1 //===- CorrelatedValuePropagation.cpp - Propagate CFG-derived info --------===// 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 the Correlated Value Propagation pass. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Transforms/Scalar/CorrelatedValuePropagation.h" 15 #include "llvm/Transforms/Scalar.h" 16 #include "llvm/ADT/Statistic.h" 17 #include "llvm/Analysis/GlobalsModRef.h" 18 #include "llvm/Analysis/InstructionSimplify.h" 19 #include "llvm/Analysis/LazyValueInfo.h" 20 #include "llvm/IR/CFG.h" 21 #include "llvm/IR/ConstantRange.h" 22 #include "llvm/IR/Constants.h" 23 #include "llvm/IR/Function.h" 24 #include "llvm/IR/Instructions.h" 25 #include "llvm/IR/Module.h" 26 #include "llvm/Pass.h" 27 #include "llvm/Support/Debug.h" 28 #include "llvm/Support/raw_ostream.h" 29 #include "llvm/Transforms/Utils/Local.h" 30 using namespace llvm; 31 32 #define DEBUG_TYPE "correlated-value-propagation" 33 34 STATISTIC(NumPhis, "Number of phis propagated"); 35 STATISTIC(NumSelects, "Number of selects propagated"); 36 STATISTIC(NumMemAccess, "Number of memory access targets propagated"); 37 STATISTIC(NumCmps, "Number of comparisons propagated"); 38 STATISTIC(NumReturns, "Number of return values propagated"); 39 STATISTIC(NumDeadCases, "Number of switch cases removed"); 40 STATISTIC(NumSDivs, "Number of sdiv converted to udiv"); 41 STATISTIC(NumAShrs, "Number of ashr converted to lshr"); 42 STATISTIC(NumSRems, "Number of srem converted to urem"); 43 44 static cl::opt<bool> DontProcessAdds("cvp-dont-process-adds", cl::init(false)); 45 46 namespace { 47 class CorrelatedValuePropagation : public FunctionPass { 48 public: 49 static char ID; 50 CorrelatedValuePropagation(): FunctionPass(ID) { 51 initializeCorrelatedValuePropagationPass(*PassRegistry::getPassRegistry()); 52 } 53 54 bool runOnFunction(Function &F) override; 55 56 void getAnalysisUsage(AnalysisUsage &AU) const override { 57 AU.addRequired<LazyValueInfoWrapperPass>(); 58 AU.addPreserved<GlobalsAAWrapperPass>(); 59 } 60 }; 61 } 62 63 char CorrelatedValuePropagation::ID = 0; 64 INITIALIZE_PASS_BEGIN(CorrelatedValuePropagation, "correlated-propagation", 65 "Value Propagation", false, false) 66 INITIALIZE_PASS_DEPENDENCY(LazyValueInfoWrapperPass) 67 INITIALIZE_PASS_END(CorrelatedValuePropagation, "correlated-propagation", 68 "Value Propagation", false, false) 69 70 // Public interface to the Value Propagation pass 71 Pass *llvm::createCorrelatedValuePropagationPass() { 72 return new CorrelatedValuePropagation(); 73 } 74 75 static bool processSelect(SelectInst *S, LazyValueInfo *LVI) { 76 if (S->getType()->isVectorTy()) return false; 77 if (isa<Constant>(S->getOperand(0))) return false; 78 79 Constant *C = LVI->getConstant(S->getOperand(0), S->getParent(), S); 80 if (!C) return false; 81 82 ConstantInt *CI = dyn_cast<ConstantInt>(C); 83 if (!CI) return false; 84 85 Value *ReplaceWith = S->getOperand(1); 86 Value *Other = S->getOperand(2); 87 if (!CI->isOne()) std::swap(ReplaceWith, Other); 88 if (ReplaceWith == S) ReplaceWith = UndefValue::get(S->getType()); 89 90 S->replaceAllUsesWith(ReplaceWith); 91 S->eraseFromParent(); 92 93 ++NumSelects; 94 95 return true; 96 } 97 98 static bool processPHI(PHINode *P, LazyValueInfo *LVI) { 99 bool Changed = false; 100 101 BasicBlock *BB = P->getParent(); 102 for (unsigned i = 0, e = P->getNumIncomingValues(); i < e; ++i) { 103 Value *Incoming = P->getIncomingValue(i); 104 if (isa<Constant>(Incoming)) continue; 105 106 Value *V = LVI->getConstantOnEdge(Incoming, P->getIncomingBlock(i), BB, P); 107 108 // Look if the incoming value is a select with a scalar condition for which 109 // LVI can tells us the value. In that case replace the incoming value with 110 // the appropriate value of the select. This often allows us to remove the 111 // select later. 112 if (!V) { 113 SelectInst *SI = dyn_cast<SelectInst>(Incoming); 114 if (!SI) continue; 115 116 Value *Condition = SI->getCondition(); 117 if (!Condition->getType()->isVectorTy()) { 118 if (Constant *C = LVI->getConstantOnEdge( 119 Condition, P->getIncomingBlock(i), BB, P)) { 120 if (C->isOneValue()) { 121 V = SI->getTrueValue(); 122 } else if (C->isZeroValue()) { 123 V = SI->getFalseValue(); 124 } 125 // Once LVI learns to handle vector types, we could also add support 126 // for vector type constants that are not all zeroes or all ones. 127 } 128 } 129 130 // Look if the select has a constant but LVI tells us that the incoming 131 // value can never be that constant. In that case replace the incoming 132 // value with the other value of the select. This often allows us to 133 // remove the select later. 134 if (!V) { 135 Constant *C = dyn_cast<Constant>(SI->getFalseValue()); 136 if (!C) continue; 137 138 if (LVI->getPredicateOnEdge(ICmpInst::ICMP_EQ, SI, C, 139 P->getIncomingBlock(i), BB, P) != 140 LazyValueInfo::False) 141 continue; 142 V = SI->getTrueValue(); 143 } 144 145 DEBUG(dbgs() << "CVP: Threading PHI over " << *SI << '\n'); 146 } 147 148 P->setIncomingValue(i, V); 149 Changed = true; 150 } 151 152 // FIXME: Provide TLI, DT, AT to SimplifyInstruction. 153 const DataLayout &DL = BB->getModule()->getDataLayout(); 154 if (Value *V = SimplifyInstruction(P, DL)) { 155 P->replaceAllUsesWith(V); 156 P->eraseFromParent(); 157 Changed = true; 158 } 159 160 if (Changed) 161 ++NumPhis; 162 163 return Changed; 164 } 165 166 static bool processMemAccess(Instruction *I, LazyValueInfo *LVI) { 167 Value *Pointer = nullptr; 168 if (LoadInst *L = dyn_cast<LoadInst>(I)) 169 Pointer = L->getPointerOperand(); 170 else 171 Pointer = cast<StoreInst>(I)->getPointerOperand(); 172 173 if (isa<Constant>(Pointer)) return false; 174 175 Constant *C = LVI->getConstant(Pointer, I->getParent(), I); 176 if (!C) return false; 177 178 ++NumMemAccess; 179 I->replaceUsesOfWith(Pointer, C); 180 return true; 181 } 182 183 /// See if LazyValueInfo's ability to exploit edge conditions or range 184 /// information is sufficient to prove this comparison. Even for local 185 /// conditions, this can sometimes prove conditions instcombine can't by 186 /// exploiting range information. 187 static bool processCmp(CmpInst *C, LazyValueInfo *LVI) { 188 Value *Op0 = C->getOperand(0); 189 Constant *Op1 = dyn_cast<Constant>(C->getOperand(1)); 190 if (!Op1) return false; 191 192 // As a policy choice, we choose not to waste compile time on anything where 193 // the comparison is testing local values. While LVI can sometimes reason 194 // about such cases, it's not its primary purpose. We do make sure to do 195 // the block local query for uses from terminator instructions, but that's 196 // handled in the code for each terminator. 197 auto *I = dyn_cast<Instruction>(Op0); 198 if (I && I->getParent() == C->getParent()) 199 return false; 200 201 LazyValueInfo::Tristate Result = 202 LVI->getPredicateAt(C->getPredicate(), Op0, Op1, C); 203 if (Result == LazyValueInfo::Unknown) return false; 204 205 ++NumCmps; 206 if (Result == LazyValueInfo::True) 207 C->replaceAllUsesWith(ConstantInt::getTrue(C->getContext())); 208 else 209 C->replaceAllUsesWith(ConstantInt::getFalse(C->getContext())); 210 C->eraseFromParent(); 211 212 return true; 213 } 214 215 /// Simplify a switch instruction by removing cases which can never fire. If the 216 /// uselessness of a case could be determined locally then constant propagation 217 /// would already have figured it out. Instead, walk the predecessors and 218 /// statically evaluate cases based on information available on that edge. Cases 219 /// that cannot fire no matter what the incoming edge can safely be removed. If 220 /// a case fires on every incoming edge then the entire switch can be removed 221 /// and replaced with a branch to the case destination. 222 static bool processSwitch(SwitchInst *SI, LazyValueInfo *LVI) { 223 Value *Cond = SI->getCondition(); 224 BasicBlock *BB = SI->getParent(); 225 226 // If the condition was defined in same block as the switch then LazyValueInfo 227 // currently won't say anything useful about it, though in theory it could. 228 if (isa<Instruction>(Cond) && cast<Instruction>(Cond)->getParent() == BB) 229 return false; 230 231 // If the switch is unreachable then trying to improve it is a waste of time. 232 pred_iterator PB = pred_begin(BB), PE = pred_end(BB); 233 if (PB == PE) return false; 234 235 // Analyse each switch case in turn. This is done in reverse order so that 236 // removing a case doesn't cause trouble for the iteration. 237 bool Changed = false; 238 for (SwitchInst::CaseIt CI = SI->case_end(), CE = SI->case_begin(); CI-- != CE; 239 ) { 240 ConstantInt *Case = CI.getCaseValue(); 241 242 // Check to see if the switch condition is equal to/not equal to the case 243 // value on every incoming edge, equal/not equal being the same each time. 244 LazyValueInfo::Tristate State = LazyValueInfo::Unknown; 245 for (pred_iterator PI = PB; PI != PE; ++PI) { 246 // Is the switch condition equal to the case value? 247 LazyValueInfo::Tristate Value = LVI->getPredicateOnEdge(CmpInst::ICMP_EQ, 248 Cond, Case, *PI, 249 BB, SI); 250 // Give up on this case if nothing is known. 251 if (Value == LazyValueInfo::Unknown) { 252 State = LazyValueInfo::Unknown; 253 break; 254 } 255 256 // If this was the first edge to be visited, record that all other edges 257 // need to give the same result. 258 if (PI == PB) { 259 State = Value; 260 continue; 261 } 262 263 // If this case is known to fire for some edges and known not to fire for 264 // others then there is nothing we can do - give up. 265 if (Value != State) { 266 State = LazyValueInfo::Unknown; 267 break; 268 } 269 } 270 271 if (State == LazyValueInfo::False) { 272 // This case never fires - remove it. 273 CI.getCaseSuccessor()->removePredecessor(BB); 274 SI->removeCase(CI); // Does not invalidate the iterator. 275 276 // The condition can be modified by removePredecessor's PHI simplification 277 // logic. 278 Cond = SI->getCondition(); 279 280 ++NumDeadCases; 281 Changed = true; 282 } else if (State == LazyValueInfo::True) { 283 // This case always fires. Arrange for the switch to be turned into an 284 // unconditional branch by replacing the switch condition with the case 285 // value. 286 SI->setCondition(Case); 287 NumDeadCases += SI->getNumCases(); 288 Changed = true; 289 break; 290 } 291 } 292 293 if (Changed) 294 // If the switch has been simplified to the point where it can be replaced 295 // by a branch then do so now. 296 ConstantFoldTerminator(BB); 297 298 return Changed; 299 } 300 301 /// Infer nonnull attributes for the arguments at the specified callsite. 302 static bool processCallSite(CallSite CS, LazyValueInfo *LVI) { 303 SmallVector<unsigned, 4> Indices; 304 unsigned ArgNo = 0; 305 306 for (Value *V : CS.args()) { 307 PointerType *Type = dyn_cast<PointerType>(V->getType()); 308 // Try to mark pointer typed parameters as non-null. We skip the 309 // relatively expensive analysis for constants which are obviously either 310 // null or non-null to start with. 311 if (Type && !CS.paramHasAttr(ArgNo + 1, Attribute::NonNull) && 312 !isa<Constant>(V) && 313 LVI->getPredicateAt(ICmpInst::ICMP_EQ, V, 314 ConstantPointerNull::get(Type), 315 CS.getInstruction()) == LazyValueInfo::False) 316 Indices.push_back(ArgNo + 1); 317 ArgNo++; 318 } 319 320 assert(ArgNo == CS.arg_size() && "sanity check"); 321 322 if (Indices.empty()) 323 return false; 324 325 AttributeSet AS = CS.getAttributes(); 326 LLVMContext &Ctx = CS.getInstruction()->getContext(); 327 AS = AS.addAttribute(Ctx, Indices, Attribute::get(Ctx, Attribute::NonNull)); 328 CS.setAttributes(AS); 329 330 return true; 331 } 332 333 // Helper function to rewrite srem and sdiv. As a policy choice, we choose not 334 // to waste compile time on anything where the operands are local defs. While 335 // LVI can sometimes reason about such cases, it's not its primary purpose. 336 static bool hasLocalDefs(BinaryOperator *SDI) { 337 for (Value *O : SDI->operands()) { 338 auto *I = dyn_cast<Instruction>(O); 339 if (I && I->getParent() == SDI->getParent()) 340 return true; 341 } 342 return false; 343 } 344 345 static bool hasPositiveOperands(BinaryOperator *SDI, LazyValueInfo *LVI) { 346 Constant *Zero = ConstantInt::get(SDI->getType(), 0); 347 for (Value *O : SDI->operands()) { 348 auto Result = LVI->getPredicateAt(ICmpInst::ICMP_SGE, O, Zero, SDI); 349 if (Result != LazyValueInfo::True) 350 return false; 351 } 352 return true; 353 } 354 355 static bool processSRem(BinaryOperator *SDI, LazyValueInfo *LVI) { 356 if (SDI->getType()->isVectorTy() || hasLocalDefs(SDI) || 357 !hasPositiveOperands(SDI, LVI)) 358 return false; 359 360 ++NumSRems; 361 auto *BO = BinaryOperator::CreateURem(SDI->getOperand(0), SDI->getOperand(1), 362 SDI->getName(), SDI); 363 SDI->replaceAllUsesWith(BO); 364 SDI->eraseFromParent(); 365 return true; 366 } 367 368 /// See if LazyValueInfo's ability to exploit edge conditions or range 369 /// information is sufficient to prove the both operands of this SDiv are 370 /// positive. If this is the case, replace the SDiv with a UDiv. Even for local 371 /// conditions, this can sometimes prove conditions instcombine can't by 372 /// exploiting range information. 373 static bool processSDiv(BinaryOperator *SDI, LazyValueInfo *LVI) { 374 if (SDI->getType()->isVectorTy() || hasLocalDefs(SDI) || 375 !hasPositiveOperands(SDI, LVI)) 376 return false; 377 378 ++NumSDivs; 379 auto *BO = BinaryOperator::CreateUDiv(SDI->getOperand(0), SDI->getOperand(1), 380 SDI->getName(), SDI); 381 BO->setIsExact(SDI->isExact()); 382 SDI->replaceAllUsesWith(BO); 383 SDI->eraseFromParent(); 384 385 return true; 386 } 387 388 static bool processAShr(BinaryOperator *SDI, LazyValueInfo *LVI) { 389 if (SDI->getType()->isVectorTy() || hasLocalDefs(SDI)) 390 return false; 391 392 Constant *Zero = ConstantInt::get(SDI->getType(), 0); 393 if (LVI->getPredicateAt(ICmpInst::ICMP_SGE, SDI->getOperand(0), Zero, SDI) != 394 LazyValueInfo::True) 395 return false; 396 397 ++NumAShrs; 398 auto *BO = BinaryOperator::CreateLShr(SDI->getOperand(0), SDI->getOperand(1), 399 SDI->getName(), SDI); 400 BO->setIsExact(SDI->isExact()); 401 SDI->replaceAllUsesWith(BO); 402 SDI->eraseFromParent(); 403 404 return true; 405 } 406 407 static bool processAdd(BinaryOperator *AddOp, LazyValueInfo *LVI) { 408 typedef OverflowingBinaryOperator OBO; 409 410 if (DontProcessAdds) 411 return false; 412 413 if (AddOp->getType()->isVectorTy() || hasLocalDefs(AddOp)) 414 return false; 415 416 bool NSW = AddOp->hasNoSignedWrap(); 417 bool NUW = AddOp->hasNoUnsignedWrap(); 418 if (NSW && NUW) 419 return false; 420 421 BasicBlock *BB = AddOp->getParent(); 422 423 Value *LHS = AddOp->getOperand(0); 424 Value *RHS = AddOp->getOperand(1); 425 426 ConstantRange LRange = LVI->getConstantRange(LHS, BB, AddOp); 427 428 // Initialize RRange only if we need it. If we know that guaranteed no wrap 429 // range for the given LHS range is empty don't spend time calculating the 430 // range for the RHS. 431 Optional<ConstantRange> RRange; 432 auto LazyRRange = [&] () { 433 if (!RRange) 434 RRange = LVI->getConstantRange(RHS, BB, AddOp); 435 return RRange.getValue(); 436 }; 437 438 bool Changed = false; 439 if (!NUW) { 440 ConstantRange NUWRange = 441 LRange.makeGuaranteedNoWrapRegion(BinaryOperator::Add, LRange, 442 OBO::NoUnsignedWrap); 443 if (!NUWRange.isEmptySet()) { 444 bool NewNUW = NUWRange.contains(LazyRRange()); 445 AddOp->setHasNoUnsignedWrap(NewNUW); 446 Changed |= NewNUW; 447 } 448 } 449 if (!NSW) { 450 ConstantRange NSWRange = 451 LRange.makeGuaranteedNoWrapRegion(BinaryOperator::Add, LRange, 452 OBO::NoSignedWrap); 453 if (!NSWRange.isEmptySet()) { 454 bool NewNSW = NSWRange.contains(LazyRRange()); 455 AddOp->setHasNoSignedWrap(NewNSW); 456 Changed |= NewNSW; 457 } 458 } 459 460 return Changed; 461 } 462 463 static Constant *getConstantAt(Value *V, Instruction *At, LazyValueInfo *LVI) { 464 if (Constant *C = LVI->getConstant(V, At->getParent(), At)) 465 return C; 466 467 // TODO: The following really should be sunk inside LVI's core algorithm, or 468 // at least the outer shims around such. 469 auto *C = dyn_cast<CmpInst>(V); 470 if (!C) return nullptr; 471 472 Value *Op0 = C->getOperand(0); 473 Constant *Op1 = dyn_cast<Constant>(C->getOperand(1)); 474 if (!Op1) return nullptr; 475 476 LazyValueInfo::Tristate Result = 477 LVI->getPredicateAt(C->getPredicate(), Op0, Op1, At); 478 if (Result == LazyValueInfo::Unknown) 479 return nullptr; 480 481 return (Result == LazyValueInfo::True) ? 482 ConstantInt::getTrue(C->getContext()) : 483 ConstantInt::getFalse(C->getContext()); 484 } 485 486 static bool runImpl(Function &F, LazyValueInfo *LVI) { 487 bool FnChanged = false; 488 489 for (BasicBlock &BB : F) { 490 bool BBChanged = false; 491 for (BasicBlock::iterator BI = BB.begin(), BE = BB.end(); BI != BE;) { 492 Instruction *II = &*BI++; 493 switch (II->getOpcode()) { 494 case Instruction::Select: 495 BBChanged |= processSelect(cast<SelectInst>(II), LVI); 496 break; 497 case Instruction::PHI: 498 BBChanged |= processPHI(cast<PHINode>(II), LVI); 499 break; 500 case Instruction::ICmp: 501 case Instruction::FCmp: 502 BBChanged |= processCmp(cast<CmpInst>(II), LVI); 503 break; 504 case Instruction::Load: 505 case Instruction::Store: 506 BBChanged |= processMemAccess(II, LVI); 507 break; 508 case Instruction::Call: 509 case Instruction::Invoke: 510 BBChanged |= processCallSite(CallSite(II), LVI); 511 break; 512 case Instruction::SRem: 513 BBChanged |= processSRem(cast<BinaryOperator>(II), LVI); 514 break; 515 case Instruction::SDiv: 516 BBChanged |= processSDiv(cast<BinaryOperator>(II), LVI); 517 break; 518 case Instruction::AShr: 519 BBChanged |= processAShr(cast<BinaryOperator>(II), LVI); 520 break; 521 case Instruction::Add: 522 BBChanged |= processAdd(cast<BinaryOperator>(II), LVI); 523 break; 524 } 525 } 526 527 Instruction *Term = BB.getTerminator(); 528 switch (Term->getOpcode()) { 529 case Instruction::Switch: 530 BBChanged |= processSwitch(cast<SwitchInst>(Term), LVI); 531 break; 532 case Instruction::Ret: { 533 auto *RI = cast<ReturnInst>(Term); 534 // Try to determine the return value if we can. This is mainly here to 535 // simplify the writing of unit tests, but also helps to enable IPO by 536 // constant folding the return values of callees. 537 auto *RetVal = RI->getReturnValue(); 538 if (!RetVal) break; // handle "ret void" 539 if (isa<Constant>(RetVal)) break; // nothing to do 540 if (auto *C = getConstantAt(RetVal, RI, LVI)) { 541 ++NumReturns; 542 RI->replaceUsesOfWith(RetVal, C); 543 BBChanged = true; 544 } 545 } 546 }; 547 548 FnChanged |= BBChanged; 549 } 550 551 return FnChanged; 552 } 553 554 bool CorrelatedValuePropagation::runOnFunction(Function &F) { 555 if (skipFunction(F)) 556 return false; 557 558 LazyValueInfo *LVI = &getAnalysis<LazyValueInfoWrapperPass>().getLVI(); 559 return runImpl(F, LVI); 560 } 561 562 PreservedAnalyses 563 CorrelatedValuePropagationPass::run(Function &F, FunctionAnalysisManager &AM) { 564 565 LazyValueInfo *LVI = &AM.getResult<LazyValueAnalysis>(F); 566 bool Changed = runImpl(F, LVI); 567 568 // FIXME: We need to invalidate LVI to avoid PR28400. Is there a better 569 // solution? 570 AM.invalidate<LazyValueAnalysis>(F); 571 572 if (!Changed) 573 return PreservedAnalyses::all(); 574 PreservedAnalyses PA; 575 PA.preserve<GlobalsAA>(); 576 return PA; 577 } 578