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Evan Chengab495562006-01-25 09:14:32 +00001//===---- ScheduleDAGList.cpp - Implement a list scheduler for isel DAG ---===//
Evan Cheng31272342006-01-23 08:26:10 +00002//
3// The LLVM Compiler Infrastructure
4//
5// This file was developed by Evan Cheng and is distributed under the
6// University of Illinois Open Source License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
Evan Chengd38c22b2006-05-11 23:55:42 +000010// This implements a top-down list scheduler, using standard algorithms.
11// The basic approach uses a priority queue of available nodes to schedule.
12// One at a time, nodes are taken from the priority queue (thus in priority
13// order), checked for legality to schedule, and emitted if legal.
Chris Lattner01aa7522006-03-06 17:58:04 +000014//
15// Nodes may not be legal to schedule either due to structural hazards (e.g.
16// pipeline or resource constraints) or because an input to the instruction has
17// not completed execution.
Evan Cheng31272342006-01-23 08:26:10 +000018//
19//===----------------------------------------------------------------------===//
20
21#define DEBUG_TYPE "sched"
22#include "llvm/CodeGen/ScheduleDAG.h"
Evan Cheng9add8802006-05-04 19:16:39 +000023#include "llvm/CodeGen/SSARegMap.h"
24#include "llvm/Target/MRegisterInfo.h"
Evan Cheng31272342006-01-23 08:26:10 +000025#include "llvm/Target/TargetMachine.h"
26#include "llvm/Target/TargetInstrInfo.h"
Evan Chengab495562006-01-25 09:14:32 +000027#include "llvm/Support/Debug.h"
Chris Lattnerfa5e1c92006-03-05 23:13:56 +000028#include "llvm/ADT/Statistic.h"
Evan Chengab495562006-01-25 09:14:32 +000029#include <climits>
30#include <iostream>
Evan Cheng31272342006-01-23 08:26:10 +000031#include <queue>
32using namespace llvm;
33
Evan Chengab495562006-01-25 09:14:32 +000034namespace {
Chris Lattnerfa5e1c92006-03-05 23:13:56 +000035 Statistic<> NumNoops ("scheduler", "Number of noops inserted");
36 Statistic<> NumStalls("scheduler", "Number of pipeline stalls");
Chris Lattneraf5e26c2006-03-08 04:37:58 +000037}
Evan Chengab495562006-01-25 09:14:32 +000038
Chris Lattneraf5e26c2006-03-08 04:37:58 +000039namespace {
Chris Lattner9e95acc2006-03-09 06:37:29 +000040//===----------------------------------------------------------------------===//
41/// ScheduleDAGList - The actual list scheduler implementation. This supports
Evan Chengd38c22b2006-05-11 23:55:42 +000042/// top-down scheduling.
Chris Lattner9e95acc2006-03-09 06:37:29 +000043///
Evan Cheng31272342006-01-23 08:26:10 +000044class ScheduleDAGList : public ScheduleDAG {
45private:
Chris Lattner356183d2006-03-11 22:44:37 +000046 /// AvailableQueue - The priority queue to use for the available SUnits.
47 ///
48 SchedulingPriorityQueue *AvailableQueue;
Chris Lattner9df64752006-03-09 06:35:14 +000049
Chris Lattner572003c2006-03-12 00:38:57 +000050 /// PendingQueue - This contains all of the instructions whose operands have
51 /// been issued, but their results are not ready yet (due to the latency of
52 /// the operation). Once the operands becomes available, the instruction is
53 /// added to the AvailableQueue. This keeps track of each SUnit and the
54 /// number of cycles left to execute before the operation is available.
55 std::vector<std::pair<unsigned, SUnit*> > PendingQueue;
Evan Cheng9add8802006-05-04 19:16:39 +000056
Chris Lattnere50c0922006-03-05 22:45:01 +000057 /// HazardRec - The hazard recognizer to use.
Chris Lattner543832d2006-03-08 04:25:59 +000058 HazardRecognizer *HazardRec;
Evan Cheng9add8802006-05-04 19:16:39 +000059
Evan Cheng31272342006-01-23 08:26:10 +000060public:
61 ScheduleDAGList(SelectionDAG &dag, MachineBasicBlock *bb,
Evan Chengd38c22b2006-05-11 23:55:42 +000062 const TargetMachine &tm,
Chris Lattner356183d2006-03-11 22:44:37 +000063 SchedulingPriorityQueue *availqueue,
Chris Lattner543832d2006-03-08 04:25:59 +000064 HazardRecognizer *HR)
Evan Chengd38c22b2006-05-11 23:55:42 +000065 : ScheduleDAG(dag, bb, tm),
Chris Lattner356183d2006-03-11 22:44:37 +000066 AvailableQueue(availqueue), HazardRec(HR) {
Chris Lattnere50c0922006-03-05 22:45:01 +000067 }
Evan Chengab495562006-01-25 09:14:32 +000068
69 ~ScheduleDAGList() {
Chris Lattner543832d2006-03-08 04:25:59 +000070 delete HazardRec;
Chris Lattner356183d2006-03-11 22:44:37 +000071 delete AvailableQueue;
Evan Chengab495562006-01-25 09:14:32 +000072 }
Evan Cheng31272342006-01-23 08:26:10 +000073
74 void Schedule();
Evan Cheng31272342006-01-23 08:26:10 +000075
Evan Chengab495562006-01-25 09:14:32 +000076private:
Chris Lattner572003c2006-03-12 00:38:57 +000077 void ReleaseSucc(SUnit *SuccSU, bool isChain);
Chris Lattner063086b2006-03-11 22:34:41 +000078 void ScheduleNodeTopDown(SUnit *SU, unsigned CurCycle);
Chris Lattner399bee22006-03-09 06:48:37 +000079 void ListScheduleTopDown();
Evan Chengab495562006-01-25 09:14:32 +000080};
Chris Lattneraf5e26c2006-03-08 04:37:58 +000081} // end anonymous namespace
Evan Chengab495562006-01-25 09:14:32 +000082
Chris Lattner47639db2006-03-06 00:22:00 +000083HazardRecognizer::~HazardRecognizer() {}
84
Evan Chengc4c339c2006-01-26 00:30:29 +000085
Chris Lattner9995a0c2006-03-11 22:28:35 +000086/// Schedule - Schedule the DAG using list scheduling.
Chris Lattner9995a0c2006-03-11 22:28:35 +000087void ScheduleDAGList::Schedule() {
88 DEBUG(std::cerr << "********** List Scheduling **********\n");
89
90 // Build scheduling units.
91 BuildSchedUnits();
Evan Cheng7d693892006-05-09 07:13:34 +000092
Chris Lattner356183d2006-03-11 22:44:37 +000093 AvailableQueue->initNodes(SUnits);
Chris Lattner9995a0c2006-03-11 22:28:35 +000094
Evan Chengd38c22b2006-05-11 23:55:42 +000095 ListScheduleTopDown();
Chris Lattner9995a0c2006-03-11 22:28:35 +000096
Chris Lattner356183d2006-03-11 22:44:37 +000097 AvailableQueue->releaseState();
Chris Lattner9995a0c2006-03-11 22:28:35 +000098
99 DEBUG(std::cerr << "*** Final schedule ***\n");
100 DEBUG(dumpSchedule());
101 DEBUG(std::cerr << "\n");
102
103 // Emit in scheduled order
104 EmitSchedule();
105}
106
107//===----------------------------------------------------------------------===//
Chris Lattner9995a0c2006-03-11 22:28:35 +0000108// Top-Down Scheduling
109//===----------------------------------------------------------------------===//
110
111/// ReleaseSucc - Decrement the NumPredsLeft count of a successor. Add it to
Chris Lattner572003c2006-03-12 00:38:57 +0000112/// the PendingQueue if the count reaches zero.
113void ScheduleDAGList::ReleaseSucc(SUnit *SuccSU, bool isChain) {
Chris Lattner9995a0c2006-03-11 22:28:35 +0000114 if (!isChain)
115 SuccSU->NumPredsLeft--;
116 else
117 SuccSU->NumChainPredsLeft--;
118
Chris Lattner572003c2006-03-12 00:38:57 +0000119 assert(SuccSU->NumPredsLeft >= 0 && SuccSU->NumChainPredsLeft >= 0 &&
120 "List scheduling internal error");
Chris Lattner9995a0c2006-03-11 22:28:35 +0000121
122 if ((SuccSU->NumPredsLeft + SuccSU->NumChainPredsLeft) == 0) {
Chris Lattner572003c2006-03-12 00:38:57 +0000123 // Compute how many cycles it will be before this actually becomes
124 // available. This is the max of the start time of all predecessors plus
125 // their latencies.
126 unsigned AvailableCycle = 0;
127 for (std::set<std::pair<SUnit*, bool> >::iterator I = SuccSU->Preds.begin(),
128 E = SuccSU->Preds.end(); I != E; ++I) {
Chris Lattnera767dbf2006-03-12 09:01:41 +0000129 // If this is a token edge, we don't need to wait for the latency of the
130 // preceeding instruction (e.g. a long-latency load) unless there is also
131 // some other data dependence.
Chris Lattner86a9b602006-03-12 03:52:09 +0000132 unsigned PredDoneCycle = I->first->Cycle;
133 if (!I->second)
134 PredDoneCycle += I->first->Latency;
Chris Lattnera767dbf2006-03-12 09:01:41 +0000135 else if (I->first->Latency)
136 PredDoneCycle += 1;
Chris Lattner86a9b602006-03-12 03:52:09 +0000137
138 AvailableCycle = std::max(AvailableCycle, PredDoneCycle);
Chris Lattner572003c2006-03-12 00:38:57 +0000139 }
140
141 PendingQueue.push_back(std::make_pair(AvailableCycle, SuccSU));
Chris Lattner9995a0c2006-03-11 22:28:35 +0000142 }
143}
144
145/// ScheduleNodeTopDown - Add the node to the schedule. Decrement the pending
146/// count of its successors. If a successor pending count is zero, add it to
147/// the Available queue.
Chris Lattner356183d2006-03-11 22:44:37 +0000148void ScheduleDAGList::ScheduleNodeTopDown(SUnit *SU, unsigned CurCycle) {
Chris Lattner572003c2006-03-12 00:38:57 +0000149 DEBUG(std::cerr << "*** Scheduling [" << CurCycle << "]: ");
Chris Lattner9995a0c2006-03-11 22:28:35 +0000150 DEBUG(SU->dump(&DAG));
151
152 Sequence.push_back(SU);
Chris Lattner356183d2006-03-11 22:44:37 +0000153 SU->Cycle = CurCycle;
Chris Lattner9995a0c2006-03-11 22:28:35 +0000154
155 // Bottom up: release successors.
156 for (std::set<std::pair<SUnit*, bool> >::iterator I = SU->Succs.begin(),
Chris Lattner356183d2006-03-11 22:44:37 +0000157 E = SU->Succs.end(); I != E; ++I)
Chris Lattner572003c2006-03-12 00:38:57 +0000158 ReleaseSucc(I->first, I->second);
Chris Lattner9995a0c2006-03-11 22:28:35 +0000159}
160
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000161/// ListScheduleTopDown - The main loop of list scheduling for top-down
162/// schedulers.
Chris Lattner399bee22006-03-09 06:48:37 +0000163void ScheduleDAGList::ListScheduleTopDown() {
Chris Lattner572003c2006-03-12 00:38:57 +0000164 unsigned CurCycle = 0;
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000165 SUnit *Entry = SUnitMap[DAG.getEntryNode().Val];
Chris Lattner572003c2006-03-12 00:38:57 +0000166
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000167 // All leaves to Available queue.
Chris Lattner42e20262006-03-08 04:54:34 +0000168 for (unsigned i = 0, e = SUnits.size(); i != e; ++i) {
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000169 // It is available if it has no predecessors.
Chris Lattner572003c2006-03-12 00:38:57 +0000170 if (SUnits[i].Preds.size() == 0 && &SUnits[i] != Entry) {
Chris Lattner356183d2006-03-11 22:44:37 +0000171 AvailableQueue->push(&SUnits[i]);
Chris Lattner572003c2006-03-12 00:38:57 +0000172 SUnits[i].isAvailable = SUnits[i].isPending = true;
173 }
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000174 }
175
Chris Lattner572003c2006-03-12 00:38:57 +0000176 // Emit the entry node first.
177 ScheduleNodeTopDown(Entry, CurCycle);
178 HazardRec->EmitInstruction(Entry->Node);
179
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000180 // While Available queue is not empty, grab the node with the highest
181 // priority. If it is not ready put it back. Schedule the node.
182 std::vector<SUnit*> NotReady;
Chris Lattner572003c2006-03-12 00:38:57 +0000183 while (!AvailableQueue->empty() || !PendingQueue.empty()) {
184 // Check to see if any of the pending instructions are ready to issue. If
185 // so, add them to the available queue.
Chris Lattnera767dbf2006-03-12 09:01:41 +0000186 for (unsigned i = 0, e = PendingQueue.size(); i != e; ++i) {
Chris Lattner572003c2006-03-12 00:38:57 +0000187 if (PendingQueue[i].first == CurCycle) {
188 AvailableQueue->push(PendingQueue[i].second);
189 PendingQueue[i].second->isAvailable = true;
190 PendingQueue[i] = PendingQueue.back();
191 PendingQueue.pop_back();
192 --i; --e;
193 } else {
194 assert(PendingQueue[i].first > CurCycle && "Negative latency?");
195 }
Chris Lattnera767dbf2006-03-12 09:01:41 +0000196 }
Chris Lattner572003c2006-03-12 00:38:57 +0000197
Chris Lattnera767dbf2006-03-12 09:01:41 +0000198 // If there are no instructions available, don't try to issue anything, and
199 // don't advance the hazard recognizer.
200 if (AvailableQueue->empty()) {
201 ++CurCycle;
202 continue;
203 }
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000204
Chris Lattnera767dbf2006-03-12 09:01:41 +0000205 SUnit *FoundSUnit = 0;
206 SDNode *FoundNode = 0;
207
Chris Lattnere50c0922006-03-05 22:45:01 +0000208 bool HasNoopHazards = false;
Chris Lattner572003c2006-03-12 00:38:57 +0000209 while (!AvailableQueue->empty()) {
Chris Lattnera767dbf2006-03-12 09:01:41 +0000210 SUnit *CurSUnit = AvailableQueue->pop();
Chris Lattner0c801bd2006-03-07 05:40:43 +0000211
212 // Get the node represented by this SUnit.
Chris Lattnera767dbf2006-03-12 09:01:41 +0000213 FoundNode = CurSUnit->Node;
214
Chris Lattner0c801bd2006-03-07 05:40:43 +0000215 // If this is a pseudo op, like copyfromreg, look to see if there is a
216 // real target node flagged to it. If so, use the target node.
Chris Lattnera767dbf2006-03-12 09:01:41 +0000217 for (unsigned i = 0, e = CurSUnit->FlaggedNodes.size();
218 FoundNode->getOpcode() < ISD::BUILTIN_OP_END && i != e; ++i)
219 FoundNode = CurSUnit->FlaggedNodes[i];
Chris Lattner0c801bd2006-03-07 05:40:43 +0000220
Chris Lattnera767dbf2006-03-12 09:01:41 +0000221 HazardRecognizer::HazardType HT = HazardRec->getHazardType(FoundNode);
Chris Lattnere50c0922006-03-05 22:45:01 +0000222 if (HT == HazardRecognizer::NoHazard) {
Chris Lattnera767dbf2006-03-12 09:01:41 +0000223 FoundSUnit = CurSUnit;
Chris Lattnere50c0922006-03-05 22:45:01 +0000224 break;
225 }
226
227 // Remember if this is a noop hazard.
228 HasNoopHazards |= HT == HazardRecognizer::NoopHazard;
229
Chris Lattnera767dbf2006-03-12 09:01:41 +0000230 NotReady.push_back(CurSUnit);
Chris Lattner572003c2006-03-12 00:38:57 +0000231 }
Chris Lattnere50c0922006-03-05 22:45:01 +0000232
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000233 // Add the nodes that aren't ready back onto the available list.
Chris Lattnera767dbf2006-03-12 09:01:41 +0000234 if (!NotReady.empty()) {
235 AvailableQueue->push_all(NotReady);
236 NotReady.clear();
237 }
Chris Lattnere50c0922006-03-05 22:45:01 +0000238
239 // If we found a node to schedule, do it now.
Chris Lattnera767dbf2006-03-12 09:01:41 +0000240 if (FoundSUnit) {
241 ScheduleNodeTopDown(FoundSUnit, CurCycle);
242 HazardRec->EmitInstruction(FoundNode);
243 FoundSUnit->isScheduled = true;
244 AvailableQueue->ScheduledNode(FoundSUnit);
Chris Lattner572003c2006-03-12 00:38:57 +0000245
246 // If this is a pseudo-op node, we don't want to increment the current
247 // cycle.
Chris Lattnera767dbf2006-03-12 09:01:41 +0000248 if (FoundSUnit->Latency) // Don't increment CurCycle for pseudo-ops!
249 ++CurCycle;
Chris Lattnere50c0922006-03-05 22:45:01 +0000250 } else if (!HasNoopHazards) {
251 // Otherwise, we have a pipeline stall, but no other problem, just advance
252 // the current cycle and try again.
Chris Lattner0c801bd2006-03-07 05:40:43 +0000253 DEBUG(std::cerr << "*** Advancing cycle, no work to do\n");
Chris Lattner543832d2006-03-08 04:25:59 +0000254 HazardRec->AdvanceCycle();
Chris Lattnerfa5e1c92006-03-05 23:13:56 +0000255 ++NumStalls;
Chris Lattnera767dbf2006-03-12 09:01:41 +0000256 ++CurCycle;
Chris Lattnere50c0922006-03-05 22:45:01 +0000257 } else {
258 // Otherwise, we have no instructions to issue and we have instructions
259 // that will fault if we don't do this right. This is the case for
260 // processors without pipeline interlocks and other cases.
Chris Lattner0c801bd2006-03-07 05:40:43 +0000261 DEBUG(std::cerr << "*** Emitting noop\n");
Chris Lattner543832d2006-03-08 04:25:59 +0000262 HazardRec->EmitNoop();
Chris Lattner00b52ea2006-03-05 23:59:20 +0000263 Sequence.push_back(0); // NULL SUnit* -> noop
Chris Lattnerfa5e1c92006-03-05 23:13:56 +0000264 ++NumNoops;
Chris Lattnera767dbf2006-03-12 09:01:41 +0000265 ++CurCycle;
Chris Lattnere50c0922006-03-05 22:45:01 +0000266 }
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000267 }
268
269#ifndef NDEBUG
270 // Verify that all SUnits were scheduled.
271 bool AnyNotSched = false;
Chris Lattner42e20262006-03-08 04:54:34 +0000272 for (unsigned i = 0, e = SUnits.size(); i != e; ++i) {
273 if (SUnits[i].NumPredsLeft != 0 || SUnits[i].NumChainPredsLeft != 0) {
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000274 if (!AnyNotSched)
275 std::cerr << "*** List scheduling failed! ***\n";
Chris Lattner42e20262006-03-08 04:54:34 +0000276 SUnits[i].dump(&DAG);
Chris Lattner98ecb8e2006-03-05 21:10:33 +0000277 std::cerr << "has not been scheduled!\n";
278 AnyNotSched = true;
279 }
280 }
281 assert(!AnyNotSched);
282#endif
283}
284
Chris Lattner9df64752006-03-09 06:35:14 +0000285//===----------------------------------------------------------------------===//
Chris Lattner6398c132006-03-09 07:38:27 +0000286// LatencyPriorityQueue Implementation
287//===----------------------------------------------------------------------===//
288//
289// This is a SchedulingPriorityQueue that schedules using latency information to
290// reduce the length of the critical path through the basic block.
291//
292namespace {
293 class LatencyPriorityQueue;
294
295 /// Sorting functions for the Available queue.
296 struct latency_sort : public std::binary_function<SUnit*, SUnit*, bool> {
297 LatencyPriorityQueue *PQ;
298 latency_sort(LatencyPriorityQueue *pq) : PQ(pq) {}
299 latency_sort(const latency_sort &RHS) : PQ(RHS.PQ) {}
300
301 bool operator()(const SUnit* left, const SUnit* right) const;
302 };
303} // end anonymous namespace
304
305namespace {
306 class LatencyPriorityQueue : public SchedulingPriorityQueue {
307 // SUnits - The SUnits for the current graph.
308 const std::vector<SUnit> *SUnits;
309
310 // Latencies - The latency (max of latency from this node to the bb exit)
311 // for each node.
312 std::vector<int> Latencies;
Chris Lattner349e9dd2006-03-10 05:51:05 +0000313
314 /// NumNodesSolelyBlocking - This vector contains, for every node in the
315 /// Queue, the number of nodes that the node is the sole unscheduled
316 /// predecessor for. This is used as a tie-breaker heuristic for better
317 /// mobility.
318 std::vector<unsigned> NumNodesSolelyBlocking;
319
Chris Lattner6398c132006-03-09 07:38:27 +0000320 std::priority_queue<SUnit*, std::vector<SUnit*>, latency_sort> Queue;
321public:
322 LatencyPriorityQueue() : Queue(latency_sort(this)) {
323 }
324
325 void initNodes(const std::vector<SUnit> &sunits) {
326 SUnits = &sunits;
327 // Calculate node priorities.
328 CalculatePriorities();
329 }
330 void releaseState() {
331 SUnits = 0;
332 Latencies.clear();
333 }
334
335 unsigned getLatency(unsigned NodeNum) const {
336 assert(NodeNum < Latencies.size());
337 return Latencies[NodeNum];
338 }
339
Chris Lattner349e9dd2006-03-10 05:51:05 +0000340 unsigned getNumSolelyBlockNodes(unsigned NodeNum) const {
341 assert(NodeNum < NumNodesSolelyBlocking.size());
342 return NumNodesSolelyBlocking[NodeNum];
343 }
344
Chris Lattner6398c132006-03-09 07:38:27 +0000345 bool empty() const { return Queue.empty(); }
346
Chris Lattner349e9dd2006-03-10 05:51:05 +0000347 virtual void push(SUnit *U) {
348 push_impl(U);
Chris Lattner6398c132006-03-09 07:38:27 +0000349 }
Chris Lattner349e9dd2006-03-10 05:51:05 +0000350 void push_impl(SUnit *U);
351
Chris Lattner25e25562006-03-10 04:32:49 +0000352 void push_all(const std::vector<SUnit *> &Nodes) {
353 for (unsigned i = 0, e = Nodes.size(); i != e; ++i)
Chris Lattner349e9dd2006-03-10 05:51:05 +0000354 push_impl(Nodes[i]);
Chris Lattner25e25562006-03-10 04:32:49 +0000355 }
356
Chris Lattner6398c132006-03-09 07:38:27 +0000357 SUnit *pop() {
358 SUnit *V = Queue.top();
359 Queue.pop();
Chris Lattner6398c132006-03-09 07:38:27 +0000360 return V;
361 }
Evan Cheng7d693892006-05-09 07:13:34 +0000362
Evan Chengd38c22b2006-05-11 23:55:42 +0000363 // ScheduledNode - As nodes are scheduled, we look to see if there are any
364 // successor nodes that have a single unscheduled predecessor. If so, that
365 // single predecessor has a higher priority, since scheduling it will make
366 // the node available.
367 void ScheduledNode(SUnit *Node);
368
369private:
370 void CalculatePriorities();
371 int CalcLatency(const SUnit &SU);
372 void AdjustPriorityOfUnscheduledPreds(SUnit *SU);
373
Chris Lattner349e9dd2006-03-10 05:51:05 +0000374 /// RemoveFromPriorityQueue - This is a really inefficient way to remove a
375 /// node from a priority queue. We should roll our own heap to make this
376 /// better or something.
377 void RemoveFromPriorityQueue(SUnit *SU) {
378 std::vector<SUnit*> Temp;
379
380 assert(!Queue.empty() && "Not in queue!");
381 while (Queue.top() != SU) {
382 Temp.push_back(Queue.top());
383 Queue.pop();
384 assert(!Queue.empty() && "Not in queue!");
385 }
386
387 // Remove the node from the PQ.
388 Queue.pop();
389
390 // Add all the other nodes back.
391 for (unsigned i = 0, e = Temp.size(); i != e; ++i)
392 Queue.push(Temp[i]);
393 }
Chris Lattner6398c132006-03-09 07:38:27 +0000394 };
395}
396
397bool latency_sort::operator()(const SUnit *LHS, const SUnit *RHS) const {
398 unsigned LHSNum = LHS->NodeNum;
399 unsigned RHSNum = RHS->NodeNum;
Chris Lattner349e9dd2006-03-10 05:51:05 +0000400
401 // The most important heuristic is scheduling the critical path.
402 unsigned LHSLatency = PQ->getLatency(LHSNum);
403 unsigned RHSLatency = PQ->getLatency(RHSNum);
404 if (LHSLatency < RHSLatency) return true;
405 if (LHSLatency > RHSLatency) return false;
Chris Lattner6398c132006-03-09 07:38:27 +0000406
Chris Lattner349e9dd2006-03-10 05:51:05 +0000407 // After that, if two nodes have identical latencies, look to see if one will
408 // unblock more other nodes than the other.
409 unsigned LHSBlocked = PQ->getNumSolelyBlockNodes(LHSNum);
410 unsigned RHSBlocked = PQ->getNumSolelyBlockNodes(RHSNum);
411 if (LHSBlocked < RHSBlocked) return true;
412 if (LHSBlocked > RHSBlocked) return false;
413
414 // Finally, just to provide a stable ordering, use the node number as a
415 // deciding factor.
416 return LHSNum < RHSNum;
Chris Lattner6398c132006-03-09 07:38:27 +0000417}
418
419
420/// CalcNodePriority - Calculate the maximal path from the node to the exit.
421///
422int LatencyPriorityQueue::CalcLatency(const SUnit &SU) {
423 int &Latency = Latencies[SU.NodeNum];
424 if (Latency != -1)
425 return Latency;
426
427 int MaxSuccLatency = 0;
Chris Lattner578d8fc2006-03-11 22:24:20 +0000428 for (std::set<std::pair<SUnit*, bool> >::const_iterator I = SU.Succs.begin(),
Chris Lattner6398c132006-03-09 07:38:27 +0000429 E = SU.Succs.end(); I != E; ++I)
Chris Lattner578d8fc2006-03-11 22:24:20 +0000430 MaxSuccLatency = std::max(MaxSuccLatency, CalcLatency(*I->first));
Chris Lattner6398c132006-03-09 07:38:27 +0000431
432 return Latency = MaxSuccLatency + SU.Latency;
433}
434
435/// CalculatePriorities - Calculate priorities of all scheduling units.
436void LatencyPriorityQueue::CalculatePriorities() {
437 Latencies.assign(SUnits->size(), -1);
Chris Lattner349e9dd2006-03-10 05:51:05 +0000438 NumNodesSolelyBlocking.assign(SUnits->size(), 0);
Chris Lattner6398c132006-03-09 07:38:27 +0000439
440 for (unsigned i = 0, e = SUnits->size(); i != e; ++i)
441 CalcLatency((*SUnits)[i]);
442}
443
Chris Lattner349e9dd2006-03-10 05:51:05 +0000444/// getSingleUnscheduledPred - If there is exactly one unscheduled predecessor
445/// of SU, return it, otherwise return null.
446static SUnit *getSingleUnscheduledPred(SUnit *SU) {
447 SUnit *OnlyAvailablePred = 0;
Chris Lattner578d8fc2006-03-11 22:24:20 +0000448 for (std::set<std::pair<SUnit*, bool> >::const_iterator I = SU->Preds.begin(),
Chris Lattner349e9dd2006-03-10 05:51:05 +0000449 E = SU->Preds.end(); I != E; ++I)
Chris Lattner578d8fc2006-03-11 22:24:20 +0000450 if (!I->first->isScheduled) {
Chris Lattner349e9dd2006-03-10 05:51:05 +0000451 // We found an available, but not scheduled, predecessor. If it's the
452 // only one we have found, keep track of it... otherwise give up.
Chris Lattner578d8fc2006-03-11 22:24:20 +0000453 if (OnlyAvailablePred && OnlyAvailablePred != I->first)
Chris Lattner349e9dd2006-03-10 05:51:05 +0000454 return 0;
Chris Lattner578d8fc2006-03-11 22:24:20 +0000455 OnlyAvailablePred = I->first;
Chris Lattner349e9dd2006-03-10 05:51:05 +0000456 }
457
458 return OnlyAvailablePred;
459}
460
461void LatencyPriorityQueue::push_impl(SUnit *SU) {
462 // Look at all of the successors of this node. Count the number of nodes that
463 // this node is the sole unscheduled node for.
464 unsigned NumNodesBlocking = 0;
Chris Lattner578d8fc2006-03-11 22:24:20 +0000465 for (std::set<std::pair<SUnit*, bool> >::const_iterator I = SU->Succs.begin(),
Chris Lattner349e9dd2006-03-10 05:51:05 +0000466 E = SU->Succs.end(); I != E; ++I)
Chris Lattner578d8fc2006-03-11 22:24:20 +0000467 if (getSingleUnscheduledPred(I->first) == SU)
Chris Lattner349e9dd2006-03-10 05:51:05 +0000468 ++NumNodesBlocking;
Chris Lattner578d8fc2006-03-11 22:24:20 +0000469 NumNodesSolelyBlocking[SU->NodeNum] = NumNodesBlocking;
Chris Lattner349e9dd2006-03-10 05:51:05 +0000470
471 Queue.push(SU);
472}
473
474
475// ScheduledNode - As nodes are scheduled, we look to see if there are any
476// successor nodes that have a single unscheduled predecessor. If so, that
477// single predecessor has a higher priority, since scheduling it will make
478// the node available.
479void LatencyPriorityQueue::ScheduledNode(SUnit *SU) {
Chris Lattner578d8fc2006-03-11 22:24:20 +0000480 for (std::set<std::pair<SUnit*, bool> >::const_iterator I = SU->Succs.begin(),
Chris Lattner349e9dd2006-03-10 05:51:05 +0000481 E = SU->Succs.end(); I != E; ++I)
Chris Lattner578d8fc2006-03-11 22:24:20 +0000482 AdjustPriorityOfUnscheduledPreds(I->first);
Chris Lattner349e9dd2006-03-10 05:51:05 +0000483}
484
485/// AdjustPriorityOfUnscheduledPreds - One of the predecessors of SU was just
486/// scheduled. If SU is not itself available, then there is at least one
487/// predecessor node that has not been scheduled yet. If SU has exactly ONE
488/// unscheduled predecessor, we want to increase its priority: it getting
489/// scheduled will make this node available, so it is better than some other
490/// node of the same priority that will not make a node available.
491void LatencyPriorityQueue::AdjustPriorityOfUnscheduledPreds(SUnit *SU) {
Chris Lattner572003c2006-03-12 00:38:57 +0000492 if (SU->isPending) return; // All preds scheduled.
Chris Lattner349e9dd2006-03-10 05:51:05 +0000493
494 SUnit *OnlyAvailablePred = getSingleUnscheduledPred(SU);
495 if (OnlyAvailablePred == 0 || !OnlyAvailablePred->isAvailable) return;
496
497 // Okay, we found a single predecessor that is available, but not scheduled.
498 // Since it is available, it must be in the priority queue. First remove it.
499 RemoveFromPriorityQueue(OnlyAvailablePred);
500
501 // Reinsert the node into the priority queue, which recomputes its
502 // NumNodesSolelyBlocking value.
503 push(OnlyAvailablePred);
504}
505
Chris Lattner9df64752006-03-09 06:35:14 +0000506
507//===----------------------------------------------------------------------===//
508// Public Constructor Functions
509//===----------------------------------------------------------------------===//
510
Chris Lattner47639db2006-03-06 00:22:00 +0000511/// createTDListDAGScheduler - This creates a top-down list scheduler with the
512/// specified hazard recognizer.
513ScheduleDAG* llvm::createTDListDAGScheduler(SelectionDAG &DAG,
514 MachineBasicBlock *BB,
Chris Lattner543832d2006-03-08 04:25:59 +0000515 HazardRecognizer *HR) {
Evan Chengd38c22b2006-05-11 23:55:42 +0000516 return new ScheduleDAGList(DAG, BB, DAG.getTarget(),
Chris Lattner6398c132006-03-09 07:38:27 +0000517 new LatencyPriorityQueue(),
Chris Lattner9df64752006-03-09 06:35:14 +0000518 HR);
Evan Cheng31272342006-01-23 08:26:10 +0000519}