1 //===-- ARMBaseInstrInfo.cpp - ARM Instruction Information ----------------===// 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 contains the Base ARM implementation of the TargetInstrInfo class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "ARMBaseInstrInfo.h" 15 #include "ARM.h" 16 #include "ARMBaseRegisterInfo.h" 17 #include "ARMConstantPoolValue.h" 18 #include "ARMHazardRecognizer.h" 19 #include "ARMMachineFunctionInfo.h" 20 #include "MCTargetDesc/ARMAddressingModes.h" 21 #include "llvm/Constants.h" 22 #include "llvm/Function.h" 23 #include "llvm/GlobalValue.h" 24 #include "llvm/CodeGen/LiveVariables.h" 25 #include "llvm/CodeGen/MachineConstantPool.h" 26 #include "llvm/CodeGen/MachineFrameInfo.h" 27 #include "llvm/CodeGen/MachineInstrBuilder.h" 28 #include "llvm/CodeGen/MachineJumpTableInfo.h" 29 #include "llvm/CodeGen/MachineMemOperand.h" 30 #include "llvm/CodeGen/MachineRegisterInfo.h" 31 #include "llvm/CodeGen/SelectionDAGNodes.h" 32 #include "llvm/MC/MCAsmInfo.h" 33 #include "llvm/Support/BranchProbability.h" 34 #include "llvm/Support/CommandLine.h" 35 #include "llvm/Support/Debug.h" 36 #include "llvm/Support/ErrorHandling.h" 37 #include "llvm/ADT/STLExtras.h" 38 39 #define GET_INSTRINFO_CTOR 40 #include "ARMGenInstrInfo.inc" 41 42 using namespace llvm; 43 44 static cl::opt<bool> 45 EnableARM3Addr("enable-arm-3-addr-conv", cl::Hidden, 46 cl::desc("Enable ARM 2-addr to 3-addr conv")); 47 48 static cl::opt<bool> 49 WidenVMOVS("widen-vmovs", cl::Hidden, cl::init(true), 50 cl::desc("Widen ARM vmovs to vmovd when possible")); 51 52 static cl::opt<unsigned> 53 SwiftPartialUpdateClearance("swift-partial-update-clearance", 54 cl::Hidden, cl::init(12), 55 cl::desc("Clearance before partial register updates")); 56 57 /// ARM_MLxEntry - Record information about MLA / MLS instructions. 58 struct ARM_MLxEntry { 59 uint16_t MLxOpc; // MLA / MLS opcode 60 uint16_t MulOpc; // Expanded multiplication opcode 61 uint16_t AddSubOpc; // Expanded add / sub opcode 62 bool NegAcc; // True if the acc is negated before the add / sub. 63 bool HasLane; // True if instruction has an extra "lane" operand. 64 }; 65 66 static const ARM_MLxEntry ARM_MLxTable[] = { 67 // MLxOpc, MulOpc, AddSubOpc, NegAcc, HasLane 68 // fp scalar ops 69 { ARM::VMLAS, ARM::VMULS, ARM::VADDS, false, false }, 70 { ARM::VMLSS, ARM::VMULS, ARM::VSUBS, false, false }, 71 { ARM::VMLAD, ARM::VMULD, ARM::VADDD, false, false }, 72 { ARM::VMLSD, ARM::VMULD, ARM::VSUBD, false, false }, 73 { ARM::VNMLAS, ARM::VNMULS, ARM::VSUBS, true, false }, 74 { ARM::VNMLSS, ARM::VMULS, ARM::VSUBS, true, false }, 75 { ARM::VNMLAD, ARM::VNMULD, ARM::VSUBD, true, false }, 76 { ARM::VNMLSD, ARM::VMULD, ARM::VSUBD, true, false }, 77 78 // fp SIMD ops 79 { ARM::VMLAfd, ARM::VMULfd, ARM::VADDfd, false, false }, 80 { ARM::VMLSfd, ARM::VMULfd, ARM::VSUBfd, false, false }, 81 { ARM::VMLAfq, ARM::VMULfq, ARM::VADDfq, false, false }, 82 { ARM::VMLSfq, ARM::VMULfq, ARM::VSUBfq, false, false }, 83 { ARM::VMLAslfd, ARM::VMULslfd, ARM::VADDfd, false, true }, 84 { ARM::VMLSslfd, ARM::VMULslfd, ARM::VSUBfd, false, true }, 85 { ARM::VMLAslfq, ARM::VMULslfq, ARM::VADDfq, false, true }, 86 { ARM::VMLSslfq, ARM::VMULslfq, ARM::VSUBfq, false, true }, 87 }; 88 89 ARMBaseInstrInfo::ARMBaseInstrInfo(const ARMSubtarget& STI) 90 : ARMGenInstrInfo(ARM::ADJCALLSTACKDOWN, ARM::ADJCALLSTACKUP), 91 Subtarget(STI) { 92 for (unsigned i = 0, e = array_lengthof(ARM_MLxTable); i != e; ++i) { 93 if (!MLxEntryMap.insert(std::make_pair(ARM_MLxTable[i].MLxOpc, i)).second) 94 assert(false && "Duplicated entries?"); 95 MLxHazardOpcodes.insert(ARM_MLxTable[i].AddSubOpc); 96 MLxHazardOpcodes.insert(ARM_MLxTable[i].MulOpc); 97 } 98 } 99 100 // Use a ScoreboardHazardRecognizer for prepass ARM scheduling. TargetInstrImpl 101 // currently defaults to no prepass hazard recognizer. 102 ScheduleHazardRecognizer *ARMBaseInstrInfo:: 103 CreateTargetHazardRecognizer(const TargetMachine *TM, 104 const ScheduleDAG *DAG) const { 105 if (usePreRAHazardRecognizer()) { 106 const InstrItineraryData *II = TM->getInstrItineraryData(); 107 return new ScoreboardHazardRecognizer(II, DAG, "pre-RA-sched"); 108 } 109 return TargetInstrInfoImpl::CreateTargetHazardRecognizer(TM, DAG); 110 } 111 112 ScheduleHazardRecognizer *ARMBaseInstrInfo:: 113 CreateTargetPostRAHazardRecognizer(const InstrItineraryData *II, 114 const ScheduleDAG *DAG) const { 115 if (Subtarget.isThumb2() || Subtarget.hasVFP2()) 116 return (ScheduleHazardRecognizer *) 117 new ARMHazardRecognizer(II, *this, getRegisterInfo(), Subtarget, DAG); 118 return TargetInstrInfoImpl::CreateTargetPostRAHazardRecognizer(II, DAG); 119 } 120 121 MachineInstr * 122 ARMBaseInstrInfo::convertToThreeAddress(MachineFunction::iterator &MFI, 123 MachineBasicBlock::iterator &MBBI, 124 LiveVariables *LV) const { 125 // FIXME: Thumb2 support. 126 127 if (!EnableARM3Addr) 128 return NULL; 129 130 MachineInstr *MI = MBBI; 131 MachineFunction &MF = *MI->getParent()->getParent(); 132 uint64_t TSFlags = MI->getDesc().TSFlags; 133 bool isPre = false; 134 switch ((TSFlags & ARMII::IndexModeMask) >> ARMII::IndexModeShift) { 135 default: return NULL; 136 case ARMII::IndexModePre: 137 isPre = true; 138 break; 139 case ARMII::IndexModePost: 140 break; 141 } 142 143 // Try splitting an indexed load/store to an un-indexed one plus an add/sub 144 // operation. 145 unsigned MemOpc = getUnindexedOpcode(MI->getOpcode()); 146 if (MemOpc == 0) 147 return NULL; 148 149 MachineInstr *UpdateMI = NULL; 150 MachineInstr *MemMI = NULL; 151 unsigned AddrMode = (TSFlags & ARMII::AddrModeMask); 152 const MCInstrDesc &MCID = MI->getDesc(); 153 unsigned NumOps = MCID.getNumOperands(); 154 bool isLoad = !MI->mayStore(); 155 const MachineOperand &WB = isLoad ? MI->getOperand(1) : MI->getOperand(0); 156 const MachineOperand &Base = MI->getOperand(2); 157 const MachineOperand &Offset = MI->getOperand(NumOps-3); 158 unsigned WBReg = WB.getReg(); 159 unsigned BaseReg = Base.getReg(); 160 unsigned OffReg = Offset.getReg(); 161 unsigned OffImm = MI->getOperand(NumOps-2).getImm(); 162 ARMCC::CondCodes Pred = (ARMCC::CondCodes)MI->getOperand(NumOps-1).getImm(); 163 switch (AddrMode) { 164 default: llvm_unreachable("Unknown indexed op!"); 165 case ARMII::AddrMode2: { 166 bool isSub = ARM_AM::getAM2Op(OffImm) == ARM_AM::sub; 167 unsigned Amt = ARM_AM::getAM2Offset(OffImm); 168 if (OffReg == 0) { 169 if (ARM_AM::getSOImmVal(Amt) == -1) 170 // Can't encode it in a so_imm operand. This transformation will 171 // add more than 1 instruction. Abandon! 172 return NULL; 173 UpdateMI = BuildMI(MF, MI->getDebugLoc(), 174 get(isSub ? ARM::SUBri : ARM::ADDri), WBReg) 175 .addReg(BaseReg).addImm(Amt) 176 .addImm(Pred).addReg(0).addReg(0); 177 } else if (Amt != 0) { 178 ARM_AM::ShiftOpc ShOpc = ARM_AM::getAM2ShiftOpc(OffImm); 179 unsigned SOOpc = ARM_AM::getSORegOpc(ShOpc, Amt); 180 UpdateMI = BuildMI(MF, MI->getDebugLoc(), 181 get(isSub ? ARM::SUBrsi : ARM::ADDrsi), WBReg) 182 .addReg(BaseReg).addReg(OffReg).addReg(0).addImm(SOOpc) 183 .addImm(Pred).addReg(0).addReg(0); 184 } else 185 UpdateMI = BuildMI(MF, MI->getDebugLoc(), 186 get(isSub ? ARM::SUBrr : ARM::ADDrr), WBReg) 187 .addReg(BaseReg).addReg(OffReg) 188 .addImm(Pred).addReg(0).addReg(0); 189 break; 190 } 191 case ARMII::AddrMode3 : { 192 bool isSub = ARM_AM::getAM3Op(OffImm) == ARM_AM::sub; 193 unsigned Amt = ARM_AM::getAM3Offset(OffImm); 194 if (OffReg == 0) 195 // Immediate is 8-bits. It's guaranteed to fit in a so_imm operand. 196 UpdateMI = BuildMI(MF, MI->getDebugLoc(), 197 get(isSub ? ARM::SUBri : ARM::ADDri), WBReg) 198 .addReg(BaseReg).addImm(Amt) 199 .addImm(Pred).addReg(0).addReg(0); 200 else 201 UpdateMI = BuildMI(MF, MI->getDebugLoc(), 202 get(isSub ? ARM::SUBrr : ARM::ADDrr), WBReg) 203 .addReg(BaseReg).addReg(OffReg) 204 .addImm(Pred).addReg(0).addReg(0); 205 break; 206 } 207 } 208 209 std::vector<MachineInstr*> NewMIs; 210 if (isPre) { 211 if (isLoad) 212 MemMI = BuildMI(MF, MI->getDebugLoc(), 213 get(MemOpc), MI->getOperand(0).getReg()) 214 .addReg(WBReg).addImm(0).addImm(Pred); 215 else 216 MemMI = BuildMI(MF, MI->getDebugLoc(), 217 get(MemOpc)).addReg(MI->getOperand(1).getReg()) 218 .addReg(WBReg).addReg(0).addImm(0).addImm(Pred); 219 NewMIs.push_back(MemMI); 220 NewMIs.push_back(UpdateMI); 221 } else { 222 if (isLoad) 223 MemMI = BuildMI(MF, MI->getDebugLoc(), 224 get(MemOpc), MI->getOperand(0).getReg()) 225 .addReg(BaseReg).addImm(0).addImm(Pred); 226 else 227 MemMI = BuildMI(MF, MI->getDebugLoc(), 228 get(MemOpc)).addReg(MI->getOperand(1).getReg()) 229 .addReg(BaseReg).addReg(0).addImm(0).addImm(Pred); 230 if (WB.isDead()) 231 UpdateMI->getOperand(0).setIsDead(); 232 NewMIs.push_back(UpdateMI); 233 NewMIs.push_back(MemMI); 234 } 235 236 // Transfer LiveVariables states, kill / dead info. 237 if (LV) { 238 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 239 MachineOperand &MO = MI->getOperand(i); 240 if (MO.isReg() && TargetRegisterInfo::isVirtualRegister(MO.getReg())) { 241 unsigned Reg = MO.getReg(); 242 243 LiveVariables::VarInfo &VI = LV->getVarInfo(Reg); 244 if (MO.isDef()) { 245 MachineInstr *NewMI = (Reg == WBReg) ? UpdateMI : MemMI; 246 if (MO.isDead()) 247 LV->addVirtualRegisterDead(Reg, NewMI); 248 } 249 if (MO.isUse() && MO.isKill()) { 250 for (unsigned j = 0; j < 2; ++j) { 251 // Look at the two new MI's in reverse order. 252 MachineInstr *NewMI = NewMIs[j]; 253 if (!NewMI->readsRegister(Reg)) 254 continue; 255 LV->addVirtualRegisterKilled(Reg, NewMI); 256 if (VI.removeKill(MI)) 257 VI.Kills.push_back(NewMI); 258 break; 259 } 260 } 261 } 262 } 263 } 264 265 MFI->insert(MBBI, NewMIs[1]); 266 MFI->insert(MBBI, NewMIs[0]); 267 return NewMIs[0]; 268 } 269 270 // Branch analysis. 271 bool 272 ARMBaseInstrInfo::AnalyzeBranch(MachineBasicBlock &MBB,MachineBasicBlock *&TBB, 273 MachineBasicBlock *&FBB, 274 SmallVectorImpl<MachineOperand> &Cond, 275 bool AllowModify) const { 276 // If the block has no terminators, it just falls into the block after it. 277 MachineBasicBlock::iterator I = MBB.end(); 278 if (I == MBB.begin()) 279 return false; 280 --I; 281 while (I->isDebugValue()) { 282 if (I == MBB.begin()) 283 return false; 284 --I; 285 } 286 if (!isUnpredicatedTerminator(I)) 287 return false; 288 289 // Get the last instruction in the block. 290 MachineInstr *LastInst = I; 291 292 // If there is only one terminator instruction, process it. 293 unsigned LastOpc = LastInst->getOpcode(); 294 if (I == MBB.begin() || !isUnpredicatedTerminator(--I)) { 295 if (isUncondBranchOpcode(LastOpc)) { 296 TBB = LastInst->getOperand(0).getMBB(); 297 return false; 298 } 299 if (isCondBranchOpcode(LastOpc)) { 300 // Block ends with fall-through condbranch. 301 TBB = LastInst->getOperand(0).getMBB(); 302 Cond.push_back(LastInst->getOperand(1)); 303 Cond.push_back(LastInst->getOperand(2)); 304 return false; 305 } 306 return true; // Can't handle indirect branch. 307 } 308 309 // Get the instruction before it if it is a terminator. 310 MachineInstr *SecondLastInst = I; 311 unsigned SecondLastOpc = SecondLastInst->getOpcode(); 312 313 // If AllowModify is true and the block ends with two or more unconditional 314 // branches, delete all but the first unconditional branch. 315 if (AllowModify && isUncondBranchOpcode(LastOpc)) { 316 while (isUncondBranchOpcode(SecondLastOpc)) { 317 LastInst->eraseFromParent(); 318 LastInst = SecondLastInst; 319 LastOpc = LastInst->getOpcode(); 320 if (I == MBB.begin() || !isUnpredicatedTerminator(--I)) { 321 // Return now the only terminator is an unconditional branch. 322 TBB = LastInst->getOperand(0).getMBB(); 323 return false; 324 } else { 325 SecondLastInst = I; 326 SecondLastOpc = SecondLastInst->getOpcode(); 327 } 328 } 329 } 330 331 // If there are three terminators, we don't know what sort of block this is. 332 if (SecondLastInst && I != MBB.begin() && isUnpredicatedTerminator(--I)) 333 return true; 334 335 // If the block ends with a B and a Bcc, handle it. 336 if (isCondBranchOpcode(SecondLastOpc) && isUncondBranchOpcode(LastOpc)) { 337 TBB = SecondLastInst->getOperand(0).getMBB(); 338 Cond.push_back(SecondLastInst->getOperand(1)); 339 Cond.push_back(SecondLastInst->getOperand(2)); 340 FBB = LastInst->getOperand(0).getMBB(); 341 return false; 342 } 343 344 // If the block ends with two unconditional branches, handle it. The second 345 // one is not executed, so remove it. 346 if (isUncondBranchOpcode(SecondLastOpc) && isUncondBranchOpcode(LastOpc)) { 347 TBB = SecondLastInst->getOperand(0).getMBB(); 348 I = LastInst; 349 if (AllowModify) 350 I->eraseFromParent(); 351 return false; 352 } 353 354 // ...likewise if it ends with a branch table followed by an unconditional 355 // branch. The branch folder can create these, and we must get rid of them for 356 // correctness of Thumb constant islands. 357 if ((isJumpTableBranchOpcode(SecondLastOpc) || 358 isIndirectBranchOpcode(SecondLastOpc)) && 359 isUncondBranchOpcode(LastOpc)) { 360 I = LastInst; 361 if (AllowModify) 362 I->eraseFromParent(); 363 return true; 364 } 365 366 // Otherwise, can't handle this. 367 return true; 368 } 369 370 371 unsigned ARMBaseInstrInfo::RemoveBranch(MachineBasicBlock &MBB) const { 372 MachineBasicBlock::iterator I = MBB.end(); 373 if (I == MBB.begin()) return 0; 374 --I; 375 while (I->isDebugValue()) { 376 if (I == MBB.begin()) 377 return 0; 378 --I; 379 } 380 if (!isUncondBranchOpcode(I->getOpcode()) && 381 !isCondBranchOpcode(I->getOpcode())) 382 return 0; 383 384 // Remove the branch. 385 I->eraseFromParent(); 386 387 I = MBB.end(); 388 389 if (I == MBB.begin()) return 1; 390 --I; 391 if (!isCondBranchOpcode(I->getOpcode())) 392 return 1; 393 394 // Remove the branch. 395 I->eraseFromParent(); 396 return 2; 397 } 398 399 unsigned 400 ARMBaseInstrInfo::InsertBranch(MachineBasicBlock &MBB, MachineBasicBlock *TBB, 401 MachineBasicBlock *FBB, 402 const SmallVectorImpl<MachineOperand> &Cond, 403 DebugLoc DL) const { 404 ARMFunctionInfo *AFI = MBB.getParent()->getInfo<ARMFunctionInfo>(); 405 int BOpc = !AFI->isThumbFunction() 406 ? ARM::B : (AFI->isThumb2Function() ? ARM::t2B : ARM::tB); 407 int BccOpc = !AFI->isThumbFunction() 408 ? ARM::Bcc : (AFI->isThumb2Function() ? ARM::t2Bcc : ARM::tBcc); 409 bool isThumb = AFI->isThumbFunction() || AFI->isThumb2Function(); 410 411 // Shouldn't be a fall through. 412 assert(TBB && "InsertBranch must not be told to insert a fallthrough"); 413 assert((Cond.size() == 2 || Cond.size() == 0) && 414 "ARM branch conditions have two components!"); 415 416 if (FBB == 0) { 417 if (Cond.empty()) { // Unconditional branch? 418 if (isThumb) 419 BuildMI(&MBB, DL, get(BOpc)).addMBB(TBB).addImm(ARMCC::AL).addReg(0); 420 else 421 BuildMI(&MBB, DL, get(BOpc)).addMBB(TBB); 422 } else 423 BuildMI(&MBB, DL, get(BccOpc)).addMBB(TBB) 424 .addImm(Cond[0].getImm()).addReg(Cond[1].getReg()); 425 return 1; 426 } 427 428 // Two-way conditional branch. 429 BuildMI(&MBB, DL, get(BccOpc)).addMBB(TBB) 430 .addImm(Cond[0].getImm()).addReg(Cond[1].getReg()); 431 if (isThumb) 432 BuildMI(&MBB, DL, get(BOpc)).addMBB(FBB).addImm(ARMCC::AL).addReg(0); 433 else 434 BuildMI(&MBB, DL, get(BOpc)).addMBB(FBB); 435 return 2; 436 } 437 438 bool ARMBaseInstrInfo:: 439 ReverseBranchCondition(SmallVectorImpl<MachineOperand> &Cond) const { 440 ARMCC::CondCodes CC = (ARMCC::CondCodes)(int)Cond[0].getImm(); 441 Cond[0].setImm(ARMCC::getOppositeCondition(CC)); 442 return false; 443 } 444 445 bool ARMBaseInstrInfo::isPredicated(const MachineInstr *MI) const { 446 if (MI->isBundle()) { 447 MachineBasicBlock::const_instr_iterator I = MI; 448 MachineBasicBlock::const_instr_iterator E = MI->getParent()->instr_end(); 449 while (++I != E && I->isInsideBundle()) { 450 int PIdx = I->findFirstPredOperandIdx(); 451 if (PIdx != -1 && I->getOperand(PIdx).getImm() != ARMCC::AL) 452 return true; 453 } 454 return false; 455 } 456 457 int PIdx = MI->findFirstPredOperandIdx(); 458 return PIdx != -1 && MI->getOperand(PIdx).getImm() != ARMCC::AL; 459 } 460 461 bool ARMBaseInstrInfo:: 462 PredicateInstruction(MachineInstr *MI, 463 const SmallVectorImpl<MachineOperand> &Pred) const { 464 unsigned Opc = MI->getOpcode(); 465 if (isUncondBranchOpcode(Opc)) { 466 MI->setDesc(get(getMatchingCondBranchOpcode(Opc))); 467 MI->addOperand(MachineOperand::CreateImm(Pred[0].getImm())); 468 MI->addOperand(MachineOperand::CreateReg(Pred[1].getReg(), false)); 469 return true; 470 } 471 472 int PIdx = MI->findFirstPredOperandIdx(); 473 if (PIdx != -1) { 474 MachineOperand &PMO = MI->getOperand(PIdx); 475 PMO.setImm(Pred[0].getImm()); 476 MI->getOperand(PIdx+1).setReg(Pred[1].getReg()); 477 return true; 478 } 479 return false; 480 } 481 482 bool ARMBaseInstrInfo:: 483 SubsumesPredicate(const SmallVectorImpl<MachineOperand> &Pred1, 484 const SmallVectorImpl<MachineOperand> &Pred2) const { 485 if (Pred1.size() > 2 || Pred2.size() > 2) 486 return false; 487 488 ARMCC::CondCodes CC1 = (ARMCC::CondCodes)Pred1[0].getImm(); 489 ARMCC::CondCodes CC2 = (ARMCC::CondCodes)Pred2[0].getImm(); 490 if (CC1 == CC2) 491 return true; 492 493 switch (CC1) { 494 default: 495 return false; 496 case ARMCC::AL: 497 return true; 498 case ARMCC::HS: 499 return CC2 == ARMCC::HI; 500 case ARMCC::LS: 501 return CC2 == ARMCC::LO || CC2 == ARMCC::EQ; 502 case ARMCC::GE: 503 return CC2 == ARMCC::GT; 504 case ARMCC::LE: 505 return CC2 == ARMCC::LT; 506 } 507 } 508 509 bool ARMBaseInstrInfo::DefinesPredicate(MachineInstr *MI, 510 std::vector<MachineOperand> &Pred) const { 511 bool Found = false; 512 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 513 const MachineOperand &MO = MI->getOperand(i); 514 if ((MO.isRegMask() && MO.clobbersPhysReg(ARM::CPSR)) || 515 (MO.isReg() && MO.isDef() && MO.getReg() == ARM::CPSR)) { 516 Pred.push_back(MO); 517 Found = true; 518 } 519 } 520 521 return Found; 522 } 523 524 /// isPredicable - Return true if the specified instruction can be predicated. 525 /// By default, this returns true for every instruction with a 526 /// PredicateOperand. 527 bool ARMBaseInstrInfo::isPredicable(MachineInstr *MI) const { 528 if (!MI->isPredicable()) 529 return false; 530 531 if ((MI->getDesc().TSFlags & ARMII::DomainMask) == ARMII::DomainNEON) { 532 ARMFunctionInfo *AFI = 533 MI->getParent()->getParent()->getInfo<ARMFunctionInfo>(); 534 return AFI->isThumb2Function(); 535 } 536 return true; 537 } 538 539 /// FIXME: Works around a gcc miscompilation with -fstrict-aliasing. 540 LLVM_ATTRIBUTE_NOINLINE 541 static unsigned getNumJTEntries(const std::vector<MachineJumpTableEntry> &JT, 542 unsigned JTI); 543 static unsigned getNumJTEntries(const std::vector<MachineJumpTableEntry> &JT, 544 unsigned JTI) { 545 assert(JTI < JT.size()); 546 return JT[JTI].MBBs.size(); 547 } 548 549 /// GetInstSize - Return the size of the specified MachineInstr. 550 /// 551 unsigned ARMBaseInstrInfo::GetInstSizeInBytes(const MachineInstr *MI) const { 552 const MachineBasicBlock &MBB = *MI->getParent(); 553 const MachineFunction *MF = MBB.getParent(); 554 const MCAsmInfo *MAI = MF->getTarget().getMCAsmInfo(); 555 556 const MCInstrDesc &MCID = MI->getDesc(); 557 if (MCID.getSize()) 558 return MCID.getSize(); 559 560 // If this machine instr is an inline asm, measure it. 561 if (MI->getOpcode() == ARM::INLINEASM) 562 return getInlineAsmLength(MI->getOperand(0).getSymbolName(), *MAI); 563 if (MI->isLabel()) 564 return 0; 565 unsigned Opc = MI->getOpcode(); 566 switch (Opc) { 567 case TargetOpcode::IMPLICIT_DEF: 568 case TargetOpcode::KILL: 569 case TargetOpcode::PROLOG_LABEL: 570 case TargetOpcode::EH_LABEL: 571 case TargetOpcode::DBG_VALUE: 572 return 0; 573 case TargetOpcode::BUNDLE: 574 return getInstBundleLength(MI); 575 case ARM::MOVi16_ga_pcrel: 576 case ARM::MOVTi16_ga_pcrel: 577 case ARM::t2MOVi16_ga_pcrel: 578 case ARM::t2MOVTi16_ga_pcrel: 579 return 4; 580 case ARM::MOVi32imm: 581 case ARM::t2MOVi32imm: 582 return 8; 583 case ARM::CONSTPOOL_ENTRY: 584 // If this machine instr is a constant pool entry, its size is recorded as 585 // operand #2. 586 return MI->getOperand(2).getImm(); 587 case ARM::Int_eh_sjlj_longjmp: 588 return 16; 589 case ARM::tInt_eh_sjlj_longjmp: 590 return 10; 591 case ARM::Int_eh_sjlj_setjmp: 592 case ARM::Int_eh_sjlj_setjmp_nofp: 593 return 20; 594 case ARM::tInt_eh_sjlj_setjmp: 595 case ARM::t2Int_eh_sjlj_setjmp: 596 case ARM::t2Int_eh_sjlj_setjmp_nofp: 597 return 12; 598 case ARM::BR_JTr: 599 case ARM::BR_JTm: 600 case ARM::BR_JTadd: 601 case ARM::tBR_JTr: 602 case ARM::t2BR_JT: 603 case ARM::t2TBB_JT: 604 case ARM::t2TBH_JT: { 605 // These are jumptable branches, i.e. a branch followed by an inlined 606 // jumptable. The size is 4 + 4 * number of entries. For TBB, each 607 // entry is one byte; TBH two byte each. 608 unsigned EntrySize = (Opc == ARM::t2TBB_JT) 609 ? 1 : ((Opc == ARM::t2TBH_JT) ? 2 : 4); 610 unsigned NumOps = MCID.getNumOperands(); 611 MachineOperand JTOP = 612 MI->getOperand(NumOps - (MI->isPredicable() ? 3 : 2)); 613 unsigned JTI = JTOP.getIndex(); 614 const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo(); 615 assert(MJTI != 0); 616 const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables(); 617 assert(JTI < JT.size()); 618 // Thumb instructions are 2 byte aligned, but JT entries are 4 byte 619 // 4 aligned. The assembler / linker may add 2 byte padding just before 620 // the JT entries. The size does not include this padding; the 621 // constant islands pass does separate bookkeeping for it. 622 // FIXME: If we know the size of the function is less than (1 << 16) *2 623 // bytes, we can use 16-bit entries instead. Then there won't be an 624 // alignment issue. 625 unsigned InstSize = (Opc == ARM::tBR_JTr || Opc == ARM::t2BR_JT) ? 2 : 4; 626 unsigned NumEntries = getNumJTEntries(JT, JTI); 627 if (Opc == ARM::t2TBB_JT && (NumEntries & 1)) 628 // Make sure the instruction that follows TBB is 2-byte aligned. 629 // FIXME: Constant island pass should insert an "ALIGN" instruction 630 // instead. 631 ++NumEntries; 632 return NumEntries * EntrySize + InstSize; 633 } 634 default: 635 // Otherwise, pseudo-instruction sizes are zero. 636 return 0; 637 } 638 } 639 640 unsigned ARMBaseInstrInfo::getInstBundleLength(const MachineInstr *MI) const { 641 unsigned Size = 0; 642 MachineBasicBlock::const_instr_iterator I = MI; 643 MachineBasicBlock::const_instr_iterator E = MI->getParent()->instr_end(); 644 while (++I != E && I->isInsideBundle()) { 645 assert(!I->isBundle() && "No nested bundle!"); 646 Size += GetInstSizeInBytes(&*I); 647 } 648 return Size; 649 } 650 651 void ARMBaseInstrInfo::copyPhysReg(MachineBasicBlock &MBB, 652 MachineBasicBlock::iterator I, DebugLoc DL, 653 unsigned DestReg, unsigned SrcReg, 654 bool KillSrc) const { 655 bool GPRDest = ARM::GPRRegClass.contains(DestReg); 656 bool GPRSrc = ARM::GPRRegClass.contains(SrcReg); 657 658 if (GPRDest && GPRSrc) { 659 AddDefaultCC(AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::MOVr), DestReg) 660 .addReg(SrcReg, getKillRegState(KillSrc)))); 661 return; 662 } 663 664 bool SPRDest = ARM::SPRRegClass.contains(DestReg); 665 bool SPRSrc = ARM::SPRRegClass.contains(SrcReg); 666 667 unsigned Opc = 0; 668 if (SPRDest && SPRSrc) 669 Opc = ARM::VMOVS; 670 else if (GPRDest && SPRSrc) 671 Opc = ARM::VMOVRS; 672 else if (SPRDest && GPRSrc) 673 Opc = ARM::VMOVSR; 674 else if (ARM::DPRRegClass.contains(DestReg, SrcReg)) 675 Opc = ARM::VMOVD; 676 else if (ARM::QPRRegClass.contains(DestReg, SrcReg)) 677 Opc = ARM::VORRq; 678 679 if (Opc) { 680 MachineInstrBuilder MIB = BuildMI(MBB, I, DL, get(Opc), DestReg); 681 MIB.addReg(SrcReg, getKillRegState(KillSrc)); 682 if (Opc == ARM::VORRq) 683 MIB.addReg(SrcReg, getKillRegState(KillSrc)); 684 AddDefaultPred(MIB); 685 return; 686 } 687 688 // Handle register classes that require multiple instructions. 689 unsigned BeginIdx = 0; 690 unsigned SubRegs = 0; 691 int Spacing = 1; 692 693 // Use VORRq when possible. 694 if (ARM::QQPRRegClass.contains(DestReg, SrcReg)) 695 Opc = ARM::VORRq, BeginIdx = ARM::qsub_0, SubRegs = 2; 696 else if (ARM::QQQQPRRegClass.contains(DestReg, SrcReg)) 697 Opc = ARM::VORRq, BeginIdx = ARM::qsub_0, SubRegs = 4; 698 // Fall back to VMOVD. 699 else if (ARM::DPairRegClass.contains(DestReg, SrcReg)) 700 Opc = ARM::VMOVD, BeginIdx = ARM::dsub_0, SubRegs = 2; 701 else if (ARM::DTripleRegClass.contains(DestReg, SrcReg)) 702 Opc = ARM::VMOVD, BeginIdx = ARM::dsub_0, SubRegs = 3; 703 else if (ARM::DQuadRegClass.contains(DestReg, SrcReg)) 704 Opc = ARM::VMOVD, BeginIdx = ARM::dsub_0, SubRegs = 4; 705 else if (ARM::GPRPairRegClass.contains(DestReg, SrcReg)) 706 Opc = ARM::MOVr, BeginIdx = ARM::gsub_0, SubRegs = 2; 707 708 else if (ARM::DPairSpcRegClass.contains(DestReg, SrcReg)) 709 Opc = ARM::VMOVD, BeginIdx = ARM::dsub_0, SubRegs = 2, Spacing = 2; 710 else if (ARM::DTripleSpcRegClass.contains(DestReg, SrcReg)) 711 Opc = ARM::VMOVD, BeginIdx = ARM::dsub_0, SubRegs = 3, Spacing = 2; 712 else if (ARM::DQuadSpcRegClass.contains(DestReg, SrcReg)) 713 Opc = ARM::VMOVD, BeginIdx = ARM::dsub_0, SubRegs = 4, Spacing = 2; 714 715 assert(Opc && "Impossible reg-to-reg copy"); 716 717 const TargetRegisterInfo *TRI = &getRegisterInfo(); 718 MachineInstrBuilder Mov; 719 720 // Copy register tuples backward when the first Dest reg overlaps with SrcReg. 721 if (TRI->regsOverlap(SrcReg, TRI->getSubReg(DestReg, BeginIdx))) { 722 BeginIdx = BeginIdx + ((SubRegs-1)*Spacing); 723 Spacing = -Spacing; 724 } 725 #ifndef NDEBUG 726 SmallSet<unsigned, 4> DstRegs; 727 #endif 728 for (unsigned i = 0; i != SubRegs; ++i) { 729 unsigned Dst = TRI->getSubReg(DestReg, BeginIdx + i*Spacing); 730 unsigned Src = TRI->getSubReg(SrcReg, BeginIdx + i*Spacing); 731 assert(Dst && Src && "Bad sub-register"); 732 #ifndef NDEBUG 733 assert(!DstRegs.count(Src) && "destructive vector copy"); 734 DstRegs.insert(Dst); 735 #endif 736 Mov = BuildMI(MBB, I, I->getDebugLoc(), get(Opc), Dst) 737 .addReg(Src); 738 // VORR takes two source operands. 739 if (Opc == ARM::VORRq) 740 Mov.addReg(Src); 741 Mov = AddDefaultPred(Mov); 742 } 743 // Add implicit super-register defs and kills to the last instruction. 744 Mov->addRegisterDefined(DestReg, TRI); 745 if (KillSrc) 746 Mov->addRegisterKilled(SrcReg, TRI); 747 } 748 749 static const 750 MachineInstrBuilder &AddDReg(MachineInstrBuilder &MIB, 751 unsigned Reg, unsigned SubIdx, unsigned State, 752 const TargetRegisterInfo *TRI) { 753 if (!SubIdx) 754 return MIB.addReg(Reg, State); 755 756 if (TargetRegisterInfo::isPhysicalRegister(Reg)) 757 return MIB.addReg(TRI->getSubReg(Reg, SubIdx), State); 758 return MIB.addReg(Reg, State, SubIdx); 759 } 760 761 void ARMBaseInstrInfo:: 762 storeRegToStackSlot(MachineBasicBlock &MBB, MachineBasicBlock::iterator I, 763 unsigned SrcReg, bool isKill, int FI, 764 const TargetRegisterClass *RC, 765 const TargetRegisterInfo *TRI) const { 766 DebugLoc DL; 767 if (I != MBB.end()) DL = I->getDebugLoc(); 768 MachineFunction &MF = *MBB.getParent(); 769 MachineFrameInfo &MFI = *MF.getFrameInfo(); 770 unsigned Align = MFI.getObjectAlignment(FI); 771 772 MachineMemOperand *MMO = 773 MF.getMachineMemOperand(MachinePointerInfo::getFixedStack(FI), 774 MachineMemOperand::MOStore, 775 MFI.getObjectSize(FI), 776 Align); 777 778 switch (RC->getSize()) { 779 case 4: 780 if (ARM::GPRRegClass.hasSubClassEq(RC)) { 781 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::STRi12)) 782 .addReg(SrcReg, getKillRegState(isKill)) 783 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 784 } else if (ARM::SPRRegClass.hasSubClassEq(RC)) { 785 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VSTRS)) 786 .addReg(SrcReg, getKillRegState(isKill)) 787 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 788 } else 789 llvm_unreachable("Unknown reg class!"); 790 break; 791 case 8: 792 if (ARM::DPRRegClass.hasSubClassEq(RC)) { 793 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VSTRD)) 794 .addReg(SrcReg, getKillRegState(isKill)) 795 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 796 } else if (ARM::GPRPairRegClass.hasSubClassEq(RC)) { 797 MachineInstrBuilder MIB = 798 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::STMIA)) 799 .addFrameIndex(FI)) 800 .addMemOperand(MMO); 801 MIB = AddDReg(MIB, SrcReg, ARM::gsub_0, getKillRegState(isKill), TRI); 802 AddDReg(MIB, SrcReg, ARM::gsub_1, 0, TRI); 803 } else 804 llvm_unreachable("Unknown reg class!"); 805 break; 806 case 16: 807 if (ARM::DPairRegClass.hasSubClassEq(RC)) { 808 // Use aligned spills if the stack can be realigned. 809 if (Align >= 16 && getRegisterInfo().canRealignStack(MF)) { 810 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VST1q64)) 811 .addFrameIndex(FI).addImm(16) 812 .addReg(SrcReg, getKillRegState(isKill)) 813 .addMemOperand(MMO)); 814 } else { 815 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VSTMQIA)) 816 .addReg(SrcReg, getKillRegState(isKill)) 817 .addFrameIndex(FI) 818 .addMemOperand(MMO)); 819 } 820 } else 821 llvm_unreachable("Unknown reg class!"); 822 break; 823 case 24: 824 if (ARM::DTripleRegClass.hasSubClassEq(RC)) { 825 // Use aligned spills if the stack can be realigned. 826 if (Align >= 16 && getRegisterInfo().canRealignStack(MF)) { 827 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VST1d64TPseudo)) 828 .addFrameIndex(FI).addImm(16) 829 .addReg(SrcReg, getKillRegState(isKill)) 830 .addMemOperand(MMO)); 831 } else { 832 MachineInstrBuilder MIB = 833 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VSTMDIA)) 834 .addFrameIndex(FI)) 835 .addMemOperand(MMO); 836 MIB = AddDReg(MIB, SrcReg, ARM::dsub_0, getKillRegState(isKill), TRI); 837 MIB = AddDReg(MIB, SrcReg, ARM::dsub_1, 0, TRI); 838 AddDReg(MIB, SrcReg, ARM::dsub_2, 0, TRI); 839 } 840 } else 841 llvm_unreachable("Unknown reg class!"); 842 break; 843 case 32: 844 if (ARM::QQPRRegClass.hasSubClassEq(RC) || ARM::DQuadRegClass.hasSubClassEq(RC)) { 845 if (Align >= 16 && getRegisterInfo().canRealignStack(MF)) { 846 // FIXME: It's possible to only store part of the QQ register if the 847 // spilled def has a sub-register index. 848 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VST1d64QPseudo)) 849 .addFrameIndex(FI).addImm(16) 850 .addReg(SrcReg, getKillRegState(isKill)) 851 .addMemOperand(MMO)); 852 } else { 853 MachineInstrBuilder MIB = 854 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VSTMDIA)) 855 .addFrameIndex(FI)) 856 .addMemOperand(MMO); 857 MIB = AddDReg(MIB, SrcReg, ARM::dsub_0, getKillRegState(isKill), TRI); 858 MIB = AddDReg(MIB, SrcReg, ARM::dsub_1, 0, TRI); 859 MIB = AddDReg(MIB, SrcReg, ARM::dsub_2, 0, TRI); 860 AddDReg(MIB, SrcReg, ARM::dsub_3, 0, TRI); 861 } 862 } else 863 llvm_unreachable("Unknown reg class!"); 864 break; 865 case 64: 866 if (ARM::QQQQPRRegClass.hasSubClassEq(RC)) { 867 MachineInstrBuilder MIB = 868 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VSTMDIA)) 869 .addFrameIndex(FI)) 870 .addMemOperand(MMO); 871 MIB = AddDReg(MIB, SrcReg, ARM::dsub_0, getKillRegState(isKill), TRI); 872 MIB = AddDReg(MIB, SrcReg, ARM::dsub_1, 0, TRI); 873 MIB = AddDReg(MIB, SrcReg, ARM::dsub_2, 0, TRI); 874 MIB = AddDReg(MIB, SrcReg, ARM::dsub_3, 0, TRI); 875 MIB = AddDReg(MIB, SrcReg, ARM::dsub_4, 0, TRI); 876 MIB = AddDReg(MIB, SrcReg, ARM::dsub_5, 0, TRI); 877 MIB = AddDReg(MIB, SrcReg, ARM::dsub_6, 0, TRI); 878 AddDReg(MIB, SrcReg, ARM::dsub_7, 0, TRI); 879 } else 880 llvm_unreachable("Unknown reg class!"); 881 break; 882 default: 883 llvm_unreachable("Unknown reg class!"); 884 } 885 } 886 887 unsigned 888 ARMBaseInstrInfo::isStoreToStackSlot(const MachineInstr *MI, 889 int &FrameIndex) const { 890 switch (MI->getOpcode()) { 891 default: break; 892 case ARM::STRrs: 893 case ARM::t2STRs: // FIXME: don't use t2STRs to access frame. 894 if (MI->getOperand(1).isFI() && 895 MI->getOperand(2).isReg() && 896 MI->getOperand(3).isImm() && 897 MI->getOperand(2).getReg() == 0 && 898 MI->getOperand(3).getImm() == 0) { 899 FrameIndex = MI->getOperand(1).getIndex(); 900 return MI->getOperand(0).getReg(); 901 } 902 break; 903 case ARM::STRi12: 904 case ARM::t2STRi12: 905 case ARM::tSTRspi: 906 case ARM::VSTRD: 907 case ARM::VSTRS: 908 if (MI->getOperand(1).isFI() && 909 MI->getOperand(2).isImm() && 910 MI->getOperand(2).getImm() == 0) { 911 FrameIndex = MI->getOperand(1).getIndex(); 912 return MI->getOperand(0).getReg(); 913 } 914 break; 915 case ARM::VST1q64: 916 case ARM::VST1d64TPseudo: 917 case ARM::VST1d64QPseudo: 918 if (MI->getOperand(0).isFI() && 919 MI->getOperand(2).getSubReg() == 0) { 920 FrameIndex = MI->getOperand(0).getIndex(); 921 return MI->getOperand(2).getReg(); 922 } 923 break; 924 case ARM::VSTMQIA: 925 if (MI->getOperand(1).isFI() && 926 MI->getOperand(0).getSubReg() == 0) { 927 FrameIndex = MI->getOperand(1).getIndex(); 928 return MI->getOperand(0).getReg(); 929 } 930 break; 931 } 932 933 return 0; 934 } 935 936 unsigned ARMBaseInstrInfo::isStoreToStackSlotPostFE(const MachineInstr *MI, 937 int &FrameIndex) const { 938 const MachineMemOperand *Dummy; 939 return MI->mayStore() && hasStoreToStackSlot(MI, Dummy, FrameIndex); 940 } 941 942 void ARMBaseInstrInfo:: 943 loadRegFromStackSlot(MachineBasicBlock &MBB, MachineBasicBlock::iterator I, 944 unsigned DestReg, int FI, 945 const TargetRegisterClass *RC, 946 const TargetRegisterInfo *TRI) const { 947 DebugLoc DL; 948 if (I != MBB.end()) DL = I->getDebugLoc(); 949 MachineFunction &MF = *MBB.getParent(); 950 ARMFunctionInfo *AFI = MF.getInfo<ARMFunctionInfo>(); 951 MachineFrameInfo &MFI = *MF.getFrameInfo(); 952 unsigned Align = MFI.getObjectAlignment(FI); 953 MachineMemOperand *MMO = 954 MF.getMachineMemOperand( 955 MachinePointerInfo::getFixedStack(FI), 956 MachineMemOperand::MOLoad, 957 MFI.getObjectSize(FI), 958 Align); 959 960 switch (RC->getSize()) { 961 case 4: 962 if (ARM::GPRRegClass.hasSubClassEq(RC)) { 963 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::LDRi12), DestReg) 964 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 965 966 } else if (ARM::SPRRegClass.hasSubClassEq(RC)) { 967 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLDRS), DestReg) 968 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 969 } else 970 llvm_unreachable("Unknown reg class!"); 971 break; 972 case 8: 973 if (ARM::DPRRegClass.hasSubClassEq(RC)) { 974 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLDRD), DestReg) 975 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 976 } else if (ARM::GPRPairRegClass.hasSubClassEq(RC)) { 977 unsigned LdmOpc = AFI->isThumbFunction() ? ARM::t2LDMIA : ARM::LDMIA; 978 MachineInstrBuilder MIB = 979 AddDefaultPred(BuildMI(MBB, I, DL, get(LdmOpc)) 980 .addFrameIndex(FI).addImm(0).addMemOperand(MMO)); 981 MIB = AddDReg(MIB, DestReg, ARM::gsub_0, RegState::DefineNoRead, TRI); 982 MIB = AddDReg(MIB, DestReg, ARM::gsub_1, RegState::DefineNoRead, TRI); 983 if (TargetRegisterInfo::isPhysicalRegister(DestReg)) 984 MIB.addReg(DestReg, RegState::ImplicitDefine); 985 } else 986 llvm_unreachable("Unknown reg class!"); 987 break; 988 case 16: 989 if (ARM::DPairRegClass.hasSubClassEq(RC)) { 990 if (Align >= 16 && getRegisterInfo().canRealignStack(MF)) { 991 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLD1q64), DestReg) 992 .addFrameIndex(FI).addImm(16) 993 .addMemOperand(MMO)); 994 } else { 995 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLDMQIA), DestReg) 996 .addFrameIndex(FI) 997 .addMemOperand(MMO)); 998 } 999 } else 1000 llvm_unreachable("Unknown reg class!"); 1001 break; 1002 case 24: 1003 if (ARM::DTripleRegClass.hasSubClassEq(RC)) { 1004 if (Align >= 16 && getRegisterInfo().canRealignStack(MF)) { 1005 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLD1d64TPseudo), DestReg) 1006 .addFrameIndex(FI).addImm(16) 1007 .addMemOperand(MMO)); 1008 } else { 1009 MachineInstrBuilder MIB = 1010 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLDMDIA)) 1011 .addFrameIndex(FI) 1012 .addMemOperand(MMO)); 1013 MIB = AddDReg(MIB, DestReg, ARM::dsub_0, RegState::DefineNoRead, TRI); 1014 MIB = AddDReg(MIB, DestReg, ARM::dsub_1, RegState::DefineNoRead, TRI); 1015 MIB = AddDReg(MIB, DestReg, ARM::dsub_2, RegState::DefineNoRead, TRI); 1016 if (TargetRegisterInfo::isPhysicalRegister(DestReg)) 1017 MIB.addReg(DestReg, RegState::ImplicitDefine); 1018 } 1019 } else 1020 llvm_unreachable("Unknown reg class!"); 1021 break; 1022 case 32: 1023 if (ARM::QQPRRegClass.hasSubClassEq(RC) || ARM::DQuadRegClass.hasSubClassEq(RC)) { 1024 if (Align >= 16 && getRegisterInfo().canRealignStack(MF)) { 1025 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLD1d64QPseudo), DestReg) 1026 .addFrameIndex(FI).addImm(16) 1027 .addMemOperand(MMO)); 1028 } else { 1029 MachineInstrBuilder MIB = 1030 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLDMDIA)) 1031 .addFrameIndex(FI)) 1032 .addMemOperand(MMO); 1033 MIB = AddDReg(MIB, DestReg, ARM::dsub_0, RegState::DefineNoRead, TRI); 1034 MIB = AddDReg(MIB, DestReg, ARM::dsub_1, RegState::DefineNoRead, TRI); 1035 MIB = AddDReg(MIB, DestReg, ARM::dsub_2, RegState::DefineNoRead, TRI); 1036 MIB = AddDReg(MIB, DestReg, ARM::dsub_3, RegState::DefineNoRead, TRI); 1037 if (TargetRegisterInfo::isPhysicalRegister(DestReg)) 1038 MIB.addReg(DestReg, RegState::ImplicitDefine); 1039 } 1040 } else 1041 llvm_unreachable("Unknown reg class!"); 1042 break; 1043 case 64: 1044 if (ARM::QQQQPRRegClass.hasSubClassEq(RC)) { 1045 MachineInstrBuilder MIB = 1046 AddDefaultPred(BuildMI(MBB, I, DL, get(ARM::VLDMDIA)) 1047 .addFrameIndex(FI)) 1048 .addMemOperand(MMO); 1049 MIB = AddDReg(MIB, DestReg, ARM::dsub_0, RegState::DefineNoRead, TRI); 1050 MIB = AddDReg(MIB, DestReg, ARM::dsub_1, RegState::DefineNoRead, TRI); 1051 MIB = AddDReg(MIB, DestReg, ARM::dsub_2, RegState::DefineNoRead, TRI); 1052 MIB = AddDReg(MIB, DestReg, ARM::dsub_3, RegState::DefineNoRead, TRI); 1053 MIB = AddDReg(MIB, DestReg, ARM::dsub_4, RegState::DefineNoRead, TRI); 1054 MIB = AddDReg(MIB, DestReg, ARM::dsub_5, RegState::DefineNoRead, TRI); 1055 MIB = AddDReg(MIB, DestReg, ARM::dsub_6, RegState::DefineNoRead, TRI); 1056 MIB = AddDReg(MIB, DestReg, ARM::dsub_7, RegState::DefineNoRead, TRI); 1057 if (TargetRegisterInfo::isPhysicalRegister(DestReg)) 1058 MIB.addReg(DestReg, RegState::ImplicitDefine); 1059 } else 1060 llvm_unreachable("Unknown reg class!"); 1061 break; 1062 default: 1063 llvm_unreachable("Unknown regclass!"); 1064 } 1065 } 1066 1067 unsigned 1068 ARMBaseInstrInfo::isLoadFromStackSlot(const MachineInstr *MI, 1069 int &FrameIndex) const { 1070 switch (MI->getOpcode()) { 1071 default: break; 1072 case ARM::LDRrs: 1073 case ARM::t2LDRs: // FIXME: don't use t2LDRs to access frame. 1074 if (MI->getOperand(1).isFI() && 1075 MI->getOperand(2).isReg() && 1076 MI->getOperand(3).isImm() && 1077 MI->getOperand(2).getReg() == 0 && 1078 MI->getOperand(3).getImm() == 0) { 1079 FrameIndex = MI->getOperand(1).getIndex(); 1080 return MI->getOperand(0).getReg(); 1081 } 1082 break; 1083 case ARM::LDRi12: 1084 case ARM::t2LDRi12: 1085 case ARM::tLDRspi: 1086 case ARM::VLDRD: 1087 case ARM::VLDRS: 1088 if (MI->getOperand(1).isFI() && 1089 MI->getOperand(2).isImm() && 1090 MI->getOperand(2).getImm() == 0) { 1091 FrameIndex = MI->getOperand(1).getIndex(); 1092 return MI->getOperand(0).getReg(); 1093 } 1094 break; 1095 case ARM::VLD1q64: 1096 case ARM::VLD1d64TPseudo: 1097 case ARM::VLD1d64QPseudo: 1098 if (MI->getOperand(1).isFI() && 1099 MI->getOperand(0).getSubReg() == 0) { 1100 FrameIndex = MI->getOperand(1).getIndex(); 1101 return MI->getOperand(0).getReg(); 1102 } 1103 break; 1104 case ARM::VLDMQIA: 1105 if (MI->getOperand(1).isFI() && 1106 MI->getOperand(0).getSubReg() == 0) { 1107 FrameIndex = MI->getOperand(1).getIndex(); 1108 return MI->getOperand(0).getReg(); 1109 } 1110 break; 1111 } 1112 1113 return 0; 1114 } 1115 1116 unsigned ARMBaseInstrInfo::isLoadFromStackSlotPostFE(const MachineInstr *MI, 1117 int &FrameIndex) const { 1118 const MachineMemOperand *Dummy; 1119 return MI->mayLoad() && hasLoadFromStackSlot(MI, Dummy, FrameIndex); 1120 } 1121 1122 bool ARMBaseInstrInfo::expandPostRAPseudo(MachineBasicBlock::iterator MI) const{ 1123 // This hook gets to expand COPY instructions before they become 1124 // copyPhysReg() calls. Look for VMOVS instructions that can legally be 1125 // widened to VMOVD. We prefer the VMOVD when possible because it may be 1126 // changed into a VORR that can go down the NEON pipeline. 1127 if (!WidenVMOVS || !MI->isCopy()) 1128 return false; 1129 1130 // Look for a copy between even S-registers. That is where we keep floats 1131 // when using NEON v2f32 instructions for f32 arithmetic. 1132 unsigned DstRegS = MI->getOperand(0).getReg(); 1133 unsigned SrcRegS = MI->getOperand(1).getReg(); 1134 if (!ARM::SPRRegClass.contains(DstRegS, SrcRegS)) 1135 return false; 1136 1137 const TargetRegisterInfo *TRI = &getRegisterInfo(); 1138 unsigned DstRegD = TRI->getMatchingSuperReg(DstRegS, ARM::ssub_0, 1139 &ARM::DPRRegClass); 1140 unsigned SrcRegD = TRI->getMatchingSuperReg(SrcRegS, ARM::ssub_0, 1141 &ARM::DPRRegClass); 1142 if (!DstRegD || !SrcRegD) 1143 return false; 1144 1145 // We want to widen this into a DstRegD = VMOVD SrcRegD copy. This is only 1146 // legal if the COPY already defines the full DstRegD, and it isn't a 1147 // sub-register insertion. 1148 if (!MI->definesRegister(DstRegD, TRI) || MI->readsRegister(DstRegD, TRI)) 1149 return false; 1150 1151 // A dead copy shouldn't show up here, but reject it just in case. 1152 if (MI->getOperand(0).isDead()) 1153 return false; 1154 1155 // All clear, widen the COPY. 1156 DEBUG(dbgs() << "widening: " << *MI); 1157 1158 // Get rid of the old <imp-def> of DstRegD. Leave it if it defines a Q-reg 1159 // or some other super-register. 1160 int ImpDefIdx = MI->findRegisterDefOperandIdx(DstRegD); 1161 if (ImpDefIdx != -1) 1162 MI->RemoveOperand(ImpDefIdx); 1163 1164 // Change the opcode and operands. 1165 MI->setDesc(get(ARM::VMOVD)); 1166 MI->getOperand(0).setReg(DstRegD); 1167 MI->getOperand(1).setReg(SrcRegD); 1168 AddDefaultPred(MachineInstrBuilder(MI)); 1169 1170 // We are now reading SrcRegD instead of SrcRegS. This may upset the 1171 // register scavenger and machine verifier, so we need to indicate that we 1172 // are reading an undefined value from SrcRegD, but a proper value from 1173 // SrcRegS. 1174 MI->getOperand(1).setIsUndef(); 1175 MachineInstrBuilder(MI).addReg(SrcRegS, RegState::Implicit); 1176 1177 // SrcRegD may actually contain an unrelated value in the ssub_1 1178 // sub-register. Don't kill it. Only kill the ssub_0 sub-register. 1179 if (MI->getOperand(1).isKill()) { 1180 MI->getOperand(1).setIsKill(false); 1181 MI->addRegisterKilled(SrcRegS, TRI, true); 1182 } 1183 1184 DEBUG(dbgs() << "replaced by: " << *MI); 1185 return true; 1186 } 1187 1188 MachineInstr* 1189 ARMBaseInstrInfo::emitFrameIndexDebugValue(MachineFunction &MF, 1190 int FrameIx, uint64_t Offset, 1191 const MDNode *MDPtr, 1192 DebugLoc DL) const { 1193 MachineInstrBuilder MIB = BuildMI(MF, DL, get(ARM::DBG_VALUE)) 1194 .addFrameIndex(FrameIx).addImm(0).addImm(Offset).addMetadata(MDPtr); 1195 return &*MIB; 1196 } 1197 1198 /// Create a copy of a const pool value. Update CPI to the new index and return 1199 /// the label UID. 1200 static unsigned duplicateCPV(MachineFunction &MF, unsigned &CPI) { 1201 MachineConstantPool *MCP = MF.getConstantPool(); 1202 ARMFunctionInfo *AFI = MF.getInfo<ARMFunctionInfo>(); 1203 1204 const MachineConstantPoolEntry &MCPE = MCP->getConstants()[CPI]; 1205 assert(MCPE.isMachineConstantPoolEntry() && 1206 "Expecting a machine constantpool entry!"); 1207 ARMConstantPoolValue *ACPV = 1208 static_cast<ARMConstantPoolValue*>(MCPE.Val.MachineCPVal); 1209 1210 unsigned PCLabelId = AFI->createPICLabelUId(); 1211 ARMConstantPoolValue *NewCPV = 0; 1212 // FIXME: The below assumes PIC relocation model and that the function 1213 // is Thumb mode (t1 or t2). PCAdjustment would be 8 for ARM mode PIC, and 1214 // zero for non-PIC in ARM or Thumb. The callers are all of thumb LDR 1215 // instructions, so that's probably OK, but is PIC always correct when 1216 // we get here? 1217 if (ACPV->isGlobalValue()) 1218 NewCPV = ARMConstantPoolConstant:: 1219 Create(cast<ARMConstantPoolConstant>(ACPV)->getGV(), PCLabelId, 1220 ARMCP::CPValue, 4); 1221 else if (ACPV->isExtSymbol()) 1222 NewCPV = ARMConstantPoolSymbol:: 1223 Create(MF.getFunction()->getContext(), 1224 cast<ARMConstantPoolSymbol>(ACPV)->getSymbol(), PCLabelId, 4); 1225 else if (ACPV->isBlockAddress()) 1226 NewCPV = ARMConstantPoolConstant:: 1227 Create(cast<ARMConstantPoolConstant>(ACPV)->getBlockAddress(), PCLabelId, 1228 ARMCP::CPBlockAddress, 4); 1229 else if (ACPV->isLSDA()) 1230 NewCPV = ARMConstantPoolConstant::Create(MF.getFunction(), PCLabelId, 1231 ARMCP::CPLSDA, 4); 1232 else if (ACPV->isMachineBasicBlock()) 1233 NewCPV = ARMConstantPoolMBB:: 1234 Create(MF.getFunction()->getContext(), 1235 cast<ARMConstantPoolMBB>(ACPV)->getMBB(), PCLabelId, 4); 1236 else 1237 llvm_unreachable("Unexpected ARM constantpool value type!!"); 1238 CPI = MCP->getConstantPoolIndex(NewCPV, MCPE.getAlignment()); 1239 return PCLabelId; 1240 } 1241 1242 void ARMBaseInstrInfo:: 1243 reMaterialize(MachineBasicBlock &MBB, 1244 MachineBasicBlock::iterator I, 1245 unsigned DestReg, unsigned SubIdx, 1246 const MachineInstr *Orig, 1247 const TargetRegisterInfo &TRI) const { 1248 unsigned Opcode = Orig->getOpcode(); 1249 switch (Opcode) { 1250 default: { 1251 MachineInstr *MI = MBB.getParent()->CloneMachineInstr(Orig); 1252 MI->substituteRegister(Orig->getOperand(0).getReg(), DestReg, SubIdx, TRI); 1253 MBB.insert(I, MI); 1254 break; 1255 } 1256 case ARM::tLDRpci_pic: 1257 case ARM::t2LDRpci_pic: { 1258 MachineFunction &MF = *MBB.getParent(); 1259 unsigned CPI = Orig->getOperand(1).getIndex(); 1260 unsigned PCLabelId = duplicateCPV(MF, CPI); 1261 MachineInstrBuilder MIB = BuildMI(MBB, I, Orig->getDebugLoc(), get(Opcode), 1262 DestReg) 1263 .addConstantPoolIndex(CPI).addImm(PCLabelId); 1264 MIB->setMemRefs(Orig->memoperands_begin(), Orig->memoperands_end()); 1265 break; 1266 } 1267 } 1268 } 1269 1270 MachineInstr * 1271 ARMBaseInstrInfo::duplicate(MachineInstr *Orig, MachineFunction &MF) const { 1272 MachineInstr *MI = TargetInstrInfoImpl::duplicate(Orig, MF); 1273 switch(Orig->getOpcode()) { 1274 case ARM::tLDRpci_pic: 1275 case ARM::t2LDRpci_pic: { 1276 unsigned CPI = Orig->getOperand(1).getIndex(); 1277 unsigned PCLabelId = duplicateCPV(MF, CPI); 1278 Orig->getOperand(1).setIndex(CPI); 1279 Orig->getOperand(2).setImm(PCLabelId); 1280 break; 1281 } 1282 } 1283 return MI; 1284 } 1285 1286 bool ARMBaseInstrInfo::produceSameValue(const MachineInstr *MI0, 1287 const MachineInstr *MI1, 1288 const MachineRegisterInfo *MRI) const { 1289 int Opcode = MI0->getOpcode(); 1290 if (Opcode == ARM::t2LDRpci || 1291 Opcode == ARM::t2LDRpci_pic || 1292 Opcode == ARM::tLDRpci || 1293 Opcode == ARM::tLDRpci_pic || 1294 Opcode == ARM::MOV_ga_dyn || 1295 Opcode == ARM::MOV_ga_pcrel || 1296 Opcode == ARM::MOV_ga_pcrel_ldr || 1297 Opcode == ARM::t2MOV_ga_dyn || 1298 Opcode == ARM::t2MOV_ga_pcrel) { 1299 if (MI1->getOpcode() != Opcode) 1300 return false; 1301 if (MI0->getNumOperands() != MI1->getNumOperands()) 1302 return false; 1303 1304 const MachineOperand &MO0 = MI0->getOperand(1); 1305 const MachineOperand &MO1 = MI1->getOperand(1); 1306 if (MO0.getOffset() != MO1.getOffset()) 1307 return false; 1308 1309 if (Opcode == ARM::MOV_ga_dyn || 1310 Opcode == ARM::MOV_ga_pcrel || 1311 Opcode == ARM::MOV_ga_pcrel_ldr || 1312 Opcode == ARM::t2MOV_ga_dyn || 1313 Opcode == ARM::t2MOV_ga_pcrel) 1314 // Ignore the PC labels. 1315 return MO0.getGlobal() == MO1.getGlobal(); 1316 1317 const MachineFunction *MF = MI0->getParent()->getParent(); 1318 const MachineConstantPool *MCP = MF->getConstantPool(); 1319 int CPI0 = MO0.getIndex(); 1320 int CPI1 = MO1.getIndex(); 1321 const MachineConstantPoolEntry &MCPE0 = MCP->getConstants()[CPI0]; 1322 const MachineConstantPoolEntry &MCPE1 = MCP->getConstants()[CPI1]; 1323 bool isARMCP0 = MCPE0.isMachineConstantPoolEntry(); 1324 bool isARMCP1 = MCPE1.isMachineConstantPoolEntry(); 1325 if (isARMCP0 && isARMCP1) { 1326 ARMConstantPoolValue *ACPV0 = 1327 static_cast<ARMConstantPoolValue*>(MCPE0.Val.MachineCPVal); 1328 ARMConstantPoolValue *ACPV1 = 1329 static_cast<ARMConstantPoolValue*>(MCPE1.Val.MachineCPVal); 1330 return ACPV0->hasSameValue(ACPV1); 1331 } else if (!isARMCP0 && !isARMCP1) { 1332 return MCPE0.Val.ConstVal == MCPE1.Val.ConstVal; 1333 } 1334 return false; 1335 } else if (Opcode == ARM::PICLDR) { 1336 if (MI1->getOpcode() != Opcode) 1337 return false; 1338 if (MI0->getNumOperands() != MI1->getNumOperands()) 1339 return false; 1340 1341 unsigned Addr0 = MI0->getOperand(1).getReg(); 1342 unsigned Addr1 = MI1->getOperand(1).getReg(); 1343 if (Addr0 != Addr1) { 1344 if (!MRI || 1345 !TargetRegisterInfo::isVirtualRegister(Addr0) || 1346 !TargetRegisterInfo::isVirtualRegister(Addr1)) 1347 return false; 1348 1349 // This assumes SSA form. 1350 MachineInstr *Def0 = MRI->getVRegDef(Addr0); 1351 MachineInstr *Def1 = MRI->getVRegDef(Addr1); 1352 // Check if the loaded value, e.g. a constantpool of a global address, are 1353 // the same. 1354 if (!produceSameValue(Def0, Def1, MRI)) 1355 return false; 1356 } 1357 1358 for (unsigned i = 3, e = MI0->getNumOperands(); i != e; ++i) { 1359 // %vreg12<def> = PICLDR %vreg11, 0, pred:14, pred:%noreg 1360 const MachineOperand &MO0 = MI0->getOperand(i); 1361 const MachineOperand &MO1 = MI1->getOperand(i); 1362 if (!MO0.isIdenticalTo(MO1)) 1363 return false; 1364 } 1365 return true; 1366 } 1367 1368 return MI0->isIdenticalTo(MI1, MachineInstr::IgnoreVRegDefs); 1369 } 1370 1371 /// areLoadsFromSameBasePtr - This is used by the pre-regalloc scheduler to 1372 /// determine if two loads are loading from the same base address. It should 1373 /// only return true if the base pointers are the same and the only differences 1374 /// between the two addresses is the offset. It also returns the offsets by 1375 /// reference. 1376 bool ARMBaseInstrInfo::areLoadsFromSameBasePtr(SDNode *Load1, SDNode *Load2, 1377 int64_t &Offset1, 1378 int64_t &Offset2) const { 1379 // Don't worry about Thumb: just ARM and Thumb2. 1380 if (Subtarget.isThumb1Only()) return false; 1381 1382 if (!Load1->isMachineOpcode() || !Load2->isMachineOpcode()) 1383 return false; 1384 1385 switch (Load1->getMachineOpcode()) { 1386 default: 1387 return false; 1388 case ARM::LDRi12: 1389 case ARM::LDRBi12: 1390 case ARM::LDRD: 1391 case ARM::LDRH: 1392 case ARM::LDRSB: 1393 case ARM::LDRSH: 1394 case ARM::VLDRD: 1395 case ARM::VLDRS: 1396 case ARM::t2LDRi8: 1397 case ARM::t2LDRDi8: 1398 case ARM::t2LDRSHi8: 1399 case ARM::t2LDRi12: 1400 case ARM::t2LDRSHi12: 1401 break; 1402 } 1403 1404 switch (Load2->getMachineOpcode()) { 1405 default: 1406 return false; 1407 case ARM::LDRi12: 1408 case ARM::LDRBi12: 1409 case ARM::LDRD: 1410 case ARM::LDRH: 1411 case ARM::LDRSB: 1412 case ARM::LDRSH: 1413 case ARM::VLDRD: 1414 case ARM::VLDRS: 1415 case ARM::t2LDRi8: 1416 case ARM::t2LDRSHi8: 1417 case ARM::t2LDRi12: 1418 case ARM::t2LDRSHi12: 1419 break; 1420 } 1421 1422 // Check if base addresses and chain operands match. 1423 if (Load1->getOperand(0) != Load2->getOperand(0) || 1424 Load1->getOperand(4) != Load2->getOperand(4)) 1425 return false; 1426 1427 // Index should be Reg0. 1428 if (Load1->getOperand(3) != Load2->getOperand(3)) 1429 return false; 1430 1431 // Determine the offsets. 1432 if (isa<ConstantSDNode>(Load1->getOperand(1)) && 1433 isa<ConstantSDNode>(Load2->getOperand(1))) { 1434 Offset1 = cast<ConstantSDNode>(Load1->getOperand(1))->getSExtValue(); 1435 Offset2 = cast<ConstantSDNode>(Load2->getOperand(1))->getSExtValue(); 1436 return true; 1437 } 1438 1439 return false; 1440 } 1441 1442 /// shouldScheduleLoadsNear - This is a used by the pre-regalloc scheduler to 1443 /// determine (in conjunction with areLoadsFromSameBasePtr) if two loads should 1444 /// be scheduled togther. On some targets if two loads are loading from 1445 /// addresses in the same cache line, it's better if they are scheduled 1446 /// together. This function takes two integers that represent the load offsets 1447 /// from the common base address. It returns true if it decides it's desirable 1448 /// to schedule the two loads together. "NumLoads" is the number of loads that 1449 /// have already been scheduled after Load1. 1450 bool ARMBaseInstrInfo::shouldScheduleLoadsNear(SDNode *Load1, SDNode *Load2, 1451 int64_t Offset1, int64_t Offset2, 1452 unsigned NumLoads) const { 1453 // Don't worry about Thumb: just ARM and Thumb2. 1454 if (Subtarget.isThumb1Only()) return false; 1455 1456 assert(Offset2 > Offset1); 1457 1458 if ((Offset2 - Offset1) / 8 > 64) 1459 return false; 1460 1461 if (Load1->getMachineOpcode() != Load2->getMachineOpcode()) 1462 return false; // FIXME: overly conservative? 1463 1464 // Four loads in a row should be sufficient. 1465 if (NumLoads >= 3) 1466 return false; 1467 1468 return true; 1469 } 1470 1471 bool ARMBaseInstrInfo::isSchedulingBoundary(const MachineInstr *MI, 1472 const MachineBasicBlock *MBB, 1473 const MachineFunction &MF) const { 1474 // Debug info is never a scheduling boundary. It's necessary to be explicit 1475 // due to the special treatment of IT instructions below, otherwise a 1476 // dbg_value followed by an IT will result in the IT instruction being 1477 // considered a scheduling hazard, which is wrong. It should be the actual 1478 // instruction preceding the dbg_value instruction(s), just like it is 1479 // when debug info is not present. 1480 if (MI->isDebugValue()) 1481 return false; 1482 1483 // Terminators and labels can't be scheduled around. 1484 if (MI->isTerminator() || MI->isLabel()) 1485 return true; 1486 1487 // Treat the start of the IT block as a scheduling boundary, but schedule 1488 // t2IT along with all instructions following it. 1489 // FIXME: This is a big hammer. But the alternative is to add all potential 1490 // true and anti dependencies to IT block instructions as implicit operands 1491 // to the t2IT instruction. The added compile time and complexity does not 1492 // seem worth it. 1493 MachineBasicBlock::const_iterator I = MI; 1494 // Make sure to skip any dbg_value instructions 1495 while (++I != MBB->end() && I->isDebugValue()) 1496 ; 1497 if (I != MBB->end() && I->getOpcode() == ARM::t2IT) 1498 return true; 1499 1500 // Don't attempt to schedule around any instruction that defines 1501 // a stack-oriented pointer, as it's unlikely to be profitable. This 1502 // saves compile time, because it doesn't require every single 1503 // stack slot reference to depend on the instruction that does the 1504 // modification. 1505 // Calls don't actually change the stack pointer, even if they have imp-defs. 1506 // No ARM calling conventions change the stack pointer. (X86 calling 1507 // conventions sometimes do). 1508 if (!MI->isCall() && MI->definesRegister(ARM::SP)) 1509 return true; 1510 1511 return false; 1512 } 1513 1514 bool ARMBaseInstrInfo:: 1515 isProfitableToIfCvt(MachineBasicBlock &MBB, 1516 unsigned NumCycles, unsigned ExtraPredCycles, 1517 const BranchProbability &Probability) const { 1518 if (!NumCycles) 1519 return false; 1520 1521 // Attempt to estimate the relative costs of predication versus branching. 1522 unsigned UnpredCost = Probability.getNumerator() * NumCycles; 1523 UnpredCost /= Probability.getDenominator(); 1524 UnpredCost += 1; // The branch itself 1525 UnpredCost += Subtarget.getMispredictionPenalty() / 10; 1526 1527 return (NumCycles + ExtraPredCycles) <= UnpredCost; 1528 } 1529 1530 bool ARMBaseInstrInfo:: 1531 isProfitableToIfCvt(MachineBasicBlock &TMBB, 1532 unsigned TCycles, unsigned TExtra, 1533 MachineBasicBlock &FMBB, 1534 unsigned FCycles, unsigned FExtra, 1535 const BranchProbability &Probability) const { 1536 if (!TCycles || !FCycles) 1537 return false; 1538 1539 // Attempt to estimate the relative costs of predication versus branching. 1540 unsigned TUnpredCost = Probability.getNumerator() * TCycles; 1541 TUnpredCost /= Probability.getDenominator(); 1542 1543 uint32_t Comp = Probability.getDenominator() - Probability.getNumerator(); 1544 unsigned FUnpredCost = Comp * FCycles; 1545 FUnpredCost /= Probability.getDenominator(); 1546 1547 unsigned UnpredCost = TUnpredCost + FUnpredCost; 1548 UnpredCost += 1; // The branch itself 1549 UnpredCost += Subtarget.getMispredictionPenalty() / 10; 1550 1551 return (TCycles + FCycles + TExtra + FExtra) <= UnpredCost; 1552 } 1553 1554 bool 1555 ARMBaseInstrInfo::isProfitableToUnpredicate(MachineBasicBlock &TMBB, 1556 MachineBasicBlock &FMBB) const { 1557 // Reduce false anti-dependencies to let Swift's out-of-order execution 1558 // engine do its thing. 1559 return Subtarget.isSwift(); 1560 } 1561 1562 /// getInstrPredicate - If instruction is predicated, returns its predicate 1563 /// condition, otherwise returns AL. It also returns the condition code 1564 /// register by reference. 1565 ARMCC::CondCodes 1566 llvm::getInstrPredicate(const MachineInstr *MI, unsigned &PredReg) { 1567 int PIdx = MI->findFirstPredOperandIdx(); 1568 if (PIdx == -1) { 1569 PredReg = 0; 1570 return ARMCC::AL; 1571 } 1572 1573 PredReg = MI->getOperand(PIdx+1).getReg(); 1574 return (ARMCC::CondCodes)MI->getOperand(PIdx).getImm(); 1575 } 1576 1577 1578 int llvm::getMatchingCondBranchOpcode(int Opc) { 1579 if (Opc == ARM::B) 1580 return ARM::Bcc; 1581 if (Opc == ARM::tB) 1582 return ARM::tBcc; 1583 if (Opc == ARM::t2B) 1584 return ARM::t2Bcc; 1585 1586 llvm_unreachable("Unknown unconditional branch opcode!"); 1587 } 1588 1589 /// commuteInstruction - Handle commutable instructions. 1590 MachineInstr * 1591 ARMBaseInstrInfo::commuteInstruction(MachineInstr *MI, bool NewMI) const { 1592 switch (MI->getOpcode()) { 1593 case ARM::MOVCCr: 1594 case ARM::t2MOVCCr: { 1595 // MOVCC can be commuted by inverting the condition. 1596 unsigned PredReg = 0; 1597 ARMCC::CondCodes CC = getInstrPredicate(MI, PredReg); 1598 // MOVCC AL can't be inverted. Shouldn't happen. 1599 if (CC == ARMCC::AL || PredReg != ARM::CPSR) 1600 return NULL; 1601 MI = TargetInstrInfoImpl::commuteInstruction(MI, NewMI); 1602 if (!MI) 1603 return NULL; 1604 // After swapping the MOVCC operands, also invert the condition. 1605 MI->getOperand(MI->findFirstPredOperandIdx()) 1606 .setImm(ARMCC::getOppositeCondition(CC)); 1607 return MI; 1608 } 1609 } 1610 return TargetInstrInfoImpl::commuteInstruction(MI, NewMI); 1611 } 1612 1613 /// Identify instructions that can be folded into a MOVCC instruction, and 1614 /// return the defining instruction. 1615 static MachineInstr *canFoldIntoMOVCC(unsigned Reg, 1616 const MachineRegisterInfo &MRI, 1617 const TargetInstrInfo *TII) { 1618 if (!TargetRegisterInfo::isVirtualRegister(Reg)) 1619 return 0; 1620 if (!MRI.hasOneNonDBGUse(Reg)) 1621 return 0; 1622 MachineInstr *MI = MRI.getVRegDef(Reg); 1623 if (!MI) 1624 return 0; 1625 // MI is folded into the MOVCC by predicating it. 1626 if (!MI->isPredicable()) 1627 return 0; 1628 // Check if MI has any non-dead defs or physreg uses. This also detects 1629 // predicated instructions which will be reading CPSR. 1630 for (unsigned i = 1, e = MI->getNumOperands(); i != e; ++i) { 1631 const MachineOperand &MO = MI->getOperand(i); 1632 // Reject frame index operands, PEI can't handle the predicated pseudos. 1633 if (MO.isFI() || MO.isCPI() || MO.isJTI()) 1634 return 0; 1635 if (!MO.isReg()) 1636 continue; 1637 // MI can't have any tied operands, that would conflict with predication. 1638 if (MO.isTied()) 1639 return 0; 1640 if (TargetRegisterInfo::isPhysicalRegister(MO.getReg())) 1641 return 0; 1642 if (MO.isDef() && !MO.isDead()) 1643 return 0; 1644 } 1645 bool DontMoveAcrossStores = true; 1646 if (!MI->isSafeToMove(TII, /* AliasAnalysis = */ 0, DontMoveAcrossStores)) 1647 return 0; 1648 return MI; 1649 } 1650 1651 bool ARMBaseInstrInfo::analyzeSelect(const MachineInstr *MI, 1652 SmallVectorImpl<MachineOperand> &Cond, 1653 unsigned &TrueOp, unsigned &FalseOp, 1654 bool &Optimizable) const { 1655 assert((MI->getOpcode() == ARM::MOVCCr || MI->getOpcode() == ARM::t2MOVCCr) && 1656 "Unknown select instruction"); 1657 // MOVCC operands: 1658 // 0: Def. 1659 // 1: True use. 1660 // 2: False use. 1661 // 3: Condition code. 1662 // 4: CPSR use. 1663 TrueOp = 1; 1664 FalseOp = 2; 1665 Cond.push_back(MI->getOperand(3)); 1666 Cond.push_back(MI->getOperand(4)); 1667 // We can always fold a def. 1668 Optimizable = true; 1669 return false; 1670 } 1671 1672 MachineInstr *ARMBaseInstrInfo::optimizeSelect(MachineInstr *MI, 1673 bool PreferFalse) const { 1674 assert((MI->getOpcode() == ARM::MOVCCr || MI->getOpcode() == ARM::t2MOVCCr) && 1675 "Unknown select instruction"); 1676 const MachineRegisterInfo &MRI = MI->getParent()->getParent()->getRegInfo(); 1677 MachineInstr *DefMI = canFoldIntoMOVCC(MI->getOperand(2).getReg(), MRI, this); 1678 bool Invert = !DefMI; 1679 if (!DefMI) 1680 DefMI = canFoldIntoMOVCC(MI->getOperand(1).getReg(), MRI, this); 1681 if (!DefMI) 1682 return 0; 1683 1684 // Create a new predicated version of DefMI. 1685 // Rfalse is the first use. 1686 MachineInstrBuilder NewMI = BuildMI(*MI->getParent(), MI, MI->getDebugLoc(), 1687 DefMI->getDesc(), 1688 MI->getOperand(0).getReg()); 1689 1690 // Copy all the DefMI operands, excluding its (null) predicate. 1691 const MCInstrDesc &DefDesc = DefMI->getDesc(); 1692 for (unsigned i = 1, e = DefDesc.getNumOperands(); 1693 i != e && !DefDesc.OpInfo[i].isPredicate(); ++i) 1694 NewMI.addOperand(DefMI->getOperand(i)); 1695 1696 unsigned CondCode = MI->getOperand(3).getImm(); 1697 if (Invert) 1698 NewMI.addImm(ARMCC::getOppositeCondition(ARMCC::CondCodes(CondCode))); 1699 else 1700 NewMI.addImm(CondCode); 1701 NewMI.addOperand(MI->getOperand(4)); 1702 1703 // DefMI is not the -S version that sets CPSR, so add an optional %noreg. 1704 if (NewMI->hasOptionalDef()) 1705 AddDefaultCC(NewMI); 1706 1707 // The output register value when the predicate is false is an implicit 1708 // register operand tied to the first def. 1709 // The tie makes the register allocator ensure the FalseReg is allocated the 1710 // same register as operand 0. 1711 MachineOperand FalseReg = MI->getOperand(Invert ? 2 : 1); 1712 FalseReg.setImplicit(); 1713 NewMI->addOperand(FalseReg); 1714 NewMI->tieOperands(0, NewMI->getNumOperands() - 1); 1715 1716 // The caller will erase MI, but not DefMI. 1717 DefMI->eraseFromParent(); 1718 return NewMI; 1719 } 1720 1721 /// Map pseudo instructions that imply an 'S' bit onto real opcodes. Whether the 1722 /// instruction is encoded with an 'S' bit is determined by the optional CPSR 1723 /// def operand. 1724 /// 1725 /// This will go away once we can teach tblgen how to set the optional CPSR def 1726 /// operand itself. 1727 struct AddSubFlagsOpcodePair { 1728 uint16_t PseudoOpc; 1729 uint16_t MachineOpc; 1730 }; 1731 1732 static const AddSubFlagsOpcodePair AddSubFlagsOpcodeMap[] = { 1733 {ARM::ADDSri, ARM::ADDri}, 1734 {ARM::ADDSrr, ARM::ADDrr}, 1735 {ARM::ADDSrsi, ARM::ADDrsi}, 1736 {ARM::ADDSrsr, ARM::ADDrsr}, 1737 1738 {ARM::SUBSri, ARM::SUBri}, 1739 {ARM::SUBSrr, ARM::SUBrr}, 1740 {ARM::SUBSrsi, ARM::SUBrsi}, 1741 {ARM::SUBSrsr, ARM::SUBrsr}, 1742 1743 {ARM::RSBSri, ARM::RSBri}, 1744 {ARM::RSBSrsi, ARM::RSBrsi}, 1745 {ARM::RSBSrsr, ARM::RSBrsr}, 1746 1747 {ARM::t2ADDSri, ARM::t2ADDri}, 1748 {ARM::t2ADDSrr, ARM::t2ADDrr}, 1749 {ARM::t2ADDSrs, ARM::t2ADDrs}, 1750 1751 {ARM::t2SUBSri, ARM::t2SUBri}, 1752 {ARM::t2SUBSrr, ARM::t2SUBrr}, 1753 {ARM::t2SUBSrs, ARM::t2SUBrs}, 1754 1755 {ARM::t2RSBSri, ARM::t2RSBri}, 1756 {ARM::t2RSBSrs, ARM::t2RSBrs}, 1757 }; 1758 1759 unsigned llvm::convertAddSubFlagsOpcode(unsigned OldOpc) { 1760 for (unsigned i = 0, e = array_lengthof(AddSubFlagsOpcodeMap); i != e; ++i) 1761 if (OldOpc == AddSubFlagsOpcodeMap[i].PseudoOpc) 1762 return AddSubFlagsOpcodeMap[i].MachineOpc; 1763 return 0; 1764 } 1765 1766 void llvm::emitARMRegPlusImmediate(MachineBasicBlock &MBB, 1767 MachineBasicBlock::iterator &MBBI, DebugLoc dl, 1768 unsigned DestReg, unsigned BaseReg, int NumBytes, 1769 ARMCC::CondCodes Pred, unsigned PredReg, 1770 const ARMBaseInstrInfo &TII, unsigned MIFlags) { 1771 bool isSub = NumBytes < 0; 1772 if (isSub) NumBytes = -NumBytes; 1773 1774 while (NumBytes) { 1775 unsigned RotAmt = ARM_AM::getSOImmValRotate(NumBytes); 1776 unsigned ThisVal = NumBytes & ARM_AM::rotr32(0xFF, RotAmt); 1777 assert(ThisVal && "Didn't extract field correctly"); 1778 1779 // We will handle these bits from offset, clear them. 1780 NumBytes &= ~ThisVal; 1781 1782 assert(ARM_AM::getSOImmVal(ThisVal) != -1 && "Bit extraction didn't work?"); 1783 1784 // Build the new ADD / SUB. 1785 unsigned Opc = isSub ? ARM::SUBri : ARM::ADDri; 1786 BuildMI(MBB, MBBI, dl, TII.get(Opc), DestReg) 1787 .addReg(BaseReg, RegState::Kill).addImm(ThisVal) 1788 .addImm((unsigned)Pred).addReg(PredReg).addReg(0) 1789 .setMIFlags(MIFlags); 1790 BaseReg = DestReg; 1791 } 1792 } 1793 1794 bool llvm::rewriteARMFrameIndex(MachineInstr &MI, unsigned FrameRegIdx, 1795 unsigned FrameReg, int &Offset, 1796 const ARMBaseInstrInfo &TII) { 1797 unsigned Opcode = MI.getOpcode(); 1798 const MCInstrDesc &Desc = MI.getDesc(); 1799 unsigned AddrMode = (Desc.TSFlags & ARMII::AddrModeMask); 1800 bool isSub = false; 1801 1802 // Memory operands in inline assembly always use AddrMode2. 1803 if (Opcode == ARM::INLINEASM) 1804 AddrMode = ARMII::AddrMode2; 1805 1806 if (Opcode == ARM::ADDri) { 1807 Offset += MI.getOperand(FrameRegIdx+1).getImm(); 1808 if (Offset == 0) { 1809 // Turn it into a move. 1810 MI.setDesc(TII.get(ARM::MOVr)); 1811 MI.getOperand(FrameRegIdx).ChangeToRegister(FrameReg, false); 1812 MI.RemoveOperand(FrameRegIdx+1); 1813 Offset = 0; 1814 return true; 1815 } else if (Offset < 0) { 1816 Offset = -Offset; 1817 isSub = true; 1818 MI.setDesc(TII.get(ARM::SUBri)); 1819 } 1820 1821 // Common case: small offset, fits into instruction. 1822 if (ARM_AM::getSOImmVal(Offset) != -1) { 1823 // Replace the FrameIndex with sp / fp 1824 MI.getOperand(FrameRegIdx).ChangeToRegister(FrameReg, false); 1825 MI.getOperand(FrameRegIdx+1).ChangeToImmediate(Offset); 1826 Offset = 0; 1827 return true; 1828 } 1829 1830 // Otherwise, pull as much of the immedidate into this ADDri/SUBri 1831 // as possible. 1832 unsigned RotAmt = ARM_AM::getSOImmValRotate(Offset); 1833 unsigned ThisImmVal = Offset & ARM_AM::rotr32(0xFF, RotAmt); 1834 1835 // We will handle these bits from offset, clear them. 1836 Offset &= ~ThisImmVal; 1837 1838 // Get the properly encoded SOImmVal field. 1839 assert(ARM_AM::getSOImmVal(ThisImmVal) != -1 && 1840 "Bit extraction didn't work?"); 1841 MI.getOperand(FrameRegIdx+1).ChangeToImmediate(ThisImmVal); 1842 } else { 1843 unsigned ImmIdx = 0; 1844 int InstrOffs = 0; 1845 unsigned NumBits = 0; 1846 unsigned Scale = 1; 1847 switch (AddrMode) { 1848 case ARMII::AddrMode_i12: { 1849 ImmIdx = FrameRegIdx + 1; 1850 InstrOffs = MI.getOperand(ImmIdx).getImm(); 1851 NumBits = 12; 1852 break; 1853 } 1854 case ARMII::AddrMode2: { 1855 ImmIdx = FrameRegIdx+2; 1856 InstrOffs = ARM_AM::getAM2Offset(MI.getOperand(ImmIdx).getImm()); 1857 if (ARM_AM::getAM2Op(MI.getOperand(ImmIdx).getImm()) == ARM_AM::sub) 1858 InstrOffs *= -1; 1859 NumBits = 12; 1860 break; 1861 } 1862 case ARMII::AddrMode3: { 1863 ImmIdx = FrameRegIdx+2; 1864 InstrOffs = ARM_AM::getAM3Offset(MI.getOperand(ImmIdx).getImm()); 1865 if (ARM_AM::getAM3Op(MI.getOperand(ImmIdx).getImm()) == ARM_AM::sub) 1866 InstrOffs *= -1; 1867 NumBits = 8; 1868 break; 1869 } 1870 case ARMII::AddrMode4: 1871 case ARMII::AddrMode6: 1872 // Can't fold any offset even if it's zero. 1873 return false; 1874 case ARMII::AddrMode5: { 1875 ImmIdx = FrameRegIdx+1; 1876 InstrOffs = ARM_AM::getAM5Offset(MI.getOperand(ImmIdx).getImm()); 1877 if (ARM_AM::getAM5Op(MI.getOperand(ImmIdx).getImm()) == ARM_AM::sub) 1878 InstrOffs *= -1; 1879 NumBits = 8; 1880 Scale = 4; 1881 break; 1882 } 1883 default: 1884 llvm_unreachable("Unsupported addressing mode!"); 1885 } 1886 1887 Offset += InstrOffs * Scale; 1888 assert((Offset & (Scale-1)) == 0 && "Can't encode this offset!"); 1889 if (Offset < 0) { 1890 Offset = -Offset; 1891 isSub = true; 1892 } 1893 1894 // Attempt to fold address comp. if opcode has offset bits 1895 if (NumBits > 0) { 1896 // Common case: small offset, fits into instruction. 1897 MachineOperand &ImmOp = MI.getOperand(ImmIdx); 1898 int ImmedOffset = Offset / Scale; 1899 unsigned Mask = (1 << NumBits) - 1; 1900 if ((unsigned)Offset <= Mask * Scale) { 1901 // Replace the FrameIndex with sp 1902 MI.getOperand(FrameRegIdx).ChangeToRegister(FrameReg, false); 1903 // FIXME: When addrmode2 goes away, this will simplify (like the 1904 // T2 version), as the LDR.i12 versions don't need the encoding 1905 // tricks for the offset value. 1906 if (isSub) { 1907 if (AddrMode == ARMII::AddrMode_i12) 1908 ImmedOffset = -ImmedOffset; 1909 else 1910 ImmedOffset |= 1 << NumBits; 1911 } 1912 ImmOp.ChangeToImmediate(ImmedOffset); 1913 Offset = 0; 1914 return true; 1915 } 1916 1917 // Otherwise, it didn't fit. Pull in what we can to simplify the immed. 1918 ImmedOffset = ImmedOffset & Mask; 1919 if (isSub) { 1920 if (AddrMode == ARMII::AddrMode_i12) 1921 ImmedOffset = -ImmedOffset; 1922 else 1923 ImmedOffset |= 1 << NumBits; 1924 } 1925 ImmOp.ChangeToImmediate(ImmedOffset); 1926 Offset &= ~(Mask*Scale); 1927 } 1928 } 1929 1930 Offset = (isSub) ? -Offset : Offset; 1931 return Offset == 0; 1932 } 1933 1934 /// analyzeCompare - For a comparison instruction, return the source registers 1935 /// in SrcReg and SrcReg2 if having two register operands, and the value it 1936 /// compares against in CmpValue. Return true if the comparison instruction 1937 /// can be analyzed. 1938 bool ARMBaseInstrInfo:: 1939 analyzeCompare(const MachineInstr *MI, unsigned &SrcReg, unsigned &SrcReg2, 1940 int &CmpMask, int &CmpValue) const { 1941 switch (MI->getOpcode()) { 1942 default: break; 1943 case ARM::CMPri: 1944 case ARM::t2CMPri: 1945 SrcReg = MI->getOperand(0).getReg(); 1946 SrcReg2 = 0; 1947 CmpMask = ~0; 1948 CmpValue = MI->getOperand(1).getImm(); 1949 return true; 1950 case ARM::CMPrr: 1951 case ARM::t2CMPrr: 1952 SrcReg = MI->getOperand(0).getReg(); 1953 SrcReg2 = MI->getOperand(1).getReg(); 1954 CmpMask = ~0; 1955 CmpValue = 0; 1956 return true; 1957 case ARM::TSTri: 1958 case ARM::t2TSTri: 1959 SrcReg = MI->getOperand(0).getReg(); 1960 SrcReg2 = 0; 1961 CmpMask = MI->getOperand(1).getImm(); 1962 CmpValue = 0; 1963 return true; 1964 } 1965 1966 return false; 1967 } 1968 1969 /// isSuitableForMask - Identify a suitable 'and' instruction that 1970 /// operates on the given source register and applies the same mask 1971 /// as a 'tst' instruction. Provide a limited look-through for copies. 1972 /// When successful, MI will hold the found instruction. 1973 static bool isSuitableForMask(MachineInstr *&MI, unsigned SrcReg, 1974 int CmpMask, bool CommonUse) { 1975 switch (MI->getOpcode()) { 1976 case ARM::ANDri: 1977 case ARM::t2ANDri: 1978 if (CmpMask != MI->getOperand(2).getImm()) 1979 return false; 1980 if (SrcReg == MI->getOperand(CommonUse ? 1 : 0).getReg()) 1981 return true; 1982 break; 1983 case ARM::COPY: { 1984 // Walk down one instruction which is potentially an 'and'. 1985 const MachineInstr &Copy = *MI; 1986 MachineBasicBlock::iterator AND( 1987 llvm::next(MachineBasicBlock::iterator(MI))); 1988 if (AND == MI->getParent()->end()) return false; 1989 MI = AND; 1990 return isSuitableForMask(MI, Copy.getOperand(0).getReg(), 1991 CmpMask, true); 1992 } 1993 } 1994 1995 return false; 1996 } 1997 1998 /// getSwappedCondition - assume the flags are set by MI(a,b), return 1999 /// the condition code if we modify the instructions such that flags are 2000 /// set by MI(b,a). 2001 inline static ARMCC::CondCodes getSwappedCondition(ARMCC::CondCodes CC) { 2002 switch (CC) { 2003 default: return ARMCC::AL; 2004 case ARMCC::EQ: return ARMCC::EQ; 2005 case ARMCC::NE: return ARMCC::NE; 2006 case ARMCC::HS: return ARMCC::LS; 2007 case ARMCC::LO: return ARMCC::HI; 2008 case ARMCC::HI: return ARMCC::LO; 2009 case ARMCC::LS: return ARMCC::HS; 2010 case ARMCC::GE: return ARMCC::LE; 2011 case ARMCC::LT: return ARMCC::GT; 2012 case ARMCC::GT: return ARMCC::LT; 2013 case ARMCC::LE: return ARMCC::GE; 2014 } 2015 } 2016 2017 /// isRedundantFlagInstr - check whether the first instruction, whose only 2018 /// purpose is to update flags, can be made redundant. 2019 /// CMPrr can be made redundant by SUBrr if the operands are the same. 2020 /// CMPri can be made redundant by SUBri if the operands are the same. 2021 /// This function can be extended later on. 2022 inline static bool isRedundantFlagInstr(MachineInstr *CmpI, unsigned SrcReg, 2023 unsigned SrcReg2, int ImmValue, 2024 MachineInstr *OI) { 2025 if ((CmpI->getOpcode() == ARM::CMPrr || 2026 CmpI->getOpcode() == ARM::t2CMPrr) && 2027 (OI->getOpcode() == ARM::SUBrr || 2028 OI->getOpcode() == ARM::t2SUBrr) && 2029 ((OI->getOperand(1).getReg() == SrcReg && 2030 OI->getOperand(2).getReg() == SrcReg2) || 2031 (OI->getOperand(1).getReg() == SrcReg2 && 2032 OI->getOperand(2).getReg() == SrcReg))) 2033 return true; 2034 2035 if ((CmpI->getOpcode() == ARM::CMPri || 2036 CmpI->getOpcode() == ARM::t2CMPri) && 2037 (OI->getOpcode() == ARM::SUBri || 2038 OI->getOpcode() == ARM::t2SUBri) && 2039 OI->getOperand(1).getReg() == SrcReg && 2040 OI->getOperand(2).getImm() == ImmValue) 2041 return true; 2042 return false; 2043 } 2044 2045 /// optimizeCompareInstr - Convert the instruction supplying the argument to the 2046 /// comparison into one that sets the zero bit in the flags register; 2047 /// Remove a redundant Compare instruction if an earlier instruction can set the 2048 /// flags in the same way as Compare. 2049 /// E.g. SUBrr(r1,r2) and CMPrr(r1,r2). We also handle the case where two 2050 /// operands are swapped: SUBrr(r1,r2) and CMPrr(r2,r1), by updating the 2051 /// condition code of instructions which use the flags. 2052 bool ARMBaseInstrInfo:: 2053 optimizeCompareInstr(MachineInstr *CmpInstr, unsigned SrcReg, unsigned SrcReg2, 2054 int CmpMask, int CmpValue, 2055 const MachineRegisterInfo *MRI) const { 2056 // Get the unique definition of SrcReg. 2057 MachineInstr *MI = MRI->getUniqueVRegDef(SrcReg); 2058 if (!MI) return false; 2059 2060 // Masked compares sometimes use the same register as the corresponding 'and'. 2061 if (CmpMask != ~0) { 2062 if (!isSuitableForMask(MI, SrcReg, CmpMask, false) || isPredicated(MI)) { 2063 MI = 0; 2064 for (MachineRegisterInfo::use_iterator UI = MRI->use_begin(SrcReg), 2065 UE = MRI->use_end(); UI != UE; ++UI) { 2066 if (UI->getParent() != CmpInstr->getParent()) continue; 2067 MachineInstr *PotentialAND = &*UI; 2068 if (!isSuitableForMask(PotentialAND, SrcReg, CmpMask, true) || 2069 isPredicated(PotentialAND)) 2070 continue; 2071 MI = PotentialAND; 2072 break; 2073 } 2074 if (!MI) return false; 2075 } 2076 } 2077 2078 // Get ready to iterate backward from CmpInstr. 2079 MachineBasicBlock::iterator I = CmpInstr, E = MI, 2080 B = CmpInstr->getParent()->begin(); 2081 2082 // Early exit if CmpInstr is at the beginning of the BB. 2083 if (I == B) return false; 2084 2085 // There are two possible candidates which can be changed to set CPSR: 2086 // One is MI, the other is a SUB instruction. 2087 // For CMPrr(r1,r2), we are looking for SUB(r1,r2) or SUB(r2,r1). 2088 // For CMPri(r1, CmpValue), we are looking for SUBri(r1, CmpValue). 2089 MachineInstr *Sub = NULL; 2090 if (SrcReg2 != 0) 2091 // MI is not a candidate for CMPrr. 2092 MI = NULL; 2093 else if (MI->getParent() != CmpInstr->getParent() || CmpValue != 0) { 2094 // Conservatively refuse to convert an instruction which isn't in the same 2095 // BB as the comparison. 2096 // For CMPri, we need to check Sub, thus we can't return here. 2097 if (CmpInstr->getOpcode() == ARM::CMPri || 2098 CmpInstr->getOpcode() == ARM::t2CMPri) 2099 MI = NULL; 2100 else 2101 return false; 2102 } 2103 2104 // Check that CPSR isn't set between the comparison instruction and the one we 2105 // want to change. At the same time, search for Sub. 2106 const TargetRegisterInfo *TRI = &getRegisterInfo(); 2107 --I; 2108 for (; I != E; --I) { 2109 const MachineInstr &Instr = *I; 2110 2111 if (Instr.modifiesRegister(ARM::CPSR, TRI) || 2112 Instr.readsRegister(ARM::CPSR, TRI)) 2113 // This instruction modifies or uses CPSR after the one we want to 2114 // change. We can't do this transformation. 2115 return false; 2116 2117 // Check whether CmpInstr can be made redundant by the current instruction. 2118 if (isRedundantFlagInstr(CmpInstr, SrcReg, SrcReg2, CmpValue, &*I)) { 2119 Sub = &*I; 2120 break; 2121 } 2122 2123 if (I == B) 2124 // The 'and' is below the comparison instruction. 2125 return false; 2126 } 2127 2128 // Return false if no candidates exist. 2129 if (!MI && !Sub) 2130 return false; 2131 2132 // The single candidate is called MI. 2133 if (!MI) MI = Sub; 2134 2135 // We can't use a predicated instruction - it doesn't always write the flags. 2136 if (isPredicated(MI)) 2137 return false; 2138 2139 switch (MI->getOpcode()) { 2140 default: break; 2141 case ARM::RSBrr: 2142 case ARM::RSBri: 2143 case ARM::RSCrr: 2144 case ARM::RSCri: 2145 case ARM::ADDrr: 2146 case ARM::ADDri: 2147 case ARM::ADCrr: 2148 case ARM::ADCri: 2149 case ARM::SUBrr: 2150 case ARM::SUBri: 2151 case ARM::SBCrr: 2152 case ARM::SBCri: 2153 case ARM::t2RSBri: 2154 case ARM::t2ADDrr: 2155 case ARM::t2ADDri: 2156 case ARM::t2ADCrr: 2157 case ARM::t2ADCri: 2158 case ARM::t2SUBrr: 2159 case ARM::t2SUBri: 2160 case ARM::t2SBCrr: 2161 case ARM::t2SBCri: 2162 case ARM::ANDrr: 2163 case ARM::ANDri: 2164 case ARM::t2ANDrr: 2165 case ARM::t2ANDri: 2166 case ARM::ORRrr: 2167 case ARM::ORRri: 2168 case ARM::t2ORRrr: 2169 case ARM::t2ORRri: 2170 case ARM::EORrr: 2171 case ARM::EORri: 2172 case ARM::t2EORrr: 2173 case ARM::t2EORri: { 2174 // Scan forward for the use of CPSR 2175 // When checking against MI: if it's a conditional code requires 2176 // checking of V bit, then this is not safe to do. 2177 // It is safe to remove CmpInstr if CPSR is redefined or killed. 2178 // If we are done with the basic block, we need to check whether CPSR is 2179 // live-out. 2180 SmallVector<std::pair<MachineOperand*, ARMCC::CondCodes>, 4> 2181 OperandsToUpdate; 2182 bool isSafe = false; 2183 I = CmpInstr; 2184 E = CmpInstr->getParent()->end(); 2185 while (!isSafe && ++I != E) { 2186 const MachineInstr &Instr = *I; 2187 for (unsigned IO = 0, EO = Instr.getNumOperands(); 2188 !isSafe && IO != EO; ++IO) { 2189 const MachineOperand &MO = Instr.getOperand(IO); 2190 if (MO.isRegMask() && MO.clobbersPhysReg(ARM::CPSR)) { 2191 isSafe = true; 2192 break; 2193 } 2194 if (!MO.isReg() || MO.getReg() != ARM::CPSR) 2195 continue; 2196 if (MO.isDef()) { 2197 isSafe = true; 2198 break; 2199 } 2200 // Condition code is after the operand before CPSR. 2201 ARMCC::CondCodes CC = (ARMCC::CondCodes)Instr.getOperand(IO-1).getImm(); 2202 if (Sub) { 2203 ARMCC::CondCodes NewCC = getSwappedCondition(CC); 2204 if (NewCC == ARMCC::AL) 2205 return false; 2206 // If we have SUB(r1, r2) and CMP(r2, r1), the condition code based 2207 // on CMP needs to be updated to be based on SUB. 2208 // Push the condition code operands to OperandsToUpdate. 2209 // If it is safe to remove CmpInstr, the condition code of these 2210 // operands will be modified. 2211 if (SrcReg2 != 0 && Sub->getOperand(1).getReg() == SrcReg2 && 2212 Sub->getOperand(2).getReg() == SrcReg) 2213 OperandsToUpdate.push_back(std::make_pair(&((*I).getOperand(IO-1)), 2214 NewCC)); 2215 } 2216 else 2217 switch (CC) { 2218 default: 2219 // CPSR can be used multiple times, we should continue. 2220 break; 2221 case ARMCC::VS: 2222 case ARMCC::VC: 2223 case ARMCC::GE: 2224 case ARMCC::LT: 2225 case ARMCC::GT: 2226 case ARMCC::LE: 2227 return false; 2228 } 2229 } 2230 } 2231 2232 // If CPSR is not killed nor re-defined, we should check whether it is 2233 // live-out. If it is live-out, do not optimize. 2234 if (!isSafe) { 2235 MachineBasicBlock *MBB = CmpInstr->getParent(); 2236 for (MachineBasicBlock::succ_iterator SI = MBB->succ_begin(), 2237 SE = MBB->succ_end(); SI != SE; ++SI) 2238 if ((*SI)->isLiveIn(ARM::CPSR)) 2239 return false; 2240 } 2241 2242 // Toggle the optional operand to CPSR. 2243 MI->getOperand(5).setReg(ARM::CPSR); 2244 MI->getOperand(5).setIsDef(true); 2245 assert(!isPredicated(MI) && "Can't use flags from predicated instruction"); 2246 CmpInstr->eraseFromParent(); 2247 2248 // Modify the condition code of operands in OperandsToUpdate. 2249 // Since we have SUB(r1, r2) and CMP(r2, r1), the condition code needs to 2250 // be changed from r2 > r1 to r1 < r2, from r2 < r1 to r1 > r2, etc. 2251 for (unsigned i = 0, e = OperandsToUpdate.size(); i < e; i++) 2252 OperandsToUpdate[i].first->setImm(OperandsToUpdate[i].second); 2253 return true; 2254 } 2255 } 2256 2257 return false; 2258 } 2259 2260 bool ARMBaseInstrInfo::FoldImmediate(MachineInstr *UseMI, 2261 MachineInstr *DefMI, unsigned Reg, 2262 MachineRegisterInfo *MRI) const { 2263 // Fold large immediates into add, sub, or, xor. 2264 unsigned DefOpc = DefMI->getOpcode(); 2265 if (DefOpc != ARM::t2MOVi32imm && DefOpc != ARM::MOVi32imm) 2266 return false; 2267 if (!DefMI->getOperand(1).isImm()) 2268 // Could be t2MOVi32imm <ga:xx> 2269 return false; 2270 2271 if (!MRI->hasOneNonDBGUse(Reg)) 2272 return false; 2273 2274 const MCInstrDesc &DefMCID = DefMI->getDesc(); 2275 if (DefMCID.hasOptionalDef()) { 2276 unsigned NumOps = DefMCID.getNumOperands(); 2277 const MachineOperand &MO = DefMI->getOperand(NumOps-1); 2278 if (MO.getReg() == ARM::CPSR && !MO.isDead()) 2279 // If DefMI defines CPSR and it is not dead, it's obviously not safe 2280 // to delete DefMI. 2281 return false; 2282 } 2283 2284 const MCInstrDesc &UseMCID = UseMI->getDesc(); 2285 if (UseMCID.hasOptionalDef()) { 2286 unsigned NumOps = UseMCID.getNumOperands(); 2287 if (UseMI->getOperand(NumOps-1).getReg() == ARM::CPSR) 2288 // If the instruction sets the flag, do not attempt this optimization 2289 // since it may change the semantics of the code. 2290 return false; 2291 } 2292 2293 unsigned UseOpc = UseMI->getOpcode(); 2294 unsigned NewUseOpc = 0; 2295 uint32_t ImmVal = (uint32_t)DefMI->getOperand(1).getImm(); 2296 uint32_t SOImmValV1 = 0, SOImmValV2 = 0; 2297 bool Commute = false; 2298 switch (UseOpc) { 2299 default: return false; 2300 case ARM::SUBrr: 2301 case ARM::ADDrr: 2302 case ARM::ORRrr: 2303 case ARM::EORrr: 2304 case ARM::t2SUBrr: 2305 case ARM::t2ADDrr: 2306 case ARM::t2ORRrr: 2307 case ARM::t2EORrr: { 2308 Commute = UseMI->getOperand(2).getReg() != Reg; 2309 switch (UseOpc) { 2310 default: break; 2311 case ARM::SUBrr: { 2312 if (Commute) 2313 return false; 2314 ImmVal = -ImmVal; 2315 NewUseOpc = ARM::SUBri; 2316 // Fallthrough 2317 } 2318 case ARM::ADDrr: 2319 case ARM::ORRrr: 2320 case ARM::EORrr: { 2321 if (!ARM_AM::isSOImmTwoPartVal(ImmVal)) 2322 return false; 2323 SOImmValV1 = (uint32_t)ARM_AM::getSOImmTwoPartFirst(ImmVal); 2324 SOImmValV2 = (uint32_t)ARM_AM::getSOImmTwoPartSecond(ImmVal); 2325 switch (UseOpc) { 2326 default: break; 2327 case ARM::ADDrr: NewUseOpc = ARM::ADDri; break; 2328 case ARM::ORRrr: NewUseOpc = ARM::ORRri; break; 2329 case ARM::EORrr: NewUseOpc = ARM::EORri; break; 2330 } 2331 break; 2332 } 2333 case ARM::t2SUBrr: { 2334 if (Commute) 2335 return false; 2336 ImmVal = -ImmVal; 2337 NewUseOpc = ARM::t2SUBri; 2338 // Fallthrough 2339 } 2340 case ARM::t2ADDrr: 2341 case ARM::t2ORRrr: 2342 case ARM::t2EORrr: { 2343 if (!ARM_AM::isT2SOImmTwoPartVal(ImmVal)) 2344 return false; 2345 SOImmValV1 = (uint32_t)ARM_AM::getT2SOImmTwoPartFirst(ImmVal); 2346 SOImmValV2 = (uint32_t)ARM_AM::getT2SOImmTwoPartSecond(ImmVal); 2347 switch (UseOpc) { 2348 default: break; 2349 case ARM::t2ADDrr: NewUseOpc = ARM::t2ADDri; break; 2350 case ARM::t2ORRrr: NewUseOpc = ARM::t2ORRri; break; 2351 case ARM::t2EORrr: NewUseOpc = ARM::t2EORri; break; 2352 } 2353 break; 2354 } 2355 } 2356 } 2357 } 2358 2359 unsigned OpIdx = Commute ? 2 : 1; 2360 unsigned Reg1 = UseMI->getOperand(OpIdx).getReg(); 2361 bool isKill = UseMI->getOperand(OpIdx).isKill(); 2362 unsigned NewReg = MRI->createVirtualRegister(MRI->getRegClass(Reg)); 2363 AddDefaultCC(AddDefaultPred(BuildMI(*UseMI->getParent(), 2364 UseMI, UseMI->getDebugLoc(), 2365 get(NewUseOpc), NewReg) 2366 .addReg(Reg1, getKillRegState(isKill)) 2367 .addImm(SOImmValV1))); 2368 UseMI->setDesc(get(NewUseOpc)); 2369 UseMI->getOperand(1).setReg(NewReg); 2370 UseMI->getOperand(1).setIsKill(); 2371 UseMI->getOperand(2).ChangeToImmediate(SOImmValV2); 2372 DefMI->eraseFromParent(); 2373 return true; 2374 } 2375 2376 static unsigned getNumMicroOpsSwiftLdSt(const InstrItineraryData *ItinData, 2377 const MachineInstr *MI) { 2378 switch (MI->getOpcode()) { 2379 default: { 2380 const MCInstrDesc &Desc = MI->getDesc(); 2381 int UOps = ItinData->getNumMicroOps(Desc.getSchedClass()); 2382 assert(UOps >= 0 && "bad # UOps"); 2383 return UOps; 2384 } 2385 2386 case ARM::LDRrs: 2387 case ARM::LDRBrs: 2388 case ARM::STRrs: 2389 case ARM::STRBrs: { 2390 unsigned ShOpVal = MI->getOperand(3).getImm(); 2391 bool isSub = ARM_AM::getAM2Op(ShOpVal) == ARM_AM::sub; 2392 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 2393 if (!isSub && 2394 (ShImm == 0 || 2395 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 2396 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl))) 2397 return 1; 2398 return 2; 2399 } 2400 2401 case ARM::LDRH: 2402 case ARM::STRH: { 2403 if (!MI->getOperand(2).getReg()) 2404 return 1; 2405 2406 unsigned ShOpVal = MI->getOperand(3).getImm(); 2407 bool isSub = ARM_AM::getAM2Op(ShOpVal) == ARM_AM::sub; 2408 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 2409 if (!isSub && 2410 (ShImm == 0 || 2411 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 2412 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl))) 2413 return 1; 2414 return 2; 2415 } 2416 2417 case ARM::LDRSB: 2418 case ARM::LDRSH: 2419 return (ARM_AM::getAM3Op(MI->getOperand(3).getImm()) == ARM_AM::sub) ? 3:2; 2420 2421 case ARM::LDRSB_POST: 2422 case ARM::LDRSH_POST: { 2423 unsigned Rt = MI->getOperand(0).getReg(); 2424 unsigned Rm = MI->getOperand(3).getReg(); 2425 return (Rt == Rm) ? 4 : 3; 2426 } 2427 2428 case ARM::LDR_PRE_REG: 2429 case ARM::LDRB_PRE_REG: { 2430 unsigned Rt = MI->getOperand(0).getReg(); 2431 unsigned Rm = MI->getOperand(3).getReg(); 2432 if (Rt == Rm) 2433 return 3; 2434 unsigned ShOpVal = MI->getOperand(4).getImm(); 2435 bool isSub = ARM_AM::getAM2Op(ShOpVal) == ARM_AM::sub; 2436 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 2437 if (!isSub && 2438 (ShImm == 0 || 2439 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 2440 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl))) 2441 return 2; 2442 return 3; 2443 } 2444 2445 case ARM::STR_PRE_REG: 2446 case ARM::STRB_PRE_REG: { 2447 unsigned ShOpVal = MI->getOperand(4).getImm(); 2448 bool isSub = ARM_AM::getAM2Op(ShOpVal) == ARM_AM::sub; 2449 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 2450 if (!isSub && 2451 (ShImm == 0 || 2452 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 2453 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl))) 2454 return 2; 2455 return 3; 2456 } 2457 2458 case ARM::LDRH_PRE: 2459 case ARM::STRH_PRE: { 2460 unsigned Rt = MI->getOperand(0).getReg(); 2461 unsigned Rm = MI->getOperand(3).getReg(); 2462 if (!Rm) 2463 return 2; 2464 if (Rt == Rm) 2465 return 3; 2466 return (ARM_AM::getAM3Op(MI->getOperand(4).getImm()) == ARM_AM::sub) 2467 ? 3 : 2; 2468 } 2469 2470 case ARM::LDR_POST_REG: 2471 case ARM::LDRB_POST_REG: 2472 case ARM::LDRH_POST: { 2473 unsigned Rt = MI->getOperand(0).getReg(); 2474 unsigned Rm = MI->getOperand(3).getReg(); 2475 return (Rt == Rm) ? 3 : 2; 2476 } 2477 2478 case ARM::LDR_PRE_IMM: 2479 case ARM::LDRB_PRE_IMM: 2480 case ARM::LDR_POST_IMM: 2481 case ARM::LDRB_POST_IMM: 2482 case ARM::STRB_POST_IMM: 2483 case ARM::STRB_POST_REG: 2484 case ARM::STRB_PRE_IMM: 2485 case ARM::STRH_POST: 2486 case ARM::STR_POST_IMM: 2487 case ARM::STR_POST_REG: 2488 case ARM::STR_PRE_IMM: 2489 return 2; 2490 2491 case ARM::LDRSB_PRE: 2492 case ARM::LDRSH_PRE: { 2493 unsigned Rm = MI->getOperand(3).getReg(); 2494 if (Rm == 0) 2495 return 3; 2496 unsigned Rt = MI->getOperand(0).getReg(); 2497 if (Rt == Rm) 2498 return 4; 2499 unsigned ShOpVal = MI->getOperand(4).getImm(); 2500 bool isSub = ARM_AM::getAM2Op(ShOpVal) == ARM_AM::sub; 2501 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 2502 if (!isSub && 2503 (ShImm == 0 || 2504 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 2505 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl))) 2506 return 3; 2507 return 4; 2508 } 2509 2510 case ARM::LDRD: { 2511 unsigned Rt = MI->getOperand(0).getReg(); 2512 unsigned Rn = MI->getOperand(2).getReg(); 2513 unsigned Rm = MI->getOperand(3).getReg(); 2514 if (Rm) 2515 return (ARM_AM::getAM3Op(MI->getOperand(4).getImm()) == ARM_AM::sub) ?4:3; 2516 return (Rt == Rn) ? 3 : 2; 2517 } 2518 2519 case ARM::STRD: { 2520 unsigned Rm = MI->getOperand(3).getReg(); 2521 if (Rm) 2522 return (ARM_AM::getAM3Op(MI->getOperand(4).getImm()) == ARM_AM::sub) ?4:3; 2523 return 2; 2524 } 2525 2526 case ARM::LDRD_POST: 2527 case ARM::t2LDRD_POST: 2528 return 3; 2529 2530 case ARM::STRD_POST: 2531 case ARM::t2STRD_POST: 2532 return 4; 2533 2534 case ARM::LDRD_PRE: { 2535 unsigned Rt = MI->getOperand(0).getReg(); 2536 unsigned Rn = MI->getOperand(3).getReg(); 2537 unsigned Rm = MI->getOperand(4).getReg(); 2538 if (Rm) 2539 return (ARM_AM::getAM3Op(MI->getOperand(5).getImm()) == ARM_AM::sub) ?5:4; 2540 return (Rt == Rn) ? 4 : 3; 2541 } 2542 2543 case ARM::t2LDRD_PRE: { 2544 unsigned Rt = MI->getOperand(0).getReg(); 2545 unsigned Rn = MI->getOperand(3).getReg(); 2546 return (Rt == Rn) ? 4 : 3; 2547 } 2548 2549 case ARM::STRD_PRE: { 2550 unsigned Rm = MI->getOperand(4).getReg(); 2551 if (Rm) 2552 return (ARM_AM::getAM3Op(MI->getOperand(5).getImm()) == ARM_AM::sub) ?5:4; 2553 return 3; 2554 } 2555 2556 case ARM::t2STRD_PRE: 2557 return 3; 2558 2559 case ARM::t2LDR_POST: 2560 case ARM::t2LDRB_POST: 2561 case ARM::t2LDRB_PRE: 2562 case ARM::t2LDRSBi12: 2563 case ARM::t2LDRSBi8: 2564 case ARM::t2LDRSBpci: 2565 case ARM::t2LDRSBs: 2566 case ARM::t2LDRH_POST: 2567 case ARM::t2LDRH_PRE: 2568 case ARM::t2LDRSBT: 2569 case ARM::t2LDRSB_POST: 2570 case ARM::t2LDRSB_PRE: 2571 case ARM::t2LDRSH_POST: 2572 case ARM::t2LDRSH_PRE: 2573 case ARM::t2LDRSHi12: 2574 case ARM::t2LDRSHi8: 2575 case ARM::t2LDRSHpci: 2576 case ARM::t2LDRSHs: 2577 return 2; 2578 2579 case ARM::t2LDRDi8: { 2580 unsigned Rt = MI->getOperand(0).getReg(); 2581 unsigned Rn = MI->getOperand(2).getReg(); 2582 return (Rt == Rn) ? 3 : 2; 2583 } 2584 2585 case ARM::t2STRB_POST: 2586 case ARM::t2STRB_PRE: 2587 case ARM::t2STRBs: 2588 case ARM::t2STRDi8: 2589 case ARM::t2STRH_POST: 2590 case ARM::t2STRH_PRE: 2591 case ARM::t2STRHs: 2592 case ARM::t2STR_POST: 2593 case ARM::t2STR_PRE: 2594 case ARM::t2STRs: 2595 return 2; 2596 } 2597 } 2598 2599 // Return the number of 32-bit words loaded by LDM or stored by STM. If this 2600 // can't be easily determined return 0 (missing MachineMemOperand). 2601 // 2602 // FIXME: The current MachineInstr design does not support relying on machine 2603 // mem operands to determine the width of a memory access. Instead, we expect 2604 // the target to provide this information based on the instruction opcode and 2605 // operands. However, using MachineMemOperand is a the best solution now for 2606 // two reasons: 2607 // 2608 // 1) getNumMicroOps tries to infer LDM memory width from the total number of MI 2609 // operands. This is much more dangerous than using the MachineMemOperand 2610 // sizes because CodeGen passes can insert/remove optional machine operands. In 2611 // fact, it's totally incorrect for preRA passes and appears to be wrong for 2612 // postRA passes as well. 2613 // 2614 // 2) getNumLDMAddresses is only used by the scheduling machine model and any 2615 // machine model that calls this should handle the unknown (zero size) case. 2616 // 2617 // Long term, we should require a target hook that verifies MachineMemOperand 2618 // sizes during MC lowering. That target hook should be local to MC lowering 2619 // because we can't ensure that it is aware of other MI forms. Doing this will 2620 // ensure that MachineMemOperands are correctly propagated through all passes. 2621 unsigned ARMBaseInstrInfo::getNumLDMAddresses(const MachineInstr *MI) const { 2622 unsigned Size = 0; 2623 for (MachineInstr::mmo_iterator I = MI->memoperands_begin(), 2624 E = MI->memoperands_end(); I != E; ++I) { 2625 Size += (*I)->getSize(); 2626 } 2627 return Size / 4; 2628 } 2629 2630 unsigned 2631 ARMBaseInstrInfo::getNumMicroOps(const InstrItineraryData *ItinData, 2632 const MachineInstr *MI) const { 2633 if (!ItinData || ItinData->isEmpty()) 2634 return 1; 2635 2636 const MCInstrDesc &Desc = MI->getDesc(); 2637 unsigned Class = Desc.getSchedClass(); 2638 int ItinUOps = ItinData->getNumMicroOps(Class); 2639 if (ItinUOps >= 0) { 2640 if (Subtarget.isSwift() && (Desc.mayLoad() || Desc.mayStore())) 2641 return getNumMicroOpsSwiftLdSt(ItinData, MI); 2642 2643 return ItinUOps; 2644 } 2645 2646 unsigned Opc = MI->getOpcode(); 2647 switch (Opc) { 2648 default: 2649 llvm_unreachable("Unexpected multi-uops instruction!"); 2650 case ARM::VLDMQIA: 2651 case ARM::VSTMQIA: 2652 return 2; 2653 2654 // The number of uOps for load / store multiple are determined by the number 2655 // registers. 2656 // 2657 // On Cortex-A8, each pair of register loads / stores can be scheduled on the 2658 // same cycle. The scheduling for the first load / store must be done 2659 // separately by assuming the address is not 64-bit aligned. 2660 // 2661 // On Cortex-A9, the formula is simply (#reg / 2) + (#reg % 2). If the address 2662 // is not 64-bit aligned, then AGU would take an extra cycle. For VFP / NEON 2663 // load / store multiple, the formula is (#reg / 2) + (#reg % 2) + 1. 2664 case ARM::VLDMDIA: 2665 case ARM::VLDMDIA_UPD: 2666 case ARM::VLDMDDB_UPD: 2667 case ARM::VLDMSIA: 2668 case ARM::VLDMSIA_UPD: 2669 case ARM::VLDMSDB_UPD: 2670 case ARM::VSTMDIA: 2671 case ARM::VSTMDIA_UPD: 2672 case ARM::VSTMDDB_UPD: 2673 case ARM::VSTMSIA: 2674 case ARM::VSTMSIA_UPD: 2675 case ARM::VSTMSDB_UPD: { 2676 unsigned NumRegs = MI->getNumOperands() - Desc.getNumOperands(); 2677 return (NumRegs / 2) + (NumRegs % 2) + 1; 2678 } 2679 2680 case ARM::LDMIA_RET: 2681 case ARM::LDMIA: 2682 case ARM::LDMDA: 2683 case ARM::LDMDB: 2684 case ARM::LDMIB: 2685 case ARM::LDMIA_UPD: 2686 case ARM::LDMDA_UPD: 2687 case ARM::LDMDB_UPD: 2688 case ARM::LDMIB_UPD: 2689 case ARM::STMIA: 2690 case ARM::STMDA: 2691 case ARM::STMDB: 2692 case ARM::STMIB: 2693 case ARM::STMIA_UPD: 2694 case ARM::STMDA_UPD: 2695 case ARM::STMDB_UPD: 2696 case ARM::STMIB_UPD: 2697 case ARM::tLDMIA: 2698 case ARM::tLDMIA_UPD: 2699 case ARM::tSTMIA_UPD: 2700 case ARM::tPOP_RET: 2701 case ARM::tPOP: 2702 case ARM::tPUSH: 2703 case ARM::t2LDMIA_RET: 2704 case ARM::t2LDMIA: 2705 case ARM::t2LDMDB: 2706 case ARM::t2LDMIA_UPD: 2707 case ARM::t2LDMDB_UPD: 2708 case ARM::t2STMIA: 2709 case ARM::t2STMDB: 2710 case ARM::t2STMIA_UPD: 2711 case ARM::t2STMDB_UPD: { 2712 unsigned NumRegs = MI->getNumOperands() - Desc.getNumOperands() + 1; 2713 if (Subtarget.isSwift()) { 2714 // rdar://8402126 2715 int UOps = 1 + NumRegs; // One for address computation, one for each ld / st. 2716 switch (Opc) { 2717 default: break; 2718 case ARM::VLDMDIA_UPD: 2719 case ARM::VLDMDDB_UPD: 2720 case ARM::VLDMSIA_UPD: 2721 case ARM::VLDMSDB_UPD: 2722 case ARM::VSTMDIA_UPD: 2723 case ARM::VSTMDDB_UPD: 2724 case ARM::VSTMSIA_UPD: 2725 case ARM::VSTMSDB_UPD: 2726 case ARM::LDMIA_UPD: 2727 case ARM::LDMDA_UPD: 2728 case ARM::LDMDB_UPD: 2729 case ARM::LDMIB_UPD: 2730 case ARM::STMIA_UPD: 2731 case ARM::STMDA_UPD: 2732 case ARM::STMDB_UPD: 2733 case ARM::STMIB_UPD: 2734 case ARM::tLDMIA_UPD: 2735 case ARM::tSTMIA_UPD: 2736 case ARM::t2LDMIA_UPD: 2737 case ARM::t2LDMDB_UPD: 2738 case ARM::t2STMIA_UPD: 2739 case ARM::t2STMDB_UPD: 2740 ++UOps; // One for base register writeback. 2741 break; 2742 case ARM::LDMIA_RET: 2743 case ARM::tPOP_RET: 2744 case ARM::t2LDMIA_RET: 2745 UOps += 2; // One for base reg wb, one for write to pc. 2746 break; 2747 } 2748 return UOps; 2749 } else if (Subtarget.isCortexA8()) { 2750 if (NumRegs < 4) 2751 return 2; 2752 // 4 registers would be issued: 2, 2. 2753 // 5 registers would be issued: 2, 2, 1. 2754 int A8UOps = (NumRegs / 2); 2755 if (NumRegs % 2) 2756 ++A8UOps; 2757 return A8UOps; 2758 } else if (Subtarget.isLikeA9() || Subtarget.isSwift()) { 2759 int A9UOps = (NumRegs / 2); 2760 // If there are odd number of registers or if it's not 64-bit aligned, 2761 // then it takes an extra AGU (Address Generation Unit) cycle. 2762 if ((NumRegs % 2) || 2763 !MI->hasOneMemOperand() || 2764 (*MI->memoperands_begin())->getAlignment() < 8) 2765 ++A9UOps; 2766 return A9UOps; 2767 } else { 2768 // Assume the worst. 2769 return NumRegs; 2770 } 2771 } 2772 } 2773 } 2774 2775 int 2776 ARMBaseInstrInfo::getVLDMDefCycle(const InstrItineraryData *ItinData, 2777 const MCInstrDesc &DefMCID, 2778 unsigned DefClass, 2779 unsigned DefIdx, unsigned DefAlign) const { 2780 int RegNo = (int)(DefIdx+1) - DefMCID.getNumOperands() + 1; 2781 if (RegNo <= 0) 2782 // Def is the address writeback. 2783 return ItinData->getOperandCycle(DefClass, DefIdx); 2784 2785 int DefCycle; 2786 if (Subtarget.isCortexA8()) { 2787 // (regno / 2) + (regno % 2) + 1 2788 DefCycle = RegNo / 2 + 1; 2789 if (RegNo % 2) 2790 ++DefCycle; 2791 } else if (Subtarget.isLikeA9() || Subtarget.isSwift()) { 2792 DefCycle = RegNo; 2793 bool isSLoad = false; 2794 2795 switch (DefMCID.getOpcode()) { 2796 default: break; 2797 case ARM::VLDMSIA: 2798 case ARM::VLDMSIA_UPD: 2799 case ARM::VLDMSDB_UPD: 2800 isSLoad = true; 2801 break; 2802 } 2803 2804 // If there are odd number of 'S' registers or if it's not 64-bit aligned, 2805 // then it takes an extra cycle. 2806 if ((isSLoad && (RegNo % 2)) || DefAlign < 8) 2807 ++DefCycle; 2808 } else { 2809 // Assume the worst. 2810 DefCycle = RegNo + 2; 2811 } 2812 2813 return DefCycle; 2814 } 2815 2816 int 2817 ARMBaseInstrInfo::getLDMDefCycle(const InstrItineraryData *ItinData, 2818 const MCInstrDesc &DefMCID, 2819 unsigned DefClass, 2820 unsigned DefIdx, unsigned DefAlign) const { 2821 int RegNo = (int)(DefIdx+1) - DefMCID.getNumOperands() + 1; 2822 if (RegNo <= 0) 2823 // Def is the address writeback. 2824 return ItinData->getOperandCycle(DefClass, DefIdx); 2825 2826 int DefCycle; 2827 if (Subtarget.isCortexA8()) { 2828 // 4 registers would be issued: 1, 2, 1. 2829 // 5 registers would be issued: 1, 2, 2. 2830 DefCycle = RegNo / 2; 2831 if (DefCycle < 1) 2832 DefCycle = 1; 2833 // Result latency is issue cycle + 2: E2. 2834 DefCycle += 2; 2835 } else if (Subtarget.isLikeA9() || Subtarget.isSwift()) { 2836 DefCycle = (RegNo / 2); 2837 // If there are odd number of registers or if it's not 64-bit aligned, 2838 // then it takes an extra AGU (Address Generation Unit) cycle. 2839 if ((RegNo % 2) || DefAlign < 8) 2840 ++DefCycle; 2841 // Result latency is AGU cycles + 2. 2842 DefCycle += 2; 2843 } else { 2844 // Assume the worst. 2845 DefCycle = RegNo + 2; 2846 } 2847 2848 return DefCycle; 2849 } 2850 2851 int 2852 ARMBaseInstrInfo::getVSTMUseCycle(const InstrItineraryData *ItinData, 2853 const MCInstrDesc &UseMCID, 2854 unsigned UseClass, 2855 unsigned UseIdx, unsigned UseAlign) const { 2856 int RegNo = (int)(UseIdx+1) - UseMCID.getNumOperands() + 1; 2857 if (RegNo <= 0) 2858 return ItinData->getOperandCycle(UseClass, UseIdx); 2859 2860 int UseCycle; 2861 if (Subtarget.isCortexA8()) { 2862 // (regno / 2) + (regno % 2) + 1 2863 UseCycle = RegNo / 2 + 1; 2864 if (RegNo % 2) 2865 ++UseCycle; 2866 } else if (Subtarget.isLikeA9() || Subtarget.isSwift()) { 2867 UseCycle = RegNo; 2868 bool isSStore = false; 2869 2870 switch (UseMCID.getOpcode()) { 2871 default: break; 2872 case ARM::VSTMSIA: 2873 case ARM::VSTMSIA_UPD: 2874 case ARM::VSTMSDB_UPD: 2875 isSStore = true; 2876 break; 2877 } 2878 2879 // If there are odd number of 'S' registers or if it's not 64-bit aligned, 2880 // then it takes an extra cycle. 2881 if ((isSStore && (RegNo % 2)) || UseAlign < 8) 2882 ++UseCycle; 2883 } else { 2884 // Assume the worst. 2885 UseCycle = RegNo + 2; 2886 } 2887 2888 return UseCycle; 2889 } 2890 2891 int 2892 ARMBaseInstrInfo::getSTMUseCycle(const InstrItineraryData *ItinData, 2893 const MCInstrDesc &UseMCID, 2894 unsigned UseClass, 2895 unsigned UseIdx, unsigned UseAlign) const { 2896 int RegNo = (int)(UseIdx+1) - UseMCID.getNumOperands() + 1; 2897 if (RegNo <= 0) 2898 return ItinData->getOperandCycle(UseClass, UseIdx); 2899 2900 int UseCycle; 2901 if (Subtarget.isCortexA8()) { 2902 UseCycle = RegNo / 2; 2903 if (UseCycle < 2) 2904 UseCycle = 2; 2905 // Read in E3. 2906 UseCycle += 2; 2907 } else if (Subtarget.isLikeA9() || Subtarget.isSwift()) { 2908 UseCycle = (RegNo / 2); 2909 // If there are odd number of registers or if it's not 64-bit aligned, 2910 // then it takes an extra AGU (Address Generation Unit) cycle. 2911 if ((RegNo % 2) || UseAlign < 8) 2912 ++UseCycle; 2913 } else { 2914 // Assume the worst. 2915 UseCycle = 1; 2916 } 2917 return UseCycle; 2918 } 2919 2920 int 2921 ARMBaseInstrInfo::getOperandLatency(const InstrItineraryData *ItinData, 2922 const MCInstrDesc &DefMCID, 2923 unsigned DefIdx, unsigned DefAlign, 2924 const MCInstrDesc &UseMCID, 2925 unsigned UseIdx, unsigned UseAlign) const { 2926 unsigned DefClass = DefMCID.getSchedClass(); 2927 unsigned UseClass = UseMCID.getSchedClass(); 2928 2929 if (DefIdx < DefMCID.getNumDefs() && UseIdx < UseMCID.getNumOperands()) 2930 return ItinData->getOperandLatency(DefClass, DefIdx, UseClass, UseIdx); 2931 2932 // This may be a def / use of a variable_ops instruction, the operand 2933 // latency might be determinable dynamically. Let the target try to 2934 // figure it out. 2935 int DefCycle = -1; 2936 bool LdmBypass = false; 2937 switch (DefMCID.getOpcode()) { 2938 default: 2939 DefCycle = ItinData->getOperandCycle(DefClass, DefIdx); 2940 break; 2941 2942 case ARM::VLDMDIA: 2943 case ARM::VLDMDIA_UPD: 2944 case ARM::VLDMDDB_UPD: 2945 case ARM::VLDMSIA: 2946 case ARM::VLDMSIA_UPD: 2947 case ARM::VLDMSDB_UPD: 2948 DefCycle = getVLDMDefCycle(ItinData, DefMCID, DefClass, DefIdx, DefAlign); 2949 break; 2950 2951 case ARM::LDMIA_RET: 2952 case ARM::LDMIA: 2953 case ARM::LDMDA: 2954 case ARM::LDMDB: 2955 case ARM::LDMIB: 2956 case ARM::LDMIA_UPD: 2957 case ARM::LDMDA_UPD: 2958 case ARM::LDMDB_UPD: 2959 case ARM::LDMIB_UPD: 2960 case ARM::tLDMIA: 2961 case ARM::tLDMIA_UPD: 2962 case ARM::tPUSH: 2963 case ARM::t2LDMIA_RET: 2964 case ARM::t2LDMIA: 2965 case ARM::t2LDMDB: 2966 case ARM::t2LDMIA_UPD: 2967 case ARM::t2LDMDB_UPD: 2968 LdmBypass = 1; 2969 DefCycle = getLDMDefCycle(ItinData, DefMCID, DefClass, DefIdx, DefAlign); 2970 break; 2971 } 2972 2973 if (DefCycle == -1) 2974 // We can't seem to determine the result latency of the def, assume it's 2. 2975 DefCycle = 2; 2976 2977 int UseCycle = -1; 2978 switch (UseMCID.getOpcode()) { 2979 default: 2980 UseCycle = ItinData->getOperandCycle(UseClass, UseIdx); 2981 break; 2982 2983 case ARM::VSTMDIA: 2984 case ARM::VSTMDIA_UPD: 2985 case ARM::VSTMDDB_UPD: 2986 case ARM::VSTMSIA: 2987 case ARM::VSTMSIA_UPD: 2988 case ARM::VSTMSDB_UPD: 2989 UseCycle = getVSTMUseCycle(ItinData, UseMCID, UseClass, UseIdx, UseAlign); 2990 break; 2991 2992 case ARM::STMIA: 2993 case ARM::STMDA: 2994 case ARM::STMDB: 2995 case ARM::STMIB: 2996 case ARM::STMIA_UPD: 2997 case ARM::STMDA_UPD: 2998 case ARM::STMDB_UPD: 2999 case ARM::STMIB_UPD: 3000 case ARM::tSTMIA_UPD: 3001 case ARM::tPOP_RET: 3002 case ARM::tPOP: 3003 case ARM::t2STMIA: 3004 case ARM::t2STMDB: 3005 case ARM::t2STMIA_UPD: 3006 case ARM::t2STMDB_UPD: 3007 UseCycle = getSTMUseCycle(ItinData, UseMCID, UseClass, UseIdx, UseAlign); 3008 break; 3009 } 3010 3011 if (UseCycle == -1) 3012 // Assume it's read in the first stage. 3013 UseCycle = 1; 3014 3015 UseCycle = DefCycle - UseCycle + 1; 3016 if (UseCycle > 0) { 3017 if (LdmBypass) { 3018 // It's a variable_ops instruction so we can't use DefIdx here. Just use 3019 // first def operand. 3020 if (ItinData->hasPipelineForwarding(DefClass, DefMCID.getNumOperands()-1, 3021 UseClass, UseIdx)) 3022 --UseCycle; 3023 } else if (ItinData->hasPipelineForwarding(DefClass, DefIdx, 3024 UseClass, UseIdx)) { 3025 --UseCycle; 3026 } 3027 } 3028 3029 return UseCycle; 3030 } 3031 3032 static const MachineInstr *getBundledDefMI(const TargetRegisterInfo *TRI, 3033 const MachineInstr *MI, unsigned Reg, 3034 unsigned &DefIdx, unsigned &Dist) { 3035 Dist = 0; 3036 3037 MachineBasicBlock::const_iterator I = MI; ++I; 3038 MachineBasicBlock::const_instr_iterator II = 3039 llvm::prior(I.getInstrIterator()); 3040 assert(II->isInsideBundle() && "Empty bundle?"); 3041 3042 int Idx = -1; 3043 while (II->isInsideBundle()) { 3044 Idx = II->findRegisterDefOperandIdx(Reg, false, true, TRI); 3045 if (Idx != -1) 3046 break; 3047 --II; 3048 ++Dist; 3049 } 3050 3051 assert(Idx != -1 && "Cannot find bundled definition!"); 3052 DefIdx = Idx; 3053 return II; 3054 } 3055 3056 static const MachineInstr *getBundledUseMI(const TargetRegisterInfo *TRI, 3057 const MachineInstr *MI, unsigned Reg, 3058 unsigned &UseIdx, unsigned &Dist) { 3059 Dist = 0; 3060 3061 MachineBasicBlock::const_instr_iterator II = MI; ++II; 3062 assert(II->isInsideBundle() && "Empty bundle?"); 3063 MachineBasicBlock::const_instr_iterator E = MI->getParent()->instr_end(); 3064 3065 // FIXME: This doesn't properly handle multiple uses. 3066 int Idx = -1; 3067 while (II != E && II->isInsideBundle()) { 3068 Idx = II->findRegisterUseOperandIdx(Reg, false, TRI); 3069 if (Idx != -1) 3070 break; 3071 if (II->getOpcode() != ARM::t2IT) 3072 ++Dist; 3073 ++II; 3074 } 3075 3076 if (Idx == -1) { 3077 Dist = 0; 3078 return 0; 3079 } 3080 3081 UseIdx = Idx; 3082 return II; 3083 } 3084 3085 /// Return the number of cycles to add to (or subtract from) the static 3086 /// itinerary based on the def opcode and alignment. The caller will ensure that 3087 /// adjusted latency is at least one cycle. 3088 static int adjustDefLatency(const ARMSubtarget &Subtarget, 3089 const MachineInstr *DefMI, 3090 const MCInstrDesc *DefMCID, unsigned DefAlign) { 3091 int Adjust = 0; 3092 if (Subtarget.isCortexA8() || Subtarget.isLikeA9()) { 3093 // FIXME: Shifter op hack: no shift (i.e. [r +/- r]) or [r + r << 2] 3094 // variants are one cycle cheaper. 3095 switch (DefMCID->getOpcode()) { 3096 default: break; 3097 case ARM::LDRrs: 3098 case ARM::LDRBrs: { 3099 unsigned ShOpVal = DefMI->getOperand(3).getImm(); 3100 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 3101 if (ShImm == 0 || 3102 (ShImm == 2 && ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl)) 3103 --Adjust; 3104 break; 3105 } 3106 case ARM::t2LDRs: 3107 case ARM::t2LDRBs: 3108 case ARM::t2LDRHs: 3109 case ARM::t2LDRSHs: { 3110 // Thumb2 mode: lsl only. 3111 unsigned ShAmt = DefMI->getOperand(3).getImm(); 3112 if (ShAmt == 0 || ShAmt == 2) 3113 --Adjust; 3114 break; 3115 } 3116 } 3117 } else if (Subtarget.isSwift()) { 3118 // FIXME: Properly handle all of the latency adjustments for address 3119 // writeback. 3120 switch (DefMCID->getOpcode()) { 3121 default: break; 3122 case ARM::LDRrs: 3123 case ARM::LDRBrs: { 3124 unsigned ShOpVal = DefMI->getOperand(3).getImm(); 3125 bool isSub = ARM_AM::getAM2Op(ShOpVal) == ARM_AM::sub; 3126 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 3127 if (!isSub && 3128 (ShImm == 0 || 3129 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 3130 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl))) 3131 Adjust -= 2; 3132 else if (!isSub && 3133 ShImm == 1 && ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsr) 3134 --Adjust; 3135 break; 3136 } 3137 case ARM::t2LDRs: 3138 case ARM::t2LDRBs: 3139 case ARM::t2LDRHs: 3140 case ARM::t2LDRSHs: { 3141 // Thumb2 mode: lsl only. 3142 unsigned ShAmt = DefMI->getOperand(3).getImm(); 3143 if (ShAmt == 0 || ShAmt == 1 || ShAmt == 2 || ShAmt == 3) 3144 Adjust -= 2; 3145 break; 3146 } 3147 } 3148 } 3149 3150 if (DefAlign < 8 && Subtarget.isLikeA9()) { 3151 switch (DefMCID->getOpcode()) { 3152 default: break; 3153 case ARM::VLD1q8: 3154 case ARM::VLD1q16: 3155 case ARM::VLD1q32: 3156 case ARM::VLD1q64: 3157 case ARM::VLD1q8wb_fixed: 3158 case ARM::VLD1q16wb_fixed: 3159 case ARM::VLD1q32wb_fixed: 3160 case ARM::VLD1q64wb_fixed: 3161 case ARM::VLD1q8wb_register: 3162 case ARM::VLD1q16wb_register: 3163 case ARM::VLD1q32wb_register: 3164 case ARM::VLD1q64wb_register: 3165 case ARM::VLD2d8: 3166 case ARM::VLD2d16: 3167 case ARM::VLD2d32: 3168 case ARM::VLD2q8: 3169 case ARM::VLD2q16: 3170 case ARM::VLD2q32: 3171 case ARM::VLD2d8wb_fixed: 3172 case ARM::VLD2d16wb_fixed: 3173 case ARM::VLD2d32wb_fixed: 3174 case ARM::VLD2q8wb_fixed: 3175 case ARM::VLD2q16wb_fixed: 3176 case ARM::VLD2q32wb_fixed: 3177 case ARM::VLD2d8wb_register: 3178 case ARM::VLD2d16wb_register: 3179 case ARM::VLD2d32wb_register: 3180 case ARM::VLD2q8wb_register: 3181 case ARM::VLD2q16wb_register: 3182 case ARM::VLD2q32wb_register: 3183 case ARM::VLD3d8: 3184 case ARM::VLD3d16: 3185 case ARM::VLD3d32: 3186 case ARM::VLD1d64T: 3187 case ARM::VLD3d8_UPD: 3188 case ARM::VLD3d16_UPD: 3189 case ARM::VLD3d32_UPD: 3190 case ARM::VLD1d64Twb_fixed: 3191 case ARM::VLD1d64Twb_register: 3192 case ARM::VLD3q8_UPD: 3193 case ARM::VLD3q16_UPD: 3194 case ARM::VLD3q32_UPD: 3195 case ARM::VLD4d8: 3196 case ARM::VLD4d16: 3197 case ARM::VLD4d32: 3198 case ARM::VLD1d64Q: 3199 case ARM::VLD4d8_UPD: 3200 case ARM::VLD4d16_UPD: 3201 case ARM::VLD4d32_UPD: 3202 case ARM::VLD1d64Qwb_fixed: 3203 case ARM::VLD1d64Qwb_register: 3204 case ARM::VLD4q8_UPD: 3205 case ARM::VLD4q16_UPD: 3206 case ARM::VLD4q32_UPD: 3207 case ARM::VLD1DUPq8: 3208 case ARM::VLD1DUPq16: 3209 case ARM::VLD1DUPq32: 3210 case ARM::VLD1DUPq8wb_fixed: 3211 case ARM::VLD1DUPq16wb_fixed: 3212 case ARM::VLD1DUPq32wb_fixed: 3213 case ARM::VLD1DUPq8wb_register: 3214 case ARM::VLD1DUPq16wb_register: 3215 case ARM::VLD1DUPq32wb_register: 3216 case ARM::VLD2DUPd8: 3217 case ARM::VLD2DUPd16: 3218 case ARM::VLD2DUPd32: 3219 case ARM::VLD2DUPd8wb_fixed: 3220 case ARM::VLD2DUPd16wb_fixed: 3221 case ARM::VLD2DUPd32wb_fixed: 3222 case ARM::VLD2DUPd8wb_register: 3223 case ARM::VLD2DUPd16wb_register: 3224 case ARM::VLD2DUPd32wb_register: 3225 case ARM::VLD4DUPd8: 3226 case ARM::VLD4DUPd16: 3227 case ARM::VLD4DUPd32: 3228 case ARM::VLD4DUPd8_UPD: 3229 case ARM::VLD4DUPd16_UPD: 3230 case ARM::VLD4DUPd32_UPD: 3231 case ARM::VLD1LNd8: 3232 case ARM::VLD1LNd16: 3233 case ARM::VLD1LNd32: 3234 case ARM::VLD1LNd8_UPD: 3235 case ARM::VLD1LNd16_UPD: 3236 case ARM::VLD1LNd32_UPD: 3237 case ARM::VLD2LNd8: 3238 case ARM::VLD2LNd16: 3239 case ARM::VLD2LNd32: 3240 case ARM::VLD2LNq16: 3241 case ARM::VLD2LNq32: 3242 case ARM::VLD2LNd8_UPD: 3243 case ARM::VLD2LNd16_UPD: 3244 case ARM::VLD2LNd32_UPD: 3245 case ARM::VLD2LNq16_UPD: 3246 case ARM::VLD2LNq32_UPD: 3247 case ARM::VLD4LNd8: 3248 case ARM::VLD4LNd16: 3249 case ARM::VLD4LNd32: 3250 case ARM::VLD4LNq16: 3251 case ARM::VLD4LNq32: 3252 case ARM::VLD4LNd8_UPD: 3253 case ARM::VLD4LNd16_UPD: 3254 case ARM::VLD4LNd32_UPD: 3255 case ARM::VLD4LNq16_UPD: 3256 case ARM::VLD4LNq32_UPD: 3257 // If the address is not 64-bit aligned, the latencies of these 3258 // instructions increases by one. 3259 ++Adjust; 3260 break; 3261 } 3262 } 3263 return Adjust; 3264 } 3265 3266 3267 3268 int 3269 ARMBaseInstrInfo::getOperandLatency(const InstrItineraryData *ItinData, 3270 const MachineInstr *DefMI, unsigned DefIdx, 3271 const MachineInstr *UseMI, 3272 unsigned UseIdx) const { 3273 // No operand latency. The caller may fall back to getInstrLatency. 3274 if (!ItinData || ItinData->isEmpty()) 3275 return -1; 3276 3277 const MachineOperand &DefMO = DefMI->getOperand(DefIdx); 3278 unsigned Reg = DefMO.getReg(); 3279 const MCInstrDesc *DefMCID = &DefMI->getDesc(); 3280 const MCInstrDesc *UseMCID = &UseMI->getDesc(); 3281 3282 unsigned DefAdj = 0; 3283 if (DefMI->isBundle()) { 3284 DefMI = getBundledDefMI(&getRegisterInfo(), DefMI, Reg, DefIdx, DefAdj); 3285 DefMCID = &DefMI->getDesc(); 3286 } 3287 if (DefMI->isCopyLike() || DefMI->isInsertSubreg() || 3288 DefMI->isRegSequence() || DefMI->isImplicitDef()) { 3289 return 1; 3290 } 3291 3292 unsigned UseAdj = 0; 3293 if (UseMI->isBundle()) { 3294 unsigned NewUseIdx; 3295 const MachineInstr *NewUseMI = getBundledUseMI(&getRegisterInfo(), UseMI, 3296 Reg, NewUseIdx, UseAdj); 3297 if (!NewUseMI) 3298 return -1; 3299 3300 UseMI = NewUseMI; 3301 UseIdx = NewUseIdx; 3302 UseMCID = &UseMI->getDesc(); 3303 } 3304 3305 if (Reg == ARM::CPSR) { 3306 if (DefMI->getOpcode() == ARM::FMSTAT) { 3307 // fpscr -> cpsr stalls over 20 cycles on A8 (and earlier?) 3308 return Subtarget.isLikeA9() ? 1 : 20; 3309 } 3310 3311 // CPSR set and branch can be paired in the same cycle. 3312 if (UseMI->isBranch()) 3313 return 0; 3314 3315 // Otherwise it takes the instruction latency (generally one). 3316 unsigned Latency = getInstrLatency(ItinData, DefMI); 3317 3318 // For Thumb2 and -Os, prefer scheduling CPSR setting instruction close to 3319 // its uses. Instructions which are otherwise scheduled between them may 3320 // incur a code size penalty (not able to use the CPSR setting 16-bit 3321 // instructions). 3322 if (Latency > 0 && Subtarget.isThumb2()) { 3323 const MachineFunction *MF = DefMI->getParent()->getParent(); 3324 if (MF->getFunction()->getFnAttributes(). 3325 hasAttribute(Attributes::OptimizeForSize)) 3326 --Latency; 3327 } 3328 return Latency; 3329 } 3330 3331 if (DefMO.isImplicit() || UseMI->getOperand(UseIdx).isImplicit()) 3332 return -1; 3333 3334 unsigned DefAlign = DefMI->hasOneMemOperand() 3335 ? (*DefMI->memoperands_begin())->getAlignment() : 0; 3336 unsigned UseAlign = UseMI->hasOneMemOperand() 3337 ? (*UseMI->memoperands_begin())->getAlignment() : 0; 3338 3339 // Get the itinerary's latency if possible, and handle variable_ops. 3340 int Latency = getOperandLatency(ItinData, *DefMCID, DefIdx, DefAlign, 3341 *UseMCID, UseIdx, UseAlign); 3342 // Unable to find operand latency. The caller may resort to getInstrLatency. 3343 if (Latency < 0) 3344 return Latency; 3345 3346 // Adjust for IT block position. 3347 int Adj = DefAdj + UseAdj; 3348 3349 // Adjust for dynamic def-side opcode variants not captured by the itinerary. 3350 Adj += adjustDefLatency(Subtarget, DefMI, DefMCID, DefAlign); 3351 if (Adj >= 0 || (int)Latency > -Adj) { 3352 return Latency + Adj; 3353 } 3354 // Return the itinerary latency, which may be zero but not less than zero. 3355 return Latency; 3356 } 3357 3358 int 3359 ARMBaseInstrInfo::getOperandLatency(const InstrItineraryData *ItinData, 3360 SDNode *DefNode, unsigned DefIdx, 3361 SDNode *UseNode, unsigned UseIdx) const { 3362 if (!DefNode->isMachineOpcode()) 3363 return 1; 3364 3365 const MCInstrDesc &DefMCID = get(DefNode->getMachineOpcode()); 3366 3367 if (isZeroCost(DefMCID.Opcode)) 3368 return 0; 3369 3370 if (!ItinData || ItinData->isEmpty()) 3371 return DefMCID.mayLoad() ? 3 : 1; 3372 3373 if (!UseNode->isMachineOpcode()) { 3374 int Latency = ItinData->getOperandCycle(DefMCID.getSchedClass(), DefIdx); 3375 if (Subtarget.isLikeA9() || Subtarget.isSwift()) 3376 return Latency <= 2 ? 1 : Latency - 1; 3377 else 3378 return Latency <= 3 ? 1 : Latency - 2; 3379 } 3380 3381 const MCInstrDesc &UseMCID = get(UseNode->getMachineOpcode()); 3382 const MachineSDNode *DefMN = dyn_cast<MachineSDNode>(DefNode); 3383 unsigned DefAlign = !DefMN->memoperands_empty() 3384 ? (*DefMN->memoperands_begin())->getAlignment() : 0; 3385 const MachineSDNode *UseMN = dyn_cast<MachineSDNode>(UseNode); 3386 unsigned UseAlign = !UseMN->memoperands_empty() 3387 ? (*UseMN->memoperands_begin())->getAlignment() : 0; 3388 int Latency = getOperandLatency(ItinData, DefMCID, DefIdx, DefAlign, 3389 UseMCID, UseIdx, UseAlign); 3390 3391 if (Latency > 1 && 3392 (Subtarget.isCortexA8() || Subtarget.isLikeA9())) { 3393 // FIXME: Shifter op hack: no shift (i.e. [r +/- r]) or [r + r << 2] 3394 // variants are one cycle cheaper. 3395 switch (DefMCID.getOpcode()) { 3396 default: break; 3397 case ARM::LDRrs: 3398 case ARM::LDRBrs: { 3399 unsigned ShOpVal = 3400 cast<ConstantSDNode>(DefNode->getOperand(2))->getZExtValue(); 3401 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 3402 if (ShImm == 0 || 3403 (ShImm == 2 && ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl)) 3404 --Latency; 3405 break; 3406 } 3407 case ARM::t2LDRs: 3408 case ARM::t2LDRBs: 3409 case ARM::t2LDRHs: 3410 case ARM::t2LDRSHs: { 3411 // Thumb2 mode: lsl only. 3412 unsigned ShAmt = 3413 cast<ConstantSDNode>(DefNode->getOperand(2))->getZExtValue(); 3414 if (ShAmt == 0 || ShAmt == 2) 3415 --Latency; 3416 break; 3417 } 3418 } 3419 } else if (DefIdx == 0 && Latency > 2 && Subtarget.isSwift()) { 3420 // FIXME: Properly handle all of the latency adjustments for address 3421 // writeback. 3422 switch (DefMCID.getOpcode()) { 3423 default: break; 3424 case ARM::LDRrs: 3425 case ARM::LDRBrs: { 3426 unsigned ShOpVal = 3427 cast<ConstantSDNode>(DefNode->getOperand(2))->getZExtValue(); 3428 unsigned ShImm = ARM_AM::getAM2Offset(ShOpVal); 3429 if (ShImm == 0 || 3430 ((ShImm == 1 || ShImm == 2 || ShImm == 3) && 3431 ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsl)) 3432 Latency -= 2; 3433 else if (ShImm == 1 && ARM_AM::getAM2ShiftOpc(ShOpVal) == ARM_AM::lsr) 3434 --Latency; 3435 break; 3436 } 3437 case ARM::t2LDRs: 3438 case ARM::t2LDRBs: 3439 case ARM::t2LDRHs: 3440 case ARM::t2LDRSHs: { 3441 // Thumb2 mode: lsl 0-3 only. 3442 Latency -= 2; 3443 break; 3444 } 3445 } 3446 } 3447 3448 if (DefAlign < 8 && Subtarget.isLikeA9()) 3449 switch (DefMCID.getOpcode()) { 3450 default: break; 3451 case ARM::VLD1q8: 3452 case ARM::VLD1q16: 3453 case ARM::VLD1q32: 3454 case ARM::VLD1q64: 3455 case ARM::VLD1q8wb_register: 3456 case ARM::VLD1q16wb_register: 3457 case ARM::VLD1q32wb_register: 3458 case ARM::VLD1q64wb_register: 3459 case ARM::VLD1q8wb_fixed: 3460 case ARM::VLD1q16wb_fixed: 3461 case ARM::VLD1q32wb_fixed: 3462 case ARM::VLD1q64wb_fixed: 3463 case ARM::VLD2d8: 3464 case ARM::VLD2d16: 3465 case ARM::VLD2d32: 3466 case ARM::VLD2q8Pseudo: 3467 case ARM::VLD2q16Pseudo: 3468 case ARM::VLD2q32Pseudo: 3469 case ARM::VLD2d8wb_fixed: 3470 case ARM::VLD2d16wb_fixed: 3471 case ARM::VLD2d32wb_fixed: 3472 case ARM::VLD2q8PseudoWB_fixed: 3473 case ARM::VLD2q16PseudoWB_fixed: 3474 case ARM::VLD2q32PseudoWB_fixed: 3475 case ARM::VLD2d8wb_register: 3476 case ARM::VLD2d16wb_register: 3477 case ARM::VLD2d32wb_register: 3478 case ARM::VLD2q8PseudoWB_register: 3479 case ARM::VLD2q16PseudoWB_register: 3480 case ARM::VLD2q32PseudoWB_register: 3481 case ARM::VLD3d8Pseudo: 3482 case ARM::VLD3d16Pseudo: 3483 case ARM::VLD3d32Pseudo: 3484 case ARM::VLD1d64TPseudo: 3485 case ARM::VLD3d8Pseudo_UPD: 3486 case ARM::VLD3d16Pseudo_UPD: 3487 case ARM::VLD3d32Pseudo_UPD: 3488 case ARM::VLD3q8Pseudo_UPD: 3489 case ARM::VLD3q16Pseudo_UPD: 3490 case ARM::VLD3q32Pseudo_UPD: 3491 case ARM::VLD3q8oddPseudo: 3492 case ARM::VLD3q16oddPseudo: 3493 case ARM::VLD3q32oddPseudo: 3494 case ARM::VLD3q8oddPseudo_UPD: 3495 case ARM::VLD3q16oddPseudo_UPD: 3496 case ARM::VLD3q32oddPseudo_UPD: 3497 case ARM::VLD4d8Pseudo: 3498 case ARM::VLD4d16Pseudo: 3499 case ARM::VLD4d32Pseudo: 3500 case ARM::VLD1d64QPseudo: 3501 case ARM::VLD4d8Pseudo_UPD: 3502 case ARM::VLD4d16Pseudo_UPD: 3503 case ARM::VLD4d32Pseudo_UPD: 3504 case ARM::VLD4q8Pseudo_UPD: 3505 case ARM::VLD4q16Pseudo_UPD: 3506 case ARM::VLD4q32Pseudo_UPD: 3507 case ARM::VLD4q8oddPseudo: 3508 case ARM::VLD4q16oddPseudo: 3509 case ARM::VLD4q32oddPseudo: 3510 case ARM::VLD4q8oddPseudo_UPD: 3511 case ARM::VLD4q16oddPseudo_UPD: 3512 case ARM::VLD4q32oddPseudo_UPD: 3513 case ARM::VLD1DUPq8: 3514 case ARM::VLD1DUPq16: 3515 case ARM::VLD1DUPq32: 3516 case ARM::VLD1DUPq8wb_fixed: 3517 case ARM::VLD1DUPq16wb_fixed: 3518 case ARM::VLD1DUPq32wb_fixed: 3519 case ARM::VLD1DUPq8wb_register: 3520 case ARM::VLD1DUPq16wb_register: 3521 case ARM::VLD1DUPq32wb_register: 3522 case ARM::VLD2DUPd8: 3523 case ARM::VLD2DUPd16: 3524 case ARM::VLD2DUPd32: 3525 case ARM::VLD2DUPd8wb_fixed: 3526 case ARM::VLD2DUPd16wb_fixed: 3527 case ARM::VLD2DUPd32wb_fixed: 3528 case ARM::VLD2DUPd8wb_register: 3529 case ARM::VLD2DUPd16wb_register: 3530 case ARM::VLD2DUPd32wb_register: 3531 case ARM::VLD4DUPd8Pseudo: 3532 case ARM::VLD4DUPd16Pseudo: 3533 case ARM::VLD4DUPd32Pseudo: 3534 case ARM::VLD4DUPd8Pseudo_UPD: 3535 case ARM::VLD4DUPd16Pseudo_UPD: 3536 case ARM::VLD4DUPd32Pseudo_UPD: 3537 case ARM::VLD1LNq8Pseudo: 3538 case ARM::VLD1LNq16Pseudo: 3539 case ARM::VLD1LNq32Pseudo: 3540 case ARM::VLD1LNq8Pseudo_UPD: 3541 case ARM::VLD1LNq16Pseudo_UPD: 3542 case ARM::VLD1LNq32Pseudo_UPD: 3543 case ARM::VLD2LNd8Pseudo: 3544 case ARM::VLD2LNd16Pseudo: 3545 case ARM::VLD2LNd32Pseudo: 3546 case ARM::VLD2LNq16Pseudo: 3547 case ARM::VLD2LNq32Pseudo: 3548 case ARM::VLD2LNd8Pseudo_UPD: 3549 case ARM::VLD2LNd16Pseudo_UPD: 3550 case ARM::VLD2LNd32Pseudo_UPD: 3551 case ARM::VLD2LNq16Pseudo_UPD: 3552 case ARM::VLD2LNq32Pseudo_UPD: 3553 case ARM::VLD4LNd8Pseudo: 3554 case ARM::VLD4LNd16Pseudo: 3555 case ARM::VLD4LNd32Pseudo: 3556 case ARM::VLD4LNq16Pseudo: 3557 case ARM::VLD4LNq32Pseudo: 3558 case ARM::VLD4LNd8Pseudo_UPD: 3559 case ARM::VLD4LNd16Pseudo_UPD: 3560 case ARM::VLD4LNd32Pseudo_UPD: 3561 case ARM::VLD4LNq16Pseudo_UPD: 3562 case ARM::VLD4LNq32Pseudo_UPD: 3563 // If the address is not 64-bit aligned, the latencies of these 3564 // instructions increases by one. 3565 ++Latency; 3566 break; 3567 } 3568 3569 return Latency; 3570 } 3571 3572 unsigned ARMBaseInstrInfo::getInstrLatency(const InstrItineraryData *ItinData, 3573 const MachineInstr *MI, 3574 unsigned *PredCost) const { 3575 if (MI->isCopyLike() || MI->isInsertSubreg() || 3576 MI->isRegSequence() || MI->isImplicitDef()) 3577 return 1; 3578 3579 // An instruction scheduler typically runs on unbundled instructions, however 3580 // other passes may query the latency of a bundled instruction. 3581 if (MI->isBundle()) { 3582 unsigned Latency = 0; 3583 MachineBasicBlock::const_instr_iterator I = MI; 3584 MachineBasicBlock::const_instr_iterator E = MI->getParent()->instr_end(); 3585 while (++I != E && I->isInsideBundle()) { 3586 if (I->getOpcode() != ARM::t2IT) 3587 Latency += getInstrLatency(ItinData, I, PredCost); 3588 } 3589 return Latency; 3590 } 3591 3592 const MCInstrDesc &MCID = MI->getDesc(); 3593 if (PredCost && (MCID.isCall() || MCID.hasImplicitDefOfPhysReg(ARM::CPSR))) { 3594 // When predicated, CPSR is an additional source operand for CPSR updating 3595 // instructions, this apparently increases their latencies. 3596 *PredCost = 1; 3597 } 3598 // Be sure to call getStageLatency for an empty itinerary in case it has a 3599 // valid MinLatency property. 3600 if (!ItinData) 3601 return MI->mayLoad() ? 3 : 1; 3602 3603 unsigned Class = MCID.getSchedClass(); 3604 3605 // For instructions with variable uops, use uops as latency. 3606 if (!ItinData->isEmpty() && ItinData->getNumMicroOps(Class) < 0) 3607 return getNumMicroOps(ItinData, MI); 3608 3609 // For the common case, fall back on the itinerary's latency. 3610 unsigned Latency = ItinData->getStageLatency(Class); 3611 3612 // Adjust for dynamic def-side opcode variants not captured by the itinerary. 3613 unsigned DefAlign = MI->hasOneMemOperand() 3614 ? (*MI->memoperands_begin())->getAlignment() : 0; 3615 int Adj = adjustDefLatency(Subtarget, MI, &MCID, DefAlign); 3616 if (Adj >= 0 || (int)Latency > -Adj) { 3617 return Latency + Adj; 3618 } 3619 return Latency; 3620 } 3621 3622 int ARMBaseInstrInfo::getInstrLatency(const InstrItineraryData *ItinData, 3623 SDNode *Node) const { 3624 if (!Node->isMachineOpcode()) 3625 return 1; 3626 3627 if (!ItinData || ItinData->isEmpty()) 3628 return 1; 3629 3630 unsigned Opcode = Node->getMachineOpcode(); 3631 switch (Opcode) { 3632 default: 3633 return ItinData->getStageLatency(get(Opcode).getSchedClass()); 3634 case ARM::VLDMQIA: 3635 case ARM::VSTMQIA: 3636 return 2; 3637 } 3638 } 3639 3640 bool ARMBaseInstrInfo:: 3641 hasHighOperandLatency(const InstrItineraryData *ItinData, 3642 const MachineRegisterInfo *MRI, 3643 const MachineInstr *DefMI, unsigned DefIdx, 3644 const MachineInstr *UseMI, unsigned UseIdx) const { 3645 unsigned DDomain = DefMI->getDesc().TSFlags & ARMII::DomainMask; 3646 unsigned UDomain = UseMI->getDesc().TSFlags & ARMII::DomainMask; 3647 if (Subtarget.isCortexA8() && 3648 (DDomain == ARMII::DomainVFP || UDomain == ARMII::DomainVFP)) 3649 // CortexA8 VFP instructions are not pipelined. 3650 return true; 3651 3652 // Hoist VFP / NEON instructions with 4 or higher latency. 3653 int Latency = computeOperandLatency(ItinData, DefMI, DefIdx, UseMI, UseIdx, 3654 /*FindMin=*/false); 3655 if (Latency < 0) 3656 Latency = getInstrLatency(ItinData, DefMI); 3657 if (Latency <= 3) 3658 return false; 3659 return DDomain == ARMII::DomainVFP || DDomain == ARMII::DomainNEON || 3660 UDomain == ARMII::DomainVFP || UDomain == ARMII::DomainNEON; 3661 } 3662 3663 bool ARMBaseInstrInfo:: 3664 hasLowDefLatency(const InstrItineraryData *ItinData, 3665 const MachineInstr *DefMI, unsigned DefIdx) const { 3666 if (!ItinData || ItinData->isEmpty()) 3667 return false; 3668 3669 unsigned DDomain = DefMI->getDesc().TSFlags & ARMII::DomainMask; 3670 if (DDomain == ARMII::DomainGeneral) { 3671 unsigned DefClass = DefMI->getDesc().getSchedClass(); 3672 int DefCycle = ItinData->getOperandCycle(DefClass, DefIdx); 3673 return (DefCycle != -1 && DefCycle <= 2); 3674 } 3675 return false; 3676 } 3677 3678 bool ARMBaseInstrInfo::verifyInstruction(const MachineInstr *MI, 3679 StringRef &ErrInfo) const { 3680 if (convertAddSubFlagsOpcode(MI->getOpcode())) { 3681 ErrInfo = "Pseudo flag setting opcodes only exist in Selection DAG"; 3682 return false; 3683 } 3684 return true; 3685 } 3686 3687 bool 3688 ARMBaseInstrInfo::isFpMLxInstruction(unsigned Opcode, unsigned &MulOpc, 3689 unsigned &AddSubOpc, 3690 bool &NegAcc, bool &HasLane) const { 3691 DenseMap<unsigned, unsigned>::const_iterator I = MLxEntryMap.find(Opcode); 3692 if (I == MLxEntryMap.end()) 3693 return false; 3694 3695 const ARM_MLxEntry &Entry = ARM_MLxTable[I->second]; 3696 MulOpc = Entry.MulOpc; 3697 AddSubOpc = Entry.AddSubOpc; 3698 NegAcc = Entry.NegAcc; 3699 HasLane = Entry.HasLane; 3700 return true; 3701 } 3702 3703 //===----------------------------------------------------------------------===// 3704 // Execution domains. 3705 //===----------------------------------------------------------------------===// 3706 // 3707 // Some instructions go down the NEON pipeline, some go down the VFP pipeline, 3708 // and some can go down both. The vmov instructions go down the VFP pipeline, 3709 // but they can be changed to vorr equivalents that are executed by the NEON 3710 // pipeline. 3711 // 3712 // We use the following execution domain numbering: 3713 // 3714 enum ARMExeDomain { 3715 ExeGeneric = 0, 3716 ExeVFP = 1, 3717 ExeNEON = 2 3718 }; 3719 // 3720 // Also see ARMInstrFormats.td and Domain* enums in ARMBaseInfo.h 3721 // 3722 std::pair<uint16_t, uint16_t> 3723 ARMBaseInstrInfo::getExecutionDomain(const MachineInstr *MI) const { 3724 // VMOVD, VMOVRS and VMOVSR are VFP instructions, but can be changed to NEON 3725 // if they are not predicated. 3726 if (MI->getOpcode() == ARM::VMOVD && !isPredicated(MI)) 3727 return std::make_pair(ExeVFP, (1<<ExeVFP) | (1<<ExeNEON)); 3728 3729 // A9-like cores are particularly picky about mixing the two and want these 3730 // converted. 3731 if (Subtarget.isLikeA9() && !isPredicated(MI) && 3732 (MI->getOpcode() == ARM::VMOVRS || 3733 MI->getOpcode() == ARM::VMOVSR || 3734 MI->getOpcode() == ARM::VMOVS)) 3735 return std::make_pair(ExeVFP, (1<<ExeVFP) | (1<<ExeNEON)); 3736 3737 // No other instructions can be swizzled, so just determine their domain. 3738 unsigned Domain = MI->getDesc().TSFlags & ARMII::DomainMask; 3739 3740 if (Domain & ARMII::DomainNEON) 3741 return std::make_pair(ExeNEON, 0); 3742 3743 // Certain instructions can go either way on Cortex-A8. 3744 // Treat them as NEON instructions. 3745 if ((Domain & ARMII::DomainNEONA8) && Subtarget.isCortexA8()) 3746 return std::make_pair(ExeNEON, 0); 3747 3748 if (Domain & ARMII::DomainVFP) 3749 return std::make_pair(ExeVFP, 0); 3750 3751 return std::make_pair(ExeGeneric, 0); 3752 } 3753 3754 static unsigned getCorrespondingDRegAndLane(const TargetRegisterInfo *TRI, 3755 unsigned SReg, unsigned &Lane) { 3756 unsigned DReg = TRI->getMatchingSuperReg(SReg, ARM::ssub_0, &ARM::DPRRegClass); 3757 Lane = 0; 3758 3759 if (DReg != ARM::NoRegister) 3760 return DReg; 3761 3762 Lane = 1; 3763 DReg = TRI->getMatchingSuperReg(SReg, ARM::ssub_1, &ARM::DPRRegClass); 3764 3765 assert(DReg && "S-register with no D super-register?"); 3766 return DReg; 3767 } 3768 3769 /// getImplicitSPRUseForDPRUse - Given a use of a DPR register and lane, 3770 /// set ImplicitSReg to a register number that must be marked as implicit-use or 3771 /// zero if no register needs to be defined as implicit-use. 3772 /// 3773 /// If the function cannot determine if an SPR should be marked implicit use or 3774 /// not, it returns false. 3775 /// 3776 /// This function handles cases where an instruction is being modified from taking 3777 /// an SPR to a DPR[Lane]. A use of the DPR is being added, which may conflict 3778 /// with an earlier def of an SPR corresponding to DPR[Lane^1] (i.e. the other 3779 /// lane of the DPR). 3780 /// 3781 /// If the other SPR is defined, an implicit-use of it should be added. Else, 3782 /// (including the case where the DPR itself is defined), it should not. 3783 /// 3784 static bool getImplicitSPRUseForDPRUse(const TargetRegisterInfo *TRI, 3785 MachineInstr *MI, 3786 unsigned DReg, unsigned Lane, 3787 unsigned &ImplicitSReg) { 3788 // If the DPR is defined or used already, the other SPR lane will be chained 3789 // correctly, so there is nothing to be done. 3790 if (MI->definesRegister(DReg, TRI) || MI->readsRegister(DReg, TRI)) { 3791 ImplicitSReg = 0; 3792 return true; 3793 } 3794 3795 // Otherwise we need to go searching to see if the SPR is set explicitly. 3796 ImplicitSReg = TRI->getSubReg(DReg, 3797 (Lane & 1) ? ARM::ssub_0 : ARM::ssub_1); 3798 MachineBasicBlock::LivenessQueryResult LQR = 3799 MI->getParent()->computeRegisterLiveness(TRI, ImplicitSReg, MI); 3800 3801 if (LQR == MachineBasicBlock::LQR_Live) 3802 return true; 3803 else if (LQR == MachineBasicBlock::LQR_Unknown) 3804 return false; 3805 3806 // If the register is known not to be live, there is no need to add an 3807 // implicit-use. 3808 ImplicitSReg = 0; 3809 return true; 3810 } 3811 3812 void 3813 ARMBaseInstrInfo::setExecutionDomain(MachineInstr *MI, unsigned Domain) const { 3814 unsigned DstReg, SrcReg, DReg; 3815 unsigned Lane; 3816 MachineInstrBuilder MIB(MI); 3817 const TargetRegisterInfo *TRI = &getRegisterInfo(); 3818 switch (MI->getOpcode()) { 3819 default: 3820 llvm_unreachable("cannot handle opcode!"); 3821 break; 3822 case ARM::VMOVD: 3823 if (Domain != ExeNEON) 3824 break; 3825 3826 // Zap the predicate operands. 3827 assert(!isPredicated(MI) && "Cannot predicate a VORRd"); 3828 3829 // Source instruction is %DDst = VMOVD %DSrc, 14, %noreg (; implicits) 3830 DstReg = MI->getOperand(0).getReg(); 3831 SrcReg = MI->getOperand(1).getReg(); 3832 3833 for (unsigned i = MI->getDesc().getNumOperands(); i; --i) 3834 MI->RemoveOperand(i-1); 3835 3836 // Change to a %DDst = VORRd %DSrc, %DSrc, 14, %noreg (; implicits) 3837 MI->setDesc(get(ARM::VORRd)); 3838 AddDefaultPred(MIB.addReg(DstReg, RegState::Define) 3839 .addReg(SrcReg) 3840 .addReg(SrcReg)); 3841 break; 3842 case ARM::VMOVRS: 3843 if (Domain != ExeNEON) 3844 break; 3845 assert(!isPredicated(MI) && "Cannot predicate a VGETLN"); 3846 3847 // Source instruction is %RDst = VMOVRS %SSrc, 14, %noreg (; implicits) 3848 DstReg = MI->getOperand(0).getReg(); 3849 SrcReg = MI->getOperand(1).getReg(); 3850 3851 for (unsigned i = MI->getDesc().getNumOperands(); i; --i) 3852 MI->RemoveOperand(i-1); 3853 3854 DReg = getCorrespondingDRegAndLane(TRI, SrcReg, Lane); 3855 3856 // Convert to %RDst = VGETLNi32 %DSrc, Lane, 14, %noreg (; imps) 3857 // Note that DSrc has been widened and the other lane may be undef, which 3858 // contaminates the entire register. 3859 MI->setDesc(get(ARM::VGETLNi32)); 3860 AddDefaultPred(MIB.addReg(DstReg, RegState::Define) 3861 .addReg(DReg, RegState::Undef) 3862 .addImm(Lane)); 3863 3864 // The old source should be an implicit use, otherwise we might think it 3865 // was dead before here. 3866 MIB.addReg(SrcReg, RegState::Implicit); 3867 break; 3868 case ARM::VMOVSR: { 3869 if (Domain != ExeNEON) 3870 break; 3871 assert(!isPredicated(MI) && "Cannot predicate a VSETLN"); 3872 3873 // Source instruction is %SDst = VMOVSR %RSrc, 14, %noreg (; implicits) 3874 DstReg = MI->getOperand(0).getReg(); 3875 SrcReg = MI->getOperand(1).getReg(); 3876 3877 DReg = getCorrespondingDRegAndLane(TRI, DstReg, Lane); 3878 3879 unsigned ImplicitSReg; 3880 if (!getImplicitSPRUseForDPRUse(TRI, MI, DReg, Lane, ImplicitSReg)) 3881 break; 3882 3883 for (unsigned i = MI->getDesc().getNumOperands(); i; --i) 3884 MI->RemoveOperand(i-1); 3885 3886 // Convert to %DDst = VSETLNi32 %DDst, %RSrc, Lane, 14, %noreg (; imps) 3887 // Again DDst may be undefined at the beginning of this instruction. 3888 MI->setDesc(get(ARM::VSETLNi32)); 3889 MIB.addReg(DReg, RegState::Define) 3890 .addReg(DReg, getUndefRegState(!MI->readsRegister(DReg, TRI))) 3891 .addReg(SrcReg) 3892 .addImm(Lane); 3893 AddDefaultPred(MIB); 3894 3895 // The narrower destination must be marked as set to keep previous chains 3896 // in place. 3897 MIB.addReg(DstReg, RegState::Define | RegState::Implicit); 3898 if (ImplicitSReg != 0) 3899 MIB.addReg(ImplicitSReg, RegState::Implicit); 3900 break; 3901 } 3902 case ARM::VMOVS: { 3903 if (Domain != ExeNEON) 3904 break; 3905 3906 // Source instruction is %SDst = VMOVS %SSrc, 14, %noreg (; implicits) 3907 DstReg = MI->getOperand(0).getReg(); 3908 SrcReg = MI->getOperand(1).getReg(); 3909 3910 unsigned DstLane = 0, SrcLane = 0, DDst, DSrc; 3911 DDst = getCorrespondingDRegAndLane(TRI, DstReg, DstLane); 3912 DSrc = getCorrespondingDRegAndLane(TRI, SrcReg, SrcLane); 3913 3914 unsigned ImplicitSReg; 3915 if (!getImplicitSPRUseForDPRUse(TRI, MI, DSrc, SrcLane, ImplicitSReg)) 3916 break; 3917 3918 for (unsigned i = MI->getDesc().getNumOperands(); i; --i) 3919 MI->RemoveOperand(i-1); 3920 3921 if (DSrc == DDst) { 3922 // Destination can be: 3923 // %DDst = VDUPLN32d %DDst, Lane, 14, %noreg (; implicits) 3924 MI->setDesc(get(ARM::VDUPLN32d)); 3925 MIB.addReg(DDst, RegState::Define) 3926 .addReg(DDst, getUndefRegState(!MI->readsRegister(DDst, TRI))) 3927 .addImm(SrcLane); 3928 AddDefaultPred(MIB); 3929 3930 // Neither the source or the destination are naturally represented any 3931 // more, so add them in manually. 3932 MIB.addReg(DstReg, RegState::Implicit | RegState::Define); 3933 MIB.addReg(SrcReg, RegState::Implicit); 3934 if (ImplicitSReg != 0) 3935 MIB.addReg(ImplicitSReg, RegState::Implicit); 3936 break; 3937 } 3938 3939 // In general there's no single instruction that can perform an S <-> S 3940 // move in NEON space, but a pair of VEXT instructions *can* do the 3941 // job. It turns out that the VEXTs needed will only use DSrc once, with 3942 // the position based purely on the combination of lane-0 and lane-1 3943 // involved. For example 3944 // vmov s0, s2 -> vext.32 d0, d0, d1, #1 vext.32 d0, d0, d0, #1 3945 // vmov s1, s3 -> vext.32 d0, d1, d0, #1 vext.32 d0, d0, d0, #1 3946 // vmov s0, s3 -> vext.32 d0, d0, d0, #1 vext.32 d0, d1, d0, #1 3947 // vmov s1, s2 -> vext.32 d0, d0, d0, #1 vext.32 d0, d0, d1, #1 3948 // 3949 // Pattern of the MachineInstrs is: 3950 // %DDst = VEXTd32 %DSrc1, %DSrc2, Lane, 14, %noreg (;implicits) 3951 MachineInstrBuilder NewMIB; 3952 NewMIB = BuildMI(*MI->getParent(), MI, MI->getDebugLoc(), 3953 get(ARM::VEXTd32), DDst); 3954 3955 // On the first instruction, both DSrc and DDst may be <undef> if present. 3956 // Specifically when the original instruction didn't have them as an 3957 // <imp-use>. 3958 unsigned CurReg = SrcLane == 1 && DstLane == 1 ? DSrc : DDst; 3959 bool CurUndef = !MI->readsRegister(CurReg, TRI); 3960 NewMIB.addReg(CurReg, getUndefRegState(CurUndef)); 3961 3962 CurReg = SrcLane == 0 && DstLane == 0 ? DSrc : DDst; 3963 CurUndef = !MI->readsRegister(CurReg, TRI); 3964 NewMIB.addReg(CurReg, getUndefRegState(CurUndef)); 3965 3966 NewMIB.addImm(1); 3967 AddDefaultPred(NewMIB); 3968 3969 if (SrcLane == DstLane) 3970 NewMIB.addReg(SrcReg, RegState::Implicit); 3971 3972 MI->setDesc(get(ARM::VEXTd32)); 3973 MIB.addReg(DDst, RegState::Define); 3974 3975 // On the second instruction, DDst has definitely been defined above, so 3976 // it is not <undef>. DSrc, if present, can be <undef> as above. 3977 CurReg = SrcLane == 1 && DstLane == 0 ? DSrc : DDst; 3978 CurUndef = CurReg == DSrc && !MI->readsRegister(CurReg, TRI); 3979 MIB.addReg(CurReg, getUndefRegState(CurUndef)); 3980 3981 CurReg = SrcLane == 0 && DstLane == 1 ? DSrc : DDst; 3982 CurUndef = CurReg == DSrc && !MI->readsRegister(CurReg, TRI); 3983 MIB.addReg(CurReg, getUndefRegState(CurUndef)); 3984 3985 MIB.addImm(1); 3986 AddDefaultPred(MIB); 3987 3988 if (SrcLane != DstLane) 3989 MIB.addReg(SrcReg, RegState::Implicit); 3990 3991 // As before, the original destination is no longer represented, add it 3992 // implicitly. 3993 MIB.addReg(DstReg, RegState::Define | RegState::Implicit); 3994 if (ImplicitSReg != 0) 3995 MIB.addReg(ImplicitSReg, RegState::Implicit); 3996 break; 3997 } 3998 } 3999 4000 } 4001 4002 //===----------------------------------------------------------------------===// 4003 // Partial register updates 4004 //===----------------------------------------------------------------------===// 4005 // 4006 // Swift renames NEON registers with 64-bit granularity. That means any 4007 // instruction writing an S-reg implicitly reads the containing D-reg. The 4008 // problem is mostly avoided by translating f32 operations to v2f32 operations 4009 // on D-registers, but f32 loads are still a problem. 4010 // 4011 // These instructions can load an f32 into a NEON register: 4012 // 4013 // VLDRS - Only writes S, partial D update. 4014 // VLD1LNd32 - Writes all D-regs, explicit partial D update, 2 uops. 4015 // VLD1DUPd32 - Writes all D-regs, no partial reg update, 2 uops. 4016 // 4017 // FCONSTD can be used as a dependency-breaking instruction. 4018 4019 4020 unsigned ARMBaseInstrInfo:: 4021 getPartialRegUpdateClearance(const MachineInstr *MI, 4022 unsigned OpNum, 4023 const TargetRegisterInfo *TRI) const { 4024 // Only Swift has partial register update problems. 4025 if (!SwiftPartialUpdateClearance || !Subtarget.isSwift()) 4026 return 0; 4027 4028 assert(TRI && "Need TRI instance"); 4029 4030 const MachineOperand &MO = MI->getOperand(OpNum); 4031 if (MO.readsReg()) 4032 return 0; 4033 unsigned Reg = MO.getReg(); 4034 int UseOp = -1; 4035 4036 switch(MI->getOpcode()) { 4037 // Normal instructions writing only an S-register. 4038 case ARM::VLDRS: 4039 case ARM::FCONSTS: 4040 case ARM::VMOVSR: 4041 // rdar://problem/8791586 4042 case ARM::VMOVv8i8: 4043 case ARM::VMOVv4i16: 4044 case ARM::VMOVv2i32: 4045 case ARM::VMOVv2f32: 4046 case ARM::VMOVv1i64: 4047 UseOp = MI->findRegisterUseOperandIdx(Reg, false, TRI); 4048 break; 4049 4050 // Explicitly reads the dependency. 4051 case ARM::VLD1LNd32: 4052 UseOp = 1; 4053 break; 4054 default: 4055 return 0; 4056 } 4057 4058 // If this instruction actually reads a value from Reg, there is no unwanted 4059 // dependency. 4060 if (UseOp != -1 && MI->getOperand(UseOp).readsReg()) 4061 return 0; 4062 4063 // We must be able to clobber the whole D-reg. 4064 if (TargetRegisterInfo::isVirtualRegister(Reg)) { 4065 // Virtual register must be a foo:ssub_0<def,undef> operand. 4066 if (!MO.getSubReg() || MI->readsVirtualRegister(Reg)) 4067 return 0; 4068 } else if (ARM::SPRRegClass.contains(Reg)) { 4069 // Physical register: MI must define the full D-reg. 4070 unsigned DReg = TRI->getMatchingSuperReg(Reg, ARM::ssub_0, 4071 &ARM::DPRRegClass); 4072 if (!DReg || !MI->definesRegister(DReg, TRI)) 4073 return 0; 4074 } 4075 4076 // MI has an unwanted D-register dependency. 4077 // Avoid defs in the previous N instructrions. 4078 return SwiftPartialUpdateClearance; 4079 } 4080 4081 // Break a partial register dependency after getPartialRegUpdateClearance 4082 // returned non-zero. 4083 void ARMBaseInstrInfo:: 4084 breakPartialRegDependency(MachineBasicBlock::iterator MI, 4085 unsigned OpNum, 4086 const TargetRegisterInfo *TRI) const { 4087 assert(MI && OpNum < MI->getDesc().getNumDefs() && "OpNum is not a def"); 4088 assert(TRI && "Need TRI instance"); 4089 4090 const MachineOperand &MO = MI->getOperand(OpNum); 4091 unsigned Reg = MO.getReg(); 4092 assert(TargetRegisterInfo::isPhysicalRegister(Reg) && 4093 "Can't break virtual register dependencies."); 4094 unsigned DReg = Reg; 4095 4096 // If MI defines an S-reg, find the corresponding D super-register. 4097 if (ARM::SPRRegClass.contains(Reg)) { 4098 DReg = ARM::D0 + (Reg - ARM::S0) / 2; 4099 assert(TRI->isSuperRegister(Reg, DReg) && "Register enums broken"); 4100 } 4101 4102 assert(ARM::DPRRegClass.contains(DReg) && "Can only break D-reg deps"); 4103 assert(MI->definesRegister(DReg, TRI) && "MI doesn't clobber full D-reg"); 4104 4105 // FIXME: In some cases, VLDRS can be changed to a VLD1DUPd32 which defines 4106 // the full D-register by loading the same value to both lanes. The 4107 // instruction is micro-coded with 2 uops, so don't do this until we can 4108 // properly schedule micro-coded instuctions. The dispatcher stalls cause 4109 // too big regressions. 4110 4111 // Insert the dependency-breaking FCONSTD before MI. 4112 // 96 is the encoding of 0.5, but the actual value doesn't matter here. 4113 AddDefaultPred(BuildMI(*MI->getParent(), MI, MI->getDebugLoc(), 4114 get(ARM::FCONSTD), DReg).addImm(96)); 4115 MI->addRegisterKilled(DReg, TRI, true); 4116 } 4117 4118 bool ARMBaseInstrInfo::hasNOP() const { 4119 return (Subtarget.getFeatureBits() & ARM::HasV6T2Ops) != 0; 4120 } 4121