1 //===-- Verifier.cpp - Implement the Module Verifier -----------------------==//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file defines the function verifier interface, that can be used for some
11 // sanity checking of input to the system.
12 //
13 // Note that this does not provide full `Java style' security and verifications,
14 // instead it just tries to ensure that code is well-formed.
15 //
16 //  * Both of a binary operator's parameters are of the same type
17 //  * Verify that the indices of mem access instructions match other operands
18 //  * Verify that arithmetic and other things are only performed on first-class
19 //    types.  Verify that shifts & logicals only happen on integrals f.e.
20 //  * All of the constants in a switch statement are of the correct type
21 //  * The code is in valid SSA form
22 //  * It should be illegal to put a label into any other type (like a structure)
23 //    or to return one. [except constant arrays!]
24 //  * Only phi nodes can be self referential: 'add i32 %0, %0 ; <int>:0' is bad
25 //  * PHI nodes must have an entry for each predecessor, with no extras.
26 //  * PHI nodes must be the first thing in a basic block, all grouped together
27 //  * PHI nodes must have at least one entry
28 //  * All basic blocks should only end with terminator insts, not contain them
29 //  * The entry node to a function must not have predecessors
30 //  * All Instructions must be embedded into a basic block
31 //  * Functions cannot take a void-typed parameter
32 //  * Verify that a function's argument list agrees with it's declared type.
33 //  * It is illegal to specify a name for a void value.
34 //  * It is illegal to have a internal global value with no initializer
35 //  * It is illegal to have a ret instruction that returns a value that does not
36 //    agree with the function return value type.
37 //  * Function call argument types match the function prototype
38 //  * A landing pad is defined by a landingpad instruction, and can be jumped to
39 //    only by the unwind edge of an invoke instruction.
40 //  * A landingpad instruction must be the first non-PHI instruction in the
41 //    block.
42 //  * Landingpad instructions must be in a function with a personality function.
43 //  * All other things that are tested by asserts spread about the code...
44 //
45 //===----------------------------------------------------------------------===//
46 
47 #include "llvm/IR/Verifier.h"
48 #include "llvm/ADT/APFloat.h"
49 #include "llvm/ADT/APInt.h"
50 #include "llvm/ADT/ArrayRef.h"
51 #include "llvm/ADT/DenseMap.h"
52 #include "llvm/ADT/MapVector.h"
53 #include "llvm/ADT/Optional.h"
54 #include "llvm/ADT/STLExtras.h"
55 #include "llvm/ADT/SmallPtrSet.h"
56 #include "llvm/ADT/SmallSet.h"
57 #include "llvm/ADT/SmallVector.h"
58 #include "llvm/ADT/StringExtras.h"
59 #include "llvm/ADT/StringMap.h"
60 #include "llvm/ADT/StringRef.h"
61 #include "llvm/ADT/Twine.h"
62 #include "llvm/ADT/ilist.h"
63 #include "llvm/BinaryFormat/Dwarf.h"
64 #include "llvm/IR/Argument.h"
65 #include "llvm/IR/Attributes.h"
66 #include "llvm/IR/BasicBlock.h"
67 #include "llvm/IR/CFG.h"
68 #include "llvm/IR/CallSite.h"
69 #include "llvm/IR/CallingConv.h"
70 #include "llvm/IR/Comdat.h"
71 #include "llvm/IR/Constant.h"
72 #include "llvm/IR/ConstantRange.h"
73 #include "llvm/IR/Constants.h"
74 #include "llvm/IR/DataLayout.h"
75 #include "llvm/IR/DebugInfo.h"
76 #include "llvm/IR/DebugInfoMetadata.h"
77 #include "llvm/IR/DebugLoc.h"
78 #include "llvm/IR/DerivedTypes.h"
79 #include "llvm/IR/Dominators.h"
80 #include "llvm/IR/Function.h"
81 #include "llvm/IR/GlobalAlias.h"
82 #include "llvm/IR/GlobalValue.h"
83 #include "llvm/IR/GlobalVariable.h"
84 #include "llvm/IR/InlineAsm.h"
85 #include "llvm/IR/InstVisitor.h"
86 #include "llvm/IR/InstrTypes.h"
87 #include "llvm/IR/Instruction.h"
88 #include "llvm/IR/Instructions.h"
89 #include "llvm/IR/IntrinsicInst.h"
90 #include "llvm/IR/Intrinsics.h"
91 #include "llvm/IR/LLVMContext.h"
92 #include "llvm/IR/Metadata.h"
93 #include "llvm/IR/Module.h"
94 #include "llvm/IR/ModuleSlotTracker.h"
95 #include "llvm/IR/PassManager.h"
96 #include "llvm/IR/Statepoint.h"
97 #include "llvm/IR/Type.h"
98 #include "llvm/IR/Use.h"
99 #include "llvm/IR/User.h"
100 #include "llvm/IR/Value.h"
101 #include "llvm/Pass.h"
102 #include "llvm/Support/AtomicOrdering.h"
103 #include "llvm/Support/Casting.h"
104 #include "llvm/Support/CommandLine.h"
105 #include "llvm/Support/Debug.h"
106 #include "llvm/Support/ErrorHandling.h"
107 #include "llvm/Support/MathExtras.h"
108 #include "llvm/Support/raw_ostream.h"
109 #include <algorithm>
110 #include <cassert>
111 #include <cstdint>
112 #include <memory>
113 #include <string>
114 #include <utility>
115 
116 using namespace llvm;
117 
118 namespace llvm {
119 
120 struct VerifierSupport {
121   raw_ostream *OS;
122   const Module &M;
123   ModuleSlotTracker MST;
124   const DataLayout &DL;
125   LLVMContext &Context;
126 
127   /// Track the brokenness of the module while recursively visiting.
128   bool Broken = false;
129   /// Broken debug info can be "recovered" from by stripping the debug info.
130   bool BrokenDebugInfo = false;
131   /// Whether to treat broken debug info as an error.
132   bool TreatBrokenDebugInfoAsError = true;
133 
134   explicit VerifierSupport(raw_ostream *OS, const Module &M)
135       : OS(OS), M(M), MST(&M), DL(M.getDataLayout()), Context(M.getContext()) {}
136 
137 private:
138   void Write(const Module *M) {
139     *OS << "; ModuleID = '" << M->getModuleIdentifier() << "'\n";
140   }
141 
142   void Write(const Value *V) {
143     if (!V)
144       return;
145     if (isa<Instruction>(V)) {
146       V->print(*OS, MST);
147       *OS << '\n';
148     } else {
149       V->printAsOperand(*OS, true, MST);
150       *OS << '\n';
151     }
152   }
153 
154   void Write(ImmutableCallSite CS) {
155     Write(CS.getInstruction());
156   }
157 
158   void Write(const Metadata *MD) {
159     if (!MD)
160       return;
161     MD->print(*OS, MST, &M);
162     *OS << '\n';
163   }
164 
165   template <class T> void Write(const MDTupleTypedArrayWrapper<T> &MD) {
166     Write(MD.get());
167   }
168 
169   void Write(const NamedMDNode *NMD) {
170     if (!NMD)
171       return;
172     NMD->print(*OS, MST);
173     *OS << '\n';
174   }
175 
176   void Write(Type *T) {
177     if (!T)
178       return;
179     *OS << ' ' << *T;
180   }
181 
182   void Write(const Comdat *C) {
183     if (!C)
184       return;
185     *OS << *C;
186   }
187 
188   void Write(const APInt *AI) {
189     if (!AI)
190       return;
191     *OS << *AI << '\n';
192   }
193 
194   void Write(const unsigned i) { *OS << i << '\n'; }
195 
196   template <typename T> void Write(ArrayRef<T> Vs) {
197     for (const T &V : Vs)
198       Write(V);
199   }
200 
201   template <typename T1, typename... Ts>
202   void WriteTs(const T1 &V1, const Ts &... Vs) {
203     Write(V1);
204     WriteTs(Vs...);
205   }
206 
207   template <typename... Ts> void WriteTs() {}
208 
209 public:
210   /// \brief A check failed, so printout out the condition and the message.
211   ///
212   /// This provides a nice place to put a breakpoint if you want to see why
213   /// something is not correct.
214   void CheckFailed(const Twine &Message) {
215     if (OS)
216       *OS << Message << '\n';
217     Broken = true;
218   }
219 
220   /// \brief A check failed (with values to print).
221   ///
222   /// This calls the Message-only version so that the above is easier to set a
223   /// breakpoint on.
224   template <typename T1, typename... Ts>
225   void CheckFailed(const Twine &Message, const T1 &V1, const Ts &... Vs) {
226     CheckFailed(Message);
227     if (OS)
228       WriteTs(V1, Vs...);
229   }
230 
231   /// A debug info check failed.
232   void DebugInfoCheckFailed(const Twine &Message) {
233     if (OS)
234       *OS << Message << '\n';
235     Broken |= TreatBrokenDebugInfoAsError;
236     BrokenDebugInfo = true;
237   }
238 
239   /// A debug info check failed (with values to print).
240   template <typename T1, typename... Ts>
241   void DebugInfoCheckFailed(const Twine &Message, const T1 &V1,
242                             const Ts &... Vs) {
243     DebugInfoCheckFailed(Message);
244     if (OS)
245       WriteTs(V1, Vs...);
246   }
247 };
248 
249 } // namespace llvm
250 
251 namespace {
252 
253 class Verifier : public InstVisitor<Verifier>, VerifierSupport {
254   friend class InstVisitor<Verifier>;
255 
256   DominatorTree DT;
257 
258   /// \brief When verifying a basic block, keep track of all of the
259   /// instructions we have seen so far.
260   ///
261   /// This allows us to do efficient dominance checks for the case when an
262   /// instruction has an operand that is an instruction in the same block.
263   SmallPtrSet<Instruction *, 16> InstsInThisBlock;
264 
265   /// \brief Keep track of the metadata nodes that have been checked already.
266   SmallPtrSet<const Metadata *, 32> MDNodes;
267 
268   /// Keep track which DISubprogram is attached to which function.
269   DenseMap<const DISubprogram *, const Function *> DISubprogramAttachments;
270 
271   /// Track all DICompileUnits visited.
272   SmallPtrSet<const Metadata *, 2> CUVisited;
273 
274   /// \brief The result type for a landingpad.
275   Type *LandingPadResultTy;
276 
277   /// \brief Whether we've seen a call to @llvm.localescape in this function
278   /// already.
279   bool SawFrameEscape;
280 
281   /// Whether the current function has a DISubprogram attached to it.
282   bool HasDebugInfo = false;
283 
284   /// Stores the count of how many objects were passed to llvm.localescape for a
285   /// given function and the largest index passed to llvm.localrecover.
286   DenseMap<Function *, std::pair<unsigned, unsigned>> FrameEscapeInfo;
287 
288   // Maps catchswitches and cleanuppads that unwind to siblings to the
289   // terminators that indicate the unwind, used to detect cycles therein.
290   MapVector<Instruction *, TerminatorInst *> SiblingFuncletInfo;
291 
292   /// Cache of constants visited in search of ConstantExprs.
293   SmallPtrSet<const Constant *, 32> ConstantExprVisited;
294 
295   /// Cache of declarations of the llvm.experimental.deoptimize.<ty> intrinsic.
296   SmallVector<const Function *, 4> DeoptimizeDeclarations;
297 
298   // Verify that this GlobalValue is only used in this module.
299   // This map is used to avoid visiting uses twice. We can arrive at a user
300   // twice, if they have multiple operands. In particular for very large
301   // constant expressions, we can arrive at a particular user many times.
302   SmallPtrSet<const Value *, 32> GlobalValueVisited;
303 
304   // Keeps track of duplicate function argument debug info.
305   SmallVector<const DILocalVariable *, 16> DebugFnArgs;
306 
307   TBAAVerifier TBAAVerifyHelper;
308 
309   void checkAtomicMemAccessSize(Type *Ty, const Instruction *I);
310 
311 public:
312   explicit Verifier(raw_ostream *OS, bool ShouldTreatBrokenDebugInfoAsError,
313                     const Module &M)
314       : VerifierSupport(OS, M), LandingPadResultTy(nullptr),
315         SawFrameEscape(false), TBAAVerifyHelper(this) {
316     TreatBrokenDebugInfoAsError = ShouldTreatBrokenDebugInfoAsError;
317   }
318 
319   bool hasBrokenDebugInfo() const { return BrokenDebugInfo; }
320 
321   bool verify(const Function &F) {
322     assert(F.getParent() == &M &&
323            "An instance of this class only works with a specific module!");
324 
325     // First ensure the function is well-enough formed to compute dominance
326     // information, and directly compute a dominance tree. We don't rely on the
327     // pass manager to provide this as it isolates us from a potentially
328     // out-of-date dominator tree and makes it significantly more complex to run
329     // this code outside of a pass manager.
330     // FIXME: It's really gross that we have to cast away constness here.
331     if (!F.empty())
332       DT.recalculate(const_cast<Function &>(F));
333 
334     for (const BasicBlock &BB : F) {
335       if (!BB.empty() && BB.back().isTerminator())
336         continue;
337 
338       if (OS) {
339         *OS << "Basic Block in function '" << F.getName()
340             << "' does not have terminator!\n";
341         BB.printAsOperand(*OS, true, MST);
342         *OS << "\n";
343       }
344       return false;
345     }
346 
347     Broken = false;
348     // FIXME: We strip const here because the inst visitor strips const.
349     visit(const_cast<Function &>(F));
350     verifySiblingFuncletUnwinds();
351     InstsInThisBlock.clear();
352     DebugFnArgs.clear();
353     LandingPadResultTy = nullptr;
354     SawFrameEscape = false;
355     SiblingFuncletInfo.clear();
356 
357     return !Broken;
358   }
359 
360   /// Verify the module that this instance of \c Verifier was initialized with.
361   bool verify() {
362     Broken = false;
363 
364     // Collect all declarations of the llvm.experimental.deoptimize intrinsic.
365     for (const Function &F : M)
366       if (F.getIntrinsicID() == Intrinsic::experimental_deoptimize)
367         DeoptimizeDeclarations.push_back(&F);
368 
369     // Now that we've visited every function, verify that we never asked to
370     // recover a frame index that wasn't escaped.
371     verifyFrameRecoverIndices();
372     for (const GlobalVariable &GV : M.globals())
373       visitGlobalVariable(GV);
374 
375     for (const GlobalAlias &GA : M.aliases())
376       visitGlobalAlias(GA);
377 
378     for (const NamedMDNode &NMD : M.named_metadata())
379       visitNamedMDNode(NMD);
380 
381     for (const StringMapEntry<Comdat> &SMEC : M.getComdatSymbolTable())
382       visitComdat(SMEC.getValue());
383 
384     visitModuleFlags(M);
385     visitModuleIdents(M);
386 
387     verifyCompileUnits();
388 
389     verifyDeoptimizeCallingConvs();
390     DISubprogramAttachments.clear();
391     return !Broken;
392   }
393 
394 private:
395   // Verification methods...
396   void visitGlobalValue(const GlobalValue &GV);
397   void visitGlobalVariable(const GlobalVariable &GV);
398   void visitGlobalAlias(const GlobalAlias &GA);
399   void visitAliaseeSubExpr(const GlobalAlias &A, const Constant &C);
400   void visitAliaseeSubExpr(SmallPtrSetImpl<const GlobalAlias *> &Visited,
401                            const GlobalAlias &A, const Constant &C);
402   void visitNamedMDNode(const NamedMDNode &NMD);
403   void visitMDNode(const MDNode &MD);
404   void visitMetadataAsValue(const MetadataAsValue &MD, Function *F);
405   void visitValueAsMetadata(const ValueAsMetadata &MD, Function *F);
406   void visitComdat(const Comdat &C);
407   void visitModuleIdents(const Module &M);
408   void visitModuleFlags(const Module &M);
409   void visitModuleFlag(const MDNode *Op,
410                        DenseMap<const MDString *, const MDNode *> &SeenIDs,
411                        SmallVectorImpl<const MDNode *> &Requirements);
412   void visitFunction(const Function &F);
413   void visitBasicBlock(BasicBlock &BB);
414   void visitRangeMetadata(Instruction &I, MDNode *Range, Type *Ty);
415   void visitDereferenceableMetadata(Instruction &I, MDNode *MD);
416 
417   template <class Ty> bool isValidMetadataArray(const MDTuple &N);
418 #define HANDLE_SPECIALIZED_MDNODE_LEAF(CLASS) void visit##CLASS(const CLASS &N);
419 #include "llvm/IR/Metadata.def"
420   void visitDIScope(const DIScope &N);
421   void visitDIVariable(const DIVariable &N);
422   void visitDILexicalBlockBase(const DILexicalBlockBase &N);
423   void visitDITemplateParameter(const DITemplateParameter &N);
424 
425   void visitTemplateParams(const MDNode &N, const Metadata &RawParams);
426 
427   // InstVisitor overrides...
428   using InstVisitor<Verifier>::visit;
429   void visit(Instruction &I);
430 
431   void visitTruncInst(TruncInst &I);
432   void visitZExtInst(ZExtInst &I);
433   void visitSExtInst(SExtInst &I);
434   void visitFPTruncInst(FPTruncInst &I);
435   void visitFPExtInst(FPExtInst &I);
436   void visitFPToUIInst(FPToUIInst &I);
437   void visitFPToSIInst(FPToSIInst &I);
438   void visitUIToFPInst(UIToFPInst &I);
439   void visitSIToFPInst(SIToFPInst &I);
440   void visitIntToPtrInst(IntToPtrInst &I);
441   void visitPtrToIntInst(PtrToIntInst &I);
442   void visitBitCastInst(BitCastInst &I);
443   void visitAddrSpaceCastInst(AddrSpaceCastInst &I);
444   void visitPHINode(PHINode &PN);
445   void visitBinaryOperator(BinaryOperator &B);
446   void visitICmpInst(ICmpInst &IC);
447   void visitFCmpInst(FCmpInst &FC);
448   void visitExtractElementInst(ExtractElementInst &EI);
449   void visitInsertElementInst(InsertElementInst &EI);
450   void visitShuffleVectorInst(ShuffleVectorInst &EI);
451   void visitVAArgInst(VAArgInst &VAA) { visitInstruction(VAA); }
452   void visitCallInst(CallInst &CI);
453   void visitInvokeInst(InvokeInst &II);
454   void visitGetElementPtrInst(GetElementPtrInst &GEP);
455   void visitLoadInst(LoadInst &LI);
456   void visitStoreInst(StoreInst &SI);
457   void verifyDominatesUse(Instruction &I, unsigned i);
458   void visitInstruction(Instruction &I);
459   void visitTerminatorInst(TerminatorInst &I);
460   void visitBranchInst(BranchInst &BI);
461   void visitReturnInst(ReturnInst &RI);
462   void visitSwitchInst(SwitchInst &SI);
463   void visitIndirectBrInst(IndirectBrInst &BI);
464   void visitSelectInst(SelectInst &SI);
465   void visitUserOp1(Instruction &I);
466   void visitUserOp2(Instruction &I) { visitUserOp1(I); }
467   void visitIntrinsicCallSite(Intrinsic::ID ID, CallSite CS);
468   void visitConstrainedFPIntrinsic(ConstrainedFPIntrinsic &FPI);
469   void visitDbgIntrinsic(StringRef Kind, DbgInfoIntrinsic &DII);
470   void visitAtomicCmpXchgInst(AtomicCmpXchgInst &CXI);
471   void visitAtomicRMWInst(AtomicRMWInst &RMWI);
472   void visitFenceInst(FenceInst &FI);
473   void visitAllocaInst(AllocaInst &AI);
474   void visitExtractValueInst(ExtractValueInst &EVI);
475   void visitInsertValueInst(InsertValueInst &IVI);
476   void visitEHPadPredecessors(Instruction &I);
477   void visitLandingPadInst(LandingPadInst &LPI);
478   void visitResumeInst(ResumeInst &RI);
479   void visitCatchPadInst(CatchPadInst &CPI);
480   void visitCatchReturnInst(CatchReturnInst &CatchReturn);
481   void visitCleanupPadInst(CleanupPadInst &CPI);
482   void visitFuncletPadInst(FuncletPadInst &FPI);
483   void visitCatchSwitchInst(CatchSwitchInst &CatchSwitch);
484   void visitCleanupReturnInst(CleanupReturnInst &CRI);
485 
486   void verifyCallSite(CallSite CS);
487   void verifySwiftErrorCallSite(CallSite CS, const Value *SwiftErrorVal);
488   void verifySwiftErrorValue(const Value *SwiftErrorVal);
489   void verifyMustTailCall(CallInst &CI);
490   bool performTypeCheck(Intrinsic::ID ID, Function *F, Type *Ty, int VT,
491                         unsigned ArgNo, std::string &Suffix);
492   bool verifyAttributeCount(AttributeList Attrs, unsigned Params);
493   void verifyAttributeTypes(AttributeSet Attrs, bool IsFunction,
494                             const Value *V);
495   void verifyParameterAttrs(AttributeSet Attrs, Type *Ty, const Value *V);
496   void verifyFunctionAttrs(FunctionType *FT, AttributeList Attrs,
497                            const Value *V);
498   void verifyFunctionMetadata(ArrayRef<std::pair<unsigned, MDNode *>> MDs);
499 
500   void visitConstantExprsRecursively(const Constant *EntryC);
501   void visitConstantExpr(const ConstantExpr *CE);
502   void verifyStatepoint(ImmutableCallSite CS);
503   void verifyFrameRecoverIndices();
504   void verifySiblingFuncletUnwinds();
505 
506   void verifyFragmentExpression(const DbgInfoIntrinsic &I);
507   template <typename ValueOrMetadata>
508   void verifyFragmentExpression(const DIVariable &V,
509                                 DIExpression::FragmentInfo Fragment,
510                                 ValueOrMetadata *Desc);
511   void verifyFnArgs(const DbgInfoIntrinsic &I);
512 
513   /// Module-level debug info verification...
514   void verifyCompileUnits();
515 
516   /// Module-level verification that all @llvm.experimental.deoptimize
517   /// declarations share the same calling convention.
518   void verifyDeoptimizeCallingConvs();
519 };
520 
521 } // end anonymous namespace
522 
523 /// We know that cond should be true, if not print an error message.
524 #define Assert(C, ...) \
525   do { if (!(C)) { CheckFailed(__VA_ARGS__); return; } } while (false)
526 
527 /// We know that a debug info condition should be true, if not print
528 /// an error message.
529 #define AssertDI(C, ...) \
530   do { if (!(C)) { DebugInfoCheckFailed(__VA_ARGS__); return; } } while (false)
531 
532 void Verifier::visit(Instruction &I) {
533   for (unsigned i = 0, e = I.getNumOperands(); i != e; ++i)
534     Assert(I.getOperand(i) != nullptr, "Operand is null", &I);
535   InstVisitor<Verifier>::visit(I);
536 }
537 
538 // Helper to recursively iterate over indirect users. By
539 // returning false, the callback can ask to stop recursing
540 // further.
541 static void forEachUser(const Value *User,
542                         SmallPtrSet<const Value *, 32> &Visited,
543                         llvm::function_ref<bool(const Value *)> Callback) {
544   if (!Visited.insert(User).second)
545     return;
546   for (const Value *TheNextUser : User->materialized_users())
547     if (Callback(TheNextUser))
548       forEachUser(TheNextUser, Visited, Callback);
549 }
550 
551 void Verifier::visitGlobalValue(const GlobalValue &GV) {
552   Assert(!GV.isDeclaration() || GV.hasValidDeclarationLinkage(),
553          "Global is external, but doesn't have external or weak linkage!", &GV);
554 
555   Assert(GV.getAlignment() <= Value::MaximumAlignment,
556          "huge alignment values are unsupported", &GV);
557   Assert(!GV.hasAppendingLinkage() || isa<GlobalVariable>(GV),
558          "Only global variables can have appending linkage!", &GV);
559 
560   if (GV.hasAppendingLinkage()) {
561     const GlobalVariable *GVar = dyn_cast<GlobalVariable>(&GV);
562     Assert(GVar && GVar->getValueType()->isArrayTy(),
563            "Only global arrays can have appending linkage!", GVar);
564   }
565 
566   if (GV.isDeclarationForLinker())
567     Assert(!GV.hasComdat(), "Declaration may not be in a Comdat!", &GV);
568 
569   if (GV.hasDLLImportStorageClass()) {
570     Assert(!GV.isDSOLocal(),
571            "GlobalValue with DLLImport Storage is dso_local!", &GV);
572 
573     Assert((GV.isDeclaration() && GV.hasExternalLinkage()) ||
574                GV.hasAvailableExternallyLinkage(),
575            "Global is marked as dllimport, but not external", &GV);
576   }
577 
578   if (GV.hasLocalLinkage())
579     Assert(GV.isDSOLocal(),
580            "GlobalValue with private or internal linkage must be dso_local!",
581            &GV);
582 
583   if (!GV.hasDefaultVisibility() && !GV.hasExternalWeakLinkage())
584     Assert(GV.isDSOLocal(),
585            "GlobalValue with non default visibility must be dso_local!", &GV);
586 
587   forEachUser(&GV, GlobalValueVisited, [&](const Value *V) -> bool {
588     if (const Instruction *I = dyn_cast<Instruction>(V)) {
589       if (!I->getParent() || !I->getParent()->getParent())
590         CheckFailed("Global is referenced by parentless instruction!", &GV, &M,
591                     I);
592       else if (I->getParent()->getParent()->getParent() != &M)
593         CheckFailed("Global is referenced in a different module!", &GV, &M, I,
594                     I->getParent()->getParent(),
595                     I->getParent()->getParent()->getParent());
596       return false;
597     } else if (const Function *F = dyn_cast<Function>(V)) {
598       if (F->getParent() != &M)
599         CheckFailed("Global is used by function in a different module", &GV, &M,
600                     F, F->getParent());
601       return false;
602     }
603     return true;
604   });
605 }
606 
607 void Verifier::visitGlobalVariable(const GlobalVariable &GV) {
608   if (GV.hasInitializer()) {
609     Assert(GV.getInitializer()->getType() == GV.getValueType(),
610            "Global variable initializer type does not match global "
611            "variable type!",
612            &GV);
613     // If the global has common linkage, it must have a zero initializer and
614     // cannot be constant.
615     if (GV.hasCommonLinkage()) {
616       Assert(GV.getInitializer()->isNullValue(),
617              "'common' global must have a zero initializer!", &GV);
618       Assert(!GV.isConstant(), "'common' global may not be marked constant!",
619              &GV);
620       Assert(!GV.hasComdat(), "'common' global may not be in a Comdat!", &GV);
621     }
622   }
623 
624   if (GV.hasName() && (GV.getName() == "llvm.global_ctors" ||
625                        GV.getName() == "llvm.global_dtors")) {
626     Assert(!GV.hasInitializer() || GV.hasAppendingLinkage(),
627            "invalid linkage for intrinsic global variable", &GV);
628     // Don't worry about emitting an error for it not being an array,
629     // visitGlobalValue will complain on appending non-array.
630     if (ArrayType *ATy = dyn_cast<ArrayType>(GV.getValueType())) {
631       StructType *STy = dyn_cast<StructType>(ATy->getElementType());
632       PointerType *FuncPtrTy =
633           FunctionType::get(Type::getVoidTy(Context), false)->getPointerTo();
634       // FIXME: Reject the 2-field form in LLVM 4.0.
635       Assert(STy &&
636                  (STy->getNumElements() == 2 || STy->getNumElements() == 3) &&
637                  STy->getTypeAtIndex(0u)->isIntegerTy(32) &&
638                  STy->getTypeAtIndex(1) == FuncPtrTy,
639              "wrong type for intrinsic global variable", &GV);
640       if (STy->getNumElements() == 3) {
641         Type *ETy = STy->getTypeAtIndex(2);
642         Assert(ETy->isPointerTy() &&
643                    cast<PointerType>(ETy)->getElementType()->isIntegerTy(8),
644                "wrong type for intrinsic global variable", &GV);
645       }
646     }
647   }
648 
649   if (GV.hasName() && (GV.getName() == "llvm.used" ||
650                        GV.getName() == "llvm.compiler.used")) {
651     Assert(!GV.hasInitializer() || GV.hasAppendingLinkage(),
652            "invalid linkage for intrinsic global variable", &GV);
653     Type *GVType = GV.getValueType();
654     if (ArrayType *ATy = dyn_cast<ArrayType>(GVType)) {
655       PointerType *PTy = dyn_cast<PointerType>(ATy->getElementType());
656       Assert(PTy, "wrong type for intrinsic global variable", &GV);
657       if (GV.hasInitializer()) {
658         const Constant *Init = GV.getInitializer();
659         const ConstantArray *InitArray = dyn_cast<ConstantArray>(Init);
660         Assert(InitArray, "wrong initalizer for intrinsic global variable",
661                Init);
662         for (Value *Op : InitArray->operands()) {
663           Value *V = Op->stripPointerCastsNoFollowAliases();
664           Assert(isa<GlobalVariable>(V) || isa<Function>(V) ||
665                      isa<GlobalAlias>(V),
666                  "invalid llvm.used member", V);
667           Assert(V->hasName(), "members of llvm.used must be named", V);
668         }
669       }
670     }
671   }
672 
673   // Visit any debug info attachments.
674   SmallVector<MDNode *, 1> MDs;
675   GV.getMetadata(LLVMContext::MD_dbg, MDs);
676   for (auto *MD : MDs) {
677     if (auto *GVE = dyn_cast<DIGlobalVariableExpression>(MD))
678       visitDIGlobalVariableExpression(*GVE);
679     else
680       AssertDI(false, "!dbg attachment of global variable must be a "
681                       "DIGlobalVariableExpression");
682   }
683 
684   if (!GV.hasInitializer()) {
685     visitGlobalValue(GV);
686     return;
687   }
688 
689   // Walk any aggregate initializers looking for bitcasts between address spaces
690   visitConstantExprsRecursively(GV.getInitializer());
691 
692   visitGlobalValue(GV);
693 }
694 
695 void Verifier::visitAliaseeSubExpr(const GlobalAlias &GA, const Constant &C) {
696   SmallPtrSet<const GlobalAlias*, 4> Visited;
697   Visited.insert(&GA);
698   visitAliaseeSubExpr(Visited, GA, C);
699 }
700 
701 void Verifier::visitAliaseeSubExpr(SmallPtrSetImpl<const GlobalAlias*> &Visited,
702                                    const GlobalAlias &GA, const Constant &C) {
703   if (const auto *GV = dyn_cast<GlobalValue>(&C)) {
704     Assert(!GV->isDeclarationForLinker(), "Alias must point to a definition",
705            &GA);
706 
707     if (const auto *GA2 = dyn_cast<GlobalAlias>(GV)) {
708       Assert(Visited.insert(GA2).second, "Aliases cannot form a cycle", &GA);
709 
710       Assert(!GA2->isInterposable(), "Alias cannot point to an interposable alias",
711              &GA);
712     } else {
713       // Only continue verifying subexpressions of GlobalAliases.
714       // Do not recurse into global initializers.
715       return;
716     }
717   }
718 
719   if (const auto *CE = dyn_cast<ConstantExpr>(&C))
720     visitConstantExprsRecursively(CE);
721 
722   for (const Use &U : C.operands()) {
723     Value *V = &*U;
724     if (const auto *GA2 = dyn_cast<GlobalAlias>(V))
725       visitAliaseeSubExpr(Visited, GA, *GA2->getAliasee());
726     else if (const auto *C2 = dyn_cast<Constant>(V))
727       visitAliaseeSubExpr(Visited, GA, *C2);
728   }
729 }
730 
731 void Verifier::visitGlobalAlias(const GlobalAlias &GA) {
732   Assert(GlobalAlias::isValidLinkage(GA.getLinkage()),
733          "Alias should have private, internal, linkonce, weak, linkonce_odr, "
734          "weak_odr, or external linkage!",
735          &GA);
736   const Constant *Aliasee = GA.getAliasee();
737   Assert(Aliasee, "Aliasee cannot be NULL!", &GA);
738   Assert(GA.getType() == Aliasee->getType(),
739          "Alias and aliasee types should match!", &GA);
740 
741   Assert(isa<GlobalValue>(Aliasee) || isa<ConstantExpr>(Aliasee),
742          "Aliasee should be either GlobalValue or ConstantExpr", &GA);
743 
744   visitAliaseeSubExpr(GA, *Aliasee);
745 
746   visitGlobalValue(GA);
747 }
748 
749 void Verifier::visitNamedMDNode(const NamedMDNode &NMD) {
750   // There used to be various other llvm.dbg.* nodes, but we don't support
751   // upgrading them and we want to reserve the namespace for future uses.
752   if (NMD.getName().startswith("llvm.dbg."))
753     AssertDI(NMD.getName() == "llvm.dbg.cu",
754              "unrecognized named metadata node in the llvm.dbg namespace",
755              &NMD);
756   for (const MDNode *MD : NMD.operands()) {
757     if (NMD.getName() == "llvm.dbg.cu")
758       AssertDI(MD && isa<DICompileUnit>(MD), "invalid compile unit", &NMD, MD);
759 
760     if (!MD)
761       continue;
762 
763     visitMDNode(*MD);
764   }
765 }
766 
767 void Verifier::visitMDNode(const MDNode &MD) {
768   // Only visit each node once.  Metadata can be mutually recursive, so this
769   // avoids infinite recursion here, as well as being an optimization.
770   if (!MDNodes.insert(&MD).second)
771     return;
772 
773   switch (MD.getMetadataID()) {
774   default:
775     llvm_unreachable("Invalid MDNode subclass");
776   case Metadata::MDTupleKind:
777     break;
778 #define HANDLE_SPECIALIZED_MDNODE_LEAF(CLASS)                                  \
779   case Metadata::CLASS##Kind:                                                  \
780     visit##CLASS(cast<CLASS>(MD));                                             \
781     break;
782 #include "llvm/IR/Metadata.def"
783   }
784 
785   for (const Metadata *Op : MD.operands()) {
786     if (!Op)
787       continue;
788     Assert(!isa<LocalAsMetadata>(Op), "Invalid operand for global metadata!",
789            &MD, Op);
790     if (auto *N = dyn_cast<MDNode>(Op)) {
791       visitMDNode(*N);
792       continue;
793     }
794     if (auto *V = dyn_cast<ValueAsMetadata>(Op)) {
795       visitValueAsMetadata(*V, nullptr);
796       continue;
797     }
798   }
799 
800   // Check these last, so we diagnose problems in operands first.
801   Assert(!MD.isTemporary(), "Expected no forward declarations!", &MD);
802   Assert(MD.isResolved(), "All nodes should be resolved!", &MD);
803 }
804 
805 void Verifier::visitValueAsMetadata(const ValueAsMetadata &MD, Function *F) {
806   Assert(MD.getValue(), "Expected valid value", &MD);
807   Assert(!MD.getValue()->getType()->isMetadataTy(),
808          "Unexpected metadata round-trip through values", &MD, MD.getValue());
809 
810   auto *L = dyn_cast<LocalAsMetadata>(&MD);
811   if (!L)
812     return;
813 
814   Assert(F, "function-local metadata used outside a function", L);
815 
816   // If this was an instruction, bb, or argument, verify that it is in the
817   // function that we expect.
818   Function *ActualF = nullptr;
819   if (Instruction *I = dyn_cast<Instruction>(L->getValue())) {
820     Assert(I->getParent(), "function-local metadata not in basic block", L, I);
821     ActualF = I->getParent()->getParent();
822   } else if (BasicBlock *BB = dyn_cast<BasicBlock>(L->getValue()))
823     ActualF = BB->getParent();
824   else if (Argument *A = dyn_cast<Argument>(L->getValue()))
825     ActualF = A->getParent();
826   assert(ActualF && "Unimplemented function local metadata case!");
827 
828   Assert(ActualF == F, "function-local metadata used in wrong function", L);
829 }
830 
831 void Verifier::visitMetadataAsValue(const MetadataAsValue &MDV, Function *F) {
832   Metadata *MD = MDV.getMetadata();
833   if (auto *N = dyn_cast<MDNode>(MD)) {
834     visitMDNode(*N);
835     return;
836   }
837 
838   // Only visit each node once.  Metadata can be mutually recursive, so this
839   // avoids infinite recursion here, as well as being an optimization.
840   if (!MDNodes.insert(MD).second)
841     return;
842 
843   if (auto *V = dyn_cast<ValueAsMetadata>(MD))
844     visitValueAsMetadata(*V, F);
845 }
846 
847 static bool isType(const Metadata *MD) { return !MD || isa<DIType>(MD); }
848 static bool isScope(const Metadata *MD) { return !MD || isa<DIScope>(MD); }
849 static bool isDINode(const Metadata *MD) { return !MD || isa<DINode>(MD); }
850 
851 void Verifier::visitDILocation(const DILocation &N) {
852   AssertDI(N.getRawScope() && isa<DILocalScope>(N.getRawScope()),
853            "location requires a valid scope", &N, N.getRawScope());
854   if (auto *IA = N.getRawInlinedAt())
855     AssertDI(isa<DILocation>(IA), "inlined-at should be a location", &N, IA);
856   if (auto *SP = dyn_cast<DISubprogram>(N.getRawScope()))
857     AssertDI(SP->isDefinition(), "scope points into the type hierarchy", &N);
858 }
859 
860 void Verifier::visitGenericDINode(const GenericDINode &N) {
861   AssertDI(N.getTag(), "invalid tag", &N);
862 }
863 
864 void Verifier::visitDIScope(const DIScope &N) {
865   if (auto *F = N.getRawFile())
866     AssertDI(isa<DIFile>(F), "invalid file", &N, F);
867 }
868 
869 void Verifier::visitDISubrange(const DISubrange &N) {
870   AssertDI(N.getTag() == dwarf::DW_TAG_subrange_type, "invalid tag", &N);
871   auto Count = N.getCount();
872   AssertDI(Count, "Count must either be a signed constant or a DIVariable",
873            &N);
874   AssertDI(!Count.is<ConstantInt*>() ||
875                Count.get<ConstantInt*>()->getSExtValue() >= -1,
876            "invalid subrange count", &N);
877 }
878 
879 void Verifier::visitDIEnumerator(const DIEnumerator &N) {
880   AssertDI(N.getTag() == dwarf::DW_TAG_enumerator, "invalid tag", &N);
881 }
882 
883 void Verifier::visitDIBasicType(const DIBasicType &N) {
884   AssertDI(N.getTag() == dwarf::DW_TAG_base_type ||
885                N.getTag() == dwarf::DW_TAG_unspecified_type,
886            "invalid tag", &N);
887 }
888 
889 void Verifier::visitDIDerivedType(const DIDerivedType &N) {
890   // Common scope checks.
891   visitDIScope(N);
892 
893   AssertDI(N.getTag() == dwarf::DW_TAG_typedef ||
894                N.getTag() == dwarf::DW_TAG_pointer_type ||
895                N.getTag() == dwarf::DW_TAG_ptr_to_member_type ||
896                N.getTag() == dwarf::DW_TAG_reference_type ||
897                N.getTag() == dwarf::DW_TAG_rvalue_reference_type ||
898                N.getTag() == dwarf::DW_TAG_const_type ||
899                N.getTag() == dwarf::DW_TAG_volatile_type ||
900                N.getTag() == dwarf::DW_TAG_restrict_type ||
901                N.getTag() == dwarf::DW_TAG_atomic_type ||
902                N.getTag() == dwarf::DW_TAG_member ||
903                N.getTag() == dwarf::DW_TAG_inheritance ||
904                N.getTag() == dwarf::DW_TAG_friend,
905            "invalid tag", &N);
906   if (N.getTag() == dwarf::DW_TAG_ptr_to_member_type) {
907     AssertDI(isType(N.getRawExtraData()), "invalid pointer to member type", &N,
908              N.getRawExtraData());
909   }
910 
911   AssertDI(isScope(N.getRawScope()), "invalid scope", &N, N.getRawScope());
912   AssertDI(isType(N.getRawBaseType()), "invalid base type", &N,
913            N.getRawBaseType());
914 
915   if (N.getDWARFAddressSpace()) {
916     AssertDI(N.getTag() == dwarf::DW_TAG_pointer_type ||
917                  N.getTag() == dwarf::DW_TAG_reference_type,
918              "DWARF address space only applies to pointer or reference types",
919              &N);
920   }
921 }
922 
923 /// Detect mutually exclusive flags.
924 static bool hasConflictingReferenceFlags(unsigned Flags) {
925   return ((Flags & DINode::FlagLValueReference) &&
926           (Flags & DINode::FlagRValueReference)) ||
927          ((Flags & DINode::FlagTypePassByValue) &&
928           (Flags & DINode::FlagTypePassByReference));
929 }
930 
931 void Verifier::visitTemplateParams(const MDNode &N, const Metadata &RawParams) {
932   auto *Params = dyn_cast<MDTuple>(&RawParams);
933   AssertDI(Params, "invalid template params", &N, &RawParams);
934   for (Metadata *Op : Params->operands()) {
935     AssertDI(Op && isa<DITemplateParameter>(Op), "invalid template parameter",
936              &N, Params, Op);
937   }
938 }
939 
940 void Verifier::visitDICompositeType(const DICompositeType &N) {
941   // Common scope checks.
942   visitDIScope(N);
943 
944   AssertDI(N.getTag() == dwarf::DW_TAG_array_type ||
945                N.getTag() == dwarf::DW_TAG_structure_type ||
946                N.getTag() == dwarf::DW_TAG_union_type ||
947                N.getTag() == dwarf::DW_TAG_enumeration_type ||
948                N.getTag() == dwarf::DW_TAG_class_type ||
949                N.getTag() == dwarf::DW_TAG_variant_part,
950            "invalid tag", &N);
951 
952   AssertDI(isScope(N.getRawScope()), "invalid scope", &N, N.getRawScope());
953   AssertDI(isType(N.getRawBaseType()), "invalid base type", &N,
954            N.getRawBaseType());
955 
956   AssertDI(!N.getRawElements() || isa<MDTuple>(N.getRawElements()),
957            "invalid composite elements", &N, N.getRawElements());
958   AssertDI(isType(N.getRawVTableHolder()), "invalid vtable holder", &N,
959            N.getRawVTableHolder());
960   AssertDI(!hasConflictingReferenceFlags(N.getFlags()),
961            "invalid reference flags", &N);
962 
963   if (N.isVector()) {
964     const DINodeArray Elements = N.getElements();
965     AssertDI(Elements.size() == 1 &&
966              Elements[0]->getTag() == dwarf::DW_TAG_subrange_type,
967              "invalid vector, expected one element of type subrange", &N);
968   }
969 
970   if (auto *Params = N.getRawTemplateParams())
971     visitTemplateParams(N, *Params);
972 
973   if (N.getTag() == dwarf::DW_TAG_class_type ||
974       N.getTag() == dwarf::DW_TAG_union_type) {
975     AssertDI(N.getFile() && !N.getFile()->getFilename().empty(),
976              "class/union requires a filename", &N, N.getFile());
977   }
978 
979   if (auto *D = N.getRawDiscriminator()) {
980     AssertDI(isa<DIDerivedType>(D) && N.getTag() == dwarf::DW_TAG_variant_part,
981              "discriminator can only appear on variant part");
982   }
983 }
984 
985 void Verifier::visitDISubroutineType(const DISubroutineType &N) {
986   AssertDI(N.getTag() == dwarf::DW_TAG_subroutine_type, "invalid tag", &N);
987   if (auto *Types = N.getRawTypeArray()) {
988     AssertDI(isa<MDTuple>(Types), "invalid composite elements", &N, Types);
989     for (Metadata *Ty : N.getTypeArray()->operands()) {
990       AssertDI(isType(Ty), "invalid subroutine type ref", &N, Types, Ty);
991     }
992   }
993   AssertDI(!hasConflictingReferenceFlags(N.getFlags()),
994            "invalid reference flags", &N);
995 }
996 
997 void Verifier::visitDIFile(const DIFile &N) {
998   AssertDI(N.getTag() == dwarf::DW_TAG_file_type, "invalid tag", &N);
999   Optional<DIFile::ChecksumInfo<StringRef>> Checksum = N.getChecksum();
1000   if (Checksum) {
1001     AssertDI(Checksum->Kind <= DIFile::ChecksumKind::CSK_Last,
1002              "invalid checksum kind", &N);
1003     size_t Size;
1004     switch (Checksum->Kind) {
1005     case DIFile::CSK_MD5:
1006       Size = 32;
1007       break;
1008     case DIFile::CSK_SHA1:
1009       Size = 40;
1010       break;
1011     }
1012     AssertDI(Checksum->Value.size() == Size, "invalid checksum length", &N);
1013     AssertDI(Checksum->Value.find_if_not(llvm::isHexDigit) == StringRef::npos,
1014              "invalid checksum", &N);
1015   }
1016 }
1017 
1018 void Verifier::visitDICompileUnit(const DICompileUnit &N) {
1019   AssertDI(N.isDistinct(), "compile units must be distinct", &N);
1020   AssertDI(N.getTag() == dwarf::DW_TAG_compile_unit, "invalid tag", &N);
1021 
1022   // Don't bother verifying the compilation directory or producer string
1023   // as those could be empty.
1024   AssertDI(N.getRawFile() && isa<DIFile>(N.getRawFile()), "invalid file", &N,
1025            N.getRawFile());
1026   AssertDI(!N.getFile()->getFilename().empty(), "invalid filename", &N,
1027            N.getFile());
1028 
1029   AssertDI((N.getEmissionKind() <= DICompileUnit::LastEmissionKind),
1030            "invalid emission kind", &N);
1031 
1032   if (auto *Array = N.getRawEnumTypes()) {
1033     AssertDI(isa<MDTuple>(Array), "invalid enum list", &N, Array);
1034     for (Metadata *Op : N.getEnumTypes()->operands()) {
1035       auto *Enum = dyn_cast_or_null<DICompositeType>(Op);
1036       AssertDI(Enum && Enum->getTag() == dwarf::DW_TAG_enumeration_type,
1037                "invalid enum type", &N, N.getEnumTypes(), Op);
1038     }
1039   }
1040   if (auto *Array = N.getRawRetainedTypes()) {
1041     AssertDI(isa<MDTuple>(Array), "invalid retained type list", &N, Array);
1042     for (Metadata *Op : N.getRetainedTypes()->operands()) {
1043       AssertDI(Op && (isa<DIType>(Op) ||
1044                       (isa<DISubprogram>(Op) &&
1045                        !cast<DISubprogram>(Op)->isDefinition())),
1046                "invalid retained type", &N, Op);
1047     }
1048   }
1049   if (auto *Array = N.getRawGlobalVariables()) {
1050     AssertDI(isa<MDTuple>(Array), "invalid global variable list", &N, Array);
1051     for (Metadata *Op : N.getGlobalVariables()->operands()) {
1052       AssertDI(Op && (isa<DIGlobalVariableExpression>(Op)),
1053                "invalid global variable ref", &N, Op);
1054     }
1055   }
1056   if (auto *Array = N.getRawImportedEntities()) {
1057     AssertDI(isa<MDTuple>(Array), "invalid imported entity list", &N, Array);
1058     for (Metadata *Op : N.getImportedEntities()->operands()) {
1059       AssertDI(Op && isa<DIImportedEntity>(Op), "invalid imported entity ref",
1060                &N, Op);
1061     }
1062   }
1063   if (auto *Array = N.getRawMacros()) {
1064     AssertDI(isa<MDTuple>(Array), "invalid macro list", &N, Array);
1065     for (Metadata *Op : N.getMacros()->operands()) {
1066       AssertDI(Op && isa<DIMacroNode>(Op), "invalid macro ref", &N, Op);
1067     }
1068   }
1069   CUVisited.insert(&N);
1070 }
1071 
1072 void Verifier::visitDISubprogram(const DISubprogram &N) {
1073   AssertDI(N.getTag() == dwarf::DW_TAG_subprogram, "invalid tag", &N);
1074   AssertDI(isScope(N.getRawScope()), "invalid scope", &N, N.getRawScope());
1075   if (auto *F = N.getRawFile())
1076     AssertDI(isa<DIFile>(F), "invalid file", &N, F);
1077   else
1078     AssertDI(N.getLine() == 0, "line specified with no file", &N, N.getLine());
1079   if (auto *T = N.getRawType())
1080     AssertDI(isa<DISubroutineType>(T), "invalid subroutine type", &N, T);
1081   AssertDI(isType(N.getRawContainingType()), "invalid containing type", &N,
1082            N.getRawContainingType());
1083   if (auto *Params = N.getRawTemplateParams())
1084     visitTemplateParams(N, *Params);
1085   if (auto *S = N.getRawDeclaration())
1086     AssertDI(isa<DISubprogram>(S) && !cast<DISubprogram>(S)->isDefinition(),
1087              "invalid subprogram declaration", &N, S);
1088   if (auto *RawVars = N.getRawVariables()) {
1089     auto *Vars = dyn_cast<MDTuple>(RawVars);
1090     AssertDI(Vars, "invalid variable list", &N, RawVars);
1091     for (Metadata *Op : Vars->operands()) {
1092       AssertDI(Op && isa<DILocalVariable>(Op), "invalid local variable", &N,
1093                Vars, Op);
1094     }
1095   }
1096   AssertDI(!hasConflictingReferenceFlags(N.getFlags()),
1097            "invalid reference flags", &N);
1098 
1099   auto *Unit = N.getRawUnit();
1100   if (N.isDefinition()) {
1101     // Subprogram definitions (not part of the type hierarchy).
1102     AssertDI(N.isDistinct(), "subprogram definitions must be distinct", &N);
1103     AssertDI(Unit, "subprogram definitions must have a compile unit", &N);
1104     AssertDI(isa<DICompileUnit>(Unit), "invalid unit type", &N, Unit);
1105   } else {
1106     // Subprogram declarations (part of the type hierarchy).
1107     AssertDI(!Unit, "subprogram declarations must not have a compile unit", &N);
1108   }
1109 
1110   if (auto *RawThrownTypes = N.getRawThrownTypes()) {
1111     auto *ThrownTypes = dyn_cast<MDTuple>(RawThrownTypes);
1112     AssertDI(ThrownTypes, "invalid thrown types list", &N, RawThrownTypes);
1113     for (Metadata *Op : ThrownTypes->operands())
1114       AssertDI(Op && isa<DIType>(Op), "invalid thrown type", &N, ThrownTypes,
1115                Op);
1116   }
1117 }
1118 
1119 void Verifier::visitDILexicalBlockBase(const DILexicalBlockBase &N) {
1120   AssertDI(N.getTag() == dwarf::DW_TAG_lexical_block, "invalid tag", &N);
1121   AssertDI(N.getRawScope() && isa<DILocalScope>(N.getRawScope()),
1122            "invalid local scope", &N, N.getRawScope());
1123   if (auto *SP = dyn_cast<DISubprogram>(N.getRawScope()))
1124     AssertDI(SP->isDefinition(), "scope points into the type hierarchy", &N);
1125 }
1126 
1127 void Verifier::visitDILexicalBlock(const DILexicalBlock &N) {
1128   visitDILexicalBlockBase(N);
1129 
1130   AssertDI(N.getLine() || !N.getColumn(),
1131            "cannot have column info without line info", &N);
1132 }
1133 
1134 void Verifier::visitDILexicalBlockFile(const DILexicalBlockFile &N) {
1135   visitDILexicalBlockBase(N);
1136 }
1137 
1138 void Verifier::visitDINamespace(const DINamespace &N) {
1139   AssertDI(N.getTag() == dwarf::DW_TAG_namespace, "invalid tag", &N);
1140   if (auto *S = N.getRawScope())
1141     AssertDI(isa<DIScope>(S), "invalid scope ref", &N, S);
1142 }
1143 
1144 void Verifier::visitDIMacro(const DIMacro &N) {
1145   AssertDI(N.getMacinfoType() == dwarf::DW_MACINFO_define ||
1146                N.getMacinfoType() == dwarf::DW_MACINFO_undef,
1147            "invalid macinfo type", &N);
1148   AssertDI(!N.getName().empty(), "anonymous macro", &N);
1149   if (!N.getValue().empty()) {
1150     assert(N.getValue().data()[0] != ' ' && "Macro value has a space prefix");
1151   }
1152 }
1153 
1154 void Verifier::visitDIMacroFile(const DIMacroFile &N) {
1155   AssertDI(N.getMacinfoType() == dwarf::DW_MACINFO_start_file,
1156            "invalid macinfo type", &N);
1157   if (auto *F = N.getRawFile())
1158     AssertDI(isa<DIFile>(F), "invalid file", &N, F);
1159 
1160   if (auto *Array = N.getRawElements()) {
1161     AssertDI(isa<MDTuple>(Array), "invalid macro list", &N, Array);
1162     for (Metadata *Op : N.getElements()->operands()) {
1163       AssertDI(Op && isa<DIMacroNode>(Op), "invalid macro ref", &N, Op);
1164     }
1165   }
1166 }
1167 
1168 void Verifier::visitDIModule(const DIModule &N) {
1169   AssertDI(N.getTag() == dwarf::DW_TAG_module, "invalid tag", &N);
1170   AssertDI(!N.getName().empty(), "anonymous module", &N);
1171 }
1172 
1173 void Verifier::visitDITemplateParameter(const DITemplateParameter &N) {
1174   AssertDI(isType(N.getRawType()), "invalid type ref", &N, N.getRawType());
1175 }
1176 
1177 void Verifier::visitDITemplateTypeParameter(const DITemplateTypeParameter &N) {
1178   visitDITemplateParameter(N);
1179 
1180   AssertDI(N.getTag() == dwarf::DW_TAG_template_type_parameter, "invalid tag",
1181            &N);
1182 }
1183 
1184 void Verifier::visitDITemplateValueParameter(
1185     const DITemplateValueParameter &N) {
1186   visitDITemplateParameter(N);
1187 
1188   AssertDI(N.getTag() == dwarf::DW_TAG_template_value_parameter ||
1189                N.getTag() == dwarf::DW_TAG_GNU_template_template_param ||
1190                N.getTag() == dwarf::DW_TAG_GNU_template_parameter_pack,
1191            "invalid tag", &N);
1192 }
1193 
1194 void Verifier::visitDIVariable(const DIVariable &N) {
1195   if (auto *S = N.getRawScope())
1196     AssertDI(isa<DIScope>(S), "invalid scope", &N, S);
1197   if (auto *F = N.getRawFile())
1198     AssertDI(isa<DIFile>(F), "invalid file", &N, F);
1199 }
1200 
1201 void Verifier::visitDIGlobalVariable(const DIGlobalVariable &N) {
1202   // Checks common to all variables.
1203   visitDIVariable(N);
1204 
1205   AssertDI(N.getTag() == dwarf::DW_TAG_variable, "invalid tag", &N);
1206   AssertDI(!N.getName().empty(), "missing global variable name", &N);
1207   AssertDI(isType(N.getRawType()), "invalid type ref", &N, N.getRawType());
1208   AssertDI(N.getType(), "missing global variable type", &N);
1209   if (auto *Member = N.getRawStaticDataMemberDeclaration()) {
1210     AssertDI(isa<DIDerivedType>(Member),
1211              "invalid static data member declaration", &N, Member);
1212   }
1213 }
1214 
1215 void Verifier::visitDILocalVariable(const DILocalVariable &N) {
1216   // Checks common to all variables.
1217   visitDIVariable(N);
1218 
1219   AssertDI(isType(N.getRawType()), "invalid type ref", &N, N.getRawType());
1220   AssertDI(N.getTag() == dwarf::DW_TAG_variable, "invalid tag", &N);
1221   AssertDI(N.getRawScope() && isa<DILocalScope>(N.getRawScope()),
1222            "local variable requires a valid scope", &N, N.getRawScope());
1223 }
1224 
1225 void Verifier::visitDIExpression(const DIExpression &N) {
1226   AssertDI(N.isValid(), "invalid expression", &N);
1227 }
1228 
1229 void Verifier::visitDIGlobalVariableExpression(
1230     const DIGlobalVariableExpression &GVE) {
1231   AssertDI(GVE.getVariable(), "missing variable");
1232   if (auto *Var = GVE.getVariable())
1233     visitDIGlobalVariable(*Var);
1234   if (auto *Expr = GVE.getExpression()) {
1235     visitDIExpression(*Expr);
1236     if (auto Fragment = Expr->getFragmentInfo())
1237       verifyFragmentExpression(*GVE.getVariable(), *Fragment, &GVE);
1238   }
1239 }
1240 
1241 void Verifier::visitDIObjCProperty(const DIObjCProperty &N) {
1242   AssertDI(N.getTag() == dwarf::DW_TAG_APPLE_property, "invalid tag", &N);
1243   if (auto *T = N.getRawType())
1244     AssertDI(isType(T), "invalid type ref", &N, T);
1245   if (auto *F = N.getRawFile())
1246     AssertDI(isa<DIFile>(F), "invalid file", &N, F);
1247 }
1248 
1249 void Verifier::visitDIImportedEntity(const DIImportedEntity &N) {
1250   AssertDI(N.getTag() == dwarf::DW_TAG_imported_module ||
1251                N.getTag() == dwarf::DW_TAG_imported_declaration,
1252            "invalid tag", &N);
1253   if (auto *S = N.getRawScope())
1254     AssertDI(isa<DIScope>(S), "invalid scope for imported entity", &N, S);
1255   AssertDI(isDINode(N.getRawEntity()), "invalid imported entity", &N,
1256            N.getRawEntity());
1257 }
1258 
1259 void Verifier::visitComdat(const Comdat &C) {
1260   // The Module is invalid if the GlobalValue has private linkage.  Entities
1261   // with private linkage don't have entries in the symbol table.
1262   if (const GlobalValue *GV = M.getNamedValue(C.getName()))
1263     Assert(!GV->hasPrivateLinkage(), "comdat global value has private linkage",
1264            GV);
1265 }
1266 
1267 void Verifier::visitModuleIdents(const Module &M) {
1268   const NamedMDNode *Idents = M.getNamedMetadata("llvm.ident");
1269   if (!Idents)
1270     return;
1271 
1272   // llvm.ident takes a list of metadata entry. Each entry has only one string.
1273   // Scan each llvm.ident entry and make sure that this requirement is met.
1274   for (const MDNode *N : Idents->operands()) {
1275     Assert(N->getNumOperands() == 1,
1276            "incorrect number of operands in llvm.ident metadata", N);
1277     Assert(dyn_cast_or_null<MDString>(N->getOperand(0)),
1278            ("invalid value for llvm.ident metadata entry operand"
1279             "(the operand should be a string)"),
1280            N->getOperand(0));
1281   }
1282 }
1283 
1284 void Verifier::visitModuleFlags(const Module &M) {
1285   const NamedMDNode *Flags = M.getModuleFlagsMetadata();
1286   if (!Flags) return;
1287 
1288   // Scan each flag, and track the flags and requirements.
1289   DenseMap<const MDString*, const MDNode*> SeenIDs;
1290   SmallVector<const MDNode*, 16> Requirements;
1291   for (const MDNode *MDN : Flags->operands())
1292     visitModuleFlag(MDN, SeenIDs, Requirements);
1293 
1294   // Validate that the requirements in the module are valid.
1295   for (const MDNode *Requirement : Requirements) {
1296     const MDString *Flag = cast<MDString>(Requirement->getOperand(0));
1297     const Metadata *ReqValue = Requirement->getOperand(1);
1298 
1299     const MDNode *Op = SeenIDs.lookup(Flag);
1300     if (!Op) {
1301       CheckFailed("invalid requirement on flag, flag is not present in module",
1302                   Flag);
1303       continue;
1304     }
1305 
1306     if (Op->getOperand(2) != ReqValue) {
1307       CheckFailed(("invalid requirement on flag, "
1308                    "flag does not have the required value"),
1309                   Flag);
1310       continue;
1311     }
1312   }
1313 }
1314 
1315 void
1316 Verifier::visitModuleFlag(const MDNode *Op,
1317                           DenseMap<const MDString *, const MDNode *> &SeenIDs,
1318                           SmallVectorImpl<const MDNode *> &Requirements) {
1319   // Each module flag should have three arguments, the merge behavior (a
1320   // constant int), the flag ID (an MDString), and the value.
1321   Assert(Op->getNumOperands() == 3,
1322          "incorrect number of operands in module flag", Op);
1323   Module::ModFlagBehavior MFB;
1324   if (!Module::isValidModFlagBehavior(Op->getOperand(0), MFB)) {
1325     Assert(
1326         mdconst::dyn_extract_or_null<ConstantInt>(Op->getOperand(0)),
1327         "invalid behavior operand in module flag (expected constant integer)",
1328         Op->getOperand(0));
1329     Assert(false,
1330            "invalid behavior operand in module flag (unexpected constant)",
1331            Op->getOperand(0));
1332   }
1333   MDString *ID = dyn_cast_or_null<MDString>(Op->getOperand(1));
1334   Assert(ID, "invalid ID operand in module flag (expected metadata string)",
1335          Op->getOperand(1));
1336 
1337   // Sanity check the values for behaviors with additional requirements.
1338   switch (MFB) {
1339   case Module::Error:
1340   case Module::Warning:
1341   case Module::Override:
1342     // These behavior types accept any value.
1343     break;
1344 
1345   case Module::Max: {
1346     Assert(mdconst::dyn_extract_or_null<ConstantInt>(Op->getOperand(2)),
1347            "invalid value for 'max' module flag (expected constant integer)",
1348            Op->getOperand(2));
1349     break;
1350   }
1351 
1352   case Module::Require: {
1353     // The value should itself be an MDNode with two operands, a flag ID (an
1354     // MDString), and a value.
1355     MDNode *Value = dyn_cast<MDNode>(Op->getOperand(2));
1356     Assert(Value && Value->getNumOperands() == 2,
1357            "invalid value for 'require' module flag (expected metadata pair)",
1358            Op->getOperand(2));
1359     Assert(isa<MDString>(Value->getOperand(0)),
1360            ("invalid value for 'require' module flag "
1361             "(first value operand should be a string)"),
1362            Value->getOperand(0));
1363 
1364     // Append it to the list of requirements, to check once all module flags are
1365     // scanned.
1366     Requirements.push_back(Value);
1367     break;
1368   }
1369 
1370   case Module::Append:
1371   case Module::AppendUnique: {
1372     // These behavior types require the operand be an MDNode.
1373     Assert(isa<MDNode>(Op->getOperand(2)),
1374            "invalid value for 'append'-type module flag "
1375            "(expected a metadata node)",
1376            Op->getOperand(2));
1377     break;
1378   }
1379   }
1380 
1381   // Unless this is a "requires" flag, check the ID is unique.
1382   if (MFB != Module::Require) {
1383     bool Inserted = SeenIDs.insert(std::make_pair(ID, Op)).second;
1384     Assert(Inserted,
1385            "module flag identifiers must be unique (or of 'require' type)", ID);
1386   }
1387 
1388   if (ID->getString() == "wchar_size") {
1389     ConstantInt *Value
1390       = mdconst::dyn_extract_or_null<ConstantInt>(Op->getOperand(2));
1391     Assert(Value, "wchar_size metadata requires constant integer argument");
1392   }
1393 
1394   if (ID->getString() == "Linker Options") {
1395     // If the llvm.linker.options named metadata exists, we assume that the
1396     // bitcode reader has upgraded the module flag. Otherwise the flag might
1397     // have been created by a client directly.
1398     Assert(M.getNamedMetadata("llvm.linker.options"),
1399            "'Linker Options' named metadata no longer supported");
1400   }
1401 }
1402 
1403 /// Return true if this attribute kind only applies to functions.
1404 static bool isFuncOnlyAttr(Attribute::AttrKind Kind) {
1405   switch (Kind) {
1406   case Attribute::NoReturn:
1407   case Attribute::NoCfCheck:
1408   case Attribute::NoUnwind:
1409   case Attribute::NoInline:
1410   case Attribute::AlwaysInline:
1411   case Attribute::OptimizeForSize:
1412   case Attribute::StackProtect:
1413   case Attribute::StackProtectReq:
1414   case Attribute::StackProtectStrong:
1415   case Attribute::SafeStack:
1416   case Attribute::NoRedZone:
1417   case Attribute::NoImplicitFloat:
1418   case Attribute::Naked:
1419   case Attribute::InlineHint:
1420   case Attribute::StackAlignment:
1421   case Attribute::UWTable:
1422   case Attribute::NonLazyBind:
1423   case Attribute::ReturnsTwice:
1424   case Attribute::SanitizeAddress:
1425   case Attribute::SanitizeHWAddress:
1426   case Attribute::SanitizeThread:
1427   case Attribute::SanitizeMemory:
1428   case Attribute::MinSize:
1429   case Attribute::NoDuplicate:
1430   case Attribute::Builtin:
1431   case Attribute::NoBuiltin:
1432   case Attribute::Cold:
1433   case Attribute::OptForFuzzing:
1434   case Attribute::OptimizeNone:
1435   case Attribute::JumpTable:
1436   case Attribute::Convergent:
1437   case Attribute::ArgMemOnly:
1438   case Attribute::NoRecurse:
1439   case Attribute::InaccessibleMemOnly:
1440   case Attribute::InaccessibleMemOrArgMemOnly:
1441   case Attribute::AllocSize:
1442   case Attribute::Speculatable:
1443   case Attribute::StrictFP:
1444     return true;
1445   default:
1446     break;
1447   }
1448   return false;
1449 }
1450 
1451 /// Return true if this is a function attribute that can also appear on
1452 /// arguments.
1453 static bool isFuncOrArgAttr(Attribute::AttrKind Kind) {
1454   return Kind == Attribute::ReadOnly || Kind == Attribute::WriteOnly ||
1455          Kind == Attribute::ReadNone;
1456 }
1457 
1458 void Verifier::verifyAttributeTypes(AttributeSet Attrs, bool IsFunction,
1459                                     const Value *V) {
1460   for (Attribute A : Attrs) {
1461     if (A.isStringAttribute())
1462       continue;
1463 
1464     if (isFuncOnlyAttr(A.getKindAsEnum())) {
1465       if (!IsFunction) {
1466         CheckFailed("Attribute '" + A.getAsString() +
1467                         "' only applies to functions!",
1468                     V);
1469         return;
1470       }
1471     } else if (IsFunction && !isFuncOrArgAttr(A.getKindAsEnum())) {
1472       CheckFailed("Attribute '" + A.getAsString() +
1473                       "' does not apply to functions!",
1474                   V);
1475       return;
1476     }
1477   }
1478 }
1479 
1480 // VerifyParameterAttrs - Check the given attributes for an argument or return
1481 // value of the specified type.  The value V is printed in error messages.
1482 void Verifier::verifyParameterAttrs(AttributeSet Attrs, Type *Ty,
1483                                     const Value *V) {
1484   if (!Attrs.hasAttributes())
1485     return;
1486 
1487   verifyAttributeTypes(Attrs, /*IsFunction=*/false, V);
1488 
1489   // Check for mutually incompatible attributes.  Only inreg is compatible with
1490   // sret.
1491   unsigned AttrCount = 0;
1492   AttrCount += Attrs.hasAttribute(Attribute::ByVal);
1493   AttrCount += Attrs.hasAttribute(Attribute::InAlloca);
1494   AttrCount += Attrs.hasAttribute(Attribute::StructRet) ||
1495                Attrs.hasAttribute(Attribute::InReg);
1496   AttrCount += Attrs.hasAttribute(Attribute::Nest);
1497   Assert(AttrCount <= 1, "Attributes 'byval', 'inalloca', 'inreg', 'nest', "
1498                          "and 'sret' are incompatible!",
1499          V);
1500 
1501   Assert(!(Attrs.hasAttribute(Attribute::InAlloca) &&
1502            Attrs.hasAttribute(Attribute::ReadOnly)),
1503          "Attributes "
1504          "'inalloca and readonly' are incompatible!",
1505          V);
1506 
1507   Assert(!(Attrs.hasAttribute(Attribute::StructRet) &&
1508            Attrs.hasAttribute(Attribute::Returned)),
1509          "Attributes "
1510          "'sret and returned' are incompatible!",
1511          V);
1512 
1513   Assert(!(Attrs.hasAttribute(Attribute::ZExt) &&
1514            Attrs.hasAttribute(Attribute::SExt)),
1515          "Attributes "
1516          "'zeroext and signext' are incompatible!",
1517          V);
1518 
1519   Assert(!(Attrs.hasAttribute(Attribute::ReadNone) &&
1520            Attrs.hasAttribute(Attribute::ReadOnly)),
1521          "Attributes "
1522          "'readnone and readonly' are incompatible!",
1523          V);
1524 
1525   Assert(!(Attrs.hasAttribute(Attribute::ReadNone) &&
1526            Attrs.hasAttribute(Attribute::WriteOnly)),
1527          "Attributes "
1528          "'readnone and writeonly' are incompatible!",
1529          V);
1530 
1531   Assert(!(Attrs.hasAttribute(Attribute::ReadOnly) &&
1532            Attrs.hasAttribute(Attribute::WriteOnly)),
1533          "Attributes "
1534          "'readonly and writeonly' are incompatible!",
1535          V);
1536 
1537   Assert(!(Attrs.hasAttribute(Attribute::NoInline) &&
1538            Attrs.hasAttribute(Attribute::AlwaysInline)),
1539          "Attributes "
1540          "'noinline and alwaysinline' are incompatible!",
1541          V);
1542 
1543   AttrBuilder IncompatibleAttrs = AttributeFuncs::typeIncompatible(Ty);
1544   Assert(!AttrBuilder(Attrs).overlaps(IncompatibleAttrs),
1545          "Wrong types for attribute: " +
1546              AttributeSet::get(Context, IncompatibleAttrs).getAsString(),
1547          V);
1548 
1549   if (PointerType *PTy = dyn_cast<PointerType>(Ty)) {
1550     SmallPtrSet<Type*, 4> Visited;
1551     if (!PTy->getElementType()->isSized(&Visited)) {
1552       Assert(!Attrs.hasAttribute(Attribute::ByVal) &&
1553                  !Attrs.hasAttribute(Attribute::InAlloca),
1554              "Attributes 'byval' and 'inalloca' do not support unsized types!",
1555              V);
1556     }
1557     if (!isa<PointerType>(PTy->getElementType()))
1558       Assert(!Attrs.hasAttribute(Attribute::SwiftError),
1559              "Attribute 'swifterror' only applies to parameters "
1560              "with pointer to pointer type!",
1561              V);
1562   } else {
1563     Assert(!Attrs.hasAttribute(Attribute::ByVal),
1564            "Attribute 'byval' only applies to parameters with pointer type!",
1565            V);
1566     Assert(!Attrs.hasAttribute(Attribute::SwiftError),
1567            "Attribute 'swifterror' only applies to parameters "
1568            "with pointer type!",
1569            V);
1570   }
1571 }
1572 
1573 // Check parameter attributes against a function type.
1574 // The value V is printed in error messages.
1575 void Verifier::verifyFunctionAttrs(FunctionType *FT, AttributeList Attrs,
1576                                    const Value *V) {
1577   if (Attrs.isEmpty())
1578     return;
1579 
1580   bool SawNest = false;
1581   bool SawReturned = false;
1582   bool SawSRet = false;
1583   bool SawSwiftSelf = false;
1584   bool SawSwiftError = false;
1585 
1586   // Verify return value attributes.
1587   AttributeSet RetAttrs = Attrs.getRetAttributes();
1588   Assert((!RetAttrs.hasAttribute(Attribute::ByVal) &&
1589           !RetAttrs.hasAttribute(Attribute::Nest) &&
1590           !RetAttrs.hasAttribute(Attribute::StructRet) &&
1591           !RetAttrs.hasAttribute(Attribute::NoCapture) &&
1592           !RetAttrs.hasAttribute(Attribute::Returned) &&
1593           !RetAttrs.hasAttribute(Attribute::InAlloca) &&
1594           !RetAttrs.hasAttribute(Attribute::SwiftSelf) &&
1595           !RetAttrs.hasAttribute(Attribute::SwiftError)),
1596          "Attributes 'byval', 'inalloca', 'nest', 'sret', 'nocapture', "
1597          "'returned', 'swiftself', and 'swifterror' do not apply to return "
1598          "values!",
1599          V);
1600   Assert((!RetAttrs.hasAttribute(Attribute::ReadOnly) &&
1601           !RetAttrs.hasAttribute(Attribute::WriteOnly) &&
1602           !RetAttrs.hasAttribute(Attribute::ReadNone)),
1603          "Attribute '" + RetAttrs.getAsString() +
1604              "' does not apply to function returns",
1605          V);
1606   verifyParameterAttrs(RetAttrs, FT->getReturnType(), V);
1607 
1608   // Verify parameter attributes.
1609   for (unsigned i = 0, e = FT->getNumParams(); i != e; ++i) {
1610     Type *Ty = FT->getParamType(i);
1611     AttributeSet ArgAttrs = Attrs.getParamAttributes(i);
1612 
1613     verifyParameterAttrs(ArgAttrs, Ty, V);
1614 
1615     if (ArgAttrs.hasAttribute(Attribute::Nest)) {
1616       Assert(!SawNest, "More than one parameter has attribute nest!", V);
1617       SawNest = true;
1618     }
1619 
1620     if (ArgAttrs.hasAttribute(Attribute::Returned)) {
1621       Assert(!SawReturned, "More than one parameter has attribute returned!",
1622              V);
1623       Assert(Ty->canLosslesslyBitCastTo(FT->getReturnType()),
1624              "Incompatible argument and return types for 'returned' attribute",
1625              V);
1626       SawReturned = true;
1627     }
1628 
1629     if (ArgAttrs.hasAttribute(Attribute::StructRet)) {
1630       Assert(!SawSRet, "Cannot have multiple 'sret' parameters!", V);
1631       Assert(i == 0 || i == 1,
1632              "Attribute 'sret' is not on first or second parameter!", V);
1633       SawSRet = true;
1634     }
1635 
1636     if (ArgAttrs.hasAttribute(Attribute::SwiftSelf)) {
1637       Assert(!SawSwiftSelf, "Cannot have multiple 'swiftself' parameters!", V);
1638       SawSwiftSelf = true;
1639     }
1640 
1641     if (ArgAttrs.hasAttribute(Attribute::SwiftError)) {
1642       Assert(!SawSwiftError, "Cannot have multiple 'swifterror' parameters!",
1643              V);
1644       SawSwiftError = true;
1645     }
1646 
1647     if (ArgAttrs.hasAttribute(Attribute::InAlloca)) {
1648       Assert(i == FT->getNumParams() - 1,
1649              "inalloca isn't on the last parameter!", V);
1650     }
1651   }
1652 
1653   if (!Attrs.hasAttributes(AttributeList::FunctionIndex))
1654     return;
1655 
1656   verifyAttributeTypes(Attrs.getFnAttributes(), /*IsFunction=*/true, V);
1657 
1658   Assert(!(Attrs.hasFnAttribute(Attribute::ReadNone) &&
1659            Attrs.hasFnAttribute(Attribute::ReadOnly)),
1660          "Attributes 'readnone and readonly' are incompatible!", V);
1661 
1662   Assert(!(Attrs.hasFnAttribute(Attribute::ReadNone) &&
1663            Attrs.hasFnAttribute(Attribute::WriteOnly)),
1664          "Attributes 'readnone and writeonly' are incompatible!", V);
1665 
1666   Assert(!(Attrs.hasFnAttribute(Attribute::ReadOnly) &&
1667            Attrs.hasFnAttribute(Attribute::WriteOnly)),
1668          "Attributes 'readonly and writeonly' are incompatible!", V);
1669 
1670   Assert(!(Attrs.hasFnAttribute(Attribute::ReadNone) &&
1671            Attrs.hasFnAttribute(Attribute::InaccessibleMemOrArgMemOnly)),
1672          "Attributes 'readnone and inaccessiblemem_or_argmemonly' are "
1673          "incompatible!",
1674          V);
1675 
1676   Assert(!(Attrs.hasFnAttribute(Attribute::ReadNone) &&
1677            Attrs.hasFnAttribute(Attribute::InaccessibleMemOnly)),
1678          "Attributes 'readnone and inaccessiblememonly' are incompatible!", V);
1679 
1680   Assert(!(Attrs.hasFnAttribute(Attribute::NoInline) &&
1681            Attrs.hasFnAttribute(Attribute::AlwaysInline)),
1682          "Attributes 'noinline and alwaysinline' are incompatible!", V);
1683 
1684   if (Attrs.hasFnAttribute(Attribute::OptimizeNone)) {
1685     Assert(Attrs.hasFnAttribute(Attribute::NoInline),
1686            "Attribute 'optnone' requires 'noinline'!", V);
1687 
1688     Assert(!Attrs.hasFnAttribute(Attribute::OptimizeForSize),
1689            "Attributes 'optsize and optnone' are incompatible!", V);
1690 
1691     Assert(!Attrs.hasFnAttribute(Attribute::MinSize),
1692            "Attributes 'minsize and optnone' are incompatible!", V);
1693   }
1694 
1695   if (Attrs.hasFnAttribute(Attribute::JumpTable)) {
1696     const GlobalValue *GV = cast<GlobalValue>(V);
1697     Assert(GV->hasGlobalUnnamedAddr(),
1698            "Attribute 'jumptable' requires 'unnamed_addr'", V);
1699   }
1700 
1701   if (Attrs.hasFnAttribute(Attribute::AllocSize)) {
1702     std::pair<unsigned, Optional<unsigned>> Args =
1703         Attrs.getAllocSizeArgs(AttributeList::FunctionIndex);
1704 
1705     auto CheckParam = [&](StringRef Name, unsigned ParamNo) {
1706       if (ParamNo >= FT->getNumParams()) {
1707         CheckFailed("'allocsize' " + Name + " argument is out of bounds", V);
1708         return false;
1709       }
1710 
1711       if (!FT->getParamType(ParamNo)->isIntegerTy()) {
1712         CheckFailed("'allocsize' " + Name +
1713                         " argument must refer to an integer parameter",
1714                     V);
1715         return false;
1716       }
1717 
1718       return true;
1719     };
1720 
1721     if (!CheckParam("element size", Args.first))
1722       return;
1723 
1724     if (Args.second && !CheckParam("number of elements", *Args.second))
1725       return;
1726   }
1727 }
1728 
1729 void Verifier::verifyFunctionMetadata(
1730     ArrayRef<std::pair<unsigned, MDNode *>> MDs) {
1731   for (const auto &Pair : MDs) {
1732     if (Pair.first == LLVMContext::MD_prof) {
1733       MDNode *MD = Pair.second;
1734       Assert(MD->getNumOperands() >= 2,
1735              "!prof annotations should have no less than 2 operands", MD);
1736 
1737       // Check first operand.
1738       Assert(MD->getOperand(0) != nullptr, "first operand should not be null",
1739              MD);
1740       Assert(isa<MDString>(MD->getOperand(0)),
1741              "expected string with name of the !prof annotation", MD);
1742       MDString *MDS = cast<MDString>(MD->getOperand(0));
1743       StringRef ProfName = MDS->getString();
1744       Assert(ProfName.equals("function_entry_count") ||
1745                  ProfName.equals("synthetic_function_entry_count"),
1746              "first operand should be 'function_entry_count'"
1747              " or 'synthetic_function_entry_count'",
1748              MD);
1749 
1750       // Check second operand.
1751       Assert(MD->getOperand(1) != nullptr, "second operand should not be null",
1752              MD);
1753       Assert(isa<ConstantAsMetadata>(MD->getOperand(1)),
1754              "expected integer argument to function_entry_count", MD);
1755     }
1756   }
1757 }
1758 
1759 void Verifier::visitConstantExprsRecursively(const Constant *EntryC) {
1760   if (!ConstantExprVisited.insert(EntryC).second)
1761     return;
1762 
1763   SmallVector<const Constant *, 16> Stack;
1764   Stack.push_back(EntryC);
1765 
1766   while (!Stack.empty()) {
1767     const Constant *C = Stack.pop_back_val();
1768 
1769     // Check this constant expression.
1770     if (const auto *CE = dyn_cast<ConstantExpr>(C))
1771       visitConstantExpr(CE);
1772 
1773     if (const auto *GV = dyn_cast<GlobalValue>(C)) {
1774       // Global Values get visited separately, but we do need to make sure
1775       // that the global value is in the correct module
1776       Assert(GV->getParent() == &M, "Referencing global in another module!",
1777              EntryC, &M, GV, GV->getParent());
1778       continue;
1779     }
1780 
1781     // Visit all sub-expressions.
1782     for (const Use &U : C->operands()) {
1783       const auto *OpC = dyn_cast<Constant>(U);
1784       if (!OpC)
1785         continue;
1786       if (!ConstantExprVisited.insert(OpC).second)
1787         continue;
1788       Stack.push_back(OpC);
1789     }
1790   }
1791 }
1792 
1793 void Verifier::visitConstantExpr(const ConstantExpr *CE) {
1794   if (CE->getOpcode() == Instruction::BitCast)
1795     Assert(CastInst::castIsValid(Instruction::BitCast, CE->getOperand(0),
1796                                  CE->getType()),
1797            "Invalid bitcast", CE);
1798 
1799   if (CE->getOpcode() == Instruction::IntToPtr ||
1800       CE->getOpcode() == Instruction::PtrToInt) {
1801     auto *PtrTy = CE->getOpcode() == Instruction::IntToPtr
1802                       ? CE->getType()
1803                       : CE->getOperand(0)->getType();
1804     StringRef Msg = CE->getOpcode() == Instruction::IntToPtr
1805                         ? "inttoptr not supported for non-integral pointers"
1806                         : "ptrtoint not supported for non-integral pointers";
1807     Assert(
1808         !DL.isNonIntegralPointerType(cast<PointerType>(PtrTy->getScalarType())),
1809         Msg);
1810   }
1811 }
1812 
1813 bool Verifier::verifyAttributeCount(AttributeList Attrs, unsigned Params) {
1814   // There shouldn't be more attribute sets than there are parameters plus the
1815   // function and return value.
1816   return Attrs.getNumAttrSets() <= Params + 2;
1817 }
1818 
1819 /// Verify that statepoint intrinsic is well formed.
1820 void Verifier::verifyStatepoint(ImmutableCallSite CS) {
1821   assert(CS.getCalledFunction() &&
1822          CS.getCalledFunction()->getIntrinsicID() ==
1823            Intrinsic::experimental_gc_statepoint);
1824 
1825   const Instruction &CI = *CS.getInstruction();
1826 
1827   Assert(!CS.doesNotAccessMemory() && !CS.onlyReadsMemory() &&
1828          !CS.onlyAccessesArgMemory(),
1829          "gc.statepoint must read and write all memory to preserve "
1830          "reordering restrictions required by safepoint semantics",
1831          &CI);
1832 
1833   const Value *IDV = CS.getArgument(0);
1834   Assert(isa<ConstantInt>(IDV), "gc.statepoint ID must be a constant integer",
1835          &CI);
1836 
1837   const Value *NumPatchBytesV = CS.getArgument(1);
1838   Assert(isa<ConstantInt>(NumPatchBytesV),
1839          "gc.statepoint number of patchable bytes must be a constant integer",
1840          &CI);
1841   const int64_t NumPatchBytes =
1842       cast<ConstantInt>(NumPatchBytesV)->getSExtValue();
1843   assert(isInt<32>(NumPatchBytes) && "NumPatchBytesV is an i32!");
1844   Assert(NumPatchBytes >= 0, "gc.statepoint number of patchable bytes must be "
1845                              "positive",
1846          &CI);
1847 
1848   const Value *Target = CS.getArgument(2);
1849   auto *PT = dyn_cast<PointerType>(Target->getType());
1850   Assert(PT && PT->getElementType()->isFunctionTy(),
1851          "gc.statepoint callee must be of function pointer type", &CI, Target);
1852   FunctionType *TargetFuncType = cast<FunctionType>(PT->getElementType());
1853 
1854   const Value *NumCallArgsV = CS.getArgument(3);
1855   Assert(isa<ConstantInt>(NumCallArgsV),
1856          "gc.statepoint number of arguments to underlying call "
1857          "must be constant integer",
1858          &CI);
1859   const int NumCallArgs = cast<ConstantInt>(NumCallArgsV)->getZExtValue();
1860   Assert(NumCallArgs >= 0,
1861          "gc.statepoint number of arguments to underlying call "
1862          "must be positive",
1863          &CI);
1864   const int NumParams = (int)TargetFuncType->getNumParams();
1865   if (TargetFuncType->isVarArg()) {
1866     Assert(NumCallArgs >= NumParams,
1867            "gc.statepoint mismatch in number of vararg call args", &CI);
1868 
1869     // TODO: Remove this limitation
1870     Assert(TargetFuncType->getReturnType()->isVoidTy(),
1871            "gc.statepoint doesn't support wrapping non-void "
1872            "vararg functions yet",
1873            &CI);
1874   } else
1875     Assert(NumCallArgs == NumParams,
1876            "gc.statepoint mismatch in number of call args", &CI);
1877 
1878   const Value *FlagsV = CS.getArgument(4);
1879   Assert(isa<ConstantInt>(FlagsV),
1880          "gc.statepoint flags must be constant integer", &CI);
1881   const uint64_t Flags = cast<ConstantInt>(FlagsV)->getZExtValue();
1882   Assert((Flags & ~(uint64_t)StatepointFlags::MaskAll) == 0,
1883          "unknown flag used in gc.statepoint flags argument", &CI);
1884 
1885   // Verify that the types of the call parameter arguments match
1886   // the type of the wrapped callee.
1887   for (int i = 0; i < NumParams; i++) {
1888     Type *ParamType = TargetFuncType->getParamType(i);
1889     Type *ArgType = CS.getArgument(5 + i)->getType();
1890     Assert(ArgType == ParamType,
1891            "gc.statepoint call argument does not match wrapped "
1892            "function type",
1893            &CI);
1894   }
1895 
1896   const int EndCallArgsInx = 4 + NumCallArgs;
1897 
1898   const Value *NumTransitionArgsV = CS.getArgument(EndCallArgsInx+1);
1899   Assert(isa<ConstantInt>(NumTransitionArgsV),
1900          "gc.statepoint number of transition arguments "
1901          "must be constant integer",
1902          &CI);
1903   const int NumTransitionArgs =
1904       cast<ConstantInt>(NumTransitionArgsV)->getZExtValue();
1905   Assert(NumTransitionArgs >= 0,
1906          "gc.statepoint number of transition arguments must be positive", &CI);
1907   const int EndTransitionArgsInx = EndCallArgsInx + 1 + NumTransitionArgs;
1908 
1909   const Value *NumDeoptArgsV = CS.getArgument(EndTransitionArgsInx+1);
1910   Assert(isa<ConstantInt>(NumDeoptArgsV),
1911          "gc.statepoint number of deoptimization arguments "
1912          "must be constant integer",
1913          &CI);
1914   const int NumDeoptArgs = cast<ConstantInt>(NumDeoptArgsV)->getZExtValue();
1915   Assert(NumDeoptArgs >= 0, "gc.statepoint number of deoptimization arguments "
1916                             "must be positive",
1917          &CI);
1918 
1919   const int ExpectedNumArgs =
1920       7 + NumCallArgs + NumTransitionArgs + NumDeoptArgs;
1921   Assert(ExpectedNumArgs <= (int)CS.arg_size(),
1922          "gc.statepoint too few arguments according to length fields", &CI);
1923 
1924   // Check that the only uses of this gc.statepoint are gc.result or
1925   // gc.relocate calls which are tied to this statepoint and thus part
1926   // of the same statepoint sequence
1927   for (const User *U : CI.users()) {
1928     const CallInst *Call = dyn_cast<const CallInst>(U);
1929     Assert(Call, "illegal use of statepoint token", &CI, U);
1930     if (!Call) continue;
1931     Assert(isa<GCRelocateInst>(Call) || isa<GCResultInst>(Call),
1932            "gc.result or gc.relocate are the only value uses "
1933            "of a gc.statepoint",
1934            &CI, U);
1935     if (isa<GCResultInst>(Call)) {
1936       Assert(Call->getArgOperand(0) == &CI,
1937              "gc.result connected to wrong gc.statepoint", &CI, Call);
1938     } else if (isa<GCRelocateInst>(Call)) {
1939       Assert(Call->getArgOperand(0) == &CI,
1940              "gc.relocate connected to wrong gc.statepoint", &CI, Call);
1941     }
1942   }
1943 
1944   // Note: It is legal for a single derived pointer to be listed multiple
1945   // times.  It's non-optimal, but it is legal.  It can also happen after
1946   // insertion if we strip a bitcast away.
1947   // Note: It is really tempting to check that each base is relocated and
1948   // that a derived pointer is never reused as a base pointer.  This turns
1949   // out to be problematic since optimizations run after safepoint insertion
1950   // can recognize equality properties that the insertion logic doesn't know
1951   // about.  See example statepoint.ll in the verifier subdirectory
1952 }
1953 
1954 void Verifier::verifyFrameRecoverIndices() {
1955   for (auto &Counts : FrameEscapeInfo) {
1956     Function *F = Counts.first;
1957     unsigned EscapedObjectCount = Counts.second.first;
1958     unsigned MaxRecoveredIndex = Counts.second.second;
1959     Assert(MaxRecoveredIndex <= EscapedObjectCount,
1960            "all indices passed to llvm.localrecover must be less than the "
1961            "number of arguments passed ot llvm.localescape in the parent "
1962            "function",
1963            F);
1964   }
1965 }
1966 
1967 static Instruction *getSuccPad(TerminatorInst *Terminator) {
1968   BasicBlock *UnwindDest;
1969   if (auto *II = dyn_cast<InvokeInst>(Terminator))
1970     UnwindDest = II->getUnwindDest();
1971   else if (auto *CSI = dyn_cast<CatchSwitchInst>(Terminator))
1972     UnwindDest = CSI->getUnwindDest();
1973   else
1974     UnwindDest = cast<CleanupReturnInst>(Terminator)->getUnwindDest();
1975   return UnwindDest->getFirstNonPHI();
1976 }
1977 
1978 void Verifier::verifySiblingFuncletUnwinds() {
1979   SmallPtrSet<Instruction *, 8> Visited;
1980   SmallPtrSet<Instruction *, 8> Active;
1981   for (const auto &Pair : SiblingFuncletInfo) {
1982     Instruction *PredPad = Pair.first;
1983     if (Visited.count(PredPad))
1984       continue;
1985     Active.insert(PredPad);
1986     TerminatorInst *Terminator = Pair.second;
1987     do {
1988       Instruction *SuccPad = getSuccPad(Terminator);
1989       if (Active.count(SuccPad)) {
1990         // Found a cycle; report error
1991         Instruction *CyclePad = SuccPad;
1992         SmallVector<Instruction *, 8> CycleNodes;
1993         do {
1994           CycleNodes.push_back(CyclePad);
1995           TerminatorInst *CycleTerminator = SiblingFuncletInfo[CyclePad];
1996           if (CycleTerminator != CyclePad)
1997             CycleNodes.push_back(CycleTerminator);
1998           CyclePad = getSuccPad(CycleTerminator);
1999         } while (CyclePad != SuccPad);
2000         Assert(false, "EH pads can't handle each other's exceptions",
2001                ArrayRef<Instruction *>(CycleNodes));
2002       }
2003       // Don't re-walk a node we've already checked
2004       if (!Visited.insert(SuccPad).second)
2005         break;
2006       // Walk to this successor if it has a map entry.
2007       PredPad = SuccPad;
2008       auto TermI = SiblingFuncletInfo.find(PredPad);
2009       if (TermI == SiblingFuncletInfo.end())
2010         break;
2011       Terminator = TermI->second;
2012       Active.insert(PredPad);
2013     } while (true);
2014     // Each node only has one successor, so we've walked all the active
2015     // nodes' successors.
2016     Active.clear();
2017   }
2018 }
2019 
2020 // visitFunction - Verify that a function is ok.
2021 //
2022 void Verifier::visitFunction(const Function &F) {
2023   visitGlobalValue(F);
2024 
2025   // Check function arguments.
2026   FunctionType *FT = F.getFunctionType();
2027   unsigned NumArgs = F.arg_size();
2028 
2029   Assert(&Context == &F.getContext(),
2030          "Function context does not match Module context!", &F);
2031 
2032   Assert(!F.hasCommonLinkage(), "Functions may not have common linkage", &F);
2033   Assert(FT->getNumParams() == NumArgs,
2034          "# formal arguments must match # of arguments for function type!", &F,
2035          FT);
2036   Assert(F.getReturnType()->isFirstClassType() ||
2037              F.getReturnType()->isVoidTy() || F.getReturnType()->isStructTy(),
2038          "Functions cannot return aggregate values!", &F);
2039 
2040   Assert(!F.hasStructRetAttr() || F.getReturnType()->isVoidTy(),
2041          "Invalid struct return type!", &F);
2042 
2043   AttributeList Attrs = F.getAttributes();
2044 
2045   Assert(verifyAttributeCount(Attrs, FT->getNumParams()),
2046          "Attribute after last parameter!", &F);
2047 
2048   // Check function attributes.
2049   verifyFunctionAttrs(FT, Attrs, &F);
2050 
2051   // On function declarations/definitions, we do not support the builtin
2052   // attribute. We do not check this in VerifyFunctionAttrs since that is
2053   // checking for Attributes that can/can not ever be on functions.
2054   Assert(!Attrs.hasFnAttribute(Attribute::Builtin),
2055          "Attribute 'builtin' can only be applied to a callsite.", &F);
2056 
2057   // Check that this function meets the restrictions on this calling convention.
2058   // Sometimes varargs is used for perfectly forwarding thunks, so some of these
2059   // restrictions can be lifted.
2060   switch (F.getCallingConv()) {
2061   default:
2062   case CallingConv::C:
2063     break;
2064   case CallingConv::AMDGPU_KERNEL:
2065   case CallingConv::SPIR_KERNEL:
2066     Assert(F.getReturnType()->isVoidTy(),
2067            "Calling convention requires void return type", &F);
2068     LLVM_FALLTHROUGH;
2069   case CallingConv::AMDGPU_VS:
2070   case CallingConv::AMDGPU_HS:
2071   case CallingConv::AMDGPU_GS:
2072   case CallingConv::AMDGPU_PS:
2073   case CallingConv::AMDGPU_CS:
2074     Assert(!F.hasStructRetAttr(),
2075            "Calling convention does not allow sret", &F);
2076     LLVM_FALLTHROUGH;
2077   case CallingConv::Fast:
2078   case CallingConv::Cold:
2079   case CallingConv::Intel_OCL_BI:
2080   case CallingConv::PTX_Kernel:
2081   case CallingConv::PTX_Device:
2082     Assert(!F.isVarArg(), "Calling convention does not support varargs or "
2083                           "perfect forwarding!",
2084            &F);
2085     break;
2086   }
2087 
2088   bool isLLVMdotName = F.getName().size() >= 5 &&
2089                        F.getName().substr(0, 5) == "llvm.";
2090 
2091   // Check that the argument values match the function type for this function...
2092   unsigned i = 0;
2093   for (const Argument &Arg : F.args()) {
2094     Assert(Arg.getType() == FT->getParamType(i),
2095            "Argument value does not match function argument type!", &Arg,
2096            FT->getParamType(i));
2097     Assert(Arg.getType()->isFirstClassType(),
2098            "Function arguments must have first-class types!", &Arg);
2099     if (!isLLVMdotName) {
2100       Assert(!Arg.getType()->isMetadataTy(),
2101              "Function takes metadata but isn't an intrinsic", &Arg, &F);
2102       Assert(!Arg.getType()->isTokenTy(),
2103              "Function takes token but isn't an intrinsic", &Arg, &F);
2104     }
2105 
2106     // Check that swifterror argument is only used by loads and stores.
2107     if (Attrs.hasParamAttribute(i, Attribute::SwiftError)) {
2108       verifySwiftErrorValue(&Arg);
2109     }
2110     ++i;
2111   }
2112 
2113   if (!isLLVMdotName)
2114     Assert(!F.getReturnType()->isTokenTy(),
2115            "Functions returns a token but isn't an intrinsic", &F);
2116 
2117   // Get the function metadata attachments.
2118   SmallVector<std::pair<unsigned, MDNode *>, 4> MDs;
2119   F.getAllMetadata(MDs);
2120   assert(F.hasMetadata() != MDs.empty() && "Bit out-of-sync");
2121   verifyFunctionMetadata(MDs);
2122 
2123   // Check validity of the personality function
2124   if (F.hasPersonalityFn()) {
2125     auto *Per = dyn_cast<Function>(F.getPersonalityFn()->stripPointerCasts());
2126     if (Per)
2127       Assert(Per->getParent() == F.getParent(),
2128              "Referencing personality function in another module!",
2129              &F, F.getParent(), Per, Per->getParent());
2130   }
2131 
2132   if (F.isMaterializable()) {
2133     // Function has a body somewhere we can't see.
2134     Assert(MDs.empty(), "unmaterialized function cannot have metadata", &F,
2135            MDs.empty() ? nullptr : MDs.front().second);
2136   } else if (F.isDeclaration()) {
2137     for (const auto &I : MDs) {
2138       AssertDI(I.first != LLVMContext::MD_dbg,
2139                "function declaration may not have a !dbg attachment", &F);
2140       Assert(I.first != LLVMContext::MD_prof,
2141              "function declaration may not have a !prof attachment", &F);
2142 
2143       // Verify the metadata itself.
2144       visitMDNode(*I.second);
2145     }
2146     Assert(!F.hasPersonalityFn(),
2147            "Function declaration shouldn't have a personality routine", &F);
2148   } else {
2149     // Verify that this function (which has a body) is not named "llvm.*".  It
2150     // is not legal to define intrinsics.
2151     Assert(!isLLVMdotName, "llvm intrinsics cannot be defined!", &F);
2152 
2153     // Check the entry node
2154     const BasicBlock *Entry = &F.getEntryBlock();
2155     Assert(pred_empty(Entry),
2156            "Entry block to function must not have predecessors!", Entry);
2157 
2158     // The address of the entry block cannot be taken, unless it is dead.
2159     if (Entry->hasAddressTaken()) {
2160       Assert(!BlockAddress::lookup(Entry)->isConstantUsed(),
2161              "blockaddress may not be used with the entry block!", Entry);
2162     }
2163 
2164     unsigned NumDebugAttachments = 0, NumProfAttachments = 0;
2165     // Visit metadata attachments.
2166     for (const auto &I : MDs) {
2167       // Verify that the attachment is legal.
2168       switch (I.first) {
2169       default:
2170         break;
2171       case LLVMContext::MD_dbg: {
2172         ++NumDebugAttachments;
2173         AssertDI(NumDebugAttachments == 1,
2174                  "function must have a single !dbg attachment", &F, I.second);
2175         AssertDI(isa<DISubprogram>(I.second),
2176                  "function !dbg attachment must be a subprogram", &F, I.second);
2177         auto *SP = cast<DISubprogram>(I.second);
2178         const Function *&AttachedTo = DISubprogramAttachments[SP];
2179         AssertDI(!AttachedTo || AttachedTo == &F,
2180                  "DISubprogram attached to more than one function", SP, &F);
2181         AttachedTo = &F;
2182         break;
2183       }
2184       case LLVMContext::MD_prof:
2185         ++NumProfAttachments;
2186         Assert(NumProfAttachments == 1,
2187                "function must have a single !prof attachment", &F, I.second);
2188         break;
2189       }
2190 
2191       // Verify the metadata itself.
2192       visitMDNode(*I.second);
2193     }
2194   }
2195 
2196   // If this function is actually an intrinsic, verify that it is only used in
2197   // direct call/invokes, never having its "address taken".
2198   // Only do this if the module is materialized, otherwise we don't have all the
2199   // uses.
2200   if (F.getIntrinsicID() && F.getParent()->isMaterialized()) {
2201     const User *U;
2202     if (F.hasAddressTaken(&U))
2203       Assert(false, "Invalid user of intrinsic instruction!", U);
2204   }
2205 
2206   auto *N = F.getSubprogram();
2207   HasDebugInfo = (N != nullptr);
2208   if (!HasDebugInfo)
2209     return;
2210 
2211   // Check that all !dbg attachments lead to back to N (or, at least, another
2212   // subprogram that describes the same function).
2213   //
2214   // FIXME: Check this incrementally while visiting !dbg attachments.
2215   // FIXME: Only check when N is the canonical subprogram for F.
2216   SmallPtrSet<const MDNode *, 32> Seen;
2217   for (auto &BB : F)
2218     for (auto &I : BB) {
2219       // Be careful about using DILocation here since we might be dealing with
2220       // broken code (this is the Verifier after all).
2221       DILocation *DL =
2222           dyn_cast_or_null<DILocation>(I.getDebugLoc().getAsMDNode());
2223       if (!DL)
2224         continue;
2225       if (!Seen.insert(DL).second)
2226         continue;
2227 
2228       DILocalScope *Scope = DL->getInlinedAtScope();
2229       if (Scope && !Seen.insert(Scope).second)
2230         continue;
2231 
2232       DISubprogram *SP = Scope ? Scope->getSubprogram() : nullptr;
2233 
2234       // Scope and SP could be the same MDNode and we don't want to skip
2235       // validation in that case
2236       if (SP && ((Scope != SP) && !Seen.insert(SP).second))
2237         continue;
2238 
2239       // FIXME: Once N is canonical, check "SP == &N".
2240       AssertDI(SP->describes(&F),
2241                "!dbg attachment points at wrong subprogram for function", N, &F,
2242                &I, DL, Scope, SP);
2243     }
2244 }
2245 
2246 // verifyBasicBlock - Verify that a basic block is well formed...
2247 //
2248 void Verifier::visitBasicBlock(BasicBlock &BB) {
2249   InstsInThisBlock.clear();
2250 
2251   // Ensure that basic blocks have terminators!
2252   Assert(BB.getTerminator(), "Basic Block does not have terminator!", &BB);
2253 
2254   // Check constraints that this basic block imposes on all of the PHI nodes in
2255   // it.
2256   if (isa<PHINode>(BB.front())) {
2257     SmallVector<BasicBlock*, 8> Preds(pred_begin(&BB), pred_end(&BB));
2258     SmallVector<std::pair<BasicBlock*, Value*>, 8> Values;
2259     std::sort(Preds.begin(), Preds.end());
2260     for (const PHINode &PN : BB.phis()) {
2261       // Ensure that PHI nodes have at least one entry!
2262       Assert(PN.getNumIncomingValues() != 0,
2263              "PHI nodes must have at least one entry.  If the block is dead, "
2264              "the PHI should be removed!",
2265              &PN);
2266       Assert(PN.getNumIncomingValues() == Preds.size(),
2267              "PHINode should have one entry for each predecessor of its "
2268              "parent basic block!",
2269              &PN);
2270 
2271       // Get and sort all incoming values in the PHI node...
2272       Values.clear();
2273       Values.reserve(PN.getNumIncomingValues());
2274       for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i)
2275         Values.push_back(
2276             std::make_pair(PN.getIncomingBlock(i), PN.getIncomingValue(i)));
2277       std::sort(Values.begin(), Values.end());
2278 
2279       for (unsigned i = 0, e = Values.size(); i != e; ++i) {
2280         // Check to make sure that if there is more than one entry for a
2281         // particular basic block in this PHI node, that the incoming values are
2282         // all identical.
2283         //
2284         Assert(i == 0 || Values[i].first != Values[i - 1].first ||
2285                    Values[i].second == Values[i - 1].second,
2286                "PHI node has multiple entries for the same basic block with "
2287                "different incoming values!",
2288                &PN, Values[i].first, Values[i].second, Values[i - 1].second);
2289 
2290         // Check to make sure that the predecessors and PHI node entries are
2291         // matched up.
2292         Assert(Values[i].first == Preds[i],
2293                "PHI node entries do not match predecessors!", &PN,
2294                Values[i].first, Preds[i]);
2295       }
2296     }
2297   }
2298 
2299   // Check that all instructions have their parent pointers set up correctly.
2300   for (auto &I : BB)
2301   {
2302     Assert(I.getParent() == &BB, "Instruction has bogus parent pointer!");
2303   }
2304 }
2305 
2306 void Verifier::visitTerminatorInst(TerminatorInst &I) {
2307   // Ensure that terminators only exist at the end of the basic block.
2308   Assert(&I == I.getParent()->getTerminator(),
2309          "Terminator found in the middle of a basic block!", I.getParent());
2310   visitInstruction(I);
2311 }
2312 
2313 void Verifier::visitBranchInst(BranchInst &BI) {
2314   if (BI.isConditional()) {
2315     Assert(BI.getCondition()->getType()->isIntegerTy(1),
2316            "Branch condition is not 'i1' type!", &BI, BI.getCondition());
2317   }
2318   visitTerminatorInst(BI);
2319 }
2320 
2321 void Verifier::visitReturnInst(ReturnInst &RI) {
2322   Function *F = RI.getParent()->getParent();
2323   unsigned N = RI.getNumOperands();
2324   if (F->getReturnType()->isVoidTy())
2325     Assert(N == 0,
2326            "Found return instr that returns non-void in Function of void "
2327            "return type!",
2328            &RI, F->getReturnType());
2329   else
2330     Assert(N == 1 && F->getReturnType() == RI.getOperand(0)->getType(),
2331            "Function return type does not match operand "
2332            "type of return inst!",
2333            &RI, F->getReturnType());
2334 
2335   // Check to make sure that the return value has necessary properties for
2336   // terminators...
2337   visitTerminatorInst(RI);
2338 }
2339 
2340 void Verifier::visitSwitchInst(SwitchInst &SI) {
2341   // Check to make sure that all of the constants in the switch instruction
2342   // have the same type as the switched-on value.
2343   Type *SwitchTy = SI.getCondition()->getType();
2344   SmallPtrSet<ConstantInt*, 32> Constants;
2345   for (auto &Case : SI.cases()) {
2346     Assert(Case.getCaseValue()->getType() == SwitchTy,
2347            "Switch constants must all be same type as switch value!", &SI);
2348     Assert(Constants.insert(Case.getCaseValue()).second,
2349            "Duplicate integer as switch case", &SI, Case.getCaseValue());
2350   }
2351 
2352   visitTerminatorInst(SI);
2353 }
2354 
2355 void Verifier::visitIndirectBrInst(IndirectBrInst &BI) {
2356   Assert(BI.getAddress()->getType()->isPointerTy(),
2357          "Indirectbr operand must have pointer type!", &BI);
2358   for (unsigned i = 0, e = BI.getNumDestinations(); i != e; ++i)
2359     Assert(BI.getDestination(i)->getType()->isLabelTy(),
2360            "Indirectbr destinations must all have pointer type!", &BI);
2361 
2362   visitTerminatorInst(BI);
2363 }
2364 
2365 void Verifier::visitSelectInst(SelectInst &SI) {
2366   Assert(!SelectInst::areInvalidOperands(SI.getOperand(0), SI.getOperand(1),
2367                                          SI.getOperand(2)),
2368          "Invalid operands for select instruction!", &SI);
2369 
2370   Assert(SI.getTrueValue()->getType() == SI.getType(),
2371          "Select values must have same type as select instruction!", &SI);
2372   visitInstruction(SI);
2373 }
2374 
2375 /// visitUserOp1 - User defined operators shouldn't live beyond the lifetime of
2376 /// a pass, if any exist, it's an error.
2377 ///
2378 void Verifier::visitUserOp1(Instruction &I) {
2379   Assert(false, "User-defined operators should not live outside of a pass!", &I);
2380 }
2381 
2382 void Verifier::visitTruncInst(TruncInst &I) {
2383   // Get the source and destination types
2384   Type *SrcTy = I.getOperand(0)->getType();
2385   Type *DestTy = I.getType();
2386 
2387   // Get the size of the types in bits, we'll need this later
2388   unsigned SrcBitSize = SrcTy->getScalarSizeInBits();
2389   unsigned DestBitSize = DestTy->getScalarSizeInBits();
2390 
2391   Assert(SrcTy->isIntOrIntVectorTy(), "Trunc only operates on integer", &I);
2392   Assert(DestTy->isIntOrIntVectorTy(), "Trunc only produces integer", &I);
2393   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(),
2394          "trunc source and destination must both be a vector or neither", &I);
2395   Assert(SrcBitSize > DestBitSize, "DestTy too big for Trunc", &I);
2396 
2397   visitInstruction(I);
2398 }
2399 
2400 void Verifier::visitZExtInst(ZExtInst &I) {
2401   // Get the source and destination types
2402   Type *SrcTy = I.getOperand(0)->getType();
2403   Type *DestTy = I.getType();
2404 
2405   // Get the size of the types in bits, we'll need this later
2406   Assert(SrcTy->isIntOrIntVectorTy(), "ZExt only operates on integer", &I);
2407   Assert(DestTy->isIntOrIntVectorTy(), "ZExt only produces an integer", &I);
2408   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(),
2409          "zext source and destination must both be a vector or neither", &I);
2410   unsigned SrcBitSize = SrcTy->getScalarSizeInBits();
2411   unsigned DestBitSize = DestTy->getScalarSizeInBits();
2412 
2413   Assert(SrcBitSize < DestBitSize, "Type too small for ZExt", &I);
2414 
2415   visitInstruction(I);
2416 }
2417 
2418 void Verifier::visitSExtInst(SExtInst &I) {
2419   // Get the source and destination types
2420   Type *SrcTy = I.getOperand(0)->getType();
2421   Type *DestTy = I.getType();
2422 
2423   // Get the size of the types in bits, we'll need this later
2424   unsigned SrcBitSize = SrcTy->getScalarSizeInBits();
2425   unsigned DestBitSize = DestTy->getScalarSizeInBits();
2426 
2427   Assert(SrcTy->isIntOrIntVectorTy(), "SExt only operates on integer", &I);
2428   Assert(DestTy->isIntOrIntVectorTy(), "SExt only produces an integer", &I);
2429   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(),
2430          "sext source and destination must both be a vector or neither", &I);
2431   Assert(SrcBitSize < DestBitSize, "Type too small for SExt", &I);
2432 
2433   visitInstruction(I);
2434 }
2435 
2436 void Verifier::visitFPTruncInst(FPTruncInst &I) {
2437   // Get the source and destination types
2438   Type *SrcTy = I.getOperand(0)->getType();
2439   Type *DestTy = I.getType();
2440   // Get the size of the types in bits, we'll need this later
2441   unsigned SrcBitSize = SrcTy->getScalarSizeInBits();
2442   unsigned DestBitSize = DestTy->getScalarSizeInBits();
2443 
2444   Assert(SrcTy->isFPOrFPVectorTy(), "FPTrunc only operates on FP", &I);
2445   Assert(DestTy->isFPOrFPVectorTy(), "FPTrunc only produces an FP", &I);
2446   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(),
2447          "fptrunc source and destination must both be a vector or neither", &I);
2448   Assert(SrcBitSize > DestBitSize, "DestTy too big for FPTrunc", &I);
2449 
2450   visitInstruction(I);
2451 }
2452 
2453 void Verifier::visitFPExtInst(FPExtInst &I) {
2454   // Get the source and destination types
2455   Type *SrcTy = I.getOperand(0)->getType();
2456   Type *DestTy = I.getType();
2457 
2458   // Get the size of the types in bits, we'll need this later
2459   unsigned SrcBitSize = SrcTy->getScalarSizeInBits();
2460   unsigned DestBitSize = DestTy->getScalarSizeInBits();
2461 
2462   Assert(SrcTy->isFPOrFPVectorTy(), "FPExt only operates on FP", &I);
2463   Assert(DestTy->isFPOrFPVectorTy(), "FPExt only produces an FP", &I);
2464   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(),
2465          "fpext source and destination must both be a vector or neither", &I);
2466   Assert(SrcBitSize < DestBitSize, "DestTy too small for FPExt", &I);
2467 
2468   visitInstruction(I);
2469 }
2470 
2471 void Verifier::visitUIToFPInst(UIToFPInst &I) {
2472   // Get the source and destination types
2473   Type *SrcTy = I.getOperand(0)->getType();
2474   Type *DestTy = I.getType();
2475 
2476   bool SrcVec = SrcTy->isVectorTy();
2477   bool DstVec = DestTy->isVectorTy();
2478 
2479   Assert(SrcVec == DstVec,
2480          "UIToFP source and dest must both be vector or scalar", &I);
2481   Assert(SrcTy->isIntOrIntVectorTy(),
2482          "UIToFP source must be integer or integer vector", &I);
2483   Assert(DestTy->isFPOrFPVectorTy(), "UIToFP result must be FP or FP vector",
2484          &I);
2485 
2486   if (SrcVec && DstVec)
2487     Assert(cast<VectorType>(SrcTy)->getNumElements() ==
2488                cast<VectorType>(DestTy)->getNumElements(),
2489            "UIToFP source and dest vector length mismatch", &I);
2490 
2491   visitInstruction(I);
2492 }
2493 
2494 void Verifier::visitSIToFPInst(SIToFPInst &I) {
2495   // Get the source and destination types
2496   Type *SrcTy = I.getOperand(0)->getType();
2497   Type *DestTy = I.getType();
2498 
2499   bool SrcVec = SrcTy->isVectorTy();
2500   bool DstVec = DestTy->isVectorTy();
2501 
2502   Assert(SrcVec == DstVec,
2503          "SIToFP source and dest must both be vector or scalar", &I);
2504   Assert(SrcTy->isIntOrIntVectorTy(),
2505          "SIToFP source must be integer or integer vector", &I);
2506   Assert(DestTy->isFPOrFPVectorTy(), "SIToFP result must be FP or FP vector",
2507          &I);
2508 
2509   if (SrcVec && DstVec)
2510     Assert(cast<VectorType>(SrcTy)->getNumElements() ==
2511                cast<VectorType>(DestTy)->getNumElements(),
2512            "SIToFP source and dest vector length mismatch", &I);
2513 
2514   visitInstruction(I);
2515 }
2516 
2517 void Verifier::visitFPToUIInst(FPToUIInst &I) {
2518   // Get the source and destination types
2519   Type *SrcTy = I.getOperand(0)->getType();
2520   Type *DestTy = I.getType();
2521 
2522   bool SrcVec = SrcTy->isVectorTy();
2523   bool DstVec = DestTy->isVectorTy();
2524 
2525   Assert(SrcVec == DstVec,
2526          "FPToUI source and dest must both be vector or scalar", &I);
2527   Assert(SrcTy->isFPOrFPVectorTy(), "FPToUI source must be FP or FP vector",
2528          &I);
2529   Assert(DestTy->isIntOrIntVectorTy(),
2530          "FPToUI result must be integer or integer vector", &I);
2531 
2532   if (SrcVec && DstVec)
2533     Assert(cast<VectorType>(SrcTy)->getNumElements() ==
2534                cast<VectorType>(DestTy)->getNumElements(),
2535            "FPToUI source and dest vector length mismatch", &I);
2536 
2537   visitInstruction(I);
2538 }
2539 
2540 void Verifier::visitFPToSIInst(FPToSIInst &I) {
2541   // Get the source and destination types
2542   Type *SrcTy = I.getOperand(0)->getType();
2543   Type *DestTy = I.getType();
2544 
2545   bool SrcVec = SrcTy->isVectorTy();
2546   bool DstVec = DestTy->isVectorTy();
2547 
2548   Assert(SrcVec == DstVec,
2549          "FPToSI source and dest must both be vector or scalar", &I);
2550   Assert(SrcTy->isFPOrFPVectorTy(), "FPToSI source must be FP or FP vector",
2551          &I);
2552   Assert(DestTy->isIntOrIntVectorTy(),
2553          "FPToSI result must be integer or integer vector", &I);
2554 
2555   if (SrcVec && DstVec)
2556     Assert(cast<VectorType>(SrcTy)->getNumElements() ==
2557                cast<VectorType>(DestTy)->getNumElements(),
2558            "FPToSI source and dest vector length mismatch", &I);
2559 
2560   visitInstruction(I);
2561 }
2562 
2563 void Verifier::visitPtrToIntInst(PtrToIntInst &I) {
2564   // Get the source and destination types
2565   Type *SrcTy = I.getOperand(0)->getType();
2566   Type *DestTy = I.getType();
2567 
2568   Assert(SrcTy->isPtrOrPtrVectorTy(), "PtrToInt source must be pointer", &I);
2569 
2570   if (auto *PTy = dyn_cast<PointerType>(SrcTy->getScalarType()))
2571     Assert(!DL.isNonIntegralPointerType(PTy),
2572            "ptrtoint not supported for non-integral pointers");
2573 
2574   Assert(DestTy->isIntOrIntVectorTy(), "PtrToInt result must be integral", &I);
2575   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(), "PtrToInt type mismatch",
2576          &I);
2577 
2578   if (SrcTy->isVectorTy()) {
2579     VectorType *VSrc = dyn_cast<VectorType>(SrcTy);
2580     VectorType *VDest = dyn_cast<VectorType>(DestTy);
2581     Assert(VSrc->getNumElements() == VDest->getNumElements(),
2582            "PtrToInt Vector width mismatch", &I);
2583   }
2584 
2585   visitInstruction(I);
2586 }
2587 
2588 void Verifier::visitIntToPtrInst(IntToPtrInst &I) {
2589   // Get the source and destination types
2590   Type *SrcTy = I.getOperand(0)->getType();
2591   Type *DestTy = I.getType();
2592 
2593   Assert(SrcTy->isIntOrIntVectorTy(),
2594          "IntToPtr source must be an integral", &I);
2595   Assert(DestTy->isPtrOrPtrVectorTy(), "IntToPtr result must be a pointer", &I);
2596 
2597   if (auto *PTy = dyn_cast<PointerType>(DestTy->getScalarType()))
2598     Assert(!DL.isNonIntegralPointerType(PTy),
2599            "inttoptr not supported for non-integral pointers");
2600 
2601   Assert(SrcTy->isVectorTy() == DestTy->isVectorTy(), "IntToPtr type mismatch",
2602          &I);
2603   if (SrcTy->isVectorTy()) {
2604     VectorType *VSrc = dyn_cast<VectorType>(SrcTy);
2605     VectorType *VDest = dyn_cast<VectorType>(DestTy);
2606     Assert(VSrc->getNumElements() == VDest->getNumElements(),
2607            "IntToPtr Vector width mismatch", &I);
2608   }
2609   visitInstruction(I);
2610 }
2611 
2612 void Verifier::visitBitCastInst(BitCastInst &I) {
2613   Assert(
2614       CastInst::castIsValid(Instruction::BitCast, I.getOperand(0), I.getType()),
2615       "Invalid bitcast", &I);
2616   visitInstruction(I);
2617 }
2618 
2619 void Verifier::visitAddrSpaceCastInst(AddrSpaceCastInst &I) {
2620   Type *SrcTy = I.getOperand(0)->getType();
2621   Type *DestTy = I.getType();
2622 
2623   Assert(SrcTy->isPtrOrPtrVectorTy(), "AddrSpaceCast source must be a pointer",
2624          &I);
2625   Assert(DestTy->isPtrOrPtrVectorTy(), "AddrSpaceCast result must be a pointer",
2626          &I);
2627   Assert(SrcTy->getPointerAddressSpace() != DestTy->getPointerAddressSpace(),
2628          "AddrSpaceCast must be between different address spaces", &I);
2629   if (SrcTy->isVectorTy())
2630     Assert(SrcTy->getVectorNumElements() == DestTy->getVectorNumElements(),
2631            "AddrSpaceCast vector pointer number of elements mismatch", &I);
2632   visitInstruction(I);
2633 }
2634 
2635 /// visitPHINode - Ensure that a PHI node is well formed.
2636 ///
2637 void Verifier::visitPHINode(PHINode &PN) {
2638   // Ensure that the PHI nodes are all grouped together at the top of the block.
2639   // This can be tested by checking whether the instruction before this is
2640   // either nonexistent (because this is begin()) or is a PHI node.  If not,
2641   // then there is some other instruction before a PHI.
2642   Assert(&PN == &PN.getParent()->front() ||
2643              isa<PHINode>(--BasicBlock::iterator(&PN)),
2644          "PHI nodes not grouped at top of basic block!", &PN, PN.getParent());
2645 
2646   // Check that a PHI doesn't yield a Token.
2647   Assert(!PN.getType()->isTokenTy(), "PHI nodes cannot have token type!");
2648 
2649   // Check that all of the values of the PHI node have the same type as the
2650   // result, and that the incoming blocks are really basic blocks.
2651   for (Value *IncValue : PN.incoming_values()) {
2652     Assert(PN.getType() == IncValue->getType(),
2653            "PHI node operands are not the same type as the result!", &PN);
2654   }
2655 
2656   // All other PHI node constraints are checked in the visitBasicBlock method.
2657 
2658   visitInstruction(PN);
2659 }
2660 
2661 void Verifier::verifyCallSite(CallSite CS) {
2662   Instruction *I = CS.getInstruction();
2663 
2664   Assert(CS.getCalledValue()->getType()->isPointerTy(),
2665          "Called function must be a pointer!", I);
2666   PointerType *FPTy = cast<PointerType>(CS.getCalledValue()->getType());
2667 
2668   Assert(FPTy->getElementType()->isFunctionTy(),
2669          "Called function is not pointer to function type!", I);
2670 
2671   Assert(FPTy->getElementType() == CS.getFunctionType(),
2672          "Called function is not the same type as the call!", I);
2673 
2674   FunctionType *FTy = CS.getFunctionType();
2675 
2676   // Verify that the correct number of arguments are being passed
2677   if (FTy->isVarArg())
2678     Assert(CS.arg_size() >= FTy->getNumParams(),
2679            "Called function requires more parameters than were provided!", I);
2680   else
2681     Assert(CS.arg_size() == FTy->getNumParams(),
2682            "Incorrect number of arguments passed to called function!", I);
2683 
2684   // Verify that all arguments to the call match the function type.
2685   for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i)
2686     Assert(CS.getArgument(i)->getType() == FTy->getParamType(i),
2687            "Call parameter type does not match function signature!",
2688            CS.getArgument(i), FTy->getParamType(i), I);
2689 
2690   AttributeList Attrs = CS.getAttributes();
2691 
2692   Assert(verifyAttributeCount(Attrs, CS.arg_size()),
2693          "Attribute after last parameter!", I);
2694 
2695   if (Attrs.hasAttribute(AttributeList::FunctionIndex, Attribute::Speculatable)) {
2696     // Don't allow speculatable on call sites, unless the underlying function
2697     // declaration is also speculatable.
2698     Function *Callee
2699       = dyn_cast<Function>(CS.getCalledValue()->stripPointerCasts());
2700     Assert(Callee && Callee->isSpeculatable(),
2701            "speculatable attribute may not apply to call sites", I);
2702   }
2703 
2704   // Verify call attributes.
2705   verifyFunctionAttrs(FTy, Attrs, I);
2706 
2707   // Conservatively check the inalloca argument.
2708   // We have a bug if we can find that there is an underlying alloca without
2709   // inalloca.
2710   if (CS.hasInAllocaArgument()) {
2711     Value *InAllocaArg = CS.getArgument(FTy->getNumParams() - 1);
2712     if (auto AI = dyn_cast<AllocaInst>(InAllocaArg->stripInBoundsOffsets()))
2713       Assert(AI->isUsedWithInAlloca(),
2714              "inalloca argument for call has mismatched alloca", AI, I);
2715   }
2716 
2717   // For each argument of the callsite, if it has the swifterror argument,
2718   // make sure the underlying alloca/parameter it comes from has a swifterror as
2719   // well.
2720   for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i)
2721     if (CS.paramHasAttr(i, Attribute::SwiftError)) {
2722       Value *SwiftErrorArg = CS.getArgument(i);
2723       if (auto AI = dyn_cast<AllocaInst>(SwiftErrorArg->stripInBoundsOffsets())) {
2724         Assert(AI->isSwiftError(),
2725                "swifterror argument for call has mismatched alloca", AI, I);
2726         continue;
2727       }
2728       auto ArgI = dyn_cast<Argument>(SwiftErrorArg);
2729       Assert(ArgI, "swifterror argument should come from an alloca or parameter", SwiftErrorArg, I);
2730       Assert(ArgI->hasSwiftErrorAttr(),
2731              "swifterror argument for call has mismatched parameter", ArgI, I);
2732     }
2733 
2734   if (FTy->isVarArg()) {
2735     // FIXME? is 'nest' even legal here?
2736     bool SawNest = false;
2737     bool SawReturned = false;
2738 
2739     for (unsigned Idx = 0; Idx < FTy->getNumParams(); ++Idx) {
2740       if (Attrs.hasParamAttribute(Idx, Attribute::Nest))
2741         SawNest = true;
2742       if (Attrs.hasParamAttribute(Idx, Attribute::Returned))
2743         SawReturned = true;
2744     }
2745 
2746     // Check attributes on the varargs part.
2747     for (unsigned Idx = FTy->getNumParams(); Idx < CS.arg_size(); ++Idx) {
2748       Type *Ty = CS.getArgument(Idx)->getType();
2749       AttributeSet ArgAttrs = Attrs.getParamAttributes(Idx);
2750       verifyParameterAttrs(ArgAttrs, Ty, I);
2751 
2752       if (ArgAttrs.hasAttribute(Attribute::Nest)) {
2753         Assert(!SawNest, "More than one parameter has attribute nest!", I);
2754         SawNest = true;
2755       }
2756 
2757       if (ArgAttrs.hasAttribute(Attribute::Returned)) {
2758         Assert(!SawReturned, "More than one parameter has attribute returned!",
2759                I);
2760         Assert(Ty->canLosslesslyBitCastTo(FTy->getReturnType()),
2761                "Incompatible argument and return types for 'returned' "
2762                "attribute",
2763                I);
2764         SawReturned = true;
2765       }
2766 
2767       Assert(!ArgAttrs.hasAttribute(Attribute::StructRet),
2768              "Attribute 'sret' cannot be used for vararg call arguments!", I);
2769 
2770       if (ArgAttrs.hasAttribute(Attribute::InAlloca))
2771         Assert(Idx == CS.arg_size() - 1, "inalloca isn't on the last argument!",
2772                I);
2773     }
2774   }
2775 
2776   // Verify that there's no metadata unless it's a direct call to an intrinsic.
2777   if (CS.getCalledFunction() == nullptr ||
2778       !CS.getCalledFunction()->getName().startswith("llvm.")) {
2779     for (Type *ParamTy : FTy->params()) {
2780       Assert(!ParamTy->isMetadataTy(),
2781              "Function has metadata parameter but isn't an intrinsic", I);
2782       Assert(!ParamTy->isTokenTy(),
2783              "Function has token parameter but isn't an intrinsic", I);
2784     }
2785   }
2786 
2787   // Verify that indirect calls don't return tokens.
2788   if (CS.getCalledFunction() == nullptr)
2789     Assert(!FTy->getReturnType()->isTokenTy(),
2790            "Return type cannot be token for indirect call!");
2791 
2792   if (Function *F = CS.getCalledFunction())
2793     if (Intrinsic::ID ID = (Intrinsic::ID)F->getIntrinsicID())
2794       visitIntrinsicCallSite(ID, CS);
2795 
2796   // Verify that a callsite has at most one "deopt", at most one "funclet" and
2797   // at most one "gc-transition" operand bundle.
2798   bool FoundDeoptBundle = false, FoundFuncletBundle = false,
2799        FoundGCTransitionBundle = false;
2800   for (unsigned i = 0, e = CS.getNumOperandBundles(); i < e; ++i) {
2801     OperandBundleUse BU = CS.getOperandBundleAt(i);
2802     uint32_t Tag = BU.getTagID();
2803     if (Tag == LLVMContext::OB_deopt) {
2804       Assert(!FoundDeoptBundle, "Multiple deopt operand bundles", I);
2805       FoundDeoptBundle = true;
2806     } else if (Tag == LLVMContext::OB_gc_transition) {
2807       Assert(!FoundGCTransitionBundle, "Multiple gc-transition operand bundles",
2808              I);
2809       FoundGCTransitionBundle = true;
2810     } else if (Tag == LLVMContext::OB_funclet) {
2811       Assert(!FoundFuncletBundle, "Multiple funclet operand bundles", I);
2812       FoundFuncletBundle = true;
2813       Assert(BU.Inputs.size() == 1,
2814              "Expected exactly one funclet bundle operand", I);
2815       Assert(isa<FuncletPadInst>(BU.Inputs.front()),
2816              "Funclet bundle operands should correspond to a FuncletPadInst",
2817              I);
2818     }
2819   }
2820 
2821   // Verify that each inlinable callsite of a debug-info-bearing function in a
2822   // debug-info-bearing function has a debug location attached to it. Failure to
2823   // do so causes assertion failures when the inliner sets up inline scope info.
2824   if (I->getFunction()->getSubprogram() && CS.getCalledFunction() &&
2825       CS.getCalledFunction()->getSubprogram())
2826     AssertDI(I->getDebugLoc(), "inlinable function call in a function with "
2827                                "debug info must have a !dbg location",
2828              I);
2829 
2830   visitInstruction(*I);
2831 }
2832 
2833 /// Two types are "congruent" if they are identical, or if they are both pointer
2834 /// types with different pointee types and the same address space.
2835 static bool isTypeCongruent(Type *L, Type *R) {
2836   if (L == R)
2837     return true;
2838   PointerType *PL = dyn_cast<PointerType>(L);
2839   PointerType *PR = dyn_cast<PointerType>(R);
2840   if (!PL || !PR)
2841     return false;
2842   return PL->getAddressSpace() == PR->getAddressSpace();
2843 }
2844 
2845 static AttrBuilder getParameterABIAttributes(int I, AttributeList Attrs) {
2846   static const Attribute::AttrKind ABIAttrs[] = {
2847       Attribute::StructRet, Attribute::ByVal, Attribute::InAlloca,
2848       Attribute::InReg, Attribute::Returned, Attribute::SwiftSelf,
2849       Attribute::SwiftError};
2850   AttrBuilder Copy;
2851   for (auto AK : ABIAttrs) {
2852     if (Attrs.hasParamAttribute(I, AK))
2853       Copy.addAttribute(AK);
2854   }
2855   if (Attrs.hasParamAttribute(I, Attribute::Alignment))
2856     Copy.addAlignmentAttr(Attrs.getParamAlignment(I));
2857   return Copy;
2858 }
2859 
2860 void Verifier::verifyMustTailCall(CallInst &CI) {
2861   Assert(!CI.isInlineAsm(), "cannot use musttail call with inline asm", &CI);
2862 
2863   // - The caller and callee prototypes must match.  Pointer types of
2864   //   parameters or return types may differ in pointee type, but not
2865   //   address space.
2866   Function *F = CI.getParent()->getParent();
2867   FunctionType *CallerTy = F->getFunctionType();
2868   FunctionType *CalleeTy = CI.getFunctionType();
2869   if (!CI.getCalledFunction() || !CI.getCalledFunction()->isIntrinsic()) {
2870     Assert(CallerTy->getNumParams() == CalleeTy->getNumParams(),
2871            "cannot guarantee tail call due to mismatched parameter counts",
2872            &CI);
2873     for (int I = 0, E = CallerTy->getNumParams(); I != E; ++I) {
2874       Assert(
2875           isTypeCongruent(CallerTy->getParamType(I), CalleeTy->getParamType(I)),
2876           "cannot guarantee tail call due to mismatched parameter types", &CI);
2877     }
2878   }
2879   Assert(CallerTy->isVarArg() == CalleeTy->isVarArg(),
2880          "cannot guarantee tail call due to mismatched varargs", &CI);
2881   Assert(isTypeCongruent(CallerTy->getReturnType(), CalleeTy->getReturnType()),
2882          "cannot guarantee tail call due to mismatched return types", &CI);
2883 
2884   // - The calling conventions of the caller and callee must match.
2885   Assert(F->getCallingConv() == CI.getCallingConv(),
2886          "cannot guarantee tail call due to mismatched calling conv", &CI);
2887 
2888   // - All ABI-impacting function attributes, such as sret, byval, inreg,
2889   //   returned, and inalloca, must match.
2890   AttributeList CallerAttrs = F->getAttributes();
2891   AttributeList CalleeAttrs = CI.getAttributes();
2892   for (int I = 0, E = CallerTy->getNumParams(); I != E; ++I) {
2893     AttrBuilder CallerABIAttrs = getParameterABIAttributes(I, CallerAttrs);
2894     AttrBuilder CalleeABIAttrs = getParameterABIAttributes(I, CalleeAttrs);
2895     Assert(CallerABIAttrs == CalleeABIAttrs,
2896            "cannot guarantee tail call due to mismatched ABI impacting "
2897            "function attributes",
2898            &CI, CI.getOperand(I));
2899   }
2900 
2901   // - The call must immediately precede a :ref:`ret <i_ret>` instruction,
2902   //   or a pointer bitcast followed by a ret instruction.
2903   // - The ret instruction must return the (possibly bitcasted) value
2904   //   produced by the call or void.
2905   Value *RetVal = &CI;
2906   Instruction *Next = CI.getNextNode();
2907 
2908   // Handle the optional bitcast.
2909   if (BitCastInst *BI = dyn_cast_or_null<BitCastInst>(Next)) {
2910     Assert(BI->getOperand(0) == RetVal,
2911            "bitcast following musttail call must use the call", BI);
2912     RetVal = BI;
2913     Next = BI->getNextNode();
2914   }
2915 
2916   // Check the return.
2917   ReturnInst *Ret = dyn_cast_or_null<ReturnInst>(Next);
2918   Assert(Ret, "musttail call must be precede a ret with an optional bitcast",
2919          &CI);
2920   Assert(!Ret->getReturnValue() || Ret->getReturnValue() == RetVal,
2921          "musttail call result must be returned", Ret);
2922 }
2923 
2924 void Verifier::visitCallInst(CallInst &CI) {
2925   verifyCallSite(&CI);
2926 
2927   if (CI.isMustTailCall())
2928     verifyMustTailCall(CI);
2929 }
2930 
2931 void Verifier::visitInvokeInst(InvokeInst &II) {
2932   verifyCallSite(&II);
2933 
2934   // Verify that the first non-PHI instruction of the unwind destination is an
2935   // exception handling instruction.
2936   Assert(
2937       II.getUnwindDest()->isEHPad(),
2938       "The unwind destination does not have an exception handling instruction!",
2939       &II);
2940 
2941   visitTerminatorInst(II);
2942 }
2943 
2944 /// visitBinaryOperator - Check that both arguments to the binary operator are
2945 /// of the same type!
2946 ///
2947 void Verifier::visitBinaryOperator(BinaryOperator &B) {
2948   Assert(B.getOperand(0)->getType() == B.getOperand(1)->getType(),
2949          "Both operands to a binary operator are not of the same type!", &B);
2950 
2951   switch (B.getOpcode()) {
2952   // Check that integer arithmetic operators are only used with
2953   // integral operands.
2954   case Instruction::Add:
2955   case Instruction::Sub:
2956   case Instruction::Mul:
2957   case Instruction::SDiv:
2958   case Instruction::UDiv:
2959   case Instruction::SRem:
2960   case Instruction::URem:
2961     Assert(B.getType()->isIntOrIntVectorTy(),
2962            "Integer arithmetic operators only work with integral types!", &B);
2963     Assert(B.getType() == B.getOperand(0)->getType(),
2964            "Integer arithmetic operators must have same type "
2965            "for operands and result!",
2966            &B);
2967     break;
2968   // Check that floating-point arithmetic operators are only used with
2969   // floating-point operands.
2970   case Instruction::FAdd:
2971   case Instruction::FSub:
2972   case Instruction::FMul:
2973   case Instruction::FDiv:
2974   case Instruction::FRem:
2975     Assert(B.getType()->isFPOrFPVectorTy(),
2976            "Floating-point arithmetic operators only work with "
2977            "floating-point types!",
2978            &B);
2979     Assert(B.getType() == B.getOperand(0)->getType(),
2980            "Floating-point arithmetic operators must have same type "
2981            "for operands and result!",
2982            &B);
2983     break;
2984   // Check that logical operators are only used with integral operands.
2985   case Instruction::And:
2986   case Instruction::Or:
2987   case Instruction::Xor:
2988     Assert(B.getType()->isIntOrIntVectorTy(),
2989            "Logical operators only work with integral types!", &B);
2990     Assert(B.getType() == B.getOperand(0)->getType(),
2991            "Logical operators must have same type for operands and result!",
2992            &B);
2993     break;
2994   case Instruction::Shl:
2995   case Instruction::LShr:
2996   case Instruction::AShr:
2997     Assert(B.getType()->isIntOrIntVectorTy(),
2998            "Shifts only work with integral types!", &B);
2999     Assert(B.getType() == B.getOperand(0)->getType(),
3000            "Shift return type must be same as operands!", &B);
3001     break;
3002   default:
3003     llvm_unreachable("Unknown BinaryOperator opcode!");
3004   }
3005 
3006   visitInstruction(B);
3007 }
3008 
3009 void Verifier::visitICmpInst(ICmpInst &IC) {
3010   // Check that the operands are the same type
3011   Type *Op0Ty = IC.getOperand(0)->getType();
3012   Type *Op1Ty = IC.getOperand(1)->getType();
3013   Assert(Op0Ty == Op1Ty,
3014          "Both operands to ICmp instruction are not of the same type!", &IC);
3015   // Check that the operands are the right type
3016   Assert(Op0Ty->isIntOrIntVectorTy() || Op0Ty->isPtrOrPtrVectorTy(),
3017          "Invalid operand types for ICmp instruction", &IC);
3018   // Check that the predicate is valid.
3019   Assert(IC.isIntPredicate(),
3020          "Invalid predicate in ICmp instruction!", &IC);
3021 
3022   visitInstruction(IC);
3023 }
3024 
3025 void Verifier::visitFCmpInst(FCmpInst &FC) {
3026   // Check that the operands are the same type
3027   Type *Op0Ty = FC.getOperand(0)->getType();
3028   Type *Op1Ty = FC.getOperand(1)->getType();
3029   Assert(Op0Ty == Op1Ty,
3030          "Both operands to FCmp instruction are not of the same type!", &FC);
3031   // Check that the operands are the right type
3032   Assert(Op0Ty->isFPOrFPVectorTy(),
3033          "Invalid operand types for FCmp instruction", &FC);
3034   // Check that the predicate is valid.
3035   Assert(FC.isFPPredicate(),
3036          "Invalid predicate in FCmp instruction!", &FC);
3037 
3038   visitInstruction(FC);
3039 }
3040 
3041 void Verifier::visitExtractElementInst(ExtractElementInst &EI) {
3042   Assert(
3043       ExtractElementInst::isValidOperands(EI.getOperand(0), EI.getOperand(1)),
3044       "Invalid extractelement operands!", &EI);
3045   visitInstruction(EI);
3046 }
3047 
3048 void Verifier::visitInsertElementInst(InsertElementInst &IE) {
3049   Assert(InsertElementInst::isValidOperands(IE.getOperand(0), IE.getOperand(1),
3050                                             IE.getOperand(2)),
3051          "Invalid insertelement operands!", &IE);
3052   visitInstruction(IE);
3053 }
3054 
3055 void Verifier::visitShuffleVectorInst(ShuffleVectorInst &SV) {
3056   Assert(ShuffleVectorInst::isValidOperands(SV.getOperand(0), SV.getOperand(1),
3057                                             SV.getOperand(2)),
3058          "Invalid shufflevector operands!", &SV);
3059   visitInstruction(SV);
3060 }
3061 
3062 void Verifier::visitGetElementPtrInst(GetElementPtrInst &GEP) {
3063   Type *TargetTy = GEP.getPointerOperandType()->getScalarType();
3064 
3065   Assert(isa<PointerType>(TargetTy),
3066          "GEP base pointer is not a vector or a vector of pointers", &GEP);
3067   Assert(GEP.getSourceElementType()->isSized(), "GEP into unsized type!", &GEP);
3068 
3069   SmallVector<Value*, 16> Idxs(GEP.idx_begin(), GEP.idx_end());
3070   Assert(all_of(
3071       Idxs, [](Value* V) { return V->getType()->isIntOrIntVectorTy(); }),
3072       "GEP indexes must be integers", &GEP);
3073   Type *ElTy =
3074       GetElementPtrInst::getIndexedType(GEP.getSourceElementType(), Idxs);
3075   Assert(ElTy, "Invalid indices for GEP pointer type!", &GEP);
3076 
3077   Assert(GEP.getType()->isPtrOrPtrVectorTy() &&
3078              GEP.getResultElementType() == ElTy,
3079          "GEP is not of right type for indices!", &GEP, ElTy);
3080 
3081   if (GEP.getType()->isVectorTy()) {
3082     // Additional checks for vector GEPs.
3083     unsigned GEPWidth = GEP.getType()->getVectorNumElements();
3084     if (GEP.getPointerOperandType()->isVectorTy())
3085       Assert(GEPWidth == GEP.getPointerOperandType()->getVectorNumElements(),
3086              "Vector GEP result width doesn't match operand's", &GEP);
3087     for (Value *Idx : Idxs) {
3088       Type *IndexTy = Idx->getType();
3089       if (IndexTy->isVectorTy()) {
3090         unsigned IndexWidth = IndexTy->getVectorNumElements();
3091         Assert(IndexWidth == GEPWidth, "Invalid GEP index vector width", &GEP);
3092       }
3093       Assert(IndexTy->isIntOrIntVectorTy(),
3094              "All GEP indices should be of integer type");
3095     }
3096   }
3097   visitInstruction(GEP);
3098 }
3099 
3100 static bool isContiguous(const ConstantRange &A, const ConstantRange &B) {
3101   return A.getUpper() == B.getLower() || A.getLower() == B.getUpper();
3102 }
3103 
3104 void Verifier::visitRangeMetadata(Instruction &I, MDNode *Range, Type *Ty) {
3105   assert(Range && Range == I.getMetadata(LLVMContext::MD_range) &&
3106          "precondition violation");
3107 
3108   unsigned NumOperands = Range->getNumOperands();
3109   Assert(NumOperands % 2 == 0, "Unfinished range!", Range);
3110   unsigned NumRanges = NumOperands / 2;
3111   Assert(NumRanges >= 1, "It should have at least one range!", Range);
3112 
3113   ConstantRange LastRange(1); // Dummy initial value
3114   for (unsigned i = 0; i < NumRanges; ++i) {
3115     ConstantInt *Low =
3116         mdconst::dyn_extract<ConstantInt>(Range->getOperand(2 * i));
3117     Assert(Low, "The lower limit must be an integer!", Low);
3118     ConstantInt *High =
3119         mdconst::dyn_extract<ConstantInt>(Range->getOperand(2 * i + 1));
3120     Assert(High, "The upper limit must be an integer!", High);
3121     Assert(High->getType() == Low->getType() && High->getType() == Ty,
3122            "Range types must match instruction type!", &I);
3123 
3124     APInt HighV = High->getValue();
3125     APInt LowV = Low->getValue();
3126     ConstantRange CurRange(LowV, HighV);
3127     Assert(!CurRange.isEmptySet() && !CurRange.isFullSet(),
3128            "Range must not be empty!", Range);
3129     if (i != 0) {
3130       Assert(CurRange.intersectWith(LastRange).isEmptySet(),
3131              "Intervals are overlapping", Range);
3132       Assert(LowV.sgt(LastRange.getLower()), "Intervals are not in order",
3133              Range);
3134       Assert(!isContiguous(CurRange, LastRange), "Intervals are contiguous",
3135              Range);
3136     }
3137     LastRange = ConstantRange(LowV, HighV);
3138   }
3139   if (NumRanges > 2) {
3140     APInt FirstLow =
3141         mdconst::dyn_extract<ConstantInt>(Range->getOperand(0))->getValue();
3142     APInt FirstHigh =
3143         mdconst::dyn_extract<ConstantInt>(Range->getOperand(1))->getValue();
3144     ConstantRange FirstRange(FirstLow, FirstHigh);
3145     Assert(FirstRange.intersectWith(LastRange).isEmptySet(),
3146            "Intervals are overlapping", Range);
3147     Assert(!isContiguous(FirstRange, LastRange), "Intervals are contiguous",
3148            Range);
3149   }
3150 }
3151 
3152 void Verifier::checkAtomicMemAccessSize(Type *Ty, const Instruction *I) {
3153   unsigned Size = DL.getTypeSizeInBits(Ty);
3154   Assert(Size >= 8, "atomic memory access' size must be byte-sized", Ty, I);
3155   Assert(!(Size & (Size - 1)),
3156          "atomic memory access' operand must have a power-of-two size", Ty, I);
3157 }
3158 
3159 void Verifier::visitLoadInst(LoadInst &LI) {
3160   PointerType *PTy = dyn_cast<PointerType>(LI.getOperand(0)->getType());
3161   Assert(PTy, "Load operand must be a pointer.", &LI);
3162   Type *ElTy = LI.getType();
3163   Assert(LI.getAlignment() <= Value::MaximumAlignment,
3164          "huge alignment values are unsupported", &LI);
3165   Assert(ElTy->isSized(), "loading unsized types is not allowed", &LI);
3166   if (LI.isAtomic()) {
3167     Assert(LI.getOrdering() != AtomicOrdering::Release &&
3168                LI.getOrdering() != AtomicOrdering::AcquireRelease,
3169            "Load cannot have Release ordering", &LI);
3170     Assert(LI.getAlignment() != 0,
3171            "Atomic load must specify explicit alignment", &LI);
3172     Assert(ElTy->isIntegerTy() || ElTy->isPointerTy() ||
3173                ElTy->isFloatingPointTy(),
3174            "atomic load operand must have integer, pointer, or floating point "
3175            "type!",
3176            ElTy, &LI);
3177     checkAtomicMemAccessSize(ElTy, &LI);
3178   } else {
3179     Assert(LI.getSyncScopeID() == SyncScope::System,
3180            "Non-atomic load cannot have SynchronizationScope specified", &LI);
3181   }
3182 
3183   visitInstruction(LI);
3184 }
3185 
3186 void Verifier::visitStoreInst(StoreInst &SI) {
3187   PointerType *PTy = dyn_cast<PointerType>(SI.getOperand(1)->getType());
3188   Assert(PTy, "Store operand must be a pointer.", &SI);
3189   Type *ElTy = PTy->getElementType();
3190   Assert(ElTy == SI.getOperand(0)->getType(),
3191          "Stored value type does not match pointer operand type!", &SI, ElTy);
3192   Assert(SI.getAlignment() <= Value::MaximumAlignment,
3193          "huge alignment values are unsupported", &SI);
3194   Assert(ElTy->isSized(), "storing unsized types is not allowed", &SI);
3195   if (SI.isAtomic()) {
3196     Assert(SI.getOrdering() != AtomicOrdering::Acquire &&
3197                SI.getOrdering() != AtomicOrdering::AcquireRelease,
3198            "Store cannot have Acquire ordering", &SI);
3199     Assert(SI.getAlignment() != 0,
3200            "Atomic store must specify explicit alignment", &SI);
3201     Assert(ElTy->isIntegerTy() || ElTy->isPointerTy() ||
3202                ElTy->isFloatingPointTy(),
3203            "atomic store operand must have integer, pointer, or floating point "
3204            "type!",
3205            ElTy, &SI);
3206     checkAtomicMemAccessSize(ElTy, &SI);
3207   } else {
3208     Assert(SI.getSyncScopeID() == SyncScope::System,
3209            "Non-atomic store cannot have SynchronizationScope specified", &SI);
3210   }
3211   visitInstruction(SI);
3212 }
3213 
3214 /// Check that SwiftErrorVal is used as a swifterror argument in CS.
3215 void Verifier::verifySwiftErrorCallSite(CallSite CS,
3216                                         const Value *SwiftErrorVal) {
3217   unsigned Idx = 0;
3218   for (CallSite::arg_iterator I = CS.arg_begin(), E = CS.arg_end();
3219        I != E; ++I, ++Idx) {
3220     if (*I == SwiftErrorVal) {
3221       Assert(CS.paramHasAttr(Idx, Attribute::SwiftError),
3222              "swifterror value when used in a callsite should be marked "
3223              "with swifterror attribute",
3224               SwiftErrorVal, CS);
3225     }
3226   }
3227 }
3228 
3229 void Verifier::verifySwiftErrorValue(const Value *SwiftErrorVal) {
3230   // Check that swifterror value is only used by loads, stores, or as
3231   // a swifterror argument.
3232   for (const User *U : SwiftErrorVal->users()) {
3233     Assert(isa<LoadInst>(U) || isa<StoreInst>(U) || isa<CallInst>(U) ||
3234            isa<InvokeInst>(U),
3235            "swifterror value can only be loaded and stored from, or "
3236            "as a swifterror argument!",
3237            SwiftErrorVal, U);
3238     // If it is used by a store, check it is the second operand.
3239     if (auto StoreI = dyn_cast<StoreInst>(U))
3240       Assert(StoreI->getOperand(1) == SwiftErrorVal,
3241              "swifterror value should be the second operand when used "
3242              "by stores", SwiftErrorVal, U);
3243     if (auto CallI = dyn_cast<CallInst>(U))
3244       verifySwiftErrorCallSite(const_cast<CallInst*>(CallI), SwiftErrorVal);
3245     if (auto II = dyn_cast<InvokeInst>(U))
3246       verifySwiftErrorCallSite(const_cast<InvokeInst*>(II), SwiftErrorVal);
3247   }
3248 }
3249 
3250 void Verifier::visitAllocaInst(AllocaInst &AI) {
3251   SmallPtrSet<Type*, 4> Visited;
3252   PointerType *PTy = AI.getType();
3253   // TODO: Relax this restriction?
3254   Assert(PTy->getAddressSpace() == DL.getAllocaAddrSpace(),
3255          "Allocation instruction pointer not in the stack address space!",
3256          &AI);
3257   Assert(AI.getAllocatedType()->isSized(&Visited),
3258          "Cannot allocate unsized type", &AI);
3259   Assert(AI.getArraySize()->getType()->isIntegerTy(),
3260          "Alloca array size must have integer type", &AI);
3261   Assert(AI.getAlignment() <= Value::MaximumAlignment,
3262          "huge alignment values are unsupported", &AI);
3263 
3264   if (AI.isSwiftError()) {
3265     verifySwiftErrorValue(&AI);
3266   }
3267 
3268   visitInstruction(AI);
3269 }
3270 
3271 void Verifier::visitAtomicCmpXchgInst(AtomicCmpXchgInst &CXI) {
3272 
3273   // FIXME: more conditions???
3274   Assert(CXI.getSuccessOrdering() != AtomicOrdering::NotAtomic,
3275          "cmpxchg instructions must be atomic.", &CXI);
3276   Assert(CXI.getFailureOrdering() != AtomicOrdering::NotAtomic,
3277          "cmpxchg instructions must be atomic.", &CXI);
3278   Assert(CXI.getSuccessOrdering() != AtomicOrdering::Unordered,
3279          "cmpxchg instructions cannot be unordered.", &CXI);
3280   Assert(CXI.getFailureOrdering() != AtomicOrdering::Unordered,
3281          "cmpxchg instructions cannot be unordered.", &CXI);
3282   Assert(!isStrongerThan(CXI.getFailureOrdering(), CXI.getSuccessOrdering()),
3283          "cmpxchg instructions failure argument shall be no stronger than the "
3284          "success argument",
3285          &CXI);
3286   Assert(CXI.getFailureOrdering() != AtomicOrdering::Release &&
3287              CXI.getFailureOrdering() != AtomicOrdering::AcquireRelease,
3288          "cmpxchg failure ordering cannot include release semantics", &CXI);
3289 
3290   PointerType *PTy = dyn_cast<PointerType>(CXI.getOperand(0)->getType());
3291   Assert(PTy, "First cmpxchg operand must be a pointer.", &CXI);
3292   Type *ElTy = PTy->getElementType();
3293   Assert(ElTy->isIntegerTy() || ElTy->isPointerTy(),
3294         "cmpxchg operand must have integer or pointer type",
3295          ElTy, &CXI);
3296   checkAtomicMemAccessSize(ElTy, &CXI);
3297   Assert(ElTy == CXI.getOperand(1)->getType(),
3298          "Expected value type does not match pointer operand type!", &CXI,
3299          ElTy);
3300   Assert(ElTy == CXI.getOperand(2)->getType(),
3301          "Stored value type does not match pointer operand type!", &CXI, ElTy);
3302   visitInstruction(CXI);
3303 }
3304 
3305 void Verifier::visitAtomicRMWInst(AtomicRMWInst &RMWI) {
3306   Assert(RMWI.getOrdering() != AtomicOrdering::NotAtomic,
3307          "atomicrmw instructions must be atomic.", &RMWI);
3308   Assert(RMWI.getOrdering() != AtomicOrdering::Unordered,
3309          "atomicrmw instructions cannot be unordered.", &RMWI);
3310   PointerType *PTy = dyn_cast<PointerType>(RMWI.getOperand(0)->getType());
3311   Assert(PTy, "First atomicrmw operand must be a pointer.", &RMWI);
3312   Type *ElTy = PTy->getElementType();
3313   Assert(ElTy->isIntegerTy(), "atomicrmw operand must have integer type!",
3314          &RMWI, ElTy);
3315   checkAtomicMemAccessSize(ElTy, &RMWI);
3316   Assert(ElTy == RMWI.getOperand(1)->getType(),
3317          "Argument value type does not match pointer operand type!", &RMWI,
3318          ElTy);
3319   Assert(AtomicRMWInst::FIRST_BINOP <= RMWI.getOperation() &&
3320              RMWI.getOperation() <= AtomicRMWInst::LAST_BINOP,
3321          "Invalid binary operation!", &RMWI);
3322   visitInstruction(RMWI);
3323 }
3324 
3325 void Verifier::visitFenceInst(FenceInst &FI) {
3326   const AtomicOrdering Ordering = FI.getOrdering();
3327   Assert(Ordering == AtomicOrdering::Acquire ||
3328              Ordering == AtomicOrdering::Release ||
3329              Ordering == AtomicOrdering::AcquireRelease ||
3330              Ordering == AtomicOrdering::SequentiallyConsistent,
3331          "fence instructions may only have acquire, release, acq_rel, or "
3332          "seq_cst ordering.",
3333          &FI);
3334   visitInstruction(FI);
3335 }
3336 
3337 void Verifier::visitExtractValueInst(ExtractValueInst &EVI) {
3338   Assert(ExtractValueInst::getIndexedType(EVI.getAggregateOperand()->getType(),
3339                                           EVI.getIndices()) == EVI.getType(),
3340          "Invalid ExtractValueInst operands!", &EVI);
3341 
3342   visitInstruction(EVI);
3343 }
3344 
3345 void Verifier::visitInsertValueInst(InsertValueInst &IVI) {
3346   Assert(ExtractValueInst::getIndexedType(IVI.getAggregateOperand()->getType(),
3347                                           IVI.getIndices()) ==
3348              IVI.getOperand(1)->getType(),
3349          "Invalid InsertValueInst operands!", &IVI);
3350 
3351   visitInstruction(IVI);
3352 }
3353 
3354 static Value *getParentPad(Value *EHPad) {
3355   if (auto *FPI = dyn_cast<FuncletPadInst>(EHPad))
3356     return FPI->getParentPad();
3357 
3358   return cast<CatchSwitchInst>(EHPad)->getParentPad();
3359 }
3360 
3361 void Verifier::visitEHPadPredecessors(Instruction &I) {
3362   assert(I.isEHPad());
3363 
3364   BasicBlock *BB = I.getParent();
3365   Function *F = BB->getParent();
3366 
3367   Assert(BB != &F->getEntryBlock(), "EH pad cannot be in entry block.", &I);
3368 
3369   if (auto *LPI = dyn_cast<LandingPadInst>(&I)) {
3370     // The landingpad instruction defines its parent as a landing pad block. The
3371     // landing pad block may be branched to only by the unwind edge of an
3372     // invoke.
3373     for (BasicBlock *PredBB : predecessors(BB)) {
3374       const auto *II = dyn_cast<InvokeInst>(PredBB->getTerminator());
3375       Assert(II && II->getUnwindDest() == BB && II->getNormalDest() != BB,
3376              "Block containing LandingPadInst must be jumped to "
3377              "only by the unwind edge of an invoke.",
3378              LPI);
3379     }
3380     return;
3381   }
3382   if (auto *CPI = dyn_cast<CatchPadInst>(&I)) {
3383     if (!pred_empty(BB))
3384       Assert(BB->getUniquePredecessor() == CPI->getCatchSwitch()->getParent(),
3385              "Block containg CatchPadInst must be jumped to "
3386              "only by its catchswitch.",
3387              CPI);
3388     Assert(BB != CPI->getCatchSwitch()->getUnwindDest(),
3389            "Catchswitch cannot unwind to one of its catchpads",
3390            CPI->getCatchSwitch(), CPI);
3391     return;
3392   }
3393 
3394   // Verify that each pred has a legal terminator with a legal to/from EH
3395   // pad relationship.
3396   Instruction *ToPad = &I;
3397   Value *ToPadParent = getParentPad(ToPad);
3398   for (BasicBlock *PredBB : predecessors(BB)) {
3399     TerminatorInst *TI = PredBB->getTerminator();
3400     Value *FromPad;
3401     if (auto *II = dyn_cast<InvokeInst>(TI)) {
3402       Assert(II->getUnwindDest() == BB && II->getNormalDest() != BB,
3403              "EH pad must be jumped to via an unwind edge", ToPad, II);
3404       if (auto Bundle = II->getOperandBundle(LLVMContext::OB_funclet))
3405         FromPad = Bundle->Inputs[0];
3406       else
3407         FromPad = ConstantTokenNone::get(II->getContext());
3408     } else if (auto *CRI = dyn_cast<CleanupReturnInst>(TI)) {
3409       FromPad = CRI->getOperand(0);
3410       Assert(FromPad != ToPadParent, "A cleanupret must exit its cleanup", CRI);
3411     } else if (auto *CSI = dyn_cast<CatchSwitchInst>(TI)) {
3412       FromPad = CSI;
3413     } else {
3414       Assert(false, "EH pad must be jumped to via an unwind edge", ToPad, TI);
3415     }
3416 
3417     // The edge may exit from zero or more nested pads.
3418     SmallSet<Value *, 8> Seen;
3419     for (;; FromPad = getParentPad(FromPad)) {
3420       Assert(FromPad != ToPad,
3421              "EH pad cannot handle exceptions raised within it", FromPad, TI);
3422       if (FromPad == ToPadParent) {
3423         // This is a legal unwind edge.
3424         break;
3425       }
3426       Assert(!isa<ConstantTokenNone>(FromPad),
3427              "A single unwind edge may only enter one EH pad", TI);
3428       Assert(Seen.insert(FromPad).second,
3429              "EH pad jumps through a cycle of pads", FromPad);
3430     }
3431   }
3432 }
3433 
3434 void Verifier::visitLandingPadInst(LandingPadInst &LPI) {
3435   // The landingpad instruction is ill-formed if it doesn't have any clauses and
3436   // isn't a cleanup.
3437   Assert(LPI.getNumClauses() > 0 || LPI.isCleanup(),
3438          "LandingPadInst needs at least one clause or to be a cleanup.", &LPI);
3439 
3440   visitEHPadPredecessors(LPI);
3441 
3442   if (!LandingPadResultTy)
3443     LandingPadResultTy = LPI.getType();
3444   else
3445     Assert(LandingPadResultTy == LPI.getType(),
3446            "The landingpad instruction should have a consistent result type "
3447            "inside a function.",
3448            &LPI);
3449 
3450   Function *F = LPI.getParent()->getParent();
3451   Assert(F->hasPersonalityFn(),
3452          "LandingPadInst needs to be in a function with a personality.", &LPI);
3453 
3454   // The landingpad instruction must be the first non-PHI instruction in the
3455   // block.
3456   Assert(LPI.getParent()->getLandingPadInst() == &LPI,
3457          "LandingPadInst not the first non-PHI instruction in the block.",
3458          &LPI);
3459 
3460   for (unsigned i = 0, e = LPI.getNumClauses(); i < e; ++i) {
3461     Constant *Clause = LPI.getClause(i);
3462     if (LPI.isCatch(i)) {
3463       Assert(isa<PointerType>(Clause->getType()),
3464              "Catch operand does not have pointer type!", &LPI);
3465     } else {
3466       Assert(LPI.isFilter(i), "Clause is neither catch nor filter!", &LPI);
3467       Assert(isa<ConstantArray>(Clause) || isa<ConstantAggregateZero>(Clause),
3468              "Filter operand is not an array of constants!", &LPI);
3469     }
3470   }
3471 
3472   visitInstruction(LPI);
3473 }
3474 
3475 void Verifier::visitResumeInst(ResumeInst &RI) {
3476   Assert(RI.getFunction()->hasPersonalityFn(),
3477          "ResumeInst needs to be in a function with a personality.", &RI);
3478 
3479   if (!LandingPadResultTy)
3480     LandingPadResultTy = RI.getValue()->getType();
3481   else
3482     Assert(LandingPadResultTy == RI.getValue()->getType(),
3483            "The resume instruction should have a consistent result type "
3484            "inside a function.",
3485            &RI);
3486 
3487   visitTerminatorInst(RI);
3488 }
3489 
3490 void Verifier::visitCatchPadInst(CatchPadInst &CPI) {
3491   BasicBlock *BB = CPI.getParent();
3492 
3493   Function *F = BB->getParent();
3494   Assert(F->hasPersonalityFn(),
3495          "CatchPadInst needs to be in a function with a personality.", &CPI);
3496 
3497   Assert(isa<CatchSwitchInst>(CPI.getParentPad()),
3498          "CatchPadInst needs to be directly nested in a CatchSwitchInst.",
3499          CPI.getParentPad());
3500 
3501   // The catchpad instruction must be the first non-PHI instruction in the
3502   // block.
3503   Assert(BB->getFirstNonPHI() == &CPI,
3504          "CatchPadInst not the first non-PHI instruction in the block.", &CPI);
3505 
3506   visitEHPadPredecessors(CPI);
3507   visitFuncletPadInst(CPI);
3508 }
3509 
3510 void Verifier::visitCatchReturnInst(CatchReturnInst &CatchReturn) {
3511   Assert(isa<CatchPadInst>(CatchReturn.getOperand(0)),
3512          "CatchReturnInst needs to be provided a CatchPad", &CatchReturn,
3513          CatchReturn.getOperand(0));
3514 
3515   visitTerminatorInst(CatchReturn);
3516 }
3517 
3518 void Verifier::visitCleanupPadInst(CleanupPadInst &CPI) {
3519   BasicBlock *BB = CPI.getParent();
3520 
3521   Function *F = BB->getParent();
3522   Assert(F->hasPersonalityFn(),
3523          "CleanupPadInst needs to be in a function with a personality.", &CPI);
3524 
3525   // The cleanuppad instruction must be the first non-PHI instruction in the
3526   // block.
3527   Assert(BB->getFirstNonPHI() == &CPI,
3528          "CleanupPadInst not the first non-PHI instruction in the block.",
3529          &CPI);
3530 
3531   auto *ParentPad = CPI.getParentPad();
3532   Assert(isa<ConstantTokenNone>(ParentPad) || isa<FuncletPadInst>(ParentPad),
3533          "CleanupPadInst has an invalid parent.", &CPI);
3534 
3535   visitEHPadPredecessors(CPI);
3536   visitFuncletPadInst(CPI);
3537 }
3538 
3539 void Verifier::visitFuncletPadInst(FuncletPadInst &FPI) {
3540   User *FirstUser = nullptr;
3541   Value *FirstUnwindPad = nullptr;
3542   SmallVector<FuncletPadInst *, 8> Worklist({&FPI});
3543   SmallSet<FuncletPadInst *, 8> Seen;
3544 
3545   while (!Worklist.empty()) {
3546     FuncletPadInst *CurrentPad = Worklist.pop_back_val();
3547     Assert(Seen.insert(CurrentPad).second,
3548            "FuncletPadInst must not be nested within itself", CurrentPad);
3549     Value *UnresolvedAncestorPad = nullptr;
3550     for (User *U : CurrentPad->users()) {
3551       BasicBlock *UnwindDest;
3552       if (auto *CRI = dyn_cast<CleanupReturnInst>(U)) {
3553         UnwindDest = CRI->getUnwindDest();
3554       } else if (auto *CSI = dyn_cast<CatchSwitchInst>(U)) {
3555         // We allow catchswitch unwind to caller to nest
3556         // within an outer pad that unwinds somewhere else,
3557         // because catchswitch doesn't have a nounwind variant.
3558         // See e.g. SimplifyCFGOpt::SimplifyUnreachable.
3559         if (CSI->unwindsToCaller())
3560           continue;
3561         UnwindDest = CSI->getUnwindDest();
3562       } else if (auto *II = dyn_cast<InvokeInst>(U)) {
3563         UnwindDest = II->getUnwindDest();
3564       } else if (isa<CallInst>(U)) {
3565         // Calls which don't unwind may be found inside funclet
3566         // pads that unwind somewhere else.  We don't *require*
3567         // such calls to be annotated nounwind.
3568         continue;
3569       } else if (auto *CPI = dyn_cast<CleanupPadInst>(U)) {
3570         // The unwind dest for a cleanup can only be found by
3571         // recursive search.  Add it to the worklist, and we'll
3572         // search for its first use that determines where it unwinds.
3573         Worklist.push_back(CPI);
3574         continue;
3575       } else {
3576         Assert(isa<CatchReturnInst>(U), "Bogus funclet pad use", U);
3577         continue;
3578       }
3579 
3580       Value *UnwindPad;
3581       bool ExitsFPI;
3582       if (UnwindDest) {
3583         UnwindPad = UnwindDest->getFirstNonPHI();
3584         if (!cast<Instruction>(UnwindPad)->isEHPad())
3585           continue;
3586         Value *UnwindParent = getParentPad(UnwindPad);
3587         // Ignore unwind edges that don't exit CurrentPad.
3588         if (UnwindParent == CurrentPad)
3589           continue;
3590         // Determine whether the original funclet pad is exited,
3591         // and if we are scanning nested pads determine how many
3592         // of them are exited so we can stop searching their
3593         // children.
3594         Value *ExitedPad = CurrentPad;
3595         ExitsFPI = false;
3596         do {
3597           if (ExitedPad == &FPI) {
3598             ExitsFPI = true;
3599             // Now we can resolve any ancestors of CurrentPad up to
3600             // FPI, but not including FPI since we need to make sure
3601             // to check all direct users of FPI for consistency.
3602             UnresolvedAncestorPad = &FPI;
3603             break;
3604           }
3605           Value *ExitedParent = getParentPad(ExitedPad);
3606           if (ExitedParent == UnwindParent) {
3607             // ExitedPad is the ancestor-most pad which this unwind
3608             // edge exits, so we can resolve up to it, meaning that
3609             // ExitedParent is the first ancestor still unresolved.
3610             UnresolvedAncestorPad = ExitedParent;
3611             break;
3612           }
3613           ExitedPad = ExitedParent;
3614         } while (!isa<ConstantTokenNone>(ExitedPad));
3615       } else {
3616         // Unwinding to caller exits all pads.
3617         UnwindPad = ConstantTokenNone::get(FPI.getContext());
3618         ExitsFPI = true;
3619         UnresolvedAncestorPad = &FPI;
3620       }
3621 
3622       if (ExitsFPI) {
3623         // This unwind edge exits FPI.  Make sure it agrees with other
3624         // such edges.
3625         if (FirstUser) {
3626           Assert(UnwindPad == FirstUnwindPad, "Unwind edges out of a funclet "
3627                                               "pad must have the same unwind "
3628                                               "dest",
3629                  &FPI, U, FirstUser);
3630         } else {
3631           FirstUser = U;
3632           FirstUnwindPad = UnwindPad;
3633           // Record cleanup sibling unwinds for verifySiblingFuncletUnwinds
3634           if (isa<CleanupPadInst>(&FPI) && !isa<ConstantTokenNone>(UnwindPad) &&
3635               getParentPad(UnwindPad) == getParentPad(&FPI))
3636             SiblingFuncletInfo[&FPI] = cast<TerminatorInst>(U);
3637         }
3638       }
3639       // Make sure we visit all uses of FPI, but for nested pads stop as
3640       // soon as we know where they unwind to.
3641       if (CurrentPad != &FPI)
3642         break;
3643     }
3644     if (UnresolvedAncestorPad) {
3645       if (CurrentPad == UnresolvedAncestorPad) {
3646         // When CurrentPad is FPI itself, we don't mark it as resolved even if
3647         // we've found an unwind edge that exits it, because we need to verify
3648         // all direct uses of FPI.
3649         assert(CurrentPad == &FPI);
3650         continue;
3651       }
3652       // Pop off the worklist any nested pads that we've found an unwind
3653       // destination for.  The pads on the worklist are the uncles,
3654       // great-uncles, etc. of CurrentPad.  We've found an unwind destination
3655       // for all ancestors of CurrentPad up to but not including
3656       // UnresolvedAncestorPad.
3657       Value *ResolvedPad = CurrentPad;
3658       while (!Worklist.empty()) {
3659         Value *UnclePad = Worklist.back();
3660         Value *AncestorPad = getParentPad(UnclePad);
3661         // Walk ResolvedPad up the ancestor list until we either find the
3662         // uncle's parent or the last resolved ancestor.
3663         while (ResolvedPad != AncestorPad) {
3664           Value *ResolvedParent = getParentPad(ResolvedPad);
3665           if (ResolvedParent == UnresolvedAncestorPad) {
3666             break;
3667           }
3668           ResolvedPad = ResolvedParent;
3669         }
3670         // If the resolved ancestor search didn't find the uncle's parent,
3671         // then the uncle is not yet resolved.
3672         if (ResolvedPad != AncestorPad)
3673           break;
3674         // This uncle is resolved, so pop it from the worklist.
3675         Worklist.pop_back();
3676       }
3677     }
3678   }
3679 
3680   if (FirstUnwindPad) {
3681     if (auto *CatchSwitch = dyn_cast<CatchSwitchInst>(FPI.getParentPad())) {
3682       BasicBlock *SwitchUnwindDest = CatchSwitch->getUnwindDest();
3683       Value *SwitchUnwindPad;
3684       if (SwitchUnwindDest)
3685         SwitchUnwindPad = SwitchUnwindDest->getFirstNonPHI();
3686       else
3687         SwitchUnwindPad = ConstantTokenNone::get(FPI.getContext());
3688       Assert(SwitchUnwindPad == FirstUnwindPad,
3689              "Unwind edges out of a catch must have the same unwind dest as "
3690              "the parent catchswitch",
3691              &FPI, FirstUser, CatchSwitch);
3692     }
3693   }
3694 
3695   visitInstruction(FPI);
3696 }
3697 
3698 void Verifier::visitCatchSwitchInst(CatchSwitchInst &CatchSwitch) {
3699   BasicBlock *BB = CatchSwitch.getParent();
3700 
3701   Function *F = BB->getParent();
3702   Assert(F->hasPersonalityFn(),
3703          "CatchSwitchInst needs to be in a function with a personality.",
3704          &CatchSwitch);
3705 
3706   // The catchswitch instruction must be the first non-PHI instruction in the
3707   // block.
3708   Assert(BB->getFirstNonPHI() == &CatchSwitch,
3709          "CatchSwitchInst not the first non-PHI instruction in the block.",
3710          &CatchSwitch);
3711 
3712   auto *ParentPad = CatchSwitch.getParentPad();
3713   Assert(isa<ConstantTokenNone>(ParentPad) || isa<FuncletPadInst>(ParentPad),
3714          "CatchSwitchInst has an invalid parent.", ParentPad);
3715 
3716   if (BasicBlock *UnwindDest = CatchSwitch.getUnwindDest()) {
3717     Instruction *I = UnwindDest->getFirstNonPHI();
3718     Assert(I->isEHPad() && !isa<LandingPadInst>(I),
3719            "CatchSwitchInst must unwind to an EH block which is not a "
3720            "landingpad.",
3721            &CatchSwitch);
3722 
3723     // Record catchswitch sibling unwinds for verifySiblingFuncletUnwinds
3724     if (getParentPad(I) == ParentPad)
3725       SiblingFuncletInfo[&CatchSwitch] = &CatchSwitch;
3726   }
3727 
3728   Assert(CatchSwitch.getNumHandlers() != 0,
3729          "CatchSwitchInst cannot have empty handler list", &CatchSwitch);
3730 
3731   for (BasicBlock *Handler : CatchSwitch.handlers()) {
3732     Assert(isa<CatchPadInst>(Handler->getFirstNonPHI()),
3733            "CatchSwitchInst handlers must be catchpads", &CatchSwitch, Handler);
3734   }
3735 
3736   visitEHPadPredecessors(CatchSwitch);
3737   visitTerminatorInst(CatchSwitch);
3738 }
3739 
3740 void Verifier::visitCleanupReturnInst(CleanupReturnInst &CRI) {
3741   Assert(isa<CleanupPadInst>(CRI.getOperand(0)),
3742          "CleanupReturnInst needs to be provided a CleanupPad", &CRI,
3743          CRI.getOperand(0));
3744 
3745   if (BasicBlock *UnwindDest = CRI.getUnwindDest()) {
3746     Instruction *I = UnwindDest->getFirstNonPHI();
3747     Assert(I->isEHPad() && !isa<LandingPadInst>(I),
3748            "CleanupReturnInst must unwind to an EH block which is not a "
3749            "landingpad.",
3750            &CRI);
3751   }
3752 
3753   visitTerminatorInst(CRI);
3754 }
3755 
3756 void Verifier::verifyDominatesUse(Instruction &I, unsigned i) {
3757   Instruction *Op = cast<Instruction>(I.getOperand(i));
3758   // If the we have an invalid invoke, don't try to compute the dominance.
3759   // We already reject it in the invoke specific checks and the dominance
3760   // computation doesn't handle multiple edges.
3761   if (InvokeInst *II = dyn_cast<InvokeInst>(Op)) {
3762     if (II->getNormalDest() == II->getUnwindDest())
3763       return;
3764   }
3765 
3766   // Quick check whether the def has already been encountered in the same block.
3767   // PHI nodes are not checked to prevent accepting preceeding PHIs, because PHI
3768   // uses are defined to happen on the incoming edge, not at the instruction.
3769   //
3770   // FIXME: If this operand is a MetadataAsValue (wrapping a LocalAsMetadata)
3771   // wrapping an SSA value, assert that we've already encountered it.  See
3772   // related FIXME in Mapper::mapLocalAsMetadata in ValueMapper.cpp.
3773   if (!isa<PHINode>(I) && InstsInThisBlock.count(Op))
3774     return;
3775 
3776   const Use &U = I.getOperandUse(i);
3777   Assert(DT.dominates(Op, U),
3778          "Instruction does not dominate all uses!", Op, &I);
3779 }
3780 
3781 void Verifier::visitDereferenceableMetadata(Instruction& I, MDNode* MD) {
3782   Assert(I.getType()->isPointerTy(), "dereferenceable, dereferenceable_or_null "
3783          "apply only to pointer types", &I);
3784   Assert(isa<LoadInst>(I),
3785          "dereferenceable, dereferenceable_or_null apply only to load"
3786          " instructions, use attributes for calls or invokes", &I);
3787   Assert(MD->getNumOperands() == 1, "dereferenceable, dereferenceable_or_null "
3788          "take one operand!", &I);
3789   ConstantInt *CI = mdconst::dyn_extract<ConstantInt>(MD->getOperand(0));
3790   Assert(CI && CI->getType()->isIntegerTy(64), "dereferenceable, "
3791          "dereferenceable_or_null metadata value must be an i64!", &I);
3792 }
3793 
3794 /// verifyInstruction - Verify that an instruction is well formed.
3795 ///
3796 void Verifier::visitInstruction(Instruction &I) {
3797   BasicBlock *BB = I.getParent();
3798   Assert(BB, "Instruction not embedded in basic block!", &I);
3799 
3800   if (!isa<PHINode>(I)) {   // Check that non-phi nodes are not self referential
3801     for (User *U : I.users()) {
3802       Assert(U != (User *)&I || !DT.isReachableFromEntry(BB),
3803              "Only PHI nodes may reference their own value!", &I);
3804     }
3805   }
3806 
3807   // Check that void typed values don't have names
3808   Assert(!I.getType()->isVoidTy() || !I.hasName(),
3809          "Instruction has a name, but provides a void value!", &I);
3810 
3811   // Check that the return value of the instruction is either void or a legal
3812   // value type.
3813   Assert(I.getType()->isVoidTy() || I.getType()->isFirstClassType(),
3814          "Instruction returns a non-scalar type!", &I);
3815 
3816   // Check that the instruction doesn't produce metadata. Calls are already
3817   // checked against the callee type.
3818   Assert(!I.getType()->isMetadataTy() || isa<CallInst>(I) || isa<InvokeInst>(I),
3819          "Invalid use of metadata!", &I);
3820 
3821   // Check that all uses of the instruction, if they are instructions
3822   // themselves, actually have parent basic blocks.  If the use is not an
3823   // instruction, it is an error!
3824   for (Use &U : I.uses()) {
3825     if (Instruction *Used = dyn_cast<Instruction>(U.getUser()))
3826       Assert(Used->getParent() != nullptr,
3827              "Instruction referencing"
3828              " instruction not embedded in a basic block!",
3829              &I, Used);
3830     else {
3831       CheckFailed("Use of instruction is not an instruction!", U);
3832       return;
3833     }
3834   }
3835 
3836   for (unsigned i = 0, e = I.getNumOperands(); i != e; ++i) {
3837     Assert(I.getOperand(i) != nullptr, "Instruction has null operand!", &I);
3838 
3839     // Check to make sure that only first-class-values are operands to
3840     // instructions.
3841     if (!I.getOperand(i)->getType()->isFirstClassType()) {
3842       Assert(false, "Instruction operands must be first-class values!", &I);
3843     }
3844 
3845     if (Function *F = dyn_cast<Function>(I.getOperand(i))) {
3846       // Check to make sure that the "address of" an intrinsic function is never
3847       // taken.
3848       Assert(
3849           !F->isIntrinsic() ||
3850               i == (isa<CallInst>(I) ? e - 1 : isa<InvokeInst>(I) ? e - 3 : 0),
3851           "Cannot take the address of an intrinsic!", &I);
3852       Assert(
3853           !F->isIntrinsic() || isa<CallInst>(I) ||
3854               F->getIntrinsicID() == Intrinsic::donothing ||
3855               F->getIntrinsicID() == Intrinsic::coro_resume ||
3856               F->getIntrinsicID() == Intrinsic::coro_destroy ||
3857               F->getIntrinsicID() == Intrinsic::experimental_patchpoint_void ||
3858               F->getIntrinsicID() == Intrinsic::experimental_patchpoint_i64 ||
3859               F->getIntrinsicID() == Intrinsic::experimental_gc_statepoint,
3860           "Cannot invoke an intrinsic other than donothing, patchpoint, "
3861           "statepoint, coro_resume or coro_destroy",
3862           &I);
3863       Assert(F->getParent() == &M, "Referencing function in another module!",
3864              &I, &M, F, F->getParent());
3865     } else if (BasicBlock *OpBB = dyn_cast<BasicBlock>(I.getOperand(i))) {
3866       Assert(OpBB->getParent() == BB->getParent(),
3867              "Referring to a basic block in another function!", &I);
3868     } else if (Argument *OpArg = dyn_cast<Argument>(I.getOperand(i))) {
3869       Assert(OpArg->getParent() == BB->getParent(),
3870              "Referring to an argument in another function!", &I);
3871     } else if (GlobalValue *GV = dyn_cast<GlobalValue>(I.getOperand(i))) {
3872       Assert(GV->getParent() == &M, "Referencing global in another module!", &I,
3873              &M, GV, GV->getParent());
3874     } else if (isa<Instruction>(I.getOperand(i))) {
3875       verifyDominatesUse(I, i);
3876     } else if (isa<InlineAsm>(I.getOperand(i))) {
3877       Assert((i + 1 == e && isa<CallInst>(I)) ||
3878                  (i + 3 == e && isa<InvokeInst>(I)),
3879              "Cannot take the address of an inline asm!", &I);
3880     } else if (ConstantExpr *CE = dyn_cast<ConstantExpr>(I.getOperand(i))) {
3881       if (CE->getType()->isPtrOrPtrVectorTy() ||
3882           !DL.getNonIntegralAddressSpaces().empty()) {
3883         // If we have a ConstantExpr pointer, we need to see if it came from an
3884         // illegal bitcast.  If the datalayout string specifies non-integral
3885         // address spaces then we also need to check for illegal ptrtoint and
3886         // inttoptr expressions.
3887         visitConstantExprsRecursively(CE);
3888       }
3889     }
3890   }
3891 
3892   if (MDNode *MD = I.getMetadata(LLVMContext::MD_fpmath)) {
3893     Assert(I.getType()->isFPOrFPVectorTy(),
3894            "fpmath requires a floating point result!", &I);
3895     Assert(MD->getNumOperands() == 1, "fpmath takes one operand!", &I);
3896     if (ConstantFP *CFP0 =
3897             mdconst::dyn_extract_or_null<ConstantFP>(MD->getOperand(0))) {
3898       const APFloat &Accuracy = CFP0->getValueAPF();
3899       Assert(&Accuracy.getSemantics() == &APFloat::IEEEsingle(),
3900              "fpmath accuracy must have float type", &I);
3901       Assert(Accuracy.isFiniteNonZero() && !Accuracy.isNegative(),
3902              "fpmath accuracy not a positive number!", &I);
3903     } else {
3904       Assert(false, "invalid fpmath accuracy!", &I);
3905     }
3906   }
3907 
3908   if (MDNode *Range = I.getMetadata(LLVMContext::MD_range)) {
3909     Assert(isa<LoadInst>(I) || isa<CallInst>(I) || isa<InvokeInst>(I),
3910            "Ranges are only for loads, calls and invokes!", &I);
3911     visitRangeMetadata(I, Range, I.getType());
3912   }
3913 
3914   if (I.getMetadata(LLVMContext::MD_nonnull)) {
3915     Assert(I.getType()->isPointerTy(), "nonnull applies only to pointer types",
3916            &I);
3917     Assert(isa<LoadInst>(I),
3918            "nonnull applies only to load instructions, use attributes"
3919            " for calls or invokes",
3920            &I);
3921   }
3922 
3923   if (MDNode *MD = I.getMetadata(LLVMContext::MD_dereferenceable))
3924     visitDereferenceableMetadata(I, MD);
3925 
3926   if (MDNode *MD = I.getMetadata(LLVMContext::MD_dereferenceable_or_null))
3927     visitDereferenceableMetadata(I, MD);
3928 
3929   if (MDNode *TBAA = I.getMetadata(LLVMContext::MD_tbaa))
3930     TBAAVerifyHelper.visitTBAAMetadata(I, TBAA);
3931 
3932   if (MDNode *AlignMD = I.getMetadata(LLVMContext::MD_align)) {
3933     Assert(I.getType()->isPointerTy(), "align applies only to pointer types",
3934            &I);
3935     Assert(isa<LoadInst>(I), "align applies only to load instructions, "
3936            "use attributes for calls or invokes", &I);
3937     Assert(AlignMD->getNumOperands() == 1, "align takes one operand!", &I);
3938     ConstantInt *CI = mdconst::dyn_extract<ConstantInt>(AlignMD->getOperand(0));
3939     Assert(CI && CI->getType()->isIntegerTy(64),
3940            "align metadata value must be an i64!", &I);
3941     uint64_t Align = CI->getZExtValue();
3942     Assert(isPowerOf2_64(Align),
3943            "align metadata value must be a power of 2!", &I);
3944     Assert(Align <= Value::MaximumAlignment,
3945            "alignment is larger that implementation defined limit", &I);
3946   }
3947 
3948   if (MDNode *N = I.getDebugLoc().getAsMDNode()) {
3949     AssertDI(isa<DILocation>(N), "invalid !dbg metadata attachment", &I, N);
3950     visitMDNode(*N);
3951   }
3952 
3953   if (auto *DII = dyn_cast<DbgInfoIntrinsic>(&I))
3954     verifyFragmentExpression(*DII);
3955 
3956   InstsInThisBlock.insert(&I);
3957 }
3958 
3959 /// Allow intrinsics to be verified in different ways.
3960 void Verifier::visitIntrinsicCallSite(Intrinsic::ID ID, CallSite CS) {
3961   Function *IF = CS.getCalledFunction();
3962   Assert(IF->isDeclaration(), "Intrinsic functions should never be defined!",
3963          IF);
3964 
3965   // Verify that the intrinsic prototype lines up with what the .td files
3966   // describe.
3967   FunctionType *IFTy = IF->getFunctionType();
3968   bool IsVarArg = IFTy->isVarArg();
3969 
3970   SmallVector<Intrinsic::IITDescriptor, 8> Table;
3971   getIntrinsicInfoTableEntries(ID, Table);
3972   ArrayRef<Intrinsic::IITDescriptor> TableRef = Table;
3973 
3974   SmallVector<Type *, 4> ArgTys;
3975   Assert(!Intrinsic::matchIntrinsicType(IFTy->getReturnType(),
3976                                         TableRef, ArgTys),
3977          "Intrinsic has incorrect return type!", IF);
3978   for (unsigned i = 0, e = IFTy->getNumParams(); i != e; ++i)
3979     Assert(!Intrinsic::matchIntrinsicType(IFTy->getParamType(i),
3980                                           TableRef, ArgTys),
3981            "Intrinsic has incorrect argument type!", IF);
3982 
3983   // Verify if the intrinsic call matches the vararg property.
3984   if (IsVarArg)
3985     Assert(!Intrinsic::matchIntrinsicVarArg(IsVarArg, TableRef),
3986            "Intrinsic was not defined with variable arguments!", IF);
3987   else
3988     Assert(!Intrinsic::matchIntrinsicVarArg(IsVarArg, TableRef),
3989            "Callsite was not defined with variable arguments!", IF);
3990 
3991   // All descriptors should be absorbed by now.
3992   Assert(TableRef.empty(), "Intrinsic has too few arguments!", IF);
3993 
3994   // Now that we have the intrinsic ID and the actual argument types (and we
3995   // know they are legal for the intrinsic!) get the intrinsic name through the
3996   // usual means.  This allows us to verify the mangling of argument types into
3997   // the name.
3998   const std::string ExpectedName = Intrinsic::getName(ID, ArgTys);
3999   Assert(ExpectedName == IF->getName(),
4000          "Intrinsic name not mangled correctly for type arguments! "
4001          "Should be: " +
4002              ExpectedName,
4003          IF);
4004 
4005   // If the intrinsic takes MDNode arguments, verify that they are either global
4006   // or are local to *this* function.
4007   for (Value *V : CS.args())
4008     if (auto *MD = dyn_cast<MetadataAsValue>(V))
4009       visitMetadataAsValue(*MD, CS.getCaller());
4010 
4011   switch (ID) {
4012   default:
4013     break;
4014   case Intrinsic::coro_id: {
4015     auto *InfoArg = CS.getArgOperand(3)->stripPointerCasts();
4016     if (isa<ConstantPointerNull>(InfoArg))
4017       break;
4018     auto *GV = dyn_cast<GlobalVariable>(InfoArg);
4019     Assert(GV && GV->isConstant() && GV->hasDefinitiveInitializer(),
4020       "info argument of llvm.coro.begin must refer to an initialized "
4021       "constant");
4022     Constant *Init = GV->getInitializer();
4023     Assert(isa<ConstantStruct>(Init) || isa<ConstantArray>(Init),
4024       "info argument of llvm.coro.begin must refer to either a struct or "
4025       "an array");
4026     break;
4027   }
4028   case Intrinsic::ctlz:  // llvm.ctlz
4029   case Intrinsic::cttz:  // llvm.cttz
4030     Assert(isa<ConstantInt>(CS.getArgOperand(1)),
4031            "is_zero_undef argument of bit counting intrinsics must be a "
4032            "constant int",
4033            CS);
4034     break;
4035   case Intrinsic::experimental_constrained_fadd:
4036   case Intrinsic::experimental_constrained_fsub:
4037   case Intrinsic::experimental_constrained_fmul:
4038   case Intrinsic::experimental_constrained_fdiv:
4039   case Intrinsic::experimental_constrained_frem:
4040   case Intrinsic::experimental_constrained_fma:
4041   case Intrinsic::experimental_constrained_sqrt:
4042   case Intrinsic::experimental_constrained_pow:
4043   case Intrinsic::experimental_constrained_powi:
4044   case Intrinsic::experimental_constrained_sin:
4045   case Intrinsic::experimental_constrained_cos:
4046   case Intrinsic::experimental_constrained_exp:
4047   case Intrinsic::experimental_constrained_exp2:
4048   case Intrinsic::experimental_constrained_log:
4049   case Intrinsic::experimental_constrained_log10:
4050   case Intrinsic::experimental_constrained_log2:
4051   case Intrinsic::experimental_constrained_rint:
4052   case Intrinsic::experimental_constrained_nearbyint:
4053     visitConstrainedFPIntrinsic(
4054         cast<ConstrainedFPIntrinsic>(*CS.getInstruction()));
4055     break;
4056   case Intrinsic::dbg_declare: // llvm.dbg.declare
4057     Assert(isa<MetadataAsValue>(CS.getArgOperand(0)),
4058            "invalid llvm.dbg.declare intrinsic call 1", CS);
4059     visitDbgIntrinsic("declare", cast<DbgInfoIntrinsic>(*CS.getInstruction()));
4060     break;
4061   case Intrinsic::dbg_addr: // llvm.dbg.addr
4062     visitDbgIntrinsic("addr", cast<DbgInfoIntrinsic>(*CS.getInstruction()));
4063     break;
4064   case Intrinsic::dbg_value: // llvm.dbg.value
4065     visitDbgIntrinsic("value", cast<DbgInfoIntrinsic>(*CS.getInstruction()));
4066     break;
4067   case Intrinsic::memcpy:
4068   case Intrinsic::memmove:
4069   case Intrinsic::memset: {
4070     const auto *MI = cast<MemIntrinsic>(CS.getInstruction());
4071     auto IsValidAlignment = [&](unsigned Alignment) -> bool {
4072       return Alignment == 0 || isPowerOf2_32(Alignment);
4073     };
4074     Assert(IsValidAlignment(MI->getDestAlignment()),
4075            "alignment of arg 0 of memory intrinsic must be 0 or a power of 2",
4076            CS);
4077     if (const auto *MTI = dyn_cast<MemTransferInst>(MI)) {
4078       Assert(IsValidAlignment(MTI->getSourceAlignment()),
4079              "alignment of arg 1 of memory intrinsic must be 0 or a power of 2",
4080              CS);
4081     }
4082     Assert(isa<ConstantInt>(CS.getArgOperand(3)),
4083            "isvolatile argument of memory intrinsics must be a constant int",
4084            CS);
4085     break;
4086   }
4087   case Intrinsic::memcpy_element_unordered_atomic: {
4088     const AtomicMemCpyInst *MI = cast<AtomicMemCpyInst>(CS.getInstruction());
4089 
4090     ConstantInt *ElementSizeCI =
4091         dyn_cast<ConstantInt>(MI->getRawElementSizeInBytes());
4092     Assert(ElementSizeCI,
4093            "element size of the element-wise unordered atomic memory "
4094            "intrinsic must be a constant int",
4095            CS);
4096     const APInt &ElementSizeVal = ElementSizeCI->getValue();
4097     Assert(ElementSizeVal.isPowerOf2(),
4098            "element size of the element-wise atomic memory intrinsic "
4099            "must be a power of 2",
4100            CS);
4101 
4102     if (auto *LengthCI = dyn_cast<ConstantInt>(MI->getLength())) {
4103       uint64_t Length = LengthCI->getZExtValue();
4104       uint64_t ElementSize = MI->getElementSizeInBytes();
4105       Assert((Length % ElementSize) == 0,
4106              "constant length must be a multiple of the element size in the "
4107              "element-wise atomic memory intrinsic",
4108              CS);
4109     }
4110 
4111     auto IsValidAlignment = [&](uint64_t Alignment) {
4112       return isPowerOf2_64(Alignment) && ElementSizeVal.ule(Alignment);
4113     };
4114     uint64_t DstAlignment = CS.getParamAlignment(0),
4115              SrcAlignment = CS.getParamAlignment(1);
4116     Assert(IsValidAlignment(DstAlignment),
4117            "incorrect alignment of the destination argument", CS);
4118     Assert(IsValidAlignment(SrcAlignment),
4119            "incorrect alignment of the source argument", CS);
4120     break;
4121   }
4122   case Intrinsic::memmove_element_unordered_atomic: {
4123     auto *MI = cast<AtomicMemMoveInst>(CS.getInstruction());
4124 
4125     ConstantInt *ElementSizeCI =
4126         dyn_cast<ConstantInt>(MI->getRawElementSizeInBytes());
4127     Assert(ElementSizeCI,
4128            "element size of the element-wise unordered atomic memory "
4129            "intrinsic must be a constant int",
4130            CS);
4131     const APInt &ElementSizeVal = ElementSizeCI->getValue();
4132     Assert(ElementSizeVal.isPowerOf2(),
4133            "element size of the element-wise atomic memory intrinsic "
4134            "must be a power of 2",
4135            CS);
4136 
4137     if (auto *LengthCI = dyn_cast<ConstantInt>(MI->getLength())) {
4138       uint64_t Length = LengthCI->getZExtValue();
4139       uint64_t ElementSize = MI->getElementSizeInBytes();
4140       Assert((Length % ElementSize) == 0,
4141              "constant length must be a multiple of the element size in the "
4142              "element-wise atomic memory intrinsic",
4143              CS);
4144     }
4145 
4146     auto IsValidAlignment = [&](uint64_t Alignment) {
4147       return isPowerOf2_64(Alignment) && ElementSizeVal.ule(Alignment);
4148     };
4149     uint64_t DstAlignment = CS.getParamAlignment(0),
4150              SrcAlignment = CS.getParamAlignment(1);
4151     Assert(IsValidAlignment(DstAlignment),
4152            "incorrect alignment of the destination argument", CS);
4153     Assert(IsValidAlignment(SrcAlignment),
4154            "incorrect alignment of the source argument", CS);
4155     break;
4156   }
4157   case Intrinsic::memset_element_unordered_atomic: {
4158     auto *MI = cast<AtomicMemSetInst>(CS.getInstruction());
4159 
4160     ConstantInt *ElementSizeCI =
4161         dyn_cast<ConstantInt>(MI->getRawElementSizeInBytes());
4162     Assert(ElementSizeCI,
4163            "element size of the element-wise unordered atomic memory "
4164            "intrinsic must be a constant int",
4165            CS);
4166     const APInt &ElementSizeVal = ElementSizeCI->getValue();
4167     Assert(ElementSizeVal.isPowerOf2(),
4168            "element size of the element-wise atomic memory intrinsic "
4169            "must be a power of 2",
4170            CS);
4171 
4172     if (auto *LengthCI = dyn_cast<ConstantInt>(MI->getLength())) {
4173       uint64_t Length = LengthCI->getZExtValue();
4174       uint64_t ElementSize = MI->getElementSizeInBytes();
4175       Assert((Length % ElementSize) == 0,
4176              "constant length must be a multiple of the element size in the "
4177              "element-wise atomic memory intrinsic",
4178              CS);
4179     }
4180 
4181     auto IsValidAlignment = [&](uint64_t Alignment) {
4182       return isPowerOf2_64(Alignment) && ElementSizeVal.ule(Alignment);
4183     };
4184     uint64_t DstAlignment = CS.getParamAlignment(0);
4185     Assert(IsValidAlignment(DstAlignment),
4186            "incorrect alignment of the destination argument", CS);
4187     break;
4188   }
4189   case Intrinsic::gcroot:
4190   case Intrinsic::gcwrite:
4191   case Intrinsic::gcread:
4192     if (ID == Intrinsic::gcroot) {
4193       AllocaInst *AI =
4194         dyn_cast<AllocaInst>(CS.getArgOperand(0)->stripPointerCasts());
4195       Assert(AI, "llvm.gcroot parameter #1 must be an alloca.", CS);
4196       Assert(isa<Constant>(CS.getArgOperand(1)),
4197              "llvm.gcroot parameter #2 must be a constant.", CS);
4198       if (!AI->getAllocatedType()->isPointerTy()) {
4199         Assert(!isa<ConstantPointerNull>(CS.getArgOperand(1)),
4200                "llvm.gcroot parameter #1 must either be a pointer alloca, "
4201                "or argument #2 must be a non-null constant.",
4202                CS);
4203       }
4204     }
4205 
4206     Assert(CS.getParent()->getParent()->hasGC(),
4207            "Enclosing function does not use GC.", CS);
4208     break;
4209   case Intrinsic::init_trampoline:
4210     Assert(isa<Function>(CS.getArgOperand(1)->stripPointerCasts()),
4211            "llvm.init_trampoline parameter #2 must resolve to a function.",
4212            CS);
4213     break;
4214   case Intrinsic::prefetch:
4215     Assert(isa<ConstantInt>(CS.getArgOperand(1)) &&
4216                isa<ConstantInt>(CS.getArgOperand(2)) &&
4217                cast<ConstantInt>(CS.getArgOperand(1))->getZExtValue() < 2 &&
4218                cast<ConstantInt>(CS.getArgOperand(2))->getZExtValue() < 4,
4219            "invalid arguments to llvm.prefetch", CS);
4220     break;
4221   case Intrinsic::stackprotector:
4222     Assert(isa<AllocaInst>(CS.getArgOperand(1)->stripPointerCasts()),
4223            "llvm.stackprotector parameter #2 must resolve to an alloca.", CS);
4224     break;
4225   case Intrinsic::lifetime_start:
4226   case Intrinsic::lifetime_end:
4227   case Intrinsic::invariant_start:
4228     Assert(isa<ConstantInt>(CS.getArgOperand(0)),
4229            "size argument of memory use markers must be a constant integer",
4230            CS);
4231     break;
4232   case Intrinsic::invariant_end:
4233     Assert(isa<ConstantInt>(CS.getArgOperand(1)),
4234            "llvm.invariant.end parameter #2 must be a constant integer", CS);
4235     break;
4236 
4237   case Intrinsic::localescape: {
4238     BasicBlock *BB = CS.getParent();
4239     Assert(BB == &BB->getParent()->front(),
4240            "llvm.localescape used outside of entry block", CS);
4241     Assert(!SawFrameEscape,
4242            "multiple calls to llvm.localescape in one function", CS);
4243     for (Value *Arg : CS.args()) {
4244       if (isa<ConstantPointerNull>(Arg))
4245         continue; // Null values are allowed as placeholders.
4246       auto *AI = dyn_cast<AllocaInst>(Arg->stripPointerCasts());
4247       Assert(AI && AI->isStaticAlloca(),
4248              "llvm.localescape only accepts static allocas", CS);
4249     }
4250     FrameEscapeInfo[BB->getParent()].first = CS.getNumArgOperands();
4251     SawFrameEscape = true;
4252     break;
4253   }
4254   case Intrinsic::localrecover: {
4255     Value *FnArg = CS.getArgOperand(0)->stripPointerCasts();
4256     Function *Fn = dyn_cast<Function>(FnArg);
4257     Assert(Fn && !Fn->isDeclaration(),
4258            "llvm.localrecover first "
4259            "argument must be function defined in this module",
4260            CS);
4261     auto *IdxArg = dyn_cast<ConstantInt>(CS.getArgOperand(2));
4262     Assert(IdxArg, "idx argument of llvm.localrecover must be a constant int",
4263            CS);
4264     auto &Entry = FrameEscapeInfo[Fn];
4265     Entry.second = unsigned(
4266         std::max(uint64_t(Entry.second), IdxArg->getLimitedValue(~0U) + 1));
4267     break;
4268   }
4269 
4270   case Intrinsic::experimental_gc_statepoint:
4271     Assert(!CS.isInlineAsm(),
4272            "gc.statepoint support for inline assembly unimplemented", CS);
4273     Assert(CS.getParent()->getParent()->hasGC(),
4274            "Enclosing function does not use GC.", CS);
4275 
4276     verifyStatepoint(CS);
4277     break;
4278   case Intrinsic::experimental_gc_result: {
4279     Assert(CS.getParent()->getParent()->hasGC(),
4280            "Enclosing function does not use GC.", CS);
4281     // Are we tied to a statepoint properly?
4282     CallSite StatepointCS(CS.getArgOperand(0));
4283     const Function *StatepointFn =
4284       StatepointCS.getInstruction() ? StatepointCS.getCalledFunction() : nullptr;
4285     Assert(StatepointFn && StatepointFn->isDeclaration() &&
4286                StatepointFn->getIntrinsicID() ==
4287                    Intrinsic::experimental_gc_statepoint,
4288            "gc.result operand #1 must be from a statepoint", CS,
4289            CS.getArgOperand(0));
4290 
4291     // Assert that result type matches wrapped callee.
4292     const Value *Target = StatepointCS.getArgument(2);
4293     auto *PT = cast<PointerType>(Target->getType());
4294     auto *TargetFuncType = cast<FunctionType>(PT->getElementType());
4295     Assert(CS.getType() == TargetFuncType->getReturnType(),
4296            "gc.result result type does not match wrapped callee", CS);
4297     break;
4298   }
4299   case Intrinsic::experimental_gc_relocate: {
4300     Assert(CS.getNumArgOperands() == 3, "wrong number of arguments", CS);
4301 
4302     Assert(isa<PointerType>(CS.getType()->getScalarType()),
4303            "gc.relocate must return a pointer or a vector of pointers", CS);
4304 
4305     // Check that this relocate is correctly tied to the statepoint
4306 
4307     // This is case for relocate on the unwinding path of an invoke statepoint
4308     if (LandingPadInst *LandingPad =
4309           dyn_cast<LandingPadInst>(CS.getArgOperand(0))) {
4310 
4311       const BasicBlock *InvokeBB =
4312           LandingPad->getParent()->getUniquePredecessor();
4313 
4314       // Landingpad relocates should have only one predecessor with invoke
4315       // statepoint terminator
4316       Assert(InvokeBB, "safepoints should have unique landingpads",
4317              LandingPad->getParent());
4318       Assert(InvokeBB->getTerminator(), "safepoint block should be well formed",
4319              InvokeBB);
4320       Assert(isStatepoint(InvokeBB->getTerminator()),
4321              "gc relocate should be linked to a statepoint", InvokeBB);
4322     }
4323     else {
4324       // In all other cases relocate should be tied to the statepoint directly.
4325       // This covers relocates on a normal return path of invoke statepoint and
4326       // relocates of a call statepoint.
4327       auto Token = CS.getArgOperand(0);
4328       Assert(isa<Instruction>(Token) && isStatepoint(cast<Instruction>(Token)),
4329              "gc relocate is incorrectly tied to the statepoint", CS, Token);
4330     }
4331 
4332     // Verify rest of the relocate arguments.
4333 
4334     ImmutableCallSite StatepointCS(
4335         cast<GCRelocateInst>(*CS.getInstruction()).getStatepoint());
4336 
4337     // Both the base and derived must be piped through the safepoint.
4338     Value* Base = CS.getArgOperand(1);
4339     Assert(isa<ConstantInt>(Base),
4340            "gc.relocate operand #2 must be integer offset", CS);
4341 
4342     Value* Derived = CS.getArgOperand(2);
4343     Assert(isa<ConstantInt>(Derived),
4344            "gc.relocate operand #3 must be integer offset", CS);
4345 
4346     const int BaseIndex = cast<ConstantInt>(Base)->getZExtValue();
4347     const int DerivedIndex = cast<ConstantInt>(Derived)->getZExtValue();
4348     // Check the bounds
4349     Assert(0 <= BaseIndex && BaseIndex < (int)StatepointCS.arg_size(),
4350            "gc.relocate: statepoint base index out of bounds", CS);
4351     Assert(0 <= DerivedIndex && DerivedIndex < (int)StatepointCS.arg_size(),
4352            "gc.relocate: statepoint derived index out of bounds", CS);
4353 
4354     // Check that BaseIndex and DerivedIndex fall within the 'gc parameters'
4355     // section of the statepoint's argument.
4356     Assert(StatepointCS.arg_size() > 0,
4357            "gc.statepoint: insufficient arguments");
4358     Assert(isa<ConstantInt>(StatepointCS.getArgument(3)),
4359            "gc.statement: number of call arguments must be constant integer");
4360     const unsigned NumCallArgs =
4361         cast<ConstantInt>(StatepointCS.getArgument(3))->getZExtValue();
4362     Assert(StatepointCS.arg_size() > NumCallArgs + 5,
4363            "gc.statepoint: mismatch in number of call arguments");
4364     Assert(isa<ConstantInt>(StatepointCS.getArgument(NumCallArgs + 5)),
4365            "gc.statepoint: number of transition arguments must be "
4366            "a constant integer");
4367     const int NumTransitionArgs =
4368         cast<ConstantInt>(StatepointCS.getArgument(NumCallArgs + 5))
4369             ->getZExtValue();
4370     const int DeoptArgsStart = 4 + NumCallArgs + 1 + NumTransitionArgs + 1;
4371     Assert(isa<ConstantInt>(StatepointCS.getArgument(DeoptArgsStart)),
4372            "gc.statepoint: number of deoptimization arguments must be "
4373            "a constant integer");
4374     const int NumDeoptArgs =
4375         cast<ConstantInt>(StatepointCS.getArgument(DeoptArgsStart))
4376             ->getZExtValue();
4377     const int GCParamArgsStart = DeoptArgsStart + 1 + NumDeoptArgs;
4378     const int GCParamArgsEnd = StatepointCS.arg_size();
4379     Assert(GCParamArgsStart <= BaseIndex && BaseIndex < GCParamArgsEnd,
4380            "gc.relocate: statepoint base index doesn't fall within the "
4381            "'gc parameters' section of the statepoint call",
4382            CS);
4383     Assert(GCParamArgsStart <= DerivedIndex && DerivedIndex < GCParamArgsEnd,
4384            "gc.relocate: statepoint derived index doesn't fall within the "
4385            "'gc parameters' section of the statepoint call",
4386            CS);
4387 
4388     // Relocated value must be either a pointer type or vector-of-pointer type,
4389     // but gc_relocate does not need to return the same pointer type as the
4390     // relocated pointer. It can be casted to the correct type later if it's
4391     // desired. However, they must have the same address space and 'vectorness'
4392     GCRelocateInst &Relocate = cast<GCRelocateInst>(*CS.getInstruction());
4393     Assert(Relocate.getDerivedPtr()->getType()->isPtrOrPtrVectorTy(),
4394            "gc.relocate: relocated value must be a gc pointer", CS);
4395 
4396     auto ResultType = CS.getType();
4397     auto DerivedType = Relocate.getDerivedPtr()->getType();
4398     Assert(ResultType->isVectorTy() == DerivedType->isVectorTy(),
4399            "gc.relocate: vector relocates to vector and pointer to pointer",
4400            CS);
4401     Assert(
4402         ResultType->getPointerAddressSpace() ==
4403             DerivedType->getPointerAddressSpace(),
4404         "gc.relocate: relocating a pointer shouldn't change its address space",
4405         CS);
4406     break;
4407   }
4408   case Intrinsic::eh_exceptioncode:
4409   case Intrinsic::eh_exceptionpointer: {
4410     Assert(isa<CatchPadInst>(CS.getArgOperand(0)),
4411            "eh.exceptionpointer argument must be a catchpad", CS);
4412     break;
4413   }
4414   case Intrinsic::masked_load: {
4415     Assert(CS.getType()->isVectorTy(), "masked_load: must return a vector", CS);
4416 
4417     Value *Ptr = CS.getArgOperand(0);
4418     //Value *Alignment = CS.getArgOperand(1);
4419     Value *Mask = CS.getArgOperand(2);
4420     Value *PassThru = CS.getArgOperand(3);
4421     Assert(Mask->getType()->isVectorTy(),
4422            "masked_load: mask must be vector", CS);
4423 
4424     // DataTy is the overloaded type
4425     Type *DataTy = cast<PointerType>(Ptr->getType())->getElementType();
4426     Assert(DataTy == CS.getType(),
4427            "masked_load: return must match pointer type", CS);
4428     Assert(PassThru->getType() == DataTy,
4429            "masked_load: pass through and data type must match", CS);
4430     Assert(Mask->getType()->getVectorNumElements() ==
4431            DataTy->getVectorNumElements(),
4432            "masked_load: vector mask must be same length as data", CS);
4433     break;
4434   }
4435   case Intrinsic::masked_store: {
4436     Value *Val = CS.getArgOperand(0);
4437     Value *Ptr = CS.getArgOperand(1);
4438     //Value *Alignment = CS.getArgOperand(2);
4439     Value *Mask = CS.getArgOperand(3);
4440     Assert(Mask->getType()->isVectorTy(),
4441            "masked_store: mask must be vector", CS);
4442 
4443     // DataTy is the overloaded type
4444     Type *DataTy = cast<PointerType>(Ptr->getType())->getElementType();
4445     Assert(DataTy == Val->getType(),
4446            "masked_store: storee must match pointer type", CS);
4447     Assert(Mask->getType()->getVectorNumElements() ==
4448            DataTy->getVectorNumElements(),
4449            "masked_store: vector mask must be same length as data", CS);
4450     break;
4451   }
4452 
4453   case Intrinsic::experimental_guard: {
4454     Assert(CS.isCall(), "experimental_guard cannot be invoked", CS);
4455     Assert(CS.countOperandBundlesOfType(LLVMContext::OB_deopt) == 1,
4456            "experimental_guard must have exactly one "
4457            "\"deopt\" operand bundle");
4458     break;
4459   }
4460 
4461   case Intrinsic::experimental_deoptimize: {
4462     Assert(CS.isCall(), "experimental_deoptimize cannot be invoked", CS);
4463     Assert(CS.countOperandBundlesOfType(LLVMContext::OB_deopt) == 1,
4464            "experimental_deoptimize must have exactly one "
4465            "\"deopt\" operand bundle");
4466     Assert(CS.getType() == CS.getInstruction()->getFunction()->getReturnType(),
4467            "experimental_deoptimize return type must match caller return type");
4468 
4469     if (CS.isCall()) {
4470       auto *DeoptCI = CS.getInstruction();
4471       auto *RI = dyn_cast<ReturnInst>(DeoptCI->getNextNode());
4472       Assert(RI,
4473              "calls to experimental_deoptimize must be followed by a return");
4474 
4475       if (!CS.getType()->isVoidTy() && RI)
4476         Assert(RI->getReturnValue() == DeoptCI,
4477                "calls to experimental_deoptimize must be followed by a return "
4478                "of the value computed by experimental_deoptimize");
4479     }
4480 
4481     break;
4482   }
4483   };
4484 }
4485 
4486 /// \brief Carefully grab the subprogram from a local scope.
4487 ///
4488 /// This carefully grabs the subprogram from a local scope, avoiding the
4489 /// built-in assertions that would typically fire.
4490 static DISubprogram *getSubprogram(Metadata *LocalScope) {
4491   if (!LocalScope)
4492     return nullptr;
4493 
4494   if (auto *SP = dyn_cast<DISubprogram>(LocalScope))
4495     return SP;
4496 
4497   if (auto *LB = dyn_cast<DILexicalBlockBase>(LocalScope))
4498     return getSubprogram(LB->getRawScope());
4499 
4500   // Just return null; broken scope chains are checked elsewhere.
4501   assert(!isa<DILocalScope>(LocalScope) && "Unknown type of local scope");
4502   return nullptr;
4503 }
4504 
4505 void Verifier::visitConstrainedFPIntrinsic(ConstrainedFPIntrinsic &FPI) {
4506   unsigned NumOperands = FPI.getNumArgOperands();
4507   Assert(((NumOperands == 5 && FPI.isTernaryOp()) ||
4508           (NumOperands == 3 && FPI.isUnaryOp()) || (NumOperands == 4)),
4509            "invalid arguments for constrained FP intrinsic", &FPI);
4510   Assert(isa<MetadataAsValue>(FPI.getArgOperand(NumOperands-1)),
4511          "invalid exception behavior argument", &FPI);
4512   Assert(isa<MetadataAsValue>(FPI.getArgOperand(NumOperands-2)),
4513          "invalid rounding mode argument", &FPI);
4514   Assert(FPI.getRoundingMode() != ConstrainedFPIntrinsic::rmInvalid,
4515          "invalid rounding mode argument", &FPI);
4516   Assert(FPI.getExceptionBehavior() != ConstrainedFPIntrinsic::ebInvalid,
4517          "invalid exception behavior argument", &FPI);
4518 }
4519 
4520 void Verifier::visitDbgIntrinsic(StringRef Kind, DbgInfoIntrinsic &DII) {
4521   auto *MD = cast<MetadataAsValue>(DII.getArgOperand(0))->getMetadata();
4522   AssertDI(isa<ValueAsMetadata>(MD) ||
4523              (isa<MDNode>(MD) && !cast<MDNode>(MD)->getNumOperands()),
4524          "invalid llvm.dbg." + Kind + " intrinsic address/value", &DII, MD);
4525   AssertDI(isa<DILocalVariable>(DII.getRawVariable()),
4526          "invalid llvm.dbg." + Kind + " intrinsic variable", &DII,
4527          DII.getRawVariable());
4528   AssertDI(isa<DIExpression>(DII.getRawExpression()),
4529          "invalid llvm.dbg." + Kind + " intrinsic expression", &DII,
4530          DII.getRawExpression());
4531 
4532   // Ignore broken !dbg attachments; they're checked elsewhere.
4533   if (MDNode *N = DII.getDebugLoc().getAsMDNode())
4534     if (!isa<DILocation>(N))
4535       return;
4536 
4537   BasicBlock *BB = DII.getParent();
4538   Function *F = BB ? BB->getParent() : nullptr;
4539 
4540   // The scopes for variables and !dbg attachments must agree.
4541   DILocalVariable *Var = DII.getVariable();
4542   DILocation *Loc = DII.getDebugLoc();
4543   AssertDI(Loc, "llvm.dbg." + Kind + " intrinsic requires a !dbg attachment",
4544            &DII, BB, F);
4545 
4546   DISubprogram *VarSP = getSubprogram(Var->getRawScope());
4547   DISubprogram *LocSP = getSubprogram(Loc->getRawScope());
4548   if (!VarSP || !LocSP)
4549     return; // Broken scope chains are checked elsewhere.
4550 
4551   AssertDI(VarSP == LocSP, "mismatched subprogram between llvm.dbg." + Kind +
4552                                " variable and !dbg attachment",
4553            &DII, BB, F, Var, Var->getScope()->getSubprogram(), Loc,
4554            Loc->getScope()->getSubprogram());
4555 
4556   verifyFnArgs(DII);
4557 }
4558 
4559 void Verifier::verifyFragmentExpression(const DbgInfoIntrinsic &I) {
4560   DILocalVariable *V = dyn_cast_or_null<DILocalVariable>(I.getRawVariable());
4561   DIExpression *E = dyn_cast_or_null<DIExpression>(I.getRawExpression());
4562 
4563   // We don't know whether this intrinsic verified correctly.
4564   if (!V || !E || !E->isValid())
4565     return;
4566 
4567   // Nothing to do if this isn't a DW_OP_LLVM_fragment expression.
4568   auto Fragment = E->getFragmentInfo();
4569   if (!Fragment)
4570     return;
4571 
4572   // The frontend helps out GDB by emitting the members of local anonymous
4573   // unions as artificial local variables with shared storage. When SROA splits
4574   // the storage for artificial local variables that are smaller than the entire
4575   // union, the overhang piece will be outside of the allotted space for the
4576   // variable and this check fails.
4577   // FIXME: Remove this check as soon as clang stops doing this; it hides bugs.
4578   if (V->isArtificial())
4579     return;
4580 
4581   verifyFragmentExpression(*V, *Fragment, &I);
4582 }
4583 
4584 template <typename ValueOrMetadata>
4585 void Verifier::verifyFragmentExpression(const DIVariable &V,
4586                                         DIExpression::FragmentInfo Fragment,
4587                                         ValueOrMetadata *Desc) {
4588   // If there's no size, the type is broken, but that should be checked
4589   // elsewhere.
4590   auto VarSize = V.getSizeInBits();
4591   if (!VarSize)
4592     return;
4593 
4594   unsigned FragSize = Fragment.SizeInBits;
4595   unsigned FragOffset = Fragment.OffsetInBits;
4596   AssertDI(FragSize + FragOffset <= *VarSize,
4597          "fragment is larger than or outside of variable", Desc, &V);
4598   AssertDI(FragSize != *VarSize, "fragment covers entire variable", Desc, &V);
4599 }
4600 
4601 void Verifier::verifyFnArgs(const DbgInfoIntrinsic &I) {
4602   // This function does not take the scope of noninlined function arguments into
4603   // account. Don't run it if current function is nodebug, because it may
4604   // contain inlined debug intrinsics.
4605   if (!HasDebugInfo)
4606     return;
4607 
4608   // For performance reasons only check non-inlined ones.
4609   if (I.getDebugLoc()->getInlinedAt())
4610     return;
4611 
4612   DILocalVariable *Var = I.getVariable();
4613   AssertDI(Var, "dbg intrinsic without variable");
4614 
4615   unsigned ArgNo = Var->getArg();
4616   if (!ArgNo)
4617     return;
4618 
4619   // Verify there are no duplicate function argument debug info entries.
4620   // These will cause hard-to-debug assertions in the DWARF backend.
4621   if (DebugFnArgs.size() < ArgNo)
4622     DebugFnArgs.resize(ArgNo, nullptr);
4623 
4624   auto *Prev = DebugFnArgs[ArgNo - 1];
4625   DebugFnArgs[ArgNo - 1] = Var;
4626   AssertDI(!Prev || (Prev == Var), "conflicting debug info for argument", &I,
4627            Prev, Var);
4628 }
4629 
4630 void Verifier::verifyCompileUnits() {
4631   // When more than one Module is imported into the same context, such as during
4632   // an LTO build before linking the modules, ODR type uniquing may cause types
4633   // to point to a different CU. This check does not make sense in this case.
4634   if (M.getContext().isODRUniquingDebugTypes())
4635     return;
4636   auto *CUs = M.getNamedMetadata("llvm.dbg.cu");
4637   SmallPtrSet<const Metadata *, 2> Listed;
4638   if (CUs)
4639     Listed.insert(CUs->op_begin(), CUs->op_end());
4640   for (auto *CU : CUVisited)
4641     AssertDI(Listed.count(CU), "DICompileUnit not listed in llvm.dbg.cu", CU);
4642   CUVisited.clear();
4643 }
4644 
4645 void Verifier::verifyDeoptimizeCallingConvs() {
4646   if (DeoptimizeDeclarations.empty())
4647     return;
4648 
4649   const Function *First = DeoptimizeDeclarations[0];
4650   for (auto *F : makeArrayRef(DeoptimizeDeclarations).slice(1)) {
4651     Assert(First->getCallingConv() == F->getCallingConv(),
4652            "All llvm.experimental.deoptimize declarations must have the same "
4653            "calling convention",
4654            First, F);
4655   }
4656 }
4657 
4658 //===----------------------------------------------------------------------===//
4659 //  Implement the public interfaces to this file...
4660 //===----------------------------------------------------------------------===//
4661 
4662 bool llvm::verifyFunction(const Function &f, raw_ostream *OS) {
4663   Function &F = const_cast<Function &>(f);
4664 
4665   // Don't use a raw_null_ostream.  Printing IR is expensive.
4666   Verifier V(OS, /*ShouldTreatBrokenDebugInfoAsError=*/true, *f.getParent());
4667 
4668   // Note that this function's return value is inverted from what you would
4669   // expect of a function called "verify".
4670   return !V.verify(F);
4671 }
4672 
4673 bool llvm::verifyModule(const Module &M, raw_ostream *OS,
4674                         bool *BrokenDebugInfo) {
4675   // Don't use a raw_null_ostream.  Printing IR is expensive.
4676   Verifier V(OS, /*ShouldTreatBrokenDebugInfoAsError=*/!BrokenDebugInfo, M);
4677 
4678   bool Broken = false;
4679   for (const Function &F : M)
4680     Broken |= !V.verify(F);
4681 
4682   Broken |= !V.verify();
4683   if (BrokenDebugInfo)
4684     *BrokenDebugInfo = V.hasBrokenDebugInfo();
4685   // Note that this function's return value is inverted from what you would
4686   // expect of a function called "verify".
4687   return Broken;
4688 }
4689 
4690 namespace {
4691 
4692 struct VerifierLegacyPass : public FunctionPass {
4693   static char ID;
4694 
4695   std::unique_ptr<Verifier> V;
4696   bool FatalErrors = true;
4697 
4698   VerifierLegacyPass() : FunctionPass(ID) {
4699     initializeVerifierLegacyPassPass(*PassRegistry::getPassRegistry());
4700   }
4701   explicit VerifierLegacyPass(bool FatalErrors)
4702       : FunctionPass(ID),
4703         FatalErrors(FatalErrors) {
4704     initializeVerifierLegacyPassPass(*PassRegistry::getPassRegistry());
4705   }
4706 
4707   bool doInitialization(Module &M) override {
4708     V = llvm::make_unique<Verifier>(
4709         &dbgs(), /*ShouldTreatBrokenDebugInfoAsError=*/false, M);
4710     return false;
4711   }
4712 
4713   bool runOnFunction(Function &F) override {
4714     if (!V->verify(F) && FatalErrors)
4715       report_fatal_error("Broken function found, compilation aborted!");
4716 
4717     return false;
4718   }
4719 
4720   bool doFinalization(Module &M) override {
4721     bool HasErrors = false;
4722     for (Function &F : M)
4723       if (F.isDeclaration())
4724         HasErrors |= !V->verify(F);
4725 
4726     HasErrors |= !V->verify();
4727     if (FatalErrors && (HasErrors || V->hasBrokenDebugInfo()))
4728       report_fatal_error("Broken module found, compilation aborted!");
4729     return false;
4730   }
4731 
4732   void getAnalysisUsage(AnalysisUsage &AU) const override {
4733     AU.setPreservesAll();
4734   }
4735 };
4736 
4737 } // end anonymous namespace
4738 
4739 /// Helper to issue failure from the TBAA verification
4740 template <typename... Tys> void TBAAVerifier::CheckFailed(Tys &&... Args) {
4741   if (Diagnostic)
4742     return Diagnostic->CheckFailed(Args...);
4743 }
4744 
4745 #define AssertTBAA(C, ...)                                                     \
4746   do {                                                                         \
4747     if (!(C)) {                                                                \
4748       CheckFailed(__VA_ARGS__);                                                \
4749       return false;                                                            \
4750     }                                                                          \
4751   } while (false)
4752 
4753 /// Verify that \p BaseNode can be used as the "base type" in the struct-path
4754 /// TBAA scheme.  This means \p BaseNode is either a scalar node, or a
4755 /// struct-type node describing an aggregate data structure (like a struct).
4756 TBAAVerifier::TBAABaseNodeSummary
4757 TBAAVerifier::verifyTBAABaseNode(Instruction &I, const MDNode *BaseNode,
4758                                  bool IsNewFormat) {
4759   if (BaseNode->getNumOperands() < 2) {
4760     CheckFailed("Base nodes must have at least two operands", &I, BaseNode);
4761     return {true, ~0u};
4762   }
4763 
4764   auto Itr = TBAABaseNodes.find(BaseNode);
4765   if (Itr != TBAABaseNodes.end())
4766     return Itr->second;
4767 
4768   auto Result = verifyTBAABaseNodeImpl(I, BaseNode, IsNewFormat);
4769   auto InsertResult = TBAABaseNodes.insert({BaseNode, Result});
4770   (void)InsertResult;
4771   assert(InsertResult.second && "We just checked!");
4772   return Result;
4773 }
4774 
4775 TBAAVerifier::TBAABaseNodeSummary
4776 TBAAVerifier::verifyTBAABaseNodeImpl(Instruction &I, const MDNode *BaseNode,
4777                                      bool IsNewFormat) {
4778   const TBAAVerifier::TBAABaseNodeSummary InvalidNode = {true, ~0u};
4779 
4780   if (BaseNode->getNumOperands() == 2) {
4781     // Scalar nodes can only be accessed at offset 0.
4782     return isValidScalarTBAANode(BaseNode)
4783                ? TBAAVerifier::TBAABaseNodeSummary({false, 0})
4784                : InvalidNode;
4785   }
4786 
4787   if (IsNewFormat) {
4788     if (BaseNode->getNumOperands() % 3 != 0) {
4789       CheckFailed("Access tag nodes must have the number of operands that is a "
4790                   "multiple of 3!", BaseNode);
4791       return InvalidNode;
4792     }
4793   } else {
4794     if (BaseNode->getNumOperands() % 2 != 1) {
4795       CheckFailed("Struct tag nodes must have an odd number of operands!",
4796                   BaseNode);
4797       return InvalidNode;
4798     }
4799   }
4800 
4801   // Check the type size field.
4802   if (IsNewFormat) {
4803     auto *TypeSizeNode = mdconst::dyn_extract_or_null<ConstantInt>(
4804         BaseNode->getOperand(1));
4805     if (!TypeSizeNode) {
4806       CheckFailed("Type size nodes must be constants!", &I, BaseNode);
4807       return InvalidNode;
4808     }
4809   }
4810 
4811   // Check the type name field. In the new format it can be anything.
4812   if (!IsNewFormat && !isa<MDString>(BaseNode->getOperand(0))) {
4813     CheckFailed("Struct tag nodes have a string as their first operand",
4814                 BaseNode);
4815     return InvalidNode;
4816   }
4817 
4818   bool Failed = false;
4819 
4820   Optional<APInt> PrevOffset;
4821   unsigned BitWidth = ~0u;
4822 
4823   // We've already checked that BaseNode is not a degenerate root node with one
4824   // operand in \c verifyTBAABaseNode, so this loop should run at least once.
4825   unsigned FirstFieldOpNo = IsNewFormat ? 3 : 1;
4826   unsigned NumOpsPerField = IsNewFormat ? 3 : 2;
4827   for (unsigned Idx = FirstFieldOpNo; Idx < BaseNode->getNumOperands();
4828            Idx += NumOpsPerField) {
4829     const MDOperand &FieldTy = BaseNode->getOperand(Idx);
4830     const MDOperand &FieldOffset = BaseNode->getOperand(Idx + 1);
4831     if (!isa<MDNode>(FieldTy)) {
4832       CheckFailed("Incorrect field entry in struct type node!", &I, BaseNode);
4833       Failed = true;
4834       continue;
4835     }
4836 
4837     auto *OffsetEntryCI =
4838         mdconst::dyn_extract_or_null<ConstantInt>(FieldOffset);
4839     if (!OffsetEntryCI) {
4840       CheckFailed("Offset entries must be constants!", &I, BaseNode);
4841       Failed = true;
4842       continue;
4843     }
4844 
4845     if (BitWidth == ~0u)
4846       BitWidth = OffsetEntryCI->getBitWidth();
4847 
4848     if (OffsetEntryCI->getBitWidth() != BitWidth) {
4849       CheckFailed(
4850           "Bitwidth between the offsets and struct type entries must match", &I,
4851           BaseNode);
4852       Failed = true;
4853       continue;
4854     }
4855 
4856     // NB! As far as I can tell, we generate a non-strictly increasing offset
4857     // sequence only from structs that have zero size bit fields.  When
4858     // recursing into a contained struct in \c getFieldNodeFromTBAABaseNode we
4859     // pick the field lexically the latest in struct type metadata node.  This
4860     // mirrors the actual behavior of the alias analysis implementation.
4861     bool IsAscending =
4862         !PrevOffset || PrevOffset->ule(OffsetEntryCI->getValue());
4863 
4864     if (!IsAscending) {
4865       CheckFailed("Offsets must be increasing!", &I, BaseNode);
4866       Failed = true;
4867     }
4868 
4869     PrevOffset = OffsetEntryCI->getValue();
4870 
4871     if (IsNewFormat) {
4872       auto *MemberSizeNode = mdconst::dyn_extract_or_null<ConstantInt>(
4873           BaseNode->getOperand(Idx + 2));
4874       if (!MemberSizeNode) {
4875         CheckFailed("Member size entries must be constants!", &I, BaseNode);
4876         Failed = true;
4877         continue;
4878       }
4879     }
4880   }
4881 
4882   return Failed ? InvalidNode
4883                 : TBAAVerifier::TBAABaseNodeSummary(false, BitWidth);
4884 }
4885 
4886 static bool IsRootTBAANode(const MDNode *MD) {
4887   return MD->getNumOperands() < 2;
4888 }
4889 
4890 static bool IsScalarTBAANodeImpl(const MDNode *MD,
4891                                  SmallPtrSetImpl<const MDNode *> &Visited) {
4892   if (MD->getNumOperands() != 2 && MD->getNumOperands() != 3)
4893     return false;
4894 
4895   if (!isa<MDString>(MD->getOperand(0)))
4896     return false;
4897 
4898   if (MD->getNumOperands() == 3) {
4899     auto *Offset = mdconst::dyn_extract<ConstantInt>(MD->getOperand(2));
4900     if (!(Offset && Offset->isZero() && isa<MDString>(MD->getOperand(0))))
4901       return false;
4902   }
4903 
4904   auto *Parent = dyn_cast_or_null<MDNode>(MD->getOperand(1));
4905   return Parent && Visited.insert(Parent).second &&
4906          (IsRootTBAANode(Parent) || IsScalarTBAANodeImpl(Parent, Visited));
4907 }
4908 
4909 bool TBAAVerifier::isValidScalarTBAANode(const MDNode *MD) {
4910   auto ResultIt = TBAAScalarNodes.find(MD);
4911   if (ResultIt != TBAAScalarNodes.end())
4912     return ResultIt->second;
4913 
4914   SmallPtrSet<const MDNode *, 4> Visited;
4915   bool Result = IsScalarTBAANodeImpl(MD, Visited);
4916   auto InsertResult = TBAAScalarNodes.insert({MD, Result});
4917   (void)InsertResult;
4918   assert(InsertResult.second && "Just checked!");
4919 
4920   return Result;
4921 }
4922 
4923 /// Returns the field node at the offset \p Offset in \p BaseNode.  Update \p
4924 /// Offset in place to be the offset within the field node returned.
4925 ///
4926 /// We assume we've okayed \p BaseNode via \c verifyTBAABaseNode.
4927 MDNode *TBAAVerifier::getFieldNodeFromTBAABaseNode(Instruction &I,
4928                                                    const MDNode *BaseNode,
4929                                                    APInt &Offset,
4930                                                    bool IsNewFormat) {
4931   assert(BaseNode->getNumOperands() >= 2 && "Invalid base node!");
4932 
4933   // Scalar nodes have only one possible "field" -- their parent in the access
4934   // hierarchy.  Offset must be zero at this point, but our caller is supposed
4935   // to Assert that.
4936   if (BaseNode->getNumOperands() == 2)
4937     return cast<MDNode>(BaseNode->getOperand(1));
4938 
4939   unsigned FirstFieldOpNo = IsNewFormat ? 3 : 1;
4940   unsigned NumOpsPerField = IsNewFormat ? 3 : 2;
4941   for (unsigned Idx = FirstFieldOpNo; Idx < BaseNode->getNumOperands();
4942            Idx += NumOpsPerField) {
4943     auto *OffsetEntryCI =
4944         mdconst::extract<ConstantInt>(BaseNode->getOperand(Idx + 1));
4945     if (OffsetEntryCI->getValue().ugt(Offset)) {
4946       if (Idx == FirstFieldOpNo) {
4947         CheckFailed("Could not find TBAA parent in struct type node", &I,
4948                     BaseNode, &Offset);
4949         return nullptr;
4950       }
4951 
4952       unsigned PrevIdx = Idx - NumOpsPerField;
4953       auto *PrevOffsetEntryCI =
4954           mdconst::extract<ConstantInt>(BaseNode->getOperand(PrevIdx + 1));
4955       Offset -= PrevOffsetEntryCI->getValue();
4956       return cast<MDNode>(BaseNode->getOperand(PrevIdx));
4957     }
4958   }
4959 
4960   unsigned LastIdx = BaseNode->getNumOperands() - NumOpsPerField;
4961   auto *LastOffsetEntryCI = mdconst::extract<ConstantInt>(
4962       BaseNode->getOperand(LastIdx + 1));
4963   Offset -= LastOffsetEntryCI->getValue();
4964   return cast<MDNode>(BaseNode->getOperand(LastIdx));
4965 }
4966 
4967 static bool isNewFormatTBAATypeNode(llvm::MDNode *Type) {
4968   if (!Type || Type->getNumOperands() < 3)
4969     return false;
4970 
4971   // In the new format type nodes shall have a reference to the parent type as
4972   // its first operand.
4973   MDNode *Parent = dyn_cast_or_null<MDNode>(Type->getOperand(0));
4974   if (!Parent)
4975     return false;
4976 
4977   return true;
4978 }
4979 
4980 bool TBAAVerifier::visitTBAAMetadata(Instruction &I, const MDNode *MD) {
4981   AssertTBAA(isa<LoadInst>(I) || isa<StoreInst>(I) || isa<CallInst>(I) ||
4982                  isa<VAArgInst>(I) || isa<AtomicRMWInst>(I) ||
4983                  isa<AtomicCmpXchgInst>(I),
4984              "This instruction shall not have a TBAA access tag!", &I);
4985 
4986   bool IsStructPathTBAA =
4987       isa<MDNode>(MD->getOperand(0)) && MD->getNumOperands() >= 3;
4988 
4989   AssertTBAA(
4990       IsStructPathTBAA,
4991       "Old-style TBAA is no longer allowed, use struct-path TBAA instead", &I);
4992 
4993   MDNode *BaseNode = dyn_cast_or_null<MDNode>(MD->getOperand(0));
4994   MDNode *AccessType = dyn_cast_or_null<MDNode>(MD->getOperand(1));
4995 
4996   bool IsNewFormat = isNewFormatTBAATypeNode(AccessType);
4997 
4998   if (IsNewFormat) {
4999     AssertTBAA(MD->getNumOperands() == 4 || MD->getNumOperands() == 5,
5000                "Access tag metadata must have either 4 or 5 operands", &I, MD);
5001   } else {
5002     AssertTBAA(MD->getNumOperands() < 5,
5003                "Struct tag metadata must have either 3 or 4 operands", &I, MD);
5004   }
5005 
5006   // Check the access size field.
5007   if (IsNewFormat) {
5008     auto *AccessSizeNode = mdconst::dyn_extract_or_null<ConstantInt>(
5009         MD->getOperand(3));
5010     AssertTBAA(AccessSizeNode, "Access size field must be a constant", &I, MD);
5011   }
5012 
5013   // Check the immutability flag.
5014   unsigned ImmutabilityFlagOpNo = IsNewFormat ? 4 : 3;
5015   if (MD->getNumOperands() == ImmutabilityFlagOpNo + 1) {
5016     auto *IsImmutableCI = mdconst::dyn_extract_or_null<ConstantInt>(
5017         MD->getOperand(ImmutabilityFlagOpNo));
5018     AssertTBAA(IsImmutableCI,
5019                "Immutability tag on struct tag metadata must be a constant",
5020                &I, MD);
5021     AssertTBAA(
5022         IsImmutableCI->isZero() || IsImmutableCI->isOne(),
5023         "Immutability part of the struct tag metadata must be either 0 or 1",
5024         &I, MD);
5025   }
5026 
5027   AssertTBAA(BaseNode && AccessType,
5028              "Malformed struct tag metadata: base and access-type "
5029              "should be non-null and point to Metadata nodes",
5030              &I, MD, BaseNode, AccessType);
5031 
5032   if (!IsNewFormat) {
5033     AssertTBAA(isValidScalarTBAANode(AccessType),
5034                "Access type node must be a valid scalar type", &I, MD,
5035                AccessType);
5036   }
5037 
5038   auto *OffsetCI = mdconst::dyn_extract_or_null<ConstantInt>(MD->getOperand(2));
5039   AssertTBAA(OffsetCI, "Offset must be constant integer", &I, MD);
5040 
5041   APInt Offset = OffsetCI->getValue();
5042   bool SeenAccessTypeInPath = false;
5043 
5044   SmallPtrSet<MDNode *, 4> StructPath;
5045 
5046   for (/* empty */; BaseNode && !IsRootTBAANode(BaseNode);
5047        BaseNode = getFieldNodeFromTBAABaseNode(I, BaseNode, Offset,
5048                                                IsNewFormat)) {
5049     if (!StructPath.insert(BaseNode).second) {
5050       CheckFailed("Cycle detected in struct path", &I, MD);
5051       return false;
5052     }
5053 
5054     bool Invalid;
5055     unsigned BaseNodeBitWidth;
5056     std::tie(Invalid, BaseNodeBitWidth) = verifyTBAABaseNode(I, BaseNode,
5057                                                              IsNewFormat);
5058 
5059     // If the base node is invalid in itself, then we've already printed all the
5060     // errors we wanted to print.
5061     if (Invalid)
5062       return false;
5063 
5064     SeenAccessTypeInPath |= BaseNode == AccessType;
5065 
5066     if (isValidScalarTBAANode(BaseNode) || BaseNode == AccessType)
5067       AssertTBAA(Offset == 0, "Offset not zero at the point of scalar access",
5068                  &I, MD, &Offset);
5069 
5070     AssertTBAA(BaseNodeBitWidth == Offset.getBitWidth() ||
5071                    (BaseNodeBitWidth == 0 && Offset == 0) ||
5072                    (IsNewFormat && BaseNodeBitWidth == ~0u),
5073                "Access bit-width not the same as description bit-width", &I, MD,
5074                BaseNodeBitWidth, Offset.getBitWidth());
5075 
5076     if (IsNewFormat && SeenAccessTypeInPath)
5077       break;
5078   }
5079 
5080   AssertTBAA(SeenAccessTypeInPath, "Did not see access type in access path!",
5081              &I, MD);
5082   return true;
5083 }
5084 
5085 char VerifierLegacyPass::ID = 0;
5086 INITIALIZE_PASS(VerifierLegacyPass, "verify", "Module Verifier", false, false)
5087 
5088 FunctionPass *llvm::createVerifierPass(bool FatalErrors) {
5089   return new VerifierLegacyPass(FatalErrors);
5090 }
5091 
5092 AnalysisKey VerifierAnalysis::Key;
5093 VerifierAnalysis::Result VerifierAnalysis::run(Module &M,
5094                                                ModuleAnalysisManager &) {
5095   Result Res;
5096   Res.IRBroken = llvm::verifyModule(M, &dbgs(), &Res.DebugInfoBroken);
5097   return Res;
5098 }
5099 
5100 VerifierAnalysis::Result VerifierAnalysis::run(Function &F,
5101                                                FunctionAnalysisManager &) {
5102   return { llvm::verifyFunction(F, &dbgs()), false };
5103 }
5104 
5105 PreservedAnalyses VerifierPass::run(Module &M, ModuleAnalysisManager &AM) {
5106   auto Res = AM.getResult<VerifierAnalysis>(M);
5107   if (FatalErrors && (Res.IRBroken || Res.DebugInfoBroken))
5108     report_fatal_error("Broken module found, compilation aborted!");
5109 
5110   return PreservedAnalyses::all();
5111 }
5112 
5113 PreservedAnalyses VerifierPass::run(Function &F, FunctionAnalysisManager &AM) {
5114   auto res = AM.getResult<VerifierAnalysis>(F);
5115   if (res.IRBroken && FatalErrors)
5116     report_fatal_error("Broken function found, compilation aborted!");
5117 
5118   return PreservedAnalyses::all();
5119 }
5120