1 //===- SCCP.cpp - Sparse Conditional Constant Propagation -----------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements sparse conditional constant propagation and merging:
10 //
11 // Specifically, this:
12 //   * Assumes values are constant unless proven otherwise
13 //   * Assumes BasicBlocks are dead unless proven otherwise
14 //   * Proves values to be constant, and replaces them with constants
15 //   * Proves conditional branches to be unconditional
16 //
17 //===----------------------------------------------------------------------===//
18 
19 #include "llvm/Transforms/Scalar/SCCP.h"
20 #include "llvm/ADT/ArrayRef.h"
21 #include "llvm/ADT/DenseMap.h"
22 #include "llvm/ADT/DenseSet.h"
23 #include "llvm/ADT/MapVector.h"
24 #include "llvm/ADT/PointerIntPair.h"
25 #include "llvm/ADT/STLExtras.h"
26 #include "llvm/ADT/SmallPtrSet.h"
27 #include "llvm/ADT/SmallVector.h"
28 #include "llvm/ADT/Statistic.h"
29 #include "llvm/Analysis/ConstantFolding.h"
30 #include "llvm/Analysis/DomTreeUpdater.h"
31 #include "llvm/Analysis/GlobalsModRef.h"
32 #include "llvm/Analysis/InstructionSimplify.h"
33 #include "llvm/Analysis/TargetLibraryInfo.h"
34 #include "llvm/Analysis/ValueLattice.h"
35 #include "llvm/Analysis/ValueLatticeUtils.h"
36 #include "llvm/Analysis/ValueTracking.h"
37 #include "llvm/IR/BasicBlock.h"
38 #include "llvm/IR/Constant.h"
39 #include "llvm/IR/Constants.h"
40 #include "llvm/IR/DataLayout.h"
41 #include "llvm/IR/DerivedTypes.h"
42 #include "llvm/IR/Function.h"
43 #include "llvm/IR/GlobalVariable.h"
44 #include "llvm/IR/InstVisitor.h"
45 #include "llvm/IR/InstrTypes.h"
46 #include "llvm/IR/Instruction.h"
47 #include "llvm/IR/Instructions.h"
48 #include "llvm/IR/Module.h"
49 #include "llvm/IR/PassManager.h"
50 #include "llvm/IR/Type.h"
51 #include "llvm/IR/User.h"
52 #include "llvm/IR/Value.h"
53 #include "llvm/InitializePasses.h"
54 #include "llvm/Pass.h"
55 #include "llvm/Support/Casting.h"
56 #include "llvm/Support/Debug.h"
57 #include "llvm/Support/ErrorHandling.h"
58 #include "llvm/Support/raw_ostream.h"
59 #include "llvm/Transforms/Scalar.h"
60 #include "llvm/Transforms/Utils/Local.h"
61 #include "llvm/Transforms/Utils/PredicateInfo.h"
62 #include <cassert>
63 #include <utility>
64 #include <vector>
65 
66 using namespace llvm;
67 
68 #define DEBUG_TYPE "sccp"
69 
70 STATISTIC(NumInstRemoved, "Number of instructions removed");
71 STATISTIC(NumDeadBlocks , "Number of basic blocks unreachable");
72 STATISTIC(NumInstReplaced,
73           "Number of instructions replaced with (simpler) instruction");
74 
75 STATISTIC(IPNumInstRemoved, "Number of instructions removed by IPSCCP");
76 STATISTIC(IPNumArgsElimed ,"Number of arguments constant propagated by IPSCCP");
77 STATISTIC(IPNumGlobalConst, "Number of globals found to be constant by IPSCCP");
78 STATISTIC(
79     IPNumInstReplaced,
80     "Number of instructions replaced with (simpler) instruction by IPSCCP");
81 
82 // The maximum number of range extensions allowed for operations requiring
83 // widening.
84 static const unsigned MaxNumRangeExtensions = 10;
85 
86 /// Returns MergeOptions with MaxWidenSteps set to MaxNumRangeExtensions.
87 static ValueLatticeElement::MergeOptions getMaxWidenStepsOpts() {
88   return ValueLatticeElement::MergeOptions().setMaxWidenSteps(
89       MaxNumRangeExtensions);
90 }
91 namespace {
92 
93 // Helper to check if \p LV is either a constant or a constant
94 // range with a single element. This should cover exactly the same cases as the
95 // old ValueLatticeElement::isConstant() and is intended to be used in the
96 // transition to ValueLatticeElement.
97 bool isConstant(const ValueLatticeElement &LV) {
98   return LV.isConstant() ||
99          (LV.isConstantRange() && LV.getConstantRange().isSingleElement());
100 }
101 
102 // Helper to check if \p LV is either overdefined or a constant range with more
103 // than a single element. This should cover exactly the same cases as the old
104 // ValueLatticeElement::isOverdefined() and is intended to be used in the
105 // transition to ValueLatticeElement.
106 bool isOverdefined(const ValueLatticeElement &LV) {
107   return LV.isOverdefined() ||
108          (LV.isConstantRange() && !LV.getConstantRange().isSingleElement());
109 }
110 
111 //===----------------------------------------------------------------------===//
112 //
113 /// SCCPSolver - This class is a general purpose solver for Sparse Conditional
114 /// Constant Propagation.
115 ///
116 class SCCPSolver : public InstVisitor<SCCPSolver> {
117   const DataLayout &DL;
118   std::function<const TargetLibraryInfo &(Function &)> GetTLI;
119   SmallPtrSet<BasicBlock *, 8> BBExecutable; // The BBs that are executable.
120   DenseMap<Value *, ValueLatticeElement>
121       ValueState; // The state each value is in.
122 
123   /// StructValueState - This maintains ValueState for values that have
124   /// StructType, for example for formal arguments, calls, insertelement, etc.
125   DenseMap<std::pair<Value *, unsigned>, ValueLatticeElement> StructValueState;
126 
127   /// GlobalValue - If we are tracking any values for the contents of a global
128   /// variable, we keep a mapping from the constant accessor to the element of
129   /// the global, to the currently known value.  If the value becomes
130   /// overdefined, it's entry is simply removed from this map.
131   DenseMap<GlobalVariable *, ValueLatticeElement> TrackedGlobals;
132 
133   /// TrackedRetVals - If we are tracking arguments into and the return
134   /// value out of a function, it will have an entry in this map, indicating
135   /// what the known return value for the function is.
136   MapVector<Function *, ValueLatticeElement> TrackedRetVals;
137 
138   /// TrackedMultipleRetVals - Same as TrackedRetVals, but used for functions
139   /// that return multiple values.
140   MapVector<std::pair<Function *, unsigned>, ValueLatticeElement>
141       TrackedMultipleRetVals;
142 
143   /// MRVFunctionsTracked - Each function in TrackedMultipleRetVals is
144   /// represented here for efficient lookup.
145   SmallPtrSet<Function *, 16> MRVFunctionsTracked;
146 
147   /// MustTailFunctions - Each function here is a callee of non-removable
148   /// musttail call site.
149   SmallPtrSet<Function *, 16> MustTailCallees;
150 
151   /// TrackingIncomingArguments - This is the set of functions for whose
152   /// arguments we make optimistic assumptions about and try to prove as
153   /// constants.
154   SmallPtrSet<Function *, 16> TrackingIncomingArguments;
155 
156   /// The reason for two worklists is that overdefined is the lowest state
157   /// on the lattice, and moving things to overdefined as fast as possible
158   /// makes SCCP converge much faster.
159   ///
160   /// By having a separate worklist, we accomplish this because everything
161   /// possibly overdefined will become overdefined at the soonest possible
162   /// point.
163   SmallVector<Value *, 64> OverdefinedInstWorkList;
164   SmallVector<Value *, 64> InstWorkList;
165 
166   // The BasicBlock work list
167   SmallVector<BasicBlock *, 64>  BBWorkList;
168 
169   /// KnownFeasibleEdges - Entries in this set are edges which have already had
170   /// PHI nodes retriggered.
171   using Edge = std::pair<BasicBlock *, BasicBlock *>;
172   DenseSet<Edge> KnownFeasibleEdges;
173 
174   DenseMap<Function *, AnalysisResultsForFn> AnalysisResults;
175   DenseMap<Value *, SmallPtrSet<User *, 2>> AdditionalUsers;
176 
177   LLVMContext &Ctx;
178 
179 public:
180   void addAnalysis(Function &F, AnalysisResultsForFn A) {
181     AnalysisResults.insert({&F, std::move(A)});
182   }
183 
184   const PredicateBase *getPredicateInfoFor(Instruction *I) {
185     auto A = AnalysisResults.find(I->getParent()->getParent());
186     if (A == AnalysisResults.end())
187       return nullptr;
188     return A->second.PredInfo->getPredicateInfoFor(I);
189   }
190 
191   DomTreeUpdater getDTU(Function &F) {
192     auto A = AnalysisResults.find(&F);
193     assert(A != AnalysisResults.end() && "Need analysis results for function.");
194     return {A->second.DT, A->second.PDT, DomTreeUpdater::UpdateStrategy::Lazy};
195   }
196 
197   SCCPSolver(const DataLayout &DL,
198              std::function<const TargetLibraryInfo &(Function &)> GetTLI,
199              LLVMContext &Ctx)
200       : DL(DL), GetTLI(std::move(GetTLI)), Ctx(Ctx) {}
201 
202   /// MarkBlockExecutable - This method can be used by clients to mark all of
203   /// the blocks that are known to be intrinsically live in the processed unit.
204   ///
205   /// This returns true if the block was not considered live before.
206   bool MarkBlockExecutable(BasicBlock *BB) {
207     if (!BBExecutable.insert(BB).second)
208       return false;
209     LLVM_DEBUG(dbgs() << "Marking Block Executable: " << BB->getName() << '\n');
210     BBWorkList.push_back(BB);  // Add the block to the work list!
211     return true;
212   }
213 
214   /// TrackValueOfGlobalVariable - Clients can use this method to
215   /// inform the SCCPSolver that it should track loads and stores to the
216   /// specified global variable if it can.  This is only legal to call if
217   /// performing Interprocedural SCCP.
218   void TrackValueOfGlobalVariable(GlobalVariable *GV) {
219     // We only track the contents of scalar globals.
220     if (GV->getValueType()->isSingleValueType()) {
221       ValueLatticeElement &IV = TrackedGlobals[GV];
222       if (!isa<UndefValue>(GV->getInitializer()))
223         IV.markConstant(GV->getInitializer());
224     }
225   }
226 
227   /// AddTrackedFunction - If the SCCP solver is supposed to track calls into
228   /// and out of the specified function (which cannot have its address taken),
229   /// this method must be called.
230   void AddTrackedFunction(Function *F) {
231     // Add an entry, F -> undef.
232     if (auto *STy = dyn_cast<StructType>(F->getReturnType())) {
233       MRVFunctionsTracked.insert(F);
234       for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i)
235         TrackedMultipleRetVals.insert(
236             std::make_pair(std::make_pair(F, i), ValueLatticeElement()));
237     } else if (!F->getReturnType()->isVoidTy())
238       TrackedRetVals.insert(std::make_pair(F, ValueLatticeElement()));
239   }
240 
241   /// AddMustTailCallee - If the SCCP solver finds that this function is called
242   /// from non-removable musttail call site.
243   void AddMustTailCallee(Function *F) {
244     MustTailCallees.insert(F);
245   }
246 
247   /// Returns true if the given function is called from non-removable musttail
248   /// call site.
249   bool isMustTailCallee(Function *F) {
250     return MustTailCallees.count(F);
251   }
252 
253   void AddArgumentTrackedFunction(Function *F) {
254     TrackingIncomingArguments.insert(F);
255   }
256 
257   /// Returns true if the given function is in the solver's set of
258   /// argument-tracked functions.
259   bool isArgumentTrackedFunction(Function *F) {
260     return TrackingIncomingArguments.count(F);
261   }
262 
263   /// Solve - Solve for constants and executable blocks.
264   void Solve();
265 
266   /// ResolvedUndefsIn - While solving the dataflow for a function, we assume
267   /// that branches on undef values cannot reach any of their successors.
268   /// However, this is not a safe assumption.  After we solve dataflow, this
269   /// method should be use to handle this.  If this returns true, the solver
270   /// should be rerun.
271   bool ResolvedUndefsIn(Function &F);
272 
273   bool isBlockExecutable(BasicBlock *BB) const {
274     return BBExecutable.count(BB);
275   }
276 
277   // isEdgeFeasible - Return true if the control flow edge from the 'From' basic
278   // block to the 'To' basic block is currently feasible.
279   bool isEdgeFeasible(BasicBlock *From, BasicBlock *To) const;
280 
281   std::vector<ValueLatticeElement> getStructLatticeValueFor(Value *V) const {
282     std::vector<ValueLatticeElement> StructValues;
283     auto *STy = dyn_cast<StructType>(V->getType());
284     assert(STy && "getStructLatticeValueFor() can be called only on structs");
285     for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
286       auto I = StructValueState.find(std::make_pair(V, i));
287       assert(I != StructValueState.end() && "Value not in valuemap!");
288       StructValues.push_back(I->second);
289     }
290     return StructValues;
291   }
292 
293   void removeLatticeValueFor(Value *V) { ValueState.erase(V); }
294 
295   const ValueLatticeElement &getLatticeValueFor(Value *V) const {
296     assert(!V->getType()->isStructTy() &&
297            "Should use getStructLatticeValueFor");
298     DenseMap<Value *, ValueLatticeElement>::const_iterator I =
299         ValueState.find(V);
300     assert(I != ValueState.end() &&
301            "V not found in ValueState nor Paramstate map!");
302     return I->second;
303   }
304 
305   /// getTrackedRetVals - Get the inferred return value map.
306   const MapVector<Function *, ValueLatticeElement> &getTrackedRetVals() {
307     return TrackedRetVals;
308   }
309 
310   /// getTrackedGlobals - Get and return the set of inferred initializers for
311   /// global variables.
312   const DenseMap<GlobalVariable *, ValueLatticeElement> &getTrackedGlobals() {
313     return TrackedGlobals;
314   }
315 
316   /// getMRVFunctionsTracked - Get the set of functions which return multiple
317   /// values tracked by the pass.
318   const SmallPtrSet<Function *, 16> getMRVFunctionsTracked() {
319     return MRVFunctionsTracked;
320   }
321 
322   /// getMustTailCallees - Get the set of functions which are called
323   /// from non-removable musttail call sites.
324   const SmallPtrSet<Function *, 16> getMustTailCallees() {
325     return MustTailCallees;
326   }
327 
328   /// markOverdefined - Mark the specified value overdefined.  This
329   /// works with both scalars and structs.
330   void markOverdefined(Value *V) {
331     if (auto *STy = dyn_cast<StructType>(V->getType()))
332       for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i)
333         markOverdefined(getStructValueState(V, i), V);
334     else
335       markOverdefined(ValueState[V], V);
336   }
337 
338   // isStructLatticeConstant - Return true if all the lattice values
339   // corresponding to elements of the structure are constants,
340   // false otherwise.
341   bool isStructLatticeConstant(Function *F, StructType *STy) {
342     for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
343       const auto &It = TrackedMultipleRetVals.find(std::make_pair(F, i));
344       assert(It != TrackedMultipleRetVals.end());
345       ValueLatticeElement LV = It->second;
346       if (!isConstant(LV))
347         return false;
348     }
349     return true;
350   }
351 
352   /// Helper to return a Constant if \p LV is either a constant or a constant
353   /// range with a single element.
354   Constant *getConstant(const ValueLatticeElement &LV) const {
355     if (LV.isConstant())
356       return LV.getConstant();
357 
358     if (LV.isConstantRange()) {
359       auto &CR = LV.getConstantRange();
360       if (CR.getSingleElement())
361         return ConstantInt::get(Ctx, *CR.getSingleElement());
362     }
363     return nullptr;
364   }
365 
366 private:
367   ConstantInt *getConstantInt(const ValueLatticeElement &IV) const {
368     return dyn_cast_or_null<ConstantInt>(getConstant(IV));
369   }
370 
371   // pushToWorkList - Helper for markConstant/markOverdefined
372   void pushToWorkList(ValueLatticeElement &IV, Value *V) {
373     if (IV.isOverdefined())
374       return OverdefinedInstWorkList.push_back(V);
375     InstWorkList.push_back(V);
376   }
377 
378   // Helper to push \p V to the worklist, after updating it to \p IV. Also
379   // prints a debug message with the updated value.
380   void pushToWorkListMsg(ValueLatticeElement &IV, Value *V) {
381     LLVM_DEBUG(dbgs() << "updated " << IV << ": " << *V << '\n');
382     pushToWorkList(IV, V);
383   }
384 
385   // markConstant - Make a value be marked as "constant".  If the value
386   // is not already a constant, add it to the instruction work list so that
387   // the users of the instruction are updated later.
388   bool markConstant(ValueLatticeElement &IV, Value *V, Constant *C,
389                     bool MayIncludeUndef = false) {
390     if (!IV.markConstant(C, MayIncludeUndef))
391       return false;
392     LLVM_DEBUG(dbgs() << "markConstant: " << *C << ": " << *V << '\n');
393     pushToWorkList(IV, V);
394     return true;
395   }
396 
397   bool markConstant(Value *V, Constant *C) {
398     assert(!V->getType()->isStructTy() && "structs should use mergeInValue");
399     return markConstant(ValueState[V], V, C);
400   }
401 
402   // markOverdefined - Make a value be marked as "overdefined". If the
403   // value is not already overdefined, add it to the overdefined instruction
404   // work list so that the users of the instruction are updated later.
405   bool markOverdefined(ValueLatticeElement &IV, Value *V) {
406     if (!IV.markOverdefined()) return false;
407 
408     LLVM_DEBUG(dbgs() << "markOverdefined: ";
409                if (auto *F = dyn_cast<Function>(V)) dbgs()
410                << "Function '" << F->getName() << "'\n";
411                else dbgs() << *V << '\n');
412     // Only instructions go on the work list
413     pushToWorkList(IV, V);
414     return true;
415   }
416 
417   /// Merge \p MergeWithV into \p IV and push \p V to the worklist, if \p IV
418   /// changes.
419   bool mergeInValue(ValueLatticeElement &IV, Value *V,
420                     ValueLatticeElement MergeWithV,
421                     ValueLatticeElement::MergeOptions Opts = {
422                         /*MayIncludeUndef=*/false, /*CheckWiden=*/false}) {
423     if (IV.mergeIn(MergeWithV, Opts)) {
424       pushToWorkList(IV, V);
425       LLVM_DEBUG(dbgs() << "Merged " << MergeWithV << " into " << *V << " : "
426                         << IV << "\n");
427       return true;
428     }
429     return false;
430   }
431 
432   bool mergeInValue(Value *V, ValueLatticeElement MergeWithV,
433                     ValueLatticeElement::MergeOptions Opts = {
434                         /*MayIncludeUndef=*/false, /*CheckWiden=*/false}) {
435     assert(!V->getType()->isStructTy() &&
436            "non-structs should use markConstant");
437     return mergeInValue(ValueState[V], V, MergeWithV, Opts);
438   }
439 
440   /// getValueState - Return the ValueLatticeElement object that corresponds to
441   /// the value.  This function handles the case when the value hasn't been seen
442   /// yet by properly seeding constants etc.
443   ValueLatticeElement &getValueState(Value *V) {
444     assert(!V->getType()->isStructTy() && "Should use getStructValueState");
445 
446     auto I = ValueState.insert(std::make_pair(V, ValueLatticeElement()));
447     ValueLatticeElement &LV = I.first->second;
448 
449     if (!I.second)
450       return LV;  // Common case, already in the map.
451 
452     if (auto *C = dyn_cast<Constant>(V))
453       LV.markConstant(C);          // Constants are constant
454 
455     // All others are unknown by default.
456     return LV;
457   }
458 
459   /// getStructValueState - Return the ValueLatticeElement object that
460   /// corresponds to the value/field pair.  This function handles the case when
461   /// the value hasn't been seen yet by properly seeding constants etc.
462   ValueLatticeElement &getStructValueState(Value *V, unsigned i) {
463     assert(V->getType()->isStructTy() && "Should use getValueState");
464     assert(i < cast<StructType>(V->getType())->getNumElements() &&
465            "Invalid element #");
466 
467     auto I = StructValueState.insert(
468         std::make_pair(std::make_pair(V, i), ValueLatticeElement()));
469     ValueLatticeElement &LV = I.first->second;
470 
471     if (!I.second)
472       return LV;  // Common case, already in the map.
473 
474     if (auto *C = dyn_cast<Constant>(V)) {
475       Constant *Elt = C->getAggregateElement(i);
476 
477       if (!Elt)
478         LV.markOverdefined();      // Unknown sort of constant.
479       else if (isa<UndefValue>(Elt))
480         ; // Undef values remain unknown.
481       else
482         LV.markConstant(Elt);      // Constants are constant.
483     }
484 
485     // All others are underdefined by default.
486     return LV;
487   }
488 
489   /// markEdgeExecutable - Mark a basic block as executable, adding it to the BB
490   /// work list if it is not already executable.
491   bool markEdgeExecutable(BasicBlock *Source, BasicBlock *Dest) {
492     if (!KnownFeasibleEdges.insert(Edge(Source, Dest)).second)
493       return false;  // This edge is already known to be executable!
494 
495     if (!MarkBlockExecutable(Dest)) {
496       // If the destination is already executable, we just made an *edge*
497       // feasible that wasn't before.  Revisit the PHI nodes in the block
498       // because they have potentially new operands.
499       LLVM_DEBUG(dbgs() << "Marking Edge Executable: " << Source->getName()
500                         << " -> " << Dest->getName() << '\n');
501 
502       for (PHINode &PN : Dest->phis())
503         visitPHINode(PN);
504     }
505     return true;
506   }
507 
508   // getFeasibleSuccessors - Return a vector of booleans to indicate which
509   // successors are reachable from a given terminator instruction.
510   void getFeasibleSuccessors(Instruction &TI, SmallVectorImpl<bool> &Succs);
511 
512   // OperandChangedState - This method is invoked on all of the users of an
513   // instruction that was just changed state somehow.  Based on this
514   // information, we need to update the specified user of this instruction.
515   void OperandChangedState(Instruction *I) {
516     if (BBExecutable.count(I->getParent()))   // Inst is executable?
517       visit(*I);
518   }
519 
520   // Add U as additional user of V.
521   void addAdditionalUser(Value *V, User *U) {
522     auto Iter = AdditionalUsers.insert({V, {}});
523     Iter.first->second.insert(U);
524   }
525 
526   // Mark I's users as changed, including AdditionalUsers.
527   void markUsersAsChanged(Value *I) {
528     // Functions include their arguments in the use-list. Changed function
529     // values mean that the result of the function changed. We only need to
530     // update the call sites with the new function result and do not have to
531     // propagate the call arguments.
532     if (isa<Function>(I)) {
533       for (User *U : I->users()) {
534         if (auto *CB = dyn_cast<CallBase>(U))
535           handleCallResult(*CB);
536       }
537     } else {
538       for (User *U : I->users())
539         if (auto *UI = dyn_cast<Instruction>(U))
540           OperandChangedState(UI);
541     }
542 
543     auto Iter = AdditionalUsers.find(I);
544     if (Iter != AdditionalUsers.end()) {
545       for (User *U : Iter->second)
546         if (auto *UI = dyn_cast<Instruction>(U))
547           OperandChangedState(UI);
548     }
549   }
550   void handleCallOverdefined(CallBase &CB);
551   void handleCallResult(CallBase &CB);
552   void handleCallArguments(CallBase &CB);
553 
554 private:
555   friend class InstVisitor<SCCPSolver>;
556 
557   // visit implementations - Something changed in this instruction.  Either an
558   // operand made a transition, or the instruction is newly executable.  Change
559   // the value type of I to reflect these changes if appropriate.
560   void visitPHINode(PHINode &I);
561 
562   // Terminators
563 
564   void visitReturnInst(ReturnInst &I);
565   void visitTerminator(Instruction &TI);
566 
567   void visitCastInst(CastInst &I);
568   void visitSelectInst(SelectInst &I);
569   void visitUnaryOperator(Instruction &I);
570   void visitBinaryOperator(Instruction &I);
571   void visitCmpInst(CmpInst &I);
572   void visitExtractValueInst(ExtractValueInst &EVI);
573   void visitInsertValueInst(InsertValueInst &IVI);
574 
575   void visitCatchSwitchInst(CatchSwitchInst &CPI) {
576     markOverdefined(&CPI);
577     visitTerminator(CPI);
578   }
579 
580   // Instructions that cannot be folded away.
581 
582   void visitStoreInst     (StoreInst &I);
583   void visitLoadInst      (LoadInst &I);
584   void visitGetElementPtrInst(GetElementPtrInst &I);
585 
586   void visitCallInst      (CallInst &I) {
587     visitCallBase(I);
588   }
589 
590   void visitInvokeInst    (InvokeInst &II) {
591     visitCallBase(II);
592     visitTerminator(II);
593   }
594 
595   void visitCallBrInst    (CallBrInst &CBI) {
596     visitCallBase(CBI);
597     visitTerminator(CBI);
598   }
599 
600   void visitCallBase      (CallBase &CB);
601   void visitResumeInst    (ResumeInst &I) { /*returns void*/ }
602   void visitUnreachableInst(UnreachableInst &I) { /*returns void*/ }
603   void visitFenceInst     (FenceInst &I) { /*returns void*/ }
604 
605   void visitInstruction(Instruction &I) {
606     // All the instructions we don't do any special handling for just
607     // go to overdefined.
608     LLVM_DEBUG(dbgs() << "SCCP: Don't know how to handle: " << I << '\n');
609     markOverdefined(&I);
610   }
611 };
612 
613 } // end anonymous namespace
614 
615 // getFeasibleSuccessors - Return a vector of booleans to indicate which
616 // successors are reachable from a given terminator instruction.
617 void SCCPSolver::getFeasibleSuccessors(Instruction &TI,
618                                        SmallVectorImpl<bool> &Succs) {
619   Succs.resize(TI.getNumSuccessors());
620   if (auto *BI = dyn_cast<BranchInst>(&TI)) {
621     if (BI->isUnconditional()) {
622       Succs[0] = true;
623       return;
624     }
625 
626     ValueLatticeElement BCValue = getValueState(BI->getCondition());
627     ConstantInt *CI = getConstantInt(BCValue);
628     if (!CI) {
629       // Overdefined condition variables, and branches on unfoldable constant
630       // conditions, mean the branch could go either way.
631       if (!BCValue.isUnknownOrUndef())
632         Succs[0] = Succs[1] = true;
633       return;
634     }
635 
636     // Constant condition variables mean the branch can only go a single way.
637     Succs[CI->isZero()] = true;
638     return;
639   }
640 
641   // Unwinding instructions successors are always executable.
642   if (TI.isExceptionalTerminator()) {
643     Succs.assign(TI.getNumSuccessors(), true);
644     return;
645   }
646 
647   if (auto *SI = dyn_cast<SwitchInst>(&TI)) {
648     if (!SI->getNumCases()) {
649       Succs[0] = true;
650       return;
651     }
652     const ValueLatticeElement &SCValue = getValueState(SI->getCondition());
653     if (ConstantInt *CI = getConstantInt(SCValue)) {
654       Succs[SI->findCaseValue(CI)->getSuccessorIndex()] = true;
655       return;
656     }
657 
658     // TODO: Switch on undef is UB. Stop passing false once the rest of LLVM
659     // is ready.
660     if (SCValue.isConstantRange(/*UndefAllowed=*/false)) {
661       const ConstantRange &Range = SCValue.getConstantRange();
662       for (const auto &Case : SI->cases()) {
663         const APInt &CaseValue = Case.getCaseValue()->getValue();
664         if (Range.contains(CaseValue))
665           Succs[Case.getSuccessorIndex()] = true;
666       }
667 
668       // TODO: Determine whether default case is reachable.
669       Succs[SI->case_default()->getSuccessorIndex()] = true;
670       return;
671     }
672 
673     // Overdefined or unknown condition? All destinations are executable!
674     if (!SCValue.isUnknownOrUndef())
675       Succs.assign(TI.getNumSuccessors(), true);
676     return;
677   }
678 
679   // In case of indirect branch and its address is a blockaddress, we mark
680   // the target as executable.
681   if (auto *IBR = dyn_cast<IndirectBrInst>(&TI)) {
682     // Casts are folded by visitCastInst.
683     ValueLatticeElement IBRValue = getValueState(IBR->getAddress());
684     BlockAddress *Addr = dyn_cast_or_null<BlockAddress>(getConstant(IBRValue));
685     if (!Addr) {   // Overdefined or unknown condition?
686       // All destinations are executable!
687       if (!IBRValue.isUnknownOrUndef())
688         Succs.assign(TI.getNumSuccessors(), true);
689       return;
690     }
691 
692     BasicBlock* T = Addr->getBasicBlock();
693     assert(Addr->getFunction() == T->getParent() &&
694            "Block address of a different function ?");
695     for (unsigned i = 0; i < IBR->getNumSuccessors(); ++i) {
696       // This is the target.
697       if (IBR->getDestination(i) == T) {
698         Succs[i] = true;
699         return;
700       }
701     }
702 
703     // If we didn't find our destination in the IBR successor list, then we
704     // have undefined behavior. Its ok to assume no successor is executable.
705     return;
706   }
707 
708   // In case of callbr, we pessimistically assume that all successors are
709   // feasible.
710   if (isa<CallBrInst>(&TI)) {
711     Succs.assign(TI.getNumSuccessors(), true);
712     return;
713   }
714 
715   LLVM_DEBUG(dbgs() << "Unknown terminator instruction: " << TI << '\n');
716   llvm_unreachable("SCCP: Don't know how to handle this terminator!");
717 }
718 
719 // isEdgeFeasible - Return true if the control flow edge from the 'From' basic
720 // block to the 'To' basic block is currently feasible.
721 bool SCCPSolver::isEdgeFeasible(BasicBlock *From, BasicBlock *To) const {
722   // Check if we've called markEdgeExecutable on the edge yet. (We could
723   // be more aggressive and try to consider edges which haven't been marked
724   // yet, but there isn't any need.)
725   return KnownFeasibleEdges.count(Edge(From, To));
726 }
727 
728 // visit Implementations - Something changed in this instruction, either an
729 // operand made a transition, or the instruction is newly executable.  Change
730 // the value type of I to reflect these changes if appropriate.  This method
731 // makes sure to do the following actions:
732 //
733 // 1. If a phi node merges two constants in, and has conflicting value coming
734 //    from different branches, or if the PHI node merges in an overdefined
735 //    value, then the PHI node becomes overdefined.
736 // 2. If a phi node merges only constants in, and they all agree on value, the
737 //    PHI node becomes a constant value equal to that.
738 // 3. If V <- x (op) y && isConstant(x) && isConstant(y) V = Constant
739 // 4. If V <- x (op) y && (isOverdefined(x) || isOverdefined(y)) V = Overdefined
740 // 5. If V <- MEM or V <- CALL or V <- (unknown) then V = Overdefined
741 // 6. If a conditional branch has a value that is constant, make the selected
742 //    destination executable
743 // 7. If a conditional branch has a value that is overdefined, make all
744 //    successors executable.
745 void SCCPSolver::visitPHINode(PHINode &PN) {
746   // If this PN returns a struct, just mark the result overdefined.
747   // TODO: We could do a lot better than this if code actually uses this.
748   if (PN.getType()->isStructTy())
749     return (void)markOverdefined(&PN);
750 
751   if (getValueState(&PN).isOverdefined())
752     return; // Quick exit
753 
754   // Super-extra-high-degree PHI nodes are unlikely to ever be marked constant,
755   // and slow us down a lot.  Just mark them overdefined.
756   if (PN.getNumIncomingValues() > 64)
757     return (void)markOverdefined(&PN);
758 
759   unsigned NumActiveIncoming = 0;
760 
761   // Look at all of the executable operands of the PHI node.  If any of them
762   // are overdefined, the PHI becomes overdefined as well.  If they are all
763   // constant, and they agree with each other, the PHI becomes the identical
764   // constant.  If they are constant and don't agree, the PHI is a constant
765   // range. If there are no executable operands, the PHI remains unknown.
766   ValueLatticeElement PhiState = getValueState(&PN);
767   for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i) {
768     if (!isEdgeFeasible(PN.getIncomingBlock(i), PN.getParent()))
769       continue;
770 
771     ValueLatticeElement IV = getValueState(PN.getIncomingValue(i));
772     PhiState.mergeIn(IV);
773     NumActiveIncoming++;
774     if (PhiState.isOverdefined())
775       break;
776   }
777 
778   // We allow up to 1 range extension per active incoming value and one
779   // additional extension. Note that we manually adjust the number of range
780   // extensions to match the number of active incoming values. This helps to
781   // limit multiple extensions caused by the same incoming value, if other
782   // incoming values are equal.
783   mergeInValue(&PN, PhiState,
784                ValueLatticeElement::MergeOptions().setMaxWidenSteps(
785                    NumActiveIncoming + 1));
786   ValueLatticeElement &PhiStateRef = getValueState(&PN);
787   PhiStateRef.setNumRangeExtensions(
788       std::max(NumActiveIncoming, PhiStateRef.getNumRangeExtensions()));
789 }
790 
791 void SCCPSolver::visitReturnInst(ReturnInst &I) {
792   if (I.getNumOperands() == 0) return;  // ret void
793 
794   Function *F = I.getParent()->getParent();
795   Value *ResultOp = I.getOperand(0);
796 
797   // If we are tracking the return value of this function, merge it in.
798   if (!TrackedRetVals.empty() && !ResultOp->getType()->isStructTy()) {
799     auto TFRVI = TrackedRetVals.find(F);
800     if (TFRVI != TrackedRetVals.end()) {
801       mergeInValue(TFRVI->second, F, getValueState(ResultOp));
802       return;
803     }
804   }
805 
806   // Handle functions that return multiple values.
807   if (!TrackedMultipleRetVals.empty()) {
808     if (auto *STy = dyn_cast<StructType>(ResultOp->getType()))
809       if (MRVFunctionsTracked.count(F))
810         for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i)
811           mergeInValue(TrackedMultipleRetVals[std::make_pair(F, i)], F,
812                        getStructValueState(ResultOp, i));
813   }
814 }
815 
816 void SCCPSolver::visitTerminator(Instruction &TI) {
817   SmallVector<bool, 16> SuccFeasible;
818   getFeasibleSuccessors(TI, SuccFeasible);
819 
820   BasicBlock *BB = TI.getParent();
821 
822   // Mark all feasible successors executable.
823   for (unsigned i = 0, e = SuccFeasible.size(); i != e; ++i)
824     if (SuccFeasible[i])
825       markEdgeExecutable(BB, TI.getSuccessor(i));
826 }
827 
828 void SCCPSolver::visitCastInst(CastInst &I) {
829   // ResolvedUndefsIn might mark I as overdefined. Bail out, even if we would
830   // discover a concrete value later.
831   if (ValueState[&I].isOverdefined())
832     return;
833 
834   ValueLatticeElement OpSt = getValueState(I.getOperand(0));
835   if (Constant *OpC = getConstant(OpSt)) {
836     // Fold the constant as we build.
837     Constant *C = ConstantFoldCastOperand(I.getOpcode(), OpC, I.getType(), DL);
838     if (isa<UndefValue>(C))
839       return;
840     // Propagate constant value
841     markConstant(&I, C);
842   } else if (OpSt.isConstantRange() && I.getDestTy()->isIntegerTy()) {
843     auto &LV = getValueState(&I);
844     ConstantRange OpRange = OpSt.getConstantRange();
845     Type *DestTy = I.getDestTy();
846     ConstantRange Res =
847         OpRange.castOp(I.getOpcode(), DL.getTypeSizeInBits(DestTy));
848     mergeInValue(LV, &I, ValueLatticeElement::getRange(Res));
849   } else if (!OpSt.isUnknownOrUndef())
850     markOverdefined(&I);
851 }
852 
853 void SCCPSolver::visitExtractValueInst(ExtractValueInst &EVI) {
854   // If this returns a struct, mark all elements over defined, we don't track
855   // structs in structs.
856   if (EVI.getType()->isStructTy())
857     return (void)markOverdefined(&EVI);
858 
859   // ResolvedUndefsIn might mark I as overdefined. Bail out, even if we would
860   // discover a concrete value later.
861   if (ValueState[&EVI].isOverdefined())
862     return (void)markOverdefined(&EVI);
863 
864   // If this is extracting from more than one level of struct, we don't know.
865   if (EVI.getNumIndices() != 1)
866     return (void)markOverdefined(&EVI);
867 
868   Value *AggVal = EVI.getAggregateOperand();
869   if (AggVal->getType()->isStructTy()) {
870     unsigned i = *EVI.idx_begin();
871     ValueLatticeElement EltVal = getStructValueState(AggVal, i);
872     mergeInValue(getValueState(&EVI), &EVI, EltVal);
873   } else {
874     // Otherwise, must be extracting from an array.
875     return (void)markOverdefined(&EVI);
876   }
877 }
878 
879 void SCCPSolver::visitInsertValueInst(InsertValueInst &IVI) {
880   auto *STy = dyn_cast<StructType>(IVI.getType());
881   if (!STy)
882     return (void)markOverdefined(&IVI);
883 
884   // ResolvedUndefsIn might mark I as overdefined. Bail out, even if we would
885   // discover a concrete value later.
886   if (isOverdefined(ValueState[&IVI]))
887     return (void)markOverdefined(&IVI);
888 
889   // If this has more than one index, we can't handle it, drive all results to
890   // undef.
891   if (IVI.getNumIndices() != 1)
892     return (void)markOverdefined(&IVI);
893 
894   Value *Aggr = IVI.getAggregateOperand();
895   unsigned Idx = *IVI.idx_begin();
896 
897   // Compute the result based on what we're inserting.
898   for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
899     // This passes through all values that aren't the inserted element.
900     if (i != Idx) {
901       ValueLatticeElement EltVal = getStructValueState(Aggr, i);
902       mergeInValue(getStructValueState(&IVI, i), &IVI, EltVal);
903       continue;
904     }
905 
906     Value *Val = IVI.getInsertedValueOperand();
907     if (Val->getType()->isStructTy())
908       // We don't track structs in structs.
909       markOverdefined(getStructValueState(&IVI, i), &IVI);
910     else {
911       ValueLatticeElement InVal = getValueState(Val);
912       mergeInValue(getStructValueState(&IVI, i), &IVI, InVal);
913     }
914   }
915 }
916 
917 void SCCPSolver::visitSelectInst(SelectInst &I) {
918   // If this select returns a struct, just mark the result overdefined.
919   // TODO: We could do a lot better than this if code actually uses this.
920   if (I.getType()->isStructTy())
921     return (void)markOverdefined(&I);
922 
923   // ResolvedUndefsIn might mark I as overdefined. Bail out, even if we would
924   // discover a concrete value later.
925   if (ValueState[&I].isOverdefined())
926     return (void)markOverdefined(&I);
927 
928   ValueLatticeElement CondValue = getValueState(I.getCondition());
929   if (CondValue.isUnknownOrUndef())
930     return;
931 
932   if (ConstantInt *CondCB = getConstantInt(CondValue)) {
933     Value *OpVal = CondCB->isZero() ? I.getFalseValue() : I.getTrueValue();
934     mergeInValue(&I, getValueState(OpVal));
935     return;
936   }
937 
938   // Otherwise, the condition is overdefined or a constant we can't evaluate.
939   // See if we can produce something better than overdefined based on the T/F
940   // value.
941   ValueLatticeElement TVal = getValueState(I.getTrueValue());
942   ValueLatticeElement FVal = getValueState(I.getFalseValue());
943 
944   bool Changed = ValueState[&I].mergeIn(TVal);
945   Changed |= ValueState[&I].mergeIn(FVal);
946   if (Changed)
947     pushToWorkListMsg(ValueState[&I], &I);
948 }
949 
950 // Handle Unary Operators.
951 void SCCPSolver::visitUnaryOperator(Instruction &I) {
952   ValueLatticeElement V0State = getValueState(I.getOperand(0));
953 
954   ValueLatticeElement &IV = ValueState[&I];
955   // ResolvedUndefsIn might mark I as overdefined. Bail out, even if we would
956   // discover a concrete value later.
957   if (isOverdefined(IV))
958     return (void)markOverdefined(&I);
959 
960   if (isConstant(V0State)) {
961     Constant *C = ConstantExpr::get(I.getOpcode(), getConstant(V0State));
962 
963     // op Y -> undef.
964     if (isa<UndefValue>(C))
965       return;
966     return (void)markConstant(IV, &I, C);
967   }
968 
969   // If something is undef, wait for it to resolve.
970   if (!isOverdefined(V0State))
971     return;
972 
973   markOverdefined(&I);
974 }
975 
976 // Handle Binary Operators.
977 void SCCPSolver::visitBinaryOperator(Instruction &I) {
978   ValueLatticeElement V1State = getValueState(I.getOperand(0));
979   ValueLatticeElement V2State = getValueState(I.getOperand(1));
980 
981   ValueLatticeElement &IV = ValueState[&I];
982   if (IV.isOverdefined())
983     return;
984 
985   // If something is undef, wait for it to resolve.
986   if (V1State.isUnknownOrUndef() || V2State.isUnknownOrUndef())
987     return;
988 
989   if (V1State.isOverdefined() && V2State.isOverdefined())
990     return (void)markOverdefined(&I);
991 
992   // If either of the operands is a constant, try to fold it to a constant.
993   // TODO: Use information from notconstant better.
994   if ((V1State.isConstant() || V2State.isConstant())) {
995     Value *V1 = isConstant(V1State) ? getConstant(V1State) : I.getOperand(0);
996     Value *V2 = isConstant(V2State) ? getConstant(V2State) : I.getOperand(1);
997     Value *R = SimplifyBinOp(I.getOpcode(), V1, V2, SimplifyQuery(DL));
998     auto *C = dyn_cast_or_null<Constant>(R);
999     if (C) {
1000       // X op Y -> undef.
1001       if (isa<UndefValue>(C))
1002         return;
1003       // Conservatively assume that the result may be based on operands that may
1004       // be undef. Note that we use mergeInValue to combine the constant with
1005       // the existing lattice value for I, as different constants might be found
1006       // after one of the operands go to overdefined, e.g. due to one operand
1007       // being a special floating value.
1008       ValueLatticeElement NewV;
1009       NewV.markConstant(C, /*MayIncludeUndef=*/true);
1010       return (void)mergeInValue(&I, NewV);
1011     }
1012   }
1013 
1014   // Only use ranges for binary operators on integers.
1015   if (!I.getType()->isIntegerTy())
1016     return markOverdefined(&I);
1017 
1018   // Try to simplify to a constant range.
1019   ConstantRange A = ConstantRange::getFull(I.getType()->getScalarSizeInBits());
1020   ConstantRange B = ConstantRange::getFull(I.getType()->getScalarSizeInBits());
1021   if (V1State.isConstantRange())
1022     A = V1State.getConstantRange();
1023   if (V2State.isConstantRange())
1024     B = V2State.getConstantRange();
1025 
1026   ConstantRange R = A.binaryOp(cast<BinaryOperator>(&I)->getOpcode(), B);
1027   mergeInValue(&I, ValueLatticeElement::getRange(R));
1028 
1029   // TODO: Currently we do not exploit special values that produce something
1030   // better than overdefined with an overdefined operand for vector or floating
1031   // point types, like and <4 x i32> overdefined, zeroinitializer.
1032 }
1033 
1034 // Handle ICmpInst instruction.
1035 void SCCPSolver::visitCmpInst(CmpInst &I) {
1036   // Do not cache this lookup, getValueState calls later in the function might
1037   // invalidate the reference.
1038   if (isOverdefined(ValueState[&I]))
1039     return (void)markOverdefined(&I);
1040 
1041   Value *Op1 = I.getOperand(0);
1042   Value *Op2 = I.getOperand(1);
1043 
1044   // For parameters, use ParamState which includes constant range info if
1045   // available.
1046   auto V1State = getValueState(Op1);
1047   auto V2State = getValueState(Op2);
1048 
1049   Constant *C = V1State.getCompare(I.getPredicate(), I.getType(), V2State);
1050   if (C) {
1051     if (isa<UndefValue>(C))
1052       return;
1053     ValueLatticeElement CV;
1054     CV.markConstant(C);
1055     mergeInValue(&I, CV);
1056     return;
1057   }
1058 
1059   // If operands are still unknown, wait for it to resolve.
1060   if ((V1State.isUnknownOrUndef() || V2State.isUnknownOrUndef()) &&
1061       !isConstant(ValueState[&I]))
1062     return;
1063 
1064   markOverdefined(&I);
1065 }
1066 
1067 // Handle getelementptr instructions.  If all operands are constants then we
1068 // can turn this into a getelementptr ConstantExpr.
1069 void SCCPSolver::visitGetElementPtrInst(GetElementPtrInst &I) {
1070   if (isOverdefined(ValueState[&I]))
1071     return (void)markOverdefined(&I);
1072 
1073   SmallVector<Constant*, 8> Operands;
1074   Operands.reserve(I.getNumOperands());
1075 
1076   for (unsigned i = 0, e = I.getNumOperands(); i != e; ++i) {
1077     ValueLatticeElement State = getValueState(I.getOperand(i));
1078     if (State.isUnknownOrUndef())
1079       return;  // Operands are not resolved yet.
1080 
1081     if (isOverdefined(State))
1082       return (void)markOverdefined(&I);
1083 
1084     if (Constant *C = getConstant(State)) {
1085       Operands.push_back(C);
1086       continue;
1087     }
1088 
1089     return (void)markOverdefined(&I);
1090   }
1091 
1092   Constant *Ptr = Operands[0];
1093   auto Indices = makeArrayRef(Operands.begin() + 1, Operands.end());
1094   Constant *C =
1095       ConstantExpr::getGetElementPtr(I.getSourceElementType(), Ptr, Indices);
1096   if (isa<UndefValue>(C))
1097       return;
1098   markConstant(&I, C);
1099 }
1100 
1101 void SCCPSolver::visitStoreInst(StoreInst &SI) {
1102   // If this store is of a struct, ignore it.
1103   if (SI.getOperand(0)->getType()->isStructTy())
1104     return;
1105 
1106   if (TrackedGlobals.empty() || !isa<GlobalVariable>(SI.getOperand(1)))
1107     return;
1108 
1109   GlobalVariable *GV = cast<GlobalVariable>(SI.getOperand(1));
1110   auto I = TrackedGlobals.find(GV);
1111   if (I == TrackedGlobals.end())
1112     return;
1113 
1114   // Get the value we are storing into the global, then merge it.
1115   mergeInValue(I->second, GV, getValueState(SI.getOperand(0)),
1116                ValueLatticeElement::MergeOptions().setCheckWiden(false));
1117   if (I->second.isOverdefined())
1118     TrackedGlobals.erase(I);      // No need to keep tracking this!
1119 }
1120 
1121 static ValueLatticeElement getValueFromMetadata(const Instruction *I) {
1122   if (MDNode *Ranges = I->getMetadata(LLVMContext::MD_range))
1123     if (I->getType()->isIntegerTy())
1124       return ValueLatticeElement::getRange(
1125           getConstantRangeFromMetadata(*Ranges));
1126   // TODO: Also handle MD_nonnull.
1127   return ValueLatticeElement::getOverdefined();
1128 }
1129 
1130 // Handle load instructions.  If the operand is a constant pointer to a constant
1131 // global, we can replace the load with the loaded constant value!
1132 void SCCPSolver::visitLoadInst(LoadInst &I) {
1133   // If this load is of a struct or the load is volatile, just mark the result
1134   // as overdefined.
1135   if (I.getType()->isStructTy() || I.isVolatile())
1136     return (void)markOverdefined(&I);
1137 
1138   // ResolvedUndefsIn might mark I as overdefined. Bail out, even if we would
1139   // discover a concrete value later.
1140   if (ValueState[&I].isOverdefined())
1141     return (void)markOverdefined(&I);
1142 
1143   ValueLatticeElement PtrVal = getValueState(I.getOperand(0));
1144   if (PtrVal.isUnknownOrUndef())
1145     return; // The pointer is not resolved yet!
1146 
1147   ValueLatticeElement &IV = ValueState[&I];
1148 
1149   if (isConstant(PtrVal)) {
1150     Constant *Ptr = getConstant(PtrVal);
1151 
1152     // load null is undefined.
1153     if (isa<ConstantPointerNull>(Ptr)) {
1154       if (NullPointerIsDefined(I.getFunction(), I.getPointerAddressSpace()))
1155         return (void)markOverdefined(IV, &I);
1156       else
1157         return;
1158     }
1159 
1160     // Transform load (constant global) into the value loaded.
1161     if (auto *GV = dyn_cast<GlobalVariable>(Ptr)) {
1162       if (!TrackedGlobals.empty()) {
1163         // If we are tracking this global, merge in the known value for it.
1164         auto It = TrackedGlobals.find(GV);
1165         if (It != TrackedGlobals.end()) {
1166           mergeInValue(IV, &I, It->second, getMaxWidenStepsOpts());
1167           return;
1168         }
1169       }
1170     }
1171 
1172     // Transform load from a constant into a constant if possible.
1173     if (Constant *C = ConstantFoldLoadFromConstPtr(Ptr, I.getType(), DL)) {
1174       if (isa<UndefValue>(C))
1175         return;
1176       return (void)markConstant(IV, &I, C);
1177     }
1178   }
1179 
1180   // Fall back to metadata.
1181   mergeInValue(&I, getValueFromMetadata(&I));
1182 }
1183 
1184 void SCCPSolver::visitCallBase(CallBase &CB) {
1185   handleCallResult(CB);
1186   handleCallArguments(CB);
1187 }
1188 
1189 void SCCPSolver::handleCallOverdefined(CallBase &CB) {
1190   Function *F = CB.getCalledFunction();
1191 
1192   // Void return and not tracking callee, just bail.
1193   if (CB.getType()->isVoidTy())
1194     return;
1195 
1196   // Always mark struct return as overdefined.
1197   if (CB.getType()->isStructTy())
1198     return (void)markOverdefined(&CB);
1199 
1200   // Otherwise, if we have a single return value case, and if the function is
1201   // a declaration, maybe we can constant fold it.
1202   if (F && F->isDeclaration() && canConstantFoldCallTo(&CB, F)) {
1203     SmallVector<Constant *, 8> Operands;
1204     for (auto AI = CB.arg_begin(), E = CB.arg_end(); AI != E; ++AI) {
1205       if (AI->get()->getType()->isStructTy())
1206         return markOverdefined(&CB); // Can't handle struct args.
1207       ValueLatticeElement State = getValueState(*AI);
1208 
1209       if (State.isUnknownOrUndef())
1210         return; // Operands are not resolved yet.
1211       if (isOverdefined(State))
1212         return (void)markOverdefined(&CB);
1213       assert(isConstant(State) && "Unknown state!");
1214       Operands.push_back(getConstant(State));
1215     }
1216 
1217     if (isOverdefined(getValueState(&CB)))
1218       return (void)markOverdefined(&CB);
1219 
1220     // If we can constant fold this, mark the result of the call as a
1221     // constant.
1222     if (Constant *C = ConstantFoldCall(&CB, F, Operands, &GetTLI(*F))) {
1223       // call -> undef.
1224       if (isa<UndefValue>(C))
1225         return;
1226       return (void)markConstant(&CB, C);
1227     }
1228   }
1229 
1230   // Fall back to metadata.
1231   mergeInValue(&CB, getValueFromMetadata(&CB));
1232 }
1233 
1234 void SCCPSolver::handleCallArguments(CallBase &CB) {
1235   Function *F = CB.getCalledFunction();
1236   // If this is a local function that doesn't have its address taken, mark its
1237   // entry block executable and merge in the actual arguments to the call into
1238   // the formal arguments of the function.
1239   if (!TrackingIncomingArguments.empty() &&
1240       TrackingIncomingArguments.count(F)) {
1241     MarkBlockExecutable(&F->front());
1242 
1243     // Propagate information from this call site into the callee.
1244     auto CAI = CB.arg_begin();
1245     for (Function::arg_iterator AI = F->arg_begin(), E = F->arg_end(); AI != E;
1246          ++AI, ++CAI) {
1247       // If this argument is byval, and if the function is not readonly, there
1248       // will be an implicit copy formed of the input aggregate.
1249       if (AI->hasByValAttr() && !F->onlyReadsMemory()) {
1250         markOverdefined(&*AI);
1251         continue;
1252       }
1253 
1254       if (auto *STy = dyn_cast<StructType>(AI->getType())) {
1255         for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
1256           ValueLatticeElement CallArg = getStructValueState(*CAI, i);
1257           mergeInValue(getStructValueState(&*AI, i), &*AI, CallArg,
1258                        getMaxWidenStepsOpts());
1259         }
1260       } else
1261         mergeInValue(&*AI, getValueState(*CAI), getMaxWidenStepsOpts());
1262     }
1263   }
1264 }
1265 
1266 void SCCPSolver::handleCallResult(CallBase &CB) {
1267   Function *F = CB.getCalledFunction();
1268 
1269   if (auto *II = dyn_cast<IntrinsicInst>(&CB)) {
1270     if (II->getIntrinsicID() == Intrinsic::ssa_copy) {
1271       if (ValueState[&CB].isOverdefined())
1272         return;
1273 
1274       Value *CopyOf = CB.getOperand(0);
1275       ValueLatticeElement CopyOfVal = getValueState(CopyOf);
1276       auto *PI = getPredicateInfoFor(&CB);
1277       assert(PI && "Missing predicate info for ssa.copy");
1278 
1279       const Optional<PredicateConstraint> &Constraint = PI->getConstraint();
1280       if (!Constraint) {
1281         mergeInValue(ValueState[&CB], &CB, CopyOfVal);
1282         return;
1283       }
1284 
1285       CmpInst::Predicate Pred = Constraint->Predicate;
1286       Value *OtherOp = Constraint->OtherOp;
1287 
1288       // Wait until OtherOp is resolved.
1289       if (getValueState(OtherOp).isUnknown()) {
1290         addAdditionalUser(OtherOp, &CB);
1291         return;
1292       }
1293 
1294       ValueLatticeElement CondVal = getValueState(OtherOp);
1295       ValueLatticeElement &IV = ValueState[&CB];
1296       if (CondVal.isConstantRange() || CopyOfVal.isConstantRange()) {
1297         auto ImposedCR =
1298             ConstantRange::getFull(DL.getTypeSizeInBits(CopyOf->getType()));
1299 
1300         // Get the range imposed by the condition.
1301         if (CondVal.isConstantRange())
1302           ImposedCR = ConstantRange::makeAllowedICmpRegion(
1303               Pred, CondVal.getConstantRange());
1304 
1305         // Combine range info for the original value with the new range from the
1306         // condition.
1307         auto CopyOfCR = CopyOfVal.isConstantRange()
1308                             ? CopyOfVal.getConstantRange()
1309                             : ConstantRange::getFull(
1310                                   DL.getTypeSizeInBits(CopyOf->getType()));
1311         auto NewCR = ImposedCR.intersectWith(CopyOfCR);
1312         // If the existing information is != x, do not use the information from
1313         // a chained predicate, as the != x information is more likely to be
1314         // helpful in practice.
1315         if (!CopyOfCR.contains(NewCR) && CopyOfCR.getSingleMissingElement())
1316           NewCR = CopyOfCR;
1317 
1318         addAdditionalUser(OtherOp, &CB);
1319         // TODO: Actually filp MayIncludeUndef for the created range to false,
1320         // once most places in the optimizer respect the branches on
1321         // undef/poison are UB rule. The reason why the new range cannot be
1322         // undef is as follows below:
1323         // The new range is based on a branch condition. That guarantees that
1324         // neither of the compare operands can be undef in the branch targets,
1325         // unless we have conditions that are always true/false (e.g. icmp ule
1326         // i32, %a, i32_max). For the latter overdefined/empty range will be
1327         // inferred, but the branch will get folded accordingly anyways.
1328         mergeInValue(
1329             IV, &CB,
1330             ValueLatticeElement::getRange(NewCR, /*MayIncludeUndef=*/true));
1331         return;
1332       } else if (Pred == CmpInst::ICMP_EQ && CondVal.isConstant()) {
1333         // For non-integer values or integer constant expressions, only
1334         // propagate equal constants.
1335         addAdditionalUser(OtherOp, &CB);
1336         mergeInValue(IV, &CB, CondVal);
1337         return;
1338       }
1339 
1340       return (void)mergeInValue(IV, &CB, CopyOfVal);
1341     }
1342   }
1343 
1344   // The common case is that we aren't tracking the callee, either because we
1345   // are not doing interprocedural analysis or the callee is indirect, or is
1346   // external.  Handle these cases first.
1347   if (!F || F->isDeclaration())
1348     return handleCallOverdefined(CB);
1349 
1350   // If this is a single/zero retval case, see if we're tracking the function.
1351   if (auto *STy = dyn_cast<StructType>(F->getReturnType())) {
1352     if (!MRVFunctionsTracked.count(F))
1353       return handleCallOverdefined(CB); // Not tracking this callee.
1354 
1355     // If we are tracking this callee, propagate the result of the function
1356     // into this call site.
1357     for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i)
1358       mergeInValue(getStructValueState(&CB, i), &CB,
1359                    TrackedMultipleRetVals[std::make_pair(F, i)],
1360                    getMaxWidenStepsOpts());
1361   } else {
1362     auto TFRVI = TrackedRetVals.find(F);
1363     if (TFRVI == TrackedRetVals.end())
1364       return handleCallOverdefined(CB); // Not tracking this callee.
1365 
1366     // If so, propagate the return value of the callee into this call result.
1367     mergeInValue(&CB, TFRVI->second, getMaxWidenStepsOpts());
1368   }
1369 }
1370 
1371 void SCCPSolver::Solve() {
1372   // Process the work lists until they are empty!
1373   while (!BBWorkList.empty() || !InstWorkList.empty() ||
1374          !OverdefinedInstWorkList.empty()) {
1375     // Process the overdefined instruction's work list first, which drives other
1376     // things to overdefined more quickly.
1377     while (!OverdefinedInstWorkList.empty()) {
1378       Value *I = OverdefinedInstWorkList.pop_back_val();
1379 
1380       LLVM_DEBUG(dbgs() << "\nPopped off OI-WL: " << *I << '\n');
1381 
1382       // "I" got into the work list because it either made the transition from
1383       // bottom to constant, or to overdefined.
1384       //
1385       // Anything on this worklist that is overdefined need not be visited
1386       // since all of its users will have already been marked as overdefined
1387       // Update all of the users of this instruction's value.
1388       //
1389       markUsersAsChanged(I);
1390     }
1391 
1392     // Process the instruction work list.
1393     while (!InstWorkList.empty()) {
1394       Value *I = InstWorkList.pop_back_val();
1395 
1396       LLVM_DEBUG(dbgs() << "\nPopped off I-WL: " << *I << '\n');
1397 
1398       // "I" got into the work list because it made the transition from undef to
1399       // constant.
1400       //
1401       // Anything on this worklist that is overdefined need not be visited
1402       // since all of its users will have already been marked as overdefined.
1403       // Update all of the users of this instruction's value.
1404       //
1405       if (I->getType()->isStructTy() || !getValueState(I).isOverdefined())
1406         markUsersAsChanged(I);
1407     }
1408 
1409     // Process the basic block work list.
1410     while (!BBWorkList.empty()) {
1411       BasicBlock *BB = BBWorkList.back();
1412       BBWorkList.pop_back();
1413 
1414       LLVM_DEBUG(dbgs() << "\nPopped off BBWL: " << *BB << '\n');
1415 
1416       // Notify all instructions in this basic block that they are newly
1417       // executable.
1418       visit(BB);
1419     }
1420   }
1421 }
1422 
1423 /// ResolvedUndefsIn - While solving the dataflow for a function, we assume
1424 /// that branches on undef values cannot reach any of their successors.
1425 /// However, this is not a safe assumption.  After we solve dataflow, this
1426 /// method should be use to handle this.  If this returns true, the solver
1427 /// should be rerun.
1428 ///
1429 /// This method handles this by finding an unresolved branch and marking it one
1430 /// of the edges from the block as being feasible, even though the condition
1431 /// doesn't say it would otherwise be.  This allows SCCP to find the rest of the
1432 /// CFG and only slightly pessimizes the analysis results (by marking one,
1433 /// potentially infeasible, edge feasible).  This cannot usefully modify the
1434 /// constraints on the condition of the branch, as that would impact other users
1435 /// of the value.
1436 ///
1437 /// This scan also checks for values that use undefs. It conservatively marks
1438 /// them as overdefined.
1439 bool SCCPSolver::ResolvedUndefsIn(Function &F) {
1440   for (BasicBlock &BB : F) {
1441     if (!BBExecutable.count(&BB))
1442       continue;
1443 
1444     for (Instruction &I : BB) {
1445       // Look for instructions which produce undef values.
1446       if (I.getType()->isVoidTy()) continue;
1447 
1448       if (auto *STy = dyn_cast<StructType>(I.getType())) {
1449         // Only a few things that can be structs matter for undef.
1450 
1451         // Tracked calls must never be marked overdefined in ResolvedUndefsIn.
1452         if (auto *CB = dyn_cast<CallBase>(&I))
1453           if (Function *F = CB->getCalledFunction())
1454             if (MRVFunctionsTracked.count(F))
1455               continue;
1456 
1457         // extractvalue and insertvalue don't need to be marked; they are
1458         // tracked as precisely as their operands.
1459         if (isa<ExtractValueInst>(I) || isa<InsertValueInst>(I))
1460           continue;
1461         // Send the results of everything else to overdefined.  We could be
1462         // more precise than this but it isn't worth bothering.
1463         for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
1464           ValueLatticeElement &LV = getStructValueState(&I, i);
1465           if (LV.isUnknownOrUndef())
1466             markOverdefined(LV, &I);
1467         }
1468         continue;
1469       }
1470 
1471       ValueLatticeElement &LV = getValueState(&I);
1472       if (!LV.isUnknownOrUndef())
1473         continue;
1474 
1475       // There are two reasons a call can have an undef result
1476       // 1. It could be tracked.
1477       // 2. It could be constant-foldable.
1478       // Because of the way we solve return values, tracked calls must
1479       // never be marked overdefined in ResolvedUndefsIn.
1480       if (auto *CB = dyn_cast<CallBase>(&I))
1481         if (Function *F = CB->getCalledFunction())
1482           if (TrackedRetVals.count(F))
1483             continue;
1484 
1485       if (isa<LoadInst>(I)) {
1486         // A load here means one of two things: a load of undef from a global,
1487         // a load from an unknown pointer.  Either way, having it return undef
1488         // is okay.
1489         continue;
1490       }
1491 
1492       markOverdefined(&I);
1493       return true;
1494     }
1495 
1496     // Check to see if we have a branch or switch on an undefined value.  If so
1497     // we force the branch to go one way or the other to make the successor
1498     // values live.  It doesn't really matter which way we force it.
1499     Instruction *TI = BB.getTerminator();
1500     if (auto *BI = dyn_cast<BranchInst>(TI)) {
1501       if (!BI->isConditional()) continue;
1502       if (!getValueState(BI->getCondition()).isUnknownOrUndef())
1503         continue;
1504 
1505       // If the input to SCCP is actually branch on undef, fix the undef to
1506       // false.
1507       if (isa<UndefValue>(BI->getCondition())) {
1508         BI->setCondition(ConstantInt::getFalse(BI->getContext()));
1509         markEdgeExecutable(&BB, TI->getSuccessor(1));
1510         return true;
1511       }
1512 
1513       // Otherwise, it is a branch on a symbolic value which is currently
1514       // considered to be undef.  Make sure some edge is executable, so a
1515       // branch on "undef" always flows somewhere.
1516       // FIXME: Distinguish between dead code and an LLVM "undef" value.
1517       BasicBlock *DefaultSuccessor = TI->getSuccessor(1);
1518       if (markEdgeExecutable(&BB, DefaultSuccessor))
1519         return true;
1520 
1521       continue;
1522     }
1523 
1524    if (auto *IBR = dyn_cast<IndirectBrInst>(TI)) {
1525       // Indirect branch with no successor ?. Its ok to assume it branches
1526       // to no target.
1527       if (IBR->getNumSuccessors() < 1)
1528         continue;
1529 
1530       if (!getValueState(IBR->getAddress()).isUnknownOrUndef())
1531         continue;
1532 
1533       // If the input to SCCP is actually branch on undef, fix the undef to
1534       // the first successor of the indirect branch.
1535       if (isa<UndefValue>(IBR->getAddress())) {
1536         IBR->setAddress(BlockAddress::get(IBR->getSuccessor(0)));
1537         markEdgeExecutable(&BB, IBR->getSuccessor(0));
1538         return true;
1539       }
1540 
1541       // Otherwise, it is a branch on a symbolic value which is currently
1542       // considered to be undef.  Make sure some edge is executable, so a
1543       // branch on "undef" always flows somewhere.
1544       // FIXME: IndirectBr on "undef" doesn't actually need to go anywhere:
1545       // we can assume the branch has undefined behavior instead.
1546       BasicBlock *DefaultSuccessor = IBR->getSuccessor(0);
1547       if (markEdgeExecutable(&BB, DefaultSuccessor))
1548         return true;
1549 
1550       continue;
1551     }
1552 
1553     if (auto *SI = dyn_cast<SwitchInst>(TI)) {
1554       if (!SI->getNumCases() ||
1555           !getValueState(SI->getCondition()).isUnknownOrUndef())
1556         continue;
1557 
1558       // If the input to SCCP is actually switch on undef, fix the undef to
1559       // the first constant.
1560       if (isa<UndefValue>(SI->getCondition())) {
1561         SI->setCondition(SI->case_begin()->getCaseValue());
1562         markEdgeExecutable(&BB, SI->case_begin()->getCaseSuccessor());
1563         return true;
1564       }
1565 
1566       // Otherwise, it is a branch on a symbolic value which is currently
1567       // considered to be undef.  Make sure some edge is executable, so a
1568       // branch on "undef" always flows somewhere.
1569       // FIXME: Distinguish between dead code and an LLVM "undef" value.
1570       BasicBlock *DefaultSuccessor = SI->case_begin()->getCaseSuccessor();
1571       if (markEdgeExecutable(&BB, DefaultSuccessor))
1572         return true;
1573 
1574       continue;
1575     }
1576   }
1577 
1578   return false;
1579 }
1580 
1581 static bool tryToReplaceWithConstant(SCCPSolver &Solver, Value *V) {
1582   Constant *Const = nullptr;
1583   if (V->getType()->isStructTy()) {
1584     std::vector<ValueLatticeElement> IVs = Solver.getStructLatticeValueFor(V);
1585     if (any_of(IVs,
1586                [](const ValueLatticeElement &LV) { return isOverdefined(LV); }))
1587       return false;
1588     std::vector<Constant *> ConstVals;
1589     auto *ST = cast<StructType>(V->getType());
1590     for (unsigned i = 0, e = ST->getNumElements(); i != e; ++i) {
1591       ValueLatticeElement V = IVs[i];
1592       ConstVals.push_back(isConstant(V)
1593                               ? Solver.getConstant(V)
1594                               : UndefValue::get(ST->getElementType(i)));
1595     }
1596     Const = ConstantStruct::get(ST, ConstVals);
1597   } else {
1598     const ValueLatticeElement &IV = Solver.getLatticeValueFor(V);
1599     if (isOverdefined(IV))
1600       return false;
1601 
1602     Const =
1603         isConstant(IV) ? Solver.getConstant(IV) : UndefValue::get(V->getType());
1604   }
1605   assert(Const && "Constant is nullptr here!");
1606 
1607   // Replacing `musttail` instructions with constant breaks `musttail` invariant
1608   // unless the call itself can be removed
1609   CallInst *CI = dyn_cast<CallInst>(V);
1610   if (CI && CI->isMustTailCall() && !CI->isSafeToRemove()) {
1611     Function *F = CI->getCalledFunction();
1612 
1613     // Don't zap returns of the callee
1614     if (F)
1615       Solver.AddMustTailCallee(F);
1616 
1617     LLVM_DEBUG(dbgs() << "  Can\'t treat the result of musttail call : " << *CI
1618                       << " as a constant\n");
1619     return false;
1620   }
1621 
1622   LLVM_DEBUG(dbgs() << "  Constant: " << *Const << " = " << *V << '\n');
1623 
1624   // Replaces all of the uses of a variable with uses of the constant.
1625   V->replaceAllUsesWith(Const);
1626   return true;
1627 }
1628 
1629 static bool simplifyInstsInBlock(SCCPSolver &Solver, BasicBlock &BB,
1630                                  SmallPtrSetImpl<Value *> &InsertedValues,
1631                                  Statistic &InstRemovedStat,
1632                                  Statistic &InstReplacedStat) {
1633   bool MadeChanges = false;
1634   for (Instruction &Inst : make_early_inc_range(BB)) {
1635     if (Inst.getType()->isVoidTy())
1636       continue;
1637     if (tryToReplaceWithConstant(Solver, &Inst)) {
1638       if (Inst.isSafeToRemove())
1639         Inst.eraseFromParent();
1640       // Hey, we just changed something!
1641       MadeChanges = true;
1642       ++InstRemovedStat;
1643     } else if (isa<SExtInst>(&Inst)) {
1644       Value *ExtOp = Inst.getOperand(0);
1645       if (isa<Constant>(ExtOp) || InsertedValues.count(ExtOp))
1646         continue;
1647       const ValueLatticeElement &IV = Solver.getLatticeValueFor(ExtOp);
1648       if (!IV.isConstantRange(/*UndefAllowed=*/false))
1649         continue;
1650       if (IV.getConstantRange().isAllNonNegative()) {
1651         auto *ZExt = new ZExtInst(ExtOp, Inst.getType(), "", &Inst);
1652         InsertedValues.insert(ZExt);
1653         Inst.replaceAllUsesWith(ZExt);
1654         Solver.removeLatticeValueFor(&Inst);
1655         Inst.eraseFromParent();
1656         InstReplacedStat++;
1657         MadeChanges = true;
1658       }
1659     }
1660   }
1661   return MadeChanges;
1662 }
1663 
1664 // runSCCP() - Run the Sparse Conditional Constant Propagation algorithm,
1665 // and return true if the function was modified.
1666 static bool runSCCP(Function &F, const DataLayout &DL,
1667                     const TargetLibraryInfo *TLI) {
1668   LLVM_DEBUG(dbgs() << "SCCP on function '" << F.getName() << "'\n");
1669   SCCPSolver Solver(
1670       DL, [TLI](Function &F) -> const TargetLibraryInfo & { return *TLI; },
1671       F.getContext());
1672 
1673   // Mark the first block of the function as being executable.
1674   Solver.MarkBlockExecutable(&F.front());
1675 
1676   // Mark all arguments to the function as being overdefined.
1677   for (Argument &AI : F.args())
1678     Solver.markOverdefined(&AI);
1679 
1680   // Solve for constants.
1681   bool ResolvedUndefs = true;
1682   while (ResolvedUndefs) {
1683     Solver.Solve();
1684     LLVM_DEBUG(dbgs() << "RESOLVING UNDEFs\n");
1685     ResolvedUndefs = Solver.ResolvedUndefsIn(F);
1686   }
1687 
1688   bool MadeChanges = false;
1689 
1690   // If we decided that there are basic blocks that are dead in this function,
1691   // delete their contents now.  Note that we cannot actually delete the blocks,
1692   // as we cannot modify the CFG of the function.
1693 
1694   SmallPtrSet<Value *, 32> InsertedValues;
1695   for (BasicBlock &BB : F) {
1696     if (!Solver.isBlockExecutable(&BB)) {
1697       LLVM_DEBUG(dbgs() << "  BasicBlock Dead:" << BB);
1698 
1699       ++NumDeadBlocks;
1700       NumInstRemoved += removeAllNonTerminatorAndEHPadInstructions(&BB);
1701 
1702       MadeChanges = true;
1703       continue;
1704     }
1705 
1706     MadeChanges |= simplifyInstsInBlock(Solver, BB, InsertedValues,
1707                                         NumInstRemoved, NumInstReplaced);
1708   }
1709 
1710   return MadeChanges;
1711 }
1712 
1713 PreservedAnalyses SCCPPass::run(Function &F, FunctionAnalysisManager &AM) {
1714   const DataLayout &DL = F.getParent()->getDataLayout();
1715   auto &TLI = AM.getResult<TargetLibraryAnalysis>(F);
1716   if (!runSCCP(F, DL, &TLI))
1717     return PreservedAnalyses::all();
1718 
1719   auto PA = PreservedAnalyses();
1720   PA.preserve<GlobalsAA>();
1721   PA.preserveSet<CFGAnalyses>();
1722   return PA;
1723 }
1724 
1725 namespace {
1726 
1727 //===--------------------------------------------------------------------===//
1728 //
1729 /// SCCP Class - This class uses the SCCPSolver to implement a per-function
1730 /// Sparse Conditional Constant Propagator.
1731 ///
1732 class SCCPLegacyPass : public FunctionPass {
1733 public:
1734   // Pass identification, replacement for typeid
1735   static char ID;
1736 
1737   SCCPLegacyPass() : FunctionPass(ID) {
1738     initializeSCCPLegacyPassPass(*PassRegistry::getPassRegistry());
1739   }
1740 
1741   void getAnalysisUsage(AnalysisUsage &AU) const override {
1742     AU.addRequired<TargetLibraryInfoWrapperPass>();
1743     AU.addPreserved<GlobalsAAWrapperPass>();
1744     AU.setPreservesCFG();
1745   }
1746 
1747   // runOnFunction - Run the Sparse Conditional Constant Propagation
1748   // algorithm, and return true if the function was modified.
1749   bool runOnFunction(Function &F) override {
1750     if (skipFunction(F))
1751       return false;
1752     const DataLayout &DL = F.getParent()->getDataLayout();
1753     const TargetLibraryInfo *TLI =
1754         &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(F);
1755     return runSCCP(F, DL, TLI);
1756   }
1757 };
1758 
1759 } // end anonymous namespace
1760 
1761 char SCCPLegacyPass::ID = 0;
1762 
1763 INITIALIZE_PASS_BEGIN(SCCPLegacyPass, "sccp",
1764                       "Sparse Conditional Constant Propagation", false, false)
1765 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
1766 INITIALIZE_PASS_END(SCCPLegacyPass, "sccp",
1767                     "Sparse Conditional Constant Propagation", false, false)
1768 
1769 // createSCCPPass - This is the public interface to this file.
1770 FunctionPass *llvm::createSCCPPass() { return new SCCPLegacyPass(); }
1771 
1772 static void findReturnsToZap(Function &F,
1773                              SmallVector<ReturnInst *, 8> &ReturnsToZap,
1774                              SCCPSolver &Solver) {
1775   // We can only do this if we know that nothing else can call the function.
1776   if (!Solver.isArgumentTrackedFunction(&F))
1777     return;
1778 
1779   // There is a non-removable musttail call site of this function. Zapping
1780   // returns is not allowed.
1781   if (Solver.isMustTailCallee(&F)) {
1782     LLVM_DEBUG(dbgs() << "Can't zap returns of the function : " << F.getName()
1783                       << " due to present musttail call of it\n");
1784     return;
1785   }
1786 
1787   assert(
1788       all_of(F.users(),
1789              [&Solver](User *U) {
1790                if (isa<Instruction>(U) &&
1791                    !Solver.isBlockExecutable(cast<Instruction>(U)->getParent()))
1792                  return true;
1793                // Non-callsite uses are not impacted by zapping. Also, constant
1794                // uses (like blockaddresses) could stuck around, without being
1795                // used in the underlying IR, meaning we do not have lattice
1796                // values for them.
1797                if (!isa<CallBase>(U))
1798                  return true;
1799                if (U->getType()->isStructTy()) {
1800                  return all_of(Solver.getStructLatticeValueFor(U),
1801                                [](const ValueLatticeElement &LV) {
1802                                  return !isOverdefined(LV);
1803                                });
1804                }
1805                return !isOverdefined(Solver.getLatticeValueFor(U));
1806              }) &&
1807       "We can only zap functions where all live users have a concrete value");
1808 
1809   for (BasicBlock &BB : F) {
1810     if (CallInst *CI = BB.getTerminatingMustTailCall()) {
1811       LLVM_DEBUG(dbgs() << "Can't zap return of the block due to present "
1812                         << "musttail call : " << *CI << "\n");
1813       (void)CI;
1814       return;
1815     }
1816 
1817     if (auto *RI = dyn_cast<ReturnInst>(BB.getTerminator()))
1818       if (!isa<UndefValue>(RI->getOperand(0)))
1819         ReturnsToZap.push_back(RI);
1820   }
1821 }
1822 
1823 static bool removeNonFeasibleEdges(const SCCPSolver &Solver, BasicBlock *BB,
1824                                    DomTreeUpdater &DTU) {
1825   SmallPtrSet<BasicBlock *, 8> FeasibleSuccessors;
1826   bool HasNonFeasibleEdges = false;
1827   for (BasicBlock *Succ : successors(BB)) {
1828     if (Solver.isEdgeFeasible(BB, Succ))
1829       FeasibleSuccessors.insert(Succ);
1830     else
1831       HasNonFeasibleEdges = true;
1832   }
1833 
1834   // All edges feasible, nothing to do.
1835   if (!HasNonFeasibleEdges)
1836     return false;
1837 
1838   // SCCP can only determine non-feasible edges for br, switch and indirectbr.
1839   Instruction *TI = BB->getTerminator();
1840   assert((isa<BranchInst>(TI) || isa<SwitchInst>(TI) ||
1841           isa<IndirectBrInst>(TI)) &&
1842          "Terminator must be a br, switch or indirectbr");
1843 
1844   if (FeasibleSuccessors.size() == 1) {
1845     // Replace with an unconditional branch to the only feasible successor.
1846     BasicBlock *OnlyFeasibleSuccessor = *FeasibleSuccessors.begin();
1847     SmallVector<DominatorTree::UpdateType, 8> Updates;
1848     bool HaveSeenOnlyFeasibleSuccessor = false;
1849     for (BasicBlock *Succ : successors(BB)) {
1850       if (Succ == OnlyFeasibleSuccessor && !HaveSeenOnlyFeasibleSuccessor) {
1851         // Don't remove the edge to the only feasible successor the first time
1852         // we see it. We still do need to remove any multi-edges to it though.
1853         HaveSeenOnlyFeasibleSuccessor = true;
1854         continue;
1855       }
1856 
1857       Succ->removePredecessor(BB);
1858       Updates.push_back({DominatorTree::Delete, BB, Succ});
1859     }
1860 
1861     BranchInst::Create(OnlyFeasibleSuccessor, BB);
1862     TI->eraseFromParent();
1863     DTU.applyUpdatesPermissive(Updates);
1864   } else if (FeasibleSuccessors.size() > 1) {
1865     SwitchInstProfUpdateWrapper SI(*cast<SwitchInst>(TI));
1866     SmallVector<DominatorTree::UpdateType, 8> Updates;
1867     for (auto CI = SI->case_begin(); CI != SI->case_end();) {
1868       if (FeasibleSuccessors.contains(CI->getCaseSuccessor())) {
1869         ++CI;
1870         continue;
1871       }
1872 
1873       BasicBlock *Succ = CI->getCaseSuccessor();
1874       Succ->removePredecessor(BB);
1875       Updates.push_back({DominatorTree::Delete, BB, Succ});
1876       SI.removeCase(CI);
1877       // Don't increment CI, as we removed a case.
1878     }
1879 
1880     DTU.applyUpdatesPermissive(Updates);
1881   } else {
1882     llvm_unreachable("Must have at least one feasible successor");
1883   }
1884   return true;
1885 }
1886 
1887 bool llvm::runIPSCCP(
1888     Module &M, const DataLayout &DL,
1889     std::function<const TargetLibraryInfo &(Function &)> GetTLI,
1890     function_ref<AnalysisResultsForFn(Function &)> getAnalysis) {
1891   SCCPSolver Solver(DL, GetTLI, M.getContext());
1892 
1893   // Loop over all functions, marking arguments to those with their addresses
1894   // taken or that are external as overdefined.
1895   for (Function &F : M) {
1896     if (F.isDeclaration())
1897       continue;
1898 
1899     Solver.addAnalysis(F, getAnalysis(F));
1900 
1901     // Determine if we can track the function's return values. If so, add the
1902     // function to the solver's set of return-tracked functions.
1903     if (canTrackReturnsInterprocedurally(&F))
1904       Solver.AddTrackedFunction(&F);
1905 
1906     // Determine if we can track the function's arguments. If so, add the
1907     // function to the solver's set of argument-tracked functions.
1908     if (canTrackArgumentsInterprocedurally(&F)) {
1909       Solver.AddArgumentTrackedFunction(&F);
1910       continue;
1911     }
1912 
1913     // Assume the function is called.
1914     Solver.MarkBlockExecutable(&F.front());
1915 
1916     // Assume nothing about the incoming arguments.
1917     for (Argument &AI : F.args())
1918       Solver.markOverdefined(&AI);
1919   }
1920 
1921   // Determine if we can track any of the module's global variables. If so, add
1922   // the global variables we can track to the solver's set of tracked global
1923   // variables.
1924   for (GlobalVariable &G : M.globals()) {
1925     G.removeDeadConstantUsers();
1926     if (canTrackGlobalVariableInterprocedurally(&G))
1927       Solver.TrackValueOfGlobalVariable(&G);
1928   }
1929 
1930   // Solve for constants.
1931   bool ResolvedUndefs = true;
1932   Solver.Solve();
1933   while (ResolvedUndefs) {
1934     LLVM_DEBUG(dbgs() << "RESOLVING UNDEFS\n");
1935     ResolvedUndefs = false;
1936     for (Function &F : M)
1937       if (Solver.ResolvedUndefsIn(F)) {
1938         // We run Solve() after we resolved an undef in a function, because
1939         // we might deduce a fact that eliminates an undef in another function.
1940         Solver.Solve();
1941         ResolvedUndefs = true;
1942       }
1943   }
1944 
1945   bool MadeChanges = false;
1946 
1947   // Iterate over all of the instructions in the module, replacing them with
1948   // constants if we have found them to be of constant values.
1949 
1950   for (Function &F : M) {
1951     if (F.isDeclaration())
1952       continue;
1953 
1954     SmallVector<BasicBlock *, 512> BlocksToErase;
1955 
1956     if (Solver.isBlockExecutable(&F.front())) {
1957       bool ReplacedPointerArg = false;
1958       for (Argument &Arg : F.args()) {
1959         if (!Arg.use_empty() && tryToReplaceWithConstant(Solver, &Arg)) {
1960           ReplacedPointerArg |= Arg.getType()->isPointerTy();
1961           ++IPNumArgsElimed;
1962         }
1963       }
1964 
1965       // If we replaced an argument, the argmemonly and
1966       // inaccessiblemem_or_argmemonly attributes do not hold any longer. Remove
1967       // them from both the function and callsites.
1968       if (ReplacedPointerArg) {
1969         SmallVector<Attribute::AttrKind, 2> AttributesToRemove = {
1970             Attribute::ArgMemOnly, Attribute::InaccessibleMemOrArgMemOnly};
1971         for (auto Attr : AttributesToRemove)
1972           F.removeFnAttr(Attr);
1973 
1974         for (User *U : F.users()) {
1975           auto *CB = dyn_cast<CallBase>(U);
1976           if (!CB || CB->getCalledFunction() != &F)
1977             continue;
1978 
1979           for (auto Attr : AttributesToRemove)
1980             CB->removeAttribute(AttributeList::FunctionIndex, Attr);
1981         }
1982       }
1983     }
1984 
1985     SmallPtrSet<Value *, 32> InsertedValues;
1986     for (BasicBlock &BB : F) {
1987       if (!Solver.isBlockExecutable(&BB)) {
1988         LLVM_DEBUG(dbgs() << "  BasicBlock Dead:" << BB);
1989         ++NumDeadBlocks;
1990 
1991         MadeChanges = true;
1992 
1993         if (&BB != &F.front())
1994           BlocksToErase.push_back(&BB);
1995         continue;
1996       }
1997 
1998       MadeChanges |= simplifyInstsInBlock(Solver, BB, InsertedValues,
1999                                           IPNumInstRemoved, IPNumInstReplaced);
2000     }
2001 
2002     DomTreeUpdater DTU = Solver.getDTU(F);
2003     // Change dead blocks to unreachable. We do it after replacing constants
2004     // in all executable blocks, because changeToUnreachable may remove PHI
2005     // nodes in executable blocks we found values for. The function's entry
2006     // block is not part of BlocksToErase, so we have to handle it separately.
2007     for (BasicBlock *BB : BlocksToErase) {
2008       NumInstRemoved +=
2009           changeToUnreachable(BB->getFirstNonPHI(), /*UseLLVMTrap=*/false,
2010                               /*PreserveLCSSA=*/false, &DTU);
2011     }
2012     if (!Solver.isBlockExecutable(&F.front()))
2013       NumInstRemoved += changeToUnreachable(F.front().getFirstNonPHI(),
2014                                             /*UseLLVMTrap=*/false,
2015                                             /*PreserveLCSSA=*/false, &DTU);
2016 
2017     for (BasicBlock &BB : F)
2018       MadeChanges |= removeNonFeasibleEdges(Solver, &BB, DTU);
2019 
2020     for (BasicBlock *DeadBB : BlocksToErase)
2021       DTU.deleteBB(DeadBB);
2022 
2023     for (BasicBlock &BB : F) {
2024       for (BasicBlock::iterator BI = BB.begin(), E = BB.end(); BI != E;) {
2025         Instruction *Inst = &*BI++;
2026         if (Solver.getPredicateInfoFor(Inst)) {
2027           if (auto *II = dyn_cast<IntrinsicInst>(Inst)) {
2028             if (II->getIntrinsicID() == Intrinsic::ssa_copy) {
2029               Value *Op = II->getOperand(0);
2030               Inst->replaceAllUsesWith(Op);
2031               Inst->eraseFromParent();
2032             }
2033           }
2034         }
2035       }
2036     }
2037   }
2038 
2039   // If we inferred constant or undef return values for a function, we replaced
2040   // all call uses with the inferred value.  This means we don't need to bother
2041   // actually returning anything from the function.  Replace all return
2042   // instructions with return undef.
2043   //
2044   // Do this in two stages: first identify the functions we should process, then
2045   // actually zap their returns.  This is important because we can only do this
2046   // if the address of the function isn't taken.  In cases where a return is the
2047   // last use of a function, the order of processing functions would affect
2048   // whether other functions are optimizable.
2049   SmallVector<ReturnInst*, 8> ReturnsToZap;
2050 
2051   for (const auto &I : Solver.getTrackedRetVals()) {
2052     Function *F = I.first;
2053     const ValueLatticeElement &ReturnValue = I.second;
2054 
2055     // If there is a known constant range for the return value, add !range
2056     // metadata to the function's call sites.
2057     if (ReturnValue.isConstantRange() &&
2058         !ReturnValue.getConstantRange().isSingleElement()) {
2059       // Do not add range metadata if the return value may include undef.
2060       if (ReturnValue.isConstantRangeIncludingUndef())
2061         continue;
2062 
2063       auto &CR = ReturnValue.getConstantRange();
2064       for (User *User : F->users()) {
2065         auto *CB = dyn_cast<CallBase>(User);
2066         if (!CB || CB->getCalledFunction() != F)
2067           continue;
2068 
2069         // Limit to cases where the return value is guaranteed to be neither
2070         // poison nor undef. Poison will be outside any range and currently
2071         // values outside of the specified range cause immediate undefined
2072         // behavior.
2073         if (!isGuaranteedNotToBeUndefOrPoison(CB, CB))
2074           continue;
2075 
2076         // Do not touch existing metadata for now.
2077         // TODO: We should be able to take the intersection of the existing
2078         // metadata and the inferred range.
2079         if (CB->getMetadata(LLVMContext::MD_range))
2080           continue;
2081 
2082         LLVMContext &Context = CB->getParent()->getContext();
2083         Metadata *RangeMD[] = {
2084             ConstantAsMetadata::get(ConstantInt::get(Context, CR.getLower())),
2085             ConstantAsMetadata::get(ConstantInt::get(Context, CR.getUpper()))};
2086         CB->setMetadata(LLVMContext::MD_range, MDNode::get(Context, RangeMD));
2087       }
2088       continue;
2089     }
2090     if (F->getReturnType()->isVoidTy())
2091       continue;
2092     if (isConstant(ReturnValue) || ReturnValue.isUnknownOrUndef())
2093       findReturnsToZap(*F, ReturnsToZap, Solver);
2094   }
2095 
2096   for (auto F : Solver.getMRVFunctionsTracked()) {
2097     assert(F->getReturnType()->isStructTy() &&
2098            "The return type should be a struct");
2099     StructType *STy = cast<StructType>(F->getReturnType());
2100     if (Solver.isStructLatticeConstant(F, STy))
2101       findReturnsToZap(*F, ReturnsToZap, Solver);
2102   }
2103 
2104   // Zap all returns which we've identified as zap to change.
2105   for (unsigned i = 0, e = ReturnsToZap.size(); i != e; ++i) {
2106     Function *F = ReturnsToZap[i]->getParent()->getParent();
2107     ReturnsToZap[i]->setOperand(0, UndefValue::get(F->getReturnType()));
2108   }
2109 
2110   // If we inferred constant or undef values for globals variables, we can
2111   // delete the global and any stores that remain to it.
2112   for (auto &I : make_early_inc_range(Solver.getTrackedGlobals())) {
2113     GlobalVariable *GV = I.first;
2114     if (isOverdefined(I.second))
2115       continue;
2116     LLVM_DEBUG(dbgs() << "Found that GV '" << GV->getName()
2117                       << "' is constant!\n");
2118     while (!GV->use_empty()) {
2119       StoreInst *SI = cast<StoreInst>(GV->user_back());
2120       SI->eraseFromParent();
2121       MadeChanges = true;
2122     }
2123     M.getGlobalList().erase(GV);
2124     ++IPNumGlobalConst;
2125   }
2126 
2127   return MadeChanges;
2128 }
2129