1 //===- MemCpyOptimizer.cpp - Optimize use of memcpy and friends -----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This pass performs various transformations related to eliminating memcpy 11 // calls, or transforming sets of stores into memset's. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #define DEBUG_TYPE "memcpyopt" 16 #include "llvm/Transforms/Scalar.h" 17 #include "llvm/IntrinsicInst.h" 18 #include "llvm/Instructions.h" 19 #include "llvm/LLVMContext.h" 20 #include "llvm/ADT/SmallVector.h" 21 #include "llvm/ADT/Statistic.h" 22 #include "llvm/Analysis/Dominators.h" 23 #include "llvm/Analysis/AliasAnalysis.h" 24 #include "llvm/Analysis/MemoryDependenceAnalysis.h" 25 #include "llvm/Support/Debug.h" 26 #include "llvm/Support/GetElementPtrTypeIterator.h" 27 #include "llvm/Target/TargetData.h" 28 #include <list> 29 using namespace llvm; 30 31 STATISTIC(NumMemCpyInstr, "Number of memcpy instructions deleted"); 32 STATISTIC(NumMemSetInfer, "Number of memsets inferred"); 33 34 /// isBytewiseValue - If the specified value can be set by repeating the same 35 /// byte in memory, return the i8 value that it is represented with. This is 36 /// true for all i8 values obviously, but is also true for i32 0, i32 -1, 37 /// i16 0xF0F0, double 0.0 etc. If the value can't be handled with a repeated 38 /// byte store (e.g. i16 0x1234), return null. 39 static Value *isBytewiseValue(Value *V, LLVMContext& Context) { 40 // All byte-wide stores are splatable, even of arbitrary variables. 41 if (V->getType() == Type::Int8Ty) return V; 42 43 // Constant float and double values can be handled as integer values if the 44 // corresponding integer value is "byteable". An important case is 0.0. 45 if (ConstantFP *CFP = dyn_cast<ConstantFP>(V)) { 46 if (CFP->getType() == Type::FloatTy) 47 V = ConstantExpr::getBitCast(CFP, Type::Int32Ty); 48 if (CFP->getType() == Type::DoubleTy) 49 V = ConstantExpr::getBitCast(CFP, Type::Int64Ty); 50 // Don't handle long double formats, which have strange constraints. 51 } 52 53 // We can handle constant integers that are power of two in size and a 54 // multiple of 8 bits. 55 if (ConstantInt *CI = dyn_cast<ConstantInt>(V)) { 56 unsigned Width = CI->getBitWidth(); 57 if (isPowerOf2_32(Width) && Width > 8) { 58 // We can handle this value if the recursive binary decomposition is the 59 // same at all levels. 60 APInt Val = CI->getValue(); 61 APInt Val2; 62 while (Val.getBitWidth() != 8) { 63 unsigned NextWidth = Val.getBitWidth()/2; 64 Val2 = Val.lshr(NextWidth); 65 Val2.trunc(Val.getBitWidth()/2); 66 Val.trunc(Val.getBitWidth()/2); 67 68 // If the top/bottom halves aren't the same, reject it. 69 if (Val != Val2) 70 return 0; 71 } 72 return ConstantInt::get(Context, Val); 73 } 74 } 75 76 // Conceptually, we could handle things like: 77 // %a = zext i8 %X to i16 78 // %b = shl i16 %a, 8 79 // %c = or i16 %a, %b 80 // but until there is an example that actually needs this, it doesn't seem 81 // worth worrying about. 82 return 0; 83 } 84 85 static int64_t GetOffsetFromIndex(const GetElementPtrInst *GEP, unsigned Idx, 86 bool &VariableIdxFound, TargetData &TD) { 87 // Skip over the first indices. 88 gep_type_iterator GTI = gep_type_begin(GEP); 89 for (unsigned i = 1; i != Idx; ++i, ++GTI) 90 /*skip along*/; 91 92 // Compute the offset implied by the rest of the indices. 93 int64_t Offset = 0; 94 for (unsigned i = Idx, e = GEP->getNumOperands(); i != e; ++i, ++GTI) { 95 ConstantInt *OpC = dyn_cast<ConstantInt>(GEP->getOperand(i)); 96 if (OpC == 0) 97 return VariableIdxFound = true; 98 if (OpC->isZero()) continue; // No offset. 99 100 // Handle struct indices, which add their field offset to the pointer. 101 if (const StructType *STy = dyn_cast<StructType>(*GTI)) { 102 Offset += TD.getStructLayout(STy)->getElementOffset(OpC->getZExtValue()); 103 continue; 104 } 105 106 // Otherwise, we have a sequential type like an array or vector. Multiply 107 // the index by the ElementSize. 108 uint64_t Size = TD.getTypeAllocSize(GTI.getIndexedType()); 109 Offset += Size*OpC->getSExtValue(); 110 } 111 112 return Offset; 113 } 114 115 /// IsPointerOffset - Return true if Ptr1 is provably equal to Ptr2 plus a 116 /// constant offset, and return that constant offset. For example, Ptr1 might 117 /// be &A[42], and Ptr2 might be &A[40]. In this case offset would be -8. 118 static bool IsPointerOffset(Value *Ptr1, Value *Ptr2, int64_t &Offset, 119 TargetData &TD) { 120 // Right now we handle the case when Ptr1/Ptr2 are both GEPs with an identical 121 // base. After that base, they may have some number of common (and 122 // potentially variable) indices. After that they handle some constant 123 // offset, which determines their offset from each other. At this point, we 124 // handle no other case. 125 GetElementPtrInst *GEP1 = dyn_cast<GetElementPtrInst>(Ptr1); 126 GetElementPtrInst *GEP2 = dyn_cast<GetElementPtrInst>(Ptr2); 127 if (!GEP1 || !GEP2 || GEP1->getOperand(0) != GEP2->getOperand(0)) 128 return false; 129 130 // Skip any common indices and track the GEP types. 131 unsigned Idx = 1; 132 for (; Idx != GEP1->getNumOperands() && Idx != GEP2->getNumOperands(); ++Idx) 133 if (GEP1->getOperand(Idx) != GEP2->getOperand(Idx)) 134 break; 135 136 bool VariableIdxFound = false; 137 int64_t Offset1 = GetOffsetFromIndex(GEP1, Idx, VariableIdxFound, TD); 138 int64_t Offset2 = GetOffsetFromIndex(GEP2, Idx, VariableIdxFound, TD); 139 if (VariableIdxFound) return false; 140 141 Offset = Offset2-Offset1; 142 return true; 143 } 144 145 146 /// MemsetRange - Represents a range of memset'd bytes with the ByteVal value. 147 /// This allows us to analyze stores like: 148 /// store 0 -> P+1 149 /// store 0 -> P+0 150 /// store 0 -> P+3 151 /// store 0 -> P+2 152 /// which sometimes happens with stores to arrays of structs etc. When we see 153 /// the first store, we make a range [1, 2). The second store extends the range 154 /// to [0, 2). The third makes a new range [2, 3). The fourth store joins the 155 /// two ranges into [0, 3) which is memset'able. 156 namespace { 157 struct MemsetRange { 158 // Start/End - A semi range that describes the span that this range covers. 159 // The range is closed at the start and open at the end: [Start, End). 160 int64_t Start, End; 161 162 /// StartPtr - The getelementptr instruction that points to the start of the 163 /// range. 164 Value *StartPtr; 165 166 /// Alignment - The known alignment of the first store. 167 unsigned Alignment; 168 169 /// TheStores - The actual stores that make up this range. 170 SmallVector<StoreInst*, 16> TheStores; 171 172 bool isProfitableToUseMemset(const TargetData &TD) const; 173 174 }; 175 } // end anon namespace 176 177 bool MemsetRange::isProfitableToUseMemset(const TargetData &TD) const { 178 // If we found more than 8 stores to merge or 64 bytes, use memset. 179 if (TheStores.size() >= 8 || End-Start >= 64) return true; 180 181 // Assume that the code generator is capable of merging pairs of stores 182 // together if it wants to. 183 if (TheStores.size() <= 2) return false; 184 185 // If we have fewer than 8 stores, it can still be worthwhile to do this. 186 // For example, merging 4 i8 stores into an i32 store is useful almost always. 187 // However, merging 2 32-bit stores isn't useful on a 32-bit architecture (the 188 // memset will be split into 2 32-bit stores anyway) and doing so can 189 // pessimize the llvm optimizer. 190 // 191 // Since we don't have perfect knowledge here, make some assumptions: assume 192 // the maximum GPR width is the same size as the pointer size and assume that 193 // this width can be stored. If so, check to see whether we will end up 194 // actually reducing the number of stores used. 195 unsigned Bytes = unsigned(End-Start); 196 unsigned NumPointerStores = Bytes/TD.getPointerSize(); 197 198 // Assume the remaining bytes if any are done a byte at a time. 199 unsigned NumByteStores = Bytes - NumPointerStores*TD.getPointerSize(); 200 201 // If we will reduce the # stores (according to this heuristic), do the 202 // transformation. This encourages merging 4 x i8 -> i32 and 2 x i16 -> i32 203 // etc. 204 return TheStores.size() > NumPointerStores+NumByteStores; 205 } 206 207 208 namespace { 209 class MemsetRanges { 210 /// Ranges - A sorted list of the memset ranges. We use std::list here 211 /// because each element is relatively large and expensive to copy. 212 std::list<MemsetRange> Ranges; 213 typedef std::list<MemsetRange>::iterator range_iterator; 214 TargetData &TD; 215 public: 216 MemsetRanges(TargetData &td) : TD(td) {} 217 218 typedef std::list<MemsetRange>::const_iterator const_iterator; 219 const_iterator begin() const { return Ranges.begin(); } 220 const_iterator end() const { return Ranges.end(); } 221 bool empty() const { return Ranges.empty(); } 222 223 void addStore(int64_t OffsetFromFirst, StoreInst *SI); 224 }; 225 226 } // end anon namespace 227 228 229 /// addStore - Add a new store to the MemsetRanges data structure. This adds a 230 /// new range for the specified store at the specified offset, merging into 231 /// existing ranges as appropriate. 232 void MemsetRanges::addStore(int64_t Start, StoreInst *SI) { 233 int64_t End = Start+TD.getTypeStoreSize(SI->getOperand(0)->getType()); 234 235 // Do a linear search of the ranges to see if this can be joined and/or to 236 // find the insertion point in the list. We keep the ranges sorted for 237 // simplicity here. This is a linear search of a linked list, which is ugly, 238 // however the number of ranges is limited, so this won't get crazy slow. 239 range_iterator I = Ranges.begin(), E = Ranges.end(); 240 241 while (I != E && Start > I->End) 242 ++I; 243 244 // We now know that I == E, in which case we didn't find anything to merge 245 // with, or that Start <= I->End. If End < I->Start or I == E, then we need 246 // to insert a new range. Handle this now. 247 if (I == E || End < I->Start) { 248 MemsetRange &R = *Ranges.insert(I, MemsetRange()); 249 R.Start = Start; 250 R.End = End; 251 R.StartPtr = SI->getPointerOperand(); 252 R.Alignment = SI->getAlignment(); 253 R.TheStores.push_back(SI); 254 return; 255 } 256 257 // This store overlaps with I, add it. 258 I->TheStores.push_back(SI); 259 260 // At this point, we may have an interval that completely contains our store. 261 // If so, just add it to the interval and return. 262 if (I->Start <= Start && I->End >= End) 263 return; 264 265 // Now we know that Start <= I->End and End >= I->Start so the range overlaps 266 // but is not entirely contained within the range. 267 268 // See if the range extends the start of the range. In this case, it couldn't 269 // possibly cause it to join the prior range, because otherwise we would have 270 // stopped on *it*. 271 if (Start < I->Start) { 272 I->Start = Start; 273 I->StartPtr = SI->getPointerOperand(); 274 } 275 276 // Now we know that Start <= I->End and Start >= I->Start (so the startpoint 277 // is in or right at the end of I), and that End >= I->Start. Extend I out to 278 // End. 279 if (End > I->End) { 280 I->End = End; 281 range_iterator NextI = I; 282 while (++NextI != E && End >= NextI->Start) { 283 // Merge the range in. 284 I->TheStores.append(NextI->TheStores.begin(), NextI->TheStores.end()); 285 if (NextI->End > I->End) 286 I->End = NextI->End; 287 Ranges.erase(NextI); 288 NextI = I; 289 } 290 } 291 } 292 293 //===----------------------------------------------------------------------===// 294 // MemCpyOpt Pass 295 //===----------------------------------------------------------------------===// 296 297 namespace { 298 299 class VISIBILITY_HIDDEN MemCpyOpt : public FunctionPass { 300 bool runOnFunction(Function &F); 301 public: 302 static char ID; // Pass identification, replacement for typeid 303 MemCpyOpt() : FunctionPass(&ID) {} 304 305 private: 306 // This transformation requires dominator postdominator info 307 virtual void getAnalysisUsage(AnalysisUsage &AU) const { 308 AU.setPreservesCFG(); 309 AU.addRequired<DominatorTree>(); 310 AU.addRequired<MemoryDependenceAnalysis>(); 311 AU.addRequired<AliasAnalysis>(); 312 AU.addRequired<TargetData>(); 313 AU.addPreserved<AliasAnalysis>(); 314 AU.addPreserved<MemoryDependenceAnalysis>(); 315 AU.addPreserved<TargetData>(); 316 } 317 318 // Helper fuctions 319 bool processStore(StoreInst *SI, BasicBlock::iterator& BBI); 320 bool processMemCpy(MemCpyInst* M); 321 bool performCallSlotOptzn(MemCpyInst* cpy, CallInst* C); 322 bool iterateOnFunction(Function &F); 323 }; 324 325 char MemCpyOpt::ID = 0; 326 } 327 328 // createMemCpyOptPass - The public interface to this file... 329 FunctionPass *llvm::createMemCpyOptPass() { return new MemCpyOpt(); } 330 331 static RegisterPass<MemCpyOpt> X("memcpyopt", 332 "MemCpy Optimization"); 333 334 335 336 /// processStore - When GVN is scanning forward over instructions, we look for 337 /// some other patterns to fold away. In particular, this looks for stores to 338 /// neighboring locations of memory. If it sees enough consequtive ones 339 /// (currently 4) it attempts to merge them together into a memcpy/memset. 340 bool MemCpyOpt::processStore(StoreInst *SI, BasicBlock::iterator& BBI) { 341 if (SI->isVolatile()) return false; 342 343 // There are two cases that are interesting for this code to handle: memcpy 344 // and memset. Right now we only handle memset. 345 346 // Ensure that the value being stored is something that can be memset'able a 347 // byte at a time like "0" or "-1" or any width, as well as things like 348 // 0xA0A0A0A0 and 0.0. 349 Value *ByteVal = isBytewiseValue(SI->getOperand(0), SI->getContext()); 350 if (!ByteVal) 351 return false; 352 353 TargetData &TD = getAnalysis<TargetData>(); 354 AliasAnalysis &AA = getAnalysis<AliasAnalysis>(); 355 Module *M = SI->getParent()->getParent()->getParent(); 356 357 // Okay, so we now have a single store that can be splatable. Scan to find 358 // all subsequent stores of the same value to offset from the same pointer. 359 // Join these together into ranges, so we can decide whether contiguous blocks 360 // are stored. 361 MemsetRanges Ranges(TD); 362 363 Value *StartPtr = SI->getPointerOperand(); 364 365 BasicBlock::iterator BI = SI; 366 for (++BI; !isa<TerminatorInst>(BI); ++BI) { 367 if (isa<CallInst>(BI) || isa<InvokeInst>(BI)) { 368 // If the call is readnone, ignore it, otherwise bail out. We don't even 369 // allow readonly here because we don't want something like: 370 // A[1] = 2; strlen(A); A[2] = 2; -> memcpy(A, ...); strlen(A). 371 if (AA.getModRefBehavior(CallSite::get(BI)) == 372 AliasAnalysis::DoesNotAccessMemory) 373 continue; 374 375 // TODO: If this is a memset, try to join it in. 376 377 break; 378 } else if (isa<VAArgInst>(BI) || isa<LoadInst>(BI)) 379 break; 380 381 // If this is a non-store instruction it is fine, ignore it. 382 StoreInst *NextStore = dyn_cast<StoreInst>(BI); 383 if (NextStore == 0) continue; 384 385 // If this is a store, see if we can merge it in. 386 if (NextStore->isVolatile()) break; 387 388 // Check to see if this stored value is of the same byte-splattable value. 389 if (ByteVal != isBytewiseValue(NextStore->getOperand(0), 390 NextStore->getContext())) 391 break; 392 393 // Check to see if this store is to a constant offset from the start ptr. 394 int64_t Offset; 395 if (!IsPointerOffset(StartPtr, NextStore->getPointerOperand(), Offset, TD)) 396 break; 397 398 Ranges.addStore(Offset, NextStore); 399 } 400 401 // If we have no ranges, then we just had a single store with nothing that 402 // could be merged in. This is a very common case of course. 403 if (Ranges.empty()) 404 return false; 405 406 // If we had at least one store that could be merged in, add the starting 407 // store as well. We try to avoid this unless there is at least something 408 // interesting as a small compile-time optimization. 409 Ranges.addStore(0, SI); 410 411 412 Function *MemSetF = 0; 413 414 // Now that we have full information about ranges, loop over the ranges and 415 // emit memset's for anything big enough to be worthwhile. 416 bool MadeChange = false; 417 for (MemsetRanges::const_iterator I = Ranges.begin(), E = Ranges.end(); 418 I != E; ++I) { 419 const MemsetRange &Range = *I; 420 421 if (Range.TheStores.size() == 1) continue; 422 423 // If it is profitable to lower this range to memset, do so now. 424 if (!Range.isProfitableToUseMemset(TD)) 425 continue; 426 427 // Otherwise, we do want to transform this! Create a new memset. We put 428 // the memset right before the first instruction that isn't part of this 429 // memset block. This ensure that the memset is dominated by any addressing 430 // instruction needed by the start of the block. 431 BasicBlock::iterator InsertPt = BI; 432 433 if (MemSetF == 0) { 434 const Type *Tys[] = {Type::Int64Ty}; 435 MemSetF = Intrinsic::getDeclaration(M, Intrinsic::memset, 436 Tys, 1); 437 } 438 439 // Get the starting pointer of the block. 440 StartPtr = Range.StartPtr; 441 442 // Cast the start ptr to be i8* as memset requires. 443 const Type *i8Ptr = PointerType::getUnqual(Type::Int8Ty); 444 if (StartPtr->getType() != i8Ptr) 445 StartPtr = new BitCastInst(StartPtr, i8Ptr, StartPtr->getName(), 446 InsertPt); 447 448 Value *Ops[] = { 449 StartPtr, ByteVal, // Start, value 450 // size 451 ConstantInt::get(Type::Int64Ty, Range.End-Range.Start), 452 // align 453 ConstantInt::get(Type::Int32Ty, Range.Alignment) 454 }; 455 Value *C = CallInst::Create(MemSetF, Ops, Ops+4, "", InsertPt); 456 DEBUG(cerr << "Replace stores:\n"; 457 for (unsigned i = 0, e = Range.TheStores.size(); i != e; ++i) 458 cerr << *Range.TheStores[i]; 459 cerr << "With: " << *C); C=C; 460 461 // Don't invalidate the iterator 462 BBI = BI; 463 464 // Zap all the stores. 465 for (SmallVector<StoreInst*, 16>::const_iterator SI = Range.TheStores.begin(), 466 SE = Range.TheStores.end(); SI != SE; ++SI) 467 (*SI)->eraseFromParent(); 468 ++NumMemSetInfer; 469 MadeChange = true; 470 } 471 472 return MadeChange; 473 } 474 475 476 /// performCallSlotOptzn - takes a memcpy and a call that it depends on, 477 /// and checks for the possibility of a call slot optimization by having 478 /// the call write its result directly into the destination of the memcpy. 479 bool MemCpyOpt::performCallSlotOptzn(MemCpyInst *cpy, CallInst *C) { 480 // The general transformation to keep in mind is 481 // 482 // call @func(..., src, ...) 483 // memcpy(dest, src, ...) 484 // 485 // -> 486 // 487 // memcpy(dest, src, ...) 488 // call @func(..., dest, ...) 489 // 490 // Since moving the memcpy is technically awkward, we additionally check that 491 // src only holds uninitialized values at the moment of the call, meaning that 492 // the memcpy can be discarded rather than moved. 493 494 // Deliberately get the source and destination with bitcasts stripped away, 495 // because we'll need to do type comparisons based on the underlying type. 496 Value* cpyDest = cpy->getDest(); 497 Value* cpySrc = cpy->getSource(); 498 CallSite CS = CallSite::get(C); 499 500 // We need to be able to reason about the size of the memcpy, so we require 501 // that it be a constant. 502 ConstantInt* cpyLength = dyn_cast<ConstantInt>(cpy->getLength()); 503 if (!cpyLength) 504 return false; 505 506 // Require that src be an alloca. This simplifies the reasoning considerably. 507 AllocaInst* srcAlloca = dyn_cast<AllocaInst>(cpySrc); 508 if (!srcAlloca) 509 return false; 510 511 // Check that all of src is copied to dest. 512 TargetData& TD = getAnalysis<TargetData>(); 513 514 ConstantInt* srcArraySize = dyn_cast<ConstantInt>(srcAlloca->getArraySize()); 515 if (!srcArraySize) 516 return false; 517 518 uint64_t srcSize = TD.getTypeAllocSize(srcAlloca->getAllocatedType()) * 519 srcArraySize->getZExtValue(); 520 521 if (cpyLength->getZExtValue() < srcSize) 522 return false; 523 524 // Check that accessing the first srcSize bytes of dest will not cause a 525 // trap. Otherwise the transform is invalid since it might cause a trap 526 // to occur earlier than it otherwise would. 527 if (AllocaInst* A = dyn_cast<AllocaInst>(cpyDest)) { 528 // The destination is an alloca. Check it is larger than srcSize. 529 ConstantInt* destArraySize = dyn_cast<ConstantInt>(A->getArraySize()); 530 if (!destArraySize) 531 return false; 532 533 uint64_t destSize = TD.getTypeAllocSize(A->getAllocatedType()) * 534 destArraySize->getZExtValue(); 535 536 if (destSize < srcSize) 537 return false; 538 } else if (Argument* A = dyn_cast<Argument>(cpyDest)) { 539 // If the destination is an sret parameter then only accesses that are 540 // outside of the returned struct type can trap. 541 if (!A->hasStructRetAttr()) 542 return false; 543 544 const Type* StructTy = cast<PointerType>(A->getType())->getElementType(); 545 uint64_t destSize = TD.getTypeAllocSize(StructTy); 546 547 if (destSize < srcSize) 548 return false; 549 } else { 550 return false; 551 } 552 553 // Check that src is not accessed except via the call and the memcpy. This 554 // guarantees that it holds only undefined values when passed in (so the final 555 // memcpy can be dropped), that it is not read or written between the call and 556 // the memcpy, and that writing beyond the end of it is undefined. 557 SmallVector<User*, 8> srcUseList(srcAlloca->use_begin(), 558 srcAlloca->use_end()); 559 while (!srcUseList.empty()) { 560 User* UI = srcUseList.back(); 561 srcUseList.pop_back(); 562 563 if (isa<BitCastInst>(UI)) { 564 for (User::use_iterator I = UI->use_begin(), E = UI->use_end(); 565 I != E; ++I) 566 srcUseList.push_back(*I); 567 } else if (GetElementPtrInst* G = dyn_cast<GetElementPtrInst>(UI)) { 568 if (G->hasAllZeroIndices()) 569 for (User::use_iterator I = UI->use_begin(), E = UI->use_end(); 570 I != E; ++I) 571 srcUseList.push_back(*I); 572 else 573 return false; 574 } else if (UI != C && UI != cpy) { 575 return false; 576 } 577 } 578 579 // Since we're changing the parameter to the callsite, we need to make sure 580 // that what would be the new parameter dominates the callsite. 581 DominatorTree& DT = getAnalysis<DominatorTree>(); 582 if (Instruction* cpyDestInst = dyn_cast<Instruction>(cpyDest)) 583 if (!DT.dominates(cpyDestInst, C)) 584 return false; 585 586 // In addition to knowing that the call does not access src in some 587 // unexpected manner, for example via a global, which we deduce from 588 // the use analysis, we also need to know that it does not sneakily 589 // access dest. We rely on AA to figure this out for us. 590 AliasAnalysis& AA = getAnalysis<AliasAnalysis>(); 591 if (AA.getModRefInfo(C, cpy->getRawDest(), srcSize) != 592 AliasAnalysis::NoModRef) 593 return false; 594 595 // All the checks have passed, so do the transformation. 596 bool changedArgument = false; 597 for (unsigned i = 0; i < CS.arg_size(); ++i) 598 if (CS.getArgument(i)->stripPointerCasts() == cpySrc) { 599 if (cpySrc->getType() != cpyDest->getType()) 600 cpyDest = CastInst::CreatePointerCast(cpyDest, cpySrc->getType(), 601 cpyDest->getName(), C); 602 changedArgument = true; 603 if (CS.getArgument(i)->getType() != cpyDest->getType()) 604 CS.setArgument(i, CastInst::CreatePointerCast(cpyDest, 605 CS.getArgument(i)->getType(), cpyDest->getName(), C)); 606 else 607 CS.setArgument(i, cpyDest); 608 } 609 610 if (!changedArgument) 611 return false; 612 613 // Drop any cached information about the call, because we may have changed 614 // its dependence information by changing its parameter. 615 MemoryDependenceAnalysis& MD = getAnalysis<MemoryDependenceAnalysis>(); 616 MD.removeInstruction(C); 617 618 // Remove the memcpy 619 MD.removeInstruction(cpy); 620 cpy->eraseFromParent(); 621 NumMemCpyInstr++; 622 623 return true; 624 } 625 626 /// processMemCpy - perform simplication of memcpy's. If we have memcpy A which 627 /// copies X to Y, and memcpy B which copies Y to Z, then we can rewrite B to be 628 /// a memcpy from X to Z (or potentially a memmove, depending on circumstances). 629 /// This allows later passes to remove the first memcpy altogether. 630 bool MemCpyOpt::processMemCpy(MemCpyInst* M) { 631 MemoryDependenceAnalysis& MD = getAnalysis<MemoryDependenceAnalysis>(); 632 633 // The are two possible optimizations we can do for memcpy: 634 // a) memcpy-memcpy xform which exposes redundance for DSE 635 // b) call-memcpy xform for return slot optimization 636 MemDepResult dep = MD.getDependency(M); 637 if (!dep.isClobber()) 638 return false; 639 if (!isa<MemCpyInst>(dep.getInst())) { 640 if (CallInst* C = dyn_cast<CallInst>(dep.getInst())) 641 return performCallSlotOptzn(M, C); 642 return false; 643 } 644 645 MemCpyInst* MDep = cast<MemCpyInst>(dep.getInst()); 646 647 // We can only transforms memcpy's where the dest of one is the source of the 648 // other 649 if (M->getSource() != MDep->getDest()) 650 return false; 651 652 // Second, the length of the memcpy's must be the same, or the preceeding one 653 // must be larger than the following one. 654 ConstantInt* C1 = dyn_cast<ConstantInt>(MDep->getLength()); 655 ConstantInt* C2 = dyn_cast<ConstantInt>(M->getLength()); 656 if (!C1 || !C2) 657 return false; 658 659 uint64_t DepSize = C1->getValue().getZExtValue(); 660 uint64_t CpySize = C2->getValue().getZExtValue(); 661 662 if (DepSize < CpySize) 663 return false; 664 665 // Finally, we have to make sure that the dest of the second does not 666 // alias the source of the first 667 AliasAnalysis& AA = getAnalysis<AliasAnalysis>(); 668 if (AA.alias(M->getRawDest(), CpySize, MDep->getRawSource(), DepSize) != 669 AliasAnalysis::NoAlias) 670 return false; 671 else if (AA.alias(M->getRawDest(), CpySize, M->getRawSource(), CpySize) != 672 AliasAnalysis::NoAlias) 673 return false; 674 else if (AA.alias(MDep->getRawDest(), DepSize, MDep->getRawSource(), DepSize) 675 != AliasAnalysis::NoAlias) 676 return false; 677 678 // If all checks passed, then we can transform these memcpy's 679 const Type *Tys[1]; 680 Tys[0] = M->getLength()->getType(); 681 Function* MemCpyFun = Intrinsic::getDeclaration( 682 M->getParent()->getParent()->getParent(), 683 M->getIntrinsicID(), Tys, 1); 684 685 Value *Args[4] = { 686 M->getRawDest(), MDep->getRawSource(), M->getLength(), M->getAlignmentCst() 687 }; 688 689 CallInst* C = CallInst::Create(MemCpyFun, Args, Args+4, "", M); 690 691 692 // If C and M don't interfere, then this is a valid transformation. If they 693 // did, this would mean that the two sources overlap, which would be bad. 694 if (MD.getDependency(C) == dep) { 695 MD.removeInstruction(M); 696 M->eraseFromParent(); 697 NumMemCpyInstr++; 698 return true; 699 } 700 701 // Otherwise, there was no point in doing this, so we remove the call we 702 // inserted and act like nothing happened. 703 MD.removeInstruction(C); 704 C->eraseFromParent(); 705 return false; 706 } 707 708 // MemCpyOpt::runOnFunction - This is the main transformation entry point for a 709 // function. 710 // 711 bool MemCpyOpt::runOnFunction(Function& F) { 712 713 bool changed = false; 714 bool shouldContinue = true; 715 716 while (shouldContinue) { 717 shouldContinue = iterateOnFunction(F); 718 changed |= shouldContinue; 719 } 720 721 return changed; 722 } 723 724 725 // MemCpyOpt::iterateOnFunction - Executes one iteration of GVN 726 bool MemCpyOpt::iterateOnFunction(Function &F) { 727 bool changed_function = false; 728 729 // Walk all instruction in the function 730 for (Function::iterator BB = F.begin(), BBE = F.end(); BB != BBE; ++BB) { 731 for (BasicBlock::iterator BI = BB->begin(), BE = BB->end(); 732 BI != BE;) { 733 // Avoid invalidating the iterator 734 Instruction* I = BI++; 735 736 if (StoreInst *SI = dyn_cast<StoreInst>(I)) 737 changed_function |= processStore(SI, BI); 738 else if (MemCpyInst* M = dyn_cast<MemCpyInst>(I)) { 739 changed_function |= processMemCpy(M); 740 } 741 } 742 } 743 744 return changed_function; 745 } 746