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Chris Lattner4d1e46e2002-05-07 18:07:59 +00001//===-- Local.cpp - Functions to perform local transformations ------------===//
Misha Brukmanfd939082005-04-21 23:48:37 +00002//
John Criswellb576c942003-10-20 19:43:21 +00003// The LLVM Compiler Infrastructure
4//
Chris Lattner4ee451d2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Misha Brukmanfd939082005-04-21 23:48:37 +00007//
John Criswellb576c942003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattner4d1e46e2002-05-07 18:07:59 +00009//
10// This family of functions perform various local transformations to the
11// program.
12//
13//===----------------------------------------------------------------------===//
14
15#include "llvm/Transforms/Utils/Local.h"
Chris Lattner81ebc302004-01-12 18:35:03 +000016#include "llvm/Constants.h"
Chris Lattner6cc8a932009-06-16 17:23:12 +000017#include "llvm/GlobalAlias.h"
Devang Patelc79e1182009-03-06 00:19:37 +000018#include "llvm/GlobalVariable.h"
Chris Lattnerc5f52e62005-09-26 05:27:10 +000019#include "llvm/DerivedTypes.h"
Chris Lattner7822c2a2004-01-12 19:56:36 +000020#include "llvm/Instructions.h"
Chris Lattnercf110352004-06-11 06:16:23 +000021#include "llvm/Intrinsics.h"
Chris Lattner741c0ae2007-12-29 00:59:12 +000022#include "llvm/IntrinsicInst.h"
Chris Lattner19f2dc42009-12-29 09:12:29 +000023#include "llvm/ADT/DenseMap.h"
Dan Gohmanafc36a92009-05-02 18:29:22 +000024#include "llvm/ADT/SmallPtrSet.h"
Cameron Zwarich80f6a502011-01-08 17:01:52 +000025#include "llvm/Analysis/Dominators.h"
Chris Lattnercbbc6b72005-10-27 16:34:00 +000026#include "llvm/Analysis/ConstantFolding.h"
Chris Lattner40d8c282009-11-10 22:26:15 +000027#include "llvm/Analysis/InstructionSimplify.h"
Andreas Neustifterad809812009-09-16 09:26:52 +000028#include "llvm/Analysis/ProfileInfo.h"
Chris Lattner687140c2010-12-25 20:37:57 +000029#include "llvm/Analysis/ValueTracking.h"
Chris Lattner9fa038d2007-01-30 23:13:49 +000030#include "llvm/Target/TargetData.h"
Chris Lattnerdce94d92009-11-10 05:59:26 +000031#include "llvm/Support/CFG.h"
32#include "llvm/Support/Debug.h"
Chris Lattnerc5f52e62005-09-26 05:27:10 +000033#include "llvm/Support/GetElementPtrTypeIterator.h"
34#include "llvm/Support/MathExtras.h"
Chris Lattner19f2dc42009-12-29 09:12:29 +000035#include "llvm/Support/ValueHandle.h"
Chris Lattnerdce94d92009-11-10 05:59:26 +000036#include "llvm/Support/raw_ostream.h"
Chris Lattnerabbc2dd2003-12-19 05:56:28 +000037using namespace llvm;
Brian Gaeked0fde302003-11-11 22:41:34 +000038
Chris Lattner4d1e46e2002-05-07 18:07:59 +000039//===----------------------------------------------------------------------===//
Chris Lattner3481f242008-11-27 22:57:53 +000040// Local constant propagation.
Chris Lattner4d1e46e2002-05-07 18:07:59 +000041//
42
Chris Lattner4d1e46e2002-05-07 18:07:59 +000043// ConstantFoldTerminator - If a terminator instruction is predicated on a
44// constant value, convert it into an unconditional branch to the constant
45// destination.
46//
Chris Lattnerabbc2dd2003-12-19 05:56:28 +000047bool llvm::ConstantFoldTerminator(BasicBlock *BB) {
Chris Lattner76ae3442002-05-21 20:04:50 +000048 TerminatorInst *T = BB->getTerminator();
Misha Brukmanfd939082005-04-21 23:48:37 +000049
Chris Lattner4d1e46e2002-05-07 18:07:59 +000050 // Branch - See if we are conditional jumping on constant
51 if (BranchInst *BI = dyn_cast<BranchInst>(T)) {
52 if (BI->isUnconditional()) return false; // Can't optimize uncond branch
Gabor Greifc1bb13f2009-01-30 18:21:13 +000053 BasicBlock *Dest1 = BI->getSuccessor(0);
54 BasicBlock *Dest2 = BI->getSuccessor(1);
Chris Lattner4d1e46e2002-05-07 18:07:59 +000055
Zhou Sheng6b6b6ef2007-01-11 12:24:14 +000056 if (ConstantInt *Cond = dyn_cast<ConstantInt>(BI->getCondition())) {
Chris Lattner4d1e46e2002-05-07 18:07:59 +000057 // Are we branching on constant?
58 // YES. Change to unconditional branch...
Reid Spencer579dca12007-01-12 04:24:46 +000059 BasicBlock *Destination = Cond->getZExtValue() ? Dest1 : Dest2;
60 BasicBlock *OldDest = Cond->getZExtValue() ? Dest2 : Dest1;
Chris Lattner4d1e46e2002-05-07 18:07:59 +000061
Misha Brukmanfd939082005-04-21 23:48:37 +000062 //cerr << "Function: " << T->getParent()->getParent()
63 // << "\nRemoving branch from " << T->getParent()
Chris Lattner4d1e46e2002-05-07 18:07:59 +000064 // << "\n\nTo: " << OldDest << endl;
65
66 // Let the basic block know that we are letting go of it. Based on this,
67 // it will adjust it's PHI nodes.
68 assert(BI->getParent() && "Terminator not inserted in block!");
69 OldDest->removePredecessor(BI->getParent());
70
Jay Foad8f9ffbd2011-01-07 20:25:56 +000071 // Replace the conditional branch with an unconditional one.
72 BranchInst::Create(Destination, BI);
73 BI->eraseFromParent();
Chris Lattner4d1e46e2002-05-07 18:07:59 +000074 return true;
Chris Lattner0a4c6782009-11-01 03:40:38 +000075 }
76
77 if (Dest2 == Dest1) { // Conditional branch to same location?
Misha Brukmanfd939082005-04-21 23:48:37 +000078 // This branch matches something like this:
Chris Lattner4d1e46e2002-05-07 18:07:59 +000079 // br bool %cond, label %Dest, label %Dest
80 // and changes it into: br label %Dest
81
82 // Let the basic block know that we are letting go of one copy of it.
83 assert(BI->getParent() && "Terminator not inserted in block!");
84 Dest1->removePredecessor(BI->getParent());
85
Jay Foad8f9ffbd2011-01-07 20:25:56 +000086 // Replace the conditional branch with an unconditional one.
87 BranchInst::Create(Dest1, BI);
88 BI->eraseFromParent();
Chris Lattner4d1e46e2002-05-07 18:07:59 +000089 return true;
90 }
Chris Lattner0a4c6782009-11-01 03:40:38 +000091 return false;
92 }
93
94 if (SwitchInst *SI = dyn_cast<SwitchInst>(T)) {
Chris Lattner10b1f5a2003-08-17 20:21:14 +000095 // If we are switching on a constant, we can convert the switch into a
96 // single branch instruction!
97 ConstantInt *CI = dyn_cast<ConstantInt>(SI->getCondition());
98 BasicBlock *TheOnlyDest = SI->getSuccessor(0); // The default dest
Chris Lattner7d6c24c2003-08-23 23:18:19 +000099 BasicBlock *DefaultDest = TheOnlyDest;
100 assert(TheOnlyDest == SI->getDefaultDest() &&
101 "Default destination is not successor #0?");
Chris Lattner694e37f2003-08-17 19:41:53 +0000102
Chris Lattner0a4c6782009-11-01 03:40:38 +0000103 // Figure out which case it goes to.
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000104 for (unsigned i = 1, e = SI->getNumSuccessors(); i != e; ++i) {
105 // Found case matching a constant operand?
106 if (SI->getSuccessorValue(i) == CI) {
107 TheOnlyDest = SI->getSuccessor(i);
108 break;
109 }
Chris Lattner694e37f2003-08-17 19:41:53 +0000110
Chris Lattner7d6c24c2003-08-23 23:18:19 +0000111 // Check to see if this branch is going to the same place as the default
112 // dest. If so, eliminate it as an explicit compare.
113 if (SI->getSuccessor(i) == DefaultDest) {
Chris Lattner0a4c6782009-11-01 03:40:38 +0000114 // Remove this entry.
Chris Lattner7d6c24c2003-08-23 23:18:19 +0000115 DefaultDest->removePredecessor(SI->getParent());
116 SI->removeCase(i);
117 --i; --e; // Don't skip an entry...
118 continue;
119 }
120
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000121 // Otherwise, check to see if the switch only branches to one destination.
122 // We do this by reseting "TheOnlyDest" to null when we find two non-equal
123 // destinations.
124 if (SI->getSuccessor(i) != TheOnlyDest) TheOnlyDest = 0;
Chris Lattner694e37f2003-08-17 19:41:53 +0000125 }
126
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000127 if (CI && !TheOnlyDest) {
128 // Branching on a constant, but not any of the cases, go to the default
129 // successor.
130 TheOnlyDest = SI->getDefaultDest();
131 }
132
133 // If we found a single destination that we can fold the switch into, do so
134 // now.
135 if (TheOnlyDest) {
Chris Lattner0a4c6782009-11-01 03:40:38 +0000136 // Insert the new branch.
Gabor Greif051a9502008-04-06 20:25:17 +0000137 BranchInst::Create(TheOnlyDest, SI);
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000138 BasicBlock *BB = SI->getParent();
139
140 // Remove entries from PHI nodes which we no longer branch to...
141 for (unsigned i = 0, e = SI->getNumSuccessors(); i != e; ++i) {
142 // Found case matching a constant operand?
143 BasicBlock *Succ = SI->getSuccessor(i);
144 if (Succ == TheOnlyDest)
145 TheOnlyDest = 0; // Don't modify the first branch to TheOnlyDest
146 else
147 Succ->removePredecessor(BB);
148 }
149
Chris Lattner0a4c6782009-11-01 03:40:38 +0000150 // Delete the old switch.
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000151 BB->getInstList().erase(SI);
152 return true;
Chris Lattner0a4c6782009-11-01 03:40:38 +0000153 }
154
155 if (SI->getNumSuccessors() == 2) {
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000156 // Otherwise, we can fold this switch into a conditional branch
157 // instruction if it has only one non-default destination.
Owen Anderson333c4002009-07-09 23:48:35 +0000158 Value *Cond = new ICmpInst(SI, ICmpInst::ICMP_EQ, SI->getCondition(),
159 SI->getSuccessorValue(1), "cond");
Chris Lattner0a4c6782009-11-01 03:40:38 +0000160 // Insert the new branch.
Gabor Greif051a9502008-04-06 20:25:17 +0000161 BranchInst::Create(SI->getSuccessor(1), SI->getSuccessor(0), Cond, SI);
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000162
Chris Lattner0a4c6782009-11-01 03:40:38 +0000163 // Delete the old switch.
Dan Gohman1adec832008-06-21 22:08:46 +0000164 SI->eraseFromParent();
Chris Lattner10b1f5a2003-08-17 20:21:14 +0000165 return true;
166 }
Chris Lattner0a4c6782009-11-01 03:40:38 +0000167 return false;
Chris Lattner4d1e46e2002-05-07 18:07:59 +0000168 }
Chris Lattner0a4c6782009-11-01 03:40:38 +0000169
170 if (IndirectBrInst *IBI = dyn_cast<IndirectBrInst>(T)) {
171 // indirectbr blockaddress(@F, @BB) -> br label @BB
172 if (BlockAddress *BA =
173 dyn_cast<BlockAddress>(IBI->getAddress()->stripPointerCasts())) {
174 BasicBlock *TheOnlyDest = BA->getBasicBlock();
175 // Insert the new branch.
176 BranchInst::Create(TheOnlyDest, IBI);
177
178 for (unsigned i = 0, e = IBI->getNumDestinations(); i != e; ++i) {
179 if (IBI->getDestination(i) == TheOnlyDest)
180 TheOnlyDest = 0;
181 else
182 IBI->getDestination(i)->removePredecessor(IBI->getParent());
183 }
184 IBI->eraseFromParent();
185
186 // If we didn't find our destination in the IBI successor list, then we
187 // have undefined behavior. Replace the unconditional branch with an
188 // 'unreachable' instruction.
189 if (TheOnlyDest) {
190 BB->getTerminator()->eraseFromParent();
191 new UnreachableInst(BB->getContext(), BB);
192 }
193
194 return true;
195 }
196 }
197
Chris Lattner4d1e46e2002-05-07 18:07:59 +0000198 return false;
199}
200
Chris Lattner4d1e46e2002-05-07 18:07:59 +0000201
202//===----------------------------------------------------------------------===//
Chris Lattner40d8c282009-11-10 22:26:15 +0000203// Local dead code elimination.
Chris Lattner4d1e46e2002-05-07 18:07:59 +0000204//
205
Chris Lattner3481f242008-11-27 22:57:53 +0000206/// isInstructionTriviallyDead - Return true if the result produced by the
207/// instruction is not used, and the instruction has no side effects.
208///
Chris Lattnerabbc2dd2003-12-19 05:56:28 +0000209bool llvm::isInstructionTriviallyDead(Instruction *I) {
Chris Lattnerec710c52005-05-06 05:27:34 +0000210 if (!I->use_empty() || isa<TerminatorInst>(I)) return false;
Jeff Cohen00b168892005-07-27 06:12:32 +0000211
Dale Johannesen127a7932009-03-03 23:30:00 +0000212 // We don't want debug info removed by anything this general.
213 if (isa<DbgInfoIntrinsic>(I)) return false;
Chris Lattnerec710c52005-05-06 05:27:34 +0000214
Duncan Sands7af1c782009-05-06 06:49:50 +0000215 if (!I->mayHaveSideEffects()) return true;
216
217 // Special case intrinsics that "may have side effects" but can be deleted
218 // when dead.
Chris Lattner741c0ae2007-12-29 00:59:12 +0000219 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I))
220 // Safe to delete llvm.stacksave if dead.
221 if (II->getIntrinsicID() == Intrinsic::stacksave)
222 return true;
Chris Lattnerec710c52005-05-06 05:27:34 +0000223 return false;
Chris Lattner4d1e46e2002-05-07 18:07:59 +0000224}
225
Chris Lattner3481f242008-11-27 22:57:53 +0000226/// RecursivelyDeleteTriviallyDeadInstructions - If the specified value is a
227/// trivially dead instruction, delete it. If that makes any of its operands
Dan Gohman90fe0bd2010-01-05 15:45:31 +0000228/// trivially dead, delete them too, recursively. Return true if any
229/// instructions were deleted.
230bool llvm::RecursivelyDeleteTriviallyDeadInstructions(Value *V) {
Chris Lattner3481f242008-11-27 22:57:53 +0000231 Instruction *I = dyn_cast<Instruction>(V);
Chris Lattner76057302008-11-28 01:20:46 +0000232 if (!I || !I->use_empty() || !isInstructionTriviallyDead(I))
Dan Gohman90fe0bd2010-01-05 15:45:31 +0000233 return false;
Chris Lattner3481f242008-11-27 22:57:53 +0000234
Chris Lattner76057302008-11-28 01:20:46 +0000235 SmallVector<Instruction*, 16> DeadInsts;
236 DeadInsts.push_back(I);
Chris Lattner3481f242008-11-27 22:57:53 +0000237
Dan Gohman321a8132010-01-05 16:27:25 +0000238 do {
Dan Gohmane9d87f42009-05-06 17:22:41 +0000239 I = DeadInsts.pop_back_val();
Chris Lattner28721772008-11-28 00:58:15 +0000240
Chris Lattner76057302008-11-28 01:20:46 +0000241 // Null out all of the instruction's operands to see if any operand becomes
242 // dead as we go.
243 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) {
244 Value *OpV = I->getOperand(i);
245 I->setOperand(i, 0);
246
247 if (!OpV->use_empty()) continue;
248
249 // If the operand is an instruction that became dead as we nulled out the
250 // operand, and if it is 'trivially' dead, delete it in a future loop
251 // iteration.
252 if (Instruction *OpI = dyn_cast<Instruction>(OpV))
253 if (isInstructionTriviallyDead(OpI))
254 DeadInsts.push_back(OpI);
255 }
256
257 I->eraseFromParent();
Dan Gohman321a8132010-01-05 16:27:25 +0000258 } while (!DeadInsts.empty());
Dan Gohman90fe0bd2010-01-05 15:45:31 +0000259
260 return true;
Chris Lattner4d1e46e2002-05-07 18:07:59 +0000261}
Chris Lattnerb29714a2008-11-27 07:43:12 +0000262
Nick Lewycky1a4021a2011-02-20 08:38:20 +0000263/// areAllUsesEqual - Check whether the uses of a value are all the same.
264/// This is similar to Instruction::hasOneUse() except this will also return
Duncan Sandsb4098ba2011-02-21 16:27:36 +0000265/// true when there are no uses or multiple uses that all refer to the same
266/// value.
Nick Lewycky1a4021a2011-02-20 08:38:20 +0000267static bool areAllUsesEqual(Instruction *I) {
268 Value::use_iterator UI = I->use_begin();
269 Value::use_iterator UE = I->use_end();
270 if (UI == UE)
Duncan Sandsb4098ba2011-02-21 16:27:36 +0000271 return true;
Nick Lewycky1a4021a2011-02-20 08:38:20 +0000272
273 User *TheUse = *UI;
274 for (++UI; UI != UE; ++UI) {
275 if (*UI != TheUse)
276 return false;
277 }
278 return true;
279}
280
Dan Gohmanafc36a92009-05-02 18:29:22 +0000281/// RecursivelyDeleteDeadPHINode - If the specified value is an effectively
282/// dead PHI node, due to being a def-use chain of single-use nodes that
283/// either forms a cycle or is terminated by a trivially dead instruction,
284/// delete it. If that makes any of its operands trivially dead, delete them
Dan Gohman90fe0bd2010-01-05 15:45:31 +0000285/// too, recursively. Return true if the PHI node is actually deleted.
Nick Lewycky1a4021a2011-02-20 08:38:20 +0000286bool llvm::RecursivelyDeleteDeadPHINode(PHINode *PN) {
Duncan Sandsb4098ba2011-02-21 16:27:36 +0000287 SmallPtrSet<Instruction*, 4> Visited;
288 for (Instruction *I = PN; areAllUsesEqual(I) && !I->mayHaveSideEffects();
289 I = cast<Instruction>(*I->use_begin())) {
290 if (I->use_empty())
291 return RecursivelyDeleteTriviallyDeadInstructions(I);
Nick Lewyckyeff5e692011-02-20 18:05:56 +0000292
Duncan Sandsb4098ba2011-02-21 16:27:36 +0000293 // If we find an instruction more than once, we're on a cycle that
Dan Gohmanafc36a92009-05-02 18:29:22 +0000294 // won't prove fruitful.
Duncan Sandsb4098ba2011-02-21 16:27:36 +0000295 if (!Visited.insert(I)) {
296 // Break the cycle and delete the instruction and its operands.
297 I->replaceAllUsesWith(UndefValue::get(I->getType()));
298 return RecursivelyDeleteTriviallyDeadInstructions(I);
299 }
300 }
301 return false;
Dan Gohmanafc36a92009-05-02 18:29:22 +0000302}
Chris Lattner3481f242008-11-27 22:57:53 +0000303
Chris Lattnere234a302010-01-12 19:40:54 +0000304/// SimplifyInstructionsInBlock - Scan the specified basic block and try to
305/// simplify any instructions in it and recursively delete dead instructions.
306///
307/// This returns true if it changed the code, note that it can delete
308/// instructions in other blocks as well in this block.
309bool llvm::SimplifyInstructionsInBlock(BasicBlock *BB, const TargetData *TD) {
310 bool MadeChange = false;
311 for (BasicBlock::iterator BI = BB->begin(), E = BB->end(); BI != E; ) {
312 Instruction *Inst = BI++;
313
314 if (Value *V = SimplifyInstruction(Inst, TD)) {
315 WeakVH BIHandle(BI);
316 ReplaceAndSimplifyAllUses(Inst, V, TD);
317 MadeChange = true;
Chris Lattner35a939b2010-07-15 06:06:04 +0000318 if (BIHandle != BI)
Chris Lattnere234a302010-01-12 19:40:54 +0000319 BI = BB->begin();
320 continue;
321 }
322
323 MadeChange |= RecursivelyDeleteTriviallyDeadInstructions(Inst);
324 }
325 return MadeChange;
326}
327
Chris Lattnerb29714a2008-11-27 07:43:12 +0000328//===----------------------------------------------------------------------===//
Chris Lattner40d8c282009-11-10 22:26:15 +0000329// Control Flow Graph Restructuring.
Chris Lattnerb29714a2008-11-27 07:43:12 +0000330//
331
Chris Lattner40d8c282009-11-10 22:26:15 +0000332
333/// RemovePredecessorAndSimplify - Like BasicBlock::removePredecessor, this
334/// method is called when we're about to delete Pred as a predecessor of BB. If
335/// BB contains any PHI nodes, this drops the entries in the PHI nodes for Pred.
336///
337/// Unlike the removePredecessor method, this attempts to simplify uses of PHI
338/// nodes that collapse into identity values. For example, if we have:
339/// x = phi(1, 0, 0, 0)
340/// y = and x, z
341///
342/// .. and delete the predecessor corresponding to the '1', this will attempt to
343/// recursively fold the and to 0.
344void llvm::RemovePredecessorAndSimplify(BasicBlock *BB, BasicBlock *Pred,
345 TargetData *TD) {
346 // This only adjusts blocks with PHI nodes.
347 if (!isa<PHINode>(BB->begin()))
348 return;
349
350 // Remove the entries for Pred from the PHI nodes in BB, but do not simplify
351 // them down. This will leave us with single entry phi nodes and other phis
352 // that can be removed.
353 BB->removePredecessor(Pred, true);
354
355 WeakVH PhiIt = &BB->front();
356 while (PHINode *PN = dyn_cast<PHINode>(PhiIt)) {
357 PhiIt = &*++BasicBlock::iterator(cast<Instruction>(PhiIt));
Duncan Sands6ac33862010-11-17 04:12:05 +0000358
359 Value *PNV = SimplifyInstruction(PN, TD);
Chris Lattner40d8c282009-11-10 22:26:15 +0000360 if (PNV == 0) continue;
Duncan Sands6ac33862010-11-17 04:12:05 +0000361
Chris Lattner40d8c282009-11-10 22:26:15 +0000362 // If we're able to simplify the phi to a single value, substitute the new
363 // value into all of its uses.
Duncan Sands6ac33862010-11-17 04:12:05 +0000364 assert(PNV != PN && "SimplifyInstruction broken!");
Chris Lattner40d8c282009-11-10 22:26:15 +0000365
Chris Lattner35a939b2010-07-15 06:06:04 +0000366 Value *OldPhiIt = PhiIt;
Chris Lattner40d8c282009-11-10 22:26:15 +0000367 ReplaceAndSimplifyAllUses(PN, PNV, TD);
368
369 // If recursive simplification ended up deleting the next PHI node we would
370 // iterate to, then our iterator is invalid, restart scanning from the top
371 // of the block.
Chris Lattner35a939b2010-07-15 06:06:04 +0000372 if (PhiIt != OldPhiIt) PhiIt = &BB->front();
Chris Lattner40d8c282009-11-10 22:26:15 +0000373 }
374}
375
376
Chris Lattnerb29714a2008-11-27 07:43:12 +0000377/// MergeBasicBlockIntoOnlyPred - DestBB is a block with one predecessor and its
378/// predecessor is known to have one successor (DestBB!). Eliminate the edge
379/// between them, moving the instructions in the predecessor into DestBB and
380/// deleting the predecessor block.
381///
Andreas Neustifterad809812009-09-16 09:26:52 +0000382void llvm::MergeBasicBlockIntoOnlyPred(BasicBlock *DestBB, Pass *P) {
Chris Lattnerb29714a2008-11-27 07:43:12 +0000383 // If BB has single-entry PHI nodes, fold them.
384 while (PHINode *PN = dyn_cast<PHINode>(DestBB->begin())) {
385 Value *NewVal = PN->getIncomingValue(0);
386 // Replace self referencing PHI with undef, it must be dead.
Owen Anderson9e9a0d52009-07-30 23:03:37 +0000387 if (NewVal == PN) NewVal = UndefValue::get(PN->getType());
Chris Lattnerb29714a2008-11-27 07:43:12 +0000388 PN->replaceAllUsesWith(NewVal);
389 PN->eraseFromParent();
390 }
391
392 BasicBlock *PredBB = DestBB->getSinglePredecessor();
393 assert(PredBB && "Block doesn't have a single predecessor!");
394
395 // Splice all the instructions from PredBB to DestBB.
396 PredBB->getTerminator()->eraseFromParent();
397 DestBB->getInstList().splice(DestBB->begin(), PredBB->getInstList());
Chris Lattner37914c82010-02-15 20:47:49 +0000398
399 // Zap anything that took the address of DestBB. Not doing this will give the
400 // address an invalid value.
401 if (DestBB->hasAddressTaken()) {
402 BlockAddress *BA = BlockAddress::get(DestBB);
403 Constant *Replacement =
404 ConstantInt::get(llvm::Type::getInt32Ty(BA->getContext()), 1);
405 BA->replaceAllUsesWith(ConstantExpr::getIntToPtr(Replacement,
406 BA->getType()));
407 BA->destroyConstant();
408 }
Chris Lattnerb29714a2008-11-27 07:43:12 +0000409
410 // Anything that branched to PredBB now branches to DestBB.
411 PredBB->replaceAllUsesWith(DestBB);
412
Andreas Neustifterad809812009-09-16 09:26:52 +0000413 if (P) {
Cameron Zwarich80f6a502011-01-08 17:01:52 +0000414 DominatorTree *DT = P->getAnalysisIfAvailable<DominatorTree>();
415 if (DT) {
416 BasicBlock *PredBBIDom = DT->getNode(PredBB)->getIDom()->getBlock();
417 DT->changeImmediateDominator(DestBB, PredBBIDom);
418 DT->eraseNode(PredBB);
419 }
Andreas Neustifterad809812009-09-16 09:26:52 +0000420 ProfileInfo *PI = P->getAnalysisIfAvailable<ProfileInfo>();
421 if (PI) {
422 PI->replaceAllUses(PredBB, DestBB);
423 PI->removeEdge(ProfileInfo::getEdge(PredBB, DestBB));
424 }
425 }
Chris Lattnerb29714a2008-11-27 07:43:12 +0000426 // Nuke BB.
427 PredBB->eraseFromParent();
428}
Devang Patel4afc90d2009-02-10 07:00:59 +0000429
Chris Lattnerdce94d92009-11-10 05:59:26 +0000430/// CanPropagatePredecessorsForPHIs - Return true if we can fold BB, an
431/// almost-empty BB ending in an unconditional branch to Succ, into succ.
432///
433/// Assumption: Succ is the single successor for BB.
434///
435static bool CanPropagatePredecessorsForPHIs(BasicBlock *BB, BasicBlock *Succ) {
436 assert(*succ_begin(BB) == Succ && "Succ is not successor of BB!");
437
David Greenefae77062010-01-05 01:26:57 +0000438 DEBUG(dbgs() << "Looking to fold " << BB->getName() << " into "
Chris Lattnerdce94d92009-11-10 05:59:26 +0000439 << Succ->getName() << "\n");
440 // Shortcut, if there is only a single predecessor it must be BB and merging
441 // is always safe
442 if (Succ->getSinglePredecessor()) return true;
443
444 // Make a list of the predecessors of BB
445 typedef SmallPtrSet<BasicBlock*, 16> BlockSet;
446 BlockSet BBPreds(pred_begin(BB), pred_end(BB));
447
448 // Use that list to make another list of common predecessors of BB and Succ
449 BlockSet CommonPreds;
450 for (pred_iterator PI = pred_begin(Succ), PE = pred_end(Succ);
Gabor Greiff1b28742010-07-12 10:49:54 +0000451 PI != PE; ++PI) {
452 BasicBlock *P = *PI;
453 if (BBPreds.count(P))
454 CommonPreds.insert(P);
455 }
Chris Lattnerdce94d92009-11-10 05:59:26 +0000456
457 // Shortcut, if there are no common predecessors, merging is always safe
458 if (CommonPreds.empty())
459 return true;
460
461 // Look at all the phi nodes in Succ, to see if they present a conflict when
462 // merging these blocks
463 for (BasicBlock::iterator I = Succ->begin(); isa<PHINode>(I); ++I) {
464 PHINode *PN = cast<PHINode>(I);
465
466 // If the incoming value from BB is again a PHINode in
467 // BB which has the same incoming value for *PI as PN does, we can
468 // merge the phi nodes and then the blocks can still be merged
469 PHINode *BBPN = dyn_cast<PHINode>(PN->getIncomingValueForBlock(BB));
470 if (BBPN && BBPN->getParent() == BB) {
471 for (BlockSet::iterator PI = CommonPreds.begin(), PE = CommonPreds.end();
472 PI != PE; PI++) {
473 if (BBPN->getIncomingValueForBlock(*PI)
474 != PN->getIncomingValueForBlock(*PI)) {
David Greenefae77062010-01-05 01:26:57 +0000475 DEBUG(dbgs() << "Can't fold, phi node " << PN->getName() << " in "
Chris Lattnerdce94d92009-11-10 05:59:26 +0000476 << Succ->getName() << " is conflicting with "
477 << BBPN->getName() << " with regard to common predecessor "
478 << (*PI)->getName() << "\n");
479 return false;
480 }
481 }
482 } else {
483 Value* Val = PN->getIncomingValueForBlock(BB);
484 for (BlockSet::iterator PI = CommonPreds.begin(), PE = CommonPreds.end();
485 PI != PE; PI++) {
486 // See if the incoming value for the common predecessor is equal to the
487 // one for BB, in which case this phi node will not prevent the merging
488 // of the block.
489 if (Val != PN->getIncomingValueForBlock(*PI)) {
David Greenefae77062010-01-05 01:26:57 +0000490 DEBUG(dbgs() << "Can't fold, phi node " << PN->getName() << " in "
Chris Lattnerdce94d92009-11-10 05:59:26 +0000491 << Succ->getName() << " is conflicting with regard to common "
492 << "predecessor " << (*PI)->getName() << "\n");
493 return false;
494 }
495 }
496 }
497 }
498
499 return true;
500}
501
502/// TryToSimplifyUncondBranchFromEmptyBlock - BB is known to contain an
503/// unconditional branch, and contains no instructions other than PHI nodes,
504/// potential debug intrinsics and the branch. If possible, eliminate BB by
505/// rewriting all the predecessors to branch to the successor block and return
506/// true. If we can't transform, return false.
507bool llvm::TryToSimplifyUncondBranchFromEmptyBlock(BasicBlock *BB) {
Dan Gohmane2c6d132010-08-14 00:29:42 +0000508 assert(BB != &BB->getParent()->getEntryBlock() &&
509 "TryToSimplifyUncondBranchFromEmptyBlock called on entry block!");
510
Chris Lattnerdce94d92009-11-10 05:59:26 +0000511 // We can't eliminate infinite loops.
512 BasicBlock *Succ = cast<BranchInst>(BB->getTerminator())->getSuccessor(0);
513 if (BB == Succ) return false;
514
515 // Check to see if merging these blocks would cause conflicts for any of the
516 // phi nodes in BB or Succ. If not, we can safely merge.
517 if (!CanPropagatePredecessorsForPHIs(BB, Succ)) return false;
518
519 // Check for cases where Succ has multiple predecessors and a PHI node in BB
520 // has uses which will not disappear when the PHI nodes are merged. It is
521 // possible to handle such cases, but difficult: it requires checking whether
522 // BB dominates Succ, which is non-trivial to calculate in the case where
523 // Succ has multiple predecessors. Also, it requires checking whether
524 // constructing the necessary self-referential PHI node doesn't intoduce any
525 // conflicts; this isn't too difficult, but the previous code for doing this
526 // was incorrect.
527 //
528 // Note that if this check finds a live use, BB dominates Succ, so BB is
529 // something like a loop pre-header (or rarely, a part of an irreducible CFG);
530 // folding the branch isn't profitable in that case anyway.
531 if (!Succ->getSinglePredecessor()) {
532 BasicBlock::iterator BBI = BB->begin();
533 while (isa<PHINode>(*BBI)) {
534 for (Value::use_iterator UI = BBI->use_begin(), E = BBI->use_end();
535 UI != E; ++UI) {
536 if (PHINode* PN = dyn_cast<PHINode>(*UI)) {
537 if (PN->getIncomingBlock(UI) != BB)
538 return false;
539 } else {
540 return false;
541 }
542 }
543 ++BBI;
544 }
545 }
546
David Greenefae77062010-01-05 01:26:57 +0000547 DEBUG(dbgs() << "Killing Trivial BB: \n" << *BB);
Chris Lattnerdce94d92009-11-10 05:59:26 +0000548
549 if (isa<PHINode>(Succ->begin())) {
550 // If there is more than one pred of succ, and there are PHI nodes in
551 // the successor, then we need to add incoming edges for the PHI nodes
552 //
553 const SmallVector<BasicBlock*, 16> BBPreds(pred_begin(BB), pred_end(BB));
554
555 // Loop over all of the PHI nodes in the successor of BB.
556 for (BasicBlock::iterator I = Succ->begin(); isa<PHINode>(I); ++I) {
557 PHINode *PN = cast<PHINode>(I);
558 Value *OldVal = PN->removeIncomingValue(BB, false);
559 assert(OldVal && "No entry in PHI for Pred BB!");
560
561 // If this incoming value is one of the PHI nodes in BB, the new entries
562 // in the PHI node are the entries from the old PHI.
563 if (isa<PHINode>(OldVal) && cast<PHINode>(OldVal)->getParent() == BB) {
564 PHINode *OldValPN = cast<PHINode>(OldVal);
565 for (unsigned i = 0, e = OldValPN->getNumIncomingValues(); i != e; ++i)
566 // Note that, since we are merging phi nodes and BB and Succ might
567 // have common predecessors, we could end up with a phi node with
568 // identical incoming branches. This will be cleaned up later (and
569 // will trigger asserts if we try to clean it up now, without also
570 // simplifying the corresponding conditional branch).
571 PN->addIncoming(OldValPN->getIncomingValue(i),
572 OldValPN->getIncomingBlock(i));
573 } else {
574 // Add an incoming value for each of the new incoming values.
575 for (unsigned i = 0, e = BBPreds.size(); i != e; ++i)
576 PN->addIncoming(OldVal, BBPreds[i]);
577 }
578 }
579 }
580
581 while (PHINode *PN = dyn_cast<PHINode>(&BB->front())) {
582 if (Succ->getSinglePredecessor()) {
583 // BB is the only predecessor of Succ, so Succ will end up with exactly
584 // the same predecessors BB had.
585 Succ->getInstList().splice(Succ->begin(),
586 BB->getInstList(), BB->begin());
587 } else {
588 // We explicitly check for such uses in CanPropagatePredecessorsForPHIs.
589 assert(PN->use_empty() && "There shouldn't be any uses here!");
590 PN->eraseFromParent();
591 }
592 }
593
594 // Everything that jumped to BB now goes to Succ.
595 BB->replaceAllUsesWith(Succ);
596 if (!Succ->hasName()) Succ->takeName(BB);
597 BB->eraseFromParent(); // Delete the old basic block.
598 return true;
599}
600
Jim Grosbach43a82412009-12-02 17:06:45 +0000601/// EliminateDuplicatePHINodes - Check for and eliminate duplicate PHI
602/// nodes in this block. This doesn't try to be clever about PHI nodes
603/// which differ only in the order of the incoming values, but instcombine
604/// orders them so it usually won't matter.
605///
606bool llvm::EliminateDuplicatePHINodes(BasicBlock *BB) {
607 bool Changed = false;
608
609 // This implementation doesn't currently consider undef operands
610 // specially. Theroetically, two phis which are identical except for
611 // one having an undef where the other doesn't could be collapsed.
612
613 // Map from PHI hash values to PHI nodes. If multiple PHIs have
614 // the same hash value, the element is the first PHI in the
615 // linked list in CollisionMap.
616 DenseMap<uintptr_t, PHINode *> HashMap;
617
618 // Maintain linked lists of PHI nodes with common hash values.
619 DenseMap<PHINode *, PHINode *> CollisionMap;
620
621 // Examine each PHI.
622 for (BasicBlock::iterator I = BB->begin();
623 PHINode *PN = dyn_cast<PHINode>(I++); ) {
624 // Compute a hash value on the operands. Instcombine will likely have sorted
625 // them, which helps expose duplicates, but we have to check all the
626 // operands to be safe in case instcombine hasn't run.
627 uintptr_t Hash = 0;
628 for (User::op_iterator I = PN->op_begin(), E = PN->op_end(); I != E; ++I) {
629 // This hash algorithm is quite weak as hash functions go, but it seems
630 // to do a good enough job for this particular purpose, and is very quick.
631 Hash ^= reinterpret_cast<uintptr_t>(static_cast<Value *>(*I));
632 Hash = (Hash << 7) | (Hash >> (sizeof(uintptr_t) * CHAR_BIT - 7));
633 }
634 // If we've never seen this hash value before, it's a unique PHI.
635 std::pair<DenseMap<uintptr_t, PHINode *>::iterator, bool> Pair =
636 HashMap.insert(std::make_pair(Hash, PN));
637 if (Pair.second) continue;
638 // Otherwise it's either a duplicate or a hash collision.
639 for (PHINode *OtherPN = Pair.first->second; ; ) {
640 if (OtherPN->isIdenticalTo(PN)) {
641 // A duplicate. Replace this PHI with its duplicate.
642 PN->replaceAllUsesWith(OtherPN);
643 PN->eraseFromParent();
644 Changed = true;
645 break;
646 }
647 // A non-duplicate hash collision.
648 DenseMap<PHINode *, PHINode *>::iterator I = CollisionMap.find(OtherPN);
649 if (I == CollisionMap.end()) {
650 // Set this PHI to be the head of the linked list of colliding PHIs.
651 PHINode *Old = Pair.first->second;
652 Pair.first->second = PN;
653 CollisionMap[PN] = Old;
654 break;
655 }
656 // Procede to the next PHI in the list.
657 OtherPN = I->second;
658 }
659 }
660
661 return Changed;
662}
Chris Lattner687140c2010-12-25 20:37:57 +0000663
664/// enforceKnownAlignment - If the specified pointer points to an object that
665/// we control, modify the object's alignment to PrefAlign. This isn't
666/// often possible though. If alignment is important, a more reliable approach
667/// is to simply align all global variables and allocation instructions to
668/// their preferred alignment from the beginning.
669///
Benjamin Kramer19282362010-12-30 22:34:44 +0000670static unsigned enforceKnownAlignment(Value *V, unsigned Align,
671 unsigned PrefAlign) {
Chris Lattner687140c2010-12-25 20:37:57 +0000672
673 User *U = dyn_cast<User>(V);
674 if (!U) return Align;
675
676 switch (Operator::getOpcode(U)) {
677 default: break;
678 case Instruction::BitCast:
679 return enforceKnownAlignment(U->getOperand(0), Align, PrefAlign);
680 case Instruction::GetElementPtr: {
681 // If all indexes are zero, it is just the alignment of the base pointer.
682 bool AllZeroOperands = true;
683 for (User::op_iterator i = U->op_begin() + 1, e = U->op_end(); i != e; ++i)
684 if (!isa<Constant>(*i) ||
685 !cast<Constant>(*i)->isNullValue()) {
686 AllZeroOperands = false;
687 break;
688 }
689
690 if (AllZeroOperands) {
691 // Treat this like a bitcast.
692 return enforceKnownAlignment(U->getOperand(0), Align, PrefAlign);
693 }
694 return Align;
695 }
696 case Instruction::Alloca: {
697 AllocaInst *AI = cast<AllocaInst>(V);
698 // If there is a requested alignment and if this is an alloca, round up.
699 if (AI->getAlignment() >= PrefAlign)
700 return AI->getAlignment();
701 AI->setAlignment(PrefAlign);
702 return PrefAlign;
703 }
704 }
705
706 if (GlobalValue *GV = dyn_cast<GlobalValue>(V)) {
707 // If there is a large requested alignment and we can, bump up the alignment
708 // of the global.
709 if (GV->isDeclaration()) return Align;
710
711 if (GV->getAlignment() >= PrefAlign)
712 return GV->getAlignment();
713 // We can only increase the alignment of the global if it has no alignment
714 // specified or if it is not assigned a section. If it is assigned a
715 // section, the global could be densely packed with other objects in the
716 // section, increasing the alignment could cause padding issues.
717 if (!GV->hasSection() || GV->getAlignment() == 0)
718 GV->setAlignment(PrefAlign);
719 return GV->getAlignment();
720 }
721
722 return Align;
723}
724
725/// getOrEnforceKnownAlignment - If the specified pointer has an alignment that
726/// we can determine, return it, otherwise return 0. If PrefAlign is specified,
727/// and it is more than the alignment of the ultimate object, see if we can
728/// increase the alignment of the ultimate object, making this check succeed.
729unsigned llvm::getOrEnforceKnownAlignment(Value *V, unsigned PrefAlign,
730 const TargetData *TD) {
731 assert(V->getType()->isPointerTy() &&
732 "getOrEnforceKnownAlignment expects a pointer!");
733 unsigned BitWidth = TD ? TD->getPointerSizeInBits() : 64;
734 APInt Mask = APInt::getAllOnesValue(BitWidth);
735 APInt KnownZero(BitWidth, 0), KnownOne(BitWidth, 0);
Chris Lattnerae47be12010-12-25 20:52:04 +0000736 ComputeMaskedBits(V, Mask, KnownZero, KnownOne, TD);
Chris Lattner687140c2010-12-25 20:37:57 +0000737 unsigned TrailZ = KnownZero.countTrailingOnes();
738
739 // Avoid trouble with rediculously large TrailZ values, such as
740 // those computed from a null pointer.
741 TrailZ = std::min(TrailZ, unsigned(sizeof(unsigned) * CHAR_BIT - 1));
742
743 unsigned Align = 1u << std::min(BitWidth - 1, TrailZ);
744
745 // LLVM doesn't support alignments larger than this currently.
746 Align = std::min(Align, +Value::MaximumAlignment);
747
748 if (PrefAlign > Align)
749 Align = enforceKnownAlignment(V, Align, PrefAlign);
750
751 // We don't need to make any adjustment.
752 return Align;
753}
754