1 //===- GVN.cpp - Eliminate redundant values and loads ---------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This pass performs global value numbering to eliminate fully redundant 11 // instructions. It also performs simple dead load elimination. 12 // 13 // Note that this pass does the value numbering itself; it does not use the 14 // ValueNumbering analysis passes. 15 // 16 //===----------------------------------------------------------------------===// 17 18 #include "llvm/Transforms/Scalar.h" 19 #include "llvm/ADT/DenseMap.h" 20 #include "llvm/ADT/DepthFirstIterator.h" 21 #include "llvm/ADT/Hashing.h" 22 #include "llvm/ADT/MapVector.h" 23 #include "llvm/ADT/PostOrderIterator.h" 24 #include "llvm/ADT/SetVector.h" 25 #include "llvm/ADT/SmallPtrSet.h" 26 #include "llvm/ADT/Statistic.h" 27 #include "llvm/Analysis/AliasAnalysis.h" 28 #include "llvm/Analysis/AssumptionCache.h" 29 #include "llvm/Analysis/CFG.h" 30 #include "llvm/Analysis/ConstantFolding.h" 31 #include "llvm/Analysis/InstructionSimplify.h" 32 #include "llvm/Analysis/Loads.h" 33 #include "llvm/Analysis/MemoryBuiltins.h" 34 #include "llvm/Analysis/MemoryDependenceAnalysis.h" 35 #include "llvm/Analysis/PHITransAddr.h" 36 #include "llvm/Analysis/TargetLibraryInfo.h" 37 #include "llvm/Analysis/ValueTracking.h" 38 #include "llvm/IR/DataLayout.h" 39 #include "llvm/IR/Dominators.h" 40 #include "llvm/IR/GlobalVariable.h" 41 #include "llvm/IR/IRBuilder.h" 42 #include "llvm/IR/IntrinsicInst.h" 43 #include "llvm/IR/LLVMContext.h" 44 #include "llvm/IR/Metadata.h" 45 #include "llvm/IR/PatternMatch.h" 46 #include "llvm/Support/Allocator.h" 47 #include "llvm/Support/CommandLine.h" 48 #include "llvm/Support/Debug.h" 49 #include "llvm/Support/raw_ostream.h" 50 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 51 #include "llvm/Transforms/Utils/Local.h" 52 #include "llvm/Transforms/Utils/SSAUpdater.h" 53 #include <vector> 54 using namespace llvm; 55 using namespace PatternMatch; 56 57 #define DEBUG_TYPE "gvn" 58 59 STATISTIC(NumGVNInstr, "Number of instructions deleted"); 60 STATISTIC(NumGVNLoad, "Number of loads deleted"); 61 STATISTIC(NumGVNPRE, "Number of instructions PRE'd"); 62 STATISTIC(NumGVNBlocks, "Number of blocks merged"); 63 STATISTIC(NumGVNSimpl, "Number of instructions simplified"); 64 STATISTIC(NumGVNEqProp, "Number of equalities propagated"); 65 STATISTIC(NumPRELoad, "Number of loads PRE'd"); 66 67 static cl::opt<bool> EnablePRE("enable-pre", 68 cl::init(true), cl::Hidden); 69 static cl::opt<bool> EnableLoadPRE("enable-load-pre", cl::init(true)); 70 71 // Maximum allowed recursion depth. 72 static cl::opt<uint32_t> 73 MaxRecurseDepth("max-recurse-depth", cl::Hidden, cl::init(1000), cl::ZeroOrMore, 74 cl::desc("Max recurse depth (default = 1000)")); 75 76 //===----------------------------------------------------------------------===// 77 // ValueTable Class 78 //===----------------------------------------------------------------------===// 79 80 /// This class holds the mapping between values and value numbers. It is used 81 /// as an efficient mechanism to determine the expression-wise equivalence of 82 /// two values. 83 namespace { 84 struct Expression { 85 uint32_t opcode; 86 Type *type; 87 SmallVector<uint32_t, 4> varargs; 88 89 Expression(uint32_t o = ~2U) : opcode(o) { } 90 91 bool operator==(const Expression &other) const { 92 if (opcode != other.opcode) 93 return false; 94 if (opcode == ~0U || opcode == ~1U) 95 return true; 96 if (type != other.type) 97 return false; 98 if (varargs != other.varargs) 99 return false; 100 return true; 101 } 102 103 friend hash_code hash_value(const Expression &Value) { 104 return hash_combine(Value.opcode, Value.type, 105 hash_combine_range(Value.varargs.begin(), 106 Value.varargs.end())); 107 } 108 }; 109 110 class ValueTable { 111 DenseMap<Value*, uint32_t> valueNumbering; 112 DenseMap<Expression, uint32_t> expressionNumbering; 113 AliasAnalysis *AA; 114 MemoryDependenceAnalysis *MD; 115 DominatorTree *DT; 116 117 uint32_t nextValueNumber; 118 119 Expression create_expression(Instruction* I); 120 Expression create_cmp_expression(unsigned Opcode, 121 CmpInst::Predicate Predicate, 122 Value *LHS, Value *RHS); 123 Expression create_extractvalue_expression(ExtractValueInst* EI); 124 uint32_t lookup_or_add_call(CallInst* C); 125 public: 126 ValueTable() : nextValueNumber(1) { } 127 uint32_t lookup_or_add(Value *V); 128 uint32_t lookup(Value *V) const; 129 uint32_t lookup_or_add_cmp(unsigned Opcode, CmpInst::Predicate Pred, 130 Value *LHS, Value *RHS); 131 void add(Value *V, uint32_t num); 132 void clear(); 133 void erase(Value *v); 134 void setAliasAnalysis(AliasAnalysis* A) { AA = A; } 135 AliasAnalysis *getAliasAnalysis() const { return AA; } 136 void setMemDep(MemoryDependenceAnalysis* M) { MD = M; } 137 void setDomTree(DominatorTree* D) { DT = D; } 138 uint32_t getNextUnusedValueNumber() { return nextValueNumber; } 139 void verifyRemoved(const Value *) const; 140 }; 141 } 142 143 namespace llvm { 144 template <> struct DenseMapInfo<Expression> { 145 static inline Expression getEmptyKey() { 146 return ~0U; 147 } 148 149 static inline Expression getTombstoneKey() { 150 return ~1U; 151 } 152 153 static unsigned getHashValue(const Expression e) { 154 using llvm::hash_value; 155 return static_cast<unsigned>(hash_value(e)); 156 } 157 static bool isEqual(const Expression &LHS, const Expression &RHS) { 158 return LHS == RHS; 159 } 160 }; 161 162 } 163 164 //===----------------------------------------------------------------------===// 165 // ValueTable Internal Functions 166 //===----------------------------------------------------------------------===// 167 168 Expression ValueTable::create_expression(Instruction *I) { 169 Expression e; 170 e.type = I->getType(); 171 e.opcode = I->getOpcode(); 172 for (Instruction::op_iterator OI = I->op_begin(), OE = I->op_end(); 173 OI != OE; ++OI) 174 e.varargs.push_back(lookup_or_add(*OI)); 175 if (I->isCommutative()) { 176 // Ensure that commutative instructions that only differ by a permutation 177 // of their operands get the same value number by sorting the operand value 178 // numbers. Since all commutative instructions have two operands it is more 179 // efficient to sort by hand rather than using, say, std::sort. 180 assert(I->getNumOperands() == 2 && "Unsupported commutative instruction!"); 181 if (e.varargs[0] > e.varargs[1]) 182 std::swap(e.varargs[0], e.varargs[1]); 183 } 184 185 if (CmpInst *C = dyn_cast<CmpInst>(I)) { 186 // Sort the operand value numbers so x<y and y>x get the same value number. 187 CmpInst::Predicate Predicate = C->getPredicate(); 188 if (e.varargs[0] > e.varargs[1]) { 189 std::swap(e.varargs[0], e.varargs[1]); 190 Predicate = CmpInst::getSwappedPredicate(Predicate); 191 } 192 e.opcode = (C->getOpcode() << 8) | Predicate; 193 } else if (InsertValueInst *E = dyn_cast<InsertValueInst>(I)) { 194 for (InsertValueInst::idx_iterator II = E->idx_begin(), IE = E->idx_end(); 195 II != IE; ++II) 196 e.varargs.push_back(*II); 197 } 198 199 return e; 200 } 201 202 Expression ValueTable::create_cmp_expression(unsigned Opcode, 203 CmpInst::Predicate Predicate, 204 Value *LHS, Value *RHS) { 205 assert((Opcode == Instruction::ICmp || Opcode == Instruction::FCmp) && 206 "Not a comparison!"); 207 Expression e; 208 e.type = CmpInst::makeCmpResultType(LHS->getType()); 209 e.varargs.push_back(lookup_or_add(LHS)); 210 e.varargs.push_back(lookup_or_add(RHS)); 211 212 // Sort the operand value numbers so x<y and y>x get the same value number. 213 if (e.varargs[0] > e.varargs[1]) { 214 std::swap(e.varargs[0], e.varargs[1]); 215 Predicate = CmpInst::getSwappedPredicate(Predicate); 216 } 217 e.opcode = (Opcode << 8) | Predicate; 218 return e; 219 } 220 221 Expression ValueTable::create_extractvalue_expression(ExtractValueInst *EI) { 222 assert(EI && "Not an ExtractValueInst?"); 223 Expression e; 224 e.type = EI->getType(); 225 e.opcode = 0; 226 227 IntrinsicInst *I = dyn_cast<IntrinsicInst>(EI->getAggregateOperand()); 228 if (I != nullptr && EI->getNumIndices() == 1 && *EI->idx_begin() == 0 ) { 229 // EI might be an extract from one of our recognised intrinsics. If it 230 // is we'll synthesize a semantically equivalent expression instead on 231 // an extract value expression. 232 switch (I->getIntrinsicID()) { 233 case Intrinsic::sadd_with_overflow: 234 case Intrinsic::uadd_with_overflow: 235 e.opcode = Instruction::Add; 236 break; 237 case Intrinsic::ssub_with_overflow: 238 case Intrinsic::usub_with_overflow: 239 e.opcode = Instruction::Sub; 240 break; 241 case Intrinsic::smul_with_overflow: 242 case Intrinsic::umul_with_overflow: 243 e.opcode = Instruction::Mul; 244 break; 245 default: 246 break; 247 } 248 249 if (e.opcode != 0) { 250 // Intrinsic recognized. Grab its args to finish building the expression. 251 assert(I->getNumArgOperands() == 2 && 252 "Expect two args for recognised intrinsics."); 253 e.varargs.push_back(lookup_or_add(I->getArgOperand(0))); 254 e.varargs.push_back(lookup_or_add(I->getArgOperand(1))); 255 return e; 256 } 257 } 258 259 // Not a recognised intrinsic. Fall back to producing an extract value 260 // expression. 261 e.opcode = EI->getOpcode(); 262 for (Instruction::op_iterator OI = EI->op_begin(), OE = EI->op_end(); 263 OI != OE; ++OI) 264 e.varargs.push_back(lookup_or_add(*OI)); 265 266 for (ExtractValueInst::idx_iterator II = EI->idx_begin(), IE = EI->idx_end(); 267 II != IE; ++II) 268 e.varargs.push_back(*II); 269 270 return e; 271 } 272 273 //===----------------------------------------------------------------------===// 274 // ValueTable External Functions 275 //===----------------------------------------------------------------------===// 276 277 /// add - Insert a value into the table with a specified value number. 278 void ValueTable::add(Value *V, uint32_t num) { 279 valueNumbering.insert(std::make_pair(V, num)); 280 } 281 282 uint32_t ValueTable::lookup_or_add_call(CallInst *C) { 283 if (AA->doesNotAccessMemory(C)) { 284 Expression exp = create_expression(C); 285 uint32_t &e = expressionNumbering[exp]; 286 if (!e) e = nextValueNumber++; 287 valueNumbering[C] = e; 288 return e; 289 } else if (AA->onlyReadsMemory(C)) { 290 Expression exp = create_expression(C); 291 uint32_t &e = expressionNumbering[exp]; 292 if (!e) { 293 e = nextValueNumber++; 294 valueNumbering[C] = e; 295 return e; 296 } 297 if (!MD) { 298 e = nextValueNumber++; 299 valueNumbering[C] = e; 300 return e; 301 } 302 303 MemDepResult local_dep = MD->getDependency(C); 304 305 if (!local_dep.isDef() && !local_dep.isNonLocal()) { 306 valueNumbering[C] = nextValueNumber; 307 return nextValueNumber++; 308 } 309 310 if (local_dep.isDef()) { 311 CallInst* local_cdep = cast<CallInst>(local_dep.getInst()); 312 313 if (local_cdep->getNumArgOperands() != C->getNumArgOperands()) { 314 valueNumbering[C] = nextValueNumber; 315 return nextValueNumber++; 316 } 317 318 for (unsigned i = 0, e = C->getNumArgOperands(); i < e; ++i) { 319 uint32_t c_vn = lookup_or_add(C->getArgOperand(i)); 320 uint32_t cd_vn = lookup_or_add(local_cdep->getArgOperand(i)); 321 if (c_vn != cd_vn) { 322 valueNumbering[C] = nextValueNumber; 323 return nextValueNumber++; 324 } 325 } 326 327 uint32_t v = lookup_or_add(local_cdep); 328 valueNumbering[C] = v; 329 return v; 330 } 331 332 // Non-local case. 333 const MemoryDependenceAnalysis::NonLocalDepInfo &deps = 334 MD->getNonLocalCallDependency(CallSite(C)); 335 // FIXME: Move the checking logic to MemDep! 336 CallInst* cdep = nullptr; 337 338 // Check to see if we have a single dominating call instruction that is 339 // identical to C. 340 for (unsigned i = 0, e = deps.size(); i != e; ++i) { 341 const NonLocalDepEntry *I = &deps[i]; 342 if (I->getResult().isNonLocal()) 343 continue; 344 345 // We don't handle non-definitions. If we already have a call, reject 346 // instruction dependencies. 347 if (!I->getResult().isDef() || cdep != nullptr) { 348 cdep = nullptr; 349 break; 350 } 351 352 CallInst *NonLocalDepCall = dyn_cast<CallInst>(I->getResult().getInst()); 353 // FIXME: All duplicated with non-local case. 354 if (NonLocalDepCall && DT->properlyDominates(I->getBB(), C->getParent())){ 355 cdep = NonLocalDepCall; 356 continue; 357 } 358 359 cdep = nullptr; 360 break; 361 } 362 363 if (!cdep) { 364 valueNumbering[C] = nextValueNumber; 365 return nextValueNumber++; 366 } 367 368 if (cdep->getNumArgOperands() != C->getNumArgOperands()) { 369 valueNumbering[C] = nextValueNumber; 370 return nextValueNumber++; 371 } 372 for (unsigned i = 0, e = C->getNumArgOperands(); i < e; ++i) { 373 uint32_t c_vn = lookup_or_add(C->getArgOperand(i)); 374 uint32_t cd_vn = lookup_or_add(cdep->getArgOperand(i)); 375 if (c_vn != cd_vn) { 376 valueNumbering[C] = nextValueNumber; 377 return nextValueNumber++; 378 } 379 } 380 381 uint32_t v = lookup_or_add(cdep); 382 valueNumbering[C] = v; 383 return v; 384 385 } else { 386 valueNumbering[C] = nextValueNumber; 387 return nextValueNumber++; 388 } 389 } 390 391 /// lookup_or_add - Returns the value number for the specified value, assigning 392 /// it a new number if it did not have one before. 393 uint32_t ValueTable::lookup_or_add(Value *V) { 394 DenseMap<Value*, uint32_t>::iterator VI = valueNumbering.find(V); 395 if (VI != valueNumbering.end()) 396 return VI->second; 397 398 if (!isa<Instruction>(V)) { 399 valueNumbering[V] = nextValueNumber; 400 return nextValueNumber++; 401 } 402 403 Instruction* I = cast<Instruction>(V); 404 Expression exp; 405 switch (I->getOpcode()) { 406 case Instruction::Call: 407 return lookup_or_add_call(cast<CallInst>(I)); 408 case Instruction::Add: 409 case Instruction::FAdd: 410 case Instruction::Sub: 411 case Instruction::FSub: 412 case Instruction::Mul: 413 case Instruction::FMul: 414 case Instruction::UDiv: 415 case Instruction::SDiv: 416 case Instruction::FDiv: 417 case Instruction::URem: 418 case Instruction::SRem: 419 case Instruction::FRem: 420 case Instruction::Shl: 421 case Instruction::LShr: 422 case Instruction::AShr: 423 case Instruction::And: 424 case Instruction::Or: 425 case Instruction::Xor: 426 case Instruction::ICmp: 427 case Instruction::FCmp: 428 case Instruction::Trunc: 429 case Instruction::ZExt: 430 case Instruction::SExt: 431 case Instruction::FPToUI: 432 case Instruction::FPToSI: 433 case Instruction::UIToFP: 434 case Instruction::SIToFP: 435 case Instruction::FPTrunc: 436 case Instruction::FPExt: 437 case Instruction::PtrToInt: 438 case Instruction::IntToPtr: 439 case Instruction::BitCast: 440 case Instruction::Select: 441 case Instruction::ExtractElement: 442 case Instruction::InsertElement: 443 case Instruction::ShuffleVector: 444 case Instruction::InsertValue: 445 case Instruction::GetElementPtr: 446 exp = create_expression(I); 447 break; 448 case Instruction::ExtractValue: 449 exp = create_extractvalue_expression(cast<ExtractValueInst>(I)); 450 break; 451 default: 452 valueNumbering[V] = nextValueNumber; 453 return nextValueNumber++; 454 } 455 456 uint32_t& e = expressionNumbering[exp]; 457 if (!e) e = nextValueNumber++; 458 valueNumbering[V] = e; 459 return e; 460 } 461 462 /// Returns the value number of the specified value. Fails if 463 /// the value has not yet been numbered. 464 uint32_t ValueTable::lookup(Value *V) const { 465 DenseMap<Value*, uint32_t>::const_iterator VI = valueNumbering.find(V); 466 assert(VI != valueNumbering.end() && "Value not numbered?"); 467 return VI->second; 468 } 469 470 /// Returns the value number of the given comparison, 471 /// assigning it a new number if it did not have one before. Useful when 472 /// we deduced the result of a comparison, but don't immediately have an 473 /// instruction realizing that comparison to hand. 474 uint32_t ValueTable::lookup_or_add_cmp(unsigned Opcode, 475 CmpInst::Predicate Predicate, 476 Value *LHS, Value *RHS) { 477 Expression exp = create_cmp_expression(Opcode, Predicate, LHS, RHS); 478 uint32_t& e = expressionNumbering[exp]; 479 if (!e) e = nextValueNumber++; 480 return e; 481 } 482 483 /// Remove all entries from the ValueTable. 484 void ValueTable::clear() { 485 valueNumbering.clear(); 486 expressionNumbering.clear(); 487 nextValueNumber = 1; 488 } 489 490 /// Remove a value from the value numbering. 491 void ValueTable::erase(Value *V) { 492 valueNumbering.erase(V); 493 } 494 495 /// verifyRemoved - Verify that the value is removed from all internal data 496 /// structures. 497 void ValueTable::verifyRemoved(const Value *V) const { 498 for (DenseMap<Value*, uint32_t>::const_iterator 499 I = valueNumbering.begin(), E = valueNumbering.end(); I != E; ++I) { 500 assert(I->first != V && "Inst still occurs in value numbering map!"); 501 } 502 } 503 504 //===----------------------------------------------------------------------===// 505 // GVN Pass 506 //===----------------------------------------------------------------------===// 507 508 namespace { 509 class GVN; 510 struct AvailableValueInBlock { 511 /// BB - The basic block in question. 512 BasicBlock *BB; 513 enum ValType { 514 SimpleVal, // A simple offsetted value that is accessed. 515 LoadVal, // A value produced by a load. 516 MemIntrin, // A memory intrinsic which is loaded from. 517 UndefVal // A UndefValue representing a value from dead block (which 518 // is not yet physically removed from the CFG). 519 }; 520 521 /// V - The value that is live out of the block. 522 PointerIntPair<Value *, 2, ValType> Val; 523 524 /// Offset - The byte offset in Val that is interesting for the load query. 525 unsigned Offset; 526 527 static AvailableValueInBlock get(BasicBlock *BB, Value *V, 528 unsigned Offset = 0) { 529 AvailableValueInBlock Res; 530 Res.BB = BB; 531 Res.Val.setPointer(V); 532 Res.Val.setInt(SimpleVal); 533 Res.Offset = Offset; 534 return Res; 535 } 536 537 static AvailableValueInBlock getMI(BasicBlock *BB, MemIntrinsic *MI, 538 unsigned Offset = 0) { 539 AvailableValueInBlock Res; 540 Res.BB = BB; 541 Res.Val.setPointer(MI); 542 Res.Val.setInt(MemIntrin); 543 Res.Offset = Offset; 544 return Res; 545 } 546 547 static AvailableValueInBlock getLoad(BasicBlock *BB, LoadInst *LI, 548 unsigned Offset = 0) { 549 AvailableValueInBlock Res; 550 Res.BB = BB; 551 Res.Val.setPointer(LI); 552 Res.Val.setInt(LoadVal); 553 Res.Offset = Offset; 554 return Res; 555 } 556 557 static AvailableValueInBlock getUndef(BasicBlock *BB) { 558 AvailableValueInBlock Res; 559 Res.BB = BB; 560 Res.Val.setPointer(nullptr); 561 Res.Val.setInt(UndefVal); 562 Res.Offset = 0; 563 return Res; 564 } 565 566 bool isSimpleValue() const { return Val.getInt() == SimpleVal; } 567 bool isCoercedLoadValue() const { return Val.getInt() == LoadVal; } 568 bool isMemIntrinValue() const { return Val.getInt() == MemIntrin; } 569 bool isUndefValue() const { return Val.getInt() == UndefVal; } 570 571 Value *getSimpleValue() const { 572 assert(isSimpleValue() && "Wrong accessor"); 573 return Val.getPointer(); 574 } 575 576 LoadInst *getCoercedLoadValue() const { 577 assert(isCoercedLoadValue() && "Wrong accessor"); 578 return cast<LoadInst>(Val.getPointer()); 579 } 580 581 MemIntrinsic *getMemIntrinValue() const { 582 assert(isMemIntrinValue() && "Wrong accessor"); 583 return cast<MemIntrinsic>(Val.getPointer()); 584 } 585 586 /// Emit code into this block to adjust the value defined here to the 587 /// specified type. This handles various coercion cases. 588 Value *MaterializeAdjustedValue(LoadInst *LI, GVN &gvn) const; 589 }; 590 591 class GVN : public FunctionPass { 592 bool NoLoads; 593 MemoryDependenceAnalysis *MD; 594 DominatorTree *DT; 595 const TargetLibraryInfo *TLI; 596 AssumptionCache *AC; 597 SetVector<BasicBlock *> DeadBlocks; 598 599 ValueTable VN; 600 601 /// A mapping from value numbers to lists of Value*'s that 602 /// have that value number. Use findLeader to query it. 603 struct LeaderTableEntry { 604 Value *Val; 605 const BasicBlock *BB; 606 LeaderTableEntry *Next; 607 }; 608 DenseMap<uint32_t, LeaderTableEntry> LeaderTable; 609 BumpPtrAllocator TableAllocator; 610 611 SmallVector<Instruction*, 8> InstrsToErase; 612 613 typedef SmallVector<NonLocalDepResult, 64> LoadDepVect; 614 typedef SmallVector<AvailableValueInBlock, 64> AvailValInBlkVect; 615 typedef SmallVector<BasicBlock*, 64> UnavailBlkVect; 616 617 public: 618 static char ID; // Pass identification, replacement for typeid 619 explicit GVN(bool noloads = false) 620 : FunctionPass(ID), NoLoads(noloads), MD(nullptr) { 621 initializeGVNPass(*PassRegistry::getPassRegistry()); 622 } 623 624 bool runOnFunction(Function &F) override; 625 626 /// This removes the specified instruction from 627 /// our various maps and marks it for deletion. 628 void markInstructionForDeletion(Instruction *I) { 629 VN.erase(I); 630 InstrsToErase.push_back(I); 631 } 632 633 DominatorTree &getDominatorTree() const { return *DT; } 634 AliasAnalysis *getAliasAnalysis() const { return VN.getAliasAnalysis(); } 635 MemoryDependenceAnalysis &getMemDep() const { return *MD; } 636 private: 637 /// Push a new Value to the LeaderTable onto the list for its value number. 638 void addToLeaderTable(uint32_t N, Value *V, const BasicBlock *BB) { 639 LeaderTableEntry &Curr = LeaderTable[N]; 640 if (!Curr.Val) { 641 Curr.Val = V; 642 Curr.BB = BB; 643 return; 644 } 645 646 LeaderTableEntry *Node = TableAllocator.Allocate<LeaderTableEntry>(); 647 Node->Val = V; 648 Node->BB = BB; 649 Node->Next = Curr.Next; 650 Curr.Next = Node; 651 } 652 653 /// Scan the list of values corresponding to a given 654 /// value number, and remove the given instruction if encountered. 655 void removeFromLeaderTable(uint32_t N, Instruction *I, BasicBlock *BB) { 656 LeaderTableEntry* Prev = nullptr; 657 LeaderTableEntry* Curr = &LeaderTable[N]; 658 659 while (Curr->Val != I || Curr->BB != BB) { 660 Prev = Curr; 661 Curr = Curr->Next; 662 } 663 664 if (Prev) { 665 Prev->Next = Curr->Next; 666 } else { 667 if (!Curr->Next) { 668 Curr->Val = nullptr; 669 Curr->BB = nullptr; 670 } else { 671 LeaderTableEntry* Next = Curr->Next; 672 Curr->Val = Next->Val; 673 Curr->BB = Next->BB; 674 Curr->Next = Next->Next; 675 } 676 } 677 } 678 679 // List of critical edges to be split between iterations. 680 SmallVector<std::pair<TerminatorInst*, unsigned>, 4> toSplit; 681 682 // This transformation requires dominator postdominator info 683 void getAnalysisUsage(AnalysisUsage &AU) const override { 684 AU.addRequired<AssumptionCacheTracker>(); 685 AU.addRequired<DominatorTreeWrapperPass>(); 686 AU.addRequired<TargetLibraryInfoWrapperPass>(); 687 if (!NoLoads) 688 AU.addRequired<MemoryDependenceAnalysis>(); 689 AU.addRequired<AliasAnalysis>(); 690 691 AU.addPreserved<DominatorTreeWrapperPass>(); 692 AU.addPreserved<AliasAnalysis>(); 693 } 694 695 696 // Helper fuctions of redundant load elimination 697 bool processLoad(LoadInst *L); 698 bool processNonLocalLoad(LoadInst *L); 699 void AnalyzeLoadAvailability(LoadInst *LI, LoadDepVect &Deps, 700 AvailValInBlkVect &ValuesPerBlock, 701 UnavailBlkVect &UnavailableBlocks); 702 bool PerformLoadPRE(LoadInst *LI, AvailValInBlkVect &ValuesPerBlock, 703 UnavailBlkVect &UnavailableBlocks); 704 705 // Other helper routines 706 bool processInstruction(Instruction *I); 707 bool processBlock(BasicBlock *BB); 708 void dump(DenseMap<uint32_t, Value*> &d); 709 bool iterateOnFunction(Function &F); 710 bool performPRE(Function &F); 711 bool performScalarPRE(Instruction *I); 712 bool performScalarPREInsertion(Instruction *Instr, BasicBlock *Pred, 713 unsigned int ValNo); 714 Value *findLeader(const BasicBlock *BB, uint32_t num); 715 void cleanupGlobalSets(); 716 void verifyRemoved(const Instruction *I) const; 717 bool splitCriticalEdges(); 718 BasicBlock *splitCriticalEdges(BasicBlock *Pred, BasicBlock *Succ); 719 bool propagateEquality(Value *LHS, Value *RHS, const BasicBlockEdge &Root); 720 bool processFoldableCondBr(BranchInst *BI); 721 void addDeadBlock(BasicBlock *BB); 722 void assignValNumForDeadCode(); 723 }; 724 725 char GVN::ID = 0; 726 } 727 728 // The public interface to this file... 729 FunctionPass *llvm::createGVNPass(bool NoLoads) { 730 return new GVN(NoLoads); 731 } 732 733 INITIALIZE_PASS_BEGIN(GVN, "gvn", "Global Value Numbering", false, false) 734 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker) 735 INITIALIZE_PASS_DEPENDENCY(MemoryDependenceAnalysis) 736 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 737 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass) 738 INITIALIZE_AG_DEPENDENCY(AliasAnalysis) 739 INITIALIZE_PASS_END(GVN, "gvn", "Global Value Numbering", false, false) 740 741 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 742 void GVN::dump(DenseMap<uint32_t, Value*>& d) { 743 errs() << "{\n"; 744 for (DenseMap<uint32_t, Value*>::iterator I = d.begin(), 745 E = d.end(); I != E; ++I) { 746 errs() << I->first << "\n"; 747 I->second->dump(); 748 } 749 errs() << "}\n"; 750 } 751 #endif 752 753 /// Return true if we can prove that the value 754 /// we're analyzing is fully available in the specified block. As we go, keep 755 /// track of which blocks we know are fully alive in FullyAvailableBlocks. This 756 /// map is actually a tri-state map with the following values: 757 /// 0) we know the block *is not* fully available. 758 /// 1) we know the block *is* fully available. 759 /// 2) we do not know whether the block is fully available or not, but we are 760 /// currently speculating that it will be. 761 /// 3) we are speculating for this block and have used that to speculate for 762 /// other blocks. 763 static bool IsValueFullyAvailableInBlock(BasicBlock *BB, 764 DenseMap<BasicBlock*, char> &FullyAvailableBlocks, 765 uint32_t RecurseDepth) { 766 if (RecurseDepth > MaxRecurseDepth) 767 return false; 768 769 // Optimistically assume that the block is fully available and check to see 770 // if we already know about this block in one lookup. 771 std::pair<DenseMap<BasicBlock*, char>::iterator, char> IV = 772 FullyAvailableBlocks.insert(std::make_pair(BB, 2)); 773 774 // If the entry already existed for this block, return the precomputed value. 775 if (!IV.second) { 776 // If this is a speculative "available" value, mark it as being used for 777 // speculation of other blocks. 778 if (IV.first->second == 2) 779 IV.first->second = 3; 780 return IV.first->second != 0; 781 } 782 783 // Otherwise, see if it is fully available in all predecessors. 784 pred_iterator PI = pred_begin(BB), PE = pred_end(BB); 785 786 // If this block has no predecessors, it isn't live-in here. 787 if (PI == PE) 788 goto SpeculationFailure; 789 790 for (; PI != PE; ++PI) 791 // If the value isn't fully available in one of our predecessors, then it 792 // isn't fully available in this block either. Undo our previous 793 // optimistic assumption and bail out. 794 if (!IsValueFullyAvailableInBlock(*PI, FullyAvailableBlocks,RecurseDepth+1)) 795 goto SpeculationFailure; 796 797 return true; 798 799 // If we get here, we found out that this is not, after 800 // all, a fully-available block. We have a problem if we speculated on this and 801 // used the speculation to mark other blocks as available. 802 SpeculationFailure: 803 char &BBVal = FullyAvailableBlocks[BB]; 804 805 // If we didn't speculate on this, just return with it set to false. 806 if (BBVal == 2) { 807 BBVal = 0; 808 return false; 809 } 810 811 // If we did speculate on this value, we could have blocks set to 1 that are 812 // incorrect. Walk the (transitive) successors of this block and mark them as 813 // 0 if set to one. 814 SmallVector<BasicBlock*, 32> BBWorklist; 815 BBWorklist.push_back(BB); 816 817 do { 818 BasicBlock *Entry = BBWorklist.pop_back_val(); 819 // Note that this sets blocks to 0 (unavailable) if they happen to not 820 // already be in FullyAvailableBlocks. This is safe. 821 char &EntryVal = FullyAvailableBlocks[Entry]; 822 if (EntryVal == 0) continue; // Already unavailable. 823 824 // Mark as unavailable. 825 EntryVal = 0; 826 827 BBWorklist.append(succ_begin(Entry), succ_end(Entry)); 828 } while (!BBWorklist.empty()); 829 830 return false; 831 } 832 833 834 /// Return true if CoerceAvailableValueToLoadType will succeed. 835 static bool CanCoerceMustAliasedValueToLoad(Value *StoredVal, 836 Type *LoadTy, 837 const DataLayout &DL) { 838 // If the loaded or stored value is an first class array or struct, don't try 839 // to transform them. We need to be able to bitcast to integer. 840 if (LoadTy->isStructTy() || LoadTy->isArrayTy() || 841 StoredVal->getType()->isStructTy() || 842 StoredVal->getType()->isArrayTy()) 843 return false; 844 845 // The store has to be at least as big as the load. 846 if (DL.getTypeSizeInBits(StoredVal->getType()) < 847 DL.getTypeSizeInBits(LoadTy)) 848 return false; 849 850 return true; 851 } 852 853 /// If we saw a store of a value to memory, and 854 /// then a load from a must-aliased pointer of a different type, try to coerce 855 /// the stored value. LoadedTy is the type of the load we want to replace. 856 /// IRB is IRBuilder used to insert new instructions. 857 /// 858 /// If we can't do it, return null. 859 static Value *CoerceAvailableValueToLoadType(Value *StoredVal, Type *LoadedTy, 860 IRBuilder<> &IRB, 861 const DataLayout &DL) { 862 if (!CanCoerceMustAliasedValueToLoad(StoredVal, LoadedTy, DL)) 863 return nullptr; 864 865 // If this is already the right type, just return it. 866 Type *StoredValTy = StoredVal->getType(); 867 868 uint64_t StoreSize = DL.getTypeSizeInBits(StoredValTy); 869 uint64_t LoadSize = DL.getTypeSizeInBits(LoadedTy); 870 871 // If the store and reload are the same size, we can always reuse it. 872 if (StoreSize == LoadSize) { 873 // Pointer to Pointer -> use bitcast. 874 if (StoredValTy->getScalarType()->isPointerTy() && 875 LoadedTy->getScalarType()->isPointerTy()) 876 return IRB.CreateBitCast(StoredVal, LoadedTy); 877 878 // Convert source pointers to integers, which can be bitcast. 879 if (StoredValTy->getScalarType()->isPointerTy()) { 880 StoredValTy = DL.getIntPtrType(StoredValTy); 881 StoredVal = IRB.CreatePtrToInt(StoredVal, StoredValTy); 882 } 883 884 Type *TypeToCastTo = LoadedTy; 885 if (TypeToCastTo->getScalarType()->isPointerTy()) 886 TypeToCastTo = DL.getIntPtrType(TypeToCastTo); 887 888 if (StoredValTy != TypeToCastTo) 889 StoredVal = IRB.CreateBitCast(StoredVal, TypeToCastTo); 890 891 // Cast to pointer if the load needs a pointer type. 892 if (LoadedTy->getScalarType()->isPointerTy()) 893 StoredVal = IRB.CreateIntToPtr(StoredVal, LoadedTy); 894 895 return StoredVal; 896 } 897 898 // If the loaded value is smaller than the available value, then we can 899 // extract out a piece from it. If the available value is too small, then we 900 // can't do anything. 901 assert(StoreSize >= LoadSize && "CanCoerceMustAliasedValueToLoad fail"); 902 903 // Convert source pointers to integers, which can be manipulated. 904 if (StoredValTy->getScalarType()->isPointerTy()) { 905 StoredValTy = DL.getIntPtrType(StoredValTy); 906 StoredVal = IRB.CreatePtrToInt(StoredVal, StoredValTy); 907 } 908 909 // Convert vectors and fp to integer, which can be manipulated. 910 if (!StoredValTy->isIntegerTy()) { 911 StoredValTy = IntegerType::get(StoredValTy->getContext(), StoreSize); 912 StoredVal = IRB.CreateBitCast(StoredVal, StoredValTy); 913 } 914 915 // If this is a big-endian system, we need to shift the value down to the low 916 // bits so that a truncate will work. 917 if (DL.isBigEndian()) { 918 StoredVal = IRB.CreateLShr(StoredVal, StoreSize - LoadSize, "tmp"); 919 } 920 921 // Truncate the integer to the right size now. 922 Type *NewIntTy = IntegerType::get(StoredValTy->getContext(), LoadSize); 923 StoredVal = IRB.CreateTrunc(StoredVal, NewIntTy, "trunc"); 924 925 if (LoadedTy == NewIntTy) 926 return StoredVal; 927 928 // If the result is a pointer, inttoptr. 929 if (LoadedTy->getScalarType()->isPointerTy()) 930 return IRB.CreateIntToPtr(StoredVal, LoadedTy, "inttoptr"); 931 932 // Otherwise, bitcast. 933 return IRB.CreateBitCast(StoredVal, LoadedTy, "bitcast"); 934 } 935 936 /// This function is called when we have a 937 /// memdep query of a load that ends up being a clobbering memory write (store, 938 /// memset, memcpy, memmove). This means that the write *may* provide bits used 939 /// by the load but we can't be sure because the pointers don't mustalias. 940 /// 941 /// Check this case to see if there is anything more we can do before we give 942 /// up. This returns -1 if we have to give up, or a byte number in the stored 943 /// value of the piece that feeds the load. 944 static int AnalyzeLoadFromClobberingWrite(Type *LoadTy, Value *LoadPtr, 945 Value *WritePtr, 946 uint64_t WriteSizeInBits, 947 const DataLayout &DL) { 948 // If the loaded or stored value is a first class array or struct, don't try 949 // to transform them. We need to be able to bitcast to integer. 950 if (LoadTy->isStructTy() || LoadTy->isArrayTy()) 951 return -1; 952 953 int64_t StoreOffset = 0, LoadOffset = 0; 954 Value *StoreBase = 955 GetPointerBaseWithConstantOffset(WritePtr, StoreOffset, DL); 956 Value *LoadBase = GetPointerBaseWithConstantOffset(LoadPtr, LoadOffset, DL); 957 if (StoreBase != LoadBase) 958 return -1; 959 960 // If the load and store are to the exact same address, they should have been 961 // a must alias. AA must have gotten confused. 962 // FIXME: Study to see if/when this happens. One case is forwarding a memset 963 // to a load from the base of the memset. 964 #if 0 965 if (LoadOffset == StoreOffset) { 966 dbgs() << "STORE/LOAD DEP WITH COMMON POINTER MISSED:\n" 967 << "Base = " << *StoreBase << "\n" 968 << "Store Ptr = " << *WritePtr << "\n" 969 << "Store Offs = " << StoreOffset << "\n" 970 << "Load Ptr = " << *LoadPtr << "\n"; 971 abort(); 972 } 973 #endif 974 975 // If the load and store don't overlap at all, the store doesn't provide 976 // anything to the load. In this case, they really don't alias at all, AA 977 // must have gotten confused. 978 uint64_t LoadSize = DL.getTypeSizeInBits(LoadTy); 979 980 if ((WriteSizeInBits & 7) | (LoadSize & 7)) 981 return -1; 982 uint64_t StoreSize = WriteSizeInBits >> 3; // Convert to bytes. 983 LoadSize >>= 3; 984 985 986 bool isAAFailure = false; 987 if (StoreOffset < LoadOffset) 988 isAAFailure = StoreOffset+int64_t(StoreSize) <= LoadOffset; 989 else 990 isAAFailure = LoadOffset+int64_t(LoadSize) <= StoreOffset; 991 992 if (isAAFailure) { 993 #if 0 994 dbgs() << "STORE LOAD DEP WITH COMMON BASE:\n" 995 << "Base = " << *StoreBase << "\n" 996 << "Store Ptr = " << *WritePtr << "\n" 997 << "Store Offs = " << StoreOffset << "\n" 998 << "Load Ptr = " << *LoadPtr << "\n"; 999 abort(); 1000 #endif 1001 return -1; 1002 } 1003 1004 // If the Load isn't completely contained within the stored bits, we don't 1005 // have all the bits to feed it. We could do something crazy in the future 1006 // (issue a smaller load then merge the bits in) but this seems unlikely to be 1007 // valuable. 1008 if (StoreOffset > LoadOffset || 1009 StoreOffset+StoreSize < LoadOffset+LoadSize) 1010 return -1; 1011 1012 // Okay, we can do this transformation. Return the number of bytes into the 1013 // store that the load is. 1014 return LoadOffset-StoreOffset; 1015 } 1016 1017 /// This function is called when we have a 1018 /// memdep query of a load that ends up being a clobbering store. 1019 static int AnalyzeLoadFromClobberingStore(Type *LoadTy, Value *LoadPtr, 1020 StoreInst *DepSI) { 1021 // Cannot handle reading from store of first-class aggregate yet. 1022 if (DepSI->getValueOperand()->getType()->isStructTy() || 1023 DepSI->getValueOperand()->getType()->isArrayTy()) 1024 return -1; 1025 1026 const DataLayout &DL = DepSI->getModule()->getDataLayout(); 1027 Value *StorePtr = DepSI->getPointerOperand(); 1028 uint64_t StoreSize =DL.getTypeSizeInBits(DepSI->getValueOperand()->getType()); 1029 return AnalyzeLoadFromClobberingWrite(LoadTy, LoadPtr, 1030 StorePtr, StoreSize, DL); 1031 } 1032 1033 /// This function is called when we have a 1034 /// memdep query of a load that ends up being clobbered by another load. See if 1035 /// the other load can feed into the second load. 1036 static int AnalyzeLoadFromClobberingLoad(Type *LoadTy, Value *LoadPtr, 1037 LoadInst *DepLI, const DataLayout &DL){ 1038 // Cannot handle reading from store of first-class aggregate yet. 1039 if (DepLI->getType()->isStructTy() || DepLI->getType()->isArrayTy()) 1040 return -1; 1041 1042 Value *DepPtr = DepLI->getPointerOperand(); 1043 uint64_t DepSize = DL.getTypeSizeInBits(DepLI->getType()); 1044 int R = AnalyzeLoadFromClobberingWrite(LoadTy, LoadPtr, DepPtr, DepSize, DL); 1045 if (R != -1) return R; 1046 1047 // If we have a load/load clobber an DepLI can be widened to cover this load, 1048 // then we should widen it! 1049 int64_t LoadOffs = 0; 1050 const Value *LoadBase = 1051 GetPointerBaseWithConstantOffset(LoadPtr, LoadOffs, DL); 1052 unsigned LoadSize = DL.getTypeStoreSize(LoadTy); 1053 1054 unsigned Size = MemoryDependenceAnalysis::getLoadLoadClobberFullWidthSize( 1055 LoadBase, LoadOffs, LoadSize, DepLI); 1056 if (Size == 0) return -1; 1057 1058 return AnalyzeLoadFromClobberingWrite(LoadTy, LoadPtr, DepPtr, Size*8, DL); 1059 } 1060 1061 1062 1063 static int AnalyzeLoadFromClobberingMemInst(Type *LoadTy, Value *LoadPtr, 1064 MemIntrinsic *MI, 1065 const DataLayout &DL) { 1066 // If the mem operation is a non-constant size, we can't handle it. 1067 ConstantInt *SizeCst = dyn_cast<ConstantInt>(MI->getLength()); 1068 if (!SizeCst) return -1; 1069 uint64_t MemSizeInBits = SizeCst->getZExtValue()*8; 1070 1071 // If this is memset, we just need to see if the offset is valid in the size 1072 // of the memset.. 1073 if (MI->getIntrinsicID() == Intrinsic::memset) 1074 return AnalyzeLoadFromClobberingWrite(LoadTy, LoadPtr, MI->getDest(), 1075 MemSizeInBits, DL); 1076 1077 // If we have a memcpy/memmove, the only case we can handle is if this is a 1078 // copy from constant memory. In that case, we can read directly from the 1079 // constant memory. 1080 MemTransferInst *MTI = cast<MemTransferInst>(MI); 1081 1082 Constant *Src = dyn_cast<Constant>(MTI->getSource()); 1083 if (!Src) return -1; 1084 1085 GlobalVariable *GV = dyn_cast<GlobalVariable>(GetUnderlyingObject(Src, DL)); 1086 if (!GV || !GV->isConstant()) return -1; 1087 1088 // See if the access is within the bounds of the transfer. 1089 int Offset = AnalyzeLoadFromClobberingWrite(LoadTy, LoadPtr, 1090 MI->getDest(), MemSizeInBits, DL); 1091 if (Offset == -1) 1092 return Offset; 1093 1094 unsigned AS = Src->getType()->getPointerAddressSpace(); 1095 // Otherwise, see if we can constant fold a load from the constant with the 1096 // offset applied as appropriate. 1097 Src = ConstantExpr::getBitCast(Src, 1098 Type::getInt8PtrTy(Src->getContext(), AS)); 1099 Constant *OffsetCst = 1100 ConstantInt::get(Type::getInt64Ty(Src->getContext()), (unsigned)Offset); 1101 Src = ConstantExpr::getGetElementPtr(Type::getInt8Ty(Src->getContext()), Src, 1102 OffsetCst); 1103 Src = ConstantExpr::getBitCast(Src, PointerType::get(LoadTy, AS)); 1104 if (ConstantFoldLoadFromConstPtr(Src, DL)) 1105 return Offset; 1106 return -1; 1107 } 1108 1109 1110 /// This function is called when we have a 1111 /// memdep query of a load that ends up being a clobbering store. This means 1112 /// that the store provides bits used by the load but we the pointers don't 1113 /// mustalias. Check this case to see if there is anything more we can do 1114 /// before we give up. 1115 static Value *GetStoreValueForLoad(Value *SrcVal, unsigned Offset, 1116 Type *LoadTy, 1117 Instruction *InsertPt, const DataLayout &DL){ 1118 LLVMContext &Ctx = SrcVal->getType()->getContext(); 1119 1120 uint64_t StoreSize = (DL.getTypeSizeInBits(SrcVal->getType()) + 7) / 8; 1121 uint64_t LoadSize = (DL.getTypeSizeInBits(LoadTy) + 7) / 8; 1122 1123 IRBuilder<> Builder(InsertPt); 1124 1125 // Compute which bits of the stored value are being used by the load. Convert 1126 // to an integer type to start with. 1127 if (SrcVal->getType()->getScalarType()->isPointerTy()) 1128 SrcVal = Builder.CreatePtrToInt(SrcVal, 1129 DL.getIntPtrType(SrcVal->getType())); 1130 if (!SrcVal->getType()->isIntegerTy()) 1131 SrcVal = Builder.CreateBitCast(SrcVal, IntegerType::get(Ctx, StoreSize*8)); 1132 1133 // Shift the bits to the least significant depending on endianness. 1134 unsigned ShiftAmt; 1135 if (DL.isLittleEndian()) 1136 ShiftAmt = Offset*8; 1137 else 1138 ShiftAmt = (StoreSize-LoadSize-Offset)*8; 1139 1140 if (ShiftAmt) 1141 SrcVal = Builder.CreateLShr(SrcVal, ShiftAmt); 1142 1143 if (LoadSize != StoreSize) 1144 SrcVal = Builder.CreateTrunc(SrcVal, IntegerType::get(Ctx, LoadSize*8)); 1145 1146 return CoerceAvailableValueToLoadType(SrcVal, LoadTy, Builder, DL); 1147 } 1148 1149 /// This function is called when we have a 1150 /// memdep query of a load that ends up being a clobbering load. This means 1151 /// that the load *may* provide bits used by the load but we can't be sure 1152 /// because the pointers don't mustalias. Check this case to see if there is 1153 /// anything more we can do before we give up. 1154 static Value *GetLoadValueForLoad(LoadInst *SrcVal, unsigned Offset, 1155 Type *LoadTy, Instruction *InsertPt, 1156 GVN &gvn) { 1157 const DataLayout &DL = SrcVal->getModule()->getDataLayout(); 1158 // If Offset+LoadTy exceeds the size of SrcVal, then we must be wanting to 1159 // widen SrcVal out to a larger load. 1160 unsigned SrcValSize = DL.getTypeStoreSize(SrcVal->getType()); 1161 unsigned LoadSize = DL.getTypeStoreSize(LoadTy); 1162 if (Offset+LoadSize > SrcValSize) { 1163 assert(SrcVal->isSimple() && "Cannot widen volatile/atomic load!"); 1164 assert(SrcVal->getType()->isIntegerTy() && "Can't widen non-integer load"); 1165 // If we have a load/load clobber an DepLI can be widened to cover this 1166 // load, then we should widen it to the next power of 2 size big enough! 1167 unsigned NewLoadSize = Offset+LoadSize; 1168 if (!isPowerOf2_32(NewLoadSize)) 1169 NewLoadSize = NextPowerOf2(NewLoadSize); 1170 1171 Value *PtrVal = SrcVal->getPointerOperand(); 1172 1173 // Insert the new load after the old load. This ensures that subsequent 1174 // memdep queries will find the new load. We can't easily remove the old 1175 // load completely because it is already in the value numbering table. 1176 IRBuilder<> Builder(SrcVal->getParent(), ++BasicBlock::iterator(SrcVal)); 1177 Type *DestPTy = 1178 IntegerType::get(LoadTy->getContext(), NewLoadSize*8); 1179 DestPTy = PointerType::get(DestPTy, 1180 PtrVal->getType()->getPointerAddressSpace()); 1181 Builder.SetCurrentDebugLocation(SrcVal->getDebugLoc()); 1182 PtrVal = Builder.CreateBitCast(PtrVal, DestPTy); 1183 LoadInst *NewLoad = Builder.CreateLoad(PtrVal); 1184 NewLoad->takeName(SrcVal); 1185 NewLoad->setAlignment(SrcVal->getAlignment()); 1186 1187 DEBUG(dbgs() << "GVN WIDENED LOAD: " << *SrcVal << "\n"); 1188 DEBUG(dbgs() << "TO: " << *NewLoad << "\n"); 1189 1190 // Replace uses of the original load with the wider load. On a big endian 1191 // system, we need to shift down to get the relevant bits. 1192 Value *RV = NewLoad; 1193 if (DL.isBigEndian()) 1194 RV = Builder.CreateLShr(RV, 1195 NewLoadSize*8-SrcVal->getType()->getPrimitiveSizeInBits()); 1196 RV = Builder.CreateTrunc(RV, SrcVal->getType()); 1197 SrcVal->replaceAllUsesWith(RV); 1198 1199 // We would like to use gvn.markInstructionForDeletion here, but we can't 1200 // because the load is already memoized into the leader map table that GVN 1201 // tracks. It is potentially possible to remove the load from the table, 1202 // but then there all of the operations based on it would need to be 1203 // rehashed. Just leave the dead load around. 1204 gvn.getMemDep().removeInstruction(SrcVal); 1205 SrcVal = NewLoad; 1206 } 1207 1208 return GetStoreValueForLoad(SrcVal, Offset, LoadTy, InsertPt, DL); 1209 } 1210 1211 1212 /// This function is called when we have a 1213 /// memdep query of a load that ends up being a clobbering mem intrinsic. 1214 static Value *GetMemInstValueForLoad(MemIntrinsic *SrcInst, unsigned Offset, 1215 Type *LoadTy, Instruction *InsertPt, 1216 const DataLayout &DL){ 1217 LLVMContext &Ctx = LoadTy->getContext(); 1218 uint64_t LoadSize = DL.getTypeSizeInBits(LoadTy)/8; 1219 1220 IRBuilder<> Builder(InsertPt); 1221 1222 // We know that this method is only called when the mem transfer fully 1223 // provides the bits for the load. 1224 if (MemSetInst *MSI = dyn_cast<MemSetInst>(SrcInst)) { 1225 // memset(P, 'x', 1234) -> splat('x'), even if x is a variable, and 1226 // independently of what the offset is. 1227 Value *Val = MSI->getValue(); 1228 if (LoadSize != 1) 1229 Val = Builder.CreateZExt(Val, IntegerType::get(Ctx, LoadSize*8)); 1230 1231 Value *OneElt = Val; 1232 1233 // Splat the value out to the right number of bits. 1234 for (unsigned NumBytesSet = 1; NumBytesSet != LoadSize; ) { 1235 // If we can double the number of bytes set, do it. 1236 if (NumBytesSet*2 <= LoadSize) { 1237 Value *ShVal = Builder.CreateShl(Val, NumBytesSet*8); 1238 Val = Builder.CreateOr(Val, ShVal); 1239 NumBytesSet <<= 1; 1240 continue; 1241 } 1242 1243 // Otherwise insert one byte at a time. 1244 Value *ShVal = Builder.CreateShl(Val, 1*8); 1245 Val = Builder.CreateOr(OneElt, ShVal); 1246 ++NumBytesSet; 1247 } 1248 1249 return CoerceAvailableValueToLoadType(Val, LoadTy, Builder, DL); 1250 } 1251 1252 // Otherwise, this is a memcpy/memmove from a constant global. 1253 MemTransferInst *MTI = cast<MemTransferInst>(SrcInst); 1254 Constant *Src = cast<Constant>(MTI->getSource()); 1255 unsigned AS = Src->getType()->getPointerAddressSpace(); 1256 1257 // Otherwise, see if we can constant fold a load from the constant with the 1258 // offset applied as appropriate. 1259 Src = ConstantExpr::getBitCast(Src, 1260 Type::getInt8PtrTy(Src->getContext(), AS)); 1261 Constant *OffsetCst = 1262 ConstantInt::get(Type::getInt64Ty(Src->getContext()), (unsigned)Offset); 1263 Src = ConstantExpr::getGetElementPtr(Type::getInt8Ty(Src->getContext()), Src, 1264 OffsetCst); 1265 Src = ConstantExpr::getBitCast(Src, PointerType::get(LoadTy, AS)); 1266 return ConstantFoldLoadFromConstPtr(Src, DL); 1267 } 1268 1269 1270 /// Given a set of loads specified by ValuesPerBlock, 1271 /// construct SSA form, allowing us to eliminate LI. This returns the value 1272 /// that should be used at LI's definition site. 1273 static Value *ConstructSSAForLoadSet(LoadInst *LI, 1274 SmallVectorImpl<AvailableValueInBlock> &ValuesPerBlock, 1275 GVN &gvn) { 1276 // Check for the fully redundant, dominating load case. In this case, we can 1277 // just use the dominating value directly. 1278 if (ValuesPerBlock.size() == 1 && 1279 gvn.getDominatorTree().properlyDominates(ValuesPerBlock[0].BB, 1280 LI->getParent())) { 1281 assert(!ValuesPerBlock[0].isUndefValue() && "Dead BB dominate this block"); 1282 return ValuesPerBlock[0].MaterializeAdjustedValue(LI, gvn); 1283 } 1284 1285 // Otherwise, we have to construct SSA form. 1286 SmallVector<PHINode*, 8> NewPHIs; 1287 SSAUpdater SSAUpdate(&NewPHIs); 1288 SSAUpdate.Initialize(LI->getType(), LI->getName()); 1289 1290 for (unsigned i = 0, e = ValuesPerBlock.size(); i != e; ++i) { 1291 const AvailableValueInBlock &AV = ValuesPerBlock[i]; 1292 BasicBlock *BB = AV.BB; 1293 1294 if (SSAUpdate.HasValueForBlock(BB)) 1295 continue; 1296 1297 SSAUpdate.AddAvailableValue(BB, AV.MaterializeAdjustedValue(LI, gvn)); 1298 } 1299 1300 // Perform PHI construction. 1301 Value *V = SSAUpdate.GetValueInMiddleOfBlock(LI->getParent()); 1302 1303 // If new PHI nodes were created, notify alias analysis. 1304 if (V->getType()->getScalarType()->isPointerTy()) { 1305 AliasAnalysis *AA = gvn.getAliasAnalysis(); 1306 1307 for (unsigned i = 0, e = NewPHIs.size(); i != e; ++i) 1308 AA->copyValue(LI, NewPHIs[i]); 1309 1310 // Now that we've copied information to the new PHIs, scan through 1311 // them again and inform alias analysis that we've added potentially 1312 // escaping uses to any values that are operands to these PHIs. 1313 for (unsigned i = 0, e = NewPHIs.size(); i != e; ++i) { 1314 PHINode *P = NewPHIs[i]; 1315 for (unsigned ii = 0, ee = P->getNumIncomingValues(); ii != ee; ++ii) { 1316 unsigned jj = PHINode::getOperandNumForIncomingValue(ii); 1317 AA->addEscapingUse(P->getOperandUse(jj)); 1318 } 1319 } 1320 } 1321 1322 return V; 1323 } 1324 1325 Value *AvailableValueInBlock::MaterializeAdjustedValue(LoadInst *LI, 1326 GVN &gvn) const { 1327 Value *Res; 1328 Type *LoadTy = LI->getType(); 1329 const DataLayout &DL = LI->getModule()->getDataLayout(); 1330 if (isSimpleValue()) { 1331 Res = getSimpleValue(); 1332 if (Res->getType() != LoadTy) { 1333 Res = GetStoreValueForLoad(Res, Offset, LoadTy, BB->getTerminator(), DL); 1334 1335 DEBUG(dbgs() << "GVN COERCED NONLOCAL VAL:\nOffset: " << Offset << " " 1336 << *getSimpleValue() << '\n' 1337 << *Res << '\n' << "\n\n\n"); 1338 } 1339 } else if (isCoercedLoadValue()) { 1340 LoadInst *Load = getCoercedLoadValue(); 1341 if (Load->getType() == LoadTy && Offset == 0) { 1342 Res = Load; 1343 } else { 1344 Res = GetLoadValueForLoad(Load, Offset, LoadTy, BB->getTerminator(), 1345 gvn); 1346 1347 DEBUG(dbgs() << "GVN COERCED NONLOCAL LOAD:\nOffset: " << Offset << " " 1348 << *getCoercedLoadValue() << '\n' 1349 << *Res << '\n' << "\n\n\n"); 1350 } 1351 } else if (isMemIntrinValue()) { 1352 Res = GetMemInstValueForLoad(getMemIntrinValue(), Offset, LoadTy, 1353 BB->getTerminator(), DL); 1354 DEBUG(dbgs() << "GVN COERCED NONLOCAL MEM INTRIN:\nOffset: " << Offset 1355 << " " << *getMemIntrinValue() << '\n' 1356 << *Res << '\n' << "\n\n\n"); 1357 } else { 1358 assert(isUndefValue() && "Should be UndefVal"); 1359 DEBUG(dbgs() << "GVN COERCED NONLOCAL Undef:\n";); 1360 return UndefValue::get(LoadTy); 1361 } 1362 return Res; 1363 } 1364 1365 static bool isLifetimeStart(const Instruction *Inst) { 1366 if (const IntrinsicInst* II = dyn_cast<IntrinsicInst>(Inst)) 1367 return II->getIntrinsicID() == Intrinsic::lifetime_start; 1368 return false; 1369 } 1370 1371 void GVN::AnalyzeLoadAvailability(LoadInst *LI, LoadDepVect &Deps, 1372 AvailValInBlkVect &ValuesPerBlock, 1373 UnavailBlkVect &UnavailableBlocks) { 1374 1375 // Filter out useless results (non-locals, etc). Keep track of the blocks 1376 // where we have a value available in repl, also keep track of whether we see 1377 // dependencies that produce an unknown value for the load (such as a call 1378 // that could potentially clobber the load). 1379 unsigned NumDeps = Deps.size(); 1380 const DataLayout &DL = LI->getModule()->getDataLayout(); 1381 for (unsigned i = 0, e = NumDeps; i != e; ++i) { 1382 BasicBlock *DepBB = Deps[i].getBB(); 1383 MemDepResult DepInfo = Deps[i].getResult(); 1384 1385 if (DeadBlocks.count(DepBB)) { 1386 // Dead dependent mem-op disguise as a load evaluating the same value 1387 // as the load in question. 1388 ValuesPerBlock.push_back(AvailableValueInBlock::getUndef(DepBB)); 1389 continue; 1390 } 1391 1392 if (!DepInfo.isDef() && !DepInfo.isClobber()) { 1393 UnavailableBlocks.push_back(DepBB); 1394 continue; 1395 } 1396 1397 if (DepInfo.isClobber()) { 1398 // The address being loaded in this non-local block may not be the same as 1399 // the pointer operand of the load if PHI translation occurs. Make sure 1400 // to consider the right address. 1401 Value *Address = Deps[i].getAddress(); 1402 1403 // If the dependence is to a store that writes to a superset of the bits 1404 // read by the load, we can extract the bits we need for the load from the 1405 // stored value. 1406 if (StoreInst *DepSI = dyn_cast<StoreInst>(DepInfo.getInst())) { 1407 if (Address) { 1408 int Offset = 1409 AnalyzeLoadFromClobberingStore(LI->getType(), Address, DepSI); 1410 if (Offset != -1) { 1411 ValuesPerBlock.push_back(AvailableValueInBlock::get(DepBB, 1412 DepSI->getValueOperand(), 1413 Offset)); 1414 continue; 1415 } 1416 } 1417 } 1418 1419 // Check to see if we have something like this: 1420 // load i32* P 1421 // load i8* (P+1) 1422 // if we have this, replace the later with an extraction from the former. 1423 if (LoadInst *DepLI = dyn_cast<LoadInst>(DepInfo.getInst())) { 1424 // If this is a clobber and L is the first instruction in its block, then 1425 // we have the first instruction in the entry block. 1426 if (DepLI != LI && Address) { 1427 int Offset = 1428 AnalyzeLoadFromClobberingLoad(LI->getType(), Address, DepLI, DL); 1429 1430 if (Offset != -1) { 1431 ValuesPerBlock.push_back(AvailableValueInBlock::getLoad(DepBB,DepLI, 1432 Offset)); 1433 continue; 1434 } 1435 } 1436 } 1437 1438 // If the clobbering value is a memset/memcpy/memmove, see if we can 1439 // forward a value on from it. 1440 if (MemIntrinsic *DepMI = dyn_cast<MemIntrinsic>(DepInfo.getInst())) { 1441 if (Address) { 1442 int Offset = AnalyzeLoadFromClobberingMemInst(LI->getType(), Address, 1443 DepMI, DL); 1444 if (Offset != -1) { 1445 ValuesPerBlock.push_back(AvailableValueInBlock::getMI(DepBB, DepMI, 1446 Offset)); 1447 continue; 1448 } 1449 } 1450 } 1451 1452 UnavailableBlocks.push_back(DepBB); 1453 continue; 1454 } 1455 1456 // DepInfo.isDef() here 1457 1458 Instruction *DepInst = DepInfo.getInst(); 1459 1460 // Loading the allocation -> undef. 1461 if (isa<AllocaInst>(DepInst) || isMallocLikeFn(DepInst, TLI) || 1462 // Loading immediately after lifetime begin -> undef. 1463 isLifetimeStart(DepInst)) { 1464 ValuesPerBlock.push_back(AvailableValueInBlock::get(DepBB, 1465 UndefValue::get(LI->getType()))); 1466 continue; 1467 } 1468 1469 // Loading from calloc (which zero initializes memory) -> zero 1470 if (isCallocLikeFn(DepInst, TLI)) { 1471 ValuesPerBlock.push_back(AvailableValueInBlock::get( 1472 DepBB, Constant::getNullValue(LI->getType()))); 1473 continue; 1474 } 1475 1476 if (StoreInst *S = dyn_cast<StoreInst>(DepInst)) { 1477 // Reject loads and stores that are to the same address but are of 1478 // different types if we have to. 1479 if (S->getValueOperand()->getType() != LI->getType()) { 1480 // If the stored value is larger or equal to the loaded value, we can 1481 // reuse it. 1482 if (!CanCoerceMustAliasedValueToLoad(S->getValueOperand(), 1483 LI->getType(), DL)) { 1484 UnavailableBlocks.push_back(DepBB); 1485 continue; 1486 } 1487 } 1488 1489 ValuesPerBlock.push_back(AvailableValueInBlock::get(DepBB, 1490 S->getValueOperand())); 1491 continue; 1492 } 1493 1494 if (LoadInst *LD = dyn_cast<LoadInst>(DepInst)) { 1495 // If the types mismatch and we can't handle it, reject reuse of the load. 1496 if (LD->getType() != LI->getType()) { 1497 // If the stored value is larger or equal to the loaded value, we can 1498 // reuse it. 1499 if (!CanCoerceMustAliasedValueToLoad(LD, LI->getType(), DL)) { 1500 UnavailableBlocks.push_back(DepBB); 1501 continue; 1502 } 1503 } 1504 ValuesPerBlock.push_back(AvailableValueInBlock::getLoad(DepBB, LD)); 1505 continue; 1506 } 1507 1508 UnavailableBlocks.push_back(DepBB); 1509 } 1510 } 1511 1512 bool GVN::PerformLoadPRE(LoadInst *LI, AvailValInBlkVect &ValuesPerBlock, 1513 UnavailBlkVect &UnavailableBlocks) { 1514 // Okay, we have *some* definitions of the value. This means that the value 1515 // is available in some of our (transitive) predecessors. Lets think about 1516 // doing PRE of this load. This will involve inserting a new load into the 1517 // predecessor when it's not available. We could do this in general, but 1518 // prefer to not increase code size. As such, we only do this when we know 1519 // that we only have to insert *one* load (which means we're basically moving 1520 // the load, not inserting a new one). 1521 1522 SmallPtrSet<BasicBlock *, 4> Blockers; 1523 for (unsigned i = 0, e = UnavailableBlocks.size(); i != e; ++i) 1524 Blockers.insert(UnavailableBlocks[i]); 1525 1526 // Let's find the first basic block with more than one predecessor. Walk 1527 // backwards through predecessors if needed. 1528 BasicBlock *LoadBB = LI->getParent(); 1529 BasicBlock *TmpBB = LoadBB; 1530 1531 while (TmpBB->getSinglePredecessor()) { 1532 TmpBB = TmpBB->getSinglePredecessor(); 1533 if (TmpBB == LoadBB) // Infinite (unreachable) loop. 1534 return false; 1535 if (Blockers.count(TmpBB)) 1536 return false; 1537 1538 // If any of these blocks has more than one successor (i.e. if the edge we 1539 // just traversed was critical), then there are other paths through this 1540 // block along which the load may not be anticipated. Hoisting the load 1541 // above this block would be adding the load to execution paths along 1542 // which it was not previously executed. 1543 if (TmpBB->getTerminator()->getNumSuccessors() != 1) 1544 return false; 1545 } 1546 1547 assert(TmpBB); 1548 LoadBB = TmpBB; 1549 1550 // Check to see how many predecessors have the loaded value fully 1551 // available. 1552 MapVector<BasicBlock *, Value *> PredLoads; 1553 DenseMap<BasicBlock*, char> FullyAvailableBlocks; 1554 for (unsigned i = 0, e = ValuesPerBlock.size(); i != e; ++i) 1555 FullyAvailableBlocks[ValuesPerBlock[i].BB] = true; 1556 for (unsigned i = 0, e = UnavailableBlocks.size(); i != e; ++i) 1557 FullyAvailableBlocks[UnavailableBlocks[i]] = false; 1558 1559 SmallVector<BasicBlock *, 4> CriticalEdgePred; 1560 for (pred_iterator PI = pred_begin(LoadBB), E = pred_end(LoadBB); 1561 PI != E; ++PI) { 1562 BasicBlock *Pred = *PI; 1563 if (IsValueFullyAvailableInBlock(Pred, FullyAvailableBlocks, 0)) { 1564 continue; 1565 } 1566 1567 if (Pred->getTerminator()->getNumSuccessors() != 1) { 1568 if (isa<IndirectBrInst>(Pred->getTerminator())) { 1569 DEBUG(dbgs() << "COULD NOT PRE LOAD BECAUSE OF INDBR CRITICAL EDGE '" 1570 << Pred->getName() << "': " << *LI << '\n'); 1571 return false; 1572 } 1573 1574 if (LoadBB->isLandingPad()) { 1575 DEBUG(dbgs() 1576 << "COULD NOT PRE LOAD BECAUSE OF LANDING PAD CRITICAL EDGE '" 1577 << Pred->getName() << "': " << *LI << '\n'); 1578 return false; 1579 } 1580 1581 CriticalEdgePred.push_back(Pred); 1582 } else { 1583 // Only add the predecessors that will not be split for now. 1584 PredLoads[Pred] = nullptr; 1585 } 1586 } 1587 1588 // Decide whether PRE is profitable for this load. 1589 unsigned NumUnavailablePreds = PredLoads.size() + CriticalEdgePred.size(); 1590 assert(NumUnavailablePreds != 0 && 1591 "Fully available value should already be eliminated!"); 1592 1593 // If this load is unavailable in multiple predecessors, reject it. 1594 // FIXME: If we could restructure the CFG, we could make a common pred with 1595 // all the preds that don't have an available LI and insert a new load into 1596 // that one block. 1597 if (NumUnavailablePreds != 1) 1598 return false; 1599 1600 // Split critical edges, and update the unavailable predecessors accordingly. 1601 for (BasicBlock *OrigPred : CriticalEdgePred) { 1602 BasicBlock *NewPred = splitCriticalEdges(OrigPred, LoadBB); 1603 assert(!PredLoads.count(OrigPred) && "Split edges shouldn't be in map!"); 1604 PredLoads[NewPred] = nullptr; 1605 DEBUG(dbgs() << "Split critical edge " << OrigPred->getName() << "->" 1606 << LoadBB->getName() << '\n'); 1607 } 1608 1609 // Check if the load can safely be moved to all the unavailable predecessors. 1610 bool CanDoPRE = true; 1611 const DataLayout &DL = LI->getModule()->getDataLayout(); 1612 SmallVector<Instruction*, 8> NewInsts; 1613 for (auto &PredLoad : PredLoads) { 1614 BasicBlock *UnavailablePred = PredLoad.first; 1615 1616 // Do PHI translation to get its value in the predecessor if necessary. The 1617 // returned pointer (if non-null) is guaranteed to dominate UnavailablePred. 1618 1619 // If all preds have a single successor, then we know it is safe to insert 1620 // the load on the pred (?!?), so we can insert code to materialize the 1621 // pointer if it is not available. 1622 PHITransAddr Address(LI->getPointerOperand(), DL, AC); 1623 Value *LoadPtr = nullptr; 1624 LoadPtr = Address.PHITranslateWithInsertion(LoadBB, UnavailablePred, 1625 *DT, NewInsts); 1626 1627 // If we couldn't find or insert a computation of this phi translated value, 1628 // we fail PRE. 1629 if (!LoadPtr) { 1630 DEBUG(dbgs() << "COULDN'T INSERT PHI TRANSLATED VALUE OF: " 1631 << *LI->getPointerOperand() << "\n"); 1632 CanDoPRE = false; 1633 break; 1634 } 1635 1636 PredLoad.second = LoadPtr; 1637 } 1638 1639 if (!CanDoPRE) { 1640 while (!NewInsts.empty()) { 1641 Instruction *I = NewInsts.pop_back_val(); 1642 if (MD) MD->removeInstruction(I); 1643 I->eraseFromParent(); 1644 } 1645 // HINT: Don't revert the edge-splitting as following transformation may 1646 // also need to split these critical edges. 1647 return !CriticalEdgePred.empty(); 1648 } 1649 1650 // Okay, we can eliminate this load by inserting a reload in the predecessor 1651 // and using PHI construction to get the value in the other predecessors, do 1652 // it. 1653 DEBUG(dbgs() << "GVN REMOVING PRE LOAD: " << *LI << '\n'); 1654 DEBUG(if (!NewInsts.empty()) 1655 dbgs() << "INSERTED " << NewInsts.size() << " INSTS: " 1656 << *NewInsts.back() << '\n'); 1657 1658 // Assign value numbers to the new instructions. 1659 for (unsigned i = 0, e = NewInsts.size(); i != e; ++i) { 1660 // FIXME: We really _ought_ to insert these value numbers into their 1661 // parent's availability map. However, in doing so, we risk getting into 1662 // ordering issues. If a block hasn't been processed yet, we would be 1663 // marking a value as AVAIL-IN, which isn't what we intend. 1664 VN.lookup_or_add(NewInsts[i]); 1665 } 1666 1667 for (const auto &PredLoad : PredLoads) { 1668 BasicBlock *UnavailablePred = PredLoad.first; 1669 Value *LoadPtr = PredLoad.second; 1670 1671 Instruction *NewLoad = new LoadInst(LoadPtr, LI->getName()+".pre", false, 1672 LI->getAlignment(), 1673 UnavailablePred->getTerminator()); 1674 1675 // Transfer the old load's AA tags to the new load. 1676 AAMDNodes Tags; 1677 LI->getAAMetadata(Tags); 1678 if (Tags) 1679 NewLoad->setAAMetadata(Tags); 1680 1681 // Transfer DebugLoc. 1682 NewLoad->setDebugLoc(LI->getDebugLoc()); 1683 1684 // Add the newly created load. 1685 ValuesPerBlock.push_back(AvailableValueInBlock::get(UnavailablePred, 1686 NewLoad)); 1687 MD->invalidateCachedPointerInfo(LoadPtr); 1688 DEBUG(dbgs() << "GVN INSERTED " << *NewLoad << '\n'); 1689 } 1690 1691 // Perform PHI construction. 1692 Value *V = ConstructSSAForLoadSet(LI, ValuesPerBlock, *this); 1693 LI->replaceAllUsesWith(V); 1694 if (isa<PHINode>(V)) 1695 V->takeName(LI); 1696 if (Instruction *I = dyn_cast<Instruction>(V)) 1697 I->setDebugLoc(LI->getDebugLoc()); 1698 if (V->getType()->getScalarType()->isPointerTy()) 1699 MD->invalidateCachedPointerInfo(V); 1700 markInstructionForDeletion(LI); 1701 ++NumPRELoad; 1702 return true; 1703 } 1704 1705 /// Attempt to eliminate a load whose dependencies are 1706 /// non-local by performing PHI construction. 1707 bool GVN::processNonLocalLoad(LoadInst *LI) { 1708 // Step 1: Find the non-local dependencies of the load. 1709 LoadDepVect Deps; 1710 MD->getNonLocalPointerDependency(LI, Deps); 1711 1712 // If we had to process more than one hundred blocks to find the 1713 // dependencies, this load isn't worth worrying about. Optimizing 1714 // it will be too expensive. 1715 unsigned NumDeps = Deps.size(); 1716 if (NumDeps > 100) 1717 return false; 1718 1719 // If we had a phi translation failure, we'll have a single entry which is a 1720 // clobber in the current block. Reject this early. 1721 if (NumDeps == 1 && 1722 !Deps[0].getResult().isDef() && !Deps[0].getResult().isClobber()) { 1723 DEBUG( 1724 dbgs() << "GVN: non-local load "; 1725 LI->printAsOperand(dbgs()); 1726 dbgs() << " has unknown dependencies\n"; 1727 ); 1728 return false; 1729 } 1730 1731 // If this load follows a GEP, see if we can PRE the indices before analyzing. 1732 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(LI->getOperand(0))) { 1733 for (GetElementPtrInst::op_iterator OI = GEP->idx_begin(), 1734 OE = GEP->idx_end(); 1735 OI != OE; ++OI) 1736 if (Instruction *I = dyn_cast<Instruction>(OI->get())) 1737 performScalarPRE(I); 1738 } 1739 1740 // Step 2: Analyze the availability of the load 1741 AvailValInBlkVect ValuesPerBlock; 1742 UnavailBlkVect UnavailableBlocks; 1743 AnalyzeLoadAvailability(LI, Deps, ValuesPerBlock, UnavailableBlocks); 1744 1745 // If we have no predecessors that produce a known value for this load, exit 1746 // early. 1747 if (ValuesPerBlock.empty()) 1748 return false; 1749 1750 // Step 3: Eliminate fully redundancy. 1751 // 1752 // If all of the instructions we depend on produce a known value for this 1753 // load, then it is fully redundant and we can use PHI insertion to compute 1754 // its value. Insert PHIs and remove the fully redundant value now. 1755 if (UnavailableBlocks.empty()) { 1756 DEBUG(dbgs() << "GVN REMOVING NONLOCAL LOAD: " << *LI << '\n'); 1757 1758 // Perform PHI construction. 1759 Value *V = ConstructSSAForLoadSet(LI, ValuesPerBlock, *this); 1760 LI->replaceAllUsesWith(V); 1761 1762 if (isa<PHINode>(V)) 1763 V->takeName(LI); 1764 if (Instruction *I = dyn_cast<Instruction>(V)) 1765 I->setDebugLoc(LI->getDebugLoc()); 1766 if (V->getType()->getScalarType()->isPointerTy()) 1767 MD->invalidateCachedPointerInfo(V); 1768 markInstructionForDeletion(LI); 1769 ++NumGVNLoad; 1770 return true; 1771 } 1772 1773 // Step 4: Eliminate partial redundancy. 1774 if (!EnablePRE || !EnableLoadPRE) 1775 return false; 1776 1777 return PerformLoadPRE(LI, ValuesPerBlock, UnavailableBlocks); 1778 } 1779 1780 1781 static void patchReplacementInstruction(Instruction *I, Value *Repl) { 1782 // Patch the replacement so that it is not more restrictive than the value 1783 // being replaced. 1784 BinaryOperator *Op = dyn_cast<BinaryOperator>(I); 1785 BinaryOperator *ReplOp = dyn_cast<BinaryOperator>(Repl); 1786 if (Op && ReplOp && isa<OverflowingBinaryOperator>(Op) && 1787 isa<OverflowingBinaryOperator>(ReplOp)) { 1788 if (ReplOp->hasNoSignedWrap() && !Op->hasNoSignedWrap()) 1789 ReplOp->setHasNoSignedWrap(false); 1790 if (ReplOp->hasNoUnsignedWrap() && !Op->hasNoUnsignedWrap()) 1791 ReplOp->setHasNoUnsignedWrap(false); 1792 } 1793 if (Instruction *ReplInst = dyn_cast<Instruction>(Repl)) { 1794 // FIXME: If both the original and replacement value are part of the 1795 // same control-flow region (meaning that the execution of one 1796 // guarentees the executation of the other), then we can combine the 1797 // noalias scopes here and do better than the general conservative 1798 // answer used in combineMetadata(). 1799 1800 // In general, GVN unifies expressions over different control-flow 1801 // regions, and so we need a conservative combination of the noalias 1802 // scopes. 1803 unsigned KnownIDs[] = { 1804 LLVMContext::MD_tbaa, 1805 LLVMContext::MD_alias_scope, 1806 LLVMContext::MD_noalias, 1807 LLVMContext::MD_range, 1808 LLVMContext::MD_fpmath, 1809 LLVMContext::MD_invariant_load, 1810 }; 1811 combineMetadata(ReplInst, I, KnownIDs); 1812 } 1813 } 1814 1815 static void patchAndReplaceAllUsesWith(Instruction *I, Value *Repl) { 1816 patchReplacementInstruction(I, Repl); 1817 I->replaceAllUsesWith(Repl); 1818 } 1819 1820 /// Attempt to eliminate a load, first by eliminating it 1821 /// locally, and then attempting non-local elimination if that fails. 1822 bool GVN::processLoad(LoadInst *L) { 1823 if (!MD) 1824 return false; 1825 1826 if (!L->isSimple()) 1827 return false; 1828 1829 if (L->use_empty()) { 1830 markInstructionForDeletion(L); 1831 return true; 1832 } 1833 1834 // ... to a pointer that has been loaded from before... 1835 MemDepResult Dep = MD->getDependency(L); 1836 const DataLayout &DL = L->getModule()->getDataLayout(); 1837 1838 // If we have a clobber and target data is around, see if this is a clobber 1839 // that we can fix up through code synthesis. 1840 if (Dep.isClobber()) { 1841 // Check to see if we have something like this: 1842 // store i32 123, i32* %P 1843 // %A = bitcast i32* %P to i8* 1844 // %B = gep i8* %A, i32 1 1845 // %C = load i8* %B 1846 // 1847 // We could do that by recognizing if the clobber instructions are obviously 1848 // a common base + constant offset, and if the previous store (or memset) 1849 // completely covers this load. This sort of thing can happen in bitfield 1850 // access code. 1851 Value *AvailVal = nullptr; 1852 if (StoreInst *DepSI = dyn_cast<StoreInst>(Dep.getInst())) { 1853 int Offset = AnalyzeLoadFromClobberingStore( 1854 L->getType(), L->getPointerOperand(), DepSI); 1855 if (Offset != -1) 1856 AvailVal = GetStoreValueForLoad(DepSI->getValueOperand(), Offset, 1857 L->getType(), L, DL); 1858 } 1859 1860 // Check to see if we have something like this: 1861 // load i32* P 1862 // load i8* (P+1) 1863 // if we have this, replace the later with an extraction from the former. 1864 if (LoadInst *DepLI = dyn_cast<LoadInst>(Dep.getInst())) { 1865 // If this is a clobber and L is the first instruction in its block, then 1866 // we have the first instruction in the entry block. 1867 if (DepLI == L) 1868 return false; 1869 1870 int Offset = AnalyzeLoadFromClobberingLoad( 1871 L->getType(), L->getPointerOperand(), DepLI, DL); 1872 if (Offset != -1) 1873 AvailVal = GetLoadValueForLoad(DepLI, Offset, L->getType(), L, *this); 1874 } 1875 1876 // If the clobbering value is a memset/memcpy/memmove, see if we can forward 1877 // a value on from it. 1878 if (MemIntrinsic *DepMI = dyn_cast<MemIntrinsic>(Dep.getInst())) { 1879 int Offset = AnalyzeLoadFromClobberingMemInst( 1880 L->getType(), L->getPointerOperand(), DepMI, DL); 1881 if (Offset != -1) 1882 AvailVal = GetMemInstValueForLoad(DepMI, Offset, L->getType(), L, DL); 1883 } 1884 1885 if (AvailVal) { 1886 DEBUG(dbgs() << "GVN COERCED INST:\n" << *Dep.getInst() << '\n' 1887 << *AvailVal << '\n' << *L << "\n\n\n"); 1888 1889 // Replace the load! 1890 L->replaceAllUsesWith(AvailVal); 1891 if (AvailVal->getType()->getScalarType()->isPointerTy()) 1892 MD->invalidateCachedPointerInfo(AvailVal); 1893 markInstructionForDeletion(L); 1894 ++NumGVNLoad; 1895 return true; 1896 } 1897 } 1898 1899 // If the value isn't available, don't do anything! 1900 if (Dep.isClobber()) { 1901 DEBUG( 1902 // fast print dep, using operator<< on instruction is too slow. 1903 dbgs() << "GVN: load "; 1904 L->printAsOperand(dbgs()); 1905 Instruction *I = Dep.getInst(); 1906 dbgs() << " is clobbered by " << *I << '\n'; 1907 ); 1908 return false; 1909 } 1910 1911 // If it is defined in another block, try harder. 1912 if (Dep.isNonLocal()) 1913 return processNonLocalLoad(L); 1914 1915 if (!Dep.isDef()) { 1916 DEBUG( 1917 // fast print dep, using operator<< on instruction is too slow. 1918 dbgs() << "GVN: load "; 1919 L->printAsOperand(dbgs()); 1920 dbgs() << " has unknown dependence\n"; 1921 ); 1922 return false; 1923 } 1924 1925 Instruction *DepInst = Dep.getInst(); 1926 if (StoreInst *DepSI = dyn_cast<StoreInst>(DepInst)) { 1927 Value *StoredVal = DepSI->getValueOperand(); 1928 1929 // The store and load are to a must-aliased pointer, but they may not 1930 // actually have the same type. See if we know how to reuse the stored 1931 // value (depending on its type). 1932 if (StoredVal->getType() != L->getType()) { 1933 IRBuilder<> Builder(L); 1934 StoredVal = 1935 CoerceAvailableValueToLoadType(StoredVal, L->getType(), Builder, DL); 1936 if (!StoredVal) 1937 return false; 1938 1939 DEBUG(dbgs() << "GVN COERCED STORE:\n" << *DepSI << '\n' << *StoredVal 1940 << '\n' << *L << "\n\n\n"); 1941 } 1942 1943 // Remove it! 1944 L->replaceAllUsesWith(StoredVal); 1945 if (StoredVal->getType()->getScalarType()->isPointerTy()) 1946 MD->invalidateCachedPointerInfo(StoredVal); 1947 markInstructionForDeletion(L); 1948 ++NumGVNLoad; 1949 return true; 1950 } 1951 1952 if (LoadInst *DepLI = dyn_cast<LoadInst>(DepInst)) { 1953 Value *AvailableVal = DepLI; 1954 1955 // The loads are of a must-aliased pointer, but they may not actually have 1956 // the same type. See if we know how to reuse the previously loaded value 1957 // (depending on its type). 1958 if (DepLI->getType() != L->getType()) { 1959 IRBuilder<> Builder(L); 1960 AvailableVal = 1961 CoerceAvailableValueToLoadType(DepLI, L->getType(), Builder, DL); 1962 if (!AvailableVal) 1963 return false; 1964 1965 DEBUG(dbgs() << "GVN COERCED LOAD:\n" << *DepLI << "\n" << *AvailableVal 1966 << "\n" << *L << "\n\n\n"); 1967 } 1968 1969 // Remove it! 1970 patchAndReplaceAllUsesWith(L, AvailableVal); 1971 if (DepLI->getType()->getScalarType()->isPointerTy()) 1972 MD->invalidateCachedPointerInfo(DepLI); 1973 markInstructionForDeletion(L); 1974 ++NumGVNLoad; 1975 return true; 1976 } 1977 1978 // If this load really doesn't depend on anything, then we must be loading an 1979 // undef value. This can happen when loading for a fresh allocation with no 1980 // intervening stores, for example. 1981 if (isa<AllocaInst>(DepInst) || isMallocLikeFn(DepInst, TLI)) { 1982 L->replaceAllUsesWith(UndefValue::get(L->getType())); 1983 markInstructionForDeletion(L); 1984 ++NumGVNLoad; 1985 return true; 1986 } 1987 1988 // If this load occurs either right after a lifetime begin, 1989 // then the loaded value is undefined. 1990 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(DepInst)) { 1991 if (II->getIntrinsicID() == Intrinsic::lifetime_start) { 1992 L->replaceAllUsesWith(UndefValue::get(L->getType())); 1993 markInstructionForDeletion(L); 1994 ++NumGVNLoad; 1995 return true; 1996 } 1997 } 1998 1999 // If this load follows a calloc (which zero initializes memory), 2000 // then the loaded value is zero 2001 if (isCallocLikeFn(DepInst, TLI)) { 2002 L->replaceAllUsesWith(Constant::getNullValue(L->getType())); 2003 markInstructionForDeletion(L); 2004 ++NumGVNLoad; 2005 return true; 2006 } 2007 2008 return false; 2009 } 2010 2011 // In order to find a leader for a given value number at a 2012 // specific basic block, we first obtain the list of all Values for that number, 2013 // and then scan the list to find one whose block dominates the block in 2014 // question. This is fast because dominator tree queries consist of only 2015 // a few comparisons of DFS numbers. 2016 Value *GVN::findLeader(const BasicBlock *BB, uint32_t num) { 2017 LeaderTableEntry Vals = LeaderTable[num]; 2018 if (!Vals.Val) return nullptr; 2019 2020 Value *Val = nullptr; 2021 if (DT->dominates(Vals.BB, BB)) { 2022 Val = Vals.Val; 2023 if (isa<Constant>(Val)) return Val; 2024 } 2025 2026 LeaderTableEntry* Next = Vals.Next; 2027 while (Next) { 2028 if (DT->dominates(Next->BB, BB)) { 2029 if (isa<Constant>(Next->Val)) return Next->Val; 2030 if (!Val) Val = Next->Val; 2031 } 2032 2033 Next = Next->Next; 2034 } 2035 2036 return Val; 2037 } 2038 2039 /// There is an edge from 'Src' to 'Dst'. Return 2040 /// true if every path from the entry block to 'Dst' passes via this edge. In 2041 /// particular 'Dst' must not be reachable via another edge from 'Src'. 2042 static bool isOnlyReachableViaThisEdge(const BasicBlockEdge &E, 2043 DominatorTree *DT) { 2044 // While in theory it is interesting to consider the case in which Dst has 2045 // more than one predecessor, because Dst might be part of a loop which is 2046 // only reachable from Src, in practice it is pointless since at the time 2047 // GVN runs all such loops have preheaders, which means that Dst will have 2048 // been changed to have only one predecessor, namely Src. 2049 const BasicBlock *Pred = E.getEnd()->getSinglePredecessor(); 2050 const BasicBlock *Src = E.getStart(); 2051 assert((!Pred || Pred == Src) && "No edge between these basic blocks!"); 2052 (void)Src; 2053 return Pred != nullptr; 2054 } 2055 2056 /// The given values are known to be equal in every block 2057 /// dominated by 'Root'. Exploit this, for example by replacing 'LHS' with 2058 /// 'RHS' everywhere in the scope. Returns whether a change was made. 2059 bool GVN::propagateEquality(Value *LHS, Value *RHS, 2060 const BasicBlockEdge &Root) { 2061 SmallVector<std::pair<Value*, Value*>, 4> Worklist; 2062 Worklist.push_back(std::make_pair(LHS, RHS)); 2063 bool Changed = false; 2064 // For speed, compute a conservative fast approximation to 2065 // DT->dominates(Root, Root.getEnd()); 2066 bool RootDominatesEnd = isOnlyReachableViaThisEdge(Root, DT); 2067 2068 while (!Worklist.empty()) { 2069 std::pair<Value*, Value*> Item = Worklist.pop_back_val(); 2070 LHS = Item.first; RHS = Item.second; 2071 2072 if (LHS == RHS) continue; 2073 assert(LHS->getType() == RHS->getType() && "Equality but unequal types!"); 2074 2075 // Don't try to propagate equalities between constants. 2076 if (isa<Constant>(LHS) && isa<Constant>(RHS)) continue; 2077 2078 // Prefer a constant on the right-hand side, or an Argument if no constants. 2079 if (isa<Constant>(LHS) || (isa<Argument>(LHS) && !isa<Constant>(RHS))) 2080 std::swap(LHS, RHS); 2081 assert((isa<Argument>(LHS) || isa<Instruction>(LHS)) && "Unexpected value!"); 2082 2083 // If there is no obvious reason to prefer the left-hand side over the 2084 // right-hand side, ensure the longest lived term is on the right-hand side, 2085 // so the shortest lived term will be replaced by the longest lived. 2086 // This tends to expose more simplifications. 2087 uint32_t LVN = VN.lookup_or_add(LHS); 2088 if ((isa<Argument>(LHS) && isa<Argument>(RHS)) || 2089 (isa<Instruction>(LHS) && isa<Instruction>(RHS))) { 2090 // Move the 'oldest' value to the right-hand side, using the value number 2091 // as a proxy for age. 2092 uint32_t RVN = VN.lookup_or_add(RHS); 2093 if (LVN < RVN) { 2094 std::swap(LHS, RHS); 2095 LVN = RVN; 2096 } 2097 } 2098 2099 // If value numbering later sees that an instruction in the scope is equal 2100 // to 'LHS' then ensure it will be turned into 'RHS'. In order to preserve 2101 // the invariant that instructions only occur in the leader table for their 2102 // own value number (this is used by removeFromLeaderTable), do not do this 2103 // if RHS is an instruction (if an instruction in the scope is morphed into 2104 // LHS then it will be turned into RHS by the next GVN iteration anyway, so 2105 // using the leader table is about compiling faster, not optimizing better). 2106 // The leader table only tracks basic blocks, not edges. Only add to if we 2107 // have the simple case where the edge dominates the end. 2108 if (RootDominatesEnd && !isa<Instruction>(RHS)) 2109 addToLeaderTable(LVN, RHS, Root.getEnd()); 2110 2111 // Replace all occurrences of 'LHS' with 'RHS' everywhere in the scope. As 2112 // LHS always has at least one use that is not dominated by Root, this will 2113 // never do anything if LHS has only one use. 2114 if (!LHS->hasOneUse()) { 2115 unsigned NumReplacements = replaceDominatedUsesWith(LHS, RHS, *DT, Root); 2116 Changed |= NumReplacements > 0; 2117 NumGVNEqProp += NumReplacements; 2118 } 2119 2120 // Now try to deduce additional equalities from this one. For example, if 2121 // the known equality was "(A != B)" == "false" then it follows that A and B 2122 // are equal in the scope. Only boolean equalities with an explicit true or 2123 // false RHS are currently supported. 2124 if (!RHS->getType()->isIntegerTy(1)) 2125 // Not a boolean equality - bail out. 2126 continue; 2127 ConstantInt *CI = dyn_cast<ConstantInt>(RHS); 2128 if (!CI) 2129 // RHS neither 'true' nor 'false' - bail out. 2130 continue; 2131 // Whether RHS equals 'true'. Otherwise it equals 'false'. 2132 bool isKnownTrue = CI->isAllOnesValue(); 2133 bool isKnownFalse = !isKnownTrue; 2134 2135 // If "A && B" is known true then both A and B are known true. If "A || B" 2136 // is known false then both A and B are known false. 2137 Value *A, *B; 2138 if ((isKnownTrue && match(LHS, m_And(m_Value(A), m_Value(B)))) || 2139 (isKnownFalse && match(LHS, m_Or(m_Value(A), m_Value(B))))) { 2140 Worklist.push_back(std::make_pair(A, RHS)); 2141 Worklist.push_back(std::make_pair(B, RHS)); 2142 continue; 2143 } 2144 2145 // If we are propagating an equality like "(A == B)" == "true" then also 2146 // propagate the equality A == B. When propagating a comparison such as 2147 // "(A >= B)" == "true", replace all instances of "A < B" with "false". 2148 if (CmpInst *Cmp = dyn_cast<CmpInst>(LHS)) { 2149 Value *Op0 = Cmp->getOperand(0), *Op1 = Cmp->getOperand(1); 2150 2151 // If "A == B" is known true, or "A != B" is known false, then replace 2152 // A with B everywhere in the scope. 2153 if ((isKnownTrue && Cmp->getPredicate() == CmpInst::ICMP_EQ) || 2154 (isKnownFalse && Cmp->getPredicate() == CmpInst::ICMP_NE)) 2155 Worklist.push_back(std::make_pair(Op0, Op1)); 2156 2157 // Handle the floating point versions of equality comparisons too. 2158 if ((isKnownTrue && Cmp->getPredicate() == CmpInst::FCMP_OEQ) || 2159 (isKnownFalse && Cmp->getPredicate() == CmpInst::FCMP_UNE)) { 2160 2161 // Floating point -0.0 and 0.0 compare equal, so we can only 2162 // propagate values if we know that we have a constant and that 2163 // its value is non-zero. 2164 2165 // FIXME: We should do this optimization if 'no signed zeros' is 2166 // applicable via an instruction-level fast-math-flag or some other 2167 // indicator that relaxed FP semantics are being used. 2168 2169 if (isa<ConstantFP>(Op1) && !cast<ConstantFP>(Op1)->isZero()) 2170 Worklist.push_back(std::make_pair(Op0, Op1)); 2171 } 2172 2173 // If "A >= B" is known true, replace "A < B" with false everywhere. 2174 CmpInst::Predicate NotPred = Cmp->getInversePredicate(); 2175 Constant *NotVal = ConstantInt::get(Cmp->getType(), isKnownFalse); 2176 // Since we don't have the instruction "A < B" immediately to hand, work 2177 // out the value number that it would have and use that to find an 2178 // appropriate instruction (if any). 2179 uint32_t NextNum = VN.getNextUnusedValueNumber(); 2180 uint32_t Num = VN.lookup_or_add_cmp(Cmp->getOpcode(), NotPred, Op0, Op1); 2181 // If the number we were assigned was brand new then there is no point in 2182 // looking for an instruction realizing it: there cannot be one! 2183 if (Num < NextNum) { 2184 Value *NotCmp = findLeader(Root.getEnd(), Num); 2185 if (NotCmp && isa<Instruction>(NotCmp)) { 2186 unsigned NumReplacements = 2187 replaceDominatedUsesWith(NotCmp, NotVal, *DT, Root); 2188 Changed |= NumReplacements > 0; 2189 NumGVNEqProp += NumReplacements; 2190 } 2191 } 2192 // Ensure that any instruction in scope that gets the "A < B" value number 2193 // is replaced with false. 2194 // The leader table only tracks basic blocks, not edges. Only add to if we 2195 // have the simple case where the edge dominates the end. 2196 if (RootDominatesEnd) 2197 addToLeaderTable(Num, NotVal, Root.getEnd()); 2198 2199 continue; 2200 } 2201 } 2202 2203 return Changed; 2204 } 2205 2206 /// When calculating availability, handle an instruction 2207 /// by inserting it into the appropriate sets 2208 bool GVN::processInstruction(Instruction *I) { 2209 // Ignore dbg info intrinsics. 2210 if (isa<DbgInfoIntrinsic>(I)) 2211 return false; 2212 2213 // If the instruction can be easily simplified then do so now in preference 2214 // to value numbering it. Value numbering often exposes redundancies, for 2215 // example if it determines that %y is equal to %x then the instruction 2216 // "%z = and i32 %x, %y" becomes "%z = and i32 %x, %x" which we now simplify. 2217 const DataLayout &DL = I->getModule()->getDataLayout(); 2218 if (Value *V = SimplifyInstruction(I, DL, TLI, DT, AC)) { 2219 I->replaceAllUsesWith(V); 2220 if (MD && V->getType()->getScalarType()->isPointerTy()) 2221 MD->invalidateCachedPointerInfo(V); 2222 markInstructionForDeletion(I); 2223 ++NumGVNSimpl; 2224 return true; 2225 } 2226 2227 if (LoadInst *LI = dyn_cast<LoadInst>(I)) { 2228 if (processLoad(LI)) 2229 return true; 2230 2231 unsigned Num = VN.lookup_or_add(LI); 2232 addToLeaderTable(Num, LI, LI->getParent()); 2233 return false; 2234 } 2235 2236 // For conditional branches, we can perform simple conditional propagation on 2237 // the condition value itself. 2238 if (BranchInst *BI = dyn_cast<BranchInst>(I)) { 2239 if (!BI->isConditional()) 2240 return false; 2241 2242 if (isa<Constant>(BI->getCondition())) 2243 return processFoldableCondBr(BI); 2244 2245 Value *BranchCond = BI->getCondition(); 2246 BasicBlock *TrueSucc = BI->getSuccessor(0); 2247 BasicBlock *FalseSucc = BI->getSuccessor(1); 2248 // Avoid multiple edges early. 2249 if (TrueSucc == FalseSucc) 2250 return false; 2251 2252 BasicBlock *Parent = BI->getParent(); 2253 bool Changed = false; 2254 2255 Value *TrueVal = ConstantInt::getTrue(TrueSucc->getContext()); 2256 BasicBlockEdge TrueE(Parent, TrueSucc); 2257 Changed |= propagateEquality(BranchCond, TrueVal, TrueE); 2258 2259 Value *FalseVal = ConstantInt::getFalse(FalseSucc->getContext()); 2260 BasicBlockEdge FalseE(Parent, FalseSucc); 2261 Changed |= propagateEquality(BranchCond, FalseVal, FalseE); 2262 2263 return Changed; 2264 } 2265 2266 // For switches, propagate the case values into the case destinations. 2267 if (SwitchInst *SI = dyn_cast<SwitchInst>(I)) { 2268 Value *SwitchCond = SI->getCondition(); 2269 BasicBlock *Parent = SI->getParent(); 2270 bool Changed = false; 2271 2272 // Remember how many outgoing edges there are to every successor. 2273 SmallDenseMap<BasicBlock *, unsigned, 16> SwitchEdges; 2274 for (unsigned i = 0, n = SI->getNumSuccessors(); i != n; ++i) 2275 ++SwitchEdges[SI->getSuccessor(i)]; 2276 2277 for (SwitchInst::CaseIt i = SI->case_begin(), e = SI->case_end(); 2278 i != e; ++i) { 2279 BasicBlock *Dst = i.getCaseSuccessor(); 2280 // If there is only a single edge, propagate the case value into it. 2281 if (SwitchEdges.lookup(Dst) == 1) { 2282 BasicBlockEdge E(Parent, Dst); 2283 Changed |= propagateEquality(SwitchCond, i.getCaseValue(), E); 2284 } 2285 } 2286 return Changed; 2287 } 2288 2289 // Instructions with void type don't return a value, so there's 2290 // no point in trying to find redundancies in them. 2291 if (I->getType()->isVoidTy()) return false; 2292 2293 uint32_t NextNum = VN.getNextUnusedValueNumber(); 2294 unsigned Num = VN.lookup_or_add(I); 2295 2296 // Allocations are always uniquely numbered, so we can save time and memory 2297 // by fast failing them. 2298 if (isa<AllocaInst>(I) || isa<TerminatorInst>(I) || isa<PHINode>(I)) { 2299 addToLeaderTable(Num, I, I->getParent()); 2300 return false; 2301 } 2302 2303 // If the number we were assigned was a brand new VN, then we don't 2304 // need to do a lookup to see if the number already exists 2305 // somewhere in the domtree: it can't! 2306 if (Num >= NextNum) { 2307 addToLeaderTable(Num, I, I->getParent()); 2308 return false; 2309 } 2310 2311 // Perform fast-path value-number based elimination of values inherited from 2312 // dominators. 2313 Value *repl = findLeader(I->getParent(), Num); 2314 if (!repl) { 2315 // Failure, just remember this instance for future use. 2316 addToLeaderTable(Num, I, I->getParent()); 2317 return false; 2318 } 2319 2320 // Remove it! 2321 patchAndReplaceAllUsesWith(I, repl); 2322 if (MD && repl->getType()->getScalarType()->isPointerTy()) 2323 MD->invalidateCachedPointerInfo(repl); 2324 markInstructionForDeletion(I); 2325 return true; 2326 } 2327 2328 /// runOnFunction - This is the main transformation entry point for a function. 2329 bool GVN::runOnFunction(Function& F) { 2330 if (skipOptnoneFunction(F)) 2331 return false; 2332 2333 if (!NoLoads) 2334 MD = &getAnalysis<MemoryDependenceAnalysis>(); 2335 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree(); 2336 AC = &getAnalysis<AssumptionCacheTracker>().getAssumptionCache(F); 2337 TLI = &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(); 2338 VN.setAliasAnalysis(&getAnalysis<AliasAnalysis>()); 2339 VN.setMemDep(MD); 2340 VN.setDomTree(DT); 2341 2342 bool Changed = false; 2343 bool ShouldContinue = true; 2344 2345 // Merge unconditional branches, allowing PRE to catch more 2346 // optimization opportunities. 2347 for (Function::iterator FI = F.begin(), FE = F.end(); FI != FE; ) { 2348 BasicBlock *BB = FI++; 2349 2350 bool removedBlock = MergeBlockIntoPredecessor( 2351 BB, DT, /* LoopInfo */ nullptr, VN.getAliasAnalysis(), MD); 2352 if (removedBlock) ++NumGVNBlocks; 2353 2354 Changed |= removedBlock; 2355 } 2356 2357 unsigned Iteration = 0; 2358 while (ShouldContinue) { 2359 DEBUG(dbgs() << "GVN iteration: " << Iteration << "\n"); 2360 ShouldContinue = iterateOnFunction(F); 2361 Changed |= ShouldContinue; 2362 ++Iteration; 2363 } 2364 2365 if (EnablePRE) { 2366 // Fabricate val-num for dead-code in order to suppress assertion in 2367 // performPRE(). 2368 assignValNumForDeadCode(); 2369 bool PREChanged = true; 2370 while (PREChanged) { 2371 PREChanged = performPRE(F); 2372 Changed |= PREChanged; 2373 } 2374 } 2375 2376 // FIXME: Should perform GVN again after PRE does something. PRE can move 2377 // computations into blocks where they become fully redundant. Note that 2378 // we can't do this until PRE's critical edge splitting updates memdep. 2379 // Actually, when this happens, we should just fully integrate PRE into GVN. 2380 2381 cleanupGlobalSets(); 2382 // Do not cleanup DeadBlocks in cleanupGlobalSets() as it's called for each 2383 // iteration. 2384 DeadBlocks.clear(); 2385 2386 return Changed; 2387 } 2388 2389 2390 bool GVN::processBlock(BasicBlock *BB) { 2391 // FIXME: Kill off InstrsToErase by doing erasing eagerly in a helper function 2392 // (and incrementing BI before processing an instruction). 2393 assert(InstrsToErase.empty() && 2394 "We expect InstrsToErase to be empty across iterations"); 2395 if (DeadBlocks.count(BB)) 2396 return false; 2397 2398 bool ChangedFunction = false; 2399 2400 for (BasicBlock::iterator BI = BB->begin(), BE = BB->end(); 2401 BI != BE;) { 2402 ChangedFunction |= processInstruction(BI); 2403 if (InstrsToErase.empty()) { 2404 ++BI; 2405 continue; 2406 } 2407 2408 // If we need some instructions deleted, do it now. 2409 NumGVNInstr += InstrsToErase.size(); 2410 2411 // Avoid iterator invalidation. 2412 bool AtStart = BI == BB->begin(); 2413 if (!AtStart) 2414 --BI; 2415 2416 for (SmallVectorImpl<Instruction *>::iterator I = InstrsToErase.begin(), 2417 E = InstrsToErase.end(); I != E; ++I) { 2418 DEBUG(dbgs() << "GVN removed: " << **I << '\n'); 2419 if (MD) MD->removeInstruction(*I); 2420 DEBUG(verifyRemoved(*I)); 2421 (*I)->eraseFromParent(); 2422 } 2423 InstrsToErase.clear(); 2424 2425 if (AtStart) 2426 BI = BB->begin(); 2427 else 2428 ++BI; 2429 } 2430 2431 return ChangedFunction; 2432 } 2433 2434 // Instantiate an expression in a predecessor that lacked it. 2435 bool GVN::performScalarPREInsertion(Instruction *Instr, BasicBlock *Pred, 2436 unsigned int ValNo) { 2437 // Because we are going top-down through the block, all value numbers 2438 // will be available in the predecessor by the time we need them. Any 2439 // that weren't originally present will have been instantiated earlier 2440 // in this loop. 2441 bool success = true; 2442 for (unsigned i = 0, e = Instr->getNumOperands(); i != e; ++i) { 2443 Value *Op = Instr->getOperand(i); 2444 if (isa<Argument>(Op) || isa<Constant>(Op) || isa<GlobalValue>(Op)) 2445 continue; 2446 2447 if (Value *V = findLeader(Pred, VN.lookup(Op))) { 2448 Instr->setOperand(i, V); 2449 } else { 2450 success = false; 2451 break; 2452 } 2453 } 2454 2455 // Fail out if we encounter an operand that is not available in 2456 // the PRE predecessor. This is typically because of loads which 2457 // are not value numbered precisely. 2458 if (!success) 2459 return false; 2460 2461 Instr->insertBefore(Pred->getTerminator()); 2462 Instr->setName(Instr->getName() + ".pre"); 2463 Instr->setDebugLoc(Instr->getDebugLoc()); 2464 VN.add(Instr, ValNo); 2465 2466 // Update the availability map to include the new instruction. 2467 addToLeaderTable(ValNo, Instr, Pred); 2468 return true; 2469 } 2470 2471 bool GVN::performScalarPRE(Instruction *CurInst) { 2472 SmallVector<std::pair<Value*, BasicBlock*>, 8> predMap; 2473 2474 if (isa<AllocaInst>(CurInst) || isa<TerminatorInst>(CurInst) || 2475 isa<PHINode>(CurInst) || CurInst->getType()->isVoidTy() || 2476 CurInst->mayReadFromMemory() || CurInst->mayHaveSideEffects() || 2477 isa<DbgInfoIntrinsic>(CurInst)) 2478 return false; 2479 2480 // Don't do PRE on compares. The PHI would prevent CodeGenPrepare from 2481 // sinking the compare again, and it would force the code generator to 2482 // move the i1 from processor flags or predicate registers into a general 2483 // purpose register. 2484 if (isa<CmpInst>(CurInst)) 2485 return false; 2486 2487 // We don't currently value number ANY inline asm calls. 2488 if (CallInst *CallI = dyn_cast<CallInst>(CurInst)) 2489 if (CallI->isInlineAsm()) 2490 return false; 2491 2492 uint32_t ValNo = VN.lookup(CurInst); 2493 2494 // Look for the predecessors for PRE opportunities. We're 2495 // only trying to solve the basic diamond case, where 2496 // a value is computed in the successor and one predecessor, 2497 // but not the other. We also explicitly disallow cases 2498 // where the successor is its own predecessor, because they're 2499 // more complicated to get right. 2500 unsigned NumWith = 0; 2501 unsigned NumWithout = 0; 2502 BasicBlock *PREPred = nullptr; 2503 BasicBlock *CurrentBlock = CurInst->getParent(); 2504 predMap.clear(); 2505 2506 for (pred_iterator PI = pred_begin(CurrentBlock), PE = pred_end(CurrentBlock); 2507 PI != PE; ++PI) { 2508 BasicBlock *P = *PI; 2509 // We're not interested in PRE where the block is its 2510 // own predecessor, or in blocks with predecessors 2511 // that are not reachable. 2512 if (P == CurrentBlock) { 2513 NumWithout = 2; 2514 break; 2515 } else if (!DT->isReachableFromEntry(P)) { 2516 NumWithout = 2; 2517 break; 2518 } 2519 2520 Value *predV = findLeader(P, ValNo); 2521 if (!predV) { 2522 predMap.push_back(std::make_pair(static_cast<Value *>(nullptr), P)); 2523 PREPred = P; 2524 ++NumWithout; 2525 } else if (predV == CurInst) { 2526 /* CurInst dominates this predecessor. */ 2527 NumWithout = 2; 2528 break; 2529 } else { 2530 predMap.push_back(std::make_pair(predV, P)); 2531 ++NumWith; 2532 } 2533 } 2534 2535 // Don't do PRE when it might increase code size, i.e. when 2536 // we would need to insert instructions in more than one pred. 2537 if (NumWithout > 1 || NumWith == 0) 2538 return false; 2539 2540 // We may have a case where all predecessors have the instruction, 2541 // and we just need to insert a phi node. Otherwise, perform 2542 // insertion. 2543 Instruction *PREInstr = nullptr; 2544 2545 if (NumWithout != 0) { 2546 // Don't do PRE across indirect branch. 2547 if (isa<IndirectBrInst>(PREPred->getTerminator())) 2548 return false; 2549 2550 // We can't do PRE safely on a critical edge, so instead we schedule 2551 // the edge to be split and perform the PRE the next time we iterate 2552 // on the function. 2553 unsigned SuccNum = GetSuccessorNumber(PREPred, CurrentBlock); 2554 if (isCriticalEdge(PREPred->getTerminator(), SuccNum)) { 2555 toSplit.push_back(std::make_pair(PREPred->getTerminator(), SuccNum)); 2556 return false; 2557 } 2558 // We need to insert somewhere, so let's give it a shot 2559 PREInstr = CurInst->clone(); 2560 if (!performScalarPREInsertion(PREInstr, PREPred, ValNo)) { 2561 // If we failed insertion, make sure we remove the instruction. 2562 DEBUG(verifyRemoved(PREInstr)); 2563 delete PREInstr; 2564 return false; 2565 } 2566 } 2567 2568 // Either we should have filled in the PRE instruction, or we should 2569 // not have needed insertions. 2570 assert (PREInstr != nullptr || NumWithout == 0); 2571 2572 ++NumGVNPRE; 2573 2574 // Create a PHI to make the value available in this block. 2575 PHINode *Phi = 2576 PHINode::Create(CurInst->getType(), predMap.size(), 2577 CurInst->getName() + ".pre-phi", CurrentBlock->begin()); 2578 for (unsigned i = 0, e = predMap.size(); i != e; ++i) { 2579 if (Value *V = predMap[i].first) 2580 Phi->addIncoming(V, predMap[i].second); 2581 else 2582 Phi->addIncoming(PREInstr, PREPred); 2583 } 2584 2585 VN.add(Phi, ValNo); 2586 addToLeaderTable(ValNo, Phi, CurrentBlock); 2587 Phi->setDebugLoc(CurInst->getDebugLoc()); 2588 CurInst->replaceAllUsesWith(Phi); 2589 if (Phi->getType()->getScalarType()->isPointerTy()) { 2590 // Because we have added a PHI-use of the pointer value, it has now 2591 // "escaped" from alias analysis' perspective. We need to inform 2592 // AA of this. 2593 for (unsigned ii = 0, ee = Phi->getNumIncomingValues(); ii != ee; ++ii) { 2594 unsigned jj = PHINode::getOperandNumForIncomingValue(ii); 2595 VN.getAliasAnalysis()->addEscapingUse(Phi->getOperandUse(jj)); 2596 } 2597 2598 if (MD) 2599 MD->invalidateCachedPointerInfo(Phi); 2600 } 2601 VN.erase(CurInst); 2602 removeFromLeaderTable(ValNo, CurInst, CurrentBlock); 2603 2604 DEBUG(dbgs() << "GVN PRE removed: " << *CurInst << '\n'); 2605 if (MD) 2606 MD->removeInstruction(CurInst); 2607 DEBUG(verifyRemoved(CurInst)); 2608 CurInst->eraseFromParent(); 2609 ++NumGVNInstr; 2610 2611 return true; 2612 } 2613 2614 /// Perform a purely local form of PRE that looks for diamond 2615 /// control flow patterns and attempts to perform simple PRE at the join point. 2616 bool GVN::performPRE(Function &F) { 2617 bool Changed = false; 2618 for (BasicBlock *CurrentBlock : depth_first(&F.getEntryBlock())) { 2619 // Nothing to PRE in the entry block. 2620 if (CurrentBlock == &F.getEntryBlock()) 2621 continue; 2622 2623 // Don't perform PRE on a landing pad. 2624 if (CurrentBlock->isLandingPad()) 2625 continue; 2626 2627 for (BasicBlock::iterator BI = CurrentBlock->begin(), 2628 BE = CurrentBlock->end(); 2629 BI != BE;) { 2630 Instruction *CurInst = BI++; 2631 Changed = performScalarPRE(CurInst); 2632 } 2633 } 2634 2635 if (splitCriticalEdges()) 2636 Changed = true; 2637 2638 return Changed; 2639 } 2640 2641 /// Split the critical edge connecting the given two blocks, and return 2642 /// the block inserted to the critical edge. 2643 BasicBlock *GVN::splitCriticalEdges(BasicBlock *Pred, BasicBlock *Succ) { 2644 BasicBlock *BB = SplitCriticalEdge( 2645 Pred, Succ, CriticalEdgeSplittingOptions(getAliasAnalysis(), DT)); 2646 if (MD) 2647 MD->invalidateCachedPredecessors(); 2648 return BB; 2649 } 2650 2651 /// Split critical edges found during the previous 2652 /// iteration that may enable further optimization. 2653 bool GVN::splitCriticalEdges() { 2654 if (toSplit.empty()) 2655 return false; 2656 do { 2657 std::pair<TerminatorInst*, unsigned> Edge = toSplit.pop_back_val(); 2658 SplitCriticalEdge(Edge.first, Edge.second, 2659 CriticalEdgeSplittingOptions(getAliasAnalysis(), DT)); 2660 } while (!toSplit.empty()); 2661 if (MD) MD->invalidateCachedPredecessors(); 2662 return true; 2663 } 2664 2665 /// Executes one iteration of GVN 2666 bool GVN::iterateOnFunction(Function &F) { 2667 cleanupGlobalSets(); 2668 2669 // Top-down walk of the dominator tree 2670 bool Changed = false; 2671 // Save the blocks this function have before transformation begins. GVN may 2672 // split critical edge, and hence may invalidate the RPO/DT iterator. 2673 // 2674 std::vector<BasicBlock *> BBVect; 2675 BBVect.reserve(256); 2676 // Needed for value numbering with phi construction to work. 2677 ReversePostOrderTraversal<Function *> RPOT(&F); 2678 for (ReversePostOrderTraversal<Function *>::rpo_iterator RI = RPOT.begin(), 2679 RE = RPOT.end(); 2680 RI != RE; ++RI) 2681 BBVect.push_back(*RI); 2682 2683 for (std::vector<BasicBlock *>::iterator I = BBVect.begin(), E = BBVect.end(); 2684 I != E; I++) 2685 Changed |= processBlock(*I); 2686 2687 return Changed; 2688 } 2689 2690 void GVN::cleanupGlobalSets() { 2691 VN.clear(); 2692 LeaderTable.clear(); 2693 TableAllocator.Reset(); 2694 } 2695 2696 /// Verify that the specified instruction does not occur in our 2697 /// internal data structures. 2698 void GVN::verifyRemoved(const Instruction *Inst) const { 2699 VN.verifyRemoved(Inst); 2700 2701 // Walk through the value number scope to make sure the instruction isn't 2702 // ferreted away in it. 2703 for (DenseMap<uint32_t, LeaderTableEntry>::const_iterator 2704 I = LeaderTable.begin(), E = LeaderTable.end(); I != E; ++I) { 2705 const LeaderTableEntry *Node = &I->second; 2706 assert(Node->Val != Inst && "Inst still in value numbering scope!"); 2707 2708 while (Node->Next) { 2709 Node = Node->Next; 2710 assert(Node->Val != Inst && "Inst still in value numbering scope!"); 2711 } 2712 } 2713 } 2714 2715 /// BB is declared dead, which implied other blocks become dead as well. This 2716 /// function is to add all these blocks to "DeadBlocks". For the dead blocks' 2717 /// live successors, update their phi nodes by replacing the operands 2718 /// corresponding to dead blocks with UndefVal. 2719 void GVN::addDeadBlock(BasicBlock *BB) { 2720 SmallVector<BasicBlock *, 4> NewDead; 2721 SmallSetVector<BasicBlock *, 4> DF; 2722 2723 NewDead.push_back(BB); 2724 while (!NewDead.empty()) { 2725 BasicBlock *D = NewDead.pop_back_val(); 2726 if (DeadBlocks.count(D)) 2727 continue; 2728 2729 // All blocks dominated by D are dead. 2730 SmallVector<BasicBlock *, 8> Dom; 2731 DT->getDescendants(D, Dom); 2732 DeadBlocks.insert(Dom.begin(), Dom.end()); 2733 2734 // Figure out the dominance-frontier(D). 2735 for (SmallVectorImpl<BasicBlock *>::iterator I = Dom.begin(), 2736 E = Dom.end(); I != E; I++) { 2737 BasicBlock *B = *I; 2738 for (succ_iterator SI = succ_begin(B), SE = succ_end(B); SI != SE; SI++) { 2739 BasicBlock *S = *SI; 2740 if (DeadBlocks.count(S)) 2741 continue; 2742 2743 bool AllPredDead = true; 2744 for (pred_iterator PI = pred_begin(S), PE = pred_end(S); PI != PE; PI++) 2745 if (!DeadBlocks.count(*PI)) { 2746 AllPredDead = false; 2747 break; 2748 } 2749 2750 if (!AllPredDead) { 2751 // S could be proved dead later on. That is why we don't update phi 2752 // operands at this moment. 2753 DF.insert(S); 2754 } else { 2755 // While S is not dominated by D, it is dead by now. This could take 2756 // place if S already have a dead predecessor before D is declared 2757 // dead. 2758 NewDead.push_back(S); 2759 } 2760 } 2761 } 2762 } 2763 2764 // For the dead blocks' live successors, update their phi nodes by replacing 2765 // the operands corresponding to dead blocks with UndefVal. 2766 for(SmallSetVector<BasicBlock *, 4>::iterator I = DF.begin(), E = DF.end(); 2767 I != E; I++) { 2768 BasicBlock *B = *I; 2769 if (DeadBlocks.count(B)) 2770 continue; 2771 2772 SmallVector<BasicBlock *, 4> Preds(pred_begin(B), pred_end(B)); 2773 for (SmallVectorImpl<BasicBlock *>::iterator PI = Preds.begin(), 2774 PE = Preds.end(); PI != PE; PI++) { 2775 BasicBlock *P = *PI; 2776 2777 if (!DeadBlocks.count(P)) 2778 continue; 2779 2780 if (isCriticalEdge(P->getTerminator(), GetSuccessorNumber(P, B))) { 2781 if (BasicBlock *S = splitCriticalEdges(P, B)) 2782 DeadBlocks.insert(P = S); 2783 } 2784 2785 for (BasicBlock::iterator II = B->begin(); isa<PHINode>(II); ++II) { 2786 PHINode &Phi = cast<PHINode>(*II); 2787 Phi.setIncomingValue(Phi.getBasicBlockIndex(P), 2788 UndefValue::get(Phi.getType())); 2789 } 2790 } 2791 } 2792 } 2793 2794 // If the given branch is recognized as a foldable branch (i.e. conditional 2795 // branch with constant condition), it will perform following analyses and 2796 // transformation. 2797 // 1) If the dead out-coming edge is a critical-edge, split it. Let 2798 // R be the target of the dead out-coming edge. 2799 // 1) Identify the set of dead blocks implied by the branch's dead outcoming 2800 // edge. The result of this step will be {X| X is dominated by R} 2801 // 2) Identify those blocks which haves at least one dead prodecessor. The 2802 // result of this step will be dominance-frontier(R). 2803 // 3) Update the PHIs in DF(R) by replacing the operands corresponding to 2804 // dead blocks with "UndefVal" in an hope these PHIs will optimized away. 2805 // 2806 // Return true iff *NEW* dead code are found. 2807 bool GVN::processFoldableCondBr(BranchInst *BI) { 2808 if (!BI || BI->isUnconditional()) 2809 return false; 2810 2811 ConstantInt *Cond = dyn_cast<ConstantInt>(BI->getCondition()); 2812 if (!Cond) 2813 return false; 2814 2815 BasicBlock *DeadRoot = Cond->getZExtValue() ? 2816 BI->getSuccessor(1) : BI->getSuccessor(0); 2817 if (DeadBlocks.count(DeadRoot)) 2818 return false; 2819 2820 if (!DeadRoot->getSinglePredecessor()) 2821 DeadRoot = splitCriticalEdges(BI->getParent(), DeadRoot); 2822 2823 addDeadBlock(DeadRoot); 2824 return true; 2825 } 2826 2827 // performPRE() will trigger assert if it comes across an instruction without 2828 // associated val-num. As it normally has far more live instructions than dead 2829 // instructions, it makes more sense just to "fabricate" a val-number for the 2830 // dead code than checking if instruction involved is dead or not. 2831 void GVN::assignValNumForDeadCode() { 2832 for (SetVector<BasicBlock *>::iterator I = DeadBlocks.begin(), 2833 E = DeadBlocks.end(); I != E; I++) { 2834 BasicBlock *BB = *I; 2835 for (BasicBlock::iterator II = BB->begin(), EE = BB->end(); 2836 II != EE; II++) { 2837 Instruction *Inst = &*II; 2838 unsigned ValNum = VN.lookup_or_add(Inst); 2839 addToLeaderTable(ValNum, Inst, BB); 2840 } 2841 } 2842 } 2843