1 //===-- MachineVerifier.cpp - Machine Code Verifier -------------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // Pass to verify generated machine code. The following is checked: 11 // 12 // Operand counts: All explicit operands must be present. 13 // 14 // Register classes: All physical and virtual register operands must be 15 // compatible with the register class required by the instruction descriptor. 16 // 17 // Register live intervals: Registers must be defined only once, and must be 18 // defined before use. 19 // 20 // The machine code verifier is enabled from LLVMTargetMachine.cpp with the 21 // command-line option -verify-machineinstrs, or by defining the environment 22 // variable LLVM_VERIFY_MACHINEINSTRS to the name of a file that will receive 23 // the verifier errors. 24 //===----------------------------------------------------------------------===// 25 26 #include "llvm/ADT/DenseSet.h" 27 #include "llvm/ADT/SetOperations.h" 28 #include "llvm/ADT/SmallVector.h" 29 #include "llvm/Function.h" 30 #include "llvm/CodeGen/LiveVariables.h" 31 #include "llvm/CodeGen/MachineFunctionPass.h" 32 #include "llvm/CodeGen/MachineRegisterInfo.h" 33 #include "llvm/CodeGen/Passes.h" 34 #include "llvm/Target/TargetMachine.h" 35 #include "llvm/Target/TargetRegisterInfo.h" 36 #include "llvm/Target/TargetInstrInfo.h" 37 #include "llvm/Support/Compiler.h" 38 #include "llvm/Support/Debug.h" 39 #include "llvm/Support/ErrorHandling.h" 40 #include "llvm/Support/raw_ostream.h" 41 #include <fstream> 42 43 using namespace llvm; 44 45 namespace { 46 struct VISIBILITY_HIDDEN MachineVerifier : public MachineFunctionPass { 47 static char ID; // Pass ID, replacement for typeid 48 49 MachineVerifier(bool allowDoubleDefs = false) : 50 MachineFunctionPass(&ID), 51 allowVirtDoubleDefs(allowDoubleDefs), 52 allowPhysDoubleDefs(allowDoubleDefs), 53 OutFileName(getenv("LLVM_VERIFY_MACHINEINSTRS")) 54 {} 55 56 void getAnalysisUsage(AnalysisUsage &AU) const { 57 AU.setPreservesAll(); 58 MachineFunctionPass::getAnalysisUsage(AU); 59 } 60 61 bool runOnMachineFunction(MachineFunction &MF); 62 63 const bool allowVirtDoubleDefs; 64 const bool allowPhysDoubleDefs; 65 66 const char *const OutFileName; 67 std::ostream *OS; 68 const MachineFunction *MF; 69 const TargetMachine *TM; 70 const TargetRegisterInfo *TRI; 71 const MachineRegisterInfo *MRI; 72 73 unsigned foundErrors; 74 75 typedef SmallVector<unsigned, 16> RegVector; 76 typedef DenseSet<unsigned> RegSet; 77 typedef DenseMap<unsigned, const MachineInstr*> RegMap; 78 79 BitVector regsReserved; 80 RegSet regsLive; 81 RegVector regsDefined, regsImpDefined, regsDead, regsKilled; 82 83 // Add Reg and any sub-registers to RV 84 void addRegWithSubRegs(RegVector &RV, unsigned Reg) { 85 RV.push_back(Reg); 86 if (TargetRegisterInfo::isPhysicalRegister(Reg)) 87 for (const unsigned *R = TRI->getSubRegisters(Reg); *R; R++) 88 RV.push_back(*R); 89 } 90 91 // Does RS contain any super-registers of Reg? 92 bool anySuperRegisters(const RegSet &RS, unsigned Reg) { 93 for (const unsigned *R = TRI->getSuperRegisters(Reg); *R; R++) 94 if (RS.count(*R)) 95 return true; 96 return false; 97 } 98 99 struct BBInfo { 100 // Is this MBB reachable from the MF entry point? 101 bool reachable; 102 103 // Vregs that must be live in because they are used without being 104 // defined. Map value is the user. 105 RegMap vregsLiveIn; 106 107 // Vregs that must be dead in because they are defined without being 108 // killed first. Map value is the defining instruction. 109 RegMap vregsDeadIn; 110 111 // Regs killed in MBB. They may be defined again, and will then be in both 112 // regsKilled and regsLiveOut. 113 RegSet regsKilled; 114 115 // Regs defined in MBB and live out. Note that vregs passing through may 116 // be live out without being mentioned here. 117 RegSet regsLiveOut; 118 119 // Vregs that pass through MBB untouched. This set is disjoint from 120 // regsKilled and regsLiveOut. 121 RegSet vregsPassed; 122 123 BBInfo() : reachable(false) {} 124 125 // Add register to vregsPassed if it belongs there. Return true if 126 // anything changed. 127 bool addPassed(unsigned Reg) { 128 if (!TargetRegisterInfo::isVirtualRegister(Reg)) 129 return false; 130 if (regsKilled.count(Reg) || regsLiveOut.count(Reg)) 131 return false; 132 return vregsPassed.insert(Reg).second; 133 } 134 135 // Same for a full set. 136 bool addPassed(const RegSet &RS) { 137 bool changed = false; 138 for (RegSet::const_iterator I = RS.begin(), E = RS.end(); I != E; ++I) 139 if (addPassed(*I)) 140 changed = true; 141 return changed; 142 } 143 144 // Live-out registers are either in regsLiveOut or vregsPassed. 145 bool isLiveOut(unsigned Reg) const { 146 return regsLiveOut.count(Reg) || vregsPassed.count(Reg); 147 } 148 }; 149 150 // Extra register info per MBB. 151 DenseMap<const MachineBasicBlock*, BBInfo> MBBInfoMap; 152 153 bool isReserved(unsigned Reg) { 154 return Reg < regsReserved.size() && regsReserved[Reg]; 155 } 156 157 void visitMachineFunctionBefore(); 158 void visitMachineBasicBlockBefore(const MachineBasicBlock *MBB); 159 void visitMachineInstrBefore(const MachineInstr *MI); 160 void visitMachineOperand(const MachineOperand *MO, unsigned MONum); 161 void visitMachineInstrAfter(const MachineInstr *MI); 162 void visitMachineBasicBlockAfter(const MachineBasicBlock *MBB); 163 void visitMachineFunctionAfter(); 164 165 void report(const char *msg, const MachineFunction *MF); 166 void report(const char *msg, const MachineBasicBlock *MBB); 167 void report(const char *msg, const MachineInstr *MI); 168 void report(const char *msg, const MachineOperand *MO, unsigned MONum); 169 170 void markReachable(const MachineBasicBlock *MBB); 171 void calcMaxRegsPassed(); 172 void calcMinRegsPassed(); 173 void checkPHIOps(const MachineBasicBlock *MBB); 174 }; 175 } 176 177 char MachineVerifier::ID = 0; 178 static RegisterPass<MachineVerifier> 179 MachineVer("machineverifier", "Verify generated machine code"); 180 static const PassInfo *const MachineVerifyID = &MachineVer; 181 182 FunctionPass * 183 llvm::createMachineVerifierPass(bool allowPhysDoubleDefs) 184 { 185 return new MachineVerifier(allowPhysDoubleDefs); 186 } 187 188 bool 189 MachineVerifier::runOnMachineFunction(MachineFunction &MF) 190 { 191 std::ofstream OutFile; 192 if (OutFileName) { 193 OutFile.open(OutFileName, std::ios::out | std::ios::app); 194 OS = &OutFile; 195 } else { 196 OS = cerr.stream(); 197 } 198 199 foundErrors = 0; 200 201 this->MF = &MF; 202 TM = &MF.getTarget(); 203 TRI = TM->getRegisterInfo(); 204 MRI = &MF.getRegInfo(); 205 206 visitMachineFunctionBefore(); 207 for (MachineFunction::const_iterator MFI = MF.begin(), MFE = MF.end(); 208 MFI!=MFE; ++MFI) { 209 visitMachineBasicBlockBefore(MFI); 210 for (MachineBasicBlock::const_iterator MBBI = MFI->begin(), 211 MBBE = MFI->end(); MBBI != MBBE; ++MBBI) { 212 visitMachineInstrBefore(MBBI); 213 for (unsigned I = 0, E = MBBI->getNumOperands(); I != E; ++I) 214 visitMachineOperand(&MBBI->getOperand(I), I); 215 visitMachineInstrAfter(MBBI); 216 } 217 visitMachineBasicBlockAfter(MFI); 218 } 219 visitMachineFunctionAfter(); 220 221 if (OutFileName) 222 OutFile.close(); 223 else if (foundErrors) { 224 std::string msg; 225 raw_string_ostream Msg(msg); 226 Msg << "Found " << foundErrors << " machine code errors."; 227 llvm_report_error(Msg.str()); 228 } 229 230 return false; // no changes 231 } 232 233 void 234 MachineVerifier::report(const char *msg, const MachineFunction *MF) 235 { 236 assert(MF); 237 *OS << "\n"; 238 if (!foundErrors++) 239 MF->print(OS); 240 *OS << "*** Bad machine code: " << msg << " ***\n" 241 << "- function: " << MF->getFunction()->getNameStr() << "\n"; 242 } 243 244 void 245 MachineVerifier::report(const char *msg, const MachineBasicBlock *MBB) 246 { 247 assert(MBB); 248 report(msg, MBB->getParent()); 249 *OS << "- basic block: " << MBB->getBasicBlock()->getNameStr() 250 << " " << (void*)MBB 251 << " (#" << MBB->getNumber() << ")\n"; 252 } 253 254 void 255 MachineVerifier::report(const char *msg, const MachineInstr *MI) 256 { 257 assert(MI); 258 report(msg, MI->getParent()); 259 *OS << "- instruction: "; 260 MI->print(OS, TM); 261 } 262 263 void 264 MachineVerifier::report(const char *msg, 265 const MachineOperand *MO, unsigned MONum) 266 { 267 assert(MO); 268 report(msg, MO->getParent()); 269 *OS << "- operand " << MONum << ": "; 270 MO->print(*OS, TM); 271 *OS << "\n"; 272 } 273 274 void 275 MachineVerifier::markReachable(const MachineBasicBlock *MBB) 276 { 277 BBInfo &MInfo = MBBInfoMap[MBB]; 278 if (!MInfo.reachable) { 279 MInfo.reachable = true; 280 for (MachineBasicBlock::const_succ_iterator SuI = MBB->succ_begin(), 281 SuE = MBB->succ_end(); SuI != SuE; ++SuI) 282 markReachable(*SuI); 283 } 284 } 285 286 void 287 MachineVerifier::visitMachineFunctionBefore() 288 { 289 regsReserved = TRI->getReservedRegs(*MF); 290 markReachable(&MF->front()); 291 } 292 293 void 294 MachineVerifier::visitMachineBasicBlockBefore(const MachineBasicBlock *MBB) 295 { 296 regsLive.clear(); 297 for (MachineBasicBlock::const_livein_iterator I = MBB->livein_begin(), 298 E = MBB->livein_end(); I != E; ++I) { 299 if (!TargetRegisterInfo::isPhysicalRegister(*I)) { 300 report("MBB live-in list contains non-physical register", MBB); 301 continue; 302 } 303 regsLive.insert(*I); 304 for (const unsigned *R = TRI->getSubRegisters(*I); *R; R++) 305 regsLive.insert(*R); 306 } 307 regsKilled.clear(); 308 regsDefined.clear(); 309 regsImpDefined.clear(); 310 } 311 312 void 313 MachineVerifier::visitMachineInstrBefore(const MachineInstr *MI) 314 { 315 const TargetInstrDesc &TI = MI->getDesc(); 316 if (MI->getNumExplicitOperands() < TI.getNumOperands()) { 317 report("Too few operands", MI); 318 *OS << TI.getNumOperands() << " operands expected, but " 319 << MI->getNumExplicitOperands() << " given.\n"; 320 } 321 if (!TI.isVariadic()) { 322 if (MI->getNumExplicitOperands() > TI.getNumOperands()) { 323 report("Too many operands", MI); 324 *OS << TI.getNumOperands() << " operands expected, but " 325 << MI->getNumExplicitOperands() << " given.\n"; 326 } 327 } 328 } 329 330 void 331 MachineVerifier::visitMachineOperand(const MachineOperand *MO, unsigned MONum) 332 { 333 const MachineInstr *MI = MO->getParent(); 334 const TargetInstrDesc &TI = MI->getDesc(); 335 336 // The first TI.NumDefs operands must be explicit register defines 337 if (MONum < TI.getNumDefs()) { 338 if (!MO->isReg()) 339 report("Explicit definition must be a register", MO, MONum); 340 else if (!MO->isDef()) 341 report("Explicit definition marked as use", MO, MONum); 342 else if (MO->isImplicit()) 343 report("Explicit definition marked as implicit", MO, MONum); 344 } 345 346 switch (MO->getType()) { 347 case MachineOperand::MO_Register: { 348 const unsigned Reg = MO->getReg(); 349 if (!Reg) 350 return; 351 352 // Check Live Variables. 353 if (MO->isUse()) { 354 if (MO->isKill()) { 355 addRegWithSubRegs(regsKilled, Reg); 356 // Tied operands on two-address instuctions MUST NOT have a <kill> flag. 357 if (MI->isRegTiedToDefOperand(MONum)) 358 report("Illegal kill flag on two-address instruction operand", 359 MO, MONum); 360 } else { 361 // TwoAddress instr modifying a reg is treated as kill+def. 362 unsigned defIdx; 363 if (MI->isRegTiedToDefOperand(MONum, &defIdx) && 364 MI->getOperand(defIdx).getReg() == Reg) 365 addRegWithSubRegs(regsKilled, Reg); 366 } 367 // Explicit use of a dead register. 368 // A register use marked <undef> is OK. 369 if (!MO->isImplicit() && !MO->isUndef() && !regsLive.count(Reg)) { 370 if (TargetRegisterInfo::isPhysicalRegister(Reg)) { 371 // Reserved registers may be used even when 'dead'. 372 if (!isReserved(Reg)) 373 report("Using an undefined physical register", MO, MONum); 374 } else { 375 BBInfo &MInfo = MBBInfoMap[MI->getParent()]; 376 // We don't know which virtual registers are live in, so only complain 377 // if vreg was killed in this MBB. Otherwise keep track of vregs that 378 // must be live in. PHI instructions are handled separately. 379 if (MInfo.regsKilled.count(Reg)) 380 report("Using a killed virtual register", MO, MONum); 381 else if (MI->getOpcode() != TargetInstrInfo::PHI) 382 MInfo.vregsLiveIn.insert(std::make_pair(Reg, MI)); 383 } 384 } 385 } else { 386 // Register defined. 387 // TODO: verify that earlyclobber ops are not used. 388 if (MO->isImplicit()) 389 addRegWithSubRegs(regsImpDefined, Reg); 390 else 391 addRegWithSubRegs(regsDefined, Reg); 392 393 if (MO->isDead()) 394 addRegWithSubRegs(regsDead, Reg); 395 } 396 397 // Check register classes. 398 if (MONum < TI.getNumOperands() && !MO->isImplicit()) { 399 const TargetOperandInfo &TOI = TI.OpInfo[MONum]; 400 unsigned SubIdx = MO->getSubReg(); 401 402 if (TargetRegisterInfo::isPhysicalRegister(Reg)) { 403 unsigned sr = Reg; 404 if (SubIdx) { 405 unsigned s = TRI->getSubReg(Reg, SubIdx); 406 if (!s) { 407 report("Invalid subregister index for physical register", 408 MO, MONum); 409 return; 410 } 411 sr = s; 412 } 413 if (const TargetRegisterClass *DRC = TOI.getRegClass(TRI)) { 414 if (!DRC->contains(sr)) { 415 report("Illegal physical register for instruction", MO, MONum); 416 *OS << TRI->getName(sr) << " is not a " 417 << DRC->getName() << " register.\n"; 418 } 419 } 420 } else { 421 // Virtual register. 422 const TargetRegisterClass *RC = MRI->getRegClass(Reg); 423 if (SubIdx) { 424 if (RC->subregclasses_begin()+SubIdx >= RC->subregclasses_end()) { 425 report("Invalid subregister index for virtual register", MO, MONum); 426 return; 427 } 428 RC = *(RC->subregclasses_begin()+SubIdx); 429 } 430 if (const TargetRegisterClass *DRC = TOI.getRegClass(TRI)) { 431 if (RC != DRC && !RC->hasSuperClass(DRC)) { 432 report("Illegal virtual register for instruction", MO, MONum); 433 *OS << "Expected a " << DRC->getName() << " register, but got a " 434 << RC->getName() << " register\n"; 435 } 436 } 437 } 438 } 439 break; 440 } 441 // Can PHI instrs refer to MBBs not in the CFG? X86 and ARM do. 442 // case MachineOperand::MO_MachineBasicBlock: 443 // if (MI->getOpcode() == TargetInstrInfo::PHI) { 444 // if (!MO->getMBB()->isSuccessor(MI->getParent())) 445 // report("PHI operand is not in the CFG", MO, MONum); 446 // } 447 // break; 448 default: 449 break; 450 } 451 } 452 453 void 454 MachineVerifier::visitMachineInstrAfter(const MachineInstr *MI) 455 { 456 BBInfo &MInfo = MBBInfoMap[MI->getParent()]; 457 set_union(MInfo.regsKilled, regsKilled); 458 set_subtract(regsLive, regsKilled); 459 regsKilled.clear(); 460 461 for (RegVector::const_iterator I = regsDefined.begin(), 462 E = regsDefined.end(); I != E; ++I) { 463 if (regsLive.count(*I)) { 464 if (TargetRegisterInfo::isPhysicalRegister(*I)) { 465 // We allow double defines to physical registers with live 466 // super-registers. 467 if (!allowPhysDoubleDefs && !isReserved(*I) && 468 !anySuperRegisters(regsLive, *I)) { 469 report("Redefining a live physical register", MI); 470 *OS << "Register " << TRI->getName(*I) 471 << " was defined but already live.\n"; 472 } 473 } else { 474 if (!allowVirtDoubleDefs) { 475 report("Redefining a live virtual register", MI); 476 *OS << "Virtual register %reg" << *I 477 << " was defined but already live.\n"; 478 } 479 } 480 } else if (TargetRegisterInfo::isVirtualRegister(*I) && 481 !MInfo.regsKilled.count(*I)) { 482 // Virtual register defined without being killed first must be dead on 483 // entry. 484 MInfo.vregsDeadIn.insert(std::make_pair(*I, MI)); 485 } 486 } 487 488 set_union(regsLive, regsDefined); regsDefined.clear(); 489 set_union(regsLive, regsImpDefined); regsImpDefined.clear(); 490 set_subtract(regsLive, regsDead); regsDead.clear(); 491 } 492 493 void 494 MachineVerifier::visitMachineBasicBlockAfter(const MachineBasicBlock *MBB) 495 { 496 MBBInfoMap[MBB].regsLiveOut = regsLive; 497 regsLive.clear(); 498 } 499 500 // Calculate the largest possible vregsPassed sets. These are the registers that 501 // can pass through an MBB live, but may not be live every time. It is assumed 502 // that all vregsPassed sets are empty before the call. 503 void 504 MachineVerifier::calcMaxRegsPassed() 505 { 506 // First push live-out regs to successors' vregsPassed. Remember the MBBs that 507 // have any vregsPassed. 508 DenseSet<const MachineBasicBlock*> todo; 509 for (MachineFunction::const_iterator MFI = MF->begin(), MFE = MF->end(); 510 MFI != MFE; ++MFI) { 511 const MachineBasicBlock &MBB(*MFI); 512 BBInfo &MInfo = MBBInfoMap[&MBB]; 513 if (!MInfo.reachable) 514 continue; 515 for (MachineBasicBlock::const_succ_iterator SuI = MBB.succ_begin(), 516 SuE = MBB.succ_end(); SuI != SuE; ++SuI) { 517 BBInfo &SInfo = MBBInfoMap[*SuI]; 518 if (SInfo.addPassed(MInfo.regsLiveOut)) 519 todo.insert(*SuI); 520 } 521 } 522 523 // Iteratively push vregsPassed to successors. This will converge to the same 524 // final state regardless of DenseSet iteration order. 525 while (!todo.empty()) { 526 const MachineBasicBlock *MBB = *todo.begin(); 527 todo.erase(MBB); 528 BBInfo &MInfo = MBBInfoMap[MBB]; 529 for (MachineBasicBlock::const_succ_iterator SuI = MBB->succ_begin(), 530 SuE = MBB->succ_end(); SuI != SuE; ++SuI) { 531 if (*SuI == MBB) 532 continue; 533 BBInfo &SInfo = MBBInfoMap[*SuI]; 534 if (SInfo.addPassed(MInfo.vregsPassed)) 535 todo.insert(*SuI); 536 } 537 } 538 } 539 540 // Calculate the minimum vregsPassed set. These are the registers that always 541 // pass live through an MBB. The calculation assumes that calcMaxRegsPassed has 542 // been called earlier. 543 void 544 MachineVerifier::calcMinRegsPassed() 545 { 546 DenseSet<const MachineBasicBlock*> todo; 547 for (MachineFunction::const_iterator MFI = MF->begin(), MFE = MF->end(); 548 MFI != MFE; ++MFI) 549 todo.insert(MFI); 550 551 while (!todo.empty()) { 552 const MachineBasicBlock *MBB = *todo.begin(); 553 todo.erase(MBB); 554 BBInfo &MInfo = MBBInfoMap[MBB]; 555 556 // Remove entries from vRegsPassed that are not live out from all 557 // reachable predecessors. 558 RegSet dead; 559 for (RegSet::iterator I = MInfo.vregsPassed.begin(), 560 E = MInfo.vregsPassed.end(); I != E; ++I) { 561 for (MachineBasicBlock::const_pred_iterator PrI = MBB->pred_begin(), 562 PrE = MBB->pred_end(); PrI != PrE; ++PrI) { 563 BBInfo &PrInfo = MBBInfoMap[*PrI]; 564 if (PrInfo.reachable && !PrInfo.isLiveOut(*I)) { 565 dead.insert(*I); 566 break; 567 } 568 } 569 } 570 // If any regs removed, we need to recheck successors. 571 if (!dead.empty()) { 572 set_subtract(MInfo.vregsPassed, dead); 573 todo.insert(MBB->succ_begin(), MBB->succ_end()); 574 } 575 } 576 } 577 578 // Check PHI instructions at the beginning of MBB. It is assumed that 579 // calcMinRegsPassed has been run so BBInfo::isLiveOut is valid. 580 void 581 MachineVerifier::checkPHIOps(const MachineBasicBlock *MBB) 582 { 583 for (MachineBasicBlock::const_iterator BBI = MBB->begin(), BBE = MBB->end(); 584 BBI != BBE && BBI->getOpcode() == TargetInstrInfo::PHI; ++BBI) { 585 DenseSet<const MachineBasicBlock*> seen; 586 587 for (unsigned i = 1, e = BBI->getNumOperands(); i != e; i += 2) { 588 unsigned Reg = BBI->getOperand(i).getReg(); 589 const MachineBasicBlock *Pre = BBI->getOperand(i + 1).getMBB(); 590 if (!Pre->isSuccessor(MBB)) 591 continue; 592 seen.insert(Pre); 593 BBInfo &PrInfo = MBBInfoMap[Pre]; 594 if (PrInfo.reachable && !PrInfo.isLiveOut(Reg)) 595 report("PHI operand is not live-out from predecessor", 596 &BBI->getOperand(i), i); 597 } 598 599 // Did we see all predecessors? 600 for (MachineBasicBlock::const_pred_iterator PrI = MBB->pred_begin(), 601 PrE = MBB->pred_end(); PrI != PrE; ++PrI) { 602 if (!seen.count(*PrI)) { 603 report("Missing PHI operand", BBI); 604 *OS << "MBB #" << (*PrI)->getNumber() 605 << " is a predecessor according to the CFG.\n"; 606 } 607 } 608 } 609 } 610 611 void 612 MachineVerifier::visitMachineFunctionAfter() 613 { 614 calcMaxRegsPassed(); 615 616 // With the maximal set of vregsPassed we can verify dead-in registers. 617 for (MachineFunction::const_iterator MFI = MF->begin(), MFE = MF->end(); 618 MFI != MFE; ++MFI) { 619 BBInfo &MInfo = MBBInfoMap[MFI]; 620 621 // Skip unreachable MBBs. 622 if (!MInfo.reachable) 623 continue; 624 625 for (MachineBasicBlock::const_pred_iterator PrI = MFI->pred_begin(), 626 PrE = MFI->pred_end(); PrI != PrE; ++PrI) { 627 BBInfo &PrInfo = MBBInfoMap[*PrI]; 628 if (!PrInfo.reachable) 629 continue; 630 631 // Verify physical live-ins. EH landing pads have magic live-ins so we 632 // ignore them. 633 if (!MFI->isLandingPad()) { 634 for (MachineBasicBlock::const_livein_iterator I = MFI->livein_begin(), 635 E = MFI->livein_end(); I != E; ++I) { 636 if (TargetRegisterInfo::isPhysicalRegister(*I) && 637 !isReserved (*I) && !PrInfo.isLiveOut(*I)) { 638 report("Live-in physical register is not live-out from predecessor", 639 MFI); 640 *OS << "Register " << TRI->getName(*I) 641 << " is not live-out from MBB #" << (*PrI)->getNumber() 642 << ".\n"; 643 } 644 } 645 } 646 647 648 // Verify dead-in virtual registers. 649 if (!allowVirtDoubleDefs) { 650 for (RegMap::iterator I = MInfo.vregsDeadIn.begin(), 651 E = MInfo.vregsDeadIn.end(); I != E; ++I) { 652 // DeadIn register must be in neither regsLiveOut or vregsPassed of 653 // any predecessor. 654 if (PrInfo.isLiveOut(I->first)) { 655 report("Live-in virtual register redefined", I->second); 656 *OS << "Register %reg" << I->first 657 << " was live-out from predecessor MBB #" 658 << (*PrI)->getNumber() << ".\n"; 659 } 660 } 661 } 662 } 663 } 664 665 calcMinRegsPassed(); 666 667 // With the minimal set of vregsPassed we can verify live-in virtual 668 // registers, including PHI instructions. 669 for (MachineFunction::const_iterator MFI = MF->begin(), MFE = MF->end(); 670 MFI != MFE; ++MFI) { 671 BBInfo &MInfo = MBBInfoMap[MFI]; 672 673 // Skip unreachable MBBs. 674 if (!MInfo.reachable) 675 continue; 676 677 checkPHIOps(MFI); 678 679 for (MachineBasicBlock::const_pred_iterator PrI = MFI->pred_begin(), 680 PrE = MFI->pred_end(); PrI != PrE; ++PrI) { 681 BBInfo &PrInfo = MBBInfoMap[*PrI]; 682 if (!PrInfo.reachable) 683 continue; 684 685 for (RegMap::iterator I = MInfo.vregsLiveIn.begin(), 686 E = MInfo.vregsLiveIn.end(); I != E; ++I) { 687 if (!PrInfo.isLiveOut(I->first)) { 688 report("Used virtual register is not live-in", I->second); 689 *OS << "Register %reg" << I->first 690 << " is not live-out from predecessor MBB #" 691 << (*PrI)->getNumber() 692 << ".\n"; 693 } 694 } 695 } 696 } 697 } 698