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Chris Lattner8383a7b2008-04-20 20:35:01 +00001//===- JumpThreading.cpp - Thread control through conditional blocks ------===//
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//
Chris Lattner177480b2008-04-20 21:13:06 +000010// This file implements the Jump Threading pass.
Chris Lattner8383a7b2008-04-20 20:35:01 +000011//
12//===----------------------------------------------------------------------===//
13
14#define DEBUG_TYPE "jump-threading"
15#include "llvm/Transforms/Scalar.h"
Chris Lattner177480b2008-04-20 21:13:06 +000016#include "llvm/IntrinsicInst.h"
Owen Anderson1ff50b32009-07-03 00:54:20 +000017#include "llvm/LLVMContext.h"
Chris Lattner8383a7b2008-04-20 20:35:01 +000018#include "llvm/Pass.h"
Chris Lattneref0c6742008-12-01 04:48:07 +000019#include "llvm/Analysis/ConstantFolding.h"
Chris Lattner2cc67512008-04-21 02:57:57 +000020#include "llvm/Transforms/Utils/BasicBlockUtils.h"
Chris Lattnerbd3401f2008-04-20 22:39:42 +000021#include "llvm/Transforms/Utils/Local.h"
Chris Lattner433a0db2009-10-10 09:05:58 +000022#include "llvm/Transforms/Utils/SSAUpdater.h"
Chris Lattneref0c6742008-12-01 04:48:07 +000023#include "llvm/Target/TargetData.h"
Mike Stumpfe095f32009-05-04 18:40:41 +000024#include "llvm/ADT/DenseMap.h"
25#include "llvm/ADT/Statistic.h"
26#include "llvm/ADT/STLExtras.h"
27#include "llvm/ADT/SmallPtrSet.h"
28#include "llvm/ADT/SmallSet.h"
Chris Lattner8383a7b2008-04-20 20:35:01 +000029#include "llvm/Support/CommandLine.h"
Chris Lattner177480b2008-04-20 21:13:06 +000030#include "llvm/Support/Debug.h"
Daniel Dunbar93b67e42009-07-26 07:49:05 +000031#include "llvm/Support/raw_ostream.h"
Chris Lattner8383a7b2008-04-20 20:35:01 +000032using namespace llvm;
33
Chris Lattnerbd3401f2008-04-20 22:39:42 +000034STATISTIC(NumThreads, "Number of jumps threaded");
35STATISTIC(NumFolds, "Number of terminators folded");
Chris Lattner78c552e2009-10-11 07:24:57 +000036STATISTIC(NumDupes, "Number of branch blocks duplicated to eliminate phi");
Chris Lattner8383a7b2008-04-20 20:35:01 +000037
Chris Lattner177480b2008-04-20 21:13:06 +000038static cl::opt<unsigned>
39Threshold("jump-threading-threshold",
40 cl::desc("Max block size to duplicate for jump threading"),
41 cl::init(6), cl::Hidden);
42
Chris Lattner8383a7b2008-04-20 20:35:01 +000043namespace {
Chris Lattner94019f82008-05-09 04:43:13 +000044 /// This pass performs 'jump threading', which looks at blocks that have
45 /// multiple predecessors and multiple successors. If one or more of the
46 /// predecessors of the block can be proven to always jump to one of the
47 /// successors, we forward the edge from the predecessor to the successor by
48 /// duplicating the contents of this block.
49 ///
50 /// An example of when this can occur is code like this:
51 ///
52 /// if () { ...
53 /// X = 4;
54 /// }
55 /// if (X < 3) {
56 ///
57 /// In this case, the unconditional branch at the end of the first if can be
58 /// revectored to the false side of the second if.
59 ///
Chris Lattner3e8b6632009-09-02 06:11:42 +000060 class JumpThreading : public FunctionPass {
Chris Lattneref0c6742008-12-01 04:48:07 +000061 TargetData *TD;
Mike Stumpfe095f32009-05-04 18:40:41 +000062#ifdef NDEBUG
63 SmallPtrSet<BasicBlock*, 16> LoopHeaders;
64#else
65 SmallSet<AssertingVH<BasicBlock>, 16> LoopHeaders;
66#endif
Chris Lattner8383a7b2008-04-20 20:35:01 +000067 public:
68 static char ID; // Pass identification
Dan Gohmanae73dc12008-09-04 17:05:41 +000069 JumpThreading() : FunctionPass(&ID) {}
Chris Lattner8383a7b2008-04-20 20:35:01 +000070
71 bool runOnFunction(Function &F);
Mike Stumpfe095f32009-05-04 18:40:41 +000072 void FindLoopHeaders(Function &F);
73
Chris Lattnerc7bcbf62008-11-27 07:20:04 +000074 bool ProcessBlock(BasicBlock *BB);
Chris Lattnerbdbf1a12009-10-11 04:33:43 +000075 bool ThreadEdge(BasicBlock *BB, BasicBlock *PredBB, BasicBlock *SuccBB);
Chris Lattner78c552e2009-10-11 07:24:57 +000076 bool DuplicateCondBranchOnPHIIntoPred(BasicBlock *BB,
77 BasicBlock *PredBB);
Nick Lewycky9683f182009-06-19 04:56:29 +000078 BasicBlock *FactorCommonPHIPreds(PHINode *PN, Value *Val);
Chris Lattner78567252009-11-06 18:15:14 +000079
80 typedef SmallVectorImpl<std::pair<ConstantInt*,
81 BasicBlock*> > PredValueInfo;
82
83 bool ComputeValueKnownInPredecessors(Value *V, BasicBlock *BB,
84 PredValueInfo &Result);
85 bool ProcessThreadableEdges(Instruction *CondInst, BasicBlock *BB);
86
87
Chris Lattner421fa9e2008-12-03 07:48:08 +000088 bool ProcessBranchOnDuplicateCond(BasicBlock *PredBB, BasicBlock *DestBB);
Chris Lattner3cda3cd2008-12-04 06:31:07 +000089 bool ProcessSwitchOnDuplicateCond(BasicBlock *PredBB, BasicBlock *DestBB);
Chris Lattner6bf77502008-04-22 07:05:46 +000090
Chris Lattnerd38c14e2008-04-22 06:36:15 +000091 bool ProcessJumpOnPHI(PHINode *PN);
Chris Lattnerae65b3c2008-04-22 20:46:09 +000092 bool ProcessBranchOnLogical(Value *V, BasicBlock *BB, bool isAnd);
Chris Lattnera5ddb592008-04-22 21:40:39 +000093 bool ProcessBranchOnCompare(CmpInst *Cmp, BasicBlock *BB);
Chris Lattner69e067f2008-11-27 05:07:53 +000094
95 bool SimplifyPartiallyRedundantLoad(LoadInst *LI);
Chris Lattner8383a7b2008-04-20 20:35:01 +000096 };
Chris Lattner8383a7b2008-04-20 20:35:01 +000097}
98
Dan Gohman844731a2008-05-13 00:00:25 +000099char JumpThreading::ID = 0;
100static RegisterPass<JumpThreading>
101X("jump-threading", "Jump Threading");
102
Chris Lattner8383a7b2008-04-20 20:35:01 +0000103// Public interface to the Jump Threading pass
104FunctionPass *llvm::createJumpThreadingPass() { return new JumpThreading(); }
105
106/// runOnFunction - Top level algorithm.
107///
108bool JumpThreading::runOnFunction(Function &F) {
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000109 DEBUG(errs() << "Jump threading on function '" << F.getName() << "'\n");
Dan Gohman02a436c2009-07-24 18:13:53 +0000110 TD = getAnalysisIfAvailable<TargetData>();
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000111
Mike Stumpfe095f32009-05-04 18:40:41 +0000112 FindLoopHeaders(F);
113
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000114 bool AnotherIteration = true, EverChanged = false;
115 while (AnotherIteration) {
116 AnotherIteration = false;
117 bool Changed = false;
Chris Lattner421fa9e2008-12-03 07:48:08 +0000118 for (Function::iterator I = F.begin(), E = F.end(); I != E;) {
119 BasicBlock *BB = I;
120 while (ProcessBlock(BB))
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000121 Changed = true;
Chris Lattner421fa9e2008-12-03 07:48:08 +0000122
123 ++I;
124
125 // If the block is trivially dead, zap it. This eliminates the successor
126 // edges which simplifies the CFG.
127 if (pred_begin(BB) == pred_end(BB) &&
Chris Lattner20fa76e2008-12-08 22:44:07 +0000128 BB != &BB->getParent()->getEntryBlock()) {
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000129 DEBUG(errs() << " JT: Deleting dead block '" << BB->getName()
Chris Lattner78c552e2009-10-11 07:24:57 +0000130 << "' with terminator: " << *BB->getTerminator() << '\n');
Mike Stumpfe095f32009-05-04 18:40:41 +0000131 LoopHeaders.erase(BB);
Chris Lattner421fa9e2008-12-03 07:48:08 +0000132 DeleteDeadBlock(BB);
133 Changed = true;
134 }
135 }
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000136 AnotherIteration = Changed;
137 EverChanged |= Changed;
138 }
Mike Stumpfe095f32009-05-04 18:40:41 +0000139
140 LoopHeaders.clear();
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000141 return EverChanged;
Chris Lattner8383a7b2008-04-20 20:35:01 +0000142}
Chris Lattner177480b2008-04-20 21:13:06 +0000143
Chris Lattner78c552e2009-10-11 07:24:57 +0000144/// getJumpThreadDuplicationCost - Return the cost of duplicating this block to
145/// thread across it.
146static unsigned getJumpThreadDuplicationCost(const BasicBlock *BB) {
147 /// Ignore PHI nodes, these will be flattened when duplication happens.
148 BasicBlock::const_iterator I = BB->getFirstNonPHI();
149
150 // Sum up the cost of each instruction until we get to the terminator. Don't
151 // include the terminator because the copy won't include it.
152 unsigned Size = 0;
153 for (; !isa<TerminatorInst>(I); ++I) {
154 // Debugger intrinsics don't incur code size.
155 if (isa<DbgInfoIntrinsic>(I)) continue;
156
157 // If this is a pointer->pointer bitcast, it is free.
158 if (isa<BitCastInst>(I) && isa<PointerType>(I->getType()))
159 continue;
160
161 // All other instructions count for at least one unit.
162 ++Size;
163
164 // Calls are more expensive. If they are non-intrinsic calls, we model them
165 // as having cost of 4. If they are a non-vector intrinsic, we model them
166 // as having cost of 2 total, and if they are a vector intrinsic, we model
167 // them as having cost 1.
168 if (const CallInst *CI = dyn_cast<CallInst>(I)) {
169 if (!isa<IntrinsicInst>(CI))
170 Size += 3;
171 else if (!isa<VectorType>(CI->getType()))
172 Size += 1;
173 }
174 }
175
176 // Threading through a switch statement is particularly profitable. If this
177 // block ends in a switch, decrease its cost to make it more likely to happen.
178 if (isa<SwitchInst>(I))
179 Size = Size > 6 ? Size-6 : 0;
180
181 return Size;
182}
183
184
185
Mike Stumpfe095f32009-05-04 18:40:41 +0000186/// FindLoopHeaders - We do not want jump threading to turn proper loop
187/// structures into irreducible loops. Doing this breaks up the loop nesting
188/// hierarchy and pessimizes later transformations. To prevent this from
189/// happening, we first have to find the loop headers. Here we approximate this
190/// by finding targets of backedges in the CFG.
191///
192/// Note that there definitely are cases when we want to allow threading of
193/// edges across a loop header. For example, threading a jump from outside the
194/// loop (the preheader) to an exit block of the loop is definitely profitable.
195/// It is also almost always profitable to thread backedges from within the loop
196/// to exit blocks, and is often profitable to thread backedges to other blocks
197/// within the loop (forming a nested loop). This simple analysis is not rich
198/// enough to track all of these properties and keep it up-to-date as the CFG
199/// mutates, so we don't allow any of these transformations.
200///
201void JumpThreading::FindLoopHeaders(Function &F) {
202 SmallVector<std::pair<const BasicBlock*,const BasicBlock*>, 32> Edges;
203 FindFunctionBackedges(F, Edges);
204
205 for (unsigned i = 0, e = Edges.size(); i != e; ++i)
206 LoopHeaders.insert(const_cast<BasicBlock*>(Edges[i].second));
207}
208
209
Chris Lattner6bf77502008-04-22 07:05:46 +0000210/// FactorCommonPHIPreds - If there are multiple preds with the same incoming
211/// value for the PHI, factor them together so we get one block to thread for
212/// the whole group.
213/// This is important for things like "phi i1 [true, true, false, true, x]"
214/// where we only need to clone the block for the true blocks once.
215///
Nick Lewycky9683f182009-06-19 04:56:29 +0000216BasicBlock *JumpThreading::FactorCommonPHIPreds(PHINode *PN, Value *Val) {
Chris Lattner6bf77502008-04-22 07:05:46 +0000217 SmallVector<BasicBlock*, 16> CommonPreds;
218 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i)
Nick Lewycky9683f182009-06-19 04:56:29 +0000219 if (PN->getIncomingValue(i) == Val)
Chris Lattner6bf77502008-04-22 07:05:46 +0000220 CommonPreds.push_back(PN->getIncomingBlock(i));
221
222 if (CommonPreds.size() == 1)
223 return CommonPreds[0];
224
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000225 DEBUG(errs() << " Factoring out " << CommonPreds.size()
226 << " common predecessors.\n");
Chris Lattner6bf77502008-04-22 07:05:46 +0000227 return SplitBlockPredecessors(PN->getParent(),
228 &CommonPreds[0], CommonPreds.size(),
229 ".thr_comm", this);
230}
Chris Lattner78567252009-11-06 18:15:14 +0000231
232/// GetResultOfComparison - Given an icmp/fcmp predicate and the left and right
233/// hand sides of the compare instruction, try to determine the result. If the
234/// result can not be determined, a null pointer is returned.
235static Constant *GetResultOfComparison(CmpInst::Predicate pred,
236 Value *LHS, Value *RHS) {
237 if (Constant *CLHS = dyn_cast<Constant>(LHS))
238 if (Constant *CRHS = dyn_cast<Constant>(RHS))
239 return ConstantExpr::getCompare(pred, CLHS, CRHS);
Chris Lattner6bf77502008-04-22 07:05:46 +0000240
Chris Lattner78567252009-11-06 18:15:14 +0000241 if (LHS == RHS)
242 if (isa<IntegerType>(LHS->getType()) || isa<PointerType>(LHS->getType()))
243 if (ICmpInst::isTrueWhenEqual(pred))
244 return ConstantInt::getTrue(LHS->getContext());
245 else
246 return ConstantInt::getFalse(LHS->getContext());
247 return 0;
248}
249
250
251/// ComputeValueKnownInPredecessors - Given a basic block BB and a value V, see
252/// if we can infer that the value is a known ConstantInt in any of our
253/// predecessors. If so, return the known the list of value and pred BB in the
254/// result vector. If a value is known to be undef, it is returned as null.
255///
256/// The BB basic block is known to start with a PHI node.
257///
258/// This returns true if there were any known values.
259///
260///
261/// TODO: Per PR2563, we could infer value range information about a predecessor
262/// based on its terminator.
263bool JumpThreading::
264ComputeValueKnownInPredecessors(Value *V, BasicBlock *BB,PredValueInfo &Result){
265 PHINode *TheFirstPHI = cast<PHINode>(BB->begin());
266
267 // If V is a constantint, then it is known in all predecessors.
268 if (isa<ConstantInt>(V) || isa<UndefValue>(V)) {
269 ConstantInt *CI = dyn_cast<ConstantInt>(V);
270 Result.resize(TheFirstPHI->getNumIncomingValues());
271 for (unsigned i = 0, e = Result.size(); i != e; ++i)
272 Result.push_back(std::make_pair(CI, TheFirstPHI->getIncomingBlock(i)));
273 return true;
274 }
275
276 // If V is a non-instruction value, or an instruction in a different block,
277 // then it can't be derived from a PHI.
278 Instruction *I = dyn_cast<Instruction>(V);
279 if (I == 0 || I->getParent() != BB)
280 return false;
281
282 /// If I is a PHI node, then we know the incoming values for any constants.
283 if (PHINode *PN = dyn_cast<PHINode>(I)) {
284 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
285 Value *InVal = PN->getIncomingValue(i);
286 if (isa<ConstantInt>(InVal) || isa<UndefValue>(InVal)) {
287 ConstantInt *CI = dyn_cast<ConstantInt>(InVal);
288 Result.push_back(std::make_pair(CI, PN->getIncomingBlock(i)));
289 }
290 }
291 return !Result.empty();
292 }
293
294 SmallVector<std::pair<ConstantInt*, BasicBlock*>, 8> LHSVals, RHSVals;
295
296 // Handle some boolean conditions.
297 if (I->getType()->getPrimitiveSizeInBits() == 1) {
298 // X | true -> true
299 // X & false -> false
300 if (I->getOpcode() == Instruction::Or ||
301 I->getOpcode() == Instruction::And) {
302 ComputeValueKnownInPredecessors(I->getOperand(0), BB, LHSVals);
303 ComputeValueKnownInPredecessors(I->getOperand(1), BB, RHSVals);
304
305 if (LHSVals.empty() && RHSVals.empty())
306 return false;
307
308 ConstantInt *InterestingVal;
309 if (I->getOpcode() == Instruction::Or)
310 InterestingVal = ConstantInt::getTrue(I->getContext());
311 else
312 InterestingVal = ConstantInt::getFalse(I->getContext());
313
314 // Scan for the sentinel.
315 for (unsigned i = 0, e = LHSVals.size(); i != e; ++i)
316 if (LHSVals[i].first == InterestingVal || LHSVals[i].first == 0)
317 Result.push_back(LHSVals[i]);
318 for (unsigned i = 0, e = RHSVals.size(); i != e; ++i)
319 if (RHSVals[i].first == InterestingVal || RHSVals[i].first == 0)
320 Result.push_back(RHSVals[i]);
321 return !Result.empty();
322 }
323
324 // TODO: Should handle the NOT form of XOR.
325
326 }
327
328 // Handle compare with phi operand, where the PHI is defined in this block.
329 if (CmpInst *Cmp = dyn_cast<CmpInst>(I)) {
330 PHINode *PN = dyn_cast<PHINode>(Cmp->getOperand(0));
331 if (PN && PN->getParent() == BB) {
332 // We can do this simplification if any comparisons fold to true or false.
333 // See if any do.
334 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
335 BasicBlock *PredBB = PN->getIncomingBlock(i);
336 Value *LHS = PN->getIncomingValue(i);
337 Value *RHS = Cmp->getOperand(1)->DoPHITranslation(BB, PredBB);
338
339 Constant *Res = GetResultOfComparison(Cmp->getPredicate(), LHS, RHS);
340 if (Res == 0) continue;
341
342 if (isa<UndefValue>(Res))
343 Result.push_back(std::make_pair((ConstantInt*)0, PredBB));
344 else if (ConstantInt *CI = dyn_cast<ConstantInt>(Res))
345 Result.push_back(std::make_pair(CI, PredBB));
346 }
347
348 return !Result.empty();
349 }
350
351 // TODO: We could also recurse to see if we can determine constants another
352 // way.
353 }
354 return false;
355}
356
357
Chris Lattner6bf77502008-04-22 07:05:46 +0000358
Chris Lattnere33583b2009-10-11 04:18:15 +0000359/// GetBestDestForBranchOnUndef - If we determine that the specified block ends
360/// in an undefined jump, decide which block is best to revector to.
361///
362/// Since we can pick an arbitrary destination, we pick the successor with the
363/// fewest predecessors. This should reduce the in-degree of the others.
364///
365static unsigned GetBestDestForJumpOnUndef(BasicBlock *BB) {
366 TerminatorInst *BBTerm = BB->getTerminator();
367 unsigned MinSucc = 0;
368 BasicBlock *TestBB = BBTerm->getSuccessor(MinSucc);
369 // Compute the successor with the minimum number of predecessors.
370 unsigned MinNumPreds = std::distance(pred_begin(TestBB), pred_end(TestBB));
371 for (unsigned i = 1, e = BBTerm->getNumSuccessors(); i != e; ++i) {
372 TestBB = BBTerm->getSuccessor(i);
373 unsigned NumPreds = std::distance(pred_begin(TestBB), pred_end(TestBB));
374 if (NumPreds < MinNumPreds)
375 MinSucc = i;
376 }
377
378 return MinSucc;
379}
380
Chris Lattnerc7bcbf62008-11-27 07:20:04 +0000381/// ProcessBlock - If there are any predecessors whose control can be threaded
Chris Lattner177480b2008-04-20 21:13:06 +0000382/// through to a successor, transform them now.
Chris Lattnerc7bcbf62008-11-27 07:20:04 +0000383bool JumpThreading::ProcessBlock(BasicBlock *BB) {
Chris Lattner69e067f2008-11-27 05:07:53 +0000384 // If this block has a single predecessor, and if that pred has a single
385 // successor, merge the blocks. This encourages recursive jump threading
386 // because now the condition in this block can be threaded through
387 // predecessors of our predecessor block.
Chris Lattner78567252009-11-06 18:15:14 +0000388 if (BasicBlock *SinglePred = BB->getSinglePredecessor()) {
Chris Lattnerf5102a02008-11-28 19:54:49 +0000389 if (SinglePred->getTerminator()->getNumSuccessors() == 1 &&
390 SinglePred != BB) {
Mike Stumpfe095f32009-05-04 18:40:41 +0000391 // If SinglePred was a loop header, BB becomes one.
392 if (LoopHeaders.erase(SinglePred))
393 LoopHeaders.insert(BB);
394
Chris Lattner3d86d242008-11-27 19:25:19 +0000395 // Remember if SinglePred was the entry block of the function. If so, we
396 // will need to move BB back to the entry position.
397 bool isEntry = SinglePred == &SinglePred->getParent()->getEntryBlock();
Chris Lattner69e067f2008-11-27 05:07:53 +0000398 MergeBasicBlockIntoOnlyPred(BB);
Chris Lattner3d86d242008-11-27 19:25:19 +0000399
400 if (isEntry && BB != &BB->getParent()->getEntryBlock())
401 BB->moveBefore(&BB->getParent()->getEntryBlock());
Chris Lattner69e067f2008-11-27 05:07:53 +0000402 return true;
403 }
Chris Lattner78567252009-11-06 18:15:14 +0000404 }
405
406 // Look to see if the terminator is a branch of switch, if not we can't thread
407 // it.
Chris Lattner177480b2008-04-20 21:13:06 +0000408 Value *Condition;
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000409 if (BranchInst *BI = dyn_cast<BranchInst>(BB->getTerminator())) {
410 // Can't thread an unconditional jump.
411 if (BI->isUnconditional()) return false;
Chris Lattner177480b2008-04-20 21:13:06 +0000412 Condition = BI->getCondition();
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000413 } else if (SwitchInst *SI = dyn_cast<SwitchInst>(BB->getTerminator()))
Chris Lattner177480b2008-04-20 21:13:06 +0000414 Condition = SI->getCondition();
415 else
416 return false; // Must be an invoke.
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000417
418 // If the terminator of this block is branching on a constant, simplify the
Chris Lattner037c7812008-04-21 18:25:01 +0000419 // terminator to an unconditional branch. This can occur due to threading in
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000420 // other blocks.
421 if (isa<ConstantInt>(Condition)) {
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000422 DEBUG(errs() << " In block '" << BB->getName()
Chris Lattner78c552e2009-10-11 07:24:57 +0000423 << "' folding terminator: " << *BB->getTerminator() << '\n');
Chris Lattnerbd3401f2008-04-20 22:39:42 +0000424 ++NumFolds;
425 ConstantFoldTerminator(BB);
426 return true;
427 }
428
Chris Lattner421fa9e2008-12-03 07:48:08 +0000429 // If the terminator is branching on an undef, we can pick any of the
Chris Lattnere33583b2009-10-11 04:18:15 +0000430 // successors to branch to. Let GetBestDestForJumpOnUndef decide.
Chris Lattner421fa9e2008-12-03 07:48:08 +0000431 if (isa<UndefValue>(Condition)) {
Chris Lattnere33583b2009-10-11 04:18:15 +0000432 unsigned BestSucc = GetBestDestForJumpOnUndef(BB);
Chris Lattner421fa9e2008-12-03 07:48:08 +0000433
434 // Fold the branch/switch.
Chris Lattnere33583b2009-10-11 04:18:15 +0000435 TerminatorInst *BBTerm = BB->getTerminator();
Chris Lattner421fa9e2008-12-03 07:48:08 +0000436 for (unsigned i = 0, e = BBTerm->getNumSuccessors(); i != e; ++i) {
Chris Lattnere33583b2009-10-11 04:18:15 +0000437 if (i == BestSucc) continue;
Chris Lattner421fa9e2008-12-03 07:48:08 +0000438 BBTerm->getSuccessor(i)->removePredecessor(BB);
439 }
440
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000441 DEBUG(errs() << " In block '" << BB->getName()
Chris Lattner78c552e2009-10-11 07:24:57 +0000442 << "' folding undef terminator: " << *BBTerm << '\n');
Chris Lattnere33583b2009-10-11 04:18:15 +0000443 BranchInst::Create(BBTerm->getSuccessor(BestSucc), BBTerm);
Chris Lattner421fa9e2008-12-03 07:48:08 +0000444 BBTerm->eraseFromParent();
445 return true;
446 }
447
448 Instruction *CondInst = dyn_cast<Instruction>(Condition);
449
450 // If the condition is an instruction defined in another block, see if a
451 // predecessor has the same condition:
452 // br COND, BBX, BBY
453 // BBX:
454 // br COND, BBZ, BBW
455 if (!Condition->hasOneUse() && // Multiple uses.
456 (CondInst == 0 || CondInst->getParent() != BB)) { // Non-local definition.
457 pred_iterator PI = pred_begin(BB), E = pred_end(BB);
458 if (isa<BranchInst>(BB->getTerminator())) {
459 for (; PI != E; ++PI)
460 if (BranchInst *PBI = dyn_cast<BranchInst>((*PI)->getTerminator()))
461 if (PBI->isConditional() && PBI->getCondition() == Condition &&
462 ProcessBranchOnDuplicateCond(*PI, BB))
463 return true;
Chris Lattner3cda3cd2008-12-04 06:31:07 +0000464 } else {
465 assert(isa<SwitchInst>(BB->getTerminator()) && "Unknown jump terminator");
466 for (; PI != E; ++PI)
467 if (SwitchInst *PSI = dyn_cast<SwitchInst>((*PI)->getTerminator()))
468 if (PSI->getCondition() == Condition &&
469 ProcessSwitchOnDuplicateCond(*PI, BB))
470 return true;
Chris Lattner421fa9e2008-12-03 07:48:08 +0000471 }
472 }
473
Chris Lattner421fa9e2008-12-03 07:48:08 +0000474 // All the rest of our checks depend on the condition being an instruction.
475 if (CondInst == 0)
476 return false;
477
Chris Lattner177480b2008-04-20 21:13:06 +0000478 // See if this is a phi node in the current block.
Chris Lattner421fa9e2008-12-03 07:48:08 +0000479 if (PHINode *PN = dyn_cast<PHINode>(CondInst))
480 if (PN->getParent() == BB)
481 return ProcessJumpOnPHI(PN);
Chris Lattner177480b2008-04-20 21:13:06 +0000482
Chris Lattner6bf77502008-04-22 07:05:46 +0000483 // If this is a conditional branch whose condition is and/or of a phi, try to
484 // simplify it.
Chris Lattner421fa9e2008-12-03 07:48:08 +0000485 if ((CondInst->getOpcode() == Instruction::And ||
486 CondInst->getOpcode() == Instruction::Or) &&
487 isa<BranchInst>(BB->getTerminator()) &&
488 ProcessBranchOnLogical(CondInst, BB,
489 CondInst->getOpcode() == Instruction::And))
490 return true;
Chris Lattner6bf77502008-04-22 07:05:46 +0000491
Nick Lewycky9683f182009-06-19 04:56:29 +0000492 if (CmpInst *CondCmp = dyn_cast<CmpInst>(CondInst)) {
493 if (isa<PHINode>(CondCmp->getOperand(0))) {
494 // If we have "br (phi != 42)" and the phi node has any constant values
495 // as operands, we can thread through this block.
496 //
497 // If we have "br (cmp phi, x)" and the phi node contains x such that the
498 // comparison uniquely identifies the branch target, we can thread
499 // through this block.
500
501 if (ProcessBranchOnCompare(CondCmp, BB))
502 return true;
503 }
Chris Lattner79c740f2009-06-19 16:27:56 +0000504
505 // If we have a comparison, loop over the predecessors to see if there is
Chris Lattner78567252009-11-06 18:15:14 +0000506 // a condition with a lexically identical value.
Chris Lattner79c740f2009-06-19 16:27:56 +0000507 pred_iterator PI = pred_begin(BB), E = pred_end(BB);
508 for (; PI != E; ++PI)
509 if (BranchInst *PBI = dyn_cast<BranchInst>((*PI)->getTerminator()))
510 if (PBI->isConditional() && *PI != BB) {
511 if (CmpInst *CI = dyn_cast<CmpInst>(PBI->getCondition())) {
512 if (CI->getOperand(0) == CondCmp->getOperand(0) &&
513 CI->getOperand(1) == CondCmp->getOperand(1) &&
514 CI->getPredicate() == CondCmp->getPredicate()) {
515 // TODO: Could handle things like (x != 4) --> (x == 17)
516 if (ProcessBranchOnDuplicateCond(*PI, BB))
517 return true;
518 }
519 }
520 }
Nick Lewycky9683f182009-06-19 04:56:29 +0000521 }
Chris Lattner69e067f2008-11-27 05:07:53 +0000522
523 // Check for some cases that are worth simplifying. Right now we want to look
524 // for loads that are used by a switch or by the condition for the branch. If
525 // we see one, check to see if it's partially redundant. If so, insert a PHI
526 // which can then be used to thread the values.
527 //
528 // This is particularly important because reg2mem inserts loads and stores all
529 // over the place, and this blocks jump threading if we don't zap them.
Chris Lattner421fa9e2008-12-03 07:48:08 +0000530 Value *SimplifyValue = CondInst;
Chris Lattner69e067f2008-11-27 05:07:53 +0000531 if (CmpInst *CondCmp = dyn_cast<CmpInst>(SimplifyValue))
532 if (isa<Constant>(CondCmp->getOperand(1)))
533 SimplifyValue = CondCmp->getOperand(0);
534
535 if (LoadInst *LI = dyn_cast<LoadInst>(SimplifyValue))
536 if (SimplifyPartiallyRedundantLoad(LI))
537 return true;
538
Chris Lattner78567252009-11-06 18:15:14 +0000539
540 // Handle a variety of cases where we are branching on something derived from
541 // a PHI node in the current block. If we can prove that any predecessors
542 // compute a predictable value based on a PHI node, thread those predecessors.
543 //
544 // We only bother doing this if the current block has a PHI node and if the
545 // conditional instruction lives in the current block. If either condition
546 // fail, this won't be a computable value anyway.
547 if (CondInst->getParent() == BB && isa<PHINode>(BB->front()))
548 if (ProcessThreadableEdges(CondInst, BB))
549 return true;
550
551
Chris Lattner69e067f2008-11-27 05:07:53 +0000552 // TODO: If we have: "br (X > 0)" and we have a predecessor where we know
553 // "(X == 4)" thread through this block.
Chris Lattnera5ddb592008-04-22 21:40:39 +0000554
Chris Lattnerd38c14e2008-04-22 06:36:15 +0000555 return false;
556}
557
Chris Lattner421fa9e2008-12-03 07:48:08 +0000558/// ProcessBranchOnDuplicateCond - We found a block and a predecessor of that
559/// block that jump on exactly the same condition. This means that we almost
560/// always know the direction of the edge in the DESTBB:
561/// PREDBB:
562/// br COND, DESTBB, BBY
563/// DESTBB:
564/// br COND, BBZ, BBW
565///
566/// If DESTBB has multiple predecessors, we can't just constant fold the branch
567/// in DESTBB, we have to thread over it.
568bool JumpThreading::ProcessBranchOnDuplicateCond(BasicBlock *PredBB,
569 BasicBlock *BB) {
570 BranchInst *PredBI = cast<BranchInst>(PredBB->getTerminator());
571
572 // If both successors of PredBB go to DESTBB, we don't know anything. We can
573 // fold the branch to an unconditional one, which allows other recursive
574 // simplifications.
575 bool BranchDir;
576 if (PredBI->getSuccessor(1) != BB)
577 BranchDir = true;
578 else if (PredBI->getSuccessor(0) != BB)
579 BranchDir = false;
580 else {
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000581 DEBUG(errs() << " In block '" << PredBB->getName()
Chris Lattner78c552e2009-10-11 07:24:57 +0000582 << "' folding terminator: " << *PredBB->getTerminator() << '\n');
Chris Lattner421fa9e2008-12-03 07:48:08 +0000583 ++NumFolds;
584 ConstantFoldTerminator(PredBB);
585 return true;
586 }
587
588 BranchInst *DestBI = cast<BranchInst>(BB->getTerminator());
589
590 // If the dest block has one predecessor, just fix the branch condition to a
591 // constant and fold it.
592 if (BB->getSinglePredecessor()) {
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000593 DEBUG(errs() << " In block '" << BB->getName()
594 << "' folding condition to '" << BranchDir << "': "
Chris Lattner78c552e2009-10-11 07:24:57 +0000595 << *BB->getTerminator() << '\n');
Chris Lattner421fa9e2008-12-03 07:48:08 +0000596 ++NumFolds;
Chris Lattner5a06cf62009-10-11 18:39:58 +0000597 Value *OldCond = DestBI->getCondition();
Owen Anderson1d0be152009-08-13 21:58:54 +0000598 DestBI->setCondition(ConstantInt::get(Type::getInt1Ty(BB->getContext()),
599 BranchDir));
Chris Lattner421fa9e2008-12-03 07:48:08 +0000600 ConstantFoldTerminator(BB);
Chris Lattner5a06cf62009-10-11 18:39:58 +0000601 RecursivelyDeleteTriviallyDeadInstructions(OldCond);
Chris Lattner421fa9e2008-12-03 07:48:08 +0000602 return true;
603 }
Chris Lattnerbdbf1a12009-10-11 04:33:43 +0000604
Chris Lattner421fa9e2008-12-03 07:48:08 +0000605
606 // Next, figure out which successor we are threading to.
607 BasicBlock *SuccBB = DestBI->getSuccessor(!BranchDir);
608
Mike Stumpfe095f32009-05-04 18:40:41 +0000609 // Ok, try to thread it!
Chris Lattnerbdbf1a12009-10-11 04:33:43 +0000610 return ThreadEdge(BB, PredBB, SuccBB);
Chris Lattner421fa9e2008-12-03 07:48:08 +0000611}
612
Chris Lattner3cda3cd2008-12-04 06:31:07 +0000613/// ProcessSwitchOnDuplicateCond - We found a block and a predecessor of that
614/// block that switch on exactly the same condition. This means that we almost
615/// always know the direction of the edge in the DESTBB:
616/// PREDBB:
617/// switch COND [... DESTBB, BBY ... ]
618/// DESTBB:
619/// switch COND [... BBZ, BBW ]
620///
621/// Optimizing switches like this is very important, because simplifycfg builds
622/// switches out of repeated 'if' conditions.
623bool JumpThreading::ProcessSwitchOnDuplicateCond(BasicBlock *PredBB,
624 BasicBlock *DestBB) {
Chris Lattner2c7ed112009-01-19 21:20:34 +0000625 // Can't thread edge to self.
626 if (PredBB == DestBB)
627 return false;
628
Chris Lattner3cda3cd2008-12-04 06:31:07 +0000629 SwitchInst *PredSI = cast<SwitchInst>(PredBB->getTerminator());
630 SwitchInst *DestSI = cast<SwitchInst>(DestBB->getTerminator());
631
632 // There are a variety of optimizations that we can potentially do on these
633 // blocks: we order them from most to least preferable.
634
635 // If DESTBB *just* contains the switch, then we can forward edges from PREDBB
636 // directly to their destination. This does not introduce *any* code size
Dale Johannesen6b233392009-03-17 00:38:24 +0000637 // growth. Skip debug info first.
638 BasicBlock::iterator BBI = DestBB->begin();
639 while (isa<DbgInfoIntrinsic>(BBI))
640 BBI++;
Chris Lattner3cda3cd2008-12-04 06:31:07 +0000641
642 // FIXME: Thread if it just contains a PHI.
Dale Johannesen6b233392009-03-17 00:38:24 +0000643 if (isa<SwitchInst>(BBI)) {
Chris Lattner3cda3cd2008-12-04 06:31:07 +0000644 bool MadeChange = false;
645 // Ignore the default edge for now.
646 for (unsigned i = 1, e = DestSI->getNumSuccessors(); i != e; ++i) {
647 ConstantInt *DestVal = DestSI->getCaseValue(i);
648 BasicBlock *DestSucc = DestSI->getSuccessor(i);
649
650 // Okay, DestSI has a case for 'DestVal' that goes to 'DestSucc'. See if
651 // PredSI has an explicit case for it. If so, forward. If it is covered
652 // by the default case, we can't update PredSI.
653 unsigned PredCase = PredSI->findCaseValue(DestVal);
654 if (PredCase == 0) continue;
655
656 // If PredSI doesn't go to DestBB on this value, then it won't reach the
657 // case on this condition.
658 if (PredSI->getSuccessor(PredCase) != DestBB &&
659 DestSI->getSuccessor(i) != DestBB)
660 continue;
661
662 // Otherwise, we're safe to make the change. Make sure that the edge from
663 // DestSI to DestSucc is not critical and has no PHI nodes.
Daniel Dunbar93b67e42009-07-26 07:49:05 +0000664 DEBUG(errs() << "FORWARDING EDGE " << *DestVal << " FROM: " << *PredSI);
665 DEBUG(errs() << "THROUGH: " << *DestSI);
Chris Lattner3cda3cd2008-12-04 06:31:07 +0000666
667 // If the destination has PHI nodes, just split the edge for updating
668 // simplicity.
669 if (isa<PHINode>(DestSucc->begin()) && !DestSucc->getSinglePredecessor()){
670 SplitCriticalEdge(DestSI, i, this);
671 DestSucc = DestSI->getSuccessor(i);
672 }
673 FoldSingleEntryPHINodes(DestSucc);
674 PredSI->setSuccessor(PredCase, DestSucc);
675 MadeChange = true;
676 }
677
678 if (MadeChange)
679 return true;
680 }
681
682 return false;
683}
684
685
Chris Lattner69e067f2008-11-27 05:07:53 +0000686/// SimplifyPartiallyRedundantLoad - If LI is an obviously partially redundant
687/// load instruction, eliminate it by replacing it with a PHI node. This is an
688/// important optimization that encourages jump threading, and needs to be run
689/// interlaced with other jump threading tasks.
690bool JumpThreading::SimplifyPartiallyRedundantLoad(LoadInst *LI) {
691 // Don't hack volatile loads.
692 if (LI->isVolatile()) return false;
693
694 // If the load is defined in a block with exactly one predecessor, it can't be
695 // partially redundant.
696 BasicBlock *LoadBB = LI->getParent();
697 if (LoadBB->getSinglePredecessor())
698 return false;
699
700 Value *LoadedPtr = LI->getOperand(0);
701
702 // If the loaded operand is defined in the LoadBB, it can't be available.
703 // FIXME: Could do PHI translation, that would be fun :)
704 if (Instruction *PtrOp = dyn_cast<Instruction>(LoadedPtr))
705 if (PtrOp->getParent() == LoadBB)
706 return false;
707
708 // Scan a few instructions up from the load, to see if it is obviously live at
709 // the entry to its block.
710 BasicBlock::iterator BBIt = LI;
711
Chris Lattner52c95852008-11-27 08:10:05 +0000712 if (Value *AvailableVal = FindAvailableLoadedValue(LoadedPtr, LoadBB,
713 BBIt, 6)) {
Chris Lattner69e067f2008-11-27 05:07:53 +0000714 // If the value if the load is locally available within the block, just use
715 // it. This frequently occurs for reg2mem'd allocas.
716 //cerr << "LOAD ELIMINATED:\n" << *BBIt << *LI << "\n";
Chris Lattner2a99b482009-01-09 06:08:12 +0000717
718 // If the returned value is the load itself, replace with an undef. This can
719 // only happen in dead loops.
Owen Anderson9e9a0d52009-07-30 23:03:37 +0000720 if (AvailableVal == LI) AvailableVal = UndefValue::get(LI->getType());
Chris Lattner69e067f2008-11-27 05:07:53 +0000721 LI->replaceAllUsesWith(AvailableVal);
722 LI->eraseFromParent();
723 return true;
724 }
725
726 // Otherwise, if we scanned the whole block and got to the top of the block,
727 // we know the block is locally transparent to the load. If not, something
728 // might clobber its value.
729 if (BBIt != LoadBB->begin())
730 return false;
731
732
733 SmallPtrSet<BasicBlock*, 8> PredsScanned;
734 typedef SmallVector<std::pair<BasicBlock*, Value*>, 8> AvailablePredsTy;
735 AvailablePredsTy AvailablePreds;
736 BasicBlock *OneUnavailablePred = 0;
737
738 // If we got here, the loaded value is transparent through to the start of the
739 // block. Check to see if it is available in any of the predecessor blocks.
740 for (pred_iterator PI = pred_begin(LoadBB), PE = pred_end(LoadBB);
741 PI != PE; ++PI) {
742 BasicBlock *PredBB = *PI;
743
744 // If we already scanned this predecessor, skip it.
745 if (!PredsScanned.insert(PredBB))
746 continue;
747
748 // Scan the predecessor to see if the value is available in the pred.
749 BBIt = PredBB->end();
Chris Lattner52c95852008-11-27 08:10:05 +0000750 Value *PredAvailable = FindAvailableLoadedValue(LoadedPtr, PredBB, BBIt, 6);
Chris Lattner69e067f2008-11-27 05:07:53 +0000751 if (!PredAvailable) {
752 OneUnavailablePred = PredBB;
753 continue;
754 }
755
756 // If so, this load is partially redundant. Remember this info so that we
757 // can create a PHI node.
758 AvailablePreds.push_back(std::make_pair(PredBB, PredAvailable));
759 }
760
761 // If the loaded value isn't available in any predecessor, it isn't partially
762 // redundant.
763 if (AvailablePreds.empty()) return false;
764
765 // Okay, the loaded value is available in at least one (and maybe all!)
766 // predecessors. If the value is unavailable in more than one unique
767 // predecessor, we want to insert a merge block for those common predecessors.
768 // This ensures that we only have to insert one reload, thus not increasing
769 // code size.
770 BasicBlock *UnavailablePred = 0;
771
772 // If there is exactly one predecessor where the value is unavailable, the
773 // already computed 'OneUnavailablePred' block is it. If it ends in an
774 // unconditional branch, we know that it isn't a critical edge.
775 if (PredsScanned.size() == AvailablePreds.size()+1 &&
776 OneUnavailablePred->getTerminator()->getNumSuccessors() == 1) {
777 UnavailablePred = OneUnavailablePred;
778 } else if (PredsScanned.size() != AvailablePreds.size()) {
779 // Otherwise, we had multiple unavailable predecessors or we had a critical
780 // edge from the one.
781 SmallVector<BasicBlock*, 8> PredsToSplit;
782 SmallPtrSet<BasicBlock*, 8> AvailablePredSet;
783
784 for (unsigned i = 0, e = AvailablePreds.size(); i != e; ++i)
785 AvailablePredSet.insert(AvailablePreds[i].first);
786
787 // Add all the unavailable predecessors to the PredsToSplit list.
788 for (pred_iterator PI = pred_begin(LoadBB), PE = pred_end(LoadBB);
789 PI != PE; ++PI)
790 if (!AvailablePredSet.count(*PI))
791 PredsToSplit.push_back(*PI);
792
793 // Split them out to their own block.
794 UnavailablePred =
795 SplitBlockPredecessors(LoadBB, &PredsToSplit[0], PredsToSplit.size(),
796 "thread-split", this);
797 }
798
799 // If the value isn't available in all predecessors, then there will be
800 // exactly one where it isn't available. Insert a load on that edge and add
801 // it to the AvailablePreds list.
802 if (UnavailablePred) {
803 assert(UnavailablePred->getTerminator()->getNumSuccessors() == 1 &&
804 "Can't handle critical edge here!");
805 Value *NewVal = new LoadInst(LoadedPtr, LI->getName()+".pr",
806 UnavailablePred->getTerminator());
807 AvailablePreds.push_back(std::make_pair(UnavailablePred, NewVal));
808 }
809
810 // Now we know that each predecessor of this block has a value in
811 // AvailablePreds, sort them for efficient access as we're walking the preds.
Chris Lattnera3522002008-12-01 06:52:57 +0000812 array_pod_sort(AvailablePreds.begin(), AvailablePreds.end());
Chris Lattner69e067f2008-11-27 05:07:53 +0000813
814 // Create a PHI node at the start of the block for the PRE'd load value.
815 PHINode *PN = PHINode::Create(LI->getType(), "", LoadBB->begin());
816 PN->takeName(LI);
817
818 // Insert new entries into the PHI for each predecessor. A single block may
819 // have multiple entries here.
820 for (pred_iterator PI = pred_begin(LoadBB), E = pred_end(LoadBB); PI != E;
821 ++PI) {
822 AvailablePredsTy::iterator I =
823 std::lower_bound(AvailablePreds.begin(), AvailablePreds.end(),
824 std::make_pair(*PI, (Value*)0));
825
826 assert(I != AvailablePreds.end() && I->first == *PI &&
827 "Didn't find entry for predecessor!");
828
829 PN->addIncoming(I->second, I->first);
830 }
831
832 //cerr << "PRE: " << *LI << *PN << "\n";
833
834 LI->replaceAllUsesWith(PN);
835 LI->eraseFromParent();
836
837 return true;
838}
839
Chris Lattner78567252009-11-06 18:15:14 +0000840/// FindMostPopularDest - The specified list contains multiple possible
841/// threadable destinations. Pick the one that occurs the most frequently in
842/// the list.
843static BasicBlock *
844FindMostPopularDest(BasicBlock *BB,
845 const SmallVectorImpl<std::pair<BasicBlock*,
846 BasicBlock*> > &PredToDestList) {
847 assert(!PredToDestList.empty());
848
849 // Determine popularity. If there are multiple possible destinations, we
850 // explicitly choose to ignore 'undef' destinations. We prefer to thread
851 // blocks with known and real destinations to threading undef. We'll handle
852 // them later if interesting.
853 DenseMap<BasicBlock*, unsigned> DestPopularity;
854 for (unsigned i = 0, e = PredToDestList.size(); i != e; ++i)
855 if (PredToDestList[i].second)
856 DestPopularity[PredToDestList[i].second]++;
857
858 // Find the most popular dest.
859 DenseMap<BasicBlock*, unsigned>::iterator DPI = DestPopularity.begin();
860 BasicBlock *MostPopularDest = DPI->first;
861 unsigned Popularity = DPI->second;
862 SmallVector<BasicBlock*, 4> SamePopularity;
863
864 for (++DPI; DPI != DestPopularity.end(); ++DPI) {
865 // If the popularity of this entry isn't higher than the popularity we've
866 // seen so far, ignore it.
867 if (DPI->second < Popularity)
868 ; // ignore.
869 else if (DPI->second == Popularity) {
870 // If it is the same as what we've seen so far, keep track of it.
871 SamePopularity.push_back(DPI->first);
872 } else {
873 // If it is more popular, remember it.
874 SamePopularity.clear();
875 MostPopularDest = DPI->first;
876 Popularity = DPI->second;
877 }
878 }
879
880 // Okay, now we know the most popular destination. If there is more than
881 // destination, we need to determine one. This is arbitrary, but we need
882 // to make a deterministic decision. Pick the first one that appears in the
883 // successor list.
884 if (!SamePopularity.empty()) {
885 SamePopularity.push_back(MostPopularDest);
886 TerminatorInst *TI = BB->getTerminator();
887 for (unsigned i = 0; ; ++i) {
888 assert(i != TI->getNumSuccessors() && "Didn't find any successor!");
889
890 if (std::find(SamePopularity.begin(), SamePopularity.end(),
891 TI->getSuccessor(i)) == SamePopularity.end())
892 continue;
893
894 MostPopularDest = TI->getSuccessor(i);
895 break;
896 }
897 }
898
899 // Okay, we have finally picked the most popular destination.
900 return MostPopularDest;
901}
902
903bool JumpThreading::ProcessThreadableEdges(Instruction *CondInst,
904 BasicBlock *BB) {
905 // If threading this would thread across a loop header, don't even try to
906 // thread the edge.
907 if (LoopHeaders.count(BB))
908 return false;
909
910
911
912 SmallVector<std::pair<ConstantInt*, BasicBlock*>, 8> PredValues;
913 if (!ComputeValueKnownInPredecessors(CondInst, BB, PredValues))
914 return false;
915 assert(!PredValues.empty() &&
916 "ComputeValueKnownInPredecessors returned true with no values");
917
918 DEBUG(errs() << "IN BB: " << *BB;
919 for (unsigned i = 0, e = PredValues.size(); i != e; ++i) {
920 errs() << " BB '" << BB->getName() << "': FOUND condition = ";
921 if (PredValues[i].first)
922 errs() << *PredValues[i].first;
923 else
924 errs() << "UNDEF";
925 errs() << " for pred '" << PredValues[i].second->getName()
926 << "'.\n";
927 });
928
929 // Decide what we want to thread through. Convert our list of known values to
930 // a list of known destinations for each pred. This also discards duplicate
931 // predecessors and keeps track of the undefined inputs (which are represented
932 // as a null dest in the PredToDestList.
933 SmallPtrSet<BasicBlock*, 16> SeenPreds;
934 SmallVector<std::pair<BasicBlock*, BasicBlock*>, 16> PredToDestList;
935
936 BasicBlock *OnlyDest = 0;
937 BasicBlock *MultipleDestSentinel = (BasicBlock*)(intptr_t)~0ULL;
938
939 for (unsigned i = 0, e = PredValues.size(); i != e; ++i) {
940 BasicBlock *Pred = PredValues[i].second;
941 if (!SeenPreds.insert(Pred))
942 continue; // Duplicate predecessor entry.
943
944 // If the predecessor ends with an indirect goto, we can't change its
945 // destination.
946 if (isa<IndirectBrInst>(Pred->getTerminator()))
947 continue;
948
949 ConstantInt *Val = PredValues[i].first;
950
951 BasicBlock *DestBB;
952 if (Val == 0) // Undef.
953 DestBB = 0;
954 else if (BranchInst *BI = dyn_cast<BranchInst>(BB->getTerminator()))
955 DestBB = BI->getSuccessor(Val->isZero());
956 else {
957 SwitchInst *SI = cast<SwitchInst>(BB->getTerminator());
958 DestBB = SI->getSuccessor(SI->findCaseValue(Val));
959 }
960
961 // If we have exactly one destination, remember it for efficiency below.
962 if (i == 0)
963 OnlyDest = DestBB;
964 else if (OnlyDest != DestBB)
965 OnlyDest = MultipleDestSentinel;
966
967 PredToDestList.push_back(std::make_pair(Pred, DestBB));
968 }
969
970 // If all edges were unthreadable, we fail.
971 if (PredToDestList.empty())
972 return false;
973
974 // Determine which is the most common successor. If we have many inputs and
975 // this block is a switch, we want to start by threading the batch that goes
976 // to the most popular destination first. If we only know about one
977 // threadable destination (the common case) we can avoid this.
978 BasicBlock *MostPopularDest = OnlyDest;
979
980 if (MostPopularDest == MultipleDestSentinel)
981 MostPopularDest = FindMostPopularDest(BB, PredToDestList);
982
983 // Now that we know what the most popular destination is, factor all
984 // predecessors that will jump to it into a single predecessor.
985 SmallVector<BasicBlock*, 16> PredsToFactor;
986 for (unsigned i = 0, e = PredToDestList.size(); i != e; ++i)
987 if (PredToDestList[i].second == MostPopularDest)
988 PredsToFactor.push_back(PredToDestList[i].first);
989
990 BasicBlock *PredToThread;
991 if (PredsToFactor.size() == 1)
992 PredToThread = PredsToFactor[0];
993 else {
994 DEBUG(errs() << " Factoring out " << PredsToFactor.size()
995 << " common predecessors.\n");
996 PredToThread = SplitBlockPredecessors(BB, &PredsToFactor[0],
997 PredsToFactor.size(),
998 ".thr_comm", this);
999 }
1000
1001 // If the threadable edges are branching on an undefined value, we get to pick
1002 // the destination that these predecessors should get to.
1003 if (MostPopularDest == 0)
1004 MostPopularDest = BB->getTerminator()->
1005 getSuccessor(GetBestDestForJumpOnUndef(BB));
1006
1007 // Ok, try to thread it!
1008 return ThreadEdge(BB, PredToThread, MostPopularDest);
1009}
Chris Lattner69e067f2008-11-27 05:07:53 +00001010
Chris Lattnere33583b2009-10-11 04:18:15 +00001011/// ProcessJumpOnPHI - We have a conditional branch or switch on a PHI node in
Chris Lattnerd38c14e2008-04-22 06:36:15 +00001012/// the current block. See if there are any simplifications we can do based on
1013/// inputs to the phi node.
1014///
1015bool JumpThreading::ProcessJumpOnPHI(PHINode *PN) {
Chris Lattner6b65f472009-10-11 04:40:21 +00001016 BasicBlock *BB = PN->getParent();
1017
Chris Lattnere33583b2009-10-11 04:18:15 +00001018 // See if the phi node has any constant integer or undef values. If so, we
1019 // can determine where the corresponding predecessor will branch.
Chris Lattnere33583b2009-10-11 04:18:15 +00001020 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
1021 Value *PredVal = PN->getIncomingValue(i);
Chris Lattner6b65f472009-10-11 04:40:21 +00001022
1023 // Check to see if this input is a constant integer. If so, the direction
1024 // of the branch is predictable.
Chris Lattnere33583b2009-10-11 04:18:15 +00001025 if (ConstantInt *CI = dyn_cast<ConstantInt>(PredVal)) {
Chris Lattner6b65f472009-10-11 04:40:21 +00001026 // Merge any common predecessors that will act the same.
1027 BasicBlock *PredBB = FactorCommonPHIPreds(PN, CI);
1028
1029 BasicBlock *SuccBB;
1030 if (BranchInst *BI = dyn_cast<BranchInst>(BB->getTerminator()))
1031 SuccBB = BI->getSuccessor(CI->isZero());
1032 else {
1033 SwitchInst *SI = cast<SwitchInst>(BB->getTerminator());
1034 SuccBB = SI->getSuccessor(SI->findCaseValue(CI));
1035 }
1036
1037 // Ok, try to thread it!
1038 return ThreadEdge(BB, PredBB, SuccBB);
Chris Lattnere33583b2009-10-11 04:18:15 +00001039 }
1040
Chris Lattner6b65f472009-10-11 04:40:21 +00001041 // If the input is an undef, then it doesn't matter which way it will go.
1042 // Pick an arbitrary dest and thread the edge.
Chris Lattnere33583b2009-10-11 04:18:15 +00001043 if (UndefValue *UV = dyn_cast<UndefValue>(PredVal)) {
Chris Lattner6b65f472009-10-11 04:40:21 +00001044 // Merge any common predecessors that will act the same.
1045 BasicBlock *PredBB = FactorCommonPHIPreds(PN, UV);
1046 BasicBlock *SuccBB =
1047 BB->getTerminator()->getSuccessor(GetBestDestForJumpOnUndef(BB));
1048
1049 // Ok, try to thread it!
1050 return ThreadEdge(BB, PredBB, SuccBB);
Chris Lattnere33583b2009-10-11 04:18:15 +00001051 }
Chris Lattner6b65f472009-10-11 04:40:21 +00001052 }
Chris Lattnerf9065a92008-04-20 21:18:09 +00001053
Chris Lattner78c552e2009-10-11 07:24:57 +00001054 // If the incoming values are all variables, we don't know the destination of
1055 // any predecessors. However, if any of the predecessor blocks end in an
1056 // unconditional branch, we can *duplicate* the jump into that block in order
1057 // to further encourage jump threading and to eliminate cases where we have
1058 // branch on a phi of an icmp (branch on icmp is much better).
1059
1060 // We don't want to do this tranformation for switches, because we don't
1061 // really want to duplicate a switch.
1062 if (isa<SwitchInst>(BB->getTerminator()))
1063 return false;
1064
1065 // Look for unconditional branch predecessors.
1066 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
1067 BasicBlock *PredBB = PN->getIncomingBlock(i);
1068 if (BranchInst *PredBr = dyn_cast<BranchInst>(PredBB->getTerminator()))
1069 if (PredBr->isUnconditional() &&
1070 // Try to duplicate BB into PredBB.
1071 DuplicateCondBranchOnPHIIntoPred(BB, PredBB))
1072 return true;
1073 }
1074
Chris Lattner6b65f472009-10-11 04:40:21 +00001075 return false;
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001076}
1077
Chris Lattner78c552e2009-10-11 07:24:57 +00001078
Chris Lattner6bf77502008-04-22 07:05:46 +00001079/// ProcessJumpOnLogicalPHI - PN's basic block contains a conditional branch
1080/// whose condition is an AND/OR where one side is PN. If PN has constant
1081/// operands that permit us to evaluate the condition for some operand, thread
1082/// through the block. For example with:
1083/// br (and X, phi(Y, Z, false))
1084/// the predecessor corresponding to the 'false' will always jump to the false
1085/// destination of the branch.
1086///
Chris Lattnerae65b3c2008-04-22 20:46:09 +00001087bool JumpThreading::ProcessBranchOnLogical(Value *V, BasicBlock *BB,
1088 bool isAnd) {
1089 // If this is a binary operator tree of the same AND/OR opcode, check the
1090 // LHS/RHS.
1091 if (BinaryOperator *BO = dyn_cast<BinaryOperator>(V))
Duncan Sands43e2a032008-05-27 11:50:51 +00001092 if ((isAnd && BO->getOpcode() == Instruction::And) ||
1093 (!isAnd && BO->getOpcode() == Instruction::Or)) {
Chris Lattnerae65b3c2008-04-22 20:46:09 +00001094 if (ProcessBranchOnLogical(BO->getOperand(0), BB, isAnd))
1095 return true;
1096 if (ProcessBranchOnLogical(BO->getOperand(1), BB, isAnd))
1097 return true;
1098 }
1099
1100 // If this isn't a PHI node, we can't handle it.
1101 PHINode *PN = dyn_cast<PHINode>(V);
1102 if (!PN || PN->getParent() != BB) return false;
1103
Chris Lattner6bf77502008-04-22 07:05:46 +00001104 // We can only do the simplification for phi nodes of 'false' with AND or
1105 // 'true' with OR. See if we have any entries in the phi for this.
1106 unsigned PredNo = ~0U;
Owen Anderson1d0be152009-08-13 21:58:54 +00001107 ConstantInt *PredCst = ConstantInt::get(Type::getInt1Ty(BB->getContext()),
1108 !isAnd);
Chris Lattner6bf77502008-04-22 07:05:46 +00001109 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
1110 if (PN->getIncomingValue(i) == PredCst) {
1111 PredNo = i;
1112 break;
1113 }
1114 }
1115
1116 // If no match, bail out.
1117 if (PredNo == ~0U)
1118 return false;
1119
Chris Lattner6bf77502008-04-22 07:05:46 +00001120 // If so, we can actually do this threading. Merge any common predecessors
1121 // that will act the same.
1122 BasicBlock *PredBB = FactorCommonPHIPreds(PN, PredCst);
1123
1124 // Next, figure out which successor we are threading to. If this was an AND,
1125 // the constant must be FALSE, and we must be targeting the 'false' block.
1126 // If this is an OR, the constant must be TRUE, and we must be targeting the
1127 // 'true' block.
1128 BasicBlock *SuccBB = BB->getTerminator()->getSuccessor(isAnd);
1129
Mike Stumpfe095f32009-05-04 18:40:41 +00001130 // Ok, try to thread it!
Chris Lattnerbdbf1a12009-10-11 04:33:43 +00001131 return ThreadEdge(BB, PredBB, SuccBB);
Chris Lattner6bf77502008-04-22 07:05:46 +00001132}
1133
Chris Lattnera5ddb592008-04-22 21:40:39 +00001134/// ProcessBranchOnCompare - We found a branch on a comparison between a phi
Nick Lewycky9683f182009-06-19 04:56:29 +00001135/// node and a value. If we can identify when the comparison is true between
1136/// the phi inputs and the value, we can fold the compare for that edge and
1137/// thread through it.
Chris Lattnera5ddb592008-04-22 21:40:39 +00001138bool JumpThreading::ProcessBranchOnCompare(CmpInst *Cmp, BasicBlock *BB) {
1139 PHINode *PN = cast<PHINode>(Cmp->getOperand(0));
Nick Lewycky9683f182009-06-19 04:56:29 +00001140 Value *RHS = Cmp->getOperand(1);
Chris Lattnera5ddb592008-04-22 21:40:39 +00001141
1142 // If the phi isn't in the current block, an incoming edge to this block
1143 // doesn't control the destination.
1144 if (PN->getParent() != BB)
1145 return false;
1146
1147 // We can do this simplification if any comparisons fold to true or false.
1148 // See if any do.
Nick Lewycky9683f182009-06-19 04:56:29 +00001149 Value *PredVal = 0;
Chris Lattnera5ddb592008-04-22 21:40:39 +00001150 bool TrueDirection = false;
1151 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
Nick Lewycky9683f182009-06-19 04:56:29 +00001152 PredVal = PN->getIncomingValue(i);
Chris Lattnera5ddb592008-04-22 21:40:39 +00001153
Chris Lattner78567252009-11-06 18:15:14 +00001154 Constant *Res = GetResultOfComparison(Cmp->getPredicate(), PredVal, RHS);
Nick Lewycky9683f182009-06-19 04:56:29 +00001155 if (!Res) {
1156 PredVal = 0;
1157 continue;
1158 }
1159
Chris Lattnera5ddb592008-04-22 21:40:39 +00001160 // If this folded to a constant expr, we can't do anything.
1161 if (ConstantInt *ResC = dyn_cast<ConstantInt>(Res)) {
1162 TrueDirection = ResC->getZExtValue();
1163 break;
1164 }
1165 // If this folded to undef, just go the false way.
1166 if (isa<UndefValue>(Res)) {
1167 TrueDirection = false;
1168 break;
1169 }
1170
1171 // Otherwise, we can't fold this input.
Nick Lewycky9683f182009-06-19 04:56:29 +00001172 PredVal = 0;
Chris Lattnera5ddb592008-04-22 21:40:39 +00001173 }
1174
1175 // If no match, bail out.
Nick Lewycky9683f182009-06-19 04:56:29 +00001176 if (PredVal == 0)
Chris Lattnera5ddb592008-04-22 21:40:39 +00001177 return false;
1178
Chris Lattnera5ddb592008-04-22 21:40:39 +00001179 // If so, we can actually do this threading. Merge any common predecessors
1180 // that will act the same.
Nick Lewycky9683f182009-06-19 04:56:29 +00001181 BasicBlock *PredBB = FactorCommonPHIPreds(PN, PredVal);
Chris Lattnera5ddb592008-04-22 21:40:39 +00001182
1183 // Next, get our successor.
1184 BasicBlock *SuccBB = BB->getTerminator()->getSuccessor(!TrueDirection);
1185
Mike Stumpfe095f32009-05-04 18:40:41 +00001186 // Ok, try to thread it!
Chris Lattnerbdbf1a12009-10-11 04:33:43 +00001187 return ThreadEdge(BB, PredBB, SuccBB);
1188}
1189
Chris Lattnera5ddb592008-04-22 21:40:39 +00001190
Chris Lattner78c552e2009-10-11 07:24:57 +00001191/// AddPHINodeEntriesForMappedBlock - We're adding 'NewPred' as a new
1192/// predecessor to the PHIBB block. If it has PHI nodes, add entries for
1193/// NewPred using the entries from OldPred (suitably mapped).
1194static void AddPHINodeEntriesForMappedBlock(BasicBlock *PHIBB,
1195 BasicBlock *OldPred,
1196 BasicBlock *NewPred,
1197 DenseMap<Instruction*, Value*> &ValueMap) {
1198 for (BasicBlock::iterator PNI = PHIBB->begin();
1199 PHINode *PN = dyn_cast<PHINode>(PNI); ++PNI) {
1200 // Ok, we have a PHI node. Figure out what the incoming value was for the
1201 // DestBlock.
1202 Value *IV = PN->getIncomingValueForBlock(OldPred);
1203
1204 // Remap the value if necessary.
1205 if (Instruction *Inst = dyn_cast<Instruction>(IV)) {
1206 DenseMap<Instruction*, Value*>::iterator I = ValueMap.find(Inst);
1207 if (I != ValueMap.end())
1208 IV = I->second;
1209 }
1210
1211 PN->addIncoming(IV, NewPred);
1212 }
1213}
Chris Lattner6bf77502008-04-22 07:05:46 +00001214
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001215/// ThreadEdge - We have decided that it is safe and profitable to thread an
1216/// edge from PredBB to SuccBB across BB. Transform the IR to reflect this
1217/// change.
Mike Stumpfe095f32009-05-04 18:40:41 +00001218bool JumpThreading::ThreadEdge(BasicBlock *BB, BasicBlock *PredBB,
Chris Lattnerbdbf1a12009-10-11 04:33:43 +00001219 BasicBlock *SuccBB) {
Mike Stumpfe095f32009-05-04 18:40:41 +00001220 // If threading to the same block as we come from, we would infinite loop.
1221 if (SuccBB == BB) {
Daniel Dunbar93b67e42009-07-26 07:49:05 +00001222 DEBUG(errs() << " Not threading across BB '" << BB->getName()
1223 << "' - would thread to self!\n");
Mike Stumpfe095f32009-05-04 18:40:41 +00001224 return false;
1225 }
1226
1227 // If threading this would thread across a loop header, don't thread the edge.
1228 // See the comments above FindLoopHeaders for justifications and caveats.
1229 if (LoopHeaders.count(BB)) {
Daniel Dunbar93b67e42009-07-26 07:49:05 +00001230 DEBUG(errs() << " Not threading from '" << PredBB->getName()
1231 << "' across loop header BB '" << BB->getName()
1232 << "' to dest BB '" << SuccBB->getName()
1233 << "' - it might create an irreducible loop!\n");
Mike Stumpfe095f32009-05-04 18:40:41 +00001234 return false;
1235 }
1236
Chris Lattner78c552e2009-10-11 07:24:57 +00001237 unsigned JumpThreadCost = getJumpThreadDuplicationCost(BB);
1238 if (JumpThreadCost > Threshold) {
1239 DEBUG(errs() << " Not threading BB '" << BB->getName()
1240 << "' - Cost is too high: " << JumpThreadCost << "\n");
1241 return false;
1242 }
1243
Mike Stumpfe095f32009-05-04 18:40:41 +00001244 // And finally, do it!
Daniel Dunbar93b67e42009-07-26 07:49:05 +00001245 DEBUG(errs() << " Threading edge from '" << PredBB->getName() << "' to '"
Daniel Dunbar460f6562009-07-26 09:48:23 +00001246 << SuccBB->getName() << "' with cost: " << JumpThreadCost
Daniel Dunbar93b67e42009-07-26 07:49:05 +00001247 << ", across block:\n "
1248 << *BB << "\n");
Mike Stumpfe095f32009-05-04 18:40:41 +00001249
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001250 // We are going to have to map operands from the original BB block to the new
1251 // copy of the block 'NewBB'. If there are PHI nodes in BB, evaluate them to
1252 // account for entry from PredBB.
1253 DenseMap<Instruction*, Value*> ValueMapping;
1254
Owen Anderson1d0be152009-08-13 21:58:54 +00001255 BasicBlock *NewBB = BasicBlock::Create(BB->getContext(),
1256 BB->getName()+".thread",
1257 BB->getParent(), BB);
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001258 NewBB->moveAfter(PredBB);
1259
1260 BasicBlock::iterator BI = BB->begin();
1261 for (; PHINode *PN = dyn_cast<PHINode>(BI); ++BI)
1262 ValueMapping[PN] = PN->getIncomingValueForBlock(PredBB);
1263
1264 // Clone the non-phi instructions of BB into NewBB, keeping track of the
1265 // mapping and using it to remap operands in the cloned instructions.
1266 for (; !isa<TerminatorInst>(BI); ++BI) {
Nick Lewycky67760642009-09-27 07:38:41 +00001267 Instruction *New = BI->clone();
Daniel Dunbar460f6562009-07-26 09:48:23 +00001268 New->setName(BI->getName());
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001269 NewBB->getInstList().push_back(New);
1270 ValueMapping[BI] = New;
1271
1272 // Remap operands to patch up intra-block references.
1273 for (unsigned i = 0, e = New->getNumOperands(); i != e; ++i)
Dan Gohmanf530c922009-07-02 00:17:47 +00001274 if (Instruction *Inst = dyn_cast<Instruction>(New->getOperand(i))) {
1275 DenseMap<Instruction*, Value*>::iterator I = ValueMapping.find(Inst);
1276 if (I != ValueMapping.end())
1277 New->setOperand(i, I->second);
1278 }
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001279 }
1280
1281 // We didn't copy the terminator from BB over to NewBB, because there is now
1282 // an unconditional jump to SuccBB. Insert the unconditional jump.
1283 BranchInst::Create(SuccBB, NewBB);
1284
1285 // Check to see if SuccBB has PHI nodes. If so, we need to add entries to the
1286 // PHI nodes for NewBB now.
Chris Lattner78c552e2009-10-11 07:24:57 +00001287 AddPHINodeEntriesForMappedBlock(SuccBB, BB, NewBB, ValueMapping);
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001288
Chris Lattner433a0db2009-10-10 09:05:58 +00001289 // If there were values defined in BB that are used outside the block, then we
1290 // now have to update all uses of the value to use either the original value,
1291 // the cloned value, or some PHI derived value. This can require arbitrary
1292 // PHI insertion, of which we are prepared to do, clean these up now.
1293 SSAUpdater SSAUpdate;
1294 SmallVector<Use*, 16> UsesToRename;
1295 for (BasicBlock::iterator I = BB->begin(); I != BB->end(); ++I) {
1296 // Scan all uses of this instruction to see if it is used outside of its
1297 // block, and if so, record them in UsesToRename.
1298 for (Value::use_iterator UI = I->use_begin(), E = I->use_end(); UI != E;
1299 ++UI) {
1300 Instruction *User = cast<Instruction>(*UI);
1301 if (PHINode *UserPN = dyn_cast<PHINode>(User)) {
1302 if (UserPN->getIncomingBlock(UI) == BB)
1303 continue;
1304 } else if (User->getParent() == BB)
1305 continue;
1306
1307 UsesToRename.push_back(&UI.getUse());
1308 }
1309
1310 // If there are no uses outside the block, we're done with this instruction.
1311 if (UsesToRename.empty())
1312 continue;
1313
1314 DEBUG(errs() << "JT: Renaming non-local uses of: " << *I << "\n");
1315
1316 // We found a use of I outside of BB. Rename all uses of I that are outside
1317 // its block to be uses of the appropriate PHI node etc. See ValuesInBlocks
1318 // with the two values we know.
1319 SSAUpdate.Initialize(I);
1320 SSAUpdate.AddAvailableValue(BB, I);
1321 SSAUpdate.AddAvailableValue(NewBB, ValueMapping[I]);
1322
1323 while (!UsesToRename.empty())
1324 SSAUpdate.RewriteUse(*UsesToRename.pop_back_val());
1325 DEBUG(errs() << "\n");
1326 }
1327
1328
Chris Lattneref0c6742008-12-01 04:48:07 +00001329 // Ok, NewBB is good to go. Update the terminator of PredBB to jump to
Chris Lattnerbd3401f2008-04-20 22:39:42 +00001330 // NewBB instead of BB. This eliminates predecessors from BB, which requires
1331 // us to simplify any PHI nodes in BB.
1332 TerminatorInst *PredTerm = PredBB->getTerminator();
1333 for (unsigned i = 0, e = PredTerm->getNumSuccessors(); i != e; ++i)
1334 if (PredTerm->getSuccessor(i) == BB) {
1335 BB->removePredecessor(PredBB);
1336 PredTerm->setSuccessor(i, NewBB);
1337 }
Chris Lattneref0c6742008-12-01 04:48:07 +00001338
1339 // At this point, the IR is fully up to date and consistent. Do a quick scan
1340 // over the new instructions and zap any that are constants or dead. This
1341 // frequently happens because of phi translation.
1342 BI = NewBB->begin();
1343 for (BasicBlock::iterator E = NewBB->end(); BI != E; ) {
1344 Instruction *Inst = BI++;
Chris Lattner7b550cc2009-11-06 04:27:31 +00001345 if (Constant *C = ConstantFoldInstruction(Inst, TD)) {
Chris Lattneref0c6742008-12-01 04:48:07 +00001346 Inst->replaceAllUsesWith(C);
1347 Inst->eraseFromParent();
1348 continue;
1349 }
1350
1351 RecursivelyDeleteTriviallyDeadInstructions(Inst);
1352 }
Mike Stumpfe095f32009-05-04 18:40:41 +00001353
1354 // Threaded an edge!
1355 ++NumThreads;
1356 return true;
Chris Lattner177480b2008-04-20 21:13:06 +00001357}
Chris Lattner78c552e2009-10-11 07:24:57 +00001358
1359/// DuplicateCondBranchOnPHIIntoPred - PredBB contains an unconditional branch
1360/// to BB which contains an i1 PHI node and a conditional branch on that PHI.
1361/// If we can duplicate the contents of BB up into PredBB do so now, this
1362/// improves the odds that the branch will be on an analyzable instruction like
1363/// a compare.
1364bool JumpThreading::DuplicateCondBranchOnPHIIntoPred(BasicBlock *BB,
1365 BasicBlock *PredBB) {
1366 // If BB is a loop header, then duplicating this block outside the loop would
1367 // cause us to transform this into an irreducible loop, don't do this.
1368 // See the comments above FindLoopHeaders for justifications and caveats.
1369 if (LoopHeaders.count(BB)) {
1370 DEBUG(errs() << " Not duplicating loop header '" << BB->getName()
1371 << "' into predecessor block '" << PredBB->getName()
1372 << "' - it might create an irreducible loop!\n");
1373 return false;
1374 }
1375
1376 unsigned DuplicationCost = getJumpThreadDuplicationCost(BB);
1377 if (DuplicationCost > Threshold) {
1378 DEBUG(errs() << " Not duplicating BB '" << BB->getName()
1379 << "' - Cost is too high: " << DuplicationCost << "\n");
1380 return false;
1381 }
1382
1383 // Okay, we decided to do this! Clone all the instructions in BB onto the end
1384 // of PredBB.
1385 DEBUG(errs() << " Duplicating block '" << BB->getName() << "' into end of '"
1386 << PredBB->getName() << "' to eliminate branch on phi. Cost: "
1387 << DuplicationCost << " block is:" << *BB << "\n");
1388
1389 // We are going to have to map operands from the original BB block into the
1390 // PredBB block. Evaluate PHI nodes in BB.
1391 DenseMap<Instruction*, Value*> ValueMapping;
1392
1393 BasicBlock::iterator BI = BB->begin();
1394 for (; PHINode *PN = dyn_cast<PHINode>(BI); ++BI)
1395 ValueMapping[PN] = PN->getIncomingValueForBlock(PredBB);
1396
1397 BranchInst *OldPredBranch = cast<BranchInst>(PredBB->getTerminator());
1398
1399 // Clone the non-phi instructions of BB into PredBB, keeping track of the
1400 // mapping and using it to remap operands in the cloned instructions.
1401 for (; BI != BB->end(); ++BI) {
1402 Instruction *New = BI->clone();
1403 New->setName(BI->getName());
1404 PredBB->getInstList().insert(OldPredBranch, New);
1405 ValueMapping[BI] = New;
1406
1407 // Remap operands to patch up intra-block references.
1408 for (unsigned i = 0, e = New->getNumOperands(); i != e; ++i)
1409 if (Instruction *Inst = dyn_cast<Instruction>(New->getOperand(i))) {
1410 DenseMap<Instruction*, Value*>::iterator I = ValueMapping.find(Inst);
1411 if (I != ValueMapping.end())
1412 New->setOperand(i, I->second);
1413 }
1414 }
1415
1416 // Check to see if the targets of the branch had PHI nodes. If so, we need to
1417 // add entries to the PHI nodes for branch from PredBB now.
1418 BranchInst *BBBranch = cast<BranchInst>(BB->getTerminator());
1419 AddPHINodeEntriesForMappedBlock(BBBranch->getSuccessor(0), BB, PredBB,
1420 ValueMapping);
1421 AddPHINodeEntriesForMappedBlock(BBBranch->getSuccessor(1), BB, PredBB,
1422 ValueMapping);
1423
1424 // If there were values defined in BB that are used outside the block, then we
1425 // now have to update all uses of the value to use either the original value,
1426 // the cloned value, or some PHI derived value. This can require arbitrary
1427 // PHI insertion, of which we are prepared to do, clean these up now.
1428 SSAUpdater SSAUpdate;
1429 SmallVector<Use*, 16> UsesToRename;
1430 for (BasicBlock::iterator I = BB->begin(); I != BB->end(); ++I) {
1431 // Scan all uses of this instruction to see if it is used outside of its
1432 // block, and if so, record them in UsesToRename.
1433 for (Value::use_iterator UI = I->use_begin(), E = I->use_end(); UI != E;
1434 ++UI) {
1435 Instruction *User = cast<Instruction>(*UI);
1436 if (PHINode *UserPN = dyn_cast<PHINode>(User)) {
1437 if (UserPN->getIncomingBlock(UI) == BB)
1438 continue;
1439 } else if (User->getParent() == BB)
1440 continue;
1441
1442 UsesToRename.push_back(&UI.getUse());
1443 }
1444
1445 // If there are no uses outside the block, we're done with this instruction.
1446 if (UsesToRename.empty())
1447 continue;
1448
1449 DEBUG(errs() << "JT: Renaming non-local uses of: " << *I << "\n");
1450
1451 // We found a use of I outside of BB. Rename all uses of I that are outside
1452 // its block to be uses of the appropriate PHI node etc. See ValuesInBlocks
1453 // with the two values we know.
1454 SSAUpdate.Initialize(I);
1455 SSAUpdate.AddAvailableValue(BB, I);
1456 SSAUpdate.AddAvailableValue(PredBB, ValueMapping[I]);
1457
1458 while (!UsesToRename.empty())
1459 SSAUpdate.RewriteUse(*UsesToRename.pop_back_val());
1460 DEBUG(errs() << "\n");
1461 }
1462
1463 // PredBB no longer jumps to BB, remove entries in the PHI node for the edge
1464 // that we nuked.
1465 BB->removePredecessor(PredBB);
1466
1467 // Remove the unconditional branch at the end of the PredBB block.
1468 OldPredBranch->eraseFromParent();
1469
1470 ++NumDupes;
1471 return true;
1472}
1473
1474