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Daniel Berlinae6b8b62017-01-28 01:35:02 +00001//===-- MemorySSAUpdater.cpp - Memory SSA Updater--------------------===//
2//
Chandler Carruth2946cd72019-01-19 08:50:56 +00003// 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
Daniel Berlinae6b8b62017-01-28 01:35:02 +00006//
7//===----------------------------------------------------------------===//
8//
9// This file implements the MemorySSAUpdater class.
10//
11//===----------------------------------------------------------------===//
Daniel Berlin554dcd82017-04-11 20:06:36 +000012#include "llvm/Analysis/MemorySSAUpdater.h"
Simon Pilgrim44d86982020-06-05 10:45:42 +010013#include "llvm/Analysis/LoopIterator.h"
Daniel Berlinae6b8b62017-01-28 01:35:02 +000014#include "llvm/ADT/STLExtras.h"
Alina Sbirlea79800992018-09-10 20:13:01 +000015#include "llvm/ADT/SetVector.h"
Daniel Berlinae6b8b62017-01-28 01:35:02 +000016#include "llvm/ADT/SmallPtrSet.h"
Alina Sbirlea79800992018-09-10 20:13:01 +000017#include "llvm/Analysis/IteratedDominanceFrontier.h"
Chandler Carruth6bda14b2017-06-06 11:49:48 +000018#include "llvm/Analysis/MemorySSA.h"
Simon Pilgrim44d86982020-06-05 10:45:42 +010019#include "llvm/IR/BasicBlock.h"
Daniel Berlinae6b8b62017-01-28 01:35:02 +000020#include "llvm/IR/DataLayout.h"
21#include "llvm/IR/Dominators.h"
22#include "llvm/IR/GlobalVariable.h"
23#include "llvm/IR/IRBuilder.h"
Daniel Berlinae6b8b62017-01-28 01:35:02 +000024#include "llvm/IR/LLVMContext.h"
25#include "llvm/IR/Metadata.h"
26#include "llvm/IR/Module.h"
27#include "llvm/Support/Debug.h"
28#include "llvm/Support/FormattedStream.h"
Daniel Berlinae6b8b62017-01-28 01:35:02 +000029#include <algorithm>
30
31#define DEBUG_TYPE "memoryssa"
32using namespace llvm;
George Burgess IV56169ed2017-04-21 04:54:52 +000033
Daniel Berlinae6b8b62017-01-28 01:35:02 +000034// This is the marker algorithm from "Simple and Efficient Construction of
35// Static Single Assignment Form"
36// The simple, non-marker algorithm places phi nodes at any join
37// Here, we place markers, and only place phi nodes if they end up necessary.
38// They are only necessary if they break a cycle (IE we recursively visit
39// ourselves again), or we discover, while getting the value of the operands,
40// that there are two or more definitions needing to be merged.
41// This still will leave non-minimal form in the case of irreducible control
42// flow, where phi nodes may be in cycles with themselves, but unnecessary.
Eli Friedman88e2bac2018-03-26 19:52:54 +000043MemoryAccess *MemorySSAUpdater::getPreviousDefRecursive(
44 BasicBlock *BB,
45 DenseMap<BasicBlock *, TrackingVH<MemoryAccess>> &CachedPreviousDef) {
46 // First, do a cache lookup. Without this cache, certain CFG structures
47 // (like a series of if statements) take exponential time to visit.
48 auto Cached = CachedPreviousDef.find(BB);
Alina Sbirlea6442b562019-10-10 23:27:21 +000049 if (Cached != CachedPreviousDef.end())
Eli Friedman88e2bac2018-03-26 19:52:54 +000050 return Cached->second;
George Burgess IV45f263d2018-05-26 02:28:55 +000051
Alina Sbirlea67f0c5c2019-10-10 20:43:06 +000052 // If this method is called from an unreachable block, return LoE.
53 if (!MSSA->DT->isReachableFromEntry(BB))
54 return MSSA->getLiveOnEntryDef();
55
Alina Sbirlea6442b562019-10-10 23:27:21 +000056 if (BasicBlock *Pred = BB->getUniquePredecessor()) {
57 VisitedBlocks.insert(BB);
Eli Friedman88e2bac2018-03-26 19:52:54 +000058 // Single predecessor case, just recurse, we can only have one definition.
59 MemoryAccess *Result = getPreviousDefFromEnd(Pred, CachedPreviousDef);
60 CachedPreviousDef.insert({BB, Result});
61 return Result;
George Burgess IV45f263d2018-05-26 02:28:55 +000062 }
63
64 if (VisitedBlocks.count(BB)) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +000065 // We hit our node again, meaning we had a cycle, we must insert a phi
66 // node to break it so we have an operand. The only case this will
67 // insert useless phis is if we have irreducible control flow.
Eli Friedman88e2bac2018-03-26 19:52:54 +000068 MemoryAccess *Result = MSSA->createMemoryPhi(BB);
69 CachedPreviousDef.insert({BB, Result});
70 return Result;
George Burgess IV45f263d2018-05-26 02:28:55 +000071 }
72
73 if (VisitedBlocks.insert(BB).second) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +000074 // Mark us visited so we can detect a cycle
Alexandros Lamprineasbf6009c2018-07-23 10:56:30 +000075 SmallVector<TrackingVH<MemoryAccess>, 8> PhiOps;
Daniel Berlinae6b8b62017-01-28 01:35:02 +000076
77 // Recurse to get the values in our predecessors for placement of a
78 // potential phi node. This will insert phi nodes if we cycle in order to
79 // break the cycle and have an operand.
Alina Sbirlea6720ed82019-09-25 23:24:39 +000080 bool UniqueIncomingAccess = true;
81 MemoryAccess *SingleAccess = nullptr;
82 for (auto *Pred : predecessors(BB)) {
83 if (MSSA->DT->isReachableFromEntry(Pred)) {
84 auto *IncomingAccess = getPreviousDefFromEnd(Pred, CachedPreviousDef);
85 if (!SingleAccess)
86 SingleAccess = IncomingAccess;
87 else if (IncomingAccess != SingleAccess)
88 UniqueIncomingAccess = false;
89 PhiOps.push_back(IncomingAccess);
90 } else
Alina Sbirlea0363c3b2019-05-02 23:41:58 +000091 PhiOps.push_back(MSSA->getLiveOnEntryDef());
Alina Sbirlea6720ed82019-09-25 23:24:39 +000092 }
Daniel Berlinae6b8b62017-01-28 01:35:02 +000093
94 // Now try to simplify the ops to avoid placing a phi.
95 // This may return null if we never created a phi yet, that's okay
96 MemoryPhi *Phi = dyn_cast_or_null<MemoryPhi>(MSSA->getMemoryAccess(BB));
Daniel Berlinae6b8b62017-01-28 01:35:02 +000097
98 // See if we can avoid the phi by simplifying it.
99 auto *Result = tryRemoveTrivialPhi(Phi, PhiOps);
100 // If we couldn't simplify, we may have to create a phi
Alina Sbirlea6442b562019-10-10 23:27:21 +0000101 if (Result == Phi && UniqueIncomingAccess && SingleAccess) {
102 // A concrete Phi only exists if we created an empty one to break a cycle.
103 if (Phi) {
104 assert(Phi->operands().empty() && "Expected empty Phi");
105 Phi->replaceAllUsesWith(SingleAccess);
106 removeMemoryAccess(Phi);
107 }
Alina Sbirlea6720ed82019-09-25 23:24:39 +0000108 Result = SingleAccess;
Alina Sbirlea6442b562019-10-10 23:27:21 +0000109 } else if (Result == Phi && !(UniqueIncomingAccess && SingleAccess)) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000110 if (!Phi)
111 Phi = MSSA->createMemoryPhi(BB);
112
Alexandros Lamprineasbf6009c2018-07-23 10:56:30 +0000113 // See if the existing phi operands match what we need.
114 // Unlike normal SSA, we only allow one phi node per block, so we can't just
115 // create a new one.
116 if (Phi->getNumOperands() != 0) {
117 // FIXME: Figure out whether this is dead code and if so remove it.
118 if (!std::equal(Phi->op_begin(), Phi->op_end(), PhiOps.begin())) {
119 // These will have been filled in by the recursive read we did above.
Fangrui Song75709322018-11-17 01:44:25 +0000120 llvm::copy(PhiOps, Phi->op_begin());
Alexandros Lamprineasbf6009c2018-07-23 10:56:30 +0000121 std::copy(pred_begin(BB), pred_end(BB), Phi->block_begin());
122 }
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000123 } else {
124 unsigned i = 0;
125 for (auto *Pred : predecessors(BB))
Alexandros Lamprineasbf6009c2018-07-23 10:56:30 +0000126 Phi->addIncoming(&*PhiOps[i++], Pred);
Daniel Berlin97f34e82017-09-27 05:35:19 +0000127 InsertedPHIs.push_back(Phi);
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000128 }
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000129 Result = Phi;
130 }
Daniel Berlin97f34e82017-09-27 05:35:19 +0000131
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000132 // Set ourselves up for the next variable by resetting visited state.
133 VisitedBlocks.erase(BB);
Eli Friedman88e2bac2018-03-26 19:52:54 +0000134 CachedPreviousDef.insert({BB, Result});
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000135 return Result;
136 }
137 llvm_unreachable("Should have hit one of the three cases above");
138}
139
140// This starts at the memory access, and goes backwards in the block to find the
141// previous definition. If a definition is not found the block of the access,
142// it continues globally, creating phi nodes to ensure we have a single
143// definition.
144MemoryAccess *MemorySSAUpdater::getPreviousDef(MemoryAccess *MA) {
Eli Friedman88e2bac2018-03-26 19:52:54 +0000145 if (auto *LocalResult = getPreviousDefInBlock(MA))
146 return LocalResult;
147 DenseMap<BasicBlock *, TrackingVH<MemoryAccess>> CachedPreviousDef;
148 return getPreviousDefRecursive(MA->getBlock(), CachedPreviousDef);
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000149}
150
151// This starts at the memory access, and goes backwards in the block to the find
152// the previous definition. If the definition is not found in the block of the
153// access, it returns nullptr.
154MemoryAccess *MemorySSAUpdater::getPreviousDefInBlock(MemoryAccess *MA) {
155 auto *Defs = MSSA->getWritableBlockDefs(MA->getBlock());
156
157 // It's possible there are no defs, or we got handed the first def to start.
158 if (Defs) {
159 // If this is a def, we can just use the def iterators.
160 if (!isa<MemoryUse>(MA)) {
161 auto Iter = MA->getReverseDefsIterator();
162 ++Iter;
163 if (Iter != Defs->rend())
164 return &*Iter;
165 } else {
166 // Otherwise, have to walk the all access iterator.
Alina Sbirlea33e58722017-06-07 16:46:53 +0000167 auto End = MSSA->getWritableBlockAccesses(MA->getBlock())->rend();
168 for (auto &U : make_range(++MA->getReverseIterator(), End))
169 if (!isa<MemoryUse>(U))
170 return cast<MemoryAccess>(&U);
171 // Note that if MA comes before Defs->begin(), we won't hit a def.
172 return nullptr;
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000173 }
174 }
175 return nullptr;
176}
177
178// This starts at the end of block
Eli Friedman88e2bac2018-03-26 19:52:54 +0000179MemoryAccess *MemorySSAUpdater::getPreviousDefFromEnd(
180 BasicBlock *BB,
181 DenseMap<BasicBlock *, TrackingVH<MemoryAccess>> &CachedPreviousDef) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000182 auto *Defs = MSSA->getWritableBlockDefs(BB);
183
Alina Sbirleaf9f073a2019-04-12 21:58:52 +0000184 if (Defs) {
185 CachedPreviousDef.insert({BB, &*Defs->rbegin()});
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000186 return &*Defs->rbegin();
Alina Sbirleaf9f073a2019-04-12 21:58:52 +0000187 }
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000188
Eli Friedman88e2bac2018-03-26 19:52:54 +0000189 return getPreviousDefRecursive(BB, CachedPreviousDef);
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000190}
191// Recurse over a set of phi uses to eliminate the trivial ones
192MemoryAccess *MemorySSAUpdater::recursePhi(MemoryAccess *Phi) {
193 if (!Phi)
194 return nullptr;
195 TrackingVH<MemoryAccess> Res(Phi);
196 SmallVector<TrackingVH<Value>, 8> Uses;
197 std::copy(Phi->user_begin(), Phi->user_end(), std::back_inserter(Uses));
Alina Sbirlea28637212019-08-20 22:47:58 +0000198 for (auto &U : Uses)
199 if (MemoryPhi *UsePhi = dyn_cast<MemoryPhi>(&*U))
200 tryRemoveTrivialPhi(UsePhi);
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000201 return Res;
202}
203
204// Eliminate trivial phis
205// Phis are trivial if they are defined either by themselves, or all the same
206// argument.
207// IE phi(a, a) or b = phi(a, b) or c = phi(a, a, c)
208// We recursively try to remove them.
Alina Sbirlea28637212019-08-20 22:47:58 +0000209MemoryAccess *MemorySSAUpdater::tryRemoveTrivialPhi(MemoryPhi *Phi) {
210 assert(Phi && "Can only remove concrete Phi.");
211 auto OperRange = Phi->operands();
212 return tryRemoveTrivialPhi(Phi, OperRange);
213}
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000214template <class RangeType>
215MemoryAccess *MemorySSAUpdater::tryRemoveTrivialPhi(MemoryPhi *Phi,
216 RangeType &Operands) {
Zhaoshi Zheng43af17b2018-04-09 20:55:37 +0000217 // Bail out on non-opt Phis.
218 if (NonOptPhis.count(Phi))
219 return Phi;
220
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000221 // Detect equal or self arguments
222 MemoryAccess *Same = nullptr;
223 for (auto &Op : Operands) {
224 // If the same or self, good so far
225 if (Op == Phi || Op == Same)
226 continue;
227 // not the same, return the phi since it's not eliminatable by us
228 if (Same)
229 return Phi;
Alexandros Lamprineasbf6009c2018-07-23 10:56:30 +0000230 Same = cast<MemoryAccess>(&*Op);
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000231 }
232 // Never found a non-self reference, the phi is undef
233 if (Same == nullptr)
234 return MSSA->getLiveOnEntryDef();
235 if (Phi) {
236 Phi->replaceAllUsesWith(Same);
Daniel Berlin17e8d0e2017-02-22 22:19:55 +0000237 removeMemoryAccess(Phi);
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000238 }
239
240 // We should only end up recursing in case we replaced something, in which
241 // case, we may have made other Phis trivial.
242 return recursePhi(Same);
243}
244
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +0000245void MemorySSAUpdater::insertUse(MemoryUse *MU, bool RenameUses) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000246 InsertedPHIs.clear();
247 MU->setDefiningAccess(getPreviousDef(MU));
Alina Sbirlea6442b562019-10-10 23:27:21 +0000248
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +0000249 // In cases without unreachable blocks, because uses do not create new
250 // may-defs, there are only two cases:
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000251 // 1. There was a def already below us, and therefore, we should not have
252 // created a phi node because it was already needed for the def.
253 //
254 // 2. There is no def below us, and therefore, there is no extra renaming work
255 // to do.
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +0000256
257 // In cases with unreachable blocks, where the unnecessary Phis were
258 // optimized out, adding the Use may re-insert those Phis. Hence, when
259 // inserting Uses outside of the MSSA creation process, and new Phis were
260 // added, rename all uses if we are asked.
261
262 if (!RenameUses && !InsertedPHIs.empty()) {
263 auto *Defs = MSSA->getBlockDefs(MU->getBlock());
264 (void)Defs;
265 assert((!Defs || (++Defs->begin() == Defs->end())) &&
266 "Block may have only a Phi or no defs");
267 }
268
269 if (RenameUses && InsertedPHIs.size()) {
270 SmallPtrSet<BasicBlock *, 16> Visited;
271 BasicBlock *StartBlock = MU->getBlock();
272
273 if (auto *Defs = MSSA->getWritableBlockDefs(StartBlock)) {
274 MemoryAccess *FirstDef = &*Defs->begin();
275 // Convert to incoming value if it's a memorydef. A phi *is* already an
276 // incoming value.
277 if (auto *MD = dyn_cast<MemoryDef>(FirstDef))
278 FirstDef = MD->getDefiningAccess();
279
280 MSSA->renamePass(MU->getBlock(), FirstDef, Visited);
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +0000281 }
Alina Sbirlea228ffac2019-08-27 00:34:47 +0000282 // We just inserted a phi into this block, so the incoming value will
283 // become the phi anyway, so it does not matter what we pass.
284 for (auto &MP : InsertedPHIs)
285 if (MemoryPhi *Phi = cast_or_null<MemoryPhi>(MP))
286 MSSA->renamePass(Phi->getBlock(), nullptr, Visited);
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +0000287 }
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000288}
289
Daniel Berlin9d8a3352017-01-30 11:35:39 +0000290// Set every incoming edge {BB, MP->getBlock()} of MemoryPhi MP to NewDef.
George Burgess IV56169ed2017-04-21 04:54:52 +0000291static void setMemoryPhiValueForBlock(MemoryPhi *MP, const BasicBlock *BB,
292 MemoryAccess *NewDef) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000293 // Replace any operand with us an incoming block with the new defining
294 // access.
295 int i = MP->getBasicBlockIndex(BB);
296 assert(i != -1 && "Should have found the basic block in the phi");
Daniel Berlin9d8a3352017-01-30 11:35:39 +0000297 // We can't just compare i against getNumOperands since one is signed and the
298 // other not. So use it to index into the block iterator.
299 for (auto BBIter = MP->block_begin() + i; BBIter != MP->block_end();
300 ++BBIter) {
301 if (*BBIter != BB)
302 break;
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000303 MP->setIncomingValue(i, NewDef);
304 ++i;
305 }
306}
307
308// A brief description of the algorithm:
309// First, we compute what should define the new def, using the SSA
310// construction algorithm.
311// Then, we update the defs below us (and any new phi nodes) in the graph to
312// point to the correct new defs, to ensure we only have one variable, and no
313// disconnected stores.
Daniel Berlin78cbd282017-02-20 22:26:03 +0000314void MemorySSAUpdater::insertDef(MemoryDef *MD, bool RenameUses) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000315 InsertedPHIs.clear();
316
317 // See if we had a local def, and if not, go hunting.
Eli Friedman88e2bac2018-03-26 19:52:54 +0000318 MemoryAccess *DefBefore = getPreviousDef(MD);
Alina Sbirleaae40dfc2019-10-01 18:34:39 +0000319 bool DefBeforeSameBlock = false;
320 if (DefBefore->getBlock() == MD->getBlock() &&
321 !(isa<MemoryPhi>(DefBefore) &&
Kazu Hirata60434982020-08-01 21:49:38 -0700322 llvm::is_contained(InsertedPHIs, DefBefore)))
Alina Sbirleaae40dfc2019-10-01 18:34:39 +0000323 DefBeforeSameBlock = true;
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000324
325 // There is a def before us, which means we can replace any store/phi uses
326 // of that thing with us, since we are in the way of whatever was there
327 // before.
328 // We now define that def's memorydefs and memoryphis
Daniel Berlin9d8a3352017-01-30 11:35:39 +0000329 if (DefBeforeSameBlock) {
Roman Lebedev081e9902019-08-01 12:32:08 +0000330 DefBefore->replaceUsesWithIf(MD, [MD](Use &U) {
Alexandros Lamprineas96762b32018-09-11 14:29:59 +0000331 // Leave the MemoryUses alone.
332 // Also make sure we skip ourselves to avoid self references.
Roman Lebedev081e9902019-08-01 12:32:08 +0000333 User *Usr = U.getUser();
334 return !isa<MemoryUse>(Usr) && Usr != MD;
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000335 // Defs are automatically unoptimized when the user is set to MD below,
336 // because the isOptimized() call will fail to find the same ID.
Roman Lebedev081e9902019-08-01 12:32:08 +0000337 });
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000338 }
Daniel Berlin9d8a3352017-01-30 11:35:39 +0000339
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000340 // and that def is now our defining access.
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000341 MD->setDefiningAccess(DefBefore);
342
Alexandros Lamprineasf854ce82018-07-16 07:51:27 +0000343 SmallVector<WeakVH, 8> FixupList(InsertedPHIs.begin(), InsertedPHIs.end());
Alina Sbirlea2c5e6642019-09-23 23:50:16 +0000344
Alina Sbirlea6720ed82019-09-25 23:24:39 +0000345 // Remember the index where we may insert new phis.
346 unsigned NewPhiIndex = InsertedPHIs.size();
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000347 if (!DefBeforeSameBlock) {
348 // If there was a local def before us, we must have the same effect it
349 // did. Because every may-def is the same, any phis/etc we would create, it
350 // would also have created. If there was no local def before us, we
351 // performed a global update, and have to search all successors and make
352 // sure we update the first def in each of them (following all paths until
353 // we hit the first def along each path). This may also insert phi nodes.
354 // TODO: There are other cases we can skip this work, such as when we have a
355 // single successor, and only used a straight line of single pred blocks
356 // backwards to find the def. To make that work, we'd have to track whether
357 // getDefRecursive only ever used the single predecessor case. These types
358 // of paths also only exist in between CFG simplifications.
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000359
360 // If this is the first def in the block and this insert is in an arbitrary
361 // place, compute IDF and place phis.
Alina Sbirlea24ae5ce2019-10-02 18:42:33 +0000362 SmallPtrSet<BasicBlock *, 2> DefiningBlocks;
363
364 // If this is the last Def in the block, also compute IDF based on MD, since
365 // this may a new Def added, and we may need additional Phis.
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000366 auto Iter = MD->getDefsIterator();
367 ++Iter;
368 auto IterEnd = MSSA->getBlockDefs(MD->getBlock())->end();
Alina Sbirlea24ae5ce2019-10-02 18:42:33 +0000369 if (Iter == IterEnd)
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000370 DefiningBlocks.insert(MD->getBlock());
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000371
Alina Sbirlea24ae5ce2019-10-02 18:42:33 +0000372 for (const auto &VH : InsertedPHIs)
373 if (const auto *RealPHI = cast_or_null<MemoryPhi>(VH))
374 DefiningBlocks.insert(RealPHI->getBlock());
375 ForwardIDFCalculator IDFs(*MSSA->DT);
376 SmallVector<BasicBlock *, 32> IDFBlocks;
377 IDFs.setDefiningBlocks(DefiningBlocks);
378 IDFs.calculate(IDFBlocks);
379 SmallVector<AssertingVH<MemoryPhi>, 4> NewInsertedPHIs;
380 for (auto *BBIDF : IDFBlocks) {
381 auto *MPhi = MSSA->getMemoryAccess(BBIDF);
382 if (!MPhi) {
383 MPhi = MSSA->createMemoryPhi(BBIDF);
384 NewInsertedPHIs.push_back(MPhi);
385 }
386 // Add the phis created into the IDF blocks to NonOptPhis, so they are not
387 // optimized out as trivial by the call to getPreviousDefFromEnd below.
388 // Once they are complete, all these Phis are added to the FixupList, and
389 // removed from NonOptPhis inside fixupDefs(). Existing Phis in IDF may
390 // need fixing as well, and potentially be trivial before this insertion,
391 // hence add all IDF Phis. See PR43044.
392 NonOptPhis.insert(MPhi);
393 }
394 for (auto &MPhi : NewInsertedPHIs) {
395 auto *BBIDF = MPhi->getBlock();
396 for (auto *Pred : predecessors(BBIDF)) {
397 DenseMap<BasicBlock *, TrackingVH<MemoryAccess>> CachedPreviousDef;
398 MPhi->addIncoming(getPreviousDefFromEnd(Pred, CachedPreviousDef), Pred);
Alina Sbirlea6720ed82019-09-25 23:24:39 +0000399 }
400 }
Alina Sbirlea24ae5ce2019-10-02 18:42:33 +0000401
402 // Re-take the index where we're adding the new phis, because the above call
403 // to getPreviousDefFromEnd, may have inserted into InsertedPHIs.
404 NewPhiIndex = InsertedPHIs.size();
405 for (auto &MPhi : NewInsertedPHIs) {
406 InsertedPHIs.push_back(&*MPhi);
407 FixupList.push_back(&*MPhi);
408 }
409
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000410 FixupList.push_back(MD);
411 }
412
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000413 // Remember the index where we stopped inserting new phis above, since the
414 // fixupDefs call in the loop below may insert more, that are already minimal.
415 unsigned NewPhiIndexEnd = InsertedPHIs.size();
416
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000417 while (!FixupList.empty()) {
418 unsigned StartingPHISize = InsertedPHIs.size();
419 fixupDefs(FixupList);
420 FixupList.clear();
421 // Put any new phis on the fixup list, and process them
Alexandros Lamprineasf854ce82018-07-16 07:51:27 +0000422 FixupList.append(InsertedPHIs.begin() + StartingPHISize, InsertedPHIs.end());
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000423 }
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000424
425 // Optimize potentially non-minimal phis added in this method.
Alina Sbirlea151ab482019-05-02 23:12:49 +0000426 unsigned NewPhiSize = NewPhiIndexEnd - NewPhiIndex;
427 if (NewPhiSize)
428 tryRemoveTrivialPhis(ArrayRef<WeakVH>(&InsertedPHIs[NewPhiIndex], NewPhiSize));
Alina Sbirleafcfa7c52019-02-27 22:20:22 +0000429
Daniel Berlin78cbd282017-02-20 22:26:03 +0000430 // Now that all fixups are done, rename all uses if we are asked.
431 if (RenameUses) {
432 SmallPtrSet<BasicBlock *, 16> Visited;
433 BasicBlock *StartBlock = MD->getBlock();
434 // We are guaranteed there is a def in the block, because we just got it
435 // handed to us in this function.
436 MemoryAccess *FirstDef = &*MSSA->getWritableBlockDefs(StartBlock)->begin();
437 // Convert to incoming value if it's a memorydef. A phi *is* already an
438 // incoming value.
439 if (auto *MD = dyn_cast<MemoryDef>(FirstDef))
440 FirstDef = MD->getDefiningAccess();
441
442 MSSA->renamePass(MD->getBlock(), FirstDef, Visited);
443 // We just inserted a phi into this block, so the incoming value will become
444 // the phi anyway, so it does not matter what we pass.
Alexandros Lamprineasf854ce82018-07-16 07:51:27 +0000445 for (auto &MP : InsertedPHIs) {
446 MemoryPhi *Phi = dyn_cast_or_null<MemoryPhi>(MP);
447 if (Phi)
448 MSSA->renamePass(Phi->getBlock(), nullptr, Visited);
449 }
Daniel Berlin78cbd282017-02-20 22:26:03 +0000450 }
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000451}
452
Alexandros Lamprineasf854ce82018-07-16 07:51:27 +0000453void MemorySSAUpdater::fixupDefs(const SmallVectorImpl<WeakVH> &Vars) {
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000454 SmallPtrSet<const BasicBlock *, 8> Seen;
455 SmallVector<const BasicBlock *, 16> Worklist;
Alexandros Lamprineasf854ce82018-07-16 07:51:27 +0000456 for (auto &Var : Vars) {
457 MemoryAccess *NewDef = dyn_cast_or_null<MemoryAccess>(Var);
458 if (!NewDef)
459 continue;
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000460 // First, see if there is a local def after the operand.
461 auto *Defs = MSSA->getWritableBlockDefs(NewDef->getBlock());
462 auto DefIter = NewDef->getDefsIterator();
463
Zhaoshi Zheng43af17b2018-04-09 20:55:37 +0000464 // The temporary Phi is being fixed, unmark it for not to optimize.
George Burgess IVe7cdb7e2018-07-12 21:56:31 +0000465 if (MemoryPhi *Phi = dyn_cast<MemoryPhi>(NewDef))
Zhaoshi Zheng43af17b2018-04-09 20:55:37 +0000466 NonOptPhis.erase(Phi);
467
Daniel Berlinae6b8b62017-01-28 01:35:02 +0000468 // If there is a local def after us, we only have to rename that.
469 if (++DefIter != Defs->end()) {
470 cast<MemoryDef>(DefIter)->setDefiningAccess(NewDef);
471 continue;
472 }
473
474 // Otherwise, we need to search down through the CFG.
475 // For each of our successors, handle it directly if their is a phi, or
476 // place on the fixup worklist.
477 for (const auto *S : successors(NewDef->getBlock())) {
478 if (auto *MP = MSSA->getMemoryAccess(S))
479 setMemoryPhiValueForBlock(MP, NewDef->getBlock(), NewDef);
480 else
481 Worklist.push_back(S);
482 }
483
484 while (!Worklist.empty()) {
485 const BasicBlock *FixupBlock = Worklist.back();
486 Worklist.pop_back();
487
488 // Get the first def in the block that isn't a phi node.
489 if (auto *Defs = MSSA->getWritableBlockDefs(FixupBlock)) {
490 auto *FirstDef = &*Defs->begin();
491 // The loop above and below should have taken care of phi nodes
492 assert(!isa<MemoryPhi>(FirstDef) &&
493 "Should have already handled phi nodes!");
494 // We are now this def's defining access, make sure we actually dominate
495 // it
496 assert(MSSA->dominates(NewDef, FirstDef) &&
497 "Should have dominated the new access");
498
499 // This may insert new phi nodes, because we are not guaranteed the
500 // block we are processing has a single pred, and depending where the
501 // store was inserted, it may require phi nodes below it.
502 cast<MemoryDef>(FirstDef)->setDefiningAccess(getPreviousDef(FirstDef));
503 return;
504 }
505 // We didn't find a def, so we must continue.
506 for (const auto *S : successors(FixupBlock)) {
507 // If there is a phi node, handle it.
508 // Otherwise, put the block on the worklist
509 if (auto *MP = MSSA->getMemoryAccess(S))
510 setMemoryPhiValueForBlock(MP, FixupBlock, NewDef);
511 else {
512 // If we cycle, we should have ended up at a phi node that we already
513 // processed. FIXME: Double check this
514 if (!Seen.insert(S).second)
515 continue;
516 Worklist.push_back(S);
517 }
518 }
519 }
520 }
521}
522
Alina Sbirlea79800992018-09-10 20:13:01 +0000523void MemorySSAUpdater::removeEdge(BasicBlock *From, BasicBlock *To) {
524 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(To)) {
525 MPhi->unorderedDeleteIncomingBlock(From);
Alina Sbirlea28637212019-08-20 22:47:58 +0000526 tryRemoveTrivialPhi(MPhi);
Alina Sbirlea79800992018-09-10 20:13:01 +0000527 }
528}
529
Alina Sbirleaf31eba62019-05-08 17:05:36 +0000530void MemorySSAUpdater::removeDuplicatePhiEdgesBetween(const BasicBlock *From,
531 const BasicBlock *To) {
Alina Sbirlea79800992018-09-10 20:13:01 +0000532 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(To)) {
533 bool Found = false;
534 MPhi->unorderedDeleteIncomingIf([&](const MemoryAccess *, BasicBlock *B) {
535 if (From != B)
536 return false;
537 if (Found)
538 return true;
539 Found = true;
540 return false;
541 });
Alina Sbirlea28637212019-08-20 22:47:58 +0000542 tryRemoveTrivialPhi(MPhi);
Alina Sbirlea79800992018-09-10 20:13:01 +0000543 }
544}
545
Alina Sbirlea4bc625c2019-07-30 20:10:33 +0000546static MemoryAccess *getNewDefiningAccessForClone(MemoryAccess *MA,
547 const ValueToValueMapTy &VMap,
548 PhiToDefMap &MPhiMap,
549 bool CloneWasSimplified,
550 MemorySSA *MSSA) {
551 MemoryAccess *InsnDefining = MA;
552 if (MemoryDef *DefMUD = dyn_cast<MemoryDef>(InsnDefining)) {
553 if (!MSSA->isLiveOnEntryDef(DefMUD)) {
554 Instruction *DefMUDI = DefMUD->getMemoryInst();
555 assert(DefMUDI && "Found MemoryUseOrDef with no Instruction.");
556 if (Instruction *NewDefMUDI =
557 cast_or_null<Instruction>(VMap.lookup(DefMUDI))) {
558 InsnDefining = MSSA->getMemoryAccess(NewDefMUDI);
559 if (!CloneWasSimplified)
560 assert(InsnDefining && "Defining instruction cannot be nullptr.");
561 else if (!InsnDefining || isa<MemoryUse>(InsnDefining)) {
562 // The clone was simplified, it's no longer a MemoryDef, look up.
563 auto DefIt = DefMUD->getDefsIterator();
564 // Since simplified clones only occur in single block cloning, a
565 // previous definition must exist, otherwise NewDefMUDI would not
566 // have been found in VMap.
567 assert(DefIt != MSSA->getBlockDefs(DefMUD->getBlock())->begin() &&
568 "Previous def must exist");
569 InsnDefining = getNewDefiningAccessForClone(
570 &*(--DefIt), VMap, MPhiMap, CloneWasSimplified, MSSA);
571 }
572 }
573 }
574 } else {
575 MemoryPhi *DefPhi = cast<MemoryPhi>(InsnDefining);
576 if (MemoryAccess *NewDefPhi = MPhiMap.lookup(DefPhi))
577 InsnDefining = NewDefPhi;
578 }
579 assert(InsnDefining && "Defining instruction cannot be nullptr.");
580 return InsnDefining;
581}
582
Alina Sbirlea79800992018-09-10 20:13:01 +0000583void MemorySSAUpdater::cloneUsesAndDefs(BasicBlock *BB, BasicBlock *NewBB,
584 const ValueToValueMapTy &VMap,
Alina Sbirlea7a0098a2019-06-17 18:58:40 +0000585 PhiToDefMap &MPhiMap,
586 bool CloneWasSimplified) {
Alina Sbirlea79800992018-09-10 20:13:01 +0000587 const MemorySSA::AccessList *Acc = MSSA->getBlockAccesses(BB);
588 if (!Acc)
589 return;
590 for (const MemoryAccess &MA : *Acc) {
591 if (const MemoryUseOrDef *MUD = dyn_cast<MemoryUseOrDef>(&MA)) {
592 Instruction *Insn = MUD->getMemoryInst();
593 // Entry does not exist if the clone of the block did not clone all
594 // instructions. This occurs in LoopRotate when cloning instructions
595 // from the old header to the old preheader. The cloned instruction may
596 // also be a simplified Value, not an Instruction (see LoopRotate).
Alina Sbirlea7a0098a2019-06-17 18:58:40 +0000597 // Also in LoopRotate, even when it's an instruction, due to it being
598 // simplified, it may be a Use rather than a Def, so we cannot use MUD as
599 // template. Calls coming from updateForClonedBlockIntoPred, ensure this.
Alina Sbirlea79800992018-09-10 20:13:01 +0000600 if (Instruction *NewInsn =
601 dyn_cast_or_null<Instruction>(VMap.lookup(Insn))) {
602 MemoryAccess *NewUseOrDef = MSSA->createDefinedAccess(
Alina Sbirlea4bc625c2019-07-30 20:10:33 +0000603 NewInsn,
604 getNewDefiningAccessForClone(MUD->getDefiningAccess(), VMap,
605 MPhiMap, CloneWasSimplified, MSSA),
606 /*Template=*/CloneWasSimplified ? nullptr : MUD,
607 /*CreationMustSucceed=*/CloneWasSimplified ? false : true);
608 if (NewUseOrDef)
609 MSSA->insertIntoListsForBlock(NewUseOrDef, NewBB, MemorySSA::End);
Alina Sbirlea79800992018-09-10 20:13:01 +0000610 }
611 }
612 }
613}
614
Alina Sbirleaf31eba62019-05-08 17:05:36 +0000615void MemorySSAUpdater::updatePhisWhenInsertingUniqueBackedgeBlock(
616 BasicBlock *Header, BasicBlock *Preheader, BasicBlock *BEBlock) {
617 auto *MPhi = MSSA->getMemoryAccess(Header);
618 if (!MPhi)
619 return;
620
621 // Create phi node in the backedge block and populate it with the same
622 // incoming values as MPhi. Skip incoming values coming from Preheader.
623 auto *NewMPhi = MSSA->createMemoryPhi(BEBlock);
624 bool HasUniqueIncomingValue = true;
625 MemoryAccess *UniqueValue = nullptr;
626 for (unsigned I = 0, E = MPhi->getNumIncomingValues(); I != E; ++I) {
627 BasicBlock *IBB = MPhi->getIncomingBlock(I);
628 MemoryAccess *IV = MPhi->getIncomingValue(I);
629 if (IBB != Preheader) {
630 NewMPhi->addIncoming(IV, IBB);
631 if (HasUniqueIncomingValue) {
632 if (!UniqueValue)
633 UniqueValue = IV;
634 else if (UniqueValue != IV)
635 HasUniqueIncomingValue = false;
636 }
637 }
638 }
639
640 // Update incoming edges into MPhi. Remove all but the incoming edge from
641 // Preheader. Add an edge from NewMPhi
642 auto *AccFromPreheader = MPhi->getIncomingValueForBlock(Preheader);
643 MPhi->setIncomingValue(0, AccFromPreheader);
644 MPhi->setIncomingBlock(0, Preheader);
645 for (unsigned I = MPhi->getNumIncomingValues() - 1; I >= 1; --I)
646 MPhi->unorderedDeleteIncoming(I);
647 MPhi->addIncoming(NewMPhi, BEBlock);
648
649 // If NewMPhi is a trivial phi, remove it. Its use in the header MPhi will be
650 // replaced with the unique value.
Alina Sbirleaae40dfc2019-10-01 18:34:39 +0000651 tryRemoveTrivialPhi(NewMPhi);
Alina Sbirleaf31eba62019-05-08 17:05:36 +0000652}
653
Alina Sbirlea79800992018-09-10 20:13:01 +0000654void MemorySSAUpdater::updateForClonedLoop(const LoopBlocksRPO &LoopBlocks,
655 ArrayRef<BasicBlock *> ExitBlocks,
656 const ValueToValueMapTy &VMap,
657 bool IgnoreIncomingWithNoClones) {
658 PhiToDefMap MPhiMap;
659
660 auto FixPhiIncomingValues = [&](MemoryPhi *Phi, MemoryPhi *NewPhi) {
661 assert(Phi && NewPhi && "Invalid Phi nodes.");
662 BasicBlock *NewPhiBB = NewPhi->getBlock();
663 SmallPtrSet<BasicBlock *, 4> NewPhiBBPreds(pred_begin(NewPhiBB),
664 pred_end(NewPhiBB));
665 for (unsigned It = 0, E = Phi->getNumIncomingValues(); It < E; ++It) {
666 MemoryAccess *IncomingAccess = Phi->getIncomingValue(It);
667 BasicBlock *IncBB = Phi->getIncomingBlock(It);
668
669 if (BasicBlock *NewIncBB = cast_or_null<BasicBlock>(VMap.lookup(IncBB)))
670 IncBB = NewIncBB;
671 else if (IgnoreIncomingWithNoClones)
672 continue;
673
674 // Now we have IncBB, and will need to add incoming from it to NewPhi.
675
676 // If IncBB is not a predecessor of NewPhiBB, then do not add it.
677 // NewPhiBB was cloned without that edge.
678 if (!NewPhiBBPreds.count(IncBB))
679 continue;
680
681 // Determine incoming value and add it as incoming from IncBB.
682 if (MemoryUseOrDef *IncMUD = dyn_cast<MemoryUseOrDef>(IncomingAccess)) {
683 if (!MSSA->isLiveOnEntryDef(IncMUD)) {
684 Instruction *IncI = IncMUD->getMemoryInst();
685 assert(IncI && "Found MemoryUseOrDef with no Instruction.");
686 if (Instruction *NewIncI =
687 cast_or_null<Instruction>(VMap.lookup(IncI))) {
688 IncMUD = MSSA->getMemoryAccess(NewIncI);
689 assert(IncMUD &&
690 "MemoryUseOrDef cannot be null, all preds processed.");
691 }
692 }
693 NewPhi->addIncoming(IncMUD, IncBB);
694 } else {
695 MemoryPhi *IncPhi = cast<MemoryPhi>(IncomingAccess);
696 if (MemoryAccess *NewDefPhi = MPhiMap.lookup(IncPhi))
697 NewPhi->addIncoming(NewDefPhi, IncBB);
698 else
699 NewPhi->addIncoming(IncPhi, IncBB);
700 }
701 }
702 };
703
704 auto ProcessBlock = [&](BasicBlock *BB) {
705 BasicBlock *NewBlock = cast_or_null<BasicBlock>(VMap.lookup(BB));
706 if (!NewBlock)
707 return;
708
709 assert(!MSSA->getWritableBlockAccesses(NewBlock) &&
710 "Cloned block should have no accesses");
711
712 // Add MemoryPhi.
713 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(BB)) {
714 MemoryPhi *NewPhi = MSSA->createMemoryPhi(NewBlock);
715 MPhiMap[MPhi] = NewPhi;
716 }
717 // Update Uses and Defs.
718 cloneUsesAndDefs(BB, NewBlock, VMap, MPhiMap);
719 };
720
721 for (auto BB : llvm::concat<BasicBlock *const>(LoopBlocks, ExitBlocks))
722 ProcessBlock(BB);
723
724 for (auto BB : llvm::concat<BasicBlock *const>(LoopBlocks, ExitBlocks))
725 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(BB))
726 if (MemoryAccess *NewPhi = MPhiMap.lookup(MPhi))
727 FixPhiIncomingValues(MPhi, cast<MemoryPhi>(NewPhi));
728}
729
730void MemorySSAUpdater::updateForClonedBlockIntoPred(
731 BasicBlock *BB, BasicBlock *P1, const ValueToValueMapTy &VM) {
732 // All defs/phis from outside BB that are used in BB, are valid uses in P1.
733 // Since those defs/phis must have dominated BB, and also dominate P1.
734 // Defs from BB being used in BB will be replaced with the cloned defs from
735 // VM. The uses of BB's Phi (if it exists) in BB will be replaced by the
736 // incoming def into the Phi from P1.
Alina Sbirlea7a0098a2019-06-17 18:58:40 +0000737 // Instructions cloned into the predecessor are in practice sometimes
738 // simplified, so disable the use of the template, and create an access from
739 // scratch.
Alina Sbirlea79800992018-09-10 20:13:01 +0000740 PhiToDefMap MPhiMap;
741 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(BB))
742 MPhiMap[MPhi] = MPhi->getIncomingValueForBlock(P1);
Alina Sbirlea7a0098a2019-06-17 18:58:40 +0000743 cloneUsesAndDefs(BB, P1, VM, MPhiMap, /*CloneWasSimplified=*/true);
Alina Sbirlea79800992018-09-10 20:13:01 +0000744}
745
746template <typename Iter>
747void MemorySSAUpdater::privateUpdateExitBlocksForClonedLoop(
748 ArrayRef<BasicBlock *> ExitBlocks, Iter ValuesBegin, Iter ValuesEnd,
749 DominatorTree &DT) {
750 SmallVector<CFGUpdate, 4> Updates;
751 // Update/insert phis in all successors of exit blocks.
752 for (auto *Exit : ExitBlocks)
753 for (const ValueToValueMapTy *VMap : make_range(ValuesBegin, ValuesEnd))
754 if (BasicBlock *NewExit = cast_or_null<BasicBlock>(VMap->lookup(Exit))) {
755 BasicBlock *ExitSucc = NewExit->getTerminator()->getSuccessor(0);
756 Updates.push_back({DT.Insert, NewExit, ExitSucc});
757 }
758 applyInsertUpdates(Updates, DT);
759}
760
761void MemorySSAUpdater::updateExitBlocksForClonedLoop(
762 ArrayRef<BasicBlock *> ExitBlocks, const ValueToValueMapTy &VMap,
763 DominatorTree &DT) {
764 const ValueToValueMapTy *const Arr[] = {&VMap};
765 privateUpdateExitBlocksForClonedLoop(ExitBlocks, std::begin(Arr),
766 std::end(Arr), DT);
767}
768
769void MemorySSAUpdater::updateExitBlocksForClonedLoop(
770 ArrayRef<BasicBlock *> ExitBlocks,
771 ArrayRef<std::unique_ptr<ValueToValueMapTy>> VMaps, DominatorTree &DT) {
772 auto GetPtr = [&](const std::unique_ptr<ValueToValueMapTy> &I) {
773 return I.get();
774 };
775 using MappedIteratorType =
776 mapped_iterator<const std::unique_ptr<ValueToValueMapTy> *,
777 decltype(GetPtr)>;
778 auto MapBegin = MappedIteratorType(VMaps.begin(), GetPtr);
779 auto MapEnd = MappedIteratorType(VMaps.end(), GetPtr);
780 privateUpdateExitBlocksForClonedLoop(ExitBlocks, MapBegin, MapEnd, DT);
781}
782
783void MemorySSAUpdater::applyUpdates(ArrayRef<CFGUpdate> Updates,
784 DominatorTree &DT) {
Alina Sbirlea688450c2020-03-27 15:02:23 -0700785 SmallVector<CFGUpdate, 4> DeleteUpdates;
Alina Sbirleaf55ad392020-02-26 13:33:02 -0800786 SmallVector<CFGUpdate, 4> RevDeleteUpdates;
Alina Sbirlea79800992018-09-10 20:13:01 +0000787 SmallVector<CFGUpdate, 4> InsertUpdates;
788 for (auto &Update : Updates) {
789 if (Update.getKind() == DT.Insert)
790 InsertUpdates.push_back({DT.Insert, Update.getFrom(), Update.getTo()});
Alina Sbirleaf55ad392020-02-26 13:33:02 -0800791 else {
Alina Sbirlea688450c2020-03-27 15:02:23 -0700792 DeleteUpdates.push_back({DT.Delete, Update.getFrom(), Update.getTo()});
Alina Sbirleaf55ad392020-02-26 13:33:02 -0800793 RevDeleteUpdates.push_back({DT.Insert, Update.getFrom(), Update.getTo()});
794 }
Alina Sbirlea79800992018-09-10 20:13:01 +0000795 }
796
Alina Sbirlea688450c2020-03-27 15:02:23 -0700797 if (!DeleteUpdates.empty()) {
Alina Sbirleaf55ad392020-02-26 13:33:02 -0800798 SmallVector<CFGUpdate, 0> Empty;
799 // Deletes are reversed applied, because this CFGView is pretending the
800 // deletes did not happen yet, hence the edges still exist.
801 DT.applyUpdates(Empty, RevDeleteUpdates);
802
803 // Note: the MSSA update below doesn't distinguish between a GD with
804 // (RevDelete,false) and (Delete, true), but this matters for the DT
805 // updates above; for "children" purposes they are equivalent; but the
806 // updates themselves convey the desired update, used inside DT only.
807 GraphDiff<BasicBlock *> GD(RevDeleteUpdates);
808 applyInsertUpdates(InsertUpdates, DT, &GD);
809 // Update DT to redelete edges; this matches the real CFG so we can perform
810 // the standard update without a postview of the CFG.
811 DT.applyUpdates(DeleteUpdates);
Alina Sbirlea79800992018-09-10 20:13:01 +0000812 } else {
813 GraphDiff<BasicBlock *> GD;
814 applyInsertUpdates(InsertUpdates, DT, &GD);
815 }
816
817 // Update for deleted edges
Alina Sbirlea688450c2020-03-27 15:02:23 -0700818 for (auto &Update : DeleteUpdates)
Alina Sbirlea79800992018-09-10 20:13:01 +0000819 removeEdge(Update.getFrom(), Update.getTo());
820}
821
822void MemorySSAUpdater::applyInsertUpdates(ArrayRef<CFGUpdate> Updates,
823 DominatorTree &DT) {
824 GraphDiff<BasicBlock *> GD;
825 applyInsertUpdates(Updates, DT, &GD);
826}
827
828void MemorySSAUpdater::applyInsertUpdates(ArrayRef<CFGUpdate> Updates,
829 DominatorTree &DT,
830 const GraphDiff<BasicBlock *> *GD) {
831 // Get recursive last Def, assuming well formed MSSA and updated DT.
832 auto GetLastDef = [&](BasicBlock *BB) -> MemoryAccess * {
833 while (true) {
834 MemorySSA::DefsList *Defs = MSSA->getWritableBlockDefs(BB);
835 // Return last Def or Phi in BB, if it exists.
836 if (Defs)
837 return &*(--Defs->end());
838
839 // Check number of predecessors, we only care if there's more than one.
840 unsigned Count = 0;
841 BasicBlock *Pred = nullptr;
Alina Sbirleaf1d4db42020-07-16 15:46:54 -0700842 for (auto *Pi : GD->template getChildren</*InverseEdge=*/true>(BB)) {
843 Pred = Pi;
Alina Sbirlea79800992018-09-10 20:13:01 +0000844 Count++;
845 if (Count == 2)
846 break;
847 }
848
849 // If BB has multiple predecessors, get last definition from IDom.
850 if (Count != 1) {
851 // [SimpleLoopUnswitch] If BB is a dead block, about to be deleted, its
852 // DT is invalidated. Return LoE as its last def. This will be added to
853 // MemoryPhi node, and later deleted when the block is deleted.
854 if (!DT.getNode(BB))
855 return MSSA->getLiveOnEntryDef();
856 if (auto *IDom = DT.getNode(BB)->getIDom())
857 if (IDom->getBlock() != BB) {
858 BB = IDom->getBlock();
859 continue;
860 }
861 return MSSA->getLiveOnEntryDef();
862 } else {
863 // Single predecessor, BB cannot be dead. GetLastDef of Pred.
864 assert(Count == 1 && Pred && "Single predecessor expected.");
Alina Sbirlea890090f2019-10-01 19:09:50 +0000865 // BB can be unreachable though, return LoE if that is the case.
866 if (!DT.getNode(BB))
867 return MSSA->getLiveOnEntryDef();
Alina Sbirlea79800992018-09-10 20:13:01 +0000868 BB = Pred;
869 }
870 };
871 llvm_unreachable("Unable to get last definition.");
872 };
873
874 // Get nearest IDom given a set of blocks.
875 // TODO: this can be optimized by starting the search at the node with the
876 // lowest level (highest in the tree).
877 auto FindNearestCommonDominator =
878 [&](const SmallSetVector<BasicBlock *, 2> &BBSet) -> BasicBlock * {
879 BasicBlock *PrevIDom = *BBSet.begin();
880 for (auto *BB : BBSet)
881 PrevIDom = DT.findNearestCommonDominator(PrevIDom, BB);
882 return PrevIDom;
883 };
884
885 // Get all blocks that dominate PrevIDom, stop when reaching CurrIDom. Do not
886 // include CurrIDom.
887 auto GetNoLongerDomBlocks =
888 [&](BasicBlock *PrevIDom, BasicBlock *CurrIDom,
889 SmallVectorImpl<BasicBlock *> &BlocksPrevDom) {
890 if (PrevIDom == CurrIDom)
891 return;
892 BlocksPrevDom.push_back(PrevIDom);
893 BasicBlock *NextIDom = PrevIDom;
894 while (BasicBlock *UpIDom =
895 DT.getNode(NextIDom)->getIDom()->getBlock()) {
896 if (UpIDom == CurrIDom)
897 break;
898 BlocksPrevDom.push_back(UpIDom);
899 NextIDom = UpIDom;
900 }
901 };
902
903 // Map a BB to its predecessors: added + previously existing. To get a
904 // deterministic order, store predecessors as SetVectors. The order in each
Hiroshi Inoue02a2bb22019-02-05 08:30:48 +0000905 // will be defined by the order in Updates (fixed) and the order given by
Alina Sbirlea79800992018-09-10 20:13:01 +0000906 // children<> (also fixed). Since we further iterate over these ordered sets,
907 // we lose the information of multiple edges possibly existing between two
908 // blocks, so we'll keep and EdgeCount map for that.
909 // An alternate implementation could keep unordered set for the predecessors,
910 // traverse either Updates or children<> each time to get the deterministic
911 // order, and drop the usage of EdgeCount. This alternate approach would still
912 // require querying the maps for each predecessor, and children<> call has
913 // additional computation inside for creating the snapshot-graph predecessors.
914 // As such, we favor using a little additional storage and less compute time.
915 // This decision can be revisited if we find the alternative more favorable.
916
917 struct PredInfo {
918 SmallSetVector<BasicBlock *, 2> Added;
919 SmallSetVector<BasicBlock *, 2> Prev;
920 };
921 SmallDenseMap<BasicBlock *, PredInfo> PredMap;
922
923 for (auto &Edge : Updates) {
924 BasicBlock *BB = Edge.getTo();
925 auto &AddedBlockSet = PredMap[BB].Added;
926 AddedBlockSet.insert(Edge.getFrom());
927 }
928
929 // Store all existing predecessor for each BB, at least one must exist.
930 SmallDenseMap<std::pair<BasicBlock *, BasicBlock *>, int> EdgeCountMap;
931 SmallPtrSet<BasicBlock *, 2> NewBlocks;
932 for (auto &BBPredPair : PredMap) {
933 auto *BB = BBPredPair.first;
934 const auto &AddedBlockSet = BBPredPair.second.Added;
935 auto &PrevBlockSet = BBPredPair.second.Prev;
Alina Sbirleaf1d4db42020-07-16 15:46:54 -0700936 for (auto *Pi : GD->template getChildren</*InverseEdge=*/true>(BB)) {
Alina Sbirlea79800992018-09-10 20:13:01 +0000937 if (!AddedBlockSet.count(Pi))
938 PrevBlockSet.insert(Pi);
939 EdgeCountMap[{Pi, BB}]++;
940 }
941
942 if (PrevBlockSet.empty()) {
943 assert(pred_size(BB) == AddedBlockSet.size() && "Duplicate edges added.");
944 LLVM_DEBUG(
945 dbgs()
946 << "Adding a predecessor to a block with no predecessors. "
947 "This must be an edge added to a new, likely cloned, block. "
948 "Its memory accesses must be already correct, assuming completed "
949 "via the updateExitBlocksForClonedLoop API. "
950 "Assert a single such edge is added so no phi addition or "
951 "additional processing is required.\n");
952 assert(AddedBlockSet.size() == 1 &&
953 "Can only handle adding one predecessor to a new block.");
954 // Need to remove new blocks from PredMap. Remove below to not invalidate
955 // iterator here.
956 NewBlocks.insert(BB);
957 }
958 }
959 // Nothing to process for new/cloned blocks.
960 for (auto *BB : NewBlocks)
961 PredMap.erase(BB);
962
Alina Sbirlea79800992018-09-10 20:13:01 +0000963 SmallVector<BasicBlock *, 16> BlocksWithDefsToReplace;
Alina Sbirleacb4ed8a2019-06-11 19:09:34 +0000964 SmallVector<WeakVH, 8> InsertedPhis;
Alina Sbirlea79800992018-09-10 20:13:01 +0000965
966 // First create MemoryPhis in all blocks that don't have one. Create in the
967 // order found in Updates, not in PredMap, to get deterministic numbering.
968 for (auto &Edge : Updates) {
969 BasicBlock *BB = Edge.getTo();
970 if (PredMap.count(BB) && !MSSA->getMemoryAccess(BB))
Alina Sbirleacb4ed8a2019-06-11 19:09:34 +0000971 InsertedPhis.push_back(MSSA->createMemoryPhi(BB));
Alina Sbirlea79800992018-09-10 20:13:01 +0000972 }
973
974 // Now we'll fill in the MemoryPhis with the right incoming values.
975 for (auto &BBPredPair : PredMap) {
976 auto *BB = BBPredPair.first;
977 const auto &PrevBlockSet = BBPredPair.second.Prev;
978 const auto &AddedBlockSet = BBPredPair.second.Added;
979 assert(!PrevBlockSet.empty() &&
980 "At least one previous predecessor must exist.");
981
982 // TODO: if this becomes a bottleneck, we can save on GetLastDef calls by
983 // keeping this map before the loop. We can reuse already populated entries
984 // if an edge is added from the same predecessor to two different blocks,
985 // and this does happen in rotate. Note that the map needs to be updated
986 // when deleting non-necessary phis below, if the phi is in the map by
987 // replacing the value with DefP1.
988 SmallDenseMap<BasicBlock *, MemoryAccess *> LastDefAddedPred;
989 for (auto *AddedPred : AddedBlockSet) {
990 auto *DefPn = GetLastDef(AddedPred);
991 assert(DefPn != nullptr && "Unable to find last definition.");
992 LastDefAddedPred[AddedPred] = DefPn;
993 }
994
995 MemoryPhi *NewPhi = MSSA->getMemoryAccess(BB);
996 // If Phi is not empty, add an incoming edge from each added pred. Must
997 // still compute blocks with defs to replace for this block below.
998 if (NewPhi->getNumOperands()) {
999 for (auto *Pred : AddedBlockSet) {
1000 auto *LastDefForPred = LastDefAddedPred[Pred];
1001 for (int I = 0, E = EdgeCountMap[{Pred, BB}]; I < E; ++I)
1002 NewPhi->addIncoming(LastDefForPred, Pred);
1003 }
1004 } else {
1005 // Pick any existing predecessor and get its definition. All other
1006 // existing predecessors should have the same one, since no phi existed.
1007 auto *P1 = *PrevBlockSet.begin();
1008 MemoryAccess *DefP1 = GetLastDef(P1);
1009
1010 // Check DefP1 against all Defs in LastDefPredPair. If all the same,
1011 // nothing to add.
1012 bool InsertPhi = false;
1013 for (auto LastDefPredPair : LastDefAddedPred)
1014 if (DefP1 != LastDefPredPair.second) {
1015 InsertPhi = true;
1016 break;
1017 }
1018 if (!InsertPhi) {
1019 // Since NewPhi may be used in other newly added Phis, replace all uses
1020 // of NewPhi with the definition coming from all predecessors (DefP1),
1021 // before deleting it.
1022 NewPhi->replaceAllUsesWith(DefP1);
1023 removeMemoryAccess(NewPhi);
1024 continue;
1025 }
1026
1027 // Update Phi with new values for new predecessors and old value for all
1028 // other predecessors. Since AddedBlockSet and PrevBlockSet are ordered
1029 // sets, the order of entries in NewPhi is deterministic.
1030 for (auto *Pred : AddedBlockSet) {
1031 auto *LastDefForPred = LastDefAddedPred[Pred];
1032 for (int I = 0, E = EdgeCountMap[{Pred, BB}]; I < E; ++I)
1033 NewPhi->addIncoming(LastDefForPred, Pred);
1034 }
1035 for (auto *Pred : PrevBlockSet)
1036 for (int I = 0, E = EdgeCountMap[{Pred, BB}]; I < E; ++I)
1037 NewPhi->addIncoming(DefP1, Pred);
Alina Sbirlea79800992018-09-10 20:13:01 +00001038 }
1039
1040 // Get all blocks that used to dominate BB and no longer do after adding
1041 // AddedBlockSet, where PrevBlockSet are the previously known predecessors.
1042 assert(DT.getNode(BB)->getIDom() && "BB does not have valid idom");
1043 BasicBlock *PrevIDom = FindNearestCommonDominator(PrevBlockSet);
1044 assert(PrevIDom && "Previous IDom should exists");
1045 BasicBlock *NewIDom = DT.getNode(BB)->getIDom()->getBlock();
1046 assert(NewIDom && "BB should have a new valid idom");
1047 assert(DT.dominates(NewIDom, PrevIDom) &&
1048 "New idom should dominate old idom");
1049 GetNoLongerDomBlocks(PrevIDom, NewIDom, BlocksWithDefsToReplace);
1050 }
1051
Alina Sbirlea109d2ea2019-06-19 21:33:09 +00001052 tryRemoveTrivialPhis(InsertedPhis);
1053 // Create the set of blocks that now have a definition. We'll use this to
1054 // compute IDF and add Phis there next.
1055 SmallVector<BasicBlock *, 8> BlocksToProcess;
1056 for (auto &VH : InsertedPhis)
1057 if (auto *MPhi = cast_or_null<MemoryPhi>(VH))
1058 BlocksToProcess.push_back(MPhi->getBlock());
1059
Alina Sbirlea79800992018-09-10 20:13:01 +00001060 // Compute IDF and add Phis in all IDF blocks that do not have one.
1061 SmallVector<BasicBlock *, 32> IDFBlocks;
1062 if (!BlocksToProcess.empty()) {
Alina Sbirlea238b8e62019-06-19 21:17:31 +00001063 ForwardIDFCalculator IDFs(DT, GD);
Alina Sbirlea79800992018-09-10 20:13:01 +00001064 SmallPtrSet<BasicBlock *, 16> DefiningBlocks(BlocksToProcess.begin(),
1065 BlocksToProcess.end());
1066 IDFs.setDefiningBlocks(DefiningBlocks);
1067 IDFs.calculate(IDFBlocks);
Alina Sbirlea05f77802019-06-17 18:16:53 +00001068
1069 SmallSetVector<MemoryPhi *, 4> PhisToFill;
1070 // First create all needed Phis.
1071 for (auto *BBIDF : IDFBlocks)
1072 if (!MSSA->getMemoryAccess(BBIDF)) {
1073 auto *IDFPhi = MSSA->createMemoryPhi(BBIDF);
1074 InsertedPhis.push_back(IDFPhi);
1075 PhisToFill.insert(IDFPhi);
1076 }
1077 // Then update or insert their correct incoming values.
Alina Sbirlea79800992018-09-10 20:13:01 +00001078 for (auto *BBIDF : IDFBlocks) {
Alina Sbirlea05f77802019-06-17 18:16:53 +00001079 auto *IDFPhi = MSSA->getMemoryAccess(BBIDF);
1080 assert(IDFPhi && "Phi must exist");
1081 if (!PhisToFill.count(IDFPhi)) {
Alina Sbirlea79800992018-09-10 20:13:01 +00001082 // Update existing Phi.
1083 // FIXME: some updates may be redundant, try to optimize and skip some.
1084 for (unsigned I = 0, E = IDFPhi->getNumIncomingValues(); I < E; ++I)
1085 IDFPhi->setIncomingValue(I, GetLastDef(IDFPhi->getIncomingBlock(I)));
1086 } else {
Alina Sbirleaf1d4db42020-07-16 15:46:54 -07001087 for (auto *Pi : GD->template getChildren</*InverseEdge=*/true>(BBIDF))
Alina Sbirlea79800992018-09-10 20:13:01 +00001088 IDFPhi->addIncoming(GetLastDef(Pi), Pi);
Alina Sbirlea79800992018-09-10 20:13:01 +00001089 }
1090 }
1091 }
1092
1093 // Now for all defs in BlocksWithDefsToReplace, if there are uses they no
1094 // longer dominate, replace those with the closest dominating def.
1095 // This will also update optimized accesses, as they're also uses.
1096 for (auto *BlockWithDefsToReplace : BlocksWithDefsToReplace) {
1097 if (auto DefsList = MSSA->getWritableBlockDefs(BlockWithDefsToReplace)) {
1098 for (auto &DefToReplaceUses : *DefsList) {
1099 BasicBlock *DominatingBlock = DefToReplaceUses.getBlock();
1100 Value::use_iterator UI = DefToReplaceUses.use_begin(),
1101 E = DefToReplaceUses.use_end();
1102 for (; UI != E;) {
1103 Use &U = *UI;
1104 ++UI;
Simon Pilgrimb635964a2019-10-02 13:09:12 +00001105 MemoryAccess *Usr = cast<MemoryAccess>(U.getUser());
Alina Sbirlea79800992018-09-10 20:13:01 +00001106 if (MemoryPhi *UsrPhi = dyn_cast<MemoryPhi>(Usr)) {
1107 BasicBlock *DominatedBlock = UsrPhi->getIncomingBlock(U);
1108 if (!DT.dominates(DominatingBlock, DominatedBlock))
1109 U.set(GetLastDef(DominatedBlock));
1110 } else {
1111 BasicBlock *DominatedBlock = Usr->getBlock();
1112 if (!DT.dominates(DominatingBlock, DominatedBlock)) {
1113 if (auto *DomBlPhi = MSSA->getMemoryAccess(DominatedBlock))
1114 U.set(DomBlPhi);
1115 else {
1116 auto *IDom = DT.getNode(DominatedBlock)->getIDom();
1117 assert(IDom && "Block must have a valid IDom.");
1118 U.set(GetLastDef(IDom->getBlock()));
1119 }
1120 cast<MemoryUseOrDef>(Usr)->resetOptimized();
1121 }
1122 }
1123 }
1124 }
1125 }
1126 }
Alina Sbirleacb4ed8a2019-06-11 19:09:34 +00001127 tryRemoveTrivialPhis(InsertedPhis);
Alina Sbirlea79800992018-09-10 20:13:01 +00001128}
1129
Daniel Berlinae6b8b62017-01-28 01:35:02 +00001130// Move What before Where in the MemorySSA IR.
Daniel Berlin9d8a3352017-01-30 11:35:39 +00001131template <class WhereType>
Daniel Berlinae6b8b62017-01-28 01:35:02 +00001132void MemorySSAUpdater::moveTo(MemoryUseOrDef *What, BasicBlock *BB,
Daniel Berlin9d8a3352017-01-30 11:35:39 +00001133 WhereType Where) {
Zhaoshi Zheng43af17b2018-04-09 20:55:37 +00001134 // Mark MemoryPhi users of What not to be optimized.
1135 for (auto *U : What->users())
George Burgess IVe7cdb7e2018-07-12 21:56:31 +00001136 if (MemoryPhi *PhiUser = dyn_cast<MemoryPhi>(U))
Zhaoshi Zheng43af17b2018-04-09 20:55:37 +00001137 NonOptPhis.insert(PhiUser);
1138
Daniel Berlinae6b8b62017-01-28 01:35:02 +00001139 // Replace all our users with our defining access.
1140 What->replaceAllUsesWith(What->getDefiningAccess());
1141
1142 // Let MemorySSA take care of moving it around in the lists.
1143 MSSA->moveTo(What, BB, Where);
1144
1145 // Now reinsert it into the IR and do whatever fixups needed.
1146 if (auto *MD = dyn_cast<MemoryDef>(What))
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +00001147 insertDef(MD, /*RenameUses=*/true);
Daniel Berlinae6b8b62017-01-28 01:35:02 +00001148 else
Alina Sbirlea1a3fdaf2019-08-19 18:57:40 +00001149 insertUse(cast<MemoryUse>(What), /*RenameUses=*/true);
Zhaoshi Zheng43af17b2018-04-09 20:55:37 +00001150
1151 // Clear dangling pointers. We added all MemoryPhi users, but not all
1152 // of them are removed by fixupDefs().
1153 NonOptPhis.clear();
Daniel Berlinae6b8b62017-01-28 01:35:02 +00001154}
Daniel Berlin9d8a3352017-01-30 11:35:39 +00001155
Daniel Berlinae6b8b62017-01-28 01:35:02 +00001156// Move What before Where in the MemorySSA IR.
1157void MemorySSAUpdater::moveBefore(MemoryUseOrDef *What, MemoryUseOrDef *Where) {
1158 moveTo(What, Where->getBlock(), Where->getIterator());
1159}
1160
1161// Move What after Where in the MemorySSA IR.
1162void MemorySSAUpdater::moveAfter(MemoryUseOrDef *What, MemoryUseOrDef *Where) {
1163 moveTo(What, Where->getBlock(), ++Where->getIterator());
1164}
1165
Daniel Berlin9d8a3352017-01-30 11:35:39 +00001166void MemorySSAUpdater::moveToPlace(MemoryUseOrDef *What, BasicBlock *BB,
1167 MemorySSA::InsertionPlace Where) {
Alina Sbirlea5c5cf892019-11-20 16:09:37 -08001168 if (Where != MemorySSA::InsertionPlace::BeforeTerminator)
1169 return moveTo(What, BB, Where);
1170
1171 if (auto *Where = MSSA->getMemoryAccess(BB->getTerminator()))
1172 return moveBefore(What, Where);
1173 else
1174 return moveTo(What, BB, MemorySSA::InsertionPlace::End);
Daniel Berlin9d8a3352017-01-30 11:35:39 +00001175}
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001176
Alina Sbirlea0f533552018-07-11 22:11:46 +00001177// All accesses in To used to be in From. Move to end and update access lists.
1178void MemorySSAUpdater::moveAllAccesses(BasicBlock *From, BasicBlock *To,
1179 Instruction *Start) {
1180
1181 MemorySSA::AccessList *Accs = MSSA->getWritableBlockAccesses(From);
1182 if (!Accs)
1183 return;
1184
Alina Sbirlea7faa14a2019-10-09 15:54:24 +00001185 assert(Start->getParent() == To && "Incorrect Start instruction");
Alina Sbirlea0f533552018-07-11 22:11:46 +00001186 MemoryAccess *FirstInNew = nullptr;
1187 for (Instruction &I : make_range(Start->getIterator(), To->end()))
1188 if ((FirstInNew = MSSA->getMemoryAccess(&I)))
1189 break;
Alina Sbirlea7faa14a2019-10-09 15:54:24 +00001190 if (FirstInNew) {
1191 auto *MUD = cast<MemoryUseOrDef>(FirstInNew);
1192 do {
1193 auto NextIt = ++MUD->getIterator();
1194 MemoryUseOrDef *NextMUD = (!Accs || NextIt == Accs->end())
1195 ? nullptr
1196 : cast<MemoryUseOrDef>(&*NextIt);
1197 MSSA->moveTo(MUD, To, MemorySSA::End);
1198 // Moving MUD from Accs in the moveTo above, may delete Accs, so we need
1199 // to retrieve it again.
1200 Accs = MSSA->getWritableBlockAccesses(From);
1201 MUD = NextMUD;
1202 } while (MUD);
1203 }
Alina Sbirlea0f533552018-07-11 22:11:46 +00001204
Alina Sbirlea7faa14a2019-10-09 15:54:24 +00001205 // If all accesses were moved and only a trivial Phi remains, we try to remove
1206 // that Phi. This is needed when From is going to be deleted.
1207 auto *Defs = MSSA->getWritableBlockDefs(From);
1208 if (Defs && !Defs->empty())
1209 if (auto *Phi = dyn_cast<MemoryPhi>(&*Defs->begin()))
1210 tryRemoveTrivialPhi(Phi);
Alina Sbirlea0f533552018-07-11 22:11:46 +00001211}
1212
1213void MemorySSAUpdater::moveAllAfterSpliceBlocks(BasicBlock *From,
1214 BasicBlock *To,
1215 Instruction *Start) {
1216 assert(MSSA->getBlockAccesses(To) == nullptr &&
1217 "To block is expected to be free of MemoryAccesses.");
1218 moveAllAccesses(From, To, Start);
1219 for (BasicBlock *Succ : successors(To))
1220 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(Succ))
1221 MPhi->setIncomingBlock(MPhi->getBasicBlockIndex(From), To);
1222}
1223
1224void MemorySSAUpdater::moveAllAfterMergeBlocks(BasicBlock *From, BasicBlock *To,
1225 Instruction *Start) {
Alina Sbirlea7faa14a2019-10-09 15:54:24 +00001226 assert(From->getUniquePredecessor() == To &&
Alina Sbirlea0f533552018-07-11 22:11:46 +00001227 "From block is expected to have a single predecessor (To).");
1228 moveAllAccesses(From, To, Start);
1229 for (BasicBlock *Succ : successors(From))
1230 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(Succ))
1231 MPhi->setIncomingBlock(MPhi->getBasicBlockIndex(From), To);
1232}
1233
Adrian Prantl5f8f34e42018-05-01 15:54:18 +00001234/// If all arguments of a MemoryPHI are defined by the same incoming
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001235/// argument, return that argument.
1236static MemoryAccess *onlySingleValue(MemoryPhi *MP) {
1237 MemoryAccess *MA = nullptr;
1238
1239 for (auto &Arg : MP->operands()) {
1240 if (!MA)
1241 MA = cast<MemoryAccess>(Arg);
1242 else if (MA != Arg)
1243 return nullptr;
1244 }
1245 return MA;
1246}
George Burgess IV56169ed2017-04-21 04:54:52 +00001247
Alina Sbirlea20c29622018-07-20 17:13:05 +00001248void MemorySSAUpdater::wireOldPredecessorsToNewImmediatePredecessor(
Alina Sbirleaf98c2c52018-09-07 21:14:48 +00001249 BasicBlock *Old, BasicBlock *New, ArrayRef<BasicBlock *> Preds,
1250 bool IdenticalEdgesWereMerged) {
Alina Sbirlea20c29622018-07-20 17:13:05 +00001251 assert(!MSSA->getWritableBlockAccesses(New) &&
1252 "Access list should be null for a new block.");
1253 MemoryPhi *Phi = MSSA->getMemoryAccess(Old);
1254 if (!Phi)
1255 return;
Vedant Kumar4de31bb2018-11-19 19:54:27 +00001256 if (Old->hasNPredecessors(1)) {
Alina Sbirlea20c29622018-07-20 17:13:05 +00001257 assert(pred_size(New) == Preds.size() &&
1258 "Should have moved all predecessors.");
1259 MSSA->moveTo(Phi, New, MemorySSA::Beginning);
1260 } else {
1261 assert(!Preds.empty() && "Must be moving at least one predecessor to the "
1262 "new immediate predecessor.");
1263 MemoryPhi *NewPhi = MSSA->createMemoryPhi(New);
1264 SmallPtrSet<BasicBlock *, 16> PredsSet(Preds.begin(), Preds.end());
Alina Sbirleaf98c2c52018-09-07 21:14:48 +00001265 // Currently only support the case of removing a single incoming edge when
1266 // identical edges were not merged.
1267 if (!IdenticalEdgesWereMerged)
1268 assert(PredsSet.size() == Preds.size() &&
1269 "If identical edges were not merged, we cannot have duplicate "
1270 "blocks in the predecessors");
Alina Sbirlea20c29622018-07-20 17:13:05 +00001271 Phi->unorderedDeleteIncomingIf([&](MemoryAccess *MA, BasicBlock *B) {
1272 if (PredsSet.count(B)) {
1273 NewPhi->addIncoming(MA, B);
Alina Sbirleaf98c2c52018-09-07 21:14:48 +00001274 if (!IdenticalEdgesWereMerged)
1275 PredsSet.erase(B);
Alina Sbirlea20c29622018-07-20 17:13:05 +00001276 return true;
1277 }
1278 return false;
1279 });
1280 Phi->addIncoming(NewPhi, New);
Alina Sbirlea28637212019-08-20 22:47:58 +00001281 tryRemoveTrivialPhi(NewPhi);
Alina Sbirlea20c29622018-07-20 17:13:05 +00001282 }
1283}
1284
Alina Sbirlea240a90a2019-01-31 20:13:47 +00001285void MemorySSAUpdater::removeMemoryAccess(MemoryAccess *MA, bool OptimizePhis) {
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001286 assert(!MSSA->isLiveOnEntryDef(MA) &&
1287 "Trying to remove the live on entry def");
1288 // We can only delete phi nodes if they have no uses, or we can replace all
1289 // uses with a single definition.
1290 MemoryAccess *NewDefTarget = nullptr;
1291 if (MemoryPhi *MP = dyn_cast<MemoryPhi>(MA)) {
1292 // Note that it is sufficient to know that all edges of the phi node have
1293 // the same argument. If they do, by the definition of dominance frontiers
1294 // (which we used to place this phi), that argument must dominate this phi,
1295 // and thus, must dominate the phi's uses, and so we will not hit the assert
1296 // below.
1297 NewDefTarget = onlySingleValue(MP);
1298 assert((NewDefTarget || MP->use_empty()) &&
1299 "We can't delete this memory phi");
1300 } else {
1301 NewDefTarget = cast<MemoryUseOrDef>(MA)->getDefiningAccess();
1302 }
1303
Alina Sbirlea240a90a2019-01-31 20:13:47 +00001304 SmallSetVector<MemoryPhi *, 4> PhisToCheck;
1305
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001306 // Re-point the uses at our defining access
1307 if (!isa<MemoryUse>(MA) && !MA->use_empty()) {
1308 // Reset optimized on users of this store, and reset the uses.
1309 // A few notes:
1310 // 1. This is a slightly modified version of RAUW to avoid walking the
1311 // uses twice here.
1312 // 2. If we wanted to be complete, we would have to reset the optimized
1313 // flags on users of phi nodes if doing the below makes a phi node have all
1314 // the same arguments. Instead, we prefer users to removeMemoryAccess those
1315 // phi nodes, because doing it here would be N^3.
1316 if (MA->hasValueHandle())
1317 ValueHandleBase::ValueIsRAUWd(MA, NewDefTarget);
1318 // Note: We assume MemorySSA is not used in metadata since it's not really
1319 // part of the IR.
1320
1321 while (!MA->use_empty()) {
1322 Use &U = *MA->use_begin();
Daniel Berline33bc312017-04-04 23:43:10 +00001323 if (auto *MUD = dyn_cast<MemoryUseOrDef>(U.getUser()))
1324 MUD->resetOptimized();
Alina Sbirlea240a90a2019-01-31 20:13:47 +00001325 if (OptimizePhis)
1326 if (MemoryPhi *MP = dyn_cast<MemoryPhi>(U.getUser()))
1327 PhisToCheck.insert(MP);
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001328 U.set(NewDefTarget);
1329 }
1330 }
1331
1332 // The call below to erase will destroy MA, so we can't change the order we
1333 // are doing things here
1334 MSSA->removeFromLookups(MA);
1335 MSSA->removeFromLists(MA);
Alina Sbirlea240a90a2019-01-31 20:13:47 +00001336
1337 // Optionally optimize Phi uses. This will recursively remove trivial phis.
1338 if (!PhisToCheck.empty()) {
1339 SmallVector<WeakVH, 16> PhisToOptimize{PhisToCheck.begin(),
1340 PhisToCheck.end()};
1341 PhisToCheck.clear();
1342
1343 unsigned PhisSize = PhisToOptimize.size();
1344 while (PhisSize-- > 0)
1345 if (MemoryPhi *MP =
Alina Sbirlea28637212019-08-20 22:47:58 +00001346 cast_or_null<MemoryPhi>(PhisToOptimize.pop_back_val()))
1347 tryRemoveTrivialPhi(MP);
Alina Sbirlea240a90a2019-01-31 20:13:47 +00001348 }
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001349}
1350
Alina Sbirleada1e80f2018-06-29 20:46:16 +00001351void MemorySSAUpdater::removeBlocks(
Alina Sbirleadb101862019-07-12 22:30:30 +00001352 const SmallSetVector<BasicBlock *, 8> &DeadBlocks) {
Alina Sbirleada1e80f2018-06-29 20:46:16 +00001353 // First delete all uses of BB in MemoryPhis.
1354 for (BasicBlock *BB : DeadBlocks) {
Chandler Carruthedb12a82018-10-15 10:04:59 +00001355 Instruction *TI = BB->getTerminator();
Alina Sbirleada1e80f2018-06-29 20:46:16 +00001356 assert(TI && "Basic block expected to have a terminator instruction");
Chandler Carruth96fc1de2018-08-26 08:41:15 +00001357 for (BasicBlock *Succ : successors(TI))
Alina Sbirleada1e80f2018-06-29 20:46:16 +00001358 if (!DeadBlocks.count(Succ))
1359 if (MemoryPhi *MP = MSSA->getMemoryAccess(Succ)) {
1360 MP->unorderedDeleteIncomingBlock(BB);
Alina Sbirlea28637212019-08-20 22:47:58 +00001361 tryRemoveTrivialPhi(MP);
Alina Sbirleada1e80f2018-06-29 20:46:16 +00001362 }
1363 // Drop all references of all accesses in BB
1364 if (MemorySSA::AccessList *Acc = MSSA->getWritableBlockAccesses(BB))
1365 for (MemoryAccess &MA : *Acc)
1366 MA.dropAllReferences();
1367 }
1368
1369 // Next, delete all memory accesses in each block
1370 for (BasicBlock *BB : DeadBlocks) {
1371 MemorySSA::AccessList *Acc = MSSA->getWritableBlockAccesses(BB);
1372 if (!Acc)
1373 continue;
1374 for (auto AB = Acc->begin(), AE = Acc->end(); AB != AE;) {
1375 MemoryAccess *MA = &*AB;
1376 ++AB;
1377 MSSA->removeFromLookups(MA);
1378 MSSA->removeFromLists(MA);
1379 }
1380 }
1381}
1382
Alina Sbirlea151ab482019-05-02 23:12:49 +00001383void MemorySSAUpdater::tryRemoveTrivialPhis(ArrayRef<WeakVH> UpdatedPHIs) {
1384 for (auto &VH : UpdatedPHIs)
Alina Sbirlea28637212019-08-20 22:47:58 +00001385 if (auto *MPhi = cast_or_null<MemoryPhi>(VH))
1386 tryRemoveTrivialPhi(MPhi);
Alina Sbirlea151ab482019-05-02 23:12:49 +00001387}
1388
Alina Sbirleaf31eba62019-05-08 17:05:36 +00001389void MemorySSAUpdater::changeToUnreachable(const Instruction *I) {
1390 const BasicBlock *BB = I->getParent();
1391 // Remove memory accesses in BB for I and all following instructions.
1392 auto BBI = I->getIterator(), BBE = BB->end();
1393 // FIXME: If this becomes too expensive, iterate until the first instruction
1394 // with a memory access, then iterate over MemoryAccesses.
1395 while (BBI != BBE)
1396 removeMemoryAccess(&*(BBI++));
1397 // Update phis in BB's successors to remove BB.
1398 SmallVector<WeakVH, 16> UpdatedPHIs;
1399 for (const BasicBlock *Successor : successors(BB)) {
1400 removeDuplicatePhiEdgesBetween(BB, Successor);
1401 if (MemoryPhi *MPhi = MSSA->getMemoryAccess(Successor)) {
1402 MPhi->unorderedDeleteIncomingBlock(BB);
1403 UpdatedPHIs.push_back(MPhi);
1404 }
1405 }
1406 // Optimize trivial phis.
1407 tryRemoveTrivialPhis(UpdatedPHIs);
1408}
1409
1410void MemorySSAUpdater::changeCondBranchToUnconditionalTo(const BranchInst *BI,
1411 const BasicBlock *To) {
1412 const BasicBlock *BB = BI->getParent();
1413 SmallVector<WeakVH, 16> UpdatedPHIs;
1414 for (const BasicBlock *Succ : successors(BB)) {
1415 removeDuplicatePhiEdgesBetween(BB, Succ);
1416 if (Succ != To)
1417 if (auto *MPhi = MSSA->getMemoryAccess(Succ)) {
1418 MPhi->unorderedDeleteIncomingBlock(BB);
1419 UpdatedPHIs.push_back(MPhi);
1420 }
1421 }
1422 // Optimize trivial phis.
1423 tryRemoveTrivialPhis(UpdatedPHIs);
1424}
1425
Daniel Berlin17e8d0e2017-02-22 22:19:55 +00001426MemoryAccess *MemorySSAUpdater::createMemoryAccessInBB(
1427 Instruction *I, MemoryAccess *Definition, const BasicBlock *BB,
1428 MemorySSA::InsertionPlace Point) {
1429 MemoryUseOrDef *NewAccess = MSSA->createDefinedAccess(I, Definition);
1430 MSSA->insertIntoListsForBlock(NewAccess, BB, Point);
1431 return NewAccess;
1432}
1433
1434MemoryUseOrDef *MemorySSAUpdater::createMemoryAccessBefore(
1435 Instruction *I, MemoryAccess *Definition, MemoryUseOrDef *InsertPt) {
1436 assert(I->getParent() == InsertPt->getBlock() &&
1437 "New and old access must be in the same block");
1438 MemoryUseOrDef *NewAccess = MSSA->createDefinedAccess(I, Definition);
1439 MSSA->insertIntoListsBefore(NewAccess, InsertPt->getBlock(),
1440 InsertPt->getIterator());
1441 return NewAccess;
1442}
1443
1444MemoryUseOrDef *MemorySSAUpdater::createMemoryAccessAfter(
1445 Instruction *I, MemoryAccess *Definition, MemoryAccess *InsertPt) {
1446 assert(I->getParent() == InsertPt->getBlock() &&
1447 "New and old access must be in the same block");
1448 MemoryUseOrDef *NewAccess = MSSA->createDefinedAccess(I, Definition);
1449 MSSA->insertIntoListsBefore(NewAccess, InsertPt->getBlock(),
1450 ++InsertPt->getIterator());
1451 return NewAccess;
1452}