Vikram S. Adve | fe30f1f | 2001-09-18 12:52:03 +0000 | [diff] [blame] | 1 | // $Id$ -*-C++-*- |
| 2 | //*************************************************************************** |
| 3 | // File: |
| 4 | // SchedPriorities.h |
| 5 | // |
| 6 | // Purpose: |
| 7 | // Encapsulate heuristics for instruction scheduling. |
| 8 | // |
| 9 | // Strategy: |
| 10 | // Priority ordering rules: |
| 11 | // (1) Max delay, which is the order of the heap S.candsAsHeap. |
| 12 | // (2) Instruction that frees up a register. |
| 13 | // (3) Instruction that has the maximum number of dependent instructions. |
| 14 | // Note that rules 2 and 3 are only used if issue conflicts prevent |
| 15 | // choosing a higher priority instruction by rule 1. |
| 16 | // |
| 17 | // History: |
| 18 | // 7/30/01 - Vikram Adve - Created |
| 19 | //**************************************************************************/ |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 20 | |
Chris Lattner | 46cbff6 | 2001-09-14 16:56:32 +0000 | [diff] [blame] | 21 | #include "SchedPriorities.h" |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 22 | #include "llvm/Support/PostOrderIterator.h" |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 23 | |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 24 | |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 25 | SchedPriorities::SchedPriorities(const Method* method, |
| 26 | const SchedGraph* _graph) |
| 27 | : curTime(0), |
| 28 | graph(_graph), |
| 29 | methodLiveVarInfo(method), // expensive! |
| 30 | lastUseMap(), |
| 31 | nodeDelayVec(_graph->getNumNodes(),INVALID_LATENCY), //make errors obvious |
| 32 | earliestForNode(_graph->getNumNodes(), 0), |
| 33 | earliestReadyTime(0), |
| 34 | candsAsHeap(), |
| 35 | candsAsSet(), |
| 36 | mcands(), |
| 37 | nextToTry(candsAsHeap.begin()) |
| 38 | { |
| 39 | methodLiveVarInfo.analyze(); |
| 40 | computeDelays(graph); |
| 41 | } |
| 42 | |
| 43 | |
| 44 | void |
| 45 | SchedPriorities::initialize() |
| 46 | { |
| 47 | initializeReadyHeap(graph); |
| 48 | } |
| 49 | |
| 50 | |
| 51 | void |
| 52 | SchedPriorities::computeDelays(const SchedGraph* graph) |
| 53 | { |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 54 | po_iterator<const SchedGraph*> poIter = po_begin(graph), poEnd =po_end(graph); |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 55 | for ( ; poIter != poEnd; ++poIter) |
| 56 | { |
| 57 | const SchedGraphNode* node = *poIter; |
| 58 | cycles_t nodeDelay; |
| 59 | if (node->beginOutEdges() == node->endOutEdges()) |
| 60 | nodeDelay = node->getLatency(); |
| 61 | else |
| 62 | { |
| 63 | // Iterate over the out-edges of the node to compute delay |
| 64 | nodeDelay = 0; |
| 65 | for (SchedGraphNode::const_iterator E=node->beginOutEdges(); |
| 66 | E != node->endOutEdges(); ++E) |
| 67 | { |
| 68 | cycles_t sinkDelay = getNodeDelayRef((*E)->getSink()); |
| 69 | nodeDelay = max(nodeDelay, sinkDelay + (*E)->getMinDelay()); |
| 70 | } |
| 71 | } |
| 72 | getNodeDelayRef(node) = nodeDelay; |
| 73 | } |
| 74 | } |
| 75 | |
| 76 | |
| 77 | void |
| 78 | SchedPriorities::initializeReadyHeap(const SchedGraph* graph) |
| 79 | { |
| 80 | const SchedGraphNode* graphRoot = graph->getRoot(); |
| 81 | assert(graphRoot->getMachineInstr() == NULL && "Expect dummy root"); |
| 82 | |
| 83 | // Insert immediate successors of dummy root, which are the actual roots |
| 84 | sg_succ_const_iterator SEnd = succ_end(graphRoot); |
| 85 | for (sg_succ_const_iterator S = succ_begin(graphRoot); S != SEnd; ++S) |
| 86 | this->insertReady(*S); |
| 87 | |
| 88 | #undef TEST_HEAP_CONVERSION |
| 89 | #ifdef TEST_HEAP_CONVERSION |
| 90 | cout << "Before heap conversion:" << endl; |
| 91 | copy(candsAsHeap.begin(), candsAsHeap.end(), |
| 92 | ostream_iterator<NodeDelayPair*>(cout,"\n")); |
| 93 | #endif |
| 94 | |
| 95 | candsAsHeap.makeHeap(); |
| 96 | |
| 97 | #ifdef TEST_HEAP_CONVERSION |
| 98 | cout << "After heap conversion:" << endl; |
| 99 | copy(candsAsHeap.begin(), candsAsHeap.end(), |
| 100 | ostream_iterator<NodeDelayPair*>(cout,"\n")); |
| 101 | #endif |
| 102 | } |
| 103 | |
| 104 | |
| 105 | void |
| 106 | SchedPriorities::issuedReadyNodeAt(cycles_t curTime, |
| 107 | const SchedGraphNode* node) |
| 108 | { |
| 109 | candsAsHeap.removeNode(node); |
| 110 | candsAsSet.erase(node); |
| 111 | mcands.clear(); // ensure reset choices is called before any more choices |
| 112 | |
| 113 | if (earliestReadyTime == getEarliestForNodeRef(node)) |
| 114 | {// earliestReadyTime may have been due to this node, so recompute it |
| 115 | earliestReadyTime = HUGE_LATENCY; |
| 116 | for (NodeHeap::const_iterator I=candsAsHeap.begin(); |
| 117 | I != candsAsHeap.end(); ++I) |
| 118 | if (candsAsHeap.getNode(I)) |
| 119 | earliestReadyTime = min(earliestReadyTime, |
| 120 | getEarliestForNodeRef(candsAsHeap.getNode(I))); |
| 121 | } |
| 122 | |
| 123 | // Now update ready times for successors |
| 124 | for (SchedGraphNode::const_iterator E=node->beginOutEdges(); |
| 125 | E != node->endOutEdges(); ++E) |
| 126 | { |
| 127 | cycles_t& etime = getEarliestForNodeRef((*E)->getSink()); |
| 128 | etime = max(etime, curTime + (*E)->getMinDelay()); |
| 129 | } |
| 130 | } |
| 131 | |
| 132 | |
| 133 | //---------------------------------------------------------------------- |
| 134 | // Priority ordering rules: |
| 135 | // (1) Max delay, which is the order of the heap S.candsAsHeap. |
| 136 | // (2) Instruction that frees up a register. |
| 137 | // (3) Instruction that has the maximum number of dependent instructions. |
| 138 | // Note that rules 2 and 3 are only used if issue conflicts prevent |
| 139 | // choosing a higher priority instruction by rule 1. |
| 140 | //---------------------------------------------------------------------- |
| 141 | |
| 142 | inline int |
| 143 | SchedPriorities::chooseByRule1(vector<candIndex>& mcands) |
| 144 | { |
| 145 | return (mcands.size() == 1)? 0 // only one choice exists so take it |
| 146 | : -1; // -1 indicates multiple choices |
| 147 | } |
| 148 | |
| 149 | inline int |
| 150 | SchedPriorities::chooseByRule2(vector<candIndex>& mcands) |
| 151 | { |
| 152 | assert(mcands.size() >= 1 && "Should have at least one candidate here."); |
| 153 | for (unsigned i=0, N = mcands.size(); i < N; i++) |
| 154 | if (instructionHasLastUse(methodLiveVarInfo, |
| 155 | candsAsHeap.getNode(mcands[i]))) |
| 156 | return i; |
| 157 | return -1; |
| 158 | } |
| 159 | |
| 160 | inline int |
| 161 | SchedPriorities::chooseByRule3(vector<candIndex>& mcands) |
| 162 | { |
| 163 | assert(mcands.size() >= 1 && "Should have at least one candidate here."); |
| 164 | int maxUses = candsAsHeap.getNode(mcands[0])->getNumOutEdges(); |
| 165 | int indexWithMaxUses = 0; |
| 166 | for (unsigned i=1, N = mcands.size(); i < N; i++) |
| 167 | { |
| 168 | int numUses = candsAsHeap.getNode(mcands[i])->getNumOutEdges(); |
| 169 | if (numUses > maxUses) |
| 170 | { |
| 171 | maxUses = numUses; |
| 172 | indexWithMaxUses = i; |
| 173 | } |
| 174 | } |
| 175 | return indexWithMaxUses; |
| 176 | } |
| 177 | |
| 178 | const SchedGraphNode* |
| 179 | SchedPriorities::getNextHighest(const SchedulingManager& S, |
| 180 | cycles_t curTime) |
| 181 | { |
| 182 | int nextIdx = -1; |
| 183 | const SchedGraphNode* nextChoice = NULL; |
| 184 | |
| 185 | if (mcands.size() == 0) |
| 186 | findSetWithMaxDelay(mcands, S); |
| 187 | |
| 188 | while (nextIdx < 0 && mcands.size() > 0) |
| 189 | { |
| 190 | nextIdx = chooseByRule1(mcands); // rule 1 |
| 191 | |
| 192 | if (nextIdx == -1) |
| 193 | nextIdx = chooseByRule2(mcands); // rule 2 |
| 194 | |
| 195 | if (nextIdx == -1) |
| 196 | nextIdx = chooseByRule3(mcands); // rule 3 |
| 197 | |
| 198 | if (nextIdx == -1) |
| 199 | nextIdx = 0; // default to first choice by delays |
| 200 | |
| 201 | // We have found the next best candidate. Check if it ready in |
| 202 | // the current cycle, and if it is feasible. |
| 203 | // If not, remove it from mcands and continue. Refill mcands if |
| 204 | // it becomes empty. |
| 205 | nextChoice = candsAsHeap.getNode(mcands[nextIdx]); |
| 206 | if (getEarliestForNodeRef(nextChoice) > curTime |
Chris Lattner | 15dedbc | 2001-09-07 21:22:28 +0000 | [diff] [blame] | 207 | || ! instrIsFeasible(S, nextChoice->getMachineInstr()->getOpCode())) |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 208 | { |
| 209 | mcands.erase(mcands.begin() + nextIdx); |
| 210 | nextIdx = -1; |
| 211 | if (mcands.size() == 0) |
| 212 | findSetWithMaxDelay(mcands, S); |
| 213 | } |
| 214 | } |
| 215 | |
| 216 | if (nextIdx >= 0) |
| 217 | { |
| 218 | mcands.erase(mcands.begin() + nextIdx); |
| 219 | return nextChoice; |
| 220 | } |
| 221 | else |
| 222 | return NULL; |
| 223 | } |
| 224 | |
| 225 | |
| 226 | void |
| 227 | SchedPriorities::findSetWithMaxDelay(vector<candIndex>& mcands, |
| 228 | const SchedulingManager& S) |
| 229 | { |
| 230 | if (mcands.size() == 0 && nextToTry != candsAsHeap.end()) |
| 231 | { // out of choices at current maximum delay; |
| 232 | // put nodes with next highest delay in mcands |
| 233 | candIndex next = nextToTry; |
| 234 | cycles_t maxDelay = candsAsHeap.getDelay(next); |
| 235 | for (; next != candsAsHeap.end() |
| 236 | && candsAsHeap.getDelay(next) == maxDelay; ++next) |
| 237 | mcands.push_back(next); |
| 238 | |
| 239 | nextToTry = next; |
| 240 | |
| 241 | if (SchedDebugLevel >= Sched_PrintSchedTrace) |
| 242 | { |
Chris Lattner | 15dedbc | 2001-09-07 21:22:28 +0000 | [diff] [blame] | 243 | cout << " Cycle " << this->getTime() << ": " |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 244 | << "Next highest delay = " << maxDelay << " : " |
| 245 | << mcands.size() << " Nodes with this delay: "; |
| 246 | for (unsigned i=0; i < mcands.size(); i++) |
| 247 | cout << candsAsHeap.getNode(mcands[i])->getNodeId() << ", "; |
| 248 | cout << endl; |
| 249 | } |
| 250 | } |
| 251 | } |
| 252 | |
| 253 | |
| 254 | bool |
| 255 | SchedPriorities::instructionHasLastUse(MethodLiveVarInfo& methodLiveVarInfo, |
| 256 | const SchedGraphNode* graphNode) |
| 257 | { |
| 258 | const MachineInstr* minstr = graphNode->getMachineInstr(); |
| 259 | |
| 260 | hash_map<const MachineInstr*, bool>::const_iterator |
| 261 | ui = lastUseMap.find(minstr); |
| 262 | if (ui != lastUseMap.end()) |
| 263 | return (*ui).second; |
| 264 | |
| 265 | // else check if instruction is a last use and save it in the hash_map |
| 266 | bool hasLastUse = false; |
Vikram S. Adve | af00d48 | 2001-11-12 14:18:01 +0000 | [diff] [blame] | 267 | const BasicBlock* bb = graphNode->getBB(); |
Vikram S. Adve | 37866b3 | 2001-08-28 23:06:49 +0000 | [diff] [blame] | 268 | const LiveVarSet* liveVars = |
| 269 | methodLiveVarInfo.getLiveVarSetBeforeMInst(minstr, bb); |
| 270 | |
| 271 | for (MachineInstr::val_op_const_iterator vo(minstr); ! vo.done(); ++vo) |
| 272 | if (liveVars->find(*vo) == liveVars->end()) |
| 273 | { |
| 274 | hasLastUse = true; |
| 275 | break; |
| 276 | } |
| 277 | |
| 278 | lastUseMap[minstr] = hasLastUse; |
| 279 | return hasLastUse; |
| 280 | } |
| 281 | |