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Andrew Trick5429a6b2012-05-17 22:37:09 +00001//===- MachineScheduler.cpp - Machine Instruction Scheduler ---------------===//
Andrew Trick96f678f2012-01-13 06:30:30 +00002//
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// MachineScheduler schedules machine instructions after phi elimination. It
11// preserves LiveIntervals so it can be invoked before register allocation.
12//
13//===----------------------------------------------------------------------===//
14
15#define DEBUG_TYPE "misched"
16
Andrew Trickc174eaf2012-03-08 01:41:12 +000017#include "llvm/CodeGen/MachineScheduler.h"
Chandler Carruthd04a8d42012-12-03 16:50:05 +000018#include "llvm/ADT/OwningPtr.h"
19#include "llvm/ADT/PriorityQueue.h"
20#include "llvm/Analysis/AliasAnalysis.h"
21#include "llvm/CodeGen/LiveIntervalAnalysis.h"
Jakub Staszak760fa5d2013-03-10 13:11:23 +000022#include "llvm/CodeGen/MachineDominators.h"
23#include "llvm/CodeGen/MachineLoopInfo.h"
Andrew Trick96f678f2012-01-13 06:30:30 +000024#include "llvm/CodeGen/Passes.h"
Andrew Trick15252602012-06-06 20:29:31 +000025#include "llvm/CodeGen/RegisterClassInfo.h"
Andrew Trick53e98a22012-11-28 05:13:24 +000026#include "llvm/CodeGen/ScheduleDFS.h"
Andrew Trick0a39d4e2012-05-24 22:11:09 +000027#include "llvm/CodeGen/ScheduleHazardRecognizer.h"
Andrew Trick96f678f2012-01-13 06:30:30 +000028#include "llvm/Support/CommandLine.h"
29#include "llvm/Support/Debug.h"
30#include "llvm/Support/ErrorHandling.h"
Andrew Trick30849792013-01-25 07:45:29 +000031#include "llvm/Support/GraphWriter.h"
Andrew Trick96f678f2012-01-13 06:30:30 +000032#include "llvm/Support/raw_ostream.h"
Jakub Staszak38084db2013-06-14 00:00:13 +000033#include "llvm/Target/TargetInstrInfo.h"
Andrew Trickc6cf11b2012-01-17 06:55:07 +000034#include <queue>
35
Andrew Trick96f678f2012-01-13 06:30:30 +000036using namespace llvm;
37
Andrew Trick78e5efe2012-09-11 00:39:15 +000038namespace llvm {
39cl::opt<bool> ForceTopDown("misched-topdown", cl::Hidden,
40 cl::desc("Force top-down list scheduling"));
41cl::opt<bool> ForceBottomUp("misched-bottomup", cl::Hidden,
42 cl::desc("Force bottom-up list scheduling"));
43}
Andrew Trick17d35e52012-03-14 04:00:41 +000044
Andrew Trick0df7f882012-03-07 00:18:25 +000045#ifndef NDEBUG
46static cl::opt<bool> ViewMISchedDAGs("view-misched-dags", cl::Hidden,
47 cl::desc("Pop up a window to show MISched dags after they are processed"));
Lang Hames23f1cbb2012-03-19 18:38:38 +000048
49static cl::opt<unsigned> MISchedCutoff("misched-cutoff", cl::Hidden,
50 cl::desc("Stop scheduling after N instructions"), cl::init(~0U));
Andrew Trick0df7f882012-03-07 00:18:25 +000051#else
52static bool ViewMISchedDAGs = false;
53#endif // NDEBUG
54
Andrew Trick9b5caaa2012-11-12 19:40:10 +000055static cl::opt<bool> EnableLoadCluster("misched-cluster", cl::Hidden,
Andrew Trickad1cc1d2012-11-13 08:47:29 +000056 cl::desc("Enable load clustering."), cl::init(true));
Andrew Trick9b5caaa2012-11-12 19:40:10 +000057
Andrew Trick6996fd02012-11-12 19:52:20 +000058// Experimental heuristics
59static cl::opt<bool> EnableMacroFusion("misched-fusion", cl::Hidden,
Andrew Trickad1cc1d2012-11-13 08:47:29 +000060 cl::desc("Enable scheduling for macro fusion."), cl::init(true));
Andrew Trick6996fd02012-11-12 19:52:20 +000061
Andrew Trickfff2d3a2013-03-08 05:40:34 +000062static cl::opt<bool> VerifyScheduling("verify-misched", cl::Hidden,
63 cl::desc("Verify machine instrs before and after machine scheduling"));
64
Andrew Trick178f7d02013-01-25 04:01:04 +000065// DAG subtrees must have at least this many nodes.
66static const unsigned MinSubtreeSize = 8;
67
Andrew Trick5edf2f02012-01-14 02:17:06 +000068//===----------------------------------------------------------------------===//
69// Machine Instruction Scheduling Pass and Registry
70//===----------------------------------------------------------------------===//
71
Andrew Trick86b7e2a2012-04-24 20:36:19 +000072MachineSchedContext::MachineSchedContext():
73 MF(0), MLI(0), MDT(0), PassConfig(0), AA(0), LIS(0) {
74 RegClassInfo = new RegisterClassInfo();
75}
76
77MachineSchedContext::~MachineSchedContext() {
78 delete RegClassInfo;
79}
80
Andrew Trick96f678f2012-01-13 06:30:30 +000081namespace {
Andrew Trick42b7a712012-01-17 06:55:03 +000082/// MachineScheduler runs after coalescing and before register allocation.
Andrew Trickc174eaf2012-03-08 01:41:12 +000083class MachineScheduler : public MachineSchedContext,
84 public MachineFunctionPass {
Andrew Trick96f678f2012-01-13 06:30:30 +000085public:
Andrew Trick42b7a712012-01-17 06:55:03 +000086 MachineScheduler();
Andrew Trick96f678f2012-01-13 06:30:30 +000087
88 virtual void getAnalysisUsage(AnalysisUsage &AU) const;
89
90 virtual void releaseMemory() {}
91
92 virtual bool runOnMachineFunction(MachineFunction&);
93
94 virtual void print(raw_ostream &O, const Module* = 0) const;
95
96 static char ID; // Class identification, replacement for typeinfo
97};
98} // namespace
99
Andrew Trick42b7a712012-01-17 06:55:03 +0000100char MachineScheduler::ID = 0;
Andrew Trick96f678f2012-01-13 06:30:30 +0000101
Andrew Trick42b7a712012-01-17 06:55:03 +0000102char &llvm::MachineSchedulerID = MachineScheduler::ID;
Andrew Trick96f678f2012-01-13 06:30:30 +0000103
Andrew Trick42b7a712012-01-17 06:55:03 +0000104INITIALIZE_PASS_BEGIN(MachineScheduler, "misched",
Andrew Trick96f678f2012-01-13 06:30:30 +0000105 "Machine Instruction Scheduler", false, false)
106INITIALIZE_AG_DEPENDENCY(AliasAnalysis)
107INITIALIZE_PASS_DEPENDENCY(SlotIndexes)
108INITIALIZE_PASS_DEPENDENCY(LiveIntervals)
Andrew Trick42b7a712012-01-17 06:55:03 +0000109INITIALIZE_PASS_END(MachineScheduler, "misched",
Andrew Trick96f678f2012-01-13 06:30:30 +0000110 "Machine Instruction Scheduler", false, false)
111
Andrew Trick42b7a712012-01-17 06:55:03 +0000112MachineScheduler::MachineScheduler()
Andrew Trickc174eaf2012-03-08 01:41:12 +0000113: MachineFunctionPass(ID) {
Andrew Trick42b7a712012-01-17 06:55:03 +0000114 initializeMachineSchedulerPass(*PassRegistry::getPassRegistry());
Andrew Trick96f678f2012-01-13 06:30:30 +0000115}
116
Andrew Trick42b7a712012-01-17 06:55:03 +0000117void MachineScheduler::getAnalysisUsage(AnalysisUsage &AU) const {
Andrew Trick96f678f2012-01-13 06:30:30 +0000118 AU.setPreservesCFG();
119 AU.addRequiredID(MachineDominatorsID);
120 AU.addRequired<MachineLoopInfo>();
121 AU.addRequired<AliasAnalysis>();
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000122 AU.addRequired<TargetPassConfig>();
Andrew Trick96f678f2012-01-13 06:30:30 +0000123 AU.addRequired<SlotIndexes>();
124 AU.addPreserved<SlotIndexes>();
125 AU.addRequired<LiveIntervals>();
126 AU.addPreserved<LiveIntervals>();
Andrew Trick96f678f2012-01-13 06:30:30 +0000127 MachineFunctionPass::getAnalysisUsage(AU);
128}
129
Andrew Trick96f678f2012-01-13 06:30:30 +0000130MachinePassRegistry MachineSchedRegistry::Registry;
131
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000132/// A dummy default scheduler factory indicates whether the scheduler
133/// is overridden on the command line.
134static ScheduleDAGInstrs *useDefaultMachineSched(MachineSchedContext *C) {
135 return 0;
136}
Andrew Trick96f678f2012-01-13 06:30:30 +0000137
138/// MachineSchedOpt allows command line selection of the scheduler.
139static cl::opt<MachineSchedRegistry::ScheduleDAGCtor, false,
140 RegisterPassParser<MachineSchedRegistry> >
141MachineSchedOpt("misched",
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000142 cl::init(&useDefaultMachineSched), cl::Hidden,
Andrew Trick96f678f2012-01-13 06:30:30 +0000143 cl::desc("Machine instruction scheduler to use"));
144
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000145static MachineSchedRegistry
Andrew Trick17d35e52012-03-14 04:00:41 +0000146DefaultSchedRegistry("default", "Use the target's default scheduler choice.",
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000147 useDefaultMachineSched);
148
Andrew Trick17d35e52012-03-14 04:00:41 +0000149/// Forward declare the standard machine scheduler. This will be used as the
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000150/// default scheduler if the target does not set a default.
Andrew Trick17d35e52012-03-14 04:00:41 +0000151static ScheduleDAGInstrs *createConvergingSched(MachineSchedContext *C);
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000152
Andrew Trickeb45ebb2012-04-24 18:04:34 +0000153
154/// Decrement this iterator until reaching the top or a non-debug instr.
155static MachineBasicBlock::iterator
156priorNonDebug(MachineBasicBlock::iterator I, MachineBasicBlock::iterator Beg) {
157 assert(I != Beg && "reached the top of the region, cannot decrement");
158 while (--I != Beg) {
159 if (!I->isDebugValue())
160 break;
161 }
162 return I;
163}
164
165/// If this iterator is a debug value, increment until reaching the End or a
166/// non-debug instruction.
167static MachineBasicBlock::iterator
168nextIfDebug(MachineBasicBlock::iterator I, MachineBasicBlock::iterator End) {
Andrew Trick811d92682012-05-17 18:35:03 +0000169 for(; I != End; ++I) {
Andrew Trickeb45ebb2012-04-24 18:04:34 +0000170 if (!I->isDebugValue())
171 break;
172 }
173 return I;
174}
175
Andrew Trickcb058d52012-03-14 04:00:38 +0000176/// Top-level MachineScheduler pass driver.
177///
178/// Visit blocks in function order. Divide each block into scheduling regions
Andrew Trick17d35e52012-03-14 04:00:41 +0000179/// and visit them bottom-up. Visiting regions bottom-up is not required, but is
180/// consistent with the DAG builder, which traverses the interior of the
181/// scheduling regions bottom-up.
Andrew Trickcb058d52012-03-14 04:00:38 +0000182///
183/// This design avoids exposing scheduling boundaries to the DAG builder,
Andrew Trick17d35e52012-03-14 04:00:41 +0000184/// simplifying the DAG builder's support for "special" target instructions.
185/// At the same time the design allows target schedulers to operate across
Andrew Trickcb058d52012-03-14 04:00:38 +0000186/// scheduling boundaries, for example to bundle the boudary instructions
187/// without reordering them. This creates complexity, because the target
188/// scheduler must update the RegionBegin and RegionEnd positions cached by
189/// ScheduleDAGInstrs whenever adding or removing instructions. A much simpler
190/// design would be to split blocks at scheduling boundaries, but LLVM has a
191/// general bias against block splitting purely for implementation simplicity.
Andrew Trick42b7a712012-01-17 06:55:03 +0000192bool MachineScheduler::runOnMachineFunction(MachineFunction &mf) {
Andrew Trick89c324b2012-05-10 21:06:21 +0000193 DEBUG(dbgs() << "Before MISsched:\n"; mf.print(dbgs()));
194
Andrew Trick96f678f2012-01-13 06:30:30 +0000195 // Initialize the context of the pass.
196 MF = &mf;
197 MLI = &getAnalysis<MachineLoopInfo>();
198 MDT = &getAnalysis<MachineDominatorTree>();
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000199 PassConfig = &getAnalysis<TargetPassConfig>();
Andrew Trickc174eaf2012-03-08 01:41:12 +0000200 AA = &getAnalysis<AliasAnalysis>();
201
Lang Hames907cc8f2012-01-27 22:36:19 +0000202 LIS = &getAnalysis<LiveIntervals>();
Andrew Trickc174eaf2012-03-08 01:41:12 +0000203 const TargetInstrInfo *TII = MF->getTarget().getInstrInfo();
Andrew Trick96f678f2012-01-13 06:30:30 +0000204
Andrew Trickfff2d3a2013-03-08 05:40:34 +0000205 if (VerifyScheduling) {
206 DEBUG(LIS->print(dbgs()));
207 MF->verify(this, "Before machine scheduling.");
208 }
Andrew Trick86b7e2a2012-04-24 20:36:19 +0000209 RegClassInfo->runOnMachineFunction(*MF);
Andrew Trick006e1ab2012-04-24 17:56:43 +0000210
Andrew Trick96f678f2012-01-13 06:30:30 +0000211 // Select the scheduler, or set the default.
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000212 MachineSchedRegistry::ScheduleDAGCtor Ctor = MachineSchedOpt;
213 if (Ctor == useDefaultMachineSched) {
214 // Get the default scheduler set by the target.
215 Ctor = MachineSchedRegistry::getDefault();
216 if (!Ctor) {
Andrew Trick17d35e52012-03-14 04:00:41 +0000217 Ctor = createConvergingSched;
Andrew Trickd04ec0c2012-03-09 00:52:20 +0000218 MachineSchedRegistry::setDefault(Ctor);
219 }
Andrew Trick96f678f2012-01-13 06:30:30 +0000220 }
221 // Instantiate the selected scheduler.
222 OwningPtr<ScheduleDAGInstrs> Scheduler(Ctor(this));
223
224 // Visit all machine basic blocks.
Andrew Trick006e1ab2012-04-24 17:56:43 +0000225 //
226 // TODO: Visit blocks in global postorder or postorder within the bottom-up
227 // loop tree. Then we can optionally compute global RegPressure.
Andrew Trick96f678f2012-01-13 06:30:30 +0000228 for (MachineFunction::iterator MBB = MF->begin(), MBBEnd = MF->end();
229 MBB != MBBEnd; ++MBB) {
230
Andrew Trick1fabd9f2012-03-09 08:02:51 +0000231 Scheduler->startBlock(MBB);
232
Andrew Tricke9ef4ed2012-01-14 02:17:09 +0000233 // Break the block into scheduling regions [I, RegionEnd), and schedule each
Sylvestre Ledruc8e41c52012-07-23 08:51:15 +0000234 // region as soon as it is discovered. RegionEnd points the scheduling
Andrew Trickfe4d6df2012-03-09 22:34:56 +0000235 // boundary at the bottom of the region. The DAG does not include RegionEnd,
236 // but the region does (i.e. the next RegionEnd is above the previous
237 // RegionBegin). If the current block has no terminator then RegionEnd ==
238 // MBB->end() for the bottom region.
239 //
240 // The Scheduler may insert instructions during either schedule() or
241 // exitRegion(), even for empty regions. So the local iterators 'I' and
242 // 'RegionEnd' are invalid across these calls.
Andrew Trick22764532012-11-06 07:10:34 +0000243 unsigned RemainingInstrs = MBB->size();
Andrew Trick7799eb42012-03-09 03:46:39 +0000244 for(MachineBasicBlock::iterator RegionEnd = MBB->end();
Andrew Trickfe4d6df2012-03-09 22:34:56 +0000245 RegionEnd != MBB->begin(); RegionEnd = Scheduler->begin()) {
Andrew Trick006e1ab2012-04-24 17:56:43 +0000246
Andrew Trick1fabd9f2012-03-09 08:02:51 +0000247 // Avoid decrementing RegionEnd for blocks with no terminator.
248 if (RegionEnd != MBB->end()
249 || TII->isSchedulingBoundary(llvm::prior(RegionEnd), MBB, *MF)) {
250 --RegionEnd;
251 // Count the boundary instruction.
Andrew Trick22764532012-11-06 07:10:34 +0000252 --RemainingInstrs;
Andrew Trick1fabd9f2012-03-09 08:02:51 +0000253 }
254
Andrew Tricke9ef4ed2012-01-14 02:17:09 +0000255 // The next region starts above the previous region. Look backward in the
256 // instruction stream until we find the nearest boundary.
257 MachineBasicBlock::iterator I = RegionEnd;
Andrew Trick22764532012-11-06 07:10:34 +0000258 for(;I != MBB->begin(); --I, --RemainingInstrs) {
Andrew Tricke9ef4ed2012-01-14 02:17:09 +0000259 if (TII->isSchedulingBoundary(llvm::prior(I), MBB, *MF))
260 break;
261 }
Andrew Trick47c14452012-03-07 05:21:52 +0000262 // Notify the scheduler of the region, even if we may skip scheduling
263 // it. Perhaps it still needs to be bundled.
Andrew Trick22764532012-11-06 07:10:34 +0000264 Scheduler->enterRegion(MBB, I, RegionEnd, RemainingInstrs);
Andrew Trick47c14452012-03-07 05:21:52 +0000265
266 // Skip empty scheduling regions (0 or 1 schedulable instructions).
267 if (I == RegionEnd || I == llvm::prior(RegionEnd)) {
Andrew Trick47c14452012-03-07 05:21:52 +0000268 // Close the current region. Bundle the terminator if needed.
Andrew Trickfe4d6df2012-03-09 22:34:56 +0000269 // This invalidates 'RegionEnd' and 'I'.
Andrew Trick47c14452012-03-07 05:21:52 +0000270 Scheduler->exitRegion();
Andrew Trickc6cf11b2012-01-17 06:55:07 +0000271 continue;
Andrew Trick3c58ba82012-01-14 02:17:18 +0000272 }
Andrew Trickbb0a2422012-05-24 22:11:14 +0000273 DEBUG(dbgs() << "********** MI Scheduling **********\n");
Craig Topper96601ca2012-08-22 06:07:19 +0000274 DEBUG(dbgs() << MF->getName()
Andrew Trickc8554232013-01-25 07:45:31 +0000275 << ":BB#" << MBB->getNumber() << " " << MBB->getName()
276 << "\n From: " << *I << " To: ";
Andrew Trick291411c2012-02-08 02:17:21 +0000277 if (RegionEnd != MBB->end()) dbgs() << *RegionEnd;
278 else dbgs() << "End";
Andrew Trick22764532012-11-06 07:10:34 +0000279 dbgs() << " Remaining: " << RemainingInstrs << "\n");
Andrew Trickc6cf11b2012-01-17 06:55:07 +0000280
Andrew Trickd24da972012-03-09 03:46:42 +0000281 // Schedule a region: possibly reorder instructions.
Andrew Trickfe4d6df2012-03-09 22:34:56 +0000282 // This invalidates 'RegionEnd' and 'I'.
Andrew Trick953be892012-03-07 23:00:49 +0000283 Scheduler->schedule();
Andrew Trickd24da972012-03-09 03:46:42 +0000284
285 // Close the current region.
Andrew Trick47c14452012-03-07 05:21:52 +0000286 Scheduler->exitRegion();
287
288 // Scheduling has invalidated the current iterator 'I'. Ask the
289 // scheduler for the top of it's scheduled region.
290 RegionEnd = Scheduler->begin();
Andrew Tricke9ef4ed2012-01-14 02:17:09 +0000291 }
Andrew Trick22764532012-11-06 07:10:34 +0000292 assert(RemainingInstrs == 0 && "Instruction count mismatch!");
Andrew Trick953be892012-03-07 23:00:49 +0000293 Scheduler->finishBlock();
Andrew Trick96f678f2012-01-13 06:30:30 +0000294 }
Andrew Trick830da402012-04-01 07:24:23 +0000295 Scheduler->finalizeSchedule();
Andrew Trickaad37f12012-03-21 04:12:12 +0000296 DEBUG(LIS->print(dbgs()));
Andrew Trickfff2d3a2013-03-08 05:40:34 +0000297 if (VerifyScheduling)
298 MF->verify(this, "After machine scheduling.");
Andrew Trick96f678f2012-01-13 06:30:30 +0000299 return true;
300}
301
Andrew Trick42b7a712012-01-17 06:55:03 +0000302void MachineScheduler::print(raw_ostream &O, const Module* m) const {
Andrew Trick96f678f2012-01-13 06:30:30 +0000303 // unimplemented
304}
305
Manman Renb720be62012-09-11 22:23:19 +0000306#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
Andrew Trick78e5efe2012-09-11 00:39:15 +0000307void ReadyQueue::dump() {
Andrew Trick11189f72013-04-05 00:31:29 +0000308 dbgs() << " " << Name << ": ";
Andrew Trick78e5efe2012-09-11 00:39:15 +0000309 for (unsigned i = 0, e = Queue.size(); i < e; ++i)
310 dbgs() << Queue[i]->NodeNum << " ";
311 dbgs() << "\n";
312}
313#endif
Andrew Trick17d35e52012-03-14 04:00:41 +0000314
315//===----------------------------------------------------------------------===//
316// ScheduleDAGMI - Base class for MachineInstr scheduling with LiveIntervals
317// preservation.
318//===----------------------------------------------------------------------===//
319
Andrew Trick178f7d02013-01-25 04:01:04 +0000320ScheduleDAGMI::~ScheduleDAGMI() {
321 delete DFSResult;
322 DeleteContainerPointers(Mutations);
323 delete SchedImpl;
324}
325
Andrew Tricke38afe12013-04-24 15:54:43 +0000326bool ScheduleDAGMI::canAddEdge(SUnit *SuccSU, SUnit *PredSU) {
327 return SuccSU == &ExitSU || !Topo.IsReachable(PredSU, SuccSU);
328}
329
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000330bool ScheduleDAGMI::addEdge(SUnit *SuccSU, const SDep &PredDep) {
Andrew Trick6996fd02012-11-12 19:52:20 +0000331 if (SuccSU != &ExitSU) {
332 // Do not use WillCreateCycle, it assumes SD scheduling.
333 // If Pred is reachable from Succ, then the edge creates a cycle.
334 if (Topo.IsReachable(PredDep.getSUnit(), SuccSU))
335 return false;
336 Topo.AddPred(SuccSU, PredDep.getSUnit());
337 }
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000338 SuccSU->addPred(PredDep, /*Required=*/!PredDep.isArtificial());
339 // Return true regardless of whether a new edge needed to be inserted.
340 return true;
341}
342
Andrew Trickc174eaf2012-03-08 01:41:12 +0000343/// ReleaseSucc - Decrement the NumPredsLeft count of a successor. When
344/// NumPredsLeft reaches zero, release the successor node.
Andrew Trick0a39d4e2012-05-24 22:11:09 +0000345///
346/// FIXME: Adjust SuccSU height based on MinLatency.
Andrew Trick17d35e52012-03-14 04:00:41 +0000347void ScheduleDAGMI::releaseSucc(SUnit *SU, SDep *SuccEdge) {
Andrew Trickc174eaf2012-03-08 01:41:12 +0000348 SUnit *SuccSU = SuccEdge->getSUnit();
349
Andrew Trickae692f22012-11-12 19:28:57 +0000350 if (SuccEdge->isWeak()) {
351 --SuccSU->WeakPredsLeft;
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000352 if (SuccEdge->isCluster())
353 NextClusterSucc = SuccSU;
Andrew Trickae692f22012-11-12 19:28:57 +0000354 return;
355 }
Andrew Trickc174eaf2012-03-08 01:41:12 +0000356#ifndef NDEBUG
357 if (SuccSU->NumPredsLeft == 0) {
358 dbgs() << "*** Scheduling failed! ***\n";
359 SuccSU->dump(this);
360 dbgs() << " has been released too many times!\n";
361 llvm_unreachable(0);
362 }
363#endif
364 --SuccSU->NumPredsLeft;
365 if (SuccSU->NumPredsLeft == 0 && SuccSU != &ExitSU)
Andrew Trick17d35e52012-03-14 04:00:41 +0000366 SchedImpl->releaseTopNode(SuccSU);
Andrew Trickc174eaf2012-03-08 01:41:12 +0000367}
368
369/// releaseSuccessors - Call releaseSucc on each of SU's successors.
Andrew Trick17d35e52012-03-14 04:00:41 +0000370void ScheduleDAGMI::releaseSuccessors(SUnit *SU) {
Andrew Trickc174eaf2012-03-08 01:41:12 +0000371 for (SUnit::succ_iterator I = SU->Succs.begin(), E = SU->Succs.end();
372 I != E; ++I) {
373 releaseSucc(SU, &*I);
374 }
375}
376
Andrew Trick17d35e52012-03-14 04:00:41 +0000377/// ReleasePred - Decrement the NumSuccsLeft count of a predecessor. When
378/// NumSuccsLeft reaches zero, release the predecessor node.
Andrew Trick0a39d4e2012-05-24 22:11:09 +0000379///
380/// FIXME: Adjust PredSU height based on MinLatency.
Andrew Trick17d35e52012-03-14 04:00:41 +0000381void ScheduleDAGMI::releasePred(SUnit *SU, SDep *PredEdge) {
382 SUnit *PredSU = PredEdge->getSUnit();
383
Andrew Trickae692f22012-11-12 19:28:57 +0000384 if (PredEdge->isWeak()) {
385 --PredSU->WeakSuccsLeft;
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000386 if (PredEdge->isCluster())
387 NextClusterPred = PredSU;
Andrew Trickae692f22012-11-12 19:28:57 +0000388 return;
389 }
Andrew Trick17d35e52012-03-14 04:00:41 +0000390#ifndef NDEBUG
391 if (PredSU->NumSuccsLeft == 0) {
392 dbgs() << "*** Scheduling failed! ***\n";
393 PredSU->dump(this);
394 dbgs() << " has been released too many times!\n";
395 llvm_unreachable(0);
396 }
397#endif
398 --PredSU->NumSuccsLeft;
399 if (PredSU->NumSuccsLeft == 0 && PredSU != &EntrySU)
400 SchedImpl->releaseBottomNode(PredSU);
401}
402
403/// releasePredecessors - Call releasePred on each of SU's predecessors.
404void ScheduleDAGMI::releasePredecessors(SUnit *SU) {
405 for (SUnit::pred_iterator I = SU->Preds.begin(), E = SU->Preds.end();
406 I != E; ++I) {
407 releasePred(SU, &*I);
408 }
409}
410
Andrew Trick4392f0f2013-04-13 06:07:40 +0000411/// This is normally called from the main scheduler loop but may also be invoked
412/// by the scheduling strategy to perform additional code motion.
Andrew Trick17d35e52012-03-14 04:00:41 +0000413void ScheduleDAGMI::moveInstruction(MachineInstr *MI,
414 MachineBasicBlock::iterator InsertPos) {
Andrew Trick811d92682012-05-17 18:35:03 +0000415 // Advance RegionBegin if the first instruction moves down.
Andrew Trick1ce062f2012-03-21 04:12:10 +0000416 if (&*RegionBegin == MI)
Andrew Trick811d92682012-05-17 18:35:03 +0000417 ++RegionBegin;
418
419 // Update the instruction stream.
Andrew Trick17d35e52012-03-14 04:00:41 +0000420 BB->splice(InsertPos, BB, MI);
Andrew Trick811d92682012-05-17 18:35:03 +0000421
422 // Update LiveIntervals
Andrew Trick27c28ce2012-10-16 00:22:51 +0000423 LIS->handleMove(MI, /*UpdateFlags=*/true);
Andrew Trick811d92682012-05-17 18:35:03 +0000424
425 // Recede RegionBegin if an instruction moves above the first.
Andrew Trick17d35e52012-03-14 04:00:41 +0000426 if (RegionBegin == InsertPos)
427 RegionBegin = MI;
428}
429
Andrew Trick0b0d8992012-03-21 04:12:07 +0000430bool ScheduleDAGMI::checkSchedLimit() {
431#ifndef NDEBUG
432 if (NumInstrsScheduled == MISchedCutoff && MISchedCutoff != ~0U) {
433 CurrentTop = CurrentBottom;
434 return false;
435 }
436 ++NumInstrsScheduled;
437#endif
438 return true;
439}
440
Andrew Trick006e1ab2012-04-24 17:56:43 +0000441/// enterRegion - Called back from MachineScheduler::runOnMachineFunction after
442/// crossing a scheduling boundary. [begin, end) includes all instructions in
443/// the region, including the boundary itself and single-instruction regions
444/// that don't get scheduled.
445void ScheduleDAGMI::enterRegion(MachineBasicBlock *bb,
446 MachineBasicBlock::iterator begin,
447 MachineBasicBlock::iterator end,
448 unsigned endcount)
449{
450 ScheduleDAGInstrs::enterRegion(bb, begin, end, endcount);
Andrew Trick7f8ab782012-05-10 21:06:10 +0000451
452 // For convenience remember the end of the liveness region.
453 LiveRegionEnd =
454 (RegionEnd == bb->end()) ? RegionEnd : llvm::next(RegionEnd);
455}
456
457// Setup the register pressure trackers for the top scheduled top and bottom
458// scheduled regions.
459void ScheduleDAGMI::initRegPressure() {
460 TopRPTracker.init(&MF, RegClassInfo, LIS, BB, RegionBegin);
461 BotRPTracker.init(&MF, RegClassInfo, LIS, BB, LiveRegionEnd);
462
463 // Close the RPTracker to finalize live ins.
464 RPTracker.closeRegion();
465
Andrew Trickbb0a2422012-05-24 22:11:14 +0000466 DEBUG(RPTracker.getPressure().dump(TRI));
467
Andrew Trick7f8ab782012-05-10 21:06:10 +0000468 // Initialize the live ins and live outs.
469 TopRPTracker.addLiveRegs(RPTracker.getPressure().LiveInRegs);
470 BotRPTracker.addLiveRegs(RPTracker.getPressure().LiveOutRegs);
471
472 // Close one end of the tracker so we can call
473 // getMaxUpward/DownwardPressureDelta before advancing across any
474 // instructions. This converts currently live regs into live ins/outs.
475 TopRPTracker.closeTop();
476 BotRPTracker.closeBottom();
477
478 // Account for liveness generated by the region boundary.
479 if (LiveRegionEnd != RegionEnd)
480 BotRPTracker.recede();
481
482 assert(BotRPTracker.getPos() == RegionEnd && "Can't find the region bottom");
Andrew Trick73a0d8e2012-05-17 18:35:10 +0000483
484 // Cache the list of excess pressure sets in this region. This will also track
485 // the max pressure in the scheduled code for these sets.
486 RegionCriticalPSets.clear();
Jakub Staszakb74564a2013-01-25 21:44:27 +0000487 const std::vector<unsigned> &RegionPressure =
488 RPTracker.getPressure().MaxSetPressure;
Andrew Trick73a0d8e2012-05-17 18:35:10 +0000489 for (unsigned i = 0, e = RegionPressure.size(); i < e; ++i) {
490 unsigned Limit = TRI->getRegPressureSetLimit(i);
Andrew Trick78e5efe2012-09-11 00:39:15 +0000491 DEBUG(dbgs() << TRI->getRegPressureSetName(i)
492 << "Limit " << Limit
493 << " Actual " << RegionPressure[i] << "\n");
Andrew Trick73a0d8e2012-05-17 18:35:10 +0000494 if (RegionPressure[i] > Limit)
495 RegionCriticalPSets.push_back(PressureElement(i, 0));
496 }
497 DEBUG(dbgs() << "Excess PSets: ";
498 for (unsigned i = 0, e = RegionCriticalPSets.size(); i != e; ++i)
499 dbgs() << TRI->getRegPressureSetName(
500 RegionCriticalPSets[i].PSetID) << " ";
501 dbgs() << "\n");
502}
503
504// FIXME: When the pressure tracker deals in pressure differences then we won't
505// iterate over all RegionCriticalPSets[i].
506void ScheduleDAGMI::
Jakub Staszakb717a502013-02-16 15:47:26 +0000507updateScheduledPressure(const std::vector<unsigned> &NewMaxPressure) {
Andrew Trick73a0d8e2012-05-17 18:35:10 +0000508 for (unsigned i = 0, e = RegionCriticalPSets.size(); i < e; ++i) {
509 unsigned ID = RegionCriticalPSets[i].PSetID;
510 int &MaxUnits = RegionCriticalPSets[i].UnitIncrease;
511 if ((int)NewMaxPressure[ID] > MaxUnits)
512 MaxUnits = NewMaxPressure[ID];
513 }
Andrew Trick811a3722013-04-24 15:54:36 +0000514 DEBUG(
515 for (unsigned i = 0, e = NewMaxPressure.size(); i < e; ++i) {
516 unsigned Limit = TRI->getRegPressureSetLimit(i);
517 if (NewMaxPressure[i] > Limit ) {
518 dbgs() << " " << TRI->getRegPressureSetName(i) << ": "
519 << NewMaxPressure[i] << " > " << Limit << "\n";
520 }
521 });
Andrew Trick006e1ab2012-04-24 17:56:43 +0000522}
523
Andrew Trick17d35e52012-03-14 04:00:41 +0000524/// schedule - Called back from MachineScheduler::runOnMachineFunction
Andrew Trick006e1ab2012-04-24 17:56:43 +0000525/// after setting up the current scheduling region. [RegionBegin, RegionEnd)
526/// only includes instructions that have DAG nodes, not scheduling boundaries.
Andrew Trick78e5efe2012-09-11 00:39:15 +0000527///
528/// This is a skeletal driver, with all the functionality pushed into helpers,
529/// so that it can be easilly extended by experimental schedulers. Generally,
530/// implementing MachineSchedStrategy should be sufficient to implement a new
531/// scheduling algorithm. However, if a scheduler further subclasses
532/// ScheduleDAGMI then it will want to override this virtual method in order to
533/// update any specialized state.
Andrew Trick17d35e52012-03-14 04:00:41 +0000534void ScheduleDAGMI::schedule() {
Andrew Trick78e5efe2012-09-11 00:39:15 +0000535 buildDAGWithRegPressure();
536
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000537 Topo.InitDAGTopologicalSorting();
538
Andrew Trickd039b382012-09-14 17:22:42 +0000539 postprocessDAG();
540
Andrew Trick4e1fb182013-01-25 06:33:57 +0000541 SmallVector<SUnit*, 8> TopRoots, BotRoots;
542 findRootsAndBiasEdges(TopRoots, BotRoots);
543
544 // Initialize the strategy before modifying the DAG.
545 // This may initialize a DFSResult to be used for queue priority.
546 SchedImpl->initialize(this);
547
Andrew Trick78e5efe2012-09-11 00:39:15 +0000548 DEBUG(for (unsigned su = 0, e = SUnits.size(); su != e; ++su)
549 SUnits[su].dumpAll(this));
Andrew Trick4e1fb182013-01-25 06:33:57 +0000550 if (ViewMISchedDAGs) viewGraph();
Andrew Trick78e5efe2012-09-11 00:39:15 +0000551
Andrew Trick4e1fb182013-01-25 06:33:57 +0000552 // Initialize ready queues now that the DAG and priority data are finalized.
553 initQueues(TopRoots, BotRoots);
Andrew Trick78e5efe2012-09-11 00:39:15 +0000554
555 bool IsTopNode = false;
556 while (SUnit *SU = SchedImpl->pickNode(IsTopNode)) {
Andrew Trick30c6ec22012-10-08 18:53:53 +0000557 assert(!SU->isScheduled && "Node already scheduled");
Andrew Trick78e5efe2012-09-11 00:39:15 +0000558 if (!checkSchedLimit())
559 break;
560
561 scheduleMI(SU, IsTopNode);
562
563 updateQueues(SU, IsTopNode);
564 }
565 assert(CurrentTop == CurrentBottom && "Nonempty unscheduled zone.");
566
567 placeDebugValues();
Andrew Trick3b87f622012-11-07 07:05:09 +0000568
569 DEBUG({
Andrew Trickb4221042012-11-28 03:42:47 +0000570 unsigned BBNum = begin()->getParent()->getNumber();
Andrew Trick3b87f622012-11-07 07:05:09 +0000571 dbgs() << "*** Final schedule for BB#" << BBNum << " ***\n";
572 dumpSchedule();
573 dbgs() << '\n';
574 });
Andrew Trick78e5efe2012-09-11 00:39:15 +0000575}
576
577/// Build the DAG and setup three register pressure trackers.
578void ScheduleDAGMI::buildDAGWithRegPressure() {
Andrew Trick7f8ab782012-05-10 21:06:10 +0000579 // Initialize the register pressure tracker used by buildSchedGraph.
580 RPTracker.init(&MF, RegClassInfo, LIS, BB, LiveRegionEnd);
Andrew Trick006e1ab2012-04-24 17:56:43 +0000581
Andrew Trick7f8ab782012-05-10 21:06:10 +0000582 // Account for liveness generate by the region boundary.
583 if (LiveRegionEnd != RegionEnd)
584 RPTracker.recede();
585
586 // Build the DAG, and compute current register pressure.
Andrew Trick006e1ab2012-04-24 17:56:43 +0000587 buildSchedGraph(AA, &RPTracker);
Andrew Trickc174eaf2012-03-08 01:41:12 +0000588
Andrew Trick7f8ab782012-05-10 21:06:10 +0000589 // Initialize top/bottom trackers after computing region pressure.
590 initRegPressure();
Andrew Trick78e5efe2012-09-11 00:39:15 +0000591}
Andrew Trick7f8ab782012-05-10 21:06:10 +0000592
Andrew Trickd039b382012-09-14 17:22:42 +0000593/// Apply each ScheduleDAGMutation step in order.
594void ScheduleDAGMI::postprocessDAG() {
595 for (unsigned i = 0, e = Mutations.size(); i < e; ++i) {
596 Mutations[i]->apply(this);
597 }
598}
599
Andrew Trick4e1fb182013-01-25 06:33:57 +0000600void ScheduleDAGMI::computeDFSResult() {
Andrew Trick178f7d02013-01-25 04:01:04 +0000601 if (!DFSResult)
602 DFSResult = new SchedDFSResult(/*BottomU*/true, MinSubtreeSize);
603 DFSResult->clear();
Andrew Trick178f7d02013-01-25 04:01:04 +0000604 ScheduledTrees.clear();
Andrew Trick4e1fb182013-01-25 06:33:57 +0000605 DFSResult->resize(SUnits.size());
606 DFSResult->compute(SUnits);
Andrew Trick178f7d02013-01-25 04:01:04 +0000607 ScheduledTrees.resize(DFSResult->getNumSubtrees());
608}
609
Andrew Trick4e1fb182013-01-25 06:33:57 +0000610void ScheduleDAGMI::findRootsAndBiasEdges(SmallVectorImpl<SUnit*> &TopRoots,
611 SmallVectorImpl<SUnit*> &BotRoots) {
Andrew Trick1e94e982012-10-15 18:02:27 +0000612 for (std::vector<SUnit>::iterator
613 I = SUnits.begin(), E = SUnits.end(); I != E; ++I) {
Andrew Trickae692f22012-11-12 19:28:57 +0000614 SUnit *SU = &(*I);
Andrew Trick4c6a2ba2013-01-29 06:26:35 +0000615 assert(!SU->isBoundaryNode() && "Boundary node should not be in SUnits");
Andrew Trickdb417062013-01-24 02:09:57 +0000616
617 // Order predecessors so DFSResult follows the critical path.
618 SU->biasCriticalPath();
619
Andrew Trick1e94e982012-10-15 18:02:27 +0000620 // A SUnit is ready to top schedule if it has no predecessors.
Andrew Trick4c6a2ba2013-01-29 06:26:35 +0000621 if (!I->NumPredsLeft)
Andrew Trick4e1fb182013-01-25 06:33:57 +0000622 TopRoots.push_back(SU);
Andrew Trick1e94e982012-10-15 18:02:27 +0000623 // A SUnit is ready to bottom schedule if it has no successors.
Andrew Trick4c6a2ba2013-01-29 06:26:35 +0000624 if (!I->NumSuccsLeft)
Andrew Trickae692f22012-11-12 19:28:57 +0000625 BotRoots.push_back(SU);
Andrew Trick1e94e982012-10-15 18:02:27 +0000626 }
Andrew Trick4c6a2ba2013-01-29 06:26:35 +0000627 ExitSU.biasCriticalPath();
Andrew Trick1e94e982012-10-15 18:02:27 +0000628}
629
Andrew Trick78e5efe2012-09-11 00:39:15 +0000630/// Identify DAG roots and setup scheduler queues.
Andrew Trick4e1fb182013-01-25 06:33:57 +0000631void ScheduleDAGMI::initQueues(ArrayRef<SUnit*> TopRoots,
632 ArrayRef<SUnit*> BotRoots) {
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000633 NextClusterSucc = NULL;
634 NextClusterPred = NULL;
Andrew Trick1e94e982012-10-15 18:02:27 +0000635
Andrew Trickae692f22012-11-12 19:28:57 +0000636 // Release all DAG roots for scheduling, not including EntrySU/ExitSU.
Andrew Trick4e1fb182013-01-25 06:33:57 +0000637 //
638 // Nodes with unreleased weak edges can still be roots.
639 // Release top roots in forward order.
640 for (SmallVectorImpl<SUnit*>::const_iterator
641 I = TopRoots.begin(), E = TopRoots.end(); I != E; ++I) {
642 SchedImpl->releaseTopNode(*I);
643 }
644 // Release bottom roots in reverse order so the higher priority nodes appear
645 // first. This is more natural and slightly more efficient.
646 for (SmallVectorImpl<SUnit*>::const_reverse_iterator
647 I = BotRoots.rbegin(), E = BotRoots.rend(); I != E; ++I) {
648 SchedImpl->releaseBottomNode(*I);
649 }
Andrew Trickae692f22012-11-12 19:28:57 +0000650
Andrew Trickc174eaf2012-03-08 01:41:12 +0000651 releaseSuccessors(&EntrySU);
Andrew Trick17d35e52012-03-14 04:00:41 +0000652 releasePredecessors(&ExitSU);
Andrew Trickc174eaf2012-03-08 01:41:12 +0000653
Andrew Trick1e94e982012-10-15 18:02:27 +0000654 SchedImpl->registerRoots();
655
Andrew Trick657b75b2012-12-01 01:22:49 +0000656 // Advance past initial DebugValues.
657 assert(TopRPTracker.getPos() == RegionBegin && "bad initial Top tracker");
Andrew Trickeb45ebb2012-04-24 18:04:34 +0000658 CurrentTop = nextIfDebug(RegionBegin, RegionEnd);
Andrew Trick657b75b2012-12-01 01:22:49 +0000659 TopRPTracker.setPos(CurrentTop);
660
Andrew Trick17d35e52012-03-14 04:00:41 +0000661 CurrentBottom = RegionEnd;
Andrew Trick78e5efe2012-09-11 00:39:15 +0000662}
Andrew Trickc174eaf2012-03-08 01:41:12 +0000663
Andrew Trick78e5efe2012-09-11 00:39:15 +0000664/// Move an instruction and update register pressure.
665void ScheduleDAGMI::scheduleMI(SUnit *SU, bool IsTopNode) {
666 // Move the instruction to its new location in the instruction stream.
667 MachineInstr *MI = SU->getInstr();
Andrew Trickc174eaf2012-03-08 01:41:12 +0000668
Andrew Trick78e5efe2012-09-11 00:39:15 +0000669 if (IsTopNode) {
670 assert(SU->isTopReady() && "node still has unscheduled dependencies");
671 if (&*CurrentTop == MI)
672 CurrentTop = nextIfDebug(++CurrentTop, CurrentBottom);
Andrew Trick17d35e52012-03-14 04:00:41 +0000673 else {
Andrew Trick78e5efe2012-09-11 00:39:15 +0000674 moveInstruction(MI, CurrentTop);
675 TopRPTracker.setPos(MI);
Andrew Trick17d35e52012-03-14 04:00:41 +0000676 }
Andrew Trick000b2502012-04-24 18:04:37 +0000677
Andrew Trick78e5efe2012-09-11 00:39:15 +0000678 // Update top scheduled pressure.
679 TopRPTracker.advance();
680 assert(TopRPTracker.getPos() == CurrentTop && "out of sync");
681 updateScheduledPressure(TopRPTracker.getPressure().MaxSetPressure);
682 }
683 else {
684 assert(SU->isBottomReady() && "node still has unscheduled dependencies");
685 MachineBasicBlock::iterator priorII =
686 priorNonDebug(CurrentBottom, CurrentTop);
687 if (&*priorII == MI)
688 CurrentBottom = priorII;
689 else {
690 if (&*CurrentTop == MI) {
691 CurrentTop = nextIfDebug(++CurrentTop, priorII);
692 TopRPTracker.setPos(CurrentTop);
693 }
694 moveInstruction(MI, CurrentBottom);
695 CurrentBottom = MI;
696 }
697 // Update bottom scheduled pressure.
698 BotRPTracker.recede();
699 assert(BotRPTracker.getPos() == CurrentBottom && "out of sync");
700 updateScheduledPressure(BotRPTracker.getPressure().MaxSetPressure);
701 }
702}
703
704/// Update scheduler queues after scheduling an instruction.
705void ScheduleDAGMI::updateQueues(SUnit *SU, bool IsTopNode) {
706 // Release dependent instructions for scheduling.
707 if (IsTopNode)
708 releaseSuccessors(SU);
709 else
710 releasePredecessors(SU);
711
712 SU->isScheduled = true;
713
Andrew Trick178f7d02013-01-25 04:01:04 +0000714 if (DFSResult) {
715 unsigned SubtreeID = DFSResult->getSubtreeID(SU);
716 if (!ScheduledTrees.test(SubtreeID)) {
717 ScheduledTrees.set(SubtreeID);
718 DFSResult->scheduleTree(SubtreeID);
719 SchedImpl->scheduleTree(SubtreeID);
720 }
721 }
722
Andrew Trick78e5efe2012-09-11 00:39:15 +0000723 // Notify the scheduling strategy after updating the DAG.
724 SchedImpl->schedNode(SU, IsTopNode);
Andrew Trick000b2502012-04-24 18:04:37 +0000725}
726
727/// Reinsert any remaining debug_values, just like the PostRA scheduler.
728void ScheduleDAGMI::placeDebugValues() {
729 // If first instruction was a DBG_VALUE then put it back.
730 if (FirstDbgValue) {
731 BB->splice(RegionBegin, BB, FirstDbgValue);
732 RegionBegin = FirstDbgValue;
733 }
734
735 for (std::vector<std::pair<MachineInstr *, MachineInstr *> >::iterator
736 DI = DbgValues.end(), DE = DbgValues.begin(); DI != DE; --DI) {
737 std::pair<MachineInstr *, MachineInstr *> P = *prior(DI);
738 MachineInstr *DbgValue = P.first;
739 MachineBasicBlock::iterator OrigPrevMI = P.second;
Andrew Trick67bdd422012-12-01 01:22:38 +0000740 if (&*RegionBegin == DbgValue)
741 ++RegionBegin;
Andrew Trick000b2502012-04-24 18:04:37 +0000742 BB->splice(++OrigPrevMI, BB, DbgValue);
743 if (OrigPrevMI == llvm::prior(RegionEnd))
744 RegionEnd = DbgValue;
745 }
746 DbgValues.clear();
747 FirstDbgValue = NULL;
Andrew Trickc174eaf2012-03-08 01:41:12 +0000748}
749
Andrew Trick3b87f622012-11-07 07:05:09 +0000750#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
751void ScheduleDAGMI::dumpSchedule() const {
752 for (MachineBasicBlock::iterator MI = begin(), ME = end(); MI != ME; ++MI) {
753 if (SUnit *SU = getSUnit(&(*MI)))
754 SU->dump(this);
755 else
756 dbgs() << "Missing SUnit\n";
757 }
758}
759#endif
760
Andrew Trick6996fd02012-11-12 19:52:20 +0000761//===----------------------------------------------------------------------===//
762// LoadClusterMutation - DAG post-processing to cluster loads.
763//===----------------------------------------------------------------------===//
764
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000765namespace {
766/// \brief Post-process the DAG to create cluster edges between neighboring
767/// loads.
768class LoadClusterMutation : public ScheduleDAGMutation {
769 struct LoadInfo {
770 SUnit *SU;
771 unsigned BaseReg;
772 unsigned Offset;
773 LoadInfo(SUnit *su, unsigned reg, unsigned ofs)
774 : SU(su), BaseReg(reg), Offset(ofs) {}
775 };
776 static bool LoadInfoLess(const LoadClusterMutation::LoadInfo &LHS,
777 const LoadClusterMutation::LoadInfo &RHS);
778
779 const TargetInstrInfo *TII;
780 const TargetRegisterInfo *TRI;
781public:
782 LoadClusterMutation(const TargetInstrInfo *tii,
783 const TargetRegisterInfo *tri)
784 : TII(tii), TRI(tri) {}
785
786 virtual void apply(ScheduleDAGMI *DAG);
787protected:
788 void clusterNeighboringLoads(ArrayRef<SUnit*> Loads, ScheduleDAGMI *DAG);
789};
790} // anonymous
791
792bool LoadClusterMutation::LoadInfoLess(
793 const LoadClusterMutation::LoadInfo &LHS,
794 const LoadClusterMutation::LoadInfo &RHS) {
795 if (LHS.BaseReg != RHS.BaseReg)
796 return LHS.BaseReg < RHS.BaseReg;
797 return LHS.Offset < RHS.Offset;
798}
799
800void LoadClusterMutation::clusterNeighboringLoads(ArrayRef<SUnit*> Loads,
801 ScheduleDAGMI *DAG) {
802 SmallVector<LoadClusterMutation::LoadInfo,32> LoadRecords;
803 for (unsigned Idx = 0, End = Loads.size(); Idx != End; ++Idx) {
804 SUnit *SU = Loads[Idx];
805 unsigned BaseReg;
806 unsigned Offset;
807 if (TII->getLdStBaseRegImmOfs(SU->getInstr(), BaseReg, Offset, TRI))
808 LoadRecords.push_back(LoadInfo(SU, BaseReg, Offset));
809 }
810 if (LoadRecords.size() < 2)
811 return;
812 std::sort(LoadRecords.begin(), LoadRecords.end(), LoadInfoLess);
813 unsigned ClusterLength = 1;
814 for (unsigned Idx = 0, End = LoadRecords.size(); Idx < (End - 1); ++Idx) {
815 if (LoadRecords[Idx].BaseReg != LoadRecords[Idx+1].BaseReg) {
816 ClusterLength = 1;
817 continue;
818 }
819
820 SUnit *SUa = LoadRecords[Idx].SU;
821 SUnit *SUb = LoadRecords[Idx+1].SU;
Andrew Tricka7d2d562012-11-12 21:28:10 +0000822 if (TII->shouldClusterLoads(SUa->getInstr(), SUb->getInstr(), ClusterLength)
Andrew Trick9b5caaa2012-11-12 19:40:10 +0000823 && DAG->addEdge(SUb, SDep(SUa, SDep::Cluster))) {
824
825 DEBUG(dbgs() << "Cluster loads SU(" << SUa->NodeNum << ") - SU("
826 << SUb->NodeNum << ")\n");
827 // Copy successor edges from SUa to SUb. Interleaving computation
828 // dependent on SUa can prevent load combining due to register reuse.
829 // Predecessor edges do not need to be copied from SUb to SUa since nearby
830 // loads should have effectively the same inputs.
831 for (SUnit::const_succ_iterator
832 SI = SUa->Succs.begin(), SE = SUa->Succs.end(); SI != SE; ++SI) {
833 if (SI->getSUnit() == SUb)
834 continue;
835 DEBUG(dbgs() << " Copy Succ SU(" << SI->getSUnit()->NodeNum << ")\n");
836 DAG->addEdge(SI->getSUnit(), SDep(SUb, SDep::Artificial));
837 }
838 ++ClusterLength;
839 }
840 else
841 ClusterLength = 1;
842 }
843}
844
845/// \brief Callback from DAG postProcessing to create cluster edges for loads.
846void LoadClusterMutation::apply(ScheduleDAGMI *DAG) {
847 // Map DAG NodeNum to store chain ID.
848 DenseMap<unsigned, unsigned> StoreChainIDs;
849 // Map each store chain to a set of dependent loads.
850 SmallVector<SmallVector<SUnit*,4>, 32> StoreChainDependents;
851 for (unsigned Idx = 0, End = DAG->SUnits.size(); Idx != End; ++Idx) {
852 SUnit *SU = &DAG->SUnits[Idx];
853 if (!SU->getInstr()->mayLoad())
854 continue;
855 unsigned ChainPredID = DAG->SUnits.size();
856 for (SUnit::const_pred_iterator
857 PI = SU->Preds.begin(), PE = SU->Preds.end(); PI != PE; ++PI) {
858 if (PI->isCtrl()) {
859 ChainPredID = PI->getSUnit()->NodeNum;
860 break;
861 }
862 }
863 // Check if this chain-like pred has been seen
864 // before. ChainPredID==MaxNodeID for loads at the top of the schedule.
865 unsigned NumChains = StoreChainDependents.size();
866 std::pair<DenseMap<unsigned, unsigned>::iterator, bool> Result =
867 StoreChainIDs.insert(std::make_pair(ChainPredID, NumChains));
868 if (Result.second)
869 StoreChainDependents.resize(NumChains + 1);
870 StoreChainDependents[Result.first->second].push_back(SU);
871 }
872 // Iterate over the store chains.
873 for (unsigned Idx = 0, End = StoreChainDependents.size(); Idx != End; ++Idx)
874 clusterNeighboringLoads(StoreChainDependents[Idx], DAG);
875}
876
Andrew Trickc174eaf2012-03-08 01:41:12 +0000877//===----------------------------------------------------------------------===//
Andrew Trick6996fd02012-11-12 19:52:20 +0000878// MacroFusion - DAG post-processing to encourage fusion of macro ops.
879//===----------------------------------------------------------------------===//
880
881namespace {
882/// \brief Post-process the DAG to create cluster edges between instructions
883/// that may be fused by the processor into a single operation.
884class MacroFusion : public ScheduleDAGMutation {
885 const TargetInstrInfo *TII;
886public:
887 MacroFusion(const TargetInstrInfo *tii): TII(tii) {}
888
889 virtual void apply(ScheduleDAGMI *DAG);
890};
891} // anonymous
892
893/// \brief Callback from DAG postProcessing to create cluster edges to encourage
894/// fused operations.
895void MacroFusion::apply(ScheduleDAGMI *DAG) {
896 // For now, assume targets can only fuse with the branch.
897 MachineInstr *Branch = DAG->ExitSU.getInstr();
898 if (!Branch)
899 return;
900
901 for (unsigned Idx = DAG->SUnits.size(); Idx > 0;) {
902 SUnit *SU = &DAG->SUnits[--Idx];
903 if (!TII->shouldScheduleAdjacent(SU->getInstr(), Branch))
904 continue;
905
906 // Create a single weak edge from SU to ExitSU. The only effect is to cause
907 // bottom-up scheduling to heavily prioritize the clustered SU. There is no
908 // need to copy predecessor edges from ExitSU to SU, since top-down
909 // scheduling cannot prioritize ExitSU anyway. To defer top-down scheduling
910 // of SU, we could create an artificial edge from the deepest root, but it
911 // hasn't been needed yet.
912 bool Success = DAG->addEdge(&DAG->ExitSU, SDep(SU, SDep::Cluster));
913 (void)Success;
914 assert(Success && "No DAG nodes should be reachable from ExitSU");
915
916 DEBUG(dbgs() << "Macro Fuse SU(" << SU->NodeNum << ")\n");
917 break;
918 }
919}
920
921//===----------------------------------------------------------------------===//
Andrew Tricke38afe12013-04-24 15:54:43 +0000922// CopyConstrain - DAG post-processing to encourage copy elimination.
923//===----------------------------------------------------------------------===//
924
925namespace {
926/// \brief Post-process the DAG to create weak edges from all uses of a copy to
927/// the one use that defines the copy's source vreg, most likely an induction
928/// variable increment.
929class CopyConstrain : public ScheduleDAGMutation {
930 // Transient state.
931 SlotIndex RegionBeginIdx;
Andrew Tricka264a202013-04-24 23:19:56 +0000932 // RegionEndIdx is the slot index of the last non-debug instruction in the
933 // scheduling region. So we may have RegionBeginIdx == RegionEndIdx.
Andrew Tricke38afe12013-04-24 15:54:43 +0000934 SlotIndex RegionEndIdx;
935public:
936 CopyConstrain(const TargetInstrInfo *, const TargetRegisterInfo *) {}
937
938 virtual void apply(ScheduleDAGMI *DAG);
939
940protected:
941 void constrainLocalCopy(SUnit *CopySU, ScheduleDAGMI *DAG);
942};
943} // anonymous
944
945/// constrainLocalCopy handles two possibilities:
946/// 1) Local src:
947/// I0: = dst
948/// I1: src = ...
949/// I2: = dst
950/// I3: dst = src (copy)
951/// (create pred->succ edges I0->I1, I2->I1)
952///
953/// 2) Local copy:
954/// I0: dst = src (copy)
955/// I1: = dst
956/// I2: src = ...
957/// I3: = dst
958/// (create pred->succ edges I1->I2, I3->I2)
959///
960/// Although the MachineScheduler is currently constrained to single blocks,
961/// this algorithm should handle extended blocks. An EBB is a set of
962/// contiguously numbered blocks such that the previous block in the EBB is
963/// always the single predecessor.
964void CopyConstrain::constrainLocalCopy(SUnit *CopySU, ScheduleDAGMI *DAG) {
965 LiveIntervals *LIS = DAG->getLIS();
966 MachineInstr *Copy = CopySU->getInstr();
967
968 // Check for pure vreg copies.
969 unsigned SrcReg = Copy->getOperand(1).getReg();
970 if (!TargetRegisterInfo::isVirtualRegister(SrcReg))
971 return;
972
973 unsigned DstReg = Copy->getOperand(0).getReg();
974 if (!TargetRegisterInfo::isVirtualRegister(DstReg))
975 return;
976
977 // Check if either the dest or source is local. If it's live across a back
978 // edge, it's not local. Note that if both vregs are live across the back
979 // edge, we cannot successfully contrain the copy without cyclic scheduling.
980 unsigned LocalReg = DstReg;
981 unsigned GlobalReg = SrcReg;
982 LiveInterval *LocalLI = &LIS->getInterval(LocalReg);
983 if (!LocalLI->isLocal(RegionBeginIdx, RegionEndIdx)) {
984 LocalReg = SrcReg;
985 GlobalReg = DstReg;
986 LocalLI = &LIS->getInterval(LocalReg);
987 if (!LocalLI->isLocal(RegionBeginIdx, RegionEndIdx))
988 return;
989 }
990 LiveInterval *GlobalLI = &LIS->getInterval(GlobalReg);
991
992 // Find the global segment after the start of the local LI.
993 LiveInterval::iterator GlobalSegment = GlobalLI->find(LocalLI->beginIndex());
994 // If GlobalLI does not overlap LocalLI->start, then a copy directly feeds a
995 // local live range. We could create edges from other global uses to the local
996 // start, but the coalescer should have already eliminated these cases, so
997 // don't bother dealing with it.
998 if (GlobalSegment == GlobalLI->end())
999 return;
1000
1001 // If GlobalSegment is killed at the LocalLI->start, the call to find()
1002 // returned the next global segment. But if GlobalSegment overlaps with
1003 // LocalLI->start, then advance to the next segement. If a hole in GlobalLI
1004 // exists in LocalLI's vicinity, GlobalSegment will be the end of the hole.
1005 if (GlobalSegment->contains(LocalLI->beginIndex()))
1006 ++GlobalSegment;
1007
1008 if (GlobalSegment == GlobalLI->end())
1009 return;
1010
1011 // Check if GlobalLI contains a hole in the vicinity of LocalLI.
1012 if (GlobalSegment != GlobalLI->begin()) {
1013 // Two address defs have no hole.
1014 if (SlotIndex::isSameInstr(llvm::prior(GlobalSegment)->end,
1015 GlobalSegment->start)) {
1016 return;
1017 }
1018 // If GlobalLI has a prior segment, it must be live into the EBB. Otherwise
1019 // it would be a disconnected component in the live range.
1020 assert(llvm::prior(GlobalSegment)->start < LocalLI->beginIndex() &&
1021 "Disconnected LRG within the scheduling region.");
1022 }
1023 MachineInstr *GlobalDef = LIS->getInstructionFromIndex(GlobalSegment->start);
1024 if (!GlobalDef)
1025 return;
1026
1027 SUnit *GlobalSU = DAG->getSUnit(GlobalDef);
1028 if (!GlobalSU)
1029 return;
1030
1031 // GlobalDef is the bottom of the GlobalLI hole. Open the hole by
1032 // constraining the uses of the last local def to precede GlobalDef.
1033 SmallVector<SUnit*,8> LocalUses;
1034 const VNInfo *LastLocalVN = LocalLI->getVNInfoBefore(LocalLI->endIndex());
1035 MachineInstr *LastLocalDef = LIS->getInstructionFromIndex(LastLocalVN->def);
1036 SUnit *LastLocalSU = DAG->getSUnit(LastLocalDef);
1037 for (SUnit::const_succ_iterator
1038 I = LastLocalSU->Succs.begin(), E = LastLocalSU->Succs.end();
1039 I != E; ++I) {
1040 if (I->getKind() != SDep::Data || I->getReg() != LocalReg)
1041 continue;
1042 if (I->getSUnit() == GlobalSU)
1043 continue;
1044 if (!DAG->canAddEdge(GlobalSU, I->getSUnit()))
1045 return;
1046 LocalUses.push_back(I->getSUnit());
1047 }
1048 // Open the top of the GlobalLI hole by constraining any earlier global uses
1049 // to precede the start of LocalLI.
1050 SmallVector<SUnit*,8> GlobalUses;
1051 MachineInstr *FirstLocalDef =
1052 LIS->getInstructionFromIndex(LocalLI->beginIndex());
1053 SUnit *FirstLocalSU = DAG->getSUnit(FirstLocalDef);
1054 for (SUnit::const_pred_iterator
1055 I = GlobalSU->Preds.begin(), E = GlobalSU->Preds.end(); I != E; ++I) {
1056 if (I->getKind() != SDep::Anti || I->getReg() != GlobalReg)
1057 continue;
1058 if (I->getSUnit() == FirstLocalSU)
1059 continue;
1060 if (!DAG->canAddEdge(FirstLocalSU, I->getSUnit()))
1061 return;
1062 GlobalUses.push_back(I->getSUnit());
1063 }
1064 DEBUG(dbgs() << "Constraining copy SU(" << CopySU->NodeNum << ")\n");
1065 // Add the weak edges.
1066 for (SmallVectorImpl<SUnit*>::const_iterator
1067 I = LocalUses.begin(), E = LocalUses.end(); I != E; ++I) {
1068 DEBUG(dbgs() << " Local use SU(" << (*I)->NodeNum << ") -> SU("
1069 << GlobalSU->NodeNum << ")\n");
1070 DAG->addEdge(GlobalSU, SDep(*I, SDep::Weak));
1071 }
1072 for (SmallVectorImpl<SUnit*>::const_iterator
1073 I = GlobalUses.begin(), E = GlobalUses.end(); I != E; ++I) {
1074 DEBUG(dbgs() << " Global use SU(" << (*I)->NodeNum << ") -> SU("
1075 << FirstLocalSU->NodeNum << ")\n");
1076 DAG->addEdge(FirstLocalSU, SDep(*I, SDep::Weak));
1077 }
1078}
1079
1080/// \brief Callback from DAG postProcessing to create weak edges to encourage
1081/// copy elimination.
1082void CopyConstrain::apply(ScheduleDAGMI *DAG) {
Andrew Tricka264a202013-04-24 23:19:56 +00001083 MachineBasicBlock::iterator FirstPos = nextIfDebug(DAG->begin(), DAG->end());
1084 if (FirstPos == DAG->end())
1085 return;
1086 RegionBeginIdx = DAG->getLIS()->getInstructionIndex(&*FirstPos);
Andrew Tricke38afe12013-04-24 15:54:43 +00001087 RegionEndIdx = DAG->getLIS()->getInstructionIndex(
1088 &*priorNonDebug(DAG->end(), DAG->begin()));
1089
1090 for (unsigned Idx = 0, End = DAG->SUnits.size(); Idx != End; ++Idx) {
1091 SUnit *SU = &DAG->SUnits[Idx];
1092 if (!SU->getInstr()->isCopy())
1093 continue;
1094
1095 constrainLocalCopy(SU, DAG);
1096 }
1097}
1098
1099//===----------------------------------------------------------------------===//
Andrew Trickfa989e72013-06-15 05:39:19 +00001100// ConvergingScheduler - Implementation of the generic MachineSchedStrategy.
Andrew Trick42b7a712012-01-17 06:55:03 +00001101//===----------------------------------------------------------------------===//
1102
1103namespace {
Andrew Trick17d35e52012-03-14 04:00:41 +00001104/// ConvergingScheduler shrinks the unscheduled zone using heuristics to balance
1105/// the schedule.
1106class ConvergingScheduler : public MachineSchedStrategy {
Andrew Trick3b87f622012-11-07 07:05:09 +00001107public:
1108 /// Represent the type of SchedCandidate found within a single queue.
1109 /// pickNodeBidirectional depends on these listed by decreasing priority.
1110 enum CandReason {
Andrew Tricke38afe12013-04-24 15:54:43 +00001111 NoCand, PhysRegCopy, SingleExcess, SingleCritical, Cluster, Weak,
Andrew Trick9b5caaa2012-11-12 19:40:10 +00001112 ResourceReduce, ResourceDemand, BotHeightReduce, BotPathReduce,
1113 TopDepthReduce, TopPathReduce, SingleMax, MultiPressure, NextDefUse,
1114 NodeOrder};
Andrew Trick3b87f622012-11-07 07:05:09 +00001115
1116#ifndef NDEBUG
1117 static const char *getReasonStr(ConvergingScheduler::CandReason Reason);
1118#endif
1119
1120 /// Policy for scheduling the next instruction in the candidate's zone.
1121 struct CandPolicy {
1122 bool ReduceLatency;
1123 unsigned ReduceResIdx;
1124 unsigned DemandResIdx;
1125
1126 CandPolicy(): ReduceLatency(false), ReduceResIdx(0), DemandResIdx(0) {}
1127 };
1128
1129 /// Status of an instruction's critical resource consumption.
1130 struct SchedResourceDelta {
1131 // Count critical resources in the scheduled region required by SU.
1132 unsigned CritResources;
1133
1134 // Count critical resources from another region consumed by SU.
1135 unsigned DemandedResources;
1136
1137 SchedResourceDelta(): CritResources(0), DemandedResources(0) {}
1138
1139 bool operator==(const SchedResourceDelta &RHS) const {
1140 return CritResources == RHS.CritResources
1141 && DemandedResources == RHS.DemandedResources;
1142 }
1143 bool operator!=(const SchedResourceDelta &RHS) const {
1144 return !operator==(RHS);
1145 }
1146 };
Andrew Trick7196a8f2012-05-10 21:06:16 +00001147
1148 /// Store the state used by ConvergingScheduler heuristics, required for the
1149 /// lifetime of one invocation of pickNode().
1150 struct SchedCandidate {
Andrew Trick3b87f622012-11-07 07:05:09 +00001151 CandPolicy Policy;
1152
Andrew Trick7196a8f2012-05-10 21:06:16 +00001153 // The best SUnit candidate.
1154 SUnit *SU;
1155
Andrew Trick3b87f622012-11-07 07:05:09 +00001156 // The reason for this candidate.
1157 CandReason Reason;
1158
Andrew Trick7196a8f2012-05-10 21:06:16 +00001159 // Register pressure values for the best candidate.
1160 RegPressureDelta RPDelta;
1161
Andrew Trick3b87f622012-11-07 07:05:09 +00001162 // Critical resource consumption of the best candidate.
1163 SchedResourceDelta ResDelta;
1164
1165 SchedCandidate(const CandPolicy &policy)
1166 : Policy(policy), SU(NULL), Reason(NoCand) {}
1167
1168 bool isValid() const { return SU; }
1169
1170 // Copy the status of another candidate without changing policy.
1171 void setBest(SchedCandidate &Best) {
1172 assert(Best.Reason != NoCand && "uninitialized Sched candidate");
1173 SU = Best.SU;
1174 Reason = Best.Reason;
1175 RPDelta = Best.RPDelta;
1176 ResDelta = Best.ResDelta;
1177 }
1178
1179 void initResourceDelta(const ScheduleDAGMI *DAG,
1180 const TargetSchedModel *SchedModel);
Andrew Trick7196a8f2012-05-10 21:06:16 +00001181 };
Andrew Trick3b87f622012-11-07 07:05:09 +00001182
1183 /// Summarize the unscheduled region.
1184 struct SchedRemainder {
1185 // Critical path through the DAG in expected latency.
1186 unsigned CriticalPath;
1187
Andrew Trickfa989e72013-06-15 05:39:19 +00001188 // Scaled count of micro-ops left to schedule.
1189 unsigned RemIssueCount;
1190
Andrew Trick3b87f622012-11-07 07:05:09 +00001191 // Unscheduled resources
1192 SmallVector<unsigned, 16> RemainingCounts;
Andrew Trick3b87f622012-11-07 07:05:09 +00001193
Andrew Trick3b87f622012-11-07 07:05:09 +00001194 void reset() {
1195 CriticalPath = 0;
Andrew Trickfa989e72013-06-15 05:39:19 +00001196 RemIssueCount = 0;
Andrew Trick3b87f622012-11-07 07:05:09 +00001197 RemainingCounts.clear();
Andrew Trick3b87f622012-11-07 07:05:09 +00001198 }
1199
1200 SchedRemainder() { reset(); }
1201
1202 void init(ScheduleDAGMI *DAG, const TargetSchedModel *SchedModel);
1203 };
Andrew Trick7196a8f2012-05-10 21:06:16 +00001204
Andrew Trickf3234242012-05-24 22:11:12 +00001205 /// Each Scheduling boundary is associated with ready queues. It tracks the
Andrew Trick3b87f622012-11-07 07:05:09 +00001206 /// current cycle in the direction of movement, and maintains the state
Andrew Trickf3234242012-05-24 22:11:12 +00001207 /// of "hazards" and other interlocks at the current cycle.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001208 struct SchedBoundary {
Andrew Trick7f8c74c2012-06-29 03:23:22 +00001209 ScheduleDAGMI *DAG;
Andrew Trick412cd2f2012-10-10 05:43:09 +00001210 const TargetSchedModel *SchedModel;
Andrew Trick3b87f622012-11-07 07:05:09 +00001211 SchedRemainder *Rem;
Andrew Trick7f8c74c2012-06-29 03:23:22 +00001212
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001213 ReadyQueue Available;
1214 ReadyQueue Pending;
1215 bool CheckPending;
1216
Andrew Trick3b87f622012-11-07 07:05:09 +00001217 // For heuristics, keep a list of the nodes that immediately depend on the
1218 // most recently scheduled node.
1219 SmallPtrSet<const SUnit*, 8> NextSUs;
1220
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001221 ScheduleHazardRecognizer *HazardRec;
1222
Andrew Trickfa989e72013-06-15 05:39:19 +00001223 /// Number of cycles it takes to issue the instructions scheduled in this
1224 /// zone. It is defined as: scheduled-micro-ops / issue-width + stalls.
1225 /// See getStalls().
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001226 unsigned CurrCycle;
Andrew Trickfa989e72013-06-15 05:39:19 +00001227
1228 /// Micro-ops issued in the current cycle
Andrew Trickbacb2492013-06-15 04:49:49 +00001229 unsigned CurrMOps;
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001230
1231 /// MinReadyCycle - Cycle of the soonest available instruction.
1232 unsigned MinReadyCycle;
1233
Andrew Trick3b87f622012-11-07 07:05:09 +00001234 // The expected latency of the critical path in this scheduled zone.
1235 unsigned ExpectedLatency;
1236
Andrew Trick2c465a32013-06-15 04:49:44 +00001237 // The latency of dependence chains leading into this zone.
Andrew Trickfa989e72013-06-15 05:39:19 +00001238 // For each node scheduled top-down: DLat = max DLat, N.Depth.
Andrew Trick2c465a32013-06-15 04:49:44 +00001239 // For each cycle scheduled: DLat -= 1.
1240 unsigned DependentLatency;
1241
Andrew Trickfa989e72013-06-15 05:39:19 +00001242 /// Count the scheduled (issued) micro-ops that can be retired by
1243 /// time=CurrCycle assuming the first scheduled instr is retired at time=0.
1244 unsigned RetiredMOps;
1245
1246 // Count scheduled resources that have been executed. Resources are
1247 // considered executed if they become ready in the time that it takes to
1248 // saturate any resource including the one in question. Counts are scaled
1249 // for direct comparison with other resources. Counts ca be compared with
1250 // MOps * getMicroOpFactor and Latency * getLatencyFactor.
1251 SmallVector<unsigned, 16> ExecutedResCounts;
1252
1253 /// Cache the max count for a single resource.
1254 unsigned MaxExecutedResCount;
Andrew Trick3b87f622012-11-07 07:05:09 +00001255
1256 // Cache the critical resources ID in this scheduled zone.
Andrew Trickfa989e72013-06-15 05:39:19 +00001257 unsigned ZoneCritResIdx;
Andrew Trick3b87f622012-11-07 07:05:09 +00001258
1259 // Is the scheduled region resource limited vs. latency limited.
1260 bool IsResourceLimited;
1261
Andrew Trick3b87f622012-11-07 07:05:09 +00001262#ifndef NDEBUG
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001263 // Remember the greatest operand latency as an upper bound on the number of
1264 // times we should retry the pending queue because of a hazard.
1265 unsigned MaxObservedLatency;
Andrew Trick3b87f622012-11-07 07:05:09 +00001266#endif
1267
1268 void reset() {
Andrew Trickecb8c2b2013-02-13 19:22:27 +00001269 // A new HazardRec is created for each DAG and owned by SchedBoundary.
1270 delete HazardRec;
1271
Andrew Trick3b87f622012-11-07 07:05:09 +00001272 Available.clear();
1273 Pending.clear();
1274 CheckPending = false;
1275 NextSUs.clear();
1276 HazardRec = 0;
1277 CurrCycle = 0;
Andrew Trickbacb2492013-06-15 04:49:49 +00001278 CurrMOps = 0;
Andrew Trick3b87f622012-11-07 07:05:09 +00001279 MinReadyCycle = UINT_MAX;
1280 ExpectedLatency = 0;
Andrew Trick2c465a32013-06-15 04:49:44 +00001281 DependentLatency = 0;
Andrew Trickfa989e72013-06-15 05:39:19 +00001282 RetiredMOps = 0;
1283 MaxExecutedResCount = 0;
1284 ZoneCritResIdx = 0;
Andrew Trick3b87f622012-11-07 07:05:09 +00001285 IsResourceLimited = false;
Andrew Trick3b87f622012-11-07 07:05:09 +00001286#ifndef NDEBUG
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001287 MaxObservedLatency = 0;
Andrew Trick3b87f622012-11-07 07:05:09 +00001288#endif
1289 // Reserve a zero-count for invalid CritResIdx.
Andrew Trickfa989e72013-06-15 05:39:19 +00001290 ExecutedResCounts.resize(1);
1291 assert(!ExecutedResCounts[0] && "nonzero count for bad resource");
Andrew Trick3b87f622012-11-07 07:05:09 +00001292 }
Andrew Trickb7e02892012-06-05 21:11:27 +00001293
Andrew Trickf3234242012-05-24 22:11:12 +00001294 /// Pending queues extend the ready queues with the same ID and the
1295 /// PendingFlag set.
1296 SchedBoundary(unsigned ID, const Twine &Name):
Andrew Trick3b87f622012-11-07 07:05:09 +00001297 DAG(0), SchedModel(0), Rem(0), Available(ID, Name+".A"),
Andrew Trickecb8c2b2013-02-13 19:22:27 +00001298 Pending(ID << ConvergingScheduler::LogMaxQID, Name+".P"),
1299 HazardRec(0) {
Andrew Trick3b87f622012-11-07 07:05:09 +00001300 reset();
1301 }
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001302
1303 ~SchedBoundary() { delete HazardRec; }
1304
Andrew Trick3b87f622012-11-07 07:05:09 +00001305 void init(ScheduleDAGMI *dag, const TargetSchedModel *smodel,
1306 SchedRemainder *rem);
Andrew Trick412cd2f2012-10-10 05:43:09 +00001307
Andrew Trickf3234242012-05-24 22:11:12 +00001308 bool isTop() const {
1309 return Available.getID() == ConvergingScheduler::TopQID;
1310 }
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001311
Andrew Trickaaaae512013-06-15 05:46:47 +00001312#ifndef NDEBUG
Andrew Trickfa989e72013-06-15 05:39:19 +00001313 const char *getResourceName(unsigned PIdx) {
1314 if (!PIdx)
1315 return "MOps";
1316 return SchedModel->getProcResource(PIdx)->Name;
Andrew Trick3b87f622012-11-07 07:05:09 +00001317 }
Andrew Trickaaaae512013-06-15 05:46:47 +00001318#endif
Andrew Trick3b87f622012-11-07 07:05:09 +00001319
Andrew Trickfa989e72013-06-15 05:39:19 +00001320 /// Get the number of latency cycles "covered" by the scheduled
1321 /// instructions. This is the larger of the critical path within the zone
1322 /// and the number of cycles required to issue the instructions.
1323 unsigned getScheduledLatency() const {
1324 return std::max(ExpectedLatency, CurrCycle);
1325 }
1326
1327 unsigned getUnscheduledLatency(SUnit *SU) const {
1328 return isTop() ? SU->getHeight() : SU->getDepth();
1329 }
1330
1331 unsigned getResourceCount(unsigned ResIdx) const {
1332 return ExecutedResCounts[ResIdx];
1333 }
1334
1335 /// Get the scaled count of scheduled micro-ops and resources, including
1336 /// executed resources.
Andrew Trick3b87f622012-11-07 07:05:09 +00001337 unsigned getCriticalCount() const {
Andrew Trickfa989e72013-06-15 05:39:19 +00001338 if (!ZoneCritResIdx)
1339 return RetiredMOps * SchedModel->getMicroOpFactor();
1340 return getResourceCount(ZoneCritResIdx);
1341 }
1342
1343 /// Get a scaled count for the minimum execution time of the scheduled
1344 /// micro-ops that are ready to execute by getExecutedCount. Notice the
1345 /// feedback loop.
1346 unsigned getExecutedCount() const {
1347 return std::max(CurrCycle * SchedModel->getLatencyFactor(),
1348 MaxExecutedResCount);
Andrew Trick3b87f622012-11-07 07:05:09 +00001349 }
1350
Andrew Trick5559ffa2012-06-29 03:23:24 +00001351 bool checkHazard(SUnit *SU);
1352
Andrew Trickfa989e72013-06-15 05:39:19 +00001353 unsigned findMaxLatency(ArrayRef<SUnit*> ReadySUs);
1354
1355 unsigned getOtherResourceCount(unsigned &OtherCritIdx);
1356
1357 void setPolicy(CandPolicy &Policy, SchedBoundary &OtherZone);
Andrew Trick3b87f622012-11-07 07:05:09 +00001358
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001359 void releaseNode(SUnit *SU, unsigned ReadyCycle);
1360
Andrew Trickfa989e72013-06-15 05:39:19 +00001361 void bumpCycle(unsigned NextCycle);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001362
Andrew Trickfa989e72013-06-15 05:39:19 +00001363 void incExecutedResources(unsigned PIdx, unsigned Count);
1364
1365 unsigned countResource(unsigned PIdx, unsigned Cycles, unsigned ReadyCycle);
Andrew Trick3b87f622012-11-07 07:05:09 +00001366
Andrew Trick7f8c74c2012-06-29 03:23:22 +00001367 void bumpNode(SUnit *SU);
Andrew Trickb7e02892012-06-05 21:11:27 +00001368
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001369 void releasePending();
1370
1371 void removeReady(SUnit *SU);
1372
1373 SUnit *pickOnlyChoice();
Andrew Trickfa989e72013-06-15 05:39:19 +00001374
Andrew Trickaaaae512013-06-15 05:46:47 +00001375#ifndef NDEBUG
Andrew Trickfa989e72013-06-15 05:39:19 +00001376 void dumpScheduledState();
Andrew Trickaaaae512013-06-15 05:46:47 +00001377#endif
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001378 };
1379
Andrew Trick3b87f622012-11-07 07:05:09 +00001380private:
Andrew Trick17d35e52012-03-14 04:00:41 +00001381 ScheduleDAGMI *DAG;
Andrew Trick412cd2f2012-10-10 05:43:09 +00001382 const TargetSchedModel *SchedModel;
Andrew Trick7196a8f2012-05-10 21:06:16 +00001383 const TargetRegisterInfo *TRI;
Andrew Trick42b7a712012-01-17 06:55:03 +00001384
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001385 // State of the top and bottom scheduled instruction boundaries.
Andrew Trick3b87f622012-11-07 07:05:09 +00001386 SchedRemainder Rem;
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001387 SchedBoundary Top;
1388 SchedBoundary Bot;
Andrew Trick17d35e52012-03-14 04:00:41 +00001389
1390public:
Andrew Trickf3234242012-05-24 22:11:12 +00001391 /// SUnit::NodeQueueId: 0 (none), 1 (top), 2 (bot), 3 (both)
Andrew Trick7196a8f2012-05-10 21:06:16 +00001392 enum {
1393 TopQID = 1,
Andrew Trickf3234242012-05-24 22:11:12 +00001394 BotQID = 2,
1395 LogMaxQID = 2
Andrew Trick7196a8f2012-05-10 21:06:16 +00001396 };
1397
Andrew Trickf3234242012-05-24 22:11:12 +00001398 ConvergingScheduler():
Andrew Trick412cd2f2012-10-10 05:43:09 +00001399 DAG(0), SchedModel(0), TRI(0), Top(TopQID, "TopQ"), Bot(BotQID, "BotQ") {}
Andrew Trickd38f87e2012-05-10 21:06:12 +00001400
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001401 virtual void initialize(ScheduleDAGMI *dag);
Andrew Trick17d35e52012-03-14 04:00:41 +00001402
Andrew Trick7196a8f2012-05-10 21:06:16 +00001403 virtual SUnit *pickNode(bool &IsTopNode);
Andrew Trick17d35e52012-03-14 04:00:41 +00001404
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001405 virtual void schedNode(SUnit *SU, bool IsTopNode);
1406
1407 virtual void releaseTopNode(SUnit *SU);
1408
1409 virtual void releaseBottomNode(SUnit *SU);
1410
Andrew Trick3b87f622012-11-07 07:05:09 +00001411 virtual void registerRoots();
Andrew Trick73a0d8e2012-05-17 18:35:10 +00001412
Andrew Trick3b87f622012-11-07 07:05:09 +00001413protected:
Andrew Trick3b87f622012-11-07 07:05:09 +00001414 void tryCandidate(SchedCandidate &Cand,
1415 SchedCandidate &TryCand,
1416 SchedBoundary &Zone,
1417 const RegPressureTracker &RPTracker,
1418 RegPressureTracker &TempTracker);
1419
1420 SUnit *pickNodeBidirectional(bool &IsTopNode);
1421
1422 void pickNodeFromQueue(SchedBoundary &Zone,
1423 const RegPressureTracker &RPTracker,
1424 SchedCandidate &Candidate);
1425
Andrew Trick4392f0f2013-04-13 06:07:40 +00001426 void reschedulePhysRegCopies(SUnit *SU, bool isTop);
1427
Andrew Trick28ebc892012-05-10 21:06:19 +00001428#ifndef NDEBUG
Andrew Trick11189f72013-04-05 00:31:29 +00001429 void traceCandidate(const SchedCandidate &Cand);
Andrew Trick28ebc892012-05-10 21:06:19 +00001430#endif
Andrew Trick42b7a712012-01-17 06:55:03 +00001431};
1432} // namespace
1433
Andrew Trick3b87f622012-11-07 07:05:09 +00001434void ConvergingScheduler::SchedRemainder::
1435init(ScheduleDAGMI *DAG, const TargetSchedModel *SchedModel) {
1436 reset();
1437 if (!SchedModel->hasInstrSchedModel())
1438 return;
1439 RemainingCounts.resize(SchedModel->getNumProcResourceKinds());
1440 for (std::vector<SUnit>::iterator
1441 I = DAG->SUnits.begin(), E = DAG->SUnits.end(); I != E; ++I) {
1442 const MCSchedClassDesc *SC = DAG->getSchedClass(&*I);
Andrew Trickfa989e72013-06-15 05:39:19 +00001443 RemIssueCount += SchedModel->getNumMicroOps(I->getInstr(), SC)
1444 * SchedModel->getMicroOpFactor();
Andrew Trick3b87f622012-11-07 07:05:09 +00001445 for (TargetSchedModel::ProcResIter
1446 PI = SchedModel->getWriteProcResBegin(SC),
1447 PE = SchedModel->getWriteProcResEnd(SC); PI != PE; ++PI) {
1448 unsigned PIdx = PI->ProcResourceIdx;
1449 unsigned Factor = SchedModel->getResourceFactor(PIdx);
1450 RemainingCounts[PIdx] += (Factor * PI->Cycles);
1451 }
1452 }
1453}
1454
1455void ConvergingScheduler::SchedBoundary::
1456init(ScheduleDAGMI *dag, const TargetSchedModel *smodel, SchedRemainder *rem) {
1457 reset();
1458 DAG = dag;
1459 SchedModel = smodel;
1460 Rem = rem;
1461 if (SchedModel->hasInstrSchedModel())
Andrew Trickfa989e72013-06-15 05:39:19 +00001462 ExecutedResCounts.resize(SchedModel->getNumProcResourceKinds());
Andrew Trick3b87f622012-11-07 07:05:09 +00001463}
1464
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001465void ConvergingScheduler::initialize(ScheduleDAGMI *dag) {
1466 DAG = dag;
Andrew Trick412cd2f2012-10-10 05:43:09 +00001467 SchedModel = DAG->getSchedModel();
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001468 TRI = DAG->TRI;
Andrew Trickecb8c2b2013-02-13 19:22:27 +00001469
Andrew Trick3b87f622012-11-07 07:05:09 +00001470 Rem.init(DAG, SchedModel);
1471 Top.init(DAG, SchedModel, &Rem);
1472 Bot.init(DAG, SchedModel, &Rem);
1473
1474 // Initialize resource counts.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001475
Andrew Trick412cd2f2012-10-10 05:43:09 +00001476 // Initialize the HazardRecognizers. If itineraries don't exist, are empty, or
1477 // are disabled, then these HazardRecs will be disabled.
1478 const InstrItineraryData *Itin = SchedModel->getInstrItineraries();
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001479 const TargetMachine &TM = DAG->MF.getTarget();
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001480 Top.HazardRec = TM.getInstrInfo()->CreateTargetMIHazardRecognizer(Itin, DAG);
1481 Bot.HazardRec = TM.getInstrInfo()->CreateTargetMIHazardRecognizer(Itin, DAG);
1482
1483 assert((!ForceTopDown || !ForceBottomUp) &&
1484 "-misched-topdown incompatible with -misched-bottomup");
1485}
1486
1487void ConvergingScheduler::releaseTopNode(SUnit *SU) {
Andrew Trickb7e02892012-06-05 21:11:27 +00001488 if (SU->isScheduled)
1489 return;
1490
Andrew Trickd4539602012-12-18 20:52:52 +00001491 for (SUnit::pred_iterator I = SU->Preds.begin(), E = SU->Preds.end();
Andrew Trickb7e02892012-06-05 21:11:27 +00001492 I != E; ++I) {
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001493 if (I->isWeak())
1494 continue;
Andrew Trickb7e02892012-06-05 21:11:27 +00001495 unsigned PredReadyCycle = I->getSUnit()->TopReadyCycle;
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001496 unsigned Latency = I->getLatency();
Andrew Trickb7e02892012-06-05 21:11:27 +00001497#ifndef NDEBUG
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001498 Top.MaxObservedLatency = std::max(Latency, Top.MaxObservedLatency);
Andrew Trickb7e02892012-06-05 21:11:27 +00001499#endif
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001500 if (SU->TopReadyCycle < PredReadyCycle + Latency)
1501 SU->TopReadyCycle = PredReadyCycle + Latency;
Andrew Trickb7e02892012-06-05 21:11:27 +00001502 }
1503 Top.releaseNode(SU, SU->TopReadyCycle);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001504}
1505
1506void ConvergingScheduler::releaseBottomNode(SUnit *SU) {
Andrew Trickb7e02892012-06-05 21:11:27 +00001507 if (SU->isScheduled)
1508 return;
1509
1510 assert(SU->getInstr() && "Scheduled SUnit must have instr");
1511
1512 for (SUnit::succ_iterator I = SU->Succs.begin(), E = SU->Succs.end();
1513 I != E; ++I) {
Andrew Trick9b5caaa2012-11-12 19:40:10 +00001514 if (I->isWeak())
1515 continue;
Andrew Trickb7e02892012-06-05 21:11:27 +00001516 unsigned SuccReadyCycle = I->getSUnit()->BotReadyCycle;
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001517 unsigned Latency = I->getLatency();
Andrew Trickb7e02892012-06-05 21:11:27 +00001518#ifndef NDEBUG
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001519 Bot.MaxObservedLatency = std::max(Latency, Bot.MaxObservedLatency);
Andrew Trickb7e02892012-06-05 21:11:27 +00001520#endif
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001521 if (SU->BotReadyCycle < SuccReadyCycle + Latency)
1522 SU->BotReadyCycle = SuccReadyCycle + Latency;
Andrew Trickb7e02892012-06-05 21:11:27 +00001523 }
1524 Bot.releaseNode(SU, SU->BotReadyCycle);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001525}
1526
Andrew Trick3b87f622012-11-07 07:05:09 +00001527void ConvergingScheduler::registerRoots() {
1528 Rem.CriticalPath = DAG->ExitSU.getDepth();
1529 // Some roots may not feed into ExitSU. Check all of them in case.
1530 for (std::vector<SUnit*>::const_iterator
1531 I = Bot.Available.begin(), E = Bot.Available.end(); I != E; ++I) {
1532 if ((*I)->getDepth() > Rem.CriticalPath)
1533 Rem.CriticalPath = (*I)->getDepth();
1534 }
1535 DEBUG(dbgs() << "Critical Path: " << Rem.CriticalPath << '\n');
1536}
1537
Andrew Trick5559ffa2012-06-29 03:23:24 +00001538/// Does this SU have a hazard within the current instruction group.
1539///
1540/// The scheduler supports two modes of hazard recognition. The first is the
1541/// ScheduleHazardRecognizer API. It is a fully general hazard recognizer that
1542/// supports highly complicated in-order reservation tables
1543/// (ScoreboardHazardRecognizer) and arbitraty target-specific logic.
1544///
1545/// The second is a streamlined mechanism that checks for hazards based on
1546/// simple counters that the scheduler itself maintains. It explicitly checks
1547/// for instruction dispatch limitations, including the number of micro-ops that
1548/// can dispatch per cycle.
1549///
1550/// TODO: Also check whether the SU must start a new group.
1551bool ConvergingScheduler::SchedBoundary::checkHazard(SUnit *SU) {
1552 if (HazardRec->isEnabled())
1553 return HazardRec->getHazardType(SU) != ScheduleHazardRecognizer::NoHazard;
1554
Andrew Trick412cd2f2012-10-10 05:43:09 +00001555 unsigned uops = SchedModel->getNumMicroOps(SU->getInstr());
Andrew Trickbacb2492013-06-15 04:49:49 +00001556 if ((CurrMOps > 0) && (CurrMOps + uops > SchedModel->getIssueWidth())) {
Andrew Trick3b87f622012-11-07 07:05:09 +00001557 DEBUG(dbgs() << " SU(" << SU->NodeNum << ") uops="
1558 << SchedModel->getNumMicroOps(SU->getInstr()) << '\n');
Andrew Trick5559ffa2012-06-29 03:23:24 +00001559 return true;
Andrew Trick3b87f622012-11-07 07:05:09 +00001560 }
Andrew Trick5559ffa2012-06-29 03:23:24 +00001561 return false;
1562}
1563
Andrew Trickfa989e72013-06-15 05:39:19 +00001564// Find the unscheduled node in ReadySUs with the highest latency.
1565unsigned ConvergingScheduler::SchedBoundary::
1566findMaxLatency(ArrayRef<SUnit*> ReadySUs) {
1567 SUnit *LateSU = 0;
1568 unsigned RemLatency = 0;
1569 for (ArrayRef<SUnit*>::iterator I = ReadySUs.begin(), E = ReadySUs.end();
Andrew Trick44fd0bc2012-12-18 20:52:56 +00001570 I != E; ++I) {
1571 unsigned L = getUnscheduledLatency(*I);
Andrew Trick2c465a32013-06-15 04:49:44 +00001572 if (L > RemLatency) {
Andrew Trick44fd0bc2012-12-18 20:52:56 +00001573 RemLatency = L;
Andrew Trickfa989e72013-06-15 05:39:19 +00001574 LateSU = *I;
Andrew Trick2c465a32013-06-15 04:49:44 +00001575 }
Andrew Trick44fd0bc2012-12-18 20:52:56 +00001576 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001577 if (LateSU) {
1578 DEBUG(dbgs() << Available.getName() << " RemLatency SU("
1579 << LateSU->NodeNum << ") " << RemLatency << "c\n");
Andrew Trick44fd0bc2012-12-18 20:52:56 +00001580 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001581 return RemLatency;
1582}
Andrew Trick2c465a32013-06-15 04:49:44 +00001583
Andrew Trickfa989e72013-06-15 05:39:19 +00001584// Count resources in this zone and the remaining unscheduled
1585// instruction. Return the max count, scaled. Set OtherCritIdx to the critical
1586// resource index, or zero if the zone is issue limited.
1587unsigned ConvergingScheduler::SchedBoundary::
1588getOtherResourceCount(unsigned &OtherCritIdx) {
1589 if (!SchedModel->hasInstrSchedModel())
1590 return 0;
1591
1592 unsigned OtherCritCount = Rem->RemIssueCount
1593 + (RetiredMOps * SchedModel->getMicroOpFactor());
1594 DEBUG(dbgs() << " " << Available.getName() << " + Remain MOps: "
1595 << OtherCritCount / SchedModel->getMicroOpFactor() << '\n');
1596 OtherCritIdx = 0;
1597 for (unsigned PIdx = 1, PEnd = SchedModel->getNumProcResourceKinds();
1598 PIdx != PEnd; ++PIdx) {
1599 unsigned OtherCount = getResourceCount(PIdx) + Rem->RemainingCounts[PIdx];
1600 if (OtherCount > OtherCritCount) {
1601 OtherCritCount = OtherCount;
1602 OtherCritIdx = PIdx;
1603 }
Andrew Trick3b87f622012-11-07 07:05:09 +00001604 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001605 if (OtherCritIdx) {
1606 DEBUG(dbgs() << " " << Available.getName() << " + Remain CritRes: "
1607 << OtherCritCount / SchedModel->getResourceFactor(OtherCritIdx)
1608 << " " << getResourceName(OtherCritIdx) << "\n");
1609 }
1610 return OtherCritCount;
1611}
1612
1613/// Set the CandPolicy for this zone given the current resources and latencies
1614/// inside and outside the zone.
1615void ConvergingScheduler::SchedBoundary::setPolicy(CandPolicy &Policy,
1616 SchedBoundary &OtherZone) {
1617 // Now that potential stalls have been considered, apply preemptive heuristics
1618 // based on the the total latency and resources inside and outside this
1619 // zone.
1620
1621 // Compute remaining latency. We need this both to determine whether the
1622 // overall schedule has become latency-limited and whether the instructions
1623 // outside this zone are resource or latency limited.
1624 //
1625 // The "dependent" latency is updated incrementally during scheduling as the
1626 // max height/depth of scheduled nodes minus the cycles since it was
1627 // scheduled:
1628 // DLat = max (N.depth - (CurrCycle - N.ReadyCycle) for N in Zone
1629 //
1630 // The "independent" latency is the max ready queue depth:
1631 // ILat = max N.depth for N in Available|Pending
1632 //
1633 // RemainingLatency is the greater of independent and dependent latency.
1634 unsigned RemLatency = DependentLatency;
1635 RemLatency = std::max(RemLatency, findMaxLatency(Available.elements()));
1636 RemLatency = std::max(RemLatency, findMaxLatency(Pending.elements()));
1637
1638 // Compute the critical resource outside the zone.
1639 unsigned OtherCritIdx;
1640 unsigned OtherCount = OtherZone.getOtherResourceCount(OtherCritIdx);
1641
1642 bool OtherResLimited = false;
1643 if (SchedModel->hasInstrSchedModel()) {
1644 unsigned LFactor = SchedModel->getLatencyFactor();
1645 OtherResLimited = (int)(OtherCount - (RemLatency * LFactor)) > (int)LFactor;
1646 }
1647 if (!OtherResLimited && (RemLatency + CurrCycle > Rem->CriticalPath)) {
1648 Policy.ReduceLatency |= true;
1649 DEBUG(dbgs() << " " << Available.getName() << " RemainingLatency "
1650 << RemLatency << " + " << CurrCycle << "c > CritPath "
1651 << Rem->CriticalPath << "\n");
1652 }
1653 // If the same resource is limiting inside and outside the zone, do nothing.
1654 if (IsResourceLimited && OtherResLimited && (ZoneCritResIdx == OtherCritIdx))
1655 return;
1656
1657 DEBUG(
1658 if (IsResourceLimited) {
1659 dbgs() << " " << Available.getName() << " ResourceLimited: "
1660 << getResourceName(ZoneCritResIdx) << "\n";
1661 }
1662 if (OtherResLimited)
1663 dbgs() << " RemainingLimit: " << getResourceName(OtherCritIdx);
1664 if (!IsResourceLimited && !OtherResLimited)
1665 dbgs() << " Latency limited both directions.\n");
1666
1667 if (IsResourceLimited && !Policy.ReduceResIdx)
1668 Policy.ReduceResIdx = ZoneCritResIdx;
1669
1670 if (OtherResLimited)
1671 Policy.DemandResIdx = OtherCritIdx;
Andrew Trick3b87f622012-11-07 07:05:09 +00001672}
1673
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001674void ConvergingScheduler::SchedBoundary::releaseNode(SUnit *SU,
1675 unsigned ReadyCycle) {
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001676 if (ReadyCycle < MinReadyCycle)
1677 MinReadyCycle = ReadyCycle;
1678
1679 // Check for interlocks first. For the purpose of other heuristics, an
1680 // instruction that cannot issue appears as if it's not in the ReadyQueue.
Andrew Trickfa989e72013-06-15 05:39:19 +00001681 bool IsBuffered = SchedModel->getMicroOpBufferSize() != 0;
1682 if ((!IsBuffered && ReadyCycle > CurrCycle) || checkHazard(SU))
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001683 Pending.push(SU);
1684 else
1685 Available.push(SU);
Andrew Trick3b87f622012-11-07 07:05:09 +00001686
1687 // Record this node as an immediate dependent of the scheduled node.
1688 NextSUs.insert(SU);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001689}
1690
1691/// Move the boundary of scheduled code by one cycle.
Andrew Trickfa989e72013-06-15 05:39:19 +00001692void ConvergingScheduler::SchedBoundary::bumpCycle(unsigned NextCycle) {
1693 if (SchedModel->getMicroOpBufferSize() == 0) {
1694 assert(MinReadyCycle < UINT_MAX && "MinReadyCycle uninitialized");
1695 if (MinReadyCycle > NextCycle)
1696 NextCycle = MinReadyCycle;
Andrew Trick3b87f622012-11-07 07:05:09 +00001697 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001698 // Update the current micro-ops, which will issue in the next cycle.
1699 unsigned DecMOps = SchedModel->getIssueWidth() * (NextCycle - CurrCycle);
1700 CurrMOps = (CurrMOps <= DecMOps) ? 0 : CurrMOps - DecMOps;
1701
1702 // Decrement DependentLatency based on the next cycle.
Andrew Trick2c465a32013-06-15 04:49:44 +00001703 if ((NextCycle - CurrCycle) > DependentLatency)
1704 DependentLatency = 0;
1705 else
1706 DependentLatency -= (NextCycle - CurrCycle);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001707
1708 if (!HazardRec->isEnabled()) {
Andrew Trickb7e02892012-06-05 21:11:27 +00001709 // Bypass HazardRec virtual calls.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001710 CurrCycle = NextCycle;
1711 }
1712 else {
Andrew Trickb7e02892012-06-05 21:11:27 +00001713 // Bypass getHazardType calls in case of long latency.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001714 for (; CurrCycle != NextCycle; ++CurrCycle) {
1715 if (isTop())
1716 HazardRec->AdvanceCycle();
1717 else
1718 HazardRec->RecedeCycle();
1719 }
1720 }
1721 CheckPending = true;
Andrew Trickfa989e72013-06-15 05:39:19 +00001722 unsigned LFactor = SchedModel->getLatencyFactor();
1723 IsResourceLimited =
1724 (int)(getCriticalCount() - (getScheduledLatency() * LFactor))
1725 > (int)LFactor;
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001726
Andrew Trickfa989e72013-06-15 05:39:19 +00001727 DEBUG(dbgs() << "Cycle: " << CurrCycle << ' ' << Available.getName() << '\n');
1728}
1729
1730void ConvergingScheduler::SchedBoundary::incExecutedResources(unsigned PIdx,
1731 unsigned Count) {
1732 ExecutedResCounts[PIdx] += Count;
1733 if (ExecutedResCounts[PIdx] > MaxExecutedResCount)
1734 MaxExecutedResCount = ExecutedResCounts[PIdx];
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001735}
1736
Andrew Trick3b87f622012-11-07 07:05:09 +00001737/// Add the given processor resource to this scheduled zone.
Andrew Trickfa989e72013-06-15 05:39:19 +00001738///
1739/// \param Cycles indicates the number of consecutive (non-pipelined) cycles
1740/// during which this resource is consumed.
1741///
1742/// \return the next cycle at which the instruction may execute without
1743/// oversubscribing resources.
1744unsigned ConvergingScheduler::SchedBoundary::
1745countResource(unsigned PIdx, unsigned Cycles, unsigned ReadyCycle) {
Andrew Trick3b87f622012-11-07 07:05:09 +00001746 unsigned Factor = SchedModel->getResourceFactor(PIdx);
Andrew Trick3b87f622012-11-07 07:05:09 +00001747 unsigned Count = Factor * Cycles;
Andrew Trickfa989e72013-06-15 05:39:19 +00001748 DEBUG(dbgs() << " " << getResourceName(PIdx)
1749 << " +" << Cycles << "x" << Factor << "u\n");
1750
1751 // Update Executed resources counts.
1752 incExecutedResources(PIdx, Count);
Andrew Trick3b87f622012-11-07 07:05:09 +00001753 assert(Rem->RemainingCounts[PIdx] >= Count && "resource double counted");
1754 Rem->RemainingCounts[PIdx] -= Count;
1755
Andrew Trick3b87f622012-11-07 07:05:09 +00001756 // Check if this resource exceeds the current critical resource by a full
1757 // cycle. If so, it becomes the critical resource.
Andrew Trickfa989e72013-06-15 05:39:19 +00001758 if (ZoneCritResIdx != PIdx
1759 && ((int)(getResourceCount(PIdx) - getCriticalCount())
1760 >= (int)SchedModel->getLatencyFactor())) {
1761 ZoneCritResIdx = PIdx;
Andrew Trick3b87f622012-11-07 07:05:09 +00001762 DEBUG(dbgs() << " *** Critical resource "
Andrew Trickfa989e72013-06-15 05:39:19 +00001763 << getResourceName(PIdx) << ": "
1764 << getResourceCount(PIdx) / SchedModel->getLatencyFactor() << "c\n");
Andrew Trick3b87f622012-11-07 07:05:09 +00001765 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001766 // TODO: We don't yet model reserved resources. It's not hard though.
1767 return CurrCycle;
Andrew Trick3b87f622012-11-07 07:05:09 +00001768}
1769
Andrew Trickb7e02892012-06-05 21:11:27 +00001770/// Move the boundary of scheduled code by one SUnit.
Andrew Trick7f8c74c2012-06-29 03:23:22 +00001771void ConvergingScheduler::SchedBoundary::bumpNode(SUnit *SU) {
Andrew Trickb7e02892012-06-05 21:11:27 +00001772 // Update the reservation table.
1773 if (HazardRec->isEnabled()) {
1774 if (!isTop() && SU->isCall) {
1775 // Calls are scheduled with their preceding instructions. For bottom-up
1776 // scheduling, clear the pipeline state before emitting.
1777 HazardRec->Reset();
1778 }
1779 HazardRec->EmitInstruction(SU);
1780 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001781 const MCSchedClassDesc *SC = DAG->getSchedClass(SU);
1782 unsigned IncMOps = SchedModel->getNumMicroOps(SU->getInstr());
1783 CurrMOps += IncMOps;
Andrew Trick3b87f622012-11-07 07:05:09 +00001784 // checkHazard prevents scheduling multiple instructions per cycle that exceed
1785 // issue width. However, we commonly reach the maximum. In this case
1786 // opportunistically bump the cycle to avoid uselessly checking everything in
1787 // the readyQ. Furthermore, a single instruction may produce more than one
1788 // cycle's worth of micro-ops.
Andrew Trickfa989e72013-06-15 05:39:19 +00001789 //
1790 // TODO: Also check if this SU must end a dispatch group.
1791 unsigned NextCycle = CurrCycle;
Andrew Trickbacb2492013-06-15 04:49:49 +00001792 if (CurrMOps >= SchedModel->getIssueWidth()) {
Andrew Trickfa989e72013-06-15 05:39:19 +00001793 ++NextCycle;
1794 DEBUG(dbgs() << " *** Max MOps " << CurrMOps
1795 << " at cycle " << CurrCycle << '\n');
Andrew Trickb7e02892012-06-05 21:11:27 +00001796 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001797 unsigned ReadyCycle = (isTop() ? SU->TopReadyCycle : SU->BotReadyCycle);
1798 DEBUG(dbgs() << " Ready @" << ReadyCycle << "c\n");
1799
1800 switch (SchedModel->getMicroOpBufferSize()) {
1801 case 0:
1802 assert(ReadyCycle <= CurrCycle && "Broken PendingQueue");
1803 break;
1804 case 1:
1805 if (ReadyCycle > NextCycle) {
1806 NextCycle = ReadyCycle;
1807 DEBUG(dbgs() << " *** Stall until: " << ReadyCycle << "\n");
1808 }
1809 break;
1810 default:
1811 // We don't currently model the OOO reorder buffer, so consider all
1812 // scheduled MOps to be "retired".
1813 break;
1814 }
1815 RetiredMOps += IncMOps;
1816
1817 // Update resource counts and critical resource.
1818 if (SchedModel->hasInstrSchedModel()) {
1819 unsigned DecRemIssue = IncMOps * SchedModel->getMicroOpFactor();
1820 assert(Rem->RemIssueCount >= DecRemIssue && "MOps double counted");
1821 Rem->RemIssueCount -= DecRemIssue;
1822 if (ZoneCritResIdx) {
1823 // Scale scheduled micro-ops for comparing with the critical resource.
1824 unsigned ScaledMOps =
1825 RetiredMOps * SchedModel->getMicroOpFactor();
1826
1827 // If scaled micro-ops are now more than the previous critical resource by
1828 // a full cycle, then micro-ops issue becomes critical.
1829 if ((int)(ScaledMOps - getResourceCount(ZoneCritResIdx))
1830 >= (int)SchedModel->getLatencyFactor()) {
1831 ZoneCritResIdx = 0;
1832 DEBUG(dbgs() << " *** Critical resource NumMicroOps: "
1833 << ScaledMOps / SchedModel->getLatencyFactor() << "c\n");
1834 }
1835 }
1836 for (TargetSchedModel::ProcResIter
1837 PI = SchedModel->getWriteProcResBegin(SC),
1838 PE = SchedModel->getWriteProcResEnd(SC); PI != PE; ++PI) {
1839 unsigned RCycle =
1840 countResource(PI->ProcResourceIdx, PI->Cycles, ReadyCycle);
1841 if (RCycle > NextCycle)
1842 NextCycle = RCycle;
1843 }
1844 }
1845 // Update ExpectedLatency and DependentLatency.
1846 unsigned &TopLatency = isTop() ? ExpectedLatency : DependentLatency;
1847 unsigned &BotLatency = isTop() ? DependentLatency : ExpectedLatency;
1848 if (SU->getDepth() > TopLatency) {
1849 TopLatency = SU->getDepth();
1850 DEBUG(dbgs() << " " << Available.getName()
1851 << " TopLatency SU(" << SU->NodeNum << ") " << TopLatency << "c\n");
1852 }
1853 if (SU->getHeight() > BotLatency) {
1854 BotLatency = SU->getHeight();
1855 DEBUG(dbgs() << " " << Available.getName()
1856 << " BotLatency SU(" << SU->NodeNum << ") " << BotLatency << "c\n");
1857 }
1858 // If we stall for any reason, bump the cycle.
1859 if (NextCycle > CurrCycle) {
1860 bumpCycle(NextCycle);
1861 }
1862 else {
1863 // After updating ZoneCritResIdx and ExpectedLatency, check if we're
1864 // resource limited. If a stall occured, bumpCycle does this.
1865 unsigned LFactor = SchedModel->getLatencyFactor();
1866 IsResourceLimited =
1867 (int)(getCriticalCount() - (getScheduledLatency() * LFactor))
1868 > (int)LFactor;
1869 }
1870 DEBUG(dumpScheduledState());
Andrew Trickb7e02892012-06-05 21:11:27 +00001871}
1872
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001873/// Release pending ready nodes in to the available queue. This makes them
1874/// visible to heuristics.
1875void ConvergingScheduler::SchedBoundary::releasePending() {
1876 // If the available queue is empty, it is safe to reset MinReadyCycle.
1877 if (Available.empty())
1878 MinReadyCycle = UINT_MAX;
1879
1880 // Check to see if any of the pending instructions are ready to issue. If
1881 // so, add them to the available queue.
Andrew Trickfa989e72013-06-15 05:39:19 +00001882 bool IsBuffered = SchedModel->getMicroOpBufferSize() != 0;
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001883 for (unsigned i = 0, e = Pending.size(); i != e; ++i) {
1884 SUnit *SU = *(Pending.begin()+i);
Andrew Trickb7e02892012-06-05 21:11:27 +00001885 unsigned ReadyCycle = isTop() ? SU->TopReadyCycle : SU->BotReadyCycle;
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001886
1887 if (ReadyCycle < MinReadyCycle)
1888 MinReadyCycle = ReadyCycle;
1889
Andrew Trickfa989e72013-06-15 05:39:19 +00001890 if (!IsBuffered && ReadyCycle > CurrCycle)
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001891 continue;
1892
Andrew Trick5559ffa2012-06-29 03:23:24 +00001893 if (checkHazard(SU))
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001894 continue;
1895
1896 Available.push(SU);
1897 Pending.remove(Pending.begin()+i);
1898 --i; --e;
1899 }
Andrew Trick3b87f622012-11-07 07:05:09 +00001900 DEBUG(if (!Pending.empty()) Pending.dump());
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001901 CheckPending = false;
1902}
1903
1904/// Remove SU from the ready set for this boundary.
1905void ConvergingScheduler::SchedBoundary::removeReady(SUnit *SU) {
1906 if (Available.isInQueue(SU))
1907 Available.remove(Available.find(SU));
1908 else {
1909 assert(Pending.isInQueue(SU) && "bad ready count");
1910 Pending.remove(Pending.find(SU));
1911 }
1912}
1913
1914/// If this queue only has one ready candidate, return it. As a side effect,
Andrew Trick3b87f622012-11-07 07:05:09 +00001915/// defer any nodes that now hit a hazard, and advance the cycle until at least
1916/// one node is ready. If multiple instructions are ready, return NULL.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001917SUnit *ConvergingScheduler::SchedBoundary::pickOnlyChoice() {
1918 if (CheckPending)
1919 releasePending();
1920
Andrew Trickbacb2492013-06-15 04:49:49 +00001921 if (CurrMOps > 0) {
Andrew Trick3b87f622012-11-07 07:05:09 +00001922 // Defer any ready instrs that now have a hazard.
1923 for (ReadyQueue::iterator I = Available.begin(); I != Available.end();) {
1924 if (checkHazard(*I)) {
1925 Pending.push(*I);
1926 I = Available.remove(I);
1927 continue;
1928 }
1929 ++I;
1930 }
1931 }
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001932 for (unsigned i = 0; Available.empty(); ++i) {
Andrew Trickb86a0cd2013-06-15 04:49:57 +00001933 assert(i <= (HazardRec->getMaxLookAhead() + MaxObservedLatency) &&
Andrew Trickb7e02892012-06-05 21:11:27 +00001934 "permanent hazard"); (void)i;
Andrew Trickfa989e72013-06-15 05:39:19 +00001935 bumpCycle(CurrCycle + 1);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00001936 releasePending();
1937 }
1938 if (Available.size() == 1)
1939 return *Available.begin();
1940 return NULL;
1941}
1942
Andrew Trickaaaae512013-06-15 05:46:47 +00001943#ifndef NDEBUG
Andrew Trickfa989e72013-06-15 05:39:19 +00001944// This is useful information to dump after bumpNode.
1945// Note that the Queue contents are more useful before pickNodeFromQueue.
1946void ConvergingScheduler::SchedBoundary::dumpScheduledState() {
1947 unsigned ResFactor;
1948 unsigned ResCount;
1949 if (ZoneCritResIdx) {
1950 ResFactor = SchedModel->getResourceFactor(ZoneCritResIdx);
1951 ResCount = getResourceCount(ZoneCritResIdx);
Andrew Trick3b87f622012-11-07 07:05:09 +00001952 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001953 else {
1954 ResFactor = SchedModel->getMicroOpFactor();
1955 ResCount = RetiredMOps * SchedModel->getMicroOpFactor();
Andrew Trick3b87f622012-11-07 07:05:09 +00001956 }
Andrew Trickfa989e72013-06-15 05:39:19 +00001957 unsigned LFactor = SchedModel->getLatencyFactor();
1958 dbgs() << Available.getName() << " @" << CurrCycle << "c\n"
1959 << " Retired: " << RetiredMOps;
1960 dbgs() << "\n Executed: " << getExecutedCount() / LFactor << "c";
1961 dbgs() << "\n Critical: " << ResCount / LFactor << "c, "
1962 << ResCount / ResFactor << " " << getResourceName(ZoneCritResIdx)
1963 << "\n ExpectedLatency: " << ExpectedLatency << "c\n"
1964 << (IsResourceLimited ? " - Resource" : " - Latency")
1965 << " limited.\n";
Andrew Trick3b87f622012-11-07 07:05:09 +00001966}
Andrew Trickaaaae512013-06-15 05:46:47 +00001967#endif
Andrew Trick3b87f622012-11-07 07:05:09 +00001968
1969void ConvergingScheduler::SchedCandidate::
1970initResourceDelta(const ScheduleDAGMI *DAG,
1971 const TargetSchedModel *SchedModel) {
1972 if (!Policy.ReduceResIdx && !Policy.DemandResIdx)
1973 return;
1974
1975 const MCSchedClassDesc *SC = DAG->getSchedClass(SU);
1976 for (TargetSchedModel::ProcResIter
1977 PI = SchedModel->getWriteProcResBegin(SC),
1978 PE = SchedModel->getWriteProcResEnd(SC); PI != PE; ++PI) {
1979 if (PI->ProcResourceIdx == Policy.ReduceResIdx)
1980 ResDelta.CritResources += PI->Cycles;
1981 if (PI->ProcResourceIdx == Policy.DemandResIdx)
1982 ResDelta.DemandedResources += PI->Cycles;
1983 }
1984}
1985
1986/// Return true if this heuristic determines order.
Andrew Trick614dacc2013-04-05 00:31:34 +00001987static bool tryLess(int TryVal, int CandVal,
Andrew Trick3b87f622012-11-07 07:05:09 +00001988 ConvergingScheduler::SchedCandidate &TryCand,
1989 ConvergingScheduler::SchedCandidate &Cand,
1990 ConvergingScheduler::CandReason Reason) {
1991 if (TryVal < CandVal) {
1992 TryCand.Reason = Reason;
1993 return true;
1994 }
1995 if (TryVal > CandVal) {
1996 if (Cand.Reason > Reason)
1997 Cand.Reason = Reason;
1998 return true;
1999 }
2000 return false;
2001}
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002002
Andrew Trick614dacc2013-04-05 00:31:34 +00002003static bool tryGreater(int TryVal, int CandVal,
Andrew Trick3b87f622012-11-07 07:05:09 +00002004 ConvergingScheduler::SchedCandidate &TryCand,
2005 ConvergingScheduler::SchedCandidate &Cand,
2006 ConvergingScheduler::CandReason Reason) {
2007 if (TryVal > CandVal) {
2008 TryCand.Reason = Reason;
2009 return true;
2010 }
2011 if (TryVal < CandVal) {
2012 if (Cand.Reason > Reason)
2013 Cand.Reason = Reason;
2014 return true;
2015 }
2016 return false;
2017}
2018
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002019static unsigned getWeakLeft(const SUnit *SU, bool isTop) {
2020 return (isTop) ? SU->WeakPredsLeft : SU->WeakSuccsLeft;
2021}
2022
Andrew Trick4392f0f2013-04-13 06:07:40 +00002023/// Minimize physical register live ranges. Regalloc wants them adjacent to
2024/// their physreg def/use.
2025///
2026/// FIXME: This is an unnecessary check on the critical path. Most are root/leaf
2027/// copies which can be prescheduled. The rest (e.g. x86 MUL) could be bundled
2028/// with the operation that produces or consumes the physreg. We'll do this when
2029/// regalloc has support for parallel copies.
2030static int biasPhysRegCopy(const SUnit *SU, bool isTop) {
2031 const MachineInstr *MI = SU->getInstr();
2032 if (!MI->isCopy())
2033 return 0;
2034
2035 unsigned ScheduledOper = isTop ? 1 : 0;
2036 unsigned UnscheduledOper = isTop ? 0 : 1;
2037 // If we have already scheduled the physreg produce/consumer, immediately
2038 // schedule the copy.
2039 if (TargetRegisterInfo::isPhysicalRegister(
2040 MI->getOperand(ScheduledOper).getReg()))
2041 return 1;
2042 // If the physreg is at the boundary, defer it. Otherwise schedule it
2043 // immediately to free the dependent. We can hoist the copy later.
2044 bool AtBoundary = isTop ? !SU->NumSuccsLeft : !SU->NumPredsLeft;
2045 if (TargetRegisterInfo::isPhysicalRegister(
2046 MI->getOperand(UnscheduledOper).getReg()))
2047 return AtBoundary ? -1 : 1;
2048 return 0;
2049}
2050
Andrew Trick3b87f622012-11-07 07:05:09 +00002051/// Apply a set of heursitics to a new candidate. Heuristics are currently
2052/// hierarchical. This may be more efficient than a graduated cost model because
2053/// we don't need to evaluate all aspects of the model for each node in the
2054/// queue. But it's really done to make the heuristics easier to debug and
2055/// statistically analyze.
2056///
2057/// \param Cand provides the policy and current best candidate.
2058/// \param TryCand refers to the next SUnit candidate, otherwise uninitialized.
2059/// \param Zone describes the scheduled zone that we are extending.
2060/// \param RPTracker describes reg pressure within the scheduled zone.
2061/// \param TempTracker is a scratch pressure tracker to reuse in queries.
2062void ConvergingScheduler::tryCandidate(SchedCandidate &Cand,
2063 SchedCandidate &TryCand,
2064 SchedBoundary &Zone,
2065 const RegPressureTracker &RPTracker,
2066 RegPressureTracker &TempTracker) {
2067
2068 // Always initialize TryCand's RPDelta.
2069 TempTracker.getMaxPressureDelta(TryCand.SU->getInstr(), TryCand.RPDelta,
2070 DAG->getRegionCriticalPSets(),
2071 DAG->getRegPressure().MaxSetPressure);
2072
2073 // Initialize the candidate if needed.
2074 if (!Cand.isValid()) {
2075 TryCand.Reason = NodeOrder;
2076 return;
2077 }
Andrew Trick4392f0f2013-04-13 06:07:40 +00002078
2079 if (tryGreater(biasPhysRegCopy(TryCand.SU, Zone.isTop()),
2080 biasPhysRegCopy(Cand.SU, Zone.isTop()),
2081 TryCand, Cand, PhysRegCopy))
2082 return;
2083
Andrew Trick3b87f622012-11-07 07:05:09 +00002084 // Avoid exceeding the target's limit.
2085 if (tryLess(TryCand.RPDelta.Excess.UnitIncrease,
2086 Cand.RPDelta.Excess.UnitIncrease, TryCand, Cand, SingleExcess))
2087 return;
2088 if (Cand.Reason == SingleExcess)
2089 Cand.Reason = MultiPressure;
2090
2091 // Avoid increasing the max critical pressure in the scheduled region.
2092 if (tryLess(TryCand.RPDelta.CriticalMax.UnitIncrease,
2093 Cand.RPDelta.CriticalMax.UnitIncrease,
2094 TryCand, Cand, SingleCritical))
2095 return;
2096 if (Cand.Reason == SingleCritical)
2097 Cand.Reason = MultiPressure;
2098
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002099 // Keep clustered nodes together to encourage downstream peephole
2100 // optimizations which may reduce resource requirements.
2101 //
2102 // This is a best effort to set things up for a post-RA pass. Optimizations
2103 // like generating loads of multiple registers should ideally be done within
2104 // the scheduler pass by combining the loads during DAG postprocessing.
2105 const SUnit *NextClusterSU =
2106 Zone.isTop() ? DAG->getNextClusterSucc() : DAG->getNextClusterPred();
2107 if (tryGreater(TryCand.SU == NextClusterSU, Cand.SU == NextClusterSU,
2108 TryCand, Cand, Cluster))
2109 return;
Andrew Tricke38afe12013-04-24 15:54:43 +00002110
2111 // Weak edges are for clustering and other constraints.
Andrew Trickf13fc1b2013-04-30 22:10:59 +00002112 //
2113 // Deferring TryCand here does not change Cand's reason. This is good in the
2114 // sense that a bad candidate shouldn't affect a previous candidate's
2115 // goodness, but bad in that it is assymetric and depends on queue order.
2116 CandReason OrigReason = Cand.Reason;
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002117 if (tryLess(getWeakLeft(TryCand.SU, Zone.isTop()),
2118 getWeakLeft(Cand.SU, Zone.isTop()),
Andrew Tricke38afe12013-04-24 15:54:43 +00002119 TryCand, Cand, Weak)) {
Andrew Trickf13fc1b2013-04-30 22:10:59 +00002120 Cand.Reason = OrigReason;
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002121 return;
2122 }
Andrew Trick3b87f622012-11-07 07:05:09 +00002123 // Avoid critical resource consumption and balance the schedule.
2124 TryCand.initResourceDelta(DAG, SchedModel);
2125 if (tryLess(TryCand.ResDelta.CritResources, Cand.ResDelta.CritResources,
2126 TryCand, Cand, ResourceReduce))
2127 return;
2128 if (tryGreater(TryCand.ResDelta.DemandedResources,
2129 Cand.ResDelta.DemandedResources,
2130 TryCand, Cand, ResourceDemand))
2131 return;
2132
2133 // Avoid serializing long latency dependence chains.
2134 if (Cand.Policy.ReduceLatency) {
2135 if (Zone.isTop()) {
Andrew Trickfa989e72013-06-15 05:39:19 +00002136 if (Cand.SU->getDepth() > Zone.getScheduledLatency()) {
Andrew Trick3b87f622012-11-07 07:05:09 +00002137 if (tryLess(TryCand.SU->getDepth(), Cand.SU->getDepth(),
2138 TryCand, Cand, TopDepthReduce))
2139 return;
2140 }
2141 if (tryGreater(TryCand.SU->getHeight(), Cand.SU->getHeight(),
2142 TryCand, Cand, TopPathReduce))
2143 return;
2144 }
2145 else {
Andrew Trickfa989e72013-06-15 05:39:19 +00002146 if (Cand.SU->getHeight() > Zone.getScheduledLatency()) {
Andrew Trick3b87f622012-11-07 07:05:09 +00002147 if (tryLess(TryCand.SU->getHeight(), Cand.SU->getHeight(),
2148 TryCand, Cand, BotHeightReduce))
2149 return;
2150 }
2151 if (tryGreater(TryCand.SU->getDepth(), Cand.SU->getDepth(),
2152 TryCand, Cand, BotPathReduce))
2153 return;
2154 }
2155 }
2156
2157 // Avoid increasing the max pressure of the entire region.
2158 if (tryLess(TryCand.RPDelta.CurrentMax.UnitIncrease,
2159 Cand.RPDelta.CurrentMax.UnitIncrease, TryCand, Cand, SingleMax))
2160 return;
2161 if (Cand.Reason == SingleMax)
2162 Cand.Reason = MultiPressure;
2163
2164 // Prefer immediate defs/users of the last scheduled instruction. This is a
Andrew Trickfa989e72013-06-15 05:39:19 +00002165 // local pressure avoidance strategy that also makes the machine code
2166 // readable.
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002167 if (tryGreater(Zone.NextSUs.count(TryCand.SU), Zone.NextSUs.count(Cand.SU),
2168 TryCand, Cand, NextDefUse))
Andrew Trick3b87f622012-11-07 07:05:09 +00002169 return;
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002170
Andrew Trick3b87f622012-11-07 07:05:09 +00002171 // Fall through to original instruction order.
2172 if ((Zone.isTop() && TryCand.SU->NodeNum < Cand.SU->NodeNum)
2173 || (!Zone.isTop() && TryCand.SU->NodeNum > Cand.SU->NodeNum)) {
2174 TryCand.Reason = NodeOrder;
2175 }
2176}
Andrew Trick28ebc892012-05-10 21:06:19 +00002177
Andrew Trick5429a6b2012-05-17 22:37:09 +00002178/// pickNodeFromQueue helper that returns true if the LHS reg pressure effect is
2179/// more desirable than RHS from scheduling standpoint.
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002180static bool compareRPDelta(const RegPressureDelta &LHS,
2181 const RegPressureDelta &RHS) {
2182 // Compare each component of pressure in decreasing order of importance
2183 // without checking if any are valid. Invalid PressureElements are assumed to
2184 // have UnitIncrease==0, so are neutral.
Andrew Trickc8fe4ec2012-05-24 22:11:01 +00002185
2186 // Avoid increasing the max critical pressure in the scheduled region.
Andrew Trick3b87f622012-11-07 07:05:09 +00002187 if (LHS.Excess.UnitIncrease != RHS.Excess.UnitIncrease) {
Andrew Trickbaedcd72013-04-13 06:07:49 +00002188 DEBUG(dbgs() << " RP excess top - bot: "
Andrew Trick3b87f622012-11-07 07:05:09 +00002189 << (LHS.Excess.UnitIncrease - RHS.Excess.UnitIncrease) << '\n');
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002190 return LHS.Excess.UnitIncrease < RHS.Excess.UnitIncrease;
Andrew Trick3b87f622012-11-07 07:05:09 +00002191 }
Andrew Trickc8fe4ec2012-05-24 22:11:01 +00002192 // Avoid increasing the max critical pressure in the scheduled region.
Andrew Trick3b87f622012-11-07 07:05:09 +00002193 if (LHS.CriticalMax.UnitIncrease != RHS.CriticalMax.UnitIncrease) {
Andrew Trickbaedcd72013-04-13 06:07:49 +00002194 DEBUG(dbgs() << " RP critical top - bot: "
Andrew Trick3b87f622012-11-07 07:05:09 +00002195 << (LHS.CriticalMax.UnitIncrease - RHS.CriticalMax.UnitIncrease)
2196 << '\n');
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002197 return LHS.CriticalMax.UnitIncrease < RHS.CriticalMax.UnitIncrease;
Andrew Trick3b87f622012-11-07 07:05:09 +00002198 }
Andrew Trickc8fe4ec2012-05-24 22:11:01 +00002199 // Avoid increasing the max pressure of the entire region.
Andrew Trick3b87f622012-11-07 07:05:09 +00002200 if (LHS.CurrentMax.UnitIncrease != RHS.CurrentMax.UnitIncrease) {
Andrew Trickbaedcd72013-04-13 06:07:49 +00002201 DEBUG(dbgs() << " RP current top - bot: "
Andrew Trick3b87f622012-11-07 07:05:09 +00002202 << (LHS.CurrentMax.UnitIncrease - RHS.CurrentMax.UnitIncrease)
2203 << '\n');
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002204 return LHS.CurrentMax.UnitIncrease < RHS.CurrentMax.UnitIncrease;
Andrew Trick3b87f622012-11-07 07:05:09 +00002205 }
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002206 return false;
2207}
2208
Andrew Trick3b87f622012-11-07 07:05:09 +00002209#ifndef NDEBUG
2210const char *ConvergingScheduler::getReasonStr(
2211 ConvergingScheduler::CandReason Reason) {
2212 switch (Reason) {
2213 case NoCand: return "NOCAND ";
Andrew Trick4392f0f2013-04-13 06:07:40 +00002214 case PhysRegCopy: return "PREG-COPY";
Andrew Trick3b87f622012-11-07 07:05:09 +00002215 case SingleExcess: return "REG-EXCESS";
2216 case SingleCritical: return "REG-CRIT ";
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002217 case Cluster: return "CLUSTER ";
Andrew Tricke38afe12013-04-24 15:54:43 +00002218 case Weak: return "WEAK ";
Andrew Trick3b87f622012-11-07 07:05:09 +00002219 case SingleMax: return "REG-MAX ";
2220 case MultiPressure: return "REG-MULTI ";
2221 case ResourceReduce: return "RES-REDUCE";
2222 case ResourceDemand: return "RES-DEMAND";
2223 case TopDepthReduce: return "TOP-DEPTH ";
2224 case TopPathReduce: return "TOP-PATH ";
2225 case BotHeightReduce:return "BOT-HEIGHT";
2226 case BotPathReduce: return "BOT-PATH ";
2227 case NextDefUse: return "DEF-USE ";
2228 case NodeOrder: return "ORDER ";
2229 };
Benjamin Kramerb7546872012-11-09 15:45:22 +00002230 llvm_unreachable("Unknown reason!");
Andrew Trick3b87f622012-11-07 07:05:09 +00002231}
2232
Andrew Trick11189f72013-04-05 00:31:29 +00002233void ConvergingScheduler::traceCandidate(const SchedCandidate &Cand) {
Andrew Trick3b87f622012-11-07 07:05:09 +00002234 PressureElement P;
2235 unsigned ResIdx = 0;
2236 unsigned Latency = 0;
2237 switch (Cand.Reason) {
2238 default:
2239 break;
2240 case SingleExcess:
2241 P = Cand.RPDelta.Excess;
2242 break;
2243 case SingleCritical:
2244 P = Cand.RPDelta.CriticalMax;
2245 break;
2246 case SingleMax:
2247 P = Cand.RPDelta.CurrentMax;
2248 break;
2249 case ResourceReduce:
2250 ResIdx = Cand.Policy.ReduceResIdx;
2251 break;
2252 case ResourceDemand:
2253 ResIdx = Cand.Policy.DemandResIdx;
2254 break;
2255 case TopDepthReduce:
2256 Latency = Cand.SU->getDepth();
2257 break;
2258 case TopPathReduce:
2259 Latency = Cand.SU->getHeight();
2260 break;
2261 case BotHeightReduce:
2262 Latency = Cand.SU->getHeight();
2263 break;
2264 case BotPathReduce:
2265 Latency = Cand.SU->getDepth();
2266 break;
2267 }
Andrew Trick11189f72013-04-05 00:31:29 +00002268 dbgs() << " SU(" << Cand.SU->NodeNum << ") " << getReasonStr(Cand.Reason);
Andrew Trick3b87f622012-11-07 07:05:09 +00002269 if (P.isValid())
Andrew Trick11189f72013-04-05 00:31:29 +00002270 dbgs() << " " << TRI->getRegPressureSetName(P.PSetID)
2271 << ":" << P.UnitIncrease << " ";
Andrew Trick3b87f622012-11-07 07:05:09 +00002272 else
Andrew Trick11189f72013-04-05 00:31:29 +00002273 dbgs() << " ";
Andrew Trick3b87f622012-11-07 07:05:09 +00002274 if (ResIdx)
Andrew Trick11189f72013-04-05 00:31:29 +00002275 dbgs() << " " << SchedModel->getProcResource(ResIdx)->Name << " ";
Andrew Trick3b87f622012-11-07 07:05:09 +00002276 else
2277 dbgs() << " ";
Andrew Trick11189f72013-04-05 00:31:29 +00002278 if (Latency)
2279 dbgs() << " " << Latency << " cycles ";
2280 else
2281 dbgs() << " ";
2282 dbgs() << '\n';
Andrew Trick3b87f622012-11-07 07:05:09 +00002283}
2284#endif
2285
Andrew Trick7196a8f2012-05-10 21:06:16 +00002286/// Pick the best candidate from the top queue.
2287///
2288/// TODO: getMaxPressureDelta results can be mostly cached for each SUnit during
2289/// DAG building. To adjust for the current scheduling location we need to
2290/// maintain the number of vreg uses remaining to be top-scheduled.
Andrew Trick3b87f622012-11-07 07:05:09 +00002291void ConvergingScheduler::pickNodeFromQueue(SchedBoundary &Zone,
2292 const RegPressureTracker &RPTracker,
2293 SchedCandidate &Cand) {
2294 ReadyQueue &Q = Zone.Available;
2295
Andrew Trickf3234242012-05-24 22:11:12 +00002296 DEBUG(Q.dump());
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002297
Andrew Trick7196a8f2012-05-10 21:06:16 +00002298 // getMaxPressureDelta temporarily modifies the tracker.
2299 RegPressureTracker &TempTracker = const_cast<RegPressureTracker&>(RPTracker);
2300
Andrew Trick8c2d9212012-05-24 22:11:03 +00002301 for (ReadyQueue::iterator I = Q.begin(), E = Q.end(); I != E; ++I) {
Andrew Trick7196a8f2012-05-10 21:06:16 +00002302
Andrew Trick3b87f622012-11-07 07:05:09 +00002303 SchedCandidate TryCand(Cand.Policy);
2304 TryCand.SU = *I;
2305 tryCandidate(Cand, TryCand, Zone, RPTracker, TempTracker);
2306 if (TryCand.Reason != NoCand) {
2307 // Initialize resource delta if needed in case future heuristics query it.
2308 if (TryCand.ResDelta == SchedResourceDelta())
2309 TryCand.initResourceDelta(DAG, SchedModel);
2310 Cand.setBest(TryCand);
Andrew Trick11189f72013-04-05 00:31:29 +00002311 DEBUG(traceCandidate(Cand));
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002312 }
Andrew Trick7196a8f2012-05-10 21:06:16 +00002313 }
Andrew Trick3b87f622012-11-07 07:05:09 +00002314}
2315
2316static void tracePick(const ConvergingScheduler::SchedCandidate &Cand,
2317 bool IsTop) {
Andrew Trickbaedcd72013-04-13 06:07:49 +00002318 DEBUG(dbgs() << "Pick " << (IsTop ? "Top " : "Bot ")
Andrew Trick3b87f622012-11-07 07:05:09 +00002319 << ConvergingScheduler::getReasonStr(Cand.Reason) << '\n');
Andrew Trick7196a8f2012-05-10 21:06:16 +00002320}
2321
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002322/// Pick the best candidate node from either the top or bottom queue.
Andrew Trick3b87f622012-11-07 07:05:09 +00002323SUnit *ConvergingScheduler::pickNodeBidirectional(bool &IsTopNode) {
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002324 // Schedule as far as possible in the direction of no choice. This is most
2325 // efficient, but also provides the best heuristics for CriticalPSets.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002326 if (SUnit *SU = Bot.pickOnlyChoice()) {
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002327 IsTopNode = false;
Andrew Trickfa989e72013-06-15 05:39:19 +00002328 DEBUG(dbgs() << "Pick Bot NOCAND\n");
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002329 return SU;
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002330 }
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002331 if (SUnit *SU = Top.pickOnlyChoice()) {
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002332 IsTopNode = true;
Andrew Trickfa989e72013-06-15 05:39:19 +00002333 DEBUG(dbgs() << "Pick Top NOCAND\n");
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002334 return SU;
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002335 }
Andrew Trick3b87f622012-11-07 07:05:09 +00002336 CandPolicy NoPolicy;
2337 SchedCandidate BotCand(NoPolicy);
2338 SchedCandidate TopCand(NoPolicy);
Andrew Trickfa989e72013-06-15 05:39:19 +00002339 Bot.setPolicy(BotCand.Policy, Top);
2340 Top.setPolicy(TopCand.Policy, Bot);
Andrew Trick3b87f622012-11-07 07:05:09 +00002341
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002342 // Prefer bottom scheduling when heuristics are silent.
Andrew Trick3b87f622012-11-07 07:05:09 +00002343 pickNodeFromQueue(Bot, DAG->getBotRPTracker(), BotCand);
2344 assert(BotCand.Reason != NoCand && "failed to find the first candidate");
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002345
2346 // If either Q has a single candidate that provides the least increase in
2347 // Excess pressure, we can immediately schedule from that Q.
2348 //
2349 // RegionCriticalPSets summarizes the pressure within the scheduled region and
2350 // affects picking from either Q. If scheduling in one direction must
2351 // increase pressure for one of the excess PSets, then schedule in that
2352 // direction first to provide more freedom in the other direction.
Andrew Trick3b87f622012-11-07 07:05:09 +00002353 if (BotCand.Reason == SingleExcess || BotCand.Reason == SingleCritical) {
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002354 IsTopNode = false;
Andrew Trick3b87f622012-11-07 07:05:09 +00002355 tracePick(BotCand, IsTopNode);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002356 return BotCand.SU;
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002357 }
2358 // Check if the top Q has a better candidate.
Andrew Trick3b87f622012-11-07 07:05:09 +00002359 pickNodeFromQueue(Top, DAG->getTopRPTracker(), TopCand);
2360 assert(TopCand.Reason != NoCand && "failed to find the first candidate");
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002361
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002362 // If either Q has a single candidate that minimizes pressure above the
2363 // original region's pressure pick it.
Andrew Trick3b87f622012-11-07 07:05:09 +00002364 if (TopCand.Reason <= SingleMax || BotCand.Reason <= SingleMax) {
2365 if (TopCand.Reason < BotCand.Reason) {
2366 IsTopNode = true;
2367 tracePick(TopCand, IsTopNode);
2368 return TopCand.SU;
2369 }
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002370 IsTopNode = false;
Andrew Trick3b87f622012-11-07 07:05:09 +00002371 tracePick(BotCand, IsTopNode);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002372 return BotCand.SU;
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002373 }
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002374 // Check for a salient pressure difference and pick the best from either side.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002375 if (compareRPDelta(TopCand.RPDelta, BotCand.RPDelta)) {
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002376 IsTopNode = true;
Andrew Trick3b87f622012-11-07 07:05:09 +00002377 tracePick(TopCand, IsTopNode);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002378 return TopCand.SU;
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002379 }
Andrew Trick3b87f622012-11-07 07:05:09 +00002380 // Otherwise prefer the bottom candidate, in node order if all else failed.
2381 if (TopCand.Reason < BotCand.Reason) {
2382 IsTopNode = true;
2383 tracePick(TopCand, IsTopNode);
2384 return TopCand.SU;
2385 }
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002386 IsTopNode = false;
Andrew Trick3b87f622012-11-07 07:05:09 +00002387 tracePick(BotCand, IsTopNode);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002388 return BotCand.SU;
Andrew Trick73a0d8e2012-05-17 18:35:10 +00002389}
2390
2391/// Pick the best node to balance the schedule. Implements MachineSchedStrategy.
Andrew Trick7196a8f2012-05-10 21:06:16 +00002392SUnit *ConvergingScheduler::pickNode(bool &IsTopNode) {
2393 if (DAG->top() == DAG->bottom()) {
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002394 assert(Top.Available.empty() && Top.Pending.empty() &&
2395 Bot.Available.empty() && Bot.Pending.empty() && "ReadyQ garbage");
Andrew Trick7196a8f2012-05-10 21:06:16 +00002396 return NULL;
2397 }
Andrew Trick7196a8f2012-05-10 21:06:16 +00002398 SUnit *SU;
Andrew Trick30c6ec22012-10-08 18:53:53 +00002399 do {
2400 if (ForceTopDown) {
2401 SU = Top.pickOnlyChoice();
2402 if (!SU) {
Andrew Trick3b87f622012-11-07 07:05:09 +00002403 CandPolicy NoPolicy;
2404 SchedCandidate TopCand(NoPolicy);
2405 pickNodeFromQueue(Top, DAG->getTopRPTracker(), TopCand);
2406 assert(TopCand.Reason != NoCand && "failed to find the first candidate");
Andrew Trick30c6ec22012-10-08 18:53:53 +00002407 SU = TopCand.SU;
2408 }
2409 IsTopNode = true;
Andrew Trick8ddd9d52012-05-24 23:11:17 +00002410 }
Andrew Trick30c6ec22012-10-08 18:53:53 +00002411 else if (ForceBottomUp) {
2412 SU = Bot.pickOnlyChoice();
2413 if (!SU) {
Andrew Trick3b87f622012-11-07 07:05:09 +00002414 CandPolicy NoPolicy;
2415 SchedCandidate BotCand(NoPolicy);
2416 pickNodeFromQueue(Bot, DAG->getBotRPTracker(), BotCand);
2417 assert(BotCand.Reason != NoCand && "failed to find the first candidate");
Andrew Trick30c6ec22012-10-08 18:53:53 +00002418 SU = BotCand.SU;
2419 }
2420 IsTopNode = false;
Andrew Trick8ddd9d52012-05-24 23:11:17 +00002421 }
Andrew Trick30c6ec22012-10-08 18:53:53 +00002422 else {
Andrew Trick3b87f622012-11-07 07:05:09 +00002423 SU = pickNodeBidirectional(IsTopNode);
Andrew Trick30c6ec22012-10-08 18:53:53 +00002424 }
2425 } while (SU->isScheduled);
2426
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002427 if (SU->isTopReady())
2428 Top.removeReady(SU);
2429 if (SU->isBottomReady())
2430 Bot.removeReady(SU);
Andrew Trickc7a098f2012-05-25 02:02:39 +00002431
Andrew Trickbaedcd72013-04-13 06:07:49 +00002432 DEBUG(dbgs() << "Scheduling SU(" << SU->NodeNum << ") " << *SU->getInstr());
Andrew Trick7196a8f2012-05-10 21:06:16 +00002433 return SU;
2434}
2435
Andrew Trick4392f0f2013-04-13 06:07:40 +00002436void ConvergingScheduler::reschedulePhysRegCopies(SUnit *SU, bool isTop) {
2437
2438 MachineBasicBlock::iterator InsertPos = SU->getInstr();
2439 if (!isTop)
2440 ++InsertPos;
2441 SmallVectorImpl<SDep> &Deps = isTop ? SU->Preds : SU->Succs;
2442
2443 // Find already scheduled copies with a single physreg dependence and move
2444 // them just above the scheduled instruction.
2445 for (SmallVectorImpl<SDep>::iterator I = Deps.begin(), E = Deps.end();
2446 I != E; ++I) {
2447 if (I->getKind() != SDep::Data || !TRI->isPhysicalRegister(I->getReg()))
2448 continue;
2449 SUnit *DepSU = I->getSUnit();
2450 if (isTop ? DepSU->Succs.size() > 1 : DepSU->Preds.size() > 1)
2451 continue;
2452 MachineInstr *Copy = DepSU->getInstr();
2453 if (!Copy->isCopy())
2454 continue;
2455 DEBUG(dbgs() << " Rescheduling physreg copy ";
2456 I->getSUnit()->dump(DAG));
2457 DAG->moveInstruction(Copy, InsertPos);
2458 }
2459}
2460
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002461/// Update the scheduler's state after scheduling a node. This is the same node
2462/// that was just returned by pickNode(). However, ScheduleDAGMI needs to update
Andrew Trickb7e02892012-06-05 21:11:27 +00002463/// it's state based on the current cycle before MachineSchedStrategy does.
Andrew Trick4392f0f2013-04-13 06:07:40 +00002464///
2465/// FIXME: Eventually, we may bundle physreg copies rather than rescheduling
2466/// them here. See comments in biasPhysRegCopy.
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002467void ConvergingScheduler::schedNode(SUnit *SU, bool IsTopNode) {
Andrew Trickb7e02892012-06-05 21:11:27 +00002468 if (IsTopNode) {
Andrew Trickfa989e72013-06-15 05:39:19 +00002469 SU->TopReadyCycle = std::max(SU->TopReadyCycle, Top.CurrCycle);
Andrew Trick7f8c74c2012-06-29 03:23:22 +00002470 Top.bumpNode(SU);
Andrew Trick4392f0f2013-04-13 06:07:40 +00002471 if (SU->hasPhysRegUses)
2472 reschedulePhysRegCopies(SU, true);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002473 }
Andrew Trickb7e02892012-06-05 21:11:27 +00002474 else {
Andrew Trickfa989e72013-06-15 05:39:19 +00002475 SU->BotReadyCycle = std::max(SU->BotReadyCycle, Bot.CurrCycle);
Andrew Trick7f8c74c2012-06-29 03:23:22 +00002476 Bot.bumpNode(SU);
Andrew Trick4392f0f2013-04-13 06:07:40 +00002477 if (SU->hasPhysRegDefs)
2478 reschedulePhysRegCopies(SU, false);
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002479 }
2480}
2481
Andrew Trick17d35e52012-03-14 04:00:41 +00002482/// Create the standard converging machine scheduler. This will be used as the
2483/// default scheduler if the target does not set a default.
2484static ScheduleDAGInstrs *createConvergingSched(MachineSchedContext *C) {
Benjamin Kramer689e0b42012-03-14 11:26:37 +00002485 assert((!ForceTopDown || !ForceBottomUp) &&
Andrew Trick17d35e52012-03-14 04:00:41 +00002486 "-misched-topdown incompatible with -misched-bottomup");
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002487 ScheduleDAGMI *DAG = new ScheduleDAGMI(C, new ConvergingScheduler());
2488 // Register DAG post-processors.
Andrew Tricke38afe12013-04-24 15:54:43 +00002489 //
2490 // FIXME: extend the mutation API to allow earlier mutations to instantiate
2491 // data and pass it to later mutations. Have a single mutation that gathers
2492 // the interesting nodes in one pass.
Andrew Trick63a8d822013-06-15 04:49:46 +00002493 DAG->addMutation(new CopyConstrain(DAG->TII, DAG->TRI));
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002494 if (EnableLoadCluster)
2495 DAG->addMutation(new LoadClusterMutation(DAG->TII, DAG->TRI));
Andrew Trick6996fd02012-11-12 19:52:20 +00002496 if (EnableMacroFusion)
2497 DAG->addMutation(new MacroFusion(DAG->TII));
Andrew Trick9b5caaa2012-11-12 19:40:10 +00002498 return DAG;
Andrew Trick42b7a712012-01-17 06:55:03 +00002499}
2500static MachineSchedRegistry
Andrew Trick17d35e52012-03-14 04:00:41 +00002501ConvergingSchedRegistry("converge", "Standard converging scheduler.",
2502 createConvergingSched);
Andrew Trick42b7a712012-01-17 06:55:03 +00002503
2504//===----------------------------------------------------------------------===//
Andrew Trick1e94e982012-10-15 18:02:27 +00002505// ILP Scheduler. Currently for experimental analysis of heuristics.
2506//===----------------------------------------------------------------------===//
2507
2508namespace {
2509/// \brief Order nodes by the ILP metric.
2510struct ILPOrder {
Andrew Trick178f7d02013-01-25 04:01:04 +00002511 const SchedDFSResult *DFSResult;
2512 const BitVector *ScheduledTrees;
Andrew Trick1e94e982012-10-15 18:02:27 +00002513 bool MaximizeILP;
2514
Andrew Trick178f7d02013-01-25 04:01:04 +00002515 ILPOrder(bool MaxILP): DFSResult(0), ScheduledTrees(0), MaximizeILP(MaxILP) {}
Andrew Trick1e94e982012-10-15 18:02:27 +00002516
2517 /// \brief Apply a less-than relation on node priority.
Andrew Trick8b1496c2012-11-28 05:13:28 +00002518 ///
2519 /// (Return true if A comes after B in the Q.)
Andrew Trick1e94e982012-10-15 18:02:27 +00002520 bool operator()(const SUnit *A, const SUnit *B) const {
Andrew Trick8b1496c2012-11-28 05:13:28 +00002521 unsigned SchedTreeA = DFSResult->getSubtreeID(A);
2522 unsigned SchedTreeB = DFSResult->getSubtreeID(B);
2523 if (SchedTreeA != SchedTreeB) {
2524 // Unscheduled trees have lower priority.
2525 if (ScheduledTrees->test(SchedTreeA) != ScheduledTrees->test(SchedTreeB))
2526 return ScheduledTrees->test(SchedTreeB);
2527
2528 // Trees with shallower connections have have lower priority.
2529 if (DFSResult->getSubtreeLevel(SchedTreeA)
2530 != DFSResult->getSubtreeLevel(SchedTreeB)) {
2531 return DFSResult->getSubtreeLevel(SchedTreeA)
2532 < DFSResult->getSubtreeLevel(SchedTreeB);
2533 }
2534 }
Andrew Trick1e94e982012-10-15 18:02:27 +00002535 if (MaximizeILP)
Andrew Trick8b1496c2012-11-28 05:13:28 +00002536 return DFSResult->getILP(A) < DFSResult->getILP(B);
Andrew Trick1e94e982012-10-15 18:02:27 +00002537 else
Andrew Trick8b1496c2012-11-28 05:13:28 +00002538 return DFSResult->getILP(A) > DFSResult->getILP(B);
Andrew Trick1e94e982012-10-15 18:02:27 +00002539 }
2540};
2541
2542/// \brief Schedule based on the ILP metric.
2543class ILPScheduler : public MachineSchedStrategy {
Andrew Trick8b1496c2012-11-28 05:13:28 +00002544 /// In case all subtrees are eventually connected to a common root through
2545 /// data dependence (e.g. reduction), place an upper limit on their size.
2546 ///
2547 /// FIXME: A subtree limit is generally good, but in the situation commented
2548 /// above, where multiple similar subtrees feed a common root, we should
2549 /// only split at a point where the resulting subtrees will be balanced.
2550 /// (a motivating test case must be found).
2551 static const unsigned SubtreeLimit = 16;
2552
Andrew Trick178f7d02013-01-25 04:01:04 +00002553 ScheduleDAGMI *DAG;
Andrew Trick1e94e982012-10-15 18:02:27 +00002554 ILPOrder Cmp;
2555
2556 std::vector<SUnit*> ReadyQ;
2557public:
Andrew Trick178f7d02013-01-25 04:01:04 +00002558 ILPScheduler(bool MaximizeILP): DAG(0), Cmp(MaximizeILP) {}
Andrew Trick1e94e982012-10-15 18:02:27 +00002559
Andrew Trick178f7d02013-01-25 04:01:04 +00002560 virtual void initialize(ScheduleDAGMI *dag) {
2561 DAG = dag;
Andrew Trick4e1fb182013-01-25 06:33:57 +00002562 DAG->computeDFSResult();
Andrew Trick178f7d02013-01-25 04:01:04 +00002563 Cmp.DFSResult = DAG->getDFSResult();
2564 Cmp.ScheduledTrees = &DAG->getScheduledTrees();
Andrew Trick1e94e982012-10-15 18:02:27 +00002565 ReadyQ.clear();
Andrew Trick1e94e982012-10-15 18:02:27 +00002566 }
2567
2568 virtual void registerRoots() {
Benjamin Kramer5175fd92012-11-29 14:36:26 +00002569 // Restore the heap in ReadyQ with the updated DFS results.
2570 std::make_heap(ReadyQ.begin(), ReadyQ.end(), Cmp);
Andrew Trick1e94e982012-10-15 18:02:27 +00002571 }
2572
2573 /// Implement MachineSchedStrategy interface.
2574 /// -----------------------------------------
2575
Andrew Trick8b1496c2012-11-28 05:13:28 +00002576 /// Callback to select the highest priority node from the ready Q.
Andrew Trick1e94e982012-10-15 18:02:27 +00002577 virtual SUnit *pickNode(bool &IsTopNode) {
2578 if (ReadyQ.empty()) return NULL;
Matt Arsenault26c417b2013-03-21 00:57:21 +00002579 std::pop_heap(ReadyQ.begin(), ReadyQ.end(), Cmp);
Andrew Trick1e94e982012-10-15 18:02:27 +00002580 SUnit *SU = ReadyQ.back();
2581 ReadyQ.pop_back();
2582 IsTopNode = false;
Andrew Trickbaedcd72013-04-13 06:07:49 +00002583 DEBUG(dbgs() << "Pick node " << "SU(" << SU->NodeNum << ") "
Andrew Trick178f7d02013-01-25 04:01:04 +00002584 << " ILP: " << DAG->getDFSResult()->getILP(SU)
2585 << " Tree: " << DAG->getDFSResult()->getSubtreeID(SU) << " @"
2586 << DAG->getDFSResult()->getSubtreeLevel(
Andrew Trickbaedcd72013-04-13 06:07:49 +00002587 DAG->getDFSResult()->getSubtreeID(SU)) << '\n'
2588 << "Scheduling " << *SU->getInstr());
Andrew Trick1e94e982012-10-15 18:02:27 +00002589 return SU;
2590 }
2591
Andrew Trick178f7d02013-01-25 04:01:04 +00002592 /// \brief Scheduler callback to notify that a new subtree is scheduled.
2593 virtual void scheduleTree(unsigned SubtreeID) {
2594 std::make_heap(ReadyQ.begin(), ReadyQ.end(), Cmp);
2595 }
2596
Andrew Trick8b1496c2012-11-28 05:13:28 +00002597 /// Callback after a node is scheduled. Mark a newly scheduled tree, notify
2598 /// DFSResults, and resort the priority Q.
2599 virtual void schedNode(SUnit *SU, bool IsTopNode) {
2600 assert(!IsTopNode && "SchedDFSResult needs bottom-up");
Andrew Trick8b1496c2012-11-28 05:13:28 +00002601 }
Andrew Trick1e94e982012-10-15 18:02:27 +00002602
2603 virtual void releaseTopNode(SUnit *) { /*only called for top roots*/ }
2604
2605 virtual void releaseBottomNode(SUnit *SU) {
2606 ReadyQ.push_back(SU);
2607 std::push_heap(ReadyQ.begin(), ReadyQ.end(), Cmp);
2608 }
2609};
2610} // namespace
2611
2612static ScheduleDAGInstrs *createILPMaxScheduler(MachineSchedContext *C) {
2613 return new ScheduleDAGMI(C, new ILPScheduler(true));
2614}
2615static ScheduleDAGInstrs *createILPMinScheduler(MachineSchedContext *C) {
2616 return new ScheduleDAGMI(C, new ILPScheduler(false));
2617}
2618static MachineSchedRegistry ILPMaxRegistry(
2619 "ilpmax", "Schedule bottom-up for max ILP", createILPMaxScheduler);
2620static MachineSchedRegistry ILPMinRegistry(
2621 "ilpmin", "Schedule bottom-up for min ILP", createILPMinScheduler);
2622
2623//===----------------------------------------------------------------------===//
Andrew Trick5edf2f02012-01-14 02:17:06 +00002624// Machine Instruction Shuffler for Correctness Testing
2625//===----------------------------------------------------------------------===//
2626
Andrew Trick96f678f2012-01-13 06:30:30 +00002627#ifndef NDEBUG
2628namespace {
Andrew Trick17d35e52012-03-14 04:00:41 +00002629/// Apply a less-than relation on the node order, which corresponds to the
2630/// instruction order prior to scheduling. IsReverse implements greater-than.
2631template<bool IsReverse>
2632struct SUnitOrder {
Andrew Trickc6cf11b2012-01-17 06:55:07 +00002633 bool operator()(SUnit *A, SUnit *B) const {
Andrew Trick17d35e52012-03-14 04:00:41 +00002634 if (IsReverse)
2635 return A->NodeNum > B->NodeNum;
2636 else
2637 return A->NodeNum < B->NodeNum;
Andrew Trickc6cf11b2012-01-17 06:55:07 +00002638 }
2639};
2640
Andrew Trick96f678f2012-01-13 06:30:30 +00002641/// Reorder instructions as much as possible.
Andrew Trick17d35e52012-03-14 04:00:41 +00002642class InstructionShuffler : public MachineSchedStrategy {
2643 bool IsAlternating;
2644 bool IsTopDown;
2645
2646 // Using a less-than relation (SUnitOrder<false>) for the TopQ priority
2647 // gives nodes with a higher number higher priority causing the latest
2648 // instructions to be scheduled first.
2649 PriorityQueue<SUnit*, std::vector<SUnit*>, SUnitOrder<false> >
2650 TopQ;
2651 // When scheduling bottom-up, use greater-than as the queue priority.
2652 PriorityQueue<SUnit*, std::vector<SUnit*>, SUnitOrder<true> >
2653 BottomQ;
Andrew Trick96f678f2012-01-13 06:30:30 +00002654public:
Andrew Trick17d35e52012-03-14 04:00:41 +00002655 InstructionShuffler(bool alternate, bool topdown)
2656 : IsAlternating(alternate), IsTopDown(topdown) {}
Andrew Trick96f678f2012-01-13 06:30:30 +00002657
Andrew Trick17d35e52012-03-14 04:00:41 +00002658 virtual void initialize(ScheduleDAGMI *) {
2659 TopQ.clear();
2660 BottomQ.clear();
2661 }
Andrew Trickc6cf11b2012-01-17 06:55:07 +00002662
Andrew Trick17d35e52012-03-14 04:00:41 +00002663 /// Implement MachineSchedStrategy interface.
2664 /// -----------------------------------------
2665
2666 virtual SUnit *pickNode(bool &IsTopNode) {
2667 SUnit *SU;
2668 if (IsTopDown) {
2669 do {
2670 if (TopQ.empty()) return NULL;
2671 SU = TopQ.top();
2672 TopQ.pop();
2673 } while (SU->isScheduled);
2674 IsTopNode = true;
2675 }
2676 else {
2677 do {
2678 if (BottomQ.empty()) return NULL;
2679 SU = BottomQ.top();
2680 BottomQ.pop();
2681 } while (SU->isScheduled);
2682 IsTopNode = false;
2683 }
2684 if (IsAlternating)
2685 IsTopDown = !IsTopDown;
Andrew Trickc6cf11b2012-01-17 06:55:07 +00002686 return SU;
2687 }
2688
Andrew Trick0a39d4e2012-05-24 22:11:09 +00002689 virtual void schedNode(SUnit *SU, bool IsTopNode) {}
2690
Andrew Trick17d35e52012-03-14 04:00:41 +00002691 virtual void releaseTopNode(SUnit *SU) {
2692 TopQ.push(SU);
2693 }
2694 virtual void releaseBottomNode(SUnit *SU) {
2695 BottomQ.push(SU);
Andrew Trick96f678f2012-01-13 06:30:30 +00002696 }
2697};
2698} // namespace
2699
Andrew Trickc174eaf2012-03-08 01:41:12 +00002700static ScheduleDAGInstrs *createInstructionShuffler(MachineSchedContext *C) {
Andrew Trick17d35e52012-03-14 04:00:41 +00002701 bool Alternate = !ForceTopDown && !ForceBottomUp;
2702 bool TopDown = !ForceBottomUp;
Benjamin Kramer689e0b42012-03-14 11:26:37 +00002703 assert((TopDown || !ForceTopDown) &&
Andrew Trick17d35e52012-03-14 04:00:41 +00002704 "-misched-topdown incompatible with -misched-bottomup");
2705 return new ScheduleDAGMI(C, new InstructionShuffler(Alternate, TopDown));
Andrew Trick96f678f2012-01-13 06:30:30 +00002706}
Andrew Trick17d35e52012-03-14 04:00:41 +00002707static MachineSchedRegistry ShufflerRegistry(
2708 "shuffle", "Shuffle machine instructions alternating directions",
2709 createInstructionShuffler);
Andrew Trick96f678f2012-01-13 06:30:30 +00002710#endif // !NDEBUG
Andrew Trick30849792013-01-25 07:45:29 +00002711
2712//===----------------------------------------------------------------------===//
2713// GraphWriter support for ScheduleDAGMI.
2714//===----------------------------------------------------------------------===//
2715
2716#ifndef NDEBUG
2717namespace llvm {
2718
2719template<> struct GraphTraits<
2720 ScheduleDAGMI*> : public GraphTraits<ScheduleDAG*> {};
2721
2722template<>
2723struct DOTGraphTraits<ScheduleDAGMI*> : public DefaultDOTGraphTraits {
2724
2725 DOTGraphTraits (bool isSimple=false) : DefaultDOTGraphTraits(isSimple) {}
2726
2727 static std::string getGraphName(const ScheduleDAG *G) {
2728 return G->MF.getName();
2729 }
2730
2731 static bool renderGraphFromBottomUp() {
2732 return true;
2733 }
2734
2735 static bool isNodeHidden(const SUnit *Node) {
2736 return (Node->NumPreds > 10 || Node->NumSuccs > 10);
2737 }
2738
2739 static bool hasNodeAddressLabel(const SUnit *Node,
2740 const ScheduleDAG *Graph) {
2741 return false;
2742 }
2743
2744 /// If you want to override the dot attributes printed for a particular
2745 /// edge, override this method.
2746 static std::string getEdgeAttributes(const SUnit *Node,
2747 SUnitIterator EI,
2748 const ScheduleDAG *Graph) {
2749 if (EI.isArtificialDep())
2750 return "color=cyan,style=dashed";
2751 if (EI.isCtrlDep())
2752 return "color=blue,style=dashed";
2753 return "";
2754 }
2755
2756 static std::string getNodeLabel(const SUnit *SU, const ScheduleDAG *G) {
2757 std::string Str;
2758 raw_string_ostream SS(Str);
2759 SS << "SU(" << SU->NodeNum << ')';
2760 return SS.str();
2761 }
2762 static std::string getNodeDescription(const SUnit *SU, const ScheduleDAG *G) {
2763 return G->getGraphNodeLabel(SU);
2764 }
2765
2766 static std::string getNodeAttributes(const SUnit *N,
2767 const ScheduleDAG *Graph) {
2768 std::string Str("shape=Mrecord");
2769 const SchedDFSResult *DFS =
2770 static_cast<const ScheduleDAGMI*>(Graph)->getDFSResult();
2771 if (DFS) {
2772 Str += ",style=filled,fillcolor=\"#";
2773 Str += DOT::getColorString(DFS->getSubtreeID(N));
2774 Str += '"';
2775 }
2776 return Str;
2777 }
2778};
2779} // namespace llvm
2780#endif // NDEBUG
2781
2782/// viewGraph - Pop up a ghostview window with the reachable parts of the DAG
2783/// rendered using 'dot'.
2784///
2785void ScheduleDAGMI::viewGraph(const Twine &Name, const Twine &Title) {
2786#ifndef NDEBUG
2787 ViewGraph(this, Name, false, Title);
2788#else
2789 errs() << "ScheduleDAGMI::viewGraph is only available in debug builds on "
2790 << "systems with Graphviz or gv!\n";
2791#endif // NDEBUG
2792}
2793
2794/// Out-of-line implementation with no arguments is handy for gdb.
2795void ScheduleDAGMI::viewGraph() {
2796 viewGraph(getDAGName(), "Scheduling-Units Graph for " + getDAGName());
2797}