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.
increaseSetPressure(std::vector<unsigned> & CurrSetPressure,PSetIterator PSetI)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.
decreaseSetPressure(std::vector<unsigned> & CurrSetPressure,PSetIterator PSetI)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
dumpRegSetPressure(ArrayRef<unsigned> SetPressure,const TargetRegisterInfo * TRI)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
dump(const TargetRegisterInfo * TRI) const58 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
dump() const72 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.
increaseRegPressure(ArrayRef<unsigned> RegUnits)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.
decreaseRegPressure(ArrayRef<unsigned> RegUnits)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.
reset()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.
reset()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.
openTop(SlotIndex NextTop)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.
openTop(MachineBasicBlock::const_iterator PrevTop)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.
openBottom(SlotIndex PrevBottom)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.
openBottom(MachineBasicBlock::const_iterator PrevBottom)143 void RegionPressure::openBottom(MachineBasicBlock::const_iterator PrevBottom) {
144 if (BottomPos != PrevBottom)
145 return;
146 BottomPos = MachineBasicBlock::const_iterator();
147 LiveInRegs.clear();
148 }
149
getLiveRange(unsigned Reg) const150 const LiveRange *RegPressureTracker::getLiveRange(unsigned Reg) const {
151 if (TargetRegisterInfo::isVirtualRegister(Reg))
152 return &LIS->getInterval(Reg);
153 return LIS->getCachedRegUnit(Reg);
154 }
155
reset()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.
init(const MachineFunction * mf,const RegisterClassInfo * rci,const LiveIntervals * lis,const MachineBasicBlock * mbb,MachineBasicBlock::const_iterator pos,bool ShouldTrackUntiedDefs)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.
isTopClosed() const210 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.
isBottomClosed() const218 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
getCurrSlot() const226 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.
closeTop()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.
closeBottom()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.
closeRegion()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.
initLiveThru(const RegPressureTracker & RPTracker)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).
containsReg(ArrayRef<unsigned> RegUnits,unsigned RegUnit)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
RegisterOperands(const TargetRegisterInfo * tri,const MachineRegisterInfo * mri,bool ID=false)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.
collect(const MachineOperand & MO)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:
pushRegUnits(unsigned Reg,SmallVectorImpl<unsigned> & RegUnits)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.
collectOperands(const MachineInstr * MI,RegisterOperands & RegOpers)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.
init(unsigned N)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.
addPressureChange(unsigned RegUnit,bool IsDec,const MachineRegisterInfo * MRI)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.
collectPDiff(PressureDiff & PDiff,RegisterOperands & RegOpers,const MachineRegisterInfo * MRI)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.
addLiveRegs(ArrayRef<unsigned> Regs)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.
discoverLiveIn(unsigned Reg)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.
discoverLiveOut(unsigned Reg)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.
recede(SmallVectorImpl<unsigned> * LiveUses,PressureDiff * PDiff)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.
advance()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.
computeExcessPressureDelta(ArrayRef<unsigned> OldPressureVec,ArrayRef<unsigned> NewPressureVec,RegPressureDelta & Delta,const RegisterClassInfo * RCI,ArrayRef<unsigned> LiveThruPressureVec)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.
computeMaxPressureDelta(ArrayRef<unsigned> OldMaxPressureVec,ArrayRef<unsigned> NewMaxPressureVec,ArrayRef<PressureChange> CriticalPSets,ArrayRef<unsigned> MaxPressureLimit,RegPressureDelta & Delta)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.
bumpUpwardPressure(const MachineInstr * MI)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::
getMaxUpwardPressureDelta(const MachineInstr * MI,PressureDiff * PDiff,RegPressureDelta & Delta,ArrayRef<PressureChange> CriticalPSets,ArrayRef<unsigned> MaxPressureLimit)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::
getUpwardPressureDelta(const MachineInstr * MI,PressureDiff & PDiff,RegPressureDelta & Delta,ArrayRef<PressureChange> CriticalPSets,ArrayRef<unsigned> MaxPressureLimit) const825 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).
findUseBetween(unsigned Reg,SlotIndex PriorUseIdx,SlotIndex NextUseIdx,const MachineRegisterInfo * MRI,const LiveIntervals * LIS)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.
bumpDownwardPressure(const MachineInstr * MI)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::
getMaxDownwardPressureDelta(const MachineInstr * MI,RegPressureDelta & Delta,ArrayRef<PressureChange> CriticalPSets,ArrayRef<unsigned> MaxPressureLimit)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::
getUpwardPressure(const MachineInstr * MI,std::vector<unsigned> & PressureResult,std::vector<unsigned> & MaxPressureResult)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::
getDownwardPressure(const MachineInstr * MI,std::vector<unsigned> & PressureResult,std::vector<unsigned> & MaxPressureResult)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