1 //===- RegisterCoalescer.cpp - Generic Register Coalescing Interface -------==// 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 implements the generic RegisterCoalescer interface which 11 // is used as the common interface used by all clients and 12 // implementations of register coalescing. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #define DEBUG_TYPE "regalloc" 17 #include "RegisterCoalescer.h" 18 #include "llvm/ADT/OwningPtr.h" 19 #include "llvm/ADT/STLExtras.h" 20 #include "llvm/ADT/SmallSet.h" 21 #include "llvm/ADT/Statistic.h" 22 #include "llvm/Analysis/AliasAnalysis.h" 23 #include "llvm/CodeGen/LiveIntervalAnalysis.h" 24 #include "llvm/CodeGen/LiveRangeEdit.h" 25 #include "llvm/CodeGen/MachineFrameInfo.h" 26 #include "llvm/CodeGen/MachineInstr.h" 27 #include "llvm/CodeGen/MachineLoopInfo.h" 28 #include "llvm/CodeGen/MachineRegisterInfo.h" 29 #include "llvm/CodeGen/Passes.h" 30 #include "llvm/CodeGen/RegisterClassInfo.h" 31 #include "llvm/CodeGen/VirtRegMap.h" 32 #include "llvm/IR/Value.h" 33 #include "llvm/Pass.h" 34 #include "llvm/Support/CommandLine.h" 35 #include "llvm/Support/Debug.h" 36 #include "llvm/Support/ErrorHandling.h" 37 #include "llvm/Support/raw_ostream.h" 38 #include "llvm/Target/TargetInstrInfo.h" 39 #include "llvm/Target/TargetMachine.h" 40 #include "llvm/Target/TargetRegisterInfo.h" 41 #include "llvm/Target/TargetSubtargetInfo.h" 42 #include <algorithm> 43 #include <cmath> 44 using namespace llvm; 45 46 STATISTIC(numJoins , "Number of interval joins performed"); 47 STATISTIC(numCrossRCs , "Number of cross class joins performed"); 48 STATISTIC(numCommutes , "Number of instruction commuting performed"); 49 STATISTIC(numExtends , "Number of copies extended"); 50 STATISTIC(NumReMats , "Number of instructions re-materialized"); 51 STATISTIC(NumInflated , "Number of register classes inflated"); 52 STATISTIC(NumLaneConflicts, "Number of dead lane conflicts tested"); 53 STATISTIC(NumLaneResolves, "Number of dead lane conflicts resolved"); 54 55 static cl::opt<bool> 56 EnableJoining("join-liveintervals", 57 cl::desc("Coalesce copies (default=true)"), 58 cl::init(true)); 59 60 // Temporary flag to test critical edge unsplitting. 61 static cl::opt<bool> 62 EnableJoinSplits("join-splitedges", 63 cl::desc("Coalesce copies on split edges (default=subtarget)"), cl::Hidden); 64 65 // Temporary flag to test global copy optimization. 66 static cl::opt<cl::boolOrDefault> 67 EnableGlobalCopies("join-globalcopies", 68 cl::desc("Coalesce copies that span blocks (default=subtarget)"), 69 cl::init(cl::BOU_UNSET), cl::Hidden); 70 71 static cl::opt<bool> 72 VerifyCoalescing("verify-coalescing", 73 cl::desc("Verify machine instrs before and after register coalescing"), 74 cl::Hidden); 75 76 namespace { 77 class RegisterCoalescer : public MachineFunctionPass, 78 private LiveRangeEdit::Delegate { 79 MachineFunction* MF; 80 MachineRegisterInfo* MRI; 81 const TargetMachine* TM; 82 const TargetRegisterInfo* TRI; 83 const TargetInstrInfo* TII; 84 LiveIntervals *LIS; 85 const MachineLoopInfo* Loops; 86 AliasAnalysis *AA; 87 RegisterClassInfo RegClassInfo; 88 89 /// \brief True if the coalescer should aggressively coalesce global copies 90 /// in favor of keeping local copies. 91 bool JoinGlobalCopies; 92 93 /// \brief True if the coalescer should aggressively coalesce fall-thru 94 /// blocks exclusively containing copies. 95 bool JoinSplitEdges; 96 97 /// WorkList - Copy instructions yet to be coalesced. 98 SmallVector<MachineInstr*, 8> WorkList; 99 SmallVector<MachineInstr*, 8> LocalWorkList; 100 101 /// ErasedInstrs - Set of instruction pointers that have been erased, and 102 /// that may be present in WorkList. 103 SmallPtrSet<MachineInstr*, 8> ErasedInstrs; 104 105 /// Dead instructions that are about to be deleted. 106 SmallVector<MachineInstr*, 8> DeadDefs; 107 108 /// Virtual registers to be considered for register class inflation. 109 SmallVector<unsigned, 8> InflateRegs; 110 111 /// Recursively eliminate dead defs in DeadDefs. 112 void eliminateDeadDefs(); 113 114 /// LiveRangeEdit callback. 115 void LRE_WillEraseInstruction(MachineInstr *MI); 116 117 /// coalesceLocals - coalesce the LocalWorkList. 118 void coalesceLocals(); 119 120 /// joinAllIntervals - join compatible live intervals 121 void joinAllIntervals(); 122 123 /// copyCoalesceInMBB - Coalesce copies in the specified MBB, putting 124 /// copies that cannot yet be coalesced into WorkList. 125 void copyCoalesceInMBB(MachineBasicBlock *MBB); 126 127 /// copyCoalesceWorkList - Try to coalesce all copies in CurrList. Return 128 /// true if any progress was made. 129 bool copyCoalesceWorkList(MutableArrayRef<MachineInstr*> CurrList); 130 131 /// joinCopy - Attempt to join intervals corresponding to SrcReg/DstReg, 132 /// which are the src/dst of the copy instruction CopyMI. This returns 133 /// true if the copy was successfully coalesced away. If it is not 134 /// currently possible to coalesce this interval, but it may be possible if 135 /// other things get coalesced, then it returns true by reference in 136 /// 'Again'. 137 bool joinCopy(MachineInstr *TheCopy, bool &Again); 138 139 /// joinIntervals - Attempt to join these two intervals. On failure, this 140 /// returns false. The output "SrcInt" will not have been modified, so we 141 /// can use this information below to update aliases. 142 bool joinIntervals(CoalescerPair &CP); 143 144 /// Attempt joining two virtual registers. Return true on success. 145 bool joinVirtRegs(CoalescerPair &CP); 146 147 /// Attempt joining with a reserved physreg. 148 bool joinReservedPhysReg(CoalescerPair &CP); 149 150 /// adjustCopiesBackFrom - We found a non-trivially-coalescable copy. If 151 /// the source value number is defined by a copy from the destination reg 152 /// see if we can merge these two destination reg valno# into a single 153 /// value number, eliminating a copy. 154 bool adjustCopiesBackFrom(const CoalescerPair &CP, MachineInstr *CopyMI); 155 156 /// hasOtherReachingDefs - Return true if there are definitions of IntB 157 /// other than BValNo val# that can reach uses of AValno val# of IntA. 158 bool hasOtherReachingDefs(LiveInterval &IntA, LiveInterval &IntB, 159 VNInfo *AValNo, VNInfo *BValNo); 160 161 /// removeCopyByCommutingDef - We found a non-trivially-coalescable copy. 162 /// If the source value number is defined by a commutable instruction and 163 /// its other operand is coalesced to the copy dest register, see if we 164 /// can transform the copy into a noop by commuting the definition. 165 bool removeCopyByCommutingDef(const CoalescerPair &CP,MachineInstr *CopyMI); 166 167 /// reMaterializeTrivialDef - If the source of a copy is defined by a 168 /// trivial computation, replace the copy by rematerialize the definition. 169 bool reMaterializeTrivialDef(CoalescerPair &CP, MachineInstr *CopyMI); 170 171 /// canJoinPhys - Return true if a physreg copy should be joined. 172 bool canJoinPhys(const CoalescerPair &CP); 173 174 /// updateRegDefsUses - Replace all defs and uses of SrcReg to DstReg and 175 /// update the subregister number if it is not zero. If DstReg is a 176 /// physical register and the existing subregister number of the def / use 177 /// being updated is not zero, make sure to set it to the correct physical 178 /// subregister. 179 void updateRegDefsUses(unsigned SrcReg, unsigned DstReg, unsigned SubIdx); 180 181 /// eliminateUndefCopy - Handle copies of undef values. 182 bool eliminateUndefCopy(MachineInstr *CopyMI, const CoalescerPair &CP); 183 184 public: 185 static char ID; // Class identification, replacement for typeinfo 186 RegisterCoalescer() : MachineFunctionPass(ID) { 187 initializeRegisterCoalescerPass(*PassRegistry::getPassRegistry()); 188 } 189 190 virtual void getAnalysisUsage(AnalysisUsage &AU) const; 191 192 virtual void releaseMemory(); 193 194 /// runOnMachineFunction - pass entry point 195 virtual bool runOnMachineFunction(MachineFunction&); 196 197 /// print - Implement the dump method. 198 virtual void print(raw_ostream &O, const Module* = 0) const; 199 }; 200 } /// end anonymous namespace 201 202 char &llvm::RegisterCoalescerID = RegisterCoalescer::ID; 203 204 INITIALIZE_PASS_BEGIN(RegisterCoalescer, "simple-register-coalescing", 205 "Simple Register Coalescing", false, false) 206 INITIALIZE_PASS_DEPENDENCY(LiveIntervals) 207 INITIALIZE_PASS_DEPENDENCY(SlotIndexes) 208 INITIALIZE_PASS_DEPENDENCY(MachineLoopInfo) 209 INITIALIZE_AG_DEPENDENCY(AliasAnalysis) 210 INITIALIZE_PASS_END(RegisterCoalescer, "simple-register-coalescing", 211 "Simple Register Coalescing", false, false) 212 213 char RegisterCoalescer::ID = 0; 214 215 static bool isMoveInstr(const TargetRegisterInfo &tri, const MachineInstr *MI, 216 unsigned &Src, unsigned &Dst, 217 unsigned &SrcSub, unsigned &DstSub) { 218 if (MI->isCopy()) { 219 Dst = MI->getOperand(0).getReg(); 220 DstSub = MI->getOperand(0).getSubReg(); 221 Src = MI->getOperand(1).getReg(); 222 SrcSub = MI->getOperand(1).getSubReg(); 223 } else if (MI->isSubregToReg()) { 224 Dst = MI->getOperand(0).getReg(); 225 DstSub = tri.composeSubRegIndices(MI->getOperand(0).getSubReg(), 226 MI->getOperand(3).getImm()); 227 Src = MI->getOperand(2).getReg(); 228 SrcSub = MI->getOperand(2).getSubReg(); 229 } else 230 return false; 231 return true; 232 } 233 234 // Return true if this block should be vacated by the coalescer to eliminate 235 // branches. The important cases to handle in the coalescer are critical edges 236 // split during phi elimination which contain only copies. Simple blocks that 237 // contain non-branches should also be vacated, but this can be handled by an 238 // earlier pass similar to early if-conversion. 239 static bool isSplitEdge(const MachineBasicBlock *MBB) { 240 if (MBB->pred_size() != 1 || MBB->succ_size() != 1) 241 return false; 242 243 for (MachineBasicBlock::const_iterator MII = MBB->begin(), E = MBB->end(); 244 MII != E; ++MII) { 245 if (!MII->isCopyLike() && !MII->isUnconditionalBranch()) 246 return false; 247 } 248 return true; 249 } 250 251 bool CoalescerPair::setRegisters(const MachineInstr *MI) { 252 SrcReg = DstReg = 0; 253 SrcIdx = DstIdx = 0; 254 NewRC = 0; 255 Flipped = CrossClass = false; 256 257 unsigned Src, Dst, SrcSub, DstSub; 258 if (!isMoveInstr(TRI, MI, Src, Dst, SrcSub, DstSub)) 259 return false; 260 Partial = SrcSub || DstSub; 261 262 // If one register is a physreg, it must be Dst. 263 if (TargetRegisterInfo::isPhysicalRegister(Src)) { 264 if (TargetRegisterInfo::isPhysicalRegister(Dst)) 265 return false; 266 std::swap(Src, Dst); 267 std::swap(SrcSub, DstSub); 268 Flipped = true; 269 } 270 271 const MachineRegisterInfo &MRI = MI->getParent()->getParent()->getRegInfo(); 272 273 if (TargetRegisterInfo::isPhysicalRegister(Dst)) { 274 // Eliminate DstSub on a physreg. 275 if (DstSub) { 276 Dst = TRI.getSubReg(Dst, DstSub); 277 if (!Dst) return false; 278 DstSub = 0; 279 } 280 281 // Eliminate SrcSub by picking a corresponding Dst superregister. 282 if (SrcSub) { 283 Dst = TRI.getMatchingSuperReg(Dst, SrcSub, MRI.getRegClass(Src)); 284 if (!Dst) return false; 285 SrcSub = 0; 286 } else if (!MRI.getRegClass(Src)->contains(Dst)) { 287 return false; 288 } 289 } else { 290 // Both registers are virtual. 291 const TargetRegisterClass *SrcRC = MRI.getRegClass(Src); 292 const TargetRegisterClass *DstRC = MRI.getRegClass(Dst); 293 294 // Both registers have subreg indices. 295 if (SrcSub && DstSub) { 296 // Copies between different sub-registers are never coalescable. 297 if (Src == Dst && SrcSub != DstSub) 298 return false; 299 300 NewRC = TRI.getCommonSuperRegClass(SrcRC, SrcSub, DstRC, DstSub, 301 SrcIdx, DstIdx); 302 if (!NewRC) 303 return false; 304 } else if (DstSub) { 305 // SrcReg will be merged with a sub-register of DstReg. 306 SrcIdx = DstSub; 307 NewRC = TRI.getMatchingSuperRegClass(DstRC, SrcRC, DstSub); 308 } else if (SrcSub) { 309 // DstReg will be merged with a sub-register of SrcReg. 310 DstIdx = SrcSub; 311 NewRC = TRI.getMatchingSuperRegClass(SrcRC, DstRC, SrcSub); 312 } else { 313 // This is a straight copy without sub-registers. 314 NewRC = TRI.getCommonSubClass(DstRC, SrcRC); 315 } 316 317 // The combined constraint may be impossible to satisfy. 318 if (!NewRC) 319 return false; 320 321 // Prefer SrcReg to be a sub-register of DstReg. 322 // FIXME: Coalescer should support subregs symmetrically. 323 if (DstIdx && !SrcIdx) { 324 std::swap(Src, Dst); 325 std::swap(SrcIdx, DstIdx); 326 Flipped = !Flipped; 327 } 328 329 CrossClass = NewRC != DstRC || NewRC != SrcRC; 330 } 331 // Check our invariants 332 assert(TargetRegisterInfo::isVirtualRegister(Src) && "Src must be virtual"); 333 assert(!(TargetRegisterInfo::isPhysicalRegister(Dst) && DstSub) && 334 "Cannot have a physical SubIdx"); 335 SrcReg = Src; 336 DstReg = Dst; 337 return true; 338 } 339 340 bool CoalescerPair::flip() { 341 if (TargetRegisterInfo::isPhysicalRegister(DstReg)) 342 return false; 343 std::swap(SrcReg, DstReg); 344 std::swap(SrcIdx, DstIdx); 345 Flipped = !Flipped; 346 return true; 347 } 348 349 bool CoalescerPair::isCoalescable(const MachineInstr *MI) const { 350 if (!MI) 351 return false; 352 unsigned Src, Dst, SrcSub, DstSub; 353 if (!isMoveInstr(TRI, MI, Src, Dst, SrcSub, DstSub)) 354 return false; 355 356 // Find the virtual register that is SrcReg. 357 if (Dst == SrcReg) { 358 std::swap(Src, Dst); 359 std::swap(SrcSub, DstSub); 360 } else if (Src != SrcReg) { 361 return false; 362 } 363 364 // Now check that Dst matches DstReg. 365 if (TargetRegisterInfo::isPhysicalRegister(DstReg)) { 366 if (!TargetRegisterInfo::isPhysicalRegister(Dst)) 367 return false; 368 assert(!DstIdx && !SrcIdx && "Inconsistent CoalescerPair state."); 369 // DstSub could be set for a physreg from INSERT_SUBREG. 370 if (DstSub) 371 Dst = TRI.getSubReg(Dst, DstSub); 372 // Full copy of Src. 373 if (!SrcSub) 374 return DstReg == Dst; 375 // This is a partial register copy. Check that the parts match. 376 return TRI.getSubReg(DstReg, SrcSub) == Dst; 377 } else { 378 // DstReg is virtual. 379 if (DstReg != Dst) 380 return false; 381 // Registers match, do the subregisters line up? 382 return TRI.composeSubRegIndices(SrcIdx, SrcSub) == 383 TRI.composeSubRegIndices(DstIdx, DstSub); 384 } 385 } 386 387 void RegisterCoalescer::getAnalysisUsage(AnalysisUsage &AU) const { 388 AU.setPreservesCFG(); 389 AU.addRequired<AliasAnalysis>(); 390 AU.addRequired<LiveIntervals>(); 391 AU.addPreserved<LiveIntervals>(); 392 AU.addPreserved<SlotIndexes>(); 393 AU.addRequired<MachineLoopInfo>(); 394 AU.addPreserved<MachineLoopInfo>(); 395 AU.addPreservedID(MachineDominatorsID); 396 MachineFunctionPass::getAnalysisUsage(AU); 397 } 398 399 void RegisterCoalescer::eliminateDeadDefs() { 400 SmallVector<LiveInterval*, 8> NewRegs; 401 LiveRangeEdit(0, NewRegs, *MF, *LIS, 0, this).eliminateDeadDefs(DeadDefs); 402 } 403 404 // Callback from eliminateDeadDefs(). 405 void RegisterCoalescer::LRE_WillEraseInstruction(MachineInstr *MI) { 406 // MI may be in WorkList. Make sure we don't visit it. 407 ErasedInstrs.insert(MI); 408 } 409 410 /// adjustCopiesBackFrom - We found a non-trivially-coalescable copy with IntA 411 /// being the source and IntB being the dest, thus this defines a value number 412 /// in IntB. If the source value number (in IntA) is defined by a copy from B, 413 /// see if we can merge these two pieces of B into a single value number, 414 /// eliminating a copy. For example: 415 /// 416 /// A3 = B0 417 /// ... 418 /// B1 = A3 <- this copy 419 /// 420 /// In this case, B0 can be extended to where the B1 copy lives, allowing the B1 421 /// value number to be replaced with B0 (which simplifies the B liveinterval). 422 /// 423 /// This returns true if an interval was modified. 424 /// 425 bool RegisterCoalescer::adjustCopiesBackFrom(const CoalescerPair &CP, 426 MachineInstr *CopyMI) { 427 assert(!CP.isPartial() && "This doesn't work for partial copies."); 428 assert(!CP.isPhys() && "This doesn't work for physreg copies."); 429 430 LiveInterval &IntA = 431 LIS->getInterval(CP.isFlipped() ? CP.getDstReg() : CP.getSrcReg()); 432 LiveInterval &IntB = 433 LIS->getInterval(CP.isFlipped() ? CP.getSrcReg() : CP.getDstReg()); 434 SlotIndex CopyIdx = LIS->getInstructionIndex(CopyMI).getRegSlot(); 435 436 // BValNo is a value number in B that is defined by a copy from A. 'B3' in 437 // the example above. 438 LiveInterval::iterator BLR = IntB.FindLiveRangeContaining(CopyIdx); 439 if (BLR == IntB.end()) return false; 440 VNInfo *BValNo = BLR->valno; 441 442 // Get the location that B is defined at. Two options: either this value has 443 // an unknown definition point or it is defined at CopyIdx. If unknown, we 444 // can't process it. 445 if (BValNo->def != CopyIdx) return false; 446 447 // AValNo is the value number in A that defines the copy, A3 in the example. 448 SlotIndex CopyUseIdx = CopyIdx.getRegSlot(true); 449 LiveInterval::iterator ALR = IntA.FindLiveRangeContaining(CopyUseIdx); 450 // The live range might not exist after fun with physreg coalescing. 451 if (ALR == IntA.end()) return false; 452 VNInfo *AValNo = ALR->valno; 453 454 // If AValNo is defined as a copy from IntB, we can potentially process this. 455 // Get the instruction that defines this value number. 456 MachineInstr *ACopyMI = LIS->getInstructionFromIndex(AValNo->def); 457 // Don't allow any partial copies, even if isCoalescable() allows them. 458 if (!CP.isCoalescable(ACopyMI) || !ACopyMI->isFullCopy()) 459 return false; 460 461 // Get the LiveRange in IntB that this value number starts with. 462 LiveInterval::iterator ValLR = 463 IntB.FindLiveRangeContaining(AValNo->def.getPrevSlot()); 464 if (ValLR == IntB.end()) 465 return false; 466 467 // Make sure that the end of the live range is inside the same block as 468 // CopyMI. 469 MachineInstr *ValLREndInst = 470 LIS->getInstructionFromIndex(ValLR->end.getPrevSlot()); 471 if (!ValLREndInst || ValLREndInst->getParent() != CopyMI->getParent()) 472 return false; 473 474 // Okay, we now know that ValLR ends in the same block that the CopyMI 475 // live-range starts. If there are no intervening live ranges between them in 476 // IntB, we can merge them. 477 if (ValLR+1 != BLR) return false; 478 479 DEBUG(dbgs() << "Extending: " << PrintReg(IntB.reg, TRI)); 480 481 SlotIndex FillerStart = ValLR->end, FillerEnd = BLR->start; 482 // We are about to delete CopyMI, so need to remove it as the 'instruction 483 // that defines this value #'. Update the valnum with the new defining 484 // instruction #. 485 BValNo->def = FillerStart; 486 487 // Okay, we can merge them. We need to insert a new liverange: 488 // [ValLR.end, BLR.begin) of either value number, then we merge the 489 // two value numbers. 490 IntB.addRange(LiveRange(FillerStart, FillerEnd, BValNo)); 491 492 // Okay, merge "B1" into the same value number as "B0". 493 if (BValNo != ValLR->valno) 494 IntB.MergeValueNumberInto(BValNo, ValLR->valno); 495 DEBUG(dbgs() << " result = " << IntB << '\n'); 496 497 // If the source instruction was killing the source register before the 498 // merge, unset the isKill marker given the live range has been extended. 499 int UIdx = ValLREndInst->findRegisterUseOperandIdx(IntB.reg, true); 500 if (UIdx != -1) { 501 ValLREndInst->getOperand(UIdx).setIsKill(false); 502 } 503 504 // Rewrite the copy. If the copy instruction was killing the destination 505 // register before the merge, find the last use and trim the live range. That 506 // will also add the isKill marker. 507 CopyMI->substituteRegister(IntA.reg, IntB.reg, 0, *TRI); 508 if (ALR->end == CopyIdx) 509 LIS->shrinkToUses(&IntA); 510 511 ++numExtends; 512 return true; 513 } 514 515 /// hasOtherReachingDefs - Return true if there are definitions of IntB 516 /// other than BValNo val# that can reach uses of AValno val# of IntA. 517 bool RegisterCoalescer::hasOtherReachingDefs(LiveInterval &IntA, 518 LiveInterval &IntB, 519 VNInfo *AValNo, 520 VNInfo *BValNo) { 521 // If AValNo has PHI kills, conservatively assume that IntB defs can reach 522 // the PHI values. 523 if (LIS->hasPHIKill(IntA, AValNo)) 524 return true; 525 526 for (LiveInterval::iterator AI = IntA.begin(), AE = IntA.end(); 527 AI != AE; ++AI) { 528 if (AI->valno != AValNo) continue; 529 LiveInterval::Ranges::iterator BI = 530 std::upper_bound(IntB.ranges.begin(), IntB.ranges.end(), AI->start); 531 if (BI != IntB.ranges.begin()) 532 --BI; 533 for (; BI != IntB.ranges.end() && AI->end >= BI->start; ++BI) { 534 if (BI->valno == BValNo) 535 continue; 536 if (BI->start <= AI->start && BI->end > AI->start) 537 return true; 538 if (BI->start > AI->start && BI->start < AI->end) 539 return true; 540 } 541 } 542 return false; 543 } 544 545 /// removeCopyByCommutingDef - We found a non-trivially-coalescable copy with 546 /// IntA being the source and IntB being the dest, thus this defines a value 547 /// number in IntB. If the source value number (in IntA) is defined by a 548 /// commutable instruction and its other operand is coalesced to the copy dest 549 /// register, see if we can transform the copy into a noop by commuting the 550 /// definition. For example, 551 /// 552 /// A3 = op A2 B0<kill> 553 /// ... 554 /// B1 = A3 <- this copy 555 /// ... 556 /// = op A3 <- more uses 557 /// 558 /// ==> 559 /// 560 /// B2 = op B0 A2<kill> 561 /// ... 562 /// B1 = B2 <- now an identify copy 563 /// ... 564 /// = op B2 <- more uses 565 /// 566 /// This returns true if an interval was modified. 567 /// 568 bool RegisterCoalescer::removeCopyByCommutingDef(const CoalescerPair &CP, 569 MachineInstr *CopyMI) { 570 assert (!CP.isPhys()); 571 572 SlotIndex CopyIdx = LIS->getInstructionIndex(CopyMI).getRegSlot(); 573 574 LiveInterval &IntA = 575 LIS->getInterval(CP.isFlipped() ? CP.getDstReg() : CP.getSrcReg()); 576 LiveInterval &IntB = 577 LIS->getInterval(CP.isFlipped() ? CP.getSrcReg() : CP.getDstReg()); 578 579 // BValNo is a value number in B that is defined by a copy from A. 'B3' in 580 // the example above. 581 VNInfo *BValNo = IntB.getVNInfoAt(CopyIdx); 582 if (!BValNo || BValNo->def != CopyIdx) 583 return false; 584 585 assert(BValNo->def == CopyIdx && "Copy doesn't define the value?"); 586 587 // AValNo is the value number in A that defines the copy, A3 in the example. 588 VNInfo *AValNo = IntA.getVNInfoAt(CopyIdx.getRegSlot(true)); 589 assert(AValNo && "COPY source not live"); 590 if (AValNo->isPHIDef() || AValNo->isUnused()) 591 return false; 592 MachineInstr *DefMI = LIS->getInstructionFromIndex(AValNo->def); 593 if (!DefMI) 594 return false; 595 if (!DefMI->isCommutable()) 596 return false; 597 // If DefMI is a two-address instruction then commuting it will change the 598 // destination register. 599 int DefIdx = DefMI->findRegisterDefOperandIdx(IntA.reg); 600 assert(DefIdx != -1); 601 unsigned UseOpIdx; 602 if (!DefMI->isRegTiedToUseOperand(DefIdx, &UseOpIdx)) 603 return false; 604 unsigned Op1, Op2, NewDstIdx; 605 if (!TII->findCommutedOpIndices(DefMI, Op1, Op2)) 606 return false; 607 if (Op1 == UseOpIdx) 608 NewDstIdx = Op2; 609 else if (Op2 == UseOpIdx) 610 NewDstIdx = Op1; 611 else 612 return false; 613 614 MachineOperand &NewDstMO = DefMI->getOperand(NewDstIdx); 615 unsigned NewReg = NewDstMO.getReg(); 616 if (NewReg != IntB.reg || !LiveRangeQuery(IntB, AValNo->def).isKill()) 617 return false; 618 619 // Make sure there are no other definitions of IntB that would reach the 620 // uses which the new definition can reach. 621 if (hasOtherReachingDefs(IntA, IntB, AValNo, BValNo)) 622 return false; 623 624 // If some of the uses of IntA.reg is already coalesced away, return false. 625 // It's not possible to determine whether it's safe to perform the coalescing. 626 for (MachineRegisterInfo::use_nodbg_iterator UI = 627 MRI->use_nodbg_begin(IntA.reg), 628 UE = MRI->use_nodbg_end(); UI != UE; ++UI) { 629 MachineInstr *UseMI = &*UI; 630 SlotIndex UseIdx = LIS->getInstructionIndex(UseMI); 631 LiveInterval::iterator ULR = IntA.FindLiveRangeContaining(UseIdx); 632 if (ULR == IntA.end() || ULR->valno != AValNo) 633 continue; 634 // If this use is tied to a def, we can't rewrite the register. 635 if (UseMI->isRegTiedToDefOperand(UI.getOperandNo())) 636 return false; 637 } 638 639 DEBUG(dbgs() << "\tremoveCopyByCommutingDef: " << AValNo->def << '\t' 640 << *DefMI); 641 642 // At this point we have decided that it is legal to do this 643 // transformation. Start by commuting the instruction. 644 MachineBasicBlock *MBB = DefMI->getParent(); 645 MachineInstr *NewMI = TII->commuteInstruction(DefMI); 646 if (!NewMI) 647 return false; 648 if (TargetRegisterInfo::isVirtualRegister(IntA.reg) && 649 TargetRegisterInfo::isVirtualRegister(IntB.reg) && 650 !MRI->constrainRegClass(IntB.reg, MRI->getRegClass(IntA.reg))) 651 return false; 652 if (NewMI != DefMI) { 653 LIS->ReplaceMachineInstrInMaps(DefMI, NewMI); 654 MachineBasicBlock::iterator Pos = DefMI; 655 MBB->insert(Pos, NewMI); 656 MBB->erase(DefMI); 657 } 658 unsigned OpIdx = NewMI->findRegisterUseOperandIdx(IntA.reg, false); 659 NewMI->getOperand(OpIdx).setIsKill(); 660 661 // If ALR and BLR overlaps and end of BLR extends beyond end of ALR, e.g. 662 // A = or A, B 663 // ... 664 // B = A 665 // ... 666 // C = A<kill> 667 // ... 668 // = B 669 670 // Update uses of IntA of the specific Val# with IntB. 671 for (MachineRegisterInfo::use_iterator UI = MRI->use_begin(IntA.reg), 672 UE = MRI->use_end(); UI != UE;) { 673 MachineOperand &UseMO = UI.getOperand(); 674 MachineInstr *UseMI = &*UI; 675 ++UI; 676 if (UseMI->isDebugValue()) { 677 // FIXME These don't have an instruction index. Not clear we have enough 678 // info to decide whether to do this replacement or not. For now do it. 679 UseMO.setReg(NewReg); 680 continue; 681 } 682 SlotIndex UseIdx = LIS->getInstructionIndex(UseMI).getRegSlot(true); 683 LiveInterval::iterator ULR = IntA.FindLiveRangeContaining(UseIdx); 684 if (ULR == IntA.end() || ULR->valno != AValNo) 685 continue; 686 // Kill flags are no longer accurate. They are recomputed after RA. 687 UseMO.setIsKill(false); 688 if (TargetRegisterInfo::isPhysicalRegister(NewReg)) 689 UseMO.substPhysReg(NewReg, *TRI); 690 else 691 UseMO.setReg(NewReg); 692 if (UseMI == CopyMI) 693 continue; 694 if (!UseMI->isCopy()) 695 continue; 696 if (UseMI->getOperand(0).getReg() != IntB.reg || 697 UseMI->getOperand(0).getSubReg()) 698 continue; 699 700 // This copy will become a noop. If it's defining a new val#, merge it into 701 // BValNo. 702 SlotIndex DefIdx = UseIdx.getRegSlot(); 703 VNInfo *DVNI = IntB.getVNInfoAt(DefIdx); 704 if (!DVNI) 705 continue; 706 DEBUG(dbgs() << "\t\tnoop: " << DefIdx << '\t' << *UseMI); 707 assert(DVNI->def == DefIdx); 708 BValNo = IntB.MergeValueNumberInto(BValNo, DVNI); 709 ErasedInstrs.insert(UseMI); 710 LIS->RemoveMachineInstrFromMaps(UseMI); 711 UseMI->eraseFromParent(); 712 } 713 714 // Extend BValNo by merging in IntA live ranges of AValNo. Val# definition 715 // is updated. 716 VNInfo *ValNo = BValNo; 717 ValNo->def = AValNo->def; 718 for (LiveInterval::iterator AI = IntA.begin(), AE = IntA.end(); 719 AI != AE; ++AI) { 720 if (AI->valno != AValNo) continue; 721 IntB.addRange(LiveRange(AI->start, AI->end, ValNo)); 722 } 723 DEBUG(dbgs() << "\t\textended: " << IntB << '\n'); 724 725 IntA.removeValNo(AValNo); 726 DEBUG(dbgs() << "\t\ttrimmed: " << IntA << '\n'); 727 ++numCommutes; 728 return true; 729 } 730 731 /// reMaterializeTrivialDef - If the source of a copy is defined by a trivial 732 /// computation, replace the copy by rematerialize the definition. 733 bool RegisterCoalescer::reMaterializeTrivialDef(CoalescerPair &CP, 734 MachineInstr *CopyMI) { 735 unsigned SrcReg = CP.isFlipped() ? CP.getDstReg() : CP.getSrcReg(); 736 unsigned SrcIdx = CP.isFlipped() ? CP.getDstIdx() : CP.getSrcIdx(); 737 unsigned DstReg = CP.isFlipped() ? CP.getSrcReg() : CP.getDstReg(); 738 unsigned DstIdx = CP.isFlipped() ? CP.getSrcIdx() : CP.getDstIdx(); 739 if (TargetRegisterInfo::isPhysicalRegister(SrcReg)) 740 return false; 741 742 LiveInterval &SrcInt = LIS->getInterval(SrcReg); 743 SlotIndex CopyIdx = LIS->getInstructionIndex(CopyMI).getRegSlot(true); 744 LiveInterval::iterator SrcLR = SrcInt.FindLiveRangeContaining(CopyIdx); 745 assert(SrcLR != SrcInt.end() && "Live range not found!"); 746 VNInfo *ValNo = SrcLR->valno; 747 if (ValNo->isPHIDef() || ValNo->isUnused()) 748 return false; 749 MachineInstr *DefMI = LIS->getInstructionFromIndex(ValNo->def); 750 if (!DefMI) 751 return false; 752 assert(DefMI && "Defining instruction disappeared"); 753 if (!DefMI->isAsCheapAsAMove()) 754 return false; 755 if (!TII->isTriviallyReMaterializable(DefMI, AA)) 756 return false; 757 bool SawStore = false; 758 if (!DefMI->isSafeToMove(TII, AA, SawStore)) 759 return false; 760 const MCInstrDesc &MCID = DefMI->getDesc(); 761 if (MCID.getNumDefs() != 1) 762 return false; 763 // Only support subregister destinations when the def is read-undef. 764 MachineOperand &DstOperand = CopyMI->getOperand(0); 765 unsigned CopyDstReg = DstOperand.getReg(); 766 if (DstOperand.getSubReg() && !DstOperand.isUndef()) 767 return false; 768 769 const TargetRegisterClass *DefRC = TII->getRegClass(MCID, 0, TRI, *MF); 770 if (!DefMI->isImplicitDef()) { 771 if (TargetRegisterInfo::isPhysicalRegister(DstReg)) { 772 unsigned NewDstReg = DstReg; 773 774 unsigned NewDstIdx = TRI->composeSubRegIndices(CP.getSrcIdx(), 775 DefMI->getOperand(0).getSubReg()); 776 if (NewDstIdx) 777 NewDstReg = TRI->getSubReg(DstReg, NewDstIdx); 778 779 // Finally, make sure that the physical subregister that will be 780 // constructed later is permitted for the instruction. 781 if (!DefRC->contains(NewDstReg)) 782 return false; 783 } else { 784 // Theoretically, some stack frame reference could exist. Just make sure 785 // it hasn't actually happened. 786 assert(TargetRegisterInfo::isVirtualRegister(DstReg) && 787 "Only expect to deal with virtual or physical registers"); 788 } 789 } 790 791 MachineBasicBlock *MBB = CopyMI->getParent(); 792 MachineBasicBlock::iterator MII = 793 llvm::next(MachineBasicBlock::iterator(CopyMI)); 794 TII->reMaterialize(*MBB, MII, DstReg, SrcIdx, DefMI, *TRI); 795 MachineInstr *NewMI = prior(MII); 796 797 LIS->ReplaceMachineInstrInMaps(CopyMI, NewMI); 798 CopyMI->eraseFromParent(); 799 ErasedInstrs.insert(CopyMI); 800 801 // NewMI may have dead implicit defs (E.g. EFLAGS for MOV<bits>r0 on X86). 802 // We need to remember these so we can add intervals once we insert 803 // NewMI into SlotIndexes. 804 SmallVector<unsigned, 4> NewMIImplDefs; 805 for (unsigned i = NewMI->getDesc().getNumOperands(), 806 e = NewMI->getNumOperands(); i != e; ++i) { 807 MachineOperand &MO = NewMI->getOperand(i); 808 if (MO.isReg()) { 809 assert(MO.isDef() && MO.isImplicit() && MO.isDead() && 810 TargetRegisterInfo::isPhysicalRegister(MO.getReg())); 811 NewMIImplDefs.push_back(MO.getReg()); 812 } 813 } 814 815 if (TargetRegisterInfo::isVirtualRegister(DstReg)) { 816 unsigned NewIdx = NewMI->getOperand(0).getSubReg(); 817 const TargetRegisterClass *RCForInst; 818 if (NewIdx) 819 RCForInst = TRI->getMatchingSuperRegClass(MRI->getRegClass(DstReg), DefRC, 820 NewIdx); 821 822 if (MRI->constrainRegClass(DstReg, DefRC)) { 823 // The materialized instruction is quite capable of setting DstReg 824 // directly, but it may still have a now-trivial subregister index which 825 // we should clear. 826 NewMI->getOperand(0).setSubReg(0); 827 } else if (NewIdx && RCForInst) { 828 // The subreg index on NewMI is essential; we still have to make sure 829 // DstReg:idx is in a class that NewMI can use. 830 MRI->constrainRegClass(DstReg, RCForInst); 831 } else { 832 // DstReg is actually incompatible with NewMI, we have to move to a 833 // super-reg's class. This could come from a sequence like: 834 // GR32 = MOV32r0 835 // GR8 = COPY GR32:sub_8 836 MRI->setRegClass(DstReg, CP.getNewRC()); 837 updateRegDefsUses(DstReg, DstReg, DstIdx); 838 NewMI->getOperand(0).setSubReg( 839 TRI->composeSubRegIndices(SrcIdx, DefMI->getOperand(0).getSubReg())); 840 } 841 } else if (NewMI->getOperand(0).getReg() != CopyDstReg) { 842 // The New instruction may be defining a sub-register of what's actually 843 // been asked for. If so it must implicitly define the whole thing. 844 assert(TargetRegisterInfo::isPhysicalRegister(DstReg) && 845 "Only expect virtual or physical registers in remat"); 846 NewMI->getOperand(0).setIsDead(true); 847 NewMI->addOperand(MachineOperand::CreateReg(CopyDstReg, 848 true /*IsDef*/, 849 true /*IsImp*/, 850 false /*IsKill*/)); 851 } 852 853 if (NewMI->getOperand(0).getSubReg()) 854 NewMI->getOperand(0).setIsUndef(); 855 856 // CopyMI may have implicit operands, transfer them over to the newly 857 // rematerialized instruction. And update implicit def interval valnos. 858 for (unsigned i = CopyMI->getDesc().getNumOperands(), 859 e = CopyMI->getNumOperands(); i != e; ++i) { 860 MachineOperand &MO = CopyMI->getOperand(i); 861 if (MO.isReg()) { 862 assert(MO.isImplicit() && "No explicit operands after implict operands."); 863 // Discard VReg implicit defs. 864 if (TargetRegisterInfo::isPhysicalRegister(MO.getReg())) { 865 NewMI->addOperand(MO); 866 } 867 } 868 } 869 870 SlotIndex NewMIIdx = LIS->getInstructionIndex(NewMI); 871 for (unsigned i = 0, e = NewMIImplDefs.size(); i != e; ++i) { 872 unsigned Reg = NewMIImplDefs[i]; 873 for (MCRegUnitIterator Units(Reg, TRI); Units.isValid(); ++Units) 874 if (LiveInterval *LI = LIS->getCachedRegUnit(*Units)) 875 LI->createDeadDef(NewMIIdx.getRegSlot(), LIS->getVNInfoAllocator()); 876 } 877 878 DEBUG(dbgs() << "Remat: " << *NewMI); 879 ++NumReMats; 880 881 // The source interval can become smaller because we removed a use. 882 LIS->shrinkToUses(&SrcInt, &DeadDefs); 883 if (!DeadDefs.empty()) 884 eliminateDeadDefs(); 885 886 return true; 887 } 888 889 /// eliminateUndefCopy - ProcessImpicitDefs may leave some copies of <undef> 890 /// values, it only removes local variables. When we have a copy like: 891 /// 892 /// %vreg1 = COPY %vreg2<undef> 893 /// 894 /// We delete the copy and remove the corresponding value number from %vreg1. 895 /// Any uses of that value number are marked as <undef>. 896 bool RegisterCoalescer::eliminateUndefCopy(MachineInstr *CopyMI, 897 const CoalescerPair &CP) { 898 SlotIndex Idx = LIS->getInstructionIndex(CopyMI); 899 LiveInterval *SrcInt = &LIS->getInterval(CP.getSrcReg()); 900 if (SrcInt->liveAt(Idx)) 901 return false; 902 LiveInterval *DstInt = &LIS->getInterval(CP.getDstReg()); 903 if (DstInt->liveAt(Idx)) 904 return false; 905 906 // No intervals are live-in to CopyMI - it is undef. 907 if (CP.isFlipped()) 908 DstInt = SrcInt; 909 SrcInt = 0; 910 911 VNInfo *DeadVNI = DstInt->getVNInfoAt(Idx.getRegSlot()); 912 assert(DeadVNI && "No value defined in DstInt"); 913 DstInt->removeValNo(DeadVNI); 914 915 // Find new undef uses. 916 for (MachineRegisterInfo::reg_nodbg_iterator 917 I = MRI->reg_nodbg_begin(DstInt->reg), E = MRI->reg_nodbg_end(); 918 I != E; ++I) { 919 MachineOperand &MO = I.getOperand(); 920 if (MO.isDef() || MO.isUndef()) 921 continue; 922 MachineInstr *MI = MO.getParent(); 923 SlotIndex Idx = LIS->getInstructionIndex(MI); 924 if (DstInt->liveAt(Idx)) 925 continue; 926 MO.setIsUndef(true); 927 DEBUG(dbgs() << "\tnew undef: " << Idx << '\t' << *MI); 928 } 929 return true; 930 } 931 932 /// updateRegDefsUses - Replace all defs and uses of SrcReg to DstReg and 933 /// update the subregister number if it is not zero. If DstReg is a 934 /// physical register and the existing subregister number of the def / use 935 /// being updated is not zero, make sure to set it to the correct physical 936 /// subregister. 937 void RegisterCoalescer::updateRegDefsUses(unsigned SrcReg, 938 unsigned DstReg, 939 unsigned SubIdx) { 940 bool DstIsPhys = TargetRegisterInfo::isPhysicalRegister(DstReg); 941 LiveInterval *DstInt = DstIsPhys ? 0 : &LIS->getInterval(DstReg); 942 943 SmallPtrSet<MachineInstr*, 8> Visited; 944 for (MachineRegisterInfo::reg_iterator I = MRI->reg_begin(SrcReg); 945 MachineInstr *UseMI = I.skipInstruction();) { 946 // Each instruction can only be rewritten once because sub-register 947 // composition is not always idempotent. When SrcReg != DstReg, rewriting 948 // the UseMI operands removes them from the SrcReg use-def chain, but when 949 // SrcReg is DstReg we could encounter UseMI twice if it has multiple 950 // operands mentioning the virtual register. 951 if (SrcReg == DstReg && !Visited.insert(UseMI)) 952 continue; 953 954 SmallVector<unsigned,8> Ops; 955 bool Reads, Writes; 956 tie(Reads, Writes) = UseMI->readsWritesVirtualRegister(SrcReg, &Ops); 957 958 // If SrcReg wasn't read, it may still be the case that DstReg is live-in 959 // because SrcReg is a sub-register. 960 if (DstInt && !Reads && SubIdx) 961 Reads = DstInt->liveAt(LIS->getInstructionIndex(UseMI)); 962 963 // Replace SrcReg with DstReg in all UseMI operands. 964 for (unsigned i = 0, e = Ops.size(); i != e; ++i) { 965 MachineOperand &MO = UseMI->getOperand(Ops[i]); 966 967 // Adjust <undef> flags in case of sub-register joins. We don't want to 968 // turn a full def into a read-modify-write sub-register def and vice 969 // versa. 970 if (SubIdx && MO.isDef()) 971 MO.setIsUndef(!Reads); 972 973 if (DstIsPhys) 974 MO.substPhysReg(DstReg, *TRI); 975 else 976 MO.substVirtReg(DstReg, SubIdx, *TRI); 977 } 978 979 DEBUG({ 980 dbgs() << "\t\tupdated: "; 981 if (!UseMI->isDebugValue()) 982 dbgs() << LIS->getInstructionIndex(UseMI) << "\t"; 983 dbgs() << *UseMI; 984 }); 985 } 986 } 987 988 /// canJoinPhys - Return true if a copy involving a physreg should be joined. 989 bool RegisterCoalescer::canJoinPhys(const CoalescerPair &CP) { 990 /// Always join simple intervals that are defined by a single copy from a 991 /// reserved register. This doesn't increase register pressure, so it is 992 /// always beneficial. 993 if (!MRI->isReserved(CP.getDstReg())) { 994 DEBUG(dbgs() << "\tCan only merge into reserved registers.\n"); 995 return false; 996 } 997 998 LiveInterval &JoinVInt = LIS->getInterval(CP.getSrcReg()); 999 if (CP.isFlipped() && JoinVInt.containsOneValue()) 1000 return true; 1001 1002 DEBUG(dbgs() << "\tCannot join defs into reserved register.\n"); 1003 return false; 1004 } 1005 1006 /// joinCopy - Attempt to join intervals corresponding to SrcReg/DstReg, 1007 /// which are the src/dst of the copy instruction CopyMI. This returns true 1008 /// if the copy was successfully coalesced away. If it is not currently 1009 /// possible to coalesce this interval, but it may be possible if other 1010 /// things get coalesced, then it returns true by reference in 'Again'. 1011 bool RegisterCoalescer::joinCopy(MachineInstr *CopyMI, bool &Again) { 1012 1013 Again = false; 1014 DEBUG(dbgs() << LIS->getInstructionIndex(CopyMI) << '\t' << *CopyMI); 1015 1016 CoalescerPair CP(*TRI); 1017 if (!CP.setRegisters(CopyMI)) { 1018 DEBUG(dbgs() << "\tNot coalescable.\n"); 1019 return false; 1020 } 1021 1022 // Dead code elimination. This really should be handled by MachineDCE, but 1023 // sometimes dead copies slip through, and we can't generate invalid live 1024 // ranges. 1025 if (!CP.isPhys() && CopyMI->allDefsAreDead()) { 1026 DEBUG(dbgs() << "\tCopy is dead.\n"); 1027 DeadDefs.push_back(CopyMI); 1028 eliminateDeadDefs(); 1029 return true; 1030 } 1031 1032 // Eliminate undefs. 1033 if (!CP.isPhys() && eliminateUndefCopy(CopyMI, CP)) { 1034 DEBUG(dbgs() << "\tEliminated copy of <undef> value.\n"); 1035 LIS->RemoveMachineInstrFromMaps(CopyMI); 1036 CopyMI->eraseFromParent(); 1037 return false; // Not coalescable. 1038 } 1039 1040 // Coalesced copies are normally removed immediately, but transformations 1041 // like removeCopyByCommutingDef() can inadvertently create identity copies. 1042 // When that happens, just join the values and remove the copy. 1043 if (CP.getSrcReg() == CP.getDstReg()) { 1044 LiveInterval &LI = LIS->getInterval(CP.getSrcReg()); 1045 DEBUG(dbgs() << "\tCopy already coalesced: " << LI << '\n'); 1046 LiveRangeQuery LRQ(LI, LIS->getInstructionIndex(CopyMI)); 1047 if (VNInfo *DefVNI = LRQ.valueDefined()) { 1048 VNInfo *ReadVNI = LRQ.valueIn(); 1049 assert(ReadVNI && "No value before copy and no <undef> flag."); 1050 assert(ReadVNI != DefVNI && "Cannot read and define the same value."); 1051 LI.MergeValueNumberInto(DefVNI, ReadVNI); 1052 DEBUG(dbgs() << "\tMerged values: " << LI << '\n'); 1053 } 1054 LIS->RemoveMachineInstrFromMaps(CopyMI); 1055 CopyMI->eraseFromParent(); 1056 return true; 1057 } 1058 1059 // Enforce policies. 1060 if (CP.isPhys()) { 1061 DEBUG(dbgs() << "\tConsidering merging " << PrintReg(CP.getSrcReg(), TRI) 1062 << " with " << PrintReg(CP.getDstReg(), TRI, CP.getSrcIdx()) 1063 << '\n'); 1064 if (!canJoinPhys(CP)) { 1065 // Before giving up coalescing, if definition of source is defined by 1066 // trivial computation, try rematerializing it. 1067 if (reMaterializeTrivialDef(CP, CopyMI)) 1068 return true; 1069 return false; 1070 } 1071 } else { 1072 DEBUG({ 1073 dbgs() << "\tConsidering merging to " << CP.getNewRC()->getName() 1074 << " with "; 1075 if (CP.getDstIdx() && CP.getSrcIdx()) 1076 dbgs() << PrintReg(CP.getDstReg()) << " in " 1077 << TRI->getSubRegIndexName(CP.getDstIdx()) << " and " 1078 << PrintReg(CP.getSrcReg()) << " in " 1079 << TRI->getSubRegIndexName(CP.getSrcIdx()) << '\n'; 1080 else 1081 dbgs() << PrintReg(CP.getSrcReg(), TRI) << " in " 1082 << PrintReg(CP.getDstReg(), TRI, CP.getSrcIdx()) << '\n'; 1083 }); 1084 1085 // When possible, let DstReg be the larger interval. 1086 if (!CP.isPartial() && LIS->getInterval(CP.getSrcReg()).ranges.size() > 1087 LIS->getInterval(CP.getDstReg()).ranges.size()) 1088 CP.flip(); 1089 } 1090 1091 // Okay, attempt to join these two intervals. On failure, this returns false. 1092 // Otherwise, if one of the intervals being joined is a physreg, this method 1093 // always canonicalizes DstInt to be it. The output "SrcInt" will not have 1094 // been modified, so we can use this information below to update aliases. 1095 if (!joinIntervals(CP)) { 1096 // Coalescing failed. 1097 1098 // If definition of source is defined by trivial computation, try 1099 // rematerializing it. 1100 if (reMaterializeTrivialDef(CP, CopyMI)) 1101 return true; 1102 1103 // If we can eliminate the copy without merging the live ranges, do so now. 1104 if (!CP.isPartial() && !CP.isPhys()) { 1105 if (adjustCopiesBackFrom(CP, CopyMI) || 1106 removeCopyByCommutingDef(CP, CopyMI)) { 1107 LIS->RemoveMachineInstrFromMaps(CopyMI); 1108 CopyMI->eraseFromParent(); 1109 DEBUG(dbgs() << "\tTrivial!\n"); 1110 return true; 1111 } 1112 } 1113 1114 // Otherwise, we are unable to join the intervals. 1115 DEBUG(dbgs() << "\tInterference!\n"); 1116 Again = true; // May be possible to coalesce later. 1117 return false; 1118 } 1119 1120 // Coalescing to a virtual register that is of a sub-register class of the 1121 // other. Make sure the resulting register is set to the right register class. 1122 if (CP.isCrossClass()) { 1123 ++numCrossRCs; 1124 MRI->setRegClass(CP.getDstReg(), CP.getNewRC()); 1125 } 1126 1127 // Removing sub-register copies can ease the register class constraints. 1128 // Make sure we attempt to inflate the register class of DstReg. 1129 if (!CP.isPhys() && RegClassInfo.isProperSubClass(CP.getNewRC())) 1130 InflateRegs.push_back(CP.getDstReg()); 1131 1132 // CopyMI has been erased by joinIntervals at this point. Remove it from 1133 // ErasedInstrs since copyCoalesceWorkList() won't add a successful join back 1134 // to the work list. This keeps ErasedInstrs from growing needlessly. 1135 ErasedInstrs.erase(CopyMI); 1136 1137 // Rewrite all SrcReg operands to DstReg. 1138 // Also update DstReg operands to include DstIdx if it is set. 1139 if (CP.getDstIdx()) 1140 updateRegDefsUses(CP.getDstReg(), CP.getDstReg(), CP.getDstIdx()); 1141 updateRegDefsUses(CP.getSrcReg(), CP.getDstReg(), CP.getSrcIdx()); 1142 1143 // SrcReg is guaranteed to be the register whose live interval that is 1144 // being merged. 1145 LIS->removeInterval(CP.getSrcReg()); 1146 1147 // Update regalloc hint. 1148 TRI->UpdateRegAllocHint(CP.getSrcReg(), CP.getDstReg(), *MF); 1149 1150 DEBUG({ 1151 dbgs() << "\tJoined. Result = " << PrintReg(CP.getDstReg(), TRI); 1152 if (!CP.isPhys()) 1153 dbgs() << LIS->getInterval(CP.getDstReg()); 1154 dbgs() << '\n'; 1155 }); 1156 1157 ++numJoins; 1158 return true; 1159 } 1160 1161 /// Attempt joining with a reserved physreg. 1162 bool RegisterCoalescer::joinReservedPhysReg(CoalescerPair &CP) { 1163 assert(CP.isPhys() && "Must be a physreg copy"); 1164 assert(MRI->isReserved(CP.getDstReg()) && "Not a reserved register"); 1165 LiveInterval &RHS = LIS->getInterval(CP.getSrcReg()); 1166 DEBUG(dbgs() << "\t\tRHS = " << PrintReg(CP.getSrcReg()) << ' ' << RHS 1167 << '\n'); 1168 1169 assert(CP.isFlipped() && RHS.containsOneValue() && 1170 "Invalid join with reserved register"); 1171 1172 // Optimization for reserved registers like ESP. We can only merge with a 1173 // reserved physreg if RHS has a single value that is a copy of CP.DstReg(). 1174 // The live range of the reserved register will look like a set of dead defs 1175 // - we don't properly track the live range of reserved registers. 1176 1177 // Deny any overlapping intervals. This depends on all the reserved 1178 // register live ranges to look like dead defs. 1179 for (MCRegUnitIterator UI(CP.getDstReg(), TRI); UI.isValid(); ++UI) 1180 if (RHS.overlaps(LIS->getRegUnit(*UI))) { 1181 DEBUG(dbgs() << "\t\tInterference: " << PrintRegUnit(*UI, TRI) << '\n'); 1182 return false; 1183 } 1184 1185 // Skip any value computations, we are not adding new values to the 1186 // reserved register. Also skip merging the live ranges, the reserved 1187 // register live range doesn't need to be accurate as long as all the 1188 // defs are there. 1189 1190 // Delete the identity copy. 1191 MachineInstr *CopyMI = MRI->getVRegDef(RHS.reg); 1192 LIS->RemoveMachineInstrFromMaps(CopyMI); 1193 CopyMI->eraseFromParent(); 1194 1195 // We don't track kills for reserved registers. 1196 MRI->clearKillFlags(CP.getSrcReg()); 1197 1198 return true; 1199 } 1200 1201 //===----------------------------------------------------------------------===// 1202 // Interference checking and interval joining 1203 //===----------------------------------------------------------------------===// 1204 // 1205 // In the easiest case, the two live ranges being joined are disjoint, and 1206 // there is no interference to consider. It is quite common, though, to have 1207 // overlapping live ranges, and we need to check if the interference can be 1208 // resolved. 1209 // 1210 // The live range of a single SSA value forms a sub-tree of the dominator tree. 1211 // This means that two SSA values overlap if and only if the def of one value 1212 // is contained in the live range of the other value. As a special case, the 1213 // overlapping values can be defined at the same index. 1214 // 1215 // The interference from an overlapping def can be resolved in these cases: 1216 // 1217 // 1. Coalescable copies. The value is defined by a copy that would become an 1218 // identity copy after joining SrcReg and DstReg. The copy instruction will 1219 // be removed, and the value will be merged with the source value. 1220 // 1221 // There can be several copies back and forth, causing many values to be 1222 // merged into one. We compute a list of ultimate values in the joined live 1223 // range as well as a mappings from the old value numbers. 1224 // 1225 // 2. IMPLICIT_DEF. This instruction is only inserted to ensure all PHI 1226 // predecessors have a live out value. It doesn't cause real interference, 1227 // and can be merged into the value it overlaps. Like a coalescable copy, it 1228 // can be erased after joining. 1229 // 1230 // 3. Copy of external value. The overlapping def may be a copy of a value that 1231 // is already in the other register. This is like a coalescable copy, but 1232 // the live range of the source register must be trimmed after erasing the 1233 // copy instruction: 1234 // 1235 // %src = COPY %ext 1236 // %dst = COPY %ext <-- Remove this COPY, trim the live range of %ext. 1237 // 1238 // 4. Clobbering undefined lanes. Vector registers are sometimes built by 1239 // defining one lane at a time: 1240 // 1241 // %dst:ssub0<def,read-undef> = FOO 1242 // %src = BAR 1243 // %dst:ssub1<def> = COPY %src 1244 // 1245 // The live range of %src overlaps the %dst value defined by FOO, but 1246 // merging %src into %dst:ssub1 is only going to clobber the ssub1 lane 1247 // which was undef anyway. 1248 // 1249 // The value mapping is more complicated in this case. The final live range 1250 // will have different value numbers for both FOO and BAR, but there is no 1251 // simple mapping from old to new values. It may even be necessary to add 1252 // new PHI values. 1253 // 1254 // 5. Clobbering dead lanes. A def may clobber a lane of a vector register that 1255 // is live, but never read. This can happen because we don't compute 1256 // individual live ranges per lane. 1257 // 1258 // %dst<def> = FOO 1259 // %src = BAR 1260 // %dst:ssub1<def> = COPY %src 1261 // 1262 // This kind of interference is only resolved locally. If the clobbered 1263 // lane value escapes the block, the join is aborted. 1264 1265 namespace { 1266 /// Track information about values in a single virtual register about to be 1267 /// joined. Objects of this class are always created in pairs - one for each 1268 /// side of the CoalescerPair. 1269 class JoinVals { 1270 LiveInterval &LI; 1271 1272 // Location of this register in the final joined register. 1273 // Either CP.DstIdx or CP.SrcIdx. 1274 unsigned SubIdx; 1275 1276 // Values that will be present in the final live range. 1277 SmallVectorImpl<VNInfo*> &NewVNInfo; 1278 1279 const CoalescerPair &CP; 1280 LiveIntervals *LIS; 1281 SlotIndexes *Indexes; 1282 const TargetRegisterInfo *TRI; 1283 1284 // Value number assignments. Maps value numbers in LI to entries in NewVNInfo. 1285 // This is suitable for passing to LiveInterval::join(). 1286 SmallVector<int, 8> Assignments; 1287 1288 // Conflict resolution for overlapping values. 1289 enum ConflictResolution { 1290 // No overlap, simply keep this value. 1291 CR_Keep, 1292 1293 // Merge this value into OtherVNI and erase the defining instruction. 1294 // Used for IMPLICIT_DEF, coalescable copies, and copies from external 1295 // values. 1296 CR_Erase, 1297 1298 // Merge this value into OtherVNI but keep the defining instruction. 1299 // This is for the special case where OtherVNI is defined by the same 1300 // instruction. 1301 CR_Merge, 1302 1303 // Keep this value, and have it replace OtherVNI where possible. This 1304 // complicates value mapping since OtherVNI maps to two different values 1305 // before and after this def. 1306 // Used when clobbering undefined or dead lanes. 1307 CR_Replace, 1308 1309 // Unresolved conflict. Visit later when all values have been mapped. 1310 CR_Unresolved, 1311 1312 // Unresolvable conflict. Abort the join. 1313 CR_Impossible 1314 }; 1315 1316 // Per-value info for LI. The lane bit masks are all relative to the final 1317 // joined register, so they can be compared directly between SrcReg and 1318 // DstReg. 1319 struct Val { 1320 ConflictResolution Resolution; 1321 1322 // Lanes written by this def, 0 for unanalyzed values. 1323 unsigned WriteLanes; 1324 1325 // Lanes with defined values in this register. Other lanes are undef and 1326 // safe to clobber. 1327 unsigned ValidLanes; 1328 1329 // Value in LI being redefined by this def. 1330 VNInfo *RedefVNI; 1331 1332 // Value in the other live range that overlaps this def, if any. 1333 VNInfo *OtherVNI; 1334 1335 // Is this value an IMPLICIT_DEF that can be erased? 1336 // 1337 // IMPLICIT_DEF values should only exist at the end of a basic block that 1338 // is a predecessor to a phi-value. These IMPLICIT_DEF instructions can be 1339 // safely erased if they are overlapping a live value in the other live 1340 // interval. 1341 // 1342 // Weird control flow graphs and incomplete PHI handling in 1343 // ProcessImplicitDefs can very rarely create IMPLICIT_DEF values with 1344 // longer live ranges. Such IMPLICIT_DEF values should be treated like 1345 // normal values. 1346 bool ErasableImplicitDef; 1347 1348 // True when the live range of this value will be pruned because of an 1349 // overlapping CR_Replace value in the other live range. 1350 bool Pruned; 1351 1352 // True once Pruned above has been computed. 1353 bool PrunedComputed; 1354 1355 Val() : Resolution(CR_Keep), WriteLanes(0), ValidLanes(0), 1356 RedefVNI(0), OtherVNI(0), ErasableImplicitDef(false), 1357 Pruned(false), PrunedComputed(false) {} 1358 1359 bool isAnalyzed() const { return WriteLanes != 0; } 1360 }; 1361 1362 // One entry per value number in LI. 1363 SmallVector<Val, 8> Vals; 1364 1365 unsigned computeWriteLanes(const MachineInstr *DefMI, bool &Redef); 1366 VNInfo *stripCopies(VNInfo *VNI); 1367 ConflictResolution analyzeValue(unsigned ValNo, JoinVals &Other); 1368 void computeAssignment(unsigned ValNo, JoinVals &Other); 1369 bool taintExtent(unsigned, unsigned, JoinVals&, 1370 SmallVectorImpl<std::pair<SlotIndex, unsigned> >&); 1371 bool usesLanes(MachineInstr *MI, unsigned, unsigned, unsigned); 1372 bool isPrunedValue(unsigned ValNo, JoinVals &Other); 1373 1374 public: 1375 JoinVals(LiveInterval &li, unsigned subIdx, 1376 SmallVectorImpl<VNInfo*> &newVNInfo, 1377 const CoalescerPair &cp, 1378 LiveIntervals *lis, 1379 const TargetRegisterInfo *tri) 1380 : LI(li), SubIdx(subIdx), NewVNInfo(newVNInfo), CP(cp), LIS(lis), 1381 Indexes(LIS->getSlotIndexes()), TRI(tri), 1382 Assignments(LI.getNumValNums(), -1), Vals(LI.getNumValNums()) 1383 {} 1384 1385 /// Analyze defs in LI and compute a value mapping in NewVNInfo. 1386 /// Returns false if any conflicts were impossible to resolve. 1387 bool mapValues(JoinVals &Other); 1388 1389 /// Try to resolve conflicts that require all values to be mapped. 1390 /// Returns false if any conflicts were impossible to resolve. 1391 bool resolveConflicts(JoinVals &Other); 1392 1393 /// Prune the live range of values in Other.LI where they would conflict with 1394 /// CR_Replace values in LI. Collect end points for restoring the live range 1395 /// after joining. 1396 void pruneValues(JoinVals &Other, SmallVectorImpl<SlotIndex> &EndPoints); 1397 1398 /// Erase any machine instructions that have been coalesced away. 1399 /// Add erased instructions to ErasedInstrs. 1400 /// Add foreign virtual registers to ShrinkRegs if their live range ended at 1401 /// the erased instrs. 1402 void eraseInstrs(SmallPtrSet<MachineInstr*, 8> &ErasedInstrs, 1403 SmallVectorImpl<unsigned> &ShrinkRegs); 1404 1405 /// Get the value assignments suitable for passing to LiveInterval::join. 1406 const int *getAssignments() const { return Assignments.data(); } 1407 }; 1408 } // end anonymous namespace 1409 1410 /// Compute the bitmask of lanes actually written by DefMI. 1411 /// Set Redef if there are any partial register definitions that depend on the 1412 /// previous value of the register. 1413 unsigned JoinVals::computeWriteLanes(const MachineInstr *DefMI, bool &Redef) { 1414 unsigned L = 0; 1415 for (ConstMIOperands MO(DefMI); MO.isValid(); ++MO) { 1416 if (!MO->isReg() || MO->getReg() != LI.reg || !MO->isDef()) 1417 continue; 1418 L |= TRI->getSubRegIndexLaneMask( 1419 TRI->composeSubRegIndices(SubIdx, MO->getSubReg())); 1420 if (MO->readsReg()) 1421 Redef = true; 1422 } 1423 return L; 1424 } 1425 1426 /// Find the ultimate value that VNI was copied from. 1427 VNInfo *JoinVals::stripCopies(VNInfo *VNI) { 1428 while (!VNI->isPHIDef()) { 1429 MachineInstr *MI = Indexes->getInstructionFromIndex(VNI->def); 1430 assert(MI && "No defining instruction"); 1431 if (!MI->isFullCopy()) 1432 break; 1433 unsigned Reg = MI->getOperand(1).getReg(); 1434 if (!TargetRegisterInfo::isVirtualRegister(Reg)) 1435 break; 1436 LiveRangeQuery LRQ(LIS->getInterval(Reg), VNI->def); 1437 if (!LRQ.valueIn()) 1438 break; 1439 VNI = LRQ.valueIn(); 1440 } 1441 return VNI; 1442 } 1443 1444 /// Analyze ValNo in this live range, and set all fields of Vals[ValNo]. 1445 /// Return a conflict resolution when possible, but leave the hard cases as 1446 /// CR_Unresolved. 1447 /// Recursively calls computeAssignment() on this and Other, guaranteeing that 1448 /// both OtherVNI and RedefVNI have been analyzed and mapped before returning. 1449 /// The recursion always goes upwards in the dominator tree, making loops 1450 /// impossible. 1451 JoinVals::ConflictResolution 1452 JoinVals::analyzeValue(unsigned ValNo, JoinVals &Other) { 1453 Val &V = Vals[ValNo]; 1454 assert(!V.isAnalyzed() && "Value has already been analyzed!"); 1455 VNInfo *VNI = LI.getValNumInfo(ValNo); 1456 if (VNI->isUnused()) { 1457 V.WriteLanes = ~0u; 1458 return CR_Keep; 1459 } 1460 1461 // Get the instruction defining this value, compute the lanes written. 1462 const MachineInstr *DefMI = 0; 1463 if (VNI->isPHIDef()) { 1464 // Conservatively assume that all lanes in a PHI are valid. 1465 V.ValidLanes = V.WriteLanes = TRI->getSubRegIndexLaneMask(SubIdx); 1466 } else { 1467 DefMI = Indexes->getInstructionFromIndex(VNI->def); 1468 bool Redef = false; 1469 V.ValidLanes = V.WriteLanes = computeWriteLanes(DefMI, Redef); 1470 1471 // If this is a read-modify-write instruction, there may be more valid 1472 // lanes than the ones written by this instruction. 1473 // This only covers partial redef operands. DefMI may have normal use 1474 // operands reading the register. They don't contribute valid lanes. 1475 // 1476 // This adds ssub1 to the set of valid lanes in %src: 1477 // 1478 // %src:ssub1<def> = FOO 1479 // 1480 // This leaves only ssub1 valid, making any other lanes undef: 1481 // 1482 // %src:ssub1<def,read-undef> = FOO %src:ssub2 1483 // 1484 // The <read-undef> flag on the def operand means that old lane values are 1485 // not important. 1486 if (Redef) { 1487 V.RedefVNI = LiveRangeQuery(LI, VNI->def).valueIn(); 1488 assert(V.RedefVNI && "Instruction is reading nonexistent value"); 1489 computeAssignment(V.RedefVNI->id, Other); 1490 V.ValidLanes |= Vals[V.RedefVNI->id].ValidLanes; 1491 } 1492 1493 // An IMPLICIT_DEF writes undef values. 1494 if (DefMI->isImplicitDef()) { 1495 // We normally expect IMPLICIT_DEF values to be live only until the end 1496 // of their block. If the value is really live longer and gets pruned in 1497 // another block, this flag is cleared again. 1498 V.ErasableImplicitDef = true; 1499 V.ValidLanes &= ~V.WriteLanes; 1500 } 1501 } 1502 1503 // Find the value in Other that overlaps VNI->def, if any. 1504 LiveRangeQuery OtherLRQ(Other.LI, VNI->def); 1505 1506 // It is possible that both values are defined by the same instruction, or 1507 // the values are PHIs defined in the same block. When that happens, the two 1508 // values should be merged into one, but not into any preceding value. 1509 // The first value defined or visited gets CR_Keep, the other gets CR_Merge. 1510 if (VNInfo *OtherVNI = OtherLRQ.valueDefined()) { 1511 assert(SlotIndex::isSameInstr(VNI->def, OtherVNI->def) && "Broken LRQ"); 1512 1513 // One value stays, the other is merged. Keep the earlier one, or the first 1514 // one we see. 1515 if (OtherVNI->def < VNI->def) 1516 Other.computeAssignment(OtherVNI->id, *this); 1517 else if (VNI->def < OtherVNI->def && OtherLRQ.valueIn()) { 1518 // This is an early-clobber def overlapping a live-in value in the other 1519 // register. Not mergeable. 1520 V.OtherVNI = OtherLRQ.valueIn(); 1521 return CR_Impossible; 1522 } 1523 V.OtherVNI = OtherVNI; 1524 Val &OtherV = Other.Vals[OtherVNI->id]; 1525 // Keep this value, check for conflicts when analyzing OtherVNI. 1526 if (!OtherV.isAnalyzed()) 1527 return CR_Keep; 1528 // Both sides have been analyzed now. 1529 // Allow overlapping PHI values. Any real interference would show up in a 1530 // predecessor, the PHI itself can't introduce any conflicts. 1531 if (VNI->isPHIDef()) 1532 return CR_Merge; 1533 if (V.ValidLanes & OtherV.ValidLanes) 1534 // Overlapping lanes can't be resolved. 1535 return CR_Impossible; 1536 else 1537 return CR_Merge; 1538 } 1539 1540 // No simultaneous def. Is Other live at the def? 1541 V.OtherVNI = OtherLRQ.valueIn(); 1542 if (!V.OtherVNI) 1543 // No overlap, no conflict. 1544 return CR_Keep; 1545 1546 assert(!SlotIndex::isSameInstr(VNI->def, V.OtherVNI->def) && "Broken LRQ"); 1547 1548 // We have overlapping values, or possibly a kill of Other. 1549 // Recursively compute assignments up the dominator tree. 1550 Other.computeAssignment(V.OtherVNI->id, *this); 1551 Val &OtherV = Other.Vals[V.OtherVNI->id]; 1552 1553 // Check if OtherV is an IMPLICIT_DEF that extends beyond its basic block. 1554 // This shouldn't normally happen, but ProcessImplicitDefs can leave such 1555 // IMPLICIT_DEF instructions behind, and there is nothing wrong with it 1556 // technically. 1557 // 1558 // WHen it happens, treat that IMPLICIT_DEF as a normal value, and don't try 1559 // to erase the IMPLICIT_DEF instruction. 1560 if (OtherV.ErasableImplicitDef && DefMI && 1561 DefMI->getParent() != Indexes->getMBBFromIndex(V.OtherVNI->def)) { 1562 DEBUG(dbgs() << "IMPLICIT_DEF defined at " << V.OtherVNI->def 1563 << " extends into BB#" << DefMI->getParent()->getNumber() 1564 << ", keeping it.\n"); 1565 OtherV.ErasableImplicitDef = false; 1566 } 1567 1568 // Allow overlapping PHI values. Any real interference would show up in a 1569 // predecessor, the PHI itself can't introduce any conflicts. 1570 if (VNI->isPHIDef()) 1571 return CR_Replace; 1572 1573 // Check for simple erasable conflicts. 1574 if (DefMI->isImplicitDef()) 1575 return CR_Erase; 1576 1577 // Include the non-conflict where DefMI is a coalescable copy that kills 1578 // OtherVNI. We still want the copy erased and value numbers merged. 1579 if (CP.isCoalescable(DefMI)) { 1580 // Some of the lanes copied from OtherVNI may be undef, making them undef 1581 // here too. 1582 V.ValidLanes &= ~V.WriteLanes | OtherV.ValidLanes; 1583 return CR_Erase; 1584 } 1585 1586 // This may not be a real conflict if DefMI simply kills Other and defines 1587 // VNI. 1588 if (OtherLRQ.isKill() && OtherLRQ.endPoint() <= VNI->def) 1589 return CR_Keep; 1590 1591 // Handle the case where VNI and OtherVNI can be proven to be identical: 1592 // 1593 // %other = COPY %ext 1594 // %this = COPY %ext <-- Erase this copy 1595 // 1596 if (DefMI->isFullCopy() && !CP.isPartial() && 1597 stripCopies(VNI) == stripCopies(V.OtherVNI)) 1598 return CR_Erase; 1599 1600 // If the lanes written by this instruction were all undef in OtherVNI, it is 1601 // still safe to join the live ranges. This can't be done with a simple value 1602 // mapping, though - OtherVNI will map to multiple values: 1603 // 1604 // 1 %dst:ssub0 = FOO <-- OtherVNI 1605 // 2 %src = BAR <-- VNI 1606 // 3 %dst:ssub1 = COPY %src<kill> <-- Eliminate this copy. 1607 // 4 BAZ %dst<kill> 1608 // 5 QUUX %src<kill> 1609 // 1610 // Here OtherVNI will map to itself in [1;2), but to VNI in [2;5). CR_Replace 1611 // handles this complex value mapping. 1612 if ((V.WriteLanes & OtherV.ValidLanes) == 0) 1613 return CR_Replace; 1614 1615 // If the other live range is killed by DefMI and the live ranges are still 1616 // overlapping, it must be because we're looking at an early clobber def: 1617 // 1618 // %dst<def,early-clobber> = ASM %src<kill> 1619 // 1620 // In this case, it is illegal to merge the two live ranges since the early 1621 // clobber def would clobber %src before it was read. 1622 if (OtherLRQ.isKill()) { 1623 // This case where the def doesn't overlap the kill is handled above. 1624 assert(VNI->def.isEarlyClobber() && 1625 "Only early clobber defs can overlap a kill"); 1626 return CR_Impossible; 1627 } 1628 1629 // VNI is clobbering live lanes in OtherVNI, but there is still the 1630 // possibility that no instructions actually read the clobbered lanes. 1631 // If we're clobbering all the lanes in OtherVNI, at least one must be read. 1632 // Otherwise Other.LI wouldn't be live here. 1633 if ((TRI->getSubRegIndexLaneMask(Other.SubIdx) & ~V.WriteLanes) == 0) 1634 return CR_Impossible; 1635 1636 // We need to verify that no instructions are reading the clobbered lanes. To 1637 // save compile time, we'll only check that locally. Don't allow the tainted 1638 // value to escape the basic block. 1639 MachineBasicBlock *MBB = Indexes->getMBBFromIndex(VNI->def); 1640 if (OtherLRQ.endPoint() >= Indexes->getMBBEndIdx(MBB)) 1641 return CR_Impossible; 1642 1643 // There are still some things that could go wrong besides clobbered lanes 1644 // being read, for example OtherVNI may be only partially redefined in MBB, 1645 // and some clobbered lanes could escape the block. Save this analysis for 1646 // resolveConflicts() when all values have been mapped. We need to know 1647 // RedefVNI and WriteLanes for any later defs in MBB, and we can't compute 1648 // that now - the recursive analyzeValue() calls must go upwards in the 1649 // dominator tree. 1650 return CR_Unresolved; 1651 } 1652 1653 /// Compute the value assignment for ValNo in LI. 1654 /// This may be called recursively by analyzeValue(), but never for a ValNo on 1655 /// the stack. 1656 void JoinVals::computeAssignment(unsigned ValNo, JoinVals &Other) { 1657 Val &V = Vals[ValNo]; 1658 if (V.isAnalyzed()) { 1659 // Recursion should always move up the dominator tree, so ValNo is not 1660 // supposed to reappear before it has been assigned. 1661 assert(Assignments[ValNo] != -1 && "Bad recursion?"); 1662 return; 1663 } 1664 switch ((V.Resolution = analyzeValue(ValNo, Other))) { 1665 case CR_Erase: 1666 case CR_Merge: 1667 // Merge this ValNo into OtherVNI. 1668 assert(V.OtherVNI && "OtherVNI not assigned, can't merge."); 1669 assert(Other.Vals[V.OtherVNI->id].isAnalyzed() && "Missing recursion"); 1670 Assignments[ValNo] = Other.Assignments[V.OtherVNI->id]; 1671 DEBUG(dbgs() << "\t\tmerge " << PrintReg(LI.reg) << ':' << ValNo << '@' 1672 << LI.getValNumInfo(ValNo)->def << " into " 1673 << PrintReg(Other.LI.reg) << ':' << V.OtherVNI->id << '@' 1674 << V.OtherVNI->def << " --> @" 1675 << NewVNInfo[Assignments[ValNo]]->def << '\n'); 1676 break; 1677 case CR_Replace: 1678 case CR_Unresolved: 1679 // The other value is going to be pruned if this join is successful. 1680 assert(V.OtherVNI && "OtherVNI not assigned, can't prune"); 1681 Other.Vals[V.OtherVNI->id].Pruned = true; 1682 // Fall through. 1683 default: 1684 // This value number needs to go in the final joined live range. 1685 Assignments[ValNo] = NewVNInfo.size(); 1686 NewVNInfo.push_back(LI.getValNumInfo(ValNo)); 1687 break; 1688 } 1689 } 1690 1691 bool JoinVals::mapValues(JoinVals &Other) { 1692 for (unsigned i = 0, e = LI.getNumValNums(); i != e; ++i) { 1693 computeAssignment(i, Other); 1694 if (Vals[i].Resolution == CR_Impossible) { 1695 DEBUG(dbgs() << "\t\tinterference at " << PrintReg(LI.reg) << ':' << i 1696 << '@' << LI.getValNumInfo(i)->def << '\n'); 1697 return false; 1698 } 1699 } 1700 return true; 1701 } 1702 1703 /// Assuming ValNo is going to clobber some valid lanes in Other.LI, compute 1704 /// the extent of the tainted lanes in the block. 1705 /// 1706 /// Multiple values in Other.LI can be affected since partial redefinitions can 1707 /// preserve previously tainted lanes. 1708 /// 1709 /// 1 %dst = VLOAD <-- Define all lanes in %dst 1710 /// 2 %src = FOO <-- ValNo to be joined with %dst:ssub0 1711 /// 3 %dst:ssub1 = BAR <-- Partial redef doesn't clear taint in ssub0 1712 /// 4 %dst:ssub0 = COPY %src <-- Conflict resolved, ssub0 wasn't read 1713 /// 1714 /// For each ValNo in Other that is affected, add an (EndIndex, TaintedLanes) 1715 /// entry to TaintedVals. 1716 /// 1717 /// Returns false if the tainted lanes extend beyond the basic block. 1718 bool JoinVals:: 1719 taintExtent(unsigned ValNo, unsigned TaintedLanes, JoinVals &Other, 1720 SmallVectorImpl<std::pair<SlotIndex, unsigned> > &TaintExtent) { 1721 VNInfo *VNI = LI.getValNumInfo(ValNo); 1722 MachineBasicBlock *MBB = Indexes->getMBBFromIndex(VNI->def); 1723 SlotIndex MBBEnd = Indexes->getMBBEndIdx(MBB); 1724 1725 // Scan Other.LI from VNI.def to MBBEnd. 1726 LiveInterval::iterator OtherI = Other.LI.find(VNI->def); 1727 assert(OtherI != Other.LI.end() && "No conflict?"); 1728 do { 1729 // OtherI is pointing to a tainted value. Abort the join if the tainted 1730 // lanes escape the block. 1731 SlotIndex End = OtherI->end; 1732 if (End >= MBBEnd) { 1733 DEBUG(dbgs() << "\t\ttaints global " << PrintReg(Other.LI.reg) << ':' 1734 << OtherI->valno->id << '@' << OtherI->start << '\n'); 1735 return false; 1736 } 1737 DEBUG(dbgs() << "\t\ttaints local " << PrintReg(Other.LI.reg) << ':' 1738 << OtherI->valno->id << '@' << OtherI->start 1739 << " to " << End << '\n'); 1740 // A dead def is not a problem. 1741 if (End.isDead()) 1742 break; 1743 TaintExtent.push_back(std::make_pair(End, TaintedLanes)); 1744 1745 // Check for another def in the MBB. 1746 if (++OtherI == Other.LI.end() || OtherI->start >= MBBEnd) 1747 break; 1748 1749 // Lanes written by the new def are no longer tainted. 1750 const Val &OV = Other.Vals[OtherI->valno->id]; 1751 TaintedLanes &= ~OV.WriteLanes; 1752 if (!OV.RedefVNI) 1753 break; 1754 } while (TaintedLanes); 1755 return true; 1756 } 1757 1758 /// Return true if MI uses any of the given Lanes from Reg. 1759 /// This does not include partial redefinitions of Reg. 1760 bool JoinVals::usesLanes(MachineInstr *MI, unsigned Reg, unsigned SubIdx, 1761 unsigned Lanes) { 1762 if (MI->isDebugValue()) 1763 return false; 1764 for (ConstMIOperands MO(MI); MO.isValid(); ++MO) { 1765 if (!MO->isReg() || MO->isDef() || MO->getReg() != Reg) 1766 continue; 1767 if (!MO->readsReg()) 1768 continue; 1769 if (Lanes & TRI->getSubRegIndexLaneMask( 1770 TRI->composeSubRegIndices(SubIdx, MO->getSubReg()))) 1771 return true; 1772 } 1773 return false; 1774 } 1775 1776 bool JoinVals::resolveConflicts(JoinVals &Other) { 1777 for (unsigned i = 0, e = LI.getNumValNums(); i != e; ++i) { 1778 Val &V = Vals[i]; 1779 assert (V.Resolution != CR_Impossible && "Unresolvable conflict"); 1780 if (V.Resolution != CR_Unresolved) 1781 continue; 1782 DEBUG(dbgs() << "\t\tconflict at " << PrintReg(LI.reg) << ':' << i 1783 << '@' << LI.getValNumInfo(i)->def << '\n'); 1784 ++NumLaneConflicts; 1785 assert(V.OtherVNI && "Inconsistent conflict resolution."); 1786 VNInfo *VNI = LI.getValNumInfo(i); 1787 const Val &OtherV = Other.Vals[V.OtherVNI->id]; 1788 1789 // VNI is known to clobber some lanes in OtherVNI. If we go ahead with the 1790 // join, those lanes will be tainted with a wrong value. Get the extent of 1791 // the tainted lanes. 1792 unsigned TaintedLanes = V.WriteLanes & OtherV.ValidLanes; 1793 SmallVector<std::pair<SlotIndex, unsigned>, 8> TaintExtent; 1794 if (!taintExtent(i, TaintedLanes, Other, TaintExtent)) 1795 // Tainted lanes would extend beyond the basic block. 1796 return false; 1797 1798 assert(!TaintExtent.empty() && "There should be at least one conflict."); 1799 1800 // Now look at the instructions from VNI->def to TaintExtent (inclusive). 1801 MachineBasicBlock *MBB = Indexes->getMBBFromIndex(VNI->def); 1802 MachineBasicBlock::iterator MI = MBB->begin(); 1803 if (!VNI->isPHIDef()) { 1804 MI = Indexes->getInstructionFromIndex(VNI->def); 1805 // No need to check the instruction defining VNI for reads. 1806 ++MI; 1807 } 1808 assert(!SlotIndex::isSameInstr(VNI->def, TaintExtent.front().first) && 1809 "Interference ends on VNI->def. Should have been handled earlier"); 1810 MachineInstr *LastMI = 1811 Indexes->getInstructionFromIndex(TaintExtent.front().first); 1812 assert(LastMI && "Range must end at a proper instruction"); 1813 unsigned TaintNum = 0; 1814 for(;;) { 1815 assert(MI != MBB->end() && "Bad LastMI"); 1816 if (usesLanes(MI, Other.LI.reg, Other.SubIdx, TaintedLanes)) { 1817 DEBUG(dbgs() << "\t\ttainted lanes used by: " << *MI); 1818 return false; 1819 } 1820 // LastMI is the last instruction to use the current value. 1821 if (&*MI == LastMI) { 1822 if (++TaintNum == TaintExtent.size()) 1823 break; 1824 LastMI = Indexes->getInstructionFromIndex(TaintExtent[TaintNum].first); 1825 assert(LastMI && "Range must end at a proper instruction"); 1826 TaintedLanes = TaintExtent[TaintNum].second; 1827 } 1828 ++MI; 1829 } 1830 1831 // The tainted lanes are unused. 1832 V.Resolution = CR_Replace; 1833 ++NumLaneResolves; 1834 } 1835 return true; 1836 } 1837 1838 // Determine if ValNo is a copy of a value number in LI or Other.LI that will 1839 // be pruned: 1840 // 1841 // %dst = COPY %src 1842 // %src = COPY %dst <-- This value to be pruned. 1843 // %dst = COPY %src <-- This value is a copy of a pruned value. 1844 // 1845 bool JoinVals::isPrunedValue(unsigned ValNo, JoinVals &Other) { 1846 Val &V = Vals[ValNo]; 1847 if (V.Pruned || V.PrunedComputed) 1848 return V.Pruned; 1849 1850 if (V.Resolution != CR_Erase && V.Resolution != CR_Merge) 1851 return V.Pruned; 1852 1853 // Follow copies up the dominator tree and check if any intermediate value 1854 // has been pruned. 1855 V.PrunedComputed = true; 1856 V.Pruned = Other.isPrunedValue(V.OtherVNI->id, *this); 1857 return V.Pruned; 1858 } 1859 1860 void JoinVals::pruneValues(JoinVals &Other, 1861 SmallVectorImpl<SlotIndex> &EndPoints) { 1862 for (unsigned i = 0, e = LI.getNumValNums(); i != e; ++i) { 1863 SlotIndex Def = LI.getValNumInfo(i)->def; 1864 switch (Vals[i].Resolution) { 1865 case CR_Keep: 1866 break; 1867 case CR_Replace: { 1868 // This value takes precedence over the value in Other.LI. 1869 LIS->pruneValue(&Other.LI, Def, &EndPoints); 1870 // Check if we're replacing an IMPLICIT_DEF value. The IMPLICIT_DEF 1871 // instructions are only inserted to provide a live-out value for PHI 1872 // predecessors, so the instruction should simply go away once its value 1873 // has been replaced. 1874 Val &OtherV = Other.Vals[Vals[i].OtherVNI->id]; 1875 bool EraseImpDef = OtherV.ErasableImplicitDef && 1876 OtherV.Resolution == CR_Keep; 1877 if (!Def.isBlock()) { 1878 // Remove <def,read-undef> flags. This def is now a partial redef. 1879 // Also remove <def,dead> flags since the joined live range will 1880 // continue past this instruction. 1881 for (MIOperands MO(Indexes->getInstructionFromIndex(Def)); 1882 MO.isValid(); ++MO) 1883 if (MO->isReg() && MO->isDef() && MO->getReg() == LI.reg) { 1884 MO->setIsUndef(EraseImpDef); 1885 MO->setIsDead(false); 1886 } 1887 // This value will reach instructions below, but we need to make sure 1888 // the live range also reaches the instruction at Def. 1889 if (!EraseImpDef) 1890 EndPoints.push_back(Def); 1891 } 1892 DEBUG(dbgs() << "\t\tpruned " << PrintReg(Other.LI.reg) << " at " << Def 1893 << ": " << Other.LI << '\n'); 1894 break; 1895 } 1896 case CR_Erase: 1897 case CR_Merge: 1898 if (isPrunedValue(i, Other)) { 1899 // This value is ultimately a copy of a pruned value in LI or Other.LI. 1900 // We can no longer trust the value mapping computed by 1901 // computeAssignment(), the value that was originally copied could have 1902 // been replaced. 1903 LIS->pruneValue(&LI, Def, &EndPoints); 1904 DEBUG(dbgs() << "\t\tpruned all of " << PrintReg(LI.reg) << " at " 1905 << Def << ": " << LI << '\n'); 1906 } 1907 break; 1908 case CR_Unresolved: 1909 case CR_Impossible: 1910 llvm_unreachable("Unresolved conflicts"); 1911 } 1912 } 1913 } 1914 1915 void JoinVals::eraseInstrs(SmallPtrSet<MachineInstr*, 8> &ErasedInstrs, 1916 SmallVectorImpl<unsigned> &ShrinkRegs) { 1917 for (unsigned i = 0, e = LI.getNumValNums(); i != e; ++i) { 1918 // Get the def location before markUnused() below invalidates it. 1919 SlotIndex Def = LI.getValNumInfo(i)->def; 1920 switch (Vals[i].Resolution) { 1921 case CR_Keep: 1922 // If an IMPLICIT_DEF value is pruned, it doesn't serve a purpose any 1923 // longer. The IMPLICIT_DEF instructions are only inserted by 1924 // PHIElimination to guarantee that all PHI predecessors have a value. 1925 if (!Vals[i].ErasableImplicitDef || !Vals[i].Pruned) 1926 break; 1927 // Remove value number i from LI. Note that this VNInfo is still present 1928 // in NewVNInfo, so it will appear as an unused value number in the final 1929 // joined interval. 1930 LI.getValNumInfo(i)->markUnused(); 1931 LI.removeValNo(LI.getValNumInfo(i)); 1932 DEBUG(dbgs() << "\t\tremoved " << i << '@' << Def << ": " << LI << '\n'); 1933 // FALL THROUGH. 1934 1935 case CR_Erase: { 1936 MachineInstr *MI = Indexes->getInstructionFromIndex(Def); 1937 assert(MI && "No instruction to erase"); 1938 if (MI->isCopy()) { 1939 unsigned Reg = MI->getOperand(1).getReg(); 1940 if (TargetRegisterInfo::isVirtualRegister(Reg) && 1941 Reg != CP.getSrcReg() && Reg != CP.getDstReg()) 1942 ShrinkRegs.push_back(Reg); 1943 } 1944 ErasedInstrs.insert(MI); 1945 DEBUG(dbgs() << "\t\terased:\t" << Def << '\t' << *MI); 1946 LIS->RemoveMachineInstrFromMaps(MI); 1947 MI->eraseFromParent(); 1948 break; 1949 } 1950 default: 1951 break; 1952 } 1953 } 1954 } 1955 1956 bool RegisterCoalescer::joinVirtRegs(CoalescerPair &CP) { 1957 SmallVector<VNInfo*, 16> NewVNInfo; 1958 LiveInterval &RHS = LIS->getInterval(CP.getSrcReg()); 1959 LiveInterval &LHS = LIS->getInterval(CP.getDstReg()); 1960 JoinVals RHSVals(RHS, CP.getSrcIdx(), NewVNInfo, CP, LIS, TRI); 1961 JoinVals LHSVals(LHS, CP.getDstIdx(), NewVNInfo, CP, LIS, TRI); 1962 1963 DEBUG(dbgs() << "\t\tRHS = " << PrintReg(CP.getSrcReg()) << ' ' << RHS 1964 << "\n\t\tLHS = " << PrintReg(CP.getDstReg()) << ' ' << LHS 1965 << '\n'); 1966 1967 // First compute NewVNInfo and the simple value mappings. 1968 // Detect impossible conflicts early. 1969 if (!LHSVals.mapValues(RHSVals) || !RHSVals.mapValues(LHSVals)) 1970 return false; 1971 1972 // Some conflicts can only be resolved after all values have been mapped. 1973 if (!LHSVals.resolveConflicts(RHSVals) || !RHSVals.resolveConflicts(LHSVals)) 1974 return false; 1975 1976 // All clear, the live ranges can be merged. 1977 1978 // The merging algorithm in LiveInterval::join() can't handle conflicting 1979 // value mappings, so we need to remove any live ranges that overlap a 1980 // CR_Replace resolution. Collect a set of end points that can be used to 1981 // restore the live range after joining. 1982 SmallVector<SlotIndex, 8> EndPoints; 1983 LHSVals.pruneValues(RHSVals, EndPoints); 1984 RHSVals.pruneValues(LHSVals, EndPoints); 1985 1986 // Erase COPY and IMPLICIT_DEF instructions. This may cause some external 1987 // registers to require trimming. 1988 SmallVector<unsigned, 8> ShrinkRegs; 1989 LHSVals.eraseInstrs(ErasedInstrs, ShrinkRegs); 1990 RHSVals.eraseInstrs(ErasedInstrs, ShrinkRegs); 1991 while (!ShrinkRegs.empty()) 1992 LIS->shrinkToUses(&LIS->getInterval(ShrinkRegs.pop_back_val())); 1993 1994 // Join RHS into LHS. 1995 LHS.join(RHS, LHSVals.getAssignments(), RHSVals.getAssignments(), NewVNInfo, 1996 MRI); 1997 1998 // Kill flags are going to be wrong if the live ranges were overlapping. 1999 // Eventually, we should simply clear all kill flags when computing live 2000 // ranges. They are reinserted after register allocation. 2001 MRI->clearKillFlags(LHS.reg); 2002 MRI->clearKillFlags(RHS.reg); 2003 2004 if (EndPoints.empty()) 2005 return true; 2006 2007 // Recompute the parts of the live range we had to remove because of 2008 // CR_Replace conflicts. 2009 DEBUG(dbgs() << "\t\trestoring liveness to " << EndPoints.size() 2010 << " points: " << LHS << '\n'); 2011 LIS->extendToIndices(&LHS, EndPoints); 2012 return true; 2013 } 2014 2015 /// joinIntervals - Attempt to join these two intervals. On failure, this 2016 /// returns false. 2017 bool RegisterCoalescer::joinIntervals(CoalescerPair &CP) { 2018 return CP.isPhys() ? joinReservedPhysReg(CP) : joinVirtRegs(CP); 2019 } 2020 2021 namespace { 2022 // Information concerning MBB coalescing priority. 2023 struct MBBPriorityInfo { 2024 MachineBasicBlock *MBB; 2025 unsigned Depth; 2026 bool IsSplit; 2027 2028 MBBPriorityInfo(MachineBasicBlock *mbb, unsigned depth, bool issplit) 2029 : MBB(mbb), Depth(depth), IsSplit(issplit) {} 2030 }; 2031 } 2032 2033 // C-style comparator that sorts first based on the loop depth of the basic 2034 // block (the unsigned), and then on the MBB number. 2035 // 2036 // EnableGlobalCopies assumes that the primary sort key is loop depth. 2037 static int compareMBBPriority(const void *L, const void *R) { 2038 const MBBPriorityInfo *LHS = static_cast<const MBBPriorityInfo*>(L); 2039 const MBBPriorityInfo *RHS = static_cast<const MBBPriorityInfo*>(R); 2040 // Deeper loops first 2041 if (LHS->Depth != RHS->Depth) 2042 return LHS->Depth > RHS->Depth ? -1 : 1; 2043 2044 // Try to unsplit critical edges next. 2045 if (LHS->IsSplit != RHS->IsSplit) 2046 return LHS->IsSplit ? -1 : 1; 2047 2048 // Prefer blocks that are more connected in the CFG. This takes care of 2049 // the most difficult copies first while intervals are short. 2050 unsigned cl = LHS->MBB->pred_size() + LHS->MBB->succ_size(); 2051 unsigned cr = RHS->MBB->pred_size() + RHS->MBB->succ_size(); 2052 if (cl != cr) 2053 return cl > cr ? -1 : 1; 2054 2055 // As a last resort, sort by block number. 2056 return LHS->MBB->getNumber() < RHS->MBB->getNumber() ? -1 : 1; 2057 } 2058 2059 /// \returns true if the given copy uses or defines a local live range. 2060 static bool isLocalCopy(MachineInstr *Copy, const LiveIntervals *LIS) { 2061 if (!Copy->isCopy()) 2062 return false; 2063 2064 unsigned SrcReg = Copy->getOperand(1).getReg(); 2065 unsigned DstReg = Copy->getOperand(0).getReg(); 2066 if (TargetRegisterInfo::isPhysicalRegister(SrcReg) 2067 || TargetRegisterInfo::isPhysicalRegister(DstReg)) 2068 return false; 2069 2070 return LIS->intervalIsInOneMBB(LIS->getInterval(SrcReg)) 2071 || LIS->intervalIsInOneMBB(LIS->getInterval(DstReg)); 2072 } 2073 2074 // Try joining WorkList copies starting from index From. 2075 // Null out any successful joins. 2076 bool RegisterCoalescer:: 2077 copyCoalesceWorkList(MutableArrayRef<MachineInstr*> CurrList) { 2078 bool Progress = false; 2079 for (unsigned i = 0, e = CurrList.size(); i != e; ++i) { 2080 if (!CurrList[i]) 2081 continue; 2082 // Skip instruction pointers that have already been erased, for example by 2083 // dead code elimination. 2084 if (ErasedInstrs.erase(CurrList[i])) { 2085 CurrList[i] = 0; 2086 continue; 2087 } 2088 bool Again = false; 2089 bool Success = joinCopy(CurrList[i], Again); 2090 Progress |= Success; 2091 if (Success || !Again) 2092 CurrList[i] = 0; 2093 } 2094 return Progress; 2095 } 2096 2097 void 2098 RegisterCoalescer::copyCoalesceInMBB(MachineBasicBlock *MBB) { 2099 DEBUG(dbgs() << MBB->getName() << ":\n"); 2100 2101 // Collect all copy-like instructions in MBB. Don't start coalescing anything 2102 // yet, it might invalidate the iterator. 2103 const unsigned PrevSize = WorkList.size(); 2104 if (JoinGlobalCopies) { 2105 // Coalesce copies bottom-up to coalesce local defs before local uses. They 2106 // are not inherently easier to resolve, but slightly preferable until we 2107 // have local live range splitting. In particular this is required by 2108 // cmp+jmp macro fusion. 2109 for (MachineBasicBlock::reverse_iterator 2110 MII = MBB->rbegin(), E = MBB->rend(); MII != E; ++MII) { 2111 if (!MII->isCopyLike()) 2112 continue; 2113 if (isLocalCopy(&(*MII), LIS)) 2114 LocalWorkList.push_back(&(*MII)); 2115 else 2116 WorkList.push_back(&(*MII)); 2117 } 2118 } 2119 else { 2120 for (MachineBasicBlock::iterator MII = MBB->begin(), E = MBB->end(); 2121 MII != E; ++MII) 2122 if (MII->isCopyLike()) 2123 WorkList.push_back(MII); 2124 } 2125 // Try coalescing the collected copies immediately, and remove the nulls. 2126 // This prevents the WorkList from getting too large since most copies are 2127 // joinable on the first attempt. 2128 MutableArrayRef<MachineInstr*> 2129 CurrList(WorkList.begin() + PrevSize, WorkList.end()); 2130 if (copyCoalesceWorkList(CurrList)) 2131 WorkList.erase(std::remove(WorkList.begin() + PrevSize, WorkList.end(), 2132 (MachineInstr*)0), WorkList.end()); 2133 } 2134 2135 void RegisterCoalescer::coalesceLocals() { 2136 copyCoalesceWorkList(LocalWorkList); 2137 for (unsigned j = 0, je = LocalWorkList.size(); j != je; ++j) { 2138 if (LocalWorkList[j]) 2139 WorkList.push_back(LocalWorkList[j]); 2140 } 2141 LocalWorkList.clear(); 2142 } 2143 2144 void RegisterCoalescer::joinAllIntervals() { 2145 DEBUG(dbgs() << "********** JOINING INTERVALS ***********\n"); 2146 assert(WorkList.empty() && LocalWorkList.empty() && "Old data still around."); 2147 2148 std::vector<MBBPriorityInfo> MBBs; 2149 MBBs.reserve(MF->size()); 2150 for (MachineFunction::iterator I = MF->begin(), E = MF->end();I != E;++I){ 2151 MachineBasicBlock *MBB = I; 2152 MBBs.push_back(MBBPriorityInfo(MBB, Loops->getLoopDepth(MBB), 2153 JoinSplitEdges && isSplitEdge(MBB))); 2154 } 2155 array_pod_sort(MBBs.begin(), MBBs.end(), compareMBBPriority); 2156 2157 // Coalesce intervals in MBB priority order. 2158 unsigned CurrDepth = UINT_MAX; 2159 for (unsigned i = 0, e = MBBs.size(); i != e; ++i) { 2160 // Try coalescing the collected local copies for deeper loops. 2161 if (JoinGlobalCopies && MBBs[i].Depth < CurrDepth) { 2162 coalesceLocals(); 2163 CurrDepth = MBBs[i].Depth; 2164 } 2165 copyCoalesceInMBB(MBBs[i].MBB); 2166 } 2167 coalesceLocals(); 2168 2169 // Joining intervals can allow other intervals to be joined. Iteratively join 2170 // until we make no progress. 2171 while (copyCoalesceWorkList(WorkList)) 2172 /* empty */ ; 2173 } 2174 2175 void RegisterCoalescer::releaseMemory() { 2176 ErasedInstrs.clear(); 2177 WorkList.clear(); 2178 DeadDefs.clear(); 2179 InflateRegs.clear(); 2180 } 2181 2182 bool RegisterCoalescer::runOnMachineFunction(MachineFunction &fn) { 2183 MF = &fn; 2184 MRI = &fn.getRegInfo(); 2185 TM = &fn.getTarget(); 2186 TRI = TM->getRegisterInfo(); 2187 TII = TM->getInstrInfo(); 2188 LIS = &getAnalysis<LiveIntervals>(); 2189 AA = &getAnalysis<AliasAnalysis>(); 2190 Loops = &getAnalysis<MachineLoopInfo>(); 2191 2192 const TargetSubtargetInfo &ST = TM->getSubtarget<TargetSubtargetInfo>(); 2193 if (EnableGlobalCopies == cl::BOU_UNSET) 2194 JoinGlobalCopies = ST.enableMachineScheduler(); 2195 else 2196 JoinGlobalCopies = (EnableGlobalCopies == cl::BOU_TRUE); 2197 2198 // The MachineScheduler does not currently require JoinSplitEdges. This will 2199 // either be enabled unconditionally or replaced by a more general live range 2200 // splitting optimization. 2201 JoinSplitEdges = EnableJoinSplits; 2202 2203 DEBUG(dbgs() << "********** SIMPLE REGISTER COALESCING **********\n" 2204 << "********** Function: " << MF->getName() << '\n'); 2205 2206 if (VerifyCoalescing) 2207 MF->verify(this, "Before register coalescing"); 2208 2209 RegClassInfo.runOnMachineFunction(fn); 2210 2211 // Join (coalesce) intervals if requested. 2212 if (EnableJoining) 2213 joinAllIntervals(); 2214 2215 // After deleting a lot of copies, register classes may be less constrained. 2216 // Removing sub-register operands may allow GR32_ABCD -> GR32 and DPR_VFP2 -> 2217 // DPR inflation. 2218 array_pod_sort(InflateRegs.begin(), InflateRegs.end()); 2219 InflateRegs.erase(std::unique(InflateRegs.begin(), InflateRegs.end()), 2220 InflateRegs.end()); 2221 DEBUG(dbgs() << "Trying to inflate " << InflateRegs.size() << " regs.\n"); 2222 for (unsigned i = 0, e = InflateRegs.size(); i != e; ++i) { 2223 unsigned Reg = InflateRegs[i]; 2224 if (MRI->reg_nodbg_empty(Reg)) 2225 continue; 2226 if (MRI->recomputeRegClass(Reg, *TM)) { 2227 DEBUG(dbgs() << PrintReg(Reg) << " inflated to " 2228 << MRI->getRegClass(Reg)->getName() << '\n'); 2229 ++NumInflated; 2230 } 2231 } 2232 2233 DEBUG(dump()); 2234 if (VerifyCoalescing) 2235 MF->verify(this, "After register coalescing"); 2236 return true; 2237 } 2238 2239 /// print - Implement the dump method. 2240 void RegisterCoalescer::print(raw_ostream &O, const Module* m) const { 2241 LIS->print(O, m); 2242 } 2243