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      1 //===-- RegisterPressure.cpp - Dynamic Register Pressure ------------------===//
      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 RegisterPressure class which can be used to track
     11 // MachineInstr level register pressure.
     12 //
     13 //===----------------------------------------------------------------------===//
     14 
     15 #include "llvm/CodeGen/RegisterPressure.h"
     16 #include "llvm/CodeGen/LiveInterval.h"
     17 #include "llvm/CodeGen/LiveIntervalAnalysis.h"
     18 #include "llvm/CodeGen/MachineRegisterInfo.h"
     19 #include "llvm/CodeGen/RegisterClassInfo.h"
     20 #include "llvm/Support/Debug.h"
     21 #include "llvm/Support/raw_ostream.h"
     22 
     23 using namespace llvm;
     24 
     25 /// Increase pressure for each pressure set provided by TargetRegisterInfo.
     26 static void increaseSetPressure(std::vector<unsigned> &CurrSetPressure,
     27                                 PSetIterator PSetI) {
     28   unsigned Weight = PSetI.getWeight();
     29   for (; PSetI.isValid(); ++PSetI)
     30     CurrSetPressure[*PSetI] += Weight;
     31 }
     32 
     33 /// Decrease pressure for each pressure set provided by TargetRegisterInfo.
     34 static void decreaseSetPressure(std::vector<unsigned> &CurrSetPressure,
     35                                 PSetIterator PSetI) {
     36   unsigned Weight = PSetI.getWeight();
     37   for (; PSetI.isValid(); ++PSetI) {
     38     assert(CurrSetPressure[*PSetI] >= Weight && "register pressure underflow");
     39     CurrSetPressure[*PSetI] -= Weight;
     40   }
     41 }
     42 
     43 LLVM_DUMP_METHOD
     44 void llvm::dumpRegSetPressure(ArrayRef<unsigned> SetPressure,
     45                               const TargetRegisterInfo *TRI) {
     46   bool Empty = true;
     47   for (unsigned i = 0, e = SetPressure.size(); i < e; ++i) {
     48     if (SetPressure[i] != 0) {
     49       dbgs() << TRI->getRegPressureSetName(i) << "=" << SetPressure[i] << '\n';
     50       Empty = false;
     51     }
     52   }
     53   if (Empty)
     54     dbgs() << "\n";
     55 }
     56 
     57 LLVM_DUMP_METHOD
     58 void RegisterPressure::dump(const TargetRegisterInfo *TRI) const {
     59   dbgs() << "Max Pressure: ";
     60   dumpRegSetPressure(MaxSetPressure, TRI);
     61   dbgs() << "Live In: ";
     62   for (unsigned i = 0, e = LiveInRegs.size(); i < e; ++i)
     63     dbgs() << PrintReg(LiveInRegs[i], TRI) << " ";
     64   dbgs() << '\n';
     65   dbgs() << "Live Out: ";
     66   for (unsigned i = 0, e = LiveOutRegs.size(); i < e; ++i)
     67     dbgs() << PrintReg(LiveOutRegs[i], TRI) << " ";
     68   dbgs() << '\n';
     69 }
     70 
     71 LLVM_DUMP_METHOD
     72 void RegPressureTracker::dump() const {
     73   if (!isTopClosed() || !isBottomClosed()) {
     74     dbgs() << "Curr Pressure: ";
     75     dumpRegSetPressure(CurrSetPressure, TRI);
     76   }
     77   P.dump(TRI);
     78 }
     79 
     80 /// Increase the current pressure as impacted by these registers and bump
     81 /// the high water mark if needed.
     82 void RegPressureTracker::increaseRegPressure(ArrayRef<unsigned> RegUnits) {
     83   for (unsigned i = 0, e = RegUnits.size(); i != e; ++i) {
     84     PSetIterator PSetI = MRI->getPressureSets(RegUnits[i]);
     85     unsigned Weight = PSetI.getWeight();
     86     for (; PSetI.isValid(); ++PSetI) {
     87       CurrSetPressure[*PSetI] += Weight;
     88       if (CurrSetPressure[*PSetI] > P.MaxSetPressure[*PSetI]) {
     89         P.MaxSetPressure[*PSetI] = CurrSetPressure[*PSetI];
     90       }
     91     }
     92   }
     93 }
     94 
     95 /// Simply decrease the current pressure as impacted by these registers.
     96 void RegPressureTracker::decreaseRegPressure(ArrayRef<unsigned> RegUnits) {
     97   for (unsigned I = 0, E = RegUnits.size(); I != E; ++I)
     98     decreaseSetPressure(CurrSetPressure, MRI->getPressureSets(RegUnits[I]));
     99 }
    100 
    101 /// Clear the result so it can be used for another round of pressure tracking.
    102 void IntervalPressure::reset() {
    103   TopIdx = BottomIdx = SlotIndex();
    104   MaxSetPressure.clear();
    105   LiveInRegs.clear();
    106   LiveOutRegs.clear();
    107 }
    108 
    109 /// Clear the result so it can be used for another round of pressure tracking.
    110 void RegionPressure::reset() {
    111   TopPos = BottomPos = MachineBasicBlock::const_iterator();
    112   MaxSetPressure.clear();
    113   LiveInRegs.clear();
    114   LiveOutRegs.clear();
    115 }
    116 
    117 /// If the current top is not less than or equal to the next index, open it.
    118 /// We happen to need the SlotIndex for the next top for pressure update.
    119 void IntervalPressure::openTop(SlotIndex NextTop) {
    120   if (TopIdx <= NextTop)
    121     return;
    122   TopIdx = SlotIndex();
    123   LiveInRegs.clear();
    124 }
    125 
    126 /// If the current top is the previous instruction (before receding), open it.
    127 void RegionPressure::openTop(MachineBasicBlock::const_iterator PrevTop) {
    128   if (TopPos != PrevTop)
    129     return;
    130   TopPos = MachineBasicBlock::const_iterator();
    131   LiveInRegs.clear();
    132 }
    133 
    134 /// If the current bottom is not greater than the previous index, open it.
    135 void IntervalPressure::openBottom(SlotIndex PrevBottom) {
    136   if (BottomIdx > PrevBottom)
    137     return;
    138   BottomIdx = SlotIndex();
    139   LiveInRegs.clear();
    140 }
    141 
    142 /// If the current bottom is the previous instr (before advancing), open it.
    143 void RegionPressure::openBottom(MachineBasicBlock::const_iterator PrevBottom) {
    144   if (BottomPos != PrevBottom)
    145     return;
    146   BottomPos = MachineBasicBlock::const_iterator();
    147   LiveInRegs.clear();
    148 }
    149 
    150 const LiveRange *RegPressureTracker::getLiveRange(unsigned Reg) const {
    151   if (TargetRegisterInfo::isVirtualRegister(Reg))
    152     return &LIS->getInterval(Reg);
    153   return LIS->getCachedRegUnit(Reg);
    154 }
    155 
    156 void RegPressureTracker::reset() {
    157   MBB = nullptr;
    158   LIS = nullptr;
    159 
    160   CurrSetPressure.clear();
    161   LiveThruPressure.clear();
    162   P.MaxSetPressure.clear();
    163 
    164   if (RequireIntervals)
    165     static_cast<IntervalPressure&>(P).reset();
    166   else
    167     static_cast<RegionPressure&>(P).reset();
    168 
    169   LiveRegs.PhysRegs.clear();
    170   LiveRegs.VirtRegs.clear();
    171   UntiedDefs.clear();
    172 }
    173 
    174 /// Setup the RegPressureTracker.
    175 ///
    176 /// TODO: Add support for pressure without LiveIntervals.
    177 void RegPressureTracker::init(const MachineFunction *mf,
    178                               const RegisterClassInfo *rci,
    179                               const LiveIntervals *lis,
    180                               const MachineBasicBlock *mbb,
    181                               MachineBasicBlock::const_iterator pos,
    182                               bool ShouldTrackUntiedDefs)
    183 {
    184   reset();
    185 
    186   MF = mf;
    187   TRI = MF->getSubtarget().getRegisterInfo();
    188   RCI = rci;
    189   MRI = &MF->getRegInfo();
    190   MBB = mbb;
    191   TrackUntiedDefs = ShouldTrackUntiedDefs;
    192 
    193   if (RequireIntervals) {
    194     assert(lis && "IntervalPressure requires LiveIntervals");
    195     LIS = lis;
    196   }
    197 
    198   CurrPos = pos;
    199   CurrSetPressure.assign(TRI->getNumRegPressureSets(), 0);
    200 
    201   P.MaxSetPressure = CurrSetPressure;
    202 
    203   LiveRegs.PhysRegs.setUniverse(TRI->getNumRegs());
    204   LiveRegs.VirtRegs.setUniverse(MRI->getNumVirtRegs());
    205   if (TrackUntiedDefs)
    206     UntiedDefs.setUniverse(MRI->getNumVirtRegs());
    207 }
    208 
    209 /// Does this pressure result have a valid top position and live ins.
    210 bool RegPressureTracker::isTopClosed() const {
    211   if (RequireIntervals)
    212     return static_cast<IntervalPressure&>(P).TopIdx.isValid();
    213   return (static_cast<RegionPressure&>(P).TopPos ==
    214           MachineBasicBlock::const_iterator());
    215 }
    216 
    217 /// Does this pressure result have a valid bottom position and live outs.
    218 bool RegPressureTracker::isBottomClosed() const {
    219   if (RequireIntervals)
    220     return static_cast<IntervalPressure&>(P).BottomIdx.isValid();
    221   return (static_cast<RegionPressure&>(P).BottomPos ==
    222           MachineBasicBlock::const_iterator());
    223 }
    224 
    225 
    226 SlotIndex RegPressureTracker::getCurrSlot() const {
    227   MachineBasicBlock::const_iterator IdxPos = CurrPos;
    228   while (IdxPos != MBB->end() && IdxPos->isDebugValue())
    229     ++IdxPos;
    230   if (IdxPos == MBB->end())
    231     return LIS->getMBBEndIdx(MBB);
    232   return LIS->getInstructionIndex(IdxPos).getRegSlot();
    233 }
    234 
    235 /// Set the boundary for the top of the region and summarize live ins.
    236 void RegPressureTracker::closeTop() {
    237   if (RequireIntervals)
    238     static_cast<IntervalPressure&>(P).TopIdx = getCurrSlot();
    239   else
    240     static_cast<RegionPressure&>(P).TopPos = CurrPos;
    241 
    242   assert(P.LiveInRegs.empty() && "inconsistent max pressure result");
    243   P.LiveInRegs.reserve(LiveRegs.PhysRegs.size() + LiveRegs.VirtRegs.size());
    244   P.LiveInRegs.append(LiveRegs.PhysRegs.begin(), LiveRegs.PhysRegs.end());
    245   for (SparseSet<unsigned>::const_iterator I =
    246          LiveRegs.VirtRegs.begin(), E = LiveRegs.VirtRegs.end(); I != E; ++I)
    247     P.LiveInRegs.push_back(*I);
    248   std::sort(P.LiveInRegs.begin(), P.LiveInRegs.end());
    249   P.LiveInRegs.erase(std::unique(P.LiveInRegs.begin(), P.LiveInRegs.end()),
    250                      P.LiveInRegs.end());
    251 }
    252 
    253 /// Set the boundary for the bottom of the region and summarize live outs.
    254 void RegPressureTracker::closeBottom() {
    255   if (RequireIntervals)
    256     static_cast<IntervalPressure&>(P).BottomIdx = getCurrSlot();
    257   else
    258     static_cast<RegionPressure&>(P).BottomPos = CurrPos;
    259 
    260   assert(P.LiveOutRegs.empty() && "inconsistent max pressure result");
    261   P.LiveOutRegs.reserve(LiveRegs.PhysRegs.size() + LiveRegs.VirtRegs.size());
    262   P.LiveOutRegs.append(LiveRegs.PhysRegs.begin(), LiveRegs.PhysRegs.end());
    263   for (SparseSet<unsigned>::const_iterator I =
    264          LiveRegs.VirtRegs.begin(), E = LiveRegs.VirtRegs.end(); I != E; ++I)
    265     P.LiveOutRegs.push_back(*I);
    266   std::sort(P.LiveOutRegs.begin(), P.LiveOutRegs.end());
    267   P.LiveOutRegs.erase(std::unique(P.LiveOutRegs.begin(), P.LiveOutRegs.end()),
    268                       P.LiveOutRegs.end());
    269 }
    270 
    271 /// Finalize the region boundaries and record live ins and live outs.
    272 void RegPressureTracker::closeRegion() {
    273   if (!isTopClosed() && !isBottomClosed()) {
    274     assert(LiveRegs.PhysRegs.empty() && LiveRegs.VirtRegs.empty() &&
    275            "no region boundary");
    276     return;
    277   }
    278   if (!isBottomClosed())
    279     closeBottom();
    280   else if (!isTopClosed())
    281     closeTop();
    282   // If both top and bottom are closed, do nothing.
    283 }
    284 
    285 /// The register tracker is unaware of global liveness so ignores normal
    286 /// live-thru ranges. However, two-address or coalesced chains can also lead
    287 /// to live ranges with no holes. Count these to inform heuristics that we
    288 /// can never drop below this pressure.
    289 void RegPressureTracker::initLiveThru(const RegPressureTracker &RPTracker) {
    290   LiveThruPressure.assign(TRI->getNumRegPressureSets(), 0);
    291   assert(isBottomClosed() && "need bottom-up tracking to intialize.");
    292   for (unsigned i = 0, e = P.LiveOutRegs.size(); i < e; ++i) {
    293     unsigned Reg = P.LiveOutRegs[i];
    294     if (TargetRegisterInfo::isVirtualRegister(Reg)
    295         && !RPTracker.hasUntiedDef(Reg)) {
    296       increaseSetPressure(LiveThruPressure, MRI->getPressureSets(Reg));
    297     }
    298   }
    299 }
    300 
    301 /// \brief Convenient wrapper for checking membership in RegisterOperands.
    302 /// (std::count() doesn't have an early exit).
    303 static bool containsReg(ArrayRef<unsigned> RegUnits, unsigned RegUnit) {
    304   return std::find(RegUnits.begin(), RegUnits.end(), RegUnit) != RegUnits.end();
    305 }
    306 
    307 namespace {
    308 /// Collect this instruction's unique uses and defs into SmallVectors for
    309 /// processing defs and uses in order.
    310 ///
    311 /// FIXME: always ignore tied opers
    312 class RegisterOperands {
    313   const TargetRegisterInfo *TRI;
    314   const MachineRegisterInfo *MRI;
    315   bool IgnoreDead;
    316 
    317 public:
    318   SmallVector<unsigned, 8> Uses;
    319   SmallVector<unsigned, 8> Defs;
    320   SmallVector<unsigned, 8> DeadDefs;
    321 
    322   RegisterOperands(const TargetRegisterInfo *tri,
    323                    const MachineRegisterInfo *mri, bool ID = false):
    324     TRI(tri), MRI(mri), IgnoreDead(ID) {}
    325 
    326   /// Push this operand's register onto the correct vector.
    327   void collect(const MachineOperand &MO) {
    328     if (!MO.isReg() || !MO.getReg())
    329       return;
    330     if (MO.readsReg())
    331       pushRegUnits(MO.getReg(), Uses);
    332     if (MO.isDef()) {
    333       if (MO.isDead()) {
    334         if (!IgnoreDead)
    335           pushRegUnits(MO.getReg(), DeadDefs);
    336       }
    337       else
    338         pushRegUnits(MO.getReg(), Defs);
    339     }
    340   }
    341 
    342 protected:
    343   void pushRegUnits(unsigned Reg, SmallVectorImpl<unsigned> &RegUnits) {
    344     if (TargetRegisterInfo::isVirtualRegister(Reg)) {
    345       if (containsReg(RegUnits, Reg))
    346         return;
    347       RegUnits.push_back(Reg);
    348     }
    349     else if (MRI->isAllocatable(Reg)) {
    350       for (MCRegUnitIterator Units(Reg, TRI); Units.isValid(); ++Units) {
    351         if (containsReg(RegUnits, *Units))
    352           continue;
    353         RegUnits.push_back(*Units);
    354       }
    355     }
    356   }
    357 };
    358 } // namespace
    359 
    360 /// Collect physical and virtual register operands.
    361 static void collectOperands(const MachineInstr *MI,
    362                             RegisterOperands &RegOpers) {
    363   for (ConstMIBundleOperands OperI(MI); OperI.isValid(); ++OperI)
    364     RegOpers.collect(*OperI);
    365 
    366   // Remove redundant physreg dead defs.
    367   SmallVectorImpl<unsigned>::iterator I =
    368     std::remove_if(RegOpers.DeadDefs.begin(), RegOpers.DeadDefs.end(),
    369                    std::bind1st(std::ptr_fun(containsReg), RegOpers.Defs));
    370   RegOpers.DeadDefs.erase(I, RegOpers.DeadDefs.end());
    371 }
    372 
    373 /// Initialize an array of N PressureDiffs.
    374 void PressureDiffs::init(unsigned N) {
    375   Size = N;
    376   if (N <= Max) {
    377     memset(PDiffArray, 0, N * sizeof(PressureDiff));
    378     return;
    379   }
    380   Max = Size;
    381   free(PDiffArray);
    382   PDiffArray = reinterpret_cast<PressureDiff*>(calloc(N, sizeof(PressureDiff)));
    383 }
    384 
    385 /// Add a change in pressure to the pressure diff of a given instruction.
    386 void PressureDiff::addPressureChange(unsigned RegUnit, bool IsDec,
    387                                      const MachineRegisterInfo *MRI) {
    388   PSetIterator PSetI = MRI->getPressureSets(RegUnit);
    389   int Weight = IsDec ? -PSetI.getWeight() : PSetI.getWeight();
    390   for (; PSetI.isValid(); ++PSetI) {
    391     // Find an existing entry in the pressure diff for this PSet.
    392     PressureDiff::iterator I = begin(), E = end();
    393     for (; I != E && I->isValid(); ++I) {
    394       if (I->getPSet() >= *PSetI)
    395         break;
    396     }
    397     // If all pressure sets are more constrained, skip the remaining PSets.
    398     if (I == E)
    399       break;
    400     // Insert this PressureChange.
    401     if (!I->isValid() || I->getPSet() != *PSetI) {
    402       PressureChange PTmp = PressureChange(*PSetI);
    403       for (PressureDiff::iterator J = I; J != E && PTmp.isValid(); ++J)
    404         std::swap(*J,PTmp);
    405     }
    406     // Update the units for this pressure set.
    407     I->setUnitInc(I->getUnitInc() + Weight);
    408   }
    409 }
    410 
    411 /// Record the pressure difference induced by the given operand list.
    412 static void collectPDiff(PressureDiff &PDiff, RegisterOperands &RegOpers,
    413                          const MachineRegisterInfo *MRI) {
    414   assert(!PDiff.begin()->isValid() && "stale PDiff");
    415 
    416   for (unsigned i = 0, e = RegOpers.Defs.size(); i != e; ++i)
    417     PDiff.addPressureChange(RegOpers.Defs[i], true, MRI);
    418 
    419   for (unsigned i = 0, e = RegOpers.Uses.size(); i != e; ++i)
    420     PDiff.addPressureChange(RegOpers.Uses[i], false, MRI);
    421 }
    422 
    423 /// Force liveness of registers.
    424 void RegPressureTracker::addLiveRegs(ArrayRef<unsigned> Regs) {
    425   for (unsigned i = 0, e = Regs.size(); i != e; ++i) {
    426     if (LiveRegs.insert(Regs[i]))
    427       increaseRegPressure(Regs[i]);
    428   }
    429 }
    430 
    431 /// Add Reg to the live in set and increase max pressure.
    432 void RegPressureTracker::discoverLiveIn(unsigned Reg) {
    433   assert(!LiveRegs.contains(Reg) && "avoid bumping max pressure twice");
    434   if (containsReg(P.LiveInRegs, Reg))
    435     return;
    436 
    437   // At live in discovery, unconditionally increase the high water mark.
    438   P.LiveInRegs.push_back(Reg);
    439   increaseSetPressure(P.MaxSetPressure, MRI->getPressureSets(Reg));
    440 }
    441 
    442 /// Add Reg to the live out set and increase max pressure.
    443 void RegPressureTracker::discoverLiveOut(unsigned Reg) {
    444   assert(!LiveRegs.contains(Reg) && "avoid bumping max pressure twice");
    445   if (containsReg(P.LiveOutRegs, Reg))
    446     return;
    447 
    448   // At live out discovery, unconditionally increase the high water mark.
    449   P.LiveOutRegs.push_back(Reg);
    450   increaseSetPressure(P.MaxSetPressure, MRI->getPressureSets(Reg));
    451 }
    452 
    453 /// Recede across the previous instruction. If LiveUses is provided, record any
    454 /// RegUnits that are made live by the current instruction's uses. This includes
    455 /// registers that are both defined and used by the instruction.  If a pressure
    456 /// difference pointer is provided record the changes is pressure caused by this
    457 /// instruction independent of liveness.
    458 bool RegPressureTracker::recede(SmallVectorImpl<unsigned> *LiveUses,
    459                                 PressureDiff *PDiff) {
    460   // Check for the top of the analyzable region.
    461   if (CurrPos == MBB->begin()) {
    462     closeRegion();
    463     return false;
    464   }
    465   if (!isBottomClosed())
    466     closeBottom();
    467 
    468   // Open the top of the region using block iterators.
    469   if (!RequireIntervals && isTopClosed())
    470     static_cast<RegionPressure&>(P).openTop(CurrPos);
    471 
    472   // Find the previous instruction.
    473   do
    474     --CurrPos;
    475   while (CurrPos != MBB->begin() && CurrPos->isDebugValue());
    476 
    477   if (CurrPos->isDebugValue()) {
    478     closeRegion();
    479     return false;
    480   }
    481   SlotIndex SlotIdx;
    482   if (RequireIntervals)
    483     SlotIdx = LIS->getInstructionIndex(CurrPos).getRegSlot();
    484 
    485   // Open the top of the region using slot indexes.
    486   if (RequireIntervals && isTopClosed())
    487     static_cast<IntervalPressure&>(P).openTop(SlotIdx);
    488 
    489   RegisterOperands RegOpers(TRI, MRI);
    490   collectOperands(CurrPos, RegOpers);
    491 
    492   if (PDiff)
    493     collectPDiff(*PDiff, RegOpers, MRI);
    494 
    495   // Boost pressure for all dead defs together.
    496   increaseRegPressure(RegOpers.DeadDefs);
    497   decreaseRegPressure(RegOpers.DeadDefs);
    498 
    499   // Kill liveness at live defs.
    500   // TODO: consider earlyclobbers?
    501   for (unsigned i = 0, e = RegOpers.Defs.size(); i < e; ++i) {
    502     unsigned Reg = RegOpers.Defs[i];
    503     bool DeadDef = false;
    504     if (RequireIntervals) {
    505       const LiveRange *LR = getLiveRange(Reg);
    506       if (LR) {
    507         LiveQueryResult LRQ = LR->Query(SlotIdx);
    508         DeadDef = LRQ.isDeadDef();
    509       }
    510     }
    511     if (DeadDef) {
    512       // LiveIntervals knows this is a dead even though it's MachineOperand is
    513       // not flagged as such. Since this register will not be recorded as
    514       // live-out, increase its PDiff value to avoid underflowing pressure.
    515       if (PDiff)
    516         PDiff->addPressureChange(Reg, false, MRI);
    517     } else {
    518       if (LiveRegs.erase(Reg))
    519         decreaseRegPressure(Reg);
    520       else
    521         discoverLiveOut(Reg);
    522     }
    523   }
    524 
    525   // Generate liveness for uses.
    526   for (unsigned i = 0, e = RegOpers.Uses.size(); i < e; ++i) {
    527     unsigned Reg = RegOpers.Uses[i];
    528     if (!LiveRegs.contains(Reg)) {
    529       // Adjust liveouts if LiveIntervals are available.
    530       if (RequireIntervals) {
    531         const LiveRange *LR = getLiveRange(Reg);
    532         if (LR) {
    533           LiveQueryResult LRQ = LR->Query(SlotIdx);
    534           if (!LRQ.isKill() && !LRQ.valueDefined())
    535             discoverLiveOut(Reg);
    536         }
    537       }
    538       increaseRegPressure(Reg);
    539       LiveRegs.insert(Reg);
    540       if (LiveUses && !containsReg(*LiveUses, Reg))
    541         LiveUses->push_back(Reg);
    542     }
    543   }
    544   if (TrackUntiedDefs) {
    545     for (unsigned i = 0, e = RegOpers.Defs.size(); i < e; ++i) {
    546       unsigned Reg = RegOpers.Defs[i];
    547       if (TargetRegisterInfo::isVirtualRegister(Reg) && !LiveRegs.contains(Reg))
    548         UntiedDefs.insert(Reg);
    549     }
    550   }
    551   return true;
    552 }
    553 
    554 /// Advance across the current instruction.
    555 bool RegPressureTracker::advance() {
    556   assert(!TrackUntiedDefs && "unsupported mode");
    557 
    558   // Check for the bottom of the analyzable region.
    559   if (CurrPos == MBB->end()) {
    560     closeRegion();
    561     return false;
    562   }
    563   if (!isTopClosed())
    564     closeTop();
    565 
    566   SlotIndex SlotIdx;
    567   if (RequireIntervals)
    568     SlotIdx = getCurrSlot();
    569 
    570   // Open the bottom of the region using slot indexes.
    571   if (isBottomClosed()) {
    572     if (RequireIntervals)
    573       static_cast<IntervalPressure&>(P).openBottom(SlotIdx);
    574     else
    575       static_cast<RegionPressure&>(P).openBottom(CurrPos);
    576   }
    577 
    578   RegisterOperands RegOpers(TRI, MRI);
    579   collectOperands(CurrPos, RegOpers);
    580 
    581   for (unsigned i = 0, e = RegOpers.Uses.size(); i < e; ++i) {
    582     unsigned Reg = RegOpers.Uses[i];
    583     // Discover live-ins.
    584     bool isLive = LiveRegs.contains(Reg);
    585     if (!isLive)
    586       discoverLiveIn(Reg);
    587     // Kill liveness at last uses.
    588     bool lastUse = false;
    589     if (RequireIntervals) {
    590       const LiveRange *LR = getLiveRange(Reg);
    591       lastUse = LR && LR->Query(SlotIdx).isKill();
    592     }
    593     else {
    594       // Allocatable physregs are always single-use before register rewriting.
    595       lastUse = !TargetRegisterInfo::isVirtualRegister(Reg);
    596     }
    597     if (lastUse && isLive) {
    598       LiveRegs.erase(Reg);
    599       decreaseRegPressure(Reg);
    600     }
    601     else if (!lastUse && !isLive)
    602       increaseRegPressure(Reg);
    603   }
    604 
    605   // Generate liveness for defs.
    606   for (unsigned i = 0, e = RegOpers.Defs.size(); i < e; ++i) {
    607     unsigned Reg = RegOpers.Defs[i];
    608     if (LiveRegs.insert(Reg))
    609       increaseRegPressure(Reg);
    610   }
    611 
    612   // Boost pressure for all dead defs together.
    613   increaseRegPressure(RegOpers.DeadDefs);
    614   decreaseRegPressure(RegOpers.DeadDefs);
    615 
    616   // Find the next instruction.
    617   do
    618     ++CurrPos;
    619   while (CurrPos != MBB->end() && CurrPos->isDebugValue());
    620   return true;
    621 }
    622 
    623 /// Find the max change in excess pressure across all sets.
    624 static void computeExcessPressureDelta(ArrayRef<unsigned> OldPressureVec,
    625                                        ArrayRef<unsigned> NewPressureVec,
    626                                        RegPressureDelta &Delta,
    627                                        const RegisterClassInfo *RCI,
    628                                        ArrayRef<unsigned> LiveThruPressureVec) {
    629   Delta.Excess = PressureChange();
    630   for (unsigned i = 0, e = OldPressureVec.size(); i < e; ++i) {
    631     unsigned POld = OldPressureVec[i];
    632     unsigned PNew = NewPressureVec[i];
    633     int PDiff = (int)PNew - (int)POld;
    634     if (!PDiff) // No change in this set in the common case.
    635       continue;
    636     // Only consider change beyond the limit.
    637     unsigned Limit = RCI->getRegPressureSetLimit(i);
    638     if (!LiveThruPressureVec.empty())
    639       Limit += LiveThruPressureVec[i];
    640 
    641     if (Limit > POld) {
    642       if (Limit > PNew)
    643         PDiff = 0;            // Under the limit
    644       else
    645         PDiff = PNew - Limit; // Just exceeded limit.
    646     }
    647     else if (Limit > PNew)
    648       PDiff = Limit - POld;   // Just obeyed limit.
    649 
    650     if (PDiff) {
    651       Delta.Excess = PressureChange(i);
    652       Delta.Excess.setUnitInc(PDiff);
    653       break;
    654     }
    655   }
    656 }
    657 
    658 /// Find the max change in max pressure that either surpasses a critical PSet
    659 /// limit or exceeds the current MaxPressureLimit.
    660 ///
    661 /// FIXME: comparing each element of the old and new MaxPressure vectors here is
    662 /// silly. It's done now to demonstrate the concept but will go away with a
    663 /// RegPressureTracker API change to work with pressure differences.
    664 static void computeMaxPressureDelta(ArrayRef<unsigned> OldMaxPressureVec,
    665                                     ArrayRef<unsigned> NewMaxPressureVec,
    666                                     ArrayRef<PressureChange> CriticalPSets,
    667                                     ArrayRef<unsigned> MaxPressureLimit,
    668                                     RegPressureDelta &Delta) {
    669   Delta.CriticalMax = PressureChange();
    670   Delta.CurrentMax = PressureChange();
    671 
    672   unsigned CritIdx = 0, CritEnd = CriticalPSets.size();
    673   for (unsigned i = 0, e = OldMaxPressureVec.size(); i < e; ++i) {
    674     unsigned POld = OldMaxPressureVec[i];
    675     unsigned PNew = NewMaxPressureVec[i];
    676     if (PNew == POld) // No change in this set in the common case.
    677       continue;
    678 
    679     if (!Delta.CriticalMax.isValid()) {
    680       while (CritIdx != CritEnd && CriticalPSets[CritIdx].getPSet() < i)
    681         ++CritIdx;
    682 
    683       if (CritIdx != CritEnd && CriticalPSets[CritIdx].getPSet() == i) {
    684         int PDiff = (int)PNew - (int)CriticalPSets[CritIdx].getUnitInc();
    685         if (PDiff > 0) {
    686           Delta.CriticalMax = PressureChange(i);
    687           Delta.CriticalMax.setUnitInc(PDiff);
    688         }
    689       }
    690     }
    691     // Find the first increase above MaxPressureLimit.
    692     // (Ignores negative MDiff).
    693     if (!Delta.CurrentMax.isValid() && PNew > MaxPressureLimit[i]) {
    694       Delta.CurrentMax = PressureChange(i);
    695       Delta.CurrentMax.setUnitInc(PNew - POld);
    696       if (CritIdx == CritEnd || Delta.CriticalMax.isValid())
    697         break;
    698     }
    699   }
    700 }
    701 
    702 /// Record the upward impact of a single instruction on current register
    703 /// pressure. Unlike the advance/recede pressure tracking interface, this does
    704 /// not discover live in/outs.
    705 ///
    706 /// This is intended for speculative queries. It leaves pressure inconsistent
    707 /// with the current position, so must be restored by the caller.
    708 void RegPressureTracker::bumpUpwardPressure(const MachineInstr *MI) {
    709   assert(!MI->isDebugValue() && "Expect a nondebug instruction.");
    710 
    711   // Account for register pressure similar to RegPressureTracker::recede().
    712   RegisterOperands RegOpers(TRI, MRI, /*IgnoreDead=*/true);
    713   collectOperands(MI, RegOpers);
    714 
    715   // Boost max pressure for all dead defs together.
    716   // Since CurrSetPressure and MaxSetPressure
    717   increaseRegPressure(RegOpers.DeadDefs);
    718   decreaseRegPressure(RegOpers.DeadDefs);
    719 
    720   // Kill liveness at live defs.
    721   for (unsigned i = 0, e = RegOpers.Defs.size(); i < e; ++i) {
    722     unsigned Reg = RegOpers.Defs[i];
    723     bool DeadDef = false;
    724     if (RequireIntervals) {
    725       const LiveRange *LR = getLiveRange(Reg);
    726       if (LR) {
    727         SlotIndex SlotIdx = LIS->getInstructionIndex(MI);
    728         LiveQueryResult LRQ = LR->Query(SlotIdx);
    729         DeadDef = LRQ.isDeadDef();
    730       }
    731     }
    732     if (!DeadDef) {
    733       if (!containsReg(RegOpers.Uses, Reg))
    734         decreaseRegPressure(Reg);
    735     }
    736   }
    737   // Generate liveness for uses.
    738   for (unsigned i = 0, e = RegOpers.Uses.size(); i < e; ++i) {
    739     unsigned Reg = RegOpers.Uses[i];
    740     if (!LiveRegs.contains(Reg))
    741       increaseRegPressure(Reg);
    742   }
    743 }
    744 
    745 /// Consider the pressure increase caused by traversing this instruction
    746 /// bottom-up. Find the pressure set with the most change beyond its pressure
    747 /// limit based on the tracker's current pressure, and return the change in
    748 /// number of register units of that pressure set introduced by this
    749 /// instruction.
    750 ///
    751 /// This assumes that the current LiveOut set is sufficient.
    752 ///
    753 /// FIXME: This is expensive for an on-the-fly query. We need to cache the
    754 /// result per-SUnit with enough information to adjust for the current
    755 /// scheduling position. But this works as a proof of concept.
    756 void RegPressureTracker::
    757 getMaxUpwardPressureDelta(const MachineInstr *MI, PressureDiff *PDiff,
    758                           RegPressureDelta &Delta,
    759                           ArrayRef<PressureChange> CriticalPSets,
    760                           ArrayRef<unsigned> MaxPressureLimit) {
    761   // Snapshot Pressure.
    762   // FIXME: The snapshot heap space should persist. But I'm planning to
    763   // summarize the pressure effect so we don't need to snapshot at all.
    764   std::vector<unsigned> SavedPressure = CurrSetPressure;
    765   std::vector<unsigned> SavedMaxPressure = P.MaxSetPressure;
    766 
    767   bumpUpwardPressure(MI);
    768 
    769   computeExcessPressureDelta(SavedPressure, CurrSetPressure, Delta, RCI,
    770                              LiveThruPressure);
    771   computeMaxPressureDelta(SavedMaxPressure, P.MaxSetPressure, CriticalPSets,
    772                           MaxPressureLimit, Delta);
    773   assert(Delta.CriticalMax.getUnitInc() >= 0 &&
    774          Delta.CurrentMax.getUnitInc() >= 0 && "cannot decrease max pressure");
    775 
    776   // Restore the tracker's state.
    777   P.MaxSetPressure.swap(SavedMaxPressure);
    778   CurrSetPressure.swap(SavedPressure);
    779 
    780 #ifndef NDEBUG
    781   if (!PDiff)
    782     return;
    783 
    784   // Check if the alternate algorithm yields the same result.
    785   RegPressureDelta Delta2;
    786   getUpwardPressureDelta(MI, *PDiff, Delta2, CriticalPSets, MaxPressureLimit);
    787   if (Delta != Delta2) {
    788     dbgs() << "DELTA: " << *MI;
    789     if (Delta.Excess.isValid())
    790       dbgs() << "Excess1 " << TRI->getRegPressureSetName(Delta.Excess.getPSet())
    791              << " " << Delta.Excess.getUnitInc() << "\n";
    792     if (Delta.CriticalMax.isValid())
    793       dbgs() << "Critic1 " << TRI->getRegPressureSetName(Delta.CriticalMax.getPSet())
    794              << " " << Delta.CriticalMax.getUnitInc() << "\n";
    795     if (Delta.CurrentMax.isValid())
    796       dbgs() << "CurrMx1 " << TRI->getRegPressureSetName(Delta.CurrentMax.getPSet())
    797              << " " << Delta.CurrentMax.getUnitInc() << "\n";
    798     if (Delta2.Excess.isValid())
    799       dbgs() << "Excess2 " << TRI->getRegPressureSetName(Delta2.Excess.getPSet())
    800              << " " << Delta2.Excess.getUnitInc() << "\n";
    801     if (Delta2.CriticalMax.isValid())
    802       dbgs() << "Critic2 " << TRI->getRegPressureSetName(Delta2.CriticalMax.getPSet())
    803              << " " << Delta2.CriticalMax.getUnitInc() << "\n";
    804     if (Delta2.CurrentMax.isValid())
    805       dbgs() << "CurrMx2 " << TRI->getRegPressureSetName(Delta2.CurrentMax.getPSet())
    806              << " " << Delta2.CurrentMax.getUnitInc() << "\n";
    807     llvm_unreachable("RegP Delta Mismatch");
    808   }
    809 #endif
    810 }
    811 
    812 /// This is a prototype of the fast version of querying register pressure that
    813 /// does not directly depend on current liveness. It's still slow because we
    814 /// recompute pressure change on-the-fly. This implementation only exists to
    815 /// prove correctness.
    816 ///
    817 /// @param Delta captures information needed for heuristics.
    818 ///
    819 /// @param CriticalPSets Are the pressure sets that are known to exceed some
    820 /// limit within the region, not necessarily at the current position.
    821 ///
    822 /// @param MaxPressureLimit Is the max pressure within the region, not
    823 /// necessarily at the current position.
    824 void RegPressureTracker::
    825 getUpwardPressureDelta(const MachineInstr *MI, /*const*/ PressureDiff &PDiff,
    826                        RegPressureDelta &Delta,
    827                        ArrayRef<PressureChange> CriticalPSets,
    828                        ArrayRef<unsigned> MaxPressureLimit) const {
    829   unsigned CritIdx = 0, CritEnd = CriticalPSets.size();
    830   for (PressureDiff::const_iterator
    831          PDiffI = PDiff.begin(), PDiffE = PDiff.end();
    832        PDiffI != PDiffE && PDiffI->isValid(); ++PDiffI) {
    833 
    834     unsigned PSetID = PDiffI->getPSet();
    835     unsigned Limit = RCI->getRegPressureSetLimit(PSetID);
    836     if (!LiveThruPressure.empty())
    837       Limit += LiveThruPressure[PSetID];
    838 
    839     unsigned POld = CurrSetPressure[PSetID];
    840     unsigned MOld = P.MaxSetPressure[PSetID];
    841     unsigned MNew = MOld;
    842     // Ignore DeadDefs here because they aren't captured by PressureChange.
    843     unsigned PNew = POld + PDiffI->getUnitInc();
    844     assert((PDiffI->getUnitInc() >= 0) == (PNew >= POld) && "PSet overflow");
    845     if (PNew > MOld)
    846       MNew = PNew;
    847     // Check if current pressure has exceeded the limit.
    848     if (!Delta.Excess.isValid()) {
    849       unsigned ExcessInc = 0;
    850       if (PNew > Limit)
    851         ExcessInc = POld > Limit ? PNew - POld : PNew - Limit;
    852       else if (POld > Limit)
    853         ExcessInc = Limit - POld;
    854       if (ExcessInc) {
    855         Delta.Excess = PressureChange(PSetID);
    856         Delta.Excess.setUnitInc(ExcessInc);
    857       }
    858     }
    859     // Check if max pressure has exceeded a critical pressure set max.
    860     if (MNew == MOld)
    861       continue;
    862     if (!Delta.CriticalMax.isValid()) {
    863       while (CritIdx != CritEnd && CriticalPSets[CritIdx].getPSet() < PSetID)
    864         ++CritIdx;
    865 
    866       if (CritIdx != CritEnd && CriticalPSets[CritIdx].getPSet() == PSetID) {
    867         int CritInc = (int)MNew - (int)CriticalPSets[CritIdx].getUnitInc();
    868         if (CritInc > 0 && CritInc <= INT16_MAX) {
    869           Delta.CriticalMax = PressureChange(PSetID);
    870           Delta.CriticalMax.setUnitInc(CritInc);
    871         }
    872       }
    873     }
    874     // Check if max pressure has exceeded the current max.
    875     if (!Delta.CurrentMax.isValid() && MNew > MaxPressureLimit[PSetID]) {
    876       Delta.CurrentMax = PressureChange(PSetID);
    877       Delta.CurrentMax.setUnitInc(MNew - MOld);
    878     }
    879   }
    880 }
    881 
    882 /// Helper to find a vreg use between two indices [PriorUseIdx, NextUseIdx).
    883 static bool findUseBetween(unsigned Reg,
    884                            SlotIndex PriorUseIdx, SlotIndex NextUseIdx,
    885                            const MachineRegisterInfo *MRI,
    886                            const LiveIntervals *LIS) {
    887   for (MachineRegisterInfo::use_instr_nodbg_iterator
    888        UI = MRI->use_instr_nodbg_begin(Reg),
    889        UE = MRI->use_instr_nodbg_end(); UI != UE; ++UI) {
    890       const MachineInstr* MI = &*UI;
    891       if (MI->isDebugValue())
    892         continue;
    893       SlotIndex InstSlot = LIS->getInstructionIndex(MI).getRegSlot();
    894       if (InstSlot >= PriorUseIdx && InstSlot < NextUseIdx)
    895         return true;
    896   }
    897   return false;
    898 }
    899 
    900 /// Record the downward impact of a single instruction on current register
    901 /// pressure. Unlike the advance/recede pressure tracking interface, this does
    902 /// not discover live in/outs.
    903 ///
    904 /// This is intended for speculative queries. It leaves pressure inconsistent
    905 /// with the current position, so must be restored by the caller.
    906 void RegPressureTracker::bumpDownwardPressure(const MachineInstr *MI) {
    907   assert(!MI->isDebugValue() && "Expect a nondebug instruction.");
    908 
    909   // Account for register pressure similar to RegPressureTracker::recede().
    910   RegisterOperands RegOpers(TRI, MRI);
    911   collectOperands(MI, RegOpers);
    912 
    913   // Kill liveness at last uses. Assume allocatable physregs are single-use
    914   // rather than checking LiveIntervals.
    915   SlotIndex SlotIdx;
    916   if (RequireIntervals)
    917     SlotIdx = LIS->getInstructionIndex(MI).getRegSlot();
    918 
    919   for (unsigned i = 0, e = RegOpers.Uses.size(); i < e; ++i) {
    920     unsigned Reg = RegOpers.Uses[i];
    921     if (RequireIntervals) {
    922       // FIXME: allow the caller to pass in the list of vreg uses that remain
    923       // to be bottom-scheduled to avoid searching uses at each query.
    924       SlotIndex CurrIdx = getCurrSlot();
    925       const LiveRange *LR = getLiveRange(Reg);
    926       if (LR) {
    927         LiveQueryResult LRQ = LR->Query(SlotIdx);
    928         if (LRQ.isKill() && !findUseBetween(Reg, CurrIdx, SlotIdx, MRI, LIS)) {
    929           decreaseRegPressure(Reg);
    930         }
    931       }
    932     }
    933     else if (!TargetRegisterInfo::isVirtualRegister(Reg)) {
    934       // Allocatable physregs are always single-use before register rewriting.
    935       decreaseRegPressure(Reg);
    936     }
    937   }
    938 
    939   // Generate liveness for defs.
    940   increaseRegPressure(RegOpers.Defs);
    941 
    942   // Boost pressure for all dead defs together.
    943   increaseRegPressure(RegOpers.DeadDefs);
    944   decreaseRegPressure(RegOpers.DeadDefs);
    945 }
    946 
    947 /// Consider the pressure increase caused by traversing this instruction
    948 /// top-down. Find the register class with the most change in its pressure limit
    949 /// based on the tracker's current pressure, and return the number of excess
    950 /// register units of that pressure set introduced by this instruction.
    951 ///
    952 /// This assumes that the current LiveIn set is sufficient.
    953 void RegPressureTracker::
    954 getMaxDownwardPressureDelta(const MachineInstr *MI, RegPressureDelta &Delta,
    955                             ArrayRef<PressureChange> CriticalPSets,
    956                             ArrayRef<unsigned> MaxPressureLimit) {
    957   // Snapshot Pressure.
    958   std::vector<unsigned> SavedPressure = CurrSetPressure;
    959   std::vector<unsigned> SavedMaxPressure = P.MaxSetPressure;
    960 
    961   bumpDownwardPressure(MI);
    962 
    963   computeExcessPressureDelta(SavedPressure, CurrSetPressure, Delta, RCI,
    964                              LiveThruPressure);
    965   computeMaxPressureDelta(SavedMaxPressure, P.MaxSetPressure, CriticalPSets,
    966                           MaxPressureLimit, Delta);
    967   assert(Delta.CriticalMax.getUnitInc() >= 0 &&
    968          Delta.CurrentMax.getUnitInc() >= 0 && "cannot decrease max pressure");
    969 
    970   // Restore the tracker's state.
    971   P.MaxSetPressure.swap(SavedMaxPressure);
    972   CurrSetPressure.swap(SavedPressure);
    973 }
    974 
    975 /// Get the pressure of each PSet after traversing this instruction bottom-up.
    976 void RegPressureTracker::
    977 getUpwardPressure(const MachineInstr *MI,
    978                   std::vector<unsigned> &PressureResult,
    979                   std::vector<unsigned> &MaxPressureResult) {
    980   // Snapshot pressure.
    981   PressureResult = CurrSetPressure;
    982   MaxPressureResult = P.MaxSetPressure;
    983 
    984   bumpUpwardPressure(MI);
    985 
    986   // Current pressure becomes the result. Restore current pressure.
    987   P.MaxSetPressure.swap(MaxPressureResult);
    988   CurrSetPressure.swap(PressureResult);
    989 }
    990 
    991 /// Get the pressure of each PSet after traversing this instruction top-down.
    992 void RegPressureTracker::
    993 getDownwardPressure(const MachineInstr *MI,
    994                     std::vector<unsigned> &PressureResult,
    995                     std::vector<unsigned> &MaxPressureResult) {
    996   // Snapshot pressure.
    997   PressureResult = CurrSetPressure;
    998   MaxPressureResult = P.MaxSetPressure;
    999 
   1000   bumpDownwardPressure(MI);
   1001 
   1002   // Current pressure becomes the result. Restore current pressure.
   1003   P.MaxSetPressure.swap(MaxPressureResult);
   1004   CurrSetPressure.swap(PressureResult);
   1005 }
   1006