1 //===--- HexagonBitTracker.cpp --------------------------------------------===// 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 #include "llvm/CodeGen/MachineRegisterInfo.h" 11 #include "llvm/IR/Module.h" 12 #include "llvm/Support/Debug.h" 13 #include "llvm/Support/raw_ostream.h" 14 15 #include "Hexagon.h" 16 #include "HexagonInstrInfo.h" 17 #include "HexagonRegisterInfo.h" 18 #include "HexagonTargetMachine.h" 19 #include "HexagonBitTracker.h" 20 21 using namespace llvm; 22 23 typedef BitTracker BT; 24 25 HexagonEvaluator::HexagonEvaluator(const llvm::HexagonRegisterInfo &tri, 26 llvm::MachineRegisterInfo &mri, const llvm::HexagonInstrInfo &tii, 27 llvm::MachineFunction &mf) 28 : MachineEvaluator(tri, mri), MF(mf), MFI(*mf.getFrameInfo()), TII(tii) { 29 // Populate the VRX map (VR to extension-type). 30 // Go over all the formal parameters of the function. If a given parameter 31 // P is sign- or zero-extended, locate the virtual register holding that 32 // parameter and create an entry in the VRX map indicating the type of ex- 33 // tension (and the source type). 34 // This is a bit complicated to do accurately, since the memory layout in- 35 // formation is necessary to precisely determine whether an aggregate para- 36 // meter will be passed in a register or in memory. What is given in MRI 37 // is the association between the physical register that is live-in (i.e. 38 // holds an argument), and the virtual register that this value will be 39 // copied into. This, by itself, is not sufficient to map back the virtual 40 // register to a formal parameter from Function (since consecutive live-ins 41 // from MRI may not correspond to consecutive formal parameters from Func- 42 // tion). To avoid the complications with in-memory arguments, only consi- 43 // der the initial sequence of formal parameters that are known to be 44 // passed via registers. 45 unsigned AttrIdx = 0; 46 unsigned InVirtReg, InPhysReg = 0; 47 const Function &F = *MF.getFunction(); 48 typedef Function::const_arg_iterator arg_iterator; 49 for (arg_iterator I = F.arg_begin(), E = F.arg_end(); I != E; ++I) { 50 AttrIdx++; 51 const Argument &Arg = *I; 52 Type *ATy = Arg.getType(); 53 unsigned Width = 0; 54 if (ATy->isIntegerTy()) 55 Width = ATy->getIntegerBitWidth(); 56 else if (ATy->isPointerTy()) 57 Width = 32; 58 // If pointer size is not set through target data, it will default to 59 // Module::AnyPointerSize. 60 if (Width == 0 || Width > 64) 61 break; 62 InPhysReg = getNextPhysReg(InPhysReg, Width); 63 if (!InPhysReg) 64 break; 65 InVirtReg = getVirtRegFor(InPhysReg); 66 if (!InVirtReg) 67 continue; 68 AttributeSet Attrs = F.getAttributes(); 69 if (Attrs.hasAttribute(AttrIdx, Attribute::SExt)) 70 VRX.insert(std::make_pair(InVirtReg, ExtType(ExtType::SExt, Width))); 71 else if (Attrs.hasAttribute(AttrIdx, Attribute::ZExt)) 72 VRX.insert(std::make_pair(InVirtReg, ExtType(ExtType::ZExt, Width))); 73 } 74 } 75 76 77 BT::BitMask HexagonEvaluator::mask(unsigned Reg, unsigned Sub) const { 78 if (Sub == 0) 79 return MachineEvaluator::mask(Reg, 0); 80 using namespace Hexagon; 81 const TargetRegisterClass *RC = MRI.getRegClass(Reg); 82 unsigned ID = RC->getID(); 83 uint16_t RW = getRegBitWidth(RegisterRef(Reg, Sub)); 84 switch (ID) { 85 case DoubleRegsRegClassID: 86 return (Sub == subreg_loreg) ? BT::BitMask(0, RW-1) 87 : BT::BitMask(RW, 2*RW-1); 88 default: 89 break; 90 } 91 #ifndef NDEBUG 92 dbgs() << PrintReg(Reg, &TRI, Sub) << '\n'; 93 #endif 94 llvm_unreachable("Unexpected register/subregister"); 95 } 96 97 98 namespace { 99 struct RegisterRefs : public std::vector<BT::RegisterRef> { 100 typedef std::vector<BT::RegisterRef> Base; 101 RegisterRefs(const MachineInstr *MI); 102 const BT::RegisterRef &operator[](unsigned n) const { 103 // The main purpose of this operator is to assert with bad argument. 104 assert(n < size()); 105 return Base::operator[](n); 106 } 107 }; 108 109 RegisterRefs::RegisterRefs(const MachineInstr *MI) 110 : Base(MI->getNumOperands()) { 111 for (unsigned i = 0, n = size(); i < n; ++i) { 112 const MachineOperand &MO = MI->getOperand(i); 113 if (MO.isReg()) 114 at(i) = BT::RegisterRef(MO); 115 // For indices that don't correspond to registers, the entry will 116 // remain constructed via the default constructor. 117 } 118 } 119 } 120 121 122 bool HexagonEvaluator::evaluate(const MachineInstr *MI, 123 const CellMapType &Inputs, CellMapType &Outputs) const { 124 unsigned NumDefs = 0; 125 126 // Sanity verification: there should not be any defs with subregisters. 127 for (unsigned i = 0, n = MI->getNumOperands(); i < n; ++i) { 128 const MachineOperand &MO = MI->getOperand(i); 129 if (!MO.isReg() || !MO.isDef()) 130 continue; 131 NumDefs++; 132 assert(MO.getSubReg() == 0); 133 } 134 135 if (NumDefs == 0) 136 return false; 137 138 if (MI->mayLoad()) 139 return evaluateLoad(MI, Inputs, Outputs); 140 141 // Check COPY instructions that copy formal parameters into virtual 142 // registers. Such parameters can be sign- or zero-extended at the 143 // call site, and we should take advantage of this knowledge. The MRI 144 // keeps a list of pairs of live-in physical and virtual registers, 145 // which provides information about which virtual registers will hold 146 // the argument values. The function will still contain instructions 147 // defining those virtual registers, and in practice those are COPY 148 // instructions from a physical to a virtual register. In such cases, 149 // applying the argument extension to the virtual register can be seen 150 // as simply mirroring the extension that had already been applied to 151 // the physical register at the call site. If the defining instruction 152 // was not a COPY, it would not be clear how to mirror that extension 153 // on the callee's side. For that reason, only check COPY instructions 154 // for potential extensions. 155 if (MI->isCopy()) { 156 if (evaluateFormalCopy(MI, Inputs, Outputs)) 157 return true; 158 } 159 160 // Beyond this point, if any operand is a global, skip that instruction. 161 // The reason is that certain instructions that can take an immediate 162 // operand can also have a global symbol in that operand. To avoid 163 // checking what kind of operand a given instruction has individually 164 // for each instruction, do it here. Global symbols as operands gene- 165 // rally do not provide any useful information. 166 for (unsigned i = 0, n = MI->getNumOperands(); i < n; ++i) { 167 const MachineOperand &MO = MI->getOperand(i); 168 if (MO.isGlobal() || MO.isBlockAddress() || MO.isSymbol() || MO.isJTI() || 169 MO.isCPI()) 170 return false; 171 } 172 173 RegisterRefs Reg(MI); 174 unsigned Opc = MI->getOpcode(); 175 using namespace Hexagon; 176 #define op(i) MI->getOperand(i) 177 #define rc(i) RegisterCell::ref(getCell(Reg[i],Inputs)) 178 #define im(i) MI->getOperand(i).getImm() 179 180 // If the instruction has no register operands, skip it. 181 if (Reg.size() == 0) 182 return false; 183 184 // Record result for register in operand 0. 185 auto rr0 = [this,Reg] (const BT::RegisterCell &Val, CellMapType &Outputs) 186 -> bool { 187 putCell(Reg[0], Val, Outputs); 188 return true; 189 }; 190 // Get the cell corresponding to the N-th operand. 191 auto cop = [this,Reg,MI,Inputs] (unsigned N, uint16_t W) 192 -> BT::RegisterCell { 193 const MachineOperand &Op = MI->getOperand(N); 194 if (Op.isImm()) 195 return eIMM(Op.getImm(), W); 196 if (!Op.isReg()) 197 return RegisterCell::self(0, W); 198 assert(getRegBitWidth(Reg[N]) == W && "Register width mismatch"); 199 return rc(N); 200 }; 201 // Extract RW low bits of the cell. 202 auto lo = [this] (const BT::RegisterCell &RC, uint16_t RW) 203 -> BT::RegisterCell { 204 assert(RW <= RC.width()); 205 return eXTR(RC, 0, RW); 206 }; 207 // Extract RW high bits of the cell. 208 auto hi = [this] (const BT::RegisterCell &RC, uint16_t RW) 209 -> BT::RegisterCell { 210 uint16_t W = RC.width(); 211 assert(RW <= W); 212 return eXTR(RC, W-RW, W); 213 }; 214 // Extract N-th halfword (counting from the least significant position). 215 auto half = [this] (const BT::RegisterCell &RC, unsigned N) 216 -> BT::RegisterCell { 217 assert(N*16+16 <= RC.width()); 218 return eXTR(RC, N*16, N*16+16); 219 }; 220 // Shuffle bits (pick even/odd from cells and merge into result). 221 auto shuffle = [this] (const BT::RegisterCell &Rs, const BT::RegisterCell &Rt, 222 uint16_t BW, bool Odd) -> BT::RegisterCell { 223 uint16_t I = Odd, Ws = Rs.width(); 224 assert(Ws == Rt.width()); 225 RegisterCell RC = eXTR(Rt, I*BW, I*BW+BW).cat(eXTR(Rs, I*BW, I*BW+BW)); 226 I += 2; 227 while (I*BW < Ws) { 228 RC.cat(eXTR(Rt, I*BW, I*BW+BW)).cat(eXTR(Rs, I*BW, I*BW+BW)); 229 I += 2; 230 } 231 return RC; 232 }; 233 234 // The bitwidth of the 0th operand. In most (if not all) of the 235 // instructions below, the 0th operand is the defined register. 236 // Pre-compute the bitwidth here, because it is needed in many cases 237 // cases below. 238 uint16_t W0 = (Reg[0].Reg != 0) ? getRegBitWidth(Reg[0]) : 0; 239 240 switch (Opc) { 241 // Transfer immediate: 242 243 case A2_tfrsi: 244 case A2_tfrpi: 245 case CONST32: 246 case CONST32_Float_Real: 247 case CONST32_Int_Real: 248 case CONST64_Float_Real: 249 case CONST64_Int_Real: 250 return rr0(eIMM(im(1), W0), Outputs); 251 case TFR_PdFalse: 252 return rr0(RegisterCell(W0).fill(0, W0, BT::BitValue::Zero), Outputs); 253 case TFR_PdTrue: 254 return rr0(RegisterCell(W0).fill(0, W0, BT::BitValue::One), Outputs); 255 case TFR_FI: { 256 int FI = op(1).getIndex(); 257 int Off = op(2).getImm(); 258 unsigned A = MFI.getObjectAlignment(FI) + std::abs(Off); 259 unsigned L = Log2_32(A); 260 RegisterCell RC = RegisterCell::self(Reg[0].Reg, W0); 261 RC.fill(0, L, BT::BitValue::Zero); 262 return rr0(RC, Outputs); 263 } 264 265 // Transfer register: 266 267 case A2_tfr: 268 case A2_tfrp: 269 case C2_pxfer_map: 270 return rr0(rc(1), Outputs); 271 case C2_tfrpr: { 272 uint16_t RW = W0; 273 uint16_t PW = 8; // XXX Pred size: getRegBitWidth(Reg[1]); 274 assert(PW <= RW); 275 RegisterCell PC = eXTR(rc(1), 0, PW); 276 RegisterCell RC = RegisterCell(RW).insert(PC, BT::BitMask(0, PW-1)); 277 RC.fill(PW, RW, BT::BitValue::Zero); 278 return rr0(RC, Outputs); 279 } 280 case C2_tfrrp: { 281 RegisterCell RC = RegisterCell::self(Reg[0].Reg, W0); 282 W0 = 8; // XXX Pred size 283 return rr0(eINS(RC, eXTR(rc(1), 0, W0), 0), Outputs); 284 } 285 286 // Arithmetic: 287 288 case A2_abs: 289 case A2_absp: 290 // TODO 291 break; 292 293 case A2_addsp: { 294 uint16_t W1 = getRegBitWidth(Reg[1]); 295 assert(W0 == 64 && W1 == 32); 296 RegisterCell CW = RegisterCell(W0).insert(rc(1), BT::BitMask(0, W1-1)); 297 RegisterCell RC = eADD(eSXT(CW, W1), rc(2)); 298 return rr0(RC, Outputs); 299 } 300 case A2_add: 301 case A2_addp: 302 return rr0(eADD(rc(1), rc(2)), Outputs); 303 case A2_addi: 304 return rr0(eADD(rc(1), eIMM(im(2), W0)), Outputs); 305 case S4_addi_asl_ri: { 306 RegisterCell RC = eADD(eIMM(im(1), W0), eASL(rc(2), im(3))); 307 return rr0(RC, Outputs); 308 } 309 case S4_addi_lsr_ri: { 310 RegisterCell RC = eADD(eIMM(im(1), W0), eLSR(rc(2), im(3))); 311 return rr0(RC, Outputs); 312 } 313 case S4_addaddi: { 314 RegisterCell RC = eADD(rc(1), eADD(rc(2), eIMM(im(3), W0))); 315 return rr0(RC, Outputs); 316 } 317 case M4_mpyri_addi: { 318 RegisterCell M = eMLS(rc(2), eIMM(im(3), W0)); 319 RegisterCell RC = eADD(eIMM(im(1), W0), lo(M, W0)); 320 return rr0(RC, Outputs); 321 } 322 case M4_mpyrr_addi: { 323 RegisterCell M = eMLS(rc(2), rc(3)); 324 RegisterCell RC = eADD(eIMM(im(1), W0), lo(M, W0)); 325 return rr0(RC, Outputs); 326 } 327 case M4_mpyri_addr_u2: { 328 RegisterCell M = eMLS(eIMM(im(2), W0), rc(3)); 329 RegisterCell RC = eADD(rc(1), lo(M, W0)); 330 return rr0(RC, Outputs); 331 } 332 case M4_mpyri_addr: { 333 RegisterCell M = eMLS(rc(2), eIMM(im(3), W0)); 334 RegisterCell RC = eADD(rc(1), lo(M, W0)); 335 return rr0(RC, Outputs); 336 } 337 case M4_mpyrr_addr: { 338 RegisterCell M = eMLS(rc(2), rc(3)); 339 RegisterCell RC = eADD(rc(1), lo(M, W0)); 340 return rr0(RC, Outputs); 341 } 342 case S4_subaddi: { 343 RegisterCell RC = eADD(rc(1), eSUB(eIMM(im(2), W0), rc(3))); 344 return rr0(RC, Outputs); 345 } 346 case M2_accii: { 347 RegisterCell RC = eADD(rc(1), eADD(rc(2), eIMM(im(3), W0))); 348 return rr0(RC, Outputs); 349 } 350 case M2_acci: { 351 RegisterCell RC = eADD(rc(1), eADD(rc(2), rc(3))); 352 return rr0(RC, Outputs); 353 } 354 case M2_subacc: { 355 RegisterCell RC = eADD(rc(1), eSUB(rc(2), rc(3))); 356 return rr0(RC, Outputs); 357 } 358 case S2_addasl_rrri: { 359 RegisterCell RC = eADD(rc(1), eASL(rc(2), im(3))); 360 return rr0(RC, Outputs); 361 } 362 case C4_addipc: { 363 RegisterCell RPC = RegisterCell::self(Reg[0].Reg, W0); 364 RPC.fill(0, 2, BT::BitValue::Zero); 365 return rr0(eADD(RPC, eIMM(im(2), W0)), Outputs); 366 } 367 case A2_sub: 368 case A2_subp: 369 return rr0(eSUB(rc(1), rc(2)), Outputs); 370 case A2_subri: 371 return rr0(eSUB(eIMM(im(1), W0), rc(2)), Outputs); 372 case S4_subi_asl_ri: { 373 RegisterCell RC = eSUB(eIMM(im(1), W0), eASL(rc(2), im(3))); 374 return rr0(RC, Outputs); 375 } 376 case S4_subi_lsr_ri: { 377 RegisterCell RC = eSUB(eIMM(im(1), W0), eLSR(rc(2), im(3))); 378 return rr0(RC, Outputs); 379 } 380 case M2_naccii: { 381 RegisterCell RC = eSUB(rc(1), eADD(rc(2), eIMM(im(3), W0))); 382 return rr0(RC, Outputs); 383 } 384 case M2_nacci: { 385 RegisterCell RC = eSUB(rc(1), eADD(rc(2), rc(3))); 386 return rr0(RC, Outputs); 387 } 388 // 32-bit negation is done by "Rd = A2_subri 0, Rs" 389 case A2_negp: 390 return rr0(eSUB(eIMM(0, W0), rc(1)), Outputs); 391 392 case M2_mpy_up: { 393 RegisterCell M = eMLS(rc(1), rc(2)); 394 return rr0(hi(M, W0), Outputs); 395 } 396 case M2_dpmpyss_s0: 397 return rr0(eMLS(rc(1), rc(2)), Outputs); 398 case M2_dpmpyss_acc_s0: 399 return rr0(eADD(rc(1), eMLS(rc(2), rc(3))), Outputs); 400 case M2_dpmpyss_nac_s0: 401 return rr0(eSUB(rc(1), eMLS(rc(2), rc(3))), Outputs); 402 case M2_mpyi: { 403 RegisterCell M = eMLS(rc(1), rc(2)); 404 return rr0(lo(M, W0), Outputs); 405 } 406 case M2_macsip: { 407 RegisterCell M = eMLS(rc(2), eIMM(im(3), W0)); 408 RegisterCell RC = eADD(rc(1), lo(M, W0)); 409 return rr0(RC, Outputs); 410 } 411 case M2_macsin: { 412 RegisterCell M = eMLS(rc(2), eIMM(im(3), W0)); 413 RegisterCell RC = eSUB(rc(1), lo(M, W0)); 414 return rr0(RC, Outputs); 415 } 416 case M2_maci: { 417 RegisterCell M = eMLS(rc(2), rc(3)); 418 RegisterCell RC = eADD(rc(1), lo(M, W0)); 419 return rr0(RC, Outputs); 420 } 421 case M2_mpysmi: { 422 RegisterCell M = eMLS(rc(1), eIMM(im(2), W0)); 423 return rr0(lo(M, 32), Outputs); 424 } 425 case M2_mpysin: { 426 RegisterCell M = eMLS(rc(1), eIMM(-im(2), W0)); 427 return rr0(lo(M, 32), Outputs); 428 } 429 case M2_mpysip: { 430 RegisterCell M = eMLS(rc(1), eIMM(im(2), W0)); 431 return rr0(lo(M, 32), Outputs); 432 } 433 case M2_mpyu_up: { 434 RegisterCell M = eMLU(rc(1), rc(2)); 435 return rr0(hi(M, W0), Outputs); 436 } 437 case M2_dpmpyuu_s0: 438 return rr0(eMLU(rc(1), rc(2)), Outputs); 439 case M2_dpmpyuu_acc_s0: 440 return rr0(eADD(rc(1), eMLU(rc(2), rc(3))), Outputs); 441 case M2_dpmpyuu_nac_s0: 442 return rr0(eSUB(rc(1), eMLU(rc(2), rc(3))), Outputs); 443 //case M2_mpysu_up: 444 445 // Logical/bitwise: 446 447 case A2_andir: 448 return rr0(eAND(rc(1), eIMM(im(2), W0)), Outputs); 449 case A2_and: 450 case A2_andp: 451 return rr0(eAND(rc(1), rc(2)), Outputs); 452 case A4_andn: 453 case A4_andnp: 454 return rr0(eAND(rc(1), eNOT(rc(2))), Outputs); 455 case S4_andi_asl_ri: { 456 RegisterCell RC = eAND(eIMM(im(1), W0), eASL(rc(2), im(3))); 457 return rr0(RC, Outputs); 458 } 459 case S4_andi_lsr_ri: { 460 RegisterCell RC = eAND(eIMM(im(1), W0), eLSR(rc(2), im(3))); 461 return rr0(RC, Outputs); 462 } 463 case M4_and_and: 464 return rr0(eAND(rc(1), eAND(rc(2), rc(3))), Outputs); 465 case M4_and_andn: 466 return rr0(eAND(rc(1), eAND(rc(2), eNOT(rc(3)))), Outputs); 467 case M4_and_or: 468 return rr0(eAND(rc(1), eORL(rc(2), rc(3))), Outputs); 469 case M4_and_xor: 470 return rr0(eAND(rc(1), eXOR(rc(2), rc(3))), Outputs); 471 case A2_orir: 472 return rr0(eORL(rc(1), eIMM(im(2), W0)), Outputs); 473 case A2_or: 474 case A2_orp: 475 return rr0(eORL(rc(1), rc(2)), Outputs); 476 case A4_orn: 477 case A4_ornp: 478 return rr0(eORL(rc(1), eNOT(rc(2))), Outputs); 479 case S4_ori_asl_ri: { 480 RegisterCell RC = eORL(eIMM(im(1), W0), eASL(rc(2), im(3))); 481 return rr0(RC, Outputs); 482 } 483 case S4_ori_lsr_ri: { 484 RegisterCell RC = eORL(eIMM(im(1), W0), eLSR(rc(2), im(3))); 485 return rr0(RC, Outputs); 486 } 487 case M4_or_and: 488 return rr0(eORL(rc(1), eAND(rc(2), rc(3))), Outputs); 489 case M4_or_andn: 490 return rr0(eORL(rc(1), eAND(rc(2), eNOT(rc(3)))), Outputs); 491 case S4_or_andi: 492 case S4_or_andix: { 493 RegisterCell RC = eORL(rc(1), eAND(rc(2), eIMM(im(3), W0))); 494 return rr0(RC, Outputs); 495 } 496 case S4_or_ori: { 497 RegisterCell RC = eORL(rc(1), eORL(rc(2), eIMM(im(3), W0))); 498 return rr0(RC, Outputs); 499 } 500 case M4_or_or: 501 return rr0(eORL(rc(1), eORL(rc(2), rc(3))), Outputs); 502 case M4_or_xor: 503 return rr0(eORL(rc(1), eXOR(rc(2), rc(3))), Outputs); 504 case A2_xor: 505 case A2_xorp: 506 return rr0(eXOR(rc(1), rc(2)), Outputs); 507 case M4_xor_and: 508 return rr0(eXOR(rc(1), eAND(rc(2), rc(3))), Outputs); 509 case M4_xor_andn: 510 return rr0(eXOR(rc(1), eAND(rc(2), eNOT(rc(3)))), Outputs); 511 case M4_xor_or: 512 return rr0(eXOR(rc(1), eORL(rc(2), rc(3))), Outputs); 513 case M4_xor_xacc: 514 return rr0(eXOR(rc(1), eXOR(rc(2), rc(3))), Outputs); 515 case A2_not: 516 case A2_notp: 517 return rr0(eNOT(rc(1)), Outputs); 518 519 case S2_asl_i_r: 520 case S2_asl_i_p: 521 return rr0(eASL(rc(1), im(2)), Outputs); 522 case A2_aslh: 523 return rr0(eASL(rc(1), 16), Outputs); 524 case S2_asl_i_r_acc: 525 case S2_asl_i_p_acc: 526 return rr0(eADD(rc(1), eASL(rc(2), im(3))), Outputs); 527 case S2_asl_i_r_nac: 528 case S2_asl_i_p_nac: 529 return rr0(eSUB(rc(1), eASL(rc(2), im(3))), Outputs); 530 case S2_asl_i_r_and: 531 case S2_asl_i_p_and: 532 return rr0(eAND(rc(1), eASL(rc(2), im(3))), Outputs); 533 case S2_asl_i_r_or: 534 case S2_asl_i_p_or: 535 return rr0(eORL(rc(1), eASL(rc(2), im(3))), Outputs); 536 case S2_asl_i_r_xacc: 537 case S2_asl_i_p_xacc: 538 return rr0(eXOR(rc(1), eASL(rc(2), im(3))), Outputs); 539 case S2_asl_i_vh: 540 case S2_asl_i_vw: 541 // TODO 542 break; 543 544 case S2_asr_i_r: 545 case S2_asr_i_p: 546 return rr0(eASR(rc(1), im(2)), Outputs); 547 case A2_asrh: 548 return rr0(eASR(rc(1), 16), Outputs); 549 case S2_asr_i_r_acc: 550 case S2_asr_i_p_acc: 551 return rr0(eADD(rc(1), eASR(rc(2), im(3))), Outputs); 552 case S2_asr_i_r_nac: 553 case S2_asr_i_p_nac: 554 return rr0(eSUB(rc(1), eASR(rc(2), im(3))), Outputs); 555 case S2_asr_i_r_and: 556 case S2_asr_i_p_and: 557 return rr0(eAND(rc(1), eASR(rc(2), im(3))), Outputs); 558 case S2_asr_i_r_or: 559 case S2_asr_i_p_or: 560 return rr0(eORL(rc(1), eASR(rc(2), im(3))), Outputs); 561 case S2_asr_i_r_rnd: { 562 // The input is first sign-extended to 64 bits, then the output 563 // is truncated back to 32 bits. 564 assert(W0 == 32); 565 RegisterCell XC = eSXT(rc(1).cat(eIMM(0, W0)), W0); 566 RegisterCell RC = eASR(eADD(eASR(XC, im(2)), eIMM(1, 2*W0)), 1); 567 return rr0(eXTR(RC, 0, W0), Outputs); 568 } 569 case S2_asr_i_r_rnd_goodsyntax: { 570 int64_t S = im(2); 571 if (S == 0) 572 return rr0(rc(1), Outputs); 573 // Result: S2_asr_i_r_rnd Rs, u5-1 574 RegisterCell XC = eSXT(rc(1).cat(eIMM(0, W0)), W0); 575 RegisterCell RC = eLSR(eADD(eASR(XC, S-1), eIMM(1, 2*W0)), 1); 576 return rr0(eXTR(RC, 0, W0), Outputs); 577 } 578 case S2_asr_r_vh: 579 case S2_asr_i_vw: 580 case S2_asr_i_svw_trun: 581 // TODO 582 break; 583 584 case S2_lsr_i_r: 585 case S2_lsr_i_p: 586 return rr0(eLSR(rc(1), im(2)), Outputs); 587 case S2_lsr_i_r_acc: 588 case S2_lsr_i_p_acc: 589 return rr0(eADD(rc(1), eLSR(rc(2), im(3))), Outputs); 590 case S2_lsr_i_r_nac: 591 case S2_lsr_i_p_nac: 592 return rr0(eSUB(rc(1), eLSR(rc(2), im(3))), Outputs); 593 case S2_lsr_i_r_and: 594 case S2_lsr_i_p_and: 595 return rr0(eAND(rc(1), eLSR(rc(2), im(3))), Outputs); 596 case S2_lsr_i_r_or: 597 case S2_lsr_i_p_or: 598 return rr0(eORL(rc(1), eLSR(rc(2), im(3))), Outputs); 599 case S2_lsr_i_r_xacc: 600 case S2_lsr_i_p_xacc: 601 return rr0(eXOR(rc(1), eLSR(rc(2), im(3))), Outputs); 602 603 case S2_clrbit_i: { 604 RegisterCell RC = rc(1); 605 RC[im(2)] = BT::BitValue::Zero; 606 return rr0(RC, Outputs); 607 } 608 case S2_setbit_i: { 609 RegisterCell RC = rc(1); 610 RC[im(2)] = BT::BitValue::One; 611 return rr0(RC, Outputs); 612 } 613 case S2_togglebit_i: { 614 RegisterCell RC = rc(1); 615 uint16_t BX = im(2); 616 RC[BX] = RC[BX].is(0) ? BT::BitValue::One 617 : RC[BX].is(1) ? BT::BitValue::Zero 618 : BT::BitValue::self(); 619 return rr0(RC, Outputs); 620 } 621 622 case A4_bitspliti: { 623 uint16_t W1 = getRegBitWidth(Reg[1]); 624 uint16_t BX = im(2); 625 // Res.uw[1] = Rs[bx+1:], Res.uw[0] = Rs[0:bx] 626 const BT::BitValue Zero = BT::BitValue::Zero; 627 RegisterCell RZ = RegisterCell(W0).fill(BX, W1, Zero) 628 .fill(W1+(W1-BX), W0, Zero); 629 RegisterCell BF1 = eXTR(rc(1), 0, BX), BF2 = eXTR(rc(1), BX, W1); 630 RegisterCell RC = eINS(eINS(RZ, BF1, 0), BF2, W1); 631 return rr0(RC, Outputs); 632 } 633 case S4_extract: 634 case S4_extractp: 635 case S2_extractu: 636 case S2_extractup: { 637 uint16_t Wd = im(2), Of = im(3); 638 assert(Wd <= W0); 639 if (Wd == 0) 640 return rr0(eIMM(0, W0), Outputs); 641 // If the width extends beyond the register size, pad the register 642 // with 0 bits. 643 RegisterCell Pad = (Wd+Of > W0) ? rc(1).cat(eIMM(0, Wd+Of-W0)) : rc(1); 644 RegisterCell Ext = eXTR(Pad, Of, Wd+Of); 645 // Ext is short, need to extend it with 0s or sign bit. 646 RegisterCell RC = RegisterCell(W0).insert(Ext, BT::BitMask(0, Wd-1)); 647 if (Opc == S2_extractu || Opc == S2_extractup) 648 return rr0(eZXT(RC, Wd), Outputs); 649 return rr0(eSXT(RC, Wd), Outputs); 650 } 651 case S2_insert: 652 case S2_insertp: { 653 uint16_t Wd = im(3), Of = im(4); 654 assert(Wd < W0 && Of < W0); 655 // If Wd+Of exceeds W0, the inserted bits are truncated. 656 if (Wd+Of > W0) 657 Wd = W0-Of; 658 if (Wd == 0) 659 return rr0(rc(1), Outputs); 660 return rr0(eINS(rc(1), eXTR(rc(2), 0, Wd), Of), Outputs); 661 } 662 663 // Bit permutations: 664 665 case A2_combineii: 666 case A4_combineii: 667 case A4_combineir: 668 case A4_combineri: 669 case A2_combinew: 670 assert(W0 % 2 == 0); 671 return rr0(cop(2, W0/2).cat(cop(1, W0/2)), Outputs); 672 case A2_combine_ll: 673 case A2_combine_lh: 674 case A2_combine_hl: 675 case A2_combine_hh: { 676 assert(W0 == 32); 677 assert(getRegBitWidth(Reg[1]) == 32 && getRegBitWidth(Reg[2]) == 32); 678 // Low half in the output is 0 for _ll and _hl, 1 otherwise: 679 unsigned LoH = !(Opc == A2_combine_ll || Opc == A2_combine_hl); 680 // High half in the output is 0 for _ll and _lh, 1 otherwise: 681 unsigned HiH = !(Opc == A2_combine_ll || Opc == A2_combine_lh); 682 RegisterCell R1 = rc(1); 683 RegisterCell R2 = rc(2); 684 RegisterCell RC = half(R2, LoH).cat(half(R1, HiH)); 685 return rr0(RC, Outputs); 686 } 687 case S2_packhl: { 688 assert(W0 == 64); 689 assert(getRegBitWidth(Reg[1]) == 32 && getRegBitWidth(Reg[2]) == 32); 690 RegisterCell R1 = rc(1); 691 RegisterCell R2 = rc(2); 692 RegisterCell RC = half(R2, 0).cat(half(R1, 0)).cat(half(R2, 1)) 693 .cat(half(R1, 1)); 694 return rr0(RC, Outputs); 695 } 696 case S2_shuffeb: { 697 RegisterCell RC = shuffle(rc(1), rc(2), 8, false); 698 return rr0(RC, Outputs); 699 } 700 case S2_shuffeh: { 701 RegisterCell RC = shuffle(rc(1), rc(2), 16, false); 702 return rr0(RC, Outputs); 703 } 704 case S2_shuffob: { 705 RegisterCell RC = shuffle(rc(1), rc(2), 8, true); 706 return rr0(RC, Outputs); 707 } 708 case S2_shuffoh: { 709 RegisterCell RC = shuffle(rc(1), rc(2), 16, true); 710 return rr0(RC, Outputs); 711 } 712 case C2_mask: { 713 uint16_t WR = W0; 714 uint16_t WP = 8; // XXX Pred size: getRegBitWidth(Reg[1]); 715 assert(WR == 64 && WP == 8); 716 RegisterCell R1 = rc(1); 717 RegisterCell RC(WR); 718 for (uint16_t i = 0; i < WP; ++i) { 719 const BT::BitValue &V = R1[i]; 720 BT::BitValue F = (V.is(0) || V.is(1)) ? V : BT::BitValue::self(); 721 RC.fill(i*8, i*8+8, F); 722 } 723 return rr0(RC, Outputs); 724 } 725 726 // Mux: 727 728 case C2_muxii: 729 case C2_muxir: 730 case C2_muxri: 731 case C2_mux: { 732 BT::BitValue PC0 = rc(1)[0]; 733 RegisterCell R2 = cop(2, W0); 734 RegisterCell R3 = cop(3, W0); 735 if (PC0.is(0) || PC0.is(1)) 736 return rr0(RegisterCell::ref(PC0 ? R2 : R3), Outputs); 737 R2.meet(R3, Reg[0].Reg); 738 return rr0(R2, Outputs); 739 } 740 case C2_vmux: 741 // TODO 742 break; 743 744 // Sign- and zero-extension: 745 746 case A2_sxtb: 747 return rr0(eSXT(rc(1), 8), Outputs); 748 case A2_sxth: 749 return rr0(eSXT(rc(1), 16), Outputs); 750 case A2_sxtw: { 751 uint16_t W1 = getRegBitWidth(Reg[1]); 752 assert(W0 == 64 && W1 == 32); 753 RegisterCell RC = eSXT(rc(1).cat(eIMM(0, W1)), W1); 754 return rr0(RC, Outputs); 755 } 756 case A2_zxtb: 757 return rr0(eZXT(rc(1), 8), Outputs); 758 case A2_zxth: 759 return rr0(eZXT(rc(1), 16), Outputs); 760 761 // Bit count: 762 763 case S2_cl0: 764 case S2_cl0p: 765 // Always produce a 32-bit result. 766 return rr0(eCLB(rc(1), 0/*bit*/, 32), Outputs); 767 case S2_cl1: 768 case S2_cl1p: 769 return rr0(eCLB(rc(1), 1/*bit*/, 32), Outputs); 770 case S2_clb: 771 case S2_clbp: { 772 uint16_t W1 = getRegBitWidth(Reg[1]); 773 RegisterCell R1 = rc(1); 774 BT::BitValue TV = R1[W1-1]; 775 if (TV.is(0) || TV.is(1)) 776 return rr0(eCLB(R1, TV, 32), Outputs); 777 break; 778 } 779 case S2_ct0: 780 case S2_ct0p: 781 return rr0(eCTB(rc(1), 0/*bit*/, 32), Outputs); 782 case S2_ct1: 783 case S2_ct1p: 784 return rr0(eCTB(rc(1), 1/*bit*/, 32), Outputs); 785 case S5_popcountp: 786 // TODO 787 break; 788 789 case C2_all8: { 790 RegisterCell P1 = rc(1); 791 bool Has0 = false, All1 = true; 792 for (uint16_t i = 0; i < 8/*XXX*/; ++i) { 793 if (!P1[i].is(1)) 794 All1 = false; 795 if (!P1[i].is(0)) 796 continue; 797 Has0 = true; 798 break; 799 } 800 if (!Has0 && !All1) 801 break; 802 RegisterCell RC(W0); 803 RC.fill(0, W0, (All1 ? BT::BitValue::One : BT::BitValue::Zero)); 804 return rr0(RC, Outputs); 805 } 806 case C2_any8: { 807 RegisterCell P1 = rc(1); 808 bool Has1 = false, All0 = true; 809 for (uint16_t i = 0; i < 8/*XXX*/; ++i) { 810 if (!P1[i].is(0)) 811 All0 = false; 812 if (!P1[i].is(1)) 813 continue; 814 Has1 = true; 815 break; 816 } 817 if (!Has1 && !All0) 818 break; 819 RegisterCell RC(W0); 820 RC.fill(0, W0, (Has1 ? BT::BitValue::One : BT::BitValue::Zero)); 821 return rr0(RC, Outputs); 822 } 823 case C2_and: 824 return rr0(eAND(rc(1), rc(2)), Outputs); 825 case C2_andn: 826 return rr0(eAND(rc(1), eNOT(rc(2))), Outputs); 827 case C2_not: 828 return rr0(eNOT(rc(1)), Outputs); 829 case C2_or: 830 return rr0(eORL(rc(1), rc(2)), Outputs); 831 case C2_orn: 832 return rr0(eORL(rc(1), eNOT(rc(2))), Outputs); 833 case C2_xor: 834 return rr0(eXOR(rc(1), rc(2)), Outputs); 835 case C4_and_and: 836 return rr0(eAND(rc(1), eAND(rc(2), rc(3))), Outputs); 837 case C4_and_andn: 838 return rr0(eAND(rc(1), eAND(rc(2), eNOT(rc(3)))), Outputs); 839 case C4_and_or: 840 return rr0(eAND(rc(1), eORL(rc(2), rc(3))), Outputs); 841 case C4_and_orn: 842 return rr0(eAND(rc(1), eORL(rc(2), eNOT(rc(3)))), Outputs); 843 case C4_or_and: 844 return rr0(eORL(rc(1), eAND(rc(2), rc(3))), Outputs); 845 case C4_or_andn: 846 return rr0(eORL(rc(1), eAND(rc(2), eNOT(rc(3)))), Outputs); 847 case C4_or_or: 848 return rr0(eORL(rc(1), eORL(rc(2), rc(3))), Outputs); 849 case C4_or_orn: 850 return rr0(eORL(rc(1), eORL(rc(2), eNOT(rc(3)))), Outputs); 851 case C2_bitsclr: 852 case C2_bitsclri: 853 case C2_bitsset: 854 case C4_nbitsclr: 855 case C4_nbitsclri: 856 case C4_nbitsset: 857 // TODO 858 break; 859 case S2_tstbit_i: 860 case S4_ntstbit_i: { 861 BT::BitValue V = rc(1)[im(2)]; 862 if (V.is(0) || V.is(1)) { 863 // If instruction is S2_tstbit_i, test for 1, otherwise test for 0. 864 bool TV = (Opc == S2_tstbit_i); 865 BT::BitValue F = V.is(TV) ? BT::BitValue::One : BT::BitValue::Zero; 866 return rr0(RegisterCell(W0).fill(0, W0, F), Outputs); 867 } 868 break; 869 } 870 871 default: 872 return MachineEvaluator::evaluate(MI, Inputs, Outputs); 873 } 874 #undef im 875 #undef rc 876 #undef op 877 return false; 878 } 879 880 881 bool HexagonEvaluator::evaluate(const MachineInstr *BI, 882 const CellMapType &Inputs, BranchTargetList &Targets, 883 bool &FallsThru) const { 884 // We need to evaluate one branch at a time. TII::AnalyzeBranch checks 885 // all the branches in a basic block at once, so we cannot use it. 886 unsigned Opc = BI->getOpcode(); 887 bool SimpleBranch = false; 888 bool Negated = false; 889 switch (Opc) { 890 case Hexagon::J2_jumpf: 891 case Hexagon::J2_jumpfnew: 892 case Hexagon::J2_jumpfnewpt: 893 Negated = true; 894 case Hexagon::J2_jumpt: 895 case Hexagon::J2_jumptnew: 896 case Hexagon::J2_jumptnewpt: 897 // Simple branch: if([!]Pn) jump ... 898 // i.e. Op0 = predicate, Op1 = branch target. 899 SimpleBranch = true; 900 break; 901 case Hexagon::J2_jump: 902 Targets.insert(BI->getOperand(0).getMBB()); 903 FallsThru = false; 904 return true; 905 default: 906 // If the branch is of unknown type, assume that all successors are 907 // executable. 908 return false; 909 } 910 911 if (!SimpleBranch) 912 return false; 913 914 // BI is a conditional branch if we got here. 915 RegisterRef PR = BI->getOperand(0); 916 RegisterCell PC = getCell(PR, Inputs); 917 const BT::BitValue &Test = PC[0]; 918 919 // If the condition is neither true nor false, then it's unknown. 920 if (!Test.is(0) && !Test.is(1)) 921 return false; 922 923 // "Test.is(!Negated)" means "branch condition is true". 924 if (!Test.is(!Negated)) { 925 // Condition known to be false. 926 FallsThru = true; 927 return true; 928 } 929 930 Targets.insert(BI->getOperand(1).getMBB()); 931 FallsThru = false; 932 return true; 933 } 934 935 936 bool HexagonEvaluator::evaluateLoad(const MachineInstr *MI, 937 const CellMapType &Inputs, CellMapType &Outputs) const { 938 if (TII.isPredicated(MI)) 939 return false; 940 assert(MI->mayLoad() && "A load that mayn't?"); 941 unsigned Opc = MI->getOpcode(); 942 943 uint16_t BitNum; 944 bool SignEx; 945 using namespace Hexagon; 946 947 switch (Opc) { 948 default: 949 return false; 950 951 #if 0 952 // memb_fifo 953 case L2_loadalignb_pbr: 954 case L2_loadalignb_pcr: 955 case L2_loadalignb_pi: 956 // memh_fifo 957 case L2_loadalignh_pbr: 958 case L2_loadalignh_pcr: 959 case L2_loadalignh_pi: 960 // membh 961 case L2_loadbsw2_pbr: 962 case L2_loadbsw2_pci: 963 case L2_loadbsw2_pcr: 964 case L2_loadbsw2_pi: 965 case L2_loadbsw4_pbr: 966 case L2_loadbsw4_pci: 967 case L2_loadbsw4_pcr: 968 case L2_loadbsw4_pi: 969 // memubh 970 case L2_loadbzw2_pbr: 971 case L2_loadbzw2_pci: 972 case L2_loadbzw2_pcr: 973 case L2_loadbzw2_pi: 974 case L2_loadbzw4_pbr: 975 case L2_loadbzw4_pci: 976 case L2_loadbzw4_pcr: 977 case L2_loadbzw4_pi: 978 #endif 979 980 case L2_loadrbgp: 981 case L2_loadrb_io: 982 case L2_loadrb_pbr: 983 case L2_loadrb_pci: 984 case L2_loadrb_pcr: 985 case L2_loadrb_pi: 986 case L4_loadrb_abs: 987 case L4_loadrb_ap: 988 case L4_loadrb_rr: 989 case L4_loadrb_ur: 990 BitNum = 8; 991 SignEx = true; 992 break; 993 994 case L2_loadrubgp: 995 case L2_loadrub_io: 996 case L2_loadrub_pbr: 997 case L2_loadrub_pci: 998 case L2_loadrub_pcr: 999 case L2_loadrub_pi: 1000 case L4_loadrub_abs: 1001 case L4_loadrub_ap: 1002 case L4_loadrub_rr: 1003 case L4_loadrub_ur: 1004 BitNum = 8; 1005 SignEx = false; 1006 break; 1007 1008 case L2_loadrhgp: 1009 case L2_loadrh_io: 1010 case L2_loadrh_pbr: 1011 case L2_loadrh_pci: 1012 case L2_loadrh_pcr: 1013 case L2_loadrh_pi: 1014 case L4_loadrh_abs: 1015 case L4_loadrh_ap: 1016 case L4_loadrh_rr: 1017 case L4_loadrh_ur: 1018 BitNum = 16; 1019 SignEx = true; 1020 break; 1021 1022 case L2_loadruhgp: 1023 case L2_loadruh_io: 1024 case L2_loadruh_pbr: 1025 case L2_loadruh_pci: 1026 case L2_loadruh_pcr: 1027 case L2_loadruh_pi: 1028 case L4_loadruh_rr: 1029 case L4_loadruh_abs: 1030 case L4_loadruh_ap: 1031 case L4_loadruh_ur: 1032 BitNum = 16; 1033 SignEx = false; 1034 break; 1035 1036 case L2_loadrigp: 1037 case L2_loadri_io: 1038 case L2_loadri_pbr: 1039 case L2_loadri_pci: 1040 case L2_loadri_pcr: 1041 case L2_loadri_pi: 1042 case L2_loadw_locked: 1043 case L4_loadri_abs: 1044 case L4_loadri_ap: 1045 case L4_loadri_rr: 1046 case L4_loadri_ur: 1047 case LDriw_pred: 1048 BitNum = 32; 1049 SignEx = true; 1050 break; 1051 1052 case L2_loadrdgp: 1053 case L2_loadrd_io: 1054 case L2_loadrd_pbr: 1055 case L2_loadrd_pci: 1056 case L2_loadrd_pcr: 1057 case L2_loadrd_pi: 1058 case L4_loadd_locked: 1059 case L4_loadrd_abs: 1060 case L4_loadrd_ap: 1061 case L4_loadrd_rr: 1062 case L4_loadrd_ur: 1063 BitNum = 64; 1064 SignEx = true; 1065 break; 1066 } 1067 1068 const MachineOperand &MD = MI->getOperand(0); 1069 assert(MD.isReg() && MD.isDef()); 1070 RegisterRef RD = MD; 1071 1072 uint16_t W = getRegBitWidth(RD); 1073 assert(W >= BitNum && BitNum > 0); 1074 RegisterCell Res(W); 1075 1076 for (uint16_t i = 0; i < BitNum; ++i) 1077 Res[i] = BT::BitValue::self(BT::BitRef(RD.Reg, i)); 1078 1079 if (SignEx) { 1080 const BT::BitValue &Sign = Res[BitNum-1]; 1081 for (uint16_t i = BitNum; i < W; ++i) 1082 Res[i] = BT::BitValue::ref(Sign); 1083 } else { 1084 for (uint16_t i = BitNum; i < W; ++i) 1085 Res[i] = BT::BitValue::Zero; 1086 } 1087 1088 putCell(RD, Res, Outputs); 1089 return true; 1090 } 1091 1092 1093 bool HexagonEvaluator::evaluateFormalCopy(const MachineInstr *MI, 1094 const CellMapType &Inputs, CellMapType &Outputs) const { 1095 // If MI defines a formal parameter, but is not a copy (loads are handled 1096 // in evaluateLoad), then it's not clear what to do. 1097 assert(MI->isCopy()); 1098 1099 RegisterRef RD = MI->getOperand(0); 1100 RegisterRef RS = MI->getOperand(1); 1101 assert(RD.Sub == 0); 1102 if (!TargetRegisterInfo::isPhysicalRegister(RS.Reg)) 1103 return false; 1104 RegExtMap::const_iterator F = VRX.find(RD.Reg); 1105 if (F == VRX.end()) 1106 return false; 1107 1108 uint16_t EW = F->second.Width; 1109 // Store RD's cell into the map. This will associate the cell with a virtual 1110 // register, and make zero-/sign-extends possible (otherwise we would be ex- 1111 // tending "self" bit values, which will have no effect, since "self" values 1112 // cannot be references to anything). 1113 putCell(RD, getCell(RS, Inputs), Outputs); 1114 1115 RegisterCell Res; 1116 // Read RD's cell from the outputs instead of RS's cell from the inputs: 1117 if (F->second.Type == ExtType::SExt) 1118 Res = eSXT(getCell(RD, Outputs), EW); 1119 else if (F->second.Type == ExtType::ZExt) 1120 Res = eZXT(getCell(RD, Outputs), EW); 1121 1122 putCell(RD, Res, Outputs); 1123 return true; 1124 } 1125 1126 1127 unsigned HexagonEvaluator::getNextPhysReg(unsigned PReg, unsigned Width) const { 1128 using namespace Hexagon; 1129 bool Is64 = DoubleRegsRegClass.contains(PReg); 1130 assert(PReg == 0 || Is64 || IntRegsRegClass.contains(PReg)); 1131 1132 static const unsigned Phys32[] = { R0, R1, R2, R3, R4, R5 }; 1133 static const unsigned Phys64[] = { D0, D1, D2 }; 1134 const unsigned Num32 = sizeof(Phys32)/sizeof(unsigned); 1135 const unsigned Num64 = sizeof(Phys64)/sizeof(unsigned); 1136 1137 // Return the first parameter register of the required width. 1138 if (PReg == 0) 1139 return (Width <= 32) ? Phys32[0] : Phys64[0]; 1140 1141 // Set Idx32, Idx64 in such a way that Idx+1 would give the index of the 1142 // next register. 1143 unsigned Idx32 = 0, Idx64 = 0; 1144 if (!Is64) { 1145 while (Idx32 < Num32) { 1146 if (Phys32[Idx32] == PReg) 1147 break; 1148 Idx32++; 1149 } 1150 Idx64 = Idx32/2; 1151 } else { 1152 while (Idx64 < Num64) { 1153 if (Phys64[Idx64] == PReg) 1154 break; 1155 Idx64++; 1156 } 1157 Idx32 = Idx64*2+1; 1158 } 1159 1160 if (Width <= 32) 1161 return (Idx32+1 < Num32) ? Phys32[Idx32+1] : 0; 1162 return (Idx64+1 < Num64) ? Phys64[Idx64+1] : 0; 1163 } 1164 1165 1166 unsigned HexagonEvaluator::getVirtRegFor(unsigned PReg) const { 1167 typedef MachineRegisterInfo::livein_iterator iterator; 1168 for (iterator I = MRI.livein_begin(), E = MRI.livein_end(); I != E; ++I) { 1169 if (I->first == PReg) 1170 return I->second; 1171 } 1172 return 0; 1173 } 1174