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Fiona Glaserb417d462016-01-29 22:35:36 +00001//===--------- LoopSimplifyCFG.cpp - Loop CFG Simplification Pass ---------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file implements the Loop SimplifyCFG Pass. This pass is responsible for
11// basic loop CFG cleanup, primarily to assist other loop passes. If you
12// encounter a noncanonical CFG construct that causes another loop pass to
13// perform suboptimally, this is the place to fix it up.
14//
15//===----------------------------------------------------------------------===//
16
Justin Bognerab6a5132016-05-03 21:47:32 +000017#include "llvm/Transforms/Scalar/LoopSimplifyCFG.h"
Fiona Glaserb417d462016-01-29 22:35:36 +000018#include "llvm/ADT/SmallVector.h"
19#include "llvm/ADT/Statistic.h"
20#include "llvm/Analysis/AliasAnalysis.h"
Daniel Jasperaec2fa32016-12-19 08:22:17 +000021#include "llvm/Analysis/AssumptionCache.h"
Chandler Carruth3bab7e12017-01-11 09:43:56 +000022#include "llvm/Analysis/BasicAliasAnalysis.h"
Fiona Glaserb417d462016-01-29 22:35:36 +000023#include "llvm/Analysis/DependenceAnalysis.h"
24#include "llvm/Analysis/GlobalsModRef.h"
25#include "llvm/Analysis/LoopInfo.h"
26#include "llvm/Analysis/LoopPass.h"
Alina Sbirlea8b83d682018-08-22 20:10:21 +000027#include "llvm/Analysis/MemorySSA.h"
28#include "llvm/Analysis/MemorySSAUpdater.h"
Fiona Glaserb417d462016-01-29 22:35:36 +000029#include "llvm/Analysis/ScalarEvolution.h"
30#include "llvm/Analysis/ScalarEvolutionAliasAnalysis.h"
31#include "llvm/Analysis/TargetTransformInfo.h"
Chijun Sima21a8b602018-08-03 05:08:17 +000032#include "llvm/IR/DomTreeUpdater.h"
Fiona Glaserb417d462016-01-29 22:35:36 +000033#include "llvm/IR/Dominators.h"
Justin Bognerab6a5132016-05-03 21:47:32 +000034#include "llvm/Transforms/Scalar.h"
Chandler Carruth3bab7e12017-01-11 09:43:56 +000035#include "llvm/Transforms/Scalar/LoopPassManager.h"
David Blaikiea373d182018-03-28 17:44:36 +000036#include "llvm/Transforms/Utils.h"
Alina Sbirleadfd14ad2018-06-20 22:01:04 +000037#include "llvm/Transforms/Utils/BasicBlockUtils.h"
38#include "llvm/Transforms/Utils/Local.h"
Chandler Carruth31088a92016-02-19 10:45:18 +000039#include "llvm/Transforms/Utils/LoopUtils.h"
Fiona Glaserb417d462016-01-29 22:35:36 +000040using namespace llvm;
41
42#define DEBUG_TYPE "loop-simplifycfg"
43
Max Kazantseve1c2dc22018-11-23 09:14:53 +000044static cl::opt<bool> EnableTermFolding("enable-loop-simplifycfg-term-folding",
Max Kazantsevb4cd50b2019-01-18 04:57:32 +000045 cl::init(true));
Max Kazantseve1c2dc22018-11-23 09:14:53 +000046
Max Kazantsevc04b5302018-11-20 05:43:32 +000047STATISTIC(NumTerminatorsFolded,
48 "Number of terminators folded to unconditional branches");
Max Kazantsev347c5832018-12-24 06:06:17 +000049STATISTIC(NumLoopBlocksDeleted,
50 "Number of loop blocks deleted");
Max Kazantsevedabb9a2018-12-24 07:41:33 +000051STATISTIC(NumLoopExitsDeleted,
52 "Number of loop exiting edges deleted");
Max Kazantsevc04b5302018-11-20 05:43:32 +000053
54/// If \p BB is a switch or a conditional branch, but only one of its successors
55/// can be reached from this block in runtime, return this successor. Otherwise,
56/// return nullptr.
57static BasicBlock *getOnlyLiveSuccessor(BasicBlock *BB) {
58 Instruction *TI = BB->getTerminator();
59 if (BranchInst *BI = dyn_cast<BranchInst>(TI)) {
60 if (BI->isUnconditional())
61 return nullptr;
62 if (BI->getSuccessor(0) == BI->getSuccessor(1))
63 return BI->getSuccessor(0);
64 ConstantInt *Cond = dyn_cast<ConstantInt>(BI->getCondition());
65 if (!Cond)
66 return nullptr;
67 return Cond->isZero() ? BI->getSuccessor(1) : BI->getSuccessor(0);
68 }
69
70 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) {
71 auto *CI = dyn_cast<ConstantInt>(SI->getCondition());
72 if (!CI)
73 return nullptr;
74 for (auto Case : SI->cases())
75 if (Case.getCaseValue() == CI)
76 return Case.getCaseSuccessor();
77 return SI->getDefaultDest();
78 }
79
80 return nullptr;
81}
82
Benjamin Kramerb17d2132019-01-12 18:36:22 +000083namespace {
Max Kazantsevc04b5302018-11-20 05:43:32 +000084/// Helper class that can turn branches and switches with constant conditions
85/// into unconditional branches.
86class ConstantTerminatorFoldingImpl {
87private:
88 Loop &L;
89 LoopInfo &LI;
90 DominatorTree &DT;
Max Kazantsev201534d2018-12-29 04:26:22 +000091 ScalarEvolution &SE;
Max Kazantsev9cf417d2018-11-30 10:06:23 +000092 MemorySSAUpdater *MSSAU;
Max Kazantsevc04b5302018-11-20 05:43:32 +000093
Max Kazantseva523a212018-12-07 05:44:45 +000094 // Whether or not the current loop has irreducible CFG.
95 bool HasIrreducibleCFG = false;
Max Kazantsevc04b5302018-11-20 05:43:32 +000096 // Whether or not the current loop will still exist after terminator constant
97 // folding will be done. In theory, there are two ways how it can happen:
98 // 1. Loop's latch(es) become unreachable from loop header;
99 // 2. Loop's header becomes unreachable from method entry.
100 // In practice, the second situation is impossible because we only modify the
101 // current loop and its preheader and do not affect preheader's reachibility
102 // from any other block. So this variable set to true means that loop's latch
103 // has become unreachable from loop header.
104 bool DeleteCurrentLoop = false;
105
106 // The blocks of the original loop that will still be reachable from entry
107 // after the constant folding.
108 SmallPtrSet<BasicBlock *, 8> LiveLoopBlocks;
109 // The blocks of the original loop that will become unreachable from entry
110 // after the constant folding.
Max Kazantsev80e4b402018-12-28 06:08:51 +0000111 SmallVector<BasicBlock *, 8> DeadLoopBlocks;
Max Kazantsevc04b5302018-11-20 05:43:32 +0000112 // The exits of the original loop that will still be reachable from entry
113 // after the constant folding.
114 SmallPtrSet<BasicBlock *, 8> LiveExitBlocks;
115 // The exits of the original loop that will become unreachable from entry
116 // after the constant folding.
Max Kazantsev56a24432018-11-22 12:33:41 +0000117 SmallVector<BasicBlock *, 8> DeadExitBlocks;
Max Kazantsevc04b5302018-11-20 05:43:32 +0000118 // The blocks that will still be a part of the current loop after folding.
119 SmallPtrSet<BasicBlock *, 8> BlocksInLoopAfterFolding;
120 // The blocks that have terminators with constant condition that can be
121 // folded. Note: fold candidates should be in L but not in any of its
122 // subloops to avoid complex LI updates.
123 SmallVector<BasicBlock *, 8> FoldCandidates;
124
125 void dump() const {
126 dbgs() << "Constant terminator folding for loop " << L << "\n";
127 dbgs() << "After terminator constant-folding, the loop will";
128 if (!DeleteCurrentLoop)
129 dbgs() << " not";
130 dbgs() << " be destroyed\n";
Max Kazantsev56a24432018-11-22 12:33:41 +0000131 auto PrintOutVector = [&](const char *Message,
132 const SmallVectorImpl<BasicBlock *> &S) {
133 dbgs() << Message << "\n";
134 for (const BasicBlock *BB : S)
135 dbgs() << "\t" << BB->getName() << "\n";
136 };
Max Kazantsevc04b5302018-11-20 05:43:32 +0000137 auto PrintOutSet = [&](const char *Message,
138 const SmallPtrSetImpl<BasicBlock *> &S) {
139 dbgs() << Message << "\n";
140 for (const BasicBlock *BB : S)
141 dbgs() << "\t" << BB->getName() << "\n";
142 };
Max Kazantsev56a24432018-11-22 12:33:41 +0000143 PrintOutVector("Blocks in which we can constant-fold terminator:",
144 FoldCandidates);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000145 PrintOutSet("Live blocks from the original loop:", LiveLoopBlocks);
Max Kazantsev80e4b402018-12-28 06:08:51 +0000146 PrintOutVector("Dead blocks from the original loop:", DeadLoopBlocks);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000147 PrintOutSet("Live exit blocks:", LiveExitBlocks);
Max Kazantsev56a24432018-11-22 12:33:41 +0000148 PrintOutVector("Dead exit blocks:", DeadExitBlocks);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000149 if (!DeleteCurrentLoop)
150 PrintOutSet("The following blocks will still be part of the loop:",
151 BlocksInLoopAfterFolding);
152 }
153
Max Kazantseva523a212018-12-07 05:44:45 +0000154 /// Whether or not the current loop has irreducible CFG.
155 bool hasIrreducibleCFG(LoopBlocksDFS &DFS) {
156 assert(DFS.isComplete() && "DFS is expected to be finished");
157 // Index of a basic block in RPO traversal.
158 DenseMap<const BasicBlock *, unsigned> RPO;
159 unsigned Current = 0;
160 for (auto I = DFS.beginRPO(), E = DFS.endRPO(); I != E; ++I)
161 RPO[*I] = Current++;
162
163 for (auto I = DFS.beginRPO(), E = DFS.endRPO(); I != E; ++I) {
164 BasicBlock *BB = *I;
165 for (auto *Succ : successors(BB))
166 if (L.contains(Succ) && !LI.isLoopHeader(Succ) && RPO[BB] > RPO[Succ])
167 // If an edge goes from a block with greater order number into a block
168 // with lesses number, and it is not a loop backedge, then it can only
169 // be a part of irreducible non-loop cycle.
170 return true;
171 }
172 return false;
173 }
174
Max Kazantsevc04b5302018-11-20 05:43:32 +0000175 /// Fill all information about status of blocks and exits of the current loop
176 /// if constant folding of all branches will be done.
177 void analyze() {
178 LoopBlocksDFS DFS(&L);
179 DFS.perform(&LI);
180 assert(DFS.isComplete() && "DFS is expected to be finished");
181
Max Kazantseva523a212018-12-07 05:44:45 +0000182 // TODO: The algorithm below relies on both RPO and Postorder traversals.
183 // When the loop has only reducible CFG inside, then the invariant "all
184 // predecessors of X are processed before X in RPO" is preserved. However
185 // an irreducible loop can break this invariant (e.g. latch does not have to
186 // be the last block in the traversal in this case, and the algorithm relies
187 // on this). We can later decide to support such cases by altering the
188 // algorithms, but so far we just give up analyzing them.
189 if (hasIrreducibleCFG(DFS)) {
190 HasIrreducibleCFG = true;
191 return;
192 }
193
Max Kazantsevc04b5302018-11-20 05:43:32 +0000194 // Collect live and dead loop blocks and exits.
Max Kazantsevc04b5302018-11-20 05:43:32 +0000195 LiveLoopBlocks.insert(L.getHeader());
196 for (auto I = DFS.beginRPO(), E = DFS.endRPO(); I != E; ++I) {
197 BasicBlock *BB = *I;
198
199 // If a loop block wasn't marked as live so far, then it's dead.
200 if (!LiveLoopBlocks.count(BB)) {
Max Kazantsev80e4b402018-12-28 06:08:51 +0000201 DeadLoopBlocks.push_back(BB);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000202 continue;
203 }
204
205 BasicBlock *TheOnlySucc = getOnlyLiveSuccessor(BB);
206
207 // If a block has only one live successor, it's a candidate on constant
208 // folding. Only handle blocks from current loop: branches in child loops
209 // are skipped because if they can be folded, they should be folded during
210 // the processing of child loops.
211 if (TheOnlySucc && LI.getLoopFor(BB) == &L)
212 FoldCandidates.push_back(BB);
213
214 // Handle successors.
Max Kazantsevc04b5302018-11-20 05:43:32 +0000215 for (BasicBlock *Succ : successors(BB))
Max Kazantsevd9f59f82018-11-22 10:48:30 +0000216 if (!TheOnlySucc || TheOnlySucc == Succ) {
217 if (L.contains(Succ))
218 LiveLoopBlocks.insert(Succ);
219 else
220 LiveExitBlocks.insert(Succ);
221 }
Max Kazantsevc04b5302018-11-20 05:43:32 +0000222 }
223
224 // Sanity check: amount of dead and live loop blocks should match the total
225 // number of blocks in loop.
226 assert(L.getNumBlocks() == LiveLoopBlocks.size() + DeadLoopBlocks.size() &&
227 "Malformed block sets?");
228
229 // Now, all exit blocks that are not marked as live are dead.
Max Kazantsevd9f59f82018-11-22 10:48:30 +0000230 SmallVector<BasicBlock *, 8> ExitBlocks;
231 L.getExitBlocks(ExitBlocks);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000232 for (auto *ExitBlock : ExitBlocks)
233 if (!LiveExitBlocks.count(ExitBlock))
Max Kazantsev56a24432018-11-22 12:33:41 +0000234 DeadExitBlocks.push_back(ExitBlock);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000235
236 // Whether or not the edge From->To will still be present in graph after the
237 // folding.
238 auto IsEdgeLive = [&](BasicBlock *From, BasicBlock *To) {
239 if (!LiveLoopBlocks.count(From))
240 return false;
241 BasicBlock *TheOnlySucc = getOnlyLiveSuccessor(From);
242 return !TheOnlySucc || TheOnlySucc == To;
243 };
244
245 // The loop will not be destroyed if its latch is live.
246 DeleteCurrentLoop = !IsEdgeLive(L.getLoopLatch(), L.getHeader());
247
248 // If we are going to delete the current loop completely, no extra analysis
249 // is needed.
250 if (DeleteCurrentLoop)
251 return;
252
253 // Otherwise, we should check which blocks will still be a part of the
254 // current loop after the transform.
255 BlocksInLoopAfterFolding.insert(L.getLoopLatch());
256 // If the loop is live, then we should compute what blocks are still in
257 // loop after all branch folding has been done. A block is in loop if
258 // it has a live edge to another block that is in the loop; by definition,
259 // latch is in the loop.
260 auto BlockIsInLoop = [&](BasicBlock *BB) {
261 return any_of(successors(BB), [&](BasicBlock *Succ) {
262 return BlocksInLoopAfterFolding.count(Succ) && IsEdgeLive(BB, Succ);
263 });
264 };
265 for (auto I = DFS.beginPostorder(), E = DFS.endPostorder(); I != E; ++I) {
266 BasicBlock *BB = *I;
267 if (BlockIsInLoop(BB))
268 BlocksInLoopAfterFolding.insert(BB);
269 }
270
271 // Sanity check: header must be in loop.
272 assert(BlocksInLoopAfterFolding.count(L.getHeader()) &&
273 "Header not in loop?");
Max Kazantsevb565e602018-11-22 12:43:27 +0000274 assert(BlocksInLoopAfterFolding.size() <= LiveLoopBlocks.size() &&
275 "All blocks that stay in loop should be live!");
Max Kazantsevc04b5302018-11-20 05:43:32 +0000276 }
277
Max Kazantsevedabb9a2018-12-24 07:41:33 +0000278 /// We need to preserve static reachibility of all loop exit blocks (this is)
279 /// required by loop pass manager. In order to do it, we make the following
280 /// trick:
281 ///
282 /// preheader:
283 /// <preheader code>
284 /// br label %loop_header
285 ///
286 /// loop_header:
287 /// ...
288 /// br i1 false, label %dead_exit, label %loop_block
289 /// ...
290 ///
291 /// We cannot simply remove edge from the loop to dead exit because in this
292 /// case dead_exit (and its successors) may become unreachable. To avoid that,
293 /// we insert the following fictive preheader:
294 ///
295 /// preheader:
296 /// <preheader code>
297 /// switch i32 0, label %preheader-split,
298 /// [i32 1, label %dead_exit_1],
299 /// [i32 2, label %dead_exit_2],
300 /// ...
301 /// [i32 N, label %dead_exit_N],
302 ///
303 /// preheader-split:
304 /// br label %loop_header
305 ///
306 /// loop_header:
307 /// ...
308 /// br i1 false, label %dead_exit_N, label %loop_block
309 /// ...
310 ///
311 /// Doing so, we preserve static reachibility of all dead exits and can later
312 /// remove edges from the loop to these blocks.
313 void handleDeadExits() {
314 // If no dead exits, nothing to do.
315 if (DeadExitBlocks.empty())
316 return;
317
318 // Construct split preheader and the dummy switch to thread edges from it to
319 // dead exits.
320 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager);
321 BasicBlock *Preheader = L.getLoopPreheader();
322 BasicBlock *NewPreheader = Preheader->splitBasicBlock(
323 Preheader->getTerminator(),
324 Twine(Preheader->getName()).concat("-split"));
325 DTU.deleteEdge(Preheader, L.getHeader());
326 DTU.insertEdge(NewPreheader, L.getHeader());
327 DTU.insertEdge(Preheader, NewPreheader);
328 IRBuilder<> Builder(Preheader->getTerminator());
329 SwitchInst *DummySwitch =
330 Builder.CreateSwitch(Builder.getInt32(0), NewPreheader);
331 Preheader->getTerminator()->eraseFromParent();
332
333 unsigned DummyIdx = 1;
334 for (BasicBlock *BB : DeadExitBlocks) {
335 SmallVector<Instruction *, 4> DeadPhis;
336 for (auto &PN : BB->phis())
337 DeadPhis.push_back(&PN);
338
339 // Eliminate all Phis from dead exits.
340 for (Instruction *PN : DeadPhis) {
341 PN->replaceAllUsesWith(UndefValue::get(PN->getType()));
342 PN->eraseFromParent();
343 }
344 assert(DummyIdx != 0 && "Too many dead exits!");
345 DummySwitch->addCase(Builder.getInt32(DummyIdx++), BB);
346 DTU.insertEdge(Preheader, BB);
347 ++NumLoopExitsDeleted;
348 }
349
350 assert(L.getLoopPreheader() == NewPreheader && "Malformed CFG?");
351 if (Loop *OuterLoop = LI.getLoopFor(Preheader)) {
352 OuterLoop->addBasicBlockToLoop(NewPreheader, LI);
353
354 // When we break dead edges, the outer loop may become unreachable from
355 // the current loop. We need to fix loop info accordingly. For this, we
356 // find the most nested loop that still contains L and remove L from all
357 // loops that are inside of it.
358 Loop *StillReachable = nullptr;
359 for (BasicBlock *BB : LiveExitBlocks) {
360 Loop *BBL = LI.getLoopFor(BB);
361 if (BBL && BBL->contains(L.getHeader()))
362 if (!StillReachable ||
363 BBL->getLoopDepth() > StillReachable->getLoopDepth())
364 StillReachable = BBL;
365 }
366
367 // Okay, our loop is no longer in the outer loop (and maybe not in some of
368 // its parents as well). Make the fixup.
369 if (StillReachable != OuterLoop) {
370 LI.changeLoopFor(NewPreheader, StillReachable);
371 for (Loop *NotContaining = OuterLoop; NotContaining != StillReachable;
372 NotContaining = NotContaining->getParentLoop()) {
373 NotContaining->removeBlockFromLoop(NewPreheader);
374 for (auto *BB : L.blocks())
375 NotContaining->removeBlockFromLoop(BB);
376 }
377 OuterLoop->removeChildLoop(&L);
378 if (StillReachable)
379 StillReachable->addChildLoop(&L);
380 else
381 LI.addTopLevelLoop(&L);
Max Kazantsev61a8d3f2019-01-17 12:51:10 +0000382
383 // Some values from loops in [OuterLoop, StillReachable) could be used
384 // in the current loop. Now it is not their child anymore, so such uses
385 // require LCSSA Phis.
386 Loop *FixLCSSALoop = OuterLoop;
387 while (FixLCSSALoop->getParentLoop() != StillReachable)
388 FixLCSSALoop = FixLCSSALoop->getParentLoop();
389 assert(FixLCSSALoop && "Should be a loop!");
390 formLCSSARecursively(*FixLCSSALoop, DT, &LI, &SE);
Max Kazantsevedabb9a2018-12-24 07:41:33 +0000391 }
392 }
393 }
394
Max Kazantsev347c5832018-12-24 06:06:17 +0000395 /// Delete loop blocks that have become unreachable after folding. Make all
396 /// relevant updates to DT and LI.
397 void deleteDeadLoopBlocks() {
398 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager);
Max Kazantsev80e4b402018-12-28 06:08:51 +0000399 if (MSSAU) {
400 SmallPtrSet<BasicBlock *, 8> DeadLoopBlocksSet(DeadLoopBlocks.begin(),
401 DeadLoopBlocks.end());
402 MSSAU->removeBlocks(DeadLoopBlocksSet);
403 }
Max Kazantsev347c5832018-12-24 06:06:17 +0000404 for (auto *BB : DeadLoopBlocks) {
405 assert(BB != L.getHeader() &&
406 "Header of the current loop cannot be dead!");
407 LLVM_DEBUG(dbgs() << "Deleting dead loop block " << BB->getName()
408 << "\n");
409 if (LI.isLoopHeader(BB)) {
410 assert(LI.getLoopFor(BB) != &L && "Attempt to remove current loop!");
411 LI.erase(LI.getLoopFor(BB));
412 }
413 LI.removeBlock(BB);
Max Kazantsev347c5832018-12-24 06:06:17 +0000414 }
Max Kazantsev8b134162019-01-17 12:25:40 +0000415
416 DeleteDeadBlocks(DeadLoopBlocks, &DTU);
417 NumLoopBlocksDeleted += DeadLoopBlocks.size();
Max Kazantsev347c5832018-12-24 06:06:17 +0000418 }
419
Max Kazantsevc04b5302018-11-20 05:43:32 +0000420 /// Constant-fold terminators of blocks acculumated in FoldCandidates into the
421 /// unconditional branches.
422 void foldTerminators() {
423 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager);
424
425 for (BasicBlock *BB : FoldCandidates) {
426 assert(LI.getLoopFor(BB) == &L && "Should be a loop block!");
427 BasicBlock *TheOnlySucc = getOnlyLiveSuccessor(BB);
428 assert(TheOnlySucc && "Should have one live successor!");
429
430 LLVM_DEBUG(dbgs() << "Replacing terminator of " << BB->getName()
431 << " with an unconditional branch to the block "
432 << TheOnlySucc->getName() << "\n");
433
434 SmallPtrSet<BasicBlock *, 2> DeadSuccessors;
435 // Remove all BB's successors except for the live one.
Max Kazantsevc4e4d642018-11-27 06:17:21 +0000436 unsigned TheOnlySuccDuplicates = 0;
Max Kazantsevc04b5302018-11-20 05:43:32 +0000437 for (auto *Succ : successors(BB))
438 if (Succ != TheOnlySucc) {
439 DeadSuccessors.insert(Succ);
Max Kazantsevcb8e2402018-11-23 07:56:47 +0000440 // If our successor lies in a different loop, we don't want to remove
441 // the one-input Phi because it is a LCSSA Phi.
442 bool PreserveLCSSAPhi = !L.contains(Succ);
443 Succ->removePredecessor(BB, PreserveLCSSAPhi);
Max Kazantsev9cf417d2018-11-30 10:06:23 +0000444 if (MSSAU)
445 MSSAU->removeEdge(BB, Succ);
Max Kazantsevc4e4d642018-11-27 06:17:21 +0000446 } else
447 ++TheOnlySuccDuplicates;
448
449 assert(TheOnlySuccDuplicates > 0 && "Should be!");
450 // If TheOnlySucc was BB's successor more than once, after transform it
451 // will be its successor only once. Remove redundant inputs from
452 // TheOnlySucc's Phis.
453 bool PreserveLCSSAPhi = !L.contains(TheOnlySucc);
454 for (unsigned Dup = 1; Dup < TheOnlySuccDuplicates; ++Dup)
455 TheOnlySucc->removePredecessor(BB, PreserveLCSSAPhi);
Max Kazantsev9cf417d2018-11-30 10:06:23 +0000456 if (MSSAU && TheOnlySuccDuplicates > 1)
457 MSSAU->removeDuplicatePhiEdgesBetween(BB, TheOnlySucc);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000458
459 IRBuilder<> Builder(BB->getContext());
460 Instruction *Term = BB->getTerminator();
461 Builder.SetInsertPoint(Term);
462 Builder.CreateBr(TheOnlySucc);
463 Term->eraseFromParent();
464
465 for (auto *DeadSucc : DeadSuccessors)
466 DTU.deleteEdge(BB, DeadSucc);
467
468 ++NumTerminatorsFolded;
469 }
470 }
471
472public:
Max Kazantsev9cf417d2018-11-30 10:06:23 +0000473 ConstantTerminatorFoldingImpl(Loop &L, LoopInfo &LI, DominatorTree &DT,
Max Kazantsev201534d2018-12-29 04:26:22 +0000474 ScalarEvolution &SE,
Max Kazantsev9cf417d2018-11-30 10:06:23 +0000475 MemorySSAUpdater *MSSAU)
Max Kazantsev201534d2018-12-29 04:26:22 +0000476 : L(L), LI(LI), DT(DT), SE(SE), MSSAU(MSSAU) {}
Max Kazantsevc04b5302018-11-20 05:43:32 +0000477 bool run() {
478 assert(L.getLoopLatch() && "Should be single latch!");
479
480 // Collect all available information about status of blocks after constant
481 // folding.
482 analyze();
483
484 LLVM_DEBUG(dbgs() << "In function " << L.getHeader()->getParent()->getName()
485 << ": ");
486
Max Kazantseva523a212018-12-07 05:44:45 +0000487 if (HasIrreducibleCFG) {
488 LLVM_DEBUG(dbgs() << "Loops with irreducible CFG are not supported!\n");
489 return false;
490 }
491
Max Kazantsevc04b5302018-11-20 05:43:32 +0000492 // Nothing to constant-fold.
493 if (FoldCandidates.empty()) {
494 LLVM_DEBUG(
495 dbgs() << "No constant terminator folding candidates found in loop "
496 << L.getHeader()->getName() << "\n");
497 return false;
498 }
499
500 // TODO: Support deletion of the current loop.
501 if (DeleteCurrentLoop) {
502 LLVM_DEBUG(
503 dbgs()
504 << "Give up constant terminator folding in loop "
505 << L.getHeader()->getName()
506 << ": we don't currently support deletion of the current loop.\n");
507 return false;
508 }
509
Max Kazantsevc04b5302018-11-20 05:43:32 +0000510 // TODO: Support blocks that are not dead, but also not in loop after the
511 // folding.
Max Kazantsev347c5832018-12-24 06:06:17 +0000512 if (BlocksInLoopAfterFolding.size() + DeadLoopBlocks.size() !=
513 L.getNumBlocks()) {
Max Kazantsevc04b5302018-11-20 05:43:32 +0000514 LLVM_DEBUG(
515 dbgs() << "Give up constant terminator folding in loop "
516 << L.getHeader()->getName()
517 << ": we don't currently"
518 " support blocks that are not dead, but will stop "
519 "being a part of the loop after constant-folding.\n");
520 return false;
521 }
522
Max Kazantsev201534d2018-12-29 04:26:22 +0000523 SE.forgetTopmostLoop(&L);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000524 // Dump analysis results.
525 LLVM_DEBUG(dump());
526
527 LLVM_DEBUG(dbgs() << "Constant-folding " << FoldCandidates.size()
528 << " terminators in loop " << L.getHeader()->getName()
529 << "\n");
530
531 // Make the actual transforms.
Max Kazantsevedabb9a2018-12-24 07:41:33 +0000532 handleDeadExits();
Max Kazantsevc04b5302018-11-20 05:43:32 +0000533 foldTerminators();
534
Max Kazantsev347c5832018-12-24 06:06:17 +0000535 if (!DeadLoopBlocks.empty()) {
536 LLVM_DEBUG(dbgs() << "Deleting " << DeadLoopBlocks.size()
537 << " dead blocks in loop " << L.getHeader()->getName()
538 << "\n");
539 deleteDeadLoopBlocks();
540 }
541
Max Kazantsevc04b5302018-11-20 05:43:32 +0000542#ifndef NDEBUG
543 // Make sure that we have preserved all data structures after the transform.
544 DT.verify();
545 assert(DT.isReachableFromEntry(L.getHeader()));
546 LI.verify(DT);
547#endif
548
549 return true;
550 }
551};
Benjamin Kramerb17d2132019-01-12 18:36:22 +0000552} // namespace
Max Kazantsevc04b5302018-11-20 05:43:32 +0000553
554/// Turn branches and switches with known constant conditions into unconditional
555/// branches.
Max Kazantsev9cf417d2018-11-30 10:06:23 +0000556static bool constantFoldTerminators(Loop &L, DominatorTree &DT, LoopInfo &LI,
Max Kazantsev201534d2018-12-29 04:26:22 +0000557 ScalarEvolution &SE,
Max Kazantsev9cf417d2018-11-30 10:06:23 +0000558 MemorySSAUpdater *MSSAU) {
Max Kazantseve1c2dc22018-11-23 09:14:53 +0000559 if (!EnableTermFolding)
560 return false;
561
Max Kazantsevc04b5302018-11-20 05:43:32 +0000562 // To keep things simple, only process loops with single latch. We
563 // canonicalize most loops to this form. We can support multi-latch if needed.
564 if (!L.getLoopLatch())
565 return false;
566
Max Kazantsev201534d2018-12-29 04:26:22 +0000567 ConstantTerminatorFoldingImpl BranchFolder(L, LI, DT, SE, MSSAU);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000568 return BranchFolder.run();
569}
570
Max Kazantsev46955b52018-11-01 09:42:50 +0000571static bool mergeBlocksIntoPredecessors(Loop &L, DominatorTree &DT,
572 LoopInfo &LI, MemorySSAUpdater *MSSAU) {
Fiona Glaserb417d462016-01-29 22:35:36 +0000573 bool Changed = false;
Chijun Sima21a8b602018-08-03 05:08:17 +0000574 DomTreeUpdater DTU(DT, DomTreeUpdater::UpdateStrategy::Eager);
Fiona Glaserb417d462016-01-29 22:35:36 +0000575 // Copy blocks into a temporary array to avoid iterator invalidation issues
576 // as we remove them.
Sanjoy Dase6bca0e2017-05-01 17:07:49 +0000577 SmallVector<WeakTrackingVH, 16> Blocks(L.blocks());
Fiona Glaserb417d462016-01-29 22:35:36 +0000578
579 for (auto &Block : Blocks) {
580 // Attempt to merge blocks in the trivial case. Don't modify blocks which
581 // belong to other loops.
Fiona Glaser36e82302016-01-29 23:12:52 +0000582 BasicBlock *Succ = cast_or_null<BasicBlock>(Block);
Fiona Glaserb417d462016-01-29 22:35:36 +0000583 if (!Succ)
584 continue;
585
586 BasicBlock *Pred = Succ->getSinglePredecessor();
Justin Bognerab6a5132016-05-03 21:47:32 +0000587 if (!Pred || !Pred->getSingleSuccessor() || LI.getLoopFor(Pred) != &L)
Fiona Glaserb417d462016-01-29 22:35:36 +0000588 continue;
589
Alina Sbirleadfd14ad2018-06-20 22:01:04 +0000590 // Merge Succ into Pred and delete it.
Alina Sbirlea8b83d682018-08-22 20:10:21 +0000591 MergeBlockIntoPredecessor(Succ, &DTU, &LI, MSSAU);
David Greene6a9c242018-06-19 09:43:36 +0000592
Fiona Glaserb417d462016-01-29 22:35:36 +0000593 Changed = true;
594 }
595
596 return Changed;
597}
598
Max Kazantsev46955b52018-11-01 09:42:50 +0000599static bool simplifyLoopCFG(Loop &L, DominatorTree &DT, LoopInfo &LI,
600 ScalarEvolution &SE, MemorySSAUpdater *MSSAU) {
601 bool Changed = false;
602
Max Kazantsevc04b5302018-11-20 05:43:32 +0000603 // Constant-fold terminators with known constant conditions.
Max Kazantsev201534d2018-12-29 04:26:22 +0000604 Changed |= constantFoldTerminators(L, DT, LI, SE, MSSAU);
Max Kazantsevc04b5302018-11-20 05:43:32 +0000605
Max Kazantsev46955b52018-11-01 09:42:50 +0000606 // Eliminate unconditional branches by merging blocks into their predecessors.
607 Changed |= mergeBlocksIntoPredecessors(L, DT, LI, MSSAU);
608
609 if (Changed)
610 SE.forgetTopmostLoop(&L);
611
612 return Changed;
613}
614
Chandler Carruth410eaeb2017-01-11 06:23:21 +0000615PreservedAnalyses LoopSimplifyCFGPass::run(Loop &L, LoopAnalysisManager &AM,
616 LoopStandardAnalysisResults &AR,
617 LPMUpdater &) {
Alina Sbirlea8b83d682018-08-22 20:10:21 +0000618 Optional<MemorySSAUpdater> MSSAU;
619 if (EnableMSSALoopDependency && AR.MSSA)
620 MSSAU = MemorySSAUpdater(AR.MSSA);
621 if (!simplifyLoopCFG(L, AR.DT, AR.LI, AR.SE,
622 MSSAU.hasValue() ? MSSAU.getPointer() : nullptr))
Justin Bognerab6a5132016-05-03 21:47:32 +0000623 return PreservedAnalyses::all();
Chandler Carruthca68a3e2017-01-15 06:32:49 +0000624
Justin Bognerab6a5132016-05-03 21:47:32 +0000625 return getLoopPassPreservedAnalyses();
626}
627
628namespace {
629class LoopSimplifyCFGLegacyPass : public LoopPass {
630public:
631 static char ID; // Pass ID, replacement for typeid
632 LoopSimplifyCFGLegacyPass() : LoopPass(ID) {
633 initializeLoopSimplifyCFGLegacyPassPass(*PassRegistry::getPassRegistry());
634 }
635
636 bool runOnLoop(Loop *L, LPPassManager &) override {
637 if (skipLoop(L))
638 return false;
639
640 DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
641 LoopInfo &LI = getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
David Greene6a9c242018-06-19 09:43:36 +0000642 ScalarEvolution &SE = getAnalysis<ScalarEvolutionWrapperPass>().getSE();
Alina Sbirlea8b83d682018-08-22 20:10:21 +0000643 Optional<MemorySSAUpdater> MSSAU;
644 if (EnableMSSALoopDependency) {
645 MemorySSA *MSSA = &getAnalysis<MemorySSAWrapperPass>().getMSSA();
646 MSSAU = MemorySSAUpdater(MSSA);
647 if (VerifyMemorySSA)
648 MSSA->verifyMemorySSA();
649 }
650 return simplifyLoopCFG(*L, DT, LI, SE,
651 MSSAU.hasValue() ? MSSAU.getPointer() : nullptr);
Justin Bognerab6a5132016-05-03 21:47:32 +0000652 }
653
654 void getAnalysisUsage(AnalysisUsage &AU) const override {
Alina Sbirlea8b83d682018-08-22 20:10:21 +0000655 if (EnableMSSALoopDependency) {
656 AU.addRequired<MemorySSAWrapperPass>();
657 AU.addPreserved<MemorySSAWrapperPass>();
658 }
Chandler Carruth49c22192016-05-12 22:19:39 +0000659 AU.addPreserved<DependenceAnalysisWrapperPass>();
Justin Bognerab6a5132016-05-03 21:47:32 +0000660 getLoopAnalysisUsage(AU);
661 }
662};
663}
664
665char LoopSimplifyCFGLegacyPass::ID = 0;
666INITIALIZE_PASS_BEGIN(LoopSimplifyCFGLegacyPass, "loop-simplifycfg",
667 "Simplify loop CFG", false, false)
668INITIALIZE_PASS_DEPENDENCY(LoopPass)
Alina Sbirlea8b83d682018-08-22 20:10:21 +0000669INITIALIZE_PASS_DEPENDENCY(MemorySSAWrapperPass)
Justin Bognerab6a5132016-05-03 21:47:32 +0000670INITIALIZE_PASS_END(LoopSimplifyCFGLegacyPass, "loop-simplifycfg",
671 "Simplify loop CFG", false, false)
672
673Pass *llvm::createLoopSimplifyCFGPass() {
674 return new LoopSimplifyCFGLegacyPass();
Fiona Glaserb417d462016-01-29 22:35:36 +0000675}