1 //===- LiveDebugVariables.cpp - Tracking debug info variables -------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the LiveDebugVariables analysis. 11 // 12 // Remove all DBG_VALUE instructions referencing virtual registers and replace 13 // them with a data structure tracking where live user variables are kept - in a 14 // virtual register or in a stack slot. 15 // 16 // Allow the data structure to be updated during register allocation when values 17 // are moved between registers and stack slots. Finally emit new DBG_VALUE 18 // instructions after register allocation is complete. 19 // 20 //===----------------------------------------------------------------------===// 21 22 #include "LiveDebugVariables.h" 23 #include "llvm/ADT/IntervalMap.h" 24 #include "llvm/ADT/Statistic.h" 25 #include "llvm/CodeGen/LiveIntervalAnalysis.h" 26 #include "llvm/CodeGen/MachineDominators.h" 27 #include "llvm/CodeGen/MachineFunction.h" 28 #include "llvm/CodeGen/MachineInstrBuilder.h" 29 #include "llvm/CodeGen/MachineRegisterInfo.h" 30 #include "llvm/CodeGen/Passes.h" 31 #include "llvm/CodeGen/VirtRegMap.h" 32 #include "llvm/IR/Constants.h" 33 #include "llvm/IR/DebugInfo.h" 34 #include "llvm/IR/Metadata.h" 35 #include "llvm/IR/Value.h" 36 #include "llvm/Support/CommandLine.h" 37 #include "llvm/Support/Debug.h" 38 #include "llvm/Support/raw_ostream.h" 39 #include "llvm/Target/TargetInstrInfo.h" 40 #include "llvm/Target/TargetMachine.h" 41 #include "llvm/Target/TargetRegisterInfo.h" 42 #include "llvm/Target/TargetSubtargetInfo.h" 43 #include <memory> 44 #include <utility> 45 46 using namespace llvm; 47 48 #define DEBUG_TYPE "livedebugvars" 49 50 static cl::opt<bool> 51 EnableLDV("live-debug-variables", cl::init(true), 52 cl::desc("Enable the live debug variables pass"), cl::Hidden); 53 54 STATISTIC(NumInsertedDebugValues, "Number of DBG_VALUEs inserted"); 55 char LiveDebugVariables::ID = 0; 56 57 INITIALIZE_PASS_BEGIN(LiveDebugVariables, DEBUG_TYPE, 58 "Debug Variable Analysis", false, false) 59 INITIALIZE_PASS_DEPENDENCY(MachineDominatorTree) 60 INITIALIZE_PASS_DEPENDENCY(LiveIntervals) 61 INITIALIZE_PASS_END(LiveDebugVariables, DEBUG_TYPE, 62 "Debug Variable Analysis", false, false) 63 64 void LiveDebugVariables::getAnalysisUsage(AnalysisUsage &AU) const { 65 AU.addRequired<MachineDominatorTree>(); 66 AU.addRequiredTransitive<LiveIntervals>(); 67 AU.setPreservesAll(); 68 MachineFunctionPass::getAnalysisUsage(AU); 69 } 70 71 LiveDebugVariables::LiveDebugVariables() : MachineFunctionPass(ID), pImpl(nullptr) { 72 initializeLiveDebugVariablesPass(*PassRegistry::getPassRegistry()); 73 } 74 75 /// LocMap - Map of where a user value is live, and its location. 76 typedef IntervalMap<SlotIndex, unsigned, 4> LocMap; 77 78 /// UserValue - A user value is a part of a debug info user variable. 79 /// 80 /// A DBG_VALUE instruction notes that (a sub-register of) a virtual register 81 /// holds part of a user variable. The part is identified by a byte offset. 82 /// 83 /// UserValues are grouped into equivalence classes for easier searching. Two 84 /// user values are related if they refer to the same variable, or if they are 85 /// held by the same virtual register. The equivalence class is the transitive 86 /// closure of that relation. 87 namespace { 88 class LDVImpl; 89 class UserValue { 90 const MDNode *Variable; ///< The debug info variable we are part of. 91 const MDNode *Expression; ///< Any complex address expression. 92 bool IsIndirect; ///< true if this is a register-indirect+offset value. 93 DebugLoc dl; ///< The debug location for the variable. This is 94 ///< used by dwarf writer to find lexical scope. 95 UserValue *leader; ///< Equivalence class leader. 96 UserValue *next; ///< Next value in equivalence class, or null. 97 98 /// Numbered locations referenced by locmap. 99 SmallVector<MachineOperand, 4> locations; 100 101 /// Map of slot indices where this value is live. 102 LocMap locInts; 103 104 /// coalesceLocation - After LocNo was changed, check if it has become 105 /// identical to another location, and coalesce them. This may cause LocNo or 106 /// a later location to be erased, but no earlier location will be erased. 107 void coalesceLocation(unsigned LocNo); 108 109 /// insertDebugValue - Insert a DBG_VALUE into MBB at Idx for LocNo. 110 void insertDebugValue(MachineBasicBlock *MBB, SlotIndex Idx, unsigned LocNo, 111 LiveIntervals &LIS, const TargetInstrInfo &TII); 112 113 /// splitLocation - Replace OldLocNo ranges with NewRegs ranges where NewRegs 114 /// is live. Returns true if any changes were made. 115 bool splitLocation(unsigned OldLocNo, ArrayRef<unsigned> NewRegs, 116 LiveIntervals &LIS); 117 118 public: 119 /// UserValue - Create a new UserValue. 120 UserValue(const MDNode *var, const MDNode *expr, bool i, DebugLoc L, 121 LocMap::Allocator &alloc) 122 : Variable(var), Expression(expr), IsIndirect(i), dl(std::move(L)), 123 leader(this), next(nullptr), locInts(alloc) {} 124 125 /// getLeader - Get the leader of this value's equivalence class. 126 UserValue *getLeader() { 127 UserValue *l = leader; 128 while (l != l->leader) 129 l = l->leader; 130 return leader = l; 131 } 132 133 /// getNext - Return the next UserValue in the equivalence class. 134 UserValue *getNext() const { return next; } 135 136 /// match - Does this UserValue match the parameters? 137 bool match(const MDNode *Var, const MDNode *Expr, const DILocation *IA, 138 bool indirect) const { 139 return Var == Variable && Expr == Expression && dl->getInlinedAt() == IA && 140 indirect == IsIndirect; 141 } 142 143 /// merge - Merge equivalence classes. 144 static UserValue *merge(UserValue *L1, UserValue *L2) { 145 L2 = L2->getLeader(); 146 if (!L1) 147 return L2; 148 L1 = L1->getLeader(); 149 if (L1 == L2) 150 return L1; 151 // Splice L2 before L1's members. 152 UserValue *End = L2; 153 while (End->next) { 154 End->leader = L1; 155 End = End->next; 156 } 157 End->leader = L1; 158 End->next = L1->next; 159 L1->next = L2; 160 return L1; 161 } 162 163 /// getLocationNo - Return the location number that matches Loc. 164 unsigned getLocationNo(const MachineOperand &LocMO) { 165 if (LocMO.isReg()) { 166 if (LocMO.getReg() == 0) 167 return ~0u; 168 // For register locations we dont care about use/def and other flags. 169 for (unsigned i = 0, e = locations.size(); i != e; ++i) 170 if (locations[i].isReg() && 171 locations[i].getReg() == LocMO.getReg() && 172 locations[i].getSubReg() == LocMO.getSubReg()) 173 return i; 174 } else 175 for (unsigned i = 0, e = locations.size(); i != e; ++i) 176 if (LocMO.isIdenticalTo(locations[i])) 177 return i; 178 locations.push_back(LocMO); 179 // We are storing a MachineOperand outside a MachineInstr. 180 locations.back().clearParent(); 181 // Don't store def operands. 182 if (locations.back().isReg()) 183 locations.back().setIsUse(); 184 return locations.size() - 1; 185 } 186 187 /// mapVirtRegs - Ensure that all virtual register locations are mapped. 188 void mapVirtRegs(LDVImpl *LDV); 189 190 /// addDef - Add a definition point to this value. 191 void addDef(SlotIndex Idx, const MachineOperand &LocMO) { 192 // Add a singular (Idx,Idx) -> Loc mapping. 193 LocMap::iterator I = locInts.find(Idx); 194 if (!I.valid() || I.start() != Idx) 195 I.insert(Idx, Idx.getNextSlot(), getLocationNo(LocMO)); 196 else 197 // A later DBG_VALUE at the same SlotIndex overrides the old location. 198 I.setValue(getLocationNo(LocMO)); 199 } 200 201 /// extendDef - Extend the current definition as far as possible down. 202 /// Stop when meeting an existing def or when leaving the live 203 /// range of VNI. 204 /// End points where VNI is no longer live are added to Kills. 205 /// @param Idx Starting point for the definition. 206 /// @param LocNo Location number to propagate. 207 /// @param LR Restrict liveness to where LR has the value VNI. May be null. 208 /// @param VNI When LR is not null, this is the value to restrict to. 209 /// @param Kills Append end points of VNI's live range to Kills. 210 /// @param LIS Live intervals analysis. 211 void extendDef(SlotIndex Idx, unsigned LocNo, 212 LiveRange *LR, const VNInfo *VNI, 213 SmallVectorImpl<SlotIndex> *Kills, 214 LiveIntervals &LIS); 215 216 /// addDefsFromCopies - The value in LI/LocNo may be copies to other 217 /// registers. Determine if any of the copies are available at the kill 218 /// points, and add defs if possible. 219 /// @param LI Scan for copies of the value in LI->reg. 220 /// @param LocNo Location number of LI->reg. 221 /// @param Kills Points where the range of LocNo could be extended. 222 /// @param NewDefs Append (Idx, LocNo) of inserted defs here. 223 void addDefsFromCopies(LiveInterval *LI, unsigned LocNo, 224 const SmallVectorImpl<SlotIndex> &Kills, 225 SmallVectorImpl<std::pair<SlotIndex, unsigned> > &NewDefs, 226 MachineRegisterInfo &MRI, 227 LiveIntervals &LIS); 228 229 /// computeIntervals - Compute the live intervals of all locations after 230 /// collecting all their def points. 231 void computeIntervals(MachineRegisterInfo &MRI, const TargetRegisterInfo &TRI, 232 LiveIntervals &LIS); 233 234 /// splitRegister - Replace OldReg ranges with NewRegs ranges where NewRegs is 235 /// live. Returns true if any changes were made. 236 bool splitRegister(unsigned OldLocNo, ArrayRef<unsigned> NewRegs, 237 LiveIntervals &LIS); 238 239 /// rewriteLocations - Rewrite virtual register locations according to the 240 /// provided virtual register map. 241 void rewriteLocations(VirtRegMap &VRM, const TargetRegisterInfo &TRI); 242 243 /// emitDebugValues - Recreate DBG_VALUE instruction from data structures. 244 void emitDebugValues(VirtRegMap *VRM, 245 LiveIntervals &LIS, const TargetInstrInfo &TRI); 246 247 /// getDebugLoc - Return DebugLoc of this UserValue. 248 DebugLoc getDebugLoc() { return dl;} 249 void print(raw_ostream &, const TargetRegisterInfo *); 250 }; 251 } // namespace 252 253 /// LDVImpl - Implementation of the LiveDebugVariables pass. 254 namespace { 255 class LDVImpl { 256 LiveDebugVariables &pass; 257 LocMap::Allocator allocator; 258 MachineFunction *MF; 259 LiveIntervals *LIS; 260 const TargetRegisterInfo *TRI; 261 262 /// Whether emitDebugValues is called. 263 bool EmitDone; 264 /// Whether the machine function is modified during the pass. 265 bool ModifiedMF; 266 267 /// userValues - All allocated UserValue instances. 268 SmallVector<std::unique_ptr<UserValue>, 8> userValues; 269 270 /// Map virtual register to eq class leader. 271 typedef DenseMap<unsigned, UserValue*> VRMap; 272 VRMap virtRegToEqClass; 273 274 /// Map user variable to eq class leader. 275 typedef DenseMap<const MDNode *, UserValue*> UVMap; 276 UVMap userVarMap; 277 278 /// getUserValue - Find or create a UserValue. 279 UserValue *getUserValue(const MDNode *Var, const MDNode *Expr, 280 bool IsIndirect, const DebugLoc &DL); 281 282 /// lookupVirtReg - Find the EC leader for VirtReg or null. 283 UserValue *lookupVirtReg(unsigned VirtReg); 284 285 /// handleDebugValue - Add DBG_VALUE instruction to our maps. 286 /// @param MI DBG_VALUE instruction 287 /// @param Idx Last valid SLotIndex before instruction. 288 /// @return True if the DBG_VALUE instruction should be deleted. 289 bool handleDebugValue(MachineInstr &MI, SlotIndex Idx); 290 291 /// collectDebugValues - Collect and erase all DBG_VALUE instructions, adding 292 /// a UserValue def for each instruction. 293 /// @param mf MachineFunction to be scanned. 294 /// @return True if any debug values were found. 295 bool collectDebugValues(MachineFunction &mf); 296 297 /// computeIntervals - Compute the live intervals of all user values after 298 /// collecting all their def points. 299 void computeIntervals(); 300 301 public: 302 LDVImpl(LiveDebugVariables *ps) 303 : pass(*ps), MF(nullptr), EmitDone(false), ModifiedMF(false) {} 304 bool runOnMachineFunction(MachineFunction &mf); 305 306 /// clear - Release all memory. 307 void clear() { 308 MF = nullptr; 309 userValues.clear(); 310 virtRegToEqClass.clear(); 311 userVarMap.clear(); 312 // Make sure we call emitDebugValues if the machine function was modified. 313 assert((!ModifiedMF || EmitDone) && 314 "Dbg values are not emitted in LDV"); 315 EmitDone = false; 316 ModifiedMF = false; 317 } 318 319 /// mapVirtReg - Map virtual register to an equivalence class. 320 void mapVirtReg(unsigned VirtReg, UserValue *EC); 321 322 /// splitRegister - Replace all references to OldReg with NewRegs. 323 void splitRegister(unsigned OldReg, ArrayRef<unsigned> NewRegs); 324 325 /// emitDebugValues - Recreate DBG_VALUE instruction from data structures. 326 void emitDebugValues(VirtRegMap *VRM); 327 328 void print(raw_ostream&); 329 }; 330 } // namespace 331 332 static void printDebugLoc(const DebugLoc &DL, raw_ostream &CommentOS, 333 const LLVMContext &Ctx) { 334 if (!DL) 335 return; 336 337 auto *Scope = cast<DIScope>(DL.getScope()); 338 // Omit the directory, because it's likely to be long and uninteresting. 339 CommentOS << Scope->getFilename(); 340 CommentOS << ':' << DL.getLine(); 341 if (DL.getCol() != 0) 342 CommentOS << ':' << DL.getCol(); 343 344 DebugLoc InlinedAtDL = DL.getInlinedAt(); 345 if (!InlinedAtDL) 346 return; 347 348 CommentOS << " @[ "; 349 printDebugLoc(InlinedAtDL, CommentOS, Ctx); 350 CommentOS << " ]"; 351 } 352 353 static void printExtendedName(raw_ostream &OS, const DILocalVariable *V, 354 const DILocation *DL) { 355 const LLVMContext &Ctx = V->getContext(); 356 StringRef Res = V->getName(); 357 if (!Res.empty()) 358 OS << Res << "," << V->getLine(); 359 if (auto *InlinedAt = DL->getInlinedAt()) { 360 if (DebugLoc InlinedAtDL = InlinedAt) { 361 OS << " @["; 362 printDebugLoc(InlinedAtDL, OS, Ctx); 363 OS << "]"; 364 } 365 } 366 } 367 368 void UserValue::print(raw_ostream &OS, const TargetRegisterInfo *TRI) { 369 auto *DV = cast<DILocalVariable>(Variable); 370 OS << "!\""; 371 printExtendedName(OS, DV, dl); 372 373 OS << "\"\t"; 374 for (LocMap::const_iterator I = locInts.begin(); I.valid(); ++I) { 375 OS << " [" << I.start() << ';' << I.stop() << "):"; 376 if (I.value() == ~0u) 377 OS << "undef"; 378 else 379 OS << I.value(); 380 } 381 for (unsigned i = 0, e = locations.size(); i != e; ++i) { 382 OS << " Loc" << i << '='; 383 locations[i].print(OS, TRI); 384 } 385 OS << '\n'; 386 } 387 388 void LDVImpl::print(raw_ostream &OS) { 389 OS << "********** DEBUG VARIABLES **********\n"; 390 for (unsigned i = 0, e = userValues.size(); i != e; ++i) 391 userValues[i]->print(OS, TRI); 392 } 393 394 void UserValue::coalesceLocation(unsigned LocNo) { 395 unsigned KeepLoc = 0; 396 for (unsigned e = locations.size(); KeepLoc != e; ++KeepLoc) { 397 if (KeepLoc == LocNo) 398 continue; 399 if (locations[KeepLoc].isIdenticalTo(locations[LocNo])) 400 break; 401 } 402 // No matches. 403 if (KeepLoc == locations.size()) 404 return; 405 406 // Keep the smaller location, erase the larger one. 407 unsigned EraseLoc = LocNo; 408 if (KeepLoc > EraseLoc) 409 std::swap(KeepLoc, EraseLoc); 410 locations.erase(locations.begin() + EraseLoc); 411 412 // Rewrite values. 413 for (LocMap::iterator I = locInts.begin(); I.valid(); ++I) { 414 unsigned v = I.value(); 415 if (v == EraseLoc) 416 I.setValue(KeepLoc); // Coalesce when possible. 417 else if (v > EraseLoc) 418 I.setValueUnchecked(v-1); // Avoid coalescing with untransformed values. 419 } 420 } 421 422 void UserValue::mapVirtRegs(LDVImpl *LDV) { 423 for (unsigned i = 0, e = locations.size(); i != e; ++i) 424 if (locations[i].isReg() && 425 TargetRegisterInfo::isVirtualRegister(locations[i].getReg())) 426 LDV->mapVirtReg(locations[i].getReg(), this); 427 } 428 429 UserValue *LDVImpl::getUserValue(const MDNode *Var, const MDNode *Expr, 430 bool IsIndirect, const DebugLoc &DL) { 431 UserValue *&Leader = userVarMap[Var]; 432 if (Leader) { 433 UserValue *UV = Leader->getLeader(); 434 Leader = UV; 435 for (; UV; UV = UV->getNext()) 436 if (UV->match(Var, Expr, DL->getInlinedAt(), IsIndirect)) 437 return UV; 438 } 439 440 userValues.push_back( 441 make_unique<UserValue>(Var, Expr, IsIndirect, DL, allocator)); 442 UserValue *UV = userValues.back().get(); 443 Leader = UserValue::merge(Leader, UV); 444 return UV; 445 } 446 447 void LDVImpl::mapVirtReg(unsigned VirtReg, UserValue *EC) { 448 assert(TargetRegisterInfo::isVirtualRegister(VirtReg) && "Only map VirtRegs"); 449 UserValue *&Leader = virtRegToEqClass[VirtReg]; 450 Leader = UserValue::merge(Leader, EC); 451 } 452 453 UserValue *LDVImpl::lookupVirtReg(unsigned VirtReg) { 454 if (UserValue *UV = virtRegToEqClass.lookup(VirtReg)) 455 return UV->getLeader(); 456 return nullptr; 457 } 458 459 bool LDVImpl::handleDebugValue(MachineInstr &MI, SlotIndex Idx) { 460 // DBG_VALUE loc, offset, variable 461 if (MI.getNumOperands() != 4 || 462 !(MI.getOperand(1).isReg() || MI.getOperand(1).isImm()) || 463 !MI.getOperand(2).isMetadata()) { 464 DEBUG(dbgs() << "Can't handle " << MI); 465 return false; 466 } 467 468 // Get or create the UserValue for (variable,offset). 469 bool IsIndirect = MI.isIndirectDebugValue(); 470 if (IsIndirect) 471 assert(MI.getOperand(1).getImm() == 0 && "DBG_VALUE with nonzero offset"); 472 const MDNode *Var = MI.getDebugVariable(); 473 const MDNode *Expr = MI.getDebugExpression(); 474 //here. 475 UserValue *UV = getUserValue(Var, Expr, IsIndirect, MI.getDebugLoc()); 476 UV->addDef(Idx, MI.getOperand(0)); 477 return true; 478 } 479 480 bool LDVImpl::collectDebugValues(MachineFunction &mf) { 481 bool Changed = false; 482 for (MachineFunction::iterator MFI = mf.begin(), MFE = mf.end(); MFI != MFE; 483 ++MFI) { 484 MachineBasicBlock *MBB = &*MFI; 485 for (MachineBasicBlock::iterator MBBI = MBB->begin(), MBBE = MBB->end(); 486 MBBI != MBBE;) { 487 if (!MBBI->isDebugValue()) { 488 ++MBBI; 489 continue; 490 } 491 // DBG_VALUE has no slot index, use the previous instruction instead. 492 SlotIndex Idx = 493 MBBI == MBB->begin() 494 ? LIS->getMBBStartIdx(MBB) 495 : LIS->getInstructionIndex(*std::prev(MBBI)).getRegSlot(); 496 // Handle consecutive DBG_VALUE instructions with the same slot index. 497 do { 498 if (handleDebugValue(*MBBI, Idx)) { 499 MBBI = MBB->erase(MBBI); 500 Changed = true; 501 } else 502 ++MBBI; 503 } while (MBBI != MBBE && MBBI->isDebugValue()); 504 } 505 } 506 return Changed; 507 } 508 509 /// We only propagate DBG_VALUES locally here. LiveDebugValues performs a 510 /// data-flow analysis to propagate them beyond basic block boundaries. 511 void UserValue::extendDef(SlotIndex Idx, unsigned LocNo, LiveRange *LR, 512 const VNInfo *VNI, SmallVectorImpl<SlotIndex> *Kills, 513 LiveIntervals &LIS) { 514 SlotIndex Start = Idx; 515 MachineBasicBlock *MBB = LIS.getMBBFromIndex(Start); 516 SlotIndex Stop = LIS.getMBBEndIdx(MBB); 517 LocMap::iterator I = locInts.find(Start); 518 519 // Limit to VNI's live range. 520 bool ToEnd = true; 521 if (LR && VNI) { 522 LiveInterval::Segment *Segment = LR->getSegmentContaining(Start); 523 if (!Segment || Segment->valno != VNI) { 524 if (Kills) 525 Kills->push_back(Start); 526 return; 527 } 528 if (Segment->end < Stop) { 529 Stop = Segment->end; 530 ToEnd = false; 531 } 532 } 533 534 // There could already be a short def at Start. 535 if (I.valid() && I.start() <= Start) { 536 // Stop when meeting a different location or an already extended interval. 537 Start = Start.getNextSlot(); 538 if (I.value() != LocNo || I.stop() != Start) 539 return; 540 // This is a one-slot placeholder. Just skip it. 541 ++I; 542 } 543 544 // Limited by the next def. 545 if (I.valid() && I.start() < Stop) { 546 Stop = I.start(); 547 ToEnd = false; 548 } 549 // Limited by VNI's live range. 550 else if (!ToEnd && Kills) 551 Kills->push_back(Stop); 552 553 if (Start < Stop) 554 I.insert(Start, Stop, LocNo); 555 } 556 557 void 558 UserValue::addDefsFromCopies(LiveInterval *LI, unsigned LocNo, 559 const SmallVectorImpl<SlotIndex> &Kills, 560 SmallVectorImpl<std::pair<SlotIndex, unsigned> > &NewDefs, 561 MachineRegisterInfo &MRI, LiveIntervals &LIS) { 562 if (Kills.empty()) 563 return; 564 // Don't track copies from physregs, there are too many uses. 565 if (!TargetRegisterInfo::isVirtualRegister(LI->reg)) 566 return; 567 568 // Collect all the (vreg, valno) pairs that are copies of LI. 569 SmallVector<std::pair<LiveInterval*, const VNInfo*>, 8> CopyValues; 570 for (MachineOperand &MO : MRI.use_nodbg_operands(LI->reg)) { 571 MachineInstr *MI = MO.getParent(); 572 // Copies of the full value. 573 if (MO.getSubReg() || !MI->isCopy()) 574 continue; 575 unsigned DstReg = MI->getOperand(0).getReg(); 576 577 // Don't follow copies to physregs. These are usually setting up call 578 // arguments, and the argument registers are always call clobbered. We are 579 // better off in the source register which could be a callee-saved register, 580 // or it could be spilled. 581 if (!TargetRegisterInfo::isVirtualRegister(DstReg)) 582 continue; 583 584 // Is LocNo extended to reach this copy? If not, another def may be blocking 585 // it, or we are looking at a wrong value of LI. 586 SlotIndex Idx = LIS.getInstructionIndex(*MI); 587 LocMap::iterator I = locInts.find(Idx.getRegSlot(true)); 588 if (!I.valid() || I.value() != LocNo) 589 continue; 590 591 if (!LIS.hasInterval(DstReg)) 592 continue; 593 LiveInterval *DstLI = &LIS.getInterval(DstReg); 594 const VNInfo *DstVNI = DstLI->getVNInfoAt(Idx.getRegSlot()); 595 assert(DstVNI && DstVNI->def == Idx.getRegSlot() && "Bad copy value"); 596 CopyValues.push_back(std::make_pair(DstLI, DstVNI)); 597 } 598 599 if (CopyValues.empty()) 600 return; 601 602 DEBUG(dbgs() << "Got " << CopyValues.size() << " copies of " << *LI << '\n'); 603 604 // Try to add defs of the copied values for each kill point. 605 for (unsigned i = 0, e = Kills.size(); i != e; ++i) { 606 SlotIndex Idx = Kills[i]; 607 for (unsigned j = 0, e = CopyValues.size(); j != e; ++j) { 608 LiveInterval *DstLI = CopyValues[j].first; 609 const VNInfo *DstVNI = CopyValues[j].second; 610 if (DstLI->getVNInfoAt(Idx) != DstVNI) 611 continue; 612 // Check that there isn't already a def at Idx 613 LocMap::iterator I = locInts.find(Idx); 614 if (I.valid() && I.start() <= Idx) 615 continue; 616 DEBUG(dbgs() << "Kill at " << Idx << " covered by valno #" 617 << DstVNI->id << " in " << *DstLI << '\n'); 618 MachineInstr *CopyMI = LIS.getInstructionFromIndex(DstVNI->def); 619 assert(CopyMI && CopyMI->isCopy() && "Bad copy value"); 620 unsigned LocNo = getLocationNo(CopyMI->getOperand(0)); 621 I.insert(Idx, Idx.getNextSlot(), LocNo); 622 NewDefs.push_back(std::make_pair(Idx, LocNo)); 623 break; 624 } 625 } 626 } 627 628 void 629 UserValue::computeIntervals(MachineRegisterInfo &MRI, 630 const TargetRegisterInfo &TRI, 631 LiveIntervals &LIS) { 632 SmallVector<std::pair<SlotIndex, unsigned>, 16> Defs; 633 634 // Collect all defs to be extended (Skipping undefs). 635 for (LocMap::const_iterator I = locInts.begin(); I.valid(); ++I) 636 if (I.value() != ~0u) 637 Defs.push_back(std::make_pair(I.start(), I.value())); 638 639 // Extend all defs, and possibly add new ones along the way. 640 for (unsigned i = 0; i != Defs.size(); ++i) { 641 SlotIndex Idx = Defs[i].first; 642 unsigned LocNo = Defs[i].second; 643 const MachineOperand &Loc = locations[LocNo]; 644 645 if (!Loc.isReg()) { 646 extendDef(Idx, LocNo, nullptr, nullptr, nullptr, LIS); 647 continue; 648 } 649 650 // Register locations are constrained to where the register value is live. 651 if (TargetRegisterInfo::isVirtualRegister(Loc.getReg())) { 652 LiveInterval *LI = nullptr; 653 const VNInfo *VNI = nullptr; 654 if (LIS.hasInterval(Loc.getReg())) { 655 LI = &LIS.getInterval(Loc.getReg()); 656 VNI = LI->getVNInfoAt(Idx); 657 } 658 SmallVector<SlotIndex, 16> Kills; 659 extendDef(Idx, LocNo, LI, VNI, &Kills, LIS); 660 if (LI) 661 addDefsFromCopies(LI, LocNo, Kills, Defs, MRI, LIS); 662 continue; 663 } 664 665 // For physregs, use the live range of the first regunit as a guide. 666 unsigned Unit = *MCRegUnitIterator(Loc.getReg(), &TRI); 667 LiveRange *LR = &LIS.getRegUnit(Unit); 668 const VNInfo *VNI = LR->getVNInfoAt(Idx); 669 // Don't track copies from physregs, it is too expensive. 670 extendDef(Idx, LocNo, LR, VNI, nullptr, LIS); 671 } 672 673 // Finally, erase all the undefs. 674 for (LocMap::iterator I = locInts.begin(); I.valid();) 675 if (I.value() == ~0u) 676 I.erase(); 677 else 678 ++I; 679 } 680 681 void LDVImpl::computeIntervals() { 682 for (unsigned i = 0, e = userValues.size(); i != e; ++i) { 683 userValues[i]->computeIntervals(MF->getRegInfo(), *TRI, *LIS); 684 userValues[i]->mapVirtRegs(this); 685 } 686 } 687 688 bool LDVImpl::runOnMachineFunction(MachineFunction &mf) { 689 clear(); 690 MF = &mf; 691 LIS = &pass.getAnalysis<LiveIntervals>(); 692 TRI = mf.getSubtarget().getRegisterInfo(); 693 DEBUG(dbgs() << "********** COMPUTING LIVE DEBUG VARIABLES: " 694 << mf.getName() << " **********\n"); 695 696 bool Changed = collectDebugValues(mf); 697 computeIntervals(); 698 DEBUG(print(dbgs())); 699 ModifiedMF = Changed; 700 return Changed; 701 } 702 703 static void removeDebugValues(MachineFunction &mf) { 704 for (MachineBasicBlock &MBB : mf) { 705 for (auto MBBI = MBB.begin(), MBBE = MBB.end(); MBBI != MBBE; ) { 706 if (!MBBI->isDebugValue()) { 707 ++MBBI; 708 continue; 709 } 710 MBBI = MBB.erase(MBBI); 711 } 712 } 713 } 714 715 bool LiveDebugVariables::runOnMachineFunction(MachineFunction &mf) { 716 if (!EnableLDV) 717 return false; 718 if (!mf.getFunction()->getSubprogram()) { 719 removeDebugValues(mf); 720 return false; 721 } 722 if (!pImpl) 723 pImpl = new LDVImpl(this); 724 return static_cast<LDVImpl*>(pImpl)->runOnMachineFunction(mf); 725 } 726 727 void LiveDebugVariables::releaseMemory() { 728 if (pImpl) 729 static_cast<LDVImpl*>(pImpl)->clear(); 730 } 731 732 LiveDebugVariables::~LiveDebugVariables() { 733 if (pImpl) 734 delete static_cast<LDVImpl*>(pImpl); 735 } 736 737 //===----------------------------------------------------------------------===// 738 // Live Range Splitting 739 //===----------------------------------------------------------------------===// 740 741 bool 742 UserValue::splitLocation(unsigned OldLocNo, ArrayRef<unsigned> NewRegs, 743 LiveIntervals& LIS) { 744 DEBUG({ 745 dbgs() << "Splitting Loc" << OldLocNo << '\t'; 746 print(dbgs(), nullptr); 747 }); 748 bool DidChange = false; 749 LocMap::iterator LocMapI; 750 LocMapI.setMap(locInts); 751 for (unsigned i = 0; i != NewRegs.size(); ++i) { 752 LiveInterval *LI = &LIS.getInterval(NewRegs[i]); 753 if (LI->empty()) 754 continue; 755 756 // Don't allocate the new LocNo until it is needed. 757 unsigned NewLocNo = ~0u; 758 759 // Iterate over the overlaps between locInts and LI. 760 LocMapI.find(LI->beginIndex()); 761 if (!LocMapI.valid()) 762 continue; 763 LiveInterval::iterator LII = LI->advanceTo(LI->begin(), LocMapI.start()); 764 LiveInterval::iterator LIE = LI->end(); 765 while (LocMapI.valid() && LII != LIE) { 766 // At this point, we know that LocMapI.stop() > LII->start. 767 LII = LI->advanceTo(LII, LocMapI.start()); 768 if (LII == LIE) 769 break; 770 771 // Now LII->end > LocMapI.start(). Do we have an overlap? 772 if (LocMapI.value() == OldLocNo && LII->start < LocMapI.stop()) { 773 // Overlapping correct location. Allocate NewLocNo now. 774 if (NewLocNo == ~0u) { 775 MachineOperand MO = MachineOperand::CreateReg(LI->reg, false); 776 MO.setSubReg(locations[OldLocNo].getSubReg()); 777 NewLocNo = getLocationNo(MO); 778 DidChange = true; 779 } 780 781 SlotIndex LStart = LocMapI.start(); 782 SlotIndex LStop = LocMapI.stop(); 783 784 // Trim LocMapI down to the LII overlap. 785 if (LStart < LII->start) 786 LocMapI.setStartUnchecked(LII->start); 787 if (LStop > LII->end) 788 LocMapI.setStopUnchecked(LII->end); 789 790 // Change the value in the overlap. This may trigger coalescing. 791 LocMapI.setValue(NewLocNo); 792 793 // Re-insert any removed OldLocNo ranges. 794 if (LStart < LocMapI.start()) { 795 LocMapI.insert(LStart, LocMapI.start(), OldLocNo); 796 ++LocMapI; 797 assert(LocMapI.valid() && "Unexpected coalescing"); 798 } 799 if (LStop > LocMapI.stop()) { 800 ++LocMapI; 801 LocMapI.insert(LII->end, LStop, OldLocNo); 802 --LocMapI; 803 } 804 } 805 806 // Advance to the next overlap. 807 if (LII->end < LocMapI.stop()) { 808 if (++LII == LIE) 809 break; 810 LocMapI.advanceTo(LII->start); 811 } else { 812 ++LocMapI; 813 if (!LocMapI.valid()) 814 break; 815 LII = LI->advanceTo(LII, LocMapI.start()); 816 } 817 } 818 } 819 820 // Finally, remove any remaining OldLocNo intervals and OldLocNo itself. 821 locations.erase(locations.begin() + OldLocNo); 822 LocMapI.goToBegin(); 823 while (LocMapI.valid()) { 824 unsigned v = LocMapI.value(); 825 if (v == OldLocNo) { 826 DEBUG(dbgs() << "Erasing [" << LocMapI.start() << ';' 827 << LocMapI.stop() << ")\n"); 828 LocMapI.erase(); 829 } else { 830 if (v > OldLocNo) 831 LocMapI.setValueUnchecked(v-1); 832 ++LocMapI; 833 } 834 } 835 836 DEBUG({dbgs() << "Split result: \t"; print(dbgs(), nullptr);}); 837 return DidChange; 838 } 839 840 bool 841 UserValue::splitRegister(unsigned OldReg, ArrayRef<unsigned> NewRegs, 842 LiveIntervals &LIS) { 843 bool DidChange = false; 844 // Split locations referring to OldReg. Iterate backwards so splitLocation can 845 // safely erase unused locations. 846 for (unsigned i = locations.size(); i ; --i) { 847 unsigned LocNo = i-1; 848 const MachineOperand *Loc = &locations[LocNo]; 849 if (!Loc->isReg() || Loc->getReg() != OldReg) 850 continue; 851 DidChange |= splitLocation(LocNo, NewRegs, LIS); 852 } 853 return DidChange; 854 } 855 856 void LDVImpl::splitRegister(unsigned OldReg, ArrayRef<unsigned> NewRegs) { 857 bool DidChange = false; 858 for (UserValue *UV = lookupVirtReg(OldReg); UV; UV = UV->getNext()) 859 DidChange |= UV->splitRegister(OldReg, NewRegs, *LIS); 860 861 if (!DidChange) 862 return; 863 864 // Map all of the new virtual registers. 865 UserValue *UV = lookupVirtReg(OldReg); 866 for (unsigned i = 0; i != NewRegs.size(); ++i) 867 mapVirtReg(NewRegs[i], UV); 868 } 869 870 void LiveDebugVariables:: 871 splitRegister(unsigned OldReg, ArrayRef<unsigned> NewRegs, LiveIntervals &LIS) { 872 if (pImpl) 873 static_cast<LDVImpl*>(pImpl)->splitRegister(OldReg, NewRegs); 874 } 875 876 void 877 UserValue::rewriteLocations(VirtRegMap &VRM, const TargetRegisterInfo &TRI) { 878 // Iterate over locations in reverse makes it easier to handle coalescing. 879 for (unsigned i = locations.size(); i ; --i) { 880 unsigned LocNo = i-1; 881 MachineOperand &Loc = locations[LocNo]; 882 // Only virtual registers are rewritten. 883 if (!Loc.isReg() || !Loc.getReg() || 884 !TargetRegisterInfo::isVirtualRegister(Loc.getReg())) 885 continue; 886 unsigned VirtReg = Loc.getReg(); 887 if (VRM.isAssignedReg(VirtReg) && 888 TargetRegisterInfo::isPhysicalRegister(VRM.getPhys(VirtReg))) { 889 // This can create a %noreg operand in rare cases when the sub-register 890 // index is no longer available. That means the user value is in a 891 // non-existent sub-register, and %noreg is exactly what we want. 892 Loc.substPhysReg(VRM.getPhys(VirtReg), TRI); 893 } else if (VRM.getStackSlot(VirtReg) != VirtRegMap::NO_STACK_SLOT) { 894 // FIXME: Translate SubIdx to a stackslot offset. 895 Loc = MachineOperand::CreateFI(VRM.getStackSlot(VirtReg)); 896 } else { 897 Loc.setReg(0); 898 Loc.setSubReg(0); 899 } 900 coalesceLocation(LocNo); 901 } 902 } 903 904 /// findInsertLocation - Find an iterator for inserting a DBG_VALUE 905 /// instruction. 906 static MachineBasicBlock::iterator 907 findInsertLocation(MachineBasicBlock *MBB, SlotIndex Idx, 908 LiveIntervals &LIS) { 909 SlotIndex Start = LIS.getMBBStartIdx(MBB); 910 Idx = Idx.getBaseIndex(); 911 912 // Try to find an insert location by going backwards from Idx. 913 MachineInstr *MI; 914 while (!(MI = LIS.getInstructionFromIndex(Idx))) { 915 // We've reached the beginning of MBB. 916 if (Idx == Start) { 917 MachineBasicBlock::iterator I = MBB->SkipPHIsLabelsAndDebug(MBB->begin()); 918 return I; 919 } 920 Idx = Idx.getPrevIndex(); 921 } 922 923 // Don't insert anything after the first terminator, though. 924 return MI->isTerminator() ? MBB->getFirstTerminator() : 925 std::next(MachineBasicBlock::iterator(MI)); 926 } 927 928 void UserValue::insertDebugValue(MachineBasicBlock *MBB, SlotIndex Idx, 929 unsigned LocNo, 930 LiveIntervals &LIS, 931 const TargetInstrInfo &TII) { 932 MachineBasicBlock::iterator I = findInsertLocation(MBB, Idx, LIS); 933 MachineOperand &Loc = locations[LocNo]; 934 ++NumInsertedDebugValues; 935 936 assert(cast<DILocalVariable>(Variable) 937 ->isValidLocationForIntrinsic(getDebugLoc()) && 938 "Expected inlined-at fields to agree"); 939 if (Loc.isReg()) 940 BuildMI(*MBB, I, getDebugLoc(), TII.get(TargetOpcode::DBG_VALUE), 941 IsIndirect, Loc.getReg(), Variable, Expression); 942 else 943 BuildMI(*MBB, I, getDebugLoc(), TII.get(TargetOpcode::DBG_VALUE)) 944 .add(Loc) 945 .addImm(0U) 946 .addMetadata(Variable) 947 .addMetadata(Expression); 948 } 949 950 void UserValue::emitDebugValues(VirtRegMap *VRM, LiveIntervals &LIS, 951 const TargetInstrInfo &TII) { 952 MachineFunction::iterator MFEnd = VRM->getMachineFunction().end(); 953 954 for (LocMap::const_iterator I = locInts.begin(); I.valid();) { 955 SlotIndex Start = I.start(); 956 SlotIndex Stop = I.stop(); 957 unsigned LocNo = I.value(); 958 DEBUG(dbgs() << "\t[" << Start << ';' << Stop << "):" << LocNo); 959 MachineFunction::iterator MBB = LIS.getMBBFromIndex(Start)->getIterator(); 960 SlotIndex MBBEnd = LIS.getMBBEndIdx(&*MBB); 961 962 DEBUG(dbgs() << " BB#" << MBB->getNumber() << '-' << MBBEnd); 963 insertDebugValue(&*MBB, Start, LocNo, LIS, TII); 964 // This interval may span multiple basic blocks. 965 // Insert a DBG_VALUE into each one. 966 while(Stop > MBBEnd) { 967 // Move to the next block. 968 Start = MBBEnd; 969 if (++MBB == MFEnd) 970 break; 971 MBBEnd = LIS.getMBBEndIdx(&*MBB); 972 DEBUG(dbgs() << " BB#" << MBB->getNumber() << '-' << MBBEnd); 973 insertDebugValue(&*MBB, Start, LocNo, LIS, TII); 974 } 975 DEBUG(dbgs() << '\n'); 976 if (MBB == MFEnd) 977 break; 978 979 ++I; 980 } 981 } 982 983 void LDVImpl::emitDebugValues(VirtRegMap *VRM) { 984 DEBUG(dbgs() << "********** EMITTING LIVE DEBUG VARIABLES **********\n"); 985 if (!MF) 986 return; 987 const TargetInstrInfo *TII = MF->getSubtarget().getInstrInfo(); 988 for (unsigned i = 0, e = userValues.size(); i != e; ++i) { 989 DEBUG(userValues[i]->print(dbgs(), TRI)); 990 userValues[i]->rewriteLocations(*VRM, *TRI); 991 userValues[i]->emitDebugValues(VRM, *LIS, *TII); 992 } 993 EmitDone = true; 994 } 995 996 void LiveDebugVariables::emitDebugValues(VirtRegMap *VRM) { 997 if (pImpl) 998 static_cast<LDVImpl*>(pImpl)->emitDebugValues(VRM); 999 } 1000 1001 bool LiveDebugVariables::doInitialization(Module &M) { 1002 return Pass::doInitialization(M); 1003 } 1004 1005 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 1006 LLVM_DUMP_METHOD void LiveDebugVariables::dump() const { 1007 if (pImpl) 1008 static_cast<LDVImpl*>(pImpl)->print(dbgs()); 1009 } 1010 #endif 1011