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      1 //===- MachineSSAUpdater.cpp - Unstructured SSA Update Tool ---------------===//
      2 //
      3 //                     The LLVM Compiler Infrastructure
      4 //
      5 // This file is distributed under the University of Illinois Open Source
      6 // License. See LICENSE.TXT for details.
      7 //
      8 //===----------------------------------------------------------------------===//
      9 //
     10 // This file implements the MachineSSAUpdater class. It's based on SSAUpdater
     11 // class in lib/Transforms/Utils.
     12 //
     13 //===----------------------------------------------------------------------===//
     14 
     15 #include "llvm/CodeGen/MachineSSAUpdater.h"
     16 #include "llvm/CodeGen/MachineInstr.h"
     17 #include "llvm/CodeGen/MachineInstrBuilder.h"
     18 #include "llvm/CodeGen/MachineRegisterInfo.h"
     19 #include "llvm/Target/TargetInstrInfo.h"
     20 #include "llvm/Target/TargetMachine.h"
     21 #include "llvm/Target/TargetRegisterInfo.h"
     22 #include "llvm/ADT/DenseMap.h"
     23 #include "llvm/ADT/SmallVector.h"
     24 #include "llvm/Support/AlignOf.h"
     25 #include "llvm/Support/Allocator.h"
     26 #include "llvm/Support/Debug.h"
     27 #include "llvm/Support/ErrorHandling.h"
     28 #include "llvm/Support/raw_ostream.h"
     29 #include "llvm/Transforms/Utils/SSAUpdaterImpl.h"
     30 using namespace llvm;
     31 
     32 typedef DenseMap<MachineBasicBlock*, unsigned> AvailableValsTy;
     33 static AvailableValsTy &getAvailableVals(void *AV) {
     34   return *static_cast<AvailableValsTy*>(AV);
     35 }
     36 
     37 MachineSSAUpdater::MachineSSAUpdater(MachineFunction &MF,
     38                                      SmallVectorImpl<MachineInstr*> *NewPHI)
     39   : AV(0), InsertedPHIs(NewPHI) {
     40   TII = MF.getTarget().getInstrInfo();
     41   MRI = &MF.getRegInfo();
     42 }
     43 
     44 MachineSSAUpdater::~MachineSSAUpdater() {
     45   delete &getAvailableVals(AV);
     46 }
     47 
     48 /// Initialize - Reset this object to get ready for a new set of SSA
     49 /// updates.  ProtoValue is the value used to name PHI nodes.
     50 void MachineSSAUpdater::Initialize(unsigned V) {
     51   if (AV == 0)
     52     AV = new AvailableValsTy();
     53   else
     54     getAvailableVals(AV).clear();
     55 
     56   VR = V;
     57   VRC = MRI->getRegClass(VR);
     58 }
     59 
     60 /// HasValueForBlock - Return true if the MachineSSAUpdater already has a value for
     61 /// the specified block.
     62 bool MachineSSAUpdater::HasValueForBlock(MachineBasicBlock *BB) const {
     63   return getAvailableVals(AV).count(BB);
     64 }
     65 
     66 /// AddAvailableValue - Indicate that a rewritten value is available in the
     67 /// specified block with the specified value.
     68 void MachineSSAUpdater::AddAvailableValue(MachineBasicBlock *BB, unsigned V) {
     69   getAvailableVals(AV)[BB] = V;
     70 }
     71 
     72 /// GetValueAtEndOfBlock - Construct SSA form, materializing a value that is
     73 /// live at the end of the specified block.
     74 unsigned MachineSSAUpdater::GetValueAtEndOfBlock(MachineBasicBlock *BB) {
     75   return GetValueAtEndOfBlockInternal(BB);
     76 }
     77 
     78 static
     79 unsigned LookForIdenticalPHI(MachineBasicBlock *BB,
     80           SmallVector<std::pair<MachineBasicBlock*, unsigned>, 8> &PredValues) {
     81   if (BB->empty())
     82     return 0;
     83 
     84   MachineBasicBlock::iterator I = BB->begin();
     85   if (!I->isPHI())
     86     return 0;
     87 
     88   AvailableValsTy AVals;
     89   for (unsigned i = 0, e = PredValues.size(); i != e; ++i)
     90     AVals[PredValues[i].first] = PredValues[i].second;
     91   while (I != BB->end() && I->isPHI()) {
     92     bool Same = true;
     93     for (unsigned i = 1, e = I->getNumOperands(); i != e; i += 2) {
     94       unsigned SrcReg = I->getOperand(i).getReg();
     95       MachineBasicBlock *SrcBB = I->getOperand(i+1).getMBB();
     96       if (AVals[SrcBB] != SrcReg) {
     97         Same = false;
     98         break;
     99       }
    100     }
    101     if (Same)
    102       return I->getOperand(0).getReg();
    103     ++I;
    104   }
    105   return 0;
    106 }
    107 
    108 /// InsertNewDef - Insert an empty PHI or IMPLICIT_DEF instruction which define
    109 /// a value of the given register class at the start of the specified basic
    110 /// block. It returns the virtual register defined by the instruction.
    111 static
    112 MachineInstr *InsertNewDef(unsigned Opcode,
    113                            MachineBasicBlock *BB, MachineBasicBlock::iterator I,
    114                            const TargetRegisterClass *RC,
    115                            MachineRegisterInfo *MRI,
    116                            const TargetInstrInfo *TII) {
    117   unsigned NewVR = MRI->createVirtualRegister(RC);
    118   return BuildMI(*BB, I, DebugLoc(), TII->get(Opcode), NewVR);
    119 }
    120 
    121 /// GetValueInMiddleOfBlock - Construct SSA form, materializing a value that
    122 /// is live in the middle of the specified block.
    123 ///
    124 /// GetValueInMiddleOfBlock is the same as GetValueAtEndOfBlock except in one
    125 /// important case: if there is a definition of the rewritten value after the
    126 /// 'use' in BB.  Consider code like this:
    127 ///
    128 ///      X1 = ...
    129 ///   SomeBB:
    130 ///      use(X)
    131 ///      X2 = ...
    132 ///      br Cond, SomeBB, OutBB
    133 ///
    134 /// In this case, there are two values (X1 and X2) added to the AvailableVals
    135 /// set by the client of the rewriter, and those values are both live out of
    136 /// their respective blocks.  However, the use of X happens in the *middle* of
    137 /// a block.  Because of this, we need to insert a new PHI node in SomeBB to
    138 /// merge the appropriate values, and this value isn't live out of the block.
    139 ///
    140 unsigned MachineSSAUpdater::GetValueInMiddleOfBlock(MachineBasicBlock *BB) {
    141   // If there is no definition of the renamed variable in this block, just use
    142   // GetValueAtEndOfBlock to do our work.
    143   if (!HasValueForBlock(BB))
    144     return GetValueAtEndOfBlockInternal(BB);
    145 
    146   // If there are no predecessors, just return undef.
    147   if (BB->pred_empty()) {
    148     // Insert an implicit_def to represent an undef value.
    149     MachineInstr *NewDef = InsertNewDef(TargetOpcode::IMPLICIT_DEF,
    150                                         BB, BB->getFirstTerminator(),
    151                                         VRC, MRI, TII);
    152     return NewDef->getOperand(0).getReg();
    153   }
    154 
    155   // Otherwise, we have the hard case.  Get the live-in values for each
    156   // predecessor.
    157   SmallVector<std::pair<MachineBasicBlock*, unsigned>, 8> PredValues;
    158   unsigned SingularValue = 0;
    159 
    160   bool isFirstPred = true;
    161   for (MachineBasicBlock::pred_iterator PI = BB->pred_begin(),
    162          E = BB->pred_end(); PI != E; ++PI) {
    163     MachineBasicBlock *PredBB = *PI;
    164     unsigned PredVal = GetValueAtEndOfBlockInternal(PredBB);
    165     PredValues.push_back(std::make_pair(PredBB, PredVal));
    166 
    167     // Compute SingularValue.
    168     if (isFirstPred) {
    169       SingularValue = PredVal;
    170       isFirstPred = false;
    171     } else if (PredVal != SingularValue)
    172       SingularValue = 0;
    173   }
    174 
    175   // Otherwise, if all the merged values are the same, just use it.
    176   if (SingularValue != 0)
    177     return SingularValue;
    178 
    179   // If an identical PHI is already in BB, just reuse it.
    180   unsigned DupPHI = LookForIdenticalPHI(BB, PredValues);
    181   if (DupPHI)
    182     return DupPHI;
    183 
    184   // Otherwise, we do need a PHI: insert one now.
    185   MachineBasicBlock::iterator Loc = BB->empty() ? BB->end() : BB->begin();
    186   MachineInstr *InsertedPHI = InsertNewDef(TargetOpcode::PHI, BB,
    187                                            Loc, VRC, MRI, TII);
    188 
    189   // Fill in all the predecessors of the PHI.
    190   MachineInstrBuilder MIB(InsertedPHI);
    191   for (unsigned i = 0, e = PredValues.size(); i != e; ++i)
    192     MIB.addReg(PredValues[i].second).addMBB(PredValues[i].first);
    193 
    194   // See if the PHI node can be merged to a single value.  This can happen in
    195   // loop cases when we get a PHI of itself and one other value.
    196   if (unsigned ConstVal = InsertedPHI->isConstantValuePHI()) {
    197     InsertedPHI->eraseFromParent();
    198     return ConstVal;
    199   }
    200 
    201   // If the client wants to know about all new instructions, tell it.
    202   if (InsertedPHIs) InsertedPHIs->push_back(InsertedPHI);
    203 
    204   DEBUG(dbgs() << "  Inserted PHI: " << *InsertedPHI << "\n");
    205   return InsertedPHI->getOperand(0).getReg();
    206 }
    207 
    208 static
    209 MachineBasicBlock *findCorrespondingPred(const MachineInstr *MI,
    210                                          MachineOperand *U) {
    211   for (unsigned i = 1, e = MI->getNumOperands(); i != e; i += 2) {
    212     if (&MI->getOperand(i) == U)
    213       return MI->getOperand(i+1).getMBB();
    214   }
    215 
    216   llvm_unreachable("MachineOperand::getParent() failure?");
    217 }
    218 
    219 /// RewriteUse - Rewrite a use of the symbolic value.  This handles PHI nodes,
    220 /// which use their value in the corresponding predecessor.
    221 void MachineSSAUpdater::RewriteUse(MachineOperand &U) {
    222   MachineInstr *UseMI = U.getParent();
    223   unsigned NewVR = 0;
    224   if (UseMI->isPHI()) {
    225     MachineBasicBlock *SourceBB = findCorrespondingPred(UseMI, &U);
    226     NewVR = GetValueAtEndOfBlockInternal(SourceBB);
    227   } else {
    228     NewVR = GetValueInMiddleOfBlock(UseMI->getParent());
    229   }
    230 
    231   U.setReg(NewVR);
    232 }
    233 
    234 void MachineSSAUpdater::ReplaceRegWith(unsigned OldReg, unsigned NewReg) {
    235   MRI->replaceRegWith(OldReg, NewReg);
    236 
    237   AvailableValsTy &AvailableVals = getAvailableVals(AV);
    238   for (DenseMap<MachineBasicBlock*, unsigned>::iterator
    239          I = AvailableVals.begin(), E = AvailableVals.end(); I != E; ++I)
    240     if (I->second == OldReg)
    241       I->second = NewReg;
    242 }
    243 
    244 /// MachinePHIiter - Iterator for PHI operands.  This is used for the
    245 /// PHI_iterator in the SSAUpdaterImpl template.
    246 namespace {
    247   class MachinePHIiter {
    248   private:
    249     MachineInstr *PHI;
    250     unsigned idx;
    251 
    252   public:
    253     explicit MachinePHIiter(MachineInstr *P) // begin iterator
    254       : PHI(P), idx(1) {}
    255     MachinePHIiter(MachineInstr *P, bool) // end iterator
    256       : PHI(P), idx(PHI->getNumOperands()) {}
    257 
    258     MachinePHIiter &operator++() { idx += 2; return *this; }
    259     bool operator==(const MachinePHIiter& x) const { return idx == x.idx; }
    260     bool operator!=(const MachinePHIiter& x) const { return !operator==(x); }
    261     unsigned getIncomingValue() { return PHI->getOperand(idx).getReg(); }
    262     MachineBasicBlock *getIncomingBlock() {
    263       return PHI->getOperand(idx+1).getMBB();
    264     }
    265   };
    266 }
    267 
    268 /// SSAUpdaterTraits<MachineSSAUpdater> - Traits for the SSAUpdaterImpl
    269 /// template, specialized for MachineSSAUpdater.
    270 namespace llvm {
    271 template<>
    272 class SSAUpdaterTraits<MachineSSAUpdater> {
    273 public:
    274   typedef MachineBasicBlock BlkT;
    275   typedef unsigned ValT;
    276   typedef MachineInstr PhiT;
    277 
    278   typedef MachineBasicBlock::succ_iterator BlkSucc_iterator;
    279   static BlkSucc_iterator BlkSucc_begin(BlkT *BB) { return BB->succ_begin(); }
    280   static BlkSucc_iterator BlkSucc_end(BlkT *BB) { return BB->succ_end(); }
    281 
    282   typedef MachinePHIiter PHI_iterator;
    283   static inline PHI_iterator PHI_begin(PhiT *PHI) { return PHI_iterator(PHI); }
    284   static inline PHI_iterator PHI_end(PhiT *PHI) {
    285     return PHI_iterator(PHI, true);
    286   }
    287 
    288   /// FindPredecessorBlocks - Put the predecessors of BB into the Preds
    289   /// vector.
    290   static void FindPredecessorBlocks(MachineBasicBlock *BB,
    291                                     SmallVectorImpl<MachineBasicBlock*> *Preds){
    292     for (MachineBasicBlock::pred_iterator PI = BB->pred_begin(),
    293            E = BB->pred_end(); PI != E; ++PI)
    294       Preds->push_back(*PI);
    295   }
    296 
    297   /// GetUndefVal - Create an IMPLICIT_DEF instruction with a new register.
    298   /// Add it into the specified block and return the register.
    299   static unsigned GetUndefVal(MachineBasicBlock *BB,
    300                               MachineSSAUpdater *Updater) {
    301     // Insert an implicit_def to represent an undef value.
    302     MachineInstr *NewDef = InsertNewDef(TargetOpcode::IMPLICIT_DEF,
    303                                         BB, BB->getFirstTerminator(),
    304                                         Updater->VRC, Updater->MRI,
    305                                         Updater->TII);
    306     return NewDef->getOperand(0).getReg();
    307   }
    308 
    309   /// CreateEmptyPHI - Create a PHI instruction that defines a new register.
    310   /// Add it into the specified block and return the register.
    311   static unsigned CreateEmptyPHI(MachineBasicBlock *BB, unsigned NumPreds,
    312                                  MachineSSAUpdater *Updater) {
    313     MachineBasicBlock::iterator Loc = BB->empty() ? BB->end() : BB->begin();
    314     MachineInstr *PHI = InsertNewDef(TargetOpcode::PHI, BB, Loc,
    315                                      Updater->VRC, Updater->MRI,
    316                                      Updater->TII);
    317     return PHI->getOperand(0).getReg();
    318   }
    319 
    320   /// AddPHIOperand - Add the specified value as an operand of the PHI for
    321   /// the specified predecessor block.
    322   static void AddPHIOperand(MachineInstr *PHI, unsigned Val,
    323                             MachineBasicBlock *Pred) {
    324     PHI->addOperand(MachineOperand::CreateReg(Val, false));
    325     PHI->addOperand(MachineOperand::CreateMBB(Pred));
    326   }
    327 
    328   /// InstrIsPHI - Check if an instruction is a PHI.
    329   ///
    330   static MachineInstr *InstrIsPHI(MachineInstr *I) {
    331     if (I && I->isPHI())
    332       return I;
    333     return 0;
    334   }
    335 
    336   /// ValueIsPHI - Check if the instruction that defines the specified register
    337   /// is a PHI instruction.
    338   static MachineInstr *ValueIsPHI(unsigned Val, MachineSSAUpdater *Updater) {
    339     return InstrIsPHI(Updater->MRI->getVRegDef(Val));
    340   }
    341 
    342   /// ValueIsNewPHI - Like ValueIsPHI but also check if the PHI has no source
    343   /// operands, i.e., it was just added.
    344   static MachineInstr *ValueIsNewPHI(unsigned Val, MachineSSAUpdater *Updater) {
    345     MachineInstr *PHI = ValueIsPHI(Val, Updater);
    346     if (PHI && PHI->getNumOperands() <= 1)
    347       return PHI;
    348     return 0;
    349   }
    350 
    351   /// GetPHIValue - For the specified PHI instruction, return the register
    352   /// that it defines.
    353   static unsigned GetPHIValue(MachineInstr *PHI) {
    354     return PHI->getOperand(0).getReg();
    355   }
    356 };
    357 
    358 } // End llvm namespace
    359 
    360 /// GetValueAtEndOfBlockInternal - Check to see if AvailableVals has an entry
    361 /// for the specified BB and if so, return it.  If not, construct SSA form by
    362 /// first calculating the required placement of PHIs and then inserting new
    363 /// PHIs where needed.
    364 unsigned MachineSSAUpdater::GetValueAtEndOfBlockInternal(MachineBasicBlock *BB){
    365   AvailableValsTy &AvailableVals = getAvailableVals(AV);
    366   if (unsigned V = AvailableVals[BB])
    367     return V;
    368 
    369   SSAUpdaterImpl<MachineSSAUpdater> Impl(this, &AvailableVals, InsertedPHIs);
    370   return Impl.GetValue(BB);
    371 }
    372