1 //===- SplitKit.h - Toolkit for splitting live ranges -----------*- C++ -*-===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file contains the SplitAnalysis class as well as mutator functions for 10 // live range splitting. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #ifndef LLVM_LIB_CODEGEN_SPLITKIT_H 15 #define LLVM_LIB_CODEGEN_SPLITKIT_H 16 17 #include "llvm/ADT/ArrayRef.h" 18 #include "llvm/ADT/BitVector.h" 19 #include "llvm/ADT/DenseMap.h" 20 #include "llvm/ADT/DenseSet.h" 21 #include "llvm/ADT/IntervalMap.h" 22 #include "llvm/ADT/PointerIntPair.h" 23 #include "llvm/ADT/SmallPtrSet.h" 24 #include "llvm/ADT/SmallVector.h" 25 #include "llvm/CodeGen/LiveInterval.h" 26 #include "llvm/CodeGen/LiveIntervalCalc.h" 27 #include "llvm/CodeGen/LiveIntervals.h" 28 #include "llvm/CodeGen/MachineBasicBlock.h" 29 #include "llvm/CodeGen/MachineFunction.h" 30 #include "llvm/CodeGen/SlotIndexes.h" 31 #include "llvm/MC/LaneBitmask.h" 32 #include "llvm/Support/Compiler.h" 33 #include <utility> 34 35 namespace llvm { 36 37 class AAResults; 38 class LiveIntervals; 39 class LiveRangeEdit; 40 class MachineBlockFrequencyInfo; 41 class MachineDominatorTree; 42 class MachineLoopInfo; 43 class MachineRegisterInfo; 44 class TargetInstrInfo; 45 class TargetRegisterInfo; 46 class VirtRegMap; 47 48 /// Determines the latest safe point in a block in which we can insert a split, 49 /// spill or other instruction related with CurLI. 50 class LLVM_LIBRARY_VISIBILITY InsertPointAnalysis { 51 private: 52 const LiveIntervals &LIS; 53 54 /// Last legal insert point in each basic block in the current function. 55 /// The first entry is the first terminator, the second entry is the 56 /// last valid point to insert a split or spill for a variable that is 57 /// live into a landing pad or inlineasm_br successor. 58 SmallVector<std::pair<SlotIndex, SlotIndex>, 8> LastInsertPoint; 59 60 SlotIndex computeLastInsertPoint(const LiveInterval &CurLI, 61 const MachineBasicBlock &MBB); 62 63 public: 64 InsertPointAnalysis(const LiveIntervals &lis, unsigned BBNum); 65 66 /// Return the base index of the last valid insert point for \pCurLI in \pMBB. 67 SlotIndex getLastInsertPoint(const LiveInterval &CurLI, 68 const MachineBasicBlock &MBB) { 69 unsigned Num = MBB.getNumber(); 70 // Inline the common simple case. 71 if (LastInsertPoint[Num].first.isValid() && 72 !LastInsertPoint[Num].second.isValid()) 73 return LastInsertPoint[Num].first; 74 return computeLastInsertPoint(CurLI, MBB); 75 } 76 77 /// Returns the last insert point as an iterator for \pCurLI in \pMBB. 78 MachineBasicBlock::iterator getLastInsertPointIter(const LiveInterval &CurLI, 79 MachineBasicBlock &MBB); 80 81 /// Return the base index of the first insert point in \pMBB. 82 SlotIndex getFirstInsertPoint(MachineBasicBlock &MBB) { 83 SlotIndex Res = LIS.getMBBStartIdx(&MBB); 84 if (!MBB.empty()) { 85 MachineBasicBlock::iterator MII = MBB.SkipPHIsLabelsAndDebug(MBB.begin()); 86 if (MII != MBB.end()) 87 Res = LIS.getInstructionIndex(*MII); 88 } 89 return Res; 90 } 91 92 }; 93 94 /// SplitAnalysis - Analyze a LiveInterval, looking for live range splitting 95 /// opportunities. 96 class LLVM_LIBRARY_VISIBILITY SplitAnalysis { 97 public: 98 const MachineFunction &MF; 99 const VirtRegMap &VRM; 100 const LiveIntervals &LIS; 101 const MachineLoopInfo &Loops; 102 const TargetInstrInfo &TII; 103 104 /// Additional information about basic blocks where the current variable is 105 /// live. Such a block will look like one of these templates: 106 /// 107 /// 1. | o---x | Internal to block. Variable is only live in this block. 108 /// 2. |---x | Live-in, kill. 109 /// 3. | o---| Def, live-out. 110 /// 4. |---x o---| Live-in, kill, def, live-out. Counted by NumGapBlocks. 111 /// 5. |---o---o---| Live-through with uses or defs. 112 /// 6. |-----------| Live-through without uses. Counted by NumThroughBlocks. 113 /// 114 /// Two BlockInfo entries are created for template 4. One for the live-in 115 /// segment, and one for the live-out segment. These entries look as if the 116 /// block were split in the middle where the live range isn't live. 117 /// 118 /// Live-through blocks without any uses don't get BlockInfo entries. They 119 /// are simply listed in ThroughBlocks instead. 120 /// 121 struct BlockInfo { 122 MachineBasicBlock *MBB; 123 SlotIndex FirstInstr; ///< First instr accessing current reg. 124 SlotIndex LastInstr; ///< Last instr accessing current reg. 125 SlotIndex FirstDef; ///< First non-phi valno->def, or SlotIndex(). 126 bool LiveIn; ///< Current reg is live in. 127 bool LiveOut; ///< Current reg is live out. 128 129 /// isOneInstr - Returns true when this BlockInfo describes a single 130 /// instruction. 131 bool isOneInstr() const { 132 return SlotIndex::isSameInstr(FirstInstr, LastInstr); 133 } 134 }; 135 136 private: 137 // Current live interval. 138 const LiveInterval *CurLI = nullptr; 139 140 /// Insert Point Analysis. 141 InsertPointAnalysis IPA; 142 143 // Sorted slot indexes of using instructions. 144 SmallVector<SlotIndex, 8> UseSlots; 145 146 /// UseBlocks - Blocks where CurLI has uses. 147 SmallVector<BlockInfo, 8> UseBlocks; 148 149 /// NumGapBlocks - Number of duplicate entries in UseBlocks for blocks where 150 /// the live range has a gap. 151 unsigned NumGapBlocks; 152 153 /// ThroughBlocks - Block numbers where CurLI is live through without uses. 154 BitVector ThroughBlocks; 155 156 /// NumThroughBlocks - Number of live-through blocks. 157 unsigned NumThroughBlocks; 158 159 /// DidRepairRange - analyze was forced to shrinkToUses(). 160 bool DidRepairRange; 161 162 // Sumarize statistics by counting instructions using CurLI. 163 void analyzeUses(); 164 165 /// calcLiveBlockInfo - Compute per-block information about CurLI. 166 bool calcLiveBlockInfo(); 167 168 public: 169 SplitAnalysis(const VirtRegMap &vrm, const LiveIntervals &lis, 170 const MachineLoopInfo &mli); 171 172 /// analyze - set CurLI to the specified interval, and analyze how it may be 173 /// split. 174 void analyze(const LiveInterval *li); 175 176 /// didRepairRange() - Returns true if CurLI was invalid and has been repaired 177 /// by analyze(). This really shouldn't happen, but sometimes the coalescer 178 /// can create live ranges that end in mid-air. 179 bool didRepairRange() const { return DidRepairRange; } 180 181 /// clear - clear all data structures so SplitAnalysis is ready to analyze a 182 /// new interval. 183 void clear(); 184 185 /// getParent - Return the last analyzed interval. 186 const LiveInterval &getParent() const { return *CurLI; } 187 188 /// isOriginalEndpoint - Return true if the original live range was killed or 189 /// (re-)defined at Idx. Idx should be the 'def' slot for a normal kill/def, 190 /// and 'use' for an early-clobber def. 191 /// This can be used to recognize code inserted by earlier live range 192 /// splitting. 193 bool isOriginalEndpoint(SlotIndex Idx) const; 194 195 /// getUseSlots - Return an array of SlotIndexes of instructions using CurLI. 196 /// This include both use and def operands, at most one entry per instruction. 197 ArrayRef<SlotIndex> getUseSlots() const { return UseSlots; } 198 199 /// getUseBlocks - Return an array of BlockInfo objects for the basic blocks 200 /// where CurLI has uses. 201 ArrayRef<BlockInfo> getUseBlocks() const { return UseBlocks; } 202 203 /// getNumThroughBlocks - Return the number of through blocks. 204 unsigned getNumThroughBlocks() const { return NumThroughBlocks; } 205 206 /// isThroughBlock - Return true if CurLI is live through MBB without uses. 207 bool isThroughBlock(unsigned MBB) const { return ThroughBlocks.test(MBB); } 208 209 /// getThroughBlocks - Return the set of through blocks. 210 const BitVector &getThroughBlocks() const { return ThroughBlocks; } 211 212 /// getNumLiveBlocks - Return the number of blocks where CurLI is live. 213 unsigned getNumLiveBlocks() const { 214 return getUseBlocks().size() - NumGapBlocks + getNumThroughBlocks(); 215 } 216 217 /// countLiveBlocks - Return the number of blocks where li is live. This is 218 /// guaranteed to return the same number as getNumLiveBlocks() after calling 219 /// analyze(li). 220 unsigned countLiveBlocks(const LiveInterval *li) const; 221 222 using BlockPtrSet = SmallPtrSet<const MachineBasicBlock *, 16>; 223 224 /// shouldSplitSingleBlock - Returns true if it would help to create a local 225 /// live range for the instructions in BI. There is normally no benefit to 226 /// creating a live range for a single instruction, but it does enable 227 /// register class inflation if the instruction has a restricted register 228 /// class. 229 /// 230 /// @param BI The block to be isolated. 231 /// @param SingleInstrs True when single instructions should be isolated. 232 bool shouldSplitSingleBlock(const BlockInfo &BI, bool SingleInstrs) const; 233 234 SlotIndex getLastSplitPoint(unsigned Num) { 235 return IPA.getLastInsertPoint(*CurLI, *MF.getBlockNumbered(Num)); 236 } 237 238 MachineBasicBlock::iterator getLastSplitPointIter(MachineBasicBlock *BB) { 239 return IPA.getLastInsertPointIter(*CurLI, *BB); 240 } 241 242 SlotIndex getFirstSplitPoint(unsigned Num) { 243 return IPA.getFirstInsertPoint(*MF.getBlockNumbered(Num)); 244 } 245 }; 246 247 /// SplitEditor - Edit machine code and LiveIntervals for live range 248 /// splitting. 249 /// 250 /// - Create a SplitEditor from a SplitAnalysis. 251 /// - Start a new live interval with openIntv. 252 /// - Mark the places where the new interval is entered using enterIntv* 253 /// - Mark the ranges where the new interval is used with useIntv* 254 /// - Mark the places where the interval is exited with exitIntv*. 255 /// - Finish the current interval with closeIntv and repeat from 2. 256 /// - Rewrite instructions with finish(). 257 /// 258 class LLVM_LIBRARY_VISIBILITY SplitEditor { 259 SplitAnalysis &SA; 260 AAResults &AA; 261 LiveIntervals &LIS; 262 VirtRegMap &VRM; 263 MachineRegisterInfo &MRI; 264 MachineDominatorTree &MDT; 265 const TargetInstrInfo &TII; 266 const TargetRegisterInfo &TRI; 267 const MachineBlockFrequencyInfo &MBFI; 268 269 public: 270 /// ComplementSpillMode - Select how the complement live range should be 271 /// created. SplitEditor automatically creates interval 0 to contain 272 /// anything that isn't added to another interval. This complement interval 273 /// can get quite complicated, and it can sometimes be an advantage to allow 274 /// it to overlap the other intervals. If it is going to spill anyway, no 275 /// registers are wasted by keeping a value in two places at the same time. 276 enum ComplementSpillMode { 277 /// SM_Partition(Default) - Try to create the complement interval so it 278 /// doesn't overlap any other intervals, and the original interval is 279 /// partitioned. This may require a large number of back copies and extra 280 /// PHI-defs. Only segments marked with overlapIntv will be overlapping. 281 SM_Partition, 282 283 /// SM_Size - Overlap intervals to minimize the number of inserted COPY 284 /// instructions. Copies to the complement interval are hoisted to their 285 /// common dominator, so only one COPY is required per value in the 286 /// complement interval. This also means that no extra PHI-defs need to be 287 /// inserted in the complement interval. 288 SM_Size, 289 290 /// SM_Speed - Overlap intervals to minimize the expected execution 291 /// frequency of the inserted copies. This is very similar to SM_Size, but 292 /// the complement interval may get some extra PHI-defs. 293 SM_Speed 294 }; 295 296 private: 297 /// Edit - The current parent register and new intervals created. 298 LiveRangeEdit *Edit = nullptr; 299 300 /// Index into Edit of the currently open interval. 301 /// The index 0 is used for the complement, so the first interval started by 302 /// openIntv will be 1. 303 unsigned OpenIdx = 0; 304 305 /// The current spill mode, selected by reset(). 306 ComplementSpillMode SpillMode = SM_Partition; 307 308 using RegAssignMap = IntervalMap<SlotIndex, unsigned>; 309 310 /// Allocator for the interval map. This will eventually be shared with 311 /// SlotIndexes and LiveIntervals. 312 RegAssignMap::Allocator Allocator; 313 314 /// RegAssign - Map of the assigned register indexes. 315 /// Edit.get(RegAssign.lookup(Idx)) is the register that should be live at 316 /// Idx. 317 RegAssignMap RegAssign; 318 319 using ValueForcePair = PointerIntPair<VNInfo *, 1>; 320 using ValueMap = DenseMap<std::pair<unsigned, unsigned>, ValueForcePair>; 321 322 /// Values - keep track of the mapping from parent values to values in the new 323 /// intervals. Given a pair (RegIdx, ParentVNI->id), Values contains: 324 /// 325 /// 1. No entry - the value is not mapped to Edit.get(RegIdx). 326 /// 2. (Null, false) - the value is mapped to multiple values in 327 /// Edit.get(RegIdx). Each value is represented by a minimal live range at 328 /// its def. The full live range can be inferred exactly from the range 329 /// of RegIdx in RegAssign. 330 /// 3. (Null, true). As above, but the ranges in RegAssign are too large, and 331 /// the live range must be recomputed using ::extend(). 332 /// 4. (VNI, false) The value is mapped to a single new value. 333 /// The new value has no live ranges anywhere. 334 ValueMap Values; 335 336 /// LICalc - Cache for computing live ranges and SSA update. Each instance 337 /// can only handle non-overlapping live ranges, so use a separate 338 /// LiveIntervalCalc instance for the complement interval when in spill mode. 339 LiveIntervalCalc LICalc[2]; 340 341 /// getLICalc - Return the LICalc to use for RegIdx. In spill mode, the 342 /// complement interval can overlap the other intervals, so it gets its own 343 /// LICalc instance. When not in spill mode, all intervals can share one. 344 LiveIntervalCalc &getLICalc(unsigned RegIdx) { 345 return LICalc[SpillMode != SM_Partition && RegIdx != 0]; 346 } 347 348 /// Find a subrange corresponding to the exact lane mask @p LM in the live 349 /// interval @p LI. The interval @p LI is assumed to contain such a subrange. 350 /// This function is used to find corresponding subranges between the 351 /// original interval and the new intervals. 352 LiveInterval::SubRange &getSubRangeForMaskExact(LaneBitmask LM, 353 LiveInterval &LI); 354 355 /// Find a subrange corresponding to the lane mask @p LM, or a superset of it, 356 /// in the live interval @p LI. The interval @p LI is assumed to contain such 357 /// a subrange. This function is used to find corresponding subranges between 358 /// the original interval and the new intervals. 359 LiveInterval::SubRange &getSubRangeForMask(LaneBitmask LM, LiveInterval &LI); 360 361 /// Add a segment to the interval LI for the value number VNI. If LI has 362 /// subranges, corresponding segments will be added to them as well, but 363 /// with newly created value numbers. If Original is true, dead def will 364 /// only be added a subrange of LI if the corresponding subrange of the 365 /// original interval has a def at this index. Otherwise, all subranges 366 /// of LI will be updated. 367 void addDeadDef(LiveInterval &LI, VNInfo *VNI, bool Original); 368 369 /// defValue - define a value in RegIdx from ParentVNI at Idx. 370 /// Idx does not have to be ParentVNI->def, but it must be contained within 371 /// ParentVNI's live range in ParentLI. The new value is added to the value 372 /// map. The value being defined may either come from rematerialization 373 /// (or an inserted copy), or it may be coming from the original interval. 374 /// The parameter Original should be true in the latter case, otherwise 375 /// it should be false. 376 /// Return the new LI value. 377 VNInfo *defValue(unsigned RegIdx, const VNInfo *ParentVNI, SlotIndex Idx, 378 bool Original); 379 380 /// forceRecompute - Force the live range of ParentVNI in RegIdx to be 381 /// recomputed by LiveRangeCalc::extend regardless of the number of defs. 382 /// This is used for values whose live range doesn't match RegAssign exactly. 383 /// They could have rematerialized, or back-copies may have been moved. 384 void forceRecompute(unsigned RegIdx, const VNInfo &ParentVNI); 385 386 /// Calls forceRecompute() on any affected regidx and on ParentVNI 387 /// predecessors in case of a phi definition. 388 void forceRecomputeVNI(const VNInfo &ParentVNI); 389 390 /// defFromParent - Define Reg from ParentVNI at UseIdx using either 391 /// rematerialization or a COPY from parent. Return the new value. 392 VNInfo *defFromParent(unsigned RegIdx, 393 VNInfo *ParentVNI, 394 SlotIndex UseIdx, 395 MachineBasicBlock &MBB, 396 MachineBasicBlock::iterator I); 397 398 /// removeBackCopies - Remove the copy instructions that defines the values 399 /// in the vector in the complement interval. 400 void removeBackCopies(SmallVectorImpl<VNInfo*> &Copies); 401 402 /// getShallowDominator - Returns the least busy dominator of MBB that is 403 /// also dominated by DefMBB. Busy is measured by loop depth. 404 MachineBasicBlock *findShallowDominator(MachineBasicBlock *MBB, 405 MachineBasicBlock *DefMBB); 406 407 /// Find out all the backCopies dominated by others. 408 void computeRedundantBackCopies(DenseSet<unsigned> &NotToHoistSet, 409 SmallVectorImpl<VNInfo *> &BackCopies); 410 411 /// Hoist back-copies to the complement interval. It tries to hoist all 412 /// the back-copies to one BB if it is beneficial, or else simply remove 413 /// redundant backcopies dominated by others. 414 void hoistCopies(); 415 416 /// transferValues - Transfer values to the new ranges. 417 /// Return true if any ranges were skipped. 418 bool transferValues(); 419 420 /// Live range @p LR corresponding to the lane Mask @p LM has a live 421 /// PHI def at the beginning of block @p B. Extend the range @p LR of 422 /// all predecessor values that reach this def. If @p LR is a subrange, 423 /// the array @p Undefs is the set of all locations where it is undefined 424 /// via <def,read-undef> in other subranges for the same register. 425 void extendPHIRange(MachineBasicBlock &B, LiveIntervalCalc &LIC, 426 LiveRange &LR, LaneBitmask LM, 427 ArrayRef<SlotIndex> Undefs); 428 429 /// extendPHIKillRanges - Extend the ranges of all values killed by original 430 /// parent PHIDefs. 431 void extendPHIKillRanges(); 432 433 /// rewriteAssigned - Rewrite all uses of Edit.getReg() to assigned registers. 434 void rewriteAssigned(bool ExtendRanges); 435 436 /// deleteRematVictims - Delete defs that are dead after rematerializing. 437 void deleteRematVictims(); 438 439 /// Add a copy instruction copying \p FromReg to \p ToReg before 440 /// \p InsertBefore. This can be invoked with a \p LaneMask which may make it 441 /// necessary to construct a sequence of copies to cover it exactly. 442 SlotIndex buildCopy(Register FromReg, Register ToReg, LaneBitmask LaneMask, 443 MachineBasicBlock &MBB, MachineBasicBlock::iterator InsertBefore, 444 bool Late, unsigned RegIdx); 445 446 SlotIndex buildSingleSubRegCopy(Register FromReg, Register ToReg, 447 MachineBasicBlock &MB, MachineBasicBlock::iterator InsertBefore, 448 unsigned SubIdx, LiveInterval &DestLI, bool Late, SlotIndex Def); 449 450 public: 451 /// Create a new SplitEditor for editing the LiveInterval analyzed by SA. 452 /// Newly created intervals will be appended to newIntervals. 453 SplitEditor(SplitAnalysis &sa, AAResults &aa, LiveIntervals &lis, 454 VirtRegMap &vrm, MachineDominatorTree &mdt, 455 MachineBlockFrequencyInfo &mbfi); 456 457 /// reset - Prepare for a new split. 458 void reset(LiveRangeEdit&, ComplementSpillMode = SM_Partition); 459 460 /// Create a new virtual register and live interval. 461 /// Return the interval index, starting from 1. Interval index 0 is the 462 /// implicit complement interval. 463 unsigned openIntv(); 464 465 /// currentIntv - Return the current interval index. 466 unsigned currentIntv() const { return OpenIdx; } 467 468 /// selectIntv - Select a previously opened interval index. 469 void selectIntv(unsigned Idx); 470 471 /// enterIntvBefore - Enter the open interval before the instruction at Idx. 472 /// If the parent interval is not live before Idx, a COPY is not inserted. 473 /// Return the beginning of the new live range. 474 SlotIndex enterIntvBefore(SlotIndex Idx); 475 476 /// enterIntvAfter - Enter the open interval after the instruction at Idx. 477 /// Return the beginning of the new live range. 478 SlotIndex enterIntvAfter(SlotIndex Idx); 479 480 /// enterIntvAtEnd - Enter the open interval at the end of MBB. 481 /// Use the open interval from the inserted copy to the MBB end. 482 /// Return the beginning of the new live range. 483 SlotIndex enterIntvAtEnd(MachineBasicBlock &MBB); 484 485 /// useIntv - indicate that all instructions in MBB should use OpenLI. 486 void useIntv(const MachineBasicBlock &MBB); 487 488 /// useIntv - indicate that all instructions in range should use OpenLI. 489 void useIntv(SlotIndex Start, SlotIndex End); 490 491 /// leaveIntvAfter - Leave the open interval after the instruction at Idx. 492 /// Return the end of the live range. 493 SlotIndex leaveIntvAfter(SlotIndex Idx); 494 495 /// leaveIntvBefore - Leave the open interval before the instruction at Idx. 496 /// Return the end of the live range. 497 SlotIndex leaveIntvBefore(SlotIndex Idx); 498 499 /// leaveIntvAtTop - Leave the interval at the top of MBB. 500 /// Add liveness from the MBB top to the copy. 501 /// Return the end of the live range. 502 SlotIndex leaveIntvAtTop(MachineBasicBlock &MBB); 503 504 /// overlapIntv - Indicate that all instructions in range should use the open 505 /// interval, but also let the complement interval be live. 506 /// 507 /// This doubles the register pressure, but is sometimes required to deal with 508 /// register uses after the last valid split point. 509 /// 510 /// The Start index should be a return value from a leaveIntv* call, and End 511 /// should be in the same basic block. The parent interval must have the same 512 /// value across the range. 513 /// 514 void overlapIntv(SlotIndex Start, SlotIndex End); 515 516 /// finish - after all the new live ranges have been created, compute the 517 /// remaining live range, and rewrite instructions to use the new registers. 518 /// @param LRMap When not null, this vector will map each live range in Edit 519 /// back to the indices returned by openIntv. 520 /// There may be extra indices created by dead code elimination. 521 void finish(SmallVectorImpl<unsigned> *LRMap = nullptr); 522 523 /// dump - print the current interval mapping to dbgs(). 524 void dump() const; 525 526 // ===--- High level methods ---=== 527 528 /// splitSingleBlock - Split CurLI into a separate live interval around the 529 /// uses in a single block. This is intended to be used as part of a larger 530 /// split, and doesn't call finish(). 531 void splitSingleBlock(const SplitAnalysis::BlockInfo &BI); 532 533 /// splitLiveThroughBlock - Split CurLI in the given block such that it 534 /// enters the block in IntvIn and leaves it in IntvOut. There may be uses in 535 /// the block, but they will be ignored when placing split points. 536 /// 537 /// @param MBBNum Block number. 538 /// @param IntvIn Interval index entering the block. 539 /// @param LeaveBefore When set, leave IntvIn before this point. 540 /// @param IntvOut Interval index leaving the block. 541 /// @param EnterAfter When set, enter IntvOut after this point. 542 void splitLiveThroughBlock(unsigned MBBNum, 543 unsigned IntvIn, SlotIndex LeaveBefore, 544 unsigned IntvOut, SlotIndex EnterAfter); 545 546 /// splitRegInBlock - Split CurLI in the given block such that it enters the 547 /// block in IntvIn and leaves it on the stack (or not at all). Split points 548 /// are placed in a way that avoids putting uses in the stack interval. This 549 /// may require creating a local interval when there is interference. 550 /// 551 /// @param BI Block descriptor. 552 /// @param IntvIn Interval index entering the block. Not 0. 553 /// @param LeaveBefore When set, leave IntvIn before this point. 554 void splitRegInBlock(const SplitAnalysis::BlockInfo &BI, 555 unsigned IntvIn, SlotIndex LeaveBefore); 556 557 /// splitRegOutBlock - Split CurLI in the given block such that it enters the 558 /// block on the stack (or isn't live-in at all) and leaves it in IntvOut. 559 /// Split points are placed to avoid interference and such that the uses are 560 /// not in the stack interval. This may require creating a local interval 561 /// when there is interference. 562 /// 563 /// @param BI Block descriptor. 564 /// @param IntvOut Interval index leaving the block. 565 /// @param EnterAfter When set, enter IntvOut after this point. 566 void splitRegOutBlock(const SplitAnalysis::BlockInfo &BI, 567 unsigned IntvOut, SlotIndex EnterAfter); 568 }; 569 570 } // end namespace llvm 571 572 #endif // LLVM_LIB_CODEGEN_SPLITKIT_H 573