BranchFolding.cpp revision 08982a392a0eaba71c37087eb53b071aa29b55e8
1//===-- BranchFolding.cpp - Fold machine code branch instructions ---------===//
2//
3//                     The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This pass forwards branches to unconditional branches to make them branch
11// directly to the target block.  This pass often results in dead MBB's, which
12// it then removes.
13//
14// Note that this pass must be run after register allocation, it cannot handle
15// SSA form.
16//
17//===----------------------------------------------------------------------===//
18
19#define DEBUG_TYPE "branchfolding"
20#include "BranchFolding.h"
21#include "llvm/Function.h"
22#include "llvm/CodeGen/Passes.h"
23#include "llvm/CodeGen/MachineModuleInfo.h"
24#include "llvm/CodeGen/MachineFunctionPass.h"
25#include "llvm/CodeGen/MachineJumpTableInfo.h"
26#include "llvm/CodeGen/RegisterScavenging.h"
27#include "llvm/Target/TargetInstrInfo.h"
28#include "llvm/Target/TargetMachine.h"
29#include "llvm/Target/TargetRegisterInfo.h"
30#include "llvm/Support/CommandLine.h"
31#include "llvm/Support/Debug.h"
32#include "llvm/Support/ErrorHandling.h"
33#include "llvm/Support/raw_ostream.h"
34#include "llvm/ADT/SmallSet.h"
35#include "llvm/ADT/SetVector.h"
36#include "llvm/ADT/Statistic.h"
37#include "llvm/ADT/STLExtras.h"
38#include <algorithm>
39using namespace llvm;
40
41STATISTIC(NumDeadBlocks, "Number of dead blocks removed");
42STATISTIC(NumBranchOpts, "Number of branches optimized");
43STATISTIC(NumTailMerge , "Number of block tails merged");
44static cl::opt<cl::boolOrDefault> FlagEnableTailMerge("enable-tail-merge",
45                              cl::init(cl::BOU_UNSET), cl::Hidden);
46// Throttle for huge numbers of predecessors (compile speed problems)
47static cl::opt<unsigned>
48TailMergeThreshold("tail-merge-threshold",
49          cl::desc("Max number of predecessors to consider tail merging"),
50          cl::init(150), cl::Hidden);
51
52// Heuristic for tail merging (and, inversely, tail duplication).
53// TODO: This should be replaced with a target query.
54static cl::opt<unsigned>
55TailMergeSize("tail-merge-size",
56          cl::desc("Min number of instructions to consider tail merging"),
57                              cl::init(3), cl::Hidden);
58
59char BranchFolderPass::ID = 0;
60
61FunctionPass *llvm::createBranchFoldingPass(bool DefaultEnableTailMerge) {
62  return new BranchFolderPass(DefaultEnableTailMerge);
63}
64
65bool BranchFolderPass::runOnMachineFunction(MachineFunction &MF) {
66  return OptimizeFunction(MF,
67                          MF.getTarget().getInstrInfo(),
68                          MF.getTarget().getRegisterInfo(),
69                          getAnalysisIfAvailable<MachineModuleInfo>());
70}
71
72
73BranchFolder::BranchFolder(bool defaultEnableTailMerge) {
74  switch (FlagEnableTailMerge) {
75  case cl::BOU_UNSET: EnableTailMerge = defaultEnableTailMerge; break;
76  case cl::BOU_TRUE: EnableTailMerge = true; break;
77  case cl::BOU_FALSE: EnableTailMerge = false; break;
78  }
79}
80
81/// RemoveDeadBlock - Remove the specified dead machine basic block from the
82/// function, updating the CFG.
83void BranchFolder::RemoveDeadBlock(MachineBasicBlock *MBB) {
84  assert(MBB->pred_empty() && "MBB must be dead!");
85  DEBUG(errs() << "\nRemoving MBB: " << *MBB);
86
87  MachineFunction *MF = MBB->getParent();
88  // drop all successors.
89  while (!MBB->succ_empty())
90    MBB->removeSuccessor(MBB->succ_end()-1);
91
92  // If there are any labels in the basic block, unregister them from
93  // MachineModuleInfo.
94  if (MMI && !MBB->empty()) {
95    for (MachineBasicBlock::iterator I = MBB->begin(), E = MBB->end();
96         I != E; ++I) {
97      if (I->isLabel())
98        // The label ID # is always operand #0, an immediate.
99        MMI->InvalidateLabel(I->getOperand(0).getImm());
100    }
101  }
102
103  // Remove the block.
104  MF->erase(MBB);
105}
106
107/// OptimizeImpDefsBlock - If a basic block is just a bunch of implicit_def
108/// followed by terminators, and if the implicitly defined registers are not
109/// used by the terminators, remove those implicit_def's. e.g.
110/// BB1:
111///   r0 = implicit_def
112///   r1 = implicit_def
113///   br
114/// This block can be optimized away later if the implicit instructions are
115/// removed.
116bool BranchFolder::OptimizeImpDefsBlock(MachineBasicBlock *MBB) {
117  SmallSet<unsigned, 4> ImpDefRegs;
118  MachineBasicBlock::iterator I = MBB->begin();
119  while (I != MBB->end()) {
120    if (I->getOpcode() != TargetInstrInfo::IMPLICIT_DEF)
121      break;
122    unsigned Reg = I->getOperand(0).getReg();
123    ImpDefRegs.insert(Reg);
124    for (const unsigned *SubRegs = TRI->getSubRegisters(Reg);
125         unsigned SubReg = *SubRegs; ++SubRegs)
126      ImpDefRegs.insert(SubReg);
127    ++I;
128  }
129  if (ImpDefRegs.empty())
130    return false;
131
132  MachineBasicBlock::iterator FirstTerm = I;
133  while (I != MBB->end()) {
134    if (!TII->isUnpredicatedTerminator(I))
135      return false;
136    // See if it uses any of the implicitly defined registers.
137    for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) {
138      MachineOperand &MO = I->getOperand(i);
139      if (!MO.isReg() || !MO.isUse())
140        continue;
141      unsigned Reg = MO.getReg();
142      if (ImpDefRegs.count(Reg))
143        return false;
144    }
145    ++I;
146  }
147
148  I = MBB->begin();
149  while (I != FirstTerm) {
150    MachineInstr *ImpDefMI = &*I;
151    ++I;
152    MBB->erase(ImpDefMI);
153  }
154
155  return true;
156}
157
158/// OptimizeFunction - Perhaps branch folding, tail merging and other
159/// CFG optimizations on the given function.
160bool BranchFolder::OptimizeFunction(MachineFunction &MF,
161                                    const TargetInstrInfo *tii,
162                                    const TargetRegisterInfo *tri,
163                                    MachineModuleInfo *mmi) {
164  if (!tii) return false;
165
166  TII = tii;
167  TRI = tri;
168  MMI = mmi;
169
170  RS = TRI->requiresRegisterScavenging(MF) ? new RegScavenger() : NULL;
171
172  // Fix CFG.  The later algorithms expect it to be right.
173  bool MadeChange = false;
174  for (MachineFunction::iterator I = MF.begin(), E = MF.end(); I != E; I++) {
175    MachineBasicBlock *MBB = I, *TBB = 0, *FBB = 0;
176    SmallVector<MachineOperand, 4> Cond;
177    if (!TII->AnalyzeBranch(*MBB, TBB, FBB, Cond, true))
178      MadeChange |= MBB->CorrectExtraCFGEdges(TBB, FBB, !Cond.empty());
179    MadeChange |= OptimizeImpDefsBlock(MBB);
180  }
181
182
183  bool MadeChangeThisIteration = true;
184  while (MadeChangeThisIteration) {
185    MadeChangeThisIteration = false;
186    MadeChangeThisIteration |= TailMergeBlocks(MF);
187    MadeChangeThisIteration |= OptimizeBranches(MF);
188    MadeChange |= MadeChangeThisIteration;
189  }
190
191  // See if any jump tables have become mergable or dead as the code generator
192  // did its thing.
193  MachineJumpTableInfo *JTI = MF.getJumpTableInfo();
194  const std::vector<MachineJumpTableEntry> &JTs = JTI->getJumpTables();
195  if (!JTs.empty()) {
196    // Figure out how these jump tables should be merged.
197    std::vector<unsigned> JTMapping;
198    JTMapping.reserve(JTs.size());
199
200    // We always keep the 0th jump table.
201    JTMapping.push_back(0);
202
203    // Scan the jump tables, seeing if there are any duplicates.  Note that this
204    // is N^2, which should be fixed someday.
205    for (unsigned i = 1, e = JTs.size(); i != e; ++i) {
206      if (JTs[i].MBBs.empty())
207        JTMapping.push_back(i);
208      else
209        JTMapping.push_back(JTI->getJumpTableIndex(JTs[i].MBBs));
210    }
211
212    // If a jump table was merge with another one, walk the function rewriting
213    // references to jump tables to reference the new JT ID's.  Keep track of
214    // whether we see a jump table idx, if not, we can delete the JT.
215    BitVector JTIsLive(JTs.size());
216    for (MachineFunction::iterator BB = MF.begin(), E = MF.end();
217         BB != E; ++BB) {
218      for (MachineBasicBlock::iterator I = BB->begin(), E = BB->end();
219           I != E; ++I)
220        for (unsigned op = 0, e = I->getNumOperands(); op != e; ++op) {
221          MachineOperand &Op = I->getOperand(op);
222          if (!Op.isJTI()) continue;
223          unsigned NewIdx = JTMapping[Op.getIndex()];
224          Op.setIndex(NewIdx);
225
226          // Remember that this JT is live.
227          JTIsLive.set(NewIdx);
228        }
229    }
230
231    // Finally, remove dead jump tables.  This happens either because the
232    // indirect jump was unreachable (and thus deleted) or because the jump
233    // table was merged with some other one.
234    for (unsigned i = 0, e = JTIsLive.size(); i != e; ++i)
235      if (!JTIsLive.test(i)) {
236        JTI->RemoveJumpTable(i);
237        MadeChange = true;
238      }
239  }
240
241  delete RS;
242  return MadeChange;
243}
244
245//===----------------------------------------------------------------------===//
246//  Tail Merging of Blocks
247//===----------------------------------------------------------------------===//
248
249/// HashMachineInstr - Compute a hash value for MI and its operands.
250static unsigned HashMachineInstr(const MachineInstr *MI) {
251  unsigned Hash = MI->getOpcode();
252  for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
253    const MachineOperand &Op = MI->getOperand(i);
254
255    // Merge in bits from the operand if easy.
256    unsigned OperandHash = 0;
257    switch (Op.getType()) {
258    case MachineOperand::MO_Register:          OperandHash = Op.getReg(); break;
259    case MachineOperand::MO_Immediate:         OperandHash = Op.getImm(); break;
260    case MachineOperand::MO_MachineBasicBlock:
261      OperandHash = Op.getMBB()->getNumber();
262      break;
263    case MachineOperand::MO_FrameIndex:
264    case MachineOperand::MO_ConstantPoolIndex:
265    case MachineOperand::MO_JumpTableIndex:
266      OperandHash = Op.getIndex();
267      break;
268    case MachineOperand::MO_GlobalAddress:
269    case MachineOperand::MO_ExternalSymbol:
270      // Global address / external symbol are too hard, don't bother, but do
271      // pull in the offset.
272      OperandHash = Op.getOffset();
273      break;
274    default: break;
275    }
276
277    Hash += ((OperandHash << 3) | Op.getType()) << (i&31);
278  }
279  return Hash;
280}
281
282/// HashEndOfMBB - Hash the last few instructions in the MBB.  For blocks
283/// with no successors, we hash two instructions, because cross-jumping
284/// only saves code when at least two instructions are removed (since a
285/// branch must be inserted).  For blocks with a successor, one of the
286/// two blocks to be tail-merged will end with a branch already, so
287/// it gains to cross-jump even for one instruction.
288static unsigned HashEndOfMBB(const MachineBasicBlock *MBB,
289                             unsigned minCommonTailLength) {
290  MachineBasicBlock::const_iterator I = MBB->end();
291  if (I == MBB->begin())
292    return 0;   // Empty MBB.
293
294  --I;
295  unsigned Hash = HashMachineInstr(I);
296
297  if (I == MBB->begin() || minCommonTailLength == 1)
298    return Hash;   // Single instr MBB.
299
300  --I;
301  // Hash in the second-to-last instruction.
302  Hash ^= HashMachineInstr(I) << 2;
303  return Hash;
304}
305
306/// ComputeCommonTailLength - Given two machine basic blocks, compute the number
307/// of instructions they actually have in common together at their end.  Return
308/// iterators for the first shared instruction in each block.
309static unsigned ComputeCommonTailLength(MachineBasicBlock *MBB1,
310                                        MachineBasicBlock *MBB2,
311                                        MachineBasicBlock::iterator &I1,
312                                        MachineBasicBlock::iterator &I2) {
313  I1 = MBB1->end();
314  I2 = MBB2->end();
315
316  unsigned TailLen = 0;
317  while (I1 != MBB1->begin() && I2 != MBB2->begin()) {
318    --I1; --I2;
319    if (!I1->isIdenticalTo(I2) ||
320        // FIXME: This check is dubious. It's used to get around a problem where
321        // people incorrectly expect inline asm directives to remain in the same
322        // relative order. This is untenable because normal compiler
323        // optimizations (like this one) may reorder and/or merge these
324        // directives.
325        I1->getOpcode() == TargetInstrInfo::INLINEASM) {
326      ++I1; ++I2;
327      break;
328    }
329    ++TailLen;
330  }
331  return TailLen;
332}
333
334/// ReplaceTailWithBranchTo - Delete the instruction OldInst and everything
335/// after it, replacing it with an unconditional branch to NewDest.  This
336/// returns true if OldInst's block is modified, false if NewDest is modified.
337void BranchFolder::ReplaceTailWithBranchTo(MachineBasicBlock::iterator OldInst,
338                                           MachineBasicBlock *NewDest) {
339  MachineBasicBlock *OldBB = OldInst->getParent();
340
341  // Remove all the old successors of OldBB from the CFG.
342  while (!OldBB->succ_empty())
343    OldBB->removeSuccessor(OldBB->succ_begin());
344
345  // Remove all the dead instructions from the end of OldBB.
346  OldBB->erase(OldInst, OldBB->end());
347
348  // If OldBB isn't immediately before OldBB, insert a branch to it.
349  if (++MachineFunction::iterator(OldBB) != MachineFunction::iterator(NewDest))
350    TII->InsertBranch(*OldBB, NewDest, 0, SmallVector<MachineOperand, 0>());
351  OldBB->addSuccessor(NewDest);
352  ++NumTailMerge;
353}
354
355/// SplitMBBAt - Given a machine basic block and an iterator into it, split the
356/// MBB so that the part before the iterator falls into the part starting at the
357/// iterator.  This returns the new MBB.
358MachineBasicBlock *BranchFolder::SplitMBBAt(MachineBasicBlock &CurMBB,
359                                            MachineBasicBlock::iterator BBI1) {
360  MachineFunction &MF = *CurMBB.getParent();
361
362  // Create the fall-through block.
363  MachineFunction::iterator MBBI = &CurMBB;
364  MachineBasicBlock *NewMBB =MF.CreateMachineBasicBlock(CurMBB.getBasicBlock());
365  CurMBB.getParent()->insert(++MBBI, NewMBB);
366
367  // Move all the successors of this block to the specified block.
368  NewMBB->transferSuccessors(&CurMBB);
369
370  // Add an edge from CurMBB to NewMBB for the fall-through.
371  CurMBB.addSuccessor(NewMBB);
372
373  // Splice the code over.
374  NewMBB->splice(NewMBB->end(), &CurMBB, BBI1, CurMBB.end());
375
376  // For targets that use the register scavenger, we must maintain LiveIns.
377  if (RS) {
378    RS->enterBasicBlock(&CurMBB);
379    if (!CurMBB.empty())
380      RS->forward(prior(CurMBB.end()));
381    BitVector RegsLiveAtExit(TRI->getNumRegs());
382    RS->getRegsUsed(RegsLiveAtExit, false);
383    for (unsigned int i=0, e=TRI->getNumRegs(); i!=e; i++)
384      if (RegsLiveAtExit[i])
385        NewMBB->addLiveIn(i);
386  }
387
388  return NewMBB;
389}
390
391/// EstimateRuntime - Make a rough estimate for how long it will take to run
392/// the specified code.
393static unsigned EstimateRuntime(MachineBasicBlock::iterator I,
394                                MachineBasicBlock::iterator E) {
395  unsigned Time = 0;
396  for (; I != E; ++I) {
397    const TargetInstrDesc &TID = I->getDesc();
398    if (TID.isCall())
399      Time += 10;
400    else if (TID.mayLoad() || TID.mayStore())
401      Time += 2;
402    else
403      ++Time;
404  }
405  return Time;
406}
407
408// CurMBB needs to add an unconditional branch to SuccMBB (we removed these
409// branches temporarily for tail merging).  In the case where CurMBB ends
410// with a conditional branch to the next block, optimize by reversing the
411// test and conditionally branching to SuccMBB instead.
412static void FixTail(MachineBasicBlock* CurMBB, MachineBasicBlock *SuccBB,
413                    const TargetInstrInfo *TII) {
414  MachineFunction *MF = CurMBB->getParent();
415  MachineFunction::iterator I = next(MachineFunction::iterator(CurMBB));
416  MachineBasicBlock *TBB = 0, *FBB = 0;
417  SmallVector<MachineOperand, 4> Cond;
418  if (I != MF->end() &&
419      !TII->AnalyzeBranch(*CurMBB, TBB, FBB, Cond, true)) {
420    MachineBasicBlock *NextBB = I;
421    if (TBB == NextBB && !Cond.empty() && !FBB) {
422      if (!TII->ReverseBranchCondition(Cond)) {
423        TII->RemoveBranch(*CurMBB);
424        TII->InsertBranch(*CurMBB, SuccBB, NULL, Cond);
425        return;
426      }
427    }
428  }
429  TII->InsertBranch(*CurMBB, SuccBB, NULL, SmallVector<MachineOperand, 0>());
430}
431
432bool
433BranchFolder::MergePotentialsElt::operator<(const MergePotentialsElt &o) const {
434  if (getHash() < o.getHash())
435    return true;
436   else if (getHash() > o.getHash())
437    return false;
438  else if (getBlock()->getNumber() < o.getBlock()->getNumber())
439    return true;
440  else if (getBlock()->getNumber() > o.getBlock()->getNumber())
441    return false;
442  else {
443    // _GLIBCXX_DEBUG checks strict weak ordering, which involves comparing
444    // an object with itself.
445#ifndef _GLIBCXX_DEBUG
446    llvm_unreachable("Predecessor appears twice");
447#endif
448    return false;
449  }
450}
451
452/// CountTerminators - Count the number of terminators in the given
453/// block and set I to the position of the first non-terminator, if there
454/// is one, or MBB->end() otherwise.
455static unsigned CountTerminators(MachineBasicBlock *MBB,
456                                 MachineBasicBlock::iterator &I) {
457  I = MBB->end();
458  unsigned NumTerms = 0;
459  for (;;) {
460    if (I == MBB->begin()) {
461      I = MBB->end();
462      break;
463    }
464    --I;
465    if (!I->getDesc().isTerminator()) break;
466    ++NumTerms;
467  }
468  return NumTerms;
469}
470
471/// ProfitableToMerge - Check if two machine basic blocks have a common tail
472/// and decide if it would be profitable to merge those tails.  Return the
473/// length of the common tail and iterators to the first common instruction
474/// in each block.
475static bool ProfitableToMerge(MachineBasicBlock *MBB1,
476                              MachineBasicBlock *MBB2,
477                              unsigned minCommonTailLength,
478                              unsigned &CommonTailLen,
479                              MachineBasicBlock::iterator &I1,
480                              MachineBasicBlock::iterator &I2,
481                              MachineBasicBlock *SuccBB,
482                              MachineBasicBlock *PredBB) {
483  CommonTailLen = ComputeCommonTailLength(MBB1, MBB2, I1, I2);
484  MachineFunction *MF = MBB1->getParent();
485
486  if (CommonTailLen == 0)
487    return false;
488
489  // It's almost always profitable to merge any number of non-terminator
490  // instructions with the block that falls through into the common successor.
491  if (MBB1 == PredBB || MBB2 == PredBB) {
492    MachineBasicBlock::iterator I;
493    unsigned NumTerms = CountTerminators(MBB1 == PredBB ? MBB2 : MBB1, I);
494    if (CommonTailLen > NumTerms)
495      return true;
496  }
497
498  // If one of the blocks can be completely merged and happens to be in
499  // a position where the other could fall through into it, merge any number
500  // of instructions, because it can be done without a branch.
501  // TODO: If the blocks are not adjacent, move one of them so that they are?
502  if (MBB1->isLayoutSuccessor(MBB2) && I2 == MBB2->begin())
503    return true;
504  if (MBB2->isLayoutSuccessor(MBB1) && I1 == MBB1->begin())
505    return true;
506
507  // If both blocks have an unconditional branch temporarily stripped out,
508  // treat that as an additional common instruction.
509  if (MBB1 != PredBB && MBB2 != PredBB &&
510      !MBB1->back().getDesc().isBarrier() &&
511      !MBB2->back().getDesc().isBarrier())
512    --minCommonTailLength;
513
514  // Check if the common tail is long enough to be worthwhile.
515  if (CommonTailLen >= minCommonTailLength)
516    return true;
517
518  // If we are optimizing for code size, 1 instruction in common is enough if
519  // we don't have to split a block.  At worst we will be replacing a
520  // fallthrough into the common tail with a branch, which at worst breaks
521  // even with falling through into the duplicated common tail.
522  if (MF->getFunction()->hasFnAttr(Attribute::OptimizeForSize) &&
523      (I1 == MBB1->begin() || I2 == MBB2->begin()))
524    return true;
525
526  return false;
527}
528
529/// ComputeSameTails - Look through all the blocks in MergePotentials that have
530/// hash CurHash (guaranteed to match the last element).  Build the vector
531/// SameTails of all those that have the (same) largest number of instructions
532/// in common of any pair of these blocks.  SameTails entries contain an
533/// iterator into MergePotentials (from which the MachineBasicBlock can be
534/// found) and a MachineBasicBlock::iterator into that MBB indicating the
535/// instruction where the matching code sequence begins.
536/// Order of elements in SameTails is the reverse of the order in which
537/// those blocks appear in MergePotentials (where they are not necessarily
538/// consecutive).
539unsigned BranchFolder::ComputeSameTails(unsigned CurHash,
540                                        unsigned minCommonTailLength,
541                                        MachineBasicBlock *SuccBB,
542                                        MachineBasicBlock *PredBB) {
543  unsigned maxCommonTailLength = 0U;
544  SameTails.clear();
545  MachineBasicBlock::iterator TrialBBI1, TrialBBI2;
546  MPIterator HighestMPIter = prior(MergePotentials.end());
547  for (MPIterator CurMPIter = prior(MergePotentials.end()),
548                  B = MergePotentials.begin();
549       CurMPIter!=B && CurMPIter->getHash() == CurHash;
550       --CurMPIter) {
551    for (MPIterator I = prior(CurMPIter); I->getHash() == CurHash ; --I) {
552      unsigned CommonTailLen;
553      if (ProfitableToMerge(CurMPIter->getBlock(), I->getBlock(),
554                            minCommonTailLength,
555                            CommonTailLen, TrialBBI1, TrialBBI2,
556                            SuccBB, PredBB)) {
557        if (CommonTailLen > maxCommonTailLength) {
558          SameTails.clear();
559          maxCommonTailLength = CommonTailLen;
560          HighestMPIter = CurMPIter;
561          SameTails.push_back(SameTailElt(CurMPIter, TrialBBI1));
562        }
563        if (HighestMPIter == CurMPIter &&
564            CommonTailLen == maxCommonTailLength)
565          SameTails.push_back(SameTailElt(I, TrialBBI2));
566      }
567      if (I == B)
568        break;
569    }
570  }
571  return maxCommonTailLength;
572}
573
574/// RemoveBlocksWithHash - Remove all blocks with hash CurHash from
575/// MergePotentials, restoring branches at ends of blocks as appropriate.
576void BranchFolder::RemoveBlocksWithHash(unsigned CurHash,
577                                        MachineBasicBlock* SuccBB,
578                                        MachineBasicBlock* PredBB) {
579  MPIterator CurMPIter, B;
580  for (CurMPIter = prior(MergePotentials.end()), B = MergePotentials.begin();
581       CurMPIter->getHash() == CurHash;
582       --CurMPIter) {
583    // Put the unconditional branch back, if we need one.
584    MachineBasicBlock *CurMBB = CurMPIter->getBlock();
585    if (SuccBB && CurMBB != PredBB)
586      FixTail(CurMBB, SuccBB, TII);
587    if (CurMPIter == B)
588      break;
589  }
590  if (CurMPIter->getHash() != CurHash)
591    CurMPIter++;
592  MergePotentials.erase(CurMPIter, MergePotentials.end());
593}
594
595/// CreateCommonTailOnlyBlock - None of the blocks to be tail-merged consist
596/// only of the common tail.  Create a block that does by splitting one.
597unsigned BranchFolder::CreateCommonTailOnlyBlock(MachineBasicBlock *&PredBB,
598                                             unsigned maxCommonTailLength) {
599  unsigned i, commonTailIndex;
600  unsigned TimeEstimate = ~0U;
601  for (i=0, commonTailIndex=0; i<SameTails.size(); i++) {
602    // Use PredBB if possible; that doesn't require a new branch.
603    if (SameTails[i].getBlock() == PredBB) {
604      commonTailIndex = i;
605      break;
606    }
607    // Otherwise, make a (fairly bogus) choice based on estimate of
608    // how long it will take the various blocks to execute.
609    unsigned t = EstimateRuntime(SameTails[i].getBlock()->begin(),
610                                 SameTails[i].getTailStartPos());
611    if (t <= TimeEstimate) {
612      TimeEstimate = t;
613      commonTailIndex = i;
614    }
615  }
616
617  MachineBasicBlock::iterator BBI =
618    SameTails[commonTailIndex].getTailStartPos();
619  MachineBasicBlock *MBB = SameTails[commonTailIndex].getBlock();
620
621  DEBUG(errs() << "\nSplitting BB#" << MBB->getNumber() << ", size "
622               << maxCommonTailLength);
623
624  MachineBasicBlock *newMBB = SplitMBBAt(*MBB, BBI);
625  SameTails[commonTailIndex].setBlock(newMBB);
626  SameTails[commonTailIndex].setTailStartPos(newMBB->begin());
627
628  // If we split PredBB, newMBB is the new predecessor.
629  if (PredBB == MBB)
630    PredBB = newMBB;
631
632  return commonTailIndex;
633}
634
635// See if any of the blocks in MergePotentials (which all have a common single
636// successor, or all have no successor) can be tail-merged.  If there is a
637// successor, any blocks in MergePotentials that are not tail-merged and
638// are not immediately before Succ must have an unconditional branch to
639// Succ added (but the predecessor/successor lists need no adjustment).
640// The lone predecessor of Succ that falls through into Succ,
641// if any, is given in PredBB.
642
643bool BranchFolder::TryTailMergeBlocks(MachineBasicBlock *SuccBB,
644                                      MachineBasicBlock* PredBB) {
645  bool MadeChange = false;
646
647  // Except for the special cases below, tail-merge if there are at least
648  // this many instructions in common.
649  unsigned minCommonTailLength = TailMergeSize;
650
651  // If there's a successor block, there are some cases which don't require
652  // new branching and as such are very likely to be profitable.
653  if (SuccBB) {
654    if (SuccBB->pred_size() == MergePotentials.size() &&
655        !MergePotentials[0].getBlock()->empty()) {
656      // If all the predecessors have at least one tail instruction in common,
657      // merging is very likely to be a win since it won't require an increase
658      // in static branches, and it will decrease the static instruction count.
659      bool AllPredsMatch = true;
660      MachineBasicBlock::iterator FirstNonTerm;
661      unsigned MinNumTerms = CountTerminators(MergePotentials[0].getBlock(),
662                                              FirstNonTerm);
663      if (FirstNonTerm != MergePotentials[0].getBlock()->end()) {
664        for (unsigned i = 1, e = MergePotentials.size(); i != e; ++i) {
665          MachineBasicBlock::iterator OtherFirstNonTerm;
666          unsigned NumTerms = CountTerminators(MergePotentials[0].getBlock(),
667                                               OtherFirstNonTerm);
668          if (NumTerms < MinNumTerms)
669            MinNumTerms = NumTerms;
670          if (OtherFirstNonTerm == MergePotentials[i].getBlock()->end() ||
671              OtherFirstNonTerm->isIdenticalTo(FirstNonTerm)) {
672            AllPredsMatch = false;
673            break;
674          }
675        }
676
677        // If they all have an instruction in common, do any amount of merging.
678        if (AllPredsMatch)
679          minCommonTailLength = MinNumTerms + 1;
680      }
681    }
682  }
683
684  DEBUG(errs() << "\nTryTailMergeBlocks: ";
685        for (unsigned i = 0, e = MergePotentials.size(); i != e; ++i)
686          errs() << "BB#" << MergePotentials[i].getBlock()->getNumber()
687                 << (i == e-1 ? "" : ", ");
688        errs() << "\n";
689        if (SuccBB) {
690          errs() << "  with successor BB#" << SuccBB->getNumber() << '\n';
691          if (PredBB)
692            errs() << "  which has fall-through from BB#"
693                   << PredBB->getNumber() << "\n";
694        }
695        errs() << "Looking for common tails of at least "
696               << minCommonTailLength << " instruction"
697               << (minCommonTailLength == 1 ? "" : "s") << '\n';
698       );
699
700  // Sort by hash value so that blocks with identical end sequences sort
701  // together.
702  std::stable_sort(MergePotentials.begin(), MergePotentials.end());
703
704  // Walk through equivalence sets looking for actual exact matches.
705  while (MergePotentials.size() > 1) {
706    unsigned CurHash = MergePotentials.back().getHash();
707
708    // Build SameTails, identifying the set of blocks with this hash code
709    // and with the maximum number of instructions in common.
710    unsigned maxCommonTailLength = ComputeSameTails(CurHash,
711                                                    minCommonTailLength,
712                                                    SuccBB, PredBB);
713
714    // If we didn't find any pair that has at least minCommonTailLength
715    // instructions in common, remove all blocks with this hash code and retry.
716    if (SameTails.empty()) {
717      RemoveBlocksWithHash(CurHash, SuccBB, PredBB);
718      continue;
719    }
720
721    // If one of the blocks is the entire common tail (and not the entry
722    // block, which we can't jump to), we can treat all blocks with this same
723    // tail at once.  Use PredBB if that is one of the possibilities, as that
724    // will not introduce any extra branches.
725    MachineBasicBlock *EntryBB = MergePotentials.begin()->getBlock()->
726                                 getParent()->begin();
727    unsigned commonTailIndex = SameTails.size();
728    // If there are two blocks, check to see if one can be made to fall through
729    // into the other.
730    if (SameTails.size() == 2 &&
731        SameTails[0].getBlock()->isLayoutSuccessor(SameTails[1].getBlock()) &&
732        SameTails[1].tailIsWholeBlock())
733      commonTailIndex = 1;
734    else if (SameTails.size() == 2 &&
735             SameTails[1].getBlock()->isLayoutSuccessor(
736                                                     SameTails[0].getBlock()) &&
737             SameTails[0].tailIsWholeBlock())
738      commonTailIndex = 0;
739    else {
740      // Otherwise just pick one, favoring the fall-through predecessor if
741      // there is one.
742      for (unsigned i = 0, e = SameTails.size(); i != e; ++i) {
743        MachineBasicBlock *MBB = SameTails[i].getBlock();
744        if (MBB == EntryBB && SameTails[i].tailIsWholeBlock())
745          continue;
746        if (MBB == PredBB) {
747          commonTailIndex = i;
748          break;
749        }
750        if (SameTails[i].tailIsWholeBlock())
751          commonTailIndex = i;
752      }
753    }
754
755    if (commonTailIndex == SameTails.size() ||
756        (SameTails[commonTailIndex].getBlock() == PredBB &&
757         !SameTails[commonTailIndex].tailIsWholeBlock())) {
758      // None of the blocks consist entirely of the common tail.
759      // Split a block so that one does.
760      commonTailIndex = CreateCommonTailOnlyBlock(PredBB, maxCommonTailLength);
761    }
762
763    MachineBasicBlock *MBB = SameTails[commonTailIndex].getBlock();
764    // MBB is common tail.  Adjust all other BB's to jump to this one.
765    // Traversal must be forwards so erases work.
766    DEBUG(errs() << "\nUsing common tail in BB#" << MBB->getNumber()
767                 << " for ");
768    for (unsigned int i=0, e = SameTails.size(); i != e; ++i) {
769      if (commonTailIndex == i)
770        continue;
771      DEBUG(errs() << "BB#" << SameTails[i].getBlock()->getNumber()
772                   << (i == e-1 ? "" : ", "));
773      // Hack the end off BB i, making it jump to BB commonTailIndex instead.
774      ReplaceTailWithBranchTo(SameTails[i].getTailStartPos(), MBB);
775      // BB i is no longer a predecessor of SuccBB; remove it from the worklist.
776      MergePotentials.erase(SameTails[i].getMPIter());
777    }
778    DEBUG(errs() << "\n");
779    // We leave commonTailIndex in the worklist in case there are other blocks
780    // that match it with a smaller number of instructions.
781    MadeChange = true;
782  }
783  return MadeChange;
784}
785
786bool BranchFolder::TailMergeBlocks(MachineFunction &MF) {
787
788  if (!EnableTailMerge) return false;
789
790  bool MadeChange = false;
791
792  // First find blocks with no successors.
793  MergePotentials.clear();
794  for (MachineFunction::iterator I = MF.begin(), E = MF.end(); I != E; ++I) {
795    if (I->succ_empty())
796      MergePotentials.push_back(MergePotentialsElt(HashEndOfMBB(I, 2U), I));
797  }
798
799  // See if we can do any tail merging on those.
800  if (MergePotentials.size() < TailMergeThreshold &&
801      MergePotentials.size() >= 2)
802    MadeChange |= TryTailMergeBlocks(NULL, NULL);
803
804  // Look at blocks (IBB) with multiple predecessors (PBB).
805  // We change each predecessor to a canonical form, by
806  // (1) temporarily removing any unconditional branch from the predecessor
807  // to IBB, and
808  // (2) alter conditional branches so they branch to the other block
809  // not IBB; this may require adding back an unconditional branch to IBB
810  // later, where there wasn't one coming in.  E.g.
811  //   Bcc IBB
812  //   fallthrough to QBB
813  // here becomes
814  //   Bncc QBB
815  // with a conceptual B to IBB after that, which never actually exists.
816  // With those changes, we see whether the predecessors' tails match,
817  // and merge them if so.  We change things out of canonical form and
818  // back to the way they were later in the process.  (OptimizeBranches
819  // would undo some of this, but we can't use it, because we'd get into
820  // a compile-time infinite loop repeatedly doing and undoing the same
821  // transformations.)
822
823  for (MachineFunction::iterator I = next(MF.begin()), E = MF.end();
824       I != E; ++I) {
825    if (I->pred_size() >= 2 && I->pred_size() < TailMergeThreshold) {
826      SmallPtrSet<MachineBasicBlock *, 8> UniquePreds;
827      MachineBasicBlock *IBB = I;
828      MachineBasicBlock *PredBB = prior(I);
829      MergePotentials.clear();
830      for (MachineBasicBlock::pred_iterator P = I->pred_begin(),
831                                            E2 = I->pred_end();
832           P != E2; ++P) {
833        MachineBasicBlock* PBB = *P;
834        // Skip blocks that loop to themselves, can't tail merge these.
835        if (PBB == IBB)
836          continue;
837        // Visit each predecessor only once.
838        if (!UniquePreds.insert(PBB))
839          continue;
840        MachineBasicBlock *TBB = 0, *FBB = 0;
841        SmallVector<MachineOperand, 4> Cond;
842        if (!TII->AnalyzeBranch(*PBB, TBB, FBB, Cond, true)) {
843          // Failing case:  IBB is the target of a cbr, and
844          // we cannot reverse the branch.
845          SmallVector<MachineOperand, 4> NewCond(Cond);
846          if (!Cond.empty() && TBB == IBB) {
847            if (TII->ReverseBranchCondition(NewCond))
848              continue;
849            // This is the QBB case described above
850            if (!FBB)
851              FBB = next(MachineFunction::iterator(PBB));
852          }
853          // Failing case:  the only way IBB can be reached from PBB is via
854          // exception handling.  Happens for landing pads.  Would be nice
855          // to have a bit in the edge so we didn't have to do all this.
856          if (IBB->isLandingPad()) {
857            MachineFunction::iterator IP = PBB;  IP++;
858            MachineBasicBlock* PredNextBB = NULL;
859            if (IP!=MF.end())
860              PredNextBB = IP;
861            if (TBB == NULL) {
862              if (IBB!=PredNextBB)      // fallthrough
863                continue;
864            } else if (FBB) {
865              if (TBB!=IBB && FBB!=IBB)   // cbr then ubr
866                continue;
867            } else if (Cond.empty()) {
868              if (TBB!=IBB)               // ubr
869                continue;
870            } else {
871              if (TBB!=IBB && IBB!=PredNextBB)  // cbr
872                continue;
873            }
874          }
875          // Remove the unconditional branch at the end, if any.
876          if (TBB && (Cond.empty() || FBB)) {
877            TII->RemoveBranch(*PBB);
878            if (!Cond.empty())
879              // reinsert conditional branch only, for now
880              TII->InsertBranch(*PBB, (TBB == IBB) ? FBB : TBB, 0, NewCond);
881          }
882          MergePotentials.push_back(MergePotentialsElt(HashEndOfMBB(PBB, 1U),
883                                                       *P));
884        }
885      }
886      if (MergePotentials.size() >= 2)
887        MadeChange |= TryTailMergeBlocks(IBB, PredBB);
888      // Reinsert an unconditional branch if needed.
889      // The 1 below can occur as a result of removing blocks in TryTailMergeBlocks.
890      PredBB = prior(I);      // this may have been changed in TryTailMergeBlocks
891      if (MergePotentials.size() == 1 &&
892          MergePotentials.begin()->getBlock() != PredBB)
893        FixTail(MergePotentials.begin()->getBlock(), IBB, TII);
894    }
895  }
896  return MadeChange;
897}
898
899//===----------------------------------------------------------------------===//
900//  Branch Optimization
901//===----------------------------------------------------------------------===//
902
903bool BranchFolder::OptimizeBranches(MachineFunction &MF) {
904  bool MadeChange = false;
905
906  // Make sure blocks are numbered in order
907  MF.RenumberBlocks();
908
909  for (MachineFunction::iterator I = ++MF.begin(), E = MF.end(); I != E; ) {
910    MachineBasicBlock *MBB = I++;
911    MadeChange |= OptimizeBlock(MBB);
912
913    // If it is dead, remove it.
914    if (MBB->pred_empty()) {
915      RemoveDeadBlock(MBB);
916      MadeChange = true;
917      ++NumDeadBlocks;
918    }
919  }
920  return MadeChange;
921}
922
923
924/// CanFallThrough - Return true if the specified block (with the specified
925/// branch condition) can implicitly transfer control to the block after it by
926/// falling off the end of it.  This should return false if it can reach the
927/// block after it, but it uses an explicit branch to do so (e.g. a table jump).
928///
929/// True is a conservative answer.
930///
931bool BranchFolder::CanFallThrough(MachineBasicBlock *CurBB,
932                                  bool BranchUnAnalyzable,
933                                  MachineBasicBlock *TBB,
934                                  MachineBasicBlock *FBB,
935                                  const SmallVectorImpl<MachineOperand> &Cond) {
936  MachineFunction::iterator Fallthrough = CurBB;
937  ++Fallthrough;
938  // If FallthroughBlock is off the end of the function, it can't fall through.
939  if (Fallthrough == CurBB->getParent()->end())
940    return false;
941
942  // If FallthroughBlock isn't a successor of CurBB, no fallthrough is possible.
943  if (!CurBB->isSuccessor(Fallthrough))
944    return false;
945
946  // If we couldn't analyze the branch, examine the last instruction.
947  // If the block doesn't end in a known control barrier, assume fallthrough
948  // is possible. The isPredicable check is needed because this code can be
949  // called during IfConversion, where an instruction which is normally a
950  // Barrier is predicated and thus no longer an actual control barrier. This
951  // is over-conservative though, because if an instruction isn't actually
952  // predicated we could still treat it like a barrier.
953  if (BranchUnAnalyzable)
954    return CurBB->empty() || !CurBB->back().getDesc().isBarrier() ||
955           CurBB->back().getDesc().isPredicable();
956
957  // If there is no branch, control always falls through.
958  if (TBB == 0) return true;
959
960  // If there is some explicit branch to the fallthrough block, it can obviously
961  // reach, even though the branch should get folded to fall through implicitly.
962  if (MachineFunction::iterator(TBB) == Fallthrough ||
963      MachineFunction::iterator(FBB) == Fallthrough)
964    return true;
965
966  // If it's an unconditional branch to some block not the fall through, it
967  // doesn't fall through.
968  if (Cond.empty()) return false;
969
970  // Otherwise, if it is conditional and has no explicit false block, it falls
971  // through.
972  return FBB == 0;
973}
974
975/// CanFallThrough - Return true if the specified can implicitly transfer
976/// control to the block after it by falling off the end of it.  This should
977/// return false if it can reach the block after it, but it uses an explicit
978/// branch to do so (e.g. a table jump).
979///
980/// True is a conservative answer.
981///
982bool BranchFolder::CanFallThrough(MachineBasicBlock *CurBB) {
983  MachineBasicBlock *TBB = 0, *FBB = 0;
984  SmallVector<MachineOperand, 4> Cond;
985  bool CurUnAnalyzable = TII->AnalyzeBranch(*CurBB, TBB, FBB, Cond, true);
986  return CanFallThrough(CurBB, CurUnAnalyzable, TBB, FBB, Cond);
987}
988
989/// IsBetterFallthrough - Return true if it would be clearly better to
990/// fall-through to MBB1 than to fall through into MBB2.  This has to return
991/// a strict ordering, returning true for both (MBB1,MBB2) and (MBB2,MBB1) will
992/// result in infinite loops.
993static bool IsBetterFallthrough(MachineBasicBlock *MBB1,
994                                MachineBasicBlock *MBB2) {
995  // Right now, we use a simple heuristic.  If MBB2 ends with a call, and
996  // MBB1 doesn't, we prefer to fall through into MBB1.  This allows us to
997  // optimize branches that branch to either a return block or an assert block
998  // into a fallthrough to the return.
999  if (MBB1->empty() || MBB2->empty()) return false;
1000
1001  // If there is a clear successor ordering we make sure that one block
1002  // will fall through to the next
1003  if (MBB1->isSuccessor(MBB2)) return true;
1004  if (MBB2->isSuccessor(MBB1)) return false;
1005
1006  MachineInstr *MBB1I = --MBB1->end();
1007  MachineInstr *MBB2I = --MBB2->end();
1008  return MBB2I->getDesc().isCall() && !MBB1I->getDesc().isCall();
1009}
1010
1011/// TailDuplicate - MBB unconditionally branches to SuccBB. If it is profitable,
1012/// duplicate SuccBB's contents in MBB to eliminate the branch.
1013bool BranchFolder::TailDuplicate(MachineBasicBlock *TailBB,
1014                                 bool PrevFallsThrough,
1015                                 MachineFunction &MF) {
1016  // Don't try to tail-duplicate single-block loops.
1017  if (TailBB->isSuccessor(TailBB))
1018    return false;
1019
1020  // Don't tail-duplicate a block which will soon be folded into its successor.
1021  if (TailBB->succ_size() == 1 &&
1022      TailBB->succ_begin()[0]->pred_size() == 1)
1023    return false;
1024
1025  // Duplicate up to one less that the tail-merge threshold, so that we don't
1026  // get into an infinite loop between duplicating and merging. When optimizing
1027  // for size, duplicate only one, because one branch instruction can be
1028  // eliminated to compensate for the duplication.
1029  unsigned MaxDuplicateCount =
1030    MF.getFunction()->hasFnAttr(Attribute::OptimizeForSize) ?
1031      1 : (TailMergeSize - 1);
1032
1033  // Check the instructions in the block to determine whether tail-duplication
1034  // is invalid or unlikely to be unprofitable.
1035  unsigned i = 0;
1036  bool HasCall = false;
1037  for (MachineBasicBlock::iterator I = TailBB->begin();
1038       I != TailBB->end(); ++I, ++i) {
1039    // Non-duplicable things shouldn't be tail-duplicated.
1040    if (I->getDesc().isNotDuplicable()) return false;
1041    // Don't duplicate more than the threshold.
1042    if (i == MaxDuplicateCount) return false;
1043    // Remember if we saw a call.
1044    if (I->getDesc().isCall()) HasCall = true;
1045  }
1046  // Heuristically, don't tail-duplicate calls if it would expand code size,
1047  // as it's less likely to be worth the extra cost.
1048  if (i > 1 && HasCall)
1049    return false;
1050
1051  // Iterate through all the unique predecessors and tail-duplicate this
1052  // block into them, if possible. Copying the list ahead of time also
1053  // avoids trouble with the predecessor list reallocating.
1054  bool Changed = false;
1055  SmallSetVector<MachineBasicBlock *, 8> Preds(TailBB->pred_begin(),
1056                                               TailBB->pred_end());
1057  for (SmallSetVector<MachineBasicBlock *, 8>::iterator PI = Preds.begin(),
1058       PE = Preds.end(); PI != PE; ++PI) {
1059    MachineBasicBlock *PredBB = *PI;
1060
1061    assert(TailBB != PredBB &&
1062           "Single-block loop should have been rejected earlier!");
1063    if (PredBB->succ_size() > 1) continue;
1064
1065    MachineBasicBlock *PredTBB, *PredFBB;
1066    SmallVector<MachineOperand, 4> PredCond;
1067    if (TII->AnalyzeBranch(*PredBB, PredTBB, PredFBB, PredCond, true))
1068      continue;
1069    if (!PredCond.empty())
1070      continue;
1071    // EH edges are ignored by AnalyzeBranch.
1072    if (PredBB->succ_size() != 1)
1073      continue;
1074    // Don't duplicate into a fall-through predecessor unless its the
1075    // only predecessor.
1076    if (PredBB->isLayoutSuccessor(TailBB) &&
1077        PrevFallsThrough &&
1078        TailBB->pred_size() != 1)
1079      continue;
1080
1081    DEBUG(errs() << "\nTail-duplicating into PredBB: " << *PredBB
1082                 << "From Succ: " << *TailBB);
1083
1084    // Remove PredBB's unconditional branch.
1085    TII->RemoveBranch(*PredBB);
1086    // Clone the contents of TailBB into PredBB.
1087    for (MachineBasicBlock::iterator I = TailBB->begin(), E = TailBB->end();
1088         I != E; ++I) {
1089      MachineInstr *NewMI = MF.CloneMachineInstr(I);
1090      PredBB->insert(PredBB->end(), NewMI);
1091    }
1092
1093    // Update the CFG.
1094    PredBB->removeSuccessor(PredBB->succ_begin());
1095    assert(PredBB->succ_empty() &&
1096           "TailDuplicate called on block with multiple successors!");
1097    for (MachineBasicBlock::succ_iterator I = TailBB->succ_begin(),
1098         E = TailBB->succ_end(); I != E; ++I)
1099       PredBB->addSuccessor(*I);
1100
1101    Changed = true;
1102  }
1103
1104  return Changed;
1105}
1106
1107/// OptimizeBlock - Analyze and optimize control flow related to the specified
1108/// block.  This is never called on the entry block.
1109bool BranchFolder::OptimizeBlock(MachineBasicBlock *MBB) {
1110  bool MadeChange = false;
1111  MachineFunction &MF = *MBB->getParent();
1112ReoptimizeBlock:
1113
1114  MachineFunction::iterator FallThrough = MBB;
1115  ++FallThrough;
1116
1117  // If this block is empty, make everyone use its fall-through, not the block
1118  // explicitly.  Landing pads should not do this since the landing-pad table
1119  // points to this block.  Blocks with their addresses taken shouldn't be
1120  // optimized away.
1121  if (MBB->empty() && !MBB->isLandingPad() && !MBB->hasAddressTaken()) {
1122    // Dead block?  Leave for cleanup later.
1123    if (MBB->pred_empty()) return MadeChange;
1124
1125    if (FallThrough == MF.end()) {
1126      // TODO: Simplify preds to not branch here if possible!
1127    } else {
1128      // Rewrite all predecessors of the old block to go to the fallthrough
1129      // instead.
1130      while (!MBB->pred_empty()) {
1131        MachineBasicBlock *Pred = *(MBB->pred_end()-1);
1132        Pred->ReplaceUsesOfBlockWith(MBB, FallThrough);
1133      }
1134      // If MBB was the target of a jump table, update jump tables to go to the
1135      // fallthrough instead.
1136      MF.getJumpTableInfo()->ReplaceMBBInJumpTables(MBB, FallThrough);
1137      MadeChange = true;
1138    }
1139    return MadeChange;
1140  }
1141
1142  // Check to see if we can simplify the terminator of the block before this
1143  // one.
1144  MachineBasicBlock &PrevBB = *prior(MachineFunction::iterator(MBB));
1145
1146  MachineBasicBlock *PriorTBB = 0, *PriorFBB = 0;
1147  SmallVector<MachineOperand, 4> PriorCond;
1148  bool PriorUnAnalyzable =
1149    TII->AnalyzeBranch(PrevBB, PriorTBB, PriorFBB, PriorCond, true);
1150  if (!PriorUnAnalyzable) {
1151    // If the CFG for the prior block has extra edges, remove them.
1152    MadeChange |= PrevBB.CorrectExtraCFGEdges(PriorTBB, PriorFBB,
1153                                              !PriorCond.empty());
1154
1155    // If the previous branch is conditional and both conditions go to the same
1156    // destination, remove the branch, replacing it with an unconditional one or
1157    // a fall-through.
1158    if (PriorTBB && PriorTBB == PriorFBB) {
1159      TII->RemoveBranch(PrevBB);
1160      PriorCond.clear();
1161      if (PriorTBB != MBB)
1162        TII->InsertBranch(PrevBB, PriorTBB, 0, PriorCond);
1163      MadeChange = true;
1164      ++NumBranchOpts;
1165      goto ReoptimizeBlock;
1166    }
1167
1168    // If the previous block unconditionally falls through to this block and
1169    // this block has no other predecessors, move the contents of this block
1170    // into the prior block. This doesn't usually happen when SimplifyCFG
1171    // has been used, but it can happen tail duplication eliminates all the
1172    // non-branch predecessors of a block leaving only the fall-through edge.
1173    // This has to check PrevBB->succ_size() because EH edges are ignored by
1174    // AnalyzeBranch.
1175    if (PriorCond.empty() && !PriorTBB && MBB->pred_size() == 1 &&
1176        PrevBB.succ_size() == 1 &&
1177        !MBB->hasAddressTaken()) {
1178      DEBUG(errs() << "\nMerging into block: " << PrevBB
1179                   << "From MBB: " << *MBB);
1180      PrevBB.splice(PrevBB.end(), MBB, MBB->begin(), MBB->end());
1181      PrevBB.removeSuccessor(PrevBB.succ_begin());;
1182      assert(PrevBB.succ_empty());
1183      PrevBB.transferSuccessors(MBB);
1184      MadeChange = true;
1185      return MadeChange;
1186    }
1187
1188    // If the previous branch *only* branches to *this* block (conditional or
1189    // not) remove the branch.
1190    if (PriorTBB == MBB && PriorFBB == 0) {
1191      TII->RemoveBranch(PrevBB);
1192      MadeChange = true;
1193      ++NumBranchOpts;
1194      goto ReoptimizeBlock;
1195    }
1196
1197    // If the prior block branches somewhere else on the condition and here if
1198    // the condition is false, remove the uncond second branch.
1199    if (PriorFBB == MBB) {
1200      TII->RemoveBranch(PrevBB);
1201      TII->InsertBranch(PrevBB, PriorTBB, 0, PriorCond);
1202      MadeChange = true;
1203      ++NumBranchOpts;
1204      goto ReoptimizeBlock;
1205    }
1206
1207    // If the prior block branches here on true and somewhere else on false, and
1208    // if the branch condition is reversible, reverse the branch to create a
1209    // fall-through.
1210    if (PriorTBB == MBB) {
1211      SmallVector<MachineOperand, 4> NewPriorCond(PriorCond);
1212      if (!TII->ReverseBranchCondition(NewPriorCond)) {
1213        TII->RemoveBranch(PrevBB);
1214        TII->InsertBranch(PrevBB, PriorFBB, 0, NewPriorCond);
1215        MadeChange = true;
1216        ++NumBranchOpts;
1217        goto ReoptimizeBlock;
1218      }
1219    }
1220
1221    // If this block has no successors (e.g. it is a return block or ends with
1222    // a call to a no-return function like abort or __cxa_throw) and if the pred
1223    // falls through into this block, and if it would otherwise fall through
1224    // into the block after this, move this block to the end of the function.
1225    //
1226    // We consider it more likely that execution will stay in the function (e.g.
1227    // due to loops) than it is to exit it.  This asserts in loops etc, moving
1228    // the assert condition out of the loop body.
1229    if (MBB->succ_empty() && !PriorCond.empty() && PriorFBB == 0 &&
1230        MachineFunction::iterator(PriorTBB) == FallThrough &&
1231        !CanFallThrough(MBB)) {
1232      bool DoTransform = true;
1233
1234      // We have to be careful that the succs of PredBB aren't both no-successor
1235      // blocks.  If neither have successors and if PredBB is the second from
1236      // last block in the function, we'd just keep swapping the two blocks for
1237      // last.  Only do the swap if one is clearly better to fall through than
1238      // the other.
1239      if (FallThrough == --MF.end() &&
1240          !IsBetterFallthrough(PriorTBB, MBB))
1241        DoTransform = false;
1242
1243      // We don't want to do this transformation if we have control flow like:
1244      //   br cond BB2
1245      // BB1:
1246      //   ..
1247      //   jmp BBX
1248      // BB2:
1249      //   ..
1250      //   ret
1251      //
1252      // In this case, we could actually be moving the return block *into* a
1253      // loop!
1254      if (DoTransform && !MBB->succ_empty() &&
1255          (!CanFallThrough(PriorTBB) || PriorTBB->empty()))
1256        DoTransform = false;
1257
1258
1259      if (DoTransform) {
1260        // Reverse the branch so we will fall through on the previous true cond.
1261        SmallVector<MachineOperand, 4> NewPriorCond(PriorCond);
1262        if (!TII->ReverseBranchCondition(NewPriorCond)) {
1263          DEBUG(errs() << "\nMoving MBB: " << *MBB
1264                       << "To make fallthrough to: " << *PriorTBB << "\n");
1265
1266          TII->RemoveBranch(PrevBB);
1267          TII->InsertBranch(PrevBB, MBB, 0, NewPriorCond);
1268
1269          // Move this block to the end of the function.
1270          MBB->moveAfter(--MF.end());
1271          MadeChange = true;
1272          ++NumBranchOpts;
1273          return MadeChange;
1274        }
1275      }
1276    }
1277  }
1278
1279  // Analyze the branch in the current block.
1280  MachineBasicBlock *CurTBB = 0, *CurFBB = 0;
1281  SmallVector<MachineOperand, 4> CurCond;
1282  bool CurUnAnalyzable= TII->AnalyzeBranch(*MBB, CurTBB, CurFBB, CurCond, true);
1283  if (!CurUnAnalyzable) {
1284    // If the CFG for the prior block has extra edges, remove them.
1285    MadeChange |= MBB->CorrectExtraCFGEdges(CurTBB, CurFBB, !CurCond.empty());
1286
1287    // If this is a two-way branch, and the FBB branches to this block, reverse
1288    // the condition so the single-basic-block loop is faster.  Instead of:
1289    //    Loop: xxx; jcc Out; jmp Loop
1290    // we want:
1291    //    Loop: xxx; jncc Loop; jmp Out
1292    if (CurTBB && CurFBB && CurFBB == MBB && CurTBB != MBB) {
1293      SmallVector<MachineOperand, 4> NewCond(CurCond);
1294      if (!TII->ReverseBranchCondition(NewCond)) {
1295        TII->RemoveBranch(*MBB);
1296        TII->InsertBranch(*MBB, CurFBB, CurTBB, NewCond);
1297        MadeChange = true;
1298        ++NumBranchOpts;
1299        goto ReoptimizeBlock;
1300      }
1301    }
1302
1303
1304    // If this branch is the only thing in its block, see if we can forward
1305    // other blocks across it.
1306    if (CurTBB && CurCond.empty() && CurFBB == 0 &&
1307        MBB->begin()->getDesc().isBranch() && CurTBB != MBB &&
1308        !MBB->hasAddressTaken()) {
1309      // This block may contain just an unconditional branch.  Because there can
1310      // be 'non-branch terminators' in the block, try removing the branch and
1311      // then seeing if the block is empty.
1312      TII->RemoveBranch(*MBB);
1313
1314      // If this block is just an unconditional branch to CurTBB, we can
1315      // usually completely eliminate the block.  The only case we cannot
1316      // completely eliminate the block is when the block before this one
1317      // falls through into MBB and we can't understand the prior block's branch
1318      // condition.
1319      if (MBB->empty()) {
1320        bool PredHasNoFallThrough = TII->BlockHasNoFallThrough(PrevBB);
1321        if (PredHasNoFallThrough || !PriorUnAnalyzable ||
1322            !PrevBB.isSuccessor(MBB)) {
1323          // If the prior block falls through into us, turn it into an
1324          // explicit branch to us to make updates simpler.
1325          if (!PredHasNoFallThrough && PrevBB.isSuccessor(MBB) &&
1326              PriorTBB != MBB && PriorFBB != MBB) {
1327            if (PriorTBB == 0) {
1328              assert(PriorCond.empty() && PriorFBB == 0 &&
1329                     "Bad branch analysis");
1330              PriorTBB = MBB;
1331            } else {
1332              assert(PriorFBB == 0 && "Machine CFG out of date!");
1333              PriorFBB = MBB;
1334            }
1335            TII->RemoveBranch(PrevBB);
1336            TII->InsertBranch(PrevBB, PriorTBB, PriorFBB, PriorCond);
1337          }
1338
1339          // Iterate through all the predecessors, revectoring each in-turn.
1340          size_t PI = 0;
1341          bool DidChange = false;
1342          bool HasBranchToSelf = false;
1343          while(PI != MBB->pred_size()) {
1344            MachineBasicBlock *PMBB = *(MBB->pred_begin() + PI);
1345            if (PMBB == MBB) {
1346              // If this block has an uncond branch to itself, leave it.
1347              ++PI;
1348              HasBranchToSelf = true;
1349            } else {
1350              DidChange = true;
1351              PMBB->ReplaceUsesOfBlockWith(MBB, CurTBB);
1352              // If this change resulted in PMBB ending in a conditional
1353              // branch where both conditions go to the same destination,
1354              // change this to an unconditional branch (and fix the CFG).
1355              MachineBasicBlock *NewCurTBB = 0, *NewCurFBB = 0;
1356              SmallVector<MachineOperand, 4> NewCurCond;
1357              bool NewCurUnAnalyzable = TII->AnalyzeBranch(*PMBB, NewCurTBB,
1358                      NewCurFBB, NewCurCond, true);
1359              if (!NewCurUnAnalyzable && NewCurTBB && NewCurTBB == NewCurFBB) {
1360                TII->RemoveBranch(*PMBB);
1361                NewCurCond.clear();
1362                TII->InsertBranch(*PMBB, NewCurTBB, 0, NewCurCond);
1363                MadeChange = true;
1364                ++NumBranchOpts;
1365                PMBB->CorrectExtraCFGEdges(NewCurTBB, 0, false);
1366              }
1367            }
1368          }
1369
1370          // Change any jumptables to go to the new MBB.
1371          MF.getJumpTableInfo()->ReplaceMBBInJumpTables(MBB, CurTBB);
1372          if (DidChange) {
1373            ++NumBranchOpts;
1374            MadeChange = true;
1375            if (!HasBranchToSelf) return MadeChange;
1376          }
1377        }
1378      }
1379
1380      // Add the branch back if the block is more than just an uncond branch.
1381      TII->InsertBranch(*MBB, CurTBB, 0, CurCond);
1382    }
1383  }
1384
1385  // Now we know that there was no fall-through into this block, check to
1386  // see if it has a fall-through into its successor.
1387  bool CurFallsThru = CanFallThrough(MBB, CurUnAnalyzable, CurTBB, CurFBB,
1388                                     CurCond);
1389  bool PrevFallsThru = CanFallThrough(&PrevBB, PriorUnAnalyzable,
1390                                      PriorTBB, PriorFBB, PriorCond);
1391
1392  // If this block is small, unconditionally branched to, and does not
1393  // fall through, tail-duplicate its instructions into its predecessors
1394  // to eliminate a (dynamic) branch.
1395  if (!CurFallsThru)
1396    if (TailDuplicate(MBB, PrevFallsThru, MF)) {
1397      MadeChange = true;
1398      return MadeChange;
1399    }
1400
1401  // If the prior block doesn't fall through into this block, and if this
1402  // block doesn't fall through into some other block, see if we can find a
1403  // place to move this block where a fall-through will happen.
1404  if (!PrevFallsThru) {
1405    if (!MBB->isLandingPad()) {
1406      // Check all the predecessors of this block.  If one of them has no fall
1407      // throughs, move this block right after it.
1408      for (MachineBasicBlock::pred_iterator PI = MBB->pred_begin(),
1409           E = MBB->pred_end(); PI != E; ++PI) {
1410        // Analyze the branch at the end of the pred.
1411        MachineBasicBlock *PredBB = *PI;
1412        MachineFunction::iterator PredFallthrough = PredBB; ++PredFallthrough;
1413        MachineBasicBlock *PredTBB, *PredFBB;
1414        SmallVector<MachineOperand, 4> PredCond;
1415        if (PredBB != MBB && !CanFallThrough(PredBB) &&
1416            !TII->AnalyzeBranch(*PredBB, PredTBB, PredFBB, PredCond, true)
1417            && (!CurFallsThru || !CurTBB || !CurFBB)
1418            && (!CurFallsThru || MBB->getNumber() >= PredBB->getNumber())) {
1419          // If the current block doesn't fall through, just move it.
1420          // If the current block can fall through and does not end with a
1421          // conditional branch, we need to append an unconditional jump to
1422          // the (current) next block.  To avoid a possible compile-time
1423          // infinite loop, move blocks only backward in this case.
1424          // Also, if there are already 2 branches here, we cannot add a third;
1425          // this means we have the case
1426          // Bcc next
1427          // B elsewhere
1428          // next:
1429          if (CurFallsThru) {
1430            MachineBasicBlock *NextBB = next(MachineFunction::iterator(MBB));
1431            CurCond.clear();
1432            TII->InsertBranch(*MBB, NextBB, 0, CurCond);
1433          }
1434          MBB->moveAfter(PredBB);
1435          MadeChange = true;
1436          goto ReoptimizeBlock;
1437        }
1438      }
1439    }
1440
1441    if (!CurFallsThru) {
1442      // Check all successors to see if we can move this block before it.
1443      for (MachineBasicBlock::succ_iterator SI = MBB->succ_begin(),
1444           E = MBB->succ_end(); SI != E; ++SI) {
1445        // Analyze the branch at the end of the block before the succ.
1446        MachineBasicBlock *SuccBB = *SI;
1447        MachineFunction::iterator SuccPrev = SuccBB; --SuccPrev;
1448
1449        // If this block doesn't already fall-through to that successor, and if
1450        // the succ doesn't already have a block that can fall through into it,
1451        // and if the successor isn't an EH destination, we can arrange for the
1452        // fallthrough to happen.
1453        if (SuccBB != MBB && &*SuccPrev != MBB &&
1454            !CanFallThrough(SuccPrev) && !CurUnAnalyzable &&
1455            !SuccBB->isLandingPad()) {
1456          MBB->moveBefore(SuccBB);
1457          MadeChange = true;
1458          goto ReoptimizeBlock;
1459        }
1460      }
1461
1462      // Okay, there is no really great place to put this block.  If, however,
1463      // the block before this one would be a fall-through if this block were
1464      // removed, move this block to the end of the function.
1465      MachineBasicBlock *PrevTBB, *PrevFBB;
1466      SmallVector<MachineOperand, 4> PrevCond;
1467      if (FallThrough != MF.end() &&
1468          !TII->AnalyzeBranch(PrevBB, PrevTBB, PrevFBB, PrevCond, true) &&
1469          PrevBB.isSuccessor(FallThrough)) {
1470        MBB->moveAfter(--MF.end());
1471        MadeChange = true;
1472        return MadeChange;
1473      }
1474    }
1475  }
1476
1477  return MadeChange;
1478}
1479