1 //===- MemoryDependenceAnalysis.cpp - Mem Deps Implementation --*- C++ -*-===// 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 file implements an analysis that determines, for a given memory 11 // operation, what preceding memory operations it depends on. It builds on 12 // alias analysis information, and tries to provide a lazy, caching interface to 13 // a common kind of alias information query. 14 // 15 //===----------------------------------------------------------------------===// 16 17 #define DEBUG_TYPE "memdep" 18 #include "llvm/Analysis/MemoryDependenceAnalysis.h" 19 #include "llvm/Analysis/ValueTracking.h" 20 #include "llvm/Instructions.h" 21 #include "llvm/IntrinsicInst.h" 22 #include "llvm/Function.h" 23 #include "llvm/LLVMContext.h" 24 #include "llvm/Analysis/AliasAnalysis.h" 25 #include "llvm/Analysis/CaptureTracking.h" 26 #include "llvm/Analysis/Dominators.h" 27 #include "llvm/Analysis/InstructionSimplify.h" 28 #include "llvm/Analysis/MemoryBuiltins.h" 29 #include "llvm/Analysis/PHITransAddr.h" 30 #include "llvm/Analysis/ValueTracking.h" 31 #include "llvm/ADT/Statistic.h" 32 #include "llvm/ADT/STLExtras.h" 33 #include "llvm/Support/PredIteratorCache.h" 34 #include "llvm/Support/Debug.h" 35 #include "llvm/Target/TargetData.h" 36 using namespace llvm; 37 38 STATISTIC(NumCacheNonLocal, "Number of fully cached non-local responses"); 39 STATISTIC(NumCacheDirtyNonLocal, "Number of dirty cached non-local responses"); 40 STATISTIC(NumUncacheNonLocal, "Number of uncached non-local responses"); 41 42 STATISTIC(NumCacheNonLocalPtr, 43 "Number of fully cached non-local ptr responses"); 44 STATISTIC(NumCacheDirtyNonLocalPtr, 45 "Number of cached, but dirty, non-local ptr responses"); 46 STATISTIC(NumUncacheNonLocalPtr, 47 "Number of uncached non-local ptr responses"); 48 STATISTIC(NumCacheCompleteNonLocalPtr, 49 "Number of block queries that were completely cached"); 50 51 // Limit for the number of instructions to scan in a block. 52 // FIXME: Figure out what a sane value is for this. 53 // (500 is relatively insane.) 54 static const int BlockScanLimit = 500; 55 56 char MemoryDependenceAnalysis::ID = 0; 57 58 // Register this pass... 59 INITIALIZE_PASS_BEGIN(MemoryDependenceAnalysis, "memdep", 60 "Memory Dependence Analysis", false, true) 61 INITIALIZE_AG_DEPENDENCY(AliasAnalysis) 62 INITIALIZE_PASS_END(MemoryDependenceAnalysis, "memdep", 63 "Memory Dependence Analysis", false, true) 64 65 MemoryDependenceAnalysis::MemoryDependenceAnalysis() 66 : FunctionPass(ID), PredCache(0) { 67 initializeMemoryDependenceAnalysisPass(*PassRegistry::getPassRegistry()); 68 } 69 MemoryDependenceAnalysis::~MemoryDependenceAnalysis() { 70 } 71 72 /// Clean up memory in between runs 73 void MemoryDependenceAnalysis::releaseMemory() { 74 LocalDeps.clear(); 75 NonLocalDeps.clear(); 76 NonLocalPointerDeps.clear(); 77 ReverseLocalDeps.clear(); 78 ReverseNonLocalDeps.clear(); 79 ReverseNonLocalPtrDeps.clear(); 80 PredCache->clear(); 81 } 82 83 84 85 /// getAnalysisUsage - Does not modify anything. It uses Alias Analysis. 86 /// 87 void MemoryDependenceAnalysis::getAnalysisUsage(AnalysisUsage &AU) const { 88 AU.setPreservesAll(); 89 AU.addRequiredTransitive<AliasAnalysis>(); 90 } 91 92 bool MemoryDependenceAnalysis::runOnFunction(Function &) { 93 AA = &getAnalysis<AliasAnalysis>(); 94 TD = getAnalysisIfAvailable<TargetData>(); 95 DT = getAnalysisIfAvailable<DominatorTree>(); 96 if (PredCache == 0) 97 PredCache.reset(new PredIteratorCache()); 98 return false; 99 } 100 101 /// RemoveFromReverseMap - This is a helper function that removes Val from 102 /// 'Inst's set in ReverseMap. If the set becomes empty, remove Inst's entry. 103 template <typename KeyTy> 104 static void RemoveFromReverseMap(DenseMap<Instruction*, 105 SmallPtrSet<KeyTy, 4> > &ReverseMap, 106 Instruction *Inst, KeyTy Val) { 107 typename DenseMap<Instruction*, SmallPtrSet<KeyTy, 4> >::iterator 108 InstIt = ReverseMap.find(Inst); 109 assert(InstIt != ReverseMap.end() && "Reverse map out of sync?"); 110 bool Found = InstIt->second.erase(Val); 111 assert(Found && "Invalid reverse map!"); (void)Found; 112 if (InstIt->second.empty()) 113 ReverseMap.erase(InstIt); 114 } 115 116 /// GetLocation - If the given instruction references a specific memory 117 /// location, fill in Loc with the details, otherwise set Loc.Ptr to null. 118 /// Return a ModRefInfo value describing the general behavior of the 119 /// instruction. 120 static 121 AliasAnalysis::ModRefResult GetLocation(const Instruction *Inst, 122 AliasAnalysis::Location &Loc, 123 AliasAnalysis *AA) { 124 if (const LoadInst *LI = dyn_cast<LoadInst>(Inst)) { 125 if (LI->isUnordered()) { 126 Loc = AA->getLocation(LI); 127 return AliasAnalysis::Ref; 128 } else if (LI->getOrdering() == Monotonic) { 129 Loc = AA->getLocation(LI); 130 return AliasAnalysis::ModRef; 131 } 132 Loc = AliasAnalysis::Location(); 133 return AliasAnalysis::ModRef; 134 } 135 136 if (const StoreInst *SI = dyn_cast<StoreInst>(Inst)) { 137 if (SI->isUnordered()) { 138 Loc = AA->getLocation(SI); 139 return AliasAnalysis::Mod; 140 } else if (SI->getOrdering() == Monotonic) { 141 Loc = AA->getLocation(SI); 142 return AliasAnalysis::ModRef; 143 } 144 Loc = AliasAnalysis::Location(); 145 return AliasAnalysis::ModRef; 146 } 147 148 if (const VAArgInst *V = dyn_cast<VAArgInst>(Inst)) { 149 Loc = AA->getLocation(V); 150 return AliasAnalysis::ModRef; 151 } 152 153 if (const CallInst *CI = isFreeCall(Inst)) { 154 // calls to free() deallocate the entire structure 155 Loc = AliasAnalysis::Location(CI->getArgOperand(0)); 156 return AliasAnalysis::Mod; 157 } 158 159 if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) 160 switch (II->getIntrinsicID()) { 161 case Intrinsic::lifetime_start: 162 case Intrinsic::lifetime_end: 163 case Intrinsic::invariant_start: 164 Loc = AliasAnalysis::Location(II->getArgOperand(1), 165 cast<ConstantInt>(II->getArgOperand(0)) 166 ->getZExtValue(), 167 II->getMetadata(LLVMContext::MD_tbaa)); 168 // These intrinsics don't really modify the memory, but returning Mod 169 // will allow them to be handled conservatively. 170 return AliasAnalysis::Mod; 171 case Intrinsic::invariant_end: 172 Loc = AliasAnalysis::Location(II->getArgOperand(2), 173 cast<ConstantInt>(II->getArgOperand(1)) 174 ->getZExtValue(), 175 II->getMetadata(LLVMContext::MD_tbaa)); 176 // These intrinsics don't really modify the memory, but returning Mod 177 // will allow them to be handled conservatively. 178 return AliasAnalysis::Mod; 179 default: 180 break; 181 } 182 183 // Otherwise, just do the coarse-grained thing that always works. 184 if (Inst->mayWriteToMemory()) 185 return AliasAnalysis::ModRef; 186 if (Inst->mayReadFromMemory()) 187 return AliasAnalysis::Ref; 188 return AliasAnalysis::NoModRef; 189 } 190 191 /// getCallSiteDependencyFrom - Private helper for finding the local 192 /// dependencies of a call site. 193 MemDepResult MemoryDependenceAnalysis:: 194 getCallSiteDependencyFrom(CallSite CS, bool isReadOnlyCall, 195 BasicBlock::iterator ScanIt, BasicBlock *BB) { 196 unsigned Limit = BlockScanLimit; 197 198 // Walk backwards through the block, looking for dependencies 199 while (ScanIt != BB->begin()) { 200 // Limit the amount of scanning we do so we don't end up with quadratic 201 // running time on extreme testcases. 202 --Limit; 203 if (!Limit) 204 return MemDepResult::getUnknown(); 205 206 Instruction *Inst = --ScanIt; 207 208 // If this inst is a memory op, get the pointer it accessed 209 AliasAnalysis::Location Loc; 210 AliasAnalysis::ModRefResult MR = GetLocation(Inst, Loc, AA); 211 if (Loc.Ptr) { 212 // A simple instruction. 213 if (AA->getModRefInfo(CS, Loc) != AliasAnalysis::NoModRef) 214 return MemDepResult::getClobber(Inst); 215 continue; 216 } 217 218 if (CallSite InstCS = cast<Value>(Inst)) { 219 // Debug intrinsics don't cause dependences. 220 if (isa<DbgInfoIntrinsic>(Inst)) continue; 221 // If these two calls do not interfere, look past it. 222 switch (AA->getModRefInfo(CS, InstCS)) { 223 case AliasAnalysis::NoModRef: 224 // If the two calls are the same, return InstCS as a Def, so that 225 // CS can be found redundant and eliminated. 226 if (isReadOnlyCall && !(MR & AliasAnalysis::Mod) && 227 CS.getInstruction()->isIdenticalToWhenDefined(Inst)) 228 return MemDepResult::getDef(Inst); 229 230 // Otherwise if the two calls don't interact (e.g. InstCS is readnone) 231 // keep scanning. 232 break; 233 default: 234 return MemDepResult::getClobber(Inst); 235 } 236 } 237 } 238 239 // No dependence found. If this is the entry block of the function, it is 240 // unknown, otherwise it is non-local. 241 if (BB != &BB->getParent()->getEntryBlock()) 242 return MemDepResult::getNonLocal(); 243 return MemDepResult::getNonFuncLocal(); 244 } 245 246 /// isLoadLoadClobberIfExtendedToFullWidth - Return true if LI is a load that 247 /// would fully overlap MemLoc if done as a wider legal integer load. 248 /// 249 /// MemLocBase, MemLocOffset are lazily computed here the first time the 250 /// base/offs of memloc is needed. 251 static bool 252 isLoadLoadClobberIfExtendedToFullWidth(const AliasAnalysis::Location &MemLoc, 253 const Value *&MemLocBase, 254 int64_t &MemLocOffs, 255 const LoadInst *LI, 256 const TargetData *TD) { 257 // If we have no target data, we can't do this. 258 if (TD == 0) return false; 259 260 // If we haven't already computed the base/offset of MemLoc, do so now. 261 if (MemLocBase == 0) 262 MemLocBase = GetPointerBaseWithConstantOffset(MemLoc.Ptr, MemLocOffs, *TD); 263 264 unsigned Size = MemoryDependenceAnalysis:: 265 getLoadLoadClobberFullWidthSize(MemLocBase, MemLocOffs, MemLoc.Size, 266 LI, *TD); 267 return Size != 0; 268 } 269 270 /// getLoadLoadClobberFullWidthSize - This is a little bit of analysis that 271 /// looks at a memory location for a load (specified by MemLocBase, Offs, 272 /// and Size) and compares it against a load. If the specified load could 273 /// be safely widened to a larger integer load that is 1) still efficient, 274 /// 2) safe for the target, and 3) would provide the specified memory 275 /// location value, then this function returns the size in bytes of the 276 /// load width to use. If not, this returns zero. 277 unsigned MemoryDependenceAnalysis:: 278 getLoadLoadClobberFullWidthSize(const Value *MemLocBase, int64_t MemLocOffs, 279 unsigned MemLocSize, const LoadInst *LI, 280 const TargetData &TD) { 281 // We can only extend simple integer loads. 282 if (!isa<IntegerType>(LI->getType()) || !LI->isSimple()) return 0; 283 284 // Get the base of this load. 285 int64_t LIOffs = 0; 286 const Value *LIBase = 287 GetPointerBaseWithConstantOffset(LI->getPointerOperand(), LIOffs, TD); 288 289 // If the two pointers are not based on the same pointer, we can't tell that 290 // they are related. 291 if (LIBase != MemLocBase) return 0; 292 293 // Okay, the two values are based on the same pointer, but returned as 294 // no-alias. This happens when we have things like two byte loads at "P+1" 295 // and "P+3". Check to see if increasing the size of the "LI" load up to its 296 // alignment (or the largest native integer type) will allow us to load all 297 // the bits required by MemLoc. 298 299 // If MemLoc is before LI, then no widening of LI will help us out. 300 if (MemLocOffs < LIOffs) return 0; 301 302 // Get the alignment of the load in bytes. We assume that it is safe to load 303 // any legal integer up to this size without a problem. For example, if we're 304 // looking at an i8 load on x86-32 that is known 1024 byte aligned, we can 305 // widen it up to an i32 load. If it is known 2-byte aligned, we can widen it 306 // to i16. 307 unsigned LoadAlign = LI->getAlignment(); 308 309 int64_t MemLocEnd = MemLocOffs+MemLocSize; 310 311 // If no amount of rounding up will let MemLoc fit into LI, then bail out. 312 if (LIOffs+LoadAlign < MemLocEnd) return 0; 313 314 // This is the size of the load to try. Start with the next larger power of 315 // two. 316 unsigned NewLoadByteSize = LI->getType()->getPrimitiveSizeInBits()/8U; 317 NewLoadByteSize = NextPowerOf2(NewLoadByteSize); 318 319 while (1) { 320 // If this load size is bigger than our known alignment or would not fit 321 // into a native integer register, then we fail. 322 if (NewLoadByteSize > LoadAlign || 323 !TD.fitsInLegalInteger(NewLoadByteSize*8)) 324 return 0; 325 326 // If a load of this width would include all of MemLoc, then we succeed. 327 if (LIOffs+NewLoadByteSize >= MemLocEnd) 328 return NewLoadByteSize; 329 330 NewLoadByteSize <<= 1; 331 } 332 } 333 334 namespace { 335 /// Only find pointer captures which happen before the given instruction. Uses 336 /// the dominator tree to determine whether one instruction is before another. 337 struct CapturesBefore : public CaptureTracker { 338 CapturesBefore(const Instruction *I, DominatorTree *DT) 339 : BeforeHere(I), DT(DT), Captured(false) {} 340 341 void tooManyUses() { Captured = true; } 342 343 bool shouldExplore(Use *U) { 344 Instruction *I = cast<Instruction>(U->getUser()); 345 if (BeforeHere != I && DT->dominates(BeforeHere, I)) 346 return false; 347 return true; 348 } 349 350 bool captured(Use *U) { 351 Instruction *I = cast<Instruction>(U->getUser()); 352 if (BeforeHere != I && DT->dominates(BeforeHere, I)) 353 return false; 354 Captured = true; 355 return true; 356 } 357 358 const Instruction *BeforeHere; 359 DominatorTree *DT; 360 361 bool Captured; 362 }; 363 } 364 365 AliasAnalysis::ModRefResult 366 MemoryDependenceAnalysis::getModRefInfo(const Instruction *Inst, 367 const AliasAnalysis::Location &MemLoc) { 368 AliasAnalysis::ModRefResult MR = AA->getModRefInfo(Inst, MemLoc); 369 if (MR != AliasAnalysis::ModRef) return MR; 370 371 // FIXME: this is really just shoring-up a deficiency in alias analysis. 372 // BasicAA isn't willing to spend linear time determining whether an alloca 373 // was captured before or after this particular call, while we are. However, 374 // with a smarter AA in place, this test is just wasting compile time. 375 if (!DT) return AliasAnalysis::ModRef; 376 const Value *Object = GetUnderlyingObject(MemLoc.Ptr, TD); 377 if (!isIdentifiedObject(Object) || isa<GlobalValue>(Object)) 378 return AliasAnalysis::ModRef; 379 ImmutableCallSite CS(Inst); 380 if (!CS.getInstruction()) return AliasAnalysis::ModRef; 381 382 CapturesBefore CB(Inst, DT); 383 llvm::PointerMayBeCaptured(Object, &CB); 384 385 if (isa<Constant>(Object) || CS.getInstruction() == Object || CB.Captured) 386 return AliasAnalysis::ModRef; 387 388 unsigned ArgNo = 0; 389 for (ImmutableCallSite::arg_iterator CI = CS.arg_begin(), CE = CS.arg_end(); 390 CI != CE; ++CI, ++ArgNo) { 391 // Only look at the no-capture or byval pointer arguments. If this 392 // pointer were passed to arguments that were neither of these, then it 393 // couldn't be no-capture. 394 if (!(*CI)->getType()->isPointerTy() || 395 (!CS.doesNotCapture(ArgNo) && !CS.isByValArgument(ArgNo))) 396 continue; 397 398 // If this is a no-capture pointer argument, see if we can tell that it 399 // is impossible to alias the pointer we're checking. If not, we have to 400 // assume that the call could touch the pointer, even though it doesn't 401 // escape. 402 if (!AA->isNoAlias(AliasAnalysis::Location(*CI), 403 AliasAnalysis::Location(Object))) { 404 return AliasAnalysis::ModRef; 405 } 406 } 407 return AliasAnalysis::NoModRef; 408 } 409 410 /// getPointerDependencyFrom - Return the instruction on which a memory 411 /// location depends. If isLoad is true, this routine ignores may-aliases with 412 /// read-only operations. If isLoad is false, this routine ignores may-aliases 413 /// with reads from read-only locations. 414 MemDepResult MemoryDependenceAnalysis:: 415 getPointerDependencyFrom(const AliasAnalysis::Location &MemLoc, bool isLoad, 416 BasicBlock::iterator ScanIt, BasicBlock *BB) { 417 418 const Value *MemLocBase = 0; 419 int64_t MemLocOffset = 0; 420 421 unsigned Limit = BlockScanLimit; 422 423 // Walk backwards through the basic block, looking for dependencies. 424 while (ScanIt != BB->begin()) { 425 // Limit the amount of scanning we do so we don't end up with quadratic 426 // running time on extreme testcases. 427 --Limit; 428 if (!Limit) 429 return MemDepResult::getUnknown(); 430 431 Instruction *Inst = --ScanIt; 432 433 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) { 434 // Debug intrinsics don't (and can't) cause dependences. 435 if (isa<DbgInfoIntrinsic>(II)) continue; 436 437 // If we reach a lifetime begin or end marker, then the query ends here 438 // because the value is undefined. 439 if (II->getIntrinsicID() == Intrinsic::lifetime_start) { 440 // FIXME: This only considers queries directly on the invariant-tagged 441 // pointer, not on query pointers that are indexed off of them. It'd 442 // be nice to handle that at some point (the right approach is to use 443 // GetPointerBaseWithConstantOffset). 444 if (AA->isMustAlias(AliasAnalysis::Location(II->getArgOperand(1)), 445 MemLoc)) 446 return MemDepResult::getDef(II); 447 continue; 448 } 449 } 450 451 // Values depend on loads if the pointers are must aliased. This means that 452 // a load depends on another must aliased load from the same value. 453 if (LoadInst *LI = dyn_cast<LoadInst>(Inst)) { 454 // Atomic loads have complications involved. 455 // FIXME: This is overly conservative. 456 if (!LI->isUnordered()) 457 return MemDepResult::getClobber(LI); 458 459 AliasAnalysis::Location LoadLoc = AA->getLocation(LI); 460 461 // If we found a pointer, check if it could be the same as our pointer. 462 AliasAnalysis::AliasResult R = AA->alias(LoadLoc, MemLoc); 463 464 if (isLoad) { 465 if (R == AliasAnalysis::NoAlias) { 466 // If this is an over-aligned integer load (for example, 467 // "load i8* %P, align 4") see if it would obviously overlap with the 468 // queried location if widened to a larger load (e.g. if the queried 469 // location is 1 byte at P+1). If so, return it as a load/load 470 // clobber result, allowing the client to decide to widen the load if 471 // it wants to. 472 if (IntegerType *ITy = dyn_cast<IntegerType>(LI->getType())) 473 if (LI->getAlignment()*8 > ITy->getPrimitiveSizeInBits() && 474 isLoadLoadClobberIfExtendedToFullWidth(MemLoc, MemLocBase, 475 MemLocOffset, LI, TD)) 476 return MemDepResult::getClobber(Inst); 477 478 continue; 479 } 480 481 // Must aliased loads are defs of each other. 482 if (R == AliasAnalysis::MustAlias) 483 return MemDepResult::getDef(Inst); 484 485 #if 0 // FIXME: Temporarily disabled. GVN is cleverly rewriting loads 486 // in terms of clobbering loads, but since it does this by looking 487 // at the clobbering load directly, it doesn't know about any 488 // phi translation that may have happened along the way. 489 490 // If we have a partial alias, then return this as a clobber for the 491 // client to handle. 492 if (R == AliasAnalysis::PartialAlias) 493 return MemDepResult::getClobber(Inst); 494 #endif 495 496 // Random may-alias loads don't depend on each other without a 497 // dependence. 498 continue; 499 } 500 501 // Stores don't depend on other no-aliased accesses. 502 if (R == AliasAnalysis::NoAlias) 503 continue; 504 505 // Stores don't alias loads from read-only memory. 506 if (AA->pointsToConstantMemory(LoadLoc)) 507 continue; 508 509 // Stores depend on may/must aliased loads. 510 return MemDepResult::getDef(Inst); 511 } 512 513 if (StoreInst *SI = dyn_cast<StoreInst>(Inst)) { 514 // Atomic stores have complications involved. 515 // FIXME: This is overly conservative. 516 if (!SI->isUnordered()) 517 return MemDepResult::getClobber(SI); 518 519 // If alias analysis can tell that this store is guaranteed to not modify 520 // the query pointer, ignore it. Use getModRefInfo to handle cases where 521 // the query pointer points to constant memory etc. 522 if (AA->getModRefInfo(SI, MemLoc) == AliasAnalysis::NoModRef) 523 continue; 524 525 // Ok, this store might clobber the query pointer. Check to see if it is 526 // a must alias: in this case, we want to return this as a def. 527 AliasAnalysis::Location StoreLoc = AA->getLocation(SI); 528 529 // If we found a pointer, check if it could be the same as our pointer. 530 AliasAnalysis::AliasResult R = AA->alias(StoreLoc, MemLoc); 531 532 if (R == AliasAnalysis::NoAlias) 533 continue; 534 if (R == AliasAnalysis::MustAlias) 535 return MemDepResult::getDef(Inst); 536 return MemDepResult::getClobber(Inst); 537 } 538 539 // If this is an allocation, and if we know that the accessed pointer is to 540 // the allocation, return Def. This means that there is no dependence and 541 // the access can be optimized based on that. For example, a load could 542 // turn into undef. 543 // Note: Only determine this to be a malloc if Inst is the malloc call, not 544 // a subsequent bitcast of the malloc call result. There can be stores to 545 // the malloced memory between the malloc call and its bitcast uses, and we 546 // need to continue scanning until the malloc call. 547 if (isa<AllocaInst>(Inst) || 548 (isa<CallInst>(Inst) && extractMallocCall(Inst))) { 549 const Value *AccessPtr = GetUnderlyingObject(MemLoc.Ptr, TD); 550 551 if (AccessPtr == Inst || AA->isMustAlias(Inst, AccessPtr)) 552 return MemDepResult::getDef(Inst); 553 continue; 554 } 555 556 // See if this instruction (e.g. a call or vaarg) mod/ref's the pointer. 557 switch (getModRefInfo(Inst, MemLoc)) { 558 case AliasAnalysis::NoModRef: 559 // If the call has no effect on the queried pointer, just ignore it. 560 continue; 561 case AliasAnalysis::Mod: 562 return MemDepResult::getClobber(Inst); 563 case AliasAnalysis::Ref: 564 // If the call is known to never store to the pointer, and if this is a 565 // load query, we can safely ignore it (scan past it). 566 if (isLoad) 567 continue; 568 default: 569 // Otherwise, there is a potential dependence. Return a clobber. 570 return MemDepResult::getClobber(Inst); 571 } 572 } 573 574 // No dependence found. If this is the entry block of the function, it is 575 // unknown, otherwise it is non-local. 576 if (BB != &BB->getParent()->getEntryBlock()) 577 return MemDepResult::getNonLocal(); 578 return MemDepResult::getNonFuncLocal(); 579 } 580 581 /// getDependency - Return the instruction on which a memory operation 582 /// depends. 583 MemDepResult MemoryDependenceAnalysis::getDependency(Instruction *QueryInst) { 584 Instruction *ScanPos = QueryInst; 585 586 // Check for a cached result 587 MemDepResult &LocalCache = LocalDeps[QueryInst]; 588 589 // If the cached entry is non-dirty, just return it. Note that this depends 590 // on MemDepResult's default constructing to 'dirty'. 591 if (!LocalCache.isDirty()) 592 return LocalCache; 593 594 // Otherwise, if we have a dirty entry, we know we can start the scan at that 595 // instruction, which may save us some work. 596 if (Instruction *Inst = LocalCache.getInst()) { 597 ScanPos = Inst; 598 599 RemoveFromReverseMap(ReverseLocalDeps, Inst, QueryInst); 600 } 601 602 BasicBlock *QueryParent = QueryInst->getParent(); 603 604 // Do the scan. 605 if (BasicBlock::iterator(QueryInst) == QueryParent->begin()) { 606 // No dependence found. If this is the entry block of the function, it is 607 // unknown, otherwise it is non-local. 608 if (QueryParent != &QueryParent->getParent()->getEntryBlock()) 609 LocalCache = MemDepResult::getNonLocal(); 610 else 611 LocalCache = MemDepResult::getNonFuncLocal(); 612 } else { 613 AliasAnalysis::Location MemLoc; 614 AliasAnalysis::ModRefResult MR = GetLocation(QueryInst, MemLoc, AA); 615 if (MemLoc.Ptr) { 616 // If we can do a pointer scan, make it happen. 617 bool isLoad = !(MR & AliasAnalysis::Mod); 618 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(QueryInst)) 619 isLoad |= II->getIntrinsicID() == Intrinsic::lifetime_start; 620 621 LocalCache = getPointerDependencyFrom(MemLoc, isLoad, ScanPos, 622 QueryParent); 623 } else if (isa<CallInst>(QueryInst) || isa<InvokeInst>(QueryInst)) { 624 CallSite QueryCS(QueryInst); 625 bool isReadOnly = AA->onlyReadsMemory(QueryCS); 626 LocalCache = getCallSiteDependencyFrom(QueryCS, isReadOnly, ScanPos, 627 QueryParent); 628 } else 629 // Non-memory instruction. 630 LocalCache = MemDepResult::getUnknown(); 631 } 632 633 // Remember the result! 634 if (Instruction *I = LocalCache.getInst()) 635 ReverseLocalDeps[I].insert(QueryInst); 636 637 return LocalCache; 638 } 639 640 #ifndef NDEBUG 641 /// AssertSorted - This method is used when -debug is specified to verify that 642 /// cache arrays are properly kept sorted. 643 static void AssertSorted(MemoryDependenceAnalysis::NonLocalDepInfo &Cache, 644 int Count = -1) { 645 if (Count == -1) Count = Cache.size(); 646 if (Count == 0) return; 647 648 for (unsigned i = 1; i != unsigned(Count); ++i) 649 assert(!(Cache[i] < Cache[i-1]) && "Cache isn't sorted!"); 650 } 651 #endif 652 653 /// getNonLocalCallDependency - Perform a full dependency query for the 654 /// specified call, returning the set of blocks that the value is 655 /// potentially live across. The returned set of results will include a 656 /// "NonLocal" result for all blocks where the value is live across. 657 /// 658 /// This method assumes the instruction returns a "NonLocal" dependency 659 /// within its own block. 660 /// 661 /// This returns a reference to an internal data structure that may be 662 /// invalidated on the next non-local query or when an instruction is 663 /// removed. Clients must copy this data if they want it around longer than 664 /// that. 665 const MemoryDependenceAnalysis::NonLocalDepInfo & 666 MemoryDependenceAnalysis::getNonLocalCallDependency(CallSite QueryCS) { 667 assert(getDependency(QueryCS.getInstruction()).isNonLocal() && 668 "getNonLocalCallDependency should only be used on calls with non-local deps!"); 669 PerInstNLInfo &CacheP = NonLocalDeps[QueryCS.getInstruction()]; 670 NonLocalDepInfo &Cache = CacheP.first; 671 672 /// DirtyBlocks - This is the set of blocks that need to be recomputed. In 673 /// the cached case, this can happen due to instructions being deleted etc. In 674 /// the uncached case, this starts out as the set of predecessors we care 675 /// about. 676 SmallVector<BasicBlock*, 32> DirtyBlocks; 677 678 if (!Cache.empty()) { 679 // Okay, we have a cache entry. If we know it is not dirty, just return it 680 // with no computation. 681 if (!CacheP.second) { 682 ++NumCacheNonLocal; 683 return Cache; 684 } 685 686 // If we already have a partially computed set of results, scan them to 687 // determine what is dirty, seeding our initial DirtyBlocks worklist. 688 for (NonLocalDepInfo::iterator I = Cache.begin(), E = Cache.end(); 689 I != E; ++I) 690 if (I->getResult().isDirty()) 691 DirtyBlocks.push_back(I->getBB()); 692 693 // Sort the cache so that we can do fast binary search lookups below. 694 std::sort(Cache.begin(), Cache.end()); 695 696 ++NumCacheDirtyNonLocal; 697 //cerr << "CACHED CASE: " << DirtyBlocks.size() << " dirty: " 698 // << Cache.size() << " cached: " << *QueryInst; 699 } else { 700 // Seed DirtyBlocks with each of the preds of QueryInst's block. 701 BasicBlock *QueryBB = QueryCS.getInstruction()->getParent(); 702 for (BasicBlock **PI = PredCache->GetPreds(QueryBB); *PI; ++PI) 703 DirtyBlocks.push_back(*PI); 704 ++NumUncacheNonLocal; 705 } 706 707 // isReadonlyCall - If this is a read-only call, we can be more aggressive. 708 bool isReadonlyCall = AA->onlyReadsMemory(QueryCS); 709 710 SmallPtrSet<BasicBlock*, 64> Visited; 711 712 unsigned NumSortedEntries = Cache.size(); 713 DEBUG(AssertSorted(Cache)); 714 715 // Iterate while we still have blocks to update. 716 while (!DirtyBlocks.empty()) { 717 BasicBlock *DirtyBB = DirtyBlocks.back(); 718 DirtyBlocks.pop_back(); 719 720 // Already processed this block? 721 if (!Visited.insert(DirtyBB)) 722 continue; 723 724 // Do a binary search to see if we already have an entry for this block in 725 // the cache set. If so, find it. 726 DEBUG(AssertSorted(Cache, NumSortedEntries)); 727 NonLocalDepInfo::iterator Entry = 728 std::upper_bound(Cache.begin(), Cache.begin()+NumSortedEntries, 729 NonLocalDepEntry(DirtyBB)); 730 if (Entry != Cache.begin() && prior(Entry)->getBB() == DirtyBB) 731 --Entry; 732 733 NonLocalDepEntry *ExistingResult = 0; 734 if (Entry != Cache.begin()+NumSortedEntries && 735 Entry->getBB() == DirtyBB) { 736 // If we already have an entry, and if it isn't already dirty, the block 737 // is done. 738 if (!Entry->getResult().isDirty()) 739 continue; 740 741 // Otherwise, remember this slot so we can update the value. 742 ExistingResult = &*Entry; 743 } 744 745 // If the dirty entry has a pointer, start scanning from it so we don't have 746 // to rescan the entire block. 747 BasicBlock::iterator ScanPos = DirtyBB->end(); 748 if (ExistingResult) { 749 if (Instruction *Inst = ExistingResult->getResult().getInst()) { 750 ScanPos = Inst; 751 // We're removing QueryInst's use of Inst. 752 RemoveFromReverseMap(ReverseNonLocalDeps, Inst, 753 QueryCS.getInstruction()); 754 } 755 } 756 757 // Find out if this block has a local dependency for QueryInst. 758 MemDepResult Dep; 759 760 if (ScanPos != DirtyBB->begin()) { 761 Dep = getCallSiteDependencyFrom(QueryCS, isReadonlyCall,ScanPos, DirtyBB); 762 } else if (DirtyBB != &DirtyBB->getParent()->getEntryBlock()) { 763 // No dependence found. If this is the entry block of the function, it is 764 // a clobber, otherwise it is unknown. 765 Dep = MemDepResult::getNonLocal(); 766 } else { 767 Dep = MemDepResult::getNonFuncLocal(); 768 } 769 770 // If we had a dirty entry for the block, update it. Otherwise, just add 771 // a new entry. 772 if (ExistingResult) 773 ExistingResult->setResult(Dep); 774 else 775 Cache.push_back(NonLocalDepEntry(DirtyBB, Dep)); 776 777 // If the block has a dependency (i.e. it isn't completely transparent to 778 // the value), remember the association! 779 if (!Dep.isNonLocal()) { 780 // Keep the ReverseNonLocalDeps map up to date so we can efficiently 781 // update this when we remove instructions. 782 if (Instruction *Inst = Dep.getInst()) 783 ReverseNonLocalDeps[Inst].insert(QueryCS.getInstruction()); 784 } else { 785 786 // If the block *is* completely transparent to the load, we need to check 787 // the predecessors of this block. Add them to our worklist. 788 for (BasicBlock **PI = PredCache->GetPreds(DirtyBB); *PI; ++PI) 789 DirtyBlocks.push_back(*PI); 790 } 791 } 792 793 return Cache; 794 } 795 796 /// getNonLocalPointerDependency - Perform a full dependency query for an 797 /// access to the specified (non-volatile) memory location, returning the 798 /// set of instructions that either define or clobber the value. 799 /// 800 /// This method assumes the pointer has a "NonLocal" dependency within its 801 /// own block. 802 /// 803 void MemoryDependenceAnalysis:: 804 getNonLocalPointerDependency(const AliasAnalysis::Location &Loc, bool isLoad, 805 BasicBlock *FromBB, 806 SmallVectorImpl<NonLocalDepResult> &Result) { 807 assert(Loc.Ptr->getType()->isPointerTy() && 808 "Can't get pointer deps of a non-pointer!"); 809 Result.clear(); 810 811 PHITransAddr Address(const_cast<Value *>(Loc.Ptr), TD); 812 813 // This is the set of blocks we've inspected, and the pointer we consider in 814 // each block. Because of critical edges, we currently bail out if querying 815 // a block with multiple different pointers. This can happen during PHI 816 // translation. 817 DenseMap<BasicBlock*, Value*> Visited; 818 if (!getNonLocalPointerDepFromBB(Address, Loc, isLoad, FromBB, 819 Result, Visited, true)) 820 return; 821 Result.clear(); 822 Result.push_back(NonLocalDepResult(FromBB, 823 MemDepResult::getUnknown(), 824 const_cast<Value *>(Loc.Ptr))); 825 } 826 827 /// GetNonLocalInfoForBlock - Compute the memdep value for BB with 828 /// Pointer/PointeeSize using either cached information in Cache or by doing a 829 /// lookup (which may use dirty cache info if available). If we do a lookup, 830 /// add the result to the cache. 831 MemDepResult MemoryDependenceAnalysis:: 832 GetNonLocalInfoForBlock(const AliasAnalysis::Location &Loc, 833 bool isLoad, BasicBlock *BB, 834 NonLocalDepInfo *Cache, unsigned NumSortedEntries) { 835 836 // Do a binary search to see if we already have an entry for this block in 837 // the cache set. If so, find it. 838 NonLocalDepInfo::iterator Entry = 839 std::upper_bound(Cache->begin(), Cache->begin()+NumSortedEntries, 840 NonLocalDepEntry(BB)); 841 if (Entry != Cache->begin() && (Entry-1)->getBB() == BB) 842 --Entry; 843 844 NonLocalDepEntry *ExistingResult = 0; 845 if (Entry != Cache->begin()+NumSortedEntries && Entry->getBB() == BB) 846 ExistingResult = &*Entry; 847 848 // If we have a cached entry, and it is non-dirty, use it as the value for 849 // this dependency. 850 if (ExistingResult && !ExistingResult->getResult().isDirty()) { 851 ++NumCacheNonLocalPtr; 852 return ExistingResult->getResult(); 853 } 854 855 // Otherwise, we have to scan for the value. If we have a dirty cache 856 // entry, start scanning from its position, otherwise we scan from the end 857 // of the block. 858 BasicBlock::iterator ScanPos = BB->end(); 859 if (ExistingResult && ExistingResult->getResult().getInst()) { 860 assert(ExistingResult->getResult().getInst()->getParent() == BB && 861 "Instruction invalidated?"); 862 ++NumCacheDirtyNonLocalPtr; 863 ScanPos = ExistingResult->getResult().getInst(); 864 865 // Eliminating the dirty entry from 'Cache', so update the reverse info. 866 ValueIsLoadPair CacheKey(Loc.Ptr, isLoad); 867 RemoveFromReverseMap(ReverseNonLocalPtrDeps, ScanPos, CacheKey); 868 } else { 869 ++NumUncacheNonLocalPtr; 870 } 871 872 // Scan the block for the dependency. 873 MemDepResult Dep = getPointerDependencyFrom(Loc, isLoad, ScanPos, BB); 874 875 // If we had a dirty entry for the block, update it. Otherwise, just add 876 // a new entry. 877 if (ExistingResult) 878 ExistingResult->setResult(Dep); 879 else 880 Cache->push_back(NonLocalDepEntry(BB, Dep)); 881 882 // If the block has a dependency (i.e. it isn't completely transparent to 883 // the value), remember the reverse association because we just added it 884 // to Cache! 885 if (!Dep.isDef() && !Dep.isClobber()) 886 return Dep; 887 888 // Keep the ReverseNonLocalPtrDeps map up to date so we can efficiently 889 // update MemDep when we remove instructions. 890 Instruction *Inst = Dep.getInst(); 891 assert(Inst && "Didn't depend on anything?"); 892 ValueIsLoadPair CacheKey(Loc.Ptr, isLoad); 893 ReverseNonLocalPtrDeps[Inst].insert(CacheKey); 894 return Dep; 895 } 896 897 /// SortNonLocalDepInfoCache - Sort the a NonLocalDepInfo cache, given a certain 898 /// number of elements in the array that are already properly ordered. This is 899 /// optimized for the case when only a few entries are added. 900 static void 901 SortNonLocalDepInfoCache(MemoryDependenceAnalysis::NonLocalDepInfo &Cache, 902 unsigned NumSortedEntries) { 903 switch (Cache.size() - NumSortedEntries) { 904 case 0: 905 // done, no new entries. 906 break; 907 case 2: { 908 // Two new entries, insert the last one into place. 909 NonLocalDepEntry Val = Cache.back(); 910 Cache.pop_back(); 911 MemoryDependenceAnalysis::NonLocalDepInfo::iterator Entry = 912 std::upper_bound(Cache.begin(), Cache.end()-1, Val); 913 Cache.insert(Entry, Val); 914 // FALL THROUGH. 915 } 916 case 1: 917 // One new entry, Just insert the new value at the appropriate position. 918 if (Cache.size() != 1) { 919 NonLocalDepEntry Val = Cache.back(); 920 Cache.pop_back(); 921 MemoryDependenceAnalysis::NonLocalDepInfo::iterator Entry = 922 std::upper_bound(Cache.begin(), Cache.end(), Val); 923 Cache.insert(Entry, Val); 924 } 925 break; 926 default: 927 // Added many values, do a full scale sort. 928 std::sort(Cache.begin(), Cache.end()); 929 break; 930 } 931 } 932 933 /// getNonLocalPointerDepFromBB - Perform a dependency query based on 934 /// pointer/pointeesize starting at the end of StartBB. Add any clobber/def 935 /// results to the results vector and keep track of which blocks are visited in 936 /// 'Visited'. 937 /// 938 /// This has special behavior for the first block queries (when SkipFirstBlock 939 /// is true). In this special case, it ignores the contents of the specified 940 /// block and starts returning dependence info for its predecessors. 941 /// 942 /// This function returns false on success, or true to indicate that it could 943 /// not compute dependence information for some reason. This should be treated 944 /// as a clobber dependence on the first instruction in the predecessor block. 945 bool MemoryDependenceAnalysis:: 946 getNonLocalPointerDepFromBB(const PHITransAddr &Pointer, 947 const AliasAnalysis::Location &Loc, 948 bool isLoad, BasicBlock *StartBB, 949 SmallVectorImpl<NonLocalDepResult> &Result, 950 DenseMap<BasicBlock*, Value*> &Visited, 951 bool SkipFirstBlock) { 952 953 // Look up the cached info for Pointer. 954 ValueIsLoadPair CacheKey(Pointer.getAddr(), isLoad); 955 956 // Set up a temporary NLPI value. If the map doesn't yet have an entry for 957 // CacheKey, this value will be inserted as the associated value. Otherwise, 958 // it'll be ignored, and we'll have to check to see if the cached size and 959 // tbaa tag are consistent with the current query. 960 NonLocalPointerInfo InitialNLPI; 961 InitialNLPI.Size = Loc.Size; 962 InitialNLPI.TBAATag = Loc.TBAATag; 963 964 // Get the NLPI for CacheKey, inserting one into the map if it doesn't 965 // already have one. 966 std::pair<CachedNonLocalPointerInfo::iterator, bool> Pair = 967 NonLocalPointerDeps.insert(std::make_pair(CacheKey, InitialNLPI)); 968 NonLocalPointerInfo *CacheInfo = &Pair.first->second; 969 970 // If we already have a cache entry for this CacheKey, we may need to do some 971 // work to reconcile the cache entry and the current query. 972 if (!Pair.second) { 973 if (CacheInfo->Size < Loc.Size) { 974 // The query's Size is greater than the cached one. Throw out the 975 // cached data and procede with the query at the greater size. 976 CacheInfo->Pair = BBSkipFirstBlockPair(); 977 CacheInfo->Size = Loc.Size; 978 for (NonLocalDepInfo::iterator DI = CacheInfo->NonLocalDeps.begin(), 979 DE = CacheInfo->NonLocalDeps.end(); DI != DE; ++DI) 980 if (Instruction *Inst = DI->getResult().getInst()) 981 RemoveFromReverseMap(ReverseNonLocalPtrDeps, Inst, CacheKey); 982 CacheInfo->NonLocalDeps.clear(); 983 } else if (CacheInfo->Size > Loc.Size) { 984 // This query's Size is less than the cached one. Conservatively restart 985 // the query using the greater size. 986 return getNonLocalPointerDepFromBB(Pointer, 987 Loc.getWithNewSize(CacheInfo->Size), 988 isLoad, StartBB, Result, Visited, 989 SkipFirstBlock); 990 } 991 992 // If the query's TBAATag is inconsistent with the cached one, 993 // conservatively throw out the cached data and restart the query with 994 // no tag if needed. 995 if (CacheInfo->TBAATag != Loc.TBAATag) { 996 if (CacheInfo->TBAATag) { 997 CacheInfo->Pair = BBSkipFirstBlockPair(); 998 CacheInfo->TBAATag = 0; 999 for (NonLocalDepInfo::iterator DI = CacheInfo->NonLocalDeps.begin(), 1000 DE = CacheInfo->NonLocalDeps.end(); DI != DE; ++DI) 1001 if (Instruction *Inst = DI->getResult().getInst()) 1002 RemoveFromReverseMap(ReverseNonLocalPtrDeps, Inst, CacheKey); 1003 CacheInfo->NonLocalDeps.clear(); 1004 } 1005 if (Loc.TBAATag) 1006 return getNonLocalPointerDepFromBB(Pointer, Loc.getWithoutTBAATag(), 1007 isLoad, StartBB, Result, Visited, 1008 SkipFirstBlock); 1009 } 1010 } 1011 1012 NonLocalDepInfo *Cache = &CacheInfo->NonLocalDeps; 1013 1014 // If we have valid cached information for exactly the block we are 1015 // investigating, just return it with no recomputation. 1016 if (CacheInfo->Pair == BBSkipFirstBlockPair(StartBB, SkipFirstBlock)) { 1017 // We have a fully cached result for this query then we can just return the 1018 // cached results and populate the visited set. However, we have to verify 1019 // that we don't already have conflicting results for these blocks. Check 1020 // to ensure that if a block in the results set is in the visited set that 1021 // it was for the same pointer query. 1022 if (!Visited.empty()) { 1023 for (NonLocalDepInfo::iterator I = Cache->begin(), E = Cache->end(); 1024 I != E; ++I) { 1025 DenseMap<BasicBlock*, Value*>::iterator VI = Visited.find(I->getBB()); 1026 if (VI == Visited.end() || VI->second == Pointer.getAddr()) 1027 continue; 1028 1029 // We have a pointer mismatch in a block. Just return clobber, saying 1030 // that something was clobbered in this result. We could also do a 1031 // non-fully cached query, but there is little point in doing this. 1032 return true; 1033 } 1034 } 1035 1036 Value *Addr = Pointer.getAddr(); 1037 for (NonLocalDepInfo::iterator I = Cache->begin(), E = Cache->end(); 1038 I != E; ++I) { 1039 Visited.insert(std::make_pair(I->getBB(), Addr)); 1040 if (!I->getResult().isNonLocal()) 1041 Result.push_back(NonLocalDepResult(I->getBB(), I->getResult(), Addr)); 1042 } 1043 ++NumCacheCompleteNonLocalPtr; 1044 return false; 1045 } 1046 1047 // Otherwise, either this is a new block, a block with an invalid cache 1048 // pointer or one that we're about to invalidate by putting more info into it 1049 // than its valid cache info. If empty, the result will be valid cache info, 1050 // otherwise it isn't. 1051 if (Cache->empty()) 1052 CacheInfo->Pair = BBSkipFirstBlockPair(StartBB, SkipFirstBlock); 1053 else 1054 CacheInfo->Pair = BBSkipFirstBlockPair(); 1055 1056 SmallVector<BasicBlock*, 32> Worklist; 1057 Worklist.push_back(StartBB); 1058 1059 // PredList used inside loop. 1060 SmallVector<std::pair<BasicBlock*, PHITransAddr>, 16> PredList; 1061 1062 // Keep track of the entries that we know are sorted. Previously cached 1063 // entries will all be sorted. The entries we add we only sort on demand (we 1064 // don't insert every element into its sorted position). We know that we 1065 // won't get any reuse from currently inserted values, because we don't 1066 // revisit blocks after we insert info for them. 1067 unsigned NumSortedEntries = Cache->size(); 1068 DEBUG(AssertSorted(*Cache)); 1069 1070 while (!Worklist.empty()) { 1071 BasicBlock *BB = Worklist.pop_back_val(); 1072 1073 // Skip the first block if we have it. 1074 if (!SkipFirstBlock) { 1075 // Analyze the dependency of *Pointer in FromBB. See if we already have 1076 // been here. 1077 assert(Visited.count(BB) && "Should check 'visited' before adding to WL"); 1078 1079 // Get the dependency info for Pointer in BB. If we have cached 1080 // information, we will use it, otherwise we compute it. 1081 DEBUG(AssertSorted(*Cache, NumSortedEntries)); 1082 MemDepResult Dep = GetNonLocalInfoForBlock(Loc, isLoad, BB, Cache, 1083 NumSortedEntries); 1084 1085 // If we got a Def or Clobber, add this to the list of results. 1086 if (!Dep.isNonLocal()) { 1087 Result.push_back(NonLocalDepResult(BB, Dep, Pointer.getAddr())); 1088 continue; 1089 } 1090 } 1091 1092 // If 'Pointer' is an instruction defined in this block, then we need to do 1093 // phi translation to change it into a value live in the predecessor block. 1094 // If not, we just add the predecessors to the worklist and scan them with 1095 // the same Pointer. 1096 if (!Pointer.NeedsPHITranslationFromBlock(BB)) { 1097 SkipFirstBlock = false; 1098 SmallVector<BasicBlock*, 16> NewBlocks; 1099 for (BasicBlock **PI = PredCache->GetPreds(BB); *PI; ++PI) { 1100 // Verify that we haven't looked at this block yet. 1101 std::pair<DenseMap<BasicBlock*,Value*>::iterator, bool> 1102 InsertRes = Visited.insert(std::make_pair(*PI, Pointer.getAddr())); 1103 if (InsertRes.second) { 1104 // First time we've looked at *PI. 1105 NewBlocks.push_back(*PI); 1106 continue; 1107 } 1108 1109 // If we have seen this block before, but it was with a different 1110 // pointer then we have a phi translation failure and we have to treat 1111 // this as a clobber. 1112 if (InsertRes.first->second != Pointer.getAddr()) { 1113 // Make sure to clean up the Visited map before continuing on to 1114 // PredTranslationFailure. 1115 for (unsigned i = 0; i < NewBlocks.size(); i++) 1116 Visited.erase(NewBlocks[i]); 1117 goto PredTranslationFailure; 1118 } 1119 } 1120 Worklist.append(NewBlocks.begin(), NewBlocks.end()); 1121 continue; 1122 } 1123 1124 // We do need to do phi translation, if we know ahead of time we can't phi 1125 // translate this value, don't even try. 1126 if (!Pointer.IsPotentiallyPHITranslatable()) 1127 goto PredTranslationFailure; 1128 1129 // We may have added values to the cache list before this PHI translation. 1130 // If so, we haven't done anything to ensure that the cache remains sorted. 1131 // Sort it now (if needed) so that recursive invocations of 1132 // getNonLocalPointerDepFromBB and other routines that could reuse the cache 1133 // value will only see properly sorted cache arrays. 1134 if (Cache && NumSortedEntries != Cache->size()) { 1135 SortNonLocalDepInfoCache(*Cache, NumSortedEntries); 1136 NumSortedEntries = Cache->size(); 1137 } 1138 Cache = 0; 1139 1140 PredList.clear(); 1141 for (BasicBlock **PI = PredCache->GetPreds(BB); *PI; ++PI) { 1142 BasicBlock *Pred = *PI; 1143 PredList.push_back(std::make_pair(Pred, Pointer)); 1144 1145 // Get the PHI translated pointer in this predecessor. This can fail if 1146 // not translatable, in which case the getAddr() returns null. 1147 PHITransAddr &PredPointer = PredList.back().second; 1148 PredPointer.PHITranslateValue(BB, Pred, 0); 1149 1150 Value *PredPtrVal = PredPointer.getAddr(); 1151 1152 // Check to see if we have already visited this pred block with another 1153 // pointer. If so, we can't do this lookup. This failure can occur 1154 // with PHI translation when a critical edge exists and the PHI node in 1155 // the successor translates to a pointer value different than the 1156 // pointer the block was first analyzed with. 1157 std::pair<DenseMap<BasicBlock*,Value*>::iterator, bool> 1158 InsertRes = Visited.insert(std::make_pair(Pred, PredPtrVal)); 1159 1160 if (!InsertRes.second) { 1161 // We found the pred; take it off the list of preds to visit. 1162 PredList.pop_back(); 1163 1164 // If the predecessor was visited with PredPtr, then we already did 1165 // the analysis and can ignore it. 1166 if (InsertRes.first->second == PredPtrVal) 1167 continue; 1168 1169 // Otherwise, the block was previously analyzed with a different 1170 // pointer. We can't represent the result of this case, so we just 1171 // treat this as a phi translation failure. 1172 1173 // Make sure to clean up the Visited map before continuing on to 1174 // PredTranslationFailure. 1175 for (unsigned i = 0; i < PredList.size(); i++) 1176 Visited.erase(PredList[i].first); 1177 1178 goto PredTranslationFailure; 1179 } 1180 } 1181 1182 // Actually process results here; this need to be a separate loop to avoid 1183 // calling getNonLocalPointerDepFromBB for blocks we don't want to return 1184 // any results for. (getNonLocalPointerDepFromBB will modify our 1185 // datastructures in ways the code after the PredTranslationFailure label 1186 // doesn't expect.) 1187 for (unsigned i = 0; i < PredList.size(); i++) { 1188 BasicBlock *Pred = PredList[i].first; 1189 PHITransAddr &PredPointer = PredList[i].second; 1190 Value *PredPtrVal = PredPointer.getAddr(); 1191 1192 bool CanTranslate = true; 1193 // If PHI translation was unable to find an available pointer in this 1194 // predecessor, then we have to assume that the pointer is clobbered in 1195 // that predecessor. We can still do PRE of the load, which would insert 1196 // a computation of the pointer in this predecessor. 1197 if (PredPtrVal == 0) 1198 CanTranslate = false; 1199 1200 // FIXME: it is entirely possible that PHI translating will end up with 1201 // the same value. Consider PHI translating something like: 1202 // X = phi [x, bb1], [y, bb2]. PHI translating for bb1 doesn't *need* 1203 // to recurse here, pedantically speaking. 1204 1205 // If getNonLocalPointerDepFromBB fails here, that means the cached 1206 // result conflicted with the Visited list; we have to conservatively 1207 // assume it is unknown, but this also does not block PRE of the load. 1208 if (!CanTranslate || 1209 getNonLocalPointerDepFromBB(PredPointer, 1210 Loc.getWithNewPtr(PredPtrVal), 1211 isLoad, Pred, 1212 Result, Visited)) { 1213 // Add the entry to the Result list. 1214 NonLocalDepResult Entry(Pred, MemDepResult::getUnknown(), PredPtrVal); 1215 Result.push_back(Entry); 1216 1217 // Since we had a phi translation failure, the cache for CacheKey won't 1218 // include all of the entries that we need to immediately satisfy future 1219 // queries. Mark this in NonLocalPointerDeps by setting the 1220 // BBSkipFirstBlockPair pointer to null. This requires reuse of the 1221 // cached value to do more work but not miss the phi trans failure. 1222 NonLocalPointerInfo &NLPI = NonLocalPointerDeps[CacheKey]; 1223 NLPI.Pair = BBSkipFirstBlockPair(); 1224 continue; 1225 } 1226 } 1227 1228 // Refresh the CacheInfo/Cache pointer so that it isn't invalidated. 1229 CacheInfo = &NonLocalPointerDeps[CacheKey]; 1230 Cache = &CacheInfo->NonLocalDeps; 1231 NumSortedEntries = Cache->size(); 1232 1233 // Since we did phi translation, the "Cache" set won't contain all of the 1234 // results for the query. This is ok (we can still use it to accelerate 1235 // specific block queries) but we can't do the fastpath "return all 1236 // results from the set" Clear out the indicator for this. 1237 CacheInfo->Pair = BBSkipFirstBlockPair(); 1238 SkipFirstBlock = false; 1239 continue; 1240 1241 PredTranslationFailure: 1242 // The following code is "failure"; we can't produce a sane translation 1243 // for the given block. It assumes that we haven't modified any of 1244 // our datastructures while processing the current block. 1245 1246 if (Cache == 0) { 1247 // Refresh the CacheInfo/Cache pointer if it got invalidated. 1248 CacheInfo = &NonLocalPointerDeps[CacheKey]; 1249 Cache = &CacheInfo->NonLocalDeps; 1250 NumSortedEntries = Cache->size(); 1251 } 1252 1253 // Since we failed phi translation, the "Cache" set won't contain all of the 1254 // results for the query. This is ok (we can still use it to accelerate 1255 // specific block queries) but we can't do the fastpath "return all 1256 // results from the set". Clear out the indicator for this. 1257 CacheInfo->Pair = BBSkipFirstBlockPair(); 1258 1259 // If *nothing* works, mark the pointer as unknown. 1260 // 1261 // If this is the magic first block, return this as a clobber of the whole 1262 // incoming value. Since we can't phi translate to one of the predecessors, 1263 // we have to bail out. 1264 if (SkipFirstBlock) 1265 return true; 1266 1267 for (NonLocalDepInfo::reverse_iterator I = Cache->rbegin(); ; ++I) { 1268 assert(I != Cache->rend() && "Didn't find current block??"); 1269 if (I->getBB() != BB) 1270 continue; 1271 1272 assert(I->getResult().isNonLocal() && 1273 "Should only be here with transparent block"); 1274 I->setResult(MemDepResult::getUnknown()); 1275 Result.push_back(NonLocalDepResult(I->getBB(), I->getResult(), 1276 Pointer.getAddr())); 1277 break; 1278 } 1279 } 1280 1281 // Okay, we're done now. If we added new values to the cache, re-sort it. 1282 SortNonLocalDepInfoCache(*Cache, NumSortedEntries); 1283 DEBUG(AssertSorted(*Cache)); 1284 return false; 1285 } 1286 1287 /// RemoveCachedNonLocalPointerDependencies - If P exists in 1288 /// CachedNonLocalPointerInfo, remove it. 1289 void MemoryDependenceAnalysis:: 1290 RemoveCachedNonLocalPointerDependencies(ValueIsLoadPair P) { 1291 CachedNonLocalPointerInfo::iterator It = 1292 NonLocalPointerDeps.find(P); 1293 if (It == NonLocalPointerDeps.end()) return; 1294 1295 // Remove all of the entries in the BB->val map. This involves removing 1296 // instructions from the reverse map. 1297 NonLocalDepInfo &PInfo = It->second.NonLocalDeps; 1298 1299 for (unsigned i = 0, e = PInfo.size(); i != e; ++i) { 1300 Instruction *Target = PInfo[i].getResult().getInst(); 1301 if (Target == 0) continue; // Ignore non-local dep results. 1302 assert(Target->getParent() == PInfo[i].getBB()); 1303 1304 // Eliminating the dirty entry from 'Cache', so update the reverse info. 1305 RemoveFromReverseMap(ReverseNonLocalPtrDeps, Target, P); 1306 } 1307 1308 // Remove P from NonLocalPointerDeps (which deletes NonLocalDepInfo). 1309 NonLocalPointerDeps.erase(It); 1310 } 1311 1312 1313 /// invalidateCachedPointerInfo - This method is used to invalidate cached 1314 /// information about the specified pointer, because it may be too 1315 /// conservative in memdep. This is an optional call that can be used when 1316 /// the client detects an equivalence between the pointer and some other 1317 /// value and replaces the other value with ptr. This can make Ptr available 1318 /// in more places that cached info does not necessarily keep. 1319 void MemoryDependenceAnalysis::invalidateCachedPointerInfo(Value *Ptr) { 1320 // If Ptr isn't really a pointer, just ignore it. 1321 if (!Ptr->getType()->isPointerTy()) return; 1322 // Flush store info for the pointer. 1323 RemoveCachedNonLocalPointerDependencies(ValueIsLoadPair(Ptr, false)); 1324 // Flush load info for the pointer. 1325 RemoveCachedNonLocalPointerDependencies(ValueIsLoadPair(Ptr, true)); 1326 } 1327 1328 /// invalidateCachedPredecessors - Clear the PredIteratorCache info. 1329 /// This needs to be done when the CFG changes, e.g., due to splitting 1330 /// critical edges. 1331 void MemoryDependenceAnalysis::invalidateCachedPredecessors() { 1332 PredCache->clear(); 1333 } 1334 1335 /// removeInstruction - Remove an instruction from the dependence analysis, 1336 /// updating the dependence of instructions that previously depended on it. 1337 /// This method attempts to keep the cache coherent using the reverse map. 1338 void MemoryDependenceAnalysis::removeInstruction(Instruction *RemInst) { 1339 // Walk through the Non-local dependencies, removing this one as the value 1340 // for any cached queries. 1341 NonLocalDepMapType::iterator NLDI = NonLocalDeps.find(RemInst); 1342 if (NLDI != NonLocalDeps.end()) { 1343 NonLocalDepInfo &BlockMap = NLDI->second.first; 1344 for (NonLocalDepInfo::iterator DI = BlockMap.begin(), DE = BlockMap.end(); 1345 DI != DE; ++DI) 1346 if (Instruction *Inst = DI->getResult().getInst()) 1347 RemoveFromReverseMap(ReverseNonLocalDeps, Inst, RemInst); 1348 NonLocalDeps.erase(NLDI); 1349 } 1350 1351 // If we have a cached local dependence query for this instruction, remove it. 1352 // 1353 LocalDepMapType::iterator LocalDepEntry = LocalDeps.find(RemInst); 1354 if (LocalDepEntry != LocalDeps.end()) { 1355 // Remove us from DepInst's reverse set now that the local dep info is gone. 1356 if (Instruction *Inst = LocalDepEntry->second.getInst()) 1357 RemoveFromReverseMap(ReverseLocalDeps, Inst, RemInst); 1358 1359 // Remove this local dependency info. 1360 LocalDeps.erase(LocalDepEntry); 1361 } 1362 1363 // If we have any cached pointer dependencies on this instruction, remove 1364 // them. If the instruction has non-pointer type, then it can't be a pointer 1365 // base. 1366 1367 // Remove it from both the load info and the store info. The instruction 1368 // can't be in either of these maps if it is non-pointer. 1369 if (RemInst->getType()->isPointerTy()) { 1370 RemoveCachedNonLocalPointerDependencies(ValueIsLoadPair(RemInst, false)); 1371 RemoveCachedNonLocalPointerDependencies(ValueIsLoadPair(RemInst, true)); 1372 } 1373 1374 // Loop over all of the things that depend on the instruction we're removing. 1375 // 1376 SmallVector<std::pair<Instruction*, Instruction*>, 8> ReverseDepsToAdd; 1377 1378 // If we find RemInst as a clobber or Def in any of the maps for other values, 1379 // we need to replace its entry with a dirty version of the instruction after 1380 // it. If RemInst is a terminator, we use a null dirty value. 1381 // 1382 // Using a dirty version of the instruction after RemInst saves having to scan 1383 // the entire block to get to this point. 1384 MemDepResult NewDirtyVal; 1385 if (!RemInst->isTerminator()) 1386 NewDirtyVal = MemDepResult::getDirty(++BasicBlock::iterator(RemInst)); 1387 1388 ReverseDepMapType::iterator ReverseDepIt = ReverseLocalDeps.find(RemInst); 1389 if (ReverseDepIt != ReverseLocalDeps.end()) { 1390 SmallPtrSet<Instruction*, 4> &ReverseDeps = ReverseDepIt->second; 1391 // RemInst can't be the terminator if it has local stuff depending on it. 1392 assert(!ReverseDeps.empty() && !isa<TerminatorInst>(RemInst) && 1393 "Nothing can locally depend on a terminator"); 1394 1395 for (SmallPtrSet<Instruction*, 4>::iterator I = ReverseDeps.begin(), 1396 E = ReverseDeps.end(); I != E; ++I) { 1397 Instruction *InstDependingOnRemInst = *I; 1398 assert(InstDependingOnRemInst != RemInst && 1399 "Already removed our local dep info"); 1400 1401 LocalDeps[InstDependingOnRemInst] = NewDirtyVal; 1402 1403 // Make sure to remember that new things depend on NewDepInst. 1404 assert(NewDirtyVal.getInst() && "There is no way something else can have " 1405 "a local dep on this if it is a terminator!"); 1406 ReverseDepsToAdd.push_back(std::make_pair(NewDirtyVal.getInst(), 1407 InstDependingOnRemInst)); 1408 } 1409 1410 ReverseLocalDeps.erase(ReverseDepIt); 1411 1412 // Add new reverse deps after scanning the set, to avoid invalidating the 1413 // 'ReverseDeps' reference. 1414 while (!ReverseDepsToAdd.empty()) { 1415 ReverseLocalDeps[ReverseDepsToAdd.back().first] 1416 .insert(ReverseDepsToAdd.back().second); 1417 ReverseDepsToAdd.pop_back(); 1418 } 1419 } 1420 1421 ReverseDepIt = ReverseNonLocalDeps.find(RemInst); 1422 if (ReverseDepIt != ReverseNonLocalDeps.end()) { 1423 SmallPtrSet<Instruction*, 4> &Set = ReverseDepIt->second; 1424 for (SmallPtrSet<Instruction*, 4>::iterator I = Set.begin(), E = Set.end(); 1425 I != E; ++I) { 1426 assert(*I != RemInst && "Already removed NonLocalDep info for RemInst"); 1427 1428 PerInstNLInfo &INLD = NonLocalDeps[*I]; 1429 // The information is now dirty! 1430 INLD.second = true; 1431 1432 for (NonLocalDepInfo::iterator DI = INLD.first.begin(), 1433 DE = INLD.first.end(); DI != DE; ++DI) { 1434 if (DI->getResult().getInst() != RemInst) continue; 1435 1436 // Convert to a dirty entry for the subsequent instruction. 1437 DI->setResult(NewDirtyVal); 1438 1439 if (Instruction *NextI = NewDirtyVal.getInst()) 1440 ReverseDepsToAdd.push_back(std::make_pair(NextI, *I)); 1441 } 1442 } 1443 1444 ReverseNonLocalDeps.erase(ReverseDepIt); 1445 1446 // Add new reverse deps after scanning the set, to avoid invalidating 'Set' 1447 while (!ReverseDepsToAdd.empty()) { 1448 ReverseNonLocalDeps[ReverseDepsToAdd.back().first] 1449 .insert(ReverseDepsToAdd.back().second); 1450 ReverseDepsToAdd.pop_back(); 1451 } 1452 } 1453 1454 // If the instruction is in ReverseNonLocalPtrDeps then it appears as a 1455 // value in the NonLocalPointerDeps info. 1456 ReverseNonLocalPtrDepTy::iterator ReversePtrDepIt = 1457 ReverseNonLocalPtrDeps.find(RemInst); 1458 if (ReversePtrDepIt != ReverseNonLocalPtrDeps.end()) { 1459 SmallPtrSet<ValueIsLoadPair, 4> &Set = ReversePtrDepIt->second; 1460 SmallVector<std::pair<Instruction*, ValueIsLoadPair>,8> ReversePtrDepsToAdd; 1461 1462 for (SmallPtrSet<ValueIsLoadPair, 4>::iterator I = Set.begin(), 1463 E = Set.end(); I != E; ++I) { 1464 ValueIsLoadPair P = *I; 1465 assert(P.getPointer() != RemInst && 1466 "Already removed NonLocalPointerDeps info for RemInst"); 1467 1468 NonLocalDepInfo &NLPDI = NonLocalPointerDeps[P].NonLocalDeps; 1469 1470 // The cache is not valid for any specific block anymore. 1471 NonLocalPointerDeps[P].Pair = BBSkipFirstBlockPair(); 1472 1473 // Update any entries for RemInst to use the instruction after it. 1474 for (NonLocalDepInfo::iterator DI = NLPDI.begin(), DE = NLPDI.end(); 1475 DI != DE; ++DI) { 1476 if (DI->getResult().getInst() != RemInst) continue; 1477 1478 // Convert to a dirty entry for the subsequent instruction. 1479 DI->setResult(NewDirtyVal); 1480 1481 if (Instruction *NewDirtyInst = NewDirtyVal.getInst()) 1482 ReversePtrDepsToAdd.push_back(std::make_pair(NewDirtyInst, P)); 1483 } 1484 1485 // Re-sort the NonLocalDepInfo. Changing the dirty entry to its 1486 // subsequent value may invalidate the sortedness. 1487 std::sort(NLPDI.begin(), NLPDI.end()); 1488 } 1489 1490 ReverseNonLocalPtrDeps.erase(ReversePtrDepIt); 1491 1492 while (!ReversePtrDepsToAdd.empty()) { 1493 ReverseNonLocalPtrDeps[ReversePtrDepsToAdd.back().first] 1494 .insert(ReversePtrDepsToAdd.back().second); 1495 ReversePtrDepsToAdd.pop_back(); 1496 } 1497 } 1498 1499 1500 assert(!NonLocalDeps.count(RemInst) && "RemInst got reinserted?"); 1501 AA->deleteValue(RemInst); 1502 DEBUG(verifyRemoved(RemInst)); 1503 } 1504 /// verifyRemoved - Verify that the specified instruction does not occur 1505 /// in our internal data structures. 1506 void MemoryDependenceAnalysis::verifyRemoved(Instruction *D) const { 1507 for (LocalDepMapType::const_iterator I = LocalDeps.begin(), 1508 E = LocalDeps.end(); I != E; ++I) { 1509 assert(I->first != D && "Inst occurs in data structures"); 1510 assert(I->second.getInst() != D && 1511 "Inst occurs in data structures"); 1512 } 1513 1514 for (CachedNonLocalPointerInfo::const_iterator I =NonLocalPointerDeps.begin(), 1515 E = NonLocalPointerDeps.end(); I != E; ++I) { 1516 assert(I->first.getPointer() != D && "Inst occurs in NLPD map key"); 1517 const NonLocalDepInfo &Val = I->second.NonLocalDeps; 1518 for (NonLocalDepInfo::const_iterator II = Val.begin(), E = Val.end(); 1519 II != E; ++II) 1520 assert(II->getResult().getInst() != D && "Inst occurs as NLPD value"); 1521 } 1522 1523 for (NonLocalDepMapType::const_iterator I = NonLocalDeps.begin(), 1524 E = NonLocalDeps.end(); I != E; ++I) { 1525 assert(I->first != D && "Inst occurs in data structures"); 1526 const PerInstNLInfo &INLD = I->second; 1527 for (NonLocalDepInfo::const_iterator II = INLD.first.begin(), 1528 EE = INLD.first.end(); II != EE; ++II) 1529 assert(II->getResult().getInst() != D && "Inst occurs in data structures"); 1530 } 1531 1532 for (ReverseDepMapType::const_iterator I = ReverseLocalDeps.begin(), 1533 E = ReverseLocalDeps.end(); I != E; ++I) { 1534 assert(I->first != D && "Inst occurs in data structures"); 1535 for (SmallPtrSet<Instruction*, 4>::const_iterator II = I->second.begin(), 1536 EE = I->second.end(); II != EE; ++II) 1537 assert(*II != D && "Inst occurs in data structures"); 1538 } 1539 1540 for (ReverseDepMapType::const_iterator I = ReverseNonLocalDeps.begin(), 1541 E = ReverseNonLocalDeps.end(); 1542 I != E; ++I) { 1543 assert(I->first != D && "Inst occurs in data structures"); 1544 for (SmallPtrSet<Instruction*, 4>::const_iterator II = I->second.begin(), 1545 EE = I->second.end(); II != EE; ++II) 1546 assert(*II != D && "Inst occurs in data structures"); 1547 } 1548 1549 for (ReverseNonLocalPtrDepTy::const_iterator 1550 I = ReverseNonLocalPtrDeps.begin(), 1551 E = ReverseNonLocalPtrDeps.end(); I != E; ++I) { 1552 assert(I->first != D && "Inst occurs in rev NLPD map"); 1553 1554 for (SmallPtrSet<ValueIsLoadPair, 4>::const_iterator II = I->second.begin(), 1555 E = I->second.end(); II != E; ++II) 1556 assert(*II != ValueIsLoadPair(D, false) && 1557 *II != ValueIsLoadPair(D, true) && 1558 "Inst occurs in ReverseNonLocalPtrDeps map"); 1559 } 1560 1561 } 1562