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