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