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Dan Gohman343f0c02008-11-19 23:18:57 +00001//===---- ScheduleDAG.cpp - Implement the ScheduleDAG class ---------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This implements the ScheduleDAG class, which is a base class used by
11// scheduling implementation classes.
12//
13//===----------------------------------------------------------------------===//
14
15#define DEBUG_TYPE "pre-RA-sched"
16#include "llvm/CodeGen/ScheduleDAG.h"
Dan Gohmanfc54c552009-01-15 22:18:12 +000017#include "llvm/CodeGen/ScheduleHazardRecognizer.h"
Andrew Trick2da8bc82010-12-24 05:03:26 +000018#include "llvm/CodeGen/SelectionDAGNodes.h"
Dan Gohman343f0c02008-11-19 23:18:57 +000019#include "llvm/Target/TargetMachine.h"
20#include "llvm/Target/TargetInstrInfo.h"
21#include "llvm/Target/TargetRegisterInfo.h"
Andrew Trick4cb971c2011-06-15 17:16:12 +000022#include "llvm/Support/CommandLine.h"
Dan Gohman343f0c02008-11-19 23:18:57 +000023#include "llvm/Support/Debug.h"
Daniel Dunbar3f0e8302009-07-24 09:53:24 +000024#include "llvm/Support/raw_ostream.h"
Dan Gohman40362062008-11-20 01:41:34 +000025#include <climits>
Dan Gohman343f0c02008-11-19 23:18:57 +000026using namespace llvm;
27
Andrew Trick4cb971c2011-06-15 17:16:12 +000028#ifndef NDEBUG
Benjamin Kramera67f14b2011-08-19 01:42:18 +000029static cl::opt<bool> StressSchedOpt(
Andrew Trick4cb971c2011-06-15 17:16:12 +000030 "stress-sched", cl::Hidden, cl::init(false),
31 cl::desc("Stress test instruction scheduling"));
32#endif
33
David Blaikie2d24e2a2011-12-20 02:50:00 +000034void SchedulingPriorityQueue::anchor() { }
35
Dan Gohman79ce2762009-01-15 19:20:50 +000036ScheduleDAG::ScheduleDAG(MachineFunction &mf)
Dan Gohman47ac0f02009-02-11 04:27:20 +000037 : TM(mf.getTarget()),
Dan Gohman79ce2762009-01-15 19:20:50 +000038 TII(TM.getInstrInfo()),
39 TRI(TM.getRegisterInfo()),
Dan Gohman79ce2762009-01-15 19:20:50 +000040 MF(mf), MRI(mf.getRegInfo()),
Dan Gohman9e64bbb2009-02-10 23:27:53 +000041 EntrySU(), ExitSU() {
Andrew Trick4cb971c2011-06-15 17:16:12 +000042#ifndef NDEBUG
43 StressSched = StressSchedOpt;
44#endif
Dan Gohman343f0c02008-11-19 23:18:57 +000045}
46
47ScheduleDAG::~ScheduleDAG() {}
48
Andrew Trick47c14452012-03-07 05:21:52 +000049/// Clear the DAG state (e.g. between scheduling regions).
50void ScheduleDAG::clearDAG() {
51 SUnits.clear();
52 EntrySU = SUnit();
53 ExitSU = SUnit();
54}
55
Andrew Trick2da8bc82010-12-24 05:03:26 +000056/// getInstrDesc helper to handle SDNodes.
Evan Chenge837dea2011-06-28 19:10:37 +000057const MCInstrDesc *ScheduleDAG::getNodeDesc(const SDNode *Node) const {
Andrew Trick24312232010-12-24 06:46:50 +000058 if (!Node || !Node->isMachineOpcode()) return NULL;
Andrew Trick2da8bc82010-12-24 05:03:26 +000059 return &TII->get(Node->getMachineOpcode());
60}
61
Dan Gohmanc6b680e2008-12-16 01:05:52 +000062/// addPred - This adds the specified edge as a pred of the current node if
63/// not already. It also adds the current node as a successor of the
64/// specified node.
Andrew Trick92e94662011-02-04 03:18:17 +000065bool SUnit::addPred(const SDep &D) {
Dan Gohmanc6b680e2008-12-16 01:05:52 +000066 // If this node already has this depenence, don't add a redundant one.
Andrew Trick9df55ee2012-06-13 02:39:00 +000067 for (SmallVector<SDep, 4>::iterator I = Preds.begin(), E = Preds.end();
68 I != E; ++I) {
69 if (I->overlaps(D)) {
70 // Extend the latency if needed. Equivalent to removePred(I) + addPred(D).
71 if (I->getLatency() < D.getLatency()) {
72 SUnit *PredSU = I->getSUnit();
73 // Find the corresponding successor in N.
74 SDep ForwardD = *I;
75 ForwardD.setSUnit(this);
76 for (SmallVector<SDep, 4>::iterator II = PredSU->Succs.begin(),
77 EE = PredSU->Succs.end(); II != EE; ++II) {
78 if (*II == ForwardD) {
79 II->setLatency(D.getLatency());
80 break;
81 }
82 }
83 I->setLatency(D.getLatency());
84 }
Andrew Trick92e94662011-02-04 03:18:17 +000085 return false;
Andrew Trick9df55ee2012-06-13 02:39:00 +000086 }
87 }
Dan Gohmanc6b680e2008-12-16 01:05:52 +000088 // Now add a corresponding succ to N.
89 SDep P = D;
90 P.setSUnit(this);
91 SUnit *N = D.getSUnit();
Dan Gohmanc6b680e2008-12-16 01:05:52 +000092 // Update the bookkeeping.
93 if (D.getKind() == SDep::Data) {
Reid Klecknerc277ab02009-09-30 20:15:38 +000094 assert(NumPreds < UINT_MAX && "NumPreds will overflow!");
95 assert(N->NumSuccs < UINT_MAX && "NumSuccs will overflow!");
Dan Gohmanc6b680e2008-12-16 01:05:52 +000096 ++NumPreds;
97 ++N->NumSuccs;
98 }
Reid Klecknerc277ab02009-09-30 20:15:38 +000099 if (!N->isScheduled) {
100 assert(NumPredsLeft < UINT_MAX && "NumPredsLeft will overflow!");
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000101 ++NumPredsLeft;
Reid Klecknerc277ab02009-09-30 20:15:38 +0000102 }
103 if (!isScheduled) {
104 assert(N->NumSuccsLeft < UINT_MAX && "NumSuccsLeft will overflow!");
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000105 ++N->NumSuccsLeft;
Reid Klecknerc277ab02009-09-30 20:15:38 +0000106 }
Dan Gohman3f237442008-12-16 03:25:46 +0000107 Preds.push_back(D);
Dan Gohmana1f50e22009-01-13 19:08:45 +0000108 N->Succs.push_back(P);
Dan Gohmana80c8592009-01-05 22:40:26 +0000109 if (P.getLatency() != 0) {
110 this->setDepthDirty();
111 N->setHeightDirty();
112 }
Andrew Trick92e94662011-02-04 03:18:17 +0000113 return true;
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000114}
115
116/// removePred - This removes the specified edge as a pred of the current
117/// node if it exists. It also removes the current node as a successor of
118/// the specified node.
119void SUnit::removePred(const SDep &D) {
120 // Find the matching predecessor.
121 for (SmallVector<SDep, 4>::iterator I = Preds.begin(), E = Preds.end();
122 I != E; ++I)
123 if (*I == D) {
124 bool FoundSucc = false;
125 // Find the corresponding successor in N.
126 SDep P = D;
127 P.setSUnit(this);
128 SUnit *N = D.getSUnit();
129 for (SmallVector<SDep, 4>::iterator II = N->Succs.begin(),
130 EE = N->Succs.end(); II != EE; ++II)
131 if (*II == P) {
132 FoundSucc = true;
133 N->Succs.erase(II);
134 break;
135 }
136 assert(FoundSucc && "Mismatching preds / succs lists!");
Duncan Sands1f6a3292011-08-12 14:54:45 +0000137 (void)FoundSucc;
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000138 Preds.erase(I);
Dan Gohmana1f50e22009-01-13 19:08:45 +0000139 // Update the bookkeeping.
140 if (P.getKind() == SDep::Data) {
Reid Klecknerc277ab02009-09-30 20:15:38 +0000141 assert(NumPreds > 0 && "NumPreds will underflow!");
142 assert(N->NumSuccs > 0 && "NumSuccs will underflow!");
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000143 --NumPreds;
144 --N->NumSuccs;
145 }
Reid Klecknerc277ab02009-09-30 20:15:38 +0000146 if (!N->isScheduled) {
147 assert(NumPredsLeft > 0 && "NumPredsLeft will underflow!");
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000148 --NumPredsLeft;
Reid Klecknerc277ab02009-09-30 20:15:38 +0000149 }
150 if (!isScheduled) {
151 assert(N->NumSuccsLeft > 0 && "NumSuccsLeft will underflow!");
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000152 --N->NumSuccsLeft;
Reid Klecknerc277ab02009-09-30 20:15:38 +0000153 }
Dan Gohmana80c8592009-01-05 22:40:26 +0000154 if (P.getLatency() != 0) {
155 this->setDepthDirty();
156 N->setHeightDirty();
157 }
Dan Gohmanc6b680e2008-12-16 01:05:52 +0000158 return;
159 }
160}
161
Dan Gohman3f237442008-12-16 03:25:46 +0000162void SUnit::setDepthDirty() {
Dan Gohman8044e9b2008-12-22 21:11:33 +0000163 if (!isDepthCurrent) return;
Dan Gohman3f237442008-12-16 03:25:46 +0000164 SmallVector<SUnit*, 8> WorkList;
165 WorkList.push_back(this);
Dan Gohman8044e9b2008-12-22 21:11:33 +0000166 do {
Dan Gohmane19c6362008-12-20 16:42:33 +0000167 SUnit *SU = WorkList.pop_back_val();
Dan Gohman3f237442008-12-16 03:25:46 +0000168 SU->isDepthCurrent = false;
Dan Gohmanf89e6e62008-12-20 16:34:57 +0000169 for (SUnit::const_succ_iterator I = SU->Succs.begin(),
Dan Gohman8044e9b2008-12-22 21:11:33 +0000170 E = SU->Succs.end(); I != E; ++I) {
171 SUnit *SuccSU = I->getSUnit();
172 if (SuccSU->isDepthCurrent)
173 WorkList.push_back(SuccSU);
174 }
175 } while (!WorkList.empty());
Dan Gohman3f237442008-12-16 03:25:46 +0000176}
177
178void SUnit::setHeightDirty() {
Dan Gohman8044e9b2008-12-22 21:11:33 +0000179 if (!isHeightCurrent) return;
Dan Gohman3f237442008-12-16 03:25:46 +0000180 SmallVector<SUnit*, 8> WorkList;
181 WorkList.push_back(this);
Dan Gohman8044e9b2008-12-22 21:11:33 +0000182 do {
Dan Gohmane19c6362008-12-20 16:42:33 +0000183 SUnit *SU = WorkList.pop_back_val();
Dan Gohman3f237442008-12-16 03:25:46 +0000184 SU->isHeightCurrent = false;
Dan Gohmanf89e6e62008-12-20 16:34:57 +0000185 for (SUnit::const_pred_iterator I = SU->Preds.begin(),
Dan Gohman8044e9b2008-12-22 21:11:33 +0000186 E = SU->Preds.end(); I != E; ++I) {
187 SUnit *PredSU = I->getSUnit();
188 if (PredSU->isHeightCurrent)
189 WorkList.push_back(PredSU);
190 }
191 } while (!WorkList.empty());
Dan Gohman3f237442008-12-16 03:25:46 +0000192}
193
194/// setDepthToAtLeast - Update this node's successors to reflect the
195/// fact that this node's depth just increased.
196///
David Goodwin557bbe62009-11-20 19:32:48 +0000197void SUnit::setDepthToAtLeast(unsigned NewDepth) {
198 if (NewDepth <= getDepth())
Dan Gohman3f237442008-12-16 03:25:46 +0000199 return;
200 setDepthDirty();
201 Depth = NewDepth;
202 isDepthCurrent = true;
203}
204
205/// setHeightToAtLeast - Update this node's predecessors to reflect the
206/// fact that this node's height just increased.
207///
David Goodwin557bbe62009-11-20 19:32:48 +0000208void SUnit::setHeightToAtLeast(unsigned NewHeight) {
209 if (NewHeight <= getHeight())
Dan Gohman3f237442008-12-16 03:25:46 +0000210 return;
211 setHeightDirty();
212 Height = NewHeight;
213 isHeightCurrent = true;
214}
215
216/// ComputeDepth - Calculate the maximal path from the node to the exit.
217///
David Goodwin557bbe62009-11-20 19:32:48 +0000218void SUnit::ComputeDepth() {
Dan Gohman3f237442008-12-16 03:25:46 +0000219 SmallVector<SUnit*, 8> WorkList;
220 WorkList.push_back(this);
Dan Gohman1578f842008-12-23 17:22:32 +0000221 do {
Dan Gohman3f237442008-12-16 03:25:46 +0000222 SUnit *Cur = WorkList.back();
223
224 bool Done = true;
225 unsigned MaxPredDepth = 0;
226 for (SUnit::const_pred_iterator I = Cur->Preds.begin(),
227 E = Cur->Preds.end(); I != E; ++I) {
228 SUnit *PredSU = I->getSUnit();
229 if (PredSU->isDepthCurrent)
230 MaxPredDepth = std::max(MaxPredDepth,
231 PredSU->Depth + I->getLatency());
232 else {
233 Done = false;
234 WorkList.push_back(PredSU);
235 }
236 }
237
238 if (Done) {
239 WorkList.pop_back();
240 if (MaxPredDepth != Cur->Depth) {
241 Cur->setDepthDirty();
242 Cur->Depth = MaxPredDepth;
243 }
244 Cur->isDepthCurrent = true;
245 }
Dan Gohman1578f842008-12-23 17:22:32 +0000246 } while (!WorkList.empty());
Dan Gohman3f237442008-12-16 03:25:46 +0000247}
248
249/// ComputeHeight - Calculate the maximal path from the node to the entry.
250///
David Goodwin557bbe62009-11-20 19:32:48 +0000251void SUnit::ComputeHeight() {
Dan Gohman3f237442008-12-16 03:25:46 +0000252 SmallVector<SUnit*, 8> WorkList;
253 WorkList.push_back(this);
Dan Gohman1578f842008-12-23 17:22:32 +0000254 do {
Dan Gohman3f237442008-12-16 03:25:46 +0000255 SUnit *Cur = WorkList.back();
256
257 bool Done = true;
258 unsigned MaxSuccHeight = 0;
259 for (SUnit::const_succ_iterator I = Cur->Succs.begin(),
260 E = Cur->Succs.end(); I != E; ++I) {
261 SUnit *SuccSU = I->getSUnit();
262 if (SuccSU->isHeightCurrent)
263 MaxSuccHeight = std::max(MaxSuccHeight,
264 SuccSU->Height + I->getLatency());
265 else {
266 Done = false;
267 WorkList.push_back(SuccSU);
268 }
269 }
270
271 if (Done) {
272 WorkList.pop_back();
273 if (MaxSuccHeight != Cur->Height) {
274 Cur->setHeightDirty();
275 Cur->Height = MaxSuccHeight;
276 }
277 Cur->isHeightCurrent = true;
278 }
Dan Gohman1578f842008-12-23 17:22:32 +0000279 } while (!WorkList.empty());
Dan Gohman3f237442008-12-16 03:25:46 +0000280}
281
Dan Gohman343f0c02008-11-19 23:18:57 +0000282/// SUnit - Scheduling unit. It's an wrapper around either a single SDNode or
283/// a group of nodes flagged together.
284void SUnit::dump(const ScheduleDAG *G) const {
David Greene4b134d12010-01-05 01:25:41 +0000285 dbgs() << "SU(" << NodeNum << "): ";
Dan Gohman343f0c02008-11-19 23:18:57 +0000286 G->dumpNode(this);
287}
288
289void SUnit::dumpAll(const ScheduleDAG *G) const {
290 dump(G);
291
David Greene4b134d12010-01-05 01:25:41 +0000292 dbgs() << " # preds left : " << NumPredsLeft << "\n";
293 dbgs() << " # succs left : " << NumSuccsLeft << "\n";
Andrew Trick92e94662011-02-04 03:18:17 +0000294 dbgs() << " # rdefs left : " << NumRegDefsLeft << "\n";
David Greene4b134d12010-01-05 01:25:41 +0000295 dbgs() << " Latency : " << Latency << "\n";
296 dbgs() << " Depth : " << Depth << "\n";
297 dbgs() << " Height : " << Height << "\n";
Dan Gohman343f0c02008-11-19 23:18:57 +0000298
299 if (Preds.size() != 0) {
David Greene4b134d12010-01-05 01:25:41 +0000300 dbgs() << " Predecessors:\n";
Dan Gohman343f0c02008-11-19 23:18:57 +0000301 for (SUnit::const_succ_iterator I = Preds.begin(), E = Preds.end();
302 I != E; ++I) {
David Greene4b134d12010-01-05 01:25:41 +0000303 dbgs() << " ";
Dan Gohman54e4c362008-12-09 22:54:47 +0000304 switch (I->getKind()) {
David Greene4b134d12010-01-05 01:25:41 +0000305 case SDep::Data: dbgs() << "val "; break;
306 case SDep::Anti: dbgs() << "anti"; break;
307 case SDep::Output: dbgs() << "out "; break;
308 case SDep::Order: dbgs() << "ch "; break;
Dan Gohman54e4c362008-12-09 22:54:47 +0000309 }
Jakob Stoklund Olesen0b923d92012-02-17 21:44:51 +0000310 dbgs() << "SU(" << I->getSUnit()->NodeNum << ")";
Dan Gohman54e4c362008-12-09 22:54:47 +0000311 if (I->isArtificial())
David Greene4b134d12010-01-05 01:25:41 +0000312 dbgs() << " *";
313 dbgs() << ": Latency=" << I->getLatency();
Andrew Trick4cb971c2011-06-15 17:16:12 +0000314 if (I->isAssignedRegDep())
Jakob Stoklund Olesen0b923d92012-02-17 21:44:51 +0000315 dbgs() << " Reg=" << PrintReg(I->getReg(), G->TRI);
David Greene4b134d12010-01-05 01:25:41 +0000316 dbgs() << "\n";
Dan Gohman343f0c02008-11-19 23:18:57 +0000317 }
318 }
319 if (Succs.size() != 0) {
David Greene4b134d12010-01-05 01:25:41 +0000320 dbgs() << " Successors:\n";
Dan Gohman343f0c02008-11-19 23:18:57 +0000321 for (SUnit::const_succ_iterator I = Succs.begin(), E = Succs.end();
322 I != E; ++I) {
David Greene4b134d12010-01-05 01:25:41 +0000323 dbgs() << " ";
Dan Gohman54e4c362008-12-09 22:54:47 +0000324 switch (I->getKind()) {
David Greene4b134d12010-01-05 01:25:41 +0000325 case SDep::Data: dbgs() << "val "; break;
326 case SDep::Anti: dbgs() << "anti"; break;
327 case SDep::Output: dbgs() << "out "; break;
328 case SDep::Order: dbgs() << "ch "; break;
Dan Gohman54e4c362008-12-09 22:54:47 +0000329 }
Jakob Stoklund Olesen0b923d92012-02-17 21:44:51 +0000330 dbgs() << "SU(" << I->getSUnit()->NodeNum << ")";
Dan Gohman54e4c362008-12-09 22:54:47 +0000331 if (I->isArtificial())
David Greene4b134d12010-01-05 01:25:41 +0000332 dbgs() << " *";
333 dbgs() << ": Latency=" << I->getLatency();
334 dbgs() << "\n";
Dan Gohman343f0c02008-11-19 23:18:57 +0000335 }
336 }
David Greene4b134d12010-01-05 01:25:41 +0000337 dbgs() << "\n";
Dan Gohman343f0c02008-11-19 23:18:57 +0000338}
Dan Gohmana1e6d362008-11-20 01:26:25 +0000339
340#ifndef NDEBUG
Andrew Trick4c727202012-03-07 05:21:36 +0000341/// VerifyScheduledDAG - Verify that all SUnits were scheduled and that
342/// their state is consistent. Return the number of scheduled nodes.
Dan Gohmana1e6d362008-11-20 01:26:25 +0000343///
Andrew Trick4c727202012-03-07 05:21:36 +0000344unsigned ScheduleDAG::VerifyScheduledDAG(bool isBottomUp) {
Dan Gohmana1e6d362008-11-20 01:26:25 +0000345 bool AnyNotSched = false;
346 unsigned DeadNodes = 0;
Dan Gohmana1e6d362008-11-20 01:26:25 +0000347 for (unsigned i = 0, e = SUnits.size(); i != e; ++i) {
348 if (!SUnits[i].isScheduled) {
349 if (SUnits[i].NumPreds == 0 && SUnits[i].NumSuccs == 0) {
350 ++DeadNodes;
351 continue;
352 }
353 if (!AnyNotSched)
David Greene4b134d12010-01-05 01:25:41 +0000354 dbgs() << "*** Scheduling failed! ***\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000355 SUnits[i].dump(this);
David Greene4b134d12010-01-05 01:25:41 +0000356 dbgs() << "has not been scheduled!\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000357 AnyNotSched = true;
358 }
Dan Gohman3f237442008-12-16 03:25:46 +0000359 if (SUnits[i].isScheduled &&
David Goodwin4de099d2009-11-03 20:57:50 +0000360 (isBottomUp ? SUnits[i].getHeight() : SUnits[i].getDepth()) >
Dan Gohman3f237442008-12-16 03:25:46 +0000361 unsigned(INT_MAX)) {
Dan Gohmana1e6d362008-11-20 01:26:25 +0000362 if (!AnyNotSched)
David Greene4b134d12010-01-05 01:25:41 +0000363 dbgs() << "*** Scheduling failed! ***\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000364 SUnits[i].dump(this);
David Greene4b134d12010-01-05 01:25:41 +0000365 dbgs() << "has an unexpected "
Dan Gohman3f237442008-12-16 03:25:46 +0000366 << (isBottomUp ? "Height" : "Depth") << " value!\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000367 AnyNotSched = true;
368 }
369 if (isBottomUp) {
370 if (SUnits[i].NumSuccsLeft != 0) {
371 if (!AnyNotSched)
David Greene4b134d12010-01-05 01:25:41 +0000372 dbgs() << "*** Scheduling failed! ***\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000373 SUnits[i].dump(this);
David Greene4b134d12010-01-05 01:25:41 +0000374 dbgs() << "has successors left!\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000375 AnyNotSched = true;
376 }
377 } else {
378 if (SUnits[i].NumPredsLeft != 0) {
379 if (!AnyNotSched)
David Greene4b134d12010-01-05 01:25:41 +0000380 dbgs() << "*** Scheduling failed! ***\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000381 SUnits[i].dump(this);
David Greene4b134d12010-01-05 01:25:41 +0000382 dbgs() << "has predecessors left!\n";
Dan Gohmana1e6d362008-11-20 01:26:25 +0000383 AnyNotSched = true;
384 }
385 }
386 }
Dan Gohmana1e6d362008-11-20 01:26:25 +0000387 assert(!AnyNotSched);
Andrew Trick4c727202012-03-07 05:21:36 +0000388 return SUnits.size() - DeadNodes;
Dan Gohmana1e6d362008-11-20 01:26:25 +0000389}
390#endif
Dan Gohman21d90032008-11-25 00:52:40 +0000391
John Mosby9f71f802010-06-30 03:40:54 +0000392/// InitDAGTopologicalSorting - create the initial topological
Dan Gohman21d90032008-11-25 00:52:40 +0000393/// ordering from the DAG to be scheduled.
394///
John Mosby9f71f802010-06-30 03:40:54 +0000395/// The idea of the algorithm is taken from
Dan Gohman21d90032008-11-25 00:52:40 +0000396/// "Online algorithms for managing the topological order of
397/// a directed acyclic graph" by David J. Pearce and Paul H.J. Kelly
John Mosby9f71f802010-06-30 03:40:54 +0000398/// This is the MNR algorithm, which was first introduced by
399/// A. Marchetti-Spaccamela, U. Nanni and H. Rohnert in
Dan Gohman21d90032008-11-25 00:52:40 +0000400/// "Maintaining a topological order under edge insertions".
401///
John Mosby9f71f802010-06-30 03:40:54 +0000402/// Short description of the algorithm:
Dan Gohman21d90032008-11-25 00:52:40 +0000403///
404/// Topological ordering, ord, of a DAG maps each node to a topological
405/// index so that for all edges X->Y it is the case that ord(X) < ord(Y).
406///
John Mosby9f71f802010-06-30 03:40:54 +0000407/// This means that if there is a path from the node X to the node Z,
Dan Gohman21d90032008-11-25 00:52:40 +0000408/// then ord(X) < ord(Z).
409///
410/// This property can be used to check for reachability of nodes:
John Mosby9f71f802010-06-30 03:40:54 +0000411/// if Z is reachable from X, then an insertion of the edge Z->X would
Dan Gohman21d90032008-11-25 00:52:40 +0000412/// create a cycle.
413///
414/// The algorithm first computes a topological ordering for the DAG by
415/// initializing the Index2Node and Node2Index arrays and then tries to keep
416/// the ordering up-to-date after edge insertions by reordering the DAG.
417///
418/// On insertion of the edge X->Y, the algorithm first marks by calling DFS
419/// the nodes reachable from Y, and then shifts them using Shift to lie
420/// immediately after X in Index2Node.
421void ScheduleDAGTopologicalSort::InitDAGTopologicalSorting() {
422 unsigned DAGSize = SUnits.size();
423 std::vector<SUnit*> WorkList;
424 WorkList.reserve(DAGSize);
425
426 Index2Node.resize(DAGSize);
427 Node2Index.resize(DAGSize);
428
429 // Initialize the data structures.
430 for (unsigned i = 0, e = DAGSize; i != e; ++i) {
431 SUnit *SU = &SUnits[i];
432 int NodeNum = SU->NodeNum;
433 unsigned Degree = SU->Succs.size();
434 // Temporarily use the Node2Index array as scratch space for degree counts.
435 Node2Index[NodeNum] = Degree;
436
437 // Is it a node without dependencies?
438 if (Degree == 0) {
439 assert(SU->Succs.empty() && "SUnit should have no successors");
440 // Collect leaf nodes.
441 WorkList.push_back(SU);
442 }
John Mosby9f71f802010-06-30 03:40:54 +0000443 }
Dan Gohman21d90032008-11-25 00:52:40 +0000444
445 int Id = DAGSize;
446 while (!WorkList.empty()) {
447 SUnit *SU = WorkList.back();
448 WorkList.pop_back();
449 Allocate(SU->NodeNum, --Id);
450 for (SUnit::const_pred_iterator I = SU->Preds.begin(), E = SU->Preds.end();
451 I != E; ++I) {
Dan Gohman54e4c362008-12-09 22:54:47 +0000452 SUnit *SU = I->getSUnit();
Dan Gohman21d90032008-11-25 00:52:40 +0000453 if (!--Node2Index[SU->NodeNum])
454 // If all dependencies of the node are processed already,
455 // then the node can be computed now.
456 WorkList.push_back(SU);
457 }
458 }
459
460 Visited.resize(DAGSize);
461
462#ifndef NDEBUG
463 // Check correctness of the ordering
464 for (unsigned i = 0, e = DAGSize; i != e; ++i) {
465 SUnit *SU = &SUnits[i];
466 for (SUnit::const_pred_iterator I = SU->Preds.begin(), E = SU->Preds.end();
467 I != E; ++I) {
John Mosby9f71f802010-06-30 03:40:54 +0000468 assert(Node2Index[SU->NodeNum] > Node2Index[I->getSUnit()->NodeNum] &&
Dan Gohman21d90032008-11-25 00:52:40 +0000469 "Wrong topological sorting");
470 }
471 }
472#endif
473}
474
Chris Lattner7a2bdde2011-04-15 05:18:47 +0000475/// AddPred - Updates the topological ordering to accommodate an edge
Dan Gohman21d90032008-11-25 00:52:40 +0000476/// to be added from SUnit X to SUnit Y.
477void ScheduleDAGTopologicalSort::AddPred(SUnit *Y, SUnit *X) {
478 int UpperBound, LowerBound;
479 LowerBound = Node2Index[Y->NodeNum];
480 UpperBound = Node2Index[X->NodeNum];
481 bool HasLoop = false;
482 // Is Ord(X) < Ord(Y) ?
483 if (LowerBound < UpperBound) {
484 // Update the topological order.
485 Visited.reset();
486 DFS(Y, UpperBound, HasLoop);
487 assert(!HasLoop && "Inserted edge creates a loop!");
488 // Recompute topological indexes.
489 Shift(Visited, LowerBound, UpperBound);
490 }
491}
492
Chris Lattner7a2bdde2011-04-15 05:18:47 +0000493/// RemovePred - Updates the topological ordering to accommodate an
Dan Gohman21d90032008-11-25 00:52:40 +0000494/// an edge to be removed from the specified node N from the predecessors
495/// of the current node M.
496void ScheduleDAGTopologicalSort::RemovePred(SUnit *M, SUnit *N) {
497 // InitDAGTopologicalSorting();
498}
499
500/// DFS - Make a DFS traversal to mark all nodes reachable from SU and mark
501/// all nodes affected by the edge insertion. These nodes will later get new
502/// topological indexes by means of the Shift method.
Dan Gohmane3a49cd2008-12-09 16:37:48 +0000503void ScheduleDAGTopologicalSort::DFS(const SUnit *SU, int UpperBound,
Chris Lattner50782932010-12-20 00:50:16 +0000504 bool &HasLoop) {
Dan Gohman21d90032008-11-25 00:52:40 +0000505 std::vector<const SUnit*> WorkList;
John Mosby9f71f802010-06-30 03:40:54 +0000506 WorkList.reserve(SUnits.size());
Dan Gohman21d90032008-11-25 00:52:40 +0000507
508 WorkList.push_back(SU);
Dan Gohman1578f842008-12-23 17:22:32 +0000509 do {
Dan Gohman21d90032008-11-25 00:52:40 +0000510 SU = WorkList.back();
511 WorkList.pop_back();
512 Visited.set(SU->NodeNum);
513 for (int I = SU->Succs.size()-1; I >= 0; --I) {
Dan Gohman54e4c362008-12-09 22:54:47 +0000514 int s = SU->Succs[I].getSUnit()->NodeNum;
Dan Gohman21d90032008-11-25 00:52:40 +0000515 if (Node2Index[s] == UpperBound) {
John Mosby9f71f802010-06-30 03:40:54 +0000516 HasLoop = true;
Dan Gohman21d90032008-11-25 00:52:40 +0000517 return;
518 }
519 // Visit successors if not already and in affected region.
520 if (!Visited.test(s) && Node2Index[s] < UpperBound) {
Dan Gohman54e4c362008-12-09 22:54:47 +0000521 WorkList.push_back(SU->Succs[I].getSUnit());
John Mosby9f71f802010-06-30 03:40:54 +0000522 }
523 }
Dan Gohman1578f842008-12-23 17:22:32 +0000524 } while (!WorkList.empty());
Dan Gohman21d90032008-11-25 00:52:40 +0000525}
526
John Mosby9f71f802010-06-30 03:40:54 +0000527/// Shift - Renumber the nodes so that the topological ordering is
Dan Gohman21d90032008-11-25 00:52:40 +0000528/// preserved.
John Mosby9f71f802010-06-30 03:40:54 +0000529void ScheduleDAGTopologicalSort::Shift(BitVector& Visited, int LowerBound,
Dan Gohmane3a49cd2008-12-09 16:37:48 +0000530 int UpperBound) {
Dan Gohman21d90032008-11-25 00:52:40 +0000531 std::vector<int> L;
532 int shift = 0;
533 int i;
534
535 for (i = LowerBound; i <= UpperBound; ++i) {
536 // w is node at topological index i.
537 int w = Index2Node[i];
538 if (Visited.test(w)) {
539 // Unmark.
540 Visited.reset(w);
541 L.push_back(w);
542 shift = shift + 1;
543 } else {
544 Allocate(w, i - shift);
545 }
546 }
547
548 for (unsigned j = 0; j < L.size(); ++j) {
549 Allocate(L[j], i - shift);
550 i = i + 1;
551 }
552}
553
554
555/// WillCreateCycle - Returns true if adding an edge from SU to TargetSU will
556/// create a cycle.
557bool ScheduleDAGTopologicalSort::WillCreateCycle(SUnit *SU, SUnit *TargetSU) {
558 if (IsReachable(TargetSU, SU))
559 return true;
560 for (SUnit::pred_iterator I = SU->Preds.begin(), E = SU->Preds.end();
561 I != E; ++I)
Dan Gohman54e4c362008-12-09 22:54:47 +0000562 if (I->isAssignedRegDep() &&
563 IsReachable(TargetSU, I->getSUnit()))
Dan Gohman21d90032008-11-25 00:52:40 +0000564 return true;
565 return false;
566}
567
568/// IsReachable - Checks if SU is reachable from TargetSU.
Dan Gohmane3a49cd2008-12-09 16:37:48 +0000569bool ScheduleDAGTopologicalSort::IsReachable(const SUnit *SU,
570 const SUnit *TargetSU) {
Dan Gohman21d90032008-11-25 00:52:40 +0000571 // If insertion of the edge SU->TargetSU would create a cycle
572 // then there is a path from TargetSU to SU.
573 int UpperBound, LowerBound;
574 LowerBound = Node2Index[TargetSU->NodeNum];
575 UpperBound = Node2Index[SU->NodeNum];
576 bool HasLoop = false;
577 // Is Ord(TargetSU) < Ord(SU) ?
578 if (LowerBound < UpperBound) {
579 Visited.reset();
John Mosby9f71f802010-06-30 03:40:54 +0000580 // There may be a path from TargetSU to SU. Check for it.
Dan Gohman21d90032008-11-25 00:52:40 +0000581 DFS(TargetSU, UpperBound, HasLoop);
582 }
583 return HasLoop;
584}
585
586/// Allocate - assign the topological index to the node n.
587void ScheduleDAGTopologicalSort::Allocate(int n, int index) {
588 Node2Index[n] = index;
589 Index2Node[index] = n;
590}
591
John Mosby9f71f802010-06-30 03:40:54 +0000592ScheduleDAGTopologicalSort::
593ScheduleDAGTopologicalSort(std::vector<SUnit> &sunits) : SUnits(sunits) {}
Dan Gohmanfc54c552009-01-15 22:18:12 +0000594
595ScheduleHazardRecognizer::~ScheduleHazardRecognizer() {}