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Dan Gohman45b31972008-05-14 00:24:14 +00001//===-- 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// It works best when loops have been canonicalized by the -indvars pass,
15// allowing it to determine the trip counts of loops easily.
16//
17// The process of unrolling can produce extraneous basic blocks linked with
18// unconditional branches. This will be corrected in the future.
19//===----------------------------------------------------------------------===//
20
21#define DEBUG_TYPE "loop-unroll"
22#include "llvm/Transforms/Utils/UnrollLoop.h"
23#include "llvm/BasicBlock.h"
24#include "llvm/ADT/Statistic.h"
25#include "llvm/Analysis/ConstantFolding.h"
26#include "llvm/Analysis/LoopPass.h"
27#include "llvm/Support/Debug.h"
Daniel Dunbarce63ffb2009-07-25 00:23:56 +000028#include "llvm/Support/raw_ostream.h"
Chris Lattner29874e02008-12-03 19:44:02 +000029#include "llvm/Transforms/Utils/BasicBlockUtils.h"
Dan Gohman45b31972008-05-14 00:24:14 +000030#include "llvm/Transforms/Utils/Cloning.h"
31#include "llvm/Transforms/Utils/Local.h"
Duncan Sands4520dd22008-10-08 07:23:46 +000032#include <cstdio>
Dan Gohman45b31972008-05-14 00:24:14 +000033
34using namespace llvm;
35
Chris Lattner29874e02008-12-03 19:44:02 +000036// TODO: Should these be here or in LoopUnroll?
Dan Gohman45b31972008-05-14 00:24:14 +000037STATISTIC(NumCompletelyUnrolled, "Number of loops completely unrolled");
38STATISTIC(NumUnrolled, "Number of loops unrolled (completely or otherwise)");
39
40/// RemapInstruction - Convert the instruction operands from referencing the
41/// current values into those specified by ValueMap.
42static inline void RemapInstruction(Instruction *I,
43 DenseMap<const Value *, Value*> &ValueMap) {
44 for (unsigned op = 0, E = I->getNumOperands(); op != E; ++op) {
45 Value *Op = I->getOperand(op);
46 DenseMap<const Value *, Value*>::iterator It = ValueMap.find(Op);
47 if (It != ValueMap.end()) Op = It->second;
48 I->setOperand(op, Op);
49 }
50}
51
52/// FoldBlockIntoPredecessor - Folds a basic block into its predecessor if it
53/// only has one predecessor, and that predecessor only has one successor.
54/// The LoopInfo Analysis that is passed will be kept consistent.
55/// Returns the new combined block.
56static BasicBlock *FoldBlockIntoPredecessor(BasicBlock *BB, LoopInfo* LI) {
57 // Merge basic blocks into their predecessor if there is only one distinct
58 // pred, and if there is only one distinct successor of the predecessor, and
59 // if there are no PHI nodes.
60 BasicBlock *OnlyPred = BB->getSinglePredecessor();
61 if (!OnlyPred) return 0;
62
63 if (OnlyPred->getTerminator()->getNumSuccessors() != 1)
64 return 0;
65
66 DOUT << "Merging: " << *BB << "into: " << *OnlyPred;
67
68 // Resolve any PHI nodes at the start of the block. They are all
69 // guaranteed to have exactly one entry if they exist, unless there are
70 // multiple duplicate (but guaranteed to be equal) entries for the
71 // incoming edges. This occurs when there are multiple edges from
72 // OnlyPred to OnlySucc.
Chris Lattner29874e02008-12-03 19:44:02 +000073 FoldSingleEntryPHINodes(BB);
Dan Gohman45b31972008-05-14 00:24:14 +000074
75 // Delete the unconditional branch from the predecessor...
76 OnlyPred->getInstList().pop_back();
77
78 // Move all definitions in the successor to the predecessor...
79 OnlyPred->getInstList().splice(OnlyPred->end(), BB->getInstList());
80
81 // Make all PHI nodes that referred to BB now refer to Pred as their
82 // source...
83 BB->replaceAllUsesWith(OnlyPred);
84
85 std::string OldName = BB->getName();
86
87 // Erase basic block from the function...
88 LI->removeBlock(BB);
89 BB->eraseFromParent();
90
91 // Inherit predecessor's name if it exists...
92 if (!OldName.empty() && !OnlyPred->hasName())
93 OnlyPred->setName(OldName);
94
95 return OnlyPred;
96}
97
98/// Unroll the given loop by Count. The loop must be in LCSSA form. Returns true
99/// if unrolling was succesful, or false if the loop was unmodified. Unrolling
100/// can only fail when the loop's latch block is not terminated by a conditional
101/// branch instruction. However, if the trip count (and multiple) are not known,
102/// loop unrolling will mostly produce more code that is no faster.
103///
104/// The LoopInfo Analysis that is passed will be kept consistent.
105///
106/// If a LoopPassManager is passed in, and the loop is fully removed, it will be
107/// removed from the LoopPassManager as well. LPM can also be NULL.
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000108bool llvm::UnrollLoop(Loop *L, unsigned Count, LoopInfo* LI, LPPassManager* LPM) {
Dan Gohman45b31972008-05-14 00:24:14 +0000109 assert(L->isLCSSAForm());
110
111 BasicBlock *Header = L->getHeader();
112 BasicBlock *LatchBlock = L->getLoopLatch();
113 BranchInst *BI = dyn_cast<BranchInst>(LatchBlock->getTerminator());
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000114
Dan Gohman45b31972008-05-14 00:24:14 +0000115 if (!BI || BI->isUnconditional()) {
116 // The loop-rotate pass can be helpful to avoid this in many cases.
117 DOUT << " Can't unroll; loop not terminated by a conditional branch.\n";
118 return false;
119 }
120
121 // Find trip count
122 unsigned TripCount = L->getSmallConstantTripCount();
123 // Find trip multiple if count is not available
124 unsigned TripMultiple = 1;
125 if (TripCount == 0)
126 TripMultiple = L->getSmallConstantTripMultiple();
127
128 if (TripCount != 0)
129 DOUT << " Trip Count = " << TripCount << "\n";
130 if (TripMultiple != 1)
131 DOUT << " Trip Multiple = " << TripMultiple << "\n";
132
133 // Effectively "DCE" unrolled iterations that are beyond the tripcount
134 // and will never be executed.
135 if (TripCount != 0 && Count > TripCount)
136 Count = TripCount;
137
138 assert(Count > 0);
139 assert(TripMultiple > 0);
140 assert(TripCount == 0 || TripCount % TripMultiple == 0);
141
142 // Are we eliminating the loop control altogether?
143 bool CompletelyUnroll = Count == TripCount;
144
145 // If we know the trip count, we know the multiple...
146 unsigned BreakoutTrip = 0;
147 if (TripCount != 0) {
148 BreakoutTrip = TripCount % Count;
149 TripMultiple = 0;
150 } else {
151 // Figure out what multiple to use.
152 BreakoutTrip = TripMultiple =
153 (unsigned)GreatestCommonDivisor64(Count, TripMultiple);
154 }
155
156 if (CompletelyUnroll) {
Daniel Dunbarce63ffb2009-07-25 00:23:56 +0000157 DEBUG(errs() << "COMPLETELY UNROLLING loop %" << Header->getName()
158 << " with trip count " << TripCount << "!\n");
Dan Gohman45b31972008-05-14 00:24:14 +0000159 } else {
Daniel Dunbarce63ffb2009-07-25 00:23:56 +0000160 DEBUG(errs() << "UNROLLING loop %" << Header->getName()
161 << " by " << Count);
Dan Gohman45b31972008-05-14 00:24:14 +0000162 if (TripMultiple == 0 || BreakoutTrip != TripMultiple) {
163 DOUT << " with a breakout at trip " << BreakoutTrip;
164 } else if (TripMultiple != 1) {
165 DOUT << " with " << TripMultiple << " trips per branch";
166 }
167 DOUT << "!\n";
168 }
169
170 std::vector<BasicBlock*> LoopBlocks = L->getBlocks();
171
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000172 bool ContinueOnTrue = L->contains(BI->getSuccessor(0));
Dan Gohman45b31972008-05-14 00:24:14 +0000173 BasicBlock *LoopExit = BI->getSuccessor(ContinueOnTrue);
174
175 // For the first iteration of the loop, we should use the precloned values for
176 // PHI nodes. Insert associations now.
177 typedef DenseMap<const Value*, Value*> ValueMapTy;
178 ValueMapTy LastValueMap;
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000179 std::vector<PHINode*> OrigPHINode;
Dan Gohman45b31972008-05-14 00:24:14 +0000180 for (BasicBlock::iterator I = Header->begin(); isa<PHINode>(I); ++I) {
181 PHINode *PN = cast<PHINode>(I);
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000182 OrigPHINode.push_back(PN);
Dan Gohman45b31972008-05-14 00:24:14 +0000183 if (Instruction *I =
184 dyn_cast<Instruction>(PN->getIncomingValueForBlock(LatchBlock)))
185 if (L->contains(I->getParent()))
186 LastValueMap[I] = I;
187 }
188
189 std::vector<BasicBlock*> Headers;
190 std::vector<BasicBlock*> Latches;
191 Headers.push_back(Header);
192 Latches.push_back(LatchBlock);
193
194 for (unsigned It = 1; It != Count; ++It) {
195 char SuffixBuffer[100];
196 sprintf(SuffixBuffer, ".%d", It);
197
198 std::vector<BasicBlock*> NewBlocks;
199
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000200 for (std::vector<BasicBlock*>::iterator BB = LoopBlocks.begin(),
201 E = LoopBlocks.end(); BB != E; ++BB) {
Dan Gohman45b31972008-05-14 00:24:14 +0000202 ValueMapTy ValueMap;
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000203 BasicBlock *New = CloneBasicBlock(*BB, ValueMap, SuffixBuffer);
204 Header->getParent()->getBasicBlockList().push_back(New);
Dan Gohman45b31972008-05-14 00:24:14 +0000205
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000206 // Loop over all of the PHI nodes in the block, changing them to use the
207 // incoming values from the previous block.
208 if (*BB == Header)
209 for (unsigned i = 0, e = OrigPHINode.size(); i != e; ++i) {
210 PHINode *NewPHI = cast<PHINode>(ValueMap[OrigPHINode[i]]);
Dan Gohman45b31972008-05-14 00:24:14 +0000211 Value *InVal = NewPHI->getIncomingValueForBlock(LatchBlock);
212 if (Instruction *InValI = dyn_cast<Instruction>(InVal))
213 if (It > 1 && L->contains(InValI->getParent()))
214 InVal = LastValueMap[InValI];
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000215 ValueMap[OrigPHINode[i]] = InVal;
Dan Gohman45b31972008-05-14 00:24:14 +0000216 New->getInstList().erase(NewPHI);
217 }
218
219 // Update our running map of newest clones
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000220 LastValueMap[*BB] = New;
Dan Gohman45b31972008-05-14 00:24:14 +0000221 for (ValueMapTy::iterator VI = ValueMap.begin(), VE = ValueMap.end();
222 VI != VE; ++VI)
223 LastValueMap[VI->first] = VI->second;
224
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000225 L->addBasicBlockToLoop(New, LI->getBase());
226
227 // Add phi entries for newly created values to all exit blocks except
228 // the successor of the latch block. The successor of the exit block will
229 // be updated specially after unrolling all the way.
230 if (*BB != LatchBlock)
231 for (Value::use_iterator UI = (*BB)->use_begin(), UE = (*BB)->use_end();
232 UI != UE;) {
233 Instruction *UseInst = cast<Instruction>(*UI);
234 ++UI;
235 if (isa<PHINode>(UseInst) && !L->contains(UseInst->getParent())) {
236 PHINode *phi = cast<PHINode>(UseInst);
237 Value *Incoming = phi->getIncomingValueForBlock(*BB);
238 phi->addIncoming(Incoming, New);
239 }
Dan Gohman45b31972008-05-14 00:24:14 +0000240 }
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000241
242 // Keep track of new headers and latches as we create them, so that
243 // we can insert the proper branches later.
244 if (*BB == Header)
245 Headers.push_back(New);
246 if (*BB == LatchBlock) {
247 Latches.push_back(New);
248
249 // Also, clear out the new latch's back edge so that it doesn't look
250 // like a new loop, so that it's amenable to being merged with adjacent
251 // blocks later on.
252 TerminatorInst *Term = New->getTerminator();
253 assert(L->contains(Term->getSuccessor(!ContinueOnTrue)));
254 assert(Term->getSuccessor(ContinueOnTrue) == LoopExit);
255 Term->setSuccessor(!ContinueOnTrue, NULL);
Dan Gohman45b31972008-05-14 00:24:14 +0000256 }
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000257
258 NewBlocks.push_back(New);
Dan Gohman45b31972008-05-14 00:24:14 +0000259 }
260
261 // Remap all instructions in the most recent iteration
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000262 for (unsigned i = 0; i < NewBlocks.size(); ++i)
Dan Gohman45b31972008-05-14 00:24:14 +0000263 for (BasicBlock::iterator I = NewBlocks[i]->begin(),
264 E = NewBlocks[i]->end(); I != E; ++I)
265 RemapInstruction(I, LastValueMap);
266 }
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000267
268 // The latch block exits the loop. If there are any PHI nodes in the
269 // successor blocks, update them to use the appropriate values computed as the
270 // last iteration of the loop.
271 if (Count != 1) {
272 SmallPtrSet<PHINode*, 8> Users;
273 for (Value::use_iterator UI = LatchBlock->use_begin(),
274 UE = LatchBlock->use_end(); UI != UE; ++UI)
275 if (PHINode *phi = dyn_cast<PHINode>(*UI))
276 Users.insert(phi);
277
278 BasicBlock *LastIterationBB = cast<BasicBlock>(LastValueMap[LatchBlock]);
279 for (SmallPtrSet<PHINode*,8>::iterator SI = Users.begin(), SE = Users.end();
280 SI != SE; ++SI) {
281 PHINode *PN = *SI;
282 Value *InVal = PN->removeIncomingValue(LatchBlock, false);
283 // If this value was defined in the loop, take the value defined by the
284 // last iteration of the loop.
285 if (Instruction *InValI = dyn_cast<Instruction>(InVal)) {
286 if (L->contains(InValI->getParent()))
287 InVal = LastValueMap[InVal];
288 }
289 PN->addIncoming(InVal, LastIterationBB);
290 }
291 }
292
293 // Now, if we're doing complete unrolling, loop over the PHI nodes in the
294 // original block, setting them to their incoming values.
295 if (CompletelyUnroll) {
296 BasicBlock *Preheader = L->getLoopPreheader();
297 for (unsigned i = 0, e = OrigPHINode.size(); i != e; ++i) {
298 PHINode *PN = OrigPHINode[i];
299 PN->replaceAllUsesWith(PN->getIncomingValueForBlock(Preheader));
300 Header->getInstList().erase(PN);
301 }
302 }
Dan Gohman45b31972008-05-14 00:24:14 +0000303
304 // Now that all the basic blocks for the unrolled iterations are in place,
305 // set up the branches to connect them.
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000306 for (unsigned i = 0, e = Latches.size(); i != e; ++i) {
Dan Gohman45b31972008-05-14 00:24:14 +0000307 // The original branch was replicated in each unrolled iteration.
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000308 BranchInst *Term = cast<BranchInst>(Latches[i]->getTerminator());
Dan Gohman45b31972008-05-14 00:24:14 +0000309
310 // The branch destination.
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000311 unsigned j = (i + 1) % e;
312 BasicBlock *Dest = Headers[j];
Dan Gohman45b31972008-05-14 00:24:14 +0000313 bool NeedConditional = true;
314
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000315 // For a complete unroll, make the last iteration end with a branch
316 // to the exit block.
317 if (CompletelyUnroll && j == 0) {
Dan Gohman45b31972008-05-14 00:24:14 +0000318 Dest = LoopExit;
319 NeedConditional = false;
320 }
321
322 // If we know the trip count or a multiple of it, we can safely use an
323 // unconditional branch for some iterations.
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000324 if (j != BreakoutTrip && (TripMultiple == 0 || j % TripMultiple != 0)) {
Dan Gohman45b31972008-05-14 00:24:14 +0000325 NeedConditional = false;
326 }
327
328 if (NeedConditional) {
329 // Update the conditional branch's successor for the following
330 // iteration.
331 Term->setSuccessor(!ContinueOnTrue, Dest);
332 } else {
333 Term->setUnconditionalDest(Dest);
334 // Merge adjacent basic blocks, if possible.
335 if (BasicBlock *Fold = FoldBlockIntoPredecessor(Dest, LI)) {
336 std::replace(Latches.begin(), Latches.end(), Dest, Fold);
337 std::replace(Headers.begin(), Headers.end(), Dest, Fold);
338 }
339 }
340 }
341
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000342 // At this point, the code is well formed. We now do a quick sweep over the
343 // inserted code, doing constant propagation and dead code elimination as we
344 // go.
345 const std::vector<BasicBlock*> &NewLoopBlocks = L->getBlocks();
346 for (std::vector<BasicBlock*>::const_iterator BB = NewLoopBlocks.begin(),
347 BBE = NewLoopBlocks.end(); BB != BBE; ++BB)
348 for (BasicBlock::iterator I = (*BB)->begin(), E = (*BB)->end(); I != E; ) {
Dan Gohman45b31972008-05-14 00:24:14 +0000349 Instruction *Inst = I++;
350
351 if (isInstructionTriviallyDead(Inst))
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000352 (*BB)->getInstList().erase(Inst);
Owen Anderson50895512009-07-06 18:42:36 +0000353 else if (Constant *C = ConstantFoldInstruction(Inst,
354 Header->getContext())) {
Dan Gohman45b31972008-05-14 00:24:14 +0000355 Inst->replaceAllUsesWith(C);
Dan Gohman8dbe7f82008-06-24 20:44:42 +0000356 (*BB)->getInstList().erase(Inst);
Dan Gohman45b31972008-05-14 00:24:14 +0000357 }
358 }
Dan Gohman45b31972008-05-14 00:24:14 +0000359
360 NumCompletelyUnrolled += CompletelyUnroll;
361 ++NumUnrolled;
362 // Remove the loop from the LoopPassManager if it's completely removed.
363 if (CompletelyUnroll && LPM != NULL)
364 LPM->deleteLoopFromQueue(L);
365
366 // If we didn't completely unroll the loop, it should still be in LCSSA form.
367 if (!CompletelyUnroll)
368 assert(L->isLCSSAForm());
369
370 return true;
371}