1 //===---- ScheduleDAGInstrs.cpp - MachineInstr Rescheduling ---------------===// 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 ScheduleDAGInstrs class, which implements re-scheduling 11 // of MachineInstrs. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #define DEBUG_TYPE "sched-instrs" 16 #include "ScheduleDAGInstrs.h" 17 #include "llvm/Operator.h" 18 #include "llvm/Analysis/AliasAnalysis.h" 19 #include "llvm/CodeGen/MachineFunctionPass.h" 20 #include "llvm/CodeGen/MachineRegisterInfo.h" 21 #include "llvm/CodeGen/PseudoSourceValue.h" 22 #include "llvm/Target/TargetMachine.h" 23 #include "llvm/Target/TargetInstrInfo.h" 24 #include "llvm/Target/TargetRegisterInfo.h" 25 #include "llvm/Target/TargetSubtarget.h" 26 #include "llvm/Support/Debug.h" 27 #include "llvm/Support/raw_ostream.h" 28 #include "llvm/ADT/SmallSet.h" 29 using namespace llvm; 30 31 ScheduleDAGInstrs::ScheduleDAGInstrs(MachineFunction &mf, 32 const MachineLoopInfo &mli, 33 const MachineDominatorTree &mdt) 34 : ScheduleDAG(mf), MLI(mli), MDT(mdt), LoopRegs(MLI, MDT) {} 35 36 /// Run - perform scheduling. 37 /// 38 void ScheduleDAGInstrs::Run(MachineBasicBlock *bb, 39 MachineBasicBlock::iterator begin, 40 MachineBasicBlock::iterator end, 41 unsigned endcount) { 42 BB = bb; 43 Begin = begin; 44 InsertPosIndex = endcount; 45 46 ScheduleDAG::Run(bb, end); 47 } 48 49 /// getUnderlyingObjectFromInt - This is the function that does the work of 50 /// looking through basic ptrtoint+arithmetic+inttoptr sequences. 51 static const Value *getUnderlyingObjectFromInt(const Value *V) { 52 do { 53 if (const Operator *U = dyn_cast<Operator>(V)) { 54 // If we find a ptrtoint, we can transfer control back to the 55 // regular getUnderlyingObjectFromInt. 56 if (U->getOpcode() == Instruction::PtrToInt) 57 return U->getOperand(0); 58 // If we find an add of a constant or a multiplied value, it's 59 // likely that the other operand will lead us to the base 60 // object. We don't have to worry about the case where the 61 // object address is somehow being computed bt the multiply, 62 // because our callers only care when the result is an 63 // identifibale object. 64 if (U->getOpcode() != Instruction::Add || 65 (!isa<ConstantInt>(U->getOperand(1)) && 66 Operator::getOpcode(U->getOperand(1)) != Instruction::Mul)) 67 return V; 68 V = U->getOperand(0); 69 } else { 70 return V; 71 } 72 assert(isa<IntegerType>(V->getType()) && "Unexpected operand type!"); 73 } while (1); 74 } 75 76 /// getUnderlyingObject - This is a wrapper around Value::getUnderlyingObject 77 /// and adds support for basic ptrtoint+arithmetic+inttoptr sequences. 78 static const Value *getUnderlyingObject(const Value *V) { 79 // First just call Value::getUnderlyingObject to let it do what it does. 80 do { 81 V = V->getUnderlyingObject(); 82 // If it found an inttoptr, use special code to continue climing. 83 if (Operator::getOpcode(V) != Instruction::IntToPtr) 84 break; 85 const Value *O = getUnderlyingObjectFromInt(cast<User>(V)->getOperand(0)); 86 // If that succeeded in finding a pointer, continue the search. 87 if (!isa<PointerType>(O->getType())) 88 break; 89 V = O; 90 } while (1); 91 return V; 92 } 93 94 /// getUnderlyingObjectForInstr - If this machine instr has memory reference 95 /// information and it can be tracked to a normal reference to a known 96 /// object, return the Value for that object. Otherwise return null. 97 static const Value *getUnderlyingObjectForInstr(const MachineInstr *MI) { 98 if (!MI->hasOneMemOperand() || 99 !MI->memoperands_begin()->getValue() || 100 MI->memoperands_begin()->isVolatile()) 101 return 0; 102 103 const Value *V = MI->memoperands_begin()->getValue(); 104 if (!V) 105 return 0; 106 107 V = getUnderlyingObject(V); 108 if (!isa<PseudoSourceValue>(V) && !isIdentifiedObject(V)) 109 return 0; 110 111 return V; 112 } 113 114 void ScheduleDAGInstrs::StartBlock(MachineBasicBlock *BB) { 115 if (MachineLoop *ML = MLI.getLoopFor(BB)) 116 if (BB == ML->getLoopLatch()) { 117 MachineBasicBlock *Header = ML->getHeader(); 118 for (MachineBasicBlock::livein_iterator I = Header->livein_begin(), 119 E = Header->livein_end(); I != E; ++I) 120 LoopLiveInRegs.insert(*I); 121 LoopRegs.VisitLoop(ML); 122 } 123 } 124 125 void ScheduleDAGInstrs::BuildSchedGraph() { 126 // We'll be allocating one SUnit for each instruction, plus one for 127 // the region exit node. 128 SUnits.reserve(BB->size()); 129 130 // We build scheduling units by walking a block's instruction list from bottom 131 // to top. 132 133 // Remember where a generic side-effecting instruction is as we procede. If 134 // ChainMMO is null, this is assumed to have arbitrary side-effects. If 135 // ChainMMO is non-null, then Chain makes only a single memory reference. 136 SUnit *Chain = 0; 137 MachineMemOperand *ChainMMO = 0; 138 139 // Memory references to specific known memory locations are tracked so that 140 // they can be given more precise dependencies. 141 std::map<const Value *, SUnit *> MemDefs; 142 std::map<const Value *, std::vector<SUnit *> > MemUses; 143 144 // Check to see if the scheduler cares about latencies. 145 bool UnitLatencies = ForceUnitLatencies(); 146 147 // Ask the target if address-backscheduling is desirable, and if so how much. 148 unsigned SpecialAddressLatency = 149 TM.getSubtarget<TargetSubtarget>().getSpecialAddressLatency(); 150 151 // Walk the list of instructions, from bottom moving up. 152 for (MachineBasicBlock::iterator MII = InsertPos, MIE = Begin; 153 MII != MIE; --MII) { 154 MachineInstr *MI = prior(MII); 155 const TargetInstrDesc &TID = MI->getDesc(); 156 assert(!TID.isTerminator() && !MI->isLabel() && 157 "Cannot schedule terminators or labels!"); 158 // Create the SUnit for this MI. 159 SUnit *SU = NewSUnit(MI); 160 161 // Assign the Latency field of SU using target-provided information. 162 if (UnitLatencies) 163 SU->Latency = 1; 164 else 165 ComputeLatency(SU); 166 167 // Add register-based dependencies (data, anti, and output). 168 for (unsigned j = 0, n = MI->getNumOperands(); j != n; ++j) { 169 const MachineOperand &MO = MI->getOperand(j); 170 if (!MO.isReg()) continue; 171 unsigned Reg = MO.getReg(); 172 if (Reg == 0) continue; 173 174 assert(TRI->isPhysicalRegister(Reg) && "Virtual register encountered!"); 175 std::vector<SUnit *> &UseList = Uses[Reg]; 176 std::vector<SUnit *> &DefList = Defs[Reg]; 177 // Optionally add output and anti dependencies. 178 // TODO: Using a latency of 1 here assumes there's no cost for 179 // reusing registers. 180 SDep::Kind Kind = MO.isUse() ? SDep::Anti : SDep::Output; 181 for (unsigned i = 0, e = DefList.size(); i != e; ++i) { 182 SUnit *DefSU = DefList[i]; 183 if (DefSU != SU && 184 (Kind != SDep::Output || !MO.isDead() || 185 !DefSU->getInstr()->registerDefIsDead(Reg))) 186 DefSU->addPred(SDep(SU, Kind, /*Latency=*/1, /*Reg=*/Reg)); 187 } 188 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) { 189 std::vector<SUnit *> &DefList = Defs[*Alias]; 190 for (unsigned i = 0, e = DefList.size(); i != e; ++i) { 191 SUnit *DefSU = DefList[i]; 192 if (DefSU != SU && 193 (Kind != SDep::Output || !MO.isDead() || 194 !DefSU->getInstr()->registerDefIsDead(Reg))) 195 DefSU->addPred(SDep(SU, Kind, /*Latency=*/1, /*Reg=*/ *Alias)); 196 } 197 } 198 199 if (MO.isDef()) { 200 // Add any data dependencies. 201 unsigned DataLatency = SU->Latency; 202 for (unsigned i = 0, e = UseList.size(); i != e; ++i) { 203 SUnit *UseSU = UseList[i]; 204 if (UseSU != SU) { 205 unsigned LDataLatency = DataLatency; 206 // Optionally add in a special extra latency for nodes that 207 // feed addresses. 208 // TODO: Do this for register aliases too. 209 if (SpecialAddressLatency != 0 && !UnitLatencies) { 210 MachineInstr *UseMI = UseSU->getInstr(); 211 const TargetInstrDesc &UseTID = UseMI->getDesc(); 212 int RegUseIndex = UseMI->findRegisterUseOperandIdx(Reg); 213 assert(RegUseIndex >= 0 && "UseMI doesn's use register!"); 214 if ((UseTID.mayLoad() || UseTID.mayStore()) && 215 (unsigned)RegUseIndex < UseTID.getNumOperands() && 216 UseTID.OpInfo[RegUseIndex].isLookupPtrRegClass()) 217 LDataLatency += SpecialAddressLatency; 218 } 219 UseSU->addPred(SDep(SU, SDep::Data, LDataLatency, Reg)); 220 } 221 } 222 for (const unsigned *Alias = TRI->getAliasSet(Reg); *Alias; ++Alias) { 223 std::vector<SUnit *> &UseList = Uses[*Alias]; 224 for (unsigned i = 0, e = UseList.size(); i != e; ++i) { 225 SUnit *UseSU = UseList[i]; 226 if (UseSU != SU) 227 UseSU->addPred(SDep(SU, SDep::Data, DataLatency, *Alias)); 228 } 229 } 230 231 // If a def is going to wrap back around to the top of the loop, 232 // backschedule it. 233 if (!UnitLatencies && DefList.empty()) { 234 LoopDependencies::LoopDeps::iterator I = LoopRegs.Deps.find(Reg); 235 if (I != LoopRegs.Deps.end()) { 236 const MachineOperand *UseMO = I->second.first; 237 unsigned Count = I->second.second; 238 const MachineInstr *UseMI = UseMO->getParent(); 239 unsigned UseMOIdx = UseMO - &UseMI->getOperand(0); 240 const TargetInstrDesc &UseTID = UseMI->getDesc(); 241 // TODO: If we knew the total depth of the region here, we could 242 // handle the case where the whole loop is inside the region but 243 // is large enough that the isScheduleHigh trick isn't needed. 244 if (UseMOIdx < UseTID.getNumOperands()) { 245 // Currently, we only support scheduling regions consisting of 246 // single basic blocks. Check to see if the instruction is in 247 // the same region by checking to see if it has the same parent. 248 if (UseMI->getParent() != MI->getParent()) { 249 unsigned Latency = SU->Latency; 250 if (UseTID.OpInfo[UseMOIdx].isLookupPtrRegClass()) 251 Latency += SpecialAddressLatency; 252 // This is a wild guess as to the portion of the latency which 253 // will be overlapped by work done outside the current 254 // scheduling region. 255 Latency -= std::min(Latency, Count); 256 // Add the artifical edge. 257 ExitSU.addPred(SDep(SU, SDep::Order, Latency, 258 /*Reg=*/0, /*isNormalMemory=*/false, 259 /*isMustAlias=*/false, 260 /*isArtificial=*/true)); 261 } else if (SpecialAddressLatency > 0 && 262 UseTID.OpInfo[UseMOIdx].isLookupPtrRegClass()) { 263 // The entire loop body is within the current scheduling region 264 // and the latency of this operation is assumed to be greater 265 // than the latency of the loop. 266 // TODO: Recursively mark data-edge predecessors as 267 // isScheduleHigh too. 268 SU->isScheduleHigh = true; 269 } 270 } 271 LoopRegs.Deps.erase(I); 272 } 273 } 274 275 UseList.clear(); 276 if (!MO.isDead()) 277 DefList.clear(); 278 DefList.push_back(SU); 279 } else { 280 UseList.push_back(SU); 281 } 282 } 283 284 // Add chain dependencies. 285 // Note that isStoreToStackSlot and isLoadFromStackSLot are not usable 286 // after stack slots are lowered to actual addresses. 287 // TODO: Use an AliasAnalysis and do real alias-analysis queries, and 288 // produce more precise dependence information. 289 if (TID.isCall() || TID.hasUnmodeledSideEffects()) { 290 new_chain: 291 // This is the conservative case. Add dependencies on all memory 292 // references. 293 if (Chain) 294 Chain->addPred(SDep(SU, SDep::Order, SU->Latency)); 295 Chain = SU; 296 for (unsigned k = 0, m = PendingLoads.size(); k != m; ++k) 297 PendingLoads[k]->addPred(SDep(SU, SDep::Order, SU->Latency)); 298 PendingLoads.clear(); 299 for (std::map<const Value *, SUnit *>::iterator I = MemDefs.begin(), 300 E = MemDefs.end(); I != E; ++I) { 301 I->second->addPred(SDep(SU, SDep::Order, SU->Latency)); 302 I->second = SU; 303 } 304 for (std::map<const Value *, std::vector<SUnit *> >::iterator I = 305 MemUses.begin(), E = MemUses.end(); I != E; ++I) { 306 for (unsigned i = 0, e = I->second.size(); i != e; ++i) 307 I->second[i]->addPred(SDep(SU, SDep::Order, SU->Latency)); 308 I->second.clear(); 309 } 310 // See if it is known to just have a single memory reference. 311 MachineInstr *ChainMI = Chain->getInstr(); 312 const TargetInstrDesc &ChainTID = ChainMI->getDesc(); 313 if (!ChainTID.isCall() && 314 !ChainTID.hasUnmodeledSideEffects() && 315 ChainMI->hasOneMemOperand() && 316 !ChainMI->memoperands_begin()->isVolatile() && 317 ChainMI->memoperands_begin()->getValue()) 318 // We know that the Chain accesses one specific memory location. 319 ChainMMO = &*ChainMI->memoperands_begin(); 320 else 321 // Unknown memory accesses. Assume the worst. 322 ChainMMO = 0; 323 } else if (TID.mayStore()) { 324 if (const Value *V = getUnderlyingObjectForInstr(MI)) { 325 // A store to a specific PseudoSourceValue. Add precise dependencies. 326 // Handle the def in MemDefs, if there is one. 327 std::map<const Value *, SUnit *>::iterator I = MemDefs.find(V); 328 if (I != MemDefs.end()) { 329 I->second->addPred(SDep(SU, SDep::Order, SU->Latency, /*Reg=*/0, 330 /*isNormalMemory=*/true)); 331 I->second = SU; 332 } else { 333 MemDefs[V] = SU; 334 } 335 // Handle the uses in MemUses, if there are any. 336 std::map<const Value *, std::vector<SUnit *> >::iterator J = 337 MemUses.find(V); 338 if (J != MemUses.end()) { 339 for (unsigned i = 0, e = J->second.size(); i != e; ++i) 340 J->second[i]->addPred(SDep(SU, SDep::Order, SU->Latency, /*Reg=*/0, 341 /*isNormalMemory=*/true)); 342 J->second.clear(); 343 } 344 // Add dependencies from all the PendingLoads, since without 345 // memoperands we must assume they alias anything. 346 for (unsigned k = 0, m = PendingLoads.size(); k != m; ++k) 347 PendingLoads[k]->addPred(SDep(SU, SDep::Order, SU->Latency)); 348 // Add a general dependence too, if needed. 349 if (Chain) 350 Chain->addPred(SDep(SU, SDep::Order, SU->Latency)); 351 } else 352 // Treat all other stores conservatively. 353 goto new_chain; 354 } else if (TID.mayLoad()) { 355 if (TII->isInvariantLoad(MI)) { 356 // Invariant load, no chain dependencies needed! 357 } else if (const Value *V = getUnderlyingObjectForInstr(MI)) { 358 // A load from a specific PseudoSourceValue. Add precise dependencies. 359 std::map<const Value *, SUnit *>::iterator I = MemDefs.find(V); 360 if (I != MemDefs.end()) 361 I->second->addPred(SDep(SU, SDep::Order, SU->Latency, /*Reg=*/0, 362 /*isNormalMemory=*/true)); 363 MemUses[V].push_back(SU); 364 365 // Add a general dependence too, if needed. 366 if (Chain && (!ChainMMO || 367 (ChainMMO->isStore() || ChainMMO->isVolatile()))) 368 Chain->addPred(SDep(SU, SDep::Order, SU->Latency)); 369 } else if (MI->hasVolatileMemoryRef()) { 370 // Treat volatile loads conservatively. Note that this includes 371 // cases where memoperand information is unavailable. 372 goto new_chain; 373 } else { 374 // A normal load. Depend on the general chain, as well as on 375 // all stores. In the absense of MachineMemOperand information, 376 // we can't even assume that the load doesn't alias well-behaved 377 // memory locations. 378 if (Chain) 379 Chain->addPred(SDep(SU, SDep::Order, SU->Latency)); 380 for (std::map<const Value *, SUnit *>::iterator I = MemDefs.begin(), 381 E = MemDefs.end(); I != E; ++I) 382 I->second->addPred(SDep(SU, SDep::Order, SU->Latency)); 383 PendingLoads.push_back(SU); 384 } 385 } 386 } 387 388 for (int i = 0, e = TRI->getNumRegs(); i != e; ++i) { 389 Defs[i].clear(); 390 Uses[i].clear(); 391 } 392 PendingLoads.clear(); 393 } 394 395 void ScheduleDAGInstrs::FinishBlock() { 396 // Nothing to do. 397 } 398 399 void ScheduleDAGInstrs::ComputeLatency(SUnit *SU) { 400 const InstrItineraryData &InstrItins = TM.getInstrItineraryData(); 401 402 // Compute the latency for the node. We use the sum of the latencies for 403 // all nodes flagged together into this SUnit. 404 SU->Latency = 405 InstrItins.getLatency(SU->getInstr()->getDesc().getSchedClass()); 406 407 // Simplistic target-independent heuristic: assume that loads take 408 // extra time. 409 if (InstrItins.isEmpty()) 410 if (SU->getInstr()->getDesc().mayLoad()) 411 SU->Latency += 2; 412 } 413 414 void ScheduleDAGInstrs::dumpNode(const SUnit *SU) const { 415 SU->getInstr()->dump(); 416 } 417 418 std::string ScheduleDAGInstrs::getGraphNodeLabel(const SUnit *SU) const { 419 std::string s; 420 raw_string_ostream oss(s); 421 if (SU == &EntrySU) 422 oss << "<entry>"; 423 else if (SU == &ExitSU) 424 oss << "<exit>"; 425 else 426 SU->getInstr()->print(oss); 427 return oss.str(); 428 } 429 430 // EmitSchedule - Emit the machine code in scheduled order. 431 MachineBasicBlock *ScheduleDAGInstrs::EmitSchedule() { 432 // For MachineInstr-based scheduling, we're rescheduling the instructions in 433 // the block, so start by removing them from the block. 434 while (Begin != InsertPos) { 435 MachineBasicBlock::iterator I = Begin; 436 ++Begin; 437 BB->remove(I); 438 } 439 440 // Then re-insert them according to the given schedule. 441 for (unsigned i = 0, e = Sequence.size(); i != e; i++) { 442 SUnit *SU = Sequence[i]; 443 if (!SU) { 444 // Null SUnit* is a noop. 445 EmitNoop(); 446 continue; 447 } 448 449 BB->insert(InsertPos, SU->getInstr()); 450 } 451 452 // Update the Begin iterator, as the first instruction in the block 453 // may have been scheduled later. 454 if (!Sequence.empty()) 455 Begin = Sequence[0]->getInstr(); 456 457 return BB; 458 } 459