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			705 lines
		
	
	
		
			27 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			705 lines
		
	
	
		
			27 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
| //===- InstCombineSelect.cpp ----------------------------------------------===//
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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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| //
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| // This file implements the visitSelect function.
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| //
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| //===----------------------------------------------------------------------===//
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| 
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| #include "InstCombine.h"
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| #include "llvm/Support/PatternMatch.h"
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| #include "llvm/Analysis/InstructionSimplify.h"
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| using namespace llvm;
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| using namespace PatternMatch;
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| 
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| /// MatchSelectPattern - Pattern match integer [SU]MIN, [SU]MAX, and ABS idioms,
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| /// returning the kind and providing the out parameter results if we
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| /// successfully match.
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| static SelectPatternFlavor
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| MatchSelectPattern(Value *V, Value *&LHS, Value *&RHS) {
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|   SelectInst *SI = dyn_cast<SelectInst>(V);
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|   if (SI == 0) return SPF_UNKNOWN;
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|   
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|   ICmpInst *ICI = dyn_cast<ICmpInst>(SI->getCondition());
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|   if (ICI == 0) return SPF_UNKNOWN;
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|   
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|   LHS = ICI->getOperand(0);
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|   RHS = ICI->getOperand(1);
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|   
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|   // (icmp X, Y) ? X : Y 
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|   if (SI->getTrueValue() == ICI->getOperand(0) &&
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|       SI->getFalseValue() == ICI->getOperand(1)) {
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|     switch (ICI->getPredicate()) {
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|     default: return SPF_UNKNOWN; // Equality.
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|     case ICmpInst::ICMP_UGT:
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|     case ICmpInst::ICMP_UGE: return SPF_UMAX;
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|     case ICmpInst::ICMP_SGT:
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|     case ICmpInst::ICMP_SGE: return SPF_SMAX;
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|     case ICmpInst::ICMP_ULT:
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|     case ICmpInst::ICMP_ULE: return SPF_UMIN;
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|     case ICmpInst::ICMP_SLT:
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|     case ICmpInst::ICMP_SLE: return SPF_SMIN;
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|     }
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|   }
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|   
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|   // (icmp X, Y) ? Y : X 
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|   if (SI->getTrueValue() == ICI->getOperand(1) &&
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|       SI->getFalseValue() == ICI->getOperand(0)) {
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|     switch (ICI->getPredicate()) {
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|       default: return SPF_UNKNOWN; // Equality.
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|       case ICmpInst::ICMP_UGT:
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|       case ICmpInst::ICMP_UGE: return SPF_UMIN;
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|       case ICmpInst::ICMP_SGT:
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|       case ICmpInst::ICMP_SGE: return SPF_SMIN;
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|       case ICmpInst::ICMP_ULT:
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|       case ICmpInst::ICMP_ULE: return SPF_UMAX;
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|       case ICmpInst::ICMP_SLT:
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|       case ICmpInst::ICMP_SLE: return SPF_SMAX;
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|     }
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|   }
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|   
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|   // TODO: (X > 4) ? X : 5   -->  (X >= 5) ? X : 5  -->  MAX(X, 5)
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|   
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|   return SPF_UNKNOWN;
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| }
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| 
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| 
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| /// GetSelectFoldableOperands - We want to turn code that looks like this:
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| ///   %C = or %A, %B
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| ///   %D = select %cond, %C, %A
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| /// into:
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| ///   %C = select %cond, %B, 0
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| ///   %D = or %A, %C
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| ///
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| /// Assuming that the specified instruction is an operand to the select, return
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| /// a bitmask indicating which operands of this instruction are foldable if they
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| /// equal the other incoming value of the select.
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| ///
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| static unsigned GetSelectFoldableOperands(Instruction *I) {
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|   switch (I->getOpcode()) {
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|   case Instruction::Add:
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|   case Instruction::Mul:
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|   case Instruction::And:
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|   case Instruction::Or:
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|   case Instruction::Xor:
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|     return 3;              // Can fold through either operand.
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|   case Instruction::Sub:   // Can only fold on the amount subtracted.
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|   case Instruction::Shl:   // Can only fold on the shift amount.
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|   case Instruction::LShr:
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|   case Instruction::AShr:
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|     return 1;
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|   default:
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|     return 0;              // Cannot fold
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|   }
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| }
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| 
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| /// GetSelectFoldableConstant - For the same transformation as the previous
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| /// function, return the identity constant that goes into the select.
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| static Constant *GetSelectFoldableConstant(Instruction *I) {
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|   switch (I->getOpcode()) {
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|   default: llvm_unreachable("This cannot happen!");
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|   case Instruction::Add:
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|   case Instruction::Sub:
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|   case Instruction::Or:
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|   case Instruction::Xor:
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|   case Instruction::Shl:
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|   case Instruction::LShr:
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|   case Instruction::AShr:
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|     return Constant::getNullValue(I->getType());
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|   case Instruction::And:
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|     return Constant::getAllOnesValue(I->getType());
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|   case Instruction::Mul:
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|     return ConstantInt::get(I->getType(), 1);
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|   }
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| }
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| 
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| /// FoldSelectOpOp - Here we have (select c, TI, FI), and we know that TI and FI
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| /// have the same opcode and only one use each.  Try to simplify this.
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| Instruction *InstCombiner::FoldSelectOpOp(SelectInst &SI, Instruction *TI,
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|                                           Instruction *FI) {
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|   if (TI->getNumOperands() == 1) {
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|     // If this is a non-volatile load or a cast from the same type,
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|     // merge.
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|     if (TI->isCast()) {
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|       if (TI->getOperand(0)->getType() != FI->getOperand(0)->getType())
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|         return 0;
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|     } else {
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|       return 0;  // unknown unary op.
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|     }
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| 
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|     // Fold this by inserting a select from the input values.
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|     SelectInst *NewSI = SelectInst::Create(SI.getCondition(), TI->getOperand(0),
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|                                           FI->getOperand(0), SI.getName()+".v");
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|     InsertNewInstBefore(NewSI, SI);
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|     return CastInst::Create(Instruction::CastOps(TI->getOpcode()), NewSI, 
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|                             TI->getType());
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|   }
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| 
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|   // Only handle binary operators here.
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|   if (!isa<BinaryOperator>(TI))
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|     return 0;
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| 
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|   // Figure out if the operations have any operands in common.
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|   Value *MatchOp, *OtherOpT, *OtherOpF;
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|   bool MatchIsOpZero;
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|   if (TI->getOperand(0) == FI->getOperand(0)) {
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|     MatchOp  = TI->getOperand(0);
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|     OtherOpT = TI->getOperand(1);
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|     OtherOpF = FI->getOperand(1);
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|     MatchIsOpZero = true;
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|   } else if (TI->getOperand(1) == FI->getOperand(1)) {
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|     MatchOp  = TI->getOperand(1);
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|     OtherOpT = TI->getOperand(0);
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|     OtherOpF = FI->getOperand(0);
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|     MatchIsOpZero = false;
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|   } else if (!TI->isCommutative()) {
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|     return 0;
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|   } else if (TI->getOperand(0) == FI->getOperand(1)) {
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|     MatchOp  = TI->getOperand(0);
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|     OtherOpT = TI->getOperand(1);
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|     OtherOpF = FI->getOperand(0);
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|     MatchIsOpZero = true;
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|   } else if (TI->getOperand(1) == FI->getOperand(0)) {
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|     MatchOp  = TI->getOperand(1);
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|     OtherOpT = TI->getOperand(0);
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|     OtherOpF = FI->getOperand(1);
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|     MatchIsOpZero = true;
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|   } else {
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|     return 0;
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|   }
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| 
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|   // If we reach here, they do have operations in common.
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|   SelectInst *NewSI = SelectInst::Create(SI.getCondition(), OtherOpT,
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|                                          OtherOpF, SI.getName()+".v");
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|   InsertNewInstBefore(NewSI, SI);
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| 
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|   if (BinaryOperator *BO = dyn_cast<BinaryOperator>(TI)) {
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|     if (MatchIsOpZero)
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|       return BinaryOperator::Create(BO->getOpcode(), MatchOp, NewSI);
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|     else
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|       return BinaryOperator::Create(BO->getOpcode(), NewSI, MatchOp);
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|   }
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|   llvm_unreachable("Shouldn't get here");
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|   return 0;
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| }
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| 
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| static bool isSelect01(Constant *C1, Constant *C2) {
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|   ConstantInt *C1I = dyn_cast<ConstantInt>(C1);
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|   if (!C1I)
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|     return false;
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|   ConstantInt *C2I = dyn_cast<ConstantInt>(C2);
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|   if (!C2I)
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|     return false;
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|   return (C1I->isZero() || C1I->isOne()) && (C2I->isZero() || C2I->isOne());
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| }
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| 
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| /// FoldSelectIntoOp - Try fold the select into one of the operands to
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| /// facilitate further optimization.
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| Instruction *InstCombiner::FoldSelectIntoOp(SelectInst &SI, Value *TrueVal,
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|                                             Value *FalseVal) {
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|   // See the comment above GetSelectFoldableOperands for a description of the
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|   // transformation we are doing here.
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|   if (Instruction *TVI = dyn_cast<Instruction>(TrueVal)) {
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|     if (TVI->hasOneUse() && TVI->getNumOperands() == 2 &&
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|         !isa<Constant>(FalseVal)) {
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|       if (unsigned SFO = GetSelectFoldableOperands(TVI)) {
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|         unsigned OpToFold = 0;
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|         if ((SFO & 1) && FalseVal == TVI->getOperand(0)) {
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|           OpToFold = 1;
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|         } else  if ((SFO & 2) && FalseVal == TVI->getOperand(1)) {
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|           OpToFold = 2;
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|         }
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| 
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|         if (OpToFold) {
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|           Constant *C = GetSelectFoldableConstant(TVI);
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|           Value *OOp = TVI->getOperand(2-OpToFold);
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|           // Avoid creating select between 2 constants unless it's selecting
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|           // between 0 and 1.
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|           if (!isa<Constant>(OOp) || isSelect01(C, cast<Constant>(OOp))) {
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|             Instruction *NewSel = SelectInst::Create(SI.getCondition(), OOp, C);
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|             InsertNewInstBefore(NewSel, SI);
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|             NewSel->takeName(TVI);
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|             if (BinaryOperator *BO = dyn_cast<BinaryOperator>(TVI))
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|               return BinaryOperator::Create(BO->getOpcode(), FalseVal, NewSel);
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|             llvm_unreachable("Unknown instruction!!");
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|           }
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|         }
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|       }
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|     }
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|   }
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| 
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|   if (Instruction *FVI = dyn_cast<Instruction>(FalseVal)) {
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|     if (FVI->hasOneUse() && FVI->getNumOperands() == 2 &&
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|         !isa<Constant>(TrueVal)) {
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|       if (unsigned SFO = GetSelectFoldableOperands(FVI)) {
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|         unsigned OpToFold = 0;
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|         if ((SFO & 1) && TrueVal == FVI->getOperand(0)) {
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|           OpToFold = 1;
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|         } else  if ((SFO & 2) && TrueVal == FVI->getOperand(1)) {
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|           OpToFold = 2;
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|         }
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| 
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|         if (OpToFold) {
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|           Constant *C = GetSelectFoldableConstant(FVI);
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|           Value *OOp = FVI->getOperand(2-OpToFold);
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|           // Avoid creating select between 2 constants unless it's selecting
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|           // between 0 and 1.
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|           if (!isa<Constant>(OOp) || isSelect01(C, cast<Constant>(OOp))) {
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|             Instruction *NewSel = SelectInst::Create(SI.getCondition(), C, OOp);
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|             InsertNewInstBefore(NewSel, SI);
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|             NewSel->takeName(FVI);
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|             if (BinaryOperator *BO = dyn_cast<BinaryOperator>(FVI))
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|               return BinaryOperator::Create(BO->getOpcode(), TrueVal, NewSel);
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|             llvm_unreachable("Unknown instruction!!");
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|           }
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|         }
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|       }
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|     }
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|   }
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| 
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|   return 0;
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| }
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| 
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| /// visitSelectInstWithICmp - Visit a SelectInst that has an
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| /// ICmpInst as its first operand.
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| ///
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| Instruction *InstCombiner::visitSelectInstWithICmp(SelectInst &SI,
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|                                                    ICmpInst *ICI) {
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|   bool Changed = false;
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|   ICmpInst::Predicate Pred = ICI->getPredicate();
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|   Value *CmpLHS = ICI->getOperand(0);
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|   Value *CmpRHS = ICI->getOperand(1);
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|   Value *TrueVal = SI.getTrueValue();
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|   Value *FalseVal = SI.getFalseValue();
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| 
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|   // Check cases where the comparison is with a constant that
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|   // can be adjusted to fit the min/max idiom. We may edit ICI in
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|   // place here, so make sure the select is the only user.
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|   if (ICI->hasOneUse())
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|     if (ConstantInt *CI = dyn_cast<ConstantInt>(CmpRHS)) {
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|       switch (Pred) {
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|       default: break;
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|       case ICmpInst::ICMP_ULT:
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|       case ICmpInst::ICMP_SLT: {
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|         // X < MIN ? T : F  -->  F
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|         if (CI->isMinValue(Pred == ICmpInst::ICMP_SLT))
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|           return ReplaceInstUsesWith(SI, FalseVal);
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|         // X < C ? X : C-1  -->  X > C-1 ? C-1 : X
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|         Constant *AdjustedRHS =
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|           ConstantInt::get(CI->getContext(), CI->getValue()-1);
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|         if ((CmpLHS == TrueVal && AdjustedRHS == FalseVal) ||
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|             (CmpLHS == FalseVal && AdjustedRHS == TrueVal)) {
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|           Pred = ICmpInst::getSwappedPredicate(Pred);
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|           CmpRHS = AdjustedRHS;
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|           std::swap(FalseVal, TrueVal);
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|           ICI->setPredicate(Pred);
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|           ICI->setOperand(1, CmpRHS);
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|           SI.setOperand(1, TrueVal);
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|           SI.setOperand(2, FalseVal);
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|           Changed = true;
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|         }
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|         break;
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|       }
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|       case ICmpInst::ICMP_UGT:
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|       case ICmpInst::ICMP_SGT: {
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|         // X > MAX ? T : F  -->  F
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|         if (CI->isMaxValue(Pred == ICmpInst::ICMP_SGT))
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|           return ReplaceInstUsesWith(SI, FalseVal);
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|         // X > C ? X : C+1  -->  X < C+1 ? C+1 : X
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|         Constant *AdjustedRHS =
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|           ConstantInt::get(CI->getContext(), CI->getValue()+1);
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|         if ((CmpLHS == TrueVal && AdjustedRHS == FalseVal) ||
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|             (CmpLHS == FalseVal && AdjustedRHS == TrueVal)) {
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|           Pred = ICmpInst::getSwappedPredicate(Pred);
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|           CmpRHS = AdjustedRHS;
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|           std::swap(FalseVal, TrueVal);
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|           ICI->setPredicate(Pred);
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|           ICI->setOperand(1, CmpRHS);
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|           SI.setOperand(1, TrueVal);
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|           SI.setOperand(2, FalseVal);
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|           Changed = true;
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|         }
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|         break;
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|       }
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|       }
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|     }
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| 
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|   // Transform (X >s -1) ? C1 : C2 --> ((X >>s 31) & (C2 - C1)) + C1
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|   // and       (X <s  0) ? C2 : C1 --> ((X >>s 31) & (C2 - C1)) + C1
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|   // FIXME: Type and constness constraints could be lifted, but we have to
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|   //        watch code size carefully. We should consider xor instead of
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|   //        sub/add when we decide to do that.
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|   if (const IntegerType *Ty = dyn_cast<IntegerType>(CmpLHS->getType())) {
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|     if (TrueVal->getType() == Ty) {
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|       if (ConstantInt *Cmp = dyn_cast<ConstantInt>(CmpRHS)) {
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|         ConstantInt *C1 = NULL, *C2 = NULL;
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|         if (Pred == ICmpInst::ICMP_SGT && Cmp->isAllOnesValue()) {
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|           C1 = dyn_cast<ConstantInt>(TrueVal);
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|           C2 = dyn_cast<ConstantInt>(FalseVal);
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|         } else if (Pred == ICmpInst::ICMP_SLT && Cmp->isNullValue()) {
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|           C1 = dyn_cast<ConstantInt>(FalseVal);
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|           C2 = dyn_cast<ConstantInt>(TrueVal);
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|         }
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|         if (C1 && C2) {
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|           // This shift results in either -1 or 0.
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|           Value *AShr = Builder->CreateAShr(CmpLHS, Ty->getBitWidth()-1);
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| 
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|           // Check if we can express the operation with a single or.
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|           if (C2->isAllOnesValue())
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|             return ReplaceInstUsesWith(SI, Builder->CreateOr(AShr, C1));
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| 
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|           Value *And = Builder->CreateAnd(AShr, C2->getValue()-C1->getValue());
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|           return ReplaceInstUsesWith(SI, Builder->CreateAdd(And, C1));
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|         }
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|       }
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|     }
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|   }
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| 
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|   if (CmpLHS == TrueVal && CmpRHS == FalseVal) {
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|     // Transform (X == Y) ? X : Y  -> Y
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|     if (Pred == ICmpInst::ICMP_EQ)
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|       return ReplaceInstUsesWith(SI, FalseVal);
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|     // Transform (X != Y) ? X : Y  -> X
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|     if (Pred == ICmpInst::ICMP_NE)
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|       return ReplaceInstUsesWith(SI, TrueVal);
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|     /// NOTE: if we wanted to, this is where to detect integer MIN/MAX
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| 
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|   } else if (CmpLHS == FalseVal && CmpRHS == TrueVal) {
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|     // Transform (X == Y) ? Y : X  -> X
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|     if (Pred == ICmpInst::ICMP_EQ)
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|       return ReplaceInstUsesWith(SI, FalseVal);
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|     // Transform (X != Y) ? Y : X  -> Y
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|     if (Pred == ICmpInst::ICMP_NE)
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|       return ReplaceInstUsesWith(SI, TrueVal);
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|     /// NOTE: if we wanted to, this is where to detect integer MIN/MAX
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|   }
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|   return Changed ? &SI : 0;
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| }
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| 
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| 
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| /// CanSelectOperandBeMappingIntoPredBlock - SI is a select whose condition is a
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| /// PHI node (but the two may be in different blocks).  See if the true/false
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| /// values (V) are live in all of the predecessor blocks of the PHI.  For
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| /// example, cases like this cannot be mapped:
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| ///
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| ///   X = phi [ C1, BB1], [C2, BB2]
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| ///   Y = add
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| ///   Z = select X, Y, 0
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| ///
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| /// because Y is not live in BB1/BB2.
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| ///
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| static bool CanSelectOperandBeMappingIntoPredBlock(const Value *V,
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|                                                    const SelectInst &SI) {
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|   // If the value is a non-instruction value like a constant or argument, it
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|   // can always be mapped.
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|   const Instruction *I = dyn_cast<Instruction>(V);
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|   if (I == 0) return true;
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|   
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|   // If V is a PHI node defined in the same block as the condition PHI, we can
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|   // map the arguments.
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|   const PHINode *CondPHI = cast<PHINode>(SI.getCondition());
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|   
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|   if (const PHINode *VP = dyn_cast<PHINode>(I))
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|     if (VP->getParent() == CondPHI->getParent())
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|       return true;
 | |
|   
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|   // Otherwise, if the PHI and select are defined in the same block and if V is
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|   // defined in a different block, then we can transform it.
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|   if (SI.getParent() == CondPHI->getParent() &&
 | |
|       I->getParent() != CondPHI->getParent())
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|     return true;
 | |
|   
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|   // Otherwise we have a 'hard' case and we can't tell without doing more
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|   // detailed dominator based analysis, punt.
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|   return false;
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| }
 | |
| 
 | |
| /// FoldSPFofSPF - We have an SPF (e.g. a min or max) of an SPF of the form:
 | |
| ///   SPF2(SPF1(A, B), C) 
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| Instruction *InstCombiner::FoldSPFofSPF(Instruction *Inner,
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|                                         SelectPatternFlavor SPF1,
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|                                         Value *A, Value *B,
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|                                         Instruction &Outer,
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|                                         SelectPatternFlavor SPF2, Value *C) {
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|   if (C == A || C == B) {
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|     // MAX(MAX(A, B), B) -> MAX(A, B)
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|     // MIN(MIN(a, b), a) -> MIN(a, b)
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|     if (SPF1 == SPF2)
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|       return ReplaceInstUsesWith(Outer, Inner);
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|     
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|     // MAX(MIN(a, b), a) -> a
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|     // MIN(MAX(a, b), a) -> a
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|     if ((SPF1 == SPF_SMIN && SPF2 == SPF_SMAX) ||
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|         (SPF1 == SPF_SMAX && SPF2 == SPF_SMIN) ||
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|         (SPF1 == SPF_UMIN && SPF2 == SPF_UMAX) ||
 | |
|         (SPF1 == SPF_UMAX && SPF2 == SPF_UMIN))
 | |
|       return ReplaceInstUsesWith(Outer, C);
 | |
|   }
 | |
|   
 | |
|   // TODO: MIN(MIN(A, 23), 97)
 | |
|   return 0;
 | |
| }
 | |
| 
 | |
| 
 | |
| 
 | |
| 
 | |
| Instruction *InstCombiner::visitSelectInst(SelectInst &SI) {
 | |
|   Value *CondVal = SI.getCondition();
 | |
|   Value *TrueVal = SI.getTrueValue();
 | |
|   Value *FalseVal = SI.getFalseValue();
 | |
| 
 | |
|   if (Value *V = SimplifySelectInst(CondVal, TrueVal, FalseVal, TD))
 | |
|     return ReplaceInstUsesWith(SI, V);
 | |
| 
 | |
|   if (SI.getType()->isIntegerTy(1)) {
 | |
|     if (ConstantInt *C = dyn_cast<ConstantInt>(TrueVal)) {
 | |
|       if (C->getZExtValue()) {
 | |
|         // Change: A = select B, true, C --> A = or B, C
 | |
|         return BinaryOperator::CreateOr(CondVal, FalseVal);
 | |
|       }
 | |
|       // Change: A = select B, false, C --> A = and !B, C
 | |
|       Value *NotCond =
 | |
|         InsertNewInstBefore(BinaryOperator::CreateNot(CondVal,
 | |
|                                            "not."+CondVal->getName()), SI);
 | |
|       return BinaryOperator::CreateAnd(NotCond, FalseVal);
 | |
|     } else if (ConstantInt *C = dyn_cast<ConstantInt>(FalseVal)) {
 | |
|       if (C->getZExtValue() == false) {
 | |
|         // Change: A = select B, C, false --> A = and B, C
 | |
|         return BinaryOperator::CreateAnd(CondVal, TrueVal);
 | |
|       }
 | |
|       // Change: A = select B, C, true --> A = or !B, C
 | |
|       Value *NotCond =
 | |
|         InsertNewInstBefore(BinaryOperator::CreateNot(CondVal,
 | |
|                                            "not."+CondVal->getName()), SI);
 | |
|       return BinaryOperator::CreateOr(NotCond, TrueVal);
 | |
|     }
 | |
|     
 | |
|     // select a, b, a  -> a&b
 | |
|     // select a, a, b  -> a|b
 | |
|     if (CondVal == TrueVal)
 | |
|       return BinaryOperator::CreateOr(CondVal, FalseVal);
 | |
|     else if (CondVal == FalseVal)
 | |
|       return BinaryOperator::CreateAnd(CondVal, TrueVal);
 | |
|   }
 | |
| 
 | |
|   // Selecting between two integer constants?
 | |
|   if (ConstantInt *TrueValC = dyn_cast<ConstantInt>(TrueVal))
 | |
|     if (ConstantInt *FalseValC = dyn_cast<ConstantInt>(FalseVal)) {
 | |
|       // select C, 1, 0 -> zext C to int
 | |
|       if (FalseValC->isZero() && TrueValC->getValue() == 1)
 | |
|         return new ZExtInst(CondVal, SI.getType());
 | |
| 
 | |
|       // select C, -1, 0 -> sext C to int
 | |
|       if (FalseValC->isZero() && TrueValC->isAllOnesValue())
 | |
|         return new SExtInst(CondVal, SI.getType());
 | |
|       
 | |
|       // select C, 0, 1 -> zext !C to int
 | |
|       if (TrueValC->isZero() && FalseValC->getValue() == 1) {
 | |
|         Value *NotCond = Builder->CreateNot(CondVal, "not."+CondVal->getName());
 | |
|         return new ZExtInst(NotCond, SI.getType());
 | |
|       }
 | |
| 
 | |
|       // select C, 0, -1 -> sext !C to int
 | |
|       if (TrueValC->isZero() && FalseValC->isAllOnesValue()) {
 | |
|         Value *NotCond = Builder->CreateNot(CondVal, "not."+CondVal->getName());
 | |
|         return new SExtInst(NotCond, SI.getType());
 | |
|       }
 | |
|       
 | |
|       if (ICmpInst *IC = dyn_cast<ICmpInst>(SI.getCondition())) {
 | |
|         // If one of the constants is zero (we know they can't both be) and we
 | |
|         // have an icmp instruction with zero, and we have an 'and' with the
 | |
|         // non-constant value, eliminate this whole mess.  This corresponds to
 | |
|         // cases like this: ((X & 27) ? 27 : 0)
 | |
|         if (TrueValC->isZero() || FalseValC->isZero())
 | |
|           if (IC->isEquality() && isa<ConstantInt>(IC->getOperand(1)) &&
 | |
|               cast<Constant>(IC->getOperand(1))->isNullValue())
 | |
|             if (Instruction *ICA = dyn_cast<Instruction>(IC->getOperand(0)))
 | |
|               if (ICA->getOpcode() == Instruction::And &&
 | |
|                   isa<ConstantInt>(ICA->getOperand(1)) &&
 | |
|                   (ICA->getOperand(1) == TrueValC ||
 | |
|                    ICA->getOperand(1) == FalseValC) &&
 | |
|                cast<ConstantInt>(ICA->getOperand(1))->getValue().isPowerOf2()) {
 | |
|                 // Okay, now we know that everything is set up, we just don't
 | |
|                 // know whether we have a icmp_ne or icmp_eq and whether the 
 | |
|                 // true or false val is the zero.
 | |
|                 bool ShouldNotVal = !TrueValC->isZero();
 | |
|                 ShouldNotVal ^= IC->getPredicate() == ICmpInst::ICMP_NE;
 | |
|                 Value *V = ICA;
 | |
|                 if (ShouldNotVal)
 | |
|                   V = Builder->CreateXor(V, ICA->getOperand(1));
 | |
|                 return ReplaceInstUsesWith(SI, V);
 | |
|               }
 | |
|       }
 | |
|     }
 | |
| 
 | |
|   // See if we are selecting two values based on a comparison of the two values.
 | |
|   if (FCmpInst *FCI = dyn_cast<FCmpInst>(CondVal)) {
 | |
|     if (FCI->getOperand(0) == TrueVal && FCI->getOperand(1) == FalseVal) {
 | |
|       // Transform (X == Y) ? X : Y  -> Y
 | |
|       if (FCI->getPredicate() == FCmpInst::FCMP_OEQ) {
 | |
|         // This is not safe in general for floating point:  
 | |
|         // consider X== -0, Y== +0.
 | |
|         // It becomes safe if either operand is a nonzero constant.
 | |
|         ConstantFP *CFPt, *CFPf;
 | |
|         if (((CFPt = dyn_cast<ConstantFP>(TrueVal)) &&
 | |
|               !CFPt->getValueAPF().isZero()) ||
 | |
|             ((CFPf = dyn_cast<ConstantFP>(FalseVal)) &&
 | |
|              !CFPf->getValueAPF().isZero()))
 | |
|         return ReplaceInstUsesWith(SI, FalseVal);
 | |
|       }
 | |
|       // Transform (X une Y) ? X : Y  -> X
 | |
|       if (FCI->getPredicate() == FCmpInst::FCMP_UNE) {
 | |
|         // This is not safe in general for floating point:  
 | |
|         // consider X== -0, Y== +0.
 | |
|         // It becomes safe if either operand is a nonzero constant.
 | |
|         ConstantFP *CFPt, *CFPf;
 | |
|         if (((CFPt = dyn_cast<ConstantFP>(TrueVal)) &&
 | |
|               !CFPt->getValueAPF().isZero()) ||
 | |
|             ((CFPf = dyn_cast<ConstantFP>(FalseVal)) &&
 | |
|              !CFPf->getValueAPF().isZero()))
 | |
|         return ReplaceInstUsesWith(SI, TrueVal);
 | |
|       }
 | |
|       // NOTE: if we wanted to, this is where to detect MIN/MAX
 | |
| 
 | |
|     } else if (FCI->getOperand(0) == FalseVal && FCI->getOperand(1) == TrueVal){
 | |
|       // Transform (X == Y) ? Y : X  -> X
 | |
|       if (FCI->getPredicate() == FCmpInst::FCMP_OEQ) {
 | |
|         // This is not safe in general for floating point:  
 | |
|         // consider X== -0, Y== +0.
 | |
|         // It becomes safe if either operand is a nonzero constant.
 | |
|         ConstantFP *CFPt, *CFPf;
 | |
|         if (((CFPt = dyn_cast<ConstantFP>(TrueVal)) &&
 | |
|               !CFPt->getValueAPF().isZero()) ||
 | |
|             ((CFPf = dyn_cast<ConstantFP>(FalseVal)) &&
 | |
|              !CFPf->getValueAPF().isZero()))
 | |
|           return ReplaceInstUsesWith(SI, FalseVal);
 | |
|       }
 | |
|       // Transform (X une Y) ? Y : X  -> Y
 | |
|       if (FCI->getPredicate() == FCmpInst::FCMP_UNE) {
 | |
|         // This is not safe in general for floating point:  
 | |
|         // consider X== -0, Y== +0.
 | |
|         // It becomes safe if either operand is a nonzero constant.
 | |
|         ConstantFP *CFPt, *CFPf;
 | |
|         if (((CFPt = dyn_cast<ConstantFP>(TrueVal)) &&
 | |
|               !CFPt->getValueAPF().isZero()) ||
 | |
|             ((CFPf = dyn_cast<ConstantFP>(FalseVal)) &&
 | |
|              !CFPf->getValueAPF().isZero()))
 | |
|           return ReplaceInstUsesWith(SI, TrueVal);
 | |
|       }
 | |
|       // NOTE: if we wanted to, this is where to detect MIN/MAX
 | |
|     }
 | |
|     // NOTE: if we wanted to, this is where to detect ABS
 | |
|   }
 | |
| 
 | |
|   // See if we are selecting two values based on a comparison of the two values.
 | |
|   if (ICmpInst *ICI = dyn_cast<ICmpInst>(CondVal))
 | |
|     if (Instruction *Result = visitSelectInstWithICmp(SI, ICI))
 | |
|       return Result;
 | |
| 
 | |
|   if (Instruction *TI = dyn_cast<Instruction>(TrueVal))
 | |
|     if (Instruction *FI = dyn_cast<Instruction>(FalseVal))
 | |
|       if (TI->hasOneUse() && FI->hasOneUse()) {
 | |
|         Instruction *AddOp = 0, *SubOp = 0;
 | |
| 
 | |
|         // Turn (select C, (op X, Y), (op X, Z)) -> (op X, (select C, Y, Z))
 | |
|         if (TI->getOpcode() == FI->getOpcode())
 | |
|           if (Instruction *IV = FoldSelectOpOp(SI, TI, FI))
 | |
|             return IV;
 | |
| 
 | |
|         // Turn select C, (X+Y), (X-Y) --> (X+(select C, Y, (-Y))).  This is
 | |
|         // even legal for FP.
 | |
|         if ((TI->getOpcode() == Instruction::Sub &&
 | |
|              FI->getOpcode() == Instruction::Add) ||
 | |
|             (TI->getOpcode() == Instruction::FSub &&
 | |
|              FI->getOpcode() == Instruction::FAdd)) {
 | |
|           AddOp = FI; SubOp = TI;
 | |
|         } else if ((FI->getOpcode() == Instruction::Sub &&
 | |
|                     TI->getOpcode() == Instruction::Add) ||
 | |
|                    (FI->getOpcode() == Instruction::FSub &&
 | |
|                     TI->getOpcode() == Instruction::FAdd)) {
 | |
|           AddOp = TI; SubOp = FI;
 | |
|         }
 | |
| 
 | |
|         if (AddOp) {
 | |
|           Value *OtherAddOp = 0;
 | |
|           if (SubOp->getOperand(0) == AddOp->getOperand(0)) {
 | |
|             OtherAddOp = AddOp->getOperand(1);
 | |
|           } else if (SubOp->getOperand(0) == AddOp->getOperand(1)) {
 | |
|             OtherAddOp = AddOp->getOperand(0);
 | |
|           }
 | |
| 
 | |
|           if (OtherAddOp) {
 | |
|             // So at this point we know we have (Y -> OtherAddOp):
 | |
|             //        select C, (add X, Y), (sub X, Z)
 | |
|             Value *NegVal;  // Compute -Z
 | |
|             if (Constant *C = dyn_cast<Constant>(SubOp->getOperand(1))) {
 | |
|               NegVal = ConstantExpr::getNeg(C);
 | |
|             } else {
 | |
|               NegVal = InsertNewInstBefore(
 | |
|                     BinaryOperator::CreateNeg(SubOp->getOperand(1),
 | |
|                                               "tmp"), SI);
 | |
|             }
 | |
| 
 | |
|             Value *NewTrueOp = OtherAddOp;
 | |
|             Value *NewFalseOp = NegVal;
 | |
|             if (AddOp != TI)
 | |
|               std::swap(NewTrueOp, NewFalseOp);
 | |
|             Instruction *NewSel =
 | |
|               SelectInst::Create(CondVal, NewTrueOp,
 | |
|                                  NewFalseOp, SI.getName() + ".p");
 | |
| 
 | |
|             NewSel = InsertNewInstBefore(NewSel, SI);
 | |
|             return BinaryOperator::CreateAdd(SubOp->getOperand(0), NewSel);
 | |
|           }
 | |
|         }
 | |
|       }
 | |
| 
 | |
|   // See if we can fold the select into one of our operands.
 | |
|   if (SI.getType()->isIntegerTy()) {
 | |
|     if (Instruction *FoldI = FoldSelectIntoOp(SI, TrueVal, FalseVal))
 | |
|       return FoldI;
 | |
|     
 | |
|     // MAX(MAX(a, b), a) -> MAX(a, b)
 | |
|     // MIN(MIN(a, b), a) -> MIN(a, b)
 | |
|     // MAX(MIN(a, b), a) -> a
 | |
|     // MIN(MAX(a, b), a) -> a
 | |
|     Value *LHS, *RHS, *LHS2, *RHS2;
 | |
|     if (SelectPatternFlavor SPF = MatchSelectPattern(&SI, LHS, RHS)) {
 | |
|       if (SelectPatternFlavor SPF2 = MatchSelectPattern(LHS, LHS2, RHS2))
 | |
|         if (Instruction *R = FoldSPFofSPF(cast<Instruction>(LHS),SPF2,LHS2,RHS2, 
 | |
|                                           SI, SPF, RHS))
 | |
|           return R;
 | |
|       if (SelectPatternFlavor SPF2 = MatchSelectPattern(RHS, LHS2, RHS2))
 | |
|         if (Instruction *R = FoldSPFofSPF(cast<Instruction>(RHS),SPF2,LHS2,RHS2,
 | |
|                                           SI, SPF, LHS))
 | |
|           return R;
 | |
|     }
 | |
| 
 | |
|     // TODO.
 | |
|     // ABS(-X) -> ABS(X)
 | |
|     // ABS(ABS(X)) -> ABS(X)
 | |
|   }
 | |
| 
 | |
|   // See if we can fold the select into a phi node if the condition is a select.
 | |
|   if (isa<PHINode>(SI.getCondition())) 
 | |
|     // The true/false values have to be live in the PHI predecessor's blocks.
 | |
|     if (CanSelectOperandBeMappingIntoPredBlock(TrueVal, SI) &&
 | |
|         CanSelectOperandBeMappingIntoPredBlock(FalseVal, SI))
 | |
|       if (Instruction *NV = FoldOpIntoPhi(SI))
 | |
|         return NV;
 | |
| 
 | |
|   if (BinaryOperator::isNot(CondVal)) {
 | |
|     SI.setOperand(0, BinaryOperator::getNotArgument(CondVal));
 | |
|     SI.setOperand(1, FalseVal);
 | |
|     SI.setOperand(2, TrueVal);
 | |
|     return &SI;
 | |
|   }
 | |
| 
 | |
|   return 0;
 | |
| }
 |