1 //===- SCCP.cpp - Sparse Conditional Constant Propagation -----------------===// 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 sparse conditional constant propagation and merging: 11 // 12 // Specifically, this: 13 // * Assumes values are constant unless proven otherwise 14 // * Assumes BasicBlocks are dead unless proven otherwise 15 // * Proves values to be constant, and replaces them with constants 16 // * Proves conditional branches to be unconditional 17 // 18 //===----------------------------------------------------------------------===// 19 20 #include "llvm/Transforms/Scalar.h" 21 #include "llvm/ADT/DenseMap.h" 22 #include "llvm/ADT/DenseSet.h" 23 #include "llvm/ADT/PointerIntPair.h" 24 #include "llvm/ADT/SmallPtrSet.h" 25 #include "llvm/ADT/SmallVector.h" 26 #include "llvm/ADT/Statistic.h" 27 #include "llvm/Analysis/ConstantFolding.h" 28 #include "llvm/IR/CallSite.h" 29 #include "llvm/IR/Constants.h" 30 #include "llvm/IR/DataLayout.h" 31 #include "llvm/IR/DerivedTypes.h" 32 #include "llvm/IR/InstVisitor.h" 33 #include "llvm/IR/Instructions.h" 34 #include "llvm/Pass.h" 35 #include "llvm/Support/Debug.h" 36 #include "llvm/Support/ErrorHandling.h" 37 #include "llvm/Support/raw_ostream.h" 38 #include "llvm/Target/TargetLibraryInfo.h" 39 #include "llvm/Transforms/IPO.h" 40 #include "llvm/Transforms/Utils/Local.h" 41 #include <algorithm> 42 using namespace llvm; 43 44 #define DEBUG_TYPE "sccp" 45 46 STATISTIC(NumInstRemoved, "Number of instructions removed"); 47 STATISTIC(NumDeadBlocks , "Number of basic blocks unreachable"); 48 49 STATISTIC(IPNumInstRemoved, "Number of instructions removed by IPSCCP"); 50 STATISTIC(IPNumArgsElimed ,"Number of arguments constant propagated by IPSCCP"); 51 STATISTIC(IPNumGlobalConst, "Number of globals found to be constant by IPSCCP"); 52 53 namespace { 54 /// LatticeVal class - This class represents the different lattice values that 55 /// an LLVM value may occupy. It is a simple class with value semantics. 56 /// 57 class LatticeVal { 58 enum LatticeValueTy { 59 /// undefined - This LLVM Value has no known value yet. 60 undefined, 61 62 /// constant - This LLVM Value has a specific constant value. 63 constant, 64 65 /// forcedconstant - This LLVM Value was thought to be undef until 66 /// ResolvedUndefsIn. This is treated just like 'constant', but if merged 67 /// with another (different) constant, it goes to overdefined, instead of 68 /// asserting. 69 forcedconstant, 70 71 /// overdefined - This instruction is not known to be constant, and we know 72 /// it has a value. 73 overdefined 74 }; 75 76 /// Val: This stores the current lattice value along with the Constant* for 77 /// the constant if this is a 'constant' or 'forcedconstant' value. 78 PointerIntPair<Constant *, 2, LatticeValueTy> Val; 79 80 LatticeValueTy getLatticeValue() const { 81 return Val.getInt(); 82 } 83 84 public: 85 LatticeVal() : Val(0, undefined) {} 86 87 bool isUndefined() const { return getLatticeValue() == undefined; } 88 bool isConstant() const { 89 return getLatticeValue() == constant || getLatticeValue() == forcedconstant; 90 } 91 bool isOverdefined() const { return getLatticeValue() == overdefined; } 92 93 Constant *getConstant() const { 94 assert(isConstant() && "Cannot get the constant of a non-constant!"); 95 return Val.getPointer(); 96 } 97 98 /// markOverdefined - Return true if this is a change in status. 99 bool markOverdefined() { 100 if (isOverdefined()) 101 return false; 102 103 Val.setInt(overdefined); 104 return true; 105 } 106 107 /// markConstant - Return true if this is a change in status. 108 bool markConstant(Constant *V) { 109 if (getLatticeValue() == constant) { // Constant but not forcedconstant. 110 assert(getConstant() == V && "Marking constant with different value"); 111 return false; 112 } 113 114 if (isUndefined()) { 115 Val.setInt(constant); 116 assert(V && "Marking constant with NULL"); 117 Val.setPointer(V); 118 } else { 119 assert(getLatticeValue() == forcedconstant && 120 "Cannot move from overdefined to constant!"); 121 // Stay at forcedconstant if the constant is the same. 122 if (V == getConstant()) return false; 123 124 // Otherwise, we go to overdefined. Assumptions made based on the 125 // forced value are possibly wrong. Assuming this is another constant 126 // could expose a contradiction. 127 Val.setInt(overdefined); 128 } 129 return true; 130 } 131 132 /// getConstantInt - If this is a constant with a ConstantInt value, return it 133 /// otherwise return null. 134 ConstantInt *getConstantInt() const { 135 if (isConstant()) 136 return dyn_cast<ConstantInt>(getConstant()); 137 return 0; 138 } 139 140 void markForcedConstant(Constant *V) { 141 assert(isUndefined() && "Can't force a defined value!"); 142 Val.setInt(forcedconstant); 143 Val.setPointer(V); 144 } 145 }; 146 } // end anonymous namespace. 147 148 149 namespace { 150 151 //===----------------------------------------------------------------------===// 152 // 153 /// SCCPSolver - This class is a general purpose solver for Sparse Conditional 154 /// Constant Propagation. 155 /// 156 class SCCPSolver : public InstVisitor<SCCPSolver> { 157 const DataLayout *DL; 158 const TargetLibraryInfo *TLI; 159 SmallPtrSet<BasicBlock*, 8> BBExecutable; // The BBs that are executable. 160 DenseMap<Value*, LatticeVal> ValueState; // The state each value is in. 161 162 /// StructValueState - This maintains ValueState for values that have 163 /// StructType, for example for formal arguments, calls, insertelement, etc. 164 /// 165 DenseMap<std::pair<Value*, unsigned>, LatticeVal> StructValueState; 166 167 /// GlobalValue - If we are tracking any values for the contents of a global 168 /// variable, we keep a mapping from the constant accessor to the element of 169 /// the global, to the currently known value. If the value becomes 170 /// overdefined, it's entry is simply removed from this map. 171 DenseMap<GlobalVariable*, LatticeVal> TrackedGlobals; 172 173 /// TrackedRetVals - If we are tracking arguments into and the return 174 /// value out of a function, it will have an entry in this map, indicating 175 /// what the known return value for the function is. 176 DenseMap<Function*, LatticeVal> TrackedRetVals; 177 178 /// TrackedMultipleRetVals - Same as TrackedRetVals, but used for functions 179 /// that return multiple values. 180 DenseMap<std::pair<Function*, unsigned>, LatticeVal> TrackedMultipleRetVals; 181 182 /// MRVFunctionsTracked - Each function in TrackedMultipleRetVals is 183 /// represented here for efficient lookup. 184 SmallPtrSet<Function*, 16> MRVFunctionsTracked; 185 186 /// TrackingIncomingArguments - This is the set of functions for whose 187 /// arguments we make optimistic assumptions about and try to prove as 188 /// constants. 189 SmallPtrSet<Function*, 16> TrackingIncomingArguments; 190 191 /// The reason for two worklists is that overdefined is the lowest state 192 /// on the lattice, and moving things to overdefined as fast as possible 193 /// makes SCCP converge much faster. 194 /// 195 /// By having a separate worklist, we accomplish this because everything 196 /// possibly overdefined will become overdefined at the soonest possible 197 /// point. 198 SmallVector<Value*, 64> OverdefinedInstWorkList; 199 SmallVector<Value*, 64> InstWorkList; 200 201 202 SmallVector<BasicBlock*, 64> BBWorkList; // The BasicBlock work list 203 204 /// KnownFeasibleEdges - Entries in this set are edges which have already had 205 /// PHI nodes retriggered. 206 typedef std::pair<BasicBlock*, BasicBlock*> Edge; 207 DenseSet<Edge> KnownFeasibleEdges; 208 public: 209 SCCPSolver(const DataLayout *DL, const TargetLibraryInfo *tli) 210 : DL(DL), TLI(tli) {} 211 212 /// MarkBlockExecutable - This method can be used by clients to mark all of 213 /// the blocks that are known to be intrinsically live in the processed unit. 214 /// 215 /// This returns true if the block was not considered live before. 216 bool MarkBlockExecutable(BasicBlock *BB) { 217 if (!BBExecutable.insert(BB)) return false; 218 DEBUG(dbgs() << "Marking Block Executable: " << BB->getName() << '\n'); 219 BBWorkList.push_back(BB); // Add the block to the work list! 220 return true; 221 } 222 223 /// TrackValueOfGlobalVariable - Clients can use this method to 224 /// inform the SCCPSolver that it should track loads and stores to the 225 /// specified global variable if it can. This is only legal to call if 226 /// performing Interprocedural SCCP. 227 void TrackValueOfGlobalVariable(GlobalVariable *GV) { 228 // We only track the contents of scalar globals. 229 if (GV->getType()->getElementType()->isSingleValueType()) { 230 LatticeVal &IV = TrackedGlobals[GV]; 231 if (!isa<UndefValue>(GV->getInitializer())) 232 IV.markConstant(GV->getInitializer()); 233 } 234 } 235 236 /// AddTrackedFunction - If the SCCP solver is supposed to track calls into 237 /// and out of the specified function (which cannot have its address taken), 238 /// this method must be called. 239 void AddTrackedFunction(Function *F) { 240 // Add an entry, F -> undef. 241 if (StructType *STy = dyn_cast<StructType>(F->getReturnType())) { 242 MRVFunctionsTracked.insert(F); 243 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) 244 TrackedMultipleRetVals.insert(std::make_pair(std::make_pair(F, i), 245 LatticeVal())); 246 } else 247 TrackedRetVals.insert(std::make_pair(F, LatticeVal())); 248 } 249 250 void AddArgumentTrackedFunction(Function *F) { 251 TrackingIncomingArguments.insert(F); 252 } 253 254 /// Solve - Solve for constants and executable blocks. 255 /// 256 void Solve(); 257 258 /// ResolvedUndefsIn - While solving the dataflow for a function, we assume 259 /// that branches on undef values cannot reach any of their successors. 260 /// However, this is not a safe assumption. After we solve dataflow, this 261 /// method should be use to handle this. If this returns true, the solver 262 /// should be rerun. 263 bool ResolvedUndefsIn(Function &F); 264 265 bool isBlockExecutable(BasicBlock *BB) const { 266 return BBExecutable.count(BB); 267 } 268 269 LatticeVal getLatticeValueFor(Value *V) const { 270 DenseMap<Value*, LatticeVal>::const_iterator I = ValueState.find(V); 271 assert(I != ValueState.end() && "V is not in valuemap!"); 272 return I->second; 273 } 274 275 /// getTrackedRetVals - Get the inferred return value map. 276 /// 277 const DenseMap<Function*, LatticeVal> &getTrackedRetVals() { 278 return TrackedRetVals; 279 } 280 281 /// getTrackedGlobals - Get and return the set of inferred initializers for 282 /// global variables. 283 const DenseMap<GlobalVariable*, LatticeVal> &getTrackedGlobals() { 284 return TrackedGlobals; 285 } 286 287 void markOverdefined(Value *V) { 288 assert(!V->getType()->isStructTy() && "Should use other method"); 289 markOverdefined(ValueState[V], V); 290 } 291 292 /// markAnythingOverdefined - Mark the specified value overdefined. This 293 /// works with both scalars and structs. 294 void markAnythingOverdefined(Value *V) { 295 if (StructType *STy = dyn_cast<StructType>(V->getType())) 296 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) 297 markOverdefined(getStructValueState(V, i), V); 298 else 299 markOverdefined(V); 300 } 301 302 private: 303 // markConstant - Make a value be marked as "constant". If the value 304 // is not already a constant, add it to the instruction work list so that 305 // the users of the instruction are updated later. 306 // 307 void markConstant(LatticeVal &IV, Value *V, Constant *C) { 308 if (!IV.markConstant(C)) return; 309 DEBUG(dbgs() << "markConstant: " << *C << ": " << *V << '\n'); 310 if (IV.isOverdefined()) 311 OverdefinedInstWorkList.push_back(V); 312 else 313 InstWorkList.push_back(V); 314 } 315 316 void markConstant(Value *V, Constant *C) { 317 assert(!V->getType()->isStructTy() && "Should use other method"); 318 markConstant(ValueState[V], V, C); 319 } 320 321 void markForcedConstant(Value *V, Constant *C) { 322 assert(!V->getType()->isStructTy() && "Should use other method"); 323 LatticeVal &IV = ValueState[V]; 324 IV.markForcedConstant(C); 325 DEBUG(dbgs() << "markForcedConstant: " << *C << ": " << *V << '\n'); 326 if (IV.isOverdefined()) 327 OverdefinedInstWorkList.push_back(V); 328 else 329 InstWorkList.push_back(V); 330 } 331 332 333 // markOverdefined - Make a value be marked as "overdefined". If the 334 // value is not already overdefined, add it to the overdefined instruction 335 // work list so that the users of the instruction are updated later. 336 void markOverdefined(LatticeVal &IV, Value *V) { 337 if (!IV.markOverdefined()) return; 338 339 DEBUG(dbgs() << "markOverdefined: "; 340 if (Function *F = dyn_cast<Function>(V)) 341 dbgs() << "Function '" << F->getName() << "'\n"; 342 else 343 dbgs() << *V << '\n'); 344 // Only instructions go on the work list 345 OverdefinedInstWorkList.push_back(V); 346 } 347 348 void mergeInValue(LatticeVal &IV, Value *V, LatticeVal MergeWithV) { 349 if (IV.isOverdefined() || MergeWithV.isUndefined()) 350 return; // Noop. 351 if (MergeWithV.isOverdefined()) 352 markOverdefined(IV, V); 353 else if (IV.isUndefined()) 354 markConstant(IV, V, MergeWithV.getConstant()); 355 else if (IV.getConstant() != MergeWithV.getConstant()) 356 markOverdefined(IV, V); 357 } 358 359 void mergeInValue(Value *V, LatticeVal MergeWithV) { 360 assert(!V->getType()->isStructTy() && "Should use other method"); 361 mergeInValue(ValueState[V], V, MergeWithV); 362 } 363 364 365 /// getValueState - Return the LatticeVal object that corresponds to the 366 /// value. This function handles the case when the value hasn't been seen yet 367 /// by properly seeding constants etc. 368 LatticeVal &getValueState(Value *V) { 369 assert(!V->getType()->isStructTy() && "Should use getStructValueState"); 370 371 std::pair<DenseMap<Value*, LatticeVal>::iterator, bool> I = 372 ValueState.insert(std::make_pair(V, LatticeVal())); 373 LatticeVal &LV = I.first->second; 374 375 if (!I.second) 376 return LV; // Common case, already in the map. 377 378 if (Constant *C = dyn_cast<Constant>(V)) { 379 // Undef values remain undefined. 380 if (!isa<UndefValue>(V)) 381 LV.markConstant(C); // Constants are constant 382 } 383 384 // All others are underdefined by default. 385 return LV; 386 } 387 388 /// getStructValueState - Return the LatticeVal object that corresponds to the 389 /// value/field pair. This function handles the case when the value hasn't 390 /// been seen yet by properly seeding constants etc. 391 LatticeVal &getStructValueState(Value *V, unsigned i) { 392 assert(V->getType()->isStructTy() && "Should use getValueState"); 393 assert(i < cast<StructType>(V->getType())->getNumElements() && 394 "Invalid element #"); 395 396 std::pair<DenseMap<std::pair<Value*, unsigned>, LatticeVal>::iterator, 397 bool> I = StructValueState.insert( 398 std::make_pair(std::make_pair(V, i), LatticeVal())); 399 LatticeVal &LV = I.first->second; 400 401 if (!I.second) 402 return LV; // Common case, already in the map. 403 404 if (Constant *C = dyn_cast<Constant>(V)) { 405 Constant *Elt = C->getAggregateElement(i); 406 407 if (Elt == 0) 408 LV.markOverdefined(); // Unknown sort of constant. 409 else if (isa<UndefValue>(Elt)) 410 ; // Undef values remain undefined. 411 else 412 LV.markConstant(Elt); // Constants are constant. 413 } 414 415 // All others are underdefined by default. 416 return LV; 417 } 418 419 420 /// markEdgeExecutable - Mark a basic block as executable, adding it to the BB 421 /// work list if it is not already executable. 422 void markEdgeExecutable(BasicBlock *Source, BasicBlock *Dest) { 423 if (!KnownFeasibleEdges.insert(Edge(Source, Dest)).second) 424 return; // This edge is already known to be executable! 425 426 if (!MarkBlockExecutable(Dest)) { 427 // If the destination is already executable, we just made an *edge* 428 // feasible that wasn't before. Revisit the PHI nodes in the block 429 // because they have potentially new operands. 430 DEBUG(dbgs() << "Marking Edge Executable: " << Source->getName() 431 << " -> " << Dest->getName() << '\n'); 432 433 PHINode *PN; 434 for (BasicBlock::iterator I = Dest->begin(); 435 (PN = dyn_cast<PHINode>(I)); ++I) 436 visitPHINode(*PN); 437 } 438 } 439 440 // getFeasibleSuccessors - Return a vector of booleans to indicate which 441 // successors are reachable from a given terminator instruction. 442 // 443 void getFeasibleSuccessors(TerminatorInst &TI, SmallVectorImpl<bool> &Succs); 444 445 // isEdgeFeasible - Return true if the control flow edge from the 'From' basic 446 // block to the 'To' basic block is currently feasible. 447 // 448 bool isEdgeFeasible(BasicBlock *From, BasicBlock *To); 449 450 // OperandChangedState - This method is invoked on all of the users of an 451 // instruction that was just changed state somehow. Based on this 452 // information, we need to update the specified user of this instruction. 453 // 454 void OperandChangedState(Instruction *I) { 455 if (BBExecutable.count(I->getParent())) // Inst is executable? 456 visit(*I); 457 } 458 459 private: 460 friend class InstVisitor<SCCPSolver>; 461 462 // visit implementations - Something changed in this instruction. Either an 463 // operand made a transition, or the instruction is newly executable. Change 464 // the value type of I to reflect these changes if appropriate. 465 void visitPHINode(PHINode &I); 466 467 // Terminators 468 void visitReturnInst(ReturnInst &I); 469 void visitTerminatorInst(TerminatorInst &TI); 470 471 void visitCastInst(CastInst &I); 472 void visitSelectInst(SelectInst &I); 473 void visitBinaryOperator(Instruction &I); 474 void visitCmpInst(CmpInst &I); 475 void visitExtractElementInst(ExtractElementInst &I); 476 void visitInsertElementInst(InsertElementInst &I); 477 void visitShuffleVectorInst(ShuffleVectorInst &I); 478 void visitExtractValueInst(ExtractValueInst &EVI); 479 void visitInsertValueInst(InsertValueInst &IVI); 480 void visitLandingPadInst(LandingPadInst &I) { markAnythingOverdefined(&I); } 481 482 // Instructions that cannot be folded away. 483 void visitStoreInst (StoreInst &I); 484 void visitLoadInst (LoadInst &I); 485 void visitGetElementPtrInst(GetElementPtrInst &I); 486 void visitCallInst (CallInst &I) { 487 visitCallSite(&I); 488 } 489 void visitInvokeInst (InvokeInst &II) { 490 visitCallSite(&II); 491 visitTerminatorInst(II); 492 } 493 void visitCallSite (CallSite CS); 494 void visitResumeInst (TerminatorInst &I) { /*returns void*/ } 495 void visitUnreachableInst(TerminatorInst &I) { /*returns void*/ } 496 void visitFenceInst (FenceInst &I) { /*returns void*/ } 497 void visitAtomicCmpXchgInst (AtomicCmpXchgInst &I) { markOverdefined(&I); } 498 void visitAtomicRMWInst (AtomicRMWInst &I) { markOverdefined(&I); } 499 void visitAllocaInst (Instruction &I) { markOverdefined(&I); } 500 void visitVAArgInst (Instruction &I) { markAnythingOverdefined(&I); } 501 502 void visitInstruction(Instruction &I) { 503 // If a new instruction is added to LLVM that we don't handle. 504 dbgs() << "SCCP: Don't know how to handle: " << I << '\n'; 505 markAnythingOverdefined(&I); // Just in case 506 } 507 }; 508 509 } // end anonymous namespace 510 511 512 // getFeasibleSuccessors - Return a vector of booleans to indicate which 513 // successors are reachable from a given terminator instruction. 514 // 515 void SCCPSolver::getFeasibleSuccessors(TerminatorInst &TI, 516 SmallVectorImpl<bool> &Succs) { 517 Succs.resize(TI.getNumSuccessors()); 518 if (BranchInst *BI = dyn_cast<BranchInst>(&TI)) { 519 if (BI->isUnconditional()) { 520 Succs[0] = true; 521 return; 522 } 523 524 LatticeVal BCValue = getValueState(BI->getCondition()); 525 ConstantInt *CI = BCValue.getConstantInt(); 526 if (CI == 0) { 527 // Overdefined condition variables, and branches on unfoldable constant 528 // conditions, mean the branch could go either way. 529 if (!BCValue.isUndefined()) 530 Succs[0] = Succs[1] = true; 531 return; 532 } 533 534 // Constant condition variables mean the branch can only go a single way. 535 Succs[CI->isZero()] = true; 536 return; 537 } 538 539 if (isa<InvokeInst>(TI)) { 540 // Invoke instructions successors are always executable. 541 Succs[0] = Succs[1] = true; 542 return; 543 } 544 545 if (SwitchInst *SI = dyn_cast<SwitchInst>(&TI)) { 546 if (!SI->getNumCases()) { 547 Succs[0] = true; 548 return; 549 } 550 LatticeVal SCValue = getValueState(SI->getCondition()); 551 ConstantInt *CI = SCValue.getConstantInt(); 552 553 if (CI == 0) { // Overdefined or undefined condition? 554 // All destinations are executable! 555 if (!SCValue.isUndefined()) 556 Succs.assign(TI.getNumSuccessors(), true); 557 return; 558 } 559 560 Succs[SI->findCaseValue(CI).getSuccessorIndex()] = true; 561 return; 562 } 563 564 // TODO: This could be improved if the operand is a [cast of a] BlockAddress. 565 if (isa<IndirectBrInst>(&TI)) { 566 // Just mark all destinations executable! 567 Succs.assign(TI.getNumSuccessors(), true); 568 return; 569 } 570 571 #ifndef NDEBUG 572 dbgs() << "Unknown terminator instruction: " << TI << '\n'; 573 #endif 574 llvm_unreachable("SCCP: Don't know how to handle this terminator!"); 575 } 576 577 578 // isEdgeFeasible - Return true if the control flow edge from the 'From' basic 579 // block to the 'To' basic block is currently feasible. 580 // 581 bool SCCPSolver::isEdgeFeasible(BasicBlock *From, BasicBlock *To) { 582 assert(BBExecutable.count(To) && "Dest should always be alive!"); 583 584 // Make sure the source basic block is executable!! 585 if (!BBExecutable.count(From)) return false; 586 587 // Check to make sure this edge itself is actually feasible now. 588 TerminatorInst *TI = From->getTerminator(); 589 if (BranchInst *BI = dyn_cast<BranchInst>(TI)) { 590 if (BI->isUnconditional()) 591 return true; 592 593 LatticeVal BCValue = getValueState(BI->getCondition()); 594 595 // Overdefined condition variables mean the branch could go either way, 596 // undef conditions mean that neither edge is feasible yet. 597 ConstantInt *CI = BCValue.getConstantInt(); 598 if (CI == 0) 599 return !BCValue.isUndefined(); 600 601 // Constant condition variables mean the branch can only go a single way. 602 return BI->getSuccessor(CI->isZero()) == To; 603 } 604 605 // Invoke instructions successors are always executable. 606 if (isa<InvokeInst>(TI)) 607 return true; 608 609 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) { 610 if (SI->getNumCases() < 1) 611 return true; 612 613 LatticeVal SCValue = getValueState(SI->getCondition()); 614 ConstantInt *CI = SCValue.getConstantInt(); 615 616 if (CI == 0) 617 return !SCValue.isUndefined(); 618 619 return SI->findCaseValue(CI).getCaseSuccessor() == To; 620 } 621 622 // Just mark all destinations executable! 623 // TODO: This could be improved if the operand is a [cast of a] BlockAddress. 624 if (isa<IndirectBrInst>(TI)) 625 return true; 626 627 #ifndef NDEBUG 628 dbgs() << "Unknown terminator instruction: " << *TI << '\n'; 629 #endif 630 llvm_unreachable(0); 631 } 632 633 // visit Implementations - Something changed in this instruction, either an 634 // operand made a transition, or the instruction is newly executable. Change 635 // the value type of I to reflect these changes if appropriate. This method 636 // makes sure to do the following actions: 637 // 638 // 1. If a phi node merges two constants in, and has conflicting value coming 639 // from different branches, or if the PHI node merges in an overdefined 640 // value, then the PHI node becomes overdefined. 641 // 2. If a phi node merges only constants in, and they all agree on value, the 642 // PHI node becomes a constant value equal to that. 643 // 3. If V <- x (op) y && isConstant(x) && isConstant(y) V = Constant 644 // 4. If V <- x (op) y && (isOverdefined(x) || isOverdefined(y)) V = Overdefined 645 // 5. If V <- MEM or V <- CALL or V <- (unknown) then V = Overdefined 646 // 6. If a conditional branch has a value that is constant, make the selected 647 // destination executable 648 // 7. If a conditional branch has a value that is overdefined, make all 649 // successors executable. 650 // 651 void SCCPSolver::visitPHINode(PHINode &PN) { 652 // If this PN returns a struct, just mark the result overdefined. 653 // TODO: We could do a lot better than this if code actually uses this. 654 if (PN.getType()->isStructTy()) 655 return markAnythingOverdefined(&PN); 656 657 if (getValueState(&PN).isOverdefined()) 658 return; // Quick exit 659 660 // Super-extra-high-degree PHI nodes are unlikely to ever be marked constant, 661 // and slow us down a lot. Just mark them overdefined. 662 if (PN.getNumIncomingValues() > 64) 663 return markOverdefined(&PN); 664 665 // Look at all of the executable operands of the PHI node. If any of them 666 // are overdefined, the PHI becomes overdefined as well. If they are all 667 // constant, and they agree with each other, the PHI becomes the identical 668 // constant. If they are constant and don't agree, the PHI is overdefined. 669 // If there are no executable operands, the PHI remains undefined. 670 // 671 Constant *OperandVal = 0; 672 for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i) { 673 LatticeVal IV = getValueState(PN.getIncomingValue(i)); 674 if (IV.isUndefined()) continue; // Doesn't influence PHI node. 675 676 if (!isEdgeFeasible(PN.getIncomingBlock(i), PN.getParent())) 677 continue; 678 679 if (IV.isOverdefined()) // PHI node becomes overdefined! 680 return markOverdefined(&PN); 681 682 if (OperandVal == 0) { // Grab the first value. 683 OperandVal = IV.getConstant(); 684 continue; 685 } 686 687 // There is already a reachable operand. If we conflict with it, 688 // then the PHI node becomes overdefined. If we agree with it, we 689 // can continue on. 690 691 // Check to see if there are two different constants merging, if so, the PHI 692 // node is overdefined. 693 if (IV.getConstant() != OperandVal) 694 return markOverdefined(&PN); 695 } 696 697 // If we exited the loop, this means that the PHI node only has constant 698 // arguments that agree with each other(and OperandVal is the constant) or 699 // OperandVal is null because there are no defined incoming arguments. If 700 // this is the case, the PHI remains undefined. 701 // 702 if (OperandVal) 703 markConstant(&PN, OperandVal); // Acquire operand value 704 } 705 706 void SCCPSolver::visitReturnInst(ReturnInst &I) { 707 if (I.getNumOperands() == 0) return; // ret void 708 709 Function *F = I.getParent()->getParent(); 710 Value *ResultOp = I.getOperand(0); 711 712 // If we are tracking the return value of this function, merge it in. 713 if (!TrackedRetVals.empty() && !ResultOp->getType()->isStructTy()) { 714 DenseMap<Function*, LatticeVal>::iterator TFRVI = 715 TrackedRetVals.find(F); 716 if (TFRVI != TrackedRetVals.end()) { 717 mergeInValue(TFRVI->second, F, getValueState(ResultOp)); 718 return; 719 } 720 } 721 722 // Handle functions that return multiple values. 723 if (!TrackedMultipleRetVals.empty()) { 724 if (StructType *STy = dyn_cast<StructType>(ResultOp->getType())) 725 if (MRVFunctionsTracked.count(F)) 726 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) 727 mergeInValue(TrackedMultipleRetVals[std::make_pair(F, i)], F, 728 getStructValueState(ResultOp, i)); 729 730 } 731 } 732 733 void SCCPSolver::visitTerminatorInst(TerminatorInst &TI) { 734 SmallVector<bool, 16> SuccFeasible; 735 getFeasibleSuccessors(TI, SuccFeasible); 736 737 BasicBlock *BB = TI.getParent(); 738 739 // Mark all feasible successors executable. 740 for (unsigned i = 0, e = SuccFeasible.size(); i != e; ++i) 741 if (SuccFeasible[i]) 742 markEdgeExecutable(BB, TI.getSuccessor(i)); 743 } 744 745 void SCCPSolver::visitCastInst(CastInst &I) { 746 LatticeVal OpSt = getValueState(I.getOperand(0)); 747 if (OpSt.isOverdefined()) // Inherit overdefinedness of operand 748 markOverdefined(&I); 749 else if (OpSt.isConstant()) // Propagate constant value 750 markConstant(&I, ConstantExpr::getCast(I.getOpcode(), 751 OpSt.getConstant(), I.getType())); 752 } 753 754 755 void SCCPSolver::visitExtractValueInst(ExtractValueInst &EVI) { 756 // If this returns a struct, mark all elements over defined, we don't track 757 // structs in structs. 758 if (EVI.getType()->isStructTy()) 759 return markAnythingOverdefined(&EVI); 760 761 // If this is extracting from more than one level of struct, we don't know. 762 if (EVI.getNumIndices() != 1) 763 return markOverdefined(&EVI); 764 765 Value *AggVal = EVI.getAggregateOperand(); 766 if (AggVal->getType()->isStructTy()) { 767 unsigned i = *EVI.idx_begin(); 768 LatticeVal EltVal = getStructValueState(AggVal, i); 769 mergeInValue(getValueState(&EVI), &EVI, EltVal); 770 } else { 771 // Otherwise, must be extracting from an array. 772 return markOverdefined(&EVI); 773 } 774 } 775 776 void SCCPSolver::visitInsertValueInst(InsertValueInst &IVI) { 777 StructType *STy = dyn_cast<StructType>(IVI.getType()); 778 if (STy == 0) 779 return markOverdefined(&IVI); 780 781 // If this has more than one index, we can't handle it, drive all results to 782 // undef. 783 if (IVI.getNumIndices() != 1) 784 return markAnythingOverdefined(&IVI); 785 786 Value *Aggr = IVI.getAggregateOperand(); 787 unsigned Idx = *IVI.idx_begin(); 788 789 // Compute the result based on what we're inserting. 790 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 791 // This passes through all values that aren't the inserted element. 792 if (i != Idx) { 793 LatticeVal EltVal = getStructValueState(Aggr, i); 794 mergeInValue(getStructValueState(&IVI, i), &IVI, EltVal); 795 continue; 796 } 797 798 Value *Val = IVI.getInsertedValueOperand(); 799 if (Val->getType()->isStructTy()) 800 // We don't track structs in structs. 801 markOverdefined(getStructValueState(&IVI, i), &IVI); 802 else { 803 LatticeVal InVal = getValueState(Val); 804 mergeInValue(getStructValueState(&IVI, i), &IVI, InVal); 805 } 806 } 807 } 808 809 void SCCPSolver::visitSelectInst(SelectInst &I) { 810 // If this select returns a struct, just mark the result overdefined. 811 // TODO: We could do a lot better than this if code actually uses this. 812 if (I.getType()->isStructTy()) 813 return markAnythingOverdefined(&I); 814 815 LatticeVal CondValue = getValueState(I.getCondition()); 816 if (CondValue.isUndefined()) 817 return; 818 819 if (ConstantInt *CondCB = CondValue.getConstantInt()) { 820 Value *OpVal = CondCB->isZero() ? I.getFalseValue() : I.getTrueValue(); 821 mergeInValue(&I, getValueState(OpVal)); 822 return; 823 } 824 825 // Otherwise, the condition is overdefined or a constant we can't evaluate. 826 // See if we can produce something better than overdefined based on the T/F 827 // value. 828 LatticeVal TVal = getValueState(I.getTrueValue()); 829 LatticeVal FVal = getValueState(I.getFalseValue()); 830 831 // select ?, C, C -> C. 832 if (TVal.isConstant() && FVal.isConstant() && 833 TVal.getConstant() == FVal.getConstant()) 834 return markConstant(&I, FVal.getConstant()); 835 836 if (TVal.isUndefined()) // select ?, undef, X -> X. 837 return mergeInValue(&I, FVal); 838 if (FVal.isUndefined()) // select ?, X, undef -> X. 839 return mergeInValue(&I, TVal); 840 markOverdefined(&I); 841 } 842 843 // Handle Binary Operators. 844 void SCCPSolver::visitBinaryOperator(Instruction &I) { 845 LatticeVal V1State = getValueState(I.getOperand(0)); 846 LatticeVal V2State = getValueState(I.getOperand(1)); 847 848 LatticeVal &IV = ValueState[&I]; 849 if (IV.isOverdefined()) return; 850 851 if (V1State.isConstant() && V2State.isConstant()) 852 return markConstant(IV, &I, 853 ConstantExpr::get(I.getOpcode(), V1State.getConstant(), 854 V2State.getConstant())); 855 856 // If something is undef, wait for it to resolve. 857 if (!V1State.isOverdefined() && !V2State.isOverdefined()) 858 return; 859 860 // Otherwise, one of our operands is overdefined. Try to produce something 861 // better than overdefined with some tricks. 862 863 // If this is an AND or OR with 0 or -1, it doesn't matter that the other 864 // operand is overdefined. 865 if (I.getOpcode() == Instruction::And || I.getOpcode() == Instruction::Or) { 866 LatticeVal *NonOverdefVal = 0; 867 if (!V1State.isOverdefined()) 868 NonOverdefVal = &V1State; 869 else if (!V2State.isOverdefined()) 870 NonOverdefVal = &V2State; 871 872 if (NonOverdefVal) { 873 if (NonOverdefVal->isUndefined()) { 874 // Could annihilate value. 875 if (I.getOpcode() == Instruction::And) 876 markConstant(IV, &I, Constant::getNullValue(I.getType())); 877 else if (VectorType *PT = dyn_cast<VectorType>(I.getType())) 878 markConstant(IV, &I, Constant::getAllOnesValue(PT)); 879 else 880 markConstant(IV, &I, 881 Constant::getAllOnesValue(I.getType())); 882 return; 883 } 884 885 if (I.getOpcode() == Instruction::And) { 886 // X and 0 = 0 887 if (NonOverdefVal->getConstant()->isNullValue()) 888 return markConstant(IV, &I, NonOverdefVal->getConstant()); 889 } else { 890 if (ConstantInt *CI = NonOverdefVal->getConstantInt()) 891 if (CI->isAllOnesValue()) // X or -1 = -1 892 return markConstant(IV, &I, NonOverdefVal->getConstant()); 893 } 894 } 895 } 896 897 898 markOverdefined(&I); 899 } 900 901 // Handle ICmpInst instruction. 902 void SCCPSolver::visitCmpInst(CmpInst &I) { 903 LatticeVal V1State = getValueState(I.getOperand(0)); 904 LatticeVal V2State = getValueState(I.getOperand(1)); 905 906 LatticeVal &IV = ValueState[&I]; 907 if (IV.isOverdefined()) return; 908 909 if (V1State.isConstant() && V2State.isConstant()) 910 return markConstant(IV, &I, ConstantExpr::getCompare(I.getPredicate(), 911 V1State.getConstant(), 912 V2State.getConstant())); 913 914 // If operands are still undefined, wait for it to resolve. 915 if (!V1State.isOverdefined() && !V2State.isOverdefined()) 916 return; 917 918 markOverdefined(&I); 919 } 920 921 void SCCPSolver::visitExtractElementInst(ExtractElementInst &I) { 922 // TODO : SCCP does not handle vectors properly. 923 return markOverdefined(&I); 924 925 #if 0 926 LatticeVal &ValState = getValueState(I.getOperand(0)); 927 LatticeVal &IdxState = getValueState(I.getOperand(1)); 928 929 if (ValState.isOverdefined() || IdxState.isOverdefined()) 930 markOverdefined(&I); 931 else if(ValState.isConstant() && IdxState.isConstant()) 932 markConstant(&I, ConstantExpr::getExtractElement(ValState.getConstant(), 933 IdxState.getConstant())); 934 #endif 935 } 936 937 void SCCPSolver::visitInsertElementInst(InsertElementInst &I) { 938 // TODO : SCCP does not handle vectors properly. 939 return markOverdefined(&I); 940 #if 0 941 LatticeVal &ValState = getValueState(I.getOperand(0)); 942 LatticeVal &EltState = getValueState(I.getOperand(1)); 943 LatticeVal &IdxState = getValueState(I.getOperand(2)); 944 945 if (ValState.isOverdefined() || EltState.isOverdefined() || 946 IdxState.isOverdefined()) 947 markOverdefined(&I); 948 else if(ValState.isConstant() && EltState.isConstant() && 949 IdxState.isConstant()) 950 markConstant(&I, ConstantExpr::getInsertElement(ValState.getConstant(), 951 EltState.getConstant(), 952 IdxState.getConstant())); 953 else if (ValState.isUndefined() && EltState.isConstant() && 954 IdxState.isConstant()) 955 markConstant(&I,ConstantExpr::getInsertElement(UndefValue::get(I.getType()), 956 EltState.getConstant(), 957 IdxState.getConstant())); 958 #endif 959 } 960 961 void SCCPSolver::visitShuffleVectorInst(ShuffleVectorInst &I) { 962 // TODO : SCCP does not handle vectors properly. 963 return markOverdefined(&I); 964 #if 0 965 LatticeVal &V1State = getValueState(I.getOperand(0)); 966 LatticeVal &V2State = getValueState(I.getOperand(1)); 967 LatticeVal &MaskState = getValueState(I.getOperand(2)); 968 969 if (MaskState.isUndefined() || 970 (V1State.isUndefined() && V2State.isUndefined())) 971 return; // Undefined output if mask or both inputs undefined. 972 973 if (V1State.isOverdefined() || V2State.isOverdefined() || 974 MaskState.isOverdefined()) { 975 markOverdefined(&I); 976 } else { 977 // A mix of constant/undef inputs. 978 Constant *V1 = V1State.isConstant() ? 979 V1State.getConstant() : UndefValue::get(I.getType()); 980 Constant *V2 = V2State.isConstant() ? 981 V2State.getConstant() : UndefValue::get(I.getType()); 982 Constant *Mask = MaskState.isConstant() ? 983 MaskState.getConstant() : UndefValue::get(I.getOperand(2)->getType()); 984 markConstant(&I, ConstantExpr::getShuffleVector(V1, V2, Mask)); 985 } 986 #endif 987 } 988 989 // Handle getelementptr instructions. If all operands are constants then we 990 // can turn this into a getelementptr ConstantExpr. 991 // 992 void SCCPSolver::visitGetElementPtrInst(GetElementPtrInst &I) { 993 if (ValueState[&I].isOverdefined()) return; 994 995 SmallVector<Constant*, 8> Operands; 996 Operands.reserve(I.getNumOperands()); 997 998 for (unsigned i = 0, e = I.getNumOperands(); i != e; ++i) { 999 LatticeVal State = getValueState(I.getOperand(i)); 1000 if (State.isUndefined()) 1001 return; // Operands are not resolved yet. 1002 1003 if (State.isOverdefined()) 1004 return markOverdefined(&I); 1005 1006 assert(State.isConstant() && "Unknown state!"); 1007 Operands.push_back(State.getConstant()); 1008 } 1009 1010 Constant *Ptr = Operands[0]; 1011 ArrayRef<Constant *> Indices(Operands.begin() + 1, Operands.end()); 1012 markConstant(&I, ConstantExpr::getGetElementPtr(Ptr, Indices)); 1013 } 1014 1015 void SCCPSolver::visitStoreInst(StoreInst &SI) { 1016 // If this store is of a struct, ignore it. 1017 if (SI.getOperand(0)->getType()->isStructTy()) 1018 return; 1019 1020 if (TrackedGlobals.empty() || !isa<GlobalVariable>(SI.getOperand(1))) 1021 return; 1022 1023 GlobalVariable *GV = cast<GlobalVariable>(SI.getOperand(1)); 1024 DenseMap<GlobalVariable*, LatticeVal>::iterator I = TrackedGlobals.find(GV); 1025 if (I == TrackedGlobals.end() || I->second.isOverdefined()) return; 1026 1027 // Get the value we are storing into the global, then merge it. 1028 mergeInValue(I->second, GV, getValueState(SI.getOperand(0))); 1029 if (I->second.isOverdefined()) 1030 TrackedGlobals.erase(I); // No need to keep tracking this! 1031 } 1032 1033 1034 // Handle load instructions. If the operand is a constant pointer to a constant 1035 // global, we can replace the load with the loaded constant value! 1036 void SCCPSolver::visitLoadInst(LoadInst &I) { 1037 // If this load is of a struct, just mark the result overdefined. 1038 if (I.getType()->isStructTy()) 1039 return markAnythingOverdefined(&I); 1040 1041 LatticeVal PtrVal = getValueState(I.getOperand(0)); 1042 if (PtrVal.isUndefined()) return; // The pointer is not resolved yet! 1043 1044 LatticeVal &IV = ValueState[&I]; 1045 if (IV.isOverdefined()) return; 1046 1047 if (!PtrVal.isConstant() || I.isVolatile()) 1048 return markOverdefined(IV, &I); 1049 1050 Constant *Ptr = PtrVal.getConstant(); 1051 1052 // load null -> null 1053 if (isa<ConstantPointerNull>(Ptr) && I.getPointerAddressSpace() == 0) 1054 return markConstant(IV, &I, Constant::getNullValue(I.getType())); 1055 1056 // Transform load (constant global) into the value loaded. 1057 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(Ptr)) { 1058 if (!TrackedGlobals.empty()) { 1059 // If we are tracking this global, merge in the known value for it. 1060 DenseMap<GlobalVariable*, LatticeVal>::iterator It = 1061 TrackedGlobals.find(GV); 1062 if (It != TrackedGlobals.end()) { 1063 mergeInValue(IV, &I, It->second); 1064 return; 1065 } 1066 } 1067 } 1068 1069 // Transform load from a constant into a constant if possible. 1070 if (Constant *C = ConstantFoldLoadFromConstPtr(Ptr, DL)) 1071 return markConstant(IV, &I, C); 1072 1073 // Otherwise we cannot say for certain what value this load will produce. 1074 // Bail out. 1075 markOverdefined(IV, &I); 1076 } 1077 1078 void SCCPSolver::visitCallSite(CallSite CS) { 1079 Function *F = CS.getCalledFunction(); 1080 Instruction *I = CS.getInstruction(); 1081 1082 // The common case is that we aren't tracking the callee, either because we 1083 // are not doing interprocedural analysis or the callee is indirect, or is 1084 // external. Handle these cases first. 1085 if (F == 0 || F->isDeclaration()) { 1086 CallOverdefined: 1087 // Void return and not tracking callee, just bail. 1088 if (I->getType()->isVoidTy()) return; 1089 1090 // Otherwise, if we have a single return value case, and if the function is 1091 // a declaration, maybe we can constant fold it. 1092 if (F && F->isDeclaration() && !I->getType()->isStructTy() && 1093 canConstantFoldCallTo(F)) { 1094 1095 SmallVector<Constant*, 8> Operands; 1096 for (CallSite::arg_iterator AI = CS.arg_begin(), E = CS.arg_end(); 1097 AI != E; ++AI) { 1098 LatticeVal State = getValueState(*AI); 1099 1100 if (State.isUndefined()) 1101 return; // Operands are not resolved yet. 1102 if (State.isOverdefined()) 1103 return markOverdefined(I); 1104 assert(State.isConstant() && "Unknown state!"); 1105 Operands.push_back(State.getConstant()); 1106 } 1107 1108 // If we can constant fold this, mark the result of the call as a 1109 // constant. 1110 if (Constant *C = ConstantFoldCall(F, Operands, TLI)) 1111 return markConstant(I, C); 1112 } 1113 1114 // Otherwise, we don't know anything about this call, mark it overdefined. 1115 return markAnythingOverdefined(I); 1116 } 1117 1118 // If this is a local function that doesn't have its address taken, mark its 1119 // entry block executable and merge in the actual arguments to the call into 1120 // the formal arguments of the function. 1121 if (!TrackingIncomingArguments.empty() && TrackingIncomingArguments.count(F)){ 1122 MarkBlockExecutable(F->begin()); 1123 1124 // Propagate information from this call site into the callee. 1125 CallSite::arg_iterator CAI = CS.arg_begin(); 1126 for (Function::arg_iterator AI = F->arg_begin(), E = F->arg_end(); 1127 AI != E; ++AI, ++CAI) { 1128 // If this argument is byval, and if the function is not readonly, there 1129 // will be an implicit copy formed of the input aggregate. 1130 if (AI->hasByValAttr() && !F->onlyReadsMemory()) { 1131 markOverdefined(AI); 1132 continue; 1133 } 1134 1135 if (StructType *STy = dyn_cast<StructType>(AI->getType())) { 1136 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 1137 LatticeVal CallArg = getStructValueState(*CAI, i); 1138 mergeInValue(getStructValueState(AI, i), AI, CallArg); 1139 } 1140 } else { 1141 mergeInValue(AI, getValueState(*CAI)); 1142 } 1143 } 1144 } 1145 1146 // If this is a single/zero retval case, see if we're tracking the function. 1147 if (StructType *STy = dyn_cast<StructType>(F->getReturnType())) { 1148 if (!MRVFunctionsTracked.count(F)) 1149 goto CallOverdefined; // Not tracking this callee. 1150 1151 // If we are tracking this callee, propagate the result of the function 1152 // into this call site. 1153 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) 1154 mergeInValue(getStructValueState(I, i), I, 1155 TrackedMultipleRetVals[std::make_pair(F, i)]); 1156 } else { 1157 DenseMap<Function*, LatticeVal>::iterator TFRVI = TrackedRetVals.find(F); 1158 if (TFRVI == TrackedRetVals.end()) 1159 goto CallOverdefined; // Not tracking this callee. 1160 1161 // If so, propagate the return value of the callee into this call result. 1162 mergeInValue(I, TFRVI->second); 1163 } 1164 } 1165 1166 void SCCPSolver::Solve() { 1167 // Process the work lists until they are empty! 1168 while (!BBWorkList.empty() || !InstWorkList.empty() || 1169 !OverdefinedInstWorkList.empty()) { 1170 // Process the overdefined instruction's work list first, which drives other 1171 // things to overdefined more quickly. 1172 while (!OverdefinedInstWorkList.empty()) { 1173 Value *I = OverdefinedInstWorkList.pop_back_val(); 1174 1175 DEBUG(dbgs() << "\nPopped off OI-WL: " << *I << '\n'); 1176 1177 // "I" got into the work list because it either made the transition from 1178 // bottom to constant, or to overdefined. 1179 // 1180 // Anything on this worklist that is overdefined need not be visited 1181 // since all of its users will have already been marked as overdefined 1182 // Update all of the users of this instruction's value. 1183 // 1184 for (User *U : I->users()) 1185 if (Instruction *UI = dyn_cast<Instruction>(U)) 1186 OperandChangedState(UI); 1187 } 1188 1189 // Process the instruction work list. 1190 while (!InstWorkList.empty()) { 1191 Value *I = InstWorkList.pop_back_val(); 1192 1193 DEBUG(dbgs() << "\nPopped off I-WL: " << *I << '\n'); 1194 1195 // "I" got into the work list because it made the transition from undef to 1196 // constant. 1197 // 1198 // Anything on this worklist that is overdefined need not be visited 1199 // since all of its users will have already been marked as overdefined. 1200 // Update all of the users of this instruction's value. 1201 // 1202 if (I->getType()->isStructTy() || !getValueState(I).isOverdefined()) 1203 for (User *U : I->users()) 1204 if (Instruction *UI = dyn_cast<Instruction>(U)) 1205 OperandChangedState(UI); 1206 } 1207 1208 // Process the basic block work list. 1209 while (!BBWorkList.empty()) { 1210 BasicBlock *BB = BBWorkList.back(); 1211 BBWorkList.pop_back(); 1212 1213 DEBUG(dbgs() << "\nPopped off BBWL: " << *BB << '\n'); 1214 1215 // Notify all instructions in this basic block that they are newly 1216 // executable. 1217 visit(BB); 1218 } 1219 } 1220 } 1221 1222 /// ResolvedUndefsIn - While solving the dataflow for a function, we assume 1223 /// that branches on undef values cannot reach any of their successors. 1224 /// However, this is not a safe assumption. After we solve dataflow, this 1225 /// method should be use to handle this. If this returns true, the solver 1226 /// should be rerun. 1227 /// 1228 /// This method handles this by finding an unresolved branch and marking it one 1229 /// of the edges from the block as being feasible, even though the condition 1230 /// doesn't say it would otherwise be. This allows SCCP to find the rest of the 1231 /// CFG and only slightly pessimizes the analysis results (by marking one, 1232 /// potentially infeasible, edge feasible). This cannot usefully modify the 1233 /// constraints on the condition of the branch, as that would impact other users 1234 /// of the value. 1235 /// 1236 /// This scan also checks for values that use undefs, whose results are actually 1237 /// defined. For example, 'zext i8 undef to i32' should produce all zeros 1238 /// conservatively, as "(zext i8 X -> i32) & 0xFF00" must always return zero, 1239 /// even if X isn't defined. 1240 bool SCCPSolver::ResolvedUndefsIn(Function &F) { 1241 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB) { 1242 if (!BBExecutable.count(BB)) 1243 continue; 1244 1245 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ++I) { 1246 // Look for instructions which produce undef values. 1247 if (I->getType()->isVoidTy()) continue; 1248 1249 if (StructType *STy = dyn_cast<StructType>(I->getType())) { 1250 // Only a few things that can be structs matter for undef. 1251 1252 // Tracked calls must never be marked overdefined in ResolvedUndefsIn. 1253 if (CallSite CS = CallSite(I)) 1254 if (Function *F = CS.getCalledFunction()) 1255 if (MRVFunctionsTracked.count(F)) 1256 continue; 1257 1258 // extractvalue and insertvalue don't need to be marked; they are 1259 // tracked as precisely as their operands. 1260 if (isa<ExtractValueInst>(I) || isa<InsertValueInst>(I)) 1261 continue; 1262 1263 // Send the results of everything else to overdefined. We could be 1264 // more precise than this but it isn't worth bothering. 1265 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) { 1266 LatticeVal &LV = getStructValueState(I, i); 1267 if (LV.isUndefined()) 1268 markOverdefined(LV, I); 1269 } 1270 continue; 1271 } 1272 1273 LatticeVal &LV = getValueState(I); 1274 if (!LV.isUndefined()) continue; 1275 1276 // extractvalue is safe; check here because the argument is a struct. 1277 if (isa<ExtractValueInst>(I)) 1278 continue; 1279 1280 // Compute the operand LatticeVals, for convenience below. 1281 // Anything taking a struct is conservatively assumed to require 1282 // overdefined markings. 1283 if (I->getOperand(0)->getType()->isStructTy()) { 1284 markOverdefined(I); 1285 return true; 1286 } 1287 LatticeVal Op0LV = getValueState(I->getOperand(0)); 1288 LatticeVal Op1LV; 1289 if (I->getNumOperands() == 2) { 1290 if (I->getOperand(1)->getType()->isStructTy()) { 1291 markOverdefined(I); 1292 return true; 1293 } 1294 1295 Op1LV = getValueState(I->getOperand(1)); 1296 } 1297 // If this is an instructions whose result is defined even if the input is 1298 // not fully defined, propagate the information. 1299 Type *ITy = I->getType(); 1300 switch (I->getOpcode()) { 1301 case Instruction::Add: 1302 case Instruction::Sub: 1303 case Instruction::Trunc: 1304 case Instruction::FPTrunc: 1305 case Instruction::BitCast: 1306 break; // Any undef -> undef 1307 case Instruction::FSub: 1308 case Instruction::FAdd: 1309 case Instruction::FMul: 1310 case Instruction::FDiv: 1311 case Instruction::FRem: 1312 // Floating-point binary operation: be conservative. 1313 if (Op0LV.isUndefined() && Op1LV.isUndefined()) 1314 markForcedConstant(I, Constant::getNullValue(ITy)); 1315 else 1316 markOverdefined(I); 1317 return true; 1318 case Instruction::ZExt: 1319 case Instruction::SExt: 1320 case Instruction::FPToUI: 1321 case Instruction::FPToSI: 1322 case Instruction::FPExt: 1323 case Instruction::PtrToInt: 1324 case Instruction::IntToPtr: 1325 case Instruction::SIToFP: 1326 case Instruction::UIToFP: 1327 // undef -> 0; some outputs are impossible 1328 markForcedConstant(I, Constant::getNullValue(ITy)); 1329 return true; 1330 case Instruction::Mul: 1331 case Instruction::And: 1332 // Both operands undef -> undef 1333 if (Op0LV.isUndefined() && Op1LV.isUndefined()) 1334 break; 1335 // undef * X -> 0. X could be zero. 1336 // undef & X -> 0. X could be zero. 1337 markForcedConstant(I, Constant::getNullValue(ITy)); 1338 return true; 1339 1340 case Instruction::Or: 1341 // Both operands undef -> undef 1342 if (Op0LV.isUndefined() && Op1LV.isUndefined()) 1343 break; 1344 // undef | X -> -1. X could be -1. 1345 markForcedConstant(I, Constant::getAllOnesValue(ITy)); 1346 return true; 1347 1348 case Instruction::Xor: 1349 // undef ^ undef -> 0; strictly speaking, this is not strictly 1350 // necessary, but we try to be nice to people who expect this 1351 // behavior in simple cases 1352 if (Op0LV.isUndefined() && Op1LV.isUndefined()) { 1353 markForcedConstant(I, Constant::getNullValue(ITy)); 1354 return true; 1355 } 1356 // undef ^ X -> undef 1357 break; 1358 1359 case Instruction::SDiv: 1360 case Instruction::UDiv: 1361 case Instruction::SRem: 1362 case Instruction::URem: 1363 // X / undef -> undef. No change. 1364 // X % undef -> undef. No change. 1365 if (Op1LV.isUndefined()) break; 1366 1367 // undef / X -> 0. X could be maxint. 1368 // undef % X -> 0. X could be 1. 1369 markForcedConstant(I, Constant::getNullValue(ITy)); 1370 return true; 1371 1372 case Instruction::AShr: 1373 // X >>a undef -> undef. 1374 if (Op1LV.isUndefined()) break; 1375 1376 // undef >>a X -> all ones 1377 markForcedConstant(I, Constant::getAllOnesValue(ITy)); 1378 return true; 1379 case Instruction::LShr: 1380 case Instruction::Shl: 1381 // X << undef -> undef. 1382 // X >> undef -> undef. 1383 if (Op1LV.isUndefined()) break; 1384 1385 // undef << X -> 0 1386 // undef >> X -> 0 1387 markForcedConstant(I, Constant::getNullValue(ITy)); 1388 return true; 1389 case Instruction::Select: 1390 Op1LV = getValueState(I->getOperand(1)); 1391 // undef ? X : Y -> X or Y. There could be commonality between X/Y. 1392 if (Op0LV.isUndefined()) { 1393 if (!Op1LV.isConstant()) // Pick the constant one if there is any. 1394 Op1LV = getValueState(I->getOperand(2)); 1395 } else if (Op1LV.isUndefined()) { 1396 // c ? undef : undef -> undef. No change. 1397 Op1LV = getValueState(I->getOperand(2)); 1398 if (Op1LV.isUndefined()) 1399 break; 1400 // Otherwise, c ? undef : x -> x. 1401 } else { 1402 // Leave Op1LV as Operand(1)'s LatticeValue. 1403 } 1404 1405 if (Op1LV.isConstant()) 1406 markForcedConstant(I, Op1LV.getConstant()); 1407 else 1408 markOverdefined(I); 1409 return true; 1410 case Instruction::Load: 1411 // A load here means one of two things: a load of undef from a global, 1412 // a load from an unknown pointer. Either way, having it return undef 1413 // is okay. 1414 break; 1415 case Instruction::ICmp: 1416 // X == undef -> undef. Other comparisons get more complicated. 1417 if (cast<ICmpInst>(I)->isEquality()) 1418 break; 1419 markOverdefined(I); 1420 return true; 1421 case Instruction::Call: 1422 case Instruction::Invoke: { 1423 // There are two reasons a call can have an undef result 1424 // 1. It could be tracked. 1425 // 2. It could be constant-foldable. 1426 // Because of the way we solve return values, tracked calls must 1427 // never be marked overdefined in ResolvedUndefsIn. 1428 if (Function *F = CallSite(I).getCalledFunction()) 1429 if (TrackedRetVals.count(F)) 1430 break; 1431 1432 // If the call is constant-foldable, we mark it overdefined because 1433 // we do not know what return values are valid. 1434 markOverdefined(I); 1435 return true; 1436 } 1437 default: 1438 // If we don't know what should happen here, conservatively mark it 1439 // overdefined. 1440 markOverdefined(I); 1441 return true; 1442 } 1443 } 1444 1445 // Check to see if we have a branch or switch on an undefined value. If so 1446 // we force the branch to go one way or the other to make the successor 1447 // values live. It doesn't really matter which way we force it. 1448 TerminatorInst *TI = BB->getTerminator(); 1449 if (BranchInst *BI = dyn_cast<BranchInst>(TI)) { 1450 if (!BI->isConditional()) continue; 1451 if (!getValueState(BI->getCondition()).isUndefined()) 1452 continue; 1453 1454 // If the input to SCCP is actually branch on undef, fix the undef to 1455 // false. 1456 if (isa<UndefValue>(BI->getCondition())) { 1457 BI->setCondition(ConstantInt::getFalse(BI->getContext())); 1458 markEdgeExecutable(BB, TI->getSuccessor(1)); 1459 return true; 1460 } 1461 1462 // Otherwise, it is a branch on a symbolic value which is currently 1463 // considered to be undef. Handle this by forcing the input value to the 1464 // branch to false. 1465 markForcedConstant(BI->getCondition(), 1466 ConstantInt::getFalse(TI->getContext())); 1467 return true; 1468 } 1469 1470 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) { 1471 if (!SI->getNumCases()) 1472 continue; 1473 if (!getValueState(SI->getCondition()).isUndefined()) 1474 continue; 1475 1476 // If the input to SCCP is actually switch on undef, fix the undef to 1477 // the first constant. 1478 if (isa<UndefValue>(SI->getCondition())) { 1479 SI->setCondition(SI->case_begin().getCaseValue()); 1480 markEdgeExecutable(BB, SI->case_begin().getCaseSuccessor()); 1481 return true; 1482 } 1483 1484 markForcedConstant(SI->getCondition(), SI->case_begin().getCaseValue()); 1485 return true; 1486 } 1487 } 1488 1489 return false; 1490 } 1491 1492 1493 namespace { 1494 //===--------------------------------------------------------------------===// 1495 // 1496 /// SCCP Class - This class uses the SCCPSolver to implement a per-function 1497 /// Sparse Conditional Constant Propagator. 1498 /// 1499 struct SCCP : public FunctionPass { 1500 void getAnalysisUsage(AnalysisUsage &AU) const override { 1501 AU.addRequired<TargetLibraryInfo>(); 1502 } 1503 static char ID; // Pass identification, replacement for typeid 1504 SCCP() : FunctionPass(ID) { 1505 initializeSCCPPass(*PassRegistry::getPassRegistry()); 1506 } 1507 1508 // runOnFunction - Run the Sparse Conditional Constant Propagation 1509 // algorithm, and return true if the function was modified. 1510 // 1511 bool runOnFunction(Function &F) override; 1512 }; 1513 } // end anonymous namespace 1514 1515 char SCCP::ID = 0; 1516 INITIALIZE_PASS(SCCP, "sccp", 1517 "Sparse Conditional Constant Propagation", false, false) 1518 1519 // createSCCPPass - This is the public interface to this file. 1520 FunctionPass *llvm::createSCCPPass() { 1521 return new SCCP(); 1522 } 1523 1524 static void DeleteInstructionInBlock(BasicBlock *BB) { 1525 DEBUG(dbgs() << " BasicBlock Dead:" << *BB); 1526 ++NumDeadBlocks; 1527 1528 // Check to see if there are non-terminating instructions to delete. 1529 if (isa<TerminatorInst>(BB->begin())) 1530 return; 1531 1532 // Delete the instructions backwards, as it has a reduced likelihood of having 1533 // to update as many def-use and use-def chains. 1534 Instruction *EndInst = BB->getTerminator(); // Last not to be deleted. 1535 while (EndInst != BB->begin()) { 1536 // Delete the next to last instruction. 1537 BasicBlock::iterator I = EndInst; 1538 Instruction *Inst = --I; 1539 if (!Inst->use_empty()) 1540 Inst->replaceAllUsesWith(UndefValue::get(Inst->getType())); 1541 if (isa<LandingPadInst>(Inst)) { 1542 EndInst = Inst; 1543 continue; 1544 } 1545 BB->getInstList().erase(Inst); 1546 ++NumInstRemoved; 1547 } 1548 } 1549 1550 // runOnFunction() - Run the Sparse Conditional Constant Propagation algorithm, 1551 // and return true if the function was modified. 1552 // 1553 bool SCCP::runOnFunction(Function &F) { 1554 if (skipOptnoneFunction(F)) 1555 return false; 1556 1557 DEBUG(dbgs() << "SCCP on function '" << F.getName() << "'\n"); 1558 const DataLayoutPass *DLP = getAnalysisIfAvailable<DataLayoutPass>(); 1559 const DataLayout *DL = DLP ? &DLP->getDataLayout() : 0; 1560 const TargetLibraryInfo *TLI = &getAnalysis<TargetLibraryInfo>(); 1561 SCCPSolver Solver(DL, TLI); 1562 1563 // Mark the first block of the function as being executable. 1564 Solver.MarkBlockExecutable(F.begin()); 1565 1566 // Mark all arguments to the function as being overdefined. 1567 for (Function::arg_iterator AI = F.arg_begin(), E = F.arg_end(); AI != E;++AI) 1568 Solver.markAnythingOverdefined(AI); 1569 1570 // Solve for constants. 1571 bool ResolvedUndefs = true; 1572 while (ResolvedUndefs) { 1573 Solver.Solve(); 1574 DEBUG(dbgs() << "RESOLVING UNDEFs\n"); 1575 ResolvedUndefs = Solver.ResolvedUndefsIn(F); 1576 } 1577 1578 bool MadeChanges = false; 1579 1580 // If we decided that there are basic blocks that are dead in this function, 1581 // delete their contents now. Note that we cannot actually delete the blocks, 1582 // as we cannot modify the CFG of the function. 1583 1584 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB) { 1585 if (!Solver.isBlockExecutable(BB)) { 1586 DeleteInstructionInBlock(BB); 1587 MadeChanges = true; 1588 continue; 1589 } 1590 1591 // Iterate over all of the instructions in a function, replacing them with 1592 // constants if we have found them to be of constant values. 1593 // 1594 for (BasicBlock::iterator BI = BB->begin(), E = BB->end(); BI != E; ) { 1595 Instruction *Inst = BI++; 1596 if (Inst->getType()->isVoidTy() || isa<TerminatorInst>(Inst)) 1597 continue; 1598 1599 // TODO: Reconstruct structs from their elements. 1600 if (Inst->getType()->isStructTy()) 1601 continue; 1602 1603 LatticeVal IV = Solver.getLatticeValueFor(Inst); 1604 if (IV.isOverdefined()) 1605 continue; 1606 1607 Constant *Const = IV.isConstant() 1608 ? IV.getConstant() : UndefValue::get(Inst->getType()); 1609 DEBUG(dbgs() << " Constant: " << *Const << " = " << *Inst << '\n'); 1610 1611 // Replaces all of the uses of a variable with uses of the constant. 1612 Inst->replaceAllUsesWith(Const); 1613 1614 // Delete the instruction. 1615 Inst->eraseFromParent(); 1616 1617 // Hey, we just changed something! 1618 MadeChanges = true; 1619 ++NumInstRemoved; 1620 } 1621 } 1622 1623 return MadeChanges; 1624 } 1625 1626 namespace { 1627 //===--------------------------------------------------------------------===// 1628 // 1629 /// IPSCCP Class - This class implements interprocedural Sparse Conditional 1630 /// Constant Propagation. 1631 /// 1632 struct IPSCCP : public ModulePass { 1633 void getAnalysisUsage(AnalysisUsage &AU) const override { 1634 AU.addRequired<TargetLibraryInfo>(); 1635 } 1636 static char ID; 1637 IPSCCP() : ModulePass(ID) { 1638 initializeIPSCCPPass(*PassRegistry::getPassRegistry()); 1639 } 1640 bool runOnModule(Module &M) override; 1641 }; 1642 } // end anonymous namespace 1643 1644 char IPSCCP::ID = 0; 1645 INITIALIZE_PASS_BEGIN(IPSCCP, "ipsccp", 1646 "Interprocedural Sparse Conditional Constant Propagation", 1647 false, false) 1648 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfo) 1649 INITIALIZE_PASS_END(IPSCCP, "ipsccp", 1650 "Interprocedural Sparse Conditional Constant Propagation", 1651 false, false) 1652 1653 // createIPSCCPPass - This is the public interface to this file. 1654 ModulePass *llvm::createIPSCCPPass() { 1655 return new IPSCCP(); 1656 } 1657 1658 1659 static bool AddressIsTaken(const GlobalValue *GV) { 1660 // Delete any dead constantexpr klingons. 1661 GV->removeDeadConstantUsers(); 1662 1663 for (const Use &U : GV->uses()) { 1664 const User *UR = U.getUser(); 1665 if (const StoreInst *SI = dyn_cast<StoreInst>(UR)) { 1666 if (SI->getOperand(0) == GV || SI->isVolatile()) 1667 return true; // Storing addr of GV. 1668 } else if (isa<InvokeInst>(UR) || isa<CallInst>(UR)) { 1669 // Make sure we are calling the function, not passing the address. 1670 ImmutableCallSite CS(cast<Instruction>(UR)); 1671 if (!CS.isCallee(&U)) 1672 return true; 1673 } else if (const LoadInst *LI = dyn_cast<LoadInst>(UR)) { 1674 if (LI->isVolatile()) 1675 return true; 1676 } else if (isa<BlockAddress>(UR)) { 1677 // blockaddress doesn't take the address of the function, it takes addr 1678 // of label. 1679 } else { 1680 return true; 1681 } 1682 } 1683 return false; 1684 } 1685 1686 bool IPSCCP::runOnModule(Module &M) { 1687 DataLayoutPass *DLP = getAnalysisIfAvailable<DataLayoutPass>(); 1688 const DataLayout *DL = DLP ? &DLP->getDataLayout() : 0; 1689 const TargetLibraryInfo *TLI = &getAnalysis<TargetLibraryInfo>(); 1690 SCCPSolver Solver(DL, TLI); 1691 1692 // AddressTakenFunctions - This set keeps track of the address-taken functions 1693 // that are in the input. As IPSCCP runs through and simplifies code, 1694 // functions that were address taken can end up losing their 1695 // address-taken-ness. Because of this, we keep track of their addresses from 1696 // the first pass so we can use them for the later simplification pass. 1697 SmallPtrSet<Function*, 32> AddressTakenFunctions; 1698 1699 // Loop over all functions, marking arguments to those with their addresses 1700 // taken or that are external as overdefined. 1701 // 1702 for (Module::iterator F = M.begin(), E = M.end(); F != E; ++F) { 1703 if (F->isDeclaration()) 1704 continue; 1705 1706 // If this is a strong or ODR definition of this function, then we can 1707 // propagate information about its result into callsites of it. 1708 if (!F->mayBeOverridden()) 1709 Solver.AddTrackedFunction(F); 1710 1711 // If this function only has direct calls that we can see, we can track its 1712 // arguments and return value aggressively, and can assume it is not called 1713 // unless we see evidence to the contrary. 1714 if (F->hasLocalLinkage()) { 1715 if (AddressIsTaken(F)) 1716 AddressTakenFunctions.insert(F); 1717 else { 1718 Solver.AddArgumentTrackedFunction(F); 1719 continue; 1720 } 1721 } 1722 1723 // Assume the function is called. 1724 Solver.MarkBlockExecutable(F->begin()); 1725 1726 // Assume nothing about the incoming arguments. 1727 for (Function::arg_iterator AI = F->arg_begin(), E = F->arg_end(); 1728 AI != E; ++AI) 1729 Solver.markAnythingOverdefined(AI); 1730 } 1731 1732 // Loop over global variables. We inform the solver about any internal global 1733 // variables that do not have their 'addresses taken'. If they don't have 1734 // their addresses taken, we can propagate constants through them. 1735 for (Module::global_iterator G = M.global_begin(), E = M.global_end(); 1736 G != E; ++G) 1737 if (!G->isConstant() && G->hasLocalLinkage() && !AddressIsTaken(G)) 1738 Solver.TrackValueOfGlobalVariable(G); 1739 1740 // Solve for constants. 1741 bool ResolvedUndefs = true; 1742 while (ResolvedUndefs) { 1743 Solver.Solve(); 1744 1745 DEBUG(dbgs() << "RESOLVING UNDEFS\n"); 1746 ResolvedUndefs = false; 1747 for (Module::iterator F = M.begin(), E = M.end(); F != E; ++F) 1748 ResolvedUndefs |= Solver.ResolvedUndefsIn(*F); 1749 } 1750 1751 bool MadeChanges = false; 1752 1753 // Iterate over all of the instructions in the module, replacing them with 1754 // constants if we have found them to be of constant values. 1755 // 1756 SmallVector<BasicBlock*, 512> BlocksToErase; 1757 1758 for (Module::iterator F = M.begin(), E = M.end(); F != E; ++F) { 1759 if (Solver.isBlockExecutable(F->begin())) { 1760 for (Function::arg_iterator AI = F->arg_begin(), E = F->arg_end(); 1761 AI != E; ++AI) { 1762 if (AI->use_empty() || AI->getType()->isStructTy()) continue; 1763 1764 // TODO: Could use getStructLatticeValueFor to find out if the entire 1765 // result is a constant and replace it entirely if so. 1766 1767 LatticeVal IV = Solver.getLatticeValueFor(AI); 1768 if (IV.isOverdefined()) continue; 1769 1770 Constant *CST = IV.isConstant() ? 1771 IV.getConstant() : UndefValue::get(AI->getType()); 1772 DEBUG(dbgs() << "*** Arg " << *AI << " = " << *CST <<"\n"); 1773 1774 // Replaces all of the uses of a variable with uses of the 1775 // constant. 1776 AI->replaceAllUsesWith(CST); 1777 ++IPNumArgsElimed; 1778 } 1779 } 1780 1781 for (Function::iterator BB = F->begin(), E = F->end(); BB != E; ++BB) { 1782 if (!Solver.isBlockExecutable(BB)) { 1783 DeleteInstructionInBlock(BB); 1784 MadeChanges = true; 1785 1786 TerminatorInst *TI = BB->getTerminator(); 1787 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i) { 1788 BasicBlock *Succ = TI->getSuccessor(i); 1789 if (!Succ->empty() && isa<PHINode>(Succ->begin())) 1790 TI->getSuccessor(i)->removePredecessor(BB); 1791 } 1792 if (!TI->use_empty()) 1793 TI->replaceAllUsesWith(UndefValue::get(TI->getType())); 1794 TI->eraseFromParent(); 1795 1796 if (&*BB != &F->front()) 1797 BlocksToErase.push_back(BB); 1798 else 1799 new UnreachableInst(M.getContext(), BB); 1800 continue; 1801 } 1802 1803 for (BasicBlock::iterator BI = BB->begin(), E = BB->end(); BI != E; ) { 1804 Instruction *Inst = BI++; 1805 if (Inst->getType()->isVoidTy() || Inst->getType()->isStructTy()) 1806 continue; 1807 1808 // TODO: Could use getStructLatticeValueFor to find out if the entire 1809 // result is a constant and replace it entirely if so. 1810 1811 LatticeVal IV = Solver.getLatticeValueFor(Inst); 1812 if (IV.isOverdefined()) 1813 continue; 1814 1815 Constant *Const = IV.isConstant() 1816 ? IV.getConstant() : UndefValue::get(Inst->getType()); 1817 DEBUG(dbgs() << " Constant: " << *Const << " = " << *Inst << '\n'); 1818 1819 // Replaces all of the uses of a variable with uses of the 1820 // constant. 1821 Inst->replaceAllUsesWith(Const); 1822 1823 // Delete the instruction. 1824 if (!isa<CallInst>(Inst) && !isa<TerminatorInst>(Inst)) 1825 Inst->eraseFromParent(); 1826 1827 // Hey, we just changed something! 1828 MadeChanges = true; 1829 ++IPNumInstRemoved; 1830 } 1831 } 1832 1833 // Now that all instructions in the function are constant folded, erase dead 1834 // blocks, because we can now use ConstantFoldTerminator to get rid of 1835 // in-edges. 1836 for (unsigned i = 0, e = BlocksToErase.size(); i != e; ++i) { 1837 // If there are any PHI nodes in this successor, drop entries for BB now. 1838 BasicBlock *DeadBB = BlocksToErase[i]; 1839 for (Value::user_iterator UI = DeadBB->user_begin(), 1840 UE = DeadBB->user_end(); 1841 UI != UE;) { 1842 // Grab the user and then increment the iterator early, as the user 1843 // will be deleted. Step past all adjacent uses from the same user. 1844 Instruction *I = dyn_cast<Instruction>(*UI); 1845 do { ++UI; } while (UI != UE && *UI == I); 1846 1847 // Ignore blockaddress users; BasicBlock's dtor will handle them. 1848 if (!I) continue; 1849 1850 bool Folded = ConstantFoldTerminator(I->getParent()); 1851 if (!Folded) { 1852 // The constant folder may not have been able to fold the terminator 1853 // if this is a branch or switch on undef. Fold it manually as a 1854 // branch to the first successor. 1855 #ifndef NDEBUG 1856 if (BranchInst *BI = dyn_cast<BranchInst>(I)) { 1857 assert(BI->isConditional() && isa<UndefValue>(BI->getCondition()) && 1858 "Branch should be foldable!"); 1859 } else if (SwitchInst *SI = dyn_cast<SwitchInst>(I)) { 1860 assert(isa<UndefValue>(SI->getCondition()) && "Switch should fold"); 1861 } else { 1862 llvm_unreachable("Didn't fold away reference to block!"); 1863 } 1864 #endif 1865 1866 // Make this an uncond branch to the first successor. 1867 TerminatorInst *TI = I->getParent()->getTerminator(); 1868 BranchInst::Create(TI->getSuccessor(0), TI); 1869 1870 // Remove entries in successor phi nodes to remove edges. 1871 for (unsigned i = 1, e = TI->getNumSuccessors(); i != e; ++i) 1872 TI->getSuccessor(i)->removePredecessor(TI->getParent()); 1873 1874 // Remove the old terminator. 1875 TI->eraseFromParent(); 1876 } 1877 } 1878 1879 // Finally, delete the basic block. 1880 F->getBasicBlockList().erase(DeadBB); 1881 } 1882 BlocksToErase.clear(); 1883 } 1884 1885 // If we inferred constant or undef return values for a function, we replaced 1886 // all call uses with the inferred value. This means we don't need to bother 1887 // actually returning anything from the function. Replace all return 1888 // instructions with return undef. 1889 // 1890 // Do this in two stages: first identify the functions we should process, then 1891 // actually zap their returns. This is important because we can only do this 1892 // if the address of the function isn't taken. In cases where a return is the 1893 // last use of a function, the order of processing functions would affect 1894 // whether other functions are optimizable. 1895 SmallVector<ReturnInst*, 8> ReturnsToZap; 1896 1897 // TODO: Process multiple value ret instructions also. 1898 const DenseMap<Function*, LatticeVal> &RV = Solver.getTrackedRetVals(); 1899 for (DenseMap<Function*, LatticeVal>::const_iterator I = RV.begin(), 1900 E = RV.end(); I != E; ++I) { 1901 Function *F = I->first; 1902 if (I->second.isOverdefined() || F->getReturnType()->isVoidTy()) 1903 continue; 1904 1905 // We can only do this if we know that nothing else can call the function. 1906 if (!F->hasLocalLinkage() || AddressTakenFunctions.count(F)) 1907 continue; 1908 1909 for (Function::iterator BB = F->begin(), E = F->end(); BB != E; ++BB) 1910 if (ReturnInst *RI = dyn_cast<ReturnInst>(BB->getTerminator())) 1911 if (!isa<UndefValue>(RI->getOperand(0))) 1912 ReturnsToZap.push_back(RI); 1913 } 1914 1915 // Zap all returns which we've identified as zap to change. 1916 for (unsigned i = 0, e = ReturnsToZap.size(); i != e; ++i) { 1917 Function *F = ReturnsToZap[i]->getParent()->getParent(); 1918 ReturnsToZap[i]->setOperand(0, UndefValue::get(F->getReturnType())); 1919 } 1920 1921 // If we inferred constant or undef values for globals variables, we can 1922 // delete the global and any stores that remain to it. 1923 const DenseMap<GlobalVariable*, LatticeVal> &TG = Solver.getTrackedGlobals(); 1924 for (DenseMap<GlobalVariable*, LatticeVal>::const_iterator I = TG.begin(), 1925 E = TG.end(); I != E; ++I) { 1926 GlobalVariable *GV = I->first; 1927 assert(!I->second.isOverdefined() && 1928 "Overdefined values should have been taken out of the map!"); 1929 DEBUG(dbgs() << "Found that GV '" << GV->getName() << "' is constant!\n"); 1930 while (!GV->use_empty()) { 1931 StoreInst *SI = cast<StoreInst>(GV->user_back()); 1932 SI->eraseFromParent(); 1933 } 1934 M.getGlobalList().erase(GV); 1935 ++IPNumGlobalConst; 1936 } 1937 1938 return MadeChanges; 1939 } 1940