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Devang Patelbc5fe632007-08-07 00:25:56 +00001//===- LoopIndexSplit.cpp - Loop Index Splitting Pass ---------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file was developed by Devang Patel and is distributed under
6// the University of Illinois Open Source License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file implements Loop Index Splitting Pass.
11//
12//===----------------------------------------------------------------------===//
13
14#define DEBUG_TYPE "loop-index-split"
15
Devang Patelbc5fe632007-08-07 00:25:56 +000016#include "llvm/Transforms/Scalar.h"
17#include "llvm/Analysis/LoopPass.h"
18#include "llvm/Analysis/ScalarEvolutionExpander.h"
Devang Patel95fd7172007-08-08 21:39:47 +000019#include "llvm/Analysis/Dominators.h"
Devang Patel901f67e2007-08-10 18:07:13 +000020#include "llvm/Transforms/Utils/BasicBlockUtils.h"
21#include "llvm/Transforms/Utils/Cloning.h"
Devang Patelbc5fe632007-08-07 00:25:56 +000022#include "llvm/Support/Compiler.h"
Devang Patelf4277122007-08-15 03:31:47 +000023#include "llvm/ADT/DepthFirstIterator.h"
Devang Patelbc5fe632007-08-07 00:25:56 +000024#include "llvm/ADT/Statistic.h"
25
26using namespace llvm;
27
28STATISTIC(NumIndexSplit, "Number of loops index split");
29
30namespace {
31
32 class VISIBILITY_HIDDEN LoopIndexSplit : public LoopPass {
33
34 public:
35 static char ID; // Pass ID, replacement for typeid
36 LoopIndexSplit() : LoopPass((intptr_t)&ID) {}
37
38 // Index split Loop L. Return true if loop is split.
39 bool runOnLoop(Loop *L, LPPassManager &LPM);
40
41 void getAnalysisUsage(AnalysisUsage &AU) const {
42 AU.addRequired<ScalarEvolution>();
43 AU.addPreserved<ScalarEvolution>();
44 AU.addRequiredID(LCSSAID);
45 AU.addPreservedID(LCSSAID);
Devang Patel901f67e2007-08-10 18:07:13 +000046 AU.addRequired<LoopInfo>();
Devang Patelbc5fe632007-08-07 00:25:56 +000047 AU.addPreserved<LoopInfo>();
48 AU.addRequiredID(LoopSimplifyID);
49 AU.addPreservedID(LoopSimplifyID);
Devang Patel0aaeb172007-08-08 22:25:28 +000050 AU.addRequired<DominatorTree>();
Devang Patelf4277122007-08-15 03:31:47 +000051 AU.addRequired<DominanceFrontier>();
Devang Patel95fd7172007-08-08 21:39:47 +000052 AU.addPreserved<DominatorTree>();
53 AU.addPreserved<DominanceFrontier>();
Devang Patelbc5fe632007-08-07 00:25:56 +000054 }
55
56 private:
Devang Patelc8dadbf2007-08-08 21:02:17 +000057
58 class SplitInfo {
59 public:
Devang Patel7f526a82007-08-24 06:17:19 +000060 SplitInfo() : SplitValue(NULL), SplitCondition(NULL),
Devang Pateledea5b32007-08-25 00:56:38 +000061 UseTrueBranchFirst(true), A_ExitValue(NULL),
62 B_StartValue(NULL) {}
Devang Patel2545f7b2007-08-09 01:39:01 +000063
Devang Patelc8dadbf2007-08-08 21:02:17 +000064 // Induction variable's range is split at this value.
65 Value *SplitValue;
66
Devang Patel5bc8a2c2007-09-11 00:12:56 +000067 // This instruction compares IndVar against SplitValue.
68 Instruction *SplitCondition;
Devang Patelc8dadbf2007-08-08 21:02:17 +000069
Devang Patel7f526a82007-08-24 06:17:19 +000070 // True if after loop index split, first loop will execute split condition's
71 // true branch.
72 bool UseTrueBranchFirst;
Devang Pateledea5b32007-08-25 00:56:38 +000073
74 // Exit value for first loop after loop split.
75 Value *A_ExitValue;
76
77 // Start value for second loop after loop split.
78 Value *B_StartValue;
79
Devang Patel31696332007-08-08 21:18:27 +000080 // Clear split info.
81 void clear() {
Devang Patel31696332007-08-08 21:18:27 +000082 SplitValue = NULL;
Devang Patel31696332007-08-08 21:18:27 +000083 SplitCondition = NULL;
Devang Patel7f526a82007-08-24 06:17:19 +000084 UseTrueBranchFirst = true;
Devang Pateledea5b32007-08-25 00:56:38 +000085 A_ExitValue = NULL;
86 B_StartValue = NULL;
Devang Patel31696332007-08-08 21:18:27 +000087 }
Devang Patel2545f7b2007-08-09 01:39:01 +000088
Devang Patelc8dadbf2007-08-08 21:02:17 +000089 };
Devang Patel61571ca2007-08-10 00:33:50 +000090
Devang Patelc8dadbf2007-08-08 21:02:17 +000091 private:
Devang Patel12564292007-09-11 00:42:56 +000092
93 // safeIcmpInst - CI is considered safe instruction if one of the operand
94 // is SCEVAddRecExpr based on induction variable and other operand is
95 // loop invariant. If CI is safe then populate SplitInfo object SD appropriately
96 // and return true;
97 bool safeICmpInst(ICmpInst *CI, SplitInfo &SD);
98
Devang Patelbc5fe632007-08-07 00:25:56 +000099 /// Find condition inside a loop that is suitable candidate for index split.
100 void findSplitCondition();
101
Devang Patel61571ca2007-08-10 00:33:50 +0000102 /// Find loop's exit condition.
103 void findLoopConditionals();
104
105 /// Return induction variable associated with value V.
106 void findIndVar(Value *V, Loop *L);
107
Devang Patelbc5fe632007-08-07 00:25:56 +0000108 /// processOneIterationLoop - Current loop L contains compare instruction
109 /// that compares induction variable, IndVar, agains loop invariant. If
110 /// entire (i.e. meaningful) loop body is dominated by this compare
111 /// instruction then loop body is executed only for one iteration. In
112 /// such case eliminate loop structure surrounding this loop body. For
Devang Patel901f67e2007-08-10 18:07:13 +0000113 bool processOneIterationLoop(SplitInfo &SD);
Devang Patel4a8e6c62007-09-17 20:39:48 +0000114
115 void updateLoopBounds(ICmpInst *CI);
116 /// updateLoopIterationSpace - Current loop body is covered by an AND
117 /// instruction whose operands compares induction variables with loop
118 /// invariants. If possible, hoist this check outside the loop by
119 /// updating appropriate start and end values for induction variable.
120 bool updateLoopIterationSpace(SplitInfo &SD);
121
Devang Patel0aaeb172007-08-08 22:25:28 +0000122 /// If loop header includes loop variant instruction operands then
123 /// this loop may not be eliminated.
Devang Patelc8dadbf2007-08-08 21:02:17 +0000124 bool safeHeader(SplitInfo &SD, BasicBlock *BB);
Devang Patelbc5fe632007-08-07 00:25:56 +0000125
Devang Patel9263fc32007-08-20 23:51:18 +0000126 /// If Exiting block includes loop variant instructions then this
Devang Patel0aaeb172007-08-08 22:25:28 +0000127 /// loop may not be eliminated.
Devang Patel9263fc32007-08-20 23:51:18 +0000128 bool safeExitingBlock(SplitInfo &SD, BasicBlock *BB);
Devang Patelbc5fe632007-08-07 00:25:56 +0000129
Devang Patel60a94c72007-08-14 18:35:57 +0000130 /// removeBlocks - Remove basic block DeadBB and all blocks dominated by DeadBB.
131 /// This routine is used to remove split condition's dead branch, dominated by
132 /// DeadBB. LiveBB dominates split conidition's other branch.
133 void removeBlocks(BasicBlock *DeadBB, Loop *LP, BasicBlock *LiveBB);
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000134
Devang Pateld662ace2007-08-22 18:27:01 +0000135 /// safeSplitCondition - Return true if it is possible to
136 /// split loop using given split condition.
137 bool safeSplitCondition(SplitInfo &SD);
138
Devang Pateledea5b32007-08-25 00:56:38 +0000139 /// calculateLoopBounds - ALoop exit value and BLoop start values are calculated
140 /// based on split value.
141 void calculateLoopBounds(SplitInfo &SD);
142
Devang Patelcd71bed2007-08-25 02:39:24 +0000143 /// updatePHINodes - CFG has been changed.
144 /// Before
145 /// - ExitBB's single predecessor was Latch
146 /// - Latch's second successor was Header
147 /// Now
148 /// - ExitBB's single predecessor was Header
149 /// - Latch's one and only successor was Header
150 ///
151 /// Update ExitBB PHINodes' to reflect this change.
152 void updatePHINodes(BasicBlock *ExitBB, BasicBlock *Latch,
153 BasicBlock *Header,
154 PHINode *IV, Instruction *IVIncrement);
155
156 /// moveExitCondition - Move exit condition EC into split condition block CondBB.
157 void moveExitCondition(BasicBlock *CondBB, BasicBlock *ActiveBB,
158 BasicBlock *ExitBB, ICmpInst *EC, ICmpInst *SC,
159 PHINode *IV, Instruction *IVAdd, Loop *LP);
160
Devang Pateld662ace2007-08-22 18:27:01 +0000161 /// splitLoop - Split current loop L in two loops using split information
162 /// SD. Update dominator information. Maintain LCSSA form.
Devang Patelc8dadbf2007-08-08 21:02:17 +0000163 bool splitLoop(SplitInfo &SD);
Devang Patelbc5fe632007-08-07 00:25:56 +0000164
Devang Patel61571ca2007-08-10 00:33:50 +0000165 void initialize() {
166 IndVar = NULL;
167 IndVarIncrement = NULL;
168 ExitCondition = NULL;
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000169 StartValue = NULL;
170 ExitValueNum = 0;
171 SplitData.clear();
Devang Patel61571ca2007-08-10 00:33:50 +0000172 }
173
Devang Patelbc5fe632007-08-07 00:25:56 +0000174 private:
175
176 // Current Loop.
177 Loop *L;
Devang Patel901f67e2007-08-10 18:07:13 +0000178 LPPassManager *LPM;
179 LoopInfo *LI;
Devang Patelbc5fe632007-08-07 00:25:56 +0000180 ScalarEvolution *SE;
Devang Patel0aaeb172007-08-08 22:25:28 +0000181 DominatorTree *DT;
Devang Patelb7639612007-08-13 22:13:24 +0000182 DominanceFrontier *DF;
Devang Patelc8dadbf2007-08-08 21:02:17 +0000183 SmallVector<SplitInfo, 4> SplitData;
Devang Patel61571ca2007-08-10 00:33:50 +0000184
185 // Induction variable whose range is being split by this transformation.
186 PHINode *IndVar;
187 Instruction *IndVarIncrement;
188
189 // Loop exit condition.
190 ICmpInst *ExitCondition;
191
192 // Induction variable's initial value.
193 Value *StartValue;
194
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000195 // Induction variable's final loop exit value operand number in exit condition..
196 unsigned ExitValueNum;
Devang Patelbc5fe632007-08-07 00:25:56 +0000197 };
198
199 char LoopIndexSplit::ID = 0;
200 RegisterPass<LoopIndexSplit> X ("loop-index-split", "Index Split Loops");
201}
202
203LoopPass *llvm::createLoopIndexSplitPass() {
204 return new LoopIndexSplit();
205}
206
207// Index split Loop L. Return true if loop is split.
Devang Patel901f67e2007-08-10 18:07:13 +0000208bool LoopIndexSplit::runOnLoop(Loop *IncomingLoop, LPPassManager &LPM_Ref) {
Devang Patelbc5fe632007-08-07 00:25:56 +0000209 bool Changed = false;
210 L = IncomingLoop;
Devang Patel901f67e2007-08-10 18:07:13 +0000211 LPM = &LPM_Ref;
Devang Patelc8dadbf2007-08-08 21:02:17 +0000212
Devang Patel81fcdfb2007-08-15 02:14:55 +0000213 // FIXME - Nested loops make dominator info updates tricky.
Devang Patel79276b32007-08-14 23:53:57 +0000214 if (!L->getSubLoops().empty())
215 return false;
216
Devang Patelbc5fe632007-08-07 00:25:56 +0000217 SE = &getAnalysis<ScalarEvolution>();
Devang Patel0aaeb172007-08-08 22:25:28 +0000218 DT = &getAnalysis<DominatorTree>();
Devang Patel901f67e2007-08-10 18:07:13 +0000219 LI = &getAnalysis<LoopInfo>();
Devang Patel2190f172007-08-15 03:34:53 +0000220 DF = &getAnalysis<DominanceFrontier>();
Devang Patelbc5fe632007-08-07 00:25:56 +0000221
Devang Patel61571ca2007-08-10 00:33:50 +0000222 initialize();
223
224 findLoopConditionals();
225
226 if (!ExitCondition)
227 return false;
228
Devang Patelbc5fe632007-08-07 00:25:56 +0000229 findSplitCondition();
230
Devang Patelc8dadbf2007-08-08 21:02:17 +0000231 if (SplitData.empty())
Devang Patelbc5fe632007-08-07 00:25:56 +0000232 return false;
233
Devang Patelc8dadbf2007-08-08 21:02:17 +0000234 // First see if it is possible to eliminate loop itself or not.
235 for (SmallVector<SplitInfo, 4>::iterator SI = SplitData.begin(),
Devang Patel49fbf5a2007-08-20 20:24:15 +0000236 E = SplitData.end(); SI != E;) {
Devang Patelc8dadbf2007-08-08 21:02:17 +0000237 SplitInfo &SD = *SI;
Devang Patel5bc8a2c2007-09-11 00:12:56 +0000238 ICmpInst *CI = dyn_cast<ICmpInst>(SD.SplitCondition);
Devang Patel4a8e6c62007-09-17 20:39:48 +0000239 if (SD.SplitCondition->getOpcode() == Instruction::And) {
240 Changed = updateLoopIterationSpace(SD);
241 if (Changed) {
242 ++NumIndexSplit;
243 // If is loop is eliminated then nothing else to do here.
244 return Changed;
245 } else {
246 SmallVector<SplitInfo, 4>::iterator Delete_SI = SI;
247 ++SI;
248 SplitData.erase(Delete_SI);
249 }
250 }
251 else if (CI && CI->getPredicate() == ICmpInst::ICMP_EQ) {
Devang Patel901f67e2007-08-10 18:07:13 +0000252 Changed = processOneIterationLoop(SD);
Devang Patelc8dadbf2007-08-08 21:02:17 +0000253 if (Changed) {
254 ++NumIndexSplit;
255 // If is loop is eliminated then nothing else to do here.
256 return Changed;
Devang Patel49fbf5a2007-08-20 20:24:15 +0000257 } else {
258 SmallVector<SplitInfo, 4>::iterator Delete_SI = SI;
259 ++SI;
260 SplitData.erase(Delete_SI);
Devang Patelc8dadbf2007-08-08 21:02:17 +0000261 }
Devang Patel49fbf5a2007-08-20 20:24:15 +0000262 } else
263 ++SI;
Devang Patelc8dadbf2007-08-08 21:02:17 +0000264 }
265
Devang Patel7f526a82007-08-24 06:17:19 +0000266 if (SplitData.empty())
267 return false;
268
Devang Patel0aaeb172007-08-08 22:25:28 +0000269 // Split most profitiable condition.
Devang Patel33085702007-08-24 05:21:13 +0000270 // FIXME : Implement cost analysis.
271 unsigned MostProfitableSDIndex = 0;
272 Changed = splitLoop(SplitData[MostProfitableSDIndex]);
Devang Patel0aaeb172007-08-08 22:25:28 +0000273
Devang Patelbc5fe632007-08-07 00:25:56 +0000274 if (Changed)
275 ++NumIndexSplit;
Devang Patelc8dadbf2007-08-08 21:02:17 +0000276
Devang Patelbc5fe632007-08-07 00:25:56 +0000277 return Changed;
278}
279
Devang Patel2545f7b2007-08-09 01:39:01 +0000280/// Return true if V is a induction variable or induction variable's
281/// increment for loop L.
Devang Patel61571ca2007-08-10 00:33:50 +0000282void LoopIndexSplit::findIndVar(Value *V, Loop *L) {
Devang Patel2545f7b2007-08-09 01:39:01 +0000283
284 Instruction *I = dyn_cast<Instruction>(V);
285 if (!I)
Devang Patel61571ca2007-08-10 00:33:50 +0000286 return;
Devang Patel2545f7b2007-08-09 01:39:01 +0000287
288 // Check if I is a phi node from loop header or not.
289 if (PHINode *PN = dyn_cast<PHINode>(V)) {
290 if (PN->getParent() == L->getHeader()) {
Devang Patel61571ca2007-08-10 00:33:50 +0000291 IndVar = PN;
292 return;
Devang Patel2545f7b2007-08-09 01:39:01 +0000293 }
294 }
295
296 // Check if I is a add instruction whose one operand is
297 // phi node from loop header and second operand is constant.
298 if (I->getOpcode() != Instruction::Add)
Devang Patel61571ca2007-08-10 00:33:50 +0000299 return;
Devang Patel2545f7b2007-08-09 01:39:01 +0000300
301 Value *Op0 = I->getOperand(0);
302 Value *Op1 = I->getOperand(1);
303
304 if (PHINode *PN = dyn_cast<PHINode>(Op0)) {
305 if (PN->getParent() == L->getHeader()
306 && isa<ConstantInt>(Op1)) {
307 IndVar = PN;
308 IndVarIncrement = I;
Devang Patel61571ca2007-08-10 00:33:50 +0000309 return;
Devang Patel2545f7b2007-08-09 01:39:01 +0000310 }
311 }
312
313 if (PHINode *PN = dyn_cast<PHINode>(Op1)) {
314 if (PN->getParent() == L->getHeader()
315 && isa<ConstantInt>(Op0)) {
316 IndVar = PN;
317 IndVarIncrement = I;
Devang Patel61571ca2007-08-10 00:33:50 +0000318 return;
Devang Patel2545f7b2007-08-09 01:39:01 +0000319 }
320 }
321
Devang Patel61571ca2007-08-10 00:33:50 +0000322 return;
323}
324
325// Find loop's exit condition and associated induction variable.
326void LoopIndexSplit::findLoopConditionals() {
327
Devang Patel9263fc32007-08-20 23:51:18 +0000328 BasicBlock *ExitingBlock = NULL;
Devang Patel61571ca2007-08-10 00:33:50 +0000329
330 for (Loop::block_iterator I = L->block_begin(), E = L->block_end();
331 I != E; ++I) {
332 BasicBlock *BB = *I;
333 if (!L->isLoopExit(BB))
334 continue;
Devang Patel9263fc32007-08-20 23:51:18 +0000335 if (ExitingBlock)
Devang Patel61571ca2007-08-10 00:33:50 +0000336 return;
Devang Patel9263fc32007-08-20 23:51:18 +0000337 ExitingBlock = BB;
Devang Patel61571ca2007-08-10 00:33:50 +0000338 }
339
Devang Patel9263fc32007-08-20 23:51:18 +0000340 if (!ExitingBlock)
Devang Patel61571ca2007-08-10 00:33:50 +0000341 return;
Devang Patel4e2075d2007-08-24 05:36:56 +0000342
343 // If exiting block is neither loop header nor loop latch then this loop is
344 // not suitable.
345 if (ExitingBlock != L->getHeader() && ExitingBlock != L->getLoopLatch())
346 return;
347
Devang Patel61571ca2007-08-10 00:33:50 +0000348 // If exit block's terminator is conditional branch inst then we have found
349 // exit condition.
Devang Patel9263fc32007-08-20 23:51:18 +0000350 BranchInst *BR = dyn_cast<BranchInst>(ExitingBlock->getTerminator());
Devang Patel61571ca2007-08-10 00:33:50 +0000351 if (!BR || BR->isUnconditional())
352 return;
353
354 ICmpInst *CI = dyn_cast<ICmpInst>(BR->getCondition());
355 if (!CI)
356 return;
Devang Pateledea5b32007-08-25 00:56:38 +0000357
Bill Wendlingd7bce7b2007-09-14 01:13:55 +0000358 // FIXME
Devang Pateledea5b32007-08-25 00:56:38 +0000359 if (CI->getPredicate() == ICmpInst::ICMP_SGT
360 || CI->getPredicate() == ICmpInst::ICMP_UGT
361 || CI->getPredicate() == ICmpInst::ICMP_SGE
Bill Wendlingd7bce7b2007-09-14 01:13:55 +0000362 || CI->getPredicate() == ICmpInst::ICMP_UGE
363 || CI->getPredicate() == ICmpInst::ICMP_EQ
364 || CI->getPredicate() == ICmpInst::ICMP_NE)
365 return;
Devang Pateledea5b32007-08-25 00:56:38 +0000366
Devang Patel61571ca2007-08-10 00:33:50 +0000367 ExitCondition = CI;
368
369 // Exit condition's one operand is loop invariant exit value and second
370 // operand is SCEVAddRecExpr based on induction variable.
371 Value *V0 = CI->getOperand(0);
372 Value *V1 = CI->getOperand(1);
373
374 SCEVHandle SH0 = SE->getSCEV(V0);
375 SCEVHandle SH1 = SE->getSCEV(V1);
376
377 if (SH0->isLoopInvariant(L) && isa<SCEVAddRecExpr>(SH1)) {
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000378 ExitValueNum = 0;
Devang Patel61571ca2007-08-10 00:33:50 +0000379 findIndVar(V1, L);
380 }
381 else if (SH1->isLoopInvariant(L) && isa<SCEVAddRecExpr>(SH0)) {
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000382 ExitValueNum = 1;
Devang Patel61571ca2007-08-10 00:33:50 +0000383 findIndVar(V0, L);
384 }
385
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000386 if (!IndVar)
Devang Patel61571ca2007-08-10 00:33:50 +0000387 ExitCondition = NULL;
388 else if (IndVar) {
389 BasicBlock *Preheader = L->getLoopPreheader();
390 StartValue = IndVar->getIncomingValueForBlock(Preheader);
391 }
Devang Patel2545f7b2007-08-09 01:39:01 +0000392}
393
Devang Patelbc5fe632007-08-07 00:25:56 +0000394/// Find condition inside a loop that is suitable candidate for index split.
395void LoopIndexSplit::findSplitCondition() {
396
Devang Patelc8dadbf2007-08-08 21:02:17 +0000397 SplitInfo SD;
Devang Patel2545f7b2007-08-09 01:39:01 +0000398 // Check all basic block's terminators.
Devang Patel2545f7b2007-08-09 01:39:01 +0000399 for (Loop::block_iterator I = L->block_begin(), E = L->block_end();
400 I != E; ++I) {
Devang Pateld18971d2007-09-11 00:23:56 +0000401 SD.clear();
Devang Patel2545f7b2007-08-09 01:39:01 +0000402 BasicBlock *BB = *I;
Devang Patelbc5fe632007-08-07 00:25:56 +0000403
Devang Patel2545f7b2007-08-09 01:39:01 +0000404 // If this basic block does not terminate in a conditional branch
405 // then terminator is not a suitable split condition.
406 BranchInst *BR = dyn_cast<BranchInst>(BB->getTerminator());
407 if (!BR)
408 continue;
409
410 if (BR->isUnconditional())
Devang Patelbc5fe632007-08-07 00:25:56 +0000411 continue;
412
Devang Patel4a8e6c62007-09-17 20:39:48 +0000413 if (Instruction *AndI = dyn_cast<Instruction>(BR->getCondition())) {
414 if (AndI->getOpcode() == Instruction::And) {
415 ICmpInst *Op0 = dyn_cast<ICmpInst>(AndI->getOperand(0));
416 ICmpInst *Op1 = dyn_cast<ICmpInst>(AndI->getOperand(1));
417
418 if (!Op0 || !Op1)
419 continue;
420
421 if (!safeICmpInst(Op0, SD))
422 continue;
423 SD.clear();
424 if (!safeICmpInst(Op1, SD))
425 continue;
426 SD.clear();
427 SD.SplitCondition = AndI;
428 SplitData.push_back(SD);
429 continue;
430 }
431 }
Devang Patel2545f7b2007-08-09 01:39:01 +0000432 ICmpInst *CI = dyn_cast<ICmpInst>(BR->getCondition());
Devang Patel61571ca2007-08-10 00:33:50 +0000433 if (!CI || CI == ExitCondition)
Devang Patel5c859bc2007-09-10 23:57:58 +0000434 continue;
Devang Patelbc5fe632007-08-07 00:25:56 +0000435
Devang Patelf6ccf6d2007-08-24 06:02:25 +0000436 if (CI->getPredicate() == ICmpInst::ICMP_NE)
Devang Patel5c859bc2007-09-10 23:57:58 +0000437 continue;
Devang Patelf6ccf6d2007-08-24 06:02:25 +0000438
Devang Patel7f526a82007-08-24 06:17:19 +0000439 // If split condition predicate is GT or GE then first execute
440 // false branch of split condition.
Devang Patela3a23f62007-09-11 01:10:45 +0000441 if (CI->getPredicate() == ICmpInst::ICMP_UGT
442 || CI->getPredicate() == ICmpInst::ICMP_SGT
443 || CI->getPredicate() == ICmpInst::ICMP_UGE
444 || CI->getPredicate() == ICmpInst::ICMP_SGE)
Devang Patel7f526a82007-08-24 06:17:19 +0000445 SD.UseTrueBranchFirst = false;
446
Devang Patel2545f7b2007-08-09 01:39:01 +0000447 // If one operand is loop invariant and second operand is SCEVAddRecExpr
448 // based on induction variable then CI is a candidate split condition.
Devang Patel12564292007-09-11 00:42:56 +0000449 if (safeICmpInst(CI, SD))
450 SplitData.push_back(SD);
451 }
452}
Devang Patel2545f7b2007-08-09 01:39:01 +0000453
Devang Patel12564292007-09-11 00:42:56 +0000454// safeIcmpInst - CI is considered safe instruction if one of the operand
455// is SCEVAddRecExpr based on induction variable and other operand is
456// loop invariant. If CI is safe then populate SplitInfo object SD appropriately
457// and return true;
458bool LoopIndexSplit::safeICmpInst(ICmpInst *CI, SplitInfo &SD) {
Devang Patel2545f7b2007-08-09 01:39:01 +0000459
Devang Patel12564292007-09-11 00:42:56 +0000460 Value *V0 = CI->getOperand(0);
461 Value *V1 = CI->getOperand(1);
462
463 SCEVHandle SH0 = SE->getSCEV(V0);
464 SCEVHandle SH1 = SE->getSCEV(V1);
465
466 if (SH0->isLoopInvariant(L) && isa<SCEVAddRecExpr>(SH1)) {
467 SD.SplitValue = V0;
468 SD.SplitCondition = CI;
469 if (PHINode *PN = dyn_cast<PHINode>(V1)) {
470 if (PN == IndVar)
471 return true;
Devang Patelbc5fe632007-08-07 00:25:56 +0000472 }
Devang Patel12564292007-09-11 00:42:56 +0000473 else if (Instruction *Insn = dyn_cast<Instruction>(V1)) {
474 if (IndVarIncrement && IndVarIncrement == Insn)
475 return true;
Devang Patelbc5fe632007-08-07 00:25:56 +0000476 }
477 }
Devang Patel12564292007-09-11 00:42:56 +0000478 else if (SH1->isLoopInvariant(L) && isa<SCEVAddRecExpr>(SH0)) {
479 SD.SplitValue = V1;
480 SD.SplitCondition = CI;
481 if (PHINode *PN = dyn_cast<PHINode>(V0)) {
482 if (PN == IndVar)
483 return true;
484 }
485 else if (Instruction *Insn = dyn_cast<Instruction>(V0)) {
486 if (IndVarIncrement && IndVarIncrement == Insn)
487 return true;
488 }
489 }
490
491 return false;
Devang Patelbc5fe632007-08-07 00:25:56 +0000492}
493
494/// processOneIterationLoop - Current loop L contains compare instruction
495/// that compares induction variable, IndVar, against loop invariant. If
496/// entire (i.e. meaningful) loop body is dominated by this compare
497/// instruction then loop body is executed only once. In such case eliminate
498/// loop structure surrounding this loop body. For example,
499/// for (int i = start; i < end; ++i) {
500/// if ( i == somevalue) {
501/// loop_body
502/// }
503/// }
504/// can be transformed into
505/// if (somevalue >= start && somevalue < end) {
506/// i = somevalue;
507/// loop_body
508/// }
Devang Patel901f67e2007-08-10 18:07:13 +0000509bool LoopIndexSplit::processOneIterationLoop(SplitInfo &SD) {
Devang Patelbc5fe632007-08-07 00:25:56 +0000510
511 BasicBlock *Header = L->getHeader();
512
513 // First of all, check if SplitCondition dominates entire loop body
514 // or not.
515
516 // If SplitCondition is not in loop header then this loop is not suitable
517 // for this transformation.
Devang Patelc8dadbf2007-08-08 21:02:17 +0000518 if (SD.SplitCondition->getParent() != Header)
Devang Patelbc5fe632007-08-07 00:25:56 +0000519 return false;
520
Devang Patelbc5fe632007-08-07 00:25:56 +0000521 // If loop header includes loop variant instruction operands then
522 // this loop may not be eliminated.
Devang Patelc8dadbf2007-08-08 21:02:17 +0000523 if (!safeHeader(SD, Header))
Devang Patelbc5fe632007-08-07 00:25:56 +0000524 return false;
525
Devang Patel9263fc32007-08-20 23:51:18 +0000526 // If Exiting block includes loop variant instructions then this
Devang Patelbc5fe632007-08-07 00:25:56 +0000527 // loop may not be eliminated.
Devang Patel9263fc32007-08-20 23:51:18 +0000528 if (!safeExitingBlock(SD, ExitCondition->getParent()))
Devang Patelbc5fe632007-08-07 00:25:56 +0000529 return false;
530
Devang Patel2bcb5012007-08-08 01:51:27 +0000531 // Update CFG.
532
Devang Patelc166b952007-08-20 20:49:01 +0000533 // Replace index variable with split value in loop body. Loop body is executed
534 // only when index variable is equal to split value.
535 IndVar->replaceAllUsesWith(SD.SplitValue);
536
537 // Remove Latch to Header edge.
Devang Patelbc5fe632007-08-07 00:25:56 +0000538 BasicBlock *Latch = L->getLoopLatch();
Devang Patel2bcb5012007-08-08 01:51:27 +0000539 BasicBlock *LatchSucc = NULL;
540 BranchInst *BR = dyn_cast<BranchInst>(Latch->getTerminator());
541 if (!BR)
542 return false;
543 Header->removePredecessor(Latch);
544 for (succ_iterator SI = succ_begin(Latch), E = succ_end(Latch);
545 SI != E; ++SI) {
546 if (Header != *SI)
547 LatchSucc = *SI;
548 }
549 BR->setUnconditionalDest(LatchSucc);
550
Devang Patelbc5fe632007-08-07 00:25:56 +0000551 Instruction *Terminator = Header->getTerminator();
Devang Patel59e0c062007-08-14 01:30:57 +0000552 Value *ExitValue = ExitCondition->getOperand(ExitValueNum);
Devang Patelbc5fe632007-08-07 00:25:56 +0000553
Devang Patelbc5fe632007-08-07 00:25:56 +0000554 // Replace split condition in header.
555 // Transform
556 // SplitCondition : icmp eq i32 IndVar, SplitValue
557 // into
558 // c1 = icmp uge i32 SplitValue, StartValue
Devang Patel5c859bc2007-09-10 23:57:58 +0000559 // c2 = icmp ult i32 SplitValue, ExitValue
Devang Patelbc5fe632007-08-07 00:25:56 +0000560 // and i32 c1, c2
Devang Patel61571ca2007-08-10 00:33:50 +0000561 bool SignedPredicate = ExitCondition->isSignedPredicate();
Devang Patelbc5fe632007-08-07 00:25:56 +0000562 Instruction *C1 = new ICmpInst(SignedPredicate ?
563 ICmpInst::ICMP_SGE : ICmpInst::ICMP_UGE,
Devang Patelc8dadbf2007-08-08 21:02:17 +0000564 SD.SplitValue, StartValue, "lisplit",
565 Terminator);
Devang Patelbc5fe632007-08-07 00:25:56 +0000566 Instruction *C2 = new ICmpInst(SignedPredicate ?
567 ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT,
Devang Patel59e0c062007-08-14 01:30:57 +0000568 SD.SplitValue, ExitValue, "lisplit",
Devang Patelc8dadbf2007-08-08 21:02:17 +0000569 Terminator);
570 Instruction *NSplitCond = BinaryOperator::createAnd(C1, C2, "lisplit",
571 Terminator);
572 SD.SplitCondition->replaceAllUsesWith(NSplitCond);
573 SD.SplitCondition->eraseFromParent();
Devang Patelbc5fe632007-08-07 00:25:56 +0000574
Devang Patelbc5fe632007-08-07 00:25:56 +0000575 // Now, clear latch block. Remove instructions that are responsible
576 // to increment induction variable.
577 Instruction *LTerminator = Latch->getTerminator();
578 for (BasicBlock::iterator LB = Latch->begin(), LE = Latch->end();
579 LB != LE; ) {
580 Instruction *I = LB;
581 ++LB;
582 if (isa<PHINode>(I) || I == LTerminator)
583 continue;
584
Devang Patel59e0c062007-08-14 01:30:57 +0000585 if (I == IndVarIncrement)
586 I->replaceAllUsesWith(ExitValue);
587 else
588 I->replaceAllUsesWith(UndefValue::get(I->getType()));
Devang Patel0d75c292007-08-07 17:45:35 +0000589 I->eraseFromParent();
Devang Patelbc5fe632007-08-07 00:25:56 +0000590 }
591
Devang Patel901f67e2007-08-10 18:07:13 +0000592 LPM->deleteLoopFromQueue(L);
Devang Patel95fd7172007-08-08 21:39:47 +0000593
594 // Update Dominator Info.
595 // Only CFG change done is to remove Latch to Header edge. This
596 // does not change dominator tree because Latch did not dominate
597 // Header.
Devang Patelb7639612007-08-13 22:13:24 +0000598 if (DF) {
Devang Patel95fd7172007-08-08 21:39:47 +0000599 DominanceFrontier::iterator HeaderDF = DF->find(Header);
600 if (HeaderDF != DF->end())
601 DF->removeFromFrontier(HeaderDF, Header);
602
603 DominanceFrontier::iterator LatchDF = DF->find(Latch);
604 if (LatchDF != DF->end())
605 DF->removeFromFrontier(LatchDF, Header);
606 }
Devang Patelbc5fe632007-08-07 00:25:56 +0000607 return true;
608}
609
610// If loop header includes loop variant instruction operands then
611// this loop can not be eliminated. This is used by processOneIterationLoop().
Devang Patelc8dadbf2007-08-08 21:02:17 +0000612bool LoopIndexSplit::safeHeader(SplitInfo &SD, BasicBlock *Header) {
Devang Patelbc5fe632007-08-07 00:25:56 +0000613
614 Instruction *Terminator = Header->getTerminator();
615 for(BasicBlock::iterator BI = Header->begin(), BE = Header->end();
616 BI != BE; ++BI) {
617 Instruction *I = BI;
618
Devang Patel59e0c062007-08-14 01:30:57 +0000619 // PHI Nodes are OK.
Devang Patelbc5fe632007-08-07 00:25:56 +0000620 if (isa<PHINode>(I))
621 continue;
622
623 // SplitCondition itself is OK.
Devang Patelc8dadbf2007-08-08 21:02:17 +0000624 if (I == SD.SplitCondition)
Devang Patel2bcb5012007-08-08 01:51:27 +0000625 continue;
Devang Patelbc5fe632007-08-07 00:25:56 +0000626
Devang Patel2545f7b2007-08-09 01:39:01 +0000627 // Induction variable is OK.
Devang Patel61571ca2007-08-10 00:33:50 +0000628 if (I == IndVar)
Devang Patel2545f7b2007-08-09 01:39:01 +0000629 continue;
630
631 // Induction variable increment is OK.
Devang Patel61571ca2007-08-10 00:33:50 +0000632 if (I == IndVarIncrement)
Devang Patel2545f7b2007-08-09 01:39:01 +0000633 continue;
634
Devang Patelbc5fe632007-08-07 00:25:56 +0000635 // Terminator is also harmless.
636 if (I == Terminator)
637 continue;
638
639 // Otherwise we have a instruction that may not be safe.
640 return false;
641 }
642
643 return true;
644}
645
Devang Patel9263fc32007-08-20 23:51:18 +0000646// If Exiting block includes loop variant instructions then this
Devang Patelbc5fe632007-08-07 00:25:56 +0000647// loop may not be eliminated. This is used by processOneIterationLoop().
Devang Patel9263fc32007-08-20 23:51:18 +0000648bool LoopIndexSplit::safeExitingBlock(SplitInfo &SD,
649 BasicBlock *ExitingBlock) {
Devang Patelbc5fe632007-08-07 00:25:56 +0000650
Devang Patel9263fc32007-08-20 23:51:18 +0000651 for (BasicBlock::iterator BI = ExitingBlock->begin(),
652 BE = ExitingBlock->end(); BI != BE; ++BI) {
Devang Patelbc5fe632007-08-07 00:25:56 +0000653 Instruction *I = BI;
654
Devang Patel59e0c062007-08-14 01:30:57 +0000655 // PHI Nodes are OK.
Devang Patelbc5fe632007-08-07 00:25:56 +0000656 if (isa<PHINode>(I))
657 continue;
658
Devang Patel2545f7b2007-08-09 01:39:01 +0000659 // Induction variable increment is OK.
Devang Patel61571ca2007-08-10 00:33:50 +0000660 if (IndVarIncrement && IndVarIncrement == I)
Devang Patel2545f7b2007-08-09 01:39:01 +0000661 continue;
Devang Patelbc5fe632007-08-07 00:25:56 +0000662
Devang Patel2545f7b2007-08-09 01:39:01 +0000663 // Check if I is induction variable increment instruction.
Devang Patel61571ca2007-08-10 00:33:50 +0000664 if (!IndVarIncrement && I->getOpcode() == Instruction::Add) {
Devang Patel2545f7b2007-08-09 01:39:01 +0000665
666 Value *Op0 = I->getOperand(0);
667 Value *Op1 = I->getOperand(1);
Devang Patelbc5fe632007-08-07 00:25:56 +0000668 PHINode *PN = NULL;
669 ConstantInt *CI = NULL;
670
671 if ((PN = dyn_cast<PHINode>(Op0))) {
672 if ((CI = dyn_cast<ConstantInt>(Op1)))
Devang Patel61571ca2007-08-10 00:33:50 +0000673 IndVarIncrement = I;
Devang Patelbc5fe632007-08-07 00:25:56 +0000674 } else
675 if ((PN = dyn_cast<PHINode>(Op1))) {
676 if ((CI = dyn_cast<ConstantInt>(Op0)))
Devang Patel61571ca2007-08-10 00:33:50 +0000677 IndVarIncrement = I;
Devang Patelbc5fe632007-08-07 00:25:56 +0000678 }
679
Devang Patel61571ca2007-08-10 00:33:50 +0000680 if (IndVarIncrement && PN == IndVar && CI->isOne())
Devang Patelbc5fe632007-08-07 00:25:56 +0000681 continue;
682 }
Devang Patel2bcb5012007-08-08 01:51:27 +0000683
Devang Patelbc5fe632007-08-07 00:25:56 +0000684 // I is an Exit condition if next instruction is block terminator.
685 // Exit condition is OK if it compares loop invariant exit value,
686 // which is checked below.
Devang Patel3719d4f2007-08-07 23:17:52 +0000687 else if (ICmpInst *EC = dyn_cast<ICmpInst>(I)) {
Devang Patel61571ca2007-08-10 00:33:50 +0000688 if (EC == ExitCondition)
Devang Patel2bcb5012007-08-08 01:51:27 +0000689 continue;
Devang Patelbc5fe632007-08-07 00:25:56 +0000690 }
691
Devang Patel9263fc32007-08-20 23:51:18 +0000692 if (I == ExitingBlock->getTerminator())
Devang Patel61571ca2007-08-10 00:33:50 +0000693 continue;
694
Devang Patelbc5fe632007-08-07 00:25:56 +0000695 // Otherwise we have instruction that may not be safe.
696 return false;
697 }
698
Devang Patel9263fc32007-08-20 23:51:18 +0000699 // We could not find any reason to consider ExitingBlock unsafe.
Devang Patelbc5fe632007-08-07 00:25:56 +0000700 return true;
701}
702
Devang Patel4a8e6c62007-09-17 20:39:48 +0000703void LoopIndexSplit::updateLoopBounds(ICmpInst *CI) {
704
705 Value *V0 = CI->getOperand(0);
706 Value *V1 = CI->getOperand(1);
707 Value *NV = NULL;
708
709 SCEVHandle SH0 = SE->getSCEV(V0);
710
711 if (SH0->isLoopInvariant(L))
712 NV = V0;
713 else
714 NV = V1;
715
716 switch (CI->getPredicate()) {
717 case ICmpInst::ICMP_ULE:
718 case ICmpInst::ICMP_SLE:
719 // for (i = LB; i < UB; ++i)
720 // if (i <= NV && ...)
721 // LOOP_BODY
722 //
723 // is transformed into
724 // NUB = min (NV+1, UB)
725 // for (i = LB; i < NUB ; ++i)
726 // LOOP_BODY
727 //
728
729
730
731 // for (i = LB; i <= UB; ++i)
732 // if (i <= NV && ...)
733 // LOOP_BODY
734 //
735 // is transformed into
736 // NUB = min (NV, UB)
737 // for (i = LB; i <= NUB ; ++i)
738 // LOOP_BODY
739 //
740 break;
741 case ICmpInst::ICMP_ULT:
742 case ICmpInst::ICMP_SLT:
743 // for (i = LB; i < UB; ++i)
744 // if (i < NV && ...)
745 // LOOP_BODY
746 //
747 // is transformed into
748 // NUB = min (NV, UB)
749 // for (i = LB; i < NUB ; ++i)
750 // LOOP_BODY
751 //
752
753
754
755 // for (i = LB; i <= UB; ++i)
756 // if (i < NV && ...)
757 // LOOP_BODY
758 //
759 // is transformed into
760 // NUB = min (NV -1 , UB)
761 // for (i = LB; i <= NUB ; ++i)
762 // LOOP_BODY
763 //
764 break;
765 case ICmpInst::ICMP_UGE:
766 case ICmpInst::ICMP_SGE:
767 // for (i = LB; i (< or <=) UB; ++i)
768 // if (i >= NV && ...)
769 // LOOP_BODY
770 //
771 // is transformed into
772 // NLB = max (NV, LB)
773 // for (i = NLB; i (< or <=) UB ; ++i)
774 // LOOP_BODY
775 //
776 break;
777 case ICmpInst::ICMP_UGT:
778 case ICmpInst::ICMP_SGT:
779 // for (i = LB; i (< or <=) UB; ++i)
780 // if (i > NV && ...)
781 // LOOP_BODY
782 //
783 // is transformed into
784 // NLB = max (NV+1, LB)
785 // for (i = NLB; i (< or <=) UB ; ++i)
786 // LOOP_BODY
787 //
788 break;
789 default:
790 assert ( 0 && "Unexpected split condition predicate");
791 }
792}
793/// updateLoopIterationSpace - Current loop body is covered by an AND
794/// instruction whose operands compares induction variables with loop
795/// invariants. If possible, hoist this check outside the loop by
796/// updating appropriate start and end values for induction variable.
797bool LoopIndexSplit::updateLoopIterationSpace(SplitInfo &SD) {
798 BasicBlock *Header = L->getHeader();
799 ICmpInst *Op0 = cast<ICmpInst>(SD.SplitCondition->getOperand(0));
800 ICmpInst *Op1 = cast<ICmpInst>(SD.SplitCondition->getOperand(1));
801
802 if (Op0->getPredicate() == ICmpInst::ICMP_EQ
803 || Op0->getPredicate() == ICmpInst::ICMP_NE
804 || Op0->getPredicate() == ICmpInst::ICMP_EQ
805 || Op0->getPredicate() == ICmpInst::ICMP_NE)
806 return false;
807
808 // Check if SplitCondition dominates entire loop body
809 // or not.
810
811 // If SplitCondition is not in loop header then this loop is not suitable
812 // for this transformation.
813 if (SD.SplitCondition->getParent() != Header)
814 return false;
815
816 // If loop header includes loop variant instruction operands then
817 // this loop may not be eliminated.
818 Instruction *Terminator = Header->getTerminator();
819 for(BasicBlock::iterator BI = Header->begin(), BE = Header->end();
820 BI != BE; ++BI) {
821 Instruction *I = BI;
822
823 // PHI Nodes are OK.
824 if (isa<PHINode>(I))
825 continue;
826
827 // SplitCondition itself is OK.
828 if (I == SD.SplitCondition)
829 continue;
830 if (I == Op0 || I == Op1)
831 continue;
832
833 // Induction variable is OK.
834 if (I == IndVar)
835 continue;
836
837 // Induction variable increment is OK.
838 if (I == IndVarIncrement)
839 continue;
840
841 // Terminator is also harmless.
842 if (I == Terminator)
843 continue;
844
845 // Otherwise we have a instruction that may not be safe.
846 return false;
847 }
848
849 // If Exiting block includes loop variant instructions then this
850 // loop may not be eliminated.
851 if (!safeExitingBlock(SD, ExitCondition->getParent()))
852 return false;
853
854 updateLoopBounds(Op0);
855 updateLoopBounds(Op1);
856 // Update CFG
857 return true;
858}
859
860
Devang Patel60a94c72007-08-14 18:35:57 +0000861/// removeBlocks - Remove basic block DeadBB and all blocks dominated by DeadBB.
862/// This routine is used to remove split condition's dead branch, dominated by
863/// DeadBB. LiveBB dominates split conidition's other branch.
864void LoopIndexSplit::removeBlocks(BasicBlock *DeadBB, Loop *LP,
865 BasicBlock *LiveBB) {
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000866
Devang Patelf4277122007-08-15 03:31:47 +0000867 // First update DeadBB's dominance frontier.
Devang Patel9cee7a02007-08-17 21:59:16 +0000868 SmallVector<BasicBlock *, 8> FrontierBBs;
Devang Patelf4277122007-08-15 03:31:47 +0000869 DominanceFrontier::iterator DeadBBDF = DF->find(DeadBB);
870 if (DeadBBDF != DF->end()) {
871 SmallVector<BasicBlock *, 8> PredBlocks;
872
873 DominanceFrontier::DomSetType DeadBBSet = DeadBBDF->second;
874 for (DominanceFrontier::DomSetType::iterator DeadBBSetI = DeadBBSet.begin(),
875 DeadBBSetE = DeadBBSet.end(); DeadBBSetI != DeadBBSetE; ++DeadBBSetI) {
876 BasicBlock *FrontierBB = *DeadBBSetI;
Devang Patel9cee7a02007-08-17 21:59:16 +0000877 FrontierBBs.push_back(FrontierBB);
878
Devang Patelf4277122007-08-15 03:31:47 +0000879 // Rremove any PHI incoming edge from blocks dominated by DeadBB.
880 PredBlocks.clear();
881 for(pred_iterator PI = pred_begin(FrontierBB), PE = pred_end(FrontierBB);
882 PI != PE; ++PI) {
883 BasicBlock *P = *PI;
884 if (P == DeadBB || DT->dominates(DeadBB, P))
885 PredBlocks.push_back(P);
Devang Patelb7639612007-08-13 22:13:24 +0000886 }
Devang Patel9cee7a02007-08-17 21:59:16 +0000887
Devang Patelf4277122007-08-15 03:31:47 +0000888 for(BasicBlock::iterator FBI = FrontierBB->begin(), FBE = FrontierBB->end();
889 FBI != FBE; ++FBI) {
890 if (PHINode *PN = dyn_cast<PHINode>(FBI)) {
891 for(SmallVector<BasicBlock *, 8>::iterator PI = PredBlocks.begin(),
892 PE = PredBlocks.end(); PI != PE; ++PI) {
893 BasicBlock *P = *PI;
894 PN->removeIncomingValue(P);
895 }
896 }
897 else
898 break;
Devang Patel9cee7a02007-08-17 21:59:16 +0000899 }
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000900 }
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000901 }
Devang Patelf4277122007-08-15 03:31:47 +0000902
903 // Now remove DeadBB and all nodes dominated by DeadBB in df order.
904 SmallVector<BasicBlock *, 32> WorkList;
905 DomTreeNode *DN = DT->getNode(DeadBB);
906 for (df_iterator<DomTreeNode*> DI = df_begin(DN),
907 E = df_end(DN); DI != E; ++DI) {
908 BasicBlock *BB = DI->getBlock();
909 WorkList.push_back(BB);
Devang Patel9cee7a02007-08-17 21:59:16 +0000910 BB->replaceAllUsesWith(UndefValue::get(Type::LabelTy));
Devang Patelf4277122007-08-15 03:31:47 +0000911 }
912
913 while (!WorkList.empty()) {
914 BasicBlock *BB = WorkList.back(); WorkList.pop_back();
915 for(BasicBlock::iterator BBI = BB->begin(), BBE = BB->end();
916 BBI != BBE; ++BBI) {
917 Instruction *I = BBI;
918 I->replaceAllUsesWith(UndefValue::get(I->getType()));
919 I->eraseFromParent();
920 }
921 LPM->deleteSimpleAnalysisValue(BB, LP);
922 DT->eraseNode(BB);
923 DF->removeBlock(BB);
924 LI->removeBlock(BB);
925 BB->eraseFromParent();
926 }
Devang Patel9cee7a02007-08-17 21:59:16 +0000927
928 // Update Frontier BBs' dominator info.
929 while (!FrontierBBs.empty()) {
930 BasicBlock *FBB = FrontierBBs.back(); FrontierBBs.pop_back();
931 BasicBlock *NewDominator = FBB->getSinglePredecessor();
932 if (!NewDominator) {
933 pred_iterator PI = pred_begin(FBB), PE = pred_end(FBB);
934 NewDominator = *PI;
935 ++PI;
936 if (NewDominator != LiveBB) {
937 for(; PI != PE; ++PI) {
938 BasicBlock *P = *PI;
939 if (P == LiveBB) {
940 NewDominator = LiveBB;
941 break;
942 }
943 NewDominator = DT->findNearestCommonDominator(NewDominator, P);
944 }
945 }
946 }
947 assert (NewDominator && "Unable to fix dominator info.");
948 DT->changeImmediateDominator(FBB, NewDominator);
949 DF->changeImmediateDominator(FBB, NewDominator, DT);
950 }
951
Devang Patel6a2d6ef2007-08-12 07:02:51 +0000952}
953
Devang Pateld662ace2007-08-22 18:27:01 +0000954/// safeSplitCondition - Return true if it is possible to
955/// split loop using given split condition.
956bool LoopIndexSplit::safeSplitCondition(SplitInfo &SD) {
Devang Patelf824fb42007-08-10 00:53:35 +0000957
Devang Pateld662ace2007-08-22 18:27:01 +0000958 BasicBlock *SplitCondBlock = SD.SplitCondition->getParent();
Devang Patel2a24ff32007-08-21 21:12:02 +0000959
Devang Pateld662ace2007-08-22 18:27:01 +0000960 // Unable to handle triange loops at the moment.
Devang Patel81fcdfb2007-08-15 02:14:55 +0000961 // In triangle loop, split condition is in header and one of the
962 // the split destination is loop latch. If split condition is EQ
963 // then such loops are already handle in processOneIterationLoop().
Devang Pateld662ace2007-08-22 18:27:01 +0000964 BasicBlock *Latch = L->getLoopLatch();
965 BranchInst *SplitTerminator =
966 cast<BranchInst>(SplitCondBlock->getTerminator());
967 BasicBlock *Succ0 = SplitTerminator->getSuccessor(0);
968 BasicBlock *Succ1 = SplitTerminator->getSuccessor(1);
969 if (L->getHeader() == SplitCondBlock
970 && (Latch == Succ0 || Latch == Succ1))
Devang Patel81fcdfb2007-08-15 02:14:55 +0000971 return false;
Devang Patel2a24ff32007-08-21 21:12:02 +0000972
Devang Patelac7c7c22007-08-27 21:34:31 +0000973 // If split condition branches heads do not have single predecessor,
974 // SplitCondBlock, then is not possible to remove inactive branch.
975 if (!Succ0->getSinglePredecessor() || !Succ1->getSinglePredecessor())
Devang Patel9cee7a02007-08-17 21:59:16 +0000976 return false;
Devang Patel9cba64e2007-08-18 00:00:32 +0000977
Devang Patel4e2075d2007-08-24 05:36:56 +0000978 // Finally this split condition is safe only if merge point for
979 // split condition branch is loop latch. This check along with previous
980 // check, to ensure that exit condition is in either loop latch or header,
981 // filters all loops with non-empty loop body between merge point
982 // and exit condition.
983 DominanceFrontier::iterator Succ0DF = DF->find(Succ0);
984 assert (Succ0DF != DF->end() && "Unable to find Succ0 dominance frontier");
985 if (Succ0DF->second.count(Latch))
986 return true;
987
988 DominanceFrontier::iterator Succ1DF = DF->find(Succ1);
989 assert (Succ1DF != DF->end() && "Unable to find Succ1 dominance frontier");
990 if (Succ1DF->second.count(Latch))
991 return true;
992
993 return false;
Devang Pateld662ace2007-08-22 18:27:01 +0000994}
995
Devang Pateledea5b32007-08-25 00:56:38 +0000996/// calculateLoopBounds - ALoop exit value and BLoop start values are calculated
997/// based on split value.
998void LoopIndexSplit::calculateLoopBounds(SplitInfo &SD) {
999
Devang Patel5bc8a2c2007-09-11 00:12:56 +00001000 ICmpInst *SC = cast<ICmpInst>(SD.SplitCondition);
1001 ICmpInst::Predicate SP = SC->getPredicate();
Devang Pateledea5b32007-08-25 00:56:38 +00001002 const Type *Ty = SD.SplitValue->getType();
1003 bool Sign = ExitCondition->isSignedPredicate();
1004 BasicBlock *Preheader = L->getLoopPreheader();
1005 Instruction *PHTerminator = Preheader->getTerminator();
1006
1007 // Initially use split value as upper loop bound for first loop and lower loop
1008 // bound for second loop.
1009 Value *AEV = SD.SplitValue;
1010 Value *BSV = SD.SplitValue;
1011
1012 switch (ExitCondition->getPredicate()) {
1013 case ICmpInst::ICMP_SGT:
1014 case ICmpInst::ICMP_UGT:
1015 case ICmpInst::ICMP_SGE:
1016 case ICmpInst::ICMP_UGE:
1017 default:
1018 assert (0 && "Unexpected exit condition predicate");
1019
1020 case ICmpInst::ICMP_SLT:
1021 case ICmpInst::ICMP_ULT:
1022 {
1023 switch (SP) {
1024 case ICmpInst::ICMP_SLT:
1025 case ICmpInst::ICMP_ULT:
1026 //
1027 // for (i = LB; i < UB; ++i) { if (i < SV) A; else B; }
1028 //
1029 // is transformed into
1030 // AEV = BSV = SV
1031 // for (i = LB; i < min(UB, AEV); ++i)
1032 // A;
1033 // for (i = max(LB, BSV); i < UB; ++i);
1034 // B;
1035 break;
1036 case ICmpInst::ICMP_SLE:
1037 case ICmpInst::ICMP_ULE:
1038 {
1039 //
1040 // for (i = LB; i < UB; ++i) { if (i <= SV) A; else B; }
1041 //
1042 // is transformed into
1043 //
1044 // AEV = SV + 1
1045 // BSV = SV + 1
1046 // for (i = LB; i < min(UB, AEV); ++i)
1047 // A;
1048 // for (i = max(LB, BSV); i < UB; ++i)
1049 // B;
1050 BSV = BinaryOperator::createAdd(SD.SplitValue,
1051 ConstantInt::get(Ty, 1, Sign),
1052 "lsplit.add", PHTerminator);
1053 AEV = BSV;
1054 }
1055 break;
1056 case ICmpInst::ICMP_SGE:
1057 case ICmpInst::ICMP_UGE:
1058 //
1059 // for (i = LB; i < UB; ++i) { if (i >= SV) A; else B; }
1060 //
1061 // is transformed into
1062 // AEV = BSV = SV
1063 // for (i = LB; i < min(UB, AEV); ++i)
1064 // B;
1065 // for (i = max(BSV, LB); i < UB; ++i)
1066 // A;
1067 break;
1068 case ICmpInst::ICMP_SGT:
1069 case ICmpInst::ICMP_UGT:
1070 {
1071 //
1072 // for (i = LB; i < UB; ++i) { if (i > SV) A; else B; }
1073 //
1074 // is transformed into
1075 //
1076 // BSV = AEV = SV + 1
1077 // for (i = LB; i < min(UB, AEV); ++i)
1078 // B;
1079 // for (i = max(LB, BSV); i < UB; ++i)
1080 // A;
1081 BSV = BinaryOperator::createAdd(SD.SplitValue,
1082 ConstantInt::get(Ty, 1, Sign),
1083 "lsplit.add", PHTerminator);
1084 AEV = BSV;
1085 }
1086 break;
1087 default:
1088 assert (0 && "Unexpected split condition predicate");
1089 break;
1090 } // end switch (SP)
1091 }
1092 break;
1093 case ICmpInst::ICMP_SLE:
1094 case ICmpInst::ICMP_ULE:
1095 {
1096 switch (SP) {
1097 case ICmpInst::ICMP_SLT:
1098 case ICmpInst::ICMP_ULT:
1099 //
1100 // for (i = LB; i <= UB; ++i) { if (i < SV) A; else B; }
1101 //
1102 // is transformed into
1103 // AEV = SV - 1;
1104 // BSV = SV;
1105 // for (i = LB; i <= min(UB, AEV); ++i)
1106 // A;
1107 // for (i = max(LB, BSV); i <= UB; ++i)
1108 // B;
1109 AEV = BinaryOperator::createSub(SD.SplitValue,
1110 ConstantInt::get(Ty, 1, Sign),
1111 "lsplit.sub", PHTerminator);
1112 break;
1113 case ICmpInst::ICMP_SLE:
1114 case ICmpInst::ICMP_ULE:
1115 //
1116 // for (i = LB; i <= UB; ++i) { if (i <= SV) A; else B; }
1117 //
1118 // is transformed into
1119 // AEV = SV;
1120 // BSV = SV + 1;
1121 // for (i = LB; i <= min(UB, AEV); ++i)
1122 // A;
1123 // for (i = max(LB, BSV); i <= UB; ++i)
1124 // B;
1125 BSV = BinaryOperator::createAdd(SD.SplitValue,
1126 ConstantInt::get(Ty, 1, Sign),
1127 "lsplit.add", PHTerminator);
1128 break;
1129 case ICmpInst::ICMP_SGT:
1130 case ICmpInst::ICMP_UGT:
1131 //
1132 // for (i = LB; i <= UB; ++i) { if (i > SV) A; else B; }
1133 //
1134 // is transformed into
1135 // AEV = SV;
1136 // BSV = SV + 1;
1137 // for (i = LB; i <= min(AEV, UB); ++i)
1138 // B;
1139 // for (i = max(LB, BSV); i <= UB; ++i)
1140 // A;
1141 BSV = BinaryOperator::createAdd(SD.SplitValue,
1142 ConstantInt::get(Ty, 1, Sign),
1143 "lsplit.add", PHTerminator);
1144 break;
1145 case ICmpInst::ICMP_SGE:
1146 case ICmpInst::ICMP_UGE:
1147 // ** TODO **
1148 //
1149 // for (i = LB; i <= UB; ++i) { if (i >= SV) A; else B; }
1150 //
1151 // is transformed into
1152 // AEV = SV - 1;
1153 // BSV = SV;
1154 // for (i = LB; i <= min(AEV, UB); ++i)
1155 // B;
1156 // for (i = max(LB, BSV); i <= UB; ++i)
1157 // A;
1158 AEV = BinaryOperator::createSub(SD.SplitValue,
1159 ConstantInt::get(Ty, 1, Sign),
1160 "lsplit.sub", PHTerminator);
1161 break;
1162 default:
1163 assert (0 && "Unexpected split condition predicate");
1164 break;
1165 } // end switch (SP)
1166 }
1167 break;
1168 }
1169
1170 // Calculate ALoop induction variable's new exiting value and
1171 // BLoop induction variable's new starting value. Calculuate these
1172 // values in original loop's preheader.
1173 // A_ExitValue = min(SplitValue, OrignalLoopExitValue)
1174 // B_StartValue = max(SplitValue, OriginalLoopStartValue)
Devang Pateledea5b32007-08-25 00:56:38 +00001175 Value *C1 = new ICmpInst(Sign ?
1176 ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT,
1177 AEV,
1178 ExitCondition->getOperand(ExitValueNum),
1179 "lsplit.ev", PHTerminator);
1180 SD.A_ExitValue = new SelectInst(C1, AEV,
1181 ExitCondition->getOperand(ExitValueNum),
1182 "lsplit.ev", PHTerminator);
1183
1184 Value *C2 = new ICmpInst(Sign ?
1185 ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT,
1186 BSV, StartValue, "lsplit.sv",
1187 PHTerminator);
1188 SD.B_StartValue = new SelectInst(C2, StartValue, BSV,
1189 "lsplit.sv", PHTerminator);
1190}
1191
Devang Pateld662ace2007-08-22 18:27:01 +00001192/// splitLoop - Split current loop L in two loops using split information
1193/// SD. Update dominator information. Maintain LCSSA form.
1194bool LoopIndexSplit::splitLoop(SplitInfo &SD) {
1195
1196 if (!safeSplitCondition(SD))
1197 return false;
1198
Devang Patela0ac7262007-08-22 19:33:29 +00001199 // After loop is cloned there are two loops.
1200 //
1201 // First loop, referred as ALoop, executes first part of loop's iteration
1202 // space split. Second loop, referred as BLoop, executes remaining
1203 // part of loop's iteration space.
1204 //
1205 // ALoop's exit edge enters BLoop's header through a forwarding block which
1206 // acts as a BLoop's preheader.
Devang Pateledea5b32007-08-25 00:56:38 +00001207 BasicBlock *Preheader = L->getLoopPreheader();
Devang Pateld662ace2007-08-22 18:27:01 +00001208
Devang Pateledea5b32007-08-25 00:56:38 +00001209 // Calculate ALoop induction variable's new exiting value and
1210 // BLoop induction variable's new starting value.
1211 calculateLoopBounds(SD);
Devang Patel901f67e2007-08-10 18:07:13 +00001212
Devang Patela0ac7262007-08-22 19:33:29 +00001213 //[*] Clone loop.
Devang Patel6a2d6ef2007-08-12 07:02:51 +00001214 DenseMap<const Value *, Value *> ValueMap;
Devang Patela0ac7262007-08-22 19:33:29 +00001215 Loop *BLoop = CloneLoop(L, LPM, LI, ValueMap, this);
Devang Patelcd71bed2007-08-25 02:39:24 +00001216 Loop *ALoop = L;
Devang Patela0ac7262007-08-22 19:33:29 +00001217 BasicBlock *B_Header = BLoop->getHeader();
Devang Patel6a2d6ef2007-08-12 07:02:51 +00001218
Devang Patela0ac7262007-08-22 19:33:29 +00001219 //[*] ALoop's exiting edge BLoop's header.
1220 // ALoop's original exit block becomes BLoop's exit block.
1221 PHINode *B_IndVar = cast<PHINode>(ValueMap[IndVar]);
1222 BasicBlock *A_ExitingBlock = ExitCondition->getParent();
1223 BranchInst *A_ExitInsn =
1224 dyn_cast<BranchInst>(A_ExitingBlock->getTerminator());
1225 assert (A_ExitInsn && "Unable to find suitable loop exit branch");
1226 BasicBlock *B_ExitBlock = A_ExitInsn->getSuccessor(1);
1227 if (L->contains(B_ExitBlock)) {
1228 B_ExitBlock = A_ExitInsn->getSuccessor(0);
1229 A_ExitInsn->setSuccessor(0, B_Header);
Devang Patel59e0c062007-08-14 01:30:57 +00001230 } else
Devang Patela0ac7262007-08-22 19:33:29 +00001231 A_ExitInsn->setSuccessor(1, B_Header);
1232
1233 //[*] Update ALoop's exit value using new exit value.
Devang Pateledea5b32007-08-25 00:56:38 +00001234 ExitCondition->setOperand(ExitValueNum, SD.A_ExitValue);
Devang Patel2a24ff32007-08-21 21:12:02 +00001235
Devang Patela0ac7262007-08-22 19:33:29 +00001236 // [*] Update BLoop's header phi nodes. Remove incoming PHINode's from
1237 // original loop's preheader. Add incoming PHINode values from
1238 // ALoop's exiting block. Update BLoop header's domiantor info.
1239
Devang Patel59e0c062007-08-14 01:30:57 +00001240 // Collect inverse map of Header PHINodes.
1241 DenseMap<Value *, Value *> InverseMap;
1242 for (BasicBlock::iterator BI = L->getHeader()->begin(),
1243 BE = L->getHeader()->end(); BI != BE; ++BI) {
1244 if (PHINode *PN = dyn_cast<PHINode>(BI)) {
1245 PHINode *PNClone = cast<PHINode>(ValueMap[PN]);
1246 InverseMap[PNClone] = PN;
1247 } else
1248 break;
1249 }
Devang Pateledea5b32007-08-25 00:56:38 +00001250
Devang Patela0ac7262007-08-22 19:33:29 +00001251 for (BasicBlock::iterator BI = B_Header->begin(), BE = B_Header->end();
Devang Patel6a2d6ef2007-08-12 07:02:51 +00001252 BI != BE; ++BI) {
1253 if (PHINode *PN = dyn_cast<PHINode>(BI)) {
Devang Patela0ac7262007-08-22 19:33:29 +00001254 // Remove incoming value from original preheader.
1255 PN->removeIncomingValue(Preheader);
1256
1257 // Add incoming value from A_ExitingBlock.
1258 if (PN == B_IndVar)
Devang Pateledea5b32007-08-25 00:56:38 +00001259 PN->addIncoming(SD.B_StartValue, A_ExitingBlock);
Devang Patel59e0c062007-08-14 01:30:57 +00001260 else {
1261 PHINode *OrigPN = cast<PHINode>(InverseMap[PN]);
Devang Patela0ac7262007-08-22 19:33:29 +00001262 Value *V2 = OrigPN->getIncomingValueForBlock(A_ExitingBlock);
1263 PN->addIncoming(V2, A_ExitingBlock);
Devang Patel59e0c062007-08-14 01:30:57 +00001264 }
1265 } else
Devang Patel6a2d6ef2007-08-12 07:02:51 +00001266 break;
1267 }
Devang Patela0ac7262007-08-22 19:33:29 +00001268 DT->changeImmediateDominator(B_Header, A_ExitingBlock);
1269 DF->changeImmediateDominator(B_Header, A_ExitingBlock, DT);
Devang Patel2a24ff32007-08-21 21:12:02 +00001270
Devang Patela0ac7262007-08-22 19:33:29 +00001271 // [*] Update BLoop's exit block. Its new predecessor is BLoop's exit
1272 // block. Remove incoming PHINode values from ALoop's exiting block.
1273 // Add new incoming values from BLoop's incoming exiting value.
1274 // Update BLoop exit block's dominator info..
1275 BasicBlock *B_ExitingBlock = cast<BasicBlock>(ValueMap[A_ExitingBlock]);
1276 for (BasicBlock::iterator BI = B_ExitBlock->begin(), BE = B_ExitBlock->end();
Devang Patel59e0c062007-08-14 01:30:57 +00001277 BI != BE; ++BI) {
1278 if (PHINode *PN = dyn_cast<PHINode>(BI)) {
Devang Patela0ac7262007-08-22 19:33:29 +00001279 PN->addIncoming(ValueMap[PN->getIncomingValueForBlock(A_ExitingBlock)],
1280 B_ExitingBlock);
1281 PN->removeIncomingValue(A_ExitingBlock);
Devang Patel59e0c062007-08-14 01:30:57 +00001282 } else
1283 break;
1284 }
Devang Patel6a2d6ef2007-08-12 07:02:51 +00001285
Devang Patela0ac7262007-08-22 19:33:29 +00001286 DT->changeImmediateDominator(B_ExitBlock, B_ExitingBlock);
1287 DF->changeImmediateDominator(B_ExitBlock, B_ExitingBlock, DT);
Devang Patelb7639612007-08-13 22:13:24 +00001288
Devang Patela0ac7262007-08-22 19:33:29 +00001289 //[*] Split ALoop's exit edge. This creates a new block which
1290 // serves two purposes. First one is to hold PHINode defnitions
1291 // to ensure that ALoop's LCSSA form. Second use it to act
1292 // as a preheader for BLoop.
1293 BasicBlock *A_ExitBlock = SplitEdge(A_ExitingBlock, B_Header, this);
Devang Patel901f67e2007-08-10 18:07:13 +00001294
Devang Patela0ac7262007-08-22 19:33:29 +00001295 //[*] Preserve ALoop's LCSSA form. Create new forwarding PHINodes
1296 // in A_ExitBlock to redefine outgoing PHI definitions from ALoop.
1297 for(BasicBlock::iterator BI = B_Header->begin(), BE = B_Header->end();
Devang Patel7ef89b82007-08-21 19:47:46 +00001298 BI != BE; ++BI) {
1299 if (PHINode *PN = dyn_cast<PHINode>(BI)) {
Devang Patela0ac7262007-08-22 19:33:29 +00001300 Value *V1 = PN->getIncomingValueForBlock(A_ExitBlock);
Devang Patel7ef89b82007-08-21 19:47:46 +00001301 PHINode *newPHI = new PHINode(PN->getType(), PN->getName());
Devang Patela0ac7262007-08-22 19:33:29 +00001302 newPHI->addIncoming(V1, A_ExitingBlock);
1303 A_ExitBlock->getInstList().push_front(newPHI);
1304 PN->removeIncomingValue(A_ExitBlock);
1305 PN->addIncoming(newPHI, A_ExitBlock);
Devang Patel7ef89b82007-08-21 19:47:46 +00001306 } else
1307 break;
1308 }
1309
Devang Patela0ac7262007-08-22 19:33:29 +00001310 //[*] Eliminate split condition's inactive branch from ALoop.
1311 BasicBlock *A_SplitCondBlock = SD.SplitCondition->getParent();
1312 BranchInst *A_BR = cast<BranchInst>(A_SplitCondBlock->getTerminator());
Devang Patel7f526a82007-08-24 06:17:19 +00001313 BasicBlock *A_InactiveBranch = NULL;
1314 BasicBlock *A_ActiveBranch = NULL;
1315 if (SD.UseTrueBranchFirst) {
1316 A_ActiveBranch = A_BR->getSuccessor(0);
1317 A_InactiveBranch = A_BR->getSuccessor(1);
1318 } else {
1319 A_ActiveBranch = A_BR->getSuccessor(1);
1320 A_InactiveBranch = A_BR->getSuccessor(0);
1321 }
Devang Patel4e585c72007-08-24 19:32:26 +00001322 A_BR->setUnconditionalDest(A_ActiveBranch);
Devang Patela0ac7262007-08-22 19:33:29 +00001323 removeBlocks(A_InactiveBranch, L, A_ActiveBranch);
1324
1325 //[*] Eliminate split condition's inactive branch in from BLoop.
1326 BasicBlock *B_SplitCondBlock = cast<BasicBlock>(ValueMap[A_SplitCondBlock]);
1327 BranchInst *B_BR = cast<BranchInst>(B_SplitCondBlock->getTerminator());
Devang Patel7f526a82007-08-24 06:17:19 +00001328 BasicBlock *B_InactiveBranch = NULL;
1329 BasicBlock *B_ActiveBranch = NULL;
1330 if (SD.UseTrueBranchFirst) {
1331 B_ActiveBranch = B_BR->getSuccessor(1);
1332 B_InactiveBranch = B_BR->getSuccessor(0);
1333 } else {
1334 B_ActiveBranch = B_BR->getSuccessor(0);
1335 B_InactiveBranch = B_BR->getSuccessor(1);
1336 }
Devang Patel4e585c72007-08-24 19:32:26 +00001337 B_BR->setUnconditionalDest(B_ActiveBranch);
Devang Patela0ac7262007-08-22 19:33:29 +00001338 removeBlocks(B_InactiveBranch, BLoop, B_ActiveBranch);
1339
Devang Patelcd71bed2007-08-25 02:39:24 +00001340 BasicBlock *A_Header = L->getHeader();
1341 if (A_ExitingBlock == A_Header)
1342 return true;
1343
1344 //[*] Move exit condition into split condition block to avoid
1345 // executing dead loop iteration.
1346 ICmpInst *B_ExitCondition = cast<ICmpInst>(ValueMap[ExitCondition]);
1347 Instruction *B_IndVarIncrement = cast<Instruction>(ValueMap[IndVarIncrement]);
1348 ICmpInst *B_SplitCondition = cast<ICmpInst>(ValueMap[SD.SplitCondition]);
1349
1350 moveExitCondition(A_SplitCondBlock, A_ActiveBranch, A_ExitBlock, ExitCondition,
Devang Patel5bc8a2c2007-09-11 00:12:56 +00001351 cast<ICmpInst>(SD.SplitCondition), IndVar, IndVarIncrement,
1352 ALoop);
Devang Patelcd71bed2007-08-25 02:39:24 +00001353
1354 moveExitCondition(B_SplitCondBlock, B_ActiveBranch, B_ExitBlock, B_ExitCondition,
1355 B_SplitCondition, B_IndVar, B_IndVarIncrement, BLoop);
1356
Devang Patel6a2d6ef2007-08-12 07:02:51 +00001357 return true;
Devang Patelbc5fe632007-08-07 00:25:56 +00001358}
Devang Patelcd71bed2007-08-25 02:39:24 +00001359
1360// moveExitCondition - Move exit condition EC into split condition block CondBB.
1361void LoopIndexSplit::moveExitCondition(BasicBlock *CondBB, BasicBlock *ActiveBB,
1362 BasicBlock *ExitBB, ICmpInst *EC, ICmpInst *SC,
1363 PHINode *IV, Instruction *IVAdd, Loop *LP) {
1364
1365 BasicBlock *ExitingBB = EC->getParent();
1366 Instruction *CurrentBR = CondBB->getTerminator();
1367
1368 // Move exit condition into split condition block.
1369 EC->moveBefore(CurrentBR);
1370 EC->setOperand(ExitValueNum == 0 ? 1 : 0, IV);
1371
1372 // Move exiting block's branch into split condition block. Update its branch
1373 // destination.
1374 BranchInst *ExitingBR = cast<BranchInst>(ExitingBB->getTerminator());
1375 ExitingBR->moveBefore(CurrentBR);
1376 if (ExitingBR->getSuccessor(0) == ExitBB)
1377 ExitingBR->setSuccessor(1, ActiveBB);
1378 else
1379 ExitingBR->setSuccessor(0, ActiveBB);
1380
1381 // Remove split condition and current split condition branch.
1382 SC->eraseFromParent();
1383 CurrentBR->eraseFromParent();
1384
1385 // Connect exiting block to split condition block.
1386 new BranchInst(CondBB, ExitingBB);
1387
1388 // Update PHINodes
1389 updatePHINodes(ExitBB, ExitingBB, CondBB, IV, IVAdd);
1390
1391 // Fix dominator info.
1392 // ExitBB is now dominated by CondBB
1393 DT->changeImmediateDominator(ExitBB, CondBB);
1394 DF->changeImmediateDominator(ExitBB, CondBB, DT);
1395
1396 // Basicblocks dominated by ActiveBB may have ExitingBB or
1397 // a basic block outside the loop in their DF list. If so,
1398 // replace it with CondBB.
1399 DomTreeNode *Node = DT->getNode(ActiveBB);
1400 for (df_iterator<DomTreeNode *> DI = df_begin(Node), DE = df_end(Node);
1401 DI != DE; ++DI) {
1402 BasicBlock *BB = DI->getBlock();
1403 DominanceFrontier::iterator BBDF = DF->find(BB);
1404 DominanceFrontier::DomSetType::iterator DomSetI = BBDF->second.begin();
1405 DominanceFrontier::DomSetType::iterator DomSetE = BBDF->second.end();
1406 while (DomSetI != DomSetE) {
1407 DominanceFrontier::DomSetType::iterator CurrentItr = DomSetI;
1408 ++DomSetI;
1409 BasicBlock *DFBB = *CurrentItr;
1410 if (DFBB == ExitingBB || !L->contains(DFBB)) {
1411 BBDF->second.erase(DFBB);
1412 BBDF->second.insert(CondBB);
1413 }
1414 }
1415 }
1416}
1417
1418/// updatePHINodes - CFG has been changed.
1419/// Before
1420/// - ExitBB's single predecessor was Latch
1421/// - Latch's second successor was Header
1422/// Now
1423/// - ExitBB's single predecessor was Header
1424/// - Latch's one and only successor was Header
1425///
1426/// Update ExitBB PHINodes' to reflect this change.
1427void LoopIndexSplit::updatePHINodes(BasicBlock *ExitBB, BasicBlock *Latch,
1428 BasicBlock *Header,
1429 PHINode *IV, Instruction *IVIncrement) {
1430
1431 for (BasicBlock::iterator BI = ExitBB->begin(), BE = ExitBB->end();
1432 BI != BE; ++BI) {
1433 PHINode *PN = dyn_cast<PHINode>(BI);
1434 if (!PN)
1435 break;
1436
1437 Value *V = PN->getIncomingValueForBlock(Latch);
1438 if (PHINode *PHV = dyn_cast<PHINode>(V)) {
1439 // PHV is in Latch. PHV has two uses, one use is in ExitBB PHINode
1440 // (i.e. PN :)).
1441 // The second use is in Header and it is new incoming value for PN.
1442 PHINode *U1 = NULL;
1443 PHINode *U2 = NULL;
1444 Value *NewV = NULL;
1445 for (Value::use_iterator UI = PHV->use_begin(), E = PHV->use_end();
1446 UI != E; ++UI) {
1447 if (!U1)
1448 U1 = cast<PHINode>(*UI);
1449 else if (!U2)
1450 U2 = cast<PHINode>(*UI);
1451 else
1452 assert ( 0 && "Unexpected third use of this PHINode");
1453 }
1454 assert (U1 && U2 && "Unable to find two uses");
1455
1456 if (U1->getParent() == Header)
1457 NewV = U1;
1458 else
1459 NewV = U2;
1460 PN->addIncoming(NewV, Header);
1461
1462 } else if (Instruction *PHI = dyn_cast<Instruction>(V)) {
1463 // If this instruction is IVIncrement then IV is new incoming value
1464 // from header otherwise this instruction must be incoming value from
1465 // header because loop is in LCSSA form.
1466 if (PHI == IVIncrement)
1467 PN->addIncoming(IV, Header);
1468 else
1469 PN->addIncoming(V, Header);
1470 } else
1471 // Otherwise this is an incoming value from header because loop is in
1472 // LCSSA form.
1473 PN->addIncoming(V, Header);
1474
1475 // Remove incoming value from Latch.
1476 PN->removeIncomingValue(Latch);
1477 }
1478}