1 //===- NewGVN.cpp - Global Value Numbering Pass ---------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 /// \file 10 /// This file implements the new LLVM's Global Value Numbering pass. 11 /// GVN partitions values computed by a function into congruence classes. 12 /// Values ending up in the same congruence class are guaranteed to be the same 13 /// for every execution of the program. In that respect, congruency is a 14 /// compile-time approximation of equivalence of values at runtime. 15 /// The algorithm implemented here uses a sparse formulation and it's based 16 /// on the ideas described in the paper: 17 /// "A Sparse Algorithm for Predicated Global Value Numbering" from 18 /// Karthik Gargi. 19 /// 20 /// A brief overview of the algorithm: The algorithm is essentially the same as 21 /// the standard RPO value numbering algorithm (a good reference is the paper 22 /// "SCC based value numbering" by L. Taylor Simpson) with one major difference: 23 /// The RPO algorithm proceeds, on every iteration, to process every reachable 24 /// block and every instruction in that block. This is because the standard RPO 25 /// algorithm does not track what things have the same value number, it only 26 /// tracks what the value number of a given operation is (the mapping is 27 /// operation -> value number). Thus, when a value number of an operation 28 /// changes, it must reprocess everything to ensure all uses of a value number 29 /// get updated properly. In constrast, the sparse algorithm we use *also* 30 /// tracks what operations have a given value number (IE it also tracks the 31 /// reverse mapping from value number -> operations with that value number), so 32 /// that it only needs to reprocess the instructions that are affected when 33 /// something's value number changes. The vast majority of complexity and code 34 /// in this file is devoted to tracking what value numbers could change for what 35 /// instructions when various things happen. The rest of the algorithm is 36 /// devoted to performing symbolic evaluation, forward propagation, and 37 /// simplification of operations based on the value numbers deduced so far 38 /// 39 /// In order to make the GVN mostly-complete, we use a technique derived from 40 /// "Detection of Redundant Expressions: A Complete and Polynomial-time 41 /// Algorithm in SSA" by R.R. Pai. The source of incompleteness in most SSA 42 /// based GVN algorithms is related to their inability to detect equivalence 43 /// between phi of ops (IE phi(a+b, c+d)) and op of phis (phi(a,c) + phi(b, d)). 44 /// We resolve this issue by generating the equivalent "phi of ops" form for 45 /// each op of phis we see, in a way that only takes polynomial time to resolve. 46 /// 47 /// We also do not perform elimination by using any published algorithm. All 48 /// published algorithms are O(Instructions). Instead, we use a technique that 49 /// is O(number of operations with the same value number), enabling us to skip 50 /// trying to eliminate things that have unique value numbers. 51 // 52 //===----------------------------------------------------------------------===// 53 54 #include "llvm/Transforms/Scalar/NewGVN.h" 55 #include "llvm/ADT/ArrayRef.h" 56 #include "llvm/ADT/BitVector.h" 57 #include "llvm/ADT/DenseMap.h" 58 #include "llvm/ADT/DenseMapInfo.h" 59 #include "llvm/ADT/DenseSet.h" 60 #include "llvm/ADT/DepthFirstIterator.h" 61 #include "llvm/ADT/GraphTraits.h" 62 #include "llvm/ADT/Hashing.h" 63 #include "llvm/ADT/PointerIntPair.h" 64 #include "llvm/ADT/PostOrderIterator.h" 65 #include "llvm/ADT/SetOperations.h" 66 #include "llvm/ADT/SmallPtrSet.h" 67 #include "llvm/ADT/SmallVector.h" 68 #include "llvm/ADT/SparseBitVector.h" 69 #include "llvm/ADT/Statistic.h" 70 #include "llvm/ADT/iterator_range.h" 71 #include "llvm/Analysis/AliasAnalysis.h" 72 #include "llvm/Analysis/AssumptionCache.h" 73 #include "llvm/Analysis/CFGPrinter.h" 74 #include "llvm/Analysis/ConstantFolding.h" 75 #include "llvm/Analysis/GlobalsModRef.h" 76 #include "llvm/Analysis/InstructionSimplify.h" 77 #include "llvm/Analysis/MemoryBuiltins.h" 78 #include "llvm/Analysis/MemorySSA.h" 79 #include "llvm/Analysis/TargetLibraryInfo.h" 80 #include "llvm/Analysis/ValueTracking.h" 81 #include "llvm/IR/Argument.h" 82 #include "llvm/IR/BasicBlock.h" 83 #include "llvm/IR/Constant.h" 84 #include "llvm/IR/Constants.h" 85 #include "llvm/IR/Dominators.h" 86 #include "llvm/IR/Function.h" 87 #include "llvm/IR/InstrTypes.h" 88 #include "llvm/IR/Instruction.h" 89 #include "llvm/IR/Instructions.h" 90 #include "llvm/IR/IntrinsicInst.h" 91 #include "llvm/IR/PatternMatch.h" 92 #include "llvm/IR/Type.h" 93 #include "llvm/IR/Use.h" 94 #include "llvm/IR/User.h" 95 #include "llvm/IR/Value.h" 96 #include "llvm/InitializePasses.h" 97 #include "llvm/Pass.h" 98 #include "llvm/Support/Allocator.h" 99 #include "llvm/Support/ArrayRecycler.h" 100 #include "llvm/Support/Casting.h" 101 #include "llvm/Support/CommandLine.h" 102 #include "llvm/Support/Debug.h" 103 #include "llvm/Support/DebugCounter.h" 104 #include "llvm/Support/ErrorHandling.h" 105 #include "llvm/Support/PointerLikeTypeTraits.h" 106 #include "llvm/Support/raw_ostream.h" 107 #include "llvm/Transforms/Scalar.h" 108 #include "llvm/Transforms/Scalar/GVNExpression.h" 109 #include "llvm/Transforms/Utils/AssumeBundleBuilder.h" 110 #include "llvm/Transforms/Utils/Local.h" 111 #include "llvm/Transforms/Utils/PredicateInfo.h" 112 #include "llvm/Transforms/Utils/VNCoercion.h" 113 #include <algorithm> 114 #include <cassert> 115 #include <cstdint> 116 #include <iterator> 117 #include <map> 118 #include <memory> 119 #include <set> 120 #include <string> 121 #include <tuple> 122 #include <utility> 123 #include <vector> 124 125 using namespace llvm; 126 using namespace llvm::GVNExpression; 127 using namespace llvm::VNCoercion; 128 using namespace llvm::PatternMatch; 129 130 #define DEBUG_TYPE "newgvn" 131 132 STATISTIC(NumGVNInstrDeleted, "Number of instructions deleted"); 133 STATISTIC(NumGVNBlocksDeleted, "Number of blocks deleted"); 134 STATISTIC(NumGVNOpsSimplified, "Number of Expressions simplified"); 135 STATISTIC(NumGVNPhisAllSame, "Number of PHIs whos arguments are all the same"); 136 STATISTIC(NumGVNMaxIterations, 137 "Maximum Number of iterations it took to converge GVN"); 138 STATISTIC(NumGVNLeaderChanges, "Number of leader changes"); 139 STATISTIC(NumGVNSortedLeaderChanges, "Number of sorted leader changes"); 140 STATISTIC(NumGVNAvoidedSortedLeaderChanges, 141 "Number of avoided sorted leader changes"); 142 STATISTIC(NumGVNDeadStores, "Number of redundant/dead stores eliminated"); 143 STATISTIC(NumGVNPHIOfOpsCreated, "Number of PHI of ops created"); 144 STATISTIC(NumGVNPHIOfOpsEliminations, 145 "Number of things eliminated using PHI of ops"); 146 DEBUG_COUNTER(VNCounter, "newgvn-vn", 147 "Controls which instructions are value numbered"); 148 DEBUG_COUNTER(PHIOfOpsCounter, "newgvn-phi", 149 "Controls which instructions we create phi of ops for"); 150 // Currently store defining access refinement is too slow due to basicaa being 151 // egregiously slow. This flag lets us keep it working while we work on this 152 // issue. 153 static cl::opt<bool> EnableStoreRefinement("enable-store-refinement", 154 cl::init(false), cl::Hidden); 155 156 /// Currently, the generation "phi of ops" can result in correctness issues. 157 static cl::opt<bool> EnablePhiOfOps("enable-phi-of-ops", cl::init(true), 158 cl::Hidden); 159 160 //===----------------------------------------------------------------------===// 161 // GVN Pass 162 //===----------------------------------------------------------------------===// 163 164 // Anchor methods. 165 namespace llvm { 166 namespace GVNExpression { 167 168 Expression::~Expression() = default; 169 BasicExpression::~BasicExpression() = default; 170 CallExpression::~CallExpression() = default; 171 LoadExpression::~LoadExpression() = default; 172 StoreExpression::~StoreExpression() = default; 173 AggregateValueExpression::~AggregateValueExpression() = default; 174 PHIExpression::~PHIExpression() = default; 175 176 } // end namespace GVNExpression 177 } // end namespace llvm 178 179 namespace { 180 181 // Tarjan's SCC finding algorithm with Nuutila's improvements 182 // SCCIterator is actually fairly complex for the simple thing we want. 183 // It also wants to hand us SCC's that are unrelated to the phi node we ask 184 // about, and have us process them there or risk redoing work. 185 // Graph traits over a filter iterator also doesn't work that well here. 186 // This SCC finder is specialized to walk use-def chains, and only follows 187 // instructions, 188 // not generic values (arguments, etc). 189 struct TarjanSCC { 190 TarjanSCC() : Components(1) {} 191 192 void Start(const Instruction *Start) { 193 if (Root.lookup(Start) == 0) 194 FindSCC(Start); 195 } 196 197 const SmallPtrSetImpl<const Value *> &getComponentFor(const Value *V) const { 198 unsigned ComponentID = ValueToComponent.lookup(V); 199 200 assert(ComponentID > 0 && 201 "Asking for a component for a value we never processed"); 202 return Components[ComponentID]; 203 } 204 205 private: 206 void FindSCC(const Instruction *I) { 207 Root[I] = ++DFSNum; 208 // Store the DFS Number we had before it possibly gets incremented. 209 unsigned int OurDFS = DFSNum; 210 for (auto &Op : I->operands()) { 211 if (auto *InstOp = dyn_cast<Instruction>(Op)) { 212 if (Root.lookup(Op) == 0) 213 FindSCC(InstOp); 214 if (!InComponent.count(Op)) 215 Root[I] = std::min(Root.lookup(I), Root.lookup(Op)); 216 } 217 } 218 // See if we really were the root of a component, by seeing if we still have 219 // our DFSNumber. If we do, we are the root of the component, and we have 220 // completed a component. If we do not, we are not the root of a component, 221 // and belong on the component stack. 222 if (Root.lookup(I) == OurDFS) { 223 unsigned ComponentID = Components.size(); 224 Components.resize(Components.size() + 1); 225 auto &Component = Components.back(); 226 Component.insert(I); 227 LLVM_DEBUG(dbgs() << "Component root is " << *I << "\n"); 228 InComponent.insert(I); 229 ValueToComponent[I] = ComponentID; 230 // Pop a component off the stack and label it. 231 while (!Stack.empty() && Root.lookup(Stack.back()) >= OurDFS) { 232 auto *Member = Stack.back(); 233 LLVM_DEBUG(dbgs() << "Component member is " << *Member << "\n"); 234 Component.insert(Member); 235 InComponent.insert(Member); 236 ValueToComponent[Member] = ComponentID; 237 Stack.pop_back(); 238 } 239 } else { 240 // Part of a component, push to stack 241 Stack.push_back(I); 242 } 243 } 244 245 unsigned int DFSNum = 1; 246 SmallPtrSet<const Value *, 8> InComponent; 247 DenseMap<const Value *, unsigned int> Root; 248 SmallVector<const Value *, 8> Stack; 249 250 // Store the components as vector of ptr sets, because we need the topo order 251 // of SCC's, but not individual member order 252 SmallVector<SmallPtrSet<const Value *, 8>, 8> Components; 253 254 DenseMap<const Value *, unsigned> ValueToComponent; 255 }; 256 257 // Congruence classes represent the set of expressions/instructions 258 // that are all the same *during some scope in the function*. 259 // That is, because of the way we perform equality propagation, and 260 // because of memory value numbering, it is not correct to assume 261 // you can willy-nilly replace any member with any other at any 262 // point in the function. 263 // 264 // For any Value in the Member set, it is valid to replace any dominated member 265 // with that Value. 266 // 267 // Every congruence class has a leader, and the leader is used to symbolize 268 // instructions in a canonical way (IE every operand of an instruction that is a 269 // member of the same congruence class will always be replaced with leader 270 // during symbolization). To simplify symbolization, we keep the leader as a 271 // constant if class can be proved to be a constant value. Otherwise, the 272 // leader is the member of the value set with the smallest DFS number. Each 273 // congruence class also has a defining expression, though the expression may be 274 // null. If it exists, it can be used for forward propagation and reassociation 275 // of values. 276 277 // For memory, we also track a representative MemoryAccess, and a set of memory 278 // members for MemoryPhis (which have no real instructions). Note that for 279 // memory, it seems tempting to try to split the memory members into a 280 // MemoryCongruenceClass or something. Unfortunately, this does not work 281 // easily. The value numbering of a given memory expression depends on the 282 // leader of the memory congruence class, and the leader of memory congruence 283 // class depends on the value numbering of a given memory expression. This 284 // leads to wasted propagation, and in some cases, missed optimization. For 285 // example: If we had value numbered two stores together before, but now do not, 286 // we move them to a new value congruence class. This in turn will move at one 287 // of the memorydefs to a new memory congruence class. Which in turn, affects 288 // the value numbering of the stores we just value numbered (because the memory 289 // congruence class is part of the value number). So while theoretically 290 // possible to split them up, it turns out to be *incredibly* complicated to get 291 // it to work right, because of the interdependency. While structurally 292 // slightly messier, it is algorithmically much simpler and faster to do what we 293 // do here, and track them both at once in the same class. 294 // Note: The default iterators for this class iterate over values 295 class CongruenceClass { 296 public: 297 using MemberType = Value; 298 using MemberSet = SmallPtrSet<MemberType *, 4>; 299 using MemoryMemberType = MemoryPhi; 300 using MemoryMemberSet = SmallPtrSet<const MemoryMemberType *, 2>; 301 302 explicit CongruenceClass(unsigned ID) : ID(ID) {} 303 CongruenceClass(unsigned ID, Value *Leader, const Expression *E) 304 : ID(ID), RepLeader(Leader), DefiningExpr(E) {} 305 306 unsigned getID() const { return ID; } 307 308 // True if this class has no members left. This is mainly used for assertion 309 // purposes, and for skipping empty classes. 310 bool isDead() const { 311 // If it's both dead from a value perspective, and dead from a memory 312 // perspective, it's really dead. 313 return empty() && memory_empty(); 314 } 315 316 // Leader functions 317 Value *getLeader() const { return RepLeader; } 318 void setLeader(Value *Leader) { RepLeader = Leader; } 319 const std::pair<Value *, unsigned int> &getNextLeader() const { 320 return NextLeader; 321 } 322 void resetNextLeader() { NextLeader = {nullptr, ~0}; } 323 void addPossibleNextLeader(std::pair<Value *, unsigned int> LeaderPair) { 324 if (LeaderPair.second < NextLeader.second) 325 NextLeader = LeaderPair; 326 } 327 328 Value *getStoredValue() const { return RepStoredValue; } 329 void setStoredValue(Value *Leader) { RepStoredValue = Leader; } 330 const MemoryAccess *getMemoryLeader() const { return RepMemoryAccess; } 331 void setMemoryLeader(const MemoryAccess *Leader) { RepMemoryAccess = Leader; } 332 333 // Forward propagation info 334 const Expression *getDefiningExpr() const { return DefiningExpr; } 335 336 // Value member set 337 bool empty() const { return Members.empty(); } 338 unsigned size() const { return Members.size(); } 339 MemberSet::const_iterator begin() const { return Members.begin(); } 340 MemberSet::const_iterator end() const { return Members.end(); } 341 void insert(MemberType *M) { Members.insert(M); } 342 void erase(MemberType *M) { Members.erase(M); } 343 void swap(MemberSet &Other) { Members.swap(Other); } 344 345 // Memory member set 346 bool memory_empty() const { return MemoryMembers.empty(); } 347 unsigned memory_size() const { return MemoryMembers.size(); } 348 MemoryMemberSet::const_iterator memory_begin() const { 349 return MemoryMembers.begin(); 350 } 351 MemoryMemberSet::const_iterator memory_end() const { 352 return MemoryMembers.end(); 353 } 354 iterator_range<MemoryMemberSet::const_iterator> memory() const { 355 return make_range(memory_begin(), memory_end()); 356 } 357 358 void memory_insert(const MemoryMemberType *M) { MemoryMembers.insert(M); } 359 void memory_erase(const MemoryMemberType *M) { MemoryMembers.erase(M); } 360 361 // Store count 362 unsigned getStoreCount() const { return StoreCount; } 363 void incStoreCount() { ++StoreCount; } 364 void decStoreCount() { 365 assert(StoreCount != 0 && "Store count went negative"); 366 --StoreCount; 367 } 368 369 // True if this class has no memory members. 370 bool definesNoMemory() const { return StoreCount == 0 && memory_empty(); } 371 372 // Return true if two congruence classes are equivalent to each other. This 373 // means that every field but the ID number and the dead field are equivalent. 374 bool isEquivalentTo(const CongruenceClass *Other) const { 375 if (!Other) 376 return false; 377 if (this == Other) 378 return true; 379 380 if (std::tie(StoreCount, RepLeader, RepStoredValue, RepMemoryAccess) != 381 std::tie(Other->StoreCount, Other->RepLeader, Other->RepStoredValue, 382 Other->RepMemoryAccess)) 383 return false; 384 if (DefiningExpr != Other->DefiningExpr) 385 if (!DefiningExpr || !Other->DefiningExpr || 386 *DefiningExpr != *Other->DefiningExpr) 387 return false; 388 389 if (Members.size() != Other->Members.size()) 390 return false; 391 392 return llvm::set_is_subset(Members, Other->Members); 393 } 394 395 private: 396 unsigned ID; 397 398 // Representative leader. 399 Value *RepLeader = nullptr; 400 401 // The most dominating leader after our current leader, because the member set 402 // is not sorted and is expensive to keep sorted all the time. 403 std::pair<Value *, unsigned int> NextLeader = {nullptr, ~0U}; 404 405 // If this is represented by a store, the value of the store. 406 Value *RepStoredValue = nullptr; 407 408 // If this class contains MemoryDefs or MemoryPhis, this is the leading memory 409 // access. 410 const MemoryAccess *RepMemoryAccess = nullptr; 411 412 // Defining Expression. 413 const Expression *DefiningExpr = nullptr; 414 415 // Actual members of this class. 416 MemberSet Members; 417 418 // This is the set of MemoryPhis that exist in the class. MemoryDefs and 419 // MemoryUses have real instructions representing them, so we only need to 420 // track MemoryPhis here. 421 MemoryMemberSet MemoryMembers; 422 423 // Number of stores in this congruence class. 424 // This is used so we can detect store equivalence changes properly. 425 int StoreCount = 0; 426 }; 427 428 } // end anonymous namespace 429 430 namespace llvm { 431 432 struct ExactEqualsExpression { 433 const Expression &E; 434 435 explicit ExactEqualsExpression(const Expression &E) : E(E) {} 436 437 hash_code getComputedHash() const { return E.getComputedHash(); } 438 439 bool operator==(const Expression &Other) const { 440 return E.exactlyEquals(Other); 441 } 442 }; 443 444 template <> struct DenseMapInfo<const Expression *> { 445 static const Expression *getEmptyKey() { 446 auto Val = static_cast<uintptr_t>(-1); 447 Val <<= PointerLikeTypeTraits<const Expression *>::NumLowBitsAvailable; 448 return reinterpret_cast<const Expression *>(Val); 449 } 450 451 static const Expression *getTombstoneKey() { 452 auto Val = static_cast<uintptr_t>(~1U); 453 Val <<= PointerLikeTypeTraits<const Expression *>::NumLowBitsAvailable; 454 return reinterpret_cast<const Expression *>(Val); 455 } 456 457 static unsigned getHashValue(const Expression *E) { 458 return E->getComputedHash(); 459 } 460 461 static unsigned getHashValue(const ExactEqualsExpression &E) { 462 return E.getComputedHash(); 463 } 464 465 static bool isEqual(const ExactEqualsExpression &LHS, const Expression *RHS) { 466 if (RHS == getTombstoneKey() || RHS == getEmptyKey()) 467 return false; 468 return LHS == *RHS; 469 } 470 471 static bool isEqual(const Expression *LHS, const Expression *RHS) { 472 if (LHS == RHS) 473 return true; 474 if (LHS == getTombstoneKey() || RHS == getTombstoneKey() || 475 LHS == getEmptyKey() || RHS == getEmptyKey()) 476 return false; 477 // Compare hashes before equality. This is *not* what the hashtable does, 478 // since it is computing it modulo the number of buckets, whereas we are 479 // using the full hash keyspace. Since the hashes are precomputed, this 480 // check is *much* faster than equality. 481 if (LHS->getComputedHash() != RHS->getComputedHash()) 482 return false; 483 return *LHS == *RHS; 484 } 485 }; 486 487 } // end namespace llvm 488 489 namespace { 490 491 class NewGVN { 492 Function &F; 493 DominatorTree *DT = nullptr; 494 const TargetLibraryInfo *TLI = nullptr; 495 AliasAnalysis *AA = nullptr; 496 MemorySSA *MSSA = nullptr; 497 MemorySSAWalker *MSSAWalker = nullptr; 498 AssumptionCache *AC = nullptr; 499 const DataLayout &DL; 500 std::unique_ptr<PredicateInfo> PredInfo; 501 502 // These are the only two things the create* functions should have 503 // side-effects on due to allocating memory. 504 mutable BumpPtrAllocator ExpressionAllocator; 505 mutable ArrayRecycler<Value *> ArgRecycler; 506 mutable TarjanSCC SCCFinder; 507 const SimplifyQuery SQ; 508 509 // Number of function arguments, used by ranking 510 unsigned int NumFuncArgs = 0; 511 512 // RPOOrdering of basic blocks 513 DenseMap<const DomTreeNode *, unsigned> RPOOrdering; 514 515 // Congruence class info. 516 517 // This class is called INITIAL in the paper. It is the class everything 518 // startsout in, and represents any value. Being an optimistic analysis, 519 // anything in the TOP class has the value TOP, which is indeterminate and 520 // equivalent to everything. 521 CongruenceClass *TOPClass = nullptr; 522 std::vector<CongruenceClass *> CongruenceClasses; 523 unsigned NextCongruenceNum = 0; 524 525 // Value Mappings. 526 DenseMap<Value *, CongruenceClass *> ValueToClass; 527 DenseMap<Value *, const Expression *> ValueToExpression; 528 529 // Value PHI handling, used to make equivalence between phi(op, op) and 530 // op(phi, phi). 531 // These mappings just store various data that would normally be part of the 532 // IR. 533 SmallPtrSet<const Instruction *, 8> PHINodeUses; 534 535 DenseMap<const Value *, bool> OpSafeForPHIOfOps; 536 537 // Map a temporary instruction we created to a parent block. 538 DenseMap<const Value *, BasicBlock *> TempToBlock; 539 540 // Map between the already in-program instructions and the temporary phis we 541 // created that they are known equivalent to. 542 DenseMap<const Value *, PHINode *> RealToTemp; 543 544 // In order to know when we should re-process instructions that have 545 // phi-of-ops, we track the set of expressions that they needed as 546 // leaders. When we discover new leaders for those expressions, we process the 547 // associated phi-of-op instructions again in case they have changed. The 548 // other way they may change is if they had leaders, and those leaders 549 // disappear. However, at the point they have leaders, there are uses of the 550 // relevant operands in the created phi node, and so they will get reprocessed 551 // through the normal user marking we perform. 552 mutable DenseMap<const Value *, SmallPtrSet<Value *, 2>> AdditionalUsers; 553 DenseMap<const Expression *, SmallPtrSet<Instruction *, 2>> 554 ExpressionToPhiOfOps; 555 556 // Map from temporary operation to MemoryAccess. 557 DenseMap<const Instruction *, MemoryUseOrDef *> TempToMemory; 558 559 // Set of all temporary instructions we created. 560 // Note: This will include instructions that were just created during value 561 // numbering. The way to test if something is using them is to check 562 // RealToTemp. 563 DenseSet<Instruction *> AllTempInstructions; 564 565 // This is the set of instructions to revisit on a reachability change. At 566 // the end of the main iteration loop it will contain at least all the phi of 567 // ops instructions that will be changed to phis, as well as regular phis. 568 // During the iteration loop, it may contain other things, such as phi of ops 569 // instructions that used edge reachability to reach a result, and so need to 570 // be revisited when the edge changes, independent of whether the phi they 571 // depended on changes. 572 DenseMap<BasicBlock *, SparseBitVector<>> RevisitOnReachabilityChange; 573 574 // Mapping from predicate info we used to the instructions we used it with. 575 // In order to correctly ensure propagation, we must keep track of what 576 // comparisons we used, so that when the values of the comparisons change, we 577 // propagate the information to the places we used the comparison. 578 mutable DenseMap<const Value *, SmallPtrSet<Instruction *, 2>> 579 PredicateToUsers; 580 581 // the same reasoning as PredicateToUsers. When we skip MemoryAccesses for 582 // stores, we no longer can rely solely on the def-use chains of MemorySSA. 583 mutable DenseMap<const MemoryAccess *, SmallPtrSet<MemoryAccess *, 2>> 584 MemoryToUsers; 585 586 // A table storing which memorydefs/phis represent a memory state provably 587 // equivalent to another memory state. 588 // We could use the congruence class machinery, but the MemoryAccess's are 589 // abstract memory states, so they can only ever be equivalent to each other, 590 // and not to constants, etc. 591 DenseMap<const MemoryAccess *, CongruenceClass *> MemoryAccessToClass; 592 593 // We could, if we wanted, build MemoryPhiExpressions and 594 // MemoryVariableExpressions, etc, and value number them the same way we value 595 // number phi expressions. For the moment, this seems like overkill. They 596 // can only exist in one of three states: they can be TOP (equal to 597 // everything), Equivalent to something else, or unique. Because we do not 598 // create expressions for them, we need to simulate leader change not just 599 // when they change class, but when they change state. Note: We can do the 600 // same thing for phis, and avoid having phi expressions if we wanted, We 601 // should eventually unify in one direction or the other, so this is a little 602 // bit of an experiment in which turns out easier to maintain. 603 enum MemoryPhiState { MPS_Invalid, MPS_TOP, MPS_Equivalent, MPS_Unique }; 604 DenseMap<const MemoryPhi *, MemoryPhiState> MemoryPhiState; 605 606 enum InstCycleState { ICS_Unknown, ICS_CycleFree, ICS_Cycle }; 607 mutable DenseMap<const Instruction *, InstCycleState> InstCycleState; 608 609 // Expression to class mapping. 610 using ExpressionClassMap = DenseMap<const Expression *, CongruenceClass *>; 611 ExpressionClassMap ExpressionToClass; 612 613 // We have a single expression that represents currently DeadExpressions. 614 // For dead expressions we can prove will stay dead, we mark them with 615 // DFS number zero. However, it's possible in the case of phi nodes 616 // for us to assume/prove all arguments are dead during fixpointing. 617 // We use DeadExpression for that case. 618 DeadExpression *SingletonDeadExpression = nullptr; 619 620 // Which values have changed as a result of leader changes. 621 SmallPtrSet<Value *, 8> LeaderChanges; 622 623 // Reachability info. 624 using BlockEdge = BasicBlockEdge; 625 DenseSet<BlockEdge> ReachableEdges; 626 SmallPtrSet<const BasicBlock *, 8> ReachableBlocks; 627 628 // This is a bitvector because, on larger functions, we may have 629 // thousands of touched instructions at once (entire blocks, 630 // instructions with hundreds of uses, etc). Even with optimization 631 // for when we mark whole blocks as touched, when this was a 632 // SmallPtrSet or DenseSet, for some functions, we spent >20% of all 633 // the time in GVN just managing this list. The bitvector, on the 634 // other hand, efficiently supports test/set/clear of both 635 // individual and ranges, as well as "find next element" This 636 // enables us to use it as a worklist with essentially 0 cost. 637 BitVector TouchedInstructions; 638 639 DenseMap<const BasicBlock *, std::pair<unsigned, unsigned>> BlockInstRange; 640 mutable DenseMap<const IntrinsicInst *, const Value *> IntrinsicInstPred; 641 642 #ifndef NDEBUG 643 // Debugging for how many times each block and instruction got processed. 644 DenseMap<const Value *, unsigned> ProcessedCount; 645 #endif 646 647 // DFS info. 648 // This contains a mapping from Instructions to DFS numbers. 649 // The numbering starts at 1. An instruction with DFS number zero 650 // means that the instruction is dead. 651 DenseMap<const Value *, unsigned> InstrDFS; 652 653 // This contains the mapping DFS numbers to instructions. 654 SmallVector<Value *, 32> DFSToInstr; 655 656 // Deletion info. 657 SmallPtrSet<Instruction *, 8> InstructionsToErase; 658 659 public: 660 NewGVN(Function &F, DominatorTree *DT, AssumptionCache *AC, 661 TargetLibraryInfo *TLI, AliasAnalysis *AA, MemorySSA *MSSA, 662 const DataLayout &DL) 663 : F(F), DT(DT), TLI(TLI), AA(AA), MSSA(MSSA), AC(AC), DL(DL), 664 PredInfo(std::make_unique<PredicateInfo>(F, *DT, *AC)), 665 SQ(DL, TLI, DT, AC, /*CtxI=*/nullptr, /*UseInstrInfo=*/false, 666 /*CanUseUndef=*/false) {} 667 668 bool runGVN(); 669 670 private: 671 /// Helper struct return a Expression with an optional extra dependency. 672 struct ExprResult { 673 const Expression *Expr; 674 Value *ExtraDep; 675 const PredicateBase *PredDep; 676 677 ExprResult(const Expression *Expr, Value *ExtraDep = nullptr, 678 const PredicateBase *PredDep = nullptr) 679 : Expr(Expr), ExtraDep(ExtraDep), PredDep(PredDep) {} 680 ExprResult(const ExprResult &) = delete; 681 ExprResult(ExprResult &&Other) 682 : Expr(Other.Expr), ExtraDep(Other.ExtraDep), PredDep(Other.PredDep) { 683 Other.Expr = nullptr; 684 Other.ExtraDep = nullptr; 685 Other.PredDep = nullptr; 686 } 687 ExprResult &operator=(const ExprResult &Other) = delete; 688 ExprResult &operator=(ExprResult &&Other) = delete; 689 690 ~ExprResult() { assert(!ExtraDep && "unhandled ExtraDep"); } 691 692 operator bool() const { return Expr; } 693 694 static ExprResult none() { return {nullptr, nullptr, nullptr}; } 695 static ExprResult some(const Expression *Expr, Value *ExtraDep = nullptr) { 696 return {Expr, ExtraDep, nullptr}; 697 } 698 static ExprResult some(const Expression *Expr, 699 const PredicateBase *PredDep) { 700 return {Expr, nullptr, PredDep}; 701 } 702 static ExprResult some(const Expression *Expr, Value *ExtraDep, 703 const PredicateBase *PredDep) { 704 return {Expr, ExtraDep, PredDep}; 705 } 706 }; 707 708 // Expression handling. 709 ExprResult createExpression(Instruction *) const; 710 const Expression *createBinaryExpression(unsigned, Type *, Value *, Value *, 711 Instruction *) const; 712 713 // Our canonical form for phi arguments is a pair of incoming value, incoming 714 // basic block. 715 using ValPair = std::pair<Value *, BasicBlock *>; 716 717 PHIExpression *createPHIExpression(ArrayRef<ValPair>, const Instruction *, 718 BasicBlock *, bool &HasBackEdge, 719 bool &OriginalOpsConstant) const; 720 const DeadExpression *createDeadExpression() const; 721 const VariableExpression *createVariableExpression(Value *) const; 722 const ConstantExpression *createConstantExpression(Constant *) const; 723 const Expression *createVariableOrConstant(Value *V) const; 724 const UnknownExpression *createUnknownExpression(Instruction *) const; 725 const StoreExpression *createStoreExpression(StoreInst *, 726 const MemoryAccess *) const; 727 LoadExpression *createLoadExpression(Type *, Value *, LoadInst *, 728 const MemoryAccess *) const; 729 const CallExpression *createCallExpression(CallInst *, 730 const MemoryAccess *) const; 731 const AggregateValueExpression * 732 createAggregateValueExpression(Instruction *) const; 733 bool setBasicExpressionInfo(Instruction *, BasicExpression *) const; 734 735 // Congruence class handling. 736 CongruenceClass *createCongruenceClass(Value *Leader, const Expression *E) { 737 auto *result = new CongruenceClass(NextCongruenceNum++, Leader, E); 738 CongruenceClasses.emplace_back(result); 739 return result; 740 } 741 742 CongruenceClass *createMemoryClass(MemoryAccess *MA) { 743 auto *CC = createCongruenceClass(nullptr, nullptr); 744 CC->setMemoryLeader(MA); 745 return CC; 746 } 747 748 CongruenceClass *ensureLeaderOfMemoryClass(MemoryAccess *MA) { 749 auto *CC = getMemoryClass(MA); 750 if (CC->getMemoryLeader() != MA) 751 CC = createMemoryClass(MA); 752 return CC; 753 } 754 755 CongruenceClass *createSingletonCongruenceClass(Value *Member) { 756 CongruenceClass *CClass = createCongruenceClass(Member, nullptr); 757 CClass->insert(Member); 758 ValueToClass[Member] = CClass; 759 return CClass; 760 } 761 762 void initializeCongruenceClasses(Function &F); 763 const Expression *makePossiblePHIOfOps(Instruction *, 764 SmallPtrSetImpl<Value *> &); 765 Value *findLeaderForInst(Instruction *ValueOp, 766 SmallPtrSetImpl<Value *> &Visited, 767 MemoryAccess *MemAccess, Instruction *OrigInst, 768 BasicBlock *PredBB); 769 bool OpIsSafeForPHIOfOpsHelper(Value *V, const BasicBlock *PHIBlock, 770 SmallPtrSetImpl<const Value *> &Visited, 771 SmallVectorImpl<Instruction *> &Worklist); 772 bool OpIsSafeForPHIOfOps(Value *Op, const BasicBlock *PHIBlock, 773 SmallPtrSetImpl<const Value *> &); 774 void addPhiOfOps(PHINode *Op, BasicBlock *BB, Instruction *ExistingValue); 775 void removePhiOfOps(Instruction *I, PHINode *PHITemp); 776 777 // Value number an Instruction or MemoryPhi. 778 void valueNumberMemoryPhi(MemoryPhi *); 779 void valueNumberInstruction(Instruction *); 780 781 // Symbolic evaluation. 782 ExprResult checkExprResults(Expression *, Instruction *, Value *) const; 783 ExprResult performSymbolicEvaluation(Value *, 784 SmallPtrSetImpl<Value *> &) const; 785 const Expression *performSymbolicLoadCoercion(Type *, Value *, LoadInst *, 786 Instruction *, 787 MemoryAccess *) const; 788 const Expression *performSymbolicLoadEvaluation(Instruction *) const; 789 const Expression *performSymbolicStoreEvaluation(Instruction *) const; 790 ExprResult performSymbolicCallEvaluation(Instruction *) const; 791 void sortPHIOps(MutableArrayRef<ValPair> Ops) const; 792 const Expression *performSymbolicPHIEvaluation(ArrayRef<ValPair>, 793 Instruction *I, 794 BasicBlock *PHIBlock) const; 795 const Expression *performSymbolicAggrValueEvaluation(Instruction *) const; 796 ExprResult performSymbolicCmpEvaluation(Instruction *) const; 797 ExprResult performSymbolicPredicateInfoEvaluation(IntrinsicInst *) const; 798 799 // Congruence finding. 800 bool someEquivalentDominates(const Instruction *, const Instruction *) const; 801 Value *lookupOperandLeader(Value *) const; 802 CongruenceClass *getClassForExpression(const Expression *E) const; 803 void performCongruenceFinding(Instruction *, const Expression *); 804 void moveValueToNewCongruenceClass(Instruction *, const Expression *, 805 CongruenceClass *, CongruenceClass *); 806 void moveMemoryToNewCongruenceClass(Instruction *, MemoryAccess *, 807 CongruenceClass *, CongruenceClass *); 808 Value *getNextValueLeader(CongruenceClass *) const; 809 const MemoryAccess *getNextMemoryLeader(CongruenceClass *) const; 810 bool setMemoryClass(const MemoryAccess *From, CongruenceClass *To); 811 CongruenceClass *getMemoryClass(const MemoryAccess *MA) const; 812 const MemoryAccess *lookupMemoryLeader(const MemoryAccess *) const; 813 bool isMemoryAccessTOP(const MemoryAccess *) const; 814 815 // Ranking 816 unsigned int getRank(const Value *) const; 817 bool shouldSwapOperands(const Value *, const Value *) const; 818 bool shouldSwapOperandsForIntrinsic(const Value *, const Value *, 819 const IntrinsicInst *I) const; 820 821 // Reachability handling. 822 void updateReachableEdge(BasicBlock *, BasicBlock *); 823 void processOutgoingEdges(Instruction *, BasicBlock *); 824 Value *findConditionEquivalence(Value *) const; 825 826 // Elimination. 827 struct ValueDFS; 828 void convertClassToDFSOrdered(const CongruenceClass &, 829 SmallVectorImpl<ValueDFS> &, 830 DenseMap<const Value *, unsigned int> &, 831 SmallPtrSetImpl<Instruction *> &) const; 832 void convertClassToLoadsAndStores(const CongruenceClass &, 833 SmallVectorImpl<ValueDFS> &) const; 834 835 bool eliminateInstructions(Function &); 836 void replaceInstruction(Instruction *, Value *); 837 void markInstructionForDeletion(Instruction *); 838 void deleteInstructionsInBlock(BasicBlock *); 839 Value *findPHIOfOpsLeader(const Expression *, const Instruction *, 840 const BasicBlock *) const; 841 842 // Various instruction touch utilities 843 template <typename Map, typename KeyType> 844 void touchAndErase(Map &, const KeyType &); 845 void markUsersTouched(Value *); 846 void markMemoryUsersTouched(const MemoryAccess *); 847 void markMemoryDefTouched(const MemoryAccess *); 848 void markPredicateUsersTouched(Instruction *); 849 void markValueLeaderChangeTouched(CongruenceClass *CC); 850 void markMemoryLeaderChangeTouched(CongruenceClass *CC); 851 void markPhiOfOpsChanged(const Expression *E); 852 void addMemoryUsers(const MemoryAccess *To, MemoryAccess *U) const; 853 void addAdditionalUsers(Value *To, Value *User) const; 854 void addAdditionalUsers(ExprResult &Res, Instruction *User) const; 855 856 // Main loop of value numbering 857 void iterateTouchedInstructions(); 858 859 // Utilities. 860 void cleanupTables(); 861 std::pair<unsigned, unsigned> assignDFSNumbers(BasicBlock *, unsigned); 862 void updateProcessedCount(const Value *V); 863 void verifyMemoryCongruency() const; 864 void verifyIterationSettled(Function &F); 865 void verifyStoreExpressions() const; 866 bool singleReachablePHIPath(SmallPtrSet<const MemoryAccess *, 8> &, 867 const MemoryAccess *, const MemoryAccess *) const; 868 BasicBlock *getBlockForValue(Value *V) const; 869 void deleteExpression(const Expression *E) const; 870 MemoryUseOrDef *getMemoryAccess(const Instruction *) const; 871 MemoryPhi *getMemoryAccess(const BasicBlock *) const; 872 template <class T, class Range> T *getMinDFSOfRange(const Range &) const; 873 874 unsigned InstrToDFSNum(const Value *V) const { 875 assert(isa<Instruction>(V) && "This should not be used for MemoryAccesses"); 876 return InstrDFS.lookup(V); 877 } 878 879 unsigned InstrToDFSNum(const MemoryAccess *MA) const { 880 return MemoryToDFSNum(MA); 881 } 882 883 Value *InstrFromDFSNum(unsigned DFSNum) { return DFSToInstr[DFSNum]; } 884 885 // Given a MemoryAccess, return the relevant instruction DFS number. Note: 886 // This deliberately takes a value so it can be used with Use's, which will 887 // auto-convert to Value's but not to MemoryAccess's. 888 unsigned MemoryToDFSNum(const Value *MA) const { 889 assert(isa<MemoryAccess>(MA) && 890 "This should not be used with instructions"); 891 return isa<MemoryUseOrDef>(MA) 892 ? InstrToDFSNum(cast<MemoryUseOrDef>(MA)->getMemoryInst()) 893 : InstrDFS.lookup(MA); 894 } 895 896 bool isCycleFree(const Instruction *) const; 897 bool isBackedge(BasicBlock *From, BasicBlock *To) const; 898 899 // Debug counter info. When verifying, we have to reset the value numbering 900 // debug counter to the same state it started in to get the same results. 901 int64_t StartingVNCounter = 0; 902 }; 903 904 } // end anonymous namespace 905 906 template <typename T> 907 static bool equalsLoadStoreHelper(const T &LHS, const Expression &RHS) { 908 if (!isa<LoadExpression>(RHS) && !isa<StoreExpression>(RHS)) 909 return false; 910 return LHS.MemoryExpression::equals(RHS); 911 } 912 913 bool LoadExpression::equals(const Expression &Other) const { 914 return equalsLoadStoreHelper(*this, Other); 915 } 916 917 bool StoreExpression::equals(const Expression &Other) const { 918 if (!equalsLoadStoreHelper(*this, Other)) 919 return false; 920 // Make sure that store vs store includes the value operand. 921 if (const auto *S = dyn_cast<StoreExpression>(&Other)) 922 if (getStoredValue() != S->getStoredValue()) 923 return false; 924 return true; 925 } 926 927 // Determine if the edge From->To is a backedge 928 bool NewGVN::isBackedge(BasicBlock *From, BasicBlock *To) const { 929 return From == To || 930 RPOOrdering.lookup(DT->getNode(From)) >= 931 RPOOrdering.lookup(DT->getNode(To)); 932 } 933 934 #ifndef NDEBUG 935 static std::string getBlockName(const BasicBlock *B) { 936 return DOTGraphTraits<DOTFuncInfo *>::getSimpleNodeLabel(B, nullptr); 937 } 938 #endif 939 940 // Get a MemoryAccess for an instruction, fake or real. 941 MemoryUseOrDef *NewGVN::getMemoryAccess(const Instruction *I) const { 942 auto *Result = MSSA->getMemoryAccess(I); 943 return Result ? Result : TempToMemory.lookup(I); 944 } 945 946 // Get a MemoryPhi for a basic block. These are all real. 947 MemoryPhi *NewGVN::getMemoryAccess(const BasicBlock *BB) const { 948 return MSSA->getMemoryAccess(BB); 949 } 950 951 // Get the basic block from an instruction/memory value. 952 BasicBlock *NewGVN::getBlockForValue(Value *V) const { 953 if (auto *I = dyn_cast<Instruction>(V)) { 954 auto *Parent = I->getParent(); 955 if (Parent) 956 return Parent; 957 Parent = TempToBlock.lookup(V); 958 assert(Parent && "Every fake instruction should have a block"); 959 return Parent; 960 } 961 962 auto *MP = dyn_cast<MemoryPhi>(V); 963 assert(MP && "Should have been an instruction or a MemoryPhi"); 964 return MP->getBlock(); 965 } 966 967 // Delete a definitely dead expression, so it can be reused by the expression 968 // allocator. Some of these are not in creation functions, so we have to accept 969 // const versions. 970 void NewGVN::deleteExpression(const Expression *E) const { 971 assert(isa<BasicExpression>(E)); 972 auto *BE = cast<BasicExpression>(E); 973 const_cast<BasicExpression *>(BE)->deallocateOperands(ArgRecycler); 974 ExpressionAllocator.Deallocate(E); 975 } 976 977 // If V is a predicateinfo copy, get the thing it is a copy of. 978 static Value *getCopyOf(const Value *V) { 979 if (auto *II = dyn_cast<IntrinsicInst>(V)) 980 if (II->getIntrinsicID() == Intrinsic::ssa_copy) 981 return II->getOperand(0); 982 return nullptr; 983 } 984 985 // Return true if V is really PN, even accounting for predicateinfo copies. 986 static bool isCopyOfPHI(const Value *V, const PHINode *PN) { 987 return V == PN || getCopyOf(V) == PN; 988 } 989 990 static bool isCopyOfAPHI(const Value *V) { 991 auto *CO = getCopyOf(V); 992 return CO && isa<PHINode>(CO); 993 } 994 995 // Sort PHI Operands into a canonical order. What we use here is an RPO 996 // order. The BlockInstRange numbers are generated in an RPO walk of the basic 997 // blocks. 998 void NewGVN::sortPHIOps(MutableArrayRef<ValPair> Ops) const { 999 llvm::sort(Ops, [&](const ValPair &P1, const ValPair &P2) { 1000 return BlockInstRange.lookup(P1.second).first < 1001 BlockInstRange.lookup(P2.second).first; 1002 }); 1003 } 1004 1005 // Return true if V is a value that will always be available (IE can 1006 // be placed anywhere) in the function. We don't do globals here 1007 // because they are often worse to put in place. 1008 static bool alwaysAvailable(Value *V) { 1009 return isa<Constant>(V) || isa<Argument>(V); 1010 } 1011 1012 // Create a PHIExpression from an array of {incoming edge, value} pairs. I is 1013 // the original instruction we are creating a PHIExpression for (but may not be 1014 // a phi node). We require, as an invariant, that all the PHIOperands in the 1015 // same block are sorted the same way. sortPHIOps will sort them into a 1016 // canonical order. 1017 PHIExpression *NewGVN::createPHIExpression(ArrayRef<ValPair> PHIOperands, 1018 const Instruction *I, 1019 BasicBlock *PHIBlock, 1020 bool &HasBackedge, 1021 bool &OriginalOpsConstant) const { 1022 unsigned NumOps = PHIOperands.size(); 1023 auto *E = new (ExpressionAllocator) PHIExpression(NumOps, PHIBlock); 1024 1025 E->allocateOperands(ArgRecycler, ExpressionAllocator); 1026 E->setType(PHIOperands.begin()->first->getType()); 1027 E->setOpcode(Instruction::PHI); 1028 1029 // Filter out unreachable phi operands. 1030 auto Filtered = make_filter_range(PHIOperands, [&](const ValPair &P) { 1031 auto *BB = P.second; 1032 if (auto *PHIOp = dyn_cast<PHINode>(I)) 1033 if (isCopyOfPHI(P.first, PHIOp)) 1034 return false; 1035 if (!ReachableEdges.count({BB, PHIBlock})) 1036 return false; 1037 // Things in TOPClass are equivalent to everything. 1038 if (ValueToClass.lookup(P.first) == TOPClass) 1039 return false; 1040 OriginalOpsConstant = OriginalOpsConstant && isa<Constant>(P.first); 1041 HasBackedge = HasBackedge || isBackedge(BB, PHIBlock); 1042 return lookupOperandLeader(P.first) != I; 1043 }); 1044 std::transform(Filtered.begin(), Filtered.end(), op_inserter(E), 1045 [&](const ValPair &P) -> Value * { 1046 return lookupOperandLeader(P.first); 1047 }); 1048 return E; 1049 } 1050 1051 // Set basic expression info (Arguments, type, opcode) for Expression 1052 // E from Instruction I in block B. 1053 bool NewGVN::setBasicExpressionInfo(Instruction *I, BasicExpression *E) const { 1054 bool AllConstant = true; 1055 if (auto *GEP = dyn_cast<GetElementPtrInst>(I)) 1056 E->setType(GEP->getSourceElementType()); 1057 else 1058 E->setType(I->getType()); 1059 E->setOpcode(I->getOpcode()); 1060 E->allocateOperands(ArgRecycler, ExpressionAllocator); 1061 1062 // Transform the operand array into an operand leader array, and keep track of 1063 // whether all members are constant. 1064 std::transform(I->op_begin(), I->op_end(), op_inserter(E), [&](Value *O) { 1065 auto Operand = lookupOperandLeader(O); 1066 AllConstant = AllConstant && isa<Constant>(Operand); 1067 return Operand; 1068 }); 1069 1070 return AllConstant; 1071 } 1072 1073 const Expression *NewGVN::createBinaryExpression(unsigned Opcode, Type *T, 1074 Value *Arg1, Value *Arg2, 1075 Instruction *I) const { 1076 auto *E = new (ExpressionAllocator) BasicExpression(2); 1077 // TODO: we need to remove context instruction after Value Tracking 1078 // can run without context instruction 1079 const SimplifyQuery Q = SQ.getWithInstruction(I); 1080 1081 E->setType(T); 1082 E->setOpcode(Opcode); 1083 E->allocateOperands(ArgRecycler, ExpressionAllocator); 1084 if (Instruction::isCommutative(Opcode)) { 1085 // Ensure that commutative instructions that only differ by a permutation 1086 // of their operands get the same value number by sorting the operand value 1087 // numbers. Since all commutative instructions have two operands it is more 1088 // efficient to sort by hand rather than using, say, std::sort. 1089 if (shouldSwapOperands(Arg1, Arg2)) 1090 std::swap(Arg1, Arg2); 1091 } 1092 E->op_push_back(lookupOperandLeader(Arg1)); 1093 E->op_push_back(lookupOperandLeader(Arg2)); 1094 1095 Value *V = simplifyBinOp(Opcode, E->getOperand(0), E->getOperand(1), Q); 1096 if (auto Simplified = checkExprResults(E, I, V)) { 1097 addAdditionalUsers(Simplified, I); 1098 return Simplified.Expr; 1099 } 1100 return E; 1101 } 1102 1103 // Take a Value returned by simplification of Expression E/Instruction 1104 // I, and see if it resulted in a simpler expression. If so, return 1105 // that expression. 1106 NewGVN::ExprResult NewGVN::checkExprResults(Expression *E, Instruction *I, 1107 Value *V) const { 1108 if (!V) 1109 return ExprResult::none(); 1110 1111 if (auto *C = dyn_cast<Constant>(V)) { 1112 if (I) 1113 LLVM_DEBUG(dbgs() << "Simplified " << *I << " to " 1114 << " constant " << *C << "\n"); 1115 NumGVNOpsSimplified++; 1116 assert(isa<BasicExpression>(E) && 1117 "We should always have had a basic expression here"); 1118 deleteExpression(E); 1119 return ExprResult::some(createConstantExpression(C)); 1120 } else if (isa<Argument>(V) || isa<GlobalVariable>(V)) { 1121 if (I) 1122 LLVM_DEBUG(dbgs() << "Simplified " << *I << " to " 1123 << " variable " << *V << "\n"); 1124 deleteExpression(E); 1125 return ExprResult::some(createVariableExpression(V)); 1126 } 1127 1128 CongruenceClass *CC = ValueToClass.lookup(V); 1129 if (CC) { 1130 if (CC->getLeader() && CC->getLeader() != I) { 1131 return ExprResult::some(createVariableOrConstant(CC->getLeader()), V); 1132 } 1133 if (CC->getDefiningExpr()) { 1134 if (I) 1135 LLVM_DEBUG(dbgs() << "Simplified " << *I << " to " 1136 << " expression " << *CC->getDefiningExpr() << "\n"); 1137 NumGVNOpsSimplified++; 1138 deleteExpression(E); 1139 return ExprResult::some(CC->getDefiningExpr(), V); 1140 } 1141 } 1142 1143 return ExprResult::none(); 1144 } 1145 1146 // Create a value expression from the instruction I, replacing operands with 1147 // their leaders. 1148 1149 NewGVN::ExprResult NewGVN::createExpression(Instruction *I) const { 1150 auto *E = new (ExpressionAllocator) BasicExpression(I->getNumOperands()); 1151 // TODO: we need to remove context instruction after Value Tracking 1152 // can run without context instruction 1153 const SimplifyQuery Q = SQ.getWithInstruction(I); 1154 1155 bool AllConstant = setBasicExpressionInfo(I, E); 1156 1157 if (I->isCommutative()) { 1158 // Ensure that commutative instructions that only differ by a permutation 1159 // of their operands get the same value number by sorting the operand value 1160 // numbers. Since all commutative instructions have two operands it is more 1161 // efficient to sort by hand rather than using, say, std::sort. 1162 assert(I->getNumOperands() == 2 && "Unsupported commutative instruction!"); 1163 if (shouldSwapOperands(E->getOperand(0), E->getOperand(1))) 1164 E->swapOperands(0, 1); 1165 } 1166 // Perform simplification. 1167 if (auto *CI = dyn_cast<CmpInst>(I)) { 1168 // Sort the operand value numbers so x<y and y>x get the same value 1169 // number. 1170 CmpInst::Predicate Predicate = CI->getPredicate(); 1171 if (shouldSwapOperands(E->getOperand(0), E->getOperand(1))) { 1172 E->swapOperands(0, 1); 1173 Predicate = CmpInst::getSwappedPredicate(Predicate); 1174 } 1175 E->setOpcode((CI->getOpcode() << 8) | Predicate); 1176 // TODO: 25% of our time is spent in simplifyCmpInst with pointer operands 1177 assert(I->getOperand(0)->getType() == I->getOperand(1)->getType() && 1178 "Wrong types on cmp instruction"); 1179 assert((E->getOperand(0)->getType() == I->getOperand(0)->getType() && 1180 E->getOperand(1)->getType() == I->getOperand(1)->getType())); 1181 Value *V = 1182 simplifyCmpInst(Predicate, E->getOperand(0), E->getOperand(1), Q); 1183 if (auto Simplified = checkExprResults(E, I, V)) 1184 return Simplified; 1185 } else if (isa<SelectInst>(I)) { 1186 if (isa<Constant>(E->getOperand(0)) || 1187 E->getOperand(1) == E->getOperand(2)) { 1188 assert(E->getOperand(1)->getType() == I->getOperand(1)->getType() && 1189 E->getOperand(2)->getType() == I->getOperand(2)->getType()); 1190 Value *V = simplifySelectInst(E->getOperand(0), E->getOperand(1), 1191 E->getOperand(2), Q); 1192 if (auto Simplified = checkExprResults(E, I, V)) 1193 return Simplified; 1194 } 1195 } else if (I->isBinaryOp()) { 1196 Value *V = 1197 simplifyBinOp(E->getOpcode(), E->getOperand(0), E->getOperand(1), Q); 1198 if (auto Simplified = checkExprResults(E, I, V)) 1199 return Simplified; 1200 } else if (auto *CI = dyn_cast<CastInst>(I)) { 1201 Value *V = 1202 simplifyCastInst(CI->getOpcode(), E->getOperand(0), CI->getType(), Q); 1203 if (auto Simplified = checkExprResults(E, I, V)) 1204 return Simplified; 1205 } else if (auto *GEPI = dyn_cast<GetElementPtrInst>(I)) { 1206 Value *V = 1207 simplifyGEPInst(GEPI->getSourceElementType(), *E->op_begin(), 1208 makeArrayRef(std::next(E->op_begin()), E->op_end()), 1209 GEPI->isInBounds(), Q); 1210 if (auto Simplified = checkExprResults(E, I, V)) 1211 return Simplified; 1212 } else if (AllConstant) { 1213 // We don't bother trying to simplify unless all of the operands 1214 // were constant. 1215 // TODO: There are a lot of Simplify*'s we could call here, if we 1216 // wanted to. The original motivating case for this code was a 1217 // zext i1 false to i8, which we don't have an interface to 1218 // simplify (IE there is no SimplifyZExt). 1219 1220 SmallVector<Constant *, 8> C; 1221 for (Value *Arg : E->operands()) 1222 C.emplace_back(cast<Constant>(Arg)); 1223 1224 if (Value *V = ConstantFoldInstOperands(I, C, DL, TLI)) 1225 if (auto Simplified = checkExprResults(E, I, V)) 1226 return Simplified; 1227 } 1228 return ExprResult::some(E); 1229 } 1230 1231 const AggregateValueExpression * 1232 NewGVN::createAggregateValueExpression(Instruction *I) const { 1233 if (auto *II = dyn_cast<InsertValueInst>(I)) { 1234 auto *E = new (ExpressionAllocator) 1235 AggregateValueExpression(I->getNumOperands(), II->getNumIndices()); 1236 setBasicExpressionInfo(I, E); 1237 E->allocateIntOperands(ExpressionAllocator); 1238 std::copy(II->idx_begin(), II->idx_end(), int_op_inserter(E)); 1239 return E; 1240 } else if (auto *EI = dyn_cast<ExtractValueInst>(I)) { 1241 auto *E = new (ExpressionAllocator) 1242 AggregateValueExpression(I->getNumOperands(), EI->getNumIndices()); 1243 setBasicExpressionInfo(EI, E); 1244 E->allocateIntOperands(ExpressionAllocator); 1245 std::copy(EI->idx_begin(), EI->idx_end(), int_op_inserter(E)); 1246 return E; 1247 } 1248 llvm_unreachable("Unhandled type of aggregate value operation"); 1249 } 1250 1251 const DeadExpression *NewGVN::createDeadExpression() const { 1252 // DeadExpression has no arguments and all DeadExpression's are the same, 1253 // so we only need one of them. 1254 return SingletonDeadExpression; 1255 } 1256 1257 const VariableExpression *NewGVN::createVariableExpression(Value *V) const { 1258 auto *E = new (ExpressionAllocator) VariableExpression(V); 1259 E->setOpcode(V->getValueID()); 1260 return E; 1261 } 1262 1263 const Expression *NewGVN::createVariableOrConstant(Value *V) const { 1264 if (auto *C = dyn_cast<Constant>(V)) 1265 return createConstantExpression(C); 1266 return createVariableExpression(V); 1267 } 1268 1269 const ConstantExpression *NewGVN::createConstantExpression(Constant *C) const { 1270 auto *E = new (ExpressionAllocator) ConstantExpression(C); 1271 E->setOpcode(C->getValueID()); 1272 return E; 1273 } 1274 1275 const UnknownExpression *NewGVN::createUnknownExpression(Instruction *I) const { 1276 auto *E = new (ExpressionAllocator) UnknownExpression(I); 1277 E->setOpcode(I->getOpcode()); 1278 return E; 1279 } 1280 1281 const CallExpression * 1282 NewGVN::createCallExpression(CallInst *CI, const MemoryAccess *MA) const { 1283 // FIXME: Add operand bundles for calls. 1284 // FIXME: Allow commutative matching for intrinsics. 1285 auto *E = 1286 new (ExpressionAllocator) CallExpression(CI->getNumOperands(), CI, MA); 1287 setBasicExpressionInfo(CI, E); 1288 return E; 1289 } 1290 1291 // Return true if some equivalent of instruction Inst dominates instruction U. 1292 bool NewGVN::someEquivalentDominates(const Instruction *Inst, 1293 const Instruction *U) const { 1294 auto *CC = ValueToClass.lookup(Inst); 1295 // This must be an instruction because we are only called from phi nodes 1296 // in the case that the value it needs to check against is an instruction. 1297 1298 // The most likely candidates for dominance are the leader and the next leader. 1299 // The leader or nextleader will dominate in all cases where there is an 1300 // equivalent that is higher up in the dom tree. 1301 // We can't *only* check them, however, because the 1302 // dominator tree could have an infinite number of non-dominating siblings 1303 // with instructions that are in the right congruence class. 1304 // A 1305 // B C D E F G 1306 // | 1307 // H 1308 // Instruction U could be in H, with equivalents in every other sibling. 1309 // Depending on the rpo order picked, the leader could be the equivalent in 1310 // any of these siblings. 1311 if (!CC) 1312 return false; 1313 if (alwaysAvailable(CC->getLeader())) 1314 return true; 1315 if (DT->dominates(cast<Instruction>(CC->getLeader()), U)) 1316 return true; 1317 if (CC->getNextLeader().first && 1318 DT->dominates(cast<Instruction>(CC->getNextLeader().first), U)) 1319 return true; 1320 return llvm::any_of(*CC, [&](const Value *Member) { 1321 return Member != CC->getLeader() && 1322 DT->dominates(cast<Instruction>(Member), U); 1323 }); 1324 } 1325 1326 // See if we have a congruence class and leader for this operand, and if so, 1327 // return it. Otherwise, return the operand itself. 1328 Value *NewGVN::lookupOperandLeader(Value *V) const { 1329 CongruenceClass *CC = ValueToClass.lookup(V); 1330 if (CC) { 1331 // Everything in TOP is represented by poison, as it can be any value. 1332 // We do have to make sure we get the type right though, so we can't set the 1333 // RepLeader to poison. 1334 if (CC == TOPClass) 1335 return PoisonValue::get(V->getType()); 1336 return CC->getStoredValue() ? CC->getStoredValue() : CC->getLeader(); 1337 } 1338 1339 return V; 1340 } 1341 1342 const MemoryAccess *NewGVN::lookupMemoryLeader(const MemoryAccess *MA) const { 1343 auto *CC = getMemoryClass(MA); 1344 assert(CC->getMemoryLeader() && 1345 "Every MemoryAccess should be mapped to a congruence class with a " 1346 "representative memory access"); 1347 return CC->getMemoryLeader(); 1348 } 1349 1350 // Return true if the MemoryAccess is really equivalent to everything. This is 1351 // equivalent to the lattice value "TOP" in most lattices. This is the initial 1352 // state of all MemoryAccesses. 1353 bool NewGVN::isMemoryAccessTOP(const MemoryAccess *MA) const { 1354 return getMemoryClass(MA) == TOPClass; 1355 } 1356 1357 LoadExpression *NewGVN::createLoadExpression(Type *LoadType, Value *PointerOp, 1358 LoadInst *LI, 1359 const MemoryAccess *MA) const { 1360 auto *E = 1361 new (ExpressionAllocator) LoadExpression(1, LI, lookupMemoryLeader(MA)); 1362 E->allocateOperands(ArgRecycler, ExpressionAllocator); 1363 E->setType(LoadType); 1364 1365 // Give store and loads same opcode so they value number together. 1366 E->setOpcode(0); 1367 E->op_push_back(PointerOp); 1368 1369 // TODO: Value number heap versions. We may be able to discover 1370 // things alias analysis can't on it's own (IE that a store and a 1371 // load have the same value, and thus, it isn't clobbering the load). 1372 return E; 1373 } 1374 1375 const StoreExpression * 1376 NewGVN::createStoreExpression(StoreInst *SI, const MemoryAccess *MA) const { 1377 auto *StoredValueLeader = lookupOperandLeader(SI->getValueOperand()); 1378 auto *E = new (ExpressionAllocator) 1379 StoreExpression(SI->getNumOperands(), SI, StoredValueLeader, MA); 1380 E->allocateOperands(ArgRecycler, ExpressionAllocator); 1381 E->setType(SI->getValueOperand()->getType()); 1382 1383 // Give store and loads same opcode so they value number together. 1384 E->setOpcode(0); 1385 E->op_push_back(lookupOperandLeader(SI->getPointerOperand())); 1386 1387 // TODO: Value number heap versions. We may be able to discover 1388 // things alias analysis can't on it's own (IE that a store and a 1389 // load have the same value, and thus, it isn't clobbering the load). 1390 return E; 1391 } 1392 1393 const Expression *NewGVN::performSymbolicStoreEvaluation(Instruction *I) const { 1394 // Unlike loads, we never try to eliminate stores, so we do not check if they 1395 // are simple and avoid value numbering them. 1396 auto *SI = cast<StoreInst>(I); 1397 auto *StoreAccess = getMemoryAccess(SI); 1398 // Get the expression, if any, for the RHS of the MemoryDef. 1399 const MemoryAccess *StoreRHS = StoreAccess->getDefiningAccess(); 1400 if (EnableStoreRefinement) 1401 StoreRHS = MSSAWalker->getClobberingMemoryAccess(StoreAccess); 1402 // If we bypassed the use-def chains, make sure we add a use. 1403 StoreRHS = lookupMemoryLeader(StoreRHS); 1404 if (StoreRHS != StoreAccess->getDefiningAccess()) 1405 addMemoryUsers(StoreRHS, StoreAccess); 1406 // If we are defined by ourselves, use the live on entry def. 1407 if (StoreRHS == StoreAccess) 1408 StoreRHS = MSSA->getLiveOnEntryDef(); 1409 1410 if (SI->isSimple()) { 1411 // See if we are defined by a previous store expression, it already has a 1412 // value, and it's the same value as our current store. FIXME: Right now, we 1413 // only do this for simple stores, we should expand to cover memcpys, etc. 1414 const auto *LastStore = createStoreExpression(SI, StoreRHS); 1415 const auto *LastCC = ExpressionToClass.lookup(LastStore); 1416 // We really want to check whether the expression we matched was a store. No 1417 // easy way to do that. However, we can check that the class we found has a 1418 // store, which, assuming the value numbering state is not corrupt, is 1419 // sufficient, because we must also be equivalent to that store's expression 1420 // for it to be in the same class as the load. 1421 if (LastCC && LastCC->getStoredValue() == LastStore->getStoredValue()) 1422 return LastStore; 1423 // Also check if our value operand is defined by a load of the same memory 1424 // location, and the memory state is the same as it was then (otherwise, it 1425 // could have been overwritten later. See test32 in 1426 // transforms/DeadStoreElimination/simple.ll). 1427 if (auto *LI = dyn_cast<LoadInst>(LastStore->getStoredValue())) 1428 if ((lookupOperandLeader(LI->getPointerOperand()) == 1429 LastStore->getOperand(0)) && 1430 (lookupMemoryLeader(getMemoryAccess(LI)->getDefiningAccess()) == 1431 StoreRHS)) 1432 return LastStore; 1433 deleteExpression(LastStore); 1434 } 1435 1436 // If the store is not equivalent to anything, value number it as a store that 1437 // produces a unique memory state (instead of using it's MemoryUse, we use 1438 // it's MemoryDef). 1439 return createStoreExpression(SI, StoreAccess); 1440 } 1441 1442 // See if we can extract the value of a loaded pointer from a load, a store, or 1443 // a memory instruction. 1444 const Expression * 1445 NewGVN::performSymbolicLoadCoercion(Type *LoadType, Value *LoadPtr, 1446 LoadInst *LI, Instruction *DepInst, 1447 MemoryAccess *DefiningAccess) const { 1448 assert((!LI || LI->isSimple()) && "Not a simple load"); 1449 if (auto *DepSI = dyn_cast<StoreInst>(DepInst)) { 1450 // Can't forward from non-atomic to atomic without violating memory model. 1451 // Also don't need to coerce if they are the same type, we will just 1452 // propagate. 1453 if (LI->isAtomic() > DepSI->isAtomic() || 1454 LoadType == DepSI->getValueOperand()->getType()) 1455 return nullptr; 1456 int Offset = analyzeLoadFromClobberingStore(LoadType, LoadPtr, DepSI, DL); 1457 if (Offset >= 0) { 1458 if (auto *C = dyn_cast<Constant>( 1459 lookupOperandLeader(DepSI->getValueOperand()))) { 1460 LLVM_DEBUG(dbgs() << "Coercing load from store " << *DepSI 1461 << " to constant " << *C << "\n"); 1462 return createConstantExpression( 1463 getConstantStoreValueForLoad(C, Offset, LoadType, DL)); 1464 } 1465 } 1466 } else if (auto *DepLI = dyn_cast<LoadInst>(DepInst)) { 1467 // Can't forward from non-atomic to atomic without violating memory model. 1468 if (LI->isAtomic() > DepLI->isAtomic()) 1469 return nullptr; 1470 int Offset = analyzeLoadFromClobberingLoad(LoadType, LoadPtr, DepLI, DL); 1471 if (Offset >= 0) { 1472 // We can coerce a constant load into a load. 1473 if (auto *C = dyn_cast<Constant>(lookupOperandLeader(DepLI))) 1474 if (auto *PossibleConstant = 1475 getConstantLoadValueForLoad(C, Offset, LoadType, DL)) { 1476 LLVM_DEBUG(dbgs() << "Coercing load from load " << *LI 1477 << " to constant " << *PossibleConstant << "\n"); 1478 return createConstantExpression(PossibleConstant); 1479 } 1480 } 1481 } else if (auto *DepMI = dyn_cast<MemIntrinsic>(DepInst)) { 1482 int Offset = analyzeLoadFromClobberingMemInst(LoadType, LoadPtr, DepMI, DL); 1483 if (Offset >= 0) { 1484 if (auto *PossibleConstant = 1485 getConstantMemInstValueForLoad(DepMI, Offset, LoadType, DL)) { 1486 LLVM_DEBUG(dbgs() << "Coercing load from meminst " << *DepMI 1487 << " to constant " << *PossibleConstant << "\n"); 1488 return createConstantExpression(PossibleConstant); 1489 } 1490 } 1491 } 1492 1493 // All of the below are only true if the loaded pointer is produced 1494 // by the dependent instruction. 1495 if (LoadPtr != lookupOperandLeader(DepInst) && 1496 !AA->isMustAlias(LoadPtr, DepInst)) 1497 return nullptr; 1498 // If this load really doesn't depend on anything, then we must be loading an 1499 // undef value. This can happen when loading for a fresh allocation with no 1500 // intervening stores, for example. Note that this is only true in the case 1501 // that the result of the allocation is pointer equal to the load ptr. 1502 if (isa<AllocaInst>(DepInst)) { 1503 return createConstantExpression(UndefValue::get(LoadType)); 1504 } 1505 // If this load occurs either right after a lifetime begin, 1506 // then the loaded value is undefined. 1507 else if (auto *II = dyn_cast<IntrinsicInst>(DepInst)) { 1508 if (II->getIntrinsicID() == Intrinsic::lifetime_start) 1509 return createConstantExpression(UndefValue::get(LoadType)); 1510 } else if (isAllocationFn(DepInst, TLI)) 1511 if (auto *InitVal = getInitialValueOfAllocation(cast<CallBase>(DepInst), 1512 TLI, LoadType)) 1513 return createConstantExpression(InitVal); 1514 1515 return nullptr; 1516 } 1517 1518 const Expression *NewGVN::performSymbolicLoadEvaluation(Instruction *I) const { 1519 auto *LI = cast<LoadInst>(I); 1520 1521 // We can eliminate in favor of non-simple loads, but we won't be able to 1522 // eliminate the loads themselves. 1523 if (!LI->isSimple()) 1524 return nullptr; 1525 1526 Value *LoadAddressLeader = lookupOperandLeader(LI->getPointerOperand()); 1527 // Load of undef is UB. 1528 if (isa<UndefValue>(LoadAddressLeader)) 1529 return createConstantExpression(PoisonValue::get(LI->getType())); 1530 MemoryAccess *OriginalAccess = getMemoryAccess(I); 1531 MemoryAccess *DefiningAccess = 1532 MSSAWalker->getClobberingMemoryAccess(OriginalAccess); 1533 1534 if (!MSSA->isLiveOnEntryDef(DefiningAccess)) { 1535 if (auto *MD = dyn_cast<MemoryDef>(DefiningAccess)) { 1536 Instruction *DefiningInst = MD->getMemoryInst(); 1537 // If the defining instruction is not reachable, replace with poison. 1538 if (!ReachableBlocks.count(DefiningInst->getParent())) 1539 return createConstantExpression(PoisonValue::get(LI->getType())); 1540 // This will handle stores and memory insts. We only do if it the 1541 // defining access has a different type, or it is a pointer produced by 1542 // certain memory operations that cause the memory to have a fixed value 1543 // (IE things like calloc). 1544 if (const auto *CoercionResult = 1545 performSymbolicLoadCoercion(LI->getType(), LoadAddressLeader, LI, 1546 DefiningInst, DefiningAccess)) 1547 return CoercionResult; 1548 } 1549 } 1550 1551 const auto *LE = createLoadExpression(LI->getType(), LoadAddressLeader, LI, 1552 DefiningAccess); 1553 // If our MemoryLeader is not our defining access, add a use to the 1554 // MemoryLeader, so that we get reprocessed when it changes. 1555 if (LE->getMemoryLeader() != DefiningAccess) 1556 addMemoryUsers(LE->getMemoryLeader(), OriginalAccess); 1557 return LE; 1558 } 1559 1560 NewGVN::ExprResult 1561 NewGVN::performSymbolicPredicateInfoEvaluation(IntrinsicInst *I) const { 1562 auto *PI = PredInfo->getPredicateInfoFor(I); 1563 if (!PI) 1564 return ExprResult::none(); 1565 1566 LLVM_DEBUG(dbgs() << "Found predicate info from instruction !\n"); 1567 1568 const Optional<PredicateConstraint> &Constraint = PI->getConstraint(); 1569 if (!Constraint) 1570 return ExprResult::none(); 1571 1572 CmpInst::Predicate Predicate = Constraint->Predicate; 1573 Value *CmpOp0 = I->getOperand(0); 1574 Value *CmpOp1 = Constraint->OtherOp; 1575 1576 Value *FirstOp = lookupOperandLeader(CmpOp0); 1577 Value *SecondOp = lookupOperandLeader(CmpOp1); 1578 Value *AdditionallyUsedValue = CmpOp0; 1579 1580 // Sort the ops. 1581 if (shouldSwapOperandsForIntrinsic(FirstOp, SecondOp, I)) { 1582 std::swap(FirstOp, SecondOp); 1583 Predicate = CmpInst::getSwappedPredicate(Predicate); 1584 AdditionallyUsedValue = CmpOp1; 1585 } 1586 1587 if (Predicate == CmpInst::ICMP_EQ) 1588 return ExprResult::some(createVariableOrConstant(FirstOp), 1589 AdditionallyUsedValue, PI); 1590 1591 // Handle the special case of floating point. 1592 if (Predicate == CmpInst::FCMP_OEQ && isa<ConstantFP>(FirstOp) && 1593 !cast<ConstantFP>(FirstOp)->isZero()) 1594 return ExprResult::some(createConstantExpression(cast<Constant>(FirstOp)), 1595 AdditionallyUsedValue, PI); 1596 1597 return ExprResult::none(); 1598 } 1599 1600 // Evaluate read only and pure calls, and create an expression result. 1601 NewGVN::ExprResult NewGVN::performSymbolicCallEvaluation(Instruction *I) const { 1602 auto *CI = cast<CallInst>(I); 1603 if (auto *II = dyn_cast<IntrinsicInst>(I)) { 1604 // Intrinsics with the returned attribute are copies of arguments. 1605 if (auto *ReturnedValue = II->getReturnedArgOperand()) { 1606 if (II->getIntrinsicID() == Intrinsic::ssa_copy) 1607 if (auto Res = performSymbolicPredicateInfoEvaluation(II)) 1608 return Res; 1609 return ExprResult::some(createVariableOrConstant(ReturnedValue)); 1610 } 1611 } 1612 if (AA->doesNotAccessMemory(CI)) { 1613 return ExprResult::some( 1614 createCallExpression(CI, TOPClass->getMemoryLeader())); 1615 } else if (AA->onlyReadsMemory(CI)) { 1616 if (auto *MA = MSSA->getMemoryAccess(CI)) { 1617 auto *DefiningAccess = MSSAWalker->getClobberingMemoryAccess(MA); 1618 return ExprResult::some(createCallExpression(CI, DefiningAccess)); 1619 } else // MSSA determined that CI does not access memory. 1620 return ExprResult::some( 1621 createCallExpression(CI, TOPClass->getMemoryLeader())); 1622 } 1623 return ExprResult::none(); 1624 } 1625 1626 // Retrieve the memory class for a given MemoryAccess. 1627 CongruenceClass *NewGVN::getMemoryClass(const MemoryAccess *MA) const { 1628 auto *Result = MemoryAccessToClass.lookup(MA); 1629 assert(Result && "Should have found memory class"); 1630 return Result; 1631 } 1632 1633 // Update the MemoryAccess equivalence table to say that From is equal to To, 1634 // and return true if this is different from what already existed in the table. 1635 bool NewGVN::setMemoryClass(const MemoryAccess *From, 1636 CongruenceClass *NewClass) { 1637 assert(NewClass && 1638 "Every MemoryAccess should be getting mapped to a non-null class"); 1639 LLVM_DEBUG(dbgs() << "Setting " << *From); 1640 LLVM_DEBUG(dbgs() << " equivalent to congruence class "); 1641 LLVM_DEBUG(dbgs() << NewClass->getID() 1642 << " with current MemoryAccess leader "); 1643 LLVM_DEBUG(dbgs() << *NewClass->getMemoryLeader() << "\n"); 1644 1645 auto LookupResult = MemoryAccessToClass.find(From); 1646 bool Changed = false; 1647 // If it's already in the table, see if the value changed. 1648 if (LookupResult != MemoryAccessToClass.end()) { 1649 auto *OldClass = LookupResult->second; 1650 if (OldClass != NewClass) { 1651 // If this is a phi, we have to handle memory member updates. 1652 if (auto *MP = dyn_cast<MemoryPhi>(From)) { 1653 OldClass->memory_erase(MP); 1654 NewClass->memory_insert(MP); 1655 // This may have killed the class if it had no non-memory members 1656 if (OldClass->getMemoryLeader() == From) { 1657 if (OldClass->definesNoMemory()) { 1658 OldClass->setMemoryLeader(nullptr); 1659 } else { 1660 OldClass->setMemoryLeader(getNextMemoryLeader(OldClass)); 1661 LLVM_DEBUG(dbgs() << "Memory class leader change for class " 1662 << OldClass->getID() << " to " 1663 << *OldClass->getMemoryLeader() 1664 << " due to removal of a memory member " << *From 1665 << "\n"); 1666 markMemoryLeaderChangeTouched(OldClass); 1667 } 1668 } 1669 } 1670 // It wasn't equivalent before, and now it is. 1671 LookupResult->second = NewClass; 1672 Changed = true; 1673 } 1674 } 1675 1676 return Changed; 1677 } 1678 1679 // Determine if a instruction is cycle-free. That means the values in the 1680 // instruction don't depend on any expressions that can change value as a result 1681 // of the instruction. For example, a non-cycle free instruction would be v = 1682 // phi(0, v+1). 1683 bool NewGVN::isCycleFree(const Instruction *I) const { 1684 // In order to compute cycle-freeness, we do SCC finding on the instruction, 1685 // and see what kind of SCC it ends up in. If it is a singleton, it is 1686 // cycle-free. If it is not in a singleton, it is only cycle free if the 1687 // other members are all phi nodes (as they do not compute anything, they are 1688 // copies). 1689 auto ICS = InstCycleState.lookup(I); 1690 if (ICS == ICS_Unknown) { 1691 SCCFinder.Start(I); 1692 auto &SCC = SCCFinder.getComponentFor(I); 1693 // It's cycle free if it's size 1 or the SCC is *only* phi nodes. 1694 if (SCC.size() == 1) 1695 InstCycleState.insert({I, ICS_CycleFree}); 1696 else { 1697 bool AllPhis = llvm::all_of(SCC, [](const Value *V) { 1698 return isa<PHINode>(V) || isCopyOfAPHI(V); 1699 }); 1700 ICS = AllPhis ? ICS_CycleFree : ICS_Cycle; 1701 for (auto *Member : SCC) 1702 if (auto *MemberPhi = dyn_cast<PHINode>(Member)) 1703 InstCycleState.insert({MemberPhi, ICS}); 1704 } 1705 } 1706 if (ICS == ICS_Cycle) 1707 return false; 1708 return true; 1709 } 1710 1711 // Evaluate PHI nodes symbolically and create an expression result. 1712 const Expression * 1713 NewGVN::performSymbolicPHIEvaluation(ArrayRef<ValPair> PHIOps, 1714 Instruction *I, 1715 BasicBlock *PHIBlock) const { 1716 // True if one of the incoming phi edges is a backedge. 1717 bool HasBackedge = false; 1718 // All constant tracks the state of whether all the *original* phi operands 1719 // This is really shorthand for "this phi cannot cycle due to forward 1720 // change in value of the phi is guaranteed not to later change the value of 1721 // the phi. IE it can't be v = phi(undef, v+1) 1722 bool OriginalOpsConstant = true; 1723 auto *E = cast<PHIExpression>(createPHIExpression( 1724 PHIOps, I, PHIBlock, HasBackedge, OriginalOpsConstant)); 1725 // We match the semantics of SimplifyPhiNode from InstructionSimplify here. 1726 // See if all arguments are the same. 1727 // We track if any were undef because they need special handling. 1728 bool HasUndef = false, HasPoison = false; 1729 auto Filtered = make_filter_range(E->operands(), [&](Value *Arg) { 1730 if (isa<PoisonValue>(Arg)) { 1731 HasPoison = true; 1732 return false; 1733 } 1734 if (isa<UndefValue>(Arg)) { 1735 HasUndef = true; 1736 return false; 1737 } 1738 return true; 1739 }); 1740 // If we are left with no operands, it's dead. 1741 if (Filtered.empty()) { 1742 // If it has undef or poison at this point, it means there are no-non-undef 1743 // arguments, and thus, the value of the phi node must be undef. 1744 if (HasUndef) { 1745 LLVM_DEBUG( 1746 dbgs() << "PHI Node " << *I 1747 << " has no non-undef arguments, valuing it as undef\n"); 1748 return createConstantExpression(UndefValue::get(I->getType())); 1749 } 1750 if (HasPoison) { 1751 LLVM_DEBUG( 1752 dbgs() << "PHI Node " << *I 1753 << " has no non-poison arguments, valuing it as poison\n"); 1754 return createConstantExpression(PoisonValue::get(I->getType())); 1755 } 1756 1757 LLVM_DEBUG(dbgs() << "No arguments of PHI node " << *I << " are live\n"); 1758 deleteExpression(E); 1759 return createDeadExpression(); 1760 } 1761 Value *AllSameValue = *(Filtered.begin()); 1762 ++Filtered.begin(); 1763 // Can't use std::equal here, sadly, because filter.begin moves. 1764 if (llvm::all_of(Filtered, [&](Value *Arg) { return Arg == AllSameValue; })) { 1765 // Can't fold phi(undef, X) -> X unless X can't be poison (thus X is undef 1766 // in the worst case). 1767 if (HasUndef && !isGuaranteedNotToBePoison(AllSameValue, AC, nullptr, DT)) 1768 return E; 1769 1770 // In LLVM's non-standard representation of phi nodes, it's possible to have 1771 // phi nodes with cycles (IE dependent on other phis that are .... dependent 1772 // on the original phi node), especially in weird CFG's where some arguments 1773 // are unreachable, or uninitialized along certain paths. This can cause 1774 // infinite loops during evaluation. We work around this by not trying to 1775 // really evaluate them independently, but instead using a variable 1776 // expression to say if one is equivalent to the other. 1777 // We also special case undef/poison, so that if we have an undef, we can't 1778 // use the common value unless it dominates the phi block. 1779 if (HasPoison || HasUndef) { 1780 // If we have undef and at least one other value, this is really a 1781 // multivalued phi, and we need to know if it's cycle free in order to 1782 // evaluate whether we can ignore the undef. The other parts of this are 1783 // just shortcuts. If there is no backedge, or all operands are 1784 // constants, it also must be cycle free. 1785 if (HasBackedge && !OriginalOpsConstant && 1786 !isa<UndefValue>(AllSameValue) && !isCycleFree(I)) 1787 return E; 1788 1789 // Only have to check for instructions 1790 if (auto *AllSameInst = dyn_cast<Instruction>(AllSameValue)) 1791 if (!someEquivalentDominates(AllSameInst, I)) 1792 return E; 1793 } 1794 // Can't simplify to something that comes later in the iteration. 1795 // Otherwise, when and if it changes congruence class, we will never catch 1796 // up. We will always be a class behind it. 1797 if (isa<Instruction>(AllSameValue) && 1798 InstrToDFSNum(AllSameValue) > InstrToDFSNum(I)) 1799 return E; 1800 NumGVNPhisAllSame++; 1801 LLVM_DEBUG(dbgs() << "Simplified PHI node " << *I << " to " << *AllSameValue 1802 << "\n"); 1803 deleteExpression(E); 1804 return createVariableOrConstant(AllSameValue); 1805 } 1806 return E; 1807 } 1808 1809 const Expression * 1810 NewGVN::performSymbolicAggrValueEvaluation(Instruction *I) const { 1811 if (auto *EI = dyn_cast<ExtractValueInst>(I)) { 1812 auto *WO = dyn_cast<WithOverflowInst>(EI->getAggregateOperand()); 1813 if (WO && EI->getNumIndices() == 1 && *EI->idx_begin() == 0) 1814 // EI is an extract from one of our with.overflow intrinsics. Synthesize 1815 // a semantically equivalent expression instead of an extract value 1816 // expression. 1817 return createBinaryExpression(WO->getBinaryOp(), EI->getType(), 1818 WO->getLHS(), WO->getRHS(), I); 1819 } 1820 1821 return createAggregateValueExpression(I); 1822 } 1823 1824 NewGVN::ExprResult NewGVN::performSymbolicCmpEvaluation(Instruction *I) const { 1825 assert(isa<CmpInst>(I) && "Expected a cmp instruction."); 1826 1827 auto *CI = cast<CmpInst>(I); 1828 // See if our operands are equal to those of a previous predicate, and if so, 1829 // if it implies true or false. 1830 auto Op0 = lookupOperandLeader(CI->getOperand(0)); 1831 auto Op1 = lookupOperandLeader(CI->getOperand(1)); 1832 auto OurPredicate = CI->getPredicate(); 1833 if (shouldSwapOperands(Op0, Op1)) { 1834 std::swap(Op0, Op1); 1835 OurPredicate = CI->getSwappedPredicate(); 1836 } 1837 1838 // Avoid processing the same info twice. 1839 const PredicateBase *LastPredInfo = nullptr; 1840 // See if we know something about the comparison itself, like it is the target 1841 // of an assume. 1842 auto *CmpPI = PredInfo->getPredicateInfoFor(I); 1843 if (isa_and_nonnull<PredicateAssume>(CmpPI)) 1844 return ExprResult::some( 1845 createConstantExpression(ConstantInt::getTrue(CI->getType()))); 1846 1847 if (Op0 == Op1) { 1848 // This condition does not depend on predicates, no need to add users 1849 if (CI->isTrueWhenEqual()) 1850 return ExprResult::some( 1851 createConstantExpression(ConstantInt::getTrue(CI->getType()))); 1852 else if (CI->isFalseWhenEqual()) 1853 return ExprResult::some( 1854 createConstantExpression(ConstantInt::getFalse(CI->getType()))); 1855 } 1856 1857 // NOTE: Because we are comparing both operands here and below, and using 1858 // previous comparisons, we rely on fact that predicateinfo knows to mark 1859 // comparisons that use renamed operands as users of the earlier comparisons. 1860 // It is *not* enough to just mark predicateinfo renamed operands as users of 1861 // the earlier comparisons, because the *other* operand may have changed in a 1862 // previous iteration. 1863 // Example: 1864 // icmp slt %a, %b 1865 // %b.0 = ssa.copy(%b) 1866 // false branch: 1867 // icmp slt %c, %b.0 1868 1869 // %c and %a may start out equal, and thus, the code below will say the second 1870 // %icmp is false. c may become equal to something else, and in that case the 1871 // %second icmp *must* be reexamined, but would not if only the renamed 1872 // %operands are considered users of the icmp. 1873 1874 // *Currently* we only check one level of comparisons back, and only mark one 1875 // level back as touched when changes happen. If you modify this code to look 1876 // back farther through comparisons, you *must* mark the appropriate 1877 // comparisons as users in PredicateInfo.cpp, or you will cause bugs. See if 1878 // we know something just from the operands themselves 1879 1880 // See if our operands have predicate info, so that we may be able to derive 1881 // something from a previous comparison. 1882 for (const auto &Op : CI->operands()) { 1883 auto *PI = PredInfo->getPredicateInfoFor(Op); 1884 if (const auto *PBranch = dyn_cast_or_null<PredicateBranch>(PI)) { 1885 if (PI == LastPredInfo) 1886 continue; 1887 LastPredInfo = PI; 1888 // In phi of ops cases, we may have predicate info that we are evaluating 1889 // in a different context. 1890 if (!DT->dominates(PBranch->To, getBlockForValue(I))) 1891 continue; 1892 // TODO: Along the false edge, we may know more things too, like 1893 // icmp of 1894 // same operands is false. 1895 // TODO: We only handle actual comparison conditions below, not 1896 // and/or. 1897 auto *BranchCond = dyn_cast<CmpInst>(PBranch->Condition); 1898 if (!BranchCond) 1899 continue; 1900 auto *BranchOp0 = lookupOperandLeader(BranchCond->getOperand(0)); 1901 auto *BranchOp1 = lookupOperandLeader(BranchCond->getOperand(1)); 1902 auto BranchPredicate = BranchCond->getPredicate(); 1903 if (shouldSwapOperands(BranchOp0, BranchOp1)) { 1904 std::swap(BranchOp0, BranchOp1); 1905 BranchPredicate = BranchCond->getSwappedPredicate(); 1906 } 1907 if (BranchOp0 == Op0 && BranchOp1 == Op1) { 1908 if (PBranch->TrueEdge) { 1909 // If we know the previous predicate is true and we are in the true 1910 // edge then we may be implied true or false. 1911 if (CmpInst::isImpliedTrueByMatchingCmp(BranchPredicate, 1912 OurPredicate)) { 1913 return ExprResult::some( 1914 createConstantExpression(ConstantInt::getTrue(CI->getType())), 1915 PI); 1916 } 1917 1918 if (CmpInst::isImpliedFalseByMatchingCmp(BranchPredicate, 1919 OurPredicate)) { 1920 return ExprResult::some( 1921 createConstantExpression(ConstantInt::getFalse(CI->getType())), 1922 PI); 1923 } 1924 } else { 1925 // Just handle the ne and eq cases, where if we have the same 1926 // operands, we may know something. 1927 if (BranchPredicate == OurPredicate) { 1928 // Same predicate, same ops,we know it was false, so this is false. 1929 return ExprResult::some( 1930 createConstantExpression(ConstantInt::getFalse(CI->getType())), 1931 PI); 1932 } else if (BranchPredicate == 1933 CmpInst::getInversePredicate(OurPredicate)) { 1934 // Inverse predicate, we know the other was false, so this is true. 1935 return ExprResult::some( 1936 createConstantExpression(ConstantInt::getTrue(CI->getType())), 1937 PI); 1938 } 1939 } 1940 } 1941 } 1942 } 1943 // Create expression will take care of simplifyCmpInst 1944 return createExpression(I); 1945 } 1946 1947 // Substitute and symbolize the value before value numbering. 1948 NewGVN::ExprResult 1949 NewGVN::performSymbolicEvaluation(Value *V, 1950 SmallPtrSetImpl<Value *> &Visited) const { 1951 1952 const Expression *E = nullptr; 1953 if (auto *C = dyn_cast<Constant>(V)) 1954 E = createConstantExpression(C); 1955 else if (isa<Argument>(V) || isa<GlobalVariable>(V)) { 1956 E = createVariableExpression(V); 1957 } else { 1958 // TODO: memory intrinsics. 1959 // TODO: Some day, we should do the forward propagation and reassociation 1960 // parts of the algorithm. 1961 auto *I = cast<Instruction>(V); 1962 switch (I->getOpcode()) { 1963 case Instruction::ExtractValue: 1964 case Instruction::InsertValue: 1965 E = performSymbolicAggrValueEvaluation(I); 1966 break; 1967 case Instruction::PHI: { 1968 SmallVector<ValPair, 3> Ops; 1969 auto *PN = cast<PHINode>(I); 1970 for (unsigned i = 0; i < PN->getNumOperands(); ++i) 1971 Ops.push_back({PN->getIncomingValue(i), PN->getIncomingBlock(i)}); 1972 // Sort to ensure the invariant createPHIExpression requires is met. 1973 sortPHIOps(Ops); 1974 E = performSymbolicPHIEvaluation(Ops, I, getBlockForValue(I)); 1975 } break; 1976 case Instruction::Call: 1977 return performSymbolicCallEvaluation(I); 1978 break; 1979 case Instruction::Store: 1980 E = performSymbolicStoreEvaluation(I); 1981 break; 1982 case Instruction::Load: 1983 E = performSymbolicLoadEvaluation(I); 1984 break; 1985 case Instruction::BitCast: 1986 case Instruction::AddrSpaceCast: 1987 return createExpression(I); 1988 break; 1989 case Instruction::ICmp: 1990 case Instruction::FCmp: 1991 return performSymbolicCmpEvaluation(I); 1992 break; 1993 case Instruction::FNeg: 1994 case Instruction::Add: 1995 case Instruction::FAdd: 1996 case Instruction::Sub: 1997 case Instruction::FSub: 1998 case Instruction::Mul: 1999 case Instruction::FMul: 2000 case Instruction::UDiv: 2001 case Instruction::SDiv: 2002 case Instruction::FDiv: 2003 case Instruction::URem: 2004 case Instruction::SRem: 2005 case Instruction::FRem: 2006 case Instruction::Shl: 2007 case Instruction::LShr: 2008 case Instruction::AShr: 2009 case Instruction::And: 2010 case Instruction::Or: 2011 case Instruction::Xor: 2012 case Instruction::Trunc: 2013 case Instruction::ZExt: 2014 case Instruction::SExt: 2015 case Instruction::FPToUI: 2016 case Instruction::FPToSI: 2017 case Instruction::UIToFP: 2018 case Instruction::SIToFP: 2019 case Instruction::FPTrunc: 2020 case Instruction::FPExt: 2021 case Instruction::PtrToInt: 2022 case Instruction::IntToPtr: 2023 case Instruction::Select: 2024 case Instruction::ExtractElement: 2025 case Instruction::InsertElement: 2026 case Instruction::GetElementPtr: 2027 return createExpression(I); 2028 break; 2029 case Instruction::ShuffleVector: 2030 // FIXME: Add support for shufflevector to createExpression. 2031 return ExprResult::none(); 2032 default: 2033 return ExprResult::none(); 2034 } 2035 } 2036 return ExprResult::some(E); 2037 } 2038 2039 // Look up a container of values/instructions in a map, and touch all the 2040 // instructions in the container. Then erase value from the map. 2041 template <typename Map, typename KeyType> 2042 void NewGVN::touchAndErase(Map &M, const KeyType &Key) { 2043 const auto Result = M.find_as(Key); 2044 if (Result != M.end()) { 2045 for (const typename Map::mapped_type::value_type Mapped : Result->second) 2046 TouchedInstructions.set(InstrToDFSNum(Mapped)); 2047 M.erase(Result); 2048 } 2049 } 2050 2051 void NewGVN::addAdditionalUsers(Value *To, Value *User) const { 2052 assert(User && To != User); 2053 if (isa<Instruction>(To)) 2054 AdditionalUsers[To].insert(User); 2055 } 2056 2057 void NewGVN::addAdditionalUsers(ExprResult &Res, Instruction *User) const { 2058 if (Res.ExtraDep && Res.ExtraDep != User) 2059 addAdditionalUsers(Res.ExtraDep, User); 2060 Res.ExtraDep = nullptr; 2061 2062 if (Res.PredDep) { 2063 if (const auto *PBranch = dyn_cast<PredicateBranch>(Res.PredDep)) 2064 PredicateToUsers[PBranch->Condition].insert(User); 2065 else if (const auto *PAssume = dyn_cast<PredicateAssume>(Res.PredDep)) 2066 PredicateToUsers[PAssume->Condition].insert(User); 2067 } 2068 Res.PredDep = nullptr; 2069 } 2070 2071 void NewGVN::markUsersTouched(Value *V) { 2072 // Now mark the users as touched. 2073 for (auto *User : V->users()) { 2074 assert(isa<Instruction>(User) && "Use of value not within an instruction?"); 2075 TouchedInstructions.set(InstrToDFSNum(User)); 2076 } 2077 touchAndErase(AdditionalUsers, V); 2078 } 2079 2080 void NewGVN::addMemoryUsers(const MemoryAccess *To, MemoryAccess *U) const { 2081 LLVM_DEBUG(dbgs() << "Adding memory user " << *U << " to " << *To << "\n"); 2082 MemoryToUsers[To].insert(U); 2083 } 2084 2085 void NewGVN::markMemoryDefTouched(const MemoryAccess *MA) { 2086 TouchedInstructions.set(MemoryToDFSNum(MA)); 2087 } 2088 2089 void NewGVN::markMemoryUsersTouched(const MemoryAccess *MA) { 2090 if (isa<MemoryUse>(MA)) 2091 return; 2092 for (auto U : MA->users()) 2093 TouchedInstructions.set(MemoryToDFSNum(U)); 2094 touchAndErase(MemoryToUsers, MA); 2095 } 2096 2097 // Touch all the predicates that depend on this instruction. 2098 void NewGVN::markPredicateUsersTouched(Instruction *I) { 2099 touchAndErase(PredicateToUsers, I); 2100 } 2101 2102 // Mark users affected by a memory leader change. 2103 void NewGVN::markMemoryLeaderChangeTouched(CongruenceClass *CC) { 2104 for (auto M : CC->memory()) 2105 markMemoryDefTouched(M); 2106 } 2107 2108 // Touch the instructions that need to be updated after a congruence class has a 2109 // leader change, and mark changed values. 2110 void NewGVN::markValueLeaderChangeTouched(CongruenceClass *CC) { 2111 for (auto M : *CC) { 2112 if (auto *I = dyn_cast<Instruction>(M)) 2113 TouchedInstructions.set(InstrToDFSNum(I)); 2114 LeaderChanges.insert(M); 2115 } 2116 } 2117 2118 // Give a range of things that have instruction DFS numbers, this will return 2119 // the member of the range with the smallest dfs number. 2120 template <class T, class Range> 2121 T *NewGVN::getMinDFSOfRange(const Range &R) const { 2122 std::pair<T *, unsigned> MinDFS = {nullptr, ~0U}; 2123 for (const auto X : R) { 2124 auto DFSNum = InstrToDFSNum(X); 2125 if (DFSNum < MinDFS.second) 2126 MinDFS = {X, DFSNum}; 2127 } 2128 return MinDFS.first; 2129 } 2130 2131 // This function returns the MemoryAccess that should be the next leader of 2132 // congruence class CC, under the assumption that the current leader is going to 2133 // disappear. 2134 const MemoryAccess *NewGVN::getNextMemoryLeader(CongruenceClass *CC) const { 2135 // TODO: If this ends up to slow, we can maintain a next memory leader like we 2136 // do for regular leaders. 2137 // Make sure there will be a leader to find. 2138 assert(!CC->definesNoMemory() && "Can't get next leader if there is none"); 2139 if (CC->getStoreCount() > 0) { 2140 if (auto *NL = dyn_cast_or_null<StoreInst>(CC->getNextLeader().first)) 2141 return getMemoryAccess(NL); 2142 // Find the store with the minimum DFS number. 2143 auto *V = getMinDFSOfRange<Value>(make_filter_range( 2144 *CC, [&](const Value *V) { return isa<StoreInst>(V); })); 2145 return getMemoryAccess(cast<StoreInst>(V)); 2146 } 2147 assert(CC->getStoreCount() == 0); 2148 2149 // Given our assertion, hitting this part must mean 2150 // !OldClass->memory_empty() 2151 if (CC->memory_size() == 1) 2152 return *CC->memory_begin(); 2153 return getMinDFSOfRange<const MemoryPhi>(CC->memory()); 2154 } 2155 2156 // This function returns the next value leader of a congruence class, under the 2157 // assumption that the current leader is going away. This should end up being 2158 // the next most dominating member. 2159 Value *NewGVN::getNextValueLeader(CongruenceClass *CC) const { 2160 // We don't need to sort members if there is only 1, and we don't care about 2161 // sorting the TOP class because everything either gets out of it or is 2162 // unreachable. 2163 2164 if (CC->size() == 1 || CC == TOPClass) { 2165 return *(CC->begin()); 2166 } else if (CC->getNextLeader().first) { 2167 ++NumGVNAvoidedSortedLeaderChanges; 2168 return CC->getNextLeader().first; 2169 } else { 2170 ++NumGVNSortedLeaderChanges; 2171 // NOTE: If this ends up to slow, we can maintain a dual structure for 2172 // member testing/insertion, or keep things mostly sorted, and sort only 2173 // here, or use SparseBitVector or .... 2174 return getMinDFSOfRange<Value>(*CC); 2175 } 2176 } 2177 2178 // Move a MemoryAccess, currently in OldClass, to NewClass, including updates to 2179 // the memory members, etc for the move. 2180 // 2181 // The invariants of this function are: 2182 // 2183 // - I must be moving to NewClass from OldClass 2184 // - The StoreCount of OldClass and NewClass is expected to have been updated 2185 // for I already if it is a store. 2186 // - The OldClass memory leader has not been updated yet if I was the leader. 2187 void NewGVN::moveMemoryToNewCongruenceClass(Instruction *I, 2188 MemoryAccess *InstMA, 2189 CongruenceClass *OldClass, 2190 CongruenceClass *NewClass) { 2191 // If the leader is I, and we had a representative MemoryAccess, it should 2192 // be the MemoryAccess of OldClass. 2193 assert((!InstMA || !OldClass->getMemoryLeader() || 2194 OldClass->getLeader() != I || 2195 MemoryAccessToClass.lookup(OldClass->getMemoryLeader()) == 2196 MemoryAccessToClass.lookup(InstMA)) && 2197 "Representative MemoryAccess mismatch"); 2198 // First, see what happens to the new class 2199 if (!NewClass->getMemoryLeader()) { 2200 // Should be a new class, or a store becoming a leader of a new class. 2201 assert(NewClass->size() == 1 || 2202 (isa<StoreInst>(I) && NewClass->getStoreCount() == 1)); 2203 NewClass->setMemoryLeader(InstMA); 2204 // Mark it touched if we didn't just create a singleton 2205 LLVM_DEBUG(dbgs() << "Memory class leader change for class " 2206 << NewClass->getID() 2207 << " due to new memory instruction becoming leader\n"); 2208 markMemoryLeaderChangeTouched(NewClass); 2209 } 2210 setMemoryClass(InstMA, NewClass); 2211 // Now, fixup the old class if necessary 2212 if (OldClass->getMemoryLeader() == InstMA) { 2213 if (!OldClass->definesNoMemory()) { 2214 OldClass->setMemoryLeader(getNextMemoryLeader(OldClass)); 2215 LLVM_DEBUG(dbgs() << "Memory class leader change for class " 2216 << OldClass->getID() << " to " 2217 << *OldClass->getMemoryLeader() 2218 << " due to removal of old leader " << *InstMA << "\n"); 2219 markMemoryLeaderChangeTouched(OldClass); 2220 } else 2221 OldClass->setMemoryLeader(nullptr); 2222 } 2223 } 2224 2225 // Move a value, currently in OldClass, to be part of NewClass 2226 // Update OldClass and NewClass for the move (including changing leaders, etc). 2227 void NewGVN::moveValueToNewCongruenceClass(Instruction *I, const Expression *E, 2228 CongruenceClass *OldClass, 2229 CongruenceClass *NewClass) { 2230 if (I == OldClass->getNextLeader().first) 2231 OldClass->resetNextLeader(); 2232 2233 OldClass->erase(I); 2234 NewClass->insert(I); 2235 2236 if (NewClass->getLeader() != I) 2237 NewClass->addPossibleNextLeader({I, InstrToDFSNum(I)}); 2238 // Handle our special casing of stores. 2239 if (auto *SI = dyn_cast<StoreInst>(I)) { 2240 OldClass->decStoreCount(); 2241 // Okay, so when do we want to make a store a leader of a class? 2242 // If we have a store defined by an earlier load, we want the earlier load 2243 // to lead the class. 2244 // If we have a store defined by something else, we want the store to lead 2245 // the class so everything else gets the "something else" as a value. 2246 // If we have a store as the single member of the class, we want the store 2247 // as the leader 2248 if (NewClass->getStoreCount() == 0 && !NewClass->getStoredValue()) { 2249 // If it's a store expression we are using, it means we are not equivalent 2250 // to something earlier. 2251 if (auto *SE = dyn_cast<StoreExpression>(E)) { 2252 NewClass->setStoredValue(SE->getStoredValue()); 2253 markValueLeaderChangeTouched(NewClass); 2254 // Shift the new class leader to be the store 2255 LLVM_DEBUG(dbgs() << "Changing leader of congruence class " 2256 << NewClass->getID() << " from " 2257 << *NewClass->getLeader() << " to " << *SI 2258 << " because store joined class\n"); 2259 // If we changed the leader, we have to mark it changed because we don't 2260 // know what it will do to symbolic evaluation. 2261 NewClass->setLeader(SI); 2262 } 2263 // We rely on the code below handling the MemoryAccess change. 2264 } 2265 NewClass->incStoreCount(); 2266 } 2267 // True if there is no memory instructions left in a class that had memory 2268 // instructions before. 2269 2270 // If it's not a memory use, set the MemoryAccess equivalence 2271 auto *InstMA = dyn_cast_or_null<MemoryDef>(getMemoryAccess(I)); 2272 if (InstMA) 2273 moveMemoryToNewCongruenceClass(I, InstMA, OldClass, NewClass); 2274 ValueToClass[I] = NewClass; 2275 // See if we destroyed the class or need to swap leaders. 2276 if (OldClass->empty() && OldClass != TOPClass) { 2277 if (OldClass->getDefiningExpr()) { 2278 LLVM_DEBUG(dbgs() << "Erasing expression " << *OldClass->getDefiningExpr() 2279 << " from table\n"); 2280 // We erase it as an exact expression to make sure we don't just erase an 2281 // equivalent one. 2282 auto Iter = ExpressionToClass.find_as( 2283 ExactEqualsExpression(*OldClass->getDefiningExpr())); 2284 if (Iter != ExpressionToClass.end()) 2285 ExpressionToClass.erase(Iter); 2286 #ifdef EXPENSIVE_CHECKS 2287 assert( 2288 (*OldClass->getDefiningExpr() != *E || ExpressionToClass.lookup(E)) && 2289 "We erased the expression we just inserted, which should not happen"); 2290 #endif 2291 } 2292 } else if (OldClass->getLeader() == I) { 2293 // When the leader changes, the value numbering of 2294 // everything may change due to symbolization changes, so we need to 2295 // reprocess. 2296 LLVM_DEBUG(dbgs() << "Value class leader change for class " 2297 << OldClass->getID() << "\n"); 2298 ++NumGVNLeaderChanges; 2299 // Destroy the stored value if there are no more stores to represent it. 2300 // Note that this is basically clean up for the expression removal that 2301 // happens below. If we remove stores from a class, we may leave it as a 2302 // class of equivalent memory phis. 2303 if (OldClass->getStoreCount() == 0) { 2304 if (OldClass->getStoredValue()) 2305 OldClass->setStoredValue(nullptr); 2306 } 2307 OldClass->setLeader(getNextValueLeader(OldClass)); 2308 OldClass->resetNextLeader(); 2309 markValueLeaderChangeTouched(OldClass); 2310 } 2311 } 2312 2313 // For a given expression, mark the phi of ops instructions that could have 2314 // changed as a result. 2315 void NewGVN::markPhiOfOpsChanged(const Expression *E) { 2316 touchAndErase(ExpressionToPhiOfOps, E); 2317 } 2318 2319 // Perform congruence finding on a given value numbering expression. 2320 void NewGVN::performCongruenceFinding(Instruction *I, const Expression *E) { 2321 // This is guaranteed to return something, since it will at least find 2322 // TOP. 2323 2324 CongruenceClass *IClass = ValueToClass.lookup(I); 2325 assert(IClass && "Should have found a IClass"); 2326 // Dead classes should have been eliminated from the mapping. 2327 assert(!IClass->isDead() && "Found a dead class"); 2328 2329 CongruenceClass *EClass = nullptr; 2330 if (const auto *VE = dyn_cast<VariableExpression>(E)) { 2331 EClass = ValueToClass.lookup(VE->getVariableValue()); 2332 } else if (isa<DeadExpression>(E)) { 2333 EClass = TOPClass; 2334 } 2335 if (!EClass) { 2336 auto lookupResult = ExpressionToClass.insert({E, nullptr}); 2337 2338 // If it's not in the value table, create a new congruence class. 2339 if (lookupResult.second) { 2340 CongruenceClass *NewClass = createCongruenceClass(nullptr, E); 2341 auto place = lookupResult.first; 2342 place->second = NewClass; 2343 2344 // Constants and variables should always be made the leader. 2345 if (const auto *CE = dyn_cast<ConstantExpression>(E)) { 2346 NewClass->setLeader(CE->getConstantValue()); 2347 } else if (const auto *SE = dyn_cast<StoreExpression>(E)) { 2348 StoreInst *SI = SE->getStoreInst(); 2349 NewClass->setLeader(SI); 2350 NewClass->setStoredValue(SE->getStoredValue()); 2351 // The RepMemoryAccess field will be filled in properly by the 2352 // moveValueToNewCongruenceClass call. 2353 } else { 2354 NewClass->setLeader(I); 2355 } 2356 assert(!isa<VariableExpression>(E) && 2357 "VariableExpression should have been handled already"); 2358 2359 EClass = NewClass; 2360 LLVM_DEBUG(dbgs() << "Created new congruence class for " << *I 2361 << " using expression " << *E << " at " 2362 << NewClass->getID() << " and leader " 2363 << *(NewClass->getLeader())); 2364 if (NewClass->getStoredValue()) 2365 LLVM_DEBUG(dbgs() << " and stored value " 2366 << *(NewClass->getStoredValue())); 2367 LLVM_DEBUG(dbgs() << "\n"); 2368 } else { 2369 EClass = lookupResult.first->second; 2370 if (isa<ConstantExpression>(E)) 2371 assert((isa<Constant>(EClass->getLeader()) || 2372 (EClass->getStoredValue() && 2373 isa<Constant>(EClass->getStoredValue()))) && 2374 "Any class with a constant expression should have a " 2375 "constant leader"); 2376 2377 assert(EClass && "Somehow don't have an eclass"); 2378 2379 assert(!EClass->isDead() && "We accidentally looked up a dead class"); 2380 } 2381 } 2382 bool ClassChanged = IClass != EClass; 2383 bool LeaderChanged = LeaderChanges.erase(I); 2384 if (ClassChanged || LeaderChanged) { 2385 LLVM_DEBUG(dbgs() << "New class " << EClass->getID() << " for expression " 2386 << *E << "\n"); 2387 if (ClassChanged) { 2388 moveValueToNewCongruenceClass(I, E, IClass, EClass); 2389 markPhiOfOpsChanged(E); 2390 } 2391 2392 markUsersTouched(I); 2393 if (MemoryAccess *MA = getMemoryAccess(I)) 2394 markMemoryUsersTouched(MA); 2395 if (auto *CI = dyn_cast<CmpInst>(I)) 2396 markPredicateUsersTouched(CI); 2397 } 2398 // If we changed the class of the store, we want to ensure nothing finds the 2399 // old store expression. In particular, loads do not compare against stored 2400 // value, so they will find old store expressions (and associated class 2401 // mappings) if we leave them in the table. 2402 if (ClassChanged && isa<StoreInst>(I)) { 2403 auto *OldE = ValueToExpression.lookup(I); 2404 // It could just be that the old class died. We don't want to erase it if we 2405 // just moved classes. 2406 if (OldE && isa<StoreExpression>(OldE) && *E != *OldE) { 2407 // Erase this as an exact expression to ensure we don't erase expressions 2408 // equivalent to it. 2409 auto Iter = ExpressionToClass.find_as(ExactEqualsExpression(*OldE)); 2410 if (Iter != ExpressionToClass.end()) 2411 ExpressionToClass.erase(Iter); 2412 } 2413 } 2414 ValueToExpression[I] = E; 2415 } 2416 2417 // Process the fact that Edge (from, to) is reachable, including marking 2418 // any newly reachable blocks and instructions for processing. 2419 void NewGVN::updateReachableEdge(BasicBlock *From, BasicBlock *To) { 2420 // Check if the Edge was reachable before. 2421 if (ReachableEdges.insert({From, To}).second) { 2422 // If this block wasn't reachable before, all instructions are touched. 2423 if (ReachableBlocks.insert(To).second) { 2424 LLVM_DEBUG(dbgs() << "Block " << getBlockName(To) 2425 << " marked reachable\n"); 2426 const auto &InstRange = BlockInstRange.lookup(To); 2427 TouchedInstructions.set(InstRange.first, InstRange.second); 2428 } else { 2429 LLVM_DEBUG(dbgs() << "Block " << getBlockName(To) 2430 << " was reachable, but new edge {" 2431 << getBlockName(From) << "," << getBlockName(To) 2432 << "} to it found\n"); 2433 2434 // We've made an edge reachable to an existing block, which may 2435 // impact predicates. Otherwise, only mark the phi nodes as touched, as 2436 // they are the only thing that depend on new edges. Anything using their 2437 // values will get propagated to if necessary. 2438 if (MemoryAccess *MemPhi = getMemoryAccess(To)) 2439 TouchedInstructions.set(InstrToDFSNum(MemPhi)); 2440 2441 // FIXME: We should just add a union op on a Bitvector and 2442 // SparseBitVector. We can do it word by word faster than we are doing it 2443 // here. 2444 for (auto InstNum : RevisitOnReachabilityChange[To]) 2445 TouchedInstructions.set(InstNum); 2446 } 2447 } 2448 } 2449 2450 // Given a predicate condition (from a switch, cmp, or whatever) and a block, 2451 // see if we know some constant value for it already. 2452 Value *NewGVN::findConditionEquivalence(Value *Cond) const { 2453 auto Result = lookupOperandLeader(Cond); 2454 return isa<Constant>(Result) ? Result : nullptr; 2455 } 2456 2457 // Process the outgoing edges of a block for reachability. 2458 void NewGVN::processOutgoingEdges(Instruction *TI, BasicBlock *B) { 2459 // Evaluate reachability of terminator instruction. 2460 Value *Cond; 2461 BasicBlock *TrueSucc, *FalseSucc; 2462 if (match(TI, m_Br(m_Value(Cond), TrueSucc, FalseSucc))) { 2463 Value *CondEvaluated = findConditionEquivalence(Cond); 2464 if (!CondEvaluated) { 2465 if (auto *I = dyn_cast<Instruction>(Cond)) { 2466 SmallPtrSet<Value *, 4> Visited; 2467 auto Res = performSymbolicEvaluation(I, Visited); 2468 if (const auto *CE = dyn_cast_or_null<ConstantExpression>(Res.Expr)) { 2469 CondEvaluated = CE->getConstantValue(); 2470 addAdditionalUsers(Res, I); 2471 } else { 2472 // Did not use simplification result, no need to add the extra 2473 // dependency. 2474 Res.ExtraDep = nullptr; 2475 } 2476 } else if (isa<ConstantInt>(Cond)) { 2477 CondEvaluated = Cond; 2478 } 2479 } 2480 ConstantInt *CI; 2481 if (CondEvaluated && (CI = dyn_cast<ConstantInt>(CondEvaluated))) { 2482 if (CI->isOne()) { 2483 LLVM_DEBUG(dbgs() << "Condition for Terminator " << *TI 2484 << " evaluated to true\n"); 2485 updateReachableEdge(B, TrueSucc); 2486 } else if (CI->isZero()) { 2487 LLVM_DEBUG(dbgs() << "Condition for Terminator " << *TI 2488 << " evaluated to false\n"); 2489 updateReachableEdge(B, FalseSucc); 2490 } 2491 } else { 2492 updateReachableEdge(B, TrueSucc); 2493 updateReachableEdge(B, FalseSucc); 2494 } 2495 } else if (auto *SI = dyn_cast<SwitchInst>(TI)) { 2496 // For switches, propagate the case values into the case 2497 // destinations. 2498 2499 Value *SwitchCond = SI->getCondition(); 2500 Value *CondEvaluated = findConditionEquivalence(SwitchCond); 2501 // See if we were able to turn this switch statement into a constant. 2502 if (CondEvaluated && isa<ConstantInt>(CondEvaluated)) { 2503 auto *CondVal = cast<ConstantInt>(CondEvaluated); 2504 // We should be able to get case value for this. 2505 auto Case = *SI->findCaseValue(CondVal); 2506 if (Case.getCaseSuccessor() == SI->getDefaultDest()) { 2507 // We proved the value is outside of the range of the case. 2508 // We can't do anything other than mark the default dest as reachable, 2509 // and go home. 2510 updateReachableEdge(B, SI->getDefaultDest()); 2511 return; 2512 } 2513 // Now get where it goes and mark it reachable. 2514 BasicBlock *TargetBlock = Case.getCaseSuccessor(); 2515 updateReachableEdge(B, TargetBlock); 2516 } else { 2517 for (unsigned i = 0, e = SI->getNumSuccessors(); i != e; ++i) { 2518 BasicBlock *TargetBlock = SI->getSuccessor(i); 2519 updateReachableEdge(B, TargetBlock); 2520 } 2521 } 2522 } else { 2523 // Otherwise this is either unconditional, or a type we have no 2524 // idea about. Just mark successors as reachable. 2525 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i) { 2526 BasicBlock *TargetBlock = TI->getSuccessor(i); 2527 updateReachableEdge(B, TargetBlock); 2528 } 2529 2530 // This also may be a memory defining terminator, in which case, set it 2531 // equivalent only to itself. 2532 // 2533 auto *MA = getMemoryAccess(TI); 2534 if (MA && !isa<MemoryUse>(MA)) { 2535 auto *CC = ensureLeaderOfMemoryClass(MA); 2536 if (setMemoryClass(MA, CC)) 2537 markMemoryUsersTouched(MA); 2538 } 2539 } 2540 } 2541 2542 // Remove the PHI of Ops PHI for I 2543 void NewGVN::removePhiOfOps(Instruction *I, PHINode *PHITemp) { 2544 InstrDFS.erase(PHITemp); 2545 // It's still a temp instruction. We keep it in the array so it gets erased. 2546 // However, it's no longer used by I, or in the block 2547 TempToBlock.erase(PHITemp); 2548 RealToTemp.erase(I); 2549 // We don't remove the users from the phi node uses. This wastes a little 2550 // time, but such is life. We could use two sets to track which were there 2551 // are the start of NewGVN, and which were added, but right nowt he cost of 2552 // tracking is more than the cost of checking for more phi of ops. 2553 } 2554 2555 // Add PHI Op in BB as a PHI of operations version of ExistingValue. 2556 void NewGVN::addPhiOfOps(PHINode *Op, BasicBlock *BB, 2557 Instruction *ExistingValue) { 2558 InstrDFS[Op] = InstrToDFSNum(ExistingValue); 2559 AllTempInstructions.insert(Op); 2560 TempToBlock[Op] = BB; 2561 RealToTemp[ExistingValue] = Op; 2562 // Add all users to phi node use, as they are now uses of the phi of ops phis 2563 // and may themselves be phi of ops. 2564 for (auto *U : ExistingValue->users()) 2565 if (auto *UI = dyn_cast<Instruction>(U)) 2566 PHINodeUses.insert(UI); 2567 } 2568 2569 static bool okayForPHIOfOps(const Instruction *I) { 2570 if (!EnablePhiOfOps) 2571 return false; 2572 return isa<BinaryOperator>(I) || isa<SelectInst>(I) || isa<CmpInst>(I) || 2573 isa<LoadInst>(I); 2574 } 2575 2576 bool NewGVN::OpIsSafeForPHIOfOpsHelper( 2577 Value *V, const BasicBlock *PHIBlock, 2578 SmallPtrSetImpl<const Value *> &Visited, 2579 SmallVectorImpl<Instruction *> &Worklist) { 2580 2581 if (!isa<Instruction>(V)) 2582 return true; 2583 auto OISIt = OpSafeForPHIOfOps.find(V); 2584 if (OISIt != OpSafeForPHIOfOps.end()) 2585 return OISIt->second; 2586 2587 // Keep walking until we either dominate the phi block, or hit a phi, or run 2588 // out of things to check. 2589 if (DT->properlyDominates(getBlockForValue(V), PHIBlock)) { 2590 OpSafeForPHIOfOps.insert({V, true}); 2591 return true; 2592 } 2593 // PHI in the same block. 2594 if (isa<PHINode>(V) && getBlockForValue(V) == PHIBlock) { 2595 OpSafeForPHIOfOps.insert({V, false}); 2596 return false; 2597 } 2598 2599 auto *OrigI = cast<Instruction>(V); 2600 // When we hit an instruction that reads memory (load, call, etc), we must 2601 // consider any store that may happen in the loop. For now, we assume the 2602 // worst: there is a store in the loop that alias with this read. 2603 // The case where the load is outside the loop is already covered by the 2604 // dominator check above. 2605 // TODO: relax this condition 2606 if (OrigI->mayReadFromMemory()) 2607 return false; 2608 2609 for (auto *Op : OrigI->operand_values()) { 2610 if (!isa<Instruction>(Op)) 2611 continue; 2612 // Stop now if we find an unsafe operand. 2613 auto OISIt = OpSafeForPHIOfOps.find(OrigI); 2614 if (OISIt != OpSafeForPHIOfOps.end()) { 2615 if (!OISIt->second) { 2616 OpSafeForPHIOfOps.insert({V, false}); 2617 return false; 2618 } 2619 continue; 2620 } 2621 if (!Visited.insert(Op).second) 2622 continue; 2623 Worklist.push_back(cast<Instruction>(Op)); 2624 } 2625 return true; 2626 } 2627 2628 // Return true if this operand will be safe to use for phi of ops. 2629 // 2630 // The reason some operands are unsafe is that we are not trying to recursively 2631 // translate everything back through phi nodes. We actually expect some lookups 2632 // of expressions to fail. In particular, a lookup where the expression cannot 2633 // exist in the predecessor. This is true even if the expression, as shown, can 2634 // be determined to be constant. 2635 bool NewGVN::OpIsSafeForPHIOfOps(Value *V, const BasicBlock *PHIBlock, 2636 SmallPtrSetImpl<const Value *> &Visited) { 2637 SmallVector<Instruction *, 4> Worklist; 2638 if (!OpIsSafeForPHIOfOpsHelper(V, PHIBlock, Visited, Worklist)) 2639 return false; 2640 while (!Worklist.empty()) { 2641 auto *I = Worklist.pop_back_val(); 2642 if (!OpIsSafeForPHIOfOpsHelper(I, PHIBlock, Visited, Worklist)) 2643 return false; 2644 } 2645 OpSafeForPHIOfOps.insert({V, true}); 2646 return true; 2647 } 2648 2649 // Try to find a leader for instruction TransInst, which is a phi translated 2650 // version of something in our original program. Visited is used to ensure we 2651 // don't infinite loop during translations of cycles. OrigInst is the 2652 // instruction in the original program, and PredBB is the predecessor we 2653 // translated it through. 2654 Value *NewGVN::findLeaderForInst(Instruction *TransInst, 2655 SmallPtrSetImpl<Value *> &Visited, 2656 MemoryAccess *MemAccess, Instruction *OrigInst, 2657 BasicBlock *PredBB) { 2658 unsigned IDFSNum = InstrToDFSNum(OrigInst); 2659 // Make sure it's marked as a temporary instruction. 2660 AllTempInstructions.insert(TransInst); 2661 // and make sure anything that tries to add it's DFS number is 2662 // redirected to the instruction we are making a phi of ops 2663 // for. 2664 TempToBlock.insert({TransInst, PredBB}); 2665 InstrDFS.insert({TransInst, IDFSNum}); 2666 2667 auto Res = performSymbolicEvaluation(TransInst, Visited); 2668 const Expression *E = Res.Expr; 2669 addAdditionalUsers(Res, OrigInst); 2670 InstrDFS.erase(TransInst); 2671 AllTempInstructions.erase(TransInst); 2672 TempToBlock.erase(TransInst); 2673 if (MemAccess) 2674 TempToMemory.erase(TransInst); 2675 if (!E) 2676 return nullptr; 2677 auto *FoundVal = findPHIOfOpsLeader(E, OrigInst, PredBB); 2678 if (!FoundVal) { 2679 ExpressionToPhiOfOps[E].insert(OrigInst); 2680 LLVM_DEBUG(dbgs() << "Cannot find phi of ops operand for " << *TransInst 2681 << " in block " << getBlockName(PredBB) << "\n"); 2682 return nullptr; 2683 } 2684 if (auto *SI = dyn_cast<StoreInst>(FoundVal)) 2685 FoundVal = SI->getValueOperand(); 2686 return FoundVal; 2687 } 2688 2689 // When we see an instruction that is an op of phis, generate the equivalent phi 2690 // of ops form. 2691 const Expression * 2692 NewGVN::makePossiblePHIOfOps(Instruction *I, 2693 SmallPtrSetImpl<Value *> &Visited) { 2694 if (!okayForPHIOfOps(I)) 2695 return nullptr; 2696 2697 if (!Visited.insert(I).second) 2698 return nullptr; 2699 // For now, we require the instruction be cycle free because we don't 2700 // *always* create a phi of ops for instructions that could be done as phi 2701 // of ops, we only do it if we think it is useful. If we did do it all the 2702 // time, we could remove the cycle free check. 2703 if (!isCycleFree(I)) 2704 return nullptr; 2705 2706 SmallPtrSet<const Value *, 8> ProcessedPHIs; 2707 // TODO: We don't do phi translation on memory accesses because it's 2708 // complicated. For a load, we'd need to be able to simulate a new memoryuse, 2709 // which we don't have a good way of doing ATM. 2710 auto *MemAccess = getMemoryAccess(I); 2711 // If the memory operation is defined by a memory operation this block that 2712 // isn't a MemoryPhi, transforming the pointer backwards through a scalar phi 2713 // can't help, as it would still be killed by that memory operation. 2714 if (MemAccess && !isa<MemoryPhi>(MemAccess->getDefiningAccess()) && 2715 MemAccess->getDefiningAccess()->getBlock() == I->getParent()) 2716 return nullptr; 2717 2718 // Convert op of phis to phi of ops 2719 SmallPtrSet<const Value *, 10> VisitedOps; 2720 SmallVector<Value *, 4> Ops(I->operand_values()); 2721 BasicBlock *SamePHIBlock = nullptr; 2722 PHINode *OpPHI = nullptr; 2723 if (!DebugCounter::shouldExecute(PHIOfOpsCounter)) 2724 return nullptr; 2725 for (auto *Op : Ops) { 2726 if (!isa<PHINode>(Op)) { 2727 auto *ValuePHI = RealToTemp.lookup(Op); 2728 if (!ValuePHI) 2729 continue; 2730 LLVM_DEBUG(dbgs() << "Found possible dependent phi of ops\n"); 2731 Op = ValuePHI; 2732 } 2733 OpPHI = cast<PHINode>(Op); 2734 if (!SamePHIBlock) { 2735 SamePHIBlock = getBlockForValue(OpPHI); 2736 } else if (SamePHIBlock != getBlockForValue(OpPHI)) { 2737 LLVM_DEBUG( 2738 dbgs() 2739 << "PHIs for operands are not all in the same block, aborting\n"); 2740 return nullptr; 2741 } 2742 // No point in doing this for one-operand phis. 2743 if (OpPHI->getNumOperands() == 1) { 2744 OpPHI = nullptr; 2745 continue; 2746 } 2747 } 2748 2749 if (!OpPHI) 2750 return nullptr; 2751 2752 SmallVector<ValPair, 4> PHIOps; 2753 SmallPtrSet<Value *, 4> Deps; 2754 auto *PHIBlock = getBlockForValue(OpPHI); 2755 RevisitOnReachabilityChange[PHIBlock].reset(InstrToDFSNum(I)); 2756 for (unsigned PredNum = 0; PredNum < OpPHI->getNumOperands(); ++PredNum) { 2757 auto *PredBB = OpPHI->getIncomingBlock(PredNum); 2758 Value *FoundVal = nullptr; 2759 SmallPtrSet<Value *, 4> CurrentDeps; 2760 // We could just skip unreachable edges entirely but it's tricky to do 2761 // with rewriting existing phi nodes. 2762 if (ReachableEdges.count({PredBB, PHIBlock})) { 2763 // Clone the instruction, create an expression from it that is 2764 // translated back into the predecessor, and see if we have a leader. 2765 Instruction *ValueOp = I->clone(); 2766 if (MemAccess) 2767 TempToMemory.insert({ValueOp, MemAccess}); 2768 bool SafeForPHIOfOps = true; 2769 VisitedOps.clear(); 2770 for (auto &Op : ValueOp->operands()) { 2771 auto *OrigOp = &*Op; 2772 // When these operand changes, it could change whether there is a 2773 // leader for us or not, so we have to add additional users. 2774 if (isa<PHINode>(Op)) { 2775 Op = Op->DoPHITranslation(PHIBlock, PredBB); 2776 if (Op != OrigOp && Op != I) 2777 CurrentDeps.insert(Op); 2778 } else if (auto *ValuePHI = RealToTemp.lookup(Op)) { 2779 if (getBlockForValue(ValuePHI) == PHIBlock) 2780 Op = ValuePHI->getIncomingValueForBlock(PredBB); 2781 } 2782 // If we phi-translated the op, it must be safe. 2783 SafeForPHIOfOps = 2784 SafeForPHIOfOps && 2785 (Op != OrigOp || OpIsSafeForPHIOfOps(Op, PHIBlock, VisitedOps)); 2786 } 2787 // FIXME: For those things that are not safe we could generate 2788 // expressions all the way down, and see if this comes out to a 2789 // constant. For anything where that is true, and unsafe, we should 2790 // have made a phi-of-ops (or value numbered it equivalent to something) 2791 // for the pieces already. 2792 FoundVal = !SafeForPHIOfOps ? nullptr 2793 : findLeaderForInst(ValueOp, Visited, 2794 MemAccess, I, PredBB); 2795 ValueOp->deleteValue(); 2796 if (!FoundVal) { 2797 // We failed to find a leader for the current ValueOp, but this might 2798 // change in case of the translated operands change. 2799 if (SafeForPHIOfOps) 2800 for (auto Dep : CurrentDeps) 2801 addAdditionalUsers(Dep, I); 2802 2803 return nullptr; 2804 } 2805 Deps.insert(CurrentDeps.begin(), CurrentDeps.end()); 2806 } else { 2807 LLVM_DEBUG(dbgs() << "Skipping phi of ops operand for incoming block " 2808 << getBlockName(PredBB) 2809 << " because the block is unreachable\n"); 2810 FoundVal = PoisonValue::get(I->getType()); 2811 RevisitOnReachabilityChange[PHIBlock].set(InstrToDFSNum(I)); 2812 } 2813 2814 PHIOps.push_back({FoundVal, PredBB}); 2815 LLVM_DEBUG(dbgs() << "Found phi of ops operand " << *FoundVal << " in " 2816 << getBlockName(PredBB) << "\n"); 2817 } 2818 for (auto Dep : Deps) 2819 addAdditionalUsers(Dep, I); 2820 sortPHIOps(PHIOps); 2821 auto *E = performSymbolicPHIEvaluation(PHIOps, I, PHIBlock); 2822 if (isa<ConstantExpression>(E) || isa<VariableExpression>(E)) { 2823 LLVM_DEBUG( 2824 dbgs() 2825 << "Not creating real PHI of ops because it simplified to existing " 2826 "value or constant\n"); 2827 // We have leaders for all operands, but do not create a real PHI node with 2828 // those leaders as operands, so the link between the operands and the 2829 // PHI-of-ops is not materialized in the IR. If any of those leaders 2830 // changes, the PHI-of-op may change also, so we need to add the operands as 2831 // additional users. 2832 for (auto &O : PHIOps) 2833 addAdditionalUsers(O.first, I); 2834 2835 return E; 2836 } 2837 auto *ValuePHI = RealToTemp.lookup(I); 2838 bool NewPHI = false; 2839 if (!ValuePHI) { 2840 ValuePHI = 2841 PHINode::Create(I->getType(), OpPHI->getNumOperands(), "phiofops"); 2842 addPhiOfOps(ValuePHI, PHIBlock, I); 2843 NewPHI = true; 2844 NumGVNPHIOfOpsCreated++; 2845 } 2846 if (NewPHI) { 2847 for (auto PHIOp : PHIOps) 2848 ValuePHI->addIncoming(PHIOp.first, PHIOp.second); 2849 } else { 2850 TempToBlock[ValuePHI] = PHIBlock; 2851 unsigned int i = 0; 2852 for (auto PHIOp : PHIOps) { 2853 ValuePHI->setIncomingValue(i, PHIOp.first); 2854 ValuePHI->setIncomingBlock(i, PHIOp.second); 2855 ++i; 2856 } 2857 } 2858 RevisitOnReachabilityChange[PHIBlock].set(InstrToDFSNum(I)); 2859 LLVM_DEBUG(dbgs() << "Created phi of ops " << *ValuePHI << " for " << *I 2860 << "\n"); 2861 2862 return E; 2863 } 2864 2865 // The algorithm initially places the values of the routine in the TOP 2866 // congruence class. The leader of TOP is the undetermined value `poison`. 2867 // When the algorithm has finished, values still in TOP are unreachable. 2868 void NewGVN::initializeCongruenceClasses(Function &F) { 2869 NextCongruenceNum = 0; 2870 2871 // Note that even though we use the live on entry def as a representative 2872 // MemoryAccess, it is *not* the same as the actual live on entry def. We 2873 // have no real equivalent to poison for MemoryAccesses, and so we really 2874 // should be checking whether the MemoryAccess is top if we want to know if it 2875 // is equivalent to everything. Otherwise, what this really signifies is that 2876 // the access "it reaches all the way back to the beginning of the function" 2877 2878 // Initialize all other instructions to be in TOP class. 2879 TOPClass = createCongruenceClass(nullptr, nullptr); 2880 TOPClass->setMemoryLeader(MSSA->getLiveOnEntryDef()); 2881 // The live on entry def gets put into it's own class 2882 MemoryAccessToClass[MSSA->getLiveOnEntryDef()] = 2883 createMemoryClass(MSSA->getLiveOnEntryDef()); 2884 2885 for (auto DTN : nodes(DT)) { 2886 BasicBlock *BB = DTN->getBlock(); 2887 // All MemoryAccesses are equivalent to live on entry to start. They must 2888 // be initialized to something so that initial changes are noticed. For 2889 // the maximal answer, we initialize them all to be the same as 2890 // liveOnEntry. 2891 auto *MemoryBlockDefs = MSSA->getBlockDefs(BB); 2892 if (MemoryBlockDefs) 2893 for (const auto &Def : *MemoryBlockDefs) { 2894 MemoryAccessToClass[&Def] = TOPClass; 2895 auto *MD = dyn_cast<MemoryDef>(&Def); 2896 // Insert the memory phis into the member list. 2897 if (!MD) { 2898 const MemoryPhi *MP = cast<MemoryPhi>(&Def); 2899 TOPClass->memory_insert(MP); 2900 MemoryPhiState.insert({MP, MPS_TOP}); 2901 } 2902 2903 if (MD && isa<StoreInst>(MD->getMemoryInst())) 2904 TOPClass->incStoreCount(); 2905 } 2906 2907 // FIXME: This is trying to discover which instructions are uses of phi 2908 // nodes. We should move this into one of the myriad of places that walk 2909 // all the operands already. 2910 for (auto &I : *BB) { 2911 if (isa<PHINode>(&I)) 2912 for (auto *U : I.users()) 2913 if (auto *UInst = dyn_cast<Instruction>(U)) 2914 if (InstrToDFSNum(UInst) != 0 && okayForPHIOfOps(UInst)) 2915 PHINodeUses.insert(UInst); 2916 // Don't insert void terminators into the class. We don't value number 2917 // them, and they just end up sitting in TOP. 2918 if (I.isTerminator() && I.getType()->isVoidTy()) 2919 continue; 2920 TOPClass->insert(&I); 2921 ValueToClass[&I] = TOPClass; 2922 } 2923 } 2924 2925 // Initialize arguments to be in their own unique congruence classes 2926 for (auto &FA : F.args()) 2927 createSingletonCongruenceClass(&FA); 2928 } 2929 2930 void NewGVN::cleanupTables() { 2931 for (unsigned i = 0, e = CongruenceClasses.size(); i != e; ++i) { 2932 LLVM_DEBUG(dbgs() << "Congruence class " << CongruenceClasses[i]->getID() 2933 << " has " << CongruenceClasses[i]->size() 2934 << " members\n"); 2935 // Make sure we delete the congruence class (probably worth switching to 2936 // a unique_ptr at some point. 2937 delete CongruenceClasses[i]; 2938 CongruenceClasses[i] = nullptr; 2939 } 2940 2941 // Destroy the value expressions 2942 SmallVector<Instruction *, 8> TempInst(AllTempInstructions.begin(), 2943 AllTempInstructions.end()); 2944 AllTempInstructions.clear(); 2945 2946 // We have to drop all references for everything first, so there are no uses 2947 // left as we delete them. 2948 for (auto *I : TempInst) { 2949 I->dropAllReferences(); 2950 } 2951 2952 while (!TempInst.empty()) { 2953 auto *I = TempInst.pop_back_val(); 2954 I->deleteValue(); 2955 } 2956 2957 ValueToClass.clear(); 2958 ArgRecycler.clear(ExpressionAllocator); 2959 ExpressionAllocator.Reset(); 2960 CongruenceClasses.clear(); 2961 ExpressionToClass.clear(); 2962 ValueToExpression.clear(); 2963 RealToTemp.clear(); 2964 AdditionalUsers.clear(); 2965 ExpressionToPhiOfOps.clear(); 2966 TempToBlock.clear(); 2967 TempToMemory.clear(); 2968 PHINodeUses.clear(); 2969 OpSafeForPHIOfOps.clear(); 2970 ReachableBlocks.clear(); 2971 ReachableEdges.clear(); 2972 #ifndef NDEBUG 2973 ProcessedCount.clear(); 2974 #endif 2975 InstrDFS.clear(); 2976 InstructionsToErase.clear(); 2977 DFSToInstr.clear(); 2978 BlockInstRange.clear(); 2979 TouchedInstructions.clear(); 2980 MemoryAccessToClass.clear(); 2981 PredicateToUsers.clear(); 2982 MemoryToUsers.clear(); 2983 RevisitOnReachabilityChange.clear(); 2984 IntrinsicInstPred.clear(); 2985 } 2986 2987 // Assign local DFS number mapping to instructions, and leave space for Value 2988 // PHI's. 2989 std::pair<unsigned, unsigned> NewGVN::assignDFSNumbers(BasicBlock *B, 2990 unsigned Start) { 2991 unsigned End = Start; 2992 if (MemoryAccess *MemPhi = getMemoryAccess(B)) { 2993 InstrDFS[MemPhi] = End++; 2994 DFSToInstr.emplace_back(MemPhi); 2995 } 2996 2997 // Then the real block goes next. 2998 for (auto &I : *B) { 2999 // There's no need to call isInstructionTriviallyDead more than once on 3000 // an instruction. Therefore, once we know that an instruction is dead 3001 // we change its DFS number so that it doesn't get value numbered. 3002 if (isInstructionTriviallyDead(&I, TLI)) { 3003 InstrDFS[&I] = 0; 3004 LLVM_DEBUG(dbgs() << "Skipping trivially dead instruction " << I << "\n"); 3005 markInstructionForDeletion(&I); 3006 continue; 3007 } 3008 if (isa<PHINode>(&I)) 3009 RevisitOnReachabilityChange[B].set(End); 3010 InstrDFS[&I] = End++; 3011 DFSToInstr.emplace_back(&I); 3012 } 3013 3014 // All of the range functions taken half-open ranges (open on the end side). 3015 // So we do not subtract one from count, because at this point it is one 3016 // greater than the last instruction. 3017 return std::make_pair(Start, End); 3018 } 3019 3020 void NewGVN::updateProcessedCount(const Value *V) { 3021 #ifndef NDEBUG 3022 if (ProcessedCount.count(V) == 0) { 3023 ProcessedCount.insert({V, 1}); 3024 } else { 3025 ++ProcessedCount[V]; 3026 assert(ProcessedCount[V] < 100 && 3027 "Seem to have processed the same Value a lot"); 3028 } 3029 #endif 3030 } 3031 3032 // Evaluate MemoryPhi nodes symbolically, just like PHI nodes 3033 void NewGVN::valueNumberMemoryPhi(MemoryPhi *MP) { 3034 // If all the arguments are the same, the MemoryPhi has the same value as the 3035 // argument. Filter out unreachable blocks and self phis from our operands. 3036 // TODO: We could do cycle-checking on the memory phis to allow valueizing for 3037 // self-phi checking. 3038 const BasicBlock *PHIBlock = MP->getBlock(); 3039 auto Filtered = make_filter_range(MP->operands(), [&](const Use &U) { 3040 return cast<MemoryAccess>(U) != MP && 3041 !isMemoryAccessTOP(cast<MemoryAccess>(U)) && 3042 ReachableEdges.count({MP->getIncomingBlock(U), PHIBlock}); 3043 }); 3044 // If all that is left is nothing, our memoryphi is poison. We keep it as 3045 // InitialClass. Note: The only case this should happen is if we have at 3046 // least one self-argument. 3047 if (Filtered.begin() == Filtered.end()) { 3048 if (setMemoryClass(MP, TOPClass)) 3049 markMemoryUsersTouched(MP); 3050 return; 3051 } 3052 3053 // Transform the remaining operands into operand leaders. 3054 // FIXME: mapped_iterator should have a range version. 3055 auto LookupFunc = [&](const Use &U) { 3056 return lookupMemoryLeader(cast<MemoryAccess>(U)); 3057 }; 3058 auto MappedBegin = map_iterator(Filtered.begin(), LookupFunc); 3059 auto MappedEnd = map_iterator(Filtered.end(), LookupFunc); 3060 3061 // and now check if all the elements are equal. 3062 // Sadly, we can't use std::equals since these are random access iterators. 3063 const auto *AllSameValue = *MappedBegin; 3064 ++MappedBegin; 3065 bool AllEqual = std::all_of( 3066 MappedBegin, MappedEnd, 3067 [&AllSameValue](const MemoryAccess *V) { return V == AllSameValue; }); 3068 3069 if (AllEqual) 3070 LLVM_DEBUG(dbgs() << "Memory Phi value numbered to " << *AllSameValue 3071 << "\n"); 3072 else 3073 LLVM_DEBUG(dbgs() << "Memory Phi value numbered to itself\n"); 3074 // If it's equal to something, it's in that class. Otherwise, it has to be in 3075 // a class where it is the leader (other things may be equivalent to it, but 3076 // it needs to start off in its own class, which means it must have been the 3077 // leader, and it can't have stopped being the leader because it was never 3078 // removed). 3079 CongruenceClass *CC = 3080 AllEqual ? getMemoryClass(AllSameValue) : ensureLeaderOfMemoryClass(MP); 3081 auto OldState = MemoryPhiState.lookup(MP); 3082 assert(OldState != MPS_Invalid && "Invalid memory phi state"); 3083 auto NewState = AllEqual ? MPS_Equivalent : MPS_Unique; 3084 MemoryPhiState[MP] = NewState; 3085 if (setMemoryClass(MP, CC) || OldState != NewState) 3086 markMemoryUsersTouched(MP); 3087 } 3088 3089 // Value number a single instruction, symbolically evaluating, performing 3090 // congruence finding, and updating mappings. 3091 void NewGVN::valueNumberInstruction(Instruction *I) { 3092 LLVM_DEBUG(dbgs() << "Processing instruction " << *I << "\n"); 3093 if (!I->isTerminator()) { 3094 const Expression *Symbolized = nullptr; 3095 SmallPtrSet<Value *, 2> Visited; 3096 if (DebugCounter::shouldExecute(VNCounter)) { 3097 auto Res = performSymbolicEvaluation(I, Visited); 3098 Symbolized = Res.Expr; 3099 addAdditionalUsers(Res, I); 3100 3101 // Make a phi of ops if necessary 3102 if (Symbolized && !isa<ConstantExpression>(Symbolized) && 3103 !isa<VariableExpression>(Symbolized) && PHINodeUses.count(I)) { 3104 auto *PHIE = makePossiblePHIOfOps(I, Visited); 3105 // If we created a phi of ops, use it. 3106 // If we couldn't create one, make sure we don't leave one lying around 3107 if (PHIE) { 3108 Symbolized = PHIE; 3109 } else if (auto *Op = RealToTemp.lookup(I)) { 3110 removePhiOfOps(I, Op); 3111 } 3112 } 3113 } else { 3114 // Mark the instruction as unused so we don't value number it again. 3115 InstrDFS[I] = 0; 3116 } 3117 // If we couldn't come up with a symbolic expression, use the unknown 3118 // expression 3119 if (Symbolized == nullptr) 3120 Symbolized = createUnknownExpression(I); 3121 performCongruenceFinding(I, Symbolized); 3122 } else { 3123 // Handle terminators that return values. All of them produce values we 3124 // don't currently understand. We don't place non-value producing 3125 // terminators in a class. 3126 if (!I->getType()->isVoidTy()) { 3127 auto *Symbolized = createUnknownExpression(I); 3128 performCongruenceFinding(I, Symbolized); 3129 } 3130 processOutgoingEdges(I, I->getParent()); 3131 } 3132 } 3133 3134 // Check if there is a path, using single or equal argument phi nodes, from 3135 // First to Second. 3136 bool NewGVN::singleReachablePHIPath( 3137 SmallPtrSet<const MemoryAccess *, 8> &Visited, const MemoryAccess *First, 3138 const MemoryAccess *Second) const { 3139 if (First == Second) 3140 return true; 3141 if (MSSA->isLiveOnEntryDef(First)) 3142 return false; 3143 3144 // This is not perfect, but as we're just verifying here, we can live with 3145 // the loss of precision. The real solution would be that of doing strongly 3146 // connected component finding in this routine, and it's probably not worth 3147 // the complexity for the time being. So, we just keep a set of visited 3148 // MemoryAccess and return true when we hit a cycle. 3149 if (!Visited.insert(First).second) 3150 return true; 3151 3152 const auto *EndDef = First; 3153 for (auto *ChainDef : optimized_def_chain(First)) { 3154 if (ChainDef == Second) 3155 return true; 3156 if (MSSA->isLiveOnEntryDef(ChainDef)) 3157 return false; 3158 EndDef = ChainDef; 3159 } 3160 auto *MP = cast<MemoryPhi>(EndDef); 3161 auto ReachableOperandPred = [&](const Use &U) { 3162 return ReachableEdges.count({MP->getIncomingBlock(U), MP->getBlock()}); 3163 }; 3164 auto FilteredPhiArgs = 3165 make_filter_range(MP->operands(), ReachableOperandPred); 3166 SmallVector<const Value *, 32> OperandList; 3167 llvm::copy(FilteredPhiArgs, std::back_inserter(OperandList)); 3168 bool Okay = is_splat(OperandList); 3169 if (Okay) 3170 return singleReachablePHIPath(Visited, cast<MemoryAccess>(OperandList[0]), 3171 Second); 3172 return false; 3173 } 3174 3175 // Verify the that the memory equivalence table makes sense relative to the 3176 // congruence classes. Note that this checking is not perfect, and is currently 3177 // subject to very rare false negatives. It is only useful for 3178 // testing/debugging. 3179 void NewGVN::verifyMemoryCongruency() const { 3180 #ifndef NDEBUG 3181 // Verify that the memory table equivalence and memory member set match 3182 for (const auto *CC : CongruenceClasses) { 3183 if (CC == TOPClass || CC->isDead()) 3184 continue; 3185 if (CC->getStoreCount() != 0) { 3186 assert((CC->getStoredValue() || !isa<StoreInst>(CC->getLeader())) && 3187 "Any class with a store as a leader should have a " 3188 "representative stored value"); 3189 assert(CC->getMemoryLeader() && 3190 "Any congruence class with a store should have a " 3191 "representative access"); 3192 } 3193 3194 if (CC->getMemoryLeader()) 3195 assert(MemoryAccessToClass.lookup(CC->getMemoryLeader()) == CC && 3196 "Representative MemoryAccess does not appear to be reverse " 3197 "mapped properly"); 3198 for (auto M : CC->memory()) 3199 assert(MemoryAccessToClass.lookup(M) == CC && 3200 "Memory member does not appear to be reverse mapped properly"); 3201 } 3202 3203 // Anything equivalent in the MemoryAccess table should be in the same 3204 // congruence class. 3205 3206 // Filter out the unreachable and trivially dead entries, because they may 3207 // never have been updated if the instructions were not processed. 3208 auto ReachableAccessPred = 3209 [&](const std::pair<const MemoryAccess *, CongruenceClass *> Pair) { 3210 bool Result = ReachableBlocks.count(Pair.first->getBlock()); 3211 if (!Result || MSSA->isLiveOnEntryDef(Pair.first) || 3212 MemoryToDFSNum(Pair.first) == 0) 3213 return false; 3214 if (auto *MemDef = dyn_cast<MemoryDef>(Pair.first)) 3215 return !isInstructionTriviallyDead(MemDef->getMemoryInst()); 3216 3217 // We could have phi nodes which operands are all trivially dead, 3218 // so we don't process them. 3219 if (auto *MemPHI = dyn_cast<MemoryPhi>(Pair.first)) { 3220 for (auto &U : MemPHI->incoming_values()) { 3221 if (auto *I = dyn_cast<Instruction>(&*U)) { 3222 if (!isInstructionTriviallyDead(I)) 3223 return true; 3224 } 3225 } 3226 return false; 3227 } 3228 3229 return true; 3230 }; 3231 3232 auto Filtered = make_filter_range(MemoryAccessToClass, ReachableAccessPred); 3233 for (auto KV : Filtered) { 3234 if (auto *FirstMUD = dyn_cast<MemoryUseOrDef>(KV.first)) { 3235 auto *SecondMUD = dyn_cast<MemoryUseOrDef>(KV.second->getMemoryLeader()); 3236 if (FirstMUD && SecondMUD) { 3237 SmallPtrSet<const MemoryAccess *, 8> VisitedMAS; 3238 assert((singleReachablePHIPath(VisitedMAS, FirstMUD, SecondMUD) || 3239 ValueToClass.lookup(FirstMUD->getMemoryInst()) == 3240 ValueToClass.lookup(SecondMUD->getMemoryInst())) && 3241 "The instructions for these memory operations should have " 3242 "been in the same congruence class or reachable through" 3243 "a single argument phi"); 3244 } 3245 } else if (auto *FirstMP = dyn_cast<MemoryPhi>(KV.first)) { 3246 // We can only sanely verify that MemoryDefs in the operand list all have 3247 // the same class. 3248 auto ReachableOperandPred = [&](const Use &U) { 3249 return ReachableEdges.count( 3250 {FirstMP->getIncomingBlock(U), FirstMP->getBlock()}) && 3251 isa<MemoryDef>(U); 3252 3253 }; 3254 // All arguments should in the same class, ignoring unreachable arguments 3255 auto FilteredPhiArgs = 3256 make_filter_range(FirstMP->operands(), ReachableOperandPred); 3257 SmallVector<const CongruenceClass *, 16> PhiOpClasses; 3258 std::transform(FilteredPhiArgs.begin(), FilteredPhiArgs.end(), 3259 std::back_inserter(PhiOpClasses), [&](const Use &U) { 3260 const MemoryDef *MD = cast<MemoryDef>(U); 3261 return ValueToClass.lookup(MD->getMemoryInst()); 3262 }); 3263 assert(is_splat(PhiOpClasses) && 3264 "All MemoryPhi arguments should be in the same class"); 3265 } 3266 } 3267 #endif 3268 } 3269 3270 // Verify that the sparse propagation we did actually found the maximal fixpoint 3271 // We do this by storing the value to class mapping, touching all instructions, 3272 // and redoing the iteration to see if anything changed. 3273 void NewGVN::verifyIterationSettled(Function &F) { 3274 #ifndef NDEBUG 3275 LLVM_DEBUG(dbgs() << "Beginning iteration verification\n"); 3276 if (DebugCounter::isCounterSet(VNCounter)) 3277 DebugCounter::setCounterValue(VNCounter, StartingVNCounter); 3278 3279 // Note that we have to store the actual classes, as we may change existing 3280 // classes during iteration. This is because our memory iteration propagation 3281 // is not perfect, and so may waste a little work. But it should generate 3282 // exactly the same congruence classes we have now, with different IDs. 3283 std::map<const Value *, CongruenceClass> BeforeIteration; 3284 3285 for (auto &KV : ValueToClass) { 3286 if (auto *I = dyn_cast<Instruction>(KV.first)) 3287 // Skip unused/dead instructions. 3288 if (InstrToDFSNum(I) == 0) 3289 continue; 3290 BeforeIteration.insert({KV.first, *KV.second}); 3291 } 3292 3293 TouchedInstructions.set(); 3294 TouchedInstructions.reset(0); 3295 iterateTouchedInstructions(); 3296 DenseSet<std::pair<const CongruenceClass *, const CongruenceClass *>> 3297 EqualClasses; 3298 for (const auto &KV : ValueToClass) { 3299 if (auto *I = dyn_cast<Instruction>(KV.first)) 3300 // Skip unused/dead instructions. 3301 if (InstrToDFSNum(I) == 0) 3302 continue; 3303 // We could sink these uses, but i think this adds a bit of clarity here as 3304 // to what we are comparing. 3305 auto *BeforeCC = &BeforeIteration.find(KV.first)->second; 3306 auto *AfterCC = KV.second; 3307 // Note that the classes can't change at this point, so we memoize the set 3308 // that are equal. 3309 if (!EqualClasses.count({BeforeCC, AfterCC})) { 3310 assert(BeforeCC->isEquivalentTo(AfterCC) && 3311 "Value number changed after main loop completed!"); 3312 EqualClasses.insert({BeforeCC, AfterCC}); 3313 } 3314 } 3315 #endif 3316 } 3317 3318 // Verify that for each store expression in the expression to class mapping, 3319 // only the latest appears, and multiple ones do not appear. 3320 // Because loads do not use the stored value when doing equality with stores, 3321 // if we don't erase the old store expressions from the table, a load can find 3322 // a no-longer valid StoreExpression. 3323 void NewGVN::verifyStoreExpressions() const { 3324 #ifndef NDEBUG 3325 // This is the only use of this, and it's not worth defining a complicated 3326 // densemapinfo hash/equality function for it. 3327 std::set< 3328 std::pair<const Value *, 3329 std::tuple<const Value *, const CongruenceClass *, Value *>>> 3330 StoreExpressionSet; 3331 for (const auto &KV : ExpressionToClass) { 3332 if (auto *SE = dyn_cast<StoreExpression>(KV.first)) { 3333 // Make sure a version that will conflict with loads is not already there 3334 auto Res = StoreExpressionSet.insert( 3335 {SE->getOperand(0), std::make_tuple(SE->getMemoryLeader(), KV.second, 3336 SE->getStoredValue())}); 3337 bool Okay = Res.second; 3338 // It's okay to have the same expression already in there if it is 3339 // identical in nature. 3340 // This can happen when the leader of the stored value changes over time. 3341 if (!Okay) 3342 Okay = (std::get<1>(Res.first->second) == KV.second) && 3343 (lookupOperandLeader(std::get<2>(Res.first->second)) == 3344 lookupOperandLeader(SE->getStoredValue())); 3345 assert(Okay && "Stored expression conflict exists in expression table"); 3346 auto *ValueExpr = ValueToExpression.lookup(SE->getStoreInst()); 3347 assert(ValueExpr && ValueExpr->equals(*SE) && 3348 "StoreExpression in ExpressionToClass is not latest " 3349 "StoreExpression for value"); 3350 } 3351 } 3352 #endif 3353 } 3354 3355 // This is the main value numbering loop, it iterates over the initial touched 3356 // instruction set, propagating value numbers, marking things touched, etc, 3357 // until the set of touched instructions is completely empty. 3358 void NewGVN::iterateTouchedInstructions() { 3359 uint64_t Iterations = 0; 3360 // Figure out where touchedinstructions starts 3361 int FirstInstr = TouchedInstructions.find_first(); 3362 // Nothing set, nothing to iterate, just return. 3363 if (FirstInstr == -1) 3364 return; 3365 const BasicBlock *LastBlock = getBlockForValue(InstrFromDFSNum(FirstInstr)); 3366 while (TouchedInstructions.any()) { 3367 ++Iterations; 3368 // Walk through all the instructions in all the blocks in RPO. 3369 // TODO: As we hit a new block, we should push and pop equalities into a 3370 // table lookupOperandLeader can use, to catch things PredicateInfo 3371 // might miss, like edge-only equivalences. 3372 for (unsigned InstrNum : TouchedInstructions.set_bits()) { 3373 3374 // This instruction was found to be dead. We don't bother looking 3375 // at it again. 3376 if (InstrNum == 0) { 3377 TouchedInstructions.reset(InstrNum); 3378 continue; 3379 } 3380 3381 Value *V = InstrFromDFSNum(InstrNum); 3382 const BasicBlock *CurrBlock = getBlockForValue(V); 3383 3384 // If we hit a new block, do reachability processing. 3385 if (CurrBlock != LastBlock) { 3386 LastBlock = CurrBlock; 3387 bool BlockReachable = ReachableBlocks.count(CurrBlock); 3388 const auto &CurrInstRange = BlockInstRange.lookup(CurrBlock); 3389 3390 // If it's not reachable, erase any touched instructions and move on. 3391 if (!BlockReachable) { 3392 TouchedInstructions.reset(CurrInstRange.first, CurrInstRange.second); 3393 LLVM_DEBUG(dbgs() << "Skipping instructions in block " 3394 << getBlockName(CurrBlock) 3395 << " because it is unreachable\n"); 3396 continue; 3397 } 3398 updateProcessedCount(CurrBlock); 3399 } 3400 // Reset after processing (because we may mark ourselves as touched when 3401 // we propagate equalities). 3402 TouchedInstructions.reset(InstrNum); 3403 3404 if (auto *MP = dyn_cast<MemoryPhi>(V)) { 3405 LLVM_DEBUG(dbgs() << "Processing MemoryPhi " << *MP << "\n"); 3406 valueNumberMemoryPhi(MP); 3407 } else if (auto *I = dyn_cast<Instruction>(V)) { 3408 valueNumberInstruction(I); 3409 } else { 3410 llvm_unreachable("Should have been a MemoryPhi or Instruction"); 3411 } 3412 updateProcessedCount(V); 3413 } 3414 } 3415 NumGVNMaxIterations = std::max(NumGVNMaxIterations.getValue(), Iterations); 3416 } 3417 3418 // This is the main transformation entry point. 3419 bool NewGVN::runGVN() { 3420 if (DebugCounter::isCounterSet(VNCounter)) 3421 StartingVNCounter = DebugCounter::getCounterValue(VNCounter); 3422 bool Changed = false; 3423 NumFuncArgs = F.arg_size(); 3424 MSSAWalker = MSSA->getWalker(); 3425 SingletonDeadExpression = new (ExpressionAllocator) DeadExpression(); 3426 3427 // Count number of instructions for sizing of hash tables, and come 3428 // up with a global dfs numbering for instructions. 3429 unsigned ICount = 1; 3430 // Add an empty instruction to account for the fact that we start at 1 3431 DFSToInstr.emplace_back(nullptr); 3432 // Note: We want ideal RPO traversal of the blocks, which is not quite the 3433 // same as dominator tree order, particularly with regard whether backedges 3434 // get visited first or second, given a block with multiple successors. 3435 // If we visit in the wrong order, we will end up performing N times as many 3436 // iterations. 3437 // The dominator tree does guarantee that, for a given dom tree node, it's 3438 // parent must occur before it in the RPO ordering. Thus, we only need to sort 3439 // the siblings. 3440 ReversePostOrderTraversal<Function *> RPOT(&F); 3441 unsigned Counter = 0; 3442 for (auto &B : RPOT) { 3443 auto *Node = DT->getNode(B); 3444 assert(Node && "RPO and Dominator tree should have same reachability"); 3445 RPOOrdering[Node] = ++Counter; 3446 } 3447 // Sort dominator tree children arrays into RPO. 3448 for (auto &B : RPOT) { 3449 auto *Node = DT->getNode(B); 3450 if (Node->getNumChildren() > 1) 3451 llvm::sort(*Node, [&](const DomTreeNode *A, const DomTreeNode *B) { 3452 return RPOOrdering[A] < RPOOrdering[B]; 3453 }); 3454 } 3455 3456 // Now a standard depth first ordering of the domtree is equivalent to RPO. 3457 for (auto DTN : depth_first(DT->getRootNode())) { 3458 BasicBlock *B = DTN->getBlock(); 3459 const auto &BlockRange = assignDFSNumbers(B, ICount); 3460 BlockInstRange.insert({B, BlockRange}); 3461 ICount += BlockRange.second - BlockRange.first; 3462 } 3463 initializeCongruenceClasses(F); 3464 3465 TouchedInstructions.resize(ICount); 3466 // Ensure we don't end up resizing the expressionToClass map, as 3467 // that can be quite expensive. At most, we have one expression per 3468 // instruction. 3469 ExpressionToClass.reserve(ICount); 3470 3471 // Initialize the touched instructions to include the entry block. 3472 const auto &InstRange = BlockInstRange.lookup(&F.getEntryBlock()); 3473 TouchedInstructions.set(InstRange.first, InstRange.second); 3474 LLVM_DEBUG(dbgs() << "Block " << getBlockName(&F.getEntryBlock()) 3475 << " marked reachable\n"); 3476 ReachableBlocks.insert(&F.getEntryBlock()); 3477 3478 iterateTouchedInstructions(); 3479 verifyMemoryCongruency(); 3480 verifyIterationSettled(F); 3481 verifyStoreExpressions(); 3482 3483 Changed |= eliminateInstructions(F); 3484 3485 // Delete all instructions marked for deletion. 3486 for (Instruction *ToErase : InstructionsToErase) { 3487 if (!ToErase->use_empty()) 3488 ToErase->replaceAllUsesWith(PoisonValue::get(ToErase->getType())); 3489 3490 assert(ToErase->getParent() && 3491 "BB containing ToErase deleted unexpectedly!"); 3492 ToErase->eraseFromParent(); 3493 } 3494 Changed |= !InstructionsToErase.empty(); 3495 3496 // Delete all unreachable blocks. 3497 auto UnreachableBlockPred = [&](const BasicBlock &BB) { 3498 return !ReachableBlocks.count(&BB); 3499 }; 3500 3501 for (auto &BB : make_filter_range(F, UnreachableBlockPred)) { 3502 LLVM_DEBUG(dbgs() << "We believe block " << getBlockName(&BB) 3503 << " is unreachable\n"); 3504 deleteInstructionsInBlock(&BB); 3505 Changed = true; 3506 } 3507 3508 cleanupTables(); 3509 return Changed; 3510 } 3511 3512 struct NewGVN::ValueDFS { 3513 int DFSIn = 0; 3514 int DFSOut = 0; 3515 int LocalNum = 0; 3516 3517 // Only one of Def and U will be set. 3518 // The bool in the Def tells us whether the Def is the stored value of a 3519 // store. 3520 PointerIntPair<Value *, 1, bool> Def; 3521 Use *U = nullptr; 3522 3523 bool operator<(const ValueDFS &Other) const { 3524 // It's not enough that any given field be less than - we have sets 3525 // of fields that need to be evaluated together to give a proper ordering. 3526 // For example, if you have; 3527 // DFS (1, 3) 3528 // Val 0 3529 // DFS (1, 2) 3530 // Val 50 3531 // We want the second to be less than the first, but if we just go field 3532 // by field, we will get to Val 0 < Val 50 and say the first is less than 3533 // the second. We only want it to be less than if the DFS orders are equal. 3534 // 3535 // Each LLVM instruction only produces one value, and thus the lowest-level 3536 // differentiator that really matters for the stack (and what we use as as a 3537 // replacement) is the local dfs number. 3538 // Everything else in the structure is instruction level, and only affects 3539 // the order in which we will replace operands of a given instruction. 3540 // 3541 // For a given instruction (IE things with equal dfsin, dfsout, localnum), 3542 // the order of replacement of uses does not matter. 3543 // IE given, 3544 // a = 5 3545 // b = a + a 3546 // When you hit b, you will have two valuedfs with the same dfsin, out, and 3547 // localnum. 3548 // The .val will be the same as well. 3549 // The .u's will be different. 3550 // You will replace both, and it does not matter what order you replace them 3551 // in (IE whether you replace operand 2, then operand 1, or operand 1, then 3552 // operand 2). 3553 // Similarly for the case of same dfsin, dfsout, localnum, but different 3554 // .val's 3555 // a = 5 3556 // b = 6 3557 // c = a + b 3558 // in c, we will a valuedfs for a, and one for b,with everything the same 3559 // but .val and .u. 3560 // It does not matter what order we replace these operands in. 3561 // You will always end up with the same IR, and this is guaranteed. 3562 return std::tie(DFSIn, DFSOut, LocalNum, Def, U) < 3563 std::tie(Other.DFSIn, Other.DFSOut, Other.LocalNum, Other.Def, 3564 Other.U); 3565 } 3566 }; 3567 3568 // This function converts the set of members for a congruence class from values, 3569 // to sets of defs and uses with associated DFS info. The total number of 3570 // reachable uses for each value is stored in UseCount, and instructions that 3571 // seem 3572 // dead (have no non-dead uses) are stored in ProbablyDead. 3573 void NewGVN::convertClassToDFSOrdered( 3574 const CongruenceClass &Dense, SmallVectorImpl<ValueDFS> &DFSOrderedSet, 3575 DenseMap<const Value *, unsigned int> &UseCounts, 3576 SmallPtrSetImpl<Instruction *> &ProbablyDead) const { 3577 for (auto D : Dense) { 3578 // First add the value. 3579 BasicBlock *BB = getBlockForValue(D); 3580 // Constants are handled prior to ever calling this function, so 3581 // we should only be left with instructions as members. 3582 assert(BB && "Should have figured out a basic block for value"); 3583 ValueDFS VDDef; 3584 DomTreeNode *DomNode = DT->getNode(BB); 3585 VDDef.DFSIn = DomNode->getDFSNumIn(); 3586 VDDef.DFSOut = DomNode->getDFSNumOut(); 3587 // If it's a store, use the leader of the value operand, if it's always 3588 // available, or the value operand. TODO: We could do dominance checks to 3589 // find a dominating leader, but not worth it ATM. 3590 if (auto *SI = dyn_cast<StoreInst>(D)) { 3591 auto Leader = lookupOperandLeader(SI->getValueOperand()); 3592 if (alwaysAvailable(Leader)) { 3593 VDDef.Def.setPointer(Leader); 3594 } else { 3595 VDDef.Def.setPointer(SI->getValueOperand()); 3596 VDDef.Def.setInt(true); 3597 } 3598 } else { 3599 VDDef.Def.setPointer(D); 3600 } 3601 assert(isa<Instruction>(D) && 3602 "The dense set member should always be an instruction"); 3603 Instruction *Def = cast<Instruction>(D); 3604 VDDef.LocalNum = InstrToDFSNum(D); 3605 DFSOrderedSet.push_back(VDDef); 3606 // If there is a phi node equivalent, add it 3607 if (auto *PN = RealToTemp.lookup(Def)) { 3608 auto *PHIE = 3609 dyn_cast_or_null<PHIExpression>(ValueToExpression.lookup(Def)); 3610 if (PHIE) { 3611 VDDef.Def.setInt(false); 3612 VDDef.Def.setPointer(PN); 3613 VDDef.LocalNum = 0; 3614 DFSOrderedSet.push_back(VDDef); 3615 } 3616 } 3617 3618 unsigned int UseCount = 0; 3619 // Now add the uses. 3620 for (auto &U : Def->uses()) { 3621 if (auto *I = dyn_cast<Instruction>(U.getUser())) { 3622 // Don't try to replace into dead uses 3623 if (InstructionsToErase.count(I)) 3624 continue; 3625 ValueDFS VDUse; 3626 // Put the phi node uses in the incoming block. 3627 BasicBlock *IBlock; 3628 if (auto *P = dyn_cast<PHINode>(I)) { 3629 IBlock = P->getIncomingBlock(U); 3630 // Make phi node users appear last in the incoming block 3631 // they are from. 3632 VDUse.LocalNum = InstrDFS.size() + 1; 3633 } else { 3634 IBlock = getBlockForValue(I); 3635 VDUse.LocalNum = InstrToDFSNum(I); 3636 } 3637 3638 // Skip uses in unreachable blocks, as we're going 3639 // to delete them. 3640 if (!ReachableBlocks.contains(IBlock)) 3641 continue; 3642 3643 DomTreeNode *DomNode = DT->getNode(IBlock); 3644 VDUse.DFSIn = DomNode->getDFSNumIn(); 3645 VDUse.DFSOut = DomNode->getDFSNumOut(); 3646 VDUse.U = &U; 3647 ++UseCount; 3648 DFSOrderedSet.emplace_back(VDUse); 3649 } 3650 } 3651 3652 // If there are no uses, it's probably dead (but it may have side-effects, 3653 // so not definitely dead. Otherwise, store the number of uses so we can 3654 // track if it becomes dead later). 3655 if (UseCount == 0) 3656 ProbablyDead.insert(Def); 3657 else 3658 UseCounts[Def] = UseCount; 3659 } 3660 } 3661 3662 // This function converts the set of members for a congruence class from values, 3663 // to the set of defs for loads and stores, with associated DFS info. 3664 void NewGVN::convertClassToLoadsAndStores( 3665 const CongruenceClass &Dense, 3666 SmallVectorImpl<ValueDFS> &LoadsAndStores) const { 3667 for (auto D : Dense) { 3668 if (!isa<LoadInst>(D) && !isa<StoreInst>(D)) 3669 continue; 3670 3671 BasicBlock *BB = getBlockForValue(D); 3672 ValueDFS VD; 3673 DomTreeNode *DomNode = DT->getNode(BB); 3674 VD.DFSIn = DomNode->getDFSNumIn(); 3675 VD.DFSOut = DomNode->getDFSNumOut(); 3676 VD.Def.setPointer(D); 3677 3678 // If it's an instruction, use the real local dfs number. 3679 if (auto *I = dyn_cast<Instruction>(D)) 3680 VD.LocalNum = InstrToDFSNum(I); 3681 else 3682 llvm_unreachable("Should have been an instruction"); 3683 3684 LoadsAndStores.emplace_back(VD); 3685 } 3686 } 3687 3688 static void patchAndReplaceAllUsesWith(Instruction *I, Value *Repl) { 3689 patchReplacementInstruction(I, Repl); 3690 I->replaceAllUsesWith(Repl); 3691 } 3692 3693 void NewGVN::deleteInstructionsInBlock(BasicBlock *BB) { 3694 LLVM_DEBUG(dbgs() << " BasicBlock Dead:" << *BB); 3695 ++NumGVNBlocksDeleted; 3696 3697 // Delete the instructions backwards, as it has a reduced likelihood of having 3698 // to update as many def-use and use-def chains. Start after the terminator. 3699 auto StartPoint = BB->rbegin(); 3700 ++StartPoint; 3701 // Note that we explicitly recalculate BB->rend() on each iteration, 3702 // as it may change when we remove the first instruction. 3703 for (BasicBlock::reverse_iterator I(StartPoint); I != BB->rend();) { 3704 Instruction &Inst = *I++; 3705 if (!Inst.use_empty()) 3706 Inst.replaceAllUsesWith(PoisonValue::get(Inst.getType())); 3707 if (isa<LandingPadInst>(Inst)) 3708 continue; 3709 salvageKnowledge(&Inst, AC); 3710 3711 Inst.eraseFromParent(); 3712 ++NumGVNInstrDeleted; 3713 } 3714 // Now insert something that simplifycfg will turn into an unreachable. 3715 Type *Int8Ty = Type::getInt8Ty(BB->getContext()); 3716 new StoreInst(PoisonValue::get(Int8Ty), 3717 Constant::getNullValue(Int8Ty->getPointerTo()), 3718 BB->getTerminator()); 3719 } 3720 3721 void NewGVN::markInstructionForDeletion(Instruction *I) { 3722 LLVM_DEBUG(dbgs() << "Marking " << *I << " for deletion\n"); 3723 InstructionsToErase.insert(I); 3724 } 3725 3726 void NewGVN::replaceInstruction(Instruction *I, Value *V) { 3727 LLVM_DEBUG(dbgs() << "Replacing " << *I << " with " << *V << "\n"); 3728 patchAndReplaceAllUsesWith(I, V); 3729 // We save the actual erasing to avoid invalidating memory 3730 // dependencies until we are done with everything. 3731 markInstructionForDeletion(I); 3732 } 3733 3734 namespace { 3735 3736 // This is a stack that contains both the value and dfs info of where 3737 // that value is valid. 3738 class ValueDFSStack { 3739 public: 3740 Value *back() const { return ValueStack.back(); } 3741 std::pair<int, int> dfs_back() const { return DFSStack.back(); } 3742 3743 void push_back(Value *V, int DFSIn, int DFSOut) { 3744 ValueStack.emplace_back(V); 3745 DFSStack.emplace_back(DFSIn, DFSOut); 3746 } 3747 3748 bool empty() const { return DFSStack.empty(); } 3749 3750 bool isInScope(int DFSIn, int DFSOut) const { 3751 if (empty()) 3752 return false; 3753 return DFSIn >= DFSStack.back().first && DFSOut <= DFSStack.back().second; 3754 } 3755 3756 void popUntilDFSScope(int DFSIn, int DFSOut) { 3757 3758 // These two should always be in sync at this point. 3759 assert(ValueStack.size() == DFSStack.size() && 3760 "Mismatch between ValueStack and DFSStack"); 3761 while ( 3762 !DFSStack.empty() && 3763 !(DFSIn >= DFSStack.back().first && DFSOut <= DFSStack.back().second)) { 3764 DFSStack.pop_back(); 3765 ValueStack.pop_back(); 3766 } 3767 } 3768 3769 private: 3770 SmallVector<Value *, 8> ValueStack; 3771 SmallVector<std::pair<int, int>, 8> DFSStack; 3772 }; 3773 3774 } // end anonymous namespace 3775 3776 // Given an expression, get the congruence class for it. 3777 CongruenceClass *NewGVN::getClassForExpression(const Expression *E) const { 3778 if (auto *VE = dyn_cast<VariableExpression>(E)) 3779 return ValueToClass.lookup(VE->getVariableValue()); 3780 else if (isa<DeadExpression>(E)) 3781 return TOPClass; 3782 return ExpressionToClass.lookup(E); 3783 } 3784 3785 // Given a value and a basic block we are trying to see if it is available in, 3786 // see if the value has a leader available in that block. 3787 Value *NewGVN::findPHIOfOpsLeader(const Expression *E, 3788 const Instruction *OrigInst, 3789 const BasicBlock *BB) const { 3790 // It would already be constant if we could make it constant 3791 if (auto *CE = dyn_cast<ConstantExpression>(E)) 3792 return CE->getConstantValue(); 3793 if (auto *VE = dyn_cast<VariableExpression>(E)) { 3794 auto *V = VE->getVariableValue(); 3795 if (alwaysAvailable(V) || DT->dominates(getBlockForValue(V), BB)) 3796 return VE->getVariableValue(); 3797 } 3798 3799 auto *CC = getClassForExpression(E); 3800 if (!CC) 3801 return nullptr; 3802 if (alwaysAvailable(CC->getLeader())) 3803 return CC->getLeader(); 3804 3805 for (auto Member : *CC) { 3806 auto *MemberInst = dyn_cast<Instruction>(Member); 3807 if (MemberInst == OrigInst) 3808 continue; 3809 // Anything that isn't an instruction is always available. 3810 if (!MemberInst) 3811 return Member; 3812 if (DT->dominates(getBlockForValue(MemberInst), BB)) 3813 return Member; 3814 } 3815 return nullptr; 3816 } 3817 3818 bool NewGVN::eliminateInstructions(Function &F) { 3819 // This is a non-standard eliminator. The normal way to eliminate is 3820 // to walk the dominator tree in order, keeping track of available 3821 // values, and eliminating them. However, this is mildly 3822 // pointless. It requires doing lookups on every instruction, 3823 // regardless of whether we will ever eliminate it. For 3824 // instructions part of most singleton congruence classes, we know we 3825 // will never eliminate them. 3826 3827 // Instead, this eliminator looks at the congruence classes directly, sorts 3828 // them into a DFS ordering of the dominator tree, and then we just 3829 // perform elimination straight on the sets by walking the congruence 3830 // class member uses in order, and eliminate the ones dominated by the 3831 // last member. This is worst case O(E log E) where E = number of 3832 // instructions in a single congruence class. In theory, this is all 3833 // instructions. In practice, it is much faster, as most instructions are 3834 // either in singleton congruence classes or can't possibly be eliminated 3835 // anyway (if there are no overlapping DFS ranges in class). 3836 // When we find something not dominated, it becomes the new leader 3837 // for elimination purposes. 3838 // TODO: If we wanted to be faster, We could remove any members with no 3839 // overlapping ranges while sorting, as we will never eliminate anything 3840 // with those members, as they don't dominate anything else in our set. 3841 3842 bool AnythingReplaced = false; 3843 3844 // Since we are going to walk the domtree anyway, and we can't guarantee the 3845 // DFS numbers are updated, we compute some ourselves. 3846 DT->updateDFSNumbers(); 3847 3848 // Go through all of our phi nodes, and kill the arguments associated with 3849 // unreachable edges. 3850 auto ReplaceUnreachablePHIArgs = [&](PHINode *PHI, BasicBlock *BB) { 3851 for (auto &Operand : PHI->incoming_values()) 3852 if (!ReachableEdges.count({PHI->getIncomingBlock(Operand), BB})) { 3853 LLVM_DEBUG(dbgs() << "Replacing incoming value of " << PHI 3854 << " for block " 3855 << getBlockName(PHI->getIncomingBlock(Operand)) 3856 << " with poison due to it being unreachable\n"); 3857 Operand.set(PoisonValue::get(PHI->getType())); 3858 } 3859 }; 3860 // Replace unreachable phi arguments. 3861 // At this point, RevisitOnReachabilityChange only contains: 3862 // 3863 // 1. PHIs 3864 // 2. Temporaries that will convert to PHIs 3865 // 3. Operations that are affected by an unreachable edge but do not fit into 3866 // 1 or 2 (rare). 3867 // So it is a slight overshoot of what we want. We could make it exact by 3868 // using two SparseBitVectors per block. 3869 DenseMap<const BasicBlock *, unsigned> ReachablePredCount; 3870 for (auto &KV : ReachableEdges) 3871 ReachablePredCount[KV.getEnd()]++; 3872 for (auto &BBPair : RevisitOnReachabilityChange) { 3873 for (auto InstNum : BBPair.second) { 3874 auto *Inst = InstrFromDFSNum(InstNum); 3875 auto *PHI = dyn_cast<PHINode>(Inst); 3876 PHI = PHI ? PHI : dyn_cast_or_null<PHINode>(RealToTemp.lookup(Inst)); 3877 if (!PHI) 3878 continue; 3879 auto *BB = BBPair.first; 3880 if (ReachablePredCount.lookup(BB) != PHI->getNumIncomingValues()) 3881 ReplaceUnreachablePHIArgs(PHI, BB); 3882 } 3883 } 3884 3885 // Map to store the use counts 3886 DenseMap<const Value *, unsigned int> UseCounts; 3887 for (auto *CC : reverse(CongruenceClasses)) { 3888 LLVM_DEBUG(dbgs() << "Eliminating in congruence class " << CC->getID() 3889 << "\n"); 3890 // Track the equivalent store info so we can decide whether to try 3891 // dead store elimination. 3892 SmallVector<ValueDFS, 8> PossibleDeadStores; 3893 SmallPtrSet<Instruction *, 8> ProbablyDead; 3894 if (CC->isDead() || CC->empty()) 3895 continue; 3896 // Everything still in the TOP class is unreachable or dead. 3897 if (CC == TOPClass) { 3898 for (auto M : *CC) { 3899 auto *VTE = ValueToExpression.lookup(M); 3900 if (VTE && isa<DeadExpression>(VTE)) 3901 markInstructionForDeletion(cast<Instruction>(M)); 3902 assert((!ReachableBlocks.count(cast<Instruction>(M)->getParent()) || 3903 InstructionsToErase.count(cast<Instruction>(M))) && 3904 "Everything in TOP should be unreachable or dead at this " 3905 "point"); 3906 } 3907 continue; 3908 } 3909 3910 assert(CC->getLeader() && "We should have had a leader"); 3911 // If this is a leader that is always available, and it's a 3912 // constant or has no equivalences, just replace everything with 3913 // it. We then update the congruence class with whatever members 3914 // are left. 3915 Value *Leader = 3916 CC->getStoredValue() ? CC->getStoredValue() : CC->getLeader(); 3917 if (alwaysAvailable(Leader)) { 3918 CongruenceClass::MemberSet MembersLeft; 3919 for (auto M : *CC) { 3920 Value *Member = M; 3921 // Void things have no uses we can replace. 3922 if (Member == Leader || !isa<Instruction>(Member) || 3923 Member->getType()->isVoidTy()) { 3924 MembersLeft.insert(Member); 3925 continue; 3926 } 3927 LLVM_DEBUG(dbgs() << "Found replacement " << *(Leader) << " for " 3928 << *Member << "\n"); 3929 auto *I = cast<Instruction>(Member); 3930 assert(Leader != I && "About to accidentally remove our leader"); 3931 replaceInstruction(I, Leader); 3932 AnythingReplaced = true; 3933 } 3934 CC->swap(MembersLeft); 3935 } else { 3936 // If this is a singleton, we can skip it. 3937 if (CC->size() != 1 || RealToTemp.count(Leader)) { 3938 // This is a stack because equality replacement/etc may place 3939 // constants in the middle of the member list, and we want to use 3940 // those constant values in preference to the current leader, over 3941 // the scope of those constants. 3942 ValueDFSStack EliminationStack; 3943 3944 // Convert the members to DFS ordered sets and then merge them. 3945 SmallVector<ValueDFS, 8> DFSOrderedSet; 3946 convertClassToDFSOrdered(*CC, DFSOrderedSet, UseCounts, ProbablyDead); 3947 3948 // Sort the whole thing. 3949 llvm::sort(DFSOrderedSet); 3950 for (auto &VD : DFSOrderedSet) { 3951 int MemberDFSIn = VD.DFSIn; 3952 int MemberDFSOut = VD.DFSOut; 3953 Value *Def = VD.Def.getPointer(); 3954 bool FromStore = VD.Def.getInt(); 3955 Use *U = VD.U; 3956 // We ignore void things because we can't get a value from them. 3957 if (Def && Def->getType()->isVoidTy()) 3958 continue; 3959 auto *DefInst = dyn_cast_or_null<Instruction>(Def); 3960 if (DefInst && AllTempInstructions.count(DefInst)) { 3961 auto *PN = cast<PHINode>(DefInst); 3962 3963 // If this is a value phi and that's the expression we used, insert 3964 // it into the program 3965 // remove from temp instruction list. 3966 AllTempInstructions.erase(PN); 3967 auto *DefBlock = getBlockForValue(Def); 3968 LLVM_DEBUG(dbgs() << "Inserting fully real phi of ops" << *Def 3969 << " into block " 3970 << getBlockName(getBlockForValue(Def)) << "\n"); 3971 PN->insertBefore(&DefBlock->front()); 3972 Def = PN; 3973 NumGVNPHIOfOpsEliminations++; 3974 } 3975 3976 if (EliminationStack.empty()) { 3977 LLVM_DEBUG(dbgs() << "Elimination Stack is empty\n"); 3978 } else { 3979 LLVM_DEBUG(dbgs() << "Elimination Stack Top DFS numbers are (" 3980 << EliminationStack.dfs_back().first << "," 3981 << EliminationStack.dfs_back().second << ")\n"); 3982 } 3983 3984 LLVM_DEBUG(dbgs() << "Current DFS numbers are (" << MemberDFSIn << "," 3985 << MemberDFSOut << ")\n"); 3986 // First, we see if we are out of scope or empty. If so, 3987 // and there equivalences, we try to replace the top of 3988 // stack with equivalences (if it's on the stack, it must 3989 // not have been eliminated yet). 3990 // Then we synchronize to our current scope, by 3991 // popping until we are back within a DFS scope that 3992 // dominates the current member. 3993 // Then, what happens depends on a few factors 3994 // If the stack is now empty, we need to push 3995 // If we have a constant or a local equivalence we want to 3996 // start using, we also push. 3997 // Otherwise, we walk along, processing members who are 3998 // dominated by this scope, and eliminate them. 3999 bool ShouldPush = Def && EliminationStack.empty(); 4000 bool OutOfScope = 4001 !EliminationStack.isInScope(MemberDFSIn, MemberDFSOut); 4002 4003 if (OutOfScope || ShouldPush) { 4004 // Sync to our current scope. 4005 EliminationStack.popUntilDFSScope(MemberDFSIn, MemberDFSOut); 4006 bool ShouldPush = Def && EliminationStack.empty(); 4007 if (ShouldPush) { 4008 EliminationStack.push_back(Def, MemberDFSIn, MemberDFSOut); 4009 } 4010 } 4011 4012 // Skip the Def's, we only want to eliminate on their uses. But mark 4013 // dominated defs as dead. 4014 if (Def) { 4015 // For anything in this case, what and how we value number 4016 // guarantees that any side-effets that would have occurred (ie 4017 // throwing, etc) can be proven to either still occur (because it's 4018 // dominated by something that has the same side-effects), or never 4019 // occur. Otherwise, we would not have been able to prove it value 4020 // equivalent to something else. For these things, we can just mark 4021 // it all dead. Note that this is different from the "ProbablyDead" 4022 // set, which may not be dominated by anything, and thus, are only 4023 // easy to prove dead if they are also side-effect free. Note that 4024 // because stores are put in terms of the stored value, we skip 4025 // stored values here. If the stored value is really dead, it will 4026 // still be marked for deletion when we process it in its own class. 4027 if (!EliminationStack.empty() && Def != EliminationStack.back() && 4028 isa<Instruction>(Def) && !FromStore) 4029 markInstructionForDeletion(cast<Instruction>(Def)); 4030 continue; 4031 } 4032 // At this point, we know it is a Use we are trying to possibly 4033 // replace. 4034 4035 assert(isa<Instruction>(U->get()) && 4036 "Current def should have been an instruction"); 4037 assert(isa<Instruction>(U->getUser()) && 4038 "Current user should have been an instruction"); 4039 4040 // If the thing we are replacing into is already marked to be dead, 4041 // this use is dead. Note that this is true regardless of whether 4042 // we have anything dominating the use or not. We do this here 4043 // because we are already walking all the uses anyway. 4044 Instruction *InstUse = cast<Instruction>(U->getUser()); 4045 if (InstructionsToErase.count(InstUse)) { 4046 auto &UseCount = UseCounts[U->get()]; 4047 if (--UseCount == 0) { 4048 ProbablyDead.insert(cast<Instruction>(U->get())); 4049 } 4050 } 4051 4052 // If we get to this point, and the stack is empty we must have a use 4053 // with nothing we can use to eliminate this use, so just skip it. 4054 if (EliminationStack.empty()) 4055 continue; 4056 4057 Value *DominatingLeader = EliminationStack.back(); 4058 4059 auto *II = dyn_cast<IntrinsicInst>(DominatingLeader); 4060 bool isSSACopy = II && II->getIntrinsicID() == Intrinsic::ssa_copy; 4061 if (isSSACopy) 4062 DominatingLeader = II->getOperand(0); 4063 4064 // Don't replace our existing users with ourselves. 4065 if (U->get() == DominatingLeader) 4066 continue; 4067 LLVM_DEBUG(dbgs() 4068 << "Found replacement " << *DominatingLeader << " for " 4069 << *U->get() << " in " << *(U->getUser()) << "\n"); 4070 4071 // If we replaced something in an instruction, handle the patching of 4072 // metadata. Skip this if we are replacing predicateinfo with its 4073 // original operand, as we already know we can just drop it. 4074 auto *ReplacedInst = cast<Instruction>(U->get()); 4075 auto *PI = PredInfo->getPredicateInfoFor(ReplacedInst); 4076 if (!PI || DominatingLeader != PI->OriginalOp) 4077 patchReplacementInstruction(ReplacedInst, DominatingLeader); 4078 U->set(DominatingLeader); 4079 // This is now a use of the dominating leader, which means if the 4080 // dominating leader was dead, it's now live! 4081 auto &LeaderUseCount = UseCounts[DominatingLeader]; 4082 // It's about to be alive again. 4083 if (LeaderUseCount == 0 && isa<Instruction>(DominatingLeader)) 4084 ProbablyDead.erase(cast<Instruction>(DominatingLeader)); 4085 // For copy instructions, we use their operand as a leader, 4086 // which means we remove a user of the copy and it may become dead. 4087 if (isSSACopy) { 4088 unsigned &IIUseCount = UseCounts[II]; 4089 if (--IIUseCount == 0) 4090 ProbablyDead.insert(II); 4091 } 4092 ++LeaderUseCount; 4093 AnythingReplaced = true; 4094 } 4095 } 4096 } 4097 4098 // At this point, anything still in the ProbablyDead set is actually dead if 4099 // would be trivially dead. 4100 for (auto *I : ProbablyDead) 4101 if (wouldInstructionBeTriviallyDead(I)) 4102 markInstructionForDeletion(I); 4103 4104 // Cleanup the congruence class. 4105 CongruenceClass::MemberSet MembersLeft; 4106 for (auto *Member : *CC) 4107 if (!isa<Instruction>(Member) || 4108 !InstructionsToErase.count(cast<Instruction>(Member))) 4109 MembersLeft.insert(Member); 4110 CC->swap(MembersLeft); 4111 4112 // If we have possible dead stores to look at, try to eliminate them. 4113 if (CC->getStoreCount() > 0) { 4114 convertClassToLoadsAndStores(*CC, PossibleDeadStores); 4115 llvm::sort(PossibleDeadStores); 4116 ValueDFSStack EliminationStack; 4117 for (auto &VD : PossibleDeadStores) { 4118 int MemberDFSIn = VD.DFSIn; 4119 int MemberDFSOut = VD.DFSOut; 4120 Instruction *Member = cast<Instruction>(VD.Def.getPointer()); 4121 if (EliminationStack.empty() || 4122 !EliminationStack.isInScope(MemberDFSIn, MemberDFSOut)) { 4123 // Sync to our current scope. 4124 EliminationStack.popUntilDFSScope(MemberDFSIn, MemberDFSOut); 4125 if (EliminationStack.empty()) { 4126 EliminationStack.push_back(Member, MemberDFSIn, MemberDFSOut); 4127 continue; 4128 } 4129 } 4130 // We already did load elimination, so nothing to do here. 4131 if (isa<LoadInst>(Member)) 4132 continue; 4133 assert(!EliminationStack.empty()); 4134 Instruction *Leader = cast<Instruction>(EliminationStack.back()); 4135 (void)Leader; 4136 assert(DT->dominates(Leader->getParent(), Member->getParent())); 4137 // Member is dominater by Leader, and thus dead 4138 LLVM_DEBUG(dbgs() << "Marking dead store " << *Member 4139 << " that is dominated by " << *Leader << "\n"); 4140 markInstructionForDeletion(Member); 4141 CC->erase(Member); 4142 ++NumGVNDeadStores; 4143 } 4144 } 4145 } 4146 return AnythingReplaced; 4147 } 4148 4149 // This function provides global ranking of operations so that we can place them 4150 // in a canonical order. Note that rank alone is not necessarily enough for a 4151 // complete ordering, as constants all have the same rank. However, generally, 4152 // we will simplify an operation with all constants so that it doesn't matter 4153 // what order they appear in. 4154 unsigned int NewGVN::getRank(const Value *V) const { 4155 // Prefer constants to undef to anything else 4156 // Undef is a constant, have to check it first. 4157 // Prefer poison to undef as it's less defined. 4158 // Prefer smaller constants to constantexprs 4159 // Note that the order here matters because of class inheritance 4160 if (isa<ConstantExpr>(V)) 4161 return 3; 4162 if (isa<PoisonValue>(V)) 4163 return 1; 4164 if (isa<UndefValue>(V)) 4165 return 2; 4166 if (isa<Constant>(V)) 4167 return 0; 4168 if (auto *A = dyn_cast<Argument>(V)) 4169 return 4 + A->getArgNo(); 4170 4171 // Need to shift the instruction DFS by number of arguments + 5 to account for 4172 // the constant and argument ranking above. 4173 unsigned Result = InstrToDFSNum(V); 4174 if (Result > 0) 4175 return 5 + NumFuncArgs + Result; 4176 // Unreachable or something else, just return a really large number. 4177 return ~0; 4178 } 4179 4180 // This is a function that says whether two commutative operations should 4181 // have their order swapped when canonicalizing. 4182 bool NewGVN::shouldSwapOperands(const Value *A, const Value *B) const { 4183 // Because we only care about a total ordering, and don't rewrite expressions 4184 // in this order, we order by rank, which will give a strict weak ordering to 4185 // everything but constants, and then we order by pointer address. 4186 return std::make_pair(getRank(A), A) > std::make_pair(getRank(B), B); 4187 } 4188 4189 bool NewGVN::shouldSwapOperandsForIntrinsic(const Value *A, const Value *B, 4190 const IntrinsicInst *I) const { 4191 auto LookupResult = IntrinsicInstPred.find(I); 4192 if (shouldSwapOperands(A, B)) { 4193 if (LookupResult == IntrinsicInstPred.end()) 4194 IntrinsicInstPred.insert({I, B}); 4195 else 4196 LookupResult->second = B; 4197 return true; 4198 } 4199 4200 if (LookupResult != IntrinsicInstPred.end()) { 4201 auto *SeenPredicate = LookupResult->second; 4202 if (SeenPredicate) { 4203 if (SeenPredicate == B) 4204 return true; 4205 else 4206 LookupResult->second = nullptr; 4207 } 4208 } 4209 return false; 4210 } 4211 4212 namespace { 4213 4214 class NewGVNLegacyPass : public FunctionPass { 4215 public: 4216 // Pass identification, replacement for typeid. 4217 static char ID; 4218 4219 NewGVNLegacyPass() : FunctionPass(ID) { 4220 initializeNewGVNLegacyPassPass(*PassRegistry::getPassRegistry()); 4221 } 4222 4223 bool runOnFunction(Function &F) override; 4224 4225 private: 4226 void getAnalysisUsage(AnalysisUsage &AU) const override { 4227 AU.addRequired<AssumptionCacheTracker>(); 4228 AU.addRequired<DominatorTreeWrapperPass>(); 4229 AU.addRequired<TargetLibraryInfoWrapperPass>(); 4230 AU.addRequired<MemorySSAWrapperPass>(); 4231 AU.addRequired<AAResultsWrapperPass>(); 4232 AU.addPreserved<DominatorTreeWrapperPass>(); 4233 AU.addPreserved<GlobalsAAWrapperPass>(); 4234 } 4235 }; 4236 4237 } // end anonymous namespace 4238 4239 bool NewGVNLegacyPass::runOnFunction(Function &F) { 4240 if (skipFunction(F)) 4241 return false; 4242 return NewGVN(F, &getAnalysis<DominatorTreeWrapperPass>().getDomTree(), 4243 &getAnalysis<AssumptionCacheTracker>().getAssumptionCache(F), 4244 &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(F), 4245 &getAnalysis<AAResultsWrapperPass>().getAAResults(), 4246 &getAnalysis<MemorySSAWrapperPass>().getMSSA(), 4247 F.getParent()->getDataLayout()) 4248 .runGVN(); 4249 } 4250 4251 char NewGVNLegacyPass::ID = 0; 4252 4253 INITIALIZE_PASS_BEGIN(NewGVNLegacyPass, "newgvn", "Global Value Numbering", 4254 false, false) 4255 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker) 4256 INITIALIZE_PASS_DEPENDENCY(MemorySSAWrapperPass) 4257 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 4258 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass) 4259 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass) 4260 INITIALIZE_PASS_DEPENDENCY(GlobalsAAWrapperPass) 4261 INITIALIZE_PASS_END(NewGVNLegacyPass, "newgvn", "Global Value Numbering", false, 4262 false) 4263 4264 // createGVNPass - The public interface to this file. 4265 FunctionPass *llvm::createNewGVNPass() { return new NewGVNLegacyPass(); } 4266 4267 PreservedAnalyses NewGVNPass::run(Function &F, AnalysisManager<Function> &AM) { 4268 // Apparently the order in which we get these results matter for 4269 // the old GVN (see Chandler's comment in GVN.cpp). I'll keep 4270 // the same order here, just in case. 4271 auto &AC = AM.getResult<AssumptionAnalysis>(F); 4272 auto &DT = AM.getResult<DominatorTreeAnalysis>(F); 4273 auto &TLI = AM.getResult<TargetLibraryAnalysis>(F); 4274 auto &AA = AM.getResult<AAManager>(F); 4275 auto &MSSA = AM.getResult<MemorySSAAnalysis>(F).getMSSA(); 4276 bool Changed = 4277 NewGVN(F, &DT, &AC, &TLI, &AA, &MSSA, F.getParent()->getDataLayout()) 4278 .runGVN(); 4279 if (!Changed) 4280 return PreservedAnalyses::all(); 4281 PreservedAnalyses PA; 4282 PA.preserve<DominatorTreeAnalysis>(); 4283 return PA; 4284 } 4285