) 10843 RHS = TET->getUnderlyingExpr()->IgnoreParenImpCasts(); 10844 } 10845 10846 // Check to see if one of the (unmodified) operands is of different 10847 // signedness. 10848 Expr *signedOperand, *unsignedOperand; 10849 if (LHS->getType()->hasSignedIntegerRepresentation()) { 10850 assert(!RHS->getType()->hasSignedIntegerRepresentation() && 10851 "unsigned comparison between two signed integer expressions?"); 10852 signedOperand = LHS; 10853 unsignedOperand = RHS; 10854 } else if (RHS->getType()->hasSignedIntegerRepresentation()) { 10855 signedOperand = RHS; 10856 unsignedOperand = LHS; 10857 } else { 10858 return AnalyzeImpConvsInComparison(S, E); 10859 } 10860 10861 // Otherwise, calculate the effective range of the signed operand. 10862 IntRange signedRange = 10863 GetExprRange(S.Context, signedOperand, S.isConstantEvaluated()); 10864 10865 // Go ahead and analyze implicit conversions in the operands. Note 10866 // that we skip the implicit conversions on both sides. 10867 AnalyzeImplicitConversions(S, LHS, E->getOperatorLoc()); 10868 AnalyzeImplicitConversions(S, RHS, E->getOperatorLoc()); 10869 10870 // If the signed range is non-negative, -Wsign-compare won't fire. 10871 if (signedRange.NonNegative) 10872 return; 10873 10874 // For (in)equality comparisons, if the unsigned operand is a 10875 // constant which cannot collide with a overflowed signed operand, 10876 // then reinterpreting the signed operand as unsigned will not 10877 // change the result of the comparison. 10878 if (E->isEqualityOp()) { 10879 unsigned comparisonWidth = S.Context.getIntWidth(T); 10880 IntRange unsignedRange = 10881 GetExprRange(S.Context, unsignedOperand, S.isConstantEvaluated()); 10882 10883 // We should never be unable to prove that the unsigned operand is 10884 // non-negative. 10885 assert(unsignedRange.NonNegative && "unsigned range includes negative?"); 10886 10887 if (unsignedRange.Width < comparisonWidth) 10888 return; 10889 } 10890 10891 S.DiagRuntimeBehavior(E->getOperatorLoc(), E, 10892 S.PDiag(diag::warn_mixed_sign_comparison) 10893 << LHS->getType() << RHS->getType() 10894 << LHS->getSourceRange() << RHS->getSourceRange()); 10895 } 10896 10897 /// Analyzes an attempt to assign the given value to a bitfield. 10898 /// 10899 /// Returns true if there was something fishy about the attempt. 10900 static bool AnalyzeBitFieldAssignment(Sema &S, FieldDecl *Bitfield, Expr *Init, 10901 SourceLocation InitLoc) { 10902 assert(Bitfield->isBitField()); 10903 if (Bitfield->isInvalidDecl()) 10904 return false; 10905 10906 // White-list bool bitfields. 10907 QualType BitfieldType = Bitfield->getType(); 10908 if (BitfieldType->isBooleanType()) 10909 return false; 10910 10911 if (BitfieldType->isEnumeralType()) { 10912 EnumDecl *BitfieldEnumDecl = BitfieldType->castAs<EnumType>()->getDecl(); 10913 // If the underlying enum type was not explicitly specified as an unsigned 10914 // type and the enum contain only positive values, MSVC++ will cause an 10915 // inconsistency by storing this as a signed type. 10916 if (S.getLangOpts().CPlusPlus11 && 10917 !BitfieldEnumDecl->getIntegerTypeSourceInfo() && 10918 BitfieldEnumDecl->getNumPositiveBits() > 0 && 10919 BitfieldEnumDecl->getNumNegativeBits() == 0) { 10920 S.Diag(InitLoc, diag::warn_no_underlying_type_specified_for_enum_bitfield) 10921 << BitfieldEnumDecl->getNameAsString(); 10922 } 10923 } 10924 10925 if (Bitfield->getType()->isBooleanType()) 10926 return false; 10927 10928 // Ignore value- or type-dependent expressions. 10929 if (Bitfield->getBitWidth()->isValueDependent() || 10930 Bitfield->getBitWidth()->isTypeDependent() || 10931 Init->isValueDependent() || 10932 Init->isTypeDependent()) 10933 return false; 10934 10935 Expr *OriginalInit = Init->IgnoreParenImpCasts(); 10936 unsigned FieldWidth = Bitfield->getBitWidthValue(S.Context); 10937 10938 Expr::EvalResult Result; 10939 if (!OriginalInit->EvaluateAsInt(Result, S.Context, 10940 Expr::SE_AllowSideEffects)) { 10941 // The RHS is not constant. If the RHS has an enum type, make sure the 10942 // bitfield is wide enough to hold all the values of the enum without 10943 // truncation. 10944 if (const auto *EnumTy = OriginalInit->getType()->getAs<EnumType>()) { 10945 EnumDecl *ED = EnumTy->getDecl(); 10946 bool SignedBitfield = BitfieldType->isSignedIntegerType(); 10947 10948 // Enum types are implicitly signed on Windows, so check if there are any 10949 // negative enumerators to see if the enum was intended to be signed or 10950 // not. 10951 bool SignedEnum = ED->getNumNegativeBits() > 0; 10952 10953 // Check for surprising sign changes when assigning enum values to a 10954 // bitfield of different signedness. If the bitfield is signed and we 10955 // have exactly the right number of bits to store this unsigned enum, 10956 // suggest changing the enum to an unsigned type. This typically happens 10957 // on Windows where unfixed enums always use an underlying type of 'int'. 10958 unsigned DiagID = 0; 10959 if (SignedEnum && !SignedBitfield) { 10960 DiagID = diag::warn_unsigned_bitfield_assigned_signed_enum; 10961 } else if (SignedBitfield && !SignedEnum && 10962 ED->getNumPositiveBits() == FieldWidth) { 10963 DiagID = diag::warn_signed_bitfield_enum_conversion; 10964 } 10965 10966 if (DiagID) { 10967 S.Diag(InitLoc, DiagID) << Bitfield << ED; 10968 TypeSourceInfo *TSI = Bitfield->getTypeSourceInfo(); 10969 SourceRange TypeRange = 10970 TSI ? TSI->getTypeLoc().getSourceRange() : SourceRange(); 10971 S.Diag(Bitfield->getTypeSpecStartLoc(), diag::note_change_bitfield_sign) 10972 << SignedEnum << TypeRange; 10973 } 10974 10975 // Compute the required bitwidth. If the enum has negative values, we need 10976 // one more bit than the normal number of positive bits to represent the 10977 // sign bit. 10978 unsigned BitsNeeded = SignedEnum ? std::max(ED->getNumPositiveBits() + 1, 10979 ED->getNumNegativeBits()) 10980 : ED->getNumPositiveBits(); 10981 10982 // Check the bitwidth. 10983 if (BitsNeeded > FieldWidth) { 10984 Expr *WidthExpr = Bitfield->getBitWidth(); 10985 S.Diag(InitLoc, diag::warn_bitfield_too_small_for_enum) 10986 << Bitfield << ED; 10987 S.Diag(WidthExpr->getExprLoc(), diag::note_widen_bitfield) 10988 << BitsNeeded << ED << WidthExpr->getSourceRange(); 10989 } 10990 } 10991 10992 return false; 10993 } 10994 10995 llvm::APSInt Value = Result.Val.getInt(); 10996 10997 unsigned OriginalWidth = Value.getBitWidth(); 10998 10999 if (!Value.isSigned() || Value.isNegative()) 11000 if (UnaryOperator *UO = dyn_cast<UnaryOperator>(OriginalInit)) 11001 if (UO->getOpcode() == UO_Minus || UO->getOpcode() == UO_Not) 11002 OriginalWidth = Value.getMinSignedBits(); 11003 11004 if (OriginalWidth <= FieldWidth) 11005 return false; 11006 11007 // Compute the value which the bitfield will contain. 11008 llvm::APSInt TruncatedValue = Value.trunc(FieldWidth); 11009 TruncatedValue.setIsSigned(BitfieldType->isSignedIntegerType()); 11010 11011 // Check whether the stored value is equal to the original value. 11012 TruncatedValue = TruncatedValue.extend(OriginalWidth); 11013 if (llvm::APSInt::isSameValue(Value, TruncatedValue)) 11014 return false; 11015 11016 // Special-case bitfields of width 1: booleans are naturally 0/1, and 11017 // therefore don't strictly fit into a signed bitfield of width 1. 11018 if (FieldWidth == 1 && Value == 1) 11019 return false; 11020 11021 std::string PrettyValue = Value.toString(10); 11022 std::string PrettyTrunc = TruncatedValue.toString(10); 11023 11024 S.Diag(InitLoc, diag::warn_impcast_bitfield_precision_constant) 11025 << PrettyValue << PrettyTrunc << OriginalInit->getType() 11026 << Init->getSourceRange(); 11027 11028 return true; 11029 } 11030 11031 /// Analyze the given simple or compound assignment for warning-worthy 11032 /// operations. 11033 static void AnalyzeAssignment(Sema &S, BinaryOperator *E) { 11034 // Just recurse on the LHS. 11035 AnalyzeImplicitConversions(S, E->getLHS(), E->getOperatorLoc()); 11036 11037 // We want to recurse on the RHS as normal unless we're assigning to 11038 // a bitfield. 11039 if (FieldDecl *Bitfield = E->getLHS()->getSourceBitField()) { 11040 if (AnalyzeBitFieldAssignment(S, Bitfield, E->getRHS(), 11041 E->getOperatorLoc())) { 11042 // Recurse, ignoring any implicit conversions on the RHS. 11043 return AnalyzeImplicitConversions(S, E->getRHS()->IgnoreParenImpCasts(), 11044 E->getOperatorLoc()); 11045 } 11046 } 11047 11048 AnalyzeImplicitConversions(S, E->getRHS(), E->getOperatorLoc()); 11049 11050 // Diagnose implicitly sequentially-consistent atomic assignment. 11051 if (E->getLHS()->getType()->isAtomicType()) 11052 S.Diag(E->getRHS()->getBeginLoc(), diag::warn_atomic_implicit_seq_cst); 11053 } 11054 11055 /// Diagnose an implicit cast; purely a helper for CheckImplicitConversion. 11056 static void DiagnoseImpCast(Sema &S, Expr *E, QualType SourceType, QualType T, 11057 SourceLocation CContext, unsigned diag, 11058 bool pruneControlFlow = false) { 11059 if (pruneControlFlow) { 11060 S.DiagRuntimeBehavior(E->getExprLoc(), E, 11061 S.PDiag(diag) 11062 << SourceType << T << E->getSourceRange() 11063 << SourceRange(CContext)); 11064 return; 11065 } 11066 S.Diag(E->getExprLoc(), diag) 11067 << SourceType << T << E->getSourceRange() << SourceRange(CContext); 11068 } 11069 11070 /// Diagnose an implicit cast; purely a helper for CheckImplicitConversion. 11071 static void DiagnoseImpCast(Sema &S, Expr *E, QualType T, 11072 SourceLocation CContext, 11073 unsigned diag, bool pruneControlFlow = false) { 11074 DiagnoseImpCast(S, E, E->getType(), T, CContext, diag, pruneControlFlow); 11075 } 11076 11077 static bool isObjCSignedCharBool(Sema &S, QualType Ty) { 11078 return Ty->isSpecificBuiltinType(BuiltinType::SChar) && 11079 S.getLangOpts().ObjC && S.NSAPIObj->isObjCBOOLType(Ty); 11080 } 11081 11082 static void adornObjCBoolConversionDiagWithTernaryFixit( 11083 Sema &S, Expr *SourceExpr, const Sema::SemaDiagnosticBuilder &Builder) { 11084 Expr *Ignored = SourceExpr->IgnoreImplicit(); 11085 if (const auto *OVE = dyn_cast<OpaqueValueExpr>(Ignored)) 11086 Ignored = OVE->getSourceExpr(); 11087 bool NeedsParens = isa<AbstractConditionalOperator>(Ignored) || 11088 isa<BinaryOperator>(Ignored) || 11089 isa<CXXOperatorCallExpr>(Ignored); 11090 SourceLocation EndLoc = S.getLocForEndOfToken(SourceExpr->getEndLoc()); 11091 if (NeedsParens) 11092 Builder << FixItHint::CreateInsertion(SourceExpr->getBeginLoc(), "(") 11093 << FixItHint::CreateInsertion(EndLoc, ")"); 11094 Builder << FixItHint::CreateInsertion(EndLoc, " ? YES : NO"); 11095 } 11096 11097 /// Diagnose an implicit cast from a floating point value to an integer value. 11098 static void DiagnoseFloatingImpCast(Sema &S, Expr *E, QualType T, 11099 SourceLocation CContext) { 11100 const bool IsBool = T->isSpecificBuiltinType(BuiltinType::Bool); 11101 const bool PruneWarnings = S.inTemplateInstantiation(); 11102 11103 Expr *InnerE = E->IgnoreParenImpCasts(); 11104 // We also want to warn on, e.g., "int i = -1.234" 11105 if (UnaryOperator *UOp = dyn_cast<UnaryOperator>(InnerE)) 11106 if (UOp->getOpcode() == UO_Minus || UOp->getOpcode() == UO_Plus) 11107 InnerE = UOp->getSubExpr()->IgnoreParenImpCasts(); 11108 11109 const bool IsLiteral = 11110 isa<FloatingLiteral>(E) || isa<FloatingLiteral>(InnerE); 11111 11112 llvm::APFloat Value(0.0); 11113 bool IsConstant = 11114 E->EvaluateAsFloat(Value, S.Context, Expr::SE_AllowSideEffects); 11115 if (!IsConstant) { 11116 if (isObjCSignedCharBool(S, T)) { 11117 return adornObjCBoolConversionDiagWithTernaryFixit( 11118 S, E, 11119 S.Diag(CContext, diag::warn_impcast_float_to_objc_signed_char_bool) 11120 << E->getType()); 11121 } 11122 11123 return DiagnoseImpCast(S, E, T, CContext, 11124 diag::warn_impcast_float_integer, PruneWarnings); 11125 } 11126 11127 bool isExact = false; 11128 11129 llvm::APSInt IntegerValue(S.Context.getIntWidth(T), 11130 T->hasUnsignedIntegerRepresentation()); 11131 llvm::APFloat::opStatus Result = Value.convertToInteger( 11132 IntegerValue, llvm::APFloat::rmTowardZero, &isExact); 11133 11134 // FIXME: Force the precision of the source value down so we don't print 11135 // digits which are usually useless (we don't really care here if we 11136 // truncate a digit by accident in edge cases). Ideally, APFloat::toString 11137 // would automatically print the shortest representation, but it's a bit 11138 // tricky to implement. 11139 SmallString<16> PrettySourceValue; 11140 unsigned precision = llvm::APFloat::semanticsPrecision(Value.getSemantics()); 11141 precision = (precision * 59 + 195) / 196; 11142 Value.toString(PrettySourceValue, precision); 11143 11144 if (isObjCSignedCharBool(S, T) && IntegerValue != 0 && IntegerValue != 1) { 11145 return adornObjCBoolConversionDiagWithTernaryFixit( 11146 S, E, 11147 S.Diag(CContext, diag::warn_impcast_constant_value_to_objc_bool) 11148 << PrettySourceValue); 11149 } 11150 11151 if (Result == llvm::APFloat::opOK && isExact) { 11152 if (IsLiteral) return; 11153 return DiagnoseImpCast(S, E, T, CContext, diag::warn_impcast_float_integer, 11154 PruneWarnings); 11155 } 11156 11157 // Conversion of a floating-point value to a non-bool integer where the 11158 // integral part cannot be represented by the integer type is undefined. 11159 if (!IsBool && Result == llvm::APFloat::opInvalidOp) 11160 return DiagnoseImpCast( 11161 S, E, T, CContext, 11162 IsLiteral ? diag::warn_impcast_literal_float_to_integer_out_of_range 11163 : diag::warn_impcast_float_to_integer_out_of_range, 11164 PruneWarnings); 11165 11166 unsigned DiagID = 0; 11167 if (IsLiteral) { 11168 // Warn on floating point literal to integer. 11169 DiagID = diag::warn_impcast_literal_float_to_integer; 11170 } else if (IntegerValue == 0) { 11171 if (Value.isZero()) { // Skip -0.0 to 0 conversion. 11172 return DiagnoseImpCast(S, E, T, CContext, 11173 diag::warn_impcast_float_integer, PruneWarnings); 11174 } 11175 // Warn on non-zero to zero conversion. 11176 DiagID = diag::warn_impcast_float_to_integer_zero; 11177 } else { 11178 if (IntegerValue.isUnsigned()) { 11179 if (!IntegerValue.isMaxValue()) { 11180 return DiagnoseImpCast(S, E, T, CContext, 11181 diag::warn_impcast_float_integer, PruneWarnings); 11182 } 11183 } else { // IntegerValue.isSigned() 11184 if (!IntegerValue.isMaxSignedValue() && 11185 !IntegerValue.isMinSignedValue()) { 11186 return DiagnoseImpCast(S, E, T, CContext, 11187 diag::warn_impcast_float_integer, PruneWarnings); 11188 } 11189 } 11190 // Warn on evaluatable floating point expression to integer conversion. 11191 DiagID = diag::warn_impcast_float_to_integer; 11192 } 11193 11194 SmallString<16> PrettyTargetValue; 11195 if (IsBool) 11196 PrettyTargetValue = Value.isZero() ? "false" : "true"; 11197 else 11198 IntegerValue.toString(PrettyTargetValue); 11199 11200 if (PruneWarnings) { 11201 S.DiagRuntimeBehavior(E->getExprLoc(), E, 11202 S.PDiag(DiagID) 11203 << E->getType() << T.getUnqualifiedType() 11204 << PrettySourceValue << PrettyTargetValue 11205 << E->getSourceRange() << SourceRange(CContext)); 11206 } else { 11207 S.Diag(E->getExprLoc(), DiagID) 11208 << E->getType() << T.getUnqualifiedType() << PrettySourceValue 11209 << PrettyTargetValue << E->getSourceRange() << SourceRange(CContext); 11210 } 11211 } 11212 11213 /// Analyze the given compound assignment for the possible losing of 11214 /// floating-point precision. 11215 static void AnalyzeCompoundAssignment(Sema &S, BinaryOperator *E) { 11216 assert(isa<CompoundAssignOperator>(E) && 11217 "Must be compound assignment operation"); 11218 // Recurse on the LHS and RHS in here 11219 AnalyzeImplicitConversions(S, E->getLHS(), E->getOperatorLoc()); 11220 AnalyzeImplicitConversions(S, E->getRHS(), E->getOperatorLoc()); 11221 11222 if (E->getLHS()->getType()->isAtomicType()) 11223 S.Diag(E->getOperatorLoc(), diag::warn_atomic_implicit_seq_cst); 11224 11225 // Now check the outermost expression 11226 const auto *ResultBT = E->getLHS()->getType()->getAs<BuiltinType>(); 11227 const auto *RBT = cast<CompoundAssignOperator>(E) 11228 ->getComputationResultType() 11229 ->getAs<BuiltinType>(); 11230 11231 // The below checks assume source is floating point. 11232 if (!ResultBT || !RBT || !RBT->isFloatingPoint()) return; 11233 11234 // If source is floating point but target is an integer. 11235 if (ResultBT->isInteger()) 11236 return DiagnoseImpCast(S, E, E->getRHS()->getType(), E->getLHS()->getType(), 11237 E->getExprLoc(), diag::warn_impcast_float_integer); 11238 11239 if (!ResultBT->isFloatingPoint()) 11240 return; 11241 11242 // If both source and target are floating points, warn about losing precision. 11243 int Order = S.getASTContext().getFloatingTypeSemanticOrder( 11244 QualType(ResultBT, 0), QualType(RBT, 0)); 11245 if (Order < 0 && !S.SourceMgr.isInSystemMacro(E->getOperatorLoc())) 11246 // warn about dropping FP rank. 11247 DiagnoseImpCast(S, E->getRHS(), E->getLHS()->getType(), E->getOperatorLoc(), 11248 diag::warn_impcast_float_result_precision); 11249 } 11250 11251 static std::string PrettyPrintInRange(const llvm::APSInt &Value, 11252 IntRange Range) { 11253 if (!Range.Width) return "0"; 11254 11255 llvm::APSInt ValueInRange = Value; 11256 ValueInRange.setIsSigned(!Range.NonNegative); 11257 ValueInRange = ValueInRange.trunc(Range.Width); 11258 return ValueInRange.toString(10); 11259 } 11260 11261 static bool IsImplicitBoolFloatConversion(Sema &S, Expr *Ex, bool ToBool) { 11262 if (!isa<ImplicitCastExpr>(Ex)) 11263 return false; 11264 11265 Expr *InnerE = Ex->IgnoreParenImpCasts(); 11266 const Type *Target = S.Context.getCanonicalType(Ex->getType()).getTypePtr(); 11267 const Type *Source = 11268 S.Context.getCanonicalType(InnerE->getType()).getTypePtr(); 11269 if (Target->isDependentType()) 11270 return false; 11271 11272 const BuiltinType *FloatCandidateBT = 11273 dyn_cast<BuiltinType>(ToBool ? Source : Target); 11274 const Type *BoolCandidateType = ToBool ? Target : Source; 11275 11276 return (BoolCandidateType->isSpecificBuiltinType(BuiltinType::Bool) && 11277 FloatCandidateBT && (FloatCandidateBT->isFloatingPoint())); 11278 } 11279 11280 static void CheckImplicitArgumentConversions(Sema &S, CallExpr *TheCall, 11281 SourceLocation CC) { 11282 unsigned NumArgs = TheCall->getNumArgs(); 11283 for (unsigned i = 0; i < NumArgs; ++i) { 11284 Expr *CurrA = TheCall->getArg(i); 11285 if (!IsImplicitBoolFloatConversion(S, CurrA, true)) 11286 continue; 11287 11288 bool IsSwapped = ((i > 0) && 11289 IsImplicitBoolFloatConversion(S, TheCall->getArg(i - 1), false)); 11290 IsSwapped |= ((i < (NumArgs - 1)) && 11291 IsImplicitBoolFloatConversion(S, TheCall->getArg(i + 1), false)); 11292 if (IsSwapped) { 11293 // Warn on this floating-point to bool conversion. 11294 DiagnoseImpCast(S, CurrA->IgnoreParenImpCasts(), 11295 CurrA->getType(), CC, 11296 diag::warn_impcast_floating_point_to_bool); 11297 } 11298 } 11299 } 11300 11301 static void DiagnoseNullConversion(Sema &S, Expr *E, QualType T, 11302 SourceLocation CC) { 11303 if (S.Diags.isIgnored(diag::warn_impcast_null_pointer_to_integer, 11304 E->getExprLoc())) 11305 return; 11306 11307 // Don't warn on functions which have return type nullptr_t. 11308 if (isa<CallExpr>(E)) 11309 return; 11310 11311 // Check for NULL (GNUNull) or nullptr (CXX11_nullptr). 11312 const Expr::NullPointerConstantKind NullKind = 11313 E->isNullPointerConstant(S.Context, Expr::NPC_ValueDependentIsNotNull); 11314 if (NullKind != Expr::NPCK_GNUNull && NullKind != Expr::NPCK_CXX11_nullptr) 11315 return; 11316 11317 // Return if target type is a safe conversion. 11318 if (T->isAnyPointerType() || T->isBlockPointerType() || 11319 T->isMemberPointerType() || !T->isScalarType() || T->isNullPtrType()) 11320 return; 11321 11322 SourceLocation Loc = E->getSourceRange().getBegin(); 11323 11324 // Venture through the macro stacks to get to the source of macro arguments. 11325 // The new location is a better location than the complete location that was 11326 // passed in. 11327 Loc = S.SourceMgr.getTopMacroCallerLoc(Loc); 11328 CC = S.SourceMgr.getTopMacroCallerLoc(CC); 11329 11330 // __null is usually wrapped in a macro. Go up a macro if that is the case. 11331 if (NullKind == Expr::NPCK_GNUNull && Loc.isMacroID()) { 11332 StringRef MacroName = Lexer::getImmediateMacroNameForDiagnostics( 11333 Loc, S.SourceMgr, S.getLangOpts()); 11334 if (MacroName == "NULL") 11335 Loc = S.SourceMgr.getImmediateExpansionRange(Loc).getBegin(); 11336 } 11337 11338 // Only warn if the null and context location are in the same macro expansion. 11339 if (S.SourceMgr.getFileID(Loc) != S.SourceMgr.getFileID(CC)) 11340 return; 11341 11342 S.Diag(Loc, diag::warn_impcast_null_pointer_to_integer) 11343 << (NullKind == Expr::NPCK_CXX11_nullptr) << T << SourceRange(CC) 11344 << FixItHint::CreateReplacement(Loc, 11345 S.getFixItZeroLiteralForType(T, Loc)); 11346 } 11347 11348 static void checkObjCArrayLiteral(Sema &S, QualType TargetType, 11349 ObjCArrayLiteral *ArrayLiteral); 11350 11351 static void 11352 checkObjCDictionaryLiteral(Sema &S, QualType TargetType, 11353 ObjCDictionaryLiteral *DictionaryLiteral); 11354 11355 /// Check a single element within a collection literal against the 11356 /// target element type. 11357 static void checkObjCCollectionLiteralElement(Sema &S, 11358 QualType TargetElementType, 11359 Expr *Element, 11360 unsigned ElementKind) { 11361 // Skip a bitcast to 'id' or qualified 'id'. 11362 if (auto ICE = dyn_cast<ImplicitCastExpr>(Element)) { 11363 if (ICE->getCastKind() == CK_BitCast && 11364 ICE->getSubExpr()->getType()->getAs<ObjCObjectPointerType>()) 11365 Element = ICE->getSubExpr(); 11366 } 11367 11368 QualType ElementType = Element->getType(); 11369 ExprResult ElementResult(Element); 11370 if (ElementType->getAs<ObjCObjectPointerType>() && 11371 S.CheckSingleAssignmentConstraints(TargetElementType, 11372 ElementResult, 11373 false, false) 11374 != Sema::Compatible) { 11375 S.Diag(Element->getBeginLoc(), diag::warn_objc_collection_literal_element) 11376 << ElementType << ElementKind << TargetElementType 11377 << Element->getSourceRange(); 11378 } 11379 11380 if (auto ArrayLiteral = dyn_cast<ObjCArrayLiteral>(Element)) 11381 checkObjCArrayLiteral(S, TargetElementType, ArrayLiteral); 11382 else if (auto DictionaryLiteral = dyn_cast<ObjCDictionaryLiteral>(Element)) 11383 checkObjCDictionaryLiteral(S, TargetElementType, DictionaryLiteral); 11384 } 11385 11386 /// Check an Objective-C array literal being converted to the given 11387 /// target type. 11388 static void checkObjCArrayLiteral(Sema &S, QualType TargetType, 11389 ObjCArrayLiteral *ArrayLiteral) { 11390 if (!S.NSArrayDecl) 11391 return; 11392 11393 const auto *TargetObjCPtr = TargetType->getAs<ObjCObjectPointerType>(); 11394 if (!TargetObjCPtr) 11395 return; 11396 11397 if (TargetObjCPtr->isUnspecialized() || 11398 TargetObjCPtr->getInterfaceDecl()->getCanonicalDecl() 11399 != S.NSArrayDecl->getCanonicalDecl()) 11400 return; 11401 11402 auto TypeArgs = TargetObjCPtr->getTypeArgs(); 11403 if (TypeArgs.size() != 1) 11404 return; 11405 11406 QualType TargetElementType = TypeArgs[0]; 11407 for (unsigned I = 0, N = ArrayLiteral->getNumElements(); I != N; ++I) { 11408 checkObjCCollectionLiteralElement(S, TargetElementType, 11409 ArrayLiteral->getElement(I), 11410 0); 11411 } 11412 } 11413 11414 /// Check an Objective-C dictionary literal being converted to the given 11415 /// target type. 11416 static void 11417 checkObjCDictionaryLiteral(Sema &S, QualType TargetType, 11418 ObjCDictionaryLiteral *DictionaryLiteral) { 11419 if (!S.NSDictionaryDecl) 11420 return; 11421 11422 const auto *TargetObjCPtr = TargetType->getAs<ObjCObjectPointerType>(); 11423 if (!TargetObjCPtr) 11424 return; 11425 11426 if (TargetObjCPtr->isUnspecialized() || 11427 TargetObjCPtr->getInterfaceDecl()->getCanonicalDecl() 11428 != S.NSDictionaryDecl->getCanonicalDecl()) 11429 return; 11430 11431 auto TypeArgs = TargetObjCPtr->getTypeArgs(); 11432 if (TypeArgs.size() != 2) 11433 return; 11434 11435 QualType TargetKeyType = TypeArgs[0]; 11436 QualType TargetObjectType = TypeArgs[1]; 11437 for (unsigned I = 0, N = DictionaryLiteral->getNumElements(); I != N; ++I) { 11438 auto Element = DictionaryLiteral->getKeyValueElement(I); 11439 checkObjCCollectionLiteralElement(S, TargetKeyType, Element.Key, 1); 11440 checkObjCCollectionLiteralElement(S, TargetObjectType, Element.Value, 2); 11441 } 11442 } 11443 11444 // Helper function to filter out cases for constant width constant conversion. 11445 // Don't warn on char array initialization or for non-decimal values. 11446 static bool isSameWidthConstantConversion(Sema &S, Expr *E, QualType T, 11447 SourceLocation CC) { 11448 // If initializing from a constant, and the constant starts with '0', 11449 // then it is a binary, octal, or hexadecimal. Allow these constants 11450 // to fill all the bits, even if there is a sign change. 11451 if (auto *IntLit = dyn_cast<IntegerLiteral>(E->IgnoreParenImpCasts())) { 11452 const char FirstLiteralCharacter = 11453 S.getSourceManager().getCharacterData(IntLit->getBeginLoc())[0]; 11454 if (FirstLiteralCharacter == '0') 11455 return false; 11456 } 11457 11458 // If the CC location points to a '{', and the type is char, then assume 11459 // assume it is an array initialization. 11460 if (CC.isValid() && T->isCharType()) { 11461 const char FirstContextCharacter = 11462 S.getSourceManager().getCharacterData(CC)[0]; 11463 if (FirstContextCharacter == '{') 11464 return false; 11465 } 11466 11467 return true; 11468 } 11469 11470 static const IntegerLiteral *getIntegerLiteral(Expr *E) { 11471 const auto *IL = dyn_cast<IntegerLiteral>(E); 11472 if (!IL) { 11473 if (auto *UO = dyn_cast<UnaryOperator>(E)) { 11474 if (UO->getOpcode() == UO_Minus) 11475 return dyn_cast<IntegerLiteral>(UO->getSubExpr()); 11476 } 11477 } 11478 11479 return IL; 11480 } 11481 11482 static void CheckConditionalWithEnumTypes(Sema &S, SourceLocation Loc, 11483 Expr *LHS, Expr *RHS) { 11484 QualType LHSStrippedType = LHS->IgnoreParenImpCasts()->getType(); 11485 QualType RHSStrippedType = RHS->IgnoreParenImpCasts()->getType(); 11486 11487 const auto *LHSEnumType = LHSStrippedType->getAs<EnumType>(); 11488 if (!LHSEnumType) 11489 return; 11490 const auto *RHSEnumType = RHSStrippedType->getAs<EnumType>(); 11491 if (!RHSEnumType) 11492 return; 11493 11494 // Ignore anonymous enums. 11495 if (!LHSEnumType->getDecl()->hasNameForLinkage()) 11496 return; 11497 if (!RHSEnumType->getDecl()->hasNameForLinkage()) 11498 return; 11499 11500 if (S.Context.hasSameUnqualifiedType(LHSStrippedType, RHSStrippedType)) 11501 return; 11502 11503 S.Diag(Loc, diag::warn_conditional_mixed_enum_types) 11504 << LHSStrippedType << RHSStrippedType << LHS->getSourceRange() 11505 << RHS->getSourceRange(); 11506 } 11507 11508 static void DiagnoseIntInBoolContext(Sema &S, Expr *E) { 11509 E = E->IgnoreParenImpCasts(); 11510 SourceLocation ExprLoc = E->getExprLoc(); 11511 11512 if (const auto *BO = dyn_cast<BinaryOperator>(E)) { 11513 BinaryOperator::Opcode Opc = BO->getOpcode(); 11514 Expr::EvalResult Result; 11515 // Do not diagnose unsigned shifts. 11516 if (Opc == BO_Shl) { 11517 const auto *LHS = getIntegerLiteral(BO->getLHS()); 11518 const auto *RHS = getIntegerLiteral(BO->getRHS()); 11519 if (LHS && LHS->getValue() == 0) 11520 S.Diag(ExprLoc, diag::warn_left_shift_always) << 0; 11521 else if (!E->isValueDependent() && LHS && RHS && 11522 RHS->getValue().isNonNegative() && 11523 E->EvaluateAsInt(Result, S.Context, Expr::SE_AllowSideEffects)) 11524 S.Diag(ExprLoc, diag::warn_left_shift_always) 11525 << (Result.Val.getInt() != 0); 11526 else if (E->getType()->isSignedIntegerType()) 11527 S.Diag(ExprLoc, diag::warn_left_shift_in_bool_context) << E; 11528 } 11529 } 11530 11531 if (const auto *CO = dyn_cast<ConditionalOperator>(E)) { 11532 const auto *LHS = getIntegerLiteral(CO->getTrueExpr()); 11533 const auto *RHS = getIntegerLiteral(CO->getFalseExpr()); 11534 if (!LHS || !RHS) 11535 return; 11536 if ((LHS->getValue() == 0 || LHS->getValue() == 1) && 11537 (RHS->getValue() == 0 || RHS->getValue() == 1)) 11538 // Do not diagnose common idioms. 11539 return; 11540 if (LHS->getValue() != 0 && RHS->getValue() != 0) 11541 S.Diag(ExprLoc, diag::warn_integer_constants_in_conditional_always_true); 11542 } 11543 } 11544 11545 static void CheckImplicitConversion(Sema &S, Expr *E, QualType T, 11546 SourceLocation CC, 11547 bool *ICContext = nullptr, 11548 bool IsListInit = false) { 11549 if (E->isTypeDependent() || E->isValueDependent()) return; 11550 11551 const Type *Source = S.Context.getCanonicalType(E->getType()).getTypePtr(); 11552 const Type *Target = S.Context.getCanonicalType(T).getTypePtr(); 11553 if (Source == Target) return; 11554 if (Target->isDependentType()) return; 11555 11556 // If the conversion context location is invalid don't complain. We also 11557 // don't want to emit a warning if the issue occurs from the expansion of 11558 // a system macro. The problem is that 'getSpellingLoc()' is slow, so we 11559 // delay this check as long as possible. Once we detect we are in that 11560 // scenario, we just return. 11561 if (CC.isInvalid()) 11562 return; 11563 11564 if (Source->isAtomicType()) 11565 S.Diag(E->getExprLoc(), diag::warn_atomic_implicit_seq_cst); 11566 11567 // Diagnose implicit casts to bool. 11568 if (Target->isSpecificBuiltinType(BuiltinType::Bool)) { 11569 if (isa<StringLiteral>(E)) 11570 // Warn on string literal to bool. Checks for string literals in logical 11571 // and expressions, for instance, assert(0 && "error here"), are 11572 // prevented by a check in AnalyzeImplicitConversions(). 11573 return DiagnoseImpCast(S, E, T, CC, 11574 diag::warn_impcast_string_literal_to_bool); 11575 if (isa<ObjCStringLiteral>(E) || isa<ObjCArrayLiteral>(E) || 11576 isa<ObjCDictionaryLiteral>(E) || isa<ObjCBoxedExpr>(E)) { 11577 // This covers the literal expressions that evaluate to Objective-C 11578 // objects. 11579 return DiagnoseImpCast(S, E, T, CC, 11580 diag::warn_impcast_objective_c_literal_to_bool); 11581 } 11582 if (Source->isPointerType() || Source->canDecayToPointerType()) { 11583 // Warn on pointer to bool conversion that is always true. 11584 S.DiagnoseAlwaysNonNullPointer(E, Expr::NPCK_NotNull, /*IsEqual*/ false, 11585 SourceRange(CC)); 11586 } 11587 } 11588 11589 // If the we're converting a constant to an ObjC BOOL on a platform where BOOL 11590 // is a typedef for signed char (macOS), then that constant value has to be 1 11591 // or 0. 11592 if (isObjCSignedCharBool(S, T) && Source->isIntegralType(S.Context)) { 11593 Expr::EvalResult Result; 11594 if (E->EvaluateAsInt(Result, S.getASTContext(), 11595 Expr::SE_AllowSideEffects)) { 11596 if (Result.Val.getInt() != 1 && Result.Val.getInt() != 0) { 11597 adornObjCBoolConversionDiagWithTernaryFixit( 11598 S, E, 11599 S.Diag(CC, diag::warn_impcast_constant_value_to_objc_bool) 11600 << Result.Val.getInt().toString(10)); 11601 } 11602 return; 11603 } 11604 } 11605 11606 // Check implicit casts from Objective-C collection literals to specialized 11607 // collection types, e.g., NSArray<NSString *> *. 11608 if (auto *ArrayLiteral = dyn_cast<ObjCArrayLiteral>(E)) 11609 checkObjCArrayLiteral(S, QualType(Target, 0), ArrayLiteral); 11610 else if (auto *DictionaryLiteral = dyn_cast<ObjCDictionaryLiteral>(E)) 11611 checkObjCDictionaryLiteral(S, QualType(Target, 0), DictionaryLiteral); 11612 11613 // Strip vector types. 11614 if (isa<VectorType>(Source)) { 11615 if (!isa<VectorType>(Target)) { 11616 if (S.SourceMgr.isInSystemMacro(CC)) 11617 return; 11618 return DiagnoseImpCast(S, E, T, CC, diag::warn_impcast_vector_scalar); 11619 } 11620 11621 // If the vector cast is cast between two vectors of the same size, it is 11622 // a bitcast, not a conversion. 11623 if (S.Context.getTypeSize(Source) == S.Context.getTypeSize(Target)) 11624 return; 11625 11626 Source = cast<VectorType>(Source)->getElementType().getTypePtr(); 11627 Target = cast<VectorType>(Target)->getElementType().getTypePtr(); 11628 } 11629 if (auto VecTy = dyn_cast<VectorType>(Target)) 11630 Target = VecTy->getElementType().getTypePtr(); 11631 11632 // Strip complex types. 11633 if (isa<ComplexType>(Source)) { 11634 if (!isa<ComplexType>(Target)) { 11635 if (S.SourceMgr.isInSystemMacro(CC) || Target->isBooleanType()) 11636 return; 11637 11638 return DiagnoseImpCast(S, E, T, CC, 11639 S.getLangOpts().CPlusPlus 11640 ? diag::err_impcast_complex_scalar 11641 : diag::warn_impcast_complex_scalar); 11642 } 11643 11644 Source = cast<ComplexType>(Source)->getElementType().getTypePtr(); 11645 Target = cast<ComplexType>(Target)->getElementType().getTypePtr(); 11646 } 11647 11648 const BuiltinType *SourceBT = dyn_cast<BuiltinType>(Source); 11649 const BuiltinType *TargetBT = dyn_cast<BuiltinType>(Target); 11650 11651 // If the source is floating point... 11652 if (SourceBT && SourceBT->isFloatingPoint()) { 11653 // ...and the target is floating point... 11654 if (TargetBT && TargetBT->isFloatingPoint()) { 11655 // ...then warn if we're dropping FP rank. 11656 11657 int Order = S.getASTContext().getFloatingTypeSemanticOrder( 11658 QualType(SourceBT, 0), QualType(TargetBT, 0)); 11659 if (Order > 0) { 11660 // Don't warn about float constants that are precisely 11661 // representable in the target type. 11662 Expr::EvalResult result; 11663 if (E->EvaluateAsRValue(result, S.Context)) { 11664 // Value might be a float, a float vector, or a float complex. 11665 if (IsSameFloatAfterCast(result.Val, 11666 S.Context.getFloatTypeSemantics(QualType(TargetBT, 0)), 11667 S.Context.getFloatTypeSemantics(QualType(SourceBT, 0)))) 11668 return; 11669 } 11670 11671 if (S.SourceMgr.isInSystemMacro(CC)) 11672 return; 11673 11674 DiagnoseImpCast(S, E, T, CC, diag::warn_impcast_float_precision); 11675 } 11676 // ... or possibly if we're increasing rank, too 11677 else if (Order < 0) { 11678 if (S.SourceMgr.isInSystemMacro(CC)) 11679 return; 11680 11681 DiagnoseImpCast(S, E, T, CC, diag::warn_impcast_double_promotion); 11682 } 11683 return; 11684 } 11685 11686 // If the target is integral, always warn. 11687 if (TargetBT && TargetBT->isInteger()) { 11688 if (S.SourceMgr.isInSystemMacro(CC)) 11689 return; 11690 11691 DiagnoseFloatingImpCast(S, E, T, CC); 11692 } 11693 11694 // Detect the case where a call result is converted from floating-point to 11695 // to bool, and the final argument to the call is converted from bool, to 11696 // discover this typo: 11697 // 11698 // bool b = fabs(x < 1.0); // should be "bool b = fabs(x) < 1.0;" 11699 // 11700 // FIXME: This is an incredibly special case; is there some more general 11701 // way to detect this class of misplaced-parentheses bug? 11702 if (Target->isBooleanType() && isa<CallExpr>(E)) { 11703 // Check last argument of function call to see if it is an 11704 // implicit cast from a type matching the type the result 11705 // is being cast to. 11706 CallExpr *CEx = cast<CallExpr>(E); 11707 if (unsigned NumArgs = CEx->getNumArgs()) { 11708 Expr *LastA = CEx->getArg(NumArgs - 1); 11709 Expr *InnerE = LastA->IgnoreParenImpCasts(); 11710 if (isa<ImplicitCastExpr>(LastA) && 11711 InnerE->getType()->isBooleanType()) { 11712 // Warn on this floating-point to bool conversion 11713 DiagnoseImpCast(S, E, T, CC, 11714 diag::warn_impcast_floating_point_to_bool); 11715 } 11716 } 11717 } 11718 return; 11719 } 11720 11721 // Valid casts involving fixed point types should be accounted for here. 11722 if (Source->isFixedPointType()) { 11723 if (Target->isUnsaturatedFixedPointType()) { 11724 Expr::EvalResult Result; 11725 if (E->EvaluateAsFixedPoint(Result, S.Context, Expr::SE_AllowSideEffects, 11726 S.isConstantEvaluated())) { 11727 APFixedPoint Value = Result.Val.getFixedPoint(); 11728 APFixedPoint MaxVal = S.Context.getFixedPointMax(T); 11729 APFixedPoint MinVal = S.Context.getFixedPointMin(T); 11730 if (Value > MaxVal || Value < MinVal) { 11731 S.DiagRuntimeBehavior(E->getExprLoc(), E, 11732 S.PDiag(diag::warn_impcast_fixed_point_range) 11733 << Value.toString() << T 11734 << E->getSourceRange() 11735 << clang::SourceRange(CC)); 11736 return; 11737 } 11738 } 11739 } else if (Target->isIntegerType()) { 11740 Expr::EvalResult Result; 11741 if (!S.isConstantEvaluated() && 11742 E->EvaluateAsFixedPoint(Result, S.Context, 11743 Expr::SE_AllowSideEffects)) { 11744 APFixedPoint FXResult = Result.Val.getFixedPoint(); 11745 11746 bool Overflowed; 11747 llvm::APSInt IntResult = FXResult.convertToInt( 11748 S.Context.getIntWidth(T), 11749 Target->isSignedIntegerOrEnumerationType(), &Overflowed); 11750 11751 if (Overflowed) { 11752 S.DiagRuntimeBehavior(E->getExprLoc(), E, 11753 S.PDiag(diag::warn_impcast_fixed_point_range) 11754 << FXResult.toString() << T 11755 << E->getSourceRange() 11756 << clang::SourceRange(CC)); 11757 return; 11758 } 11759 } 11760 } 11761 } else if (Target->isUnsaturatedFixedPointType()) { 11762 if (Source->isIntegerType()) { 11763 Expr::EvalResult Result; 11764 if (!S.isConstantEvaluated() && 11765 E->EvaluateAsInt(Result, S.Context, Expr::SE_AllowSideEffects)) { 11766 llvm::APSInt Value = Result.Val.getInt(); 11767 11768 bool Overflowed; 11769 APFixedPoint IntResult = APFixedPoint::getFromIntValue( 11770 Value, S.Context.getFixedPointSemantics(T), &Overflowed); 11771 11772 if (Overflowed) { 11773 S.DiagRuntimeBehavior(E->getExprLoc(), E, 11774 S.PDiag(diag::warn_impcast_fixed_point_range) 11775 << Value.toString(/*Radix=*/10) << T 11776 << E->getSourceRange() 11777 << clang::SourceRange(CC)); 11778 return; 11779 } 11780 } 11781 } 11782 } 11783 11784 // If we are casting an integer type to a floating point type without 11785 // initialization-list syntax, we might lose accuracy if the floating 11786 // point type has a narrower significand than the integer type. 11787 if (SourceBT && TargetBT && SourceBT->isIntegerType() && 11788 TargetBT->isFloatingType() && !IsListInit) { 11789 // Determine the number of precision bits in the source integer type. 11790 IntRange SourceRange = GetExprRange(S.Context, E, S.isConstantEvaluated()); 11791 unsigned int SourcePrecision = SourceRange.Width; 11792 11793 // Determine the number of precision bits in the 11794 // target floating point type. 11795 unsigned int TargetPrecision = llvm::APFloatBase::semanticsPrecision( 11796 S.Context.getFloatTypeSemantics(QualType(TargetBT, 0))); 11797 11798 if (SourcePrecision > 0 && TargetPrecision > 0 && 11799 SourcePrecision > TargetPrecision) { 11800 11801 llvm::APSInt SourceInt; 11802 if (E->isIntegerConstantExpr(SourceInt, S.Context)) { 11803 // If the source integer is a constant, convert it to the target 11804 // floating point type. Issue a warning if the value changes 11805 // during the whole conversion. 11806 llvm::APFloat TargetFloatValue( 11807 S.Context.getFloatTypeSemantics(QualType(TargetBT, 0))); 11808 llvm::APFloat::opStatus ConversionStatus = 11809 TargetFloatValue.convertFromAPInt( 11810 SourceInt, SourceBT->isSignedInteger(), 11811 llvm::APFloat::rmNearestTiesToEven); 11812 11813 if (ConversionStatus != llvm::APFloat::opOK) { 11814 std::string PrettySourceValue = SourceInt.toString(10); 11815 SmallString<32> PrettyTargetValue; 11816 TargetFloatValue.toString(PrettyTargetValue, TargetPrecision); 11817 11818 S.DiagRuntimeBehavior( 11819 E->getExprLoc(), E, 11820 S.PDiag(diag::warn_impcast_integer_float_precision_constant) 11821 << PrettySourceValue << PrettyTargetValue << E->getType() << T 11822 << E->getSourceRange() << clang::SourceRange(CC)); 11823 } 11824 } else { 11825 // Otherwise, the implicit conversion may lose precision. 11826 DiagnoseImpCast(S, E, T, CC, 11827 diag::warn_impcast_integer_float_precision); 11828 } 11829 } 11830 } 11831 11832 DiagnoseNullConversion(S, E, T, CC); 11833 11834 S.DiscardMisalignedMemberAddress(Target, E); 11835 11836 if (Target->isBooleanType()) 11837 DiagnoseIntInBoolContext(S, E); 11838 11839 if (!Source->isIntegerType() || !Target->isIntegerType()) 11840 return; 11841 11842 // TODO: remove this early return once the false positives for constant->bool 11843 // in templates, macros, etc, are reduced or removed. 11844 if (Target->isSpecificBuiltinType(BuiltinType::Bool)) 11845 return; 11846 11847 if (isObjCSignedCharBool(S, T) && !Source->isCharType() && 11848 !E->isKnownToHaveBooleanValue()) { 11849 return adornObjCBoolConversionDiagWithTernaryFixit( 11850 S, E, 11851 S.Diag(CC, diag::warn_impcast_int_to_objc_signed_char_bool) 11852 << E->getType()); 11853 } 11854 11855 IntRange SourceRange = GetExprRange(S.Context, E, S.isConstantEvaluated()); 11856 IntRange TargetRange = IntRange::forTargetOfCanonicalType(S.Context, Target); 11857 11858 if (SourceRange.Width > TargetRange.Width) { 11859 // If the source is a constant, use a default-on diagnostic. 11860 // TODO: this should happen for bitfield stores, too. 11861 Expr::EvalResult Result; 11862 if (E->EvaluateAsInt(Result, S.Context, Expr::SE_AllowSideEffects, 11863 S.isConstantEvaluated())) { 11864 llvm::APSInt Value(32); 11865 Value = Result.Val.getInt(); 11866 11867 if (S.SourceMgr.isInSystemMacro(CC)) 11868 return; 11869 11870 std::string PrettySourceValue = Value.toString(10); 11871 std::string PrettyTargetValue = PrettyPrintInRange(Value, TargetRange); 11872 11873 S.DiagRuntimeBehavior( 11874 E->getExprLoc(), E, 11875 S.PDiag(diag::warn_impcast_integer_precision_constant) 11876 << PrettySourceValue << PrettyTargetValue << E->getType() << T 11877 << E->getSourceRange() << clang::SourceRange(CC)); 11878 return; 11879 } 11880 11881 // People want to build with -Wshorten-64-to-32 and not -Wconversion. 11882 if (S.SourceMgr.isInSystemMacro(CC)) 11883 return; 11884 11885 if (TargetRange.Width == 32 && S.Context.getIntWidth(E->getType()) == 64) 11886 return DiagnoseImpCast(S, E, T, CC, diag::warn_impcast_integer_64_32, 11887 /* pruneControlFlow */ true); 11888 return DiagnoseImpCast(S, E, T, CC, diag::warn_impcast_integer_precision); 11889 } 11890 11891 if (TargetRange.Width > SourceRange.Width) { 11892 if (auto *UO = dyn_cast<UnaryOperator>(E)) 11893 if (UO->getOpcode() == UO_Minus) 11894 if (Source->isUnsignedIntegerType()) { 11895 if (Target->isUnsignedIntegerType()) 11896 return DiagnoseImpCast(S, E, T, CC, 11897 diag::warn_impcast_high_order_zero_bits); 11898 if (Target->isSignedIntegerType()) 11899 return DiagnoseImpCast(S, E, T, CC, 11900 diag::warn_impcast_nonnegative_result); 11901 } 11902 } 11903 11904 if (TargetRange.Width == SourceRange.Width && !TargetRange.NonNegative && 11905 SourceRange.NonNegative && Source->isSignedIntegerType()) { 11906 // Warn when doing a signed to signed conversion, warn if the positive 11907 // source value is exactly the width of the target type, which will 11908 // cause a negative value to be stored. 11909 11910 Expr::EvalResult Result; 11911 if (E->EvaluateAsInt(Result, S.Context, Expr::SE_AllowSideEffects) && 11912 !S.SourceMgr.isInSystemMacro(CC)) { 11913 llvm::APSInt Value = Result.Val.getInt(); 11914 if (isSameWidthConstantConversion(S, E, T, CC)) { 11915 std::string PrettySourceValue = Value.toString(10); 11916 std::string PrettyTargetValue = PrettyPrintInRange(Value, TargetRange); 11917 11918 S.DiagRuntimeBehavior( 11919 E->getExprLoc(), E, 11920 S.PDiag(diag::warn_impcast_integer_precision_constant) 11921 << PrettySourceValue << PrettyTargetValue << E->getType() << T 11922 << E->getSourceRange() << clang::SourceRange(CC)); 11923 return; 11924 } 11925 } 11926 11927 // Fall through for non-constants to give a sign conversion warning. 11928 } 11929 11930 if ((TargetRange.NonNegative && !SourceRange.NonNegative) || 11931 (!TargetRange.NonNegative && SourceRange.NonNegative && 11932 SourceRange.Width == TargetRange.Width)) { 11933 if (S.SourceMgr.isInSystemMacro(CC)) 11934 return; 11935 11936 unsigned DiagID = diag::warn_impcast_integer_sign; 11937 11938 // Traditionally, gcc has warned about this under -Wsign-compare. 11939 // We also want to warn about it in -Wconversion. 11940 // So if -Wconversion is off, use a completely identical diagnostic 11941 // in the sign-compare group. 11942 // The conditional-checking code will 11943 if (ICContext) { 11944 DiagID = diag::warn_impcast_integer_sign_conditional; 11945 *ICContext = true; 11946 } 11947 11948 return DiagnoseImpCast(S, E, T, CC, DiagID); 11949 } 11950 11951 // Diagnose conversions between different enumeration types. 11952 // In C, we pretend that the type of an EnumConstantDecl is its enumeration 11953 // type, to give us better diagnostics. 11954 QualType SourceType = E->getType(); 11955 if (!S.getLangOpts().CPlusPlus) { 11956 if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) 11957 if (EnumConstantDecl *ECD = dyn_cast<EnumConstantDecl>(DRE->getDecl())) { 11958 EnumDecl *Enum = cast<EnumDecl>(ECD->getDeclContext()); 11959 SourceType = S.Context.getTypeDeclType(Enum); 11960 Source = S.Context.getCanonicalType(SourceType).getTypePtr(); 11961 } 11962 } 11963 11964 if (const EnumType *SourceEnum = Source->getAs<EnumType>()) 11965 if (const EnumType *TargetEnum = Target->getAs<EnumType>()) 11966 if (SourceEnum->getDecl()->hasNameForLinkage() && 11967 TargetEnum->getDecl()->hasNameForLinkage() && 11968 SourceEnum != TargetEnum) { 11969 if (S.SourceMgr.isInSystemMacro(CC)) 11970 return; 11971 11972 return DiagnoseImpCast(S, E, SourceType, T, CC, 11973 diag::warn_impcast_different_enum_types); 11974 } 11975 } 11976 11977 static void CheckConditionalOperator(Sema &S, ConditionalOperator *E, 11978 SourceLocation CC, QualType T); 11979 11980 static void CheckConditionalOperand(Sema &S, Expr *E, QualType T, 11981 SourceLocation CC, bool &ICContext) { 11982 E = E->IgnoreParenImpCasts(); 11983 11984 if (isa<ConditionalOperator>(E)) 11985 return CheckConditionalOperator(S, cast<ConditionalOperator>(E), CC, T); 11986 11987 AnalyzeImplicitConversions(S, E, CC); 11988 if (E->getType() != T) 11989 return CheckImplicitConversion(S, E, T, CC, &ICContext); 11990 } 11991 11992 static void CheckConditionalOperator(Sema &S, ConditionalOperator *E, 11993 SourceLocation CC, QualType T) { 11994 AnalyzeImplicitConversions(S, E->getCond(), E->getQuestionLoc()); 11995 11996 bool Suspicious = false; 11997 CheckConditionalOperand(S, E->getTrueExpr(), T, CC, Suspicious); 11998 CheckConditionalOperand(S, E->getFalseExpr(), T, CC, Suspicious); 11999 CheckConditionalWithEnumTypes(S, E->getBeginLoc(), E->getTrueExpr(), 12000 E->getFalseExpr()); 12001 12002 if (T->isBooleanType()) 12003 DiagnoseIntInBoolContext(S, E); 12004 12005 // If -Wconversion would have warned about either of the candidates 12006 // for a signedness conversion to the context type... 12007 if (!Suspicious) return; 12008 12009 // ...but it's currently ignored... 12010 if (!S.Diags.isIgnored(diag::warn_impcast_integer_sign_conditional, CC)) 12011 return; 12012 12013 // ...then check whether it would have warned about either of the 12014 // candidates for a signedness conversion to the condition type. 12015 if (E->getType() == T) return; 12016 12017 Suspicious = false; 12018 CheckImplicitConversion(S, E->getTrueExpr()->IgnoreParenImpCasts(), 12019 E->getType(), CC, &Suspicious); 12020 if (!Suspicious) 12021 CheckImplicitConversion(S, E->getFalseExpr()->IgnoreParenImpCasts(), 12022 E->getType(), CC, &Suspicious); 12023 } 12024 12025 /// Check conversion of given expression to boolean. 12026 /// Input argument E is a logical expression. 12027 static void CheckBoolLikeConversion(Sema &S, Expr *E, SourceLocation CC) { 12028 if (S.getLangOpts().Bool) 12029 return; 12030 if (E->IgnoreParenImpCasts()->getType()->isAtomicType()) 12031 return; 12032 CheckImplicitConversion(S, E->IgnoreParenImpCasts(), S.Context.BoolTy, CC); 12033 } 12034 12035 /// AnalyzeImplicitConversions - Find and report any interesting 12036 /// implicit conversions in the given expression. There are a couple 12037 /// of competing diagnostics here, -Wconversion and -Wsign-compare. 12038 static void AnalyzeImplicitConversions(Sema &S, Expr *OrigE, SourceLocation CC, 12039 bool IsListInit/*= false*/) { 12040 QualType T = OrigE->getType(); 12041 Expr *E = OrigE->IgnoreParenImpCasts(); 12042 12043 // Propagate whether we are in a C++ list initialization expression. 12044 // If so, we do not issue warnings for implicit int-float conversion 12045 // precision loss, because C++11 narrowing already handles it. 12046 IsListInit = 12047 IsListInit || (isa<InitListExpr>(OrigE) && S.getLangOpts().CPlusPlus); 12048 12049 if (E->isTypeDependent() || E->isValueDependent()) 12050 return; 12051 12052 if (const auto *UO = dyn_cast<UnaryOperator>(E)) 12053 if (UO->getOpcode() == UO_Not && 12054 UO->getSubExpr()->isKnownToHaveBooleanValue()) 12055 S.Diag(UO->getBeginLoc(), diag::warn_bitwise_negation_bool) 12056 << OrigE->getSourceRange() << T->isBooleanType() 12057 << FixItHint::CreateReplacement(UO->getBeginLoc(), "!"); 12058 12059 // For conditional operators, we analyze the arguments as if they 12060 // were being fed directly into the output. 12061 if (isa<ConditionalOperator>(E)) { 12062 ConditionalOperator *CO = cast<ConditionalOperator>(E); 12063 CheckConditionalOperator(S, CO, CC, T); 12064 return; 12065 } 12066 12067 // Check implicit argument conversions for function calls. 12068 if (CallExpr *Call = dyn_cast<CallExpr>(E)) 12069 CheckImplicitArgumentConversions(S, Call, CC); 12070 12071 // Go ahead and check any implicit conversions we might have skipped. 12072 // The non-canonical typecheck is just an optimization; 12073 // CheckImplicitConversion will filter out dead implicit conversions. 12074 if (E->getType() != T) 12075 CheckImplicitConversion(S, E, T, CC, nullptr, IsListInit); 12076 12077 // Now continue drilling into this expression. 12078 12079 if (PseudoObjectExpr *POE = dyn_cast<PseudoObjectExpr>(E)) { 12080 // The bound subexpressions in a PseudoObjectExpr are not reachable 12081 // as transitive children. 12082 // FIXME: Use a more uniform representation for this. 12083 for (auto *SE : POE->semantics()) 12084 if (auto *OVE = dyn_cast<OpaqueValueExpr>(SE)) 12085 AnalyzeImplicitConversions(S, OVE->getSourceExpr(), CC, IsListInit); 12086 } 12087 12088 // Skip past explicit casts. 12089 if (auto *CE = dyn_cast<ExplicitCastExpr>(E)) { 12090 E = CE->getSubExpr()->IgnoreParenImpCasts(); 12091 if (!CE->getType()->isVoidType() && E->getType()->isAtomicType()) 12092 S.Diag(E->getBeginLoc(), diag::warn_atomic_implicit_seq_cst); 12093 return AnalyzeImplicitConversions(S, E, CC, IsListInit); 12094 } 12095 12096 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) { 12097 // Do a somewhat different check with comparison operators. 12098 if (BO->isComparisonOp()) 12099 return AnalyzeComparison(S, BO); 12100 12101 // And with simple assignments. 12102 if (BO->getOpcode() == BO_Assign) 12103 return AnalyzeAssignment(S, BO); 12104 // And with compound assignments. 12105 if (BO->isAssignmentOp()) 12106 return AnalyzeCompoundAssignment(S, BO); 12107 } 12108 12109 // These break the otherwise-useful invariant below. Fortunately, 12110 // we don't really need to recurse into them, because any internal 12111 // expressions should have been analyzed already when they were 12112 // built into statements. 12113 if (isa<StmtExpr>(E)) return; 12114 12115 // Don't descend into unevaluated contexts. 12116 if (isa<UnaryExprOrTypeTraitExpr>(E)) return; 12117 12118 // Now just recurse over the expression's children. 12119 CC = E->getExprLoc(); 12120 BinaryOperator *BO = dyn_cast<BinaryOperator>(E); 12121 bool IsLogicalAndOperator = BO && BO->getOpcode() == BO_LAnd; 12122 for (Stmt *SubStmt : E->children()) { 12123 Expr *ChildExpr = dyn_cast_or_null<Expr>(SubStmt); 12124 if (!ChildExpr) 12125 continue; 12126 12127 if (IsLogicalAndOperator && 12128 isa<StringLiteral>(ChildExpr->IgnoreParenImpCasts())) 12129 // Ignore checking string literals that are in logical and operators. 12130 // This is a common pattern for asserts. 12131 continue; 12132 AnalyzeImplicitConversions(S, ChildExpr, CC, IsListInit); 12133 } 12134 12135 if (BO && BO->isLogicalOp()) { 12136 Expr *SubExpr = BO->getLHS()->IgnoreParenImpCasts(); 12137 if (!IsLogicalAndOperator || !isa<StringLiteral>(SubExpr)) 12138 ::CheckBoolLikeConversion(S, SubExpr, BO->getExprLoc()); 12139 12140 SubExpr = BO->getRHS()->IgnoreParenImpCasts(); 12141 if (!IsLogicalAndOperator || !isa<StringLiteral>(SubExpr)) 12142 ::CheckBoolLikeConversion(S, SubExpr, BO->getExprLoc()); 12143 } 12144 12145 if (const UnaryOperator *U = dyn_cast<UnaryOperator>(E)) { 12146 if (U->getOpcode() == UO_LNot) { 12147 ::CheckBoolLikeConversion(S, U->getSubExpr(), CC); 12148 } else if (U->getOpcode() != UO_AddrOf) { 12149 if (U->getSubExpr()->getType()->isAtomicType()) 12150 S.Diag(U->getSubExpr()->getBeginLoc(), 12151 diag::warn_atomic_implicit_seq_cst); 12152 } 12153 } 12154 } 12155 12156 /// Diagnose integer type and any valid implicit conversion to it. 12157 static bool checkOpenCLEnqueueIntType(Sema &S, Expr *E, const QualType &IntT) { 12158 // Taking into account implicit conversions, 12159 // allow any integer. 12160 if (!E->getType()->isIntegerType()) { 12161 S.Diag(E->getBeginLoc(), 12162 diag::err_opencl_enqueue_kernel_invalid_local_size_type); 12163 return true; 12164 } 12165 // Potentially emit standard warnings for implicit conversions if enabled 12166 // using -Wconversion. 12167 CheckImplicitConversion(S, E, IntT, E->getBeginLoc()); 12168 return false; 12169 } 12170 12171 // Helper function for Sema::DiagnoseAlwaysNonNullPointer. 12172 // Returns true when emitting a warning about taking the address of a reference. 12173 static bool CheckForReference(Sema &SemaRef, const Expr *E, 12174 const PartialDiagnostic &PD) { 12175 E = E->IgnoreParenImpCasts(); 12176 12177 const FunctionDecl *FD = nullptr; 12178 12179 if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) { 12180 if (!DRE->getDecl()->getType()->isReferenceType()) 12181 return false; 12182 } else if (const MemberExpr *M = dyn_cast<MemberExpr>(E)) { 12183 if (!M->getMemberDecl()->getType()->isReferenceType()) 12184 return false; 12185 } else if (const CallExpr *Call = dyn_cast<CallExpr>(E)) { 12186 if (!Call->getCallReturnType(SemaRef.Context)->isReferenceType()) 12187 return false; 12188 FD = Call->getDirectCallee(); 12189 } else { 12190 return false; 12191 } 12192 12193 SemaRef.Diag(E->getExprLoc(), PD); 12194 12195 // If possible, point to location of function. 12196 if (FD) { 12197 SemaRef.Diag(FD->getLocation(), diag::note_reference_is_return_value) << FD; 12198 } 12199 12200 return true; 12201 } 12202 12203 // Returns true if the SourceLocation is expanded from any macro body. 12204 // Returns false if the SourceLocation is invalid, is from not in a macro 12205 // expansion, or is from expanded from a top-level macro argument. 12206 static bool IsInAnyMacroBody(const SourceManager &SM, SourceLocation Loc) { 12207 if (Loc.isInvalid()) 12208 return false; 12209 12210 while (Loc.isMacroID()) { 12211 if (SM.isMacroBodyExpansion(Loc)) 12212 return true; 12213 Loc = SM.getImmediateMacroCallerLoc(Loc); 12214 } 12215 12216 return false; 12217 } 12218 12219 /// Diagnose pointers that are always non-null. 12220 /// \param E the expression containing the pointer 12221 /// \param NullKind NPCK_NotNull if E is a cast to bool, otherwise, E is 12222 /// compared to a null pointer 12223 /// \param IsEqual True when the comparison is equal to a null pointer 12224 /// \param Range Extra SourceRange to highlight in the diagnostic 12225 void Sema::DiagnoseAlwaysNonNullPointer(Expr *E, 12226 Expr::NullPointerConstantKind NullKind, 12227 bool IsEqual, SourceRange Range) { 12228 if (!E) 12229 return; 12230 12231 // Don't warn inside macros. 12232 if (E->getExprLoc().isMacroID()) { 12233 const SourceManager &SM = getSourceManager(); 12234 if (IsInAnyMacroBody(SM, E->getExprLoc()) || 12235 IsInAnyMacroBody(SM, Range.getBegin())) 12236 return; 12237 } 12238 E = E->IgnoreImpCasts(); 12239 12240 const bool IsCompare = NullKind != Expr::NPCK_NotNull; 12241 12242 if (isa<CXXThisExpr>(E)) { 12243 unsigned DiagID = IsCompare ? diag::warn_this_null_compare 12244 : diag::warn_this_bool_conversion; 12245 Diag(E->getExprLoc(), DiagID) << E->getSourceRange() << Range << IsEqual; 12246 return; 12247 } 12248 12249 bool IsAddressOf = false; 12250 12251 if (UnaryOperator *UO = dyn_cast<UnaryOperator>(E)) { 12252 if (UO->getOpcode() != UO_AddrOf) 12253 return; 12254 IsAddressOf = true; 12255 E = UO->getSubExpr(); 12256 } 12257 12258 if (IsAddressOf) { 12259 unsigned DiagID = IsCompare 12260 ? diag::warn_address_of_reference_null_compare 12261 : diag::warn_address_of_reference_bool_conversion; 12262 PartialDiagnostic PD = PDiag(DiagID) << E->getSourceRange() << Range 12263 << IsEqual; 12264 if (CheckForReference(*this, E, PD)) { 12265 return; 12266 } 12267 } 12268 12269 auto ComplainAboutNonnullParamOrCall = [&](const Attr *NonnullAttr) { 12270 bool IsParam = isa<NonNullAttr>(NonnullAttr); 12271 std::string Str; 12272 llvm::raw_string_ostream S(Str); 12273 E->printPretty(S, nullptr, getPrintingPolicy()); 12274 unsigned DiagID = IsCompare ? diag::warn_nonnull_expr_compare 12275 : diag::warn_cast_nonnull_to_bool; 12276 Diag(E->getExprLoc(), DiagID) << IsParam << S.str() 12277 << E->getSourceRange() << Range << IsEqual; 12278 Diag(NonnullAttr->getLocation(), diag::note_declared_nonnull) << IsParam; 12279 }; 12280 12281 // If we have a CallExpr that is tagged with returns_nonnull, we can complain. 12282 if (auto *Call = dyn_cast<CallExpr>(E->IgnoreParenImpCasts())) { 12283 if (auto *Callee = Call->getDirectCallee()) { 12284 if (const Attr *A = Callee->getAttr<ReturnsNonNullAttr>()) { 12285 ComplainAboutNonnullParamOrCall(A); 12286 return; 12287 } 12288 } 12289 } 12290 12291 // Expect to find a single Decl. Skip anything more complicated. 12292 ValueDecl *D = nullptr; 12293 if (DeclRefExpr *R = dyn_cast<DeclRefExpr>(E)) { 12294 D = R->getDecl(); 12295 } else if (MemberExpr *M = dyn_cast<MemberExpr>(E)) { 12296 D = M->getMemberDecl(); 12297 } 12298 12299 // Weak Decls can be null. 12300 if (!D || D->isWeak()) 12301 return; 12302 12303 // Check for parameter decl with nonnull attribute 12304 if (const auto* PV = dyn_cast<ParmVarDecl>(D)) { 12305 if (getCurFunction() && 12306 !getCurFunction()->ModifiedNonNullParams.count(PV)) { 12307 if (const Attr *A = PV->getAttr<NonNullAttr>()) { 12308 ComplainAboutNonnullParamOrCall(A); 12309 return; 12310 } 12311 12312 if (const auto *FD = dyn_cast<FunctionDecl>(PV->getDeclContext())) { 12313 // Skip function template not specialized yet. 12314 if (FD->getTemplatedKind() == FunctionDecl::TK_FunctionTemplate) 12315 return; 12316 auto ParamIter = llvm::find(FD->parameters(), PV); 12317 assert(ParamIter != FD->param_end()); 12318 unsigned ParamNo = std::distance(FD->param_begin(), ParamIter); 12319 12320 for (const auto *NonNull : FD->specific_attrs<NonNullAttr>()) { 12321 if (!NonNull->args_size()) { 12322 ComplainAboutNonnullParamOrCall(NonNull); 12323 return; 12324 } 12325 12326 for (const ParamIdx &ArgNo : NonNull->args()) { 12327 if (ArgNo.getASTIndex() == ParamNo) { 12328 ComplainAboutNonnullParamOrCall(NonNull); 12329 return; 12330 } 12331 } 12332 } 12333 } 12334 } 12335 } 12336 12337 QualType T = D->getType(); 12338 const bool IsArray = T->isArrayType(); 12339 const bool IsFunction = T->isFunctionType(); 12340 12341 // Address of function is used to silence the function warning. 12342 if (IsAddressOf && IsFunction) { 12343 return; 12344 } 12345 12346 // Found nothing. 12347 if (!IsAddressOf && !IsFunction && !IsArray) 12348 return; 12349 12350 // Pretty print the expression for the diagnostic. 12351 std::string Str; 12352 llvm::raw_string_ostream S(Str); 12353 E->printPretty(S, nullptr, getPrintingPolicy()); 12354 12355 unsigned DiagID = IsCompare ? diag::warn_null_pointer_compare 12356 : diag::warn_impcast_pointer_to_bool; 12357 enum { 12358 AddressOf, 12359 FunctionPointer, 12360 ArrayPointer 12361 } DiagType; 12362 if (IsAddressOf) 12363 DiagType = AddressOf; 12364 else if (IsFunction) 12365 DiagType = FunctionPointer; 12366 else if (IsArray) 12367 DiagType = ArrayPointer; 12368 else 12369 llvm_unreachable("Could not determine diagnostic."); 12370 Diag(E->getExprLoc(), DiagID) << DiagType << S.str() << E->getSourceRange() 12371 << Range << IsEqual; 12372 12373 if (!IsFunction) 12374 return; 12375 12376 // Suggest '&' to silence the function warning. 12377 Diag(E->getExprLoc(), diag::note_function_warning_silence) 12378 << FixItHint::CreateInsertion(E->getBeginLoc(), "&"); 12379 12380 // Check to see if '()' fixit should be emitted. 12381 QualType ReturnType; 12382 UnresolvedSet<4> NonTemplateOverloads; 12383 tryExprAsCall(*E, ReturnType, NonTemplateOverloads); 12384 if (ReturnType.isNull()) 12385 return; 12386 12387 if (IsCompare) { 12388 // There are two cases here. If there is null constant, the only suggest 12389 // for a pointer return type. If the null is 0, then suggest if the return 12390 // type is a pointer or an integer type. 12391 if (!ReturnType->isPointerType()) { 12392 if (NullKind == Expr::NPCK_ZeroExpression || 12393 NullKind == Expr::NPCK_ZeroLiteral) { 12394 if (!ReturnType->isIntegerType()) 12395 return; 12396 } else { 12397 return; 12398 } 12399 } 12400 } else { // !IsCompare 12401 // For function to bool, only suggest if the function pointer has bool 12402 // return type. 12403 if (!ReturnType->isSpecificBuiltinType(BuiltinType::Bool)) 12404 return; 12405 } 12406 Diag(E->getExprLoc(), diag::note_function_to_function_call) 12407 << FixItHint::CreateInsertion(getLocForEndOfToken(E->getEndLoc()), "()"); 12408 } 12409 12410 /// Diagnoses "dangerous" implicit conversions within the given 12411 /// expression (which is a full expression). Implements -Wconversion 12412 /// and -Wsign-compare. 12413 /// 12414 /// \param CC the "context" location of the implicit conversion, i.e. 12415 /// the most location of the syntactic entity requiring the implicit 12416 /// conversion 12417 void Sema::CheckImplicitConversions(Expr *E, SourceLocation CC) { 12418 // Don't diagnose in unevaluated contexts. 12419 if (isUnevaluatedContext()) 12420 return; 12421 12422 // Don't diagnose for value- or type-dependent expressions. 12423 if (E->isTypeDependent() || E->isValueDependent()) 12424 return; 12425 12426 // Check for array bounds violations in cases where the check isn't triggered 12427 // elsewhere for other Expr types (like BinaryOperators), e.g. when an 12428 // ArraySubscriptExpr is on the RHS of a variable initialization. 12429 CheckArrayAccess(E); 12430 12431 // This is not the right CC for (e.g.) a variable initialization. 12432 AnalyzeImplicitConversions(*this, E, CC); 12433 } 12434 12435 /// CheckBoolLikeConversion - Check conversion of given expression to boolean. 12436 /// Input argument E is a logical expression. 12437 void Sema::CheckBoolLikeConversion(Expr *E, SourceLocation CC) { 12438 ::CheckBoolLikeConversion(*this, E, CC); 12439 } 12440 12441 /// Diagnose when expression is an integer constant expression and its evaluation 12442 /// results in integer overflow 12443 void Sema::CheckForIntOverflow (Expr *E) { 12444 // Use a work list to deal with nested struct initializers. 12445 SmallVector<Expr *, 2> Exprs(1, E); 12446 12447 do { 12448 Expr *OriginalE = Exprs.pop_back_val(); 12449 Expr *E = OriginalE->IgnoreParenCasts(); 12450 12451 if (isa<BinaryOperator>(E)) { 12452 E->EvaluateForOverflow(Context); 12453 continue; 12454 } 12455 12456 if (auto InitList = dyn_cast<InitListExpr>(OriginalE)) 12457 Exprs.append(InitList->inits().begin(), InitList->inits().end()); 12458 else if (isa<ObjCBoxedExpr>(OriginalE)) 12459 E->EvaluateForOverflow(Context); 12460 else if (auto Call = dyn_cast<CallExpr>(E)) 12461 Exprs.append(Call->arg_begin(), Call->arg_end()); 12462 else if (auto Message = dyn_cast<ObjCMessageExpr>(E)) 12463 Exprs.append(Message->arg_begin(), Message->arg_end()); 12464 } while (!Exprs.empty()); 12465 } 12466 12467 namespace { 12468 12469 /// Visitor for expressions which looks for unsequenced operations on the 12470 /// same object. 12471 class SequenceChecker : public EvaluatedExprVisitor<SequenceChecker> { 12472 using Base = EvaluatedExprVisitor<SequenceChecker>; 12473 12474 /// A tree of sequenced regions within an expression. Two regions are 12475 /// unsequenced if one is an ancestor or a descendent of the other. When we 12476 /// finish processing an expression with sequencing, such as a comma 12477 /// expression, we fold its tree nodes into its parent, since they are 12478 /// unsequenced with respect to nodes we will visit later. 12479 class SequenceTree { 12480 struct Value { 12481 explicit Value(unsigned Parent) : Parent(Parent), Merged(false) {} 12482 unsigned Parent : 31; 12483 unsigned Merged : 1; 12484 }; 12485 SmallVector<Value, 8> Values; 12486 12487 public: 12488 /// A region within an expression which may be sequenced with respect 12489 /// to some other region. 12490 class Seq { 12491 friend class SequenceTree; 12492 12493 unsigned Index; 12494 12495 explicit Seq(unsigned N) : Index(N) {} 12496 12497 public: 12498 Seq() : Index(0) {} 12499 }; 12500 12501 SequenceTree() { Values.push_back(Value(0)); } 12502 Seq root() const { return Seq(0); } 12503 12504 /// Create a new sequence of operations, which is an unsequenced 12505 /// subset of \p Parent. This sequence of operations is sequenced with 12506 /// respect to other children of \p Parent. 12507 Seq allocate(Seq Parent) { 12508 Values.push_back(Value(Parent.Index)); 12509 return Seq(Values.size() - 1); 12510 } 12511 12512 /// Merge a sequence of operations into its parent. 12513 void merge(Seq S) { 12514 Values[S.Index].Merged = true; 12515 } 12516 12517 /// Determine whether two operations are unsequenced. This operation 12518 /// is asymmetric: \p Cur should be the more recent sequence, and \p Old 12519 /// should have been merged into its parent as appropriate. 12520 bool isUnsequenced(Seq Cur, Seq Old) { 12521 unsigned C = representative(Cur.Index); 12522 unsigned Target = representative(Old.Index); 12523 while (C >= Target) { 12524 if (C == Target) 12525 return true; 12526 C = Values[C].Parent; 12527 } 12528 return false; 12529 } 12530 12531 private: 12532 /// Pick a representative for a sequence. 12533 unsigned representative(unsigned K) { 12534 if (Values[K].Merged) 12535 // Perform path compression as we go. 12536 return Values[K].Parent = representative(Values[K].Parent); 12537 return K; 12538 } 12539 }; 12540 12541 /// An object for which we can track unsequenced uses. 12542 using Object = NamedDecl *; 12543 12544 /// Different flavors of object usage which we track. We only track the 12545 /// least-sequenced usage of each kind. 12546 enum UsageKind { 12547 /// A read of an object. Multiple unsequenced reads are OK. 12548 UK_Use, 12549 12550 /// A modification of an object which is sequenced before the value 12551 /// computation of the expression, such as ++n in C++. 12552 UK_ModAsValue, 12553 12554 /// A modification of an object which is not sequenced before the value 12555 /// computation of the expression, such as n++. 12556 UK_ModAsSideEffect, 12557 12558 UK_Count = UK_ModAsSideEffect + 1 12559 }; 12560 12561 struct Usage { 12562 Expr *Use; 12563 SequenceTree::Seq Seq; 12564 12565 Usage() : Use(nullptr), Seq() {} 12566 }; 12567 12568 struct UsageInfo { 12569 Usage Uses[UK_Count]; 12570 12571 /// Have we issued a diagnostic for this variable already? 12572 bool Diagnosed; 12573 12574 UsageInfo() : Uses(), Diagnosed(false) {} 12575 }; 12576 using UsageInfoMap = llvm::SmallDenseMap<Object, UsageInfo, 16>; 12577 12578 Sema &SemaRef; 12579 12580 /// Sequenced regions within the expression. 12581 SequenceTree Tree; 12582 12583 /// Declaration modifications and references which we have seen. 12584 UsageInfoMap UsageMap; 12585 12586 /// The region we are currently within. 12587 SequenceTree::Seq Region; 12588 12589 /// Filled in with declarations which were modified as a side-effect 12590 /// (that is, post-increment operations). 12591 SmallVectorImpl<std::pair<Object, Usage>> *ModAsSideEffect = nullptr; 12592 12593 /// Expressions to check later. We defer checking these to reduce 12594 /// stack usage. 12595 SmallVectorImpl<Expr *> &WorkList; 12596 12597 /// RAII object wrapping the visitation of a sequenced subexpression of an 12598 /// expression. At the end of this process, the side-effects of the evaluation 12599 /// become sequenced with respect to the value computation of the result, so 12600 /// we downgrade any UK_ModAsSideEffect within the evaluation to 12601 /// UK_ModAsValue. 12602 struct SequencedSubexpression { 12603 SequencedSubexpression(SequenceChecker &Self) 12604 : Self(Self), OldModAsSideEffect(Self.ModAsSideEffect) { 12605 Self.ModAsSideEffect = &ModAsSideEffect; 12606 } 12607 12608 ~SequencedSubexpression() { 12609 for (auto &M : llvm::reverse(ModAsSideEffect)) { 12610 UsageInfo &U = Self.UsageMap[M.first]; 12611 auto &SideEffectUsage = U.Uses[UK_ModAsSideEffect]; 12612 Self.addUsage(U, M.first, SideEffectUsage.Use, UK_ModAsValue); 12613 SideEffectUsage = M.second; 12614 } 12615 Self.ModAsSideEffect = OldModAsSideEffect; 12616 } 12617 12618 SequenceChecker &Self; 12619 SmallVector<std::pair<Object, Usage>, 4> ModAsSideEffect; 12620 SmallVectorImpl<std::pair<Object, Usage>> *OldModAsSideEffect; 12621 }; 12622 12623 /// RAII object wrapping the visitation of a subexpression which we might 12624 /// choose to evaluate as a constant. If any subexpression is evaluated and 12625 /// found to be non-constant, this allows us to suppress the evaluation of 12626 /// the outer expression. 12627 class EvaluationTracker { 12628 public: 12629 EvaluationTracker(SequenceChecker &Self) 12630 : Self(Self), Prev(Self.EvalTracker) { 12631 Self.EvalTracker = this; 12632 } 12633 12634 ~EvaluationTracker() { 12635 Self.EvalTracker = Prev; 12636 if (Prev) 12637 Prev->EvalOK &= EvalOK; 12638 } 12639 12640 bool evaluate(const Expr *E, bool &Result) { 12641 if (!EvalOK || E->isValueDependent()) 12642 return false; 12643 EvalOK = E->EvaluateAsBooleanCondition( 12644 Result, Self.SemaRef.Context, Self.SemaRef.isConstantEvaluated()); 12645 return EvalOK; 12646 } 12647 12648 private: 12649 SequenceChecker &Self; 12650 EvaluationTracker *Prev; 12651 bool EvalOK = true; 12652 } *EvalTracker = nullptr; 12653 12654 /// Find the object which is produced by the specified expression, 12655 /// if any. 12656 Object getObject(Expr *E, bool Mod) const { 12657 E = E->IgnoreParenCasts(); 12658 if (UnaryOperator *UO = dyn_cast<UnaryOperator>(E)) { 12659 if (Mod && (UO->getOpcode() == UO_PreInc || UO->getOpcode() == UO_PreDec)) 12660 return getObject(UO->getSubExpr(), Mod); 12661 } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(E)) { 12662 if (BO->getOpcode() == BO_Comma) 12663 return getObject(BO->getRHS(), Mod); 12664 if (Mod && BO->isAssignmentOp()) 12665 return getObject(BO->getLHS(), Mod); 12666 } else if (MemberExpr *ME = dyn_cast<MemberExpr>(E)) { 12667 // FIXME: Check for more interesting cases, like "x.n = ++x.n". 12668 if (isa<CXXThisExpr>(ME->getBase()->IgnoreParenCasts())) 12669 return ME->getMemberDecl(); 12670 } else if (DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(E)) 12671 // FIXME: If this is a reference, map through to its value. 12672 return DRE->getDecl(); 12673 return nullptr; 12674 } 12675 12676 /// Note that an object was modified or used by an expression. 12677 void addUsage(UsageInfo &UI, Object O, Expr *Ref, UsageKind UK) { 12678 Usage &U = UI.Uses[UK]; 12679 if (!U.Use || !Tree.isUnsequenced(Region, U.Seq)) { 12680 if (UK == UK_ModAsSideEffect && ModAsSideEffect) 12681 ModAsSideEffect->push_back(std::make_pair(O, U)); 12682 U.Use = Ref; 12683 U.Seq = Region; 12684 } 12685 } 12686 12687 /// Check whether a modification or use conflicts with a prior usage. 12688 void checkUsage(Object O, UsageInfo &UI, Expr *Ref, UsageKind OtherKind, 12689 bool IsModMod) { 12690 if (UI.Diagnosed) 12691 return; 12692 12693 const Usage &U = UI.Uses[OtherKind]; 12694 if (!U.Use || !Tree.isUnsequenced(Region, U.Seq)) 12695 return; 12696 12697 Expr *Mod = U.Use; 12698 Expr *ModOrUse = Ref; 12699 if (OtherKind == UK_Use) 12700 std::swap(Mod, ModOrUse); 12701 12702 SemaRef.DiagRuntimeBehavior( 12703 Mod->getExprLoc(), {Mod, ModOrUse}, 12704 SemaRef.PDiag(IsModMod ? diag::warn_unsequenced_mod_mod 12705 : diag::warn_unsequenced_mod_use) 12706 << O << SourceRange(ModOrUse->getExprLoc())); 12707 UI.Diagnosed = true; 12708 } 12709 12710 void notePreUse(Object O, Expr *Use) { 12711 UsageInfo &U = UsageMap[O]; 12712 // Uses conflict with other modifications. 12713 checkUsage(O, U, Use, UK_ModAsValue, false); 12714 } 12715 12716 void notePostUse(Object O, Expr *Use) { 12717 UsageInfo &U = UsageMap[O]; 12718 checkUsage(O, U, Use, UK_ModAsSideEffect, false); 12719 addUsage(U, O, Use, UK_Use); 12720 } 12721 12722 void notePreMod(Object O, Expr *Mod) { 12723 UsageInfo &U = UsageMap[O]; 12724 // Modifications conflict with other modifications and with uses. 12725 checkUsage(O, U, Mod, UK_ModAsValue, true); 12726 checkUsage(O, U, Mod, UK_Use, false); 12727 } 12728 12729 void notePostMod(Object O, Expr *Use, UsageKind UK) { 12730 UsageInfo &U = UsageMap[O]; 12731 checkUsage(O, U, Use, UK_ModAsSideEffect, true); 12732 addUsage(U, O, Use, UK); 12733 } 12734 12735 public: 12736 SequenceChecker(Sema &S, Expr *E, SmallVectorImpl<Expr *> &WorkList) 12737 : Base(S.Context), SemaRef(S), Region(Tree.root()), WorkList(WorkList) { 12738 Visit(E); 12739 } 12740 12741 void VisitStmt(Stmt *S) { 12742 // Skip all statements which aren't expressions for now. 12743 } 12744 12745 void VisitExpr(Expr *E) { 12746 // By default, just recurse to evaluated subexpressions. 12747 Base::VisitStmt(E); 12748 } 12749 12750 void VisitCastExpr(CastExpr *E) { 12751 Object O = Object(); 12752 if (E->getCastKind() == CK_LValueToRValue) 12753 O = getObject(E->getSubExpr(), false); 12754 12755 if (O) 12756 notePreUse(O, E); 12757 VisitExpr(E); 12758 if (O) 12759 notePostUse(O, E); 12760 } 12761 12762 void VisitSequencedExpressions(Expr *SequencedBefore, Expr *SequencedAfter) { 12763 SequenceTree::Seq BeforeRegion = Tree.allocate(Region); 12764 SequenceTree::Seq AfterRegion = Tree.allocate(Region); 12765 SequenceTree::Seq OldRegion = Region; 12766 12767 { 12768 SequencedSubexpression SeqBefore(*this); 12769 Region = BeforeRegion; 12770 Visit(SequencedBefore); 12771 } 12772 12773 Region = AfterRegion; 12774 Visit(SequencedAfter); 12775 12776 Region = OldRegion; 12777 12778 Tree.merge(BeforeRegion); 12779 Tree.merge(AfterRegion); 12780 } 12781 12782 void VisitArraySubscriptExpr(ArraySubscriptExpr *ASE) { 12783 // C++17 [expr.sub]p1: 12784 // The expression E1[E2] is identical (by definition) to *((E1)+(E2)). The 12785 // expression E1 is sequenced before the expression E2. 12786 if (SemaRef.getLangOpts().CPlusPlus17) 12787 VisitSequencedExpressions(ASE->getLHS(), ASE->getRHS()); 12788 else 12789 Base::VisitStmt(ASE); 12790 } 12791 12792 void VisitBinComma(BinaryOperator *BO) { 12793 // C++11 [expr.comma]p1: 12794 // Every value computation and side effect associated with the left 12795 // expression is sequenced before every value computation and side 12796 // effect associated with the right expression. 12797 VisitSequencedExpressions(BO->getLHS(), BO->getRHS()); 12798 } 12799 12800 void VisitBinAssign(BinaryOperator *BO) { 12801 // The modification is sequenced after the value computation of the LHS 12802 // and RHS, so check it before inspecting the operands and update the 12803 // map afterwards. 12804 Object O = getObject(BO->getLHS(), true); 12805 if (!O) 12806 return VisitExpr(BO); 12807 12808 notePreMod(O, BO); 12809 12810 // C++11 [expr.ass]p7: 12811 // E1 op= E2 is equivalent to E1 = E1 op E2, except that E1 is evaluated 12812 // only once. 12813 // 12814 // Therefore, for a compound assignment operator, O is considered used 12815 // everywhere except within the evaluation of E1 itself. 12816 if (isa<CompoundAssignOperator>(BO)) 12817 notePreUse(O, BO); 12818 12819 Visit(BO->getLHS()); 12820 12821 if (isa<CompoundAssignOperator>(BO)) 12822 notePostUse(O, BO); 12823 12824 Visit(BO->getRHS()); 12825 12826 // C++11 [expr.ass]p1: 12827 // the assignment is sequenced [...] before the value computation of the 12828 // assignment expression. 12829 // C11 6.5.16/3 has no such rule. 12830 notePostMod(O, BO, SemaRef.getLangOpts().CPlusPlus ? UK_ModAsValue 12831 : UK_ModAsSideEffect); 12832 } 12833 12834 void VisitCompoundAssignOperator(CompoundAssignOperator *CAO) { 12835 VisitBinAssign(CAO); 12836 } 12837 12838 void VisitUnaryPreInc(UnaryOperator *UO) { VisitUnaryPreIncDec(UO); } 12839 void VisitUnaryPreDec(UnaryOperator *UO) { VisitUnaryPreIncDec(UO); } 12840 void VisitUnaryPreIncDec(UnaryOperator *UO) { 12841 Object O = getObject(UO->getSubExpr(), true); 12842 if (!O) 12843 return VisitExpr(UO); 12844 12845 notePreMod(O, UO); 12846 Visit(UO->getSubExpr()); 12847 // C++11 [expr.pre.incr]p1: 12848 // the expression ++x is equivalent to x+=1 12849 notePostMod(O, UO, SemaRef.getLangOpts().CPlusPlus ? UK_ModAsValue 12850 : UK_ModAsSideEffect); 12851 } 12852 12853 void VisitUnaryPostInc(UnaryOperator *UO) { VisitUnaryPostIncDec(UO); } 12854 void VisitUnaryPostDec(UnaryOperator *UO) { VisitUnaryPostIncDec(UO); } 12855 void VisitUnaryPostIncDec(UnaryOperator *UO) { 12856 Object O = getObject(UO->getSubExpr(), true); 12857 if (!O) 12858 return VisitExpr(UO); 12859 12860 notePreMod(O, UO); 12861 Visit(UO->getSubExpr()); 12862 notePostMod(O, UO, UK_ModAsSideEffect); 12863 } 12864 12865 /// Don't visit the RHS of '&&' or '||' if it might not be evaluated. 12866 void VisitBinLOr(BinaryOperator *BO) { 12867 // The side-effects of the LHS of an '&&' are sequenced before the 12868 // value computation of the RHS, and hence before the value computation 12869 // of the '&&' itself, unless the LHS evaluates to zero. We treat them 12870 // as if they were unconditionally sequenced. 12871 EvaluationTracker Eval(*this); 12872 { 12873 SequencedSubexpression Sequenced(*this); 12874 Visit(BO->getLHS()); 12875 } 12876 12877 bool Result; 12878 if (Eval.evaluate(BO->getLHS(), Result)) { 12879 if (!Result) 12880 Visit(BO->getRHS()); 12881 } else { 12882 // Check for unsequenced operations in the RHS, treating it as an 12883 // entirely separate evaluation. 12884 // 12885 // FIXME: If there are operations in the RHS which are unsequenced 12886 // with respect to operations outside the RHS, and those operations 12887 // are unconditionally evaluated, diagnose them. 12888 WorkList.push_back(BO->getRHS()); 12889 } 12890 } 12891 void VisitBinLAnd(BinaryOperator *BO) { 12892 EvaluationTracker Eval(*this); 12893 { 12894 SequencedSubexpression Sequenced(*this); 12895 Visit(BO->getLHS()); 12896 } 12897 12898 bool Result; 12899 if (Eval.evaluate(BO->getLHS(), Result)) { 12900 if (Result) 12901 Visit(BO->getRHS()); 12902 } else { 12903 WorkList.push_back(BO->getRHS()); 12904 } 12905 } 12906 12907 // Only visit the condition, unless we can be sure which subexpression will 12908 // be chosen. 12909 void VisitAbstractConditionalOperator(AbstractConditionalOperator *CO) { 12910 EvaluationTracker Eval(*this); 12911 { 12912 SequencedSubexpression Sequenced(*this); 12913 Visit(CO->getCond()); 12914 } 12915 12916 bool Result; 12917 if (Eval.evaluate(CO->getCond(), Result)) 12918 Visit(Result ? CO->getTrueExpr() : CO->getFalseExpr()); 12919 else { 12920 WorkList.push_back(CO->getTrueExpr()); 12921 WorkList.push_back(CO->getFalseExpr()); 12922 } 12923 } 12924 12925 void VisitCallExpr(CallExpr *CE) { 12926 // C++11 [intro.execution]p15: 12927 // When calling a function [...], every value computation and side effect 12928 // associated with any argument expression, or with the postfix expression 12929 // designating the called function, is sequenced before execution of every 12930 // expression or statement in the body of the function [and thus before 12931 // the value computation of its result]. 12932 SequencedSubexpression Sequenced(*this); 12933 Base::VisitCallExpr(CE); 12934 12935 // FIXME: CXXNewExpr and CXXDeleteExpr implicitly call functions. 12936 } 12937 12938 void VisitCXXConstructExpr(CXXConstructExpr *CCE) { 12939 // This is a call, so all subexpressions are sequenced before the result. 12940 SequencedSubexpression Sequenced(*this); 12941 12942 if (!CCE->isListInitialization()) 12943 return VisitExpr(CCE); 12944 12945 // In C++11, list initializations are sequenced. 12946 SmallVector<SequenceTree::Seq, 32> Elts; 12947 SequenceTree::Seq Parent = Region; 12948 for (CXXConstructExpr::arg_iterator I = CCE->arg_begin(), 12949 E = CCE->arg_end(); 12950 I != E; ++I) { 12951 Region = Tree.allocate(Parent); 12952 Elts.push_back(Region); 12953 Visit(*I); 12954 } 12955 12956 // Forget that the initializers are sequenced. 12957 Region = Parent; 12958 for (unsigned I = 0; I < Elts.size(); ++I) 12959 Tree.merge(Elts[I]); 12960 } 12961 12962 void VisitInitListExpr(InitListExpr *ILE) { 12963 if (!SemaRef.getLangOpts().CPlusPlus11) 12964 return VisitExpr(ILE); 12965 12966 // In C++11, list initializations are sequenced. 12967 SmallVector<SequenceTree::Seq, 32> Elts; 12968 SequenceTree::Seq Parent = Region; 12969 for (unsigned I = 0; I < ILE->getNumInits(); ++I) { 12970 Expr *E = ILE->getInit(I); 12971 if (!E) continue; 12972 Region = Tree.allocate(Parent); 12973 Elts.push_back(Region); 12974 Visit(E); 12975 } 12976 12977 // Forget that the initializers are sequenced. 12978 Region = Parent; 12979 for (unsigned I = 0; I < Elts.size(); ++I) 12980 Tree.merge(Elts[I]); 12981 } 12982 }; 12983 12984 } // namespace 12985 12986 void Sema::CheckUnsequencedOperations(Expr *E) { 12987 SmallVector<Expr *, 8> WorkList; 12988 WorkList.push_back(E); 12989 while (!WorkList.empty()) { 12990 Expr *Item = WorkList.pop_back_val(); 12991 SequenceChecker(*this, Item, WorkList); 12992 } 12993 } 12994 12995 void Sema::CheckCompletedExpr(Expr *E, SourceLocation CheckLoc, 12996 bool IsConstexpr) { 12997 llvm::SaveAndRestore<bool> ConstantContext( 12998 isConstantEvaluatedOverride, IsConstexpr || isa<ConstantExpr>(E)); 12999 CheckImplicitConversions(E, CheckLoc); 13000 if (!E->isInstantiationDependent()) 13001 CheckUnsequencedOperations(E); 13002 if (!IsConstexpr && !E->isValueDependent()) 13003 CheckForIntOverflow(E); 13004 DiagnoseMisalignedMembers(); 13005 } 13006 13007 void Sema::CheckBitFieldInitialization(SourceLocation InitLoc, 13008 FieldDecl *BitField, 13009 Expr *Init) { 13010 (void) AnalyzeBitFieldAssignment(*this, BitField, Init, InitLoc); 13011 } 13012 13013 static void diagnoseArrayStarInParamType(Sema &S, QualType PType, 13014 SourceLocation Loc) { 13015 if (!PType->isVariablyModifiedType()) 13016 return; 13017 if (const auto *PointerTy = dyn_cast<PointerType>(PType)) { 13018 diagnoseArrayStarInParamType(S, PointerTy->getPointeeType(), Loc); 13019 return; 13020 } 13021 if (const auto *ReferenceTy = dyn_cast<ReferenceType>(PType)) { 13022 diagnoseArrayStarInParamType(S, ReferenceTy->getPointeeType(), Loc); 13023 return; 13024 } 13025 if (const auto *ParenTy = dyn_cast<ParenType>(PType)) { 13026 diagnoseArrayStarInParamType(S, ParenTy->getInnerType(), Loc); 13027 return; 13028 } 13029 13030 const ArrayType *AT = S.Context.getAsArrayType(PType); 13031 if (!AT) 13032 return; 13033 13034 if (AT->getSizeModifier() != ArrayType::Star) { 13035 diagnoseArrayStarInParamType(S, AT->getElementType(), Loc); 13036 return; 13037 } 13038 13039 S.Diag(Loc, diag::err_array_star_in_function_definition); 13040 } 13041 13042 /// CheckParmsForFunctionDef - Check that the parameters of the given 13043 /// function are appropriate for the definition of a function. This 13044 /// takes care of any checks that cannot be performed on the 13045 /// declaration itself, e.g., that the types of each of the function 13046 /// parameters are complete. 13047 bool Sema::CheckParmsForFunctionDef(ArrayRef<ParmVarDecl *> Parameters, 13048 bool CheckParameterNames) { 13049 bool HasInvalidParm = false; 13050 for (ParmVarDecl *Param : Parameters) { 13051 // C99 6.7.5.3p4: the parameters in a parameter type list in a 13052 // function declarator that is part of a function definition of 13053 // that function shall not have incomplete type. 13054 // 13055 // This is also C++ [dcl.fct]p6. 13056 if (!Param->isInvalidDecl() && 13057 RequireCompleteType(Param->getLocation(), Param->getType(), 13058 diag::err_typecheck_decl_incomplete_type)) { 13059 Param->setInvalidDecl(); 13060 HasInvalidParm = true; 13061 } 13062 13063 // C99 6.9.1p5: If the declarator includes a parameter type list, the 13064 // declaration of each parameter shall include an identifier. 13065 if (CheckParameterNames && 13066 Param->getIdentifier() == nullptr && 13067 !Param->isImplicit() && 13068 !getLangOpts().CPlusPlus) 13069 Diag(Param->getLocation(), diag::err_parameter_name_omitted); 13070 13071 // C99 6.7.5.3p12: 13072 // If the function declarator is not part of a definition of that 13073 // function, parameters may have incomplete type and may use the [*] 13074 // notation in their sequences of declarator specifiers to specify 13075 // variable length array types. 13076 QualType PType = Param->getOriginalType(); 13077 // FIXME: This diagnostic should point the '[*]' if source-location 13078 // information is added for it. 13079 diagnoseArrayStarInParamType(*this, PType, Param->getLocation()); 13080 13081 // If the parameter is a c++ class type and it has to be destructed in the 13082 // callee function, declare the destructor so that it can be called by the 13083 // callee function. Do not perform any direct access check on the dtor here. 13084 if (!Param->isInvalidDecl()) { 13085 if (CXXRecordDecl *ClassDecl = Param->getType()->getAsCXXRecordDecl()) { 13086 if (!ClassDecl->isInvalidDecl() && 13087 !ClassDecl->hasIrrelevantDestructor() && 13088 !ClassDecl->isDependentContext() && 13089 ClassDecl->isParamDestroyedInCallee()) { 13090 CXXDestructorDecl *Destructor = LookupDestructor(ClassDecl); 13091 MarkFunctionReferenced(Param->getLocation(), Destructor); 13092 DiagnoseUseOfDecl(Destructor, Param->getLocation()); 13093 } 13094 } 13095 } 13096 13097 // Parameters with the pass_object_size attribute only need to be marked 13098 // constant at function definitions. Because we lack information about 13099 // whether we're on a declaration or definition when we're instantiating the 13100 // attribute, we need to check for constness here. 13101 if (const auto *Attr = Param->getAttr<PassObjectSizeAttr>()) 13102 if (!Param->getType().isConstQualified()) 13103 Diag(Param->getLocation(), diag::err_attribute_pointers_only) 13104 << Attr->getSpelling() << 1; 13105 13106 // Check for parameter names shadowing fields from the class. 13107 if (LangOpts.CPlusPlus && !Param->isInvalidDecl()) { 13108 // The owning context for the parameter should be the function, but we 13109 // want to see if this function's declaration context is a record. 13110 DeclContext *DC = Param->getDeclContext(); 13111 if (DC && DC->isFunctionOrMethod()) { 13112 if (auto *RD = dyn_cast<CXXRecordDecl>(DC->getParent())) 13113 CheckShadowInheritedFields(Param->getLocation(), Param->getDeclName(), 13114 RD, /*DeclIsField*/ false); 13115 } 13116 } 13117 } 13118 13119 return HasInvalidParm; 13120 } 13121 13122 /// A helper function to get the alignment of a Decl referred to by DeclRefExpr 13123 /// or MemberExpr. 13124 static CharUnits getDeclAlign(Expr *E, CharUnits TypeAlign, 13125 ASTContext &Context) { 13126 if (const auto *DRE = dyn_cast<DeclRefExpr>(E)) 13127 return Context.getDeclAlign(DRE->getDecl()); 13128 13129 if (const auto *ME = dyn_cast<MemberExpr>(E)) 13130 return Context.getDeclAlign(ME->getMemberDecl()); 13131 13132 return TypeAlign; 13133 } 13134 13135 /// CheckCastAlign - Implements -Wcast-align, which warns when a 13136 /// pointer cast increases the alignment requirements. 13137 void Sema::CheckCastAlign(Expr *Op, QualType T, SourceRange TRange) { 13138 // This is actually a lot of work to potentially be doing on every 13139 // cast; don't do it if we're ignoring -Wcast_align (as is the default). 13140 if (getDiagnostics().isIgnored(diag::warn_cast_align, TRange.getBegin())) 13141 return; 13142 13143 // Ignore dependent types. 13144 if (T->isDependentType() || Op->getType()->isDependentType()) 13145 return; 13146 13147 // Require that the destination be a pointer type. 13148 const PointerType *DestPtr = T->getAs<PointerType>(); 13149 if (!DestPtr) return; 13150 13151 // If the destination has alignment 1, we're done. 13152 QualType DestPointee = DestPtr->getPointeeType(); 13153 if (DestPointee->isIncompleteType()) return; 13154 CharUnits DestAlign = Context.getTypeAlignInChars(DestPointee); 13155 if (DestAlign.isOne()) return; 13156 13157 // Require that the source be a pointer type. 13158 const PointerType *SrcPtr = Op->getType()->getAs<PointerType>(); 13159 if (!SrcPtr) return; 13160 QualType SrcPointee = SrcPtr->getPointeeType(); 13161 13162 // Whitelist casts from cv void*. We already implicitly 13163 // whitelisted casts to cv void*, since they have alignment 1. 13164 // Also whitelist casts involving incomplete types, which implicitly 13165 // includes 'void'. 13166 if (SrcPointee->isIncompleteType()) return; 13167 13168 CharUnits SrcAlign = Context.getTypeAlignInChars(SrcPointee); 13169 13170 if (auto *CE = dyn_cast<CastExpr>(Op)) { 13171 if (CE->getCastKind() == CK_ArrayToPointerDecay) 13172 SrcAlign = getDeclAlign(CE->getSubExpr(), SrcAlign, Context); 13173 } else if (auto *UO = dyn_cast<UnaryOperator>(Op)) { 13174 if (UO->getOpcode() == UO_AddrOf) 13175 SrcAlign = getDeclAlign(UO->getSubExpr(), SrcAlign, Context); 13176 } 13177 13178 if (SrcAlign >= DestAlign) return; 13179 13180 Diag(TRange.getBegin(), diag::warn_cast_align) 13181 << Op->getType() << T 13182 << static_cast<unsigned>(SrcAlign.getQuantity()) 13183 << static_cast<unsigned>(DestAlign.getQuantity()) 13184 << TRange << Op->getSourceRange(); 13185 } 13186 13187 /// Check whether this array fits the idiom of a size-one tail padded 13188 /// array member of a struct. 13189 /// 13190 /// We avoid emitting out-of-bounds access warnings for such arrays as they are 13191 /// commonly used to emulate flexible arrays in C89 code. 13192 static bool IsTailPaddedMemberArray(Sema &S, const llvm::APInt &Size, 13193 const NamedDecl *ND) { 13194 if (Size != 1 || !ND) return false; 13195 13196 const FieldDecl *FD = dyn_cast<FieldDecl>(ND); 13197 if (!FD) return false; 13198 13199 // Don't consider sizes resulting from macro expansions or template argument 13200 // substitution to form C89 tail-padded arrays. 13201 13202 TypeSourceInfo *TInfo = FD->getTypeSourceInfo(); 13203 while (TInfo) { 13204 TypeLoc TL = TInfo->getTypeLoc(); 13205 // Look through typedefs. 13206 if (TypedefTypeLoc TTL = TL.getAs<TypedefTypeLoc>()) { 13207 const TypedefNameDecl *TDL = TTL.getTypedefNameDecl(); 13208 TInfo = TDL->getTypeSourceInfo(); 13209 continue; 13210 } 13211 if (ConstantArrayTypeLoc CTL = TL.getAs<ConstantArrayTypeLoc>()) { 13212 const Expr *SizeExpr = dyn_cast<IntegerLiteral>(CTL.getSizeExpr()); 13213 if (!SizeExpr || SizeExpr->getExprLoc().isMacroID()) 13214 return false; 13215 } 13216 break; 13217 } 13218 13219 const RecordDecl *RD = dyn_cast<RecordDecl>(FD->getDeclContext()); 13220 if (!RD) return false; 13221 if (RD->isUnion()) return false; 13222 if (const CXXRecordDecl *CRD = dyn_cast<CXXRecordDecl>(RD)) { 13223 if (!CRD->isStandardLayout()) return false; 13224 } 13225 13226 // See if this is the last field decl in the record. 13227 const Decl *D = FD; 13228 while ((D = D->getNextDeclInContext())) 13229 if (isa<FieldDecl>(D)) 13230 return false; 13231 return true; 13232 } 13233 13234 void Sema::CheckArrayAccess(const Expr *BaseExpr, const Expr *IndexExpr, 13235 const ArraySubscriptExpr *ASE, 13236 bool AllowOnePastEnd, bool IndexNegated) { 13237 // Already diagnosed by the constant evaluator. 13238 if (isConstantEvaluated()) 13239 return; 13240 13241 IndexExpr = IndexExpr->IgnoreParenImpCasts(); 13242 if (IndexExpr->isValueDependent()) 13243 return; 13244 13245 const Type *EffectiveType = 13246 BaseExpr->getType()->getPointeeOrArrayElementType(); 13247 BaseExpr = BaseExpr->IgnoreParenCasts(); 13248 const ConstantArrayType *ArrayTy = 13249 Context.getAsConstantArrayType(BaseExpr->getType()); 13250 13251 if (!ArrayTy) 13252 return; 13253 13254 const Type *BaseType = ArrayTy->getElementType().getTypePtr(); 13255 if (EffectiveType->isDependentType() || BaseType->isDependentType()) 13256 return; 13257 13258 Expr::EvalResult Result; 13259 if (!IndexExpr->EvaluateAsInt(Result, Context, Expr::SE_AllowSideEffects)) 13260 return; 13261 13262 llvm::APSInt index = Result.Val.getInt(); 13263 if (IndexNegated) 13264 index = -index; 13265 13266 const NamedDecl *ND = nullptr; 13267 if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(BaseExpr)) 13268 ND = DRE->getDecl(); 13269 if (const MemberExpr *ME = dyn_cast<MemberExpr>(BaseExpr)) 13270 ND = ME->getMemberDecl(); 13271 13272 if (index.isUnsigned() || !index.isNegative()) { 13273 // It is possible that the type of the base expression after 13274 // IgnoreParenCasts is incomplete, even though the type of the base 13275 // expression before IgnoreParenCasts is complete (see PR39746 for an 13276 // example). In this case we have no information about whether the array 13277 // access exceeds the array bounds. However we can still diagnose an array 13278 // access which precedes the array bounds. 13279 if (BaseType->isIncompleteType()) 13280 return; 13281 13282 llvm::APInt size = ArrayTy->getSize(); 13283 if (!size.isStrictlyPositive()) 13284 return; 13285 13286 if (BaseType != EffectiveType) { 13287 // Make sure we're comparing apples to apples when comparing index to size 13288 uint64_t ptrarith_typesize = Context.getTypeSize(EffectiveType); 13289 uint64_t array_typesize = Context.getTypeSize(BaseType); 13290 // Handle ptrarith_typesize being zero, such as when casting to void* 13291 if (!ptrarith_typesize) ptrarith_typesize = 1; 13292 if (ptrarith_typesize != array_typesize) { 13293 // There's a cast to a different size type involved 13294 uint64_t ratio = array_typesize / ptrarith_typesize; 13295 // TODO: Be smarter about handling cases where array_typesize is not a 13296 // multiple of ptrarith_typesize 13297 if (ptrarith_typesize * ratio == array_typesize) 13298 size *= llvm::APInt(size.getBitWidth(), ratio); 13299 } 13300 } 13301 13302 if (size.getBitWidth() > index.getBitWidth()) 13303 index = index.zext(size.getBitWidth()); 13304 else if (size.getBitWidth() < index.getBitWidth()) 13305 size = size.zext(index.getBitWidth()); 13306 13307 // For array subscripting the index must be less than size, but for pointer 13308 // arithmetic also allow the index (offset) to be equal to size since 13309 // computing the next address after the end of the array is legal and 13310 // commonly done e.g. in C++ iterators and range-based for loops. 13311 if (AllowOnePastEnd ? index.ule(size) : index.ult(size)) 13312 return; 13313 13314 // Also don't warn for arrays of size 1 which are members of some 13315 // structure. These are often used to approximate flexible arrays in C89 13316 // code. 13317 if (IsTailPaddedMemberArray(*this, size, ND)) 13318 return; 13319 13320 // Suppress the warning if the subscript expression (as identified by the 13321 // ']' location) and the index expression are both from macro expansions 13322 // within a system header. 13323 if (ASE) { 13324 SourceLocation RBracketLoc = SourceMgr.getSpellingLoc( 13325 ASE->getRBracketLoc()); 13326 if (SourceMgr.isInSystemHeader(RBracketLoc)) { 13327 SourceLocation IndexLoc = 13328 SourceMgr.getSpellingLoc(IndexExpr->getBeginLoc()); 13329 if (SourceMgr.isWrittenInSameFile(RBracketLoc, IndexLoc)) 13330 return; 13331 } 13332 } 13333 13334 unsigned DiagID = diag::warn_ptr_arith_exceeds_bounds; 13335 if (ASE) 13336 DiagID = diag::warn_array_index_exceeds_bounds; 13337 13338 DiagRuntimeBehavior(BaseExpr->getBeginLoc(), BaseExpr, 13339 PDiag(DiagID) << index.toString(10, true) 13340 << size.toString(10, true) 13341 << (unsigned)size.getLimitedValue(~0U) 13342 << IndexExpr->getSourceRange()); 13343 } else { 13344 unsigned DiagID = diag::warn_array_index_precedes_bounds; 13345 if (!ASE) { 13346 DiagID = diag::warn_ptr_arith_precedes_bounds; 13347 if (index.isNegative()) index = -index; 13348 } 13349 13350 DiagRuntimeBehavior(BaseExpr->getBeginLoc(), BaseExpr, 13351 PDiag(DiagID) << index.toString(10, true) 13352 << IndexExpr->getSourceRange()); 13353 } 13354 13355 if (!ND) { 13356 // Try harder to find a NamedDecl to point at in the note. 13357 while (const ArraySubscriptExpr *ASE = 13358 dyn_cast<ArraySubscriptExpr>(BaseExpr)) 13359 BaseExpr = ASE->getBase()->IgnoreParenCasts(); 13360 if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(BaseExpr)) 13361 ND = DRE->getDecl(); 13362 if (const MemberExpr *ME = dyn_cast<MemberExpr>(BaseExpr)) 13363 ND = ME->getMemberDecl(); 13364 } 13365 13366 if (ND) 13367 DiagRuntimeBehavior(ND->getBeginLoc(), BaseExpr, 13368 PDiag(diag::note_array_declared_here) 13369 << ND->getDeclName()); 13370 } 13371 13372 void Sema::CheckArrayAccess(const Expr *expr) { 13373 int AllowOnePastEnd = 0; 13374 while (expr) { 13375 expr = expr->IgnoreParenImpCasts(); 13376 switch (expr->getStmtClass()) { 13377 case Stmt::ArraySubscriptExprClass: { 13378 const ArraySubscriptExpr *ASE = cast<ArraySubscriptExpr>(expr); 13379 CheckArrayAccess(ASE->getBase(), ASE->getIdx(), ASE, 13380 AllowOnePastEnd > 0); 13381 expr = ASE->getBase(); 13382 break; 13383 } 13384 case Stmt::MemberExprClass: { 13385 expr = cast<MemberExpr>(expr)->getBase(); 13386 break; 13387 } 13388 case Stmt::OMPArraySectionExprClass: { 13389 const OMPArraySectionExpr *ASE = cast<OMPArraySectionExpr>(expr); 13390 if (ASE->getLowerBound()) 13391 CheckArrayAccess(ASE->getBase(), ASE->getLowerBound(), 13392 /*ASE=*/nullptr, AllowOnePastEnd > 0); 13393 return; 13394 } 13395 case Stmt::UnaryOperatorClass: { 13396 // Only unwrap the * and & unary operators 13397 const UnaryOperator *UO = cast<UnaryOperator>(expr); 13398 expr = UO->getSubExpr(); 13399 switch (UO->getOpcode()) { 13400 case UO_AddrOf: 13401 AllowOnePastEnd++; 13402 break; 13403 case UO_Deref: 13404 AllowOnePastEnd--; 13405 break; 13406 default: 13407 return; 13408 } 13409 break; 13410 } 13411 case Stmt::ConditionalOperatorClass: { 13412 const ConditionalOperator *cond = cast<ConditionalOperator>(expr); 13413 if (const Expr *lhs = cond->getLHS()) 13414 CheckArrayAccess(lhs); 13415 if (const Expr *rhs = cond->getRHS()) 13416 CheckArrayAccess(rhs); 13417 return; 13418 } 13419 case Stmt::CXXOperatorCallExprClass: { 13420 const auto *OCE = cast<CXXOperatorCallExpr>(expr); 13421 for (const auto *Arg : OCE->arguments()) 13422 CheckArrayAccess(Arg); 13423 return; 13424 } 13425 default: 13426 return; 13427 } 13428 } 13429 } 13430 13431 //===--- CHECK: Objective-C retain cycles ----------------------------------// 13432 13433 namespace { 13434 13435 struct RetainCycleOwner { 13436 VarDecl *Variable = nullptr; 13437 SourceRange Range; 13438 SourceLocation Loc; 13439 bool Indirect = false; 13440 13441 RetainCycleOwner() = default; 13442 13443 void setLocsFrom(Expr *e) { 13444 Loc = e->getExprLoc(); 13445 Range = e->getSourceRange(); 13446 } 13447 }; 13448 13449 } // namespace 13450 13451 /// Consider whether capturing the given variable can possibly lead to 13452 /// a retain cycle. 13453 static bool considerVariable(VarDecl *var, Expr *ref, RetainCycleOwner &owner) { 13454 // In ARC, it's captured strongly iff the variable has __strong 13455 // lifetime. In MRR, it's captured strongly if the variable is 13456 // __block and has an appropriate type. 13457 if (var->getType().getObjCLifetime() != Qualifiers::OCL_Strong) 13458 return false; 13459 13460 owner.Variable = var; 13461 if (ref) 13462 owner.setLocsFrom(ref); 13463 return true; 13464 } 13465 13466 static bool findRetainCycleOwner(Sema &S, Expr *e, RetainCycleOwner &owner) { 13467 while (true) { 13468 e = e->IgnoreParens(); 13469 if (CastExpr *cast = dyn_cast<CastExpr>(e)) { 13470 switch (cast->getCastKind()) { 13471 case CK_BitCast: 13472 case CK_LValueBitCast: 13473 case CK_LValueToRValue: 13474 case CK_ARCReclaimReturnedObject: 13475 e = cast->getSubExpr(); 13476 continue; 13477 13478 default: 13479 return false; 13480 } 13481 } 13482 13483 if (ObjCIvarRefExpr *ref = dyn_cast<ObjCIvarRefExpr>(e)) { 13484 ObjCIvarDecl *ivar = ref->getDecl(); 13485 if (ivar->getType().getObjCLifetime() != Qualifiers::OCL_Strong) 13486 return false; 13487 13488 // Try to find a retain cycle in the base. 13489 if (!findRetainCycleOwner(S, ref->getBase(), owner)) 13490 return false; 13491 13492 if (ref->isFreeIvar()) owner.setLocsFrom(ref); 13493 owner.Indirect = true; 13494 return true; 13495 } 13496 13497 if (DeclRefExpr *ref = dyn_cast<DeclRefExpr>(e)) { 13498 VarDecl *var = dyn_cast<VarDecl>(ref->getDecl()); 13499 if (!var) return false; 13500 return considerVariable(var, ref, owner); 13501 } 13502 13503 if (MemberExpr *member = dyn_cast<MemberExpr>(e)) { 13504 if (member->isArrow()) return false; 13505 13506 // Don't count this as an indirect ownership. 13507 e = member->getBase(); 13508 continue; 13509 } 13510 13511 if (PseudoObjectExpr *pseudo = dyn_cast<PseudoObjectExpr>(e)) { 13512 // Only pay attention to pseudo-objects on property references. 13513 ObjCPropertyRefExpr *pre 13514 = dyn_cast<ObjCPropertyRefExpr>(pseudo->getSyntacticForm() 13515 ->IgnoreParens()); 13516 if (!pre) return false; 13517 if (pre->isImplicitProperty()) return false; 13518 ObjCPropertyDecl *property = pre->getExplicitProperty(); 13519 if (!property->isRetaining() && 13520 !(property->getPropertyIvarDecl() && 13521 property->getPropertyIvarDecl()->getType() 13522 .getObjCLifetime() == Qualifiers::OCL_Strong)) 13523 return false; 13524 13525 owner.Indirect = true; 13526 if (pre->isSuperReceiver()) { 13527 owner.Variable = S.getCurMethodDecl()->getSelfDecl(); 13528 if (!owner.Variable) 13529 return false; 13530 owner.Loc = pre->getLocation(); 13531 owner.Range = pre->getSourceRange(); 13532 return true; 13533 } 13534 e = const_cast<Expr*>(cast<OpaqueValueExpr>(pre->getBase()) 13535 ->getSourceExpr()); 13536 continue; 13537 } 13538 13539 // Array ivars? 13540 13541 return false; 13542 } 13543 } 13544 13545 namespace { 13546 13547 struct FindCaptureVisitor : EvaluatedExprVisitor<FindCaptureVisitor> { 13548 ASTContext &Context; 13549 VarDecl *Variable; 13550 Expr *Capturer = nullptr; 13551 bool VarWillBeReased = false; 13552 13553 FindCaptureVisitor(ASTContext &Context, VarDecl *variable) 13554 : EvaluatedExprVisitor<FindCaptureVisitor>(Context), 13555 Context(Context), Variable(variable) {} 13556 13557 void VisitDeclRefExpr(DeclRefExpr *ref) { 13558 if (ref->getDecl() == Variable && !Capturer) 13559 Capturer = ref; 13560 } 13561 13562 void VisitObjCIvarRefExpr(ObjCIvarRefExpr *ref) { 13563 if (Capturer) return; 13564 Visit(ref->getBase()); 13565 if (Capturer && ref->isFreeIvar()) 13566 Capturer = ref; 13567 } 13568 13569 void VisitBlockExpr(BlockExpr *block) { 13570 // Look inside nested blocks 13571 if (block->getBlockDecl()->capturesVariable(Variable)) 13572 Visit(block->getBlockDecl()->getBody()); 13573 } 13574 13575 void VisitOpaqueValueExpr(OpaqueValueExpr *OVE) { 13576 if (Capturer) return; 13577 if (OVE->getSourceExpr()) 13578 Visit(OVE->getSourceExpr()); 13579 } 13580 13581 void VisitBinaryOperator(BinaryOperator *BinOp) { 13582 if (!Variable || VarWillBeReased || BinOp->getOpcode() != BO_Assign) 13583 return; 13584 Expr *LHS = BinOp->getLHS(); 13585 if (const DeclRefExpr *DRE = dyn_cast_or_null<DeclRefExpr>(LHS)) { 13586 if (DRE->getDecl() != Variable) 13587 return; 13588 if (Expr *RHS = BinOp->getRHS()) { 13589 RHS = RHS->IgnoreParenCasts(); 13590 llvm::APSInt Value; 13591 VarWillBeReased = 13592 (RHS && RHS->isIntegerConstantExpr(Value, Context) && Value == 0); 13593 } 13594 } 13595 } 13596 }; 13597 13598 } // namespace 13599 13600 /// Check whether the given argument is a block which captures a 13601 /// variable. 13602 static Expr *findCapturingExpr(Sema &S, Expr *e, RetainCycleOwner &owner) { 13603 assert(owner.Variable && owner.Loc.isValid()); 13604 13605 e = e->IgnoreParenCasts(); 13606 13607 // Look through [^{...} copy] and Block_copy(^{...}). 13608 if (ObjCMessageExpr *ME = dyn_cast<ObjCMessageExpr>(e)) { 13609 Selector Cmd = ME->getSelector(); 13610 if (Cmd.isUnarySelector() && Cmd.getNameForSlot(0) == "copy") { 13611 e = ME->getInstanceReceiver(); 13612 if (!e) 13613 return nullptr; 13614 e = e->IgnoreParenCasts(); 13615 } 13616 } else if (CallExpr *CE = dyn_cast<CallExpr>(e)) { 13617 if (CE->getNumArgs() == 1) { 13618 FunctionDecl *Fn = dyn_cast_or_null<FunctionDecl>(CE->getCalleeDecl()); 13619 if (Fn) { 13620 const IdentifierInfo *FnI = Fn->getIdentifier(); 13621 if (FnI && FnI->isStr("_Block_copy")) { 13622 e = CE->getArg(0)->IgnoreParenCasts(); 13623 } 13624 } 13625 } 13626 } 13627 13628 BlockExpr *block = dyn_cast<BlockExpr>(e); 13629 if (!block || !block->getBlockDecl()->capturesVariable(owner.Variable)) 13630 return nullptr; 13631 13632 FindCaptureVisitor visitor(S.Context, owner.Variable); 13633 visitor.Visit(block->getBlockDecl()->getBody()); 13634 return visitor.VarWillBeReased ? nullptr : visitor.Capturer; 13635 } 13636 13637 static void diagnoseRetainCycle(Sema &S, Expr *capturer, 13638 RetainCycleOwner &owner) { 13639 assert(capturer); 13640 assert(owner.Variable && owner.Loc.isValid()); 13641 13642 S.Diag(capturer->getExprLoc(), diag::warn_arc_retain_cycle) 13643 << owner.Variable << capturer->getSourceRange(); 13644 S.Diag(owner.Loc, diag::note_arc_retain_cycle_owner) 13645 << owner.Indirect << owner.Range; 13646 } 13647 13648 /// Check for a keyword selector that starts with the word 'add' or 13649 /// 'set'. 13650 static bool isSetterLikeSelector(Selector sel) { 13651 if (sel.isUnarySelector()) return false; 13652 13653 StringRef str = sel.getNameForSlot(0); 13654 while (!str.empty() && str.front() == '_') str = str.substr(1); 13655 if (str.startswith("set")) 13656 str = str.substr(3); 13657 else if (str.startswith("add")) { 13658 // Specially whitelist 'addOperationWithBlock:'. 13659 if (sel.getNumArgs() == 1 && str.startswith("addOperationWithBlock")) 13660 return false; 13661 str = str.substr(3); 13662 } 13663 else 13664 return false; 13665 13666 if (str.empty()) return true; 13667 return !isLowercase(str.front()); 13668 } 13669 13670 static Optional<int> GetNSMutableArrayArgumentIndex(Sema &S, 13671 ObjCMessageExpr *Message) { 13672 bool IsMutableArray = S.NSAPIObj->isSubclassOfNSClass( 13673 Message->getReceiverInterface(), 13674 NSAPI::ClassId_NSMutableArray); 13675 if (!IsMutableArray) { 13676 return None; 13677 } 13678 13679 Selector Sel = Message->getSelector(); 13680 13681 Optional<NSAPI::NSArrayMethodKind> MKOpt = 13682 S.NSAPIObj->getNSArrayMethodKind(Sel); 13683 if (!MKOpt) { 13684 return None; 13685 } 13686 13687 NSAPI::NSArrayMethodKind MK = *MKOpt; 13688 13689 switch (MK) { 13690 case NSAPI::NSMutableArr_addObject: 13691 case NSAPI::NSMutableArr_insertObjectAtIndex: 13692 case NSAPI::NSMutableArr_setObjectAtIndexedSubscript: 13693 return 0; 13694 case NSAPI::NSMutableArr_replaceObjectAtIndex: 13695 return 1; 13696 13697 default: 13698 return None; 13699 } 13700 13701 return None; 13702 } 13703 13704 static 13705 Optional<int> GetNSMutableDictionaryArgumentIndex(Sema &S, 13706 ObjCMessageExpr *Message) { 13707 bool IsMutableDictionary = S.NSAPIObj->isSubclassOfNSClass( 13708 Message->getReceiverInterface(), 13709 NSAPI::ClassId_NSMutableDictionary); 13710 if (!IsMutableDictionary) { 13711 return None; 13712 } 13713 13714 Selector Sel = Message->getSelector(); 13715 13716 Optional<NSAPI::NSDictionaryMethodKind> MKOpt = 13717 S.NSAPIObj->getNSDictionaryMethodKind(Sel); 13718 if (!MKOpt) { 13719 return None; 13720 } 13721 13722 NSAPI::NSDictionaryMethodKind MK = *MKOpt; 13723 13724 switch (MK) { 13725 case NSAPI::NSMutableDict_setObjectForKey: 13726 case NSAPI::NSMutableDict_setValueForKey: 13727 case NSAPI::NSMutableDict_setObjectForKeyedSubscript: 13728 return 0; 13729 13730 default: 13731 return None; 13732 } 13733 13734 return None; 13735 } 13736 13737 static Optional<int> GetNSSetArgumentIndex(Sema &S, ObjCMessageExpr *Message) { 13738 bool IsMutableSet = S.NSAPIObj->isSubclassOfNSClass( 13739 Message->getReceiverInterface(), 13740 NSAPI::ClassId_NSMutableSet); 13741 13742 bool IsMutableOrderedSet = S.NSAPIObj->isSubclassOfNSClass( 13743 Message->getReceiverInterface(), 13744 NSAPI::ClassId_NSMutableOrderedSet); 13745 if (!IsMutableSet && !IsMutableOrderedSet) { 13746 return None; 13747 } 13748 13749 Selector Sel = Message->getSelector(); 13750 13751 Optional<NSAPI::NSSetMethodKind> MKOpt = S.NSAPIObj->getNSSetMethodKind(Sel); 13752 if (!MKOpt) { 13753 return None; 13754 } 13755 13756 NSAPI::NSSetMethodKind MK = *MKOpt; 13757 13758 switch (MK) { 13759 case NSAPI::NSMutableSet_addObject: 13760 case NSAPI::NSOrderedSet_setObjectAtIndex: 13761 case NSAPI::NSOrderedSet_setObjectAtIndexedSubscript: 13762 case NSAPI::NSOrderedSet_insertObjectAtIndex: 13763 return 0; 13764 case NSAPI::NSOrderedSet_replaceObjectAtIndexWithObject: 13765 return 1; 13766 } 13767 13768 return None; 13769 } 13770 13771 void Sema::CheckObjCCircularContainer(ObjCMessageExpr *Message) { 13772 if (!Message->isInstanceMessage()) { 13773 return; 13774 } 13775 13776 Optional<int> ArgOpt; 13777 13778 if (!(ArgOpt = GetNSMutableArrayArgumentIndex(*this, Message)) && 13779 !(ArgOpt = GetNSMutableDictionaryArgumentIndex(*this, Message)) && 13780 !(ArgOpt = GetNSSetArgumentIndex(*this, Message))) { 13781 return; 13782 } 13783 13784 int ArgIndex = *ArgOpt; 13785 13786 Expr *Arg = Message->getArg(ArgIndex)->IgnoreImpCasts(); 13787 if (OpaqueValueExpr *OE = dyn_cast<OpaqueValueExpr>(Arg)) { 13788 Arg = OE->getSourceExpr()->IgnoreImpCasts(); 13789 } 13790 13791 if (Message->getReceiverKind() == ObjCMessageExpr::SuperInstance) { 13792 if (DeclRefExpr *ArgRE = dyn_cast<DeclRefExpr>(Arg)) { 13793 if (ArgRE->isObjCSelfExpr()) { 13794 Diag(Message->getSourceRange().getBegin(), 13795 diag::warn_objc_circular_container) 13796 << ArgRE->getDecl() << StringRef("'super'"); 13797 } 13798 } 13799 } else { 13800 Expr *Receiver = Message->getInstanceReceiver()->IgnoreImpCasts(); 13801 13802 if (OpaqueValueExpr *OE = dyn_cast<OpaqueValueExpr>(Receiver)) { 13803 Receiver = OE->getSourceExpr()->IgnoreImpCasts(); 13804 } 13805 13806 if (DeclRefExpr *ReceiverRE = dyn_cast<DeclRefExpr>(Receiver)) { 13807 if (DeclRefExpr *ArgRE = dyn_cast<DeclRefExpr>(Arg)) { 13808 if (ReceiverRE->getDecl() == ArgRE->getDecl()) { 13809 ValueDecl *Decl = ReceiverRE->getDecl(); 13810 Diag(Message->getSourceRange().getBegin(), 13811 diag::warn_objc_circular_container) 13812 << Decl << Decl; 13813 if (!ArgRE->isObjCSelfExpr()) { 13814 Diag(Decl->getLocation(), 13815 diag::note_objc_circular_container_declared_here) 13816 << Decl; 13817 } 13818 } 13819 } 13820 } else if (ObjCIvarRefExpr *IvarRE = dyn_cast<ObjCIvarRefExpr>(Receiver)) { 13821 if (ObjCIvarRefExpr *IvarArgRE = dyn_cast<ObjCIvarRefExpr>(Arg)) { 13822 if (IvarRE->getDecl() == IvarArgRE->getDecl()) { 13823 ObjCIvarDecl *Decl = IvarRE->getDecl(); 13824 Diag(Message->getSourceRange().getBegin(), 13825 diag::warn_objc_circular_container) 13826 << Decl << Decl; 13827 Diag(Decl->getLocation(), 13828 diag::note_objc_circular_container_declared_here) 13829 << Decl; 13830 } 13831 } 13832 } 13833 } 13834 } 13835 13836 /// Check a message send to see if it's likely to cause a retain cycle. 13837 void Sema::checkRetainCycles(ObjCMessageExpr *msg) { 13838 // Only check instance methods whose selector looks like a setter. 13839 if (!msg->isInstanceMessage() || !isSetterLikeSelector(msg->getSelector())) 13840 return; 13841 13842 // Try to find a variable that the receiver is strongly owned by. 13843 RetainCycleOwner owner; 13844 if (msg->getReceiverKind() == ObjCMessageExpr::Instance) { 13845 if (!findRetainCycleOwner(*this, msg->getInstanceReceiver(), owner)) 13846 return; 13847 } else { 13848 assert(msg->getReceiverKind() == ObjCMessageExpr::SuperInstance); 13849 owner.Variable = getCurMethodDecl()->getSelfDecl(); 13850 owner.Loc = msg->getSuperLoc(); 13851 owner.Range = msg->getSuperLoc(); 13852 } 13853 13854 // Check whether the receiver is captured by any of the arguments. 13855 const ObjCMethodDecl *MD = msg->getMethodDecl(); 13856 for (unsigned i = 0, e = msg->getNumArgs(); i != e; ++i) { 13857 if (Expr *capturer = findCapturingExpr(*this, msg->getArg(i), owner)) { 13858 // noescape blocks should not be retained by the method. 13859 if (MD && MD->parameters()[i]->hasAttr<NoEscapeAttr>()) 13860 continue; 13861 return diagnoseRetainCycle(*this, capturer, owner); 13862 } 13863 } 13864 } 13865 13866 /// Check a property assign to see if it's likely to cause a retain cycle. 13867 void Sema::checkRetainCycles(Expr *receiver, Expr *argument) { 13868 RetainCycleOwner owner; 13869 if (!findRetainCycleOwner(*this, receiver, owner)) 13870 return; 13871 13872 if (Expr *capturer = findCapturingExpr(*this, argument, owner)) 13873 diagnoseRetainCycle(*this, capturer, owner); 13874 } 13875 13876 void Sema::checkRetainCycles(VarDecl *Var, Expr *Init) { 13877 RetainCycleOwner Owner; 13878 if (!considerVariable(Var, /*DeclRefExpr=*/nullptr, Owner)) 13879 return; 13880 13881 // Because we don't have an expression for the variable, we have to set the 13882 // location explicitly here. 13883 Owner.Loc = Var->getLocation(); 13884 Owner.Range = Var->getSourceRange(); 13885 13886 if (Expr *Capturer = findCapturingExpr(*this, Init, Owner)) 13887 diagnoseRetainCycle(*this, Capturer, Owner); 13888 } 13889 13890 static bool checkUnsafeAssignLiteral(Sema &S, SourceLocation Loc, 13891 Expr *RHS, bool isProperty) { 13892 // Check if RHS is an Objective-C object literal, which also can get 13893 // immediately zapped in a weak reference. Note that we explicitly 13894 // allow ObjCStringLiterals, since those are designed to never really die. 13895 RHS = RHS->IgnoreParenImpCasts(); 13896 13897 // This enum needs to match with the 'select' in 13898 // warn_objc_arc_literal_assign (off-by-1). 13899 Sema::ObjCLiteralKind Kind = S.CheckLiteralKind(RHS); 13900 if (Kind == Sema::LK_String || Kind == Sema::LK_None) 13901 return false; 13902 13903 S.Diag(Loc, diag::warn_arc_literal_assign) 13904 << (unsigned) Kind 13905 << (isProperty ? 0 : 1) 13906 << RHS->getSourceRange(); 13907 13908 return true; 13909 } 13910 13911 static bool checkUnsafeAssignObject(Sema &S, SourceLocation Loc, 13912 Qualifiers::ObjCLifetime LT, 13913 Expr *RHS, bool isProperty) { 13914 // Strip off any implicit cast added to get to the one ARC-specific. 13915 while (ImplicitCastExpr *cast = dyn_cast<ImplicitCastExpr>(RHS)) { 13916 if (cast->getCastKind() == CK_ARCConsumeObject) { 13917 S.Diag(Loc, diag::warn_arc_retained_assign) 13918 << (LT == Qualifiers::OCL_ExplicitNone) 13919 << (isProperty ? 0 : 1) 13920 << RHS->getSourceRange(); 13921 return true; 13922 } 13923 RHS = cast->getSubExpr(); 13924 } 13925 13926 if (LT == Qualifiers::OCL_Weak && 13927 checkUnsafeAssignLiteral(S, Loc, RHS, isProperty)) 13928 return true; 13929 13930 return false; 13931 } 13932 13933 bool Sema::checkUnsafeAssigns(SourceLocation Loc, 13934 QualType LHS, Expr *RHS) { 13935 Qualifiers::ObjCLifetime LT = LHS.getObjCLifetime(); 13936 13937 if (LT != Qualifiers::OCL_Weak && LT != Qualifiers::OCL_ExplicitNone) 13938 return false; 13939 13940 if (checkUnsafeAssignObject(*this, Loc, LT, RHS, false)) 13941 return true; 13942 13943 return false; 13944 } 13945 13946 void Sema::checkUnsafeExprAssigns(SourceLocation Loc, 13947 Expr *LHS, Expr *RHS) { 13948 QualType LHSType; 13949 // PropertyRef on LHS type need be directly obtained from 13950 // its declaration as it has a PseudoType. 13951 ObjCPropertyRefExpr *PRE 13952 = dyn_cast<ObjCPropertyRefExpr>(LHS->IgnoreParens()); 13953 if (PRE && !PRE->isImplicitProperty()) { 13954 const ObjCPropertyDecl *PD = PRE->getExplicitProperty(); 13955 if (PD) 13956 LHSType = PD->getType(); 13957 } 13958 13959 if (LHSType.isNull()) 13960 LHSType = LHS->getType(); 13961 13962 Qualifiers::ObjCLifetime LT = LHSType.getObjCLifetime(); 13963 13964 if (LT == Qualifiers::OCL_Weak) { 13965 if (!Diags.isIgnored(diag::warn_arc_repeated_use_of_weak, Loc)) 13966 getCurFunction()->markSafeWeakUse(LHS); 13967 } 13968 13969 if (checkUnsafeAssigns(Loc, LHSType, RHS)) 13970 return; 13971 13972 // FIXME. Check for other life times. 13973 if (LT != Qualifiers::OCL_None) 13974 return; 13975 13976 if (PRE) { 13977 if (PRE->isImplicitProperty()) 13978 return; 13979 const ObjCPropertyDecl *PD = PRE->getExplicitProperty(); 13980 if (!PD) 13981 return; 13982 13983 unsigned Attributes = PD->getPropertyAttributes(); 13984 if (Attributes & ObjCPropertyDecl::OBJC_PR_assign) { 13985 // when 'assign' attribute was not explicitly specified 13986 // by user, ignore it and rely on property type itself 13987 // for lifetime info. 13988 unsigned AsWrittenAttr = PD->getPropertyAttributesAsWritten(); 13989 if (!(AsWrittenAttr & ObjCPropertyDecl::OBJC_PR_assign) && 13990 LHSType->isObjCRetainableType()) 13991 return; 13992 13993 while (ImplicitCastExpr *cast = dyn_cast<ImplicitCastExpr>(RHS)) { 13994 if (cast->getCastKind() == CK_ARCConsumeObject) { 13995 Diag(Loc, diag::warn_arc_retained_property_assign) 13996 << RHS->getSourceRange(); 13997 return; 13998 } 13999 RHS = cast->getSubExpr(); 14000 } 14001 } 14002 else if (Attributes & ObjCPropertyDecl::OBJC_PR_weak) { 14003 if (checkUnsafeAssignObject(*this, Loc, Qualifiers::OCL_Weak, RHS, true)) 14004 return; 14005 } 14006 } 14007 } 14008 14009 //===--- CHECK: Empty statement body (-Wempty-body) ---------------------===// 14010 14011 static bool ShouldDiagnoseEmptyStmtBody(const SourceManager &SourceMgr, 14012 SourceLocation StmtLoc, 14013 const NullStmt *Body) { 14014 // Do not warn if the body is a macro that expands to nothing, e.g: 14015 // 14016 // #define CALL(x) 14017 // if (condition) 14018 // CALL(0); 14019 if (Body->hasLeadingEmptyMacro()) 14020 return false; 14021 14022 // Get line numbers of statement and body. 14023 bool StmtLineInvalid; 14024 unsigned StmtLine = SourceMgr.getPresumedLineNumber(StmtLoc, 14025 &StmtLineInvalid); 14026 if (StmtLineInvalid) 14027 return false; 14028 14029 bool BodyLineInvalid; 14030 unsigned BodyLine = SourceMgr.getSpellingLineNumber(Body->getSemiLoc(), 14031 &BodyLineInvalid); 14032 if (BodyLineInvalid) 14033 return false; 14034 14035 // Warn if null statement and body are on the same line. 14036 if (StmtLine != BodyLine) 14037 return false; 14038 14039 return true; 14040 } 14041 14042 void Sema::DiagnoseEmptyStmtBody(SourceLocation StmtLoc, 14043 const Stmt *Body, 14044 unsigned DiagID) { 14045 // Since this is a syntactic check, don't emit diagnostic for template 14046 // instantiations, this just adds noise. 14047 if (CurrentInstantiationScope) 14048 return; 14049 14050 // The body should be a null statement. 14051 const NullStmt *NBody = dyn_cast<NullStmt>(Body); 14052 if (!NBody) 14053 return; 14054 14055 // Do the usual checks. 14056 if (!ShouldDiagnoseEmptyStmtBody(SourceMgr, StmtLoc, NBody)) 14057 return; 14058 14059 Diag(NBody->getSemiLoc(), DiagID); 14060 Diag(NBody->getSemiLoc(), diag::note_empty_body_on_separate_line); 14061 } 14062 14063 void Sema::DiagnoseEmptyLoopBody(const Stmt *S, 14064 const Stmt *PossibleBody) { 14065 assert(!CurrentInstantiationScope); // Ensured by caller 14066 14067 SourceLocation StmtLoc; 14068 const Stmt *Body; 14069 unsigned DiagID; 14070 if (const ForStmt *FS = dyn_cast<ForStmt>(S)) { 14071 StmtLoc = FS->getRParenLoc(); 14072 Body = FS->getBody(); 14073 DiagID = diag::warn_empty_for_body; 14074 } else if (const WhileStmt *WS = dyn_cast<WhileStmt>(S)) { 14075 StmtLoc = WS->getCond()->getSourceRange().getEnd(); 14076 Body = WS->getBody(); 14077 DiagID = diag::warn_empty_while_body; 14078 } else 14079 return; // Neither `for' nor `while'. 14080 14081 // The body should be a null statement. 14082 const NullStmt *NBody = dyn_cast<NullStmt>(Body); 14083 if (!NBody) 14084 return; 14085 14086 // Skip expensive checks if diagnostic is disabled. 14087 if (Diags.isIgnored(DiagID, NBody->getSemiLoc())) 14088 return; 14089 14090 // Do the usual checks. 14091 if (!ShouldDiagnoseEmptyStmtBody(SourceMgr, StmtLoc, NBody)) 14092 return; 14093 14094 // `for(...);' and `while(...);' are popular idioms, so in order to keep 14095 // noise level low, emit diagnostics only if for/while is followed by a 14096 // CompoundStmt, e.g.: 14097 // for (int i = 0; i < n; i++); 14098 // { 14099 // a(i); 14100 // } 14101 // or if for/while is followed by a statement with more indentation 14102 // than for/while itself: 14103 // for (int i = 0; i < n; i++); 14104 // a(i); 14105 bool ProbableTypo = isa<CompoundStmt>(PossibleBody); 14106 if (!ProbableTypo) { 14107 bool BodyColInvalid; 14108 unsigned BodyCol = SourceMgr.getPresumedColumnNumber( 14109 PossibleBody->getBeginLoc(), &BodyColInvalid); 14110 if (BodyColInvalid) 14111 return; 14112 14113 bool StmtColInvalid; 14114 unsigned StmtCol = 14115 SourceMgr.getPresumedColumnNumber(S->getBeginLoc(), &StmtColInvalid); 14116 if (StmtColInvalid) 14117 return; 14118 14119 if (BodyCol > StmtCol) 14120 ProbableTypo = true; 14121 } 14122 14123 if (ProbableTypo) { 14124 Diag(NBody->getSemiLoc(), DiagID); 14125 Diag(NBody->getSemiLoc(), diag::note_empty_body_on_separate_line); 14126 } 14127 } 14128 14129 //===--- CHECK: Warn on self move with std::move. -------------------------===// 14130 14131 /// DiagnoseSelfMove - Emits a warning if a value is moved to itself. 14132 void Sema::DiagnoseSelfMove(const Expr *LHSExpr, const Expr *RHSExpr, 14133 SourceLocation OpLoc) { 14134 if (Diags.isIgnored(diag::warn_sizeof_pointer_expr_memaccess, OpLoc)) 14135 return; 14136 14137 if (inTemplateInstantiation()) 14138 return; 14139 14140 // Strip parens and casts away. 14141 LHSExpr = LHSExpr->IgnoreParenImpCasts(); 14142 RHSExpr = RHSExpr->IgnoreParenImpCasts(); 14143 14144 // Check for a call expression 14145 const CallExpr *CE = dyn_cast<CallExpr>(RHSExpr); 14146 if (!CE || CE->getNumArgs() != 1) 14147 return; 14148 14149 // Check for a call to std::move 14150 if (!CE->isCallToStdMove()) 14151 return; 14152 14153 // Get argument from std::move 14154 RHSExpr = CE->getArg(0); 14155 14156 const DeclRefExpr *LHSDeclRef = dyn_cast<DeclRefExpr>(LHSExpr); 14157 const DeclRefExpr *RHSDeclRef = dyn_cast<DeclRefExpr>(RHSExpr); 14158 14159 // Two DeclRefExpr's, check that the decls are the same. 14160 if (LHSDeclRef && RHSDeclRef) { 14161 if (!LHSDeclRef->getDecl() || !RHSDeclRef->getDecl()) 14162 return; 14163 if (LHSDeclRef->getDecl()->getCanonicalDecl() != 14164 RHSDeclRef->getDecl()->getCanonicalDecl()) 14165 return; 14166 14167 Diag(OpLoc, diag::warn_self_move) << LHSExpr->getType() 14168 << LHSExpr->getSourceRange() 14169 << RHSExpr->getSourceRange(); 14170 return; 14171 } 14172 14173 // Member variables require a different approach to check for self moves. 14174 // MemberExpr's are the same if every nested MemberExpr refers to the same 14175 // Decl and that the base Expr's are DeclRefExpr's with the same Decl or 14176 // the base Expr's are CXXThisExpr's. 14177 const Expr *LHSBase = LHSExpr; 14178 const Expr *RHSBase = RHSExpr; 14179 const MemberExpr *LHSME = dyn_cast<MemberExpr>(LHSExpr); 14180 const MemberExpr *RHSME = dyn_cast<MemberExpr>(RHSExpr); 14181 if (!LHSME || !RHSME) 14182 return; 14183 14184 while (LHSME && RHSME) { 14185 if (LHSME->getMemberDecl()->getCanonicalDecl() != 14186 RHSME->getMemberDecl()->getCanonicalDecl()) 14187 return; 14188 14189 LHSBase = LHSME->getBase(); 14190 RHSBase = RHSME->getBase(); 14191 LHSME = dyn_cast<MemberExpr>(LHSBase); 14192 RHSME = dyn_cast<MemberExpr>(RHSBase); 14193 } 14194 14195 LHSDeclRef = dyn_cast<DeclRefExpr>(LHSBase); 14196 RHSDeclRef = dyn_cast<DeclRefExpr>(RHSBase); 14197 if (LHSDeclRef && RHSDeclRef) { 14198 if (!LHSDeclRef->getDecl() || !RHSDeclRef->getDecl()) 14199 return; 14200 if (LHSDeclRef->getDecl()->getCanonicalDecl() != 14201 RHSDeclRef->getDecl()->getCanonicalDecl()) 14202 return; 14203 14204 Diag(OpLoc, diag::warn_self_move) << LHSExpr->getType() 14205 << LHSExpr->getSourceRange() 14206 << RHSExpr->getSourceRange(); 14207 return; 14208 } 14209 14210 if (isa<CXXThisExpr>(LHSBase) && isa<CXXThisExpr>(RHSBase)) 14211 Diag(OpLoc, diag::warn_self_move) << LHSExpr->getType() 14212 << LHSExpr->getSourceRange() 14213 << RHSExpr->getSourceRange(); 14214 } 14215 14216 //===--- Layout compatibility ----------------------------------------------// 14217 14218 static bool isLayoutCompatible(ASTContext &C, QualType T1, QualType T2); 14219 14220 /// Check if two enumeration types are layout-compatible. 14221 static bool isLayoutCompatible(ASTContext &C, EnumDecl *ED1, EnumDecl *ED2) { 14222 // C++11 [dcl.enum] p8: 14223 // Two enumeration types are layout-compatible if they have the same 14224 // underlying type. 14225 return ED1->isComplete() && ED2->isComplete() && 14226 C.hasSameType(ED1->getIntegerType(), ED2->getIntegerType()); 14227 } 14228 14229 /// Check if two fields are layout-compatible. 14230 static bool isLayoutCompatible(ASTContext &C, FieldDecl *Field1, 14231 FieldDecl *Field2) { 14232 if (!isLayoutCompatible(C, Field1->getType(), Field2->getType())) 14233 return false; 14234 14235 if (Field1->isBitField() != Field2->isBitField()) 14236 return false; 14237 14238 if (Field1->isBitField()) { 14239 // Make sure that the bit-fields are the same length. 14240 unsigned Bits1 = Field1->getBitWidthValue(C); 14241 unsigned Bits2 = Field2->getBitWidthValue(C); 14242 14243 if (Bits1 != Bits2) 14244 return false; 14245 } 14246 14247 return true; 14248 } 14249 14250 /// Check if two standard-layout structs are layout-compatible. 14251 /// (C++11 [class.mem] p17) 14252 static bool isLayoutCompatibleStruct(ASTContext &C, RecordDecl *RD1, 14253 RecordDecl *RD2) { 14254 // If both records are C++ classes, check that base classes match. 14255 if (const CXXRecordDecl *D1CXX = dyn_cast<CXXRecordDecl>(RD1)) { 14256 // If one of records is a CXXRecordDecl we are in C++ mode, 14257 // thus the other one is a CXXRecordDecl, too. 14258 const CXXRecordDecl *D2CXX = cast<CXXRecordDecl>(RD2); 14259 // Check number of base classes. 14260 if (D1CXX->getNumBases() != D2CXX->getNumBases()) 14261 return false; 14262 14263 // Check the base classes. 14264 for (CXXRecordDecl::base_class_const_iterator 14265 Base1 = D1CXX->bases_begin(), 14266 BaseEnd1 = D1CXX->bases_end(), 14267 Base2 = D2CXX->bases_begin(); 14268 Base1 != BaseEnd1; 14269 ++Base1, ++Base2) { 14270 if (!isLayoutCompatible(C, Base1->getType(), Base2->getType())) 14271 return false; 14272 } 14273 } else if (const CXXRecordDecl *D2CXX = dyn_cast<CXXRecordDecl>(RD2)) { 14274 // If only RD2 is a C++ class, it should have zero base classes. 14275 if (D2CXX->getNumBases() > 0) 14276 return false; 14277 } 14278 14279 // Check the fields. 14280 RecordDecl::field_iterator Field2 = RD2->field_begin(), 14281 Field2End = RD2->field_end(), 14282 Field1 = RD1->field_begin(), 14283 Field1End = RD1->field_end(); 14284 for ( ; Field1 != Field1End && Field2 != Field2End; ++Field1, ++Field2) { 14285 if (!isLayoutCompatible(C, *Field1, *Field2)) 14286 return false; 14287 } 14288 if (Field1 != Field1End || Field2 != Field2End) 14289 return false; 14290 14291 return true; 14292 } 14293 14294 /// Check if two standard-layout unions are layout-compatible. 14295 /// (C++11 [class.mem] p18) 14296 static bool isLayoutCompatibleUnion(ASTContext &C, RecordDecl *RD1, 14297 RecordDecl *RD2) { 14298 llvm::SmallPtrSet<FieldDecl *, 8> UnmatchedFields; 14299 for (auto *Field2 : RD2->fields()) 14300 UnmatchedFields.insert(Field2); 14301 14302 for (auto *Field1 : RD1->fields()) { 14303 llvm::SmallPtrSet<FieldDecl *, 8>::iterator 14304 I = UnmatchedFields.begin(), 14305 E = UnmatchedFields.end(); 14306 14307 for ( ; I != E; ++I) { 14308 if (isLayoutCompatible(C, Field1, *I)) { 14309 bool Result = UnmatchedFields.erase(*I); 14310 (void) Result; 14311 assert(Result); 14312 break; 14313 } 14314 } 14315 if (I == E) 14316 return false; 14317 } 14318 14319 return UnmatchedFields.empty(); 14320 } 14321 14322 static bool isLayoutCompatible(ASTContext &C, RecordDecl *RD1, 14323 RecordDecl *RD2) { 14324 if (RD1->isUnion() != RD2->isUnion()) 14325 return false; 14326 14327 if (RD1->isUnion()) 14328 return isLayoutCompatibleUnion(C, RD1, RD2); 14329 else 14330 return isLayoutCompatibleStruct(C, RD1, RD2); 14331 } 14332 14333 /// Check if two types are layout-compatible in C++11 sense. 14334 static bool isLayoutCompatible(ASTContext &C, QualType T1, QualType T2) { 14335 if (T1.isNull() || T2.isNull()) 14336 return false; 14337 14338 // C++11 [basic.types] p11: 14339 // If two types T1 and T2 are the same type, then T1 and T2 are 14340 // layout-compatible types. 14341 if (C.hasSameType(T1, T2)) 14342 return true; 14343 14344 T1 = T1.getCanonicalType().getUnqualifiedType(); 14345 T2 = T2.getCanonicalType().getUnqualifiedType(); 14346 14347 const Type::TypeClass TC1 = T1->getTypeClass(); 14348 const Type::TypeClass TC2 = T2->getTypeClass(); 14349 14350 if (TC1 != TC2) 14351 return false; 14352 14353 if (TC1 == Type::Enum) { 14354 return isLayoutCompatible(C, 14355 cast<EnumType>(T1)->getDecl(), 14356 cast<EnumType>(T2)->getDecl()); 14357 } else if (TC1 == Type::Record) { 14358 if (!T1->isStandardLayoutType() || !T2->isStandardLayoutType()) 14359 return false; 14360 14361 return isLayoutCompatible(C, 14362 cast<RecordType>(T1)->getDecl(), 14363 cast<RecordType>(T2)->getDecl()); 14364 } 14365 14366 return false; 14367 } 14368 14369 //===--- CHECK: pointer_with_type_tag attribute: datatypes should match ----// 14370 14371 /// Given a type tag expression find the type tag itself. 14372 /// 14373 /// \param TypeExpr Type tag expression, as it appears in user's code. 14374 /// 14375 /// \param VD Declaration of an identifier that appears in a type tag. 14376 /// 14377 /// \param MagicValue Type tag magic value. 14378 /// 14379 /// \param isConstantEvaluated wether the evalaution should be performed in 14380 14381 /// constant context. 14382 static bool FindTypeTagExpr(const Expr *TypeExpr, const ASTContext &Ctx, 14383 const ValueDecl **VD, uint64_t *MagicValue, 14384 bool isConstantEvaluated) { 14385 while(true) { 14386 if (!TypeExpr) 14387 return false; 14388 14389 TypeExpr = TypeExpr->IgnoreParenImpCasts()->IgnoreParenCasts(); 14390 14391 switch (TypeExpr->getStmtClass()) { 14392 case Stmt::UnaryOperatorClass: { 14393 const UnaryOperator *UO = cast<UnaryOperator>(TypeExpr); 14394 if (UO->getOpcode() == UO_AddrOf || UO->getOpcode() == UO_Deref) { 14395 TypeExpr = UO->getSubExpr(); 14396 continue; 14397 } 14398 return false; 14399 } 14400 14401 case Stmt::DeclRefExprClass: { 14402 const DeclRefExpr *DRE = cast<DeclRefExpr>(TypeExpr); 14403 *VD = DRE->getDecl(); 14404 return true; 14405 } 14406 14407 case Stmt::IntegerLiteralClass: { 14408 const IntegerLiteral *IL = cast<IntegerLiteral>(TypeExpr); 14409 llvm::APInt MagicValueAPInt = IL->getValue(); 14410 if (MagicValueAPInt.getActiveBits() <= 64) { 14411 *MagicValue = MagicValueAPInt.getZExtValue(); 14412 return true; 14413 } else 14414 return false; 14415 } 14416 14417 case Stmt::BinaryConditionalOperatorClass: 14418 case Stmt::ConditionalOperatorClass: { 14419 const AbstractConditionalOperator *ACO = 14420 cast<AbstractConditionalOperator>(TypeExpr); 14421 bool Result; 14422 if (ACO->getCond()->EvaluateAsBooleanCondition(Result, Ctx, 14423 isConstantEvaluated)) { 14424 if (Result) 14425 TypeExpr = ACO->getTrueExpr(); 14426 else 14427 TypeExpr = ACO->getFalseExpr(); 14428 continue; 14429 } 14430 return false; 14431 } 14432 14433 case Stmt::BinaryOperatorClass: { 14434 const BinaryOperator *BO = cast<BinaryOperator>(TypeExpr); 14435 if (BO->getOpcode() == BO_Comma) { 14436 TypeExpr = BO->getRHS(); 14437 continue; 14438 } 14439 return false; 14440 } 14441 14442 default: 14443 return false; 14444 } 14445 } 14446 } 14447 14448 /// Retrieve the C type corresponding to type tag TypeExpr. 14449 /// 14450 /// \param TypeExpr Expression that specifies a type tag. 14451 /// 14452 /// \param MagicValues Registered magic values. 14453 /// 14454 /// \param FoundWrongKind Set to true if a type tag was found, but of a wrong 14455 /// kind. 14456 /// 14457 /// \param TypeInfo Information about the corresponding C type. 14458 /// 14459 /// \param isConstantEvaluated wether the evalaution should be performed in 14460 /// constant context. 14461 /// 14462 /// \returns true if the corresponding C type was found. 14463 static bool GetMatchingCType( 14464 const IdentifierInfo *ArgumentKind, const Expr *TypeExpr, 14465 const ASTContext &Ctx, 14466 const llvm::DenseMap<Sema::TypeTagMagicValue, Sema::TypeTagData> 14467 *MagicValues, 14468 bool &FoundWrongKind, Sema::TypeTagData &TypeInfo, 14469 bool isConstantEvaluated) { 14470 FoundWrongKind = false; 14471 14472 // Variable declaration that has type_tag_for_datatype attribute. 14473 const ValueDecl *VD = nullptr; 14474 14475 uint64_t MagicValue; 14476 14477 if (!FindTypeTagExpr(TypeExpr, Ctx, &VD, &MagicValue, isConstantEvaluated)) 14478 return false; 14479 14480 if (VD) { 14481 if (TypeTagForDatatypeAttr *I = VD->getAttr<TypeTagForDatatypeAttr>()) { 14482 if (I->getArgumentKind() != ArgumentKind) { 14483 FoundWrongKind = true; 14484 return false; 14485 } 14486 TypeInfo.Type = I->getMatchingCType(); 14487 TypeInfo.LayoutCompatible = I->getLayoutCompatible(); 14488 TypeInfo.MustBeNull = I->getMustBeNull(); 14489 return true; 14490 } 14491 return false; 14492 } 14493 14494 if (!MagicValues) 14495 return false; 14496 14497 llvm::DenseMap<Sema::TypeTagMagicValue, 14498 Sema::TypeTagData>::const_iterator I = 14499 MagicValues->find(std::make_pair(ArgumentKind, MagicValue)); 14500 if (I == MagicValues->end()) 14501 return false; 14502 14503 TypeInfo = I->second; 14504 return true; 14505 } 14506 14507 void Sema::RegisterTypeTagForDatatype(const IdentifierInfo *ArgumentKind, 14508 uint64_t MagicValue, QualType Type, 14509 bool LayoutCompatible, 14510 bool MustBeNull) { 14511 if (!TypeTagForDatatypeMagicValues) 14512 TypeTagForDatatypeMagicValues.reset( 14513 new llvm::DenseMap<TypeTagMagicValue, TypeTagData>); 14514 14515 TypeTagMagicValue Magic(ArgumentKind, MagicValue); 14516 (*TypeTagForDatatypeMagicValues)[Magic] = 14517 TypeTagData(Type, LayoutCompatible, MustBeNull); 14518 } 14519 14520 static bool IsSameCharType(QualType T1, QualType T2) { 14521 const BuiltinType *BT1 = T1->getAs<BuiltinType>(); 14522 if (!BT1) 14523 return false; 14524 14525 const BuiltinType *BT2 = T2->getAs<BuiltinType>(); 14526 if (!BT2) 14527 return false; 14528 14529 BuiltinType::Kind T1Kind = BT1->getKind(); 14530 BuiltinType::Kind T2Kind = BT2->getKind(); 14531 14532 return (T1Kind == BuiltinType::SChar && T2Kind == BuiltinType::Char_S) || 14533 (T1Kind == BuiltinType::UChar && T2Kind == BuiltinType::Char_U) || 14534 (T1Kind == BuiltinType::Char_U && T2Kind == BuiltinType::UChar) || 14535 (T1Kind == BuiltinType::Char_S && T2Kind == BuiltinType::SChar); 14536 } 14537 14538 void Sema::CheckArgumentWithTypeTag(const ArgumentWithTypeTagAttr *Attr, 14539 const ArrayRef<const Expr *> ExprArgs, 14540 SourceLocation CallSiteLoc) { 14541 const IdentifierInfo *ArgumentKind = Attr->getArgumentKind(); 14542 bool IsPointerAttr = Attr->getIsPointer(); 14543 14544 // Retrieve the argument representing the 'type_tag'. 14545 unsigned TypeTagIdxAST = Attr->getTypeTagIdx().getASTIndex(); 14546 if (TypeTagIdxAST >= ExprArgs.size()) { 14547 Diag(CallSiteLoc, diag::err_tag_index_out_of_range) 14548 << 0 << Attr->getTypeTagIdx().getSourceIndex(); 14549 return; 14550 } 14551 const Expr *TypeTagExpr = ExprArgs[TypeTagIdxAST]; 14552 bool FoundWrongKind; 14553 TypeTagData TypeInfo; 14554 if (!GetMatchingCType(ArgumentKind, TypeTagExpr, Context, 14555 TypeTagForDatatypeMagicValues.get(), FoundWrongKind, 14556 TypeInfo, isConstantEvaluated())) { 14557 if (FoundWrongKind) 14558 Diag(TypeTagExpr->getExprLoc(), 14559 diag::warn_type_tag_for_datatype_wrong_kind) 14560 << TypeTagExpr->getSourceRange(); 14561 return; 14562 } 14563 14564 // Retrieve the argument representing the 'arg_idx'. 14565 unsigned ArgumentIdxAST = Attr->getArgumentIdx().getASTIndex(); 14566 if (ArgumentIdxAST >= ExprArgs.size()) { 14567 Diag(CallSiteLoc, diag::err_tag_index_out_of_range) 14568 << 1 << Attr->getArgumentIdx().getSourceIndex(); 14569 return; 14570 } 14571 const Expr *ArgumentExpr = ExprArgs[ArgumentIdxAST]; 14572 if (IsPointerAttr) { 14573 // Skip implicit cast of pointer to `void *' (as a function argument). 14574 if (const ImplicitCastExpr *ICE = dyn_cast<ImplicitCastExpr>(ArgumentExpr)) 14575 if (ICE->getType()->isVoidPointerType() && 14576 ICE->getCastKind() == CK_BitCast) 14577 ArgumentExpr = ICE->getSubExpr(); 14578 } 14579 QualType ArgumentType = ArgumentExpr->getType(); 14580 14581 // Passing a `void*' pointer shouldn't trigger a warning. 14582 if (IsPointerAttr && ArgumentType->isVoidPointerType()) 14583 return; 14584 14585 if (TypeInfo.MustBeNull) { 14586 // Type tag with matching void type requires a null pointer. 14587 if (!ArgumentExpr->isNullPointerConstant(Context, 14588 Expr::NPC_ValueDependentIsNotNull)) { 14589 Diag(ArgumentExpr->getExprLoc(), 14590 diag::warn_type_safety_null_pointer_required) 14591 << ArgumentKind->getName() 14592 << ArgumentExpr->getSourceRange() 14593 << TypeTagExpr->getSourceRange(); 14594 } 14595 return; 14596 } 14597 14598 QualType RequiredType = TypeInfo.Type; 14599 if (IsPointerAttr) 14600 RequiredType = Context.getPointerType(RequiredType); 14601 14602 bool mismatch = false; 14603 if (!TypeInfo.LayoutCompatible) { 14604 mismatch = !Context.hasSameType(ArgumentType, RequiredType); 14605 14606 // C++11 [basic.fundamental] p1: 14607 // Plain char, signed char, and unsigned char are three distinct types. 14608 // 14609 // But we treat plain `char' as equivalent to `signed char' or `unsigned 14610 // char' depending on the current char signedness mode. 14611 if (mismatch) 14612 if ((IsPointerAttr && IsSameCharType(ArgumentType->getPointeeType(), 14613 RequiredType->getPointeeType())) || 14614 (!IsPointerAttr && IsSameCharType(ArgumentType, RequiredType))) 14615 mismatch = false; 14616 } else 14617 if (IsPointerAttr) 14618 mismatch = !isLayoutCompatible(Context, 14619 ArgumentType->getPointeeType(), 14620 RequiredType->getPointeeType()); 14621 else 14622 mismatch = !isLayoutCompatible(Context, ArgumentType, RequiredType); 14623 14624 if (mismatch) 14625 Diag(ArgumentExpr->getExprLoc(), diag::warn_type_safety_type_mismatch) 14626 << ArgumentType << ArgumentKind 14627 << TypeInfo.LayoutCompatible << RequiredType 14628 << ArgumentExpr->getSourceRange() 14629 << TypeTagExpr->getSourceRange(); 14630 } 14631 14632 void Sema::AddPotentialMisalignedMembers(Expr *E, RecordDecl *RD, ValueDecl *MD, 14633 CharUnits Alignment) { 14634 MisalignedMembers.emplace_back(E, RD, MD, Alignment); 14635 } 14636 14637 void Sema::DiagnoseMisalignedMembers() { 14638 for (MisalignedMember &m : MisalignedMembers) { 14639 const NamedDecl *ND = m.RD; 14640 if (ND->getName().empty()) { 14641 if (const TypedefNameDecl *TD = m.RD->getTypedefNameForAnonDecl()) 14642 ND = TD; 14643 } 14644 Diag(m.E->getBeginLoc(), diag::warn_taking_address_of_packed_member) 14645 << m.MD << ND << m.E->getSourceRange(); 14646 } 14647 MisalignedMembers.clear(); 14648 } 14649 14650 void Sema::DiscardMisalignedMemberAddress(const Type *T, Expr *E) { 14651 E = E->IgnoreParens(); 14652 if (!T->isPointerType() && !T->isIntegerType()) 14653 return; 14654 if (isa<UnaryOperator>(E) && 14655 cast<UnaryOperator>(E)->getOpcode() == UO_AddrOf) { 14656 auto *Op = cast<UnaryOperator>(E)->getSubExpr()->IgnoreParens(); 14657 if (isa<MemberExpr>(Op)) { 14658 auto MA = llvm::find(MisalignedMembers, MisalignedMember(Op)); 14659 if (MA != MisalignedMembers.end() && 14660 (T->isIntegerType() || 14661 (T->isPointerType() && (T->getPointeeType()->isIncompleteType() || 14662 Context.getTypeAlignInChars( 14663 T->getPointeeType()) <= MA->Alignment)))) 14664 MisalignedMembers.erase(MA); 14665 } 14666 } 14667 } 14668 14669 void Sema::RefersToMemberWithReducedAlignment( 14670 Expr *E, 14671 llvm::function_ref<void(Expr *, RecordDecl *, FieldDecl *, CharUnits)> 14672 Action) { 14673 const auto *ME = dyn_cast<MemberExpr>(E); 14674 if (!ME) 14675 return; 14676 14677 // No need to check expressions with an __unaligned-qualified type. 14678 if (E->getType().getQualifiers().hasUnaligned()) 14679 return; 14680 14681 // For a chain of MemberExpr like "a.b.c.d" this list 14682 // will keep FieldDecl's like [d, c, b]. 14683 SmallVector<FieldDecl *, 4> ReverseMemberChain; 14684 const MemberExpr *TopME = nullptr; 14685 bool AnyIsPacked = false; 14686 do { 14687 QualType BaseType = ME->getBase()->getType(); 14688 if (ME->isArrow()) 14689 BaseType = BaseType->getPointeeType(); 14690 RecordDecl *RD = BaseType->castAs<RecordType>()->getDecl(); 14691 if (RD->isInvalidDecl()) 14692 return; 14693 14694 ValueDecl *MD = ME->getMemberDecl(); 14695 auto *FD = dyn_cast<FieldDecl>(MD); 14696 // We do not care about non-data members. 14697 if (!FD || FD->isInvalidDecl()) 14698 return; 14699 14700 AnyIsPacked = 14701 AnyIsPacked || (RD->hasAttr<PackedAttr>() || MD->hasAttr<PackedAttr>()); 14702 ReverseMemberChain.push_back(FD); 14703 14704 TopME = ME; 14705 ME = dyn_cast<MemberExpr>(ME->getBase()->IgnoreParens()); 14706 } while (ME); 14707 assert(TopME && "We did not compute a topmost MemberExpr!"); 14708 14709 // Not the scope of this diagnostic. 14710 if (!AnyIsPacked) 14711 return; 14712 14713 const Expr *TopBase = TopME->getBase()->IgnoreParenImpCasts(); 14714 const auto *DRE = dyn_cast<DeclRefExpr>(TopBase); 14715 // TODO: The innermost base of the member expression may be too complicated. 14716 // For now, just disregard these cases. This is left for future 14717 // improvement. 14718 if (!DRE && !isa<CXXThisExpr>(TopBase)) 14719 return; 14720 14721 // Alignment expected by the whole expression. 14722 CharUnits ExpectedAlignment = Context.getTypeAlignInChars(E->getType()); 14723 14724 // No need to do anything else with this case. 14725 if (ExpectedAlignment.isOne()) 14726 return; 14727 14728 // Synthesize offset of the whole access. 14729 CharUnits Offset; 14730 for (auto I = ReverseMemberChain.rbegin(); I != ReverseMemberChain.rend(); 14731 I++) { 14732 Offset += Context.toCharUnitsFromBits(Context.getFieldOffset(*I)); 14733 } 14734 14735 // Compute the CompleteObjectAlignment as the alignment of the whole chain. 14736 CharUnits CompleteObjectAlignment = Context.getTypeAlignInChars( 14737 ReverseMemberChain.back()->getParent()->getTypeForDecl()); 14738 14739 // The base expression of the innermost MemberExpr may give 14740 // stronger guarantees than the class containing the member. 14741 if (DRE && !TopME->isArrow()) { 14742 const ValueDecl *VD = DRE->getDecl(); 14743 if (!VD->getType()->isReferenceType()) 14744 CompleteObjectAlignment = 14745 std::max(CompleteObjectAlignment, Context.getDeclAlign(VD)); 14746 } 14747 14748 // Check if the synthesized offset fulfills the alignment. 14749 if (Offset % ExpectedAlignment != 0 || 14750 // It may fulfill the offset it but the effective alignment may still be 14751 // lower than the expected expression alignment. 14752 CompleteObjectAlignment < ExpectedAlignment) { 14753 // If this happens, we want to determine a sensible culprit of this. 14754 // Intuitively, watching the chain of member expressions from right to 14755 // left, we start with the required alignment (as required by the field 14756 // type) but some packed attribute in that chain has reduced the alignment. 14757 // It may happen that another packed structure increases it again. But if 14758 // we are here such increase has not been enough. So pointing the first 14759 // FieldDecl that either is packed or else its RecordDecl is, 14760 // seems reasonable. 14761 FieldDecl *FD = nullptr; 14762 CharUnits Alignment; 14763 for (FieldDecl *FDI : ReverseMemberChain) { 14764 if (FDI->hasAttr<PackedAttr>() || 14765 FDI->getParent()->hasAttr<PackedAttr>()) { 14766 FD = FDI; 14767 Alignment = std::min( 14768 Context.getTypeAlignInChars(FD->getType()), 14769 Context.getTypeAlignInChars(FD->getParent()->getTypeForDecl())); 14770 break; 14771 } 14772 } 14773 assert(FD && "We did not find a packed FieldDecl!"); 14774 Action(E, FD->getParent(), FD, Alignment); 14775 } 14776 } 14777 14778 void Sema::CheckAddressOfPackedMember(Expr *rhs) { 14779 using namespace std::placeholders; 14780 14781 RefersToMemberWithReducedAlignment( 14782 rhs, std::bind(&Sema::AddPotentialMisalignedMembers, std::ref(*this), _1, 14783 _2, _3, _4)); 14784 } 14785