1 //===-- UnrollLoop.cpp - Loop unrolling utilities -------------------------===//
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 some loop unrolling utilities. It does not define any
11 // actual pass or policy, but provides a single function to perform loop
12 // unrolling.
13 //
14 // The process of unrolling can produce extraneous basic blocks linked with
15 // unconditional branches.  This will be corrected in the future.
16 //
17 //===----------------------------------------------------------------------===//
18 
19 #include "llvm/ADT/SmallPtrSet.h"
20 #include "llvm/ADT/Statistic.h"
21 #include "llvm/Analysis/AssumptionCache.h"
22 #include "llvm/Analysis/InstructionSimplify.h"
23 #include "llvm/Analysis/LoopIterator.h"
24 #include "llvm/Analysis/LoopPass.h"
25 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
26 #include "llvm/Analysis/ScalarEvolution.h"
27 #include "llvm/IR/BasicBlock.h"
28 #include "llvm/IR/DataLayout.h"
29 #include "llvm/IR/DebugInfoMetadata.h"
30 #include "llvm/IR/Dominators.h"
31 #include "llvm/IR/IntrinsicInst.h"
32 #include "llvm/IR/LLVMContext.h"
33 #include "llvm/Support/Debug.h"
34 #include "llvm/Support/raw_ostream.h"
35 #include "llvm/Transforms/Utils/BasicBlockUtils.h"
36 #include "llvm/Transforms/Utils/Cloning.h"
37 #include "llvm/Transforms/Utils/Local.h"
38 #include "llvm/Transforms/Utils/LoopSimplify.h"
39 #include "llvm/Transforms/Utils/LoopUtils.h"
40 #include "llvm/Transforms/Utils/SimplifyIndVar.h"
41 #include "llvm/Transforms/Utils/UnrollLoop.h"
42 using namespace llvm;
43 
44 #define DEBUG_TYPE "loop-unroll"
45 
46 // TODO: Should these be here or in LoopUnroll?
47 STATISTIC(NumCompletelyUnrolled, "Number of loops completely unrolled");
48 STATISTIC(NumUnrolled, "Number of loops unrolled (completely or otherwise)");
49 
50 static cl::opt<bool>
51 UnrollRuntimeEpilog("unroll-runtime-epilog", cl::init(false), cl::Hidden,
52                     cl::desc("Allow runtime unrolled loops to be unrolled "
53                              "with epilog instead of prolog."));
54 
55 static cl::opt<bool>
56 UnrollVerifyDomtree("unroll-verify-domtree", cl::Hidden,
57                     cl::desc("Verify domtree after unrolling"),
58 #ifdef NDEBUG
59     cl::init(false)
60 #else
61     cl::init(true)
62 #endif
63                     );
64 
65 /// Convert the instruction operands from referencing the current values into
66 /// those specified by VMap.
67 static inline void remapInstruction(Instruction *I,
68                                     ValueToValueMapTy &VMap) {
69   for (unsigned op = 0, E = I->getNumOperands(); op != E; ++op) {
70     Value *Op = I->getOperand(op);
71     ValueToValueMapTy::iterator It = VMap.find(Op);
72     if (It != VMap.end())
73       I->setOperand(op, It->second);
74   }
75 
76   if (PHINode *PN = dyn_cast<PHINode>(I)) {
77     for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
78       ValueToValueMapTy::iterator It = VMap.find(PN->getIncomingBlock(i));
79       if (It != VMap.end())
80         PN->setIncomingBlock(i, cast<BasicBlock>(It->second));
81     }
82   }
83 }
84 
85 /// Folds a basic block into its predecessor if it only has one predecessor, and
86 /// that predecessor only has one successor.
87 /// The LoopInfo Analysis that is passed will be kept consistent.  If folding is
88 /// successful references to the containing loop must be removed from
89 /// ScalarEvolution by calling ScalarEvolution::forgetLoop because SE may have
90 /// references to the eliminated BB.  The argument ForgottenLoops contains a set
91 /// of loops that have already been forgotten to prevent redundant, expensive
92 /// calls to ScalarEvolution::forgetLoop.  Returns the new combined block.
93 static BasicBlock *
94 foldBlockIntoPredecessor(BasicBlock *BB, LoopInfo *LI, ScalarEvolution *SE,
95                          SmallPtrSetImpl<Loop *> &ForgottenLoops,
96                          DominatorTree *DT) {
97   // Merge basic blocks into their predecessor if there is only one distinct
98   // pred, and if there is only one distinct successor of the predecessor, and
99   // if there are no PHI nodes.
100   BasicBlock *OnlyPred = BB->getSinglePredecessor();
101   if (!OnlyPred) return nullptr;
102 
103   if (OnlyPred->getTerminator()->getNumSuccessors() != 1)
104     return nullptr;
105 
106   DEBUG(dbgs() << "Merging: " << *BB << "into: " << *OnlyPred);
107 
108   // Resolve any PHI nodes at the start of the block.  They are all
109   // guaranteed to have exactly one entry if they exist, unless there are
110   // multiple duplicate (but guaranteed to be equal) entries for the
111   // incoming edges.  This occurs when there are multiple edges from
112   // OnlyPred to OnlySucc.
113   FoldSingleEntryPHINodes(BB);
114 
115   // Delete the unconditional branch from the predecessor...
116   OnlyPred->getInstList().pop_back();
117 
118   // Make all PHI nodes that referred to BB now refer to Pred as their
119   // source...
120   BB->replaceAllUsesWith(OnlyPred);
121 
122   // Move all definitions in the successor to the predecessor...
123   OnlyPred->getInstList().splice(OnlyPred->end(), BB->getInstList());
124 
125   // OldName will be valid until erased.
126   StringRef OldName = BB->getName();
127 
128   // Erase the old block and update dominator info.
129   if (DT)
130     if (DomTreeNode *DTN = DT->getNode(BB)) {
131       DomTreeNode *PredDTN = DT->getNode(OnlyPred);
132       SmallVector<DomTreeNode *, 8> Children(DTN->begin(), DTN->end());
133       for (auto *DI : Children)
134         DT->changeImmediateDominator(DI, PredDTN);
135 
136       DT->eraseNode(BB);
137     }
138 
139   // ScalarEvolution holds references to loop exit blocks.
140   if (SE) {
141     if (Loop *L = LI->getLoopFor(BB)) {
142       if (ForgottenLoops.insert(L).second)
143         SE->forgetLoop(L);
144     }
145   }
146   LI->removeBlock(BB);
147 
148   // Inherit predecessor's name if it exists...
149   if (!OldName.empty() && !OnlyPred->hasName())
150     OnlyPred->setName(OldName);
151 
152   BB->eraseFromParent();
153 
154   return OnlyPred;
155 }
156 
157 /// Check if unrolling created a situation where we need to insert phi nodes to
158 /// preserve LCSSA form.
159 /// \param Blocks is a vector of basic blocks representing unrolled loop.
160 /// \param L is the outer loop.
161 /// It's possible that some of the blocks are in L, and some are not. In this
162 /// case, if there is a use is outside L, and definition is inside L, we need to
163 /// insert a phi-node, otherwise LCSSA will be broken.
164 /// The function is just a helper function for llvm::UnrollLoop that returns
165 /// true if this situation occurs, indicating that LCSSA needs to be fixed.
166 static bool needToInsertPhisForLCSSA(Loop *L, std::vector<BasicBlock *> Blocks,
167                                      LoopInfo *LI) {
168   for (BasicBlock *BB : Blocks) {
169     if (LI->getLoopFor(BB) == L)
170       continue;
171     for (Instruction &I : *BB) {
172       for (Use &U : I.operands()) {
173         if (auto Def = dyn_cast<Instruction>(U)) {
174           Loop *DefLoop = LI->getLoopFor(Def->getParent());
175           if (!DefLoop)
176             continue;
177           if (DefLoop->contains(L))
178             return true;
179         }
180       }
181     }
182   }
183   return false;
184 }
185 
186 /// Adds ClonedBB to LoopInfo, creates a new loop for ClonedBB if necessary
187 /// and adds a mapping from the original loop to the new loop to NewLoops.
188 /// Returns nullptr if no new loop was created and a pointer to the
189 /// original loop OriginalBB was part of otherwise.
190 const Loop* llvm::addClonedBlockToLoopInfo(BasicBlock *OriginalBB,
191                                            BasicBlock *ClonedBB, LoopInfo *LI,
192                                            NewLoopsMap &NewLoops) {
193   // Figure out which loop New is in.
194   const Loop *OldLoop = LI->getLoopFor(OriginalBB);
195   assert(OldLoop && "Should (at least) be in the loop being unrolled!");
196 
197   Loop *&NewLoop = NewLoops[OldLoop];
198   if (!NewLoop) {
199     // Found a new sub-loop.
200     assert(OriginalBB == OldLoop->getHeader() &&
201            "Header should be first in RPO");
202 
203     NewLoop = LI->AllocateLoop();
204     Loop *NewLoopParent = NewLoops.lookup(OldLoop->getParentLoop());
205 
206     if (NewLoopParent)
207       NewLoopParent->addChildLoop(NewLoop);
208     else
209       LI->addTopLevelLoop(NewLoop);
210 
211     NewLoop->addBasicBlockToLoop(ClonedBB, *LI);
212     return OldLoop;
213   } else {
214     NewLoop->addBasicBlockToLoop(ClonedBB, *LI);
215     return nullptr;
216   }
217 }
218 
219 /// The function chooses which type of unroll (epilog or prolog) is more
220 /// profitabale.
221 /// Epilog unroll is more profitable when there is PHI that starts from
222 /// constant.  In this case epilog will leave PHI start from constant,
223 /// but prolog will convert it to non-constant.
224 ///
225 /// loop:
226 ///   PN = PHI [I, Latch], [CI, PreHeader]
227 ///   I = foo(PN)
228 ///   ...
229 ///
230 /// Epilog unroll case.
231 /// loop:
232 ///   PN = PHI [I2, Latch], [CI, PreHeader]
233 ///   I1 = foo(PN)
234 ///   I2 = foo(I1)
235 ///   ...
236 /// Prolog unroll case.
237 ///   NewPN = PHI [PrologI, Prolog], [CI, PreHeader]
238 /// loop:
239 ///   PN = PHI [I2, Latch], [NewPN, PreHeader]
240 ///   I1 = foo(PN)
241 ///   I2 = foo(I1)
242 ///   ...
243 ///
244 static bool isEpilogProfitable(Loop *L) {
245   BasicBlock *PreHeader = L->getLoopPreheader();
246   BasicBlock *Header = L->getHeader();
247   assert(PreHeader && Header);
248   for (Instruction &BBI : *Header) {
249     PHINode *PN = dyn_cast<PHINode>(&BBI);
250     if (!PN)
251       break;
252     if (isa<ConstantInt>(PN->getIncomingValueForBlock(PreHeader)))
253       return true;
254   }
255   return false;
256 }
257 
258 /// Unroll the given loop by Count. The loop must be in LCSSA form.  Unrolling
259 /// can only fail when the loop's latch block is not terminated by a conditional
260 /// branch instruction. However, if the trip count (and multiple) are not known,
261 /// loop unrolling will mostly produce more code that is no faster.
262 ///
263 /// TripCount is the upper bound of the iteration on which control exits
264 /// LatchBlock. Control may exit the loop prior to TripCount iterations either
265 /// via an early branch in other loop block or via LatchBlock terminator. This
266 /// is relaxed from the general definition of trip count which is the number of
267 /// times the loop header executes. Note that UnrollLoop assumes that the loop
268 /// counter test is in LatchBlock in order to remove unnecesssary instances of
269 /// the test.  If control can exit the loop from the LatchBlock's terminator
270 /// prior to TripCount iterations, flag PreserveCondBr needs to be set.
271 ///
272 /// PreserveCondBr indicates whether the conditional branch of the LatchBlock
273 /// needs to be preserved.  It is needed when we use trip count upper bound to
274 /// fully unroll the loop. If PreserveOnlyFirst is also set then only the first
275 /// conditional branch needs to be preserved.
276 ///
277 /// Similarly, TripMultiple divides the number of times that the LatchBlock may
278 /// execute without exiting the loop.
279 ///
280 /// If AllowRuntime is true then UnrollLoop will consider unrolling loops that
281 /// have a runtime (i.e. not compile time constant) trip count.  Unrolling these
282 /// loops require a unroll "prologue" that runs "RuntimeTripCount % Count"
283 /// iterations before branching into the unrolled loop.  UnrollLoop will not
284 /// runtime-unroll the loop if computing RuntimeTripCount will be expensive and
285 /// AllowExpensiveTripCount is false.
286 ///
287 /// If we want to perform PGO-based loop peeling, PeelCount is set to the
288 /// number of iterations we want to peel off.
289 ///
290 /// The LoopInfo Analysis that is passed will be kept consistent.
291 ///
292 /// This utility preserves LoopInfo. It will also preserve ScalarEvolution and
293 /// DominatorTree if they are non-null.
294 LoopUnrollResult llvm::UnrollLoop(
295     Loop *L, unsigned Count, unsigned TripCount, bool Force, bool AllowRuntime,
296     bool AllowExpensiveTripCount, bool PreserveCondBr, bool PreserveOnlyFirst,
297     unsigned TripMultiple, unsigned PeelCount, bool UnrollRemainder,
298     LoopInfo *LI, ScalarEvolution *SE, DominatorTree *DT, AssumptionCache *AC,
299     OptimizationRemarkEmitter *ORE, bool PreserveLCSSA) {
300 
301   BasicBlock *Preheader = L->getLoopPreheader();
302   if (!Preheader) {
303     DEBUG(dbgs() << "  Can't unroll; loop preheader-insertion failed.\n");
304     return LoopUnrollResult::Unmodified;
305   }
306 
307   BasicBlock *LatchBlock = L->getLoopLatch();
308   if (!LatchBlock) {
309     DEBUG(dbgs() << "  Can't unroll; loop exit-block-insertion failed.\n");
310     return LoopUnrollResult::Unmodified;
311   }
312 
313   // Loops with indirectbr cannot be cloned.
314   if (!L->isSafeToClone()) {
315     DEBUG(dbgs() << "  Can't unroll; Loop body cannot be cloned.\n");
316     return LoopUnrollResult::Unmodified;
317   }
318 
319   // The current loop unroll pass can only unroll loops with a single latch
320   // that's a conditional branch exiting the loop.
321   // FIXME: The implementation can be extended to work with more complicated
322   // cases, e.g. loops with multiple latches.
323   BasicBlock *Header = L->getHeader();
324   BranchInst *BI = dyn_cast<BranchInst>(LatchBlock->getTerminator());
325 
326   if (!BI || BI->isUnconditional()) {
327     // The loop-rotate pass can be helpful to avoid this in many cases.
328     DEBUG(dbgs() <<
329              "  Can't unroll; loop not terminated by a conditional branch.\n");
330     return LoopUnrollResult::Unmodified;
331   }
332 
333   auto CheckSuccessors = [&](unsigned S1, unsigned S2) {
334     return BI->getSuccessor(S1) == Header && !L->contains(BI->getSuccessor(S2));
335   };
336 
337   if (!CheckSuccessors(0, 1) && !CheckSuccessors(1, 0)) {
338     DEBUG(dbgs() << "Can't unroll; only loops with one conditional latch"
339                     " exiting the loop can be unrolled\n");
340     return LoopUnrollResult::Unmodified;
341   }
342 
343   if (Header->hasAddressTaken()) {
344     // The loop-rotate pass can be helpful to avoid this in many cases.
345     DEBUG(dbgs() <<
346           "  Won't unroll loop: address of header block is taken.\n");
347     return LoopUnrollResult::Unmodified;
348   }
349 
350   if (TripCount != 0)
351     DEBUG(dbgs() << "  Trip Count = " << TripCount << "\n");
352   if (TripMultiple != 1)
353     DEBUG(dbgs() << "  Trip Multiple = " << TripMultiple << "\n");
354 
355   // Effectively "DCE" unrolled iterations that are beyond the tripcount
356   // and will never be executed.
357   if (TripCount != 0 && Count > TripCount)
358     Count = TripCount;
359 
360   // Don't enter the unroll code if there is nothing to do.
361   if (TripCount == 0 && Count < 2 && PeelCount == 0) {
362     DEBUG(dbgs() << "Won't unroll; almost nothing to do\n");
363     return LoopUnrollResult::Unmodified;
364   }
365 
366   assert(Count > 0);
367   assert(TripMultiple > 0);
368   assert(TripCount == 0 || TripCount % TripMultiple == 0);
369 
370   // Are we eliminating the loop control altogether?
371   bool CompletelyUnroll = Count == TripCount;
372   SmallVector<BasicBlock *, 4> ExitBlocks;
373   L->getExitBlocks(ExitBlocks);
374   std::vector<BasicBlock*> OriginalLoopBlocks = L->getBlocks();
375 
376   // Go through all exits of L and see if there are any phi-nodes there. We just
377   // conservatively assume that they're inserted to preserve LCSSA form, which
378   // means that complete unrolling might break this form. We need to either fix
379   // it in-place after the transformation, or entirely rebuild LCSSA. TODO: For
380   // now we just recompute LCSSA for the outer loop, but it should be possible
381   // to fix it in-place.
382   bool NeedToFixLCSSA = PreserveLCSSA && CompletelyUnroll &&
383                         any_of(ExitBlocks, [](const BasicBlock *BB) {
384                           return isa<PHINode>(BB->begin());
385                         });
386 
387   // We assume a run-time trip count if the compiler cannot
388   // figure out the loop trip count and the unroll-runtime
389   // flag is specified.
390   bool RuntimeTripCount = (TripCount == 0 && Count > 0 && AllowRuntime);
391 
392   assert((!RuntimeTripCount || !PeelCount) &&
393          "Did not expect runtime trip-count unrolling "
394          "and peeling for the same loop");
395 
396   if (PeelCount) {
397     bool Peeled = peelLoop(L, PeelCount, LI, SE, DT, AC, PreserveLCSSA);
398 
399     // Successful peeling may result in a change in the loop preheader/trip
400     // counts. If we later unroll the loop, we want these to be updated.
401     if (Peeled) {
402       BasicBlock *ExitingBlock = L->getExitingBlock();
403       assert(ExitingBlock && "Loop without exiting block?");
404       Preheader = L->getLoopPreheader();
405       TripCount = SE->getSmallConstantTripCount(L, ExitingBlock);
406       TripMultiple = SE->getSmallConstantTripMultiple(L, ExitingBlock);
407     }
408   }
409 
410   // Loops containing convergent instructions must have a count that divides
411   // their TripMultiple.
412   DEBUG(
413       {
414         bool HasConvergent = false;
415         for (auto &BB : L->blocks())
416           for (auto &I : *BB)
417             if (auto CS = CallSite(&I))
418               HasConvergent |= CS.isConvergent();
419         assert((!HasConvergent || TripMultiple % Count == 0) &&
420                "Unroll count must divide trip multiple if loop contains a "
421                "convergent operation.");
422       });
423 
424   bool EpilogProfitability =
425       UnrollRuntimeEpilog.getNumOccurrences() ? UnrollRuntimeEpilog
426                                               : isEpilogProfitable(L);
427 
428   if (RuntimeTripCount && TripMultiple % Count != 0 &&
429       !UnrollRuntimeLoopRemainder(L, Count, AllowExpensiveTripCount,
430                                   EpilogProfitability, UnrollRemainder, LI, SE,
431                                   DT, AC, PreserveLCSSA)) {
432     if (Force)
433       RuntimeTripCount = false;
434     else {
435       DEBUG(
436           dbgs() << "Wont unroll; remainder loop could not be generated"
437                     "when assuming runtime trip count\n");
438       return LoopUnrollResult::Unmodified;
439     }
440   }
441 
442   // Notify ScalarEvolution that the loop will be substantially changed,
443   // if not outright eliminated.
444   if (SE)
445     SE->forgetLoop(L);
446 
447   // If we know the trip count, we know the multiple...
448   unsigned BreakoutTrip = 0;
449   if (TripCount != 0) {
450     BreakoutTrip = TripCount % Count;
451     TripMultiple = 0;
452   } else {
453     // Figure out what multiple to use.
454     BreakoutTrip = TripMultiple =
455       (unsigned)GreatestCommonDivisor64(Count, TripMultiple);
456   }
457 
458   using namespace ore;
459   // Report the unrolling decision.
460   if (CompletelyUnroll) {
461     DEBUG(dbgs() << "COMPLETELY UNROLLING loop %" << Header->getName()
462                  << " with trip count " << TripCount << "!\n");
463     if (ORE)
464       ORE->emit([&]() {
465         return OptimizationRemark(DEBUG_TYPE, "FullyUnrolled", L->getStartLoc(),
466                                   L->getHeader())
467                << "completely unrolled loop with "
468                << NV("UnrollCount", TripCount) << " iterations";
469       });
470   } else if (PeelCount) {
471     DEBUG(dbgs() << "PEELING loop %" << Header->getName()
472                  << " with iteration count " << PeelCount << "!\n");
473     if (ORE)
474       ORE->emit([&]() {
475         return OptimizationRemark(DEBUG_TYPE, "Peeled", L->getStartLoc(),
476                                   L->getHeader())
477                << " peeled loop by " << NV("PeelCount", PeelCount)
478                << " iterations";
479       });
480   } else {
481     auto DiagBuilder = [&]() {
482       OptimizationRemark Diag(DEBUG_TYPE, "PartialUnrolled", L->getStartLoc(),
483                               L->getHeader());
484       return Diag << "unrolled loop by a factor of "
485                   << NV("UnrollCount", Count);
486     };
487 
488     DEBUG(dbgs() << "UNROLLING loop %" << Header->getName()
489           << " by " << Count);
490     if (TripMultiple == 0 || BreakoutTrip != TripMultiple) {
491       DEBUG(dbgs() << " with a breakout at trip " << BreakoutTrip);
492       if (ORE)
493         ORE->emit([&]() {
494           return DiagBuilder() << " with a breakout at trip "
495                                << NV("BreakoutTrip", BreakoutTrip);
496         });
497     } else if (TripMultiple != 1) {
498       DEBUG(dbgs() << " with " << TripMultiple << " trips per branch");
499       if (ORE)
500         ORE->emit([&]() {
501           return DiagBuilder() << " with " << NV("TripMultiple", TripMultiple)
502                                << " trips per branch";
503         });
504     } else if (RuntimeTripCount) {
505       DEBUG(dbgs() << " with run-time trip count");
506       if (ORE)
507         ORE->emit(
508             [&]() { return DiagBuilder() << " with run-time trip count"; });
509     }
510     DEBUG(dbgs() << "!\n");
511   }
512 
513   bool ContinueOnTrue = L->contains(BI->getSuccessor(0));
514   BasicBlock *LoopExit = BI->getSuccessor(ContinueOnTrue);
515 
516   // For the first iteration of the loop, we should use the precloned values for
517   // PHI nodes.  Insert associations now.
518   ValueToValueMapTy LastValueMap;
519   std::vector<PHINode*> OrigPHINode;
520   for (BasicBlock::iterator I = Header->begin(); isa<PHINode>(I); ++I) {
521     OrigPHINode.push_back(cast<PHINode>(I));
522   }
523 
524   std::vector<BasicBlock*> Headers;
525   std::vector<BasicBlock*> Latches;
526   Headers.push_back(Header);
527   Latches.push_back(LatchBlock);
528 
529   // The current on-the-fly SSA update requires blocks to be processed in
530   // reverse postorder so that LastValueMap contains the correct value at each
531   // exit.
532   LoopBlocksDFS DFS(L);
533   DFS.perform(LI);
534 
535   // Stash the DFS iterators before adding blocks to the loop.
536   LoopBlocksDFS::RPOIterator BlockBegin = DFS.beginRPO();
537   LoopBlocksDFS::RPOIterator BlockEnd = DFS.endRPO();
538 
539   std::vector<BasicBlock*> UnrolledLoopBlocks = L->getBlocks();
540 
541   // Loop Unrolling might create new loops. While we do preserve LoopInfo, we
542   // might break loop-simplified form for these loops (as they, e.g., would
543   // share the same exit blocks). We'll keep track of loops for which we can
544   // break this so that later we can re-simplify them.
545   SmallSetVector<Loop *, 4> LoopsToSimplify;
546   for (Loop *SubLoop : *L)
547     LoopsToSimplify.insert(SubLoop);
548 
549   if (Header->getParent()->isDebugInfoForProfiling())
550     for (BasicBlock *BB : L->getBlocks())
551       for (Instruction &I : *BB)
552         if (!isa<DbgInfoIntrinsic>(&I))
553           if (const DILocation *DIL = I.getDebugLoc())
554             I.setDebugLoc(DIL->cloneWithDuplicationFactor(Count));
555 
556   for (unsigned It = 1; It != Count; ++It) {
557     std::vector<BasicBlock*> NewBlocks;
558     SmallDenseMap<const Loop *, Loop *, 4> NewLoops;
559     NewLoops[L] = L;
560 
561     for (LoopBlocksDFS::RPOIterator BB = BlockBegin; BB != BlockEnd; ++BB) {
562       ValueToValueMapTy VMap;
563       BasicBlock *New = CloneBasicBlock(*BB, VMap, "." + Twine(It));
564       Header->getParent()->getBasicBlockList().push_back(New);
565 
566       assert((*BB != Header || LI->getLoopFor(*BB) == L) &&
567              "Header should not be in a sub-loop");
568       // Tell LI about New.
569       const Loop *OldLoop = addClonedBlockToLoopInfo(*BB, New, LI, NewLoops);
570       if (OldLoop) {
571         LoopsToSimplify.insert(NewLoops[OldLoop]);
572 
573         // Forget the old loop, since its inputs may have changed.
574         if (SE)
575           SE->forgetLoop(OldLoop);
576       }
577 
578       if (*BB == Header)
579         // Loop over all of the PHI nodes in the block, changing them to use
580         // the incoming values from the previous block.
581         for (PHINode *OrigPHI : OrigPHINode) {
582           PHINode *NewPHI = cast<PHINode>(VMap[OrigPHI]);
583           Value *InVal = NewPHI->getIncomingValueForBlock(LatchBlock);
584           if (Instruction *InValI = dyn_cast<Instruction>(InVal))
585             if (It > 1 && L->contains(InValI))
586               InVal = LastValueMap[InValI];
587           VMap[OrigPHI] = InVal;
588           New->getInstList().erase(NewPHI);
589         }
590 
591       // Update our running map of newest clones
592       LastValueMap[*BB] = New;
593       for (ValueToValueMapTy::iterator VI = VMap.begin(), VE = VMap.end();
594            VI != VE; ++VI)
595         LastValueMap[VI->first] = VI->second;
596 
597       // Add phi entries for newly created values to all exit blocks.
598       for (BasicBlock *Succ : successors(*BB)) {
599         if (L->contains(Succ))
600           continue;
601         for (BasicBlock::iterator BBI = Succ->begin();
602              PHINode *phi = dyn_cast<PHINode>(BBI); ++BBI) {
603           Value *Incoming = phi->getIncomingValueForBlock(*BB);
604           ValueToValueMapTy::iterator It = LastValueMap.find(Incoming);
605           if (It != LastValueMap.end())
606             Incoming = It->second;
607           phi->addIncoming(Incoming, New);
608         }
609       }
610       // Keep track of new headers and latches as we create them, so that
611       // we can insert the proper branches later.
612       if (*BB == Header)
613         Headers.push_back(New);
614       if (*BB == LatchBlock)
615         Latches.push_back(New);
616 
617       NewBlocks.push_back(New);
618       UnrolledLoopBlocks.push_back(New);
619 
620       // Update DomTree: since we just copy the loop body, and each copy has a
621       // dedicated entry block (copy of the header block), this header's copy
622       // dominates all copied blocks. That means, dominance relations in the
623       // copied body are the same as in the original body.
624       if (DT) {
625         if (*BB == Header)
626           DT->addNewBlock(New, Latches[It - 1]);
627         else {
628           auto BBDomNode = DT->getNode(*BB);
629           auto BBIDom = BBDomNode->getIDom();
630           BasicBlock *OriginalBBIDom = BBIDom->getBlock();
631           DT->addNewBlock(
632               New, cast<BasicBlock>(LastValueMap[cast<Value>(OriginalBBIDom)]));
633         }
634       }
635     }
636 
637     // Remap all instructions in the most recent iteration
638     for (BasicBlock *NewBlock : NewBlocks) {
639       for (Instruction &I : *NewBlock) {
640         ::remapInstruction(&I, LastValueMap);
641         if (auto *II = dyn_cast<IntrinsicInst>(&I))
642           if (II->getIntrinsicID() == Intrinsic::assume)
643             AC->registerAssumption(II);
644       }
645     }
646   }
647 
648   // Loop over the PHI nodes in the original block, setting incoming values.
649   for (PHINode *PN : OrigPHINode) {
650     if (CompletelyUnroll) {
651       PN->replaceAllUsesWith(PN->getIncomingValueForBlock(Preheader));
652       Header->getInstList().erase(PN);
653     }
654     else if (Count > 1) {
655       Value *InVal = PN->removeIncomingValue(LatchBlock, false);
656       // If this value was defined in the loop, take the value defined by the
657       // last iteration of the loop.
658       if (Instruction *InValI = dyn_cast<Instruction>(InVal)) {
659         if (L->contains(InValI))
660           InVal = LastValueMap[InVal];
661       }
662       assert(Latches.back() == LastValueMap[LatchBlock] && "bad last latch");
663       PN->addIncoming(InVal, Latches.back());
664     }
665   }
666 
667   // Now that all the basic blocks for the unrolled iterations are in place,
668   // set up the branches to connect them.
669   for (unsigned i = 0, e = Latches.size(); i != e; ++i) {
670     // The original branch was replicated in each unrolled iteration.
671     BranchInst *Term = cast<BranchInst>(Latches[i]->getTerminator());
672 
673     // The branch destination.
674     unsigned j = (i + 1) % e;
675     BasicBlock *Dest = Headers[j];
676     bool NeedConditional = true;
677 
678     if (RuntimeTripCount && j != 0) {
679       NeedConditional = false;
680     }
681 
682     // For a complete unroll, make the last iteration end with a branch
683     // to the exit block.
684     if (CompletelyUnroll) {
685       if (j == 0)
686         Dest = LoopExit;
687       // If using trip count upper bound to completely unroll, we need to keep
688       // the conditional branch except the last one because the loop may exit
689       // after any iteration.
690       assert(NeedConditional &&
691              "NeedCondition cannot be modified by both complete "
692              "unrolling and runtime unrolling");
693       NeedConditional = (PreserveCondBr && j && !(PreserveOnlyFirst && i != 0));
694     } else if (j != BreakoutTrip && (TripMultiple == 0 || j % TripMultiple != 0)) {
695       // If we know the trip count or a multiple of it, we can safely use an
696       // unconditional branch for some iterations.
697       NeedConditional = false;
698     }
699 
700     if (NeedConditional) {
701       // Update the conditional branch's successor for the following
702       // iteration.
703       Term->setSuccessor(!ContinueOnTrue, Dest);
704     } else {
705       // Remove phi operands at this loop exit
706       if (Dest != LoopExit) {
707         BasicBlock *BB = Latches[i];
708         for (BasicBlock *Succ: successors(BB)) {
709           if (Succ == Headers[i])
710             continue;
711           for (BasicBlock::iterator BBI = Succ->begin();
712                PHINode *Phi = dyn_cast<PHINode>(BBI); ++BBI) {
713             Phi->removeIncomingValue(BB, false);
714           }
715         }
716       }
717       // Replace the conditional branch with an unconditional one.
718       BranchInst::Create(Dest, Term);
719       Term->eraseFromParent();
720     }
721   }
722 
723   // Update dominators of blocks we might reach through exits.
724   // Immediate dominator of such block might change, because we add more
725   // routes which can lead to the exit: we can now reach it from the copied
726   // iterations too.
727   if (DT && Count > 1) {
728     for (auto *BB : OriginalLoopBlocks) {
729       auto *BBDomNode = DT->getNode(BB);
730       SmallVector<BasicBlock *, 16> ChildrenToUpdate;
731       for (auto *ChildDomNode : BBDomNode->getChildren()) {
732         auto *ChildBB = ChildDomNode->getBlock();
733         if (!L->contains(ChildBB))
734           ChildrenToUpdate.push_back(ChildBB);
735       }
736       BasicBlock *NewIDom;
737       if (BB == LatchBlock) {
738         // The latch is special because we emit unconditional branches in
739         // some cases where the original loop contained a conditional branch.
740         // Since the latch is always at the bottom of the loop, if the latch
741         // dominated an exit before unrolling, the new dominator of that exit
742         // must also be a latch.  Specifically, the dominator is the first
743         // latch which ends in a conditional branch, or the last latch if
744         // there is no such latch.
745         NewIDom = Latches.back();
746         for (BasicBlock *IterLatch : Latches) {
747           TerminatorInst *Term = IterLatch->getTerminator();
748           if (isa<BranchInst>(Term) && cast<BranchInst>(Term)->isConditional()) {
749             NewIDom = IterLatch;
750             break;
751           }
752         }
753       } else {
754         // The new idom of the block will be the nearest common dominator
755         // of all copies of the previous idom. This is equivalent to the
756         // nearest common dominator of the previous idom and the first latch,
757         // which dominates all copies of the previous idom.
758         NewIDom = DT->findNearestCommonDominator(BB, LatchBlock);
759       }
760       for (auto *ChildBB : ChildrenToUpdate)
761         DT->changeImmediateDominator(ChildBB, NewIDom);
762     }
763   }
764 
765   if (DT && UnrollVerifyDomtree)
766     DT->verifyDomTree();
767 
768   // Merge adjacent basic blocks, if possible.
769   SmallPtrSet<Loop *, 4> ForgottenLoops;
770   for (BasicBlock *Latch : Latches) {
771     BranchInst *Term = cast<BranchInst>(Latch->getTerminator());
772     if (Term->isUnconditional()) {
773       BasicBlock *Dest = Term->getSuccessor(0);
774       if (BasicBlock *Fold =
775               foldBlockIntoPredecessor(Dest, LI, SE, ForgottenLoops, DT)) {
776         // Dest has been folded into Fold. Update our worklists accordingly.
777         std::replace(Latches.begin(), Latches.end(), Dest, Fold);
778         UnrolledLoopBlocks.erase(std::remove(UnrolledLoopBlocks.begin(),
779                                              UnrolledLoopBlocks.end(), Dest),
780                                  UnrolledLoopBlocks.end());
781       }
782     }
783   }
784 
785   // Simplify any new induction variables in the partially unrolled loop.
786   if (SE && !CompletelyUnroll && Count > 1) {
787     SmallVector<WeakTrackingVH, 16> DeadInsts;
788     simplifyLoopIVs(L, SE, DT, LI, DeadInsts);
789 
790     // Aggressively clean up dead instructions that simplifyLoopIVs already
791     // identified. Any remaining should be cleaned up below.
792     while (!DeadInsts.empty())
793       if (Instruction *Inst =
794               dyn_cast_or_null<Instruction>(&*DeadInsts.pop_back_val()))
795         RecursivelyDeleteTriviallyDeadInstructions(Inst);
796   }
797 
798   // At this point, the code is well formed.  We now do a quick sweep over the
799   // inserted code, doing constant propagation and dead code elimination as we
800   // go.
801   const DataLayout &DL = Header->getModule()->getDataLayout();
802   const std::vector<BasicBlock*> &NewLoopBlocks = L->getBlocks();
803   for (BasicBlock *BB : NewLoopBlocks) {
804     for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ) {
805       Instruction *Inst = &*I++;
806 
807       if (Value *V = SimplifyInstruction(Inst, {DL, nullptr, DT, AC}))
808         if (LI->replacementPreservesLCSSAForm(Inst, V))
809           Inst->replaceAllUsesWith(V);
810       if (isInstructionTriviallyDead(Inst))
811         BB->getInstList().erase(Inst);
812     }
813   }
814 
815   // TODO: after peeling or unrolling, previously loop variant conditions are
816   // likely to fold to constants, eagerly propagating those here will require
817   // fewer cleanup passes to be run.  Alternatively, a LoopEarlyCSE might be
818   // appropriate.
819 
820   NumCompletelyUnrolled += CompletelyUnroll;
821   ++NumUnrolled;
822 
823   Loop *OuterL = L->getParentLoop();
824   // Update LoopInfo if the loop is completely removed.
825   if (CompletelyUnroll)
826     LI->erase(L);
827 
828   // After complete unrolling most of the blocks should be contained in OuterL.
829   // However, some of them might happen to be out of OuterL (e.g. if they
830   // precede a loop exit). In this case we might need to insert PHI nodes in
831   // order to preserve LCSSA form.
832   // We don't need to check this if we already know that we need to fix LCSSA
833   // form.
834   // TODO: For now we just recompute LCSSA for the outer loop in this case, but
835   // it should be possible to fix it in-place.
836   if (PreserveLCSSA && OuterL && CompletelyUnroll && !NeedToFixLCSSA)
837     NeedToFixLCSSA |= ::needToInsertPhisForLCSSA(OuterL, UnrolledLoopBlocks, LI);
838 
839   // If we have a pass and a DominatorTree we should re-simplify impacted loops
840   // to ensure subsequent analyses can rely on this form. We want to simplify
841   // at least one layer outside of the loop that was unrolled so that any
842   // changes to the parent loop exposed by the unrolling are considered.
843   if (DT) {
844     if (OuterL) {
845       // OuterL includes all loops for which we can break loop-simplify, so
846       // it's sufficient to simplify only it (it'll recursively simplify inner
847       // loops too).
848       if (NeedToFixLCSSA) {
849         // LCSSA must be performed on the outermost affected loop. The unrolled
850         // loop's last loop latch is guaranteed to be in the outermost loop
851         // after LoopInfo's been updated by LoopInfo::erase.
852         Loop *LatchLoop = LI->getLoopFor(Latches.back());
853         Loop *FixLCSSALoop = OuterL;
854         if (!FixLCSSALoop->contains(LatchLoop))
855           while (FixLCSSALoop->getParentLoop() != LatchLoop)
856             FixLCSSALoop = FixLCSSALoop->getParentLoop();
857 
858         formLCSSARecursively(*FixLCSSALoop, *DT, LI, SE);
859       } else if (PreserveLCSSA) {
860         assert(OuterL->isLCSSAForm(*DT) &&
861                "Loops should be in LCSSA form after loop-unroll.");
862       }
863 
864       // TODO: That potentially might be compile-time expensive. We should try
865       // to fix the loop-simplified form incrementally.
866       simplifyLoop(OuterL, DT, LI, SE, AC, PreserveLCSSA);
867     } else {
868       // Simplify loops for which we might've broken loop-simplify form.
869       for (Loop *SubLoop : LoopsToSimplify)
870         simplifyLoop(SubLoop, DT, LI, SE, AC, PreserveLCSSA);
871     }
872   }
873 
874   return CompletelyUnroll ? LoopUnrollResult::FullyUnrolled
875                           : LoopUnrollResult::PartiallyUnrolled;
876 }
877 
878 /// Given an llvm.loop loop id metadata node, returns the loop hint metadata
879 /// node with the given name (for example, "llvm.loop.unroll.count"). If no
880 /// such metadata node exists, then nullptr is returned.
881 MDNode *llvm::GetUnrollMetadata(MDNode *LoopID, StringRef Name) {
882   // First operand should refer to the loop id itself.
883   assert(LoopID->getNumOperands() > 0 && "requires at least one operand");
884   assert(LoopID->getOperand(0) == LoopID && "invalid loop id");
885 
886   for (unsigned i = 1, e = LoopID->getNumOperands(); i < e; ++i) {
887     MDNode *MD = dyn_cast<MDNode>(LoopID->getOperand(i));
888     if (!MD)
889       continue;
890 
891     MDString *S = dyn_cast<MDString>(MD->getOperand(0));
892     if (!S)
893       continue;
894 
895     if (Name.equals(S->getString()))
896       return MD;
897   }
898   return nullptr;
899 }
900