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Dale Johannesen72f15962007-07-13 17:31:29 +00001//===----- SchedulePostRAList.cpp - list scheduler ------------------------===//
Dale Johannesene7e7d0d2007-07-13 17:13:54 +00002//
3// The LLVM Compiler Infrastructure
4//
Chris Lattner4ee451d2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Dale Johannesene7e7d0d2007-07-13 17:13:54 +00007//
8//===----------------------------------------------------------------------===//
9//
10// This implements a top-down list scheduler, using standard algorithms.
11// The basic approach uses a priority queue of available nodes to schedule.
12// One at a time, nodes are taken from the priority queue (thus in priority
13// order), checked for legality to schedule, and emitted if legal.
14//
15// Nodes may not be legal to schedule either due to structural hazards (e.g.
16// pipeline or resource constraints) or because an input to the instruction has
17// not completed execution.
18//
19//===----------------------------------------------------------------------===//
20
21#define DEBUG_TYPE "post-RA-sched"
22#include "llvm/CodeGen/Passes.h"
Dan Gohman343f0c02008-11-19 23:18:57 +000023#include "llvm/CodeGen/ScheduleDAGInstrs.h"
24#include "llvm/CodeGen/LatencyPriorityQueue.h"
25#include "llvm/CodeGen/SchedulerRegistry.h"
Dan Gohman3f237442008-12-16 03:25:46 +000026#include "llvm/CodeGen/MachineDominators.h"
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000027#include "llvm/CodeGen/MachineFunctionPass.h"
Dan Gohman3f237442008-12-16 03:25:46 +000028#include "llvm/CodeGen/MachineLoopInfo.h"
Dan Gohman21d90032008-11-25 00:52:40 +000029#include "llvm/CodeGen/MachineRegisterInfo.h"
Dan Gohman2836c282009-01-16 01:33:36 +000030#include "llvm/CodeGen/ScheduleHazardRecognizer.h"
Dan Gohman79ce2762009-01-15 19:20:50 +000031#include "llvm/Target/TargetMachine.h"
Dan Gohman21d90032008-11-25 00:52:40 +000032#include "llvm/Target/TargetInstrInfo.h"
33#include "llvm/Target/TargetRegisterInfo.h"
Chris Lattner459525d2008-01-14 19:00:06 +000034#include "llvm/Support/Compiler.h"
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000035#include "llvm/Support/Debug.h"
Dan Gohman343f0c02008-11-19 23:18:57 +000036#include "llvm/ADT/Statistic.h"
Dan Gohman21d90032008-11-25 00:52:40 +000037#include <map>
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000038using namespace llvm;
39
Dan Gohman2836c282009-01-16 01:33:36 +000040STATISTIC(NumNoops, "Number of noops inserted");
Dan Gohman343f0c02008-11-19 23:18:57 +000041STATISTIC(NumStalls, "Number of pipeline stalls");
42
Dan Gohman21d90032008-11-25 00:52:40 +000043static cl::opt<bool>
44EnableAntiDepBreaking("break-anti-dependencies",
Dan Gohman00dc84a2008-12-16 19:27:52 +000045 cl::desc("Break post-RA scheduling anti-dependencies"),
46 cl::init(true), cl::Hidden);
Dan Gohman21d90032008-11-25 00:52:40 +000047
Dan Gohman2836c282009-01-16 01:33:36 +000048static cl::opt<bool>
49EnablePostRAHazardAvoidance("avoid-hazards",
50 cl::desc("Enable simple hazard-avoidance"),
51 cl::init(true), cl::Hidden);
52
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000053namespace {
Dan Gohman343f0c02008-11-19 23:18:57 +000054 class VISIBILITY_HIDDEN PostRAScheduler : public MachineFunctionPass {
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000055 public:
56 static char ID;
Dan Gohman343f0c02008-11-19 23:18:57 +000057 PostRAScheduler() : MachineFunctionPass(&ID) {}
Dan Gohman21d90032008-11-25 00:52:40 +000058
Dan Gohman3f237442008-12-16 03:25:46 +000059 void getAnalysisUsage(AnalysisUsage &AU) const {
60 AU.addRequired<MachineDominatorTree>();
61 AU.addPreserved<MachineDominatorTree>();
62 AU.addRequired<MachineLoopInfo>();
63 AU.addPreserved<MachineLoopInfo>();
64 MachineFunctionPass::getAnalysisUsage(AU);
65 }
66
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000067 const char *getPassName() const {
Dan Gohman21d90032008-11-25 00:52:40 +000068 return "Post RA top-down list latency scheduler";
Dale Johannesene7e7d0d2007-07-13 17:13:54 +000069 }
70
71 bool runOnMachineFunction(MachineFunction &Fn);
72 };
Dan Gohman343f0c02008-11-19 23:18:57 +000073 char PostRAScheduler::ID = 0;
74
75 class VISIBILITY_HIDDEN SchedulePostRATDList : public ScheduleDAGInstrs {
Dan Gohman343f0c02008-11-19 23:18:57 +000076 /// AvailableQueue - The priority queue to use for the available SUnits.
77 ///
78 LatencyPriorityQueue AvailableQueue;
79
80 /// PendingQueue - This contains all of the instructions whose operands have
81 /// been issued, but their results are not ready yet (due to the latency of
82 /// the operation). Once the operands becomes available, the instruction is
83 /// added to the AvailableQueue.
84 std::vector<SUnit*> PendingQueue;
85
Dan Gohman21d90032008-11-25 00:52:40 +000086 /// Topo - A topological ordering for SUnits.
87 ScheduleDAGTopologicalSort Topo;
Dan Gohman343f0c02008-11-19 23:18:57 +000088
Dan Gohman79ce2762009-01-15 19:20:50 +000089 /// AllocatableSet - The set of allocatable registers.
90 /// We'll be ignoring anti-dependencies on non-allocatable registers,
91 /// because they may not be safe to break.
92 const BitVector AllocatableSet;
93
Dan Gohman2836c282009-01-16 01:33:36 +000094 /// HazardRec - The hazard recognizer to use.
95 ScheduleHazardRecognizer *HazardRec;
96
Dan Gohman21d90032008-11-25 00:52:40 +000097 public:
Dan Gohman79ce2762009-01-15 19:20:50 +000098 SchedulePostRATDList(MachineFunction &MF,
Dan Gohman3f237442008-12-16 03:25:46 +000099 const MachineLoopInfo &MLI,
Dan Gohman2836c282009-01-16 01:33:36 +0000100 const MachineDominatorTree &MDT,
101 ScheduleHazardRecognizer *HR)
Dan Gohman79ce2762009-01-15 19:20:50 +0000102 : ScheduleDAGInstrs(MF, MLI, MDT), Topo(SUnits),
Dan Gohman2836c282009-01-16 01:33:36 +0000103 AllocatableSet(TRI->getAllocatableSet(MF)),
104 HazardRec(HR) {}
105
106 ~SchedulePostRATDList() {
107 delete HazardRec;
108 }
Dan Gohman343f0c02008-11-19 23:18:57 +0000109
110 void Schedule();
111
112 private:
Dan Gohman54e4c362008-12-09 22:54:47 +0000113 void ReleaseSucc(SUnit *SU, SDep *SuccEdge);
Dan Gohman343f0c02008-11-19 23:18:57 +0000114 void ScheduleNodeTopDown(SUnit *SU, unsigned CurCycle);
115 void ListScheduleTopDown();
Dan Gohman21d90032008-11-25 00:52:40 +0000116 bool BreakAntiDependencies();
Dan Gohman343f0c02008-11-19 23:18:57 +0000117 };
Dan Gohman2836c282009-01-16 01:33:36 +0000118
119 /// SimpleHazardRecognizer - A *very* simple hazard recognizer. It uses
120 /// a coarse classification and attempts to avoid that instructions of
121 /// a given class aren't grouped too densely together.
122 class SimpleHazardRecognizer : public ScheduleHazardRecognizer {
123 /// Class - A simple classification for SUnits.
124 enum Class {
125 Other, Load, Store
126 };
127
128 /// Window - The Class values of the most recently issued
129 /// instructions.
130 Class Window[8];
131
132 /// getClass - Classify the given SUnit.
133 Class getClass(const SUnit *SU) {
134 const MachineInstr *MI = SU->getInstr();
135 const TargetInstrDesc &TID = MI->getDesc();
136 if (TID.mayLoad())
137 return Load;
138 if (TID.mayStore())
139 return Store;
140 return Other;
141 }
142
143 /// Step - Rotate the existing entries in Window and insert the
144 /// given class value in position as the most recent.
145 void Step(Class C) {
146 std::copy(Window+1, array_endof(Window), Window);
147 Window[array_lengthof(Window)-1] = C;
148 }
149
150 public:
151 SimpleHazardRecognizer() : Window() {}
152
153 virtual HazardType getHazardType(SUnit *SU) {
154 Class C = getClass(SU);
155 if (C == Other)
156 return NoHazard;
157 unsigned Score = 0;
Dan Gohman79ce4ce2009-01-16 17:55:08 +0000158 for (unsigned i = 0; i != array_lengthof(Window); ++i)
Dan Gohman2836c282009-01-16 01:33:36 +0000159 if (Window[i] == C)
160 Score += i + 1;
161 if (Score > array_lengthof(Window) * 2)
162 return Hazard;
163 return NoHazard;
164 }
165
166 virtual void EmitInstruction(SUnit *SU) {
167 Step(getClass(SU));
168 }
169
170 virtual void AdvanceCycle() {
171 Step(Other);
172 }
173 };
Dale Johannesene7e7d0d2007-07-13 17:13:54 +0000174}
175
Dan Gohman343f0c02008-11-19 23:18:57 +0000176bool PostRAScheduler::runOnMachineFunction(MachineFunction &Fn) {
177 DOUT << "PostRAScheduler\n";
Dale Johannesene7e7d0d2007-07-13 17:13:54 +0000178
Dan Gohman3f237442008-12-16 03:25:46 +0000179 const MachineLoopInfo &MLI = getAnalysis<MachineLoopInfo>();
180 const MachineDominatorTree &MDT = getAnalysis<MachineDominatorTree>();
Dan Gohman2836c282009-01-16 01:33:36 +0000181 ScheduleHazardRecognizer *HR = EnablePostRAHazardAvoidance ?
182 new SimpleHazardRecognizer :
183 new ScheduleHazardRecognizer();
Dan Gohman3f237442008-12-16 03:25:46 +0000184
Dan Gohman2836c282009-01-16 01:33:36 +0000185 SchedulePostRATDList Scheduler(Fn, MLI, MDT, HR);
Dan Gohman79ce2762009-01-15 19:20:50 +0000186
Dale Johannesene7e7d0d2007-07-13 17:13:54 +0000187 // Loop over all of the basic blocks
188 for (MachineFunction::iterator MBB = Fn.begin(), MBBe = Fn.end();
Dan Gohman343f0c02008-11-19 23:18:57 +0000189 MBB != MBBe; ++MBB) {
190
Dan Gohman79ce2762009-01-15 19:20:50 +0000191 Scheduler.Run(0, MBB);
Dan Gohman343f0c02008-11-19 23:18:57 +0000192
193 Scheduler.EmitSchedule();
194 }
Dale Johannesene7e7d0d2007-07-13 17:13:54 +0000195
196 return true;
197}
198
Dan Gohman343f0c02008-11-19 23:18:57 +0000199/// Schedule - Schedule the DAG using list scheduling.
200void SchedulePostRATDList::Schedule() {
201 DOUT << "********** List Scheduling **********\n";
202
Dan Gohmanc9a5b9e2008-12-23 18:36:58 +0000203 // Build the scheduling graph.
204 BuildSchedGraph();
Dan Gohman343f0c02008-11-19 23:18:57 +0000205
Dan Gohman21d90032008-11-25 00:52:40 +0000206 if (EnableAntiDepBreaking) {
207 if (BreakAntiDependencies()) {
208 // We made changes. Update the dependency graph.
209 // Theoretically we could update the graph in place:
210 // When a live range is changed to use a different register, remove
211 // the def's anti-dependence *and* output-dependence edges due to
212 // that register, and add new anti-dependence and output-dependence
213 // edges based on the next live range of the register.
214 SUnits.clear();
Dan Gohmanc9a5b9e2008-12-23 18:36:58 +0000215 BuildSchedGraph();
Dan Gohman21d90032008-11-25 00:52:40 +0000216 }
217 }
218
Dan Gohman343f0c02008-11-19 23:18:57 +0000219 AvailableQueue.initNodes(SUnits);
Dan Gohman21d90032008-11-25 00:52:40 +0000220
Dan Gohman343f0c02008-11-19 23:18:57 +0000221 ListScheduleTopDown();
222
223 AvailableQueue.releaseState();
224}
225
Dan Gohman21d90032008-11-25 00:52:40 +0000226/// getInstrOperandRegClass - Return register class of the operand of an
227/// instruction of the specified TargetInstrDesc.
228static const TargetRegisterClass*
229getInstrOperandRegClass(const TargetRegisterInfo *TRI,
230 const TargetInstrInfo *TII, const TargetInstrDesc &II,
231 unsigned Op) {
232 if (Op >= II.getNumOperands())
233 return NULL;
234 if (II.OpInfo[Op].isLookupPtrRegClass())
235 return TII->getPointerRegClass();
236 return TRI->getRegClass(II.OpInfo[Op].RegClass);
237}
238
Dan Gohman3f237442008-12-16 03:25:46 +0000239/// CriticalPathStep - Return the next SUnit after SU on the bottom-up
240/// critical path.
241static SDep *CriticalPathStep(SUnit *SU) {
242 SDep *Next = 0;
243 unsigned NextDepth = 0;
244 // Find the predecessor edge with the greatest depth.
245 for (SUnit::pred_iterator P = SU->Preds.begin(), PE = SU->Preds.end();
246 P != PE; ++P) {
247 SUnit *PredSU = P->getSUnit();
248 unsigned PredLatency = P->getLatency();
249 unsigned PredTotalLatency = PredSU->getDepth() + PredLatency;
250 // In the case of a latency tie, prefer an anti-dependency edge over
251 // other types of edges.
252 if (NextDepth < PredTotalLatency ||
253 (NextDepth == PredTotalLatency && P->getKind() == SDep::Anti)) {
254 NextDepth = PredTotalLatency;
255 Next = &*P;
256 }
257 }
258 return Next;
259}
260
Dan Gohman21d90032008-11-25 00:52:40 +0000261/// BreakAntiDependencies - Identifiy anti-dependencies along the critical path
262/// of the ScheduleDAG and break them by renaming registers.
263///
264bool SchedulePostRATDList::BreakAntiDependencies() {
265 // The code below assumes that there is at least one instruction,
266 // so just duck out immediately if the block is empty.
Dan Gohman85544492009-01-16 21:37:14 +0000267 if (SUnits.empty()) return false;
Dan Gohman21d90032008-11-25 00:52:40 +0000268
Dan Gohman3f237442008-12-16 03:25:46 +0000269 // Find the node at the bottom of the critical path.
Dan Gohman21d90032008-11-25 00:52:40 +0000270 SUnit *Max = 0;
Dan Gohman3f237442008-12-16 03:25:46 +0000271 for (unsigned i = 0, e = SUnits.size(); i != e; ++i) {
272 SUnit *SU = &SUnits[i];
273 if (!Max || SU->getDepth() + SU->Latency > Max->getDepth() + Max->Latency)
Dan Gohman21d90032008-11-25 00:52:40 +0000274 Max = SU;
275 }
276
277 DOUT << "Critical path has total latency "
Dan Gohman85544492009-01-16 21:37:14 +0000278 << (Max->getDepth() + Max->Latency) << "\n";
Dan Gohman21d90032008-11-25 00:52:40 +0000279
Dan Gohman00dc84a2008-12-16 19:27:52 +0000280 // Track progress along the critical path through the SUnit graph as we walk
281 // the instructions.
282 SUnit *CriticalPathSU = Max;
283 MachineInstr *CriticalPathMI = CriticalPathSU->getInstr();
Dan Gohman21d90032008-11-25 00:52:40 +0000284
285 // For live regs that are only used in one register class in a live range,
Dan Gohmane96cc772008-12-03 19:38:38 +0000286 // the register class. If the register is not live, the corresponding value
287 // is null. If the register is live but used in multiple register classes,
288 // the corresponding value is -1 casted to a pointer.
Dan Gohman21d90032008-11-25 00:52:40 +0000289 const TargetRegisterClass *
290 Classes[TargetRegisterInfo::FirstVirtualRegister] = {};
291
292 // Map registers to all their references within a live range.
293 std::multimap<unsigned, MachineOperand *> RegRefs;
294
Dan Gohman6c3643c2008-12-19 22:23:43 +0000295 // The index of the most recent kill (proceding bottom-up), or ~0u if
Dan Gohman21d90032008-11-25 00:52:40 +0000296 // the register is not live.
297 unsigned KillIndices[TargetRegisterInfo::FirstVirtualRegister];
Dan Gohman6c3643c2008-12-19 22:23:43 +0000298 std::fill(KillIndices, array_endof(KillIndices), ~0u);
299 // The index of the most recent complete def (proceding bottom up), or ~0u if
Dan Gohman21d90032008-11-25 00:52:40 +0000300 // the register is live.
301 unsigned DefIndices[TargetRegisterInfo::FirstVirtualRegister];
302 std::fill(DefIndices, array_endof(DefIndices), BB->size());
303
304 // Determine the live-out physregs for this block.
Dan Gohman00dc84a2008-12-16 19:27:52 +0000305 if (BB->back().getDesc().isReturn())
Dan Gohman21d90032008-11-25 00:52:40 +0000306 // In a return block, examine the function live-out regs.
307 for (MachineRegisterInfo::liveout_iterator I = MRI.liveout_begin(),
308 E = MRI.liveout_end(); I != E; ++I) {
309 unsigned Reg = *I;
310 Classes[Reg] = reinterpret_cast<TargetRegisterClass *>(-1);
311 KillIndices[Reg] = BB->size();
Dan Gohman6c3643c2008-12-19 22:23:43 +0000312 DefIndices[Reg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000313 // Repeat, for all aliases.
314 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) {
315 unsigned AliasReg = *Alias;
316 Classes[AliasReg] = reinterpret_cast<TargetRegisterClass *>(-1);
317 KillIndices[AliasReg] = BB->size();
Dan Gohman6c3643c2008-12-19 22:23:43 +0000318 DefIndices[AliasReg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000319 }
320 }
321 else
322 // In a non-return block, examine the live-in regs of all successors.
323 for (MachineBasicBlock::succ_iterator SI = BB->succ_begin(),
324 SE = BB->succ_end(); SI != SE; ++SI)
325 for (MachineBasicBlock::livein_iterator I = (*SI)->livein_begin(),
326 E = (*SI)->livein_end(); I != E; ++I) {
327 unsigned Reg = *I;
328 Classes[Reg] = reinterpret_cast<TargetRegisterClass *>(-1);
329 KillIndices[Reg] = BB->size();
Dan Gohman6c3643c2008-12-19 22:23:43 +0000330 DefIndices[Reg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000331 // Repeat, for all aliases.
332 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) {
333 unsigned AliasReg = *Alias;
334 Classes[AliasReg] = reinterpret_cast<TargetRegisterClass *>(-1);
335 KillIndices[AliasReg] = BB->size();
Dan Gohman6c3643c2008-12-19 22:23:43 +0000336 DefIndices[AliasReg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000337 }
338 }
339
340 // Consider callee-saved registers as live-out, since we're running after
341 // prologue/epilogue insertion so there's no way to add additional
342 // saved registers.
343 //
344 // TODO: If the callee saves and restores these, then we can potentially
345 // use them between the save and the restore. To do that, we could scan
346 // the exit blocks to see which of these registers are defined.
Dan Gohman00dc84a2008-12-16 19:27:52 +0000347 // Alternatively, callee-saved registers that aren't saved and restored
Dan Gohmanebb0a312008-12-03 19:30:13 +0000348 // could be marked live-in in every block.
Dan Gohman21d90032008-11-25 00:52:40 +0000349 for (const unsigned *I = TRI->getCalleeSavedRegs(); *I; ++I) {
350 unsigned Reg = *I;
351 Classes[Reg] = reinterpret_cast<TargetRegisterClass *>(-1);
352 KillIndices[Reg] = BB->size();
Dan Gohman6c3643c2008-12-19 22:23:43 +0000353 DefIndices[Reg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000354 // Repeat, for all aliases.
355 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) {
356 unsigned AliasReg = *Alias;
357 Classes[AliasReg] = reinterpret_cast<TargetRegisterClass *>(-1);
358 KillIndices[AliasReg] = BB->size();
Dan Gohman6c3643c2008-12-19 22:23:43 +0000359 DefIndices[AliasReg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000360 }
361 }
362
363 // Consider this pattern:
364 // A = ...
365 // ... = A
366 // A = ...
367 // ... = A
368 // A = ...
369 // ... = A
370 // A = ...
371 // ... = A
372 // There are three anti-dependencies here, and without special care,
373 // we'd break all of them using the same register:
374 // A = ...
375 // ... = A
376 // B = ...
377 // ... = B
378 // B = ...
379 // ... = B
380 // B = ...
381 // ... = B
382 // because at each anti-dependence, B is the first register that
383 // isn't A which is free. This re-introduces anti-dependencies
384 // at all but one of the original anti-dependencies that we were
385 // trying to break. To avoid this, keep track of the most recent
386 // register that each register was replaced with, avoid avoid
387 // using it to repair an anti-dependence on the same register.
388 // This lets us produce this:
389 // A = ...
390 // ... = A
391 // B = ...
392 // ... = B
393 // C = ...
394 // ... = C
395 // B = ...
396 // ... = B
397 // This still has an anti-dependence on B, but at least it isn't on the
398 // original critical path.
399 //
400 // TODO: If we tracked more than one register here, we could potentially
401 // fix that remaining critical edge too. This is a little more involved,
402 // because unlike the most recent register, less recent registers should
403 // still be considered, though only if no other registers are available.
404 unsigned LastNewReg[TargetRegisterInfo::FirstVirtualRegister] = {};
405
Dan Gohman21d90032008-11-25 00:52:40 +0000406 // Attempt to break anti-dependence edges on the critical path. Walk the
407 // instructions from the bottom up, tracking information about liveness
408 // as we go to help determine which registers are available.
409 bool Changed = false;
410 unsigned Count = BB->size() - 1;
411 for (MachineBasicBlock::reverse_iterator I = BB->rbegin(), E = BB->rend();
412 I != E; ++I, --Count) {
413 MachineInstr *MI = &*I;
414
Dan Gohman490b1832008-12-05 05:30:02 +0000415 // After regalloc, IMPLICIT_DEF instructions aren't safe to treat as
416 // dependence-breaking. In the case of an INSERT_SUBREG, the IMPLICIT_DEF
417 // is left behind appearing to clobber the super-register, while the
418 // subregister needs to remain live. So we just ignore them.
419 if (MI->getOpcode() == TargetInstrInfo::IMPLICIT_DEF)
420 continue;
421
Dan Gohman00dc84a2008-12-16 19:27:52 +0000422 // Check if this instruction has a dependence on the critical path that
423 // is an anti-dependence that we may be able to break. If it is, set
424 // AntiDepReg to the non-zero register associated with the anti-dependence.
425 //
426 // We limit our attention to the critical path as a heuristic to avoid
427 // breaking anti-dependence edges that aren't going to significantly
428 // impact the overall schedule. There are a limited number of registers
429 // and we want to save them for the important edges.
430 //
431 // TODO: Instructions with multiple defs could have multiple
432 // anti-dependencies. The current code here only knows how to break one
433 // edge per instruction. Note that we'd have to be able to break all of
434 // the anti-dependencies in an instruction in order to be effective.
435 unsigned AntiDepReg = 0;
436 if (MI == CriticalPathMI) {
437 if (SDep *Edge = CriticalPathStep(CriticalPathSU)) {
438 SUnit *NextSU = Edge->getSUnit();
439
440 // Only consider anti-dependence edges.
441 if (Edge->getKind() == SDep::Anti) {
442 AntiDepReg = Edge->getReg();
443 assert(AntiDepReg != 0 && "Anti-dependence on reg0?");
444 // Don't break anti-dependencies on non-allocatable registers.
Dan Gohman49bb50e2009-01-16 21:57:43 +0000445 if (!AllocatableSet.test(AntiDepReg))
446 AntiDepReg = 0;
447 else {
Dan Gohman00dc84a2008-12-16 19:27:52 +0000448 // If the SUnit has other dependencies on the SUnit that it
449 // anti-depends on, don't bother breaking the anti-dependency
450 // since those edges would prevent such units from being
451 // scheduled past each other regardless.
452 //
453 // Also, if there are dependencies on other SUnits with the
454 // same register as the anti-dependency, don't attempt to
455 // break it.
456 for (SUnit::pred_iterator P = CriticalPathSU->Preds.begin(),
457 PE = CriticalPathSU->Preds.end(); P != PE; ++P)
458 if (P->getSUnit() == NextSU ?
459 (P->getKind() != SDep::Anti || P->getReg() != AntiDepReg) :
460 (P->getKind() == SDep::Data && P->getReg() == AntiDepReg)) {
461 AntiDepReg = 0;
462 break;
463 }
464 }
465 }
466 CriticalPathSU = NextSU;
467 CriticalPathMI = CriticalPathSU->getInstr();
468 } else {
469 // We've reached the end of the critical path.
470 CriticalPathSU = 0;
471 CriticalPathMI = 0;
472 }
473 }
Dan Gohman21d90032008-11-25 00:52:40 +0000474
475 // Scan the register operands for this instruction and update
476 // Classes and RegRefs.
477 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
478 MachineOperand &MO = MI->getOperand(i);
479 if (!MO.isReg()) continue;
480 unsigned Reg = MO.getReg();
481 if (Reg == 0) continue;
482 const TargetRegisterClass *NewRC =
483 getInstrOperandRegClass(TRI, TII, MI->getDesc(), i);
484
485 // If this instruction has a use of AntiDepReg, breaking it
486 // is invalid.
487 if (MO.isUse() && AntiDepReg == Reg)
488 AntiDepReg = 0;
489
490 // For now, only allow the register to be changed if its register
491 // class is consistent across all uses.
492 if (!Classes[Reg] && NewRC)
493 Classes[Reg] = NewRC;
494 else if (!NewRC || Classes[Reg] != NewRC)
495 Classes[Reg] = reinterpret_cast<TargetRegisterClass *>(-1);
496
497 // Now check for aliases.
498 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) {
499 // If an alias of the reg is used during the live range, give up.
500 // Note that this allows us to skip checking if AntiDepReg
501 // overlaps with any of the aliases, among other things.
502 unsigned AliasReg = *Alias;
503 if (Classes[AliasReg]) {
504 Classes[AliasReg] = reinterpret_cast<TargetRegisterClass *>(-1);
505 Classes[Reg] = reinterpret_cast<TargetRegisterClass *>(-1);
506 }
507 }
508
509 // If we're still willing to consider this register, note the reference.
510 if (Classes[Reg] != reinterpret_cast<TargetRegisterClass *>(-1))
511 RegRefs.insert(std::make_pair(Reg, &MO));
512 }
513
514 // Determine AntiDepReg's register class, if it is live and is
515 // consistently used within a single class.
516 const TargetRegisterClass *RC = AntiDepReg != 0 ? Classes[AntiDepReg] : 0;
Nick Lewyckya89d1022008-11-27 17:29:52 +0000517 assert((AntiDepReg == 0 || RC != NULL) &&
Dan Gohman21d90032008-11-25 00:52:40 +0000518 "Register should be live if it's causing an anti-dependence!");
519 if (RC == reinterpret_cast<TargetRegisterClass *>(-1))
520 AntiDepReg = 0;
521
522 // Look for a suitable register to use to break the anti-depenence.
523 //
524 // TODO: Instead of picking the first free register, consider which might
525 // be the best.
526 if (AntiDepReg != 0) {
Dan Gohman79ce2762009-01-15 19:20:50 +0000527 for (TargetRegisterClass::iterator R = RC->allocation_order_begin(MF),
528 RE = RC->allocation_order_end(MF); R != RE; ++R) {
Dan Gohman21d90032008-11-25 00:52:40 +0000529 unsigned NewReg = *R;
530 // Don't replace a register with itself.
531 if (NewReg == AntiDepReg) continue;
532 // Don't replace a register with one that was recently used to repair
533 // an anti-dependence with this AntiDepReg, because that would
534 // re-introduce that anti-dependence.
535 if (NewReg == LastNewReg[AntiDepReg]) continue;
536 // If NewReg is dead and NewReg's most recent def is not before
537 // AntiDepReg's kill, it's safe to replace AntiDepReg with NewReg.
Dan Gohman6c3643c2008-12-19 22:23:43 +0000538 assert(((KillIndices[AntiDepReg] == ~0u) != (DefIndices[AntiDepReg] == ~0u)) &&
Dan Gohman21d90032008-11-25 00:52:40 +0000539 "Kill and Def maps aren't consistent for AntiDepReg!");
Dan Gohman6c3643c2008-12-19 22:23:43 +0000540 assert(((KillIndices[NewReg] == ~0u) != (DefIndices[NewReg] == ~0u)) &&
Dan Gohman21d90032008-11-25 00:52:40 +0000541 "Kill and Def maps aren't consistent for NewReg!");
Dan Gohman6c3643c2008-12-19 22:23:43 +0000542 if (KillIndices[NewReg] == ~0u &&
Dan Gohmanfde221f2008-12-16 06:20:58 +0000543 Classes[NewReg] != reinterpret_cast<TargetRegisterClass *>(-1) &&
Dan Gohman21d90032008-11-25 00:52:40 +0000544 KillIndices[AntiDepReg] <= DefIndices[NewReg]) {
Dan Gohman80e201b2008-12-04 02:15:26 +0000545 DOUT << "Breaking anti-dependence edge on "
546 << TRI->getName(AntiDepReg)
Dan Gohmancef874a2008-12-03 23:07:27 +0000547 << " with " << RegRefs.count(AntiDepReg) << " references"
Dan Gohman80e201b2008-12-04 02:15:26 +0000548 << " using " << TRI->getName(NewReg) << "!\n";
Dan Gohman21d90032008-11-25 00:52:40 +0000549
550 // Update the references to the old register to refer to the new
551 // register.
552 std::pair<std::multimap<unsigned, MachineOperand *>::iterator,
553 std::multimap<unsigned, MachineOperand *>::iterator>
554 Range = RegRefs.equal_range(AntiDepReg);
555 for (std::multimap<unsigned, MachineOperand *>::iterator
556 Q = Range.first, QE = Range.second; Q != QE; ++Q)
557 Q->second->setReg(NewReg);
558
559 // We just went back in time and modified history; the
560 // liveness information for the anti-depenence reg is now
561 // inconsistent. Set the state as if it were dead.
562 Classes[NewReg] = Classes[AntiDepReg];
563 DefIndices[NewReg] = DefIndices[AntiDepReg];
564 KillIndices[NewReg] = KillIndices[AntiDepReg];
565
566 Classes[AntiDepReg] = 0;
567 DefIndices[AntiDepReg] = KillIndices[AntiDepReg];
Dan Gohman6c3643c2008-12-19 22:23:43 +0000568 KillIndices[AntiDepReg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000569
570 RegRefs.erase(AntiDepReg);
571 Changed = true;
572 LastNewReg[AntiDepReg] = NewReg;
573 break;
574 }
575 }
576 }
577
578 // Update liveness.
Dan Gohmancef874a2008-12-03 23:07:27 +0000579 // Proceding upwards, registers that are defed but not used in this
580 // instruction are now dead.
Dan Gohman21d90032008-11-25 00:52:40 +0000581 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
582 MachineOperand &MO = MI->getOperand(i);
583 if (!MO.isReg()) continue;
584 unsigned Reg = MO.getReg();
585 if (Reg == 0) continue;
Dan Gohmancef874a2008-12-03 23:07:27 +0000586 if (!MO.isDef()) continue;
587 // Ignore two-addr defs.
Dan Gohman2ce7f202008-12-05 05:45:42 +0000588 if (MI->isRegReDefinedByTwoAddr(i)) continue;
Dan Gohmancef874a2008-12-03 23:07:27 +0000589
Dan Gohman21d90032008-11-25 00:52:40 +0000590 DefIndices[Reg] = Count;
Dan Gohman6c3643c2008-12-19 22:23:43 +0000591 KillIndices[Reg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000592 Classes[Reg] = 0;
593 RegRefs.erase(Reg);
594 // Repeat, for all subregs.
595 for (const unsigned *Subreg = TRI->getSubRegisters(Reg);
596 *Subreg; ++Subreg) {
597 unsigned SubregReg = *Subreg;
598 DefIndices[SubregReg] = Count;
Dan Gohman6c3643c2008-12-19 22:23:43 +0000599 KillIndices[SubregReg] = ~0u;
Dan Gohman21d90032008-11-25 00:52:40 +0000600 Classes[SubregReg] = 0;
601 RegRefs.erase(SubregReg);
602 }
Dan Gohman00dc84a2008-12-16 19:27:52 +0000603 // Conservatively mark super-registers as unusable.
Dan Gohman3f237442008-12-16 03:25:46 +0000604 for (const unsigned *Super = TRI->getSuperRegisters(Reg);
605 *Super; ++Super) {
606 unsigned SuperReg = *Super;
607 Classes[SuperReg] = reinterpret_cast<TargetRegisterClass *>(-1);
608 }
Dan Gohman21d90032008-11-25 00:52:40 +0000609 }
Dan Gohmancef874a2008-12-03 23:07:27 +0000610 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
611 MachineOperand &MO = MI->getOperand(i);
612 if (!MO.isReg()) continue;
613 unsigned Reg = MO.getReg();
614 if (Reg == 0) continue;
615 if (!MO.isUse()) continue;
616
617 const TargetRegisterClass *NewRC =
618 getInstrOperandRegClass(TRI, TII, MI->getDesc(), i);
619
620 // For now, only allow the register to be changed if its register
621 // class is consistent across all uses.
622 if (!Classes[Reg] && NewRC)
623 Classes[Reg] = NewRC;
624 else if (!NewRC || Classes[Reg] != NewRC)
625 Classes[Reg] = reinterpret_cast<TargetRegisterClass *>(-1);
626
627 RegRefs.insert(std::make_pair(Reg, &MO));
628
629 // It wasn't previously live but now it is, this is a kill.
Dan Gohman6c3643c2008-12-19 22:23:43 +0000630 if (KillIndices[Reg] == ~0u) {
Dan Gohmancef874a2008-12-03 23:07:27 +0000631 KillIndices[Reg] = Count;
Dan Gohman6c3643c2008-12-19 22:23:43 +0000632 DefIndices[Reg] = ~0u;
Dan Gohmancef874a2008-12-03 23:07:27 +0000633 }
634 // Repeat, for all aliases.
635 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) {
636 unsigned AliasReg = *Alias;
Dan Gohman6c3643c2008-12-19 22:23:43 +0000637 if (KillIndices[AliasReg] == ~0u) {
Dan Gohmancef874a2008-12-03 23:07:27 +0000638 KillIndices[AliasReg] = Count;
Dan Gohman6c3643c2008-12-19 22:23:43 +0000639 DefIndices[AliasReg] = ~0u;
Dan Gohmancef874a2008-12-03 23:07:27 +0000640 }
641 }
642 }
Dan Gohman21d90032008-11-25 00:52:40 +0000643 }
Dan Gohman6c3643c2008-12-19 22:23:43 +0000644 assert(Count == ~0u && "Count mismatch!");
Dan Gohman21d90032008-11-25 00:52:40 +0000645
646 return Changed;
647}
648
Dan Gohman343f0c02008-11-19 23:18:57 +0000649//===----------------------------------------------------------------------===//
650// Top-Down Scheduling
651//===----------------------------------------------------------------------===//
652
653/// ReleaseSucc - Decrement the NumPredsLeft count of a successor. Add it to
654/// the PendingQueue if the count reaches zero. Also update its cycle bound.
Dan Gohman54e4c362008-12-09 22:54:47 +0000655void SchedulePostRATDList::ReleaseSucc(SUnit *SU, SDep *SuccEdge) {
656 SUnit *SuccSU = SuccEdge->getSUnit();
Dan Gohman343f0c02008-11-19 23:18:57 +0000657 --SuccSU->NumPredsLeft;
658
659#ifndef NDEBUG
660 if (SuccSU->NumPredsLeft < 0) {
661 cerr << "*** Scheduling failed! ***\n";
662 SuccSU->dump(this);
663 cerr << " has been released too many times!\n";
664 assert(0);
665 }
666#endif
667
668 // Compute how many cycles it will be before this actually becomes
669 // available. This is the max of the start time of all predecessors plus
670 // their latencies.
Dan Gohman3f237442008-12-16 03:25:46 +0000671 SuccSU->setDepthToAtLeast(SU->getDepth() + SuccEdge->getLatency());
Dan Gohman343f0c02008-11-19 23:18:57 +0000672
673 if (SuccSU->NumPredsLeft == 0) {
674 PendingQueue.push_back(SuccSU);
675 }
676}
677
678/// ScheduleNodeTopDown - Add the node to the schedule. Decrement the pending
679/// count of its successors. If a successor pending count is zero, add it to
680/// the Available queue.
681void SchedulePostRATDList::ScheduleNodeTopDown(SUnit *SU, unsigned CurCycle) {
682 DOUT << "*** Scheduling [" << CurCycle << "]: ";
683 DEBUG(SU->dump(this));
684
685 Sequence.push_back(SU);
Dan Gohman3f237442008-12-16 03:25:46 +0000686 assert(CurCycle >= SU->getDepth() && "Node scheduled above its depth!");
687 SU->setDepthToAtLeast(CurCycle);
Dan Gohman343f0c02008-11-19 23:18:57 +0000688
689 // Top down: release successors.
690 for (SUnit::succ_iterator I = SU->Succs.begin(), E = SU->Succs.end();
691 I != E; ++I)
Dan Gohman54e4c362008-12-09 22:54:47 +0000692 ReleaseSucc(SU, &*I);
Dan Gohman343f0c02008-11-19 23:18:57 +0000693
694 SU->isScheduled = true;
695 AvailableQueue.ScheduledNode(SU);
696}
697
698/// ListScheduleTopDown - The main loop of list scheduling for top-down
699/// schedulers.
700void SchedulePostRATDList::ListScheduleTopDown() {
701 unsigned CurCycle = 0;
702
703 // All leaves to Available queue.
704 for (unsigned i = 0, e = SUnits.size(); i != e; ++i) {
705 // It is available if it has no predecessors.
706 if (SUnits[i].Preds.empty()) {
707 AvailableQueue.push(&SUnits[i]);
708 SUnits[i].isAvailable = true;
709 }
710 }
711
712 // While Available queue is not empty, grab the node with the highest
713 // priority. If it is not ready put it back. Schedule the node.
Dan Gohman2836c282009-01-16 01:33:36 +0000714 std::vector<SUnit*> NotReady;
Dan Gohman343f0c02008-11-19 23:18:57 +0000715 Sequence.reserve(SUnits.size());
716 while (!AvailableQueue.empty() || !PendingQueue.empty()) {
717 // Check to see if any of the pending instructions are ready to issue. If
718 // so, add them to the available queue.
Dan Gohman3f237442008-12-16 03:25:46 +0000719 unsigned MinDepth = ~0u;
Dan Gohman343f0c02008-11-19 23:18:57 +0000720 for (unsigned i = 0, e = PendingQueue.size(); i != e; ++i) {
Dan Gohman3f237442008-12-16 03:25:46 +0000721 if (PendingQueue[i]->getDepth() <= CurCycle) {
Dan Gohman343f0c02008-11-19 23:18:57 +0000722 AvailableQueue.push(PendingQueue[i]);
723 PendingQueue[i]->isAvailable = true;
724 PendingQueue[i] = PendingQueue.back();
725 PendingQueue.pop_back();
726 --i; --e;
Dan Gohman3f237442008-12-16 03:25:46 +0000727 } else if (PendingQueue[i]->getDepth() < MinDepth)
728 MinDepth = PendingQueue[i]->getDepth();
Dan Gohman343f0c02008-11-19 23:18:57 +0000729 }
730
Dan Gohman2836c282009-01-16 01:33:36 +0000731 // If there are no instructions available, don't try to issue anything, and
732 // don't advance the hazard recognizer.
Dan Gohman343f0c02008-11-19 23:18:57 +0000733 if (AvailableQueue.empty()) {
Dan Gohman3f237442008-12-16 03:25:46 +0000734 CurCycle = MinDepth != ~0u ? MinDepth : CurCycle + 1;
Dan Gohman343f0c02008-11-19 23:18:57 +0000735 continue;
736 }
737
Dan Gohman2836c282009-01-16 01:33:36 +0000738 SUnit *FoundSUnit = 0;
739
740 bool HasNoopHazards = false;
741 while (!AvailableQueue.empty()) {
742 SUnit *CurSUnit = AvailableQueue.pop();
743
744 ScheduleHazardRecognizer::HazardType HT =
745 HazardRec->getHazardType(CurSUnit);
746 if (HT == ScheduleHazardRecognizer::NoHazard) {
747 FoundSUnit = CurSUnit;
748 break;
749 }
750
751 // Remember if this is a noop hazard.
752 HasNoopHazards |= HT == ScheduleHazardRecognizer::NoopHazard;
753
754 NotReady.push_back(CurSUnit);
755 }
756
757 // Add the nodes that aren't ready back onto the available list.
758 if (!NotReady.empty()) {
759 AvailableQueue.push_all(NotReady);
760 NotReady.clear();
761 }
762
Dan Gohman343f0c02008-11-19 23:18:57 +0000763 // If we found a node to schedule, do it now.
764 if (FoundSUnit) {
765 ScheduleNodeTopDown(FoundSUnit, CurCycle);
Dan Gohman2836c282009-01-16 01:33:36 +0000766 HazardRec->EmitInstruction(FoundSUnit);
Dan Gohman343f0c02008-11-19 23:18:57 +0000767
768 // If this is a pseudo-op node, we don't want to increment the current
769 // cycle.
770 if (FoundSUnit->Latency) // Don't increment CurCycle for pseudo-ops!
Dan Gohman2836c282009-01-16 01:33:36 +0000771 ++CurCycle;
772 } else if (!HasNoopHazards) {
Dan Gohman343f0c02008-11-19 23:18:57 +0000773 // Otherwise, we have a pipeline stall, but no other problem, just advance
774 // the current cycle and try again.
775 DOUT << "*** Advancing cycle, no work to do\n";
Dan Gohman2836c282009-01-16 01:33:36 +0000776 HazardRec->AdvanceCycle();
Dan Gohman343f0c02008-11-19 23:18:57 +0000777 ++NumStalls;
778 ++CurCycle;
Dan Gohman2836c282009-01-16 01:33:36 +0000779 } else {
780 // Otherwise, we have no instructions to issue and we have instructions
781 // that will fault if we don't do this right. This is the case for
782 // processors without pipeline interlocks and other cases.
783 DOUT << "*** Emitting noop\n";
784 HazardRec->EmitNoop();
785 Sequence.push_back(0); // NULL here means noop
786 ++NumNoops;
787 ++CurCycle;
Dan Gohman343f0c02008-11-19 23:18:57 +0000788 }
789 }
790
791#ifndef NDEBUG
Dan Gohmana1e6d362008-11-20 01:26:25 +0000792 VerifySchedule(/*isBottomUp=*/false);
Dan Gohman343f0c02008-11-19 23:18:57 +0000793#endif
794}
Dale Johannesene7e7d0d2007-07-13 17:13:54 +0000795
796//===----------------------------------------------------------------------===//
797// Public Constructor Functions
798//===----------------------------------------------------------------------===//
799
800FunctionPass *llvm::createPostRAScheduler() {
Dan Gohman343f0c02008-11-19 23:18:57 +0000801 return new PostRAScheduler();
Dale Johannesene7e7d0d2007-07-13 17:13:54 +0000802}