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	a sequence of 1-D references, using a sequence of getElementPtrs. git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@1907 91177308-0d34-0410-b5e6-96231b3b80d8
		
			
				
	
	
		
			149 lines
		
	
	
		
			5.3 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			149 lines
		
	
	
		
			5.3 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
| //===- llvm/Transforms/DecomposeArrayRefs.cpp - Lower array refs to 1D -----=//
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| //
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| // DecomposeArrayRefs - 
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| // Convert multi-dimensional array references into a sequence of
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| // instructions (using getelementpr and cast) so that each instruction
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| // has at most one array offset.
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| //
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| //===---------------------------------------------------------------------===//
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| 
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| #include "llvm/Transforms/DecomposeArrayRefs.h"
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| #include "llvm/iMemory.h"
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| #include "llvm/iOther.h"
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| #include "llvm/BasicBlock.h"
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| #include "llvm/Method.h"
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| #include "llvm/Pass.h"
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| 
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| 
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| // 
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| // This function repeats until we have a one-dim. reference: {
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| //      // For an N-dim array ref, where N > 1, insert:
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| //      aptr1 = getElementPtr [N-dim array] * lastPtr, uint firstIndex
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| //      aptr2 = cast [N-dim-arry] * aptr to [<N-1>-dim-array] *
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| // }
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| // Then it replaces the original instruction with an equivalent one that
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| // uses the last aptr2 generated in the loop and a single index.
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| // 
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| static BasicBlock::reverse_iterator
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| decomposeArrayRef(BasicBlock::reverse_iterator& BBI)
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| {
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|   MemAccessInst *memI = cast<MemAccessInst>(*BBI);
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|   BasicBlock* BB = memI->getParent();
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|   Value* lastPtr = memI->getPointerOperand();
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|   vector<Instruction*> newIvec;
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|   
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|   MemAccessInst::const_op_iterator OI = memI->idx_begin();
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|   for (MemAccessInst::const_op_iterator OE = memI->idx_end(); OI != OE; ++OI)
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|     {
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|       if (OI+1 == OE)                     // skip the last operand
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|         break;
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|       
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|       assert(isa<PointerType>(lastPtr->getType()));
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|       vector<Value*> idxVec(1, *OI);
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| 
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|       // The first index does not change the type of the pointer
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|       // since all pointers are treated as potential arrays (i.e.,
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|       // int *X is either a scalar X[0] or an array at X[i]).
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|       // 
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|       const Type* nextPtrType;
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|       // if (OI == memI->idx_begin())
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|       //   nextPtrType = lastPtr->getType();
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|       // else
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|       //   {
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|              const Type* nextArrayType =  
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|                MemAccessInst::getIndexedType(lastPtr->getType(), idxVec,
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|                                              /*allowCompositeLeaf*/ true);
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|              nextPtrType = PointerType::get(cast<SequentialType>(nextArrayType)
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|                                             ->getElementType());
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|       //   }
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|       
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|       Instruction* gepInst  = new GetElementPtrInst(lastPtr, idxVec, "aptr1");
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|       Instruction* castInst = new CastInst(gepInst, nextPtrType, "aptr2");
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|       lastPtr  = castInst;
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|       
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|       newIvec.push_back(gepInst);
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|       newIvec.push_back(castInst);
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|     }
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|   
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|   // Now create a new instruction to replace the original one
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|   assert(lastPtr != memI->getPointerOperand() && "the above loop did not execute?");
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|   assert(isa<PointerType>(lastPtr->getType()));
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|   vector<Value*> idxVec(1, *OI);
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|   const std::string newInstName = memI->hasName()? memI->getName()
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|                                                  : string("oneDimRef");
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|   Instruction* newInst = NULL;
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|   
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|   switch(memI->getOpcode())
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|     {
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|     case Instruction::Load:
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|       newInst = new LoadInst(lastPtr, idxVec /*, newInstName */); break;
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|     case Instruction::Store:
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|       newInst = new StoreInst(memI->getOperand(0),
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|                               lastPtr, idxVec /*, newInstName */); break;
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|       break;
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|     case Instruction::GetElementPtr:
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|       newInst = new GetElementPtrInst(lastPtr, idxVec /*, newInstName */); break;
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|     default:
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|       assert(0 && "Unrecognized memory access instruction"); break;
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|     }
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|   
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|   newIvec.push_back(newInst);
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|   
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|   // Replace all uses of the old instruction with the new
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|   memI->replaceAllUsesWith(newInst);
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|   
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|   // Insert the instructions created in reverse order.  insert is destructive
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|   // so we always have to use the new pointer returned by insert.
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|   BasicBlock::iterator newI = BBI.base(); // gives ptr to instr. after memI
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|   --newI;                                 // step back to memI
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|   for (int i = newIvec.size()-1; i >= 0; i--)
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|     newI = BB->getInstList().insert(newI, newIvec[i]);
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|   
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|   // Now delete the old instruction and return a pointer to the first new one
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|   BB->getInstList().remove(memI);
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|   delete memI;
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|   
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|   BasicBlock::reverse_iterator retI(newI); // reverse ptr to instr before newI
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|   return --retI;                           // reverse pointer to newI
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| }
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| 
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| 
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| //---------------------------------------------------------------------------
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| // Entry point for decomposing multi-dimensional array references
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| //---------------------------------------------------------------------------
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| 
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| static bool
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| doDecomposeArrayRefs(Method *M)
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| {
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|   bool changed = false;
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|   
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|   for (Method::iterator BI = M->begin(), BE = M->end(); BI != BE; ++BI)
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|     for (BasicBlock::reverse_iterator newI, II=(*BI)->rbegin();
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|          II != (*BI)->rend(); II = ++newI)
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|       {
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|         newI = II;
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|         if (MemAccessInst *memI = dyn_cast<MemAccessInst>(*II))
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|           { // Check for a multi-dimensional array access
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|             const PointerType* ptrType =
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|               cast<PointerType>(memI->getPointerOperand()->getType()); 
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|             if (isa<ArrayType>(ptrType->getElementType()) &&
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|                 memI->getNumOperands() > 1+ memI->getFirstIndexOperandNumber())
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|               {
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|                 newI = decomposeArrayRef(II);
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|                 changed = true;
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|               }
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|           }
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|       }
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|   
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|   return changed;
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| }
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| 
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| 
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| namespace {
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|   struct DecomposeArrayRefsPass : public MethodPass {
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|     virtual bool runOnMethod(Method *M) { return doDecomposeArrayRefs(M); }
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|   };
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| }
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| 
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| Pass *createDecomposeArrayRefsPass() { return new DecomposeArrayRefsPass(); }
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