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	WillNotOverflowUnsignedAdd's smarts will live in ValueTracking as computeOverflowForUnsignedAdd. It now returns a tri-state result: never overflows, always overflows and sometimes overflows. git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@225329 91177308-0d34-0410-b5e6-96231b3b80d8
		
			
				
	
	
		
			474 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			474 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
//===- InstCombine.h - Main InstCombine pass definition ---------*- C++ -*-===//
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//
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//                     The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_LIB_TRANSFORMS_INSTCOMBINE_INSTCOMBINE_H
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#define LLVM_LIB_TRANSFORMS_INSTCOMBINE_INSTCOMBINE_H
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#include "InstCombineWorklist.h"
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#include "llvm/Analysis/AssumptionCache.h"
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#include "llvm/Analysis/TargetFolder.h"
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#include "llvm/Analysis/ValueTracking.h"
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#include "llvm/IR/Dominators.h"
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#include "llvm/IR/IRBuilder.h"
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#include "llvm/IR/InstVisitor.h"
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#include "llvm/IR/IntrinsicInst.h"
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#include "llvm/IR/Operator.h"
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#include "llvm/IR/PatternMatch.h"
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#include "llvm/Pass.h"
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#include "llvm/Transforms/Utils/SimplifyLibCalls.h"
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#define DEBUG_TYPE "instcombine"
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namespace llvm {
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class CallSite;
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class DataLayout;
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class DominatorTree;
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class TargetLibraryInfo;
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class DbgDeclareInst;
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class MemIntrinsic;
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class MemSetInst;
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/// SelectPatternFlavor - We can match a variety of different patterns for
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/// select operations.
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enum SelectPatternFlavor {
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  SPF_UNKNOWN = 0,
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  SPF_SMIN,
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  SPF_UMIN,
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  SPF_SMAX,
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  SPF_UMAX,
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  SPF_ABS,
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  SPF_NABS
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};
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/// getComplexity:  Assign a complexity or rank value to LLVM Values...
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///   0 -> undef, 1 -> Const, 2 -> Other, 3 -> Arg, 3 -> Unary, 4 -> OtherInst
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static inline unsigned getComplexity(Value *V) {
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  if (isa<Instruction>(V)) {
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    if (BinaryOperator::isNeg(V) || BinaryOperator::isFNeg(V) ||
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        BinaryOperator::isNot(V))
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      return 3;
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    return 4;
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  }
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  if (isa<Argument>(V))
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    return 3;
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  return isa<Constant>(V) ? (isa<UndefValue>(V) ? 0 : 1) : 2;
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}
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/// AddOne - Add one to a Constant
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static inline Constant *AddOne(Constant *C) {
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  return ConstantExpr::getAdd(C, ConstantInt::get(C->getType(), 1));
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}
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/// SubOne - Subtract one from a Constant
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static inline Constant *SubOne(Constant *C) {
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  return ConstantExpr::getSub(C, ConstantInt::get(C->getType(), 1));
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}
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/// InstCombineIRInserter - This is an IRBuilder insertion helper that works
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/// just like the normal insertion helper, but also adds any new instructions
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/// to the instcombine worklist.
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class LLVM_LIBRARY_VISIBILITY InstCombineIRInserter
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    : public IRBuilderDefaultInserter<true> {
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  InstCombineWorklist &Worklist;
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  AssumptionCache *AC;
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public:
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  InstCombineIRInserter(InstCombineWorklist &WL, AssumptionCache *AC)
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      : Worklist(WL), AC(AC) {}
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  void InsertHelper(Instruction *I, const Twine &Name, BasicBlock *BB,
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                    BasicBlock::iterator InsertPt) const {
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    IRBuilderDefaultInserter<true>::InsertHelper(I, Name, BB, InsertPt);
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    Worklist.Add(I);
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    using namespace llvm::PatternMatch;
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    if (match(I, m_Intrinsic<Intrinsic::assume>()))
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      AC->registerAssumption(cast<CallInst>(I));
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  }
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};
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/// InstCombiner - The -instcombine pass.
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class LLVM_LIBRARY_VISIBILITY InstCombiner
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    : public FunctionPass,
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      public InstVisitor<InstCombiner, Instruction *> {
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  AssumptionCache *AC;
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  const DataLayout *DL;
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  TargetLibraryInfo *TLI;
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  DominatorTree *DT;
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  bool MadeIRChange;
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  LibCallSimplifier *Simplifier;
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  bool MinimizeSize;
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public:
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  /// Worklist - All of the instructions that need to be simplified.
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  InstCombineWorklist Worklist;
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  /// Builder - This is an IRBuilder that automatically inserts new
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  /// instructions into the worklist when they are created.
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  typedef IRBuilder<true, TargetFolder, InstCombineIRInserter> BuilderTy;
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  BuilderTy *Builder;
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  static char ID; // Pass identification, replacement for typeid
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  InstCombiner()
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      : FunctionPass(ID), DL(nullptr), DT(nullptr), Builder(nullptr) {
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    MinimizeSize = false;
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    initializeInstCombinerPass(*PassRegistry::getPassRegistry());
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  }
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public:
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  bool runOnFunction(Function &F) override;
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  bool DoOneIteration(Function &F, unsigned ItNum);
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  void getAnalysisUsage(AnalysisUsage &AU) const override;
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  AssumptionCache *getAssumptionCache() const { return AC; }
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  const DataLayout *getDataLayout() const { return DL; }
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  DominatorTree *getDominatorTree() const { return DT; }
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  TargetLibraryInfo *getTargetLibraryInfo() const { return TLI; }
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  // Visitation implementation - Implement instruction combining for different
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  // instruction types.  The semantics are as follows:
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  // Return Value:
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  //    null        - No change was made
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  //     I          - Change was made, I is still valid, I may be dead though
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  //   otherwise    - Change was made, replace I with returned instruction
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  //
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  Instruction *visitAdd(BinaryOperator &I);
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  Instruction *visitFAdd(BinaryOperator &I);
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  Value *OptimizePointerDifference(Value *LHS, Value *RHS, Type *Ty);
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  Instruction *visitSub(BinaryOperator &I);
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  Instruction *visitFSub(BinaryOperator &I);
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  Instruction *visitMul(BinaryOperator &I);
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  Value *foldFMulConst(Instruction *FMulOrDiv, Constant *C,
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                       Instruction *InsertBefore);
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  Instruction *visitFMul(BinaryOperator &I);
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  Instruction *visitURem(BinaryOperator &I);
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  Instruction *visitSRem(BinaryOperator &I);
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  Instruction *visitFRem(BinaryOperator &I);
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  bool SimplifyDivRemOfSelect(BinaryOperator &I);
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  Instruction *commonRemTransforms(BinaryOperator &I);
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  Instruction *commonIRemTransforms(BinaryOperator &I);
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  Instruction *commonDivTransforms(BinaryOperator &I);
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  Instruction *commonIDivTransforms(BinaryOperator &I);
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  Instruction *visitUDiv(BinaryOperator &I);
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  Instruction *visitSDiv(BinaryOperator &I);
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  Instruction *visitFDiv(BinaryOperator &I);
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  Value *simplifyRangeCheck(ICmpInst *Cmp0, ICmpInst *Cmp1, bool Inverted);
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  Value *FoldAndOfICmps(ICmpInst *LHS, ICmpInst *RHS);
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  Value *FoldAndOfFCmps(FCmpInst *LHS, FCmpInst *RHS);
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  Instruction *visitAnd(BinaryOperator &I);
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  Value *FoldOrOfICmps(ICmpInst *LHS, ICmpInst *RHS, Instruction *CxtI);
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  Value *FoldOrOfFCmps(FCmpInst *LHS, FCmpInst *RHS);
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  Instruction *FoldOrWithConstants(BinaryOperator &I, Value *Op, Value *A,
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                                   Value *B, Value *C);
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  Instruction *FoldXorWithConstants(BinaryOperator &I, Value *Op, Value *A,
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                                    Value *B, Value *C);
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  Instruction *visitOr(BinaryOperator &I);
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  Instruction *visitXor(BinaryOperator &I);
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  Instruction *visitShl(BinaryOperator &I);
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  Instruction *visitAShr(BinaryOperator &I);
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  Instruction *visitLShr(BinaryOperator &I);
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  Instruction *commonShiftTransforms(BinaryOperator &I);
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  Instruction *FoldFCmp_IntToFP_Cst(FCmpInst &I, Instruction *LHSI,
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                                    Constant *RHSC);
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  Instruction *FoldCmpLoadFromIndexedGlobal(GetElementPtrInst *GEP,
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                                            GlobalVariable *GV, CmpInst &ICI,
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                                            ConstantInt *AndCst = nullptr);
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  Instruction *visitFCmpInst(FCmpInst &I);
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  Instruction *visitICmpInst(ICmpInst &I);
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  Instruction *visitICmpInstWithCastAndCast(ICmpInst &ICI);
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  Instruction *visitICmpInstWithInstAndIntCst(ICmpInst &ICI, Instruction *LHS,
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                                              ConstantInt *RHS);
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  Instruction *FoldICmpDivCst(ICmpInst &ICI, BinaryOperator *DivI,
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                              ConstantInt *DivRHS);
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  Instruction *FoldICmpShrCst(ICmpInst &ICI, BinaryOperator *DivI,
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                              ConstantInt *DivRHS);
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  Instruction *FoldICmpCstShrCst(ICmpInst &I, Value *Op, Value *A,
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                                 ConstantInt *CI1, ConstantInt *CI2);
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  Instruction *FoldICmpCstShlCst(ICmpInst &I, Value *Op, Value *A,
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                                 ConstantInt *CI1, ConstantInt *CI2);
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  Instruction *FoldICmpAddOpCst(Instruction &ICI, Value *X, ConstantInt *CI,
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                                ICmpInst::Predicate Pred);
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  Instruction *FoldGEPICmp(GEPOperator *GEPLHS, Value *RHS,
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                           ICmpInst::Predicate Cond, Instruction &I);
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  Instruction *FoldShiftByConstant(Value *Op0, Constant *Op1,
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                                   BinaryOperator &I);
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  Instruction *commonCastTransforms(CastInst &CI);
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  Instruction *commonPointerCastTransforms(CastInst &CI);
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  Instruction *visitTrunc(TruncInst &CI);
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  Instruction *visitZExt(ZExtInst &CI);
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  Instruction *visitSExt(SExtInst &CI);
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  Instruction *visitFPTrunc(FPTruncInst &CI);
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  Instruction *visitFPExt(CastInst &CI);
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  Instruction *visitFPToUI(FPToUIInst &FI);
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  Instruction *visitFPToSI(FPToSIInst &FI);
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  Instruction *visitUIToFP(CastInst &CI);
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  Instruction *visitSIToFP(CastInst &CI);
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  Instruction *visitPtrToInt(PtrToIntInst &CI);
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  Instruction *visitIntToPtr(IntToPtrInst &CI);
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  Instruction *visitBitCast(BitCastInst &CI);
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  Instruction *visitAddrSpaceCast(AddrSpaceCastInst &CI);
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  Instruction *FoldSelectOpOp(SelectInst &SI, Instruction *TI, Instruction *FI);
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  Instruction *FoldSelectIntoOp(SelectInst &SI, Value *, Value *);
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  Instruction *FoldSPFofSPF(Instruction *Inner, SelectPatternFlavor SPF1,
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                            Value *A, Value *B, Instruction &Outer,
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                            SelectPatternFlavor SPF2, Value *C);
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  Instruction *visitSelectInst(SelectInst &SI);
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  Instruction *visitSelectInstWithICmp(SelectInst &SI, ICmpInst *ICI);
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  Instruction *visitCallInst(CallInst &CI);
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  Instruction *visitInvokeInst(InvokeInst &II);
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  Instruction *SliceUpIllegalIntegerPHI(PHINode &PN);
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  Instruction *visitPHINode(PHINode &PN);
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  Instruction *visitGetElementPtrInst(GetElementPtrInst &GEP);
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  Instruction *visitAllocaInst(AllocaInst &AI);
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  Instruction *visitAllocSite(Instruction &FI);
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  Instruction *visitFree(CallInst &FI);
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  Instruction *visitLoadInst(LoadInst &LI);
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  Instruction *visitStoreInst(StoreInst &SI);
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  Instruction *visitBranchInst(BranchInst &BI);
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  Instruction *visitSwitchInst(SwitchInst &SI);
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  Instruction *visitReturnInst(ReturnInst &RI);
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  Instruction *visitInsertValueInst(InsertValueInst &IV);
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  Instruction *visitInsertElementInst(InsertElementInst &IE);
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  Instruction *visitExtractElementInst(ExtractElementInst &EI);
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  Instruction *visitShuffleVectorInst(ShuffleVectorInst &SVI);
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  Instruction *visitExtractValueInst(ExtractValueInst &EV);
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  Instruction *visitLandingPadInst(LandingPadInst &LI);
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  // visitInstruction - Specify what to return for unhandled instructions...
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  Instruction *visitInstruction(Instruction &I) { return nullptr; }
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  // True when DB dominates all uses of DI execpt UI.
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  // UI must be in the same block as DI.
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  // The routine checks that the DI parent and DB are different.
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  bool dominatesAllUses(const Instruction *DI, const Instruction *UI,
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                        const BasicBlock *DB) const;
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  // Replace select with select operand SIOpd in SI-ICmp sequence when possible
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  bool replacedSelectWithOperand(SelectInst *SI, const ICmpInst *Icmp,
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                                 const unsigned SIOpd);
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private:
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  bool ShouldChangeType(Type *From, Type *To) const;
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  Value *dyn_castNegVal(Value *V) const;
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  Value *dyn_castFNegVal(Value *V, bool NoSignedZero = false) const;
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  Type *FindElementAtOffset(Type *PtrTy, int64_t Offset,
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                            SmallVectorImpl<Value *> &NewIndices);
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  Instruction *FoldOpIntoSelect(Instruction &Op, SelectInst *SI);
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  /// ShouldOptimizeCast - Return true if the cast from "V to Ty" actually
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  /// results in any code being generated and is interesting to optimize out. If
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  /// the cast can be eliminated by some other simple transformation, we prefer
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  /// to do the simplification first.
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  bool ShouldOptimizeCast(Instruction::CastOps opcode, const Value *V,
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                          Type *Ty);
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  Instruction *visitCallSite(CallSite CS);
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  Instruction *tryOptimizeCall(CallInst *CI, const DataLayout *DL);
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  bool transformConstExprCastCall(CallSite CS);
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  Instruction *transformCallThroughTrampoline(CallSite CS,
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                                              IntrinsicInst *Tramp);
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  Instruction *transformZExtICmp(ICmpInst *ICI, Instruction &CI,
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                                 bool DoXform = true);
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  Instruction *transformSExtICmp(ICmpInst *ICI, Instruction &CI);
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  bool WillNotOverflowSignedAdd(Value *LHS, Value *RHS, Instruction *CxtI);
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  bool WillNotOverflowSignedSub(Value *LHS, Value *RHS, Instruction *CxtI);
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  bool WillNotOverflowUnsignedSub(Value *LHS, Value *RHS, Instruction *CxtI);
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  bool WillNotOverflowSignedMul(Value *LHS, Value *RHS, Instruction *CxtI);
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  Value *EmitGEPOffset(User *GEP);
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  Instruction *scalarizePHI(ExtractElementInst &EI, PHINode *PN);
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  Value *EvaluateInDifferentElementOrder(Value *V, ArrayRef<int> Mask);
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public:
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  // InsertNewInstBefore - insert an instruction New before instruction Old
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  // in the program.  Add the new instruction to the worklist.
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  //
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  Instruction *InsertNewInstBefore(Instruction *New, Instruction &Old) {
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    assert(New && !New->getParent() &&
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           "New instruction already inserted into a basic block!");
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    BasicBlock *BB = Old.getParent();
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    BB->getInstList().insert(&Old, New); // Insert inst
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    Worklist.Add(New);
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    return New;
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  }
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  // InsertNewInstWith - same as InsertNewInstBefore, but also sets the
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  // debug loc.
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  //
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  Instruction *InsertNewInstWith(Instruction *New, Instruction &Old) {
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    New->setDebugLoc(Old.getDebugLoc());
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    return InsertNewInstBefore(New, Old);
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  }
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  // ReplaceInstUsesWith - This method is to be used when an instruction is
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  // found to be dead, replacable with another preexisting expression.  Here
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  // we add all uses of I to the worklist, replace all uses of I with the new
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  // value, then return I, so that the inst combiner will know that I was
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  // modified.
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  //
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  Instruction *ReplaceInstUsesWith(Instruction &I, Value *V) {
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    Worklist.AddUsersToWorkList(I); // Add all modified instrs to worklist.
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    // If we are replacing the instruction with itself, this must be in a
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    // segment of unreachable code, so just clobber the instruction.
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    if (&I == V)
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      V = UndefValue::get(I.getType());
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    DEBUG(dbgs() << "IC: Replacing " << I << "\n"
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                    "    with " << *V << '\n');
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    I.replaceAllUsesWith(V);
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    return &I;
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  }
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  /// Creates a result tuple for an overflow intrinsic \p II with a given
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  /// \p Result and a constant \p Overflow value. If \p ReUseName is true the
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  /// \p Result's name is taken from \p II.
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  Instruction *CreateOverflowTuple(IntrinsicInst *II, Value *Result,
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                                    bool Overflow, bool ReUseName = true) {
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    if (ReUseName)
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      Result->takeName(II);
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    Constant *V[] = { UndefValue::get(Result->getType()),
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                      Overflow ? Builder->getTrue() : Builder->getFalse() };
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    StructType *ST = cast<StructType>(II->getType());
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    Constant *Struct = ConstantStruct::get(ST, V);
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    return InsertValueInst::Create(Struct, Result, 0);
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  }
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  // EraseInstFromFunction - When dealing with an instruction that has side
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  // effects or produces a void value, we can't rely on DCE to delete the
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  // instruction.  Instead, visit methods should return the value returned by
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  // this function.
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  Instruction *EraseInstFromFunction(Instruction &I) {
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    DEBUG(dbgs() << "IC: ERASE " << I << '\n');
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    assert(I.use_empty() && "Cannot erase instruction that is used!");
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    // Make sure that we reprocess all operands now that we reduced their
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    // use counts.
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    if (I.getNumOperands() < 8) {
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      for (User::op_iterator i = I.op_begin(), e = I.op_end(); i != e; ++i)
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        if (Instruction *Op = dyn_cast<Instruction>(*i))
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          Worklist.Add(Op);
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    }
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    Worklist.Remove(&I);
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    I.eraseFromParent();
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    MadeIRChange = true;
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    return nullptr; // Don't do anything with FI
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  }
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						|
  void computeKnownBits(Value *V, APInt &KnownZero, APInt &KnownOne,
 | 
						|
                        unsigned Depth = 0, Instruction *CxtI = nullptr) const {
 | 
						|
    return llvm::computeKnownBits(V, KnownZero, KnownOne, DL, Depth, AC, CxtI,
 | 
						|
                                  DT);
 | 
						|
  }
 | 
						|
 | 
						|
  bool MaskedValueIsZero(Value *V, const APInt &Mask,
 | 
						|
                         unsigned Depth = 0,
 | 
						|
                         Instruction *CxtI = nullptr) const {
 | 
						|
    return llvm::MaskedValueIsZero(V, Mask, DL, Depth, AC, CxtI, DT);
 | 
						|
  }
 | 
						|
  unsigned ComputeNumSignBits(Value *Op, unsigned Depth = 0,
 | 
						|
                              Instruction *CxtI = nullptr) const {
 | 
						|
    return llvm::ComputeNumSignBits(Op, DL, Depth, AC, CxtI, DT);
 | 
						|
  }
 | 
						|
  void ComputeSignBit(Value *V, bool &KnownZero, bool &KnownOne,
 | 
						|
                      unsigned Depth = 0, Instruction *CxtI = nullptr) const {
 | 
						|
    return llvm::ComputeSignBit(V, KnownZero, KnownOne, DL, Depth, AC, CxtI,
 | 
						|
                                DT);
 | 
						|
  }
 | 
						|
  OverflowResult computeOverflowForUnsignedMul(Value *LHS, Value *RHS,
 | 
						|
                                               const Instruction *CxtI) {
 | 
						|
    return llvm::computeOverflowForUnsignedMul(LHS, RHS, DL, AC, CxtI, DT);
 | 
						|
  }
 | 
						|
  OverflowResult computeOverflowForUnsignedAdd(Value *LHS, Value *RHS,
 | 
						|
                                               const Instruction *CxtI) {
 | 
						|
    return llvm::computeOverflowForUnsignedAdd(LHS, RHS, DL, AC, CxtI, DT);
 | 
						|
  }
 | 
						|
 | 
						|
private:
 | 
						|
  /// SimplifyAssociativeOrCommutative - This performs a few simplifications for
 | 
						|
  /// operators which are associative or commutative.
 | 
						|
  bool SimplifyAssociativeOrCommutative(BinaryOperator &I);
 | 
						|
 | 
						|
  /// SimplifyUsingDistributiveLaws - This tries to simplify binary operations
 | 
						|
  /// which some other binary operation distributes over either by factorizing
 | 
						|
  /// out common terms (eg "(A*B)+(A*C)" -> "A*(B+C)") or expanding out if this
 | 
						|
  /// results in simplifications (eg: "A & (B | C) -> (A&B) | (A&C)" if this is
 | 
						|
  /// a win).  Returns the simplified value, or null if it didn't simplify.
 | 
						|
  Value *SimplifyUsingDistributiveLaws(BinaryOperator &I);
 | 
						|
 | 
						|
  /// SimplifyDemandedUseBits - Attempts to replace V with a simpler value
 | 
						|
  /// based on the demanded bits.
 | 
						|
  Value *SimplifyDemandedUseBits(Value *V, APInt DemandedMask, APInt &KnownZero,
 | 
						|
                                 APInt &KnownOne, unsigned Depth,
 | 
						|
                                 Instruction *CxtI = nullptr);
 | 
						|
  bool SimplifyDemandedBits(Use &U, APInt DemandedMask, APInt &KnownZero,
 | 
						|
                            APInt &KnownOne, unsigned Depth = 0);
 | 
						|
  /// Helper routine of SimplifyDemandedUseBits. It tries to simplify demanded
 | 
						|
  /// bit for "r1 = shr x, c1; r2 = shl r1, c2" instruction sequence.
 | 
						|
  Value *SimplifyShrShlDemandedBits(Instruction *Lsr, Instruction *Sftl,
 | 
						|
                                    APInt DemandedMask, APInt &KnownZero,
 | 
						|
                                    APInt &KnownOne);
 | 
						|
 | 
						|
  /// SimplifyDemandedInstructionBits - Inst is an integer instruction that
 | 
						|
  /// SimplifyDemandedBits knows about.  See if the instruction has any
 | 
						|
  /// properties that allow us to simplify its operands.
 | 
						|
  bool SimplifyDemandedInstructionBits(Instruction &Inst);
 | 
						|
 | 
						|
  Value *SimplifyDemandedVectorElts(Value *V, APInt DemandedElts,
 | 
						|
                                    APInt &UndefElts, unsigned Depth = 0);
 | 
						|
 | 
						|
  Value *SimplifyVectorOp(BinaryOperator &Inst);
 | 
						|
  Value *SimplifyBSwap(BinaryOperator &Inst);
 | 
						|
 | 
						|
  // FoldOpIntoPhi - Given a binary operator, cast instruction, or select
 | 
						|
  // which has a PHI node as operand #0, see if we can fold the instruction
 | 
						|
  // into the PHI (which is only possible if all operands to the PHI are
 | 
						|
  // constants).
 | 
						|
  //
 | 
						|
  Instruction *FoldOpIntoPhi(Instruction &I);
 | 
						|
 | 
						|
  // FoldPHIArgOpIntoPHI - If all operands to a PHI node are the same "unary"
 | 
						|
  // operator and they all are only used by the PHI, PHI together their
 | 
						|
  // inputs, and do the operation once, to the result of the PHI.
 | 
						|
  Instruction *FoldPHIArgOpIntoPHI(PHINode &PN);
 | 
						|
  Instruction *FoldPHIArgBinOpIntoPHI(PHINode &PN);
 | 
						|
  Instruction *FoldPHIArgGEPIntoPHI(PHINode &PN);
 | 
						|
  Instruction *FoldPHIArgLoadIntoPHI(PHINode &PN);
 | 
						|
 | 
						|
  Instruction *OptAndOp(Instruction *Op, ConstantInt *OpRHS,
 | 
						|
                        ConstantInt *AndRHS, BinaryOperator &TheAnd);
 | 
						|
 | 
						|
  Value *FoldLogicalPlusAnd(Value *LHS, Value *RHS, ConstantInt *Mask,
 | 
						|
                            bool isSub, Instruction &I);
 | 
						|
  Value *InsertRangeTest(Value *V, Constant *Lo, Constant *Hi, bool isSigned,
 | 
						|
                         bool Inside);
 | 
						|
  Instruction *PromoteCastOfAllocation(BitCastInst &CI, AllocaInst &AI);
 | 
						|
  Instruction *MatchBSwap(BinaryOperator &I);
 | 
						|
  bool SimplifyStoreAtEndOfBlock(StoreInst &SI);
 | 
						|
  Instruction *SimplifyMemTransfer(MemIntrinsic *MI);
 | 
						|
  Instruction *SimplifyMemSet(MemSetInst *MI);
 | 
						|
 | 
						|
  Value *EvaluateInDifferentType(Value *V, Type *Ty, bool isSigned);
 | 
						|
 | 
						|
  /// Descale - Return a value X such that Val = X * Scale, or null if none.  If
 | 
						|
  /// the multiplication is known not to overflow then NoSignedWrap is set.
 | 
						|
  Value *Descale(Value *Val, APInt Scale, bool &NoSignedWrap);
 | 
						|
};
 | 
						|
 | 
						|
} // end namespace llvm.
 | 
						|
 | 
						|
#undef DEBUG_TYPE
 | 
						|
 | 
						|
#endif
 |