xref: /llvm-project/clang/lib/Analysis/FlowSensitive/DataflowEnvironment.cpp (revision ae54f01dd8c53d18c276420b23f0d0ab7afefff1)
1 //===-- DataflowEnvironment.cpp ---------------------------------*- C++ -*-===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 //  This file defines an Environment class that is used by dataflow analyses
10 //  that run over Control-Flow Graphs (CFGs) to keep track of the state of the
11 //  program at given program points.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "clang/Analysis/FlowSensitive/DataflowEnvironment.h"
16 #include "clang/AST/Decl.h"
17 #include "clang/AST/DeclCXX.h"
18 #include "clang/AST/Type.h"
19 #include "clang/Analysis/FlowSensitive/DataflowLattice.h"
20 #include "clang/Analysis/FlowSensitive/Value.h"
21 #include "llvm/ADT/DenseMap.h"
22 #include "llvm/ADT/DenseSet.h"
23 #include "llvm/ADT/STLExtras.h"
24 #include "llvm/Support/Casting.h"
25 #include "llvm/Support/ErrorHandling.h"
26 #include <cassert>
27 #include <memory>
28 #include <utility>
29 
30 namespace clang {
31 namespace dataflow {
32 
33 // FIXME: convert these to parameters of the analysis or environment. Current
34 // settings have been experimentaly validated, but only for a particular
35 // analysis.
36 static constexpr int MaxCompositeValueDepth = 3;
37 static constexpr int MaxCompositeValueSize = 1000;
38 
39 /// Returns a map consisting of key-value entries that are present in both maps.
40 template <typename K, typename V>
41 llvm::DenseMap<K, V> intersectDenseMaps(const llvm::DenseMap<K, V> &Map1,
42                                         const llvm::DenseMap<K, V> &Map2) {
43   llvm::DenseMap<K, V> Result;
44   for (auto &Entry : Map1) {
45     auto It = Map2.find(Entry.first);
46     if (It != Map2.end() && Entry.second == It->second)
47       Result.insert({Entry.first, Entry.second});
48   }
49   return Result;
50 }
51 
52 static bool compareDistinctValues(QualType Type, Value &Val1,
53                                   const Environment &Env1, Value &Val2,
54                                   const Environment &Env2,
55                                   Environment::ValueModel &Model) {
56   // Note: Potentially costly, but, for booleans, we could check whether both
57   // can be proven equivalent in their respective environments.
58 
59   // FIXME: move the reference/pointers logic from `areEquivalentValues` to here
60   // and implement separate, join/widen specific handling for
61   // reference/pointers.
62   switch (Model.compare(Type, Val1, Env1, Val2, Env2)) {
63   case ComparisonResult::Same:
64     return true;
65   case ComparisonResult::Different:
66     return false;
67   case ComparisonResult::Unknown:
68     switch (Val1.getKind()) {
69     case Value::Kind::Integer:
70     case Value::Kind::Reference:
71     case Value::Kind::Pointer:
72     case Value::Kind::Struct:
73       // FIXME: this choice intentionally introduces unsoundness to allow
74       // for convergence. Once we have widening support for the
75       // reference/pointer and struct built-in models, this should be
76       // `false`.
77       return true;
78     default:
79       return false;
80     }
81   }
82   llvm_unreachable("All cases covered in switch");
83 }
84 
85 /// Attempts to merge distinct values `Val1` and `Val2` in `Env1` and `Env2`,
86 /// respectively, of the same type `Type`. Merging generally produces a single
87 /// value that (soundly) approximates the two inputs, although the actual
88 /// meaning depends on `Model`.
89 static Value *mergeDistinctValues(QualType Type, Value &Val1,
90                                   const Environment &Env1, Value &Val2,
91                                   const Environment &Env2,
92                                   Environment &MergedEnv,
93                                   Environment::ValueModel &Model) {
94   // Join distinct boolean values preserving information about the constraints
95   // in the respective path conditions.
96   if (isa<BoolValue>(&Val1) && isa<BoolValue>(&Val2)) {
97     // FIXME: Checking both values should be unnecessary, since they should have
98     // a consistent shape.  However, right now we can end up with BoolValue's in
99     // integer-typed variables due to our incorrect handling of
100     // boolean-to-integer casts (we just propagate the BoolValue to the result
101     // of the cast). So, a join can encounter an integer in one branch but a
102     // bool in the other.
103     // For example:
104     // ```
105     // std::optional<bool> o;
106     // int x;
107     // if (o.has_value())
108     //   x = o.value();
109     // ```
110     auto *Expr1 = cast<BoolValue>(&Val1);
111     auto *Expr2 = cast<BoolValue>(&Val2);
112     auto &MergedVal = MergedEnv.makeAtomicBoolValue();
113     MergedEnv.addToFlowCondition(MergedEnv.makeOr(
114         MergedEnv.makeAnd(Env1.getFlowConditionToken(),
115                           MergedEnv.makeIff(MergedVal, *Expr1)),
116         MergedEnv.makeAnd(Env2.getFlowConditionToken(),
117                           MergedEnv.makeIff(MergedVal, *Expr2))));
118     return &MergedVal;
119   }
120 
121   // FIXME: Consider destroying `MergedValue` immediately if `ValueModel::merge`
122   // returns false to avoid storing unneeded values in `DACtx`.
123   // FIXME: Creating the value based on the type alone creates misshapen values
124   // for lvalues, since the type does not reflect the need for `ReferenceValue`.
125   if (Value *MergedVal = MergedEnv.createValue(Type))
126     if (Model.merge(Type, Val1, Env1, Val2, Env2, *MergedVal, MergedEnv))
127       return MergedVal;
128 
129   return nullptr;
130 }
131 
132 // When widening does not change `Current`, return value will equal `&Prev`.
133 static Value &widenDistinctValues(QualType Type, Value &Prev,
134                                   const Environment &PrevEnv, Value &Current,
135                                   Environment &CurrentEnv,
136                                   Environment::ValueModel &Model) {
137   // Boolean-model widening.
138   if (isa<BoolValue>(&Prev)) {
139     assert(isa<BoolValue>(Current));
140     // Widen to Top, because we know they are different values. If previous was
141     // already Top, re-use that to (implicitly) indicate that no change occured.
142     if (isa<TopBoolValue>(Prev))
143       return Prev;
144     return CurrentEnv.makeTopBoolValue();
145   }
146 
147   // FIXME: Add other built-in model widening.
148 
149   // Custom-model widening.
150   if (auto *W = Model.widen(Type, Prev, PrevEnv, Current, CurrentEnv))
151     return *W;
152 
153   // Default of widening is a no-op: leave the current value unchanged.
154   return Current;
155 }
156 
157 /// Initializes a global storage value.
158 static void insertIfGlobal(const Decl &D,
159                            llvm::DenseSet<const VarDecl *> &Vars) {
160   if (auto *V = dyn_cast<VarDecl>(&D))
161     if (V->hasGlobalStorage())
162       Vars.insert(V);
163 }
164 
165 static void insertIfFunction(const Decl &D,
166                              llvm::DenseSet<const FunctionDecl *> &Funcs) {
167   if (auto *FD = dyn_cast<FunctionDecl>(&D))
168     Funcs.insert(FD);
169 }
170 
171 static void
172 getFieldsGlobalsAndFuncs(const Decl &D,
173                          llvm::DenseSet<const FieldDecl *> &Fields,
174                          llvm::DenseSet<const VarDecl *> &Vars,
175                          llvm::DenseSet<const FunctionDecl *> &Funcs) {
176   insertIfGlobal(D, Vars);
177   insertIfFunction(D, Funcs);
178   if (const auto *Decomp = dyn_cast<DecompositionDecl>(&D))
179     for (const auto *B : Decomp->bindings())
180       if (auto *ME = dyn_cast_or_null<MemberExpr>(B->getBinding()))
181         // FIXME: should we be using `E->getFoundDecl()`?
182         if (const auto *FD = dyn_cast<FieldDecl>(ME->getMemberDecl()))
183           Fields.insert(FD);
184 }
185 
186 /// Traverses `S` and inserts into `Fields`, `Vars` and `Funcs` any fields,
187 /// global variables and functions that are declared in or referenced from
188 /// sub-statements.
189 static void
190 getFieldsGlobalsAndFuncs(const Stmt &S,
191                          llvm::DenseSet<const FieldDecl *> &Fields,
192                          llvm::DenseSet<const VarDecl *> &Vars,
193                          llvm::DenseSet<const FunctionDecl *> &Funcs) {
194   for (auto *Child : S.children())
195     if (Child != nullptr)
196       getFieldsGlobalsAndFuncs(*Child, Fields, Vars, Funcs);
197 
198   if (auto *DS = dyn_cast<DeclStmt>(&S)) {
199     if (DS->isSingleDecl())
200       getFieldsGlobalsAndFuncs(*DS->getSingleDecl(), Fields, Vars, Funcs);
201     else
202       for (auto *D : DS->getDeclGroup())
203         getFieldsGlobalsAndFuncs(*D, Fields, Vars, Funcs);
204   } else if (auto *E = dyn_cast<DeclRefExpr>(&S)) {
205     insertIfGlobal(*E->getDecl(), Vars);
206     insertIfFunction(*E->getDecl(), Funcs);
207   } else if (auto *E = dyn_cast<MemberExpr>(&S)) {
208     // FIXME: should we be using `E->getFoundDecl()`?
209     const ValueDecl *VD = E->getMemberDecl();
210     insertIfGlobal(*VD, Vars);
211     insertIfFunction(*VD, Funcs);
212     if (const auto *FD = dyn_cast<FieldDecl>(VD))
213       Fields.insert(FD);
214   }
215 }
216 
217 // FIXME: Add support for resetting globals after function calls to enable
218 // the implementation of sound analyses.
219 void Environment::initFieldsGlobalsAndFuncs(const FunctionDecl *FuncDecl) {
220   assert(FuncDecl->getBody() != nullptr);
221 
222   llvm::DenseSet<const FieldDecl *> Fields;
223   llvm::DenseSet<const VarDecl *> Vars;
224   llvm::DenseSet<const FunctionDecl *> Funcs;
225 
226   // Look for global variable and field references in the
227   // constructor-initializers.
228   if (const auto *CtorDecl = dyn_cast<CXXConstructorDecl>(FuncDecl)) {
229     for (const auto *Init : CtorDecl->inits()) {
230       if (const auto *M = Init->getAnyMember())
231           Fields.insert(M);
232       const Expr *E = Init->getInit();
233       assert(E != nullptr);
234       getFieldsGlobalsAndFuncs(*E, Fields, Vars, Funcs);
235     }
236     // Add all fields mentioned in default member initializers.
237     for (const FieldDecl *F : CtorDecl->getParent()->fields())
238       if (const auto *I = F->getInClassInitializer())
239           getFieldsGlobalsAndFuncs(*I, Fields, Vars, Funcs);
240   }
241   getFieldsGlobalsAndFuncs(*FuncDecl->getBody(), Fields, Vars, Funcs);
242 
243   // These have to be added before the lines that follow to ensure that
244   // `create*` work correctly for structs.
245   DACtx->addModeledFields(Fields);
246 
247   for (const VarDecl *D : Vars) {
248     if (getStorageLocation(*D) != nullptr)
249       continue;
250     auto &Loc = createStorageLocation(D->getType().getNonReferenceType());
251     setStorageLocation(*D, Loc);
252     if (auto *Val = createValue(D->getType().getNonReferenceType()))
253       setValue(Loc, *Val);
254   }
255 
256   for (const FunctionDecl *FD : Funcs) {
257     if (getStorageLocation(*FD) != nullptr)
258       continue;
259     auto &Loc = createStorageLocation(FD->getType());
260     setStorageLocation(*FD, Loc);
261   }
262 }
263 
264 Environment::Environment(DataflowAnalysisContext &DACtx)
265     : DACtx(&DACtx),
266       FlowConditionToken(&DACtx.arena().makeFlowConditionToken()) {}
267 
268 Environment Environment::fork() const {
269   Environment Copy(*this);
270   Copy.FlowConditionToken = &DACtx->forkFlowCondition(*FlowConditionToken);
271   return Copy;
272 }
273 
274 Environment::Environment(DataflowAnalysisContext &DACtx,
275                          const DeclContext &DeclCtx)
276     : Environment(DACtx) {
277   CallStack.push_back(&DeclCtx);
278 
279   if (const auto *FuncDecl = dyn_cast<FunctionDecl>(&DeclCtx)) {
280     assert(FuncDecl->getBody() != nullptr);
281 
282     initFieldsGlobalsAndFuncs(FuncDecl);
283 
284     for (const auto *ParamDecl : FuncDecl->parameters()) {
285       assert(ParamDecl != nullptr);
286       // References aren't objects, so the reference itself doesn't have a
287       // storage location. Instead, the storage location for a reference refers
288       // directly to an object of the referenced type -- so strip off any
289       // reference from the type.
290       auto &ParamLoc =
291           createStorageLocation(ParamDecl->getType().getNonReferenceType());
292       setStorageLocation(*ParamDecl, ParamLoc);
293       if (Value *ParamVal =
294               createValue(ParamDecl->getType().getNonReferenceType()))
295           setValue(ParamLoc, *ParamVal);
296     }
297   }
298 
299   if (const auto *MethodDecl = dyn_cast<CXXMethodDecl>(&DeclCtx)) {
300     auto *Parent = MethodDecl->getParent();
301     assert(Parent != nullptr);
302     if (Parent->isLambda())
303       MethodDecl = dyn_cast<CXXMethodDecl>(Parent->getDeclContext());
304 
305     // FIXME: Initialize the ThisPointeeLoc of lambdas too.
306     if (MethodDecl && !MethodDecl->isStatic()) {
307       QualType ThisPointeeType = MethodDecl->getThisObjectType();
308       ThisPointeeLoc = &createStorageLocation(ThisPointeeType);
309       if (Value *ThisPointeeVal = createValue(ThisPointeeType))
310         setValue(*ThisPointeeLoc, *ThisPointeeVal);
311     }
312   }
313 }
314 
315 bool Environment::canDescend(unsigned MaxDepth,
316                              const DeclContext *Callee) const {
317   return CallStack.size() <= MaxDepth && !llvm::is_contained(CallStack, Callee);
318 }
319 
320 Environment Environment::pushCall(const CallExpr *Call) const {
321   Environment Env(*this);
322 
323   if (const auto *MethodCall = dyn_cast<CXXMemberCallExpr>(Call)) {
324     if (const Expr *Arg = MethodCall->getImplicitObjectArgument()) {
325       if (!isa<CXXThisExpr>(Arg))
326         Env.ThisPointeeLoc = getStorageLocation(*Arg, SkipPast::Reference);
327       // Otherwise (when the argument is `this`), retain the current
328       // environment's `ThisPointeeLoc`.
329     }
330   }
331 
332   Env.pushCallInternal(Call->getDirectCallee(),
333                        llvm::ArrayRef(Call->getArgs(), Call->getNumArgs()));
334 
335   return Env;
336 }
337 
338 Environment Environment::pushCall(const CXXConstructExpr *Call) const {
339   Environment Env(*this);
340 
341   Env.ThisPointeeLoc = &Env.createStorageLocation(Call->getType());
342   if (Value *Val = Env.createValue(Call->getType()))
343     Env.setValue(*Env.ThisPointeeLoc, *Val);
344 
345   Env.pushCallInternal(Call->getConstructor(),
346                        llvm::ArrayRef(Call->getArgs(), Call->getNumArgs()));
347 
348   return Env;
349 }
350 
351 void Environment::pushCallInternal(const FunctionDecl *FuncDecl,
352                                    ArrayRef<const Expr *> Args) {
353   // Canonicalize to the definition of the function. This ensures that we're
354   // putting arguments into the same `ParamVarDecl`s` that the callee will later
355   // be retrieving them from.
356   assert(FuncDecl->getDefinition() != nullptr);
357   FuncDecl = FuncDecl->getDefinition();
358 
359   CallStack.push_back(FuncDecl);
360 
361   initFieldsGlobalsAndFuncs(FuncDecl);
362 
363   const auto *ParamIt = FuncDecl->param_begin();
364 
365   // FIXME: Parameters don't always map to arguments 1:1; examples include
366   // overloaded operators implemented as member functions, and parameter packs.
367   for (unsigned ArgIndex = 0; ArgIndex < Args.size(); ++ParamIt, ++ArgIndex) {
368     assert(ParamIt != FuncDecl->param_end());
369 
370     const Expr *Arg = Args[ArgIndex];
371     auto *ArgLoc = getStorageLocation(*Arg, SkipPast::Reference);
372     if (ArgLoc == nullptr)
373       continue;
374 
375     const VarDecl *Param = *ParamIt;
376 
377     QualType ParamType = Param->getType();
378     if (ParamType->isReferenceType()) {
379       setStorageLocation(*Param, *ArgLoc);
380     } else {
381       auto &Loc = createStorageLocation(*Param);
382       setStorageLocation(*Param, Loc);
383 
384       if (auto *ArgVal = getValue(*ArgLoc)) {
385         setValue(Loc, *ArgVal);
386       } else if (Value *Val = createValue(ParamType)) {
387         setValue(Loc, *Val);
388       }
389     }
390   }
391 }
392 
393 void Environment::popCall(const CallExpr *Call, const Environment &CalleeEnv) {
394   // We ignore `DACtx` because it's already the same in both. We don't want the
395   // callee's `DeclCtx`, `ReturnVal`, `ReturnLoc` or `ThisPointeeLoc`. We don't
396   // bring back `DeclToLoc` and `ExprToLoc` because we want to be able to later
397   // analyze the same callee in a different context, and `setStorageLocation`
398   // requires there to not already be a storage location assigned. Conceptually,
399   // these maps capture information from the local scope, so when popping that
400   // scope, we do not propagate the maps.
401   this->LocToVal = std::move(CalleeEnv.LocToVal);
402   this->MemberLocToStruct = std::move(CalleeEnv.MemberLocToStruct);
403   this->FlowConditionToken = std::move(CalleeEnv.FlowConditionToken);
404 
405   if (Call->isGLValue()) {
406     if (CalleeEnv.ReturnLoc != nullptr)
407       setStorageLocationStrict(*Call, *CalleeEnv.ReturnLoc);
408   } else if (!Call->getType()->isVoidType()) {
409     if (CalleeEnv.ReturnVal != nullptr)
410       setValueStrict(*Call, *CalleeEnv.ReturnVal);
411   }
412 }
413 
414 void Environment::popCall(const CXXConstructExpr *Call,
415                           const Environment &CalleeEnv) {
416   // See also comment in `popCall(const CallExpr *, const Environment &)` above.
417   this->LocToVal = std::move(CalleeEnv.LocToVal);
418   this->MemberLocToStruct = std::move(CalleeEnv.MemberLocToStruct);
419   this->FlowConditionToken = std::move(CalleeEnv.FlowConditionToken);
420 
421   if (Value *Val = CalleeEnv.getValue(*CalleeEnv.ThisPointeeLoc)) {
422     setValueStrict(*Call, *Val);
423   }
424 }
425 
426 bool Environment::equivalentTo(const Environment &Other,
427                                Environment::ValueModel &Model) const {
428   assert(DACtx == Other.DACtx);
429 
430   if (ReturnVal != Other.ReturnVal)
431     return false;
432 
433   if (ReturnLoc != Other.ReturnLoc)
434     return false;
435 
436   if (ThisPointeeLoc != Other.ThisPointeeLoc)
437     return false;
438 
439   if (DeclToLoc != Other.DeclToLoc)
440     return false;
441 
442   if (ExprToLoc != Other.ExprToLoc)
443     return false;
444 
445   // Compare the contents for the intersection of their domains.
446   for (auto &Entry : LocToVal) {
447     const StorageLocation *Loc = Entry.first;
448     assert(Loc != nullptr);
449 
450     Value *Val = Entry.second;
451     assert(Val != nullptr);
452 
453     auto It = Other.LocToVal.find(Loc);
454     if (It == Other.LocToVal.end())
455       continue;
456     assert(It->second != nullptr);
457 
458     if (!areEquivalentValues(*Val, *It->second) &&
459         !compareDistinctValues(Loc->getType(), *Val, *this, *It->second, Other,
460                                Model))
461       return false;
462   }
463 
464   return true;
465 }
466 
467 LatticeJoinEffect Environment::widen(const Environment &PrevEnv,
468                                      Environment::ValueModel &Model) {
469   assert(DACtx == PrevEnv.DACtx);
470   assert(ReturnVal == PrevEnv.ReturnVal);
471   assert(ReturnLoc == PrevEnv.ReturnLoc);
472   assert(ThisPointeeLoc == PrevEnv.ThisPointeeLoc);
473   assert(CallStack == PrevEnv.CallStack);
474 
475   auto Effect = LatticeJoinEffect::Unchanged;
476 
477   // By the API, `PrevEnv` is a previous version of the environment for the same
478   // block, so we have some guarantees about its shape. In particular, it will
479   // be the result of a join or widen operation on previous values for this
480   // block. For `DeclToLoc` and `ExprToLoc`, join guarantees that these maps are
481   // subsets of the maps in `PrevEnv`. So, as long as we maintain this property
482   // here, we don't need change their current values to widen.
483   //
484   // FIXME: `MemberLocToStruct` does not share the above property, because
485   // `join` can cause the map size to increase (when we add fresh data in places
486   // of conflict). Once this issue with join is resolved, re-enable the
487   // assertion below or replace with something that captures the desired
488   // invariant.
489   assert(DeclToLoc.size() <= PrevEnv.DeclToLoc.size());
490   assert(ExprToLoc.size() <= PrevEnv.ExprToLoc.size());
491   // assert(MemberLocToStruct.size() <= PrevEnv.MemberLocToStruct.size());
492 
493   llvm::DenseMap<const StorageLocation *, Value *> WidenedLocToVal;
494   for (auto &Entry : LocToVal) {
495     const StorageLocation *Loc = Entry.first;
496     assert(Loc != nullptr);
497 
498     Value *Val = Entry.second;
499     assert(Val != nullptr);
500 
501     auto PrevIt = PrevEnv.LocToVal.find(Loc);
502     if (PrevIt == PrevEnv.LocToVal.end())
503       continue;
504     assert(PrevIt->second != nullptr);
505 
506     if (areEquivalentValues(*Val, *PrevIt->second)) {
507       WidenedLocToVal.insert({Loc, Val});
508       continue;
509     }
510 
511     Value &WidenedVal = widenDistinctValues(Loc->getType(), *PrevIt->second,
512                                             PrevEnv, *Val, *this, Model);
513     WidenedLocToVal.insert({Loc, &WidenedVal});
514     if (&WidenedVal != PrevIt->second)
515       Effect = LatticeJoinEffect::Changed;
516   }
517   LocToVal = std::move(WidenedLocToVal);
518   // FIXME: update the equivalence calculation for `MemberLocToStruct`, once we
519   // have a systematic way of soundly comparing this map.
520   if (DeclToLoc.size() != PrevEnv.DeclToLoc.size() ||
521       ExprToLoc.size() != PrevEnv.ExprToLoc.size() ||
522       LocToVal.size() != PrevEnv.LocToVal.size() ||
523       MemberLocToStruct.size() != PrevEnv.MemberLocToStruct.size())
524     Effect = LatticeJoinEffect::Changed;
525 
526   return Effect;
527 }
528 
529 Environment Environment::join(const Environment &Other,
530                               Environment::ValueModel &Model) const {
531   assert(DACtx == Other.DACtx);
532   assert(ThisPointeeLoc == Other.ThisPointeeLoc);
533   assert(CallStack == Other.CallStack);
534 
535   Environment JoinedEnv(*DACtx);
536 
537   JoinedEnv.CallStack = CallStack;
538   JoinedEnv.ThisPointeeLoc = ThisPointeeLoc;
539 
540   if (ReturnVal == nullptr || Other.ReturnVal == nullptr) {
541     // `ReturnVal` might not always get set -- for example if we have a return
542     // statement of the form `return some_other_func()` and we decide not to
543     // analyze `some_other_func()`.
544     // In this case, we can't say anything about the joined return value -- we
545     // don't simply want to propagate the return value that we do have, because
546     // it might not be the correct one.
547     // This occurs for example in the test `ContextSensitiveMutualRecursion`.
548     JoinedEnv.ReturnVal = nullptr;
549   } else if (areEquivalentValues(*ReturnVal, *Other.ReturnVal)) {
550     JoinedEnv.ReturnVal = ReturnVal;
551   } else {
552     assert(!CallStack.empty());
553     // FIXME: Make `CallStack` a vector of `FunctionDecl` so we don't need this
554     // cast.
555     auto *Func = dyn_cast<FunctionDecl>(CallStack.back());
556     assert(Func != nullptr);
557     if (Value *MergedVal =
558             mergeDistinctValues(Func->getReturnType(), *ReturnVal, *this,
559                                 *Other.ReturnVal, Other, JoinedEnv, Model)) {
560       JoinedEnv.ReturnVal = MergedVal;
561     }
562   }
563 
564   if (ReturnLoc == Other.ReturnLoc)
565     JoinedEnv.ReturnLoc = ReturnLoc;
566   else
567     JoinedEnv.ReturnLoc = nullptr;
568 
569   // FIXME: Once we're able to remove declarations from `DeclToLoc` when their
570   // lifetime ends, add an assertion that there aren't any entries in
571   // `DeclToLoc` and `Other.DeclToLoc` that map the same declaration to
572   // different storage locations.
573   JoinedEnv.DeclToLoc = intersectDenseMaps(DeclToLoc, Other.DeclToLoc);
574 
575   JoinedEnv.ExprToLoc = intersectDenseMaps(ExprToLoc, Other.ExprToLoc);
576 
577   JoinedEnv.MemberLocToStruct =
578       intersectDenseMaps(MemberLocToStruct, Other.MemberLocToStruct);
579 
580   // FIXME: update join to detect backedges and simplify the flow condition
581   // accordingly.
582   JoinedEnv.FlowConditionToken = &DACtx->joinFlowConditions(
583       *FlowConditionToken, *Other.FlowConditionToken);
584 
585   for (auto &Entry : LocToVal) {
586     const StorageLocation *Loc = Entry.first;
587     assert(Loc != nullptr);
588 
589     Value *Val = Entry.second;
590     assert(Val != nullptr);
591 
592     auto It = Other.LocToVal.find(Loc);
593     if (It == Other.LocToVal.end())
594       continue;
595     assert(It->second != nullptr);
596 
597     if (areEquivalentValues(*Val, *It->second)) {
598       JoinedEnv.LocToVal.insert({Loc, Val});
599       continue;
600     }
601 
602     if (Value *MergedVal =
603             mergeDistinctValues(Loc->getType(), *Val, *this, *It->second, Other,
604                                 JoinedEnv, Model)) {
605       JoinedEnv.LocToVal.insert({Loc, MergedVal});
606     }
607   }
608 
609   return JoinedEnv;
610 }
611 
612 StorageLocation &Environment::createStorageLocation(QualType Type) {
613   return DACtx->createStorageLocation(Type);
614 }
615 
616 StorageLocation &Environment::createStorageLocation(const VarDecl &D) {
617   // Evaluated declarations are always assigned the same storage locations to
618   // ensure that the environment stabilizes across loop iterations. Storage
619   // locations for evaluated declarations are stored in the analysis context.
620   return DACtx->getStableStorageLocation(D);
621 }
622 
623 StorageLocation &Environment::createStorageLocation(const Expr &E) {
624   // Evaluated expressions are always assigned the same storage locations to
625   // ensure that the environment stabilizes across loop iterations. Storage
626   // locations for evaluated expressions are stored in the analysis context.
627   return DACtx->getStableStorageLocation(E);
628 }
629 
630 void Environment::setStorageLocation(const ValueDecl &D, StorageLocation &Loc) {
631   assert(!DeclToLoc.contains(&D));
632   assert(!isa_and_nonnull<ReferenceValue>(getValue(Loc)));
633   DeclToLoc[&D] = &Loc;
634 }
635 
636 StorageLocation *Environment::getStorageLocation(const ValueDecl &D) const {
637   auto It = DeclToLoc.find(&D);
638   if (It == DeclToLoc.end())
639     return nullptr;
640 
641   StorageLocation *Loc = It->second;
642 
643   assert(!isa_and_nonnull<ReferenceValue>(getValue(*Loc)));
644 
645   return Loc;
646 }
647 
648 void Environment::setStorageLocation(const Expr &E, StorageLocation &Loc) {
649   const Expr &CanonE = ignoreCFGOmittedNodes(E);
650   assert(!ExprToLoc.contains(&CanonE));
651   ExprToLoc[&CanonE] = &Loc;
652 }
653 
654 void Environment::setStorageLocationStrict(const Expr &E,
655                                            StorageLocation &Loc) {
656   // `DeclRefExpr`s to builtin function types aren't glvalues, for some reason,
657   // but we still want to be able to associate a `StorageLocation` with them,
658   // so allow these as an exception.
659   assert(E.isGLValue() ||
660          E.getType()->isSpecificBuiltinType(BuiltinType::BuiltinFn));
661   setStorageLocation(E, Loc);
662 }
663 
664 StorageLocation *Environment::getStorageLocation(const Expr &E,
665                                                  SkipPast SP) const {
666   // FIXME: Add a test with parens.
667   auto It = ExprToLoc.find(&ignoreCFGOmittedNodes(E));
668   return It == ExprToLoc.end() ? nullptr : &skip(*It->second, SP);
669 }
670 
671 StorageLocation *Environment::getStorageLocationStrict(const Expr &E) const {
672   // See comment in `setStorageLocationStrict()`.
673   assert(E.isGLValue() ||
674          E.getType()->isSpecificBuiltinType(BuiltinType::BuiltinFn));
675   StorageLocation *Loc = getStorageLocation(E, SkipPast::None);
676 
677   if (Loc == nullptr)
678     return nullptr;
679 
680   if (auto *RefVal = dyn_cast_or_null<ReferenceValue>(getValue(*Loc)))
681     return &RefVal->getReferentLoc();
682 
683   return Loc;
684 }
685 
686 StorageLocation *Environment::getThisPointeeStorageLocation() const {
687   return ThisPointeeLoc;
688 }
689 
690 PointerValue &Environment::getOrCreateNullPointerValue(QualType PointeeType) {
691   return DACtx->getOrCreateNullPointerValue(PointeeType);
692 }
693 
694 void Environment::setValue(const StorageLocation &Loc, Value &Val) {
695   LocToVal[&Loc] = &Val;
696 
697   if (auto *StructVal = dyn_cast<StructValue>(&Val)) {
698     auto &AggregateLoc = *cast<AggregateStorageLocation>(&Loc);
699 
700     const QualType Type = AggregateLoc.getType();
701     assert(Type->isRecordType());
702 
703     for (const FieldDecl *Field : DACtx->getReferencedFields(Type)) {
704       assert(Field != nullptr);
705       StorageLocation &FieldLoc = AggregateLoc.getChild(*Field);
706       MemberLocToStruct[&FieldLoc] = std::make_pair(StructVal, Field);
707       if (auto *FieldVal = StructVal->getChild(*Field))
708         setValue(FieldLoc, *FieldVal);
709     }
710   }
711 
712   auto It = MemberLocToStruct.find(&Loc);
713   if (It != MemberLocToStruct.end()) {
714     // `Loc` is the location of a struct member so we need to also update the
715     // value of the member in the corresponding `StructValue`.
716 
717     assert(It->second.first != nullptr);
718     StructValue &StructVal = *It->second.first;
719 
720     assert(It->second.second != nullptr);
721     const ValueDecl &Member = *It->second.second;
722 
723     StructVal.setChild(Member, Val);
724   }
725 }
726 
727 void Environment::clearValue(const StorageLocation &Loc) {
728   LocToVal.erase(&Loc);
729 
730   if (auto It = MemberLocToStruct.find(&Loc); It != MemberLocToStruct.end()) {
731     // `Loc` is the location of a struct member so we need to also clear the
732     // member in the corresponding `StructValue`.
733 
734     assert(It->second.first != nullptr);
735     StructValue &StructVal = *It->second.first;
736 
737     assert(It->second.second != nullptr);
738     const ValueDecl &Member = *It->second.second;
739 
740     StructVal.clearChild(Member);
741   }
742 }
743 
744 void Environment::setValueStrict(const Expr &E, Value &Val) {
745   assert(E.isPRValue());
746   assert(!isa<ReferenceValue>(Val));
747 
748   StorageLocation *Loc = getStorageLocation(E, SkipPast::None);
749   if (Loc == nullptr) {
750     Loc = &createStorageLocation(E);
751     setStorageLocation(E, *Loc);
752   }
753   setValue(*Loc, Val);
754 }
755 
756 Value *Environment::getValue(const StorageLocation &Loc) const {
757   return LocToVal.lookup(&Loc);
758 }
759 
760 Value *Environment::getValue(const ValueDecl &D) const {
761   auto *Loc = getStorageLocation(D);
762   if (Loc == nullptr)
763     return nullptr;
764   return getValue(*Loc);
765 }
766 
767 Value *Environment::getValue(const Expr &E, SkipPast SP) const {
768   auto *Loc = getStorageLocation(E, SP);
769   if (Loc == nullptr)
770     return nullptr;
771   return getValue(*Loc);
772 }
773 
774 Value *Environment::getValueStrict(const Expr &E) const {
775   assert(E.isPRValue());
776   Value *Val = getValue(E, SkipPast::None);
777 
778   assert(Val == nullptr || !isa<ReferenceValue>(Val));
779 
780   return Val;
781 }
782 
783 Value *Environment::createValue(QualType Type) {
784   llvm::DenseSet<QualType> Visited;
785   int CreatedValuesCount = 0;
786   Value *Val = createValueUnlessSelfReferential(Type, Visited, /*Depth=*/0,
787                                                 CreatedValuesCount);
788   if (CreatedValuesCount > MaxCompositeValueSize) {
789     llvm::errs() << "Attempting to initialize a huge value of type: " << Type
790                  << '\n';
791   }
792   return Val;
793 }
794 
795 Value *Environment::createValueUnlessSelfReferential(
796     QualType Type, llvm::DenseSet<QualType> &Visited, int Depth,
797     int &CreatedValuesCount) {
798   assert(!Type.isNull());
799 
800   // Allow unlimited fields at depth 1; only cap at deeper nesting levels.
801   if ((Depth > 1 && CreatedValuesCount > MaxCompositeValueSize) ||
802       Depth > MaxCompositeValueDepth)
803     return nullptr;
804 
805   if (Type->isBooleanType()) {
806     CreatedValuesCount++;
807     return &makeAtomicBoolValue();
808   }
809 
810   if (Type->isIntegerType()) {
811     // FIXME: consider instead `return nullptr`, given that we do nothing useful
812     // with integers, and so distinguishing them serves no purpose, but could
813     // prevent convergence.
814     CreatedValuesCount++;
815     return &DACtx->arena().create<IntegerValue>();
816   }
817 
818   if (Type->isReferenceType() || Type->isPointerType()) {
819     CreatedValuesCount++;
820     QualType PointeeType = Type->getPointeeType();
821     auto &PointeeLoc = createStorageLocation(PointeeType);
822 
823     if (Visited.insert(PointeeType.getCanonicalType()).second) {
824       Value *PointeeVal = createValueUnlessSelfReferential(
825           PointeeType, Visited, Depth, CreatedValuesCount);
826       Visited.erase(PointeeType.getCanonicalType());
827 
828       if (PointeeVal != nullptr)
829         setValue(PointeeLoc, *PointeeVal);
830     }
831 
832     if (Type->isReferenceType())
833       return &DACtx->arena().create<ReferenceValue>(PointeeLoc);
834     else
835       return &DACtx->arena().create<PointerValue>(PointeeLoc);
836   }
837 
838   if (Type->isRecordType()) {
839     CreatedValuesCount++;
840     llvm::DenseMap<const ValueDecl *, Value *> FieldValues;
841     for (const FieldDecl *Field : DACtx->getReferencedFields(Type)) {
842       assert(Field != nullptr);
843 
844       QualType FieldType = Field->getType();
845       if (Visited.contains(FieldType.getCanonicalType()))
846         continue;
847 
848       Visited.insert(FieldType.getCanonicalType());
849       if (auto *FieldValue = createValueUnlessSelfReferential(
850               FieldType, Visited, Depth + 1, CreatedValuesCount))
851         FieldValues.insert({Field, FieldValue});
852       Visited.erase(FieldType.getCanonicalType());
853     }
854 
855     return &DACtx->arena().create<StructValue>(std::move(FieldValues));
856   }
857 
858   return nullptr;
859 }
860 
861 StorageLocation &Environment::skip(StorageLocation &Loc, SkipPast SP) const {
862   switch (SP) {
863   case SkipPast::None:
864     return Loc;
865   case SkipPast::Reference:
866     // References cannot be chained so we only need to skip past one level of
867     // indirection.
868     if (auto *Val = dyn_cast_or_null<ReferenceValue>(getValue(Loc)))
869       return Val->getReferentLoc();
870     return Loc;
871   }
872   llvm_unreachable("bad SkipPast kind");
873 }
874 
875 const StorageLocation &Environment::skip(const StorageLocation &Loc,
876                                          SkipPast SP) const {
877   return skip(*const_cast<StorageLocation *>(&Loc), SP);
878 }
879 
880 void Environment::addToFlowCondition(BoolValue &Val) {
881   DACtx->addFlowConditionConstraint(*FlowConditionToken, Val);
882 }
883 
884 bool Environment::flowConditionImplies(BoolValue &Val) const {
885   return DACtx->flowConditionImplies(*FlowConditionToken, Val);
886 }
887 
888 void Environment::dump(raw_ostream &OS) const {
889   // FIXME: add printing for remaining fields and allow caller to decide what
890   // fields are printed.
891   OS << "DeclToLoc:\n";
892   for (auto [D, L] : DeclToLoc)
893     OS << "  [" << D->getNameAsString() << ", " << L << "]\n";
894 
895   OS << "ExprToLoc:\n";
896   for (auto [E, L] : ExprToLoc)
897     OS << "  [" << E << ", " << L << "]\n";
898 
899   OS << "LocToVal:\n";
900   for (auto [L, V] : LocToVal) {
901     OS << "  [" << L << ", " << V << ": " << *V << "]\n";
902   }
903 
904   OS << "FlowConditionToken:\n";
905   DACtx->dumpFlowCondition(*FlowConditionToken, OS);
906 }
907 
908 void Environment::dump() const {
909   dump(llvm::dbgs());
910 }
911 
912 AggregateStorageLocation *
913 getImplicitObjectLocation(const CXXMemberCallExpr &MCE,
914                           const Environment &Env) {
915   Expr *ImplicitObject = MCE.getImplicitObjectArgument();
916   if (ImplicitObject == nullptr)
917     return nullptr;
918   StorageLocation *Loc =
919       Env.getStorageLocation(*ImplicitObject, SkipPast::Reference);
920   if (Loc == nullptr)
921     return nullptr;
922   if (ImplicitObject->getType()->isPointerType()) {
923     if (auto *Val = cast_or_null<PointerValue>(Env.getValue(*Loc)))
924       return &cast<AggregateStorageLocation>(Val->getPointeeLoc());
925     return nullptr;
926   }
927   return cast<AggregateStorageLocation>(Loc);
928 }
929 
930 AggregateStorageLocation *getBaseObjectLocation(const MemberExpr &ME,
931                                                 const Environment &Env) {
932   Expr *Base = ME.getBase();
933   if (Base == nullptr)
934     return nullptr;
935   StorageLocation *Loc = Env.getStorageLocation(*Base, SkipPast::Reference);
936   if (Loc == nullptr)
937     return nullptr;
938   if (ME.isArrow()) {
939     if (auto *Val = cast_or_null<PointerValue>(Env.getValue(*Loc)))
940       return &cast<AggregateStorageLocation>(Val->getPointeeLoc());
941     return nullptr;
942   }
943   return cast<AggregateStorageLocation>(Loc);
944 }
945 
946 } // namespace dataflow
947 } // namespace clang
948