1 //=-- SystemZHazardRecognizer.h - SystemZ Hazard Recognizer -----*- C++ -*-===// 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 file defines a hazard recognizer for the SystemZ scheduler. 11 // 12 // This class is used by the SystemZ scheduling strategy to maintain 13 // the state during scheduling, and provide cost functions for 14 // scheduling candidates. This includes: 15 // 16 // * Decoder grouping. A decoder group can maximally hold 3 uops, and 17 // instructions that always begin a new group should be scheduled when 18 // the current decoder group is empty. 19 // * Processor resources usage. It is beneficial to balance the use of 20 // resources. 21 // 22 // A goal is to consider all instructions, also those outside of any 23 // scheduling region. Such instructions are "advanced" past and include 24 // single instructions before a scheduling region, branches etc. 25 // 26 // A block that has only one predecessor continues scheduling with the state 27 // of it (which may be updated by emitting branches). 28 // 29 // ===---------------------------------------------------------------------===// 30 31 #include "SystemZHazardRecognizer.h" 32 #include "llvm/ADT/Statistic.h" 33 34 using namespace llvm; 35 36 #define DEBUG_TYPE "machine-scheduler" 37 38 // This is the limit of processor resource usage at which the 39 // scheduler should try to look for other instructions (not using the 40 // critical resource). 41 static cl::opt<int> ProcResCostLim("procres-cost-lim", cl::Hidden, 42 cl::desc("The OOO window for processor " 43 "resources during scheduling."), 44 cl::init(8)); 45 46 unsigned SystemZHazardRecognizer:: 47 getNumDecoderSlots(SUnit *SU) const { 48 const MCSchedClassDesc *SC = getSchedClass(SU); 49 if (!SC->isValid()) 50 return 0; // IMPLICIT_DEF / KILL -- will not make impact in output. 51 52 if (SC->BeginGroup) { 53 if (!SC->EndGroup) 54 return 2; // Cracked instruction 55 else 56 return 3; // Expanded/group-alone instruction 57 } 58 59 return 1; // Normal instruction 60 } 61 62 unsigned SystemZHazardRecognizer::getCurrCycleIdx(SUnit *SU) const { 63 unsigned Idx = CurrGroupSize; 64 if (GrpCount % 2) 65 Idx += 3; 66 67 if (SU != nullptr && !fitsIntoCurrentGroup(SU)) { 68 if (Idx == 1 || Idx == 2) 69 Idx = 3; 70 else if (Idx == 4 || Idx == 5) 71 Idx = 0; 72 } 73 74 return Idx; 75 } 76 77 ScheduleHazardRecognizer::HazardType SystemZHazardRecognizer:: 78 getHazardType(SUnit *m, int Stalls) { 79 return (fitsIntoCurrentGroup(m) ? NoHazard : Hazard); 80 } 81 82 void SystemZHazardRecognizer::Reset() { 83 CurrGroupSize = 0; 84 clearProcResCounters(); 85 GrpCount = 0; 86 LastFPdOpCycleIdx = UINT_MAX; 87 LastEmittedMI = nullptr; 88 LLVM_DEBUG(CurGroupDbg = "";); 89 } 90 91 bool 92 SystemZHazardRecognizer::fitsIntoCurrentGroup(SUnit *SU) const { 93 const MCSchedClassDesc *SC = getSchedClass(SU); 94 if (!SC->isValid()) 95 return true; 96 97 // A cracked instruction only fits into schedule if the current 98 // group is empty. 99 if (SC->BeginGroup) 100 return (CurrGroupSize == 0); 101 102 // Since a full group is handled immediately in EmitInstruction(), 103 // SU should fit into current group. NumSlots should be 1 or 0, 104 // since it is not a cracked or expanded instruction. 105 assert ((getNumDecoderSlots(SU) <= 1) && (CurrGroupSize < 3) && 106 "Expected normal instruction to fit in non-full group!"); 107 108 return true; 109 } 110 111 void SystemZHazardRecognizer::nextGroup() { 112 if (CurrGroupSize == 0) 113 return; 114 115 LLVM_DEBUG(dumpCurrGroup("Completed decode group")); 116 LLVM_DEBUG(CurGroupDbg = "";); 117 118 GrpCount++; 119 120 // Reset counter for next group. 121 CurrGroupSize = 0; 122 123 // Decrease counters for execution units by one. 124 for (unsigned i = 0; i < SchedModel->getNumProcResourceKinds(); ++i) 125 if (ProcResourceCounters[i] > 0) 126 ProcResourceCounters[i]--; 127 128 // Clear CriticalResourceIdx if it is now below the threshold. 129 if (CriticalResourceIdx != UINT_MAX && 130 (ProcResourceCounters[CriticalResourceIdx] <= 131 ProcResCostLim)) 132 CriticalResourceIdx = UINT_MAX; 133 134 LLVM_DEBUG(dumpState();); 135 } 136 137 #ifndef NDEBUG // Debug output 138 void SystemZHazardRecognizer::dumpSU(SUnit *SU, raw_ostream &OS) const { 139 OS << "SU(" << SU->NodeNum << "):"; 140 OS << TII->getName(SU->getInstr()->getOpcode()); 141 142 const MCSchedClassDesc *SC = getSchedClass(SU); 143 if (!SC->isValid()) 144 return; 145 146 for (TargetSchedModel::ProcResIter 147 PI = SchedModel->getWriteProcResBegin(SC), 148 PE = SchedModel->getWriteProcResEnd(SC); PI != PE; ++PI) { 149 const MCProcResourceDesc &PRD = 150 *SchedModel->getProcResource(PI->ProcResourceIdx); 151 std::string FU(PRD.Name); 152 // trim e.g. Z13_FXaUnit -> FXa 153 FU = FU.substr(FU.find("_") + 1); 154 FU.resize(FU.find("Unit")); 155 OS << "/" << FU; 156 157 if (PI->Cycles > 1) 158 OS << "(" << PI->Cycles << "cyc)"; 159 } 160 161 if (SC->NumMicroOps > 1) 162 OS << "/" << SC->NumMicroOps << "uops"; 163 if (SC->BeginGroup && SC->EndGroup) 164 OS << "/GroupsAlone"; 165 else if (SC->BeginGroup) 166 OS << "/BeginsGroup"; 167 else if (SC->EndGroup) 168 OS << "/EndsGroup"; 169 if (SU->isUnbuffered) 170 OS << "/Unbuffered"; 171 } 172 173 void SystemZHazardRecognizer::dumpCurrGroup(std::string Msg) const { 174 dbgs() << "++ " << Msg; 175 dbgs() << ": "; 176 177 if (CurGroupDbg.empty()) 178 dbgs() << " <empty>\n"; 179 else { 180 dbgs() << "{ " << CurGroupDbg << " }"; 181 dbgs() << " (" << CurrGroupSize << " decoder slot" 182 << (CurrGroupSize > 1 ? "s":"") 183 << ")\n"; 184 } 185 } 186 187 void SystemZHazardRecognizer::dumpProcResourceCounters() const { 188 bool any = false; 189 190 for (unsigned i = 0; i < SchedModel->getNumProcResourceKinds(); ++i) 191 if (ProcResourceCounters[i] > 0) { 192 any = true; 193 break; 194 } 195 196 if (!any) 197 return; 198 199 dbgs() << "++ | Resource counters: "; 200 for (unsigned i = 0; i < SchedModel->getNumProcResourceKinds(); ++i) 201 if (ProcResourceCounters[i] > 0) 202 dbgs() << SchedModel->getProcResource(i)->Name 203 << ":" << ProcResourceCounters[i] << " "; 204 dbgs() << "\n"; 205 206 if (CriticalResourceIdx != UINT_MAX) 207 dbgs() << "++ | Critical resource: " 208 << SchedModel->getProcResource(CriticalResourceIdx)->Name 209 << "\n"; 210 } 211 212 void SystemZHazardRecognizer::dumpState() const { 213 dumpCurrGroup("| Current decoder group"); 214 dbgs() << "++ | Current cycle index: " 215 << getCurrCycleIdx() << "\n"; 216 dumpProcResourceCounters(); 217 if (LastFPdOpCycleIdx != UINT_MAX) 218 dbgs() << "++ | Last FPd cycle index: " << LastFPdOpCycleIdx << "\n"; 219 } 220 221 #endif //NDEBUG 222 223 void SystemZHazardRecognizer::clearProcResCounters() { 224 ProcResourceCounters.assign(SchedModel->getNumProcResourceKinds(), 0); 225 CriticalResourceIdx = UINT_MAX; 226 } 227 228 static inline bool isBranchRetTrap(MachineInstr *MI) { 229 return (MI->isBranch() || MI->isReturn() || 230 MI->getOpcode() == SystemZ::CondTrap); 231 } 232 233 // Update state with SU as the next scheduled unit. 234 void SystemZHazardRecognizer:: 235 EmitInstruction(SUnit *SU) { 236 const MCSchedClassDesc *SC = getSchedClass(SU); 237 LLVM_DEBUG(dbgs() << "++ HazardRecognizer emitting "; dumpSU(SU, dbgs()); 238 dbgs() << "\n";); 239 LLVM_DEBUG(dumpCurrGroup("Decode group before emission");); 240 241 // If scheduling an SU that must begin a new decoder group, move on 242 // to next group. 243 if (!fitsIntoCurrentGroup(SU)) 244 nextGroup(); 245 246 LLVM_DEBUG(raw_string_ostream cgd(CurGroupDbg); 247 if (CurGroupDbg.length()) cgd << ", "; dumpSU(SU, cgd);); 248 249 LastEmittedMI = SU->getInstr(); 250 251 // After returning from a call, we don't know much about the state. 252 if (SU->isCall) { 253 LLVM_DEBUG(dbgs() << "++ Clearing state after call.\n";); 254 Reset(); 255 LastEmittedMI = SU->getInstr(); 256 return; 257 } 258 259 // Increase counter for execution unit(s). 260 for (TargetSchedModel::ProcResIter 261 PI = SchedModel->getWriteProcResBegin(SC), 262 PE = SchedModel->getWriteProcResEnd(SC); PI != PE; ++PI) { 263 // Don't handle FPd together with the other resources. 264 if (SchedModel->getProcResource(PI->ProcResourceIdx)->BufferSize == 1) 265 continue; 266 int &CurrCounter = 267 ProcResourceCounters[PI->ProcResourceIdx]; 268 CurrCounter += PI->Cycles; 269 // Check if this is now the new critical resource. 270 if ((CurrCounter > ProcResCostLim) && 271 (CriticalResourceIdx == UINT_MAX || 272 (PI->ProcResourceIdx != CriticalResourceIdx && 273 CurrCounter > 274 ProcResourceCounters[CriticalResourceIdx]))) { 275 LLVM_DEBUG( 276 dbgs() << "++ New critical resource: " 277 << SchedModel->getProcResource(PI->ProcResourceIdx)->Name 278 << "\n";); 279 CriticalResourceIdx = PI->ProcResourceIdx; 280 } 281 } 282 283 // Make note of an instruction that uses a blocking resource (FPd). 284 if (SU->isUnbuffered) { 285 LastFPdOpCycleIdx = getCurrCycleIdx(SU); 286 LLVM_DEBUG(dbgs() << "++ Last FPd cycle index: " << LastFPdOpCycleIdx 287 << "\n";); 288 } 289 290 // Insert SU into current group by increasing number of slots used 291 // in current group. 292 CurrGroupSize += getNumDecoderSlots(SU); 293 assert (CurrGroupSize <= 3); 294 295 // Check if current group is now full/ended. If so, move on to next 296 // group to be ready to evaluate more candidates. 297 if (CurrGroupSize == 3 || SC->EndGroup) 298 nextGroup(); 299 } 300 301 int SystemZHazardRecognizer::groupingCost(SUnit *SU) const { 302 const MCSchedClassDesc *SC = getSchedClass(SU); 303 if (!SC->isValid()) 304 return 0; 305 306 // If SU begins new group, it can either break a current group early 307 // or fit naturally if current group is empty (negative cost). 308 if (SC->BeginGroup) { 309 if (CurrGroupSize) 310 return 3 - CurrGroupSize; 311 return -1; 312 } 313 314 // Similarly, a group-ending SU may either fit well (last in group), or 315 // end the group prematurely. 316 if (SC->EndGroup) { 317 unsigned resultingGroupSize = 318 (CurrGroupSize + getNumDecoderSlots(SU)); 319 if (resultingGroupSize < 3) 320 return (3 - resultingGroupSize); 321 return -1; 322 } 323 324 // Most instructions can be placed in any decoder slot. 325 return 0; 326 } 327 328 bool SystemZHazardRecognizer::isFPdOpPreferred_distance(SUnit *SU) const { 329 assert (SU->isUnbuffered); 330 // If this is the first FPd op, it should be scheduled high. 331 if (LastFPdOpCycleIdx == UINT_MAX) 332 return true; 333 // If this is not the first PFd op, it should go into the other side 334 // of the processor to use the other FPd unit there. This should 335 // generally happen if two FPd ops are placed with 2 other 336 // instructions between them (modulo 6). 337 unsigned SUCycleIdx = getCurrCycleIdx(SU); 338 if (LastFPdOpCycleIdx > SUCycleIdx) 339 return ((LastFPdOpCycleIdx - SUCycleIdx) == 3); 340 return ((SUCycleIdx - LastFPdOpCycleIdx) == 3); 341 } 342 343 int SystemZHazardRecognizer:: 344 resourcesCost(SUnit *SU) { 345 int Cost = 0; 346 347 const MCSchedClassDesc *SC = getSchedClass(SU); 348 if (!SC->isValid()) 349 return 0; 350 351 // For a FPd op, either return min or max value as indicated by the 352 // distance to any prior FPd op. 353 if (SU->isUnbuffered) 354 Cost = (isFPdOpPreferred_distance(SU) ? INT_MIN : INT_MAX); 355 // For other instructions, give a cost to the use of the critical resource. 356 else if (CriticalResourceIdx != UINT_MAX) { 357 for (TargetSchedModel::ProcResIter 358 PI = SchedModel->getWriteProcResBegin(SC), 359 PE = SchedModel->getWriteProcResEnd(SC); PI != PE; ++PI) 360 if (PI->ProcResourceIdx == CriticalResourceIdx) 361 Cost = PI->Cycles; 362 } 363 364 return Cost; 365 } 366 367 void SystemZHazardRecognizer::emitInstruction(MachineInstr *MI, 368 bool TakenBranch) { 369 // Make a temporary SUnit. 370 SUnit SU(MI, 0); 371 372 // Set interesting flags. 373 SU.isCall = MI->isCall(); 374 375 const MCSchedClassDesc *SC = SchedModel->resolveSchedClass(MI); 376 for (const MCWriteProcResEntry &PRE : 377 make_range(SchedModel->getWriteProcResBegin(SC), 378 SchedModel->getWriteProcResEnd(SC))) { 379 switch (SchedModel->getProcResource(PRE.ProcResourceIdx)->BufferSize) { 380 case 0: 381 SU.hasReservedResource = true; 382 break; 383 case 1: 384 SU.isUnbuffered = true; 385 break; 386 default: 387 break; 388 } 389 } 390 391 unsigned GroupSizeBeforeEmit = CurrGroupSize; 392 EmitInstruction(&SU); 393 394 if (!TakenBranch && isBranchRetTrap(MI)) { 395 // NT Branch on second slot ends group. 396 if (GroupSizeBeforeEmit == 1) 397 nextGroup(); 398 } 399 400 if (TakenBranch && CurrGroupSize > 0) 401 nextGroup(); 402 403 assert ((!MI->isTerminator() || isBranchRetTrap(MI)) && 404 "Scheduler: unhandled terminator!"); 405 } 406 407 void SystemZHazardRecognizer:: 408 copyState(SystemZHazardRecognizer *Incoming) { 409 // Current decoder group 410 CurrGroupSize = Incoming->CurrGroupSize; 411 LLVM_DEBUG(CurGroupDbg = Incoming->CurGroupDbg;); 412 413 // Processor resources 414 ProcResourceCounters = Incoming->ProcResourceCounters; 415 CriticalResourceIdx = Incoming->CriticalResourceIdx; 416 417 // FPd 418 LastFPdOpCycleIdx = Incoming->LastFPdOpCycleIdx; 419 GrpCount = Incoming->GrpCount; 420 } 421