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			145 lines
		
	
	
		
			5.1 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			145 lines
		
	
	
		
			5.1 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
//===- LowerAllocations.cpp - Reduce malloc & free insts to calls ---------===//
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//
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// The LowerAllocations transformation is a target dependant tranformation
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// because it depends on the size of data types and alignment constraints.
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//
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//===----------------------------------------------------------------------===//
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#include "llvm/Transforms/ChangeAllocations.h"
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#include "llvm/Module.h"
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#include "llvm/Function.h"
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#include "llvm/BasicBlock.h"
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#include "llvm/DerivedTypes.h"
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#include "llvm/iMemory.h"
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#include "llvm/iOther.h"
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#include "llvm/Constants.h"
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#include "llvm/Pass.h"
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#include "llvm/Target/TargetData.h"
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#include "Support/StatisticReporter.h"
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static Statistic<> NumLowered("lowerallocs\t- Number of allocations lowered");
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using std::vector;
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namespace {
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// LowerAllocations - Turn malloc and free instructions into %malloc and %free
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// calls.
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//
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class LowerAllocations : public BasicBlockPass {
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  Function *MallocFunc;   // Functions in the module we are processing
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  Function *FreeFunc;     // Initialized by doInitialization
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  const TargetData &DataLayout;
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public:
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  inline LowerAllocations(const TargetData &TD) : DataLayout(TD) {
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    MallocFunc = FreeFunc = 0;
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  }
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  const char *getPassName() const { return "Lower Allocations"; }
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  // doPassInitialization - For the lower allocations pass, this ensures that a
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  // module contains a declaration for a malloc and a free function.
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  //
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  bool doInitialization(Module *M);
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  // runOnBasicBlock - This method does the actual work of converting
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  // instructions over, assuming that the pass has already been initialized.
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  //
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  bool runOnBasicBlock(BasicBlock *BB);
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};
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}
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// createLowerAllocationsPass - Interface to this file...
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Pass *createLowerAllocationsPass(const TargetData &TD) {
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  return new LowerAllocations(TD);
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}
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// doInitialization - For the lower allocations pass, this ensures that a
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// module contains a declaration for a malloc and a free function.
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//
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// This function is always successful.
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//
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bool LowerAllocations::doInitialization(Module *M) {
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  const FunctionType *MallocType = 
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    FunctionType::get(PointerType::get(Type::SByteTy),
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                      vector<const Type*>(1, Type::UIntTy), false);
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  const FunctionType *FreeType = 
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    FunctionType::get(Type::VoidTy,
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                      vector<const Type*>(1, PointerType::get(Type::SByteTy)),
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                      false);
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  MallocFunc = M->getOrInsertFunction("malloc", MallocType);
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  FreeFunc   = M->getOrInsertFunction("free"  , FreeType);
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  return true;
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}
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// runOnBasicBlock - This method does the actual work of converting
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// instructions over, assuming that the pass has already been initialized.
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//
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bool LowerAllocations::runOnBasicBlock(BasicBlock *BB) {
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  bool Changed = false;
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  assert(MallocFunc && FreeFunc && BB && "Pass not initialized!");
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  // Loop over all of the instructions, looking for malloc or free instructions
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  for (unsigned i = 0; i != BB->size(); ++i) {
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    BasicBlock::InstListType &BBIL = BB->getInstList();
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    if (MallocInst *MI = dyn_cast<MallocInst>(*(BBIL.begin()+i))) {
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      BBIL.remove(BBIL.begin()+i);   // remove the malloc instr...
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      const Type *AllocTy = cast<PointerType>(MI->getType())->getElementType();
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      // Get the number of bytes to be allocated for one element of the
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      // requested type...
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      unsigned Size = DataLayout.getTypeSize(AllocTy);
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      // malloc(type) becomes sbyte *malloc(constint)
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      Value *MallocArg = ConstantUInt::get(Type::UIntTy, Size);
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      if (MI->getNumOperands() && Size == 1) {
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        MallocArg = MI->getOperand(0);         // Operand * 1 = Operand
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      } else if (MI->getNumOperands()) {
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        // Multiply it by the array size if neccesary...
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        MallocArg = BinaryOperator::create(Instruction::Mul,MI->getOperand(0),
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                                           MallocArg);
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        BBIL.insert(BBIL.begin()+i++, cast<Instruction>(MallocArg));
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      }
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      // Create the call to Malloc...
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      CallInst *MCall = new CallInst(MallocFunc,
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                                     vector<Value*>(1, MallocArg));
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      BBIL.insert(BBIL.begin()+i, MCall);
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      // Create a cast instruction to convert to the right type...
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      CastInst *MCast = new CastInst(MCall, MI->getType());
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      BBIL.insert(BBIL.begin()+i+1, MCast);
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      // Replace all uses of the old malloc inst with the cast inst
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      MI->replaceAllUsesWith(MCast);
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      delete MI;                          // Delete the malloc inst
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      Changed = true;
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      ++NumLowered;
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    } else if (FreeInst *FI = dyn_cast<FreeInst>(*(BBIL.begin()+i))) {
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      BBIL.remove(BB->getInstList().begin()+i);
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      // Cast the argument to free into a ubyte*...
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      CastInst *MCast = new CastInst(FI->getOperand(0), 
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                                     PointerType::get(Type::UByteTy));
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      BBIL.insert(BBIL.begin()+i, MCast);
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      // Insert a call to the free function...
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      CallInst *FCall = new CallInst(FreeFunc,
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                                     vector<Value*>(1, MCast));
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      BBIL.insert(BBIL.begin()+i+1, FCall);
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      // Delete the old free instruction
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      delete FI;
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      Changed = true;
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      ++NumLowered;
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    }
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  }
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  return Changed;
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}
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