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a cache of assumptions for a single function, and an immutable pass that manages those caches. The motivation for this change is two fold. Immutable analyses are really hacks around the current pass manager design and don't exist in the new design. This is usually OK, but it requires that the core logic of an immutable pass be reasonably partitioned off from the pass logic. This change does precisely that. As a consequence it also paves the way for the *many* utility functions that deal in the assumptions to live in both pass manager worlds by creating an separate non-pass object with its own independent API that they all rely on. Now, the only bits of the system that deal with the actual pass mechanics are those that actually need to deal with the pass mechanics. Once this separation is made, several simplifications become pretty obvious in the assumption cache itself. Rather than using a set and callback value handles, it can just be a vector of weak value handles. The callers can easily skip the handles that are null, and eventually we can wrap all of this up behind a filter iterator. For now, this adds boiler plate to the various passes, but this kind of boiler plate will end up making it possible to port these passes to the new pass manager, and so it will end up factored away pretty reasonably. git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@225131 91177308-0d34-0410-b5e6-96231b3b80d8
471 lines
20 KiB
C++
471 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 WillNotOverflowUnsignedAdd(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,
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unsigned Depth = 0, Instruction *CxtI = nullptr) const {
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return llvm::computeKnownBits(V, KnownZero, KnownOne, DL, Depth, AC, CxtI,
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DT);
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}
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bool MaskedValueIsZero(Value *V, const APInt &Mask,
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unsigned Depth = 0,
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Instruction *CxtI = nullptr) const {
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return llvm::MaskedValueIsZero(V, Mask, DL, Depth, AC, CxtI, DT);
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}
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unsigned ComputeNumSignBits(Value *Op, unsigned Depth = 0,
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Instruction *CxtI = nullptr) const {
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return llvm::ComputeNumSignBits(Op, DL, Depth, AC, CxtI, DT);
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}
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void ComputeSignBit(Value *V, bool &KnownZero, bool &KnownOne,
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unsigned Depth = 0, Instruction *CxtI = nullptr) const {
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return llvm::ComputeSignBit(V, KnownZero, KnownOne, DL, Depth, AC, CxtI,
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DT);
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}
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OverflowResult computeOverflowForUnsignedMul(Value *LHS, Value *RHS,
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const Instruction *CxtI) {
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return llvm::computeOverflowForUnsignedMul(LHS, RHS, DL, AC, CxtI, DT);
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}
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private:
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/// SimplifyAssociativeOrCommutative - This performs a few simplifications for
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/// operators which are associative or commutative.
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bool SimplifyAssociativeOrCommutative(BinaryOperator &I);
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/// SimplifyUsingDistributiveLaws - This tries to simplify binary operations
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/// which some other binary operation distributes over either by factorizing
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/// out common terms (eg "(A*B)+(A*C)" -> "A*(B+C)") or expanding out if this
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/// results in simplifications (eg: "A & (B | C) -> (A&B) | (A&C)" if this is
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/// a win). Returns the simplified value, or null if it didn't simplify.
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Value *SimplifyUsingDistributiveLaws(BinaryOperator &I);
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/// SimplifyDemandedUseBits - Attempts to replace V with a simpler value
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/// based on the demanded bits.
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Value *SimplifyDemandedUseBits(Value *V, APInt DemandedMask, APInt &KnownZero,
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APInt &KnownOne, unsigned Depth,
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Instruction *CxtI = nullptr);
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bool SimplifyDemandedBits(Use &U, APInt DemandedMask, APInt &KnownZero,
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APInt &KnownOne, unsigned Depth = 0);
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/// Helper routine of SimplifyDemandedUseBits. It tries to simplify demanded
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/// bit for "r1 = shr x, c1; r2 = shl r1, c2" instruction sequence.
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|
Value *SimplifyShrShlDemandedBits(Instruction *Lsr, Instruction *Sftl,
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|
APInt DemandedMask, APInt &KnownZero,
|
|
APInt &KnownOne);
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|
|
|
/// 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);
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|
|
|
Value *SimplifyDemandedVectorElts(Value *V, APInt DemandedElts,
|
|
APInt &UndefElts, unsigned Depth = 0);
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|
|
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Value *SimplifyVectorOp(BinaryOperator &Inst);
|
|
Value *SimplifyBSwap(BinaryOperator &Inst);
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|
|
|
// 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);
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|
|
|
// 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.
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|
|
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#undef DEBUG_TYPE
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|
|
|
#endif
|