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| 14 | pmbaty | 1 | //===- SCCPSolver.h - SCCP Utility ----------------------------- *- C++ -*-===// |
| 2 | // |
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| 3 | // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. |
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| 4 | // See https://llvm.org/LICENSE.txt for license information. |
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| 5 | // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception |
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| 6 | // |
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| 7 | //===----------------------------------------------------------------------===// |
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| 8 | // |
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| 9 | // \file |
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| 10 | // This file implements Sparse Conditional Constant Propagation (SCCP) utility. |
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| 11 | // |
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| 12 | //===----------------------------------------------------------------------===// |
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| 13 | |||
| 14 | #ifndef LLVM_TRANSFORMS_UTILS_SCCPSOLVER_H |
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| 15 | #define LLVM_TRANSFORMS_UTILS_SCCPSOLVER_H |
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| 16 | |||
| 17 | #include "llvm/ADT/MapVector.h" |
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| 18 | #include "llvm/ADT/SmallPtrSet.h" |
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| 19 | #include "llvm/ADT/Statistic.h" |
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| 20 | #include "llvm/Analysis/DomTreeUpdater.h" |
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| 21 | #include "llvm/Transforms/Utils/PredicateInfo.h" |
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| 22 | #include <vector> |
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| 23 | |||
| 24 | namespace llvm { |
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| 25 | class Argument; |
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| 26 | class BasicBlock; |
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| 27 | class CallInst; |
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| 28 | class Constant; |
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| 29 | class DataLayout; |
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| 30 | class DominatorTree; |
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| 31 | class Function; |
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| 32 | class GlobalVariable; |
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| 33 | class Instruction; |
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| 34 | class LLVMContext; |
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| 35 | class LoopInfo; |
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| 36 | class PostDominatorTree; |
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| 37 | class StructType; |
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| 38 | class TargetLibraryInfo; |
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| 39 | class Value; |
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| 40 | class ValueLatticeElement; |
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| 41 | |||
| 42 | /// Helper struct for bundling up the analysis results per function for IPSCCP. |
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| 43 | struct AnalysisResultsForFn { |
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| 44 | std::unique_ptr<PredicateInfo> PredInfo; |
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| 45 | DominatorTree *DT; |
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| 46 | PostDominatorTree *PDT; |
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| 47 | LoopInfo *LI; |
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| 48 | }; |
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| 49 | |||
| 50 | /// Helper struct shared between Function Specialization and SCCP Solver. |
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| 51 | struct ArgInfo { |
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| 52 | Argument *Formal; // The Formal argument being analysed. |
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| 53 | Constant *Actual; // A corresponding actual constant argument. |
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| 54 | |||
| 55 | ArgInfo(Argument *F, Constant *A) : Formal(F), Actual(A) {} |
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| 56 | |||
| 57 | bool operator==(const ArgInfo &Other) const { |
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| 58 | return Formal == Other.Formal && Actual == Other.Actual; |
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| 59 | } |
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| 60 | |||
| 61 | bool operator!=(const ArgInfo &Other) const { return !(*this == Other); } |
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| 62 | |||
| 63 | friend hash_code hash_value(const ArgInfo &A) { |
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| 64 | return hash_combine(hash_value(A.Formal), hash_value(A.Actual)); |
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| 65 | } |
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| 66 | }; |
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| 67 | |||
| 68 | class SCCPInstVisitor; |
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| 69 | |||
| 70 | //===----------------------------------------------------------------------===// |
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| 71 | // |
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| 72 | /// SCCPSolver - This interface class is a general purpose solver for Sparse |
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| 73 | /// Conditional Constant Propagation (SCCP). |
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| 74 | /// |
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| 75 | class SCCPSolver { |
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| 76 | std::unique_ptr<SCCPInstVisitor> Visitor; |
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| 77 | |||
| 78 | public: |
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| 79 | SCCPSolver(const DataLayout &DL, |
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| 80 | std::function<const TargetLibraryInfo &(Function &)> GetTLI, |
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| 81 | LLVMContext &Ctx); |
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| 82 | |||
| 83 | ~SCCPSolver(); |
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| 84 | |||
| 85 | void addAnalysis(Function &F, AnalysisResultsForFn A); |
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| 86 | |||
| 87 | /// markBlockExecutable - This method can be used by clients to mark all of |
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| 88 | /// the blocks that are known to be intrinsically live in the processed unit. |
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| 89 | /// This returns true if the block was not considered live before. |
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| 90 | bool markBlockExecutable(BasicBlock *BB); |
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| 91 | |||
| 92 | const PredicateBase *getPredicateInfoFor(Instruction *I); |
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| 93 | |||
| 94 | const LoopInfo &getLoopInfo(Function &F); |
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| 95 | |||
| 96 | DomTreeUpdater getDTU(Function &F); |
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| 97 | |||
| 98 | /// trackValueOfGlobalVariable - Clients can use this method to |
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| 99 | /// inform the SCCPSolver that it should track loads and stores to the |
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| 100 | /// specified global variable if it can. This is only legal to call if |
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| 101 | /// performing Interprocedural SCCP. |
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| 102 | void trackValueOfGlobalVariable(GlobalVariable *GV); |
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| 103 | |||
| 104 | /// addTrackedFunction - If the SCCP solver is supposed to track calls into |
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| 105 | /// and out of the specified function (which cannot have its address taken), |
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| 106 | /// this method must be called. |
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| 107 | void addTrackedFunction(Function *F); |
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| 108 | |||
| 109 | /// Add function to the list of functions whose return cannot be modified. |
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| 110 | void addToMustPreserveReturnsInFunctions(Function *F); |
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| 111 | |||
| 112 | /// Returns true if the return of the given function cannot be modified. |
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| 113 | bool mustPreserveReturn(Function *F); |
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| 114 | |||
| 115 | void addArgumentTrackedFunction(Function *F); |
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| 116 | |||
| 117 | /// Returns true if the given function is in the solver's set of |
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| 118 | /// argument-tracked functions. |
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| 119 | bool isArgumentTrackedFunction(Function *F); |
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| 120 | |||
| 121 | /// Solve - Solve for constants and executable blocks. |
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| 122 | void solve(); |
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| 123 | |||
| 124 | /// resolvedUndefsIn - While solving the dataflow for a function, we assume |
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| 125 | /// that branches on undef values cannot reach any of their successors. |
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| 126 | /// However, this is not a safe assumption. After we solve dataflow, this |
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| 127 | /// method should be use to handle this. If this returns true, the solver |
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| 128 | /// should be rerun. |
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| 129 | bool resolvedUndefsIn(Function &F); |
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| 130 | |||
| 131 | void solveWhileResolvedUndefsIn(Module &M); |
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| 132 | |||
| 133 | void solveWhileResolvedUndefsIn(SmallVectorImpl<Function *> &WorkList); |
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| 134 | |||
| 135 | bool isBlockExecutable(BasicBlock *BB) const; |
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| 136 | |||
| 137 | // isEdgeFeasible - Return true if the control flow edge from the 'From' basic |
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| 138 | // block to the 'To' basic block is currently feasible. |
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| 139 | bool isEdgeFeasible(BasicBlock *From, BasicBlock *To) const; |
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| 140 | |||
| 141 | std::vector<ValueLatticeElement> getStructLatticeValueFor(Value *V) const; |
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| 142 | |||
| 143 | void removeLatticeValueFor(Value *V); |
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| 144 | |||
| 145 | const ValueLatticeElement &getLatticeValueFor(Value *V) const; |
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| 146 | |||
| 147 | /// getTrackedRetVals - Get the inferred return value map. |
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| 148 | const MapVector<Function *, ValueLatticeElement> &getTrackedRetVals(); |
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| 149 | |||
| 150 | /// getTrackedGlobals - Get and return the set of inferred initializers for |
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| 151 | /// global variables. |
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| 152 | const DenseMap<GlobalVariable *, ValueLatticeElement> &getTrackedGlobals(); |
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| 153 | |||
| 154 | /// getMRVFunctionsTracked - Get the set of functions which return multiple |
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| 155 | /// values tracked by the pass. |
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| 156 | const SmallPtrSet<Function *, 16> getMRVFunctionsTracked(); |
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| 157 | |||
| 158 | /// markOverdefined - Mark the specified value overdefined. This |
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| 159 | /// works with both scalars and structs. |
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| 160 | void markOverdefined(Value *V); |
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| 161 | |||
| 162 | // isStructLatticeConstant - Return true if all the lattice values |
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| 163 | // corresponding to elements of the structure are constants, |
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| 164 | // false otherwise. |
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| 165 | bool isStructLatticeConstant(Function *F, StructType *STy); |
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| 166 | |||
| 167 | /// Helper to return a Constant if \p LV is either a constant or a constant |
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| 168 | /// range with a single element. |
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| 169 | Constant *getConstant(const ValueLatticeElement &LV) const; |
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| 170 | |||
| 171 | /// Return a reference to the set of argument tracked functions. |
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| 172 | SmallPtrSetImpl<Function *> &getArgumentTrackedFunctions(); |
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| 173 | |||
| 174 | /// Mark the constant arguments of a new function specialization. \p F points |
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| 175 | /// to the cloned function and \p Args contains a list of constant arguments |
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| 176 | /// represented as pairs of {formal,actual} values (the formal argument is |
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| 177 | /// associated with the original function definition). All other arguments of |
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| 178 | /// the specialization inherit the lattice state of their corresponding values |
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| 179 | /// in the original function. |
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| 180 | void markArgInFuncSpecialization(Function *F, |
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| 181 | const SmallVectorImpl<ArgInfo> &Args); |
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| 182 | |||
| 183 | /// Mark all of the blocks in function \p F non-executable. Clients can used |
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| 184 | /// this method to erase a function from the module (e.g., if it has been |
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| 185 | /// completely specialized and is no longer needed). |
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| 186 | void markFunctionUnreachable(Function *F); |
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| 187 | |||
| 188 | void visit(Instruction *I); |
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| 189 | void visitCall(CallInst &I); |
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| 190 | |||
| 191 | bool simplifyInstsInBlock(BasicBlock &BB, |
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| 192 | SmallPtrSetImpl<Value *> &InsertedValues, |
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| 193 | Statistic &InstRemovedStat, |
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| 194 | Statistic &InstReplacedStat); |
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| 195 | |||
| 196 | bool removeNonFeasibleEdges(BasicBlock *BB, DomTreeUpdater &DTU, |
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| 197 | BasicBlock *&NewUnreachableBB) const; |
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| 198 | |||
| 199 | bool tryToReplaceWithConstant(Value *V); |
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| 200 | |||
| 201 | // Helper to check if \p LV is either a constant or a constant |
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| 202 | // range with a single element. This should cover exactly the same cases as |
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| 203 | // the old ValueLatticeElement::isConstant() and is intended to be used in the |
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| 204 | // transition to ValueLatticeElement. |
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| 205 | static bool isConstant(const ValueLatticeElement &LV); |
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| 206 | |||
| 207 | // Helper to check if \p LV is either overdefined or a constant range with |
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| 208 | // more than a single element. This should cover exactly the same cases as the |
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| 209 | // old ValueLatticeElement::isOverdefined() and is intended to be used in the |
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| 210 | // transition to ValueLatticeElement. |
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| 211 | static bool isOverdefined(const ValueLatticeElement &LV); |
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| 212 | }; |
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| 213 | } // namespace llvm |
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| 214 | |||
| 215 | #endif // LLVM_TRANSFORMS_UTILS_SCCPSOLVER_H |