LLVM 24.0.0git
MachineInstr.cpp
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1//===- lib/CodeGen/MachineInstr.cpp ---------------------------------------===//
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// Methods common to all machine instructions.
10//
11//===----------------------------------------------------------------------===//
12
14#include "llvm/ADT/ArrayRef.h"
15#include "llvm/ADT/Hashing.h"
16#include "llvm/ADT/STLExtras.h"
38#include "llvm/IR/Constants.h"
40#include "llvm/IR/DebugLoc.h"
41#include "llvm/IR/Function.h"
42#include "llvm/IR/InlineAsm.h"
44#include "llvm/IR/LLVMContext.h"
45#include "llvm/IR/Metadata.h"
46#include "llvm/IR/Module.h"
48#include "llvm/IR/Operator.h"
49#include "llvm/MC/MCInstrDesc.h"
53#include "llvm/Support/Debug.h"
58#include <algorithm>
59#include <cassert>
60#include <cstdint>
61#include <cstring>
62#include <utility>
63
64using namespace llvm;
65
66static cl::opt<bool>
67 PrintMIAddrs("print-mi-addrs", cl::Hidden,
68 cl::desc("Print addresses of MachineInstrs when dumping"));
69
71 if (const MachineBasicBlock *MBB = MI.getParent())
72 if (const MachineFunction *MF = MBB->getParent())
73 return MF;
74 return nullptr;
75}
76
77// Try to crawl up to the machine function and get TRI/MRI/TII from it.
79 const TargetRegisterInfo *&TRI,
80 const MachineRegisterInfo *&MRI,
81 const TargetInstrInfo *&TII) {
82
83 if (const MachineFunction *MF = getMFIfAvailable(MI)) {
84 TRI = MF->getSubtarget().getRegisterInfo();
85 MRI = &MF->getRegInfo();
86 TII = MF->getSubtarget().getInstrInfo();
87 }
88}
89
91 for (MCPhysReg ImpDef : MCID->implicit_defs())
92 addOperand(MF, MachineOperand::CreateReg(ImpDef, true, true));
93 for (MCPhysReg ImpUse : MCID->implicit_uses())
94 addOperand(MF, MachineOperand::CreateReg(ImpUse, false, true));
95}
96
97/// MachineInstr ctor - This constructor creates a MachineInstr and adds the
98/// implicit operands. It reserves space for the number of operands specified by
99/// the MCInstrDesc.
100MachineInstr::MachineInstr(MachineFunction &MF, const MCInstrDesc &TID,
101 DebugLoc DL, bool NoImp)
102 : MCID(&TID), NumOperands(0), Flags(0), AsmPrinterFlags(0),
103 Opcode(TID.Opcode), DebugInstrNum(0), DbgLoc(std::move(DL)) {
104 // Reserve space for the expected number of operands.
105 if (unsigned NumOps = MCID->getNumOperands() + MCID->implicit_defs().size() +
106 MCID->implicit_uses().size()) {
107 CapOperands = OperandCapacity::get(NumOps);
108 Operands = MF.allocateOperandArray(CapOperands);
109 }
110
111 if (!NoImp)
113}
114
115/// MachineInstr ctor - Copies MachineInstr arg exactly.
116/// Does not copy the number from debug instruction numbering, to preserve
117/// uniqueness.
118MachineInstr::MachineInstr(MachineFunction &MF, const MachineInstr &MI)
119 : MCID(&MI.getDesc()), NumOperands(0), Flags(0), AsmPrinterFlags(0),
120 Opcode(MI.getOpcode()), DebugInstrNum(0), Info(MI.Info),
121 DbgLoc(MI.getDebugLoc()) {
122 CapOperands = OperandCapacity::get(MI.getNumOperands());
123 Operands = MF.allocateOperandArray(CapOperands);
124
125 // Copy operands.
126 for (const MachineOperand &MO : MI.operands())
127 addOperand(MF, MO);
128
129 // Replicate ties between the operands, which addOperand was not
130 // able to do reliably.
131 for (unsigned i = 0, e = getNumOperands(); i < e; ++i) {
132 MachineOperand &NewMO = getOperand(i);
133 const MachineOperand &OrigMO = MI.getOperand(i);
134 NewMO.TiedTo = OrigMO.TiedTo;
135 }
136
137 // Copy all the sensible flags.
138 setFlags(MI.Flags);
139}
140
142 if (getParent())
143 getMF()->handleChangeDesc(*this, TID);
144 MCID = &TID;
145 Opcode = TID.Opcode;
146}
147
148void MachineInstr::moveBefore(MachineInstr *MovePos) {
149 MovePos->getParent()->splice(MovePos, getParent(), getIterator());
150}
151
152/// getRegInfo - If this instruction is embedded into a MachineFunction,
153/// return the MachineRegisterInfo object for the current function, otherwise
154/// return null.
155MachineRegisterInfo *MachineInstr::getRegInfo() {
157 return &MBB->getParent()->getRegInfo();
158 return nullptr;
159}
160
161const MachineRegisterInfo *MachineInstr::getRegInfo() const {
162 if (const MachineBasicBlock *MBB = getParent())
163 return &MBB->getParent()->getRegInfo();
164 return nullptr;
165}
166
167void MachineInstr::removeRegOperandsFromUseLists(MachineRegisterInfo &MRI) {
168 for (MachineOperand &MO : operands())
169 if (MO.isReg())
171}
172
173void MachineInstr::addRegOperandsToUseLists(MachineRegisterInfo &MRI) {
174 for (MachineOperand &MO : operands())
175 if (MO.isReg())
176 MRI.addRegOperandToUseList(&MO);
177}
178
181 assert(MBB && "Use MachineInstrBuilder to add operands to dangling instrs");
182 MachineFunction *MF = MBB->getParent();
183 assert(MF && "Use MachineInstrBuilder to add operands to dangling instrs");
184 addOperand(*MF, Op);
185}
186
187/// Move NumOps MachineOperands from Src to Dst, with support for overlapping
188/// ranges. If MRI is non-null also update use-def chains.
190 unsigned NumOps, MachineRegisterInfo *MRI) {
191 if (MRI)
192 return MRI->moveOperands(Dst, Src, NumOps);
193 // MachineOperand is a trivially copyable type so we can just use memmove.
194 assert(Dst && Src && "Unknown operands");
195 std::memmove(Dst, Src, NumOps * sizeof(MachineOperand));
196}
197
198/// addOperand - Add the specified operand to the instruction. If it is an
199/// implicit operand, it is added to the end of the operand list. If it is
200/// an explicit operand it is added at the end of the explicit operand list
201/// (before the first implicit operand).
203 assert(isUInt<LLVM_MI_NUMOPERANDS_BITS>(NumOperands + 1) &&
204 "Cannot add more operands.");
205 assert(MCID && "Cannot add operands before providing an instr descriptor");
206
207 // Check if we're adding one of our existing operands.
208 if (&Op >= Operands && &Op < Operands + NumOperands) {
209 // This is unusual: MI->addOperand(MI->getOperand(i)).
210 // If adding Op requires reallocating or moving existing operands around,
211 // the Op reference could go stale. Support it by copying Op.
212 MachineOperand CopyOp(Op);
213 return addOperand(MF, CopyOp);
214 }
215
216 // Find the insert location for the new operand. Implicit registers go at
217 // the end, everything else goes before the implicit regs.
218 //
219 // FIXME: Allow mixed explicit and implicit operands on inline asm.
220 // InstrEmitter::EmitSpecialNode() is marking inline asm clobbers as
221 // implicit-defs, but they must not be moved around. See the FIXME in
222 // InstrEmitter.cpp.
223 unsigned OpNo = getNumOperands();
224 bool isImpReg = Op.isReg() && Op.isImplicit();
225 if (!isImpReg && !isInlineAsm()) {
226 while (OpNo && Operands[OpNo-1].isReg() && Operands[OpNo-1].isImplicit()) {
227 --OpNo;
228 assert(!Operands[OpNo].isTied() && "Cannot move tied operands");
229 }
230 }
231
232 // OpNo now points as the desired insertion point. Unless this is a variadic
233 // instruction, only implicit regs are allowed beyond MCID->getNumOperands().
234 // RegMask operands go between the explicit and implicit operands.
235 MachineRegisterInfo *MRI = getRegInfo();
236
237 // Determine if the Operands array needs to be reallocated.
238 // Save the old capacity and operand array.
239 OperandCapacity OldCap = CapOperands;
240 MachineOperand *OldOperands = Operands;
241 if (!OldOperands || OldCap.getSize() == getNumOperands()) {
242 CapOperands = OldOperands ? OldCap.getNext() : OldCap.get(1);
243 Operands = MF.allocateOperandArray(CapOperands);
244 // Move the operands before the insertion point.
245 if (OpNo)
246 moveOperands(Operands, OldOperands, OpNo, MRI);
247 }
248
249 // Move the operands following the insertion point.
250 if (OpNo != NumOperands)
251 moveOperands(Operands + OpNo + 1, OldOperands + OpNo, NumOperands - OpNo,
252 MRI);
253 ++NumOperands;
254
255 // Deallocate the old operand array.
256 if (OldOperands != Operands && OldOperands)
257 MF.deallocateOperandArray(OldCap, OldOperands);
258
259 // Copy Op into place. It still needs to be inserted into the MRI use lists.
260 MachineOperand *NewMO = new (Operands + OpNo) MachineOperand(Op);
261 NewMO->ParentMI = this;
262
263 // When adding a register operand, tell MRI about it.
264 if (NewMO->isReg()) {
265 // Ensure isOnRegUseList() returns false, regardless of Op's status.
266 NewMO->Contents.Reg.Prev = nullptr;
267 // Ignore existing ties. This is not a property that can be copied.
268 NewMO->TiedTo = 0;
269 // Add the new operand to MRI, but only for instructions in an MBB.
270 if (MRI)
271 MRI->addRegOperandToUseList(NewMO);
272 // The MCID operand information isn't accurate until we start adding
273 // explicit operands. The implicit operands are added first, then the
274 // explicits are inserted before them.
275 if (!isImpReg) {
276 // Tie uses to defs as indicated in MCInstrDesc.
277 if (NewMO->isUse()) {
278 int DefIdx = MCID->getOperandConstraint(OpNo, MCOI::TIED_TO);
279 if (DefIdx != -1)
280 tieOperands(DefIdx, OpNo);
281 }
282 // If the register operand is flagged as early, mark the operand as such.
283 if (MCID->getOperandConstraint(OpNo, MCOI::EARLY_CLOBBER) != -1)
284 NewMO->setIsEarlyClobber(true);
285 }
286 // Ensure debug instructions set debug flag on register uses.
287 if (NewMO->isUse() && isDebugInstr())
288 NewMO->setIsDebug();
289 }
290}
291
292void MachineInstr::removeOperand(unsigned OpNo) {
293 assert(OpNo < getNumOperands() && "Invalid operand number");
294 untieRegOperand(OpNo);
295
296#ifndef NDEBUG
297 // Moving tied operands would break the ties.
298 for (unsigned i = OpNo + 1, e = getNumOperands(); i != e; ++i)
299 if (Operands[i].isReg())
300 assert(!Operands[i].isTied() && "Cannot move tied operands");
301#endif
302
303 MachineRegisterInfo *MRI = getRegInfo();
304 if (MRI && Operands[OpNo].isReg())
305 MRI->removeRegOperandFromUseList(Operands + OpNo);
306
307 // Don't call the MachineOperand destructor. A lot of this code depends on
308 // MachineOperand having a trivial destructor anyway, and adding a call here
309 // wouldn't make it 'destructor-correct'.
310
311 if (unsigned N = NumOperands - 1 - OpNo)
312 moveOperands(Operands + OpNo, Operands + OpNo + 1, N, MRI);
313 --NumOperands;
314}
315
316void MachineInstr::setExtraInfo(MachineFunction &MF,
318 MCSymbol *PreInstrSymbol,
319 MCSymbol *PostInstrSymbol,
320 MDNode *HeapAllocMarker, MDNode *PCSections,
321 uint32_t CFIType, MDNode *MMRAs, Value *DS) {
322 bool HasPreInstrSymbol = PreInstrSymbol != nullptr;
323 bool HasPostInstrSymbol = PostInstrSymbol != nullptr;
324 bool HasHeapAllocMarker = HeapAllocMarker != nullptr;
325 bool HasPCSections = PCSections != nullptr;
326 bool HasCFIType = CFIType != 0;
327 bool HasMMRAs = MMRAs != nullptr;
328 bool HasDS = DS != nullptr;
329 int NumPointers = MMOs.size() + HasPreInstrSymbol + HasPostInstrSymbol +
330 HasHeapAllocMarker + HasPCSections + HasCFIType + HasMMRAs +
331 HasDS;
332
333 // Drop all extra info if there is none.
334 if (NumPointers <= 0) {
335 Info.clear();
336 return;
337 }
338
339 // If more than one pointer, then store out of line. Store heap alloc markers
340 // out of line because PointerSumType cannot hold more than 4 tag types with
341 // 32-bit pointers.
342 // FIXME: Maybe we should make the symbols in the extra info mutable?
343 else if (NumPointers > 1 || HasMMRAs || HasHeapAllocMarker || HasPCSections ||
344 HasCFIType || HasDS) {
345 Info.set<EIIK_OutOfLine>(
346 MF.createMIExtraInfo(MMOs, PreInstrSymbol, PostInstrSymbol,
347 HeapAllocMarker, PCSections, CFIType, MMRAs, DS));
348 return;
349 }
350
351 // Otherwise store the single pointer inline.
352 if (HasPreInstrSymbol)
353 Info.set<EIIK_PreInstrSymbol>(PreInstrSymbol);
354 else if (HasPostInstrSymbol)
355 Info.set<EIIK_PostInstrSymbol>(PostInstrSymbol);
356 else
357 Info.set<EIIK_MMO>(MMOs[0]);
358}
359
368
371 if (MMOs.empty()) {
372 dropMemRefs(MF);
373 return;
374 }
375
376 setExtraInfo(MF, MMOs, getPreInstrSymbol(), getPostInstrSymbol(),
379}
380
382 MachineMemOperand *MO) {
383 if (memoperands_empty()) {
384 setMemRefs(MF, {MO});
385 return;
386 }
387
390 MMOs.push_back(MO);
391 setMemRefs(MF, MMOs);
392}
393
394void MachineInstr::cloneMemRefs(MachineFunction &MF, const MachineInstr &MI) {
395 if (this == &MI)
396 // Nothing to do for a self-clone!
397 return;
398
399 assert(&MF == MI.getMF() &&
400 "Invalid machine functions when cloning memory refrences!");
401 // See if we can just steal the extra info already allocated for the
402 // instruction. We can do this whenever the pre- and post-instruction symbols
403 // are the same (including null).
404 if (getPreInstrSymbol() == MI.getPreInstrSymbol() &&
405 getPostInstrSymbol() == MI.getPostInstrSymbol() &&
406 getHeapAllocMarker() == MI.getHeapAllocMarker() &&
407 getPCSections() == MI.getPCSections() && getMMRAMetadata() &&
408 MI.getMMRAMetadata()) {
409 Info = MI.Info;
410 return;
411 }
412
413 // Otherwise, fall back on a copy-based clone.
414 setMemRefs(MF, MI.memoperands());
415}
416
417/// Check to see if the MMOs pointed to by the two MemRefs arrays are
418/// identical.
421 if (LHS.size() != RHS.size())
422 return false;
423
424 auto LHSPointees = make_pointee_range(LHS);
425 auto RHSPointees = make_pointee_range(RHS);
426 return std::equal(LHSPointees.begin(), LHSPointees.end(),
427 RHSPointees.begin());
428}
429
432 // Try handling easy numbers of MIs with simpler mechanisms.
433 if (MIs.empty()) {
434 dropMemRefs(MF);
435 return;
436 }
437 if (MIs.size() == 1) {
438 cloneMemRefs(MF, *MIs[0]);
439 return;
440 }
441 // Because an empty memoperands list provides *no* information and must be
442 // handled conservatively (assuming the instruction can do anything), the only
443 // way to merge with it is to drop all other memoperands.
444 if (MIs[0]->memoperands_empty()) {
445 dropMemRefs(MF);
446 return;
447 }
448
449 // Handle the general case.
451 // Start with the first instruction.
452 assert(&MF == MIs[0]->getMF() &&
453 "Invalid machine functions when cloning memory references!");
454 MergedMMOs.append(MIs[0]->memoperands_begin(), MIs[0]->memoperands_end());
455 // Now walk all the other instructions and accumulate any different MMOs.
456 for (const MachineInstr &MI : make_pointee_range(MIs.slice(1))) {
457 assert(&MF == MI.getMF() &&
458 "Invalid machine functions when cloning memory references!");
459
460 // Skip MIs with identical operands to the first. This is a somewhat
461 // arbitrary hack but will catch common cases without being quadratic.
462 // TODO: We could fully implement merge semantics here if needed.
463 if (hasIdenticalMMOs(MIs[0]->memoperands(), MI.memoperands()))
464 continue;
465
466 // Because an empty memoperands list provides *no* information and must be
467 // handled conservatively (assuming the instruction can do anything), the
468 // only way to merge with it is to drop all other memoperands.
469 if (MI.memoperands_empty()) {
470 dropMemRefs(MF);
471 return;
472 }
473
474 // Otherwise accumulate these into our temporary buffer of the merged state.
475 MergedMMOs.append(MI.memoperands_begin(), MI.memoperands_end());
476 }
477
478 setMemRefs(MF, MergedMMOs);
479}
480
482 // Do nothing if old and new symbols are the same.
483 if (Symbol == getPreInstrSymbol())
484 return;
485
486 // If there was only one symbol and we're removing it, just clear info.
487 if (!Symbol && Info.is<EIIK_PreInstrSymbol>()) {
488 Info.clear();
489 return;
490 }
491
492 setExtraInfo(MF, memoperands(), Symbol, getPostInstrSymbol(),
495}
496
498 // Do nothing if old and new symbols are the same.
499 if (Symbol == getPostInstrSymbol())
500 return;
501
502 // If there was only one symbol and we're removing it, just clear info.
503 if (!Symbol && Info.is<EIIK_PostInstrSymbol>()) {
504 Info.clear();
505 return;
506 }
507
508 setExtraInfo(MF, memoperands(), getPreInstrSymbol(), Symbol,
511}
512
514 // Do nothing if old and new symbols are the same.
515 if (Marker == getHeapAllocMarker())
516 return;
517
518 setExtraInfo(MF, memoperands(), getPreInstrSymbol(), getPostInstrSymbol(),
521}
522
524 // Do nothing if old and new symbols are the same.
525 if (PCSections == getPCSections())
526 return;
527
528 setExtraInfo(MF, memoperands(), getPreInstrSymbol(), getPostInstrSymbol(),
529 getHeapAllocMarker(), PCSections, getCFIType(),
531}
532
534 // Do nothing if old and new types are the same.
535 if (Type == getCFIType())
536 return;
537
538 setExtraInfo(MF, memoperands(), getPreInstrSymbol(), getPostInstrSymbol(),
541}
542
544 // Do nothing if old and new symbols are the same.
545 if (MMRAs == getMMRAMetadata())
546 return;
547
548 setExtraInfo(MF, memoperands(), getPreInstrSymbol(), getPostInstrSymbol(),
551}
552
554 // Do nothing if old and new symbols are the same.
555 if (DS == getDeactivationSymbol())
556 return;
557
558 setExtraInfo(MF, memoperands(), getPreInstrSymbol(), getPostInstrSymbol(),
560 getMMRAMetadata(), DS);
561}
562
564 const MachineInstr &MI) {
565 if (this == &MI)
566 // Nothing to do for a self-clone!
567 return;
568
569 assert(&MF == MI.getMF() &&
570 "Invalid machine functions when cloning instruction symbols!");
571
572 setPreInstrSymbol(MF, MI.getPreInstrSymbol());
573 setPostInstrSymbol(MF, MI.getPostInstrSymbol());
574 setHeapAllocMarker(MF, MI.getHeapAllocMarker());
575 setPCSections(MF, MI.getPCSections());
576 setMMRAMetadata(MF, MI.getMMRAMetadata());
577}
578
579uint32_t MachineInstr::mergeFlagsWith(const MachineInstr &Other) const {
580 // For now, the just return the union of the flags. If the flags get more
581 // complicated over time, we might need more logic here.
582 return getFlags() | Other.getFlags();
583}
584
586 uint32_t MIFlags = 0;
587 // Copy the wrapping flags.
588 if (const OverflowingBinaryOperator *OB =
590 if (OB->hasNoSignedWrap())
592 if (OB->hasNoUnsignedWrap())
594 } else if (const TruncInst *TI = dyn_cast<TruncInst>(&I)) {
595 if (TI->hasNoSignedWrap())
597 if (TI->hasNoUnsignedWrap())
599 } else if (const GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(&I)) {
600 if (GEP->hasNoUnsignedSignedWrap())
602 if (GEP->hasNoUnsignedWrap())
604 if (GEP->isInBounds())
606 }
607
608 // Copy the nonneg flag.
610 if (PNI->hasNonNeg())
612 // Copy the disjoint flag.
613 } else if (const PossiblyDisjointInst *PD =
615 if (PD->isDisjoint())
617 }
618
619 // Copy the samesign flag.
620 if (const ICmpInst *ICmp = dyn_cast<ICmpInst>(&I))
621 if (ICmp->hasSameSign())
623
624 // Copy the nonnull flag.
625 if (const auto *ASC = dyn_cast<AddrSpaceCastInst>(&I))
626 if (ASC->hasNonNull())
628
629 // Copy the exact flag.
631 if (PE->isExact())
633
634 // Copy the fast-math flags.
636 const FastMathFlags Flags = FP->getFastMathFlags();
637 if (Flags.noNaNs())
639 if (Flags.noInfs())
641 if (Flags.noSignedZeros())
643 if (Flags.allowReciprocal())
645 if (Flags.allowContract())
647 if (Flags.approxFunc())
649 if (Flags.allowReassoc())
651 }
652
653 if (I.getMetadata(LLVMContext::MD_unpredictable))
655
656 return MIFlags;
657}
658
662
663bool MachineInstr::hasPropertyInBundle(uint64_t Mask, QueryType Type) const {
664 assert(!isBundledWithPred() && "Must be called on bundle header");
666 if (MII->getDesc().getFlags() & Mask) {
667 if (Type == AnyInBundle)
668 return true;
669 } else {
670 if (Type == AllInBundle && !MII->isBundle())
671 return false;
672 }
673 // This was the last instruction in the bundle.
674 if (!MII->isBundledWithSucc())
675 return Type == AllInBundle;
676 }
677}
678
679bool MachineInstr::isIdenticalTo(const MachineInstr &Other,
680 MICheckType Check) const {
681 // If opcodes or number of operands are not the same then the two
682 // instructions are obviously not identical.
683 if (Other.getOpcode() != getOpcode() ||
684 Other.getNumOperands() != getNumOperands())
685 return false;
686
687 if (isBundle()) {
688 // We have passed the test above that both instructions have the same
689 // opcode, so we know that both instructions are bundles here. Let's compare
690 // MIs inside the bundle.
691 assert(Other.isBundle() && "Expected that both instructions are bundles.");
694 // Loop until we analysed the last intruction inside at least one of the
695 // bundles.
696 while (I1->isBundledWithSucc() && I2->isBundledWithSucc()) {
697 ++I1;
698 ++I2;
699 if (!I1->isIdenticalTo(*I2, Check))
700 return false;
701 }
702 // If we've reached the end of just one of the two bundles, but not both,
703 // the instructions are not identical.
704 if (I1->isBundledWithSucc() || I2->isBundledWithSucc())
705 return false;
706 }
707
708 // Check operands to make sure they match.
709 for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
710 const MachineOperand &MO = getOperand(i);
711 const MachineOperand &OMO = Other.getOperand(i);
712 if (!MO.isReg()) {
713 if (!MO.isIdenticalTo(OMO))
714 return false;
715 continue;
716 }
717
718 // Clients may or may not want to ignore defs when testing for equality.
719 // For example, machine CSE pass only cares about finding common
720 // subexpressions, so it's safe to ignore virtual register defs.
721 if (MO.isDef()) {
722 if (Check == IgnoreDefs)
723 continue;
724 else if (Check == IgnoreVRegDefs) {
725 if (!MO.getReg().isVirtual() || !OMO.getReg().isVirtual())
726 if (!MO.isIdenticalTo(OMO))
727 return false;
728 } else {
729 if (!MO.isIdenticalTo(OMO))
730 return false;
731 if (Check == CheckKillDead && MO.isDead() != OMO.isDead())
732 return false;
733 }
734 } else {
735 if (!MO.isIdenticalTo(OMO))
736 return false;
737 if (Check == CheckKillDead && MO.isKill() != OMO.isKill())
738 return false;
739 }
740 }
741 // If DebugLoc does not match then two debug instructions are not identical.
742 if (isDebugInstr())
743 if (getDebugLoc() && Other.getDebugLoc() &&
744 getDebugLoc() != Other.getDebugLoc())
745 return false;
746 // If pre- or post-instruction symbols do not match then the two instructions
747 // are not identical.
748 if (getPreInstrSymbol() != Other.getPreInstrSymbol() ||
749 getPostInstrSymbol() != Other.getPostInstrSymbol())
750 return false;
751 if (isCall()) {
752 // Call instructions with different CFI types are not identical.
753 if (getCFIType() != Other.getCFIType())
754 return false;
755 // Even if the call instructions have the same ops, they are not identical
756 // if they are for different globals (this may happen with indirect calls).
761 Other.getParent()->getParent()->tryGetCalledGlobal(&Other);
762 if (ThisCGI.Callee != OtherCGI.Callee ||
763 ThisCGI.TargetFlags != OtherCGI.TargetFlags)
764 return false;
765 }
766 }
767 if (getDeactivationSymbol() != Other.getDeactivationSymbol())
768 return false;
769
770 return true;
771}
772
773bool MachineInstr::isEquivalentDbgInstr(const MachineInstr &Other) const {
774 if (!isDebugValueLike() || !Other.isDebugValueLike())
775 return false;
776 if (getDebugLoc() != Other.getDebugLoc())
777 return false;
778 if (getDebugVariable() != Other.getDebugVariable())
779 return false;
780 if (getNumDebugOperands() != Other.getNumDebugOperands())
781 return false;
782 for (unsigned OpIdx = 0; OpIdx < getNumDebugOperands(); ++OpIdx)
783 if (!getDebugOperand(OpIdx).isIdenticalTo(Other.getDebugOperand(OpIdx)))
784 return false;
787 Other.getDebugExpression(), Other.isIndirectDebugValue()))
788 return false;
789 return true;
790}
791
793 return getParent()->getParent();
794}
795
797 assert(getParent() && "Not embedded in a basic block!");
798 return getParent()->remove(this);
799}
800
802 assert(getParent() && "Not embedded in a basic block!");
803 return getParent()->remove_instr(this);
804}
805
807 assert(getParent() && "Not embedded in a basic block!");
808 return getParent()->erase(this);
809}
810
812 assert(getParent() && "Not embedded in a basic block!");
813 getParent()->erase_instr(this);
814}
815
817 if (!isCall(Type))
818 return false;
819 switch (getOpcode()) {
820 case TargetOpcode::PATCHPOINT:
821 case TargetOpcode::STACKMAP:
822 case TargetOpcode::STATEPOINT:
823 case TargetOpcode::FENTRY_CALL:
824 return false;
825 }
826 return true;
827}
828
834
835template <typename Operand, typename Instruction>
836static iterator_range<
837 filter_iterator<Operand *, std::function<bool(Operand &Op)>>>
839 std::function<bool(Operand & Op)> OpUsesReg(
840 [Reg](Operand &Op) { return Op.isReg() && Op.getReg() == Reg; });
841 return make_filter_range(MI->debug_operands(), OpUsesReg);
842}
843
845 std::function<bool(const MachineOperand &Op)>>>
850
856
858 unsigned NumOperands = MCID->getNumOperands();
859 if (!MCID->isVariadic())
860 return NumOperands;
861
862 for (const MachineOperand &MO : operands_impl().drop_front(NumOperands)) {
863 // The operands must always be in the following order:
864 // - explicit reg defs,
865 // - other explicit operands (reg uses, immediates, etc.),
866 // - implicit reg defs
867 // - implicit reg uses
868 if (MO.isReg() && MO.isImplicit())
869 break;
870 ++NumOperands;
871 }
872 return NumOperands;
873}
874
876 unsigned NumDefs = MCID->getNumDefs();
877 if (!MCID->isVariadic())
878 return NumDefs;
879
880 for (const MachineOperand &MO : operands_impl().drop_front(NumDefs)) {
881 if (!MO.isReg() || !MO.isDef() || MO.isImplicit())
882 break;
883 ++NumDefs;
884 }
885 return NumDefs;
886}
887
889 assert(!isBundledWithPred() && "MI is already bundled with its predecessor");
892 --Pred;
893 assert(!Pred->isBundledWithSucc() && "Inconsistent bundle flags");
894 Pred->setFlag(BundledSucc);
895}
896
898 assert(!isBundledWithSucc() && "MI is already bundled with its successor");
901 ++Succ;
902 assert(!Succ->isBundledWithPred() && "Inconsistent bundle flags");
903 Succ->setFlag(BundledPred);
904}
905
907 assert(isBundledWithPred() && "MI isn't bundled with its predecessor");
910 --Pred;
911 assert(Pred->isBundledWithSucc() && "Inconsistent bundle flags");
912 Pred->clearFlag(BundledSucc);
913}
914
916 assert(isBundledWithSucc() && "MI isn't bundled with its successor");
919 ++Succ;
920 assert(Succ->isBundledWithPred() && "Inconsistent bundle flags");
921 Succ->clearFlag(BundledPred);
922}
923
925 if (isInlineAsm()) {
926 unsigned ExtraInfo = getOperand(InlineAsm::MIOp_ExtraInfo).getImm();
927 if (ExtraInfo & InlineAsm::Extra_IsAlignStack)
928 return true;
929 }
930 return false;
931}
932
934 assert(isInlineAsm() && "getInlineAsmDialect() only works for inline asms!");
935 unsigned ExtraInfo = getOperand(InlineAsm::MIOp_ExtraInfo).getImm();
936 return InlineAsm::getDialect(ExtraInfo);
937}
938
940 unsigned *GroupNo) const {
941 assert(isInlineAsm() && "Expected an inline asm instruction");
942 assert(OpIdx < getNumOperands() && "OpIdx out of range");
943
944 // Ignore queries about the initial operands.
946 return -1;
947
948 unsigned Group = 0;
949 unsigned NumOps;
950 for (unsigned i = InlineAsm::MIOp_FirstOperand, e = getNumOperands(); i < e;
951 i += NumOps) {
952 const MachineOperand &FlagMO = getOperand(i);
953 // If we reach the implicit register operands, stop looking.
954 if (!FlagMO.isImm())
955 return -1;
956 const InlineAsm::Flag F(FlagMO.getImm());
957 NumOps = 1 + F.getNumOperandRegisters();
958 if (i + NumOps > OpIdx) {
959 if (GroupNo)
960 *GroupNo = Group;
961 return i;
962 }
963 ++Group;
964 }
965 return -1;
966}
967
969 assert(isDebugLabel() && "not a DBG_LABEL");
970 return cast<DILabel>(getOperand(0).getMetadata());
971}
972
974 assert((isDebugValueLike()) && "not a DBG_VALUE*");
975 unsigned VariableOp = isNonListDebugValue() ? 2 : 0;
976 return getOperand(VariableOp);
977}
978
980 assert((isDebugValueLike()) && "not a DBG_VALUE*");
981 unsigned VariableOp = isNonListDebugValue() ? 2 : 0;
982 return getOperand(VariableOp);
983}
984
988
990 assert((isDebugValueLike()) && "not a DBG_VALUE*");
991 unsigned ExpressionOp = isNonListDebugValue() ? 3 : 1;
992 return getOperand(ExpressionOp);
993}
994
996 assert((isDebugValueLike()) && "not a DBG_VALUE*");
997 unsigned ExpressionOp = isNonListDebugValue() ? 3 : 1;
998 return getOperand(ExpressionOp);
999}
1000
1004
1008
1011 const TargetInstrInfo *TII,
1012 const TargetRegisterInfo *TRI) const {
1013 assert(getParent() && "Can't have an MBB reference here!");
1014 assert(getMF() && "Can't have an MF reference here!");
1015 // Most opcodes have fixed constraints in their MCInstrDesc.
1016 if (!isInlineAsm())
1017 return TII->getRegClass(getDesc(), OpIdx);
1018
1019 if (!getOperand(OpIdx).isReg())
1020 return nullptr;
1021
1022 // For tied uses on inline asm, get the constraint from the def.
1023 unsigned DefIdx;
1024 if (getOperand(OpIdx).isUse() && isRegTiedToDefOperand(OpIdx, &DefIdx))
1025 OpIdx = DefIdx;
1026
1027 // Inline asm stores register class constraints in the flag word.
1028 int FlagIdx = findInlineAsmFlagIdx(OpIdx);
1029 if (FlagIdx < 0)
1030 return nullptr;
1031
1032 const InlineAsm::Flag F(getOperand(FlagIdx).getImm());
1033 unsigned RCID;
1034 if ((F.isRegUseKind() || F.isRegDefKind() || F.isRegDefEarlyClobberKind()) &&
1035 F.hasRegClassConstraint(RCID))
1036 return TRI->getRegClass(RCID);
1037
1038 // Assume that all registers in a memory operand are pointers.
1039 if (F.isMemKind())
1040 return TRI->getPointerRegClass();
1041
1042 return nullptr;
1043}
1044
1046 Register Reg, const TargetRegisterClass *CurRC, const TargetInstrInfo *TII,
1047 const TargetRegisterInfo *TRI, bool ExploreBundle) const {
1048 // Check every operands inside the bundle if we have
1049 // been asked to.
1050 if (ExploreBundle)
1051 for (ConstMIBundleOperands OpndIt(*this); OpndIt.isValid() && CurRC;
1052 ++OpndIt)
1053 CurRC = OpndIt->getParent()->getRegClassConstraintEffectForVRegImpl(
1054 OpndIt.getOperandNo(), Reg, CurRC, TII, TRI);
1055 else
1056 // Otherwise, just check the current operands.
1057 for (unsigned i = 0, e = NumOperands; i < e && CurRC; ++i)
1058 CurRC = getRegClassConstraintEffectForVRegImpl(i, Reg, CurRC, TII, TRI);
1059 return CurRC;
1060}
1061
1062const TargetRegisterClass *MachineInstr::getRegClassConstraintEffectForVRegImpl(
1063 unsigned OpIdx, Register Reg, const TargetRegisterClass *CurRC,
1064 const TargetInstrInfo *TII, const TargetRegisterInfo *TRI) const {
1065 assert(CurRC && "Invalid initial register class");
1066 // Check if Reg is constrained by some of its use/def from MI.
1067 const MachineOperand &MO = getOperand(OpIdx);
1068 if (!MO.isReg() || MO.getReg() != Reg)
1069 return CurRC;
1070 // If yes, accumulate the constraints through the operand.
1071 return getRegClassConstraintEffect(OpIdx, CurRC, TII, TRI);
1072}
1073
1075 unsigned OpIdx, const TargetRegisterClass *CurRC,
1076 const TargetInstrInfo *TII, const TargetRegisterInfo *TRI) const {
1077 const TargetRegisterClass *OpRC = getRegClassConstraint(OpIdx, TII, TRI);
1078 const MachineOperand &MO = getOperand(OpIdx);
1079 assert(MO.isReg() &&
1080 "Cannot get register constraints for non-register operand");
1081 assert(CurRC && "Invalid initial register class");
1082 if (unsigned SubIdx = MO.getSubReg()) {
1083 if (OpRC)
1084 CurRC = TRI->getMatchingSuperRegClass(CurRC, OpRC, SubIdx);
1085 else
1086 CurRC = TRI->getSubClassWithSubReg(CurRC, SubIdx);
1087 } else if (OpRC)
1088 CurRC = TRI->getCommonSubClass(CurRC, OpRC);
1089 return CurRC;
1090}
1091
1092/// Return the number of instructions inside the MI bundle, not counting the
1093/// header instruction.
1096 unsigned Size = 0;
1097 while (I->isBundledWithSucc()) {
1098 ++Size;
1099 ++I;
1100 }
1101 return Size;
1102}
1103
1104/// Returns true if the MachineInstr has an implicit-use operand of exactly
1105/// the given register (not considering sub/super-registers).
1107 for (const MachineOperand &MO : implicit_operands()) {
1108 if (MO.isReg() && MO.isUse() && MO.getReg() == Reg)
1109 return true;
1110 }
1111 return false;
1112}
1113
1114/// findRegisterUseOperandIdx() - Returns the MachineOperand that is a use of
1115/// the specific register or -1 if it is not found. It further tightens
1116/// the search criteria to a use that kills the register if isKill is true.
1118 const TargetRegisterInfo *TRI,
1119 bool isKill) const {
1120 for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
1121 const MachineOperand &MO = getOperand(i);
1122 if (!MO.isReg() || !MO.isUse())
1123 continue;
1124 Register MOReg = MO.getReg();
1125 if (!MOReg)
1126 continue;
1127 if (MOReg == Reg || (TRI && Reg && MOReg && TRI->regsOverlap(MOReg, Reg)))
1128 if (!isKill || MO.isKill())
1129 return i;
1130 }
1131 return -1;
1132}
1133
1134/// readsWritesVirtualRegister - Return a pair of bools (reads, writes)
1135/// indicating if this instruction reads or writes Reg. This also considers
1136/// partial defines.
1137std::pair<bool,bool>
1140 bool PartDef = false; // Partial redefine.
1141 bool FullDef = false; // Full define.
1142 bool Use = false;
1143
1144 for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
1145 const MachineOperand &MO = getOperand(i);
1146 if (!MO.isReg() || MO.getReg() != Reg)
1147 continue;
1148 if (Ops)
1149 Ops->push_back(i);
1150 if (MO.isUse())
1151 Use |= !MO.isUndef();
1152 else if (MO.getSubReg() && !MO.isUndef())
1153 // A partial def undef doesn't count as reading the register.
1154 PartDef = true;
1155 else
1156 FullDef = true;
1157 }
1158 // A partial redefine uses Reg unless there is also a full define.
1159 return std::make_pair(Use || (PartDef && !FullDef), PartDef || FullDef);
1160}
1161
1162/// findRegisterDefOperandIdx() - Returns the operand index that is a def of
1163/// the specified register or -1 if it is not found. If isDead is true, defs
1164/// that are not dead are skipped. If TargetRegisterInfo is non-null, then it
1165/// also checks if there is a def of a super-register.
1167 const TargetRegisterInfo *TRI,
1168 bool isDead, bool Overlap) const {
1169 bool isPhys = Reg.isPhysical();
1170 for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
1171 const MachineOperand &MO = getOperand(i);
1172 // Accept regmask operands when Overlap is set.
1173 // Ignore them when looking for a specific def operand (Overlap == false).
1174 if (isPhys && Overlap && MO.isRegMask() && MO.clobbersPhysReg(Reg))
1175 return i;
1176 if (!MO.isReg() || !MO.isDef())
1177 continue;
1178 Register MOReg = MO.getReg();
1179 bool Found = (MOReg == Reg);
1180 if (!Found && TRI && isPhys && MOReg.isPhysical()) {
1181 if (Overlap)
1182 Found = TRI->regsOverlap(MOReg, Reg);
1183 else
1184 Found = TRI->isSubRegister(MOReg, Reg);
1185 }
1186 if (Found && (!isDead || MO.isDead()))
1187 return i;
1188 }
1189 return -1;
1190}
1191
1192/// findFirstPredOperandIdx() - Find the index of the first operand in the
1193/// operand list that is used to represent the predicate. It returns -1 if
1194/// none is found.
1196 // Don't call MCID.findFirstPredOperandIdx() because this variant
1197 // is sometimes called on an instruction that's not yet complete, and
1198 // so the number of operands is less than the MCID indicates. In
1199 // particular, the PTX target does this.
1200 const MCInstrDesc &MCID = getDesc();
1201 if (MCID.isPredicable()) {
1202 for (unsigned i = 0, e = getNumOperands(); i != e; ++i)
1203 if (MCID.operands()[i].isPredicate())
1204 return i;
1205 }
1206
1207 return -1;
1208}
1209
1210// MachineOperand::TiedTo is 4 bits wide.
1211const unsigned TiedMax = 15;
1212
1213/// tieOperands - Mark operands at DefIdx and UseIdx as tied to each other.
1214///
1215/// Use and def operands can be tied together, indicated by a non-zero TiedTo
1216/// field. TiedTo can have these values:
1217///
1218/// 0: Operand is not tied to anything.
1219/// 1 to TiedMax-1: Tied to getOperand(TiedTo-1).
1220/// TiedMax: Tied to an operand >= TiedMax-1.
1221///
1222/// The tied def must be one of the first TiedMax operands on a normal
1223/// instruction. INLINEASM instructions allow more tied defs.
1224///
1225void MachineInstr::tieOperands(unsigned DefIdx, unsigned UseIdx) {
1226 MachineOperand &DefMO = getOperand(DefIdx);
1227 MachineOperand &UseMO = getOperand(UseIdx);
1228 assert(DefMO.isDef() && "DefIdx must be a def operand");
1229 assert(UseMO.isUse() && "UseIdx must be a use operand");
1230 assert(!DefMO.isTied() && "Def is already tied to another use");
1231 assert(!UseMO.isTied() && "Use is already tied to another def");
1232
1233 if (DefIdx < TiedMax) {
1234 UseMO.TiedTo = DefIdx + 1;
1235 } else {
1236 // Inline asm can use the group descriptors to find tied operands,
1237 // statepoint tied operands are trivial to match (1-1 reg def with reg use),
1238 // but on normal instruction, the tied def must be within the first TiedMax
1239 // operands.
1240 assert((isInlineAsm() || getOpcode() == TargetOpcode::STATEPOINT) &&
1241 "DefIdx out of range");
1242 UseMO.TiedTo = TiedMax;
1243 }
1244
1245 // UseIdx can be out of range, we'll search for it in findTiedOperandIdx().
1246 DefMO.TiedTo = std::min(UseIdx + 1, TiedMax);
1247}
1248
1249/// Given the index of a tied register operand, find the operand it is tied to.
1250/// Defs are tied to uses and vice versa. Returns the index of the tied operand
1251/// which must exist.
1252unsigned MachineInstr::findTiedOperandIdx(unsigned OpIdx) const {
1253 const MachineOperand &MO = getOperand(OpIdx);
1254 assert(MO.isTied() && "Operand isn't tied");
1255
1256 // Normally TiedTo is in range.
1257 if (MO.TiedTo < TiedMax)
1258 return MO.TiedTo - 1;
1259
1260 // Uses on normal instructions can be out of range.
1261 if (!isInlineAsm() && getOpcode() != TargetOpcode::STATEPOINT) {
1262 // Normal tied defs must be in the 0..TiedMax-1 range.
1263 if (MO.isUse())
1264 return TiedMax - 1;
1265 // MO is a def. Search for the tied use.
1266 for (unsigned i = TiedMax - 1, e = getNumOperands(); i != e; ++i) {
1267 const MachineOperand &UseMO = getOperand(i);
1268 if (UseMO.isReg() && UseMO.isUse() && UseMO.TiedTo == OpIdx + 1)
1269 return i;
1270 }
1271 llvm_unreachable("Can't find tied use");
1272 }
1273
1274 if (getOpcode() == TargetOpcode::STATEPOINT) {
1275 // In STATEPOINT defs correspond 1-1 to GC pointer operands passed
1276 // on registers.
1277 StatepointOpers SO(this);
1278 unsigned CurUseIdx = SO.getFirstGCPtrIdx();
1279 assert(CurUseIdx != -1U && "only gc pointer statepoint operands can be tied");
1280 unsigned NumDefs = getNumDefs();
1281 for (unsigned CurDefIdx = 0; CurDefIdx < NumDefs; ++CurDefIdx) {
1282 while (!getOperand(CurUseIdx).isReg())
1283 CurUseIdx = StackMaps::getNextMetaArgIdx(this, CurUseIdx);
1284 if (OpIdx == CurDefIdx)
1285 return CurUseIdx;
1286 if (OpIdx == CurUseIdx)
1287 return CurDefIdx;
1288 CurUseIdx = StackMaps::getNextMetaArgIdx(this, CurUseIdx);
1289 }
1290 llvm_unreachable("Can't find tied use");
1291 }
1292
1293 // Now deal with inline asm by parsing the operand group descriptor flags.
1294 // Find the beginning of each operand group.
1295 SmallVector<unsigned, 8> GroupIdx;
1296 unsigned OpIdxGroup = ~0u;
1297 unsigned NumOps;
1298 for (unsigned i = InlineAsm::MIOp_FirstOperand, e = getNumOperands(); i < e;
1299 i += NumOps) {
1300 const MachineOperand &FlagMO = getOperand(i);
1301 assert(FlagMO.isImm() && "Invalid tied operand on inline asm");
1302 unsigned CurGroup = GroupIdx.size();
1303 GroupIdx.push_back(i);
1304 const InlineAsm::Flag F(FlagMO.getImm());
1305 NumOps = 1 + F.getNumOperandRegisters();
1306 // OpIdx belongs to this operand group.
1307 if (OpIdx > i && OpIdx < i + NumOps)
1308 OpIdxGroup = CurGroup;
1309 unsigned TiedGroup;
1310 if (!F.isUseOperandTiedToDef(TiedGroup))
1311 continue;
1312 // Operands in this group are tied to operands in TiedGroup which must be
1313 // earlier. Find the number of operands between the two groups.
1314 unsigned Delta = i - GroupIdx[TiedGroup];
1315
1316 // OpIdx is a use tied to TiedGroup.
1317 if (OpIdxGroup == CurGroup)
1318 return OpIdx - Delta;
1319
1320 // OpIdx is a def tied to this use group.
1321 if (OpIdxGroup == TiedGroup)
1322 return OpIdx + Delta;
1323 }
1324 llvm_unreachable("Invalid tied operand on inline asm");
1325}
1326
1327/// clearKillInfo - Clears kill flags on all operands.
1328///
1330 for (MachineOperand &MO : operands()) {
1331 if (MO.isReg() && MO.isUse())
1332 MO.setIsKill(false);
1333 }
1334}
1335
1337 unsigned SubIdx,
1338 const TargetRegisterInfo &RegInfo) {
1339 if (ToReg.isPhysical()) {
1340 if (SubIdx)
1341 ToReg = RegInfo.getSubReg(ToReg, SubIdx);
1342 for (MachineOperand &MO : operands()) {
1343 if (!MO.isReg() || MO.getReg() != FromReg)
1344 continue;
1345 MO.substPhysReg(ToReg, RegInfo);
1346 }
1347 } else {
1348 for (MachineOperand &MO : operands()) {
1349 if (!MO.isReg() || MO.getReg() != FromReg)
1350 continue;
1351 MO.substVirtReg(ToReg, SubIdx, RegInfo);
1352 }
1353 }
1354}
1355
1356/// isSafeToMove - Return true if it is safe to move this instruction. If
1357/// SawStore is set to true, it means that there is a store (or call) between
1358/// the instruction's location and its intended destination.
1359bool MachineInstr::isSafeToMove(bool &SawStore) const {
1360 // Ignore stuff that we obviously can't move.
1361 //
1362 // Treat volatile loads as stores. This is not strictly necessary for
1363 // volatiles, but it is required for atomic loads. It is not allowed to move
1364 // a load across an atomic load with Ordering > Monotonic.
1365 if (mayStore() || isCall() || isPHI() || hasOrderedMemoryRef()) {
1366 SawStore = true;
1367 return false;
1368 }
1369
1370 // Don't touch instructions that have non-trivial invariants. For example,
1371 // terminators have to be at the end of a basic block.
1372 if (isPosition() || isDebugInstr() || isTerminator() ||
1374 return false;
1375
1376 // Don't touch instructions which can have non-load/store effects.
1377 //
1378 // Inline asm has a "sideeffect" marker to indicate whether the asm has
1379 // intentional side-effects. Even if an inline asm is not "sideeffect",
1380 // though, it still can't be speculatively executed: the operation might
1381 // not be valid on the current target, or for some combinations of operands.
1382 // (Some transforms that move an instruction don't speculatively execute it;
1383 // we currently don't try to handle that distinction here.)
1384 //
1385 // Other instructions handled here include those that can raise FP
1386 // exceptions, x86 "DIV" instructions which trap on divide by zero, and
1387 // stack adjustments.
1389 isInlineAsm())
1390 return false;
1391
1392 // See if this instruction does a load. If so, we have to guarantee that the
1393 // loaded value doesn't change between the load and the its intended
1394 // destination. The check for isInvariantLoad gives the target the chance to
1395 // classify the load as always returning a constant, e.g. a constant pool
1396 // load.
1398 // Otherwise, this is a real load. If there is a store between the load and
1399 // end of block, we can't move it.
1400 return !SawStore;
1401
1402 return true;
1403}
1404
1406 // Don't delete frame allocation labels.
1407 // FIXME: Why is LOCAL_ESCAPE not considered in MachineInstr::isLabel?
1408 if (getOpcode() == TargetOpcode::LOCAL_ESCAPE)
1409 return false;
1410
1411 // Don't delete FAKE_USE.
1412 // FIXME: Why is FAKE_USE not considered in MachineInstr::isPosition?
1413 if (isFakeUse())
1414 return false;
1415
1416 // If we can move an instruction, we can remove it. Otherwise, it has
1417 // a side-effect of some sort.
1418 bool SawStore = false;
1419 return isPHI() || isSafeToMove(SawStore);
1420}
1421
1423 LiveRegUnits *LivePhysRegs) const {
1424 // Instructions without side-effects are dead iff they only define dead regs.
1425 // This function is hot and this loop returns early in the common case,
1426 // so only perform additional checks before this if absolutely necessary.
1427 for (const MachineOperand &MO : all_defs()) {
1428 Register Reg = MO.getReg();
1429 if (Reg.isPhysical()) {
1430 // Don't delete live physreg defs, or any reserved register defs.
1431 if (!LivePhysRegs || !LivePhysRegs->available(Reg) || MRI.isReserved(Reg))
1432 return false;
1433 } else {
1434 if (MO.isDead())
1435 continue;
1436 for (const MachineInstr &Use : MRI.use_nodbg_instructions(Reg)) {
1437 if (&Use != this)
1438 // This def has a non-debug use. Don't delete the instruction!
1439 return false;
1440 }
1441 }
1442 }
1443
1444 // Technically speaking inline asm without side effects and no defs can still
1445 // be deleted. But there is so much bad inline asm code out there, we should
1446 // let them be.
1447 if (isInlineAsm())
1448 return false;
1449
1450 // FIXME: See issue #105950 for why LIFETIME markers are considered dead here.
1451 if (isLifetimeMarker())
1452 return true;
1453
1454 // If there are no defs with uses, then we call the instruction dead so long
1455 // as we do not suspect it may have sideeffects.
1456 return wouldBeTriviallyDead();
1457}
1458
1460 BatchAAResults *AA, bool UseTBAA,
1461 const MachineMemOperand *MMOa,
1462 const MachineMemOperand *MMOb) {
1463 // The following interface to AA is fashioned after DAGCombiner::isAlias and
1464 // operates with MachineMemOperand offset with some important assumptions:
1465 // - LLVM fundamentally assumes flat address spaces.
1466 // - MachineOperand offset can *only* result from legalization and cannot
1467 // affect queries other than the trivial case of overlap checking.
1468 // - These offsets never wrap and never step outside of allocated objects.
1469 // - There should never be any negative offsets here.
1470 //
1471 // FIXME: Modify API to hide this math from "user"
1472 // Even before we go to AA we can reason locally about some memory objects. It
1473 // can save compile time, and possibly catch some corner cases not currently
1474 // covered.
1475
1476 int64_t OffsetA = MMOa->getOffset();
1477 int64_t OffsetB = MMOb->getOffset();
1478 int64_t MinOffset = std::min(OffsetA, OffsetB);
1479
1480 LocationSize WidthA = MMOa->getSize();
1481 LocationSize WidthB = MMOb->getSize();
1482 bool KnownWidthA = WidthA.hasValue();
1483 bool KnownWidthB = WidthB.hasValue();
1484 bool BothMMONonScalable = !WidthA.isScalable() && !WidthB.isScalable();
1485
1486 const Value *ValA = MMOa->getValue();
1487 const Value *ValB = MMOb->getValue();
1488 bool SameVal = (ValA && ValB && (ValA == ValB));
1489 if (!SameVal) {
1490 const PseudoSourceValue *PSVa = MMOa->getPseudoValue();
1491 const PseudoSourceValue *PSVb = MMOb->getPseudoValue();
1492 if (PSVa && ValB && !PSVa->mayAlias(&MFI))
1493 return false;
1494 if (PSVb && ValA && !PSVb->mayAlias(&MFI))
1495 return false;
1496 if (PSVa && PSVb && (PSVa == PSVb))
1497 SameVal = true;
1498 }
1499
1500 if (SameVal && BothMMONonScalable) {
1501 if (!KnownWidthA || !KnownWidthB)
1502 return true;
1503 int64_t MaxOffset = std::max(OffsetA, OffsetB);
1504 int64_t LowWidth = (MinOffset == OffsetA)
1505 ? WidthA.getValue().getKnownMinValue()
1506 : WidthB.getValue().getKnownMinValue();
1507 return (MinOffset + LowWidth > MaxOffset);
1508 }
1509
1510 if (!AA)
1511 return true;
1512
1513 if (!ValA || !ValB)
1514 return true;
1515
1516 assert((OffsetA >= 0) && "Negative MachineMemOperand offset");
1517 assert((OffsetB >= 0) && "Negative MachineMemOperand offset");
1518
1519 // If Scalable Location Size has non-zero offset, Width + Offset does not work
1520 // at the moment
1521 if ((WidthA.isScalable() && OffsetA > 0) ||
1522 (WidthB.isScalable() && OffsetB > 0))
1523 return true;
1524
1525 int64_t OverlapA =
1526 KnownWidthA ? WidthA.getValue().getKnownMinValue() + OffsetA - MinOffset
1528 int64_t OverlapB =
1529 KnownWidthB ? WidthB.getValue().getKnownMinValue() + OffsetB - MinOffset
1531
1532 LocationSize LocA = (WidthA.isScalable() || !KnownWidthA)
1533 ? WidthA
1534 : LocationSize::precise(OverlapA);
1535 LocationSize LocB = (WidthB.isScalable() || !KnownWidthB)
1536 ? WidthB
1537 : LocationSize::precise(OverlapB);
1538
1539 return !AA->isNoAlias(
1540 MemoryLocation(ValA, LocA, UseTBAA ? MMOa->getAAInfo() : AAMDNodes()),
1541 MemoryLocation(ValB, LocB, UseTBAA ? MMOb->getAAInfo() : AAMDNodes()));
1542}
1543
1545 bool UseTBAA) const {
1546 const MachineFunction *MF = getMF();
1548 const MachineFrameInfo &MFI = MF->getFrameInfo();
1549
1550 // Exclude call instruction which may alter the memory but can not be handled
1551 // by this function.
1552 if (isCall() || Other.isCall())
1553 return true;
1554
1555 // If neither instruction stores to memory, they can't alias in any
1556 // meaningful way, even if they read from the same address.
1557 if (!mayStore() && !Other.mayStore())
1558 return false;
1559
1560 // Both instructions must be memory operations to be able to alias.
1561 if (!mayLoadOrStore() || !Other.mayLoadOrStore())
1562 return false;
1563
1564 // Let the target decide if memory accesses cannot possibly overlap.
1565 if (TII->areMemAccessesTriviallyDisjoint(*this, Other))
1566 return false;
1567
1568 // Memory operations without memory operands may access anything. Be
1569 // conservative and assume `MayAlias`.
1570 if (memoperands_empty() || Other.memoperands_empty())
1571 return true;
1572
1573 // Skip if there are too many memory operands.
1574 auto NumChecks = getNumMemOperands() * Other.getNumMemOperands();
1575 if (NumChecks > TII->getMemOperandAACheckLimit())
1576 return true;
1577
1578 // Check each pair of memory operands from both instructions, which can't
1579 // alias only if all pairs won't alias.
1580 for (auto *MMOa : memoperands()) {
1581 for (auto *MMOb : Other.memoperands()) {
1582 if (!MMOa->isStore() && !MMOb->isStore())
1583 continue;
1584 if (MemOperandsHaveAlias(MFI, AA, UseTBAA, MMOa, MMOb))
1585 return true;
1586 }
1587 }
1588
1589 return false;
1590}
1591
1592bool MachineInstr::mayAlias(AAResults *AA, const MachineInstr &Other,
1593 bool UseTBAA) const {
1594 if (AA) {
1595 BatchAAResults BAA(*AA);
1596 return mayAlias(&BAA, Other, UseTBAA);
1597 }
1598 return mayAlias(static_cast<BatchAAResults *>(nullptr), Other, UseTBAA);
1599}
1600
1601/// hasOrderedMemoryRef - Return true if this instruction may have an ordered
1602/// or volatile memory reference, or if the information describing the memory
1603/// reference is not available. Return false if it is known to have no ordered
1604/// memory references.
1606 // An instruction known never to access memory won't have a volatile access.
1607 if (!mayStore() &&
1608 !mayLoad() &&
1609 !isCall() &&
1611 return false;
1612
1613 // Otherwise, if the instruction has no memory reference information,
1614 // conservatively assume it wasn't preserved.
1615 if (memoperands_empty())
1616 return true;
1617
1618 // Check if any of our memory operands are ordered.
1619 return llvm::any_of(memoperands(), [](const MachineMemOperand *MMO) {
1620 return !MMO->isUnordered();
1621 });
1622}
1623
1624/// isDereferenceableInvariantLoad - Return true if this instruction will never
1625/// trap and is loading from a location whose value is invariant across a run of
1626/// this function.
1628 // If the instruction doesn't load at all, it isn't an invariant load.
1629 if (!mayLoad())
1630 return false;
1631
1632 // If the instruction has lost its memoperands, conservatively assume that
1633 // it may not be an invariant load.
1634 if (memoperands_empty())
1635 return false;
1636
1637 const MachineFrameInfo &MFI = getParent()->getParent()->getFrameInfo();
1638
1639 for (MachineMemOperand *MMO : memoperands()) {
1640 if (!MMO->isUnordered())
1641 // If the memory operand has ordering side effects, we can't move the
1642 // instruction. Such an instruction is technically an invariant load,
1643 // but the caller code would need updated to expect that.
1644 return false;
1645 if (MMO->isStore()) return false;
1646 if (MMO->isInvariant() && MMO->isDereferenceable())
1647 continue;
1648
1649 // A load from a constant PseudoSourceValue is invariant.
1650 if (const PseudoSourceValue *PSV = MMO->getPseudoValue()) {
1651 if (PSV->isConstant(&MFI))
1652 continue;
1653 }
1654
1655 // Otherwise assume conservatively.
1656 return false;
1657 }
1658
1659 // Everything checks out.
1660 return true;
1661}
1662
1664 if (!isPHI())
1665 return {};
1666 assert(getNumOperands() >= 3 &&
1667 "It's illegal to have a PHI without source operands");
1668
1669 Register Reg = getOperand(1).getReg();
1670 for (unsigned i = 3, e = getNumOperands(); i < e; i += 2)
1671 if (getOperand(i).getReg() != Reg)
1672 return {};
1673 return Reg;
1674}
1675
1678 return true;
1679 if (isInlineAsm()) {
1680 unsigned ExtraInfo = getOperand(InlineAsm::MIOp_ExtraInfo).getImm();
1681 if (ExtraInfo & InlineAsm::Extra_HasSideEffects)
1682 return true;
1683 }
1684
1685 return false;
1686}
1687
1689 return mayStore() || isCall() ||
1691}
1692
1693/// allDefsAreDead - Return true if all the defs of this instruction are dead.
1694///
1696 for (const MachineOperand &MO : operands()) {
1697 if (!MO.isReg() || MO.isUse())
1698 continue;
1699 if (!MO.isDead())
1700 return false;
1701 }
1702 return true;
1703}
1704
1706 for (const MachineOperand &MO : implicit_operands()) {
1707 if (!MO.isReg() || MO.isUse())
1708 continue;
1709 if (!MO.isDead())
1710 return false;
1711 }
1712 return true;
1713}
1714
1715/// copyImplicitOps - Copy implicit register operands from specified
1716/// instruction to this instruction.
1718 const MachineInstr &MI) {
1719 for (const MachineOperand &MO :
1720 llvm::drop_begin(MI.operands(), MI.getDesc().getNumOperands()))
1721 if ((MO.isReg() && MO.isImplicit()) || MO.isRegMask())
1722 addOperand(MF, MO);
1723}
1724
1726 const MCInstrDesc &MCID = getDesc();
1727 if (MCID.Opcode == TargetOpcode::STATEPOINT)
1728 return true;
1729 for (unsigned I = 0, E = getNumOperands(); I < E; ++I) {
1730 const auto &Operand = getOperand(I);
1731 if (!Operand.isReg() || Operand.isDef())
1732 // Ignore the defined registers as MCID marks only the uses as tied.
1733 continue;
1734 int ExpectedTiedIdx = MCID.getOperandConstraint(I, MCOI::TIED_TO);
1735 int TiedIdx = Operand.isTied() ? int(findTiedOperandIdx(I)) : -1;
1736 if (ExpectedTiedIdx != TiedIdx)
1737 return true;
1738 }
1739 return false;
1740}
1741
1743 const MachineRegisterInfo &MRI) const {
1744 const MachineOperand &Op = getOperand(OpIdx);
1745 if (!Op.isReg())
1746 return LLT{};
1747
1748 if (isVariadic() || OpIdx >= getNumExplicitOperands())
1749 return MRI.getType(Op.getReg());
1750
1751 auto &OpInfo = getDesc().operands()[OpIdx];
1752 if (!OpInfo.isGenericType())
1753 return MRI.getType(Op.getReg());
1754
1755 if (PrintedTypes[OpInfo.getGenericTypeIndex()])
1756 return LLT{};
1757
1758 LLT TypeToPrint = MRI.getType(Op.getReg());
1759 // Don't mark the type index printed if it wasn't actually printed: maybe
1760 // another operand with the same type index has an actual type attached:
1761 if (TypeToPrint.isValid())
1762 PrintedTypes.set(OpInfo.getGenericTypeIndex());
1763 return TypeToPrint;
1764}
1765
1766#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
1768 dbgs() << " ";
1769 print(dbgs());
1770}
1771
1772LLVM_DUMP_METHOD void MachineInstr::dumprImpl(
1773 const MachineRegisterInfo &MRI, unsigned Depth, unsigned MaxDepth,
1774 SmallPtrSetImpl<const MachineInstr *> &AlreadySeenInstrs) const {
1775 if (Depth >= MaxDepth)
1776 return;
1777 if (!AlreadySeenInstrs.insert(this).second)
1778 return;
1779 // PadToColumn always inserts at least one space.
1780 // Don't mess up the alignment if we don't want any space.
1781 if (Depth)
1782 fdbgs().PadToColumn(Depth * 2);
1783 print(fdbgs());
1784 for (const MachineOperand &MO : operands()) {
1785 if (!MO.isReg() || MO.isDef())
1786 continue;
1787 Register Reg = MO.getReg();
1788 if (Reg.isPhysical())
1789 continue;
1790 const MachineInstr *NewMI = MRI.getUniqueVRegDef(Reg);
1791 if (NewMI == nullptr)
1792 continue;
1793 NewMI->dumprImpl(MRI, Depth + 1, MaxDepth, AlreadySeenInstrs);
1794 }
1795}
1796
1798 unsigned MaxDepth) const {
1799 SmallPtrSet<const MachineInstr *, 16> AlreadySeenInstrs;
1800 dumprImpl(MRI, 0, MaxDepth, AlreadySeenInstrs);
1801}
1802#endif
1803
1804void MachineInstr::print(raw_ostream &OS, bool IsStandalone, bool SkipOpers,
1805 bool SkipDebugLoc, bool AddNewLine,
1806 const TargetInstrInfo *TII) const {
1807 const Module *M = nullptr;
1808 const Function *F = nullptr;
1809 if (const MachineFunction *MF = getMFIfAvailable(*this)) {
1810 F = &MF->getFunction();
1811 M = F->getParent();
1812 if (!TII)
1813 TII = MF->getSubtarget().getInstrInfo();
1814 }
1815
1816 ModuleSlotTracker MST(M);
1817 if (F)
1818 MST.incorporateFunction(*F);
1819 print(OS, MST, IsStandalone, SkipOpers, SkipDebugLoc, AddNewLine, TII);
1820}
1821
1823 bool IsStandalone, bool SkipOpers, bool SkipDebugLoc,
1824 bool AddNewLine, const TargetInstrInfo *TII) const {
1825 // We can be a bit tidier if we know the MachineFunction.
1826 const TargetRegisterInfo *TRI = nullptr;
1827 const MachineRegisterInfo *MRI = nullptr;
1828 tryToGetTargetInfo(*this, TRI, MRI, TII);
1829
1830 if (isCFIInstruction())
1831 assert(getNumOperands() == 1 && "Expected 1 operand in CFI instruction");
1832
1833 SmallBitVector PrintedTypes(8);
1834 bool ShouldPrintRegisterTies = IsStandalone || hasComplexRegisterTies();
1835 auto GetTiedOperandIdx = [&](unsigned OpIdx) {
1836 if (!ShouldPrintRegisterTies)
1837 return 0U;
1838 const MachineOperand &MO = getOperand(OpIdx);
1839 if (MO.isReg() && MO.isTied() && !MO.isDef())
1840 return findTiedOperandIdx(OpIdx);
1841 return 0U;
1842 };
1843 unsigned StartOp = 0;
1844 unsigned e = getNumOperands();
1845
1846 // Print explicitly defined operands on the left of an assignment syntax.
1847 while (StartOp < e) {
1848 const MachineOperand &MO = getOperand(StartOp);
1849 if (!MO.isReg() || !MO.isDef() || MO.isImplicit())
1850 break;
1851
1852 if (StartOp != 0)
1853 OS << ", ";
1854
1855 LLT TypeToPrint = MRI ? getTypeToPrint(StartOp, PrintedTypes, *MRI) : LLT{};
1856 // tied operands are not printed for defs.
1857 MO.print(OS, MST, TypeToPrint, StartOp, /*PrintDef=*/false, IsStandalone,
1858 /*ShouldPrintRegisterTies=*/false, /*TiedOperandIdx=*/0, TRI);
1859 ++StartOp;
1860 }
1861
1862 if (StartOp != 0)
1863 OS << " = ";
1864
1866 OS << "frame-setup ";
1868 OS << "frame-destroy ";
1870 OS << "nnan ";
1872 OS << "ninf ";
1874 OS << "nsz ";
1876 OS << "arcp ";
1878 OS << "contract ";
1880 OS << "afn ";
1882 OS << "reassoc ";
1884 OS << "nuw ";
1886 OS << "nsw ";
1888 OS << "exact ";
1890 OS << "nofpexcept ";
1892 OS << "nomerge ";
1894 OS << "noconvergent ";
1896 OS << "nneg ";
1898 OS << "disjoint ";
1900 OS << "nusw ";
1902 OS << "samesign ";
1904 OS << "inbounds ";
1906 OS << "lr-split ";
1908 OS << "nonnull ";
1909
1910 // Print the opcode name.
1911 if (TII)
1912 OS << TII->getName(getOpcode());
1913 else
1914 OS << "UNKNOWN";
1915
1916 if (SkipOpers)
1917 return;
1918
1919 // Print the rest of the operands.
1920 bool FirstOp = true;
1921 unsigned AsmDescOp = ~0u;
1922 unsigned AsmOpCount = 0;
1923
1925 // Print asm string.
1926 OS << " ";
1927 const unsigned OpIdx = InlineAsm::MIOp_AsmString;
1928 LLT TypeToPrint = MRI ? getTypeToPrint(OpIdx, PrintedTypes, *MRI) : LLT{};
1929 unsigned TiedOperandIdx = GetTiedOperandIdx(OpIdx);
1930 getOperand(OpIdx).print(OS, MST, TypeToPrint, OpIdx, /*PrintDef=*/true,
1931 IsStandalone, ShouldPrintRegisterTies,
1932 TiedOperandIdx, TRI);
1933
1934 // Print HasSideEffects, MayLoad, MayStore, IsAlignStack
1935 unsigned ExtraInfo = getOperand(InlineAsm::MIOp_ExtraInfo).getImm();
1936 if (ExtraInfo & InlineAsm::Extra_HasSideEffects)
1937 OS << " [sideeffect]";
1938 if (ExtraInfo & InlineAsm::Extra_MayLoad)
1939 OS << " [mayload]";
1940 if (ExtraInfo & InlineAsm::Extra_MayStore)
1941 OS << " [maystore]";
1942 if (ExtraInfo & InlineAsm::Extra_IsConvergent)
1943 OS << " [isconvergent]";
1944 if (ExtraInfo & InlineAsm::Extra_IsAlignStack)
1945 OS << " [alignstack]";
1946 if (ExtraInfo & InlineAsm::Extra_MayUnwind)
1947 OS << " [unwind]";
1949 OS << " [attdialect]";
1951 OS << " [inteldialect]";
1952
1953 StartOp = AsmDescOp = InlineAsm::MIOp_FirstOperand;
1954 FirstOp = false;
1955 }
1956
1957 for (unsigned i = StartOp, e = getNumOperands(); i != e; ++i) {
1958 const MachineOperand &MO = getOperand(i);
1959
1960 if (FirstOp) FirstOp = false; else OS << ",";
1961 OS << " ";
1962
1963 if (isDebugValueLike() && MO.isMetadata()) {
1964 // Pretty print DBG_VALUE* instructions.
1965 auto *DIV = dyn_cast<DILocalVariable>(MO.getMetadata());
1966 if (DIV && !DIV->getName().empty())
1967 OS << "!\"" << DIV->getName() << '\"';
1968 else {
1969 LLT TypeToPrint = MRI ? getTypeToPrint(i, PrintedTypes, *MRI) : LLT{};
1970 unsigned TiedOperandIdx = GetTiedOperandIdx(i);
1971 MO.print(OS, MST, TypeToPrint, i, /*PrintDef=*/true, IsStandalone,
1972 ShouldPrintRegisterTies, TiedOperandIdx, TRI);
1973 }
1974 } else if (isDebugLabel() && MO.isMetadata()) {
1975 // Pretty print DBG_LABEL instructions.
1976 auto *DIL = dyn_cast<DILabel>(MO.getMetadata());
1977 if (DIL && !DIL->getName().empty())
1978 OS << "\"" << DIL->getName() << '\"';
1979 else {
1980 LLT TypeToPrint = MRI ? getTypeToPrint(i, PrintedTypes, *MRI) : LLT{};
1981 unsigned TiedOperandIdx = GetTiedOperandIdx(i);
1982 MO.print(OS, MST, TypeToPrint, i, /*PrintDef=*/true, IsStandalone,
1983 ShouldPrintRegisterTies, TiedOperandIdx, TRI);
1984 }
1985 } else if (i == AsmDescOp && MO.isImm()) {
1986 // Pretty print the inline asm operand descriptor.
1987 OS << '$' << AsmOpCount++;
1988 unsigned Flag = MO.getImm();
1989 const InlineAsm::Flag F(Flag);
1990 OS << ":[";
1991 OS << F.getKindName();
1992
1993 unsigned RCID;
1994 if (!F.isImmKind() && !F.isMemKind() && F.hasRegClassConstraint(RCID)) {
1995 if (TRI) {
1996 OS << ':' << TRI->getRegClassName(TRI->getRegClass(RCID));
1997 } else
1998 OS << ":RC" << RCID;
1999 }
2000
2001 if (F.isMemKind()) {
2002 const InlineAsm::ConstraintCode MCID = F.getMemoryConstraintID();
2003 OS << ":" << InlineAsm::getMemConstraintName(MCID);
2004 }
2005
2006 unsigned TiedTo;
2007 if (F.isUseOperandTiedToDef(TiedTo))
2008 OS << " tiedto:$" << TiedTo;
2009
2010 if ((F.isRegDefKind() || F.isRegDefEarlyClobberKind() ||
2011 F.isRegUseKind()) &&
2012 F.getRegMayBeFolded()) {
2013 OS << " foldable";
2014 }
2015
2016 OS << ']';
2017
2018 // Compute the index of the next operand descriptor.
2019 AsmDescOp += 1 + F.getNumOperandRegisters();
2020 } else if (MO.isImm() && isOperandSubregIdx(i)) {
2022 } else {
2023 LLT TypeToPrint = MRI ? getTypeToPrint(i, PrintedTypes, *MRI) : LLT{};
2024 unsigned TiedOperandIdx = GetTiedOperandIdx(i);
2025 MO.print(OS, MST, TypeToPrint, i, /*PrintDef=*/true, IsStandalone,
2026 ShouldPrintRegisterTies, TiedOperandIdx, TRI);
2027 }
2028 }
2029
2030 // Print any optional symbols attached to this instruction as-if they were
2031 // operands.
2032 if (MCSymbol *PreInstrSymbol = getPreInstrSymbol()) {
2033 if (!FirstOp) {
2034 OS << ',';
2035 }
2036 OS << " pre-instr-symbol ";
2037 MachineOperand::printSymbol(OS, *PreInstrSymbol);
2038 }
2039 if (MCSymbol *PostInstrSymbol = getPostInstrSymbol()) {
2040 if (!FirstOp) {
2041 OS << ',';
2042 }
2043 OS << " post-instr-symbol ";
2044 MachineOperand::printSymbol(OS, *PostInstrSymbol);
2045 }
2046 if (MDNode *HeapAllocMarker = getHeapAllocMarker()) {
2047 if (!FirstOp) {
2048 OS << ',';
2049 }
2050 OS << " heap-alloc-marker ";
2051 HeapAllocMarker->printAsOperand(OS, MST);
2052 }
2053 if (MDNode *PCSections = getPCSections()) {
2054 if (!FirstOp) {
2055 OS << ',';
2056 }
2057 OS << " pcsections ";
2058 PCSections->printAsOperand(OS, MST);
2059 }
2060 if (MDNode *MMRA = getMMRAMetadata()) {
2061 if (!FirstOp) {
2062 OS << ',';
2063 }
2064 OS << " mmra ";
2065 MMRA->printAsOperand(OS, MST);
2066 }
2067 if (uint32_t CFIType = getCFIType()) {
2068 if (!FirstOp)
2069 OS << ',';
2070 OS << " cfi-type " << CFIType;
2071 }
2073 OS << ", deactivation-symbol " << getDeactivationSymbol()->getName();
2074
2075 if (DebugInstrNum) {
2076 if (!FirstOp)
2077 OS << ",";
2078 OS << " debug-instr-number " << DebugInstrNum;
2079 }
2080
2081 if (!SkipDebugLoc) {
2082 if (const DebugLoc &DL = getDebugLoc()) {
2083 if (!FirstOp)
2084 OS << ',';
2085 OS << " debug-location ";
2086 DL->printAsOperand(OS, MST);
2087 }
2088 }
2089
2090 if (!memoperands_empty()) {
2092 const LLVMContext *Context = nullptr;
2093 std::unique_ptr<LLVMContext> CtxPtr;
2094 const MachineFrameInfo *MFI = nullptr;
2095 if (const MachineFunction *MF = getMFIfAvailable(*this)) {
2096 MFI = &MF->getFrameInfo();
2097 Context = &MF->getFunction().getContext();
2098 } else {
2099 CtxPtr = std::make_unique<LLVMContext>();
2100 Context = CtxPtr.get();
2101 }
2102
2103 OS << " :: ";
2104 bool NeedComma = false;
2105 for (const MachineMemOperand *Op : memoperands()) {
2106 if (NeedComma)
2107 OS << ", ";
2108 Op->print(OS, MST, SSNs, *Context, MFI, TII);
2109 NeedComma = true;
2110 }
2111 }
2112
2113 if (SkipDebugLoc)
2114 return;
2115
2116 bool HaveSemi = false;
2117
2118 // Print debug location information.
2119 if (const DebugLoc &DL = getDebugLoc()) {
2120 if (!HaveSemi) {
2121 OS << ';';
2122 HaveSemi = true;
2123 }
2124 OS << ' ';
2125 DL.print(OS);
2126 }
2127
2128 // Print extra comments for DEBUG_VALUE and friends if they are well-formed.
2129 if ((isNonListDebugValue() && getNumOperands() >= 4) ||
2130 (isDebugValueList() && getNumOperands() >= 2) ||
2131 (isDebugRef() && getNumOperands() >= 3)) {
2132 if (getDebugVariableOp().isMetadata()) {
2133 if (!HaveSemi) {
2134 OS << ";";
2135 HaveSemi = true;
2136 }
2137 auto *DV = getDebugVariable();
2138 OS << " line no:" << DV->getLine();
2140 OS << " indirect";
2141 }
2142 }
2143 // TODO: DBG_LABEL
2144
2145 if (PrintMIAddrs)
2146 OS << " ; " << this;
2147
2148 if (AddNewLine)
2149 OS << '\n';
2150}
2151
2153 const TargetRegisterInfo *RegInfo,
2154 bool AddIfNotFound) {
2155 bool isPhysReg = IncomingReg.isPhysical();
2156 bool hasAliases = isPhysReg &&
2157 MCRegAliasIterator(IncomingReg, RegInfo, false).isValid();
2158 bool Found = false;
2160 for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
2161 MachineOperand &MO = getOperand(i);
2162 if (!MO.isReg() || !MO.isUse() || MO.isUndef())
2163 continue;
2164
2165 // DEBUG_VALUE nodes do not contribute to code generation and should
2166 // always be ignored. Failure to do so may result in trying to modify
2167 // KILL flags on DEBUG_VALUE nodes.
2168 if (MO.isDebug())
2169 continue;
2170
2171 Register Reg = MO.getReg();
2172 if (!Reg)
2173 continue;
2174
2175 if (Reg == IncomingReg) {
2176 if (!Found) {
2177 if (MO.isKill())
2178 // The register is already marked kill.
2179 return true;
2180 if (isPhysReg && isRegTiedToDefOperand(i))
2181 // Two-address uses of physregs must not be marked kill.
2182 return true;
2183 MO.setIsKill();
2184 Found = true;
2185 }
2186 } else if (hasAliases && MO.isKill() && Reg.isPhysical()) {
2187 // A super-register kill already exists.
2188 if (RegInfo->isSuperRegister(IncomingReg, Reg))
2189 return true;
2190 if (RegInfo->isSubRegister(IncomingReg, Reg))
2191 DeadOps.push_back(i);
2192 }
2193 }
2194
2195 // Trim unneeded kill operands.
2196 while (!DeadOps.empty()) {
2197 unsigned OpIdx = DeadOps.back();
2198 if (getOperand(OpIdx).isImplicit() &&
2199 (!isInlineAsm() || findInlineAsmFlagIdx(OpIdx) < 0))
2200 removeOperand(OpIdx);
2201 else
2202 getOperand(OpIdx).setIsKill(false);
2203 DeadOps.pop_back();
2204 }
2205
2206 // If not found, this means an alias of one of the operands is killed. Add a
2207 // new implicit operand if required.
2208 if (!Found && AddIfNotFound) {
2210 false /*IsDef*/,
2211 true /*IsImp*/,
2212 true /*IsKill*/));
2213 return true;
2214 }
2215 return Found;
2216}
2217
2219 const TargetRegisterInfo *RegInfo) {
2220 if (!Reg.isPhysical())
2221 RegInfo = nullptr;
2222 for (MachineOperand &MO : operands()) {
2223 if (!MO.isReg() || !MO.isUse() || !MO.isKill())
2224 continue;
2225 Register OpReg = MO.getReg();
2226 if ((RegInfo && RegInfo->regsOverlap(Reg, OpReg)) || Reg == OpReg)
2227 MO.setIsKill(false);
2228 }
2229}
2230
2232 const TargetRegisterInfo *RegInfo,
2233 bool AddIfNotFound) {
2234 bool isPhysReg = Reg.isPhysical();
2235 bool hasAliases = isPhysReg &&
2236 MCRegAliasIterator(Reg, RegInfo, false).isValid();
2237 bool Found = false;
2239 for (unsigned i = 0, e = getNumOperands(); i != e; ++i) {
2240 MachineOperand &MO = getOperand(i);
2241 if (!MO.isReg() || !MO.isDef())
2242 continue;
2243 Register MOReg = MO.getReg();
2244 if (!MOReg)
2245 continue;
2246
2247 if (MOReg == Reg) {
2248 MO.setIsDead();
2249 Found = true;
2250 } else if (hasAliases && MO.isDead() && MOReg.isPhysical()) {
2251 // There exists a super-register that's marked dead.
2252 if (RegInfo->isSuperRegister(Reg, MOReg))
2253 return true;
2254 if (RegInfo->isSubRegister(Reg, MOReg))
2255 DeadOps.push_back(i);
2256 }
2257 }
2258
2259 // Trim unneeded dead operands.
2260 while (!DeadOps.empty()) {
2261 unsigned OpIdx = DeadOps.back();
2262 if (getOperand(OpIdx).isImplicit() &&
2263 (!isInlineAsm() || findInlineAsmFlagIdx(OpIdx) < 0))
2264 removeOperand(OpIdx);
2265 else
2266 getOperand(OpIdx).setIsDead(false);
2267 DeadOps.pop_back();
2268 }
2269
2270 // If not found, this means an alias of one of the operands is dead. Add a
2271 // new implicit operand if required.
2272 if (Found || !AddIfNotFound)
2273 return Found;
2274
2276 true /*IsDef*/,
2277 true /*IsImp*/,
2278 false /*IsKill*/,
2279 true /*IsDead*/));
2280 return true;
2281}
2282
2284 for (MachineOperand &MO : all_defs())
2285 if (MO.getReg() == Reg)
2286 MO.setIsDead(false);
2287}
2288
2290 for (MachineOperand &MO : all_defs())
2291 if (MO.getReg() == Reg && MO.getSubReg() != 0)
2292 MO.setIsUndef(IsUndef);
2293}
2294
2296 const TargetRegisterInfo *RegInfo) {
2297 if (Reg.isPhysical()) {
2298 MachineOperand *MO = findRegisterDefOperand(Reg, RegInfo, false, false);
2299 if (MO)
2300 return;
2301 } else {
2302 for (const MachineOperand &MO : all_defs()) {
2303 if (MO.getReg() == Reg && MO.getSubReg() == 0)
2304 return;
2305 }
2306 }
2308 true /*IsDef*/,
2309 true /*IsImp*/));
2310}
2311
2313 const TargetRegisterInfo &TRI) {
2314 bool HasRegMask = false;
2315 for (MachineOperand &MO : operands()) {
2316 if (MO.isRegMask()) {
2317 HasRegMask = true;
2318 continue;
2319 }
2320 if (!MO.isReg() || !MO.isDef()) continue;
2321 Register Reg = MO.getReg();
2322 if (!Reg.isPhysical())
2323 continue;
2324 // If there are no uses, including partial uses, the def is dead.
2325 if (llvm::none_of(UsedRegs,
2326 [&](MCRegister Use) { return TRI.regsOverlap(Use, Reg); }))
2327 MO.setIsDead();
2328 }
2329
2330 // This is a call with a register mask operand.
2331 // Mask clobbers are always dead, so add defs for the non-dead defines.
2332 if (HasRegMask)
2333 for (const Register &UsedReg : UsedRegs)
2334 addRegisterDefined(UsedReg, &TRI);
2335}
2336
2337unsigned
2339 // Build up a buffer of hash code components.
2340 SmallVector<size_t, 16> HashComponents;
2341 HashComponents.reserve(MI->getNumOperands() + 1);
2342 HashComponents.push_back(MI->getOpcode());
2343 for (const MachineOperand &MO : MI->operands()) {
2344 if (MO.isReg() && MO.isDef() && MO.getReg().isVirtual())
2345 continue; // Skip virtual register defs.
2346
2347 HashComponents.push_back(hash_value(MO));
2348 }
2349 return hash_combine_range(HashComponents);
2350}
2351
2353 // Find the source location cookie.
2354 const MDNode *LocMD = nullptr;
2355 for (unsigned i = getNumOperands(); i != 0; --i) {
2356 if (getOperand(i-1).isMetadata() &&
2357 (LocMD = getOperand(i-1).getMetadata()) &&
2358 LocMD->getNumOperands() != 0) {
2360 return LocMD;
2361 }
2362 }
2363
2364 return nullptr;
2365}
2366
2369 const MDNode *LocMD = getLocCookieMD();
2370 uint64_t LocCookie =
2371 LocMD
2372 ? mdconst::extract<ConstantInt>(LocMD->getOperand(0))->getZExtValue()
2373 : 0;
2375 Ctx.diagnose(DiagnosticInfoInlineAsm(LocCookie, Msg));
2376}
2377
2379 const Function &Fn = getMF()->getFunction();
2380 Fn.getContext().diagnose(
2382}
2383
2385 const MCInstrDesc &MCID, bool IsIndirect,
2386 Register Reg, const MDNode *Variable,
2387 const MDNode *Expr) {
2388 assert(isa<DILocalVariable>(Variable) && "not a variable");
2389 assert(cast<DIExpression>(Expr)->isValid() && "not an expression");
2390 assert(cast<DILocalVariable>(Variable)->isValidLocationForIntrinsic(DL) &&
2391 "Expected inlined-at fields to agree");
2392 auto MIB = BuildMI(MF, DL, MCID).addReg(Reg);
2393 if (IsIndirect)
2394 MIB.addImm(0U);
2395 else
2396 MIB.addReg(0U);
2397 return MIB.addMetadata(Variable).addMetadata(Expr);
2398}
2399
2401 const MCInstrDesc &MCID, bool IsIndirect,
2402 ArrayRef<MachineOperand> DebugOps,
2403 const MDNode *Variable, const MDNode *Expr) {
2404 assert(isa<DILocalVariable>(Variable) && "not a variable");
2405 assert(cast<DIExpression>(Expr)->isValid() && "not an expression");
2406 assert(cast<DILocalVariable>(Variable)->isValidLocationForIntrinsic(DL) &&
2407 "Expected inlined-at fields to agree");
2408 if (MCID.Opcode == TargetOpcode::DBG_VALUE) {
2409 assert(DebugOps.size() == 1 &&
2410 "DBG_VALUE must contain exactly one debug operand");
2411 MachineOperand DebugOp = DebugOps[0];
2412 if (DebugOp.isReg())
2413 return BuildMI(MF, DL, MCID, IsIndirect, DebugOp.getReg(), Variable,
2414 Expr);
2415
2416 auto MIB = BuildMI(MF, DL, MCID).add(DebugOp);
2417 if (IsIndirect)
2418 MIB.addImm(0U);
2419 else
2420 MIB.addReg(0U);
2421 return MIB.addMetadata(Variable).addMetadata(Expr);
2422 }
2423
2424 auto MIB = BuildMI(MF, DL, MCID);
2425 MIB.addMetadata(Variable).addMetadata(Expr);
2426 for (const MachineOperand &DebugOp : DebugOps)
2427 if (DebugOp.isReg())
2428 MIB.addReg(DebugOp.getReg());
2429 else
2430 MIB.add(DebugOp);
2431 return MIB;
2432}
2433
2436 const DebugLoc &DL, const MCInstrDesc &MCID,
2437 bool IsIndirect, Register Reg,
2438 const MDNode *Variable, const MDNode *Expr) {
2439 MachineFunction &MF = *BB.getParent();
2440 MachineInstr *MI = BuildMI(MF, DL, MCID, IsIndirect, Reg, Variable, Expr);
2441 BB.insert(I, MI);
2442 return MachineInstrBuilder(MF, MI);
2443}
2444
2447 const DebugLoc &DL, const MCInstrDesc &MCID,
2448 bool IsIndirect,
2449 ArrayRef<MachineOperand> DebugOps,
2450 const MDNode *Variable, const MDNode *Expr) {
2451 MachineFunction &MF = *BB.getParent();
2452 MachineInstr *MI =
2453 BuildMI(MF, DL, MCID, IsIndirect, DebugOps, Variable, Expr);
2454 BB.insert(I, MI);
2455 return MachineInstrBuilder(MF, *MI);
2456}
2457
2458/// Compute the new DIExpression to use with a DBG_VALUE for a spill slot.
2459/// This prepends DW_OP_deref when spilling an indirect DBG_VALUE.
2461 const MachineInstr &MI,
2462 const SmallVectorImpl<const MachineOperand *> &SpilledOperands) {
2463 assert(MI.getDebugVariable()->isValidLocationForIntrinsic(MI.getDebugLoc()) &&
2464 "Expected inlined-at fields to agree");
2465
2466 const DIExpression *Expr = MI.getDebugExpression();
2467 if (MI.isIndirectDebugValue()) {
2468 assert(MI.getDebugOffset().getImm() == 0 &&
2469 "DBG_VALUE with nonzero offset");
2471 } else if (MI.isDebugValueList()) {
2472 // We will replace the spilled register with a frame index, so
2473 // immediately deref all references to the spilled register.
2474 std::array<uint64_t, 1> Ops{{dwarf::DW_OP_deref}};
2475 for (const MachineOperand *Op : SpilledOperands) {
2476 unsigned OpIdx = MI.getDebugOperandIndex(Op);
2477 Expr = DIExpression::appendOpsToArg(Expr, Ops, OpIdx);
2478 }
2479 }
2480 return Expr;
2481}
2483 Register SpillReg) {
2484 assert(MI.hasDebugOperandForReg(SpillReg) && "Spill Reg is not used in MI.");
2486 llvm::make_pointer_range(MI.getDebugOperandsForReg(SpillReg)));
2487 return computeExprForSpill(MI, SpillOperands);
2488}
2489
2492 const MachineInstr &Orig,
2493 int FrameIndex, Register SpillReg) {
2494 assert(!Orig.isDebugRef() &&
2495 "DBG_INSTR_REF should not reference a virtual register.");
2496 const DIExpression *Expr = computeExprForSpill(Orig, SpillReg);
2497 MachineInstrBuilder NewMI =
2498 BuildMI(BB, I, Orig.getDebugLoc(), Orig.getDesc());
2499 // Non-Variadic Operands: Location, Offset, Variable, Expression
2500 // Variadic Operands: Variable, Expression, Locations...
2501 if (Orig.isNonListDebugValue())
2502 NewMI.addFrameIndex(FrameIndex).addImm(0U);
2503 NewMI.addMetadata(Orig.getDebugVariable()).addMetadata(Expr);
2504 if (Orig.isDebugValueList()) {
2505 for (const MachineOperand &Op : Orig.debug_operands())
2506 if (Op.isReg() && Op.getReg() == SpillReg)
2507 NewMI.addFrameIndex(FrameIndex);
2508 else
2509 NewMI.add(MachineOperand(Op));
2510 }
2511 return NewMI;
2512}
2515 const MachineInstr &Orig, int FrameIndex,
2516 const SmallVectorImpl<const MachineOperand *> &SpilledOperands) {
2517 const DIExpression *Expr = computeExprForSpill(Orig, SpilledOperands);
2518 MachineInstrBuilder NewMI =
2519 BuildMI(BB, I, Orig.getDebugLoc(), Orig.getDesc());
2520 // Non-Variadic Operands: Location, Offset, Variable, Expression
2521 // Variadic Operands: Variable, Expression, Locations...
2522 if (Orig.isNonListDebugValue())
2523 NewMI.addFrameIndex(FrameIndex).addImm(0U);
2524 NewMI.addMetadata(Orig.getDebugVariable()).addMetadata(Expr);
2525 if (Orig.isDebugValueList()) {
2526 for (const MachineOperand &Op : Orig.debug_operands())
2527 if (is_contained(SpilledOperands, &Op))
2528 NewMI.addFrameIndex(FrameIndex);
2529 else
2530 NewMI.add(MachineOperand(Op));
2531 }
2532 return NewMI;
2533}
2534
2536 Register Reg) {
2537 const DIExpression *Expr = computeExprForSpill(Orig, Reg);
2538 if (Orig.isNonListDebugValue())
2540 for (MachineOperand &Op : Orig.getDebugOperandsForReg(Reg))
2541 Op.ChangeToFrameIndex(FrameIndex);
2542 Orig.getDebugExpressionOp().setMetadata(Expr);
2543}
2544
2547 MachineInstr &MI = *this;
2548 if (!MI.getOperand(0).isReg())
2549 return;
2550
2552 for (MachineBasicBlock::iterator DE = MI.getParent()->end();
2553 DI != DE; ++DI) {
2554 if (!DI->isDebugValue())
2555 return;
2556 if (DI->hasDebugOperandForReg(MI.getOperand(0).getReg()))
2557 DbgValues.push_back(&*DI);
2558 }
2559}
2560
2562 // Collect matching debug values.
2564
2565 if (!getOperand(0).isReg())
2566 return;
2567
2568 Register DefReg = getOperand(0).getReg();
2569 auto *MRI = getRegInfo();
2570 for (MachineInstr &DI : MRI->use_instructions(DefReg)) {
2571 if (!DI.isDebugValue())
2572 continue;
2573 if (DI.hasDebugOperandForReg(DefReg)) {
2574 DbgValues.push_back(&DI);
2575 }
2576 }
2577
2578 // Propagate Reg to debug value instructions.
2579 for (auto *DBI : DbgValues)
2580 for (MachineOperand &Op : DBI->getDebugOperandsForReg(DefReg))
2581 Op.setReg(Reg);
2582}
2583
2585
2587 const MachineFrameInfo &MFI) {
2588 std::optional<TypeSize> Size;
2589 for (const auto *A : Accesses) {
2590 if (MFI.isSpillSlotObjectIndex(
2591 cast<FixedStackPseudoSourceValue>(A->getPseudoValue())
2592 ->getFrameIndex())) {
2593 LocationSize S = A->getSize();
2594 if (!S.hasValue())
2596 if (!Size)
2597 Size = S.getValue();
2598 else
2599 Size = *Size + S.getValue();
2600 }
2601 }
2602 if (!Size)
2603 return LocationSize::precise(0);
2604 return LocationSize::precise(*Size);
2605}
2606
2607std::optional<LocationSize>
2609 int FI;
2610 if (TII->isStoreToStackSlotPostFE(*this, FI)) {
2611 const MachineFrameInfo &MFI = getMF()->getFrameInfo();
2612 if (MFI.isSpillSlotObjectIndex(FI))
2613 return (*memoperands_begin())->getSize();
2614 }
2615 return std::nullopt;
2616}
2617
2618std::optional<LocationSize>
2620 if (!mayStore())
2621 return std::nullopt;
2622
2624 if (TII->hasStoreToStackSlot(*this, Accesses))
2625 return getSpillSlotSize(Accesses, getMF()->getFrameInfo());
2626 return std::nullopt;
2627}
2628
2629std::optional<LocationSize>
2631 int FI;
2632 if (TII->isLoadFromStackSlotPostFE(*this, FI)) {
2633 const MachineFrameInfo &MFI = getMF()->getFrameInfo();
2634 if (MFI.isSpillSlotObjectIndex(FI))
2635 return (*memoperands_begin())->getSize();
2636 }
2637 return std::nullopt;
2638}
2639
2640std::optional<LocationSize>
2643 if (TII->hasLoadFromStackSlot(*this, Accesses))
2644 return getSpillSlotSize(Accesses, getMF()->getFrameInfo());
2645 return std::nullopt;
2646}
2647
2649 if (DebugInstrNum == 0)
2650 DebugInstrNum = getParent()->getParent()->getNewDebugInstrNum();
2651 return DebugInstrNum;
2652}
2653
2655 if (DebugInstrNum == 0)
2656 DebugInstrNum = MF.getNewDebugInstrNum();
2657 return DebugInstrNum;
2658}
2659
2660std::tuple<LLT, LLT> MachineInstr::getFirst2LLTs() const {
2661 return std::tuple(getRegInfo()->getType(getOperand(0).getReg()),
2662 getRegInfo()->getType(getOperand(1).getReg()));
2663}
2664
2665std::tuple<LLT, LLT, LLT> MachineInstr::getFirst3LLTs() const {
2666 return std::tuple(getRegInfo()->getType(getOperand(0).getReg()),
2667 getRegInfo()->getType(getOperand(1).getReg()),
2668 getRegInfo()->getType(getOperand(2).getReg()));
2669}
2670
2671std::tuple<LLT, LLT, LLT, LLT> MachineInstr::getFirst4LLTs() const {
2672 return std::tuple(getRegInfo()->getType(getOperand(0).getReg()),
2673 getRegInfo()->getType(getOperand(1).getReg()),
2674 getRegInfo()->getType(getOperand(2).getReg()),
2675 getRegInfo()->getType(getOperand(3).getReg()));
2676}
2677
2678std::tuple<LLT, LLT, LLT, LLT, LLT> MachineInstr::getFirst5LLTs() const {
2679 return std::tuple(getRegInfo()->getType(getOperand(0).getReg()),
2680 getRegInfo()->getType(getOperand(1).getReg()),
2681 getRegInfo()->getType(getOperand(2).getReg()),
2682 getRegInfo()->getType(getOperand(3).getReg()),
2683 getRegInfo()->getType(getOperand(4).getReg()));
2684}
2685
2686std::tuple<Register, LLT, Register, LLT>
2688 Register Reg0 = getOperand(0).getReg();
2689 Register Reg1 = getOperand(1).getReg();
2690 return std::tuple(Reg0, getRegInfo()->getType(Reg0), Reg1,
2691 getRegInfo()->getType(Reg1));
2692}
2693
2694std::tuple<Register, LLT, Register, LLT, Register, LLT>
2696 Register Reg0 = getOperand(0).getReg();
2697 Register Reg1 = getOperand(1).getReg();
2698 Register Reg2 = getOperand(2).getReg();
2699 return std::tuple(Reg0, getRegInfo()->getType(Reg0), Reg1,
2700 getRegInfo()->getType(Reg1), Reg2,
2701 getRegInfo()->getType(Reg2));
2702}
2703
2704std::tuple<Register, LLT, Register, LLT, Register, LLT, Register, LLT>
2706 Register Reg0 = getOperand(0).getReg();
2707 Register Reg1 = getOperand(1).getReg();
2708 Register Reg2 = getOperand(2).getReg();
2709 Register Reg3 = getOperand(3).getReg();
2710 return std::tuple(
2711 Reg0, getRegInfo()->getType(Reg0), Reg1, getRegInfo()->getType(Reg1),
2712 Reg2, getRegInfo()->getType(Reg2), Reg3, getRegInfo()->getType(Reg3));
2713}
2714
2716 LLT>
2718 Register Reg0 = getOperand(0).getReg();
2719 Register Reg1 = getOperand(1).getReg();
2720 Register Reg2 = getOperand(2).getReg();
2721 Register Reg3 = getOperand(3).getReg();
2722 Register Reg4 = getOperand(4).getReg();
2723 return std::tuple(
2724 Reg0, getRegInfo()->getType(Reg0), Reg1, getRegInfo()->getType(Reg1),
2725 Reg2, getRegInfo()->getType(Reg2), Reg3, getRegInfo()->getType(Reg3),
2726 Reg4, getRegInfo()->getType(Reg4));
2727}
2728
2731 assert(InsertBefore != nullptr && "invalid iterator");
2732 assert(InsertBefore->getParent() == this &&
2733 "iterator points to operand of other inst");
2734 if (Ops.empty())
2735 return;
2736
2737 // Do one pass to untie operands.
2739 for (const MachineOperand &MO : operands()) {
2740 if (MO.isReg() && MO.isTied()) {
2741 unsigned OpNo = getOperandNo(&MO);
2742 unsigned TiedTo = findTiedOperandIdx(OpNo);
2743 TiedOpIndices[OpNo] = TiedTo;
2744 untieRegOperand(OpNo);
2745 }
2746 }
2747
2748 unsigned OpIdx = getOperandNo(InsertBefore);
2749 unsigned NumOperands = getNumOperands();
2750 unsigned OpsToMove = NumOperands - OpIdx;
2751
2753 MovingOps.reserve(OpsToMove);
2754
2755 for (unsigned I = 0; I < OpsToMove; ++I) {
2756 MovingOps.emplace_back(getOperand(OpIdx));
2757 removeOperand(OpIdx);
2758 }
2759 for (const MachineOperand &MO : Ops)
2760 addOperand(MO);
2761 for (const MachineOperand &OpMoved : MovingOps)
2762 addOperand(OpMoved);
2763
2764 // Re-tie operands.
2765 for (auto [Tie1, Tie2] : TiedOpIndices) {
2766 if (Tie1 >= OpIdx)
2767 Tie1 += Ops.size();
2768 if (Tie2 >= OpIdx)
2769 Tie2 += Ops.size();
2770 tieOperands(Tie1, Tie2);
2771 }
2772}
2773
2774bool MachineInstr::mayFoldInlineAsmRegOp(unsigned OpId) const {
2775 assert(OpId && "expected non-zero operand id");
2776 assert(isInlineAsm() && "should only be used on inline asm");
2777
2778 if (!getOperand(OpId).isReg())
2779 return false;
2780
2781 const MachineOperand &MD = getOperand(OpId - 1);
2782 if (!MD.isImm())
2783 return false;
2784
2785 InlineAsm::Flag F(MD.getImm());
2786 if (F.isRegUseKind() || F.isRegDefKind() || F.isRegDefEarlyClobberKind())
2787 return F.getRegMayBeFolded();
2788 return false;
2789}
2790
2792 assert(isPHI());
2793
2794 // Phi might have multiple entries for MBB. Need to remove them all.
2795 unsigned RemovedCount = 0;
2796 for (unsigned N = getNumOperands(); N > 2; N -= 2) {
2797 if (getOperand(N - 1).getMBB() == &MBB) {
2798 removeOperand(N - 1);
2799 removeOperand(N - 2);
2800 RemovedCount += 2;
2801 }
2802 }
2803 return RemovedCount;
2804}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
MachineBasicBlock & MBB
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
#define LLVM_DUMP_METHOD
Mark debug helper function definitions like dump() that should not be stripped from debug builds.
Definition Compiler.h:678
This file contains the declarations for the subclasses of Constant, which represent the different fla...
DXIL Forward Handle Accesses
Hexagon Common GEP
const HexagonInstrInfo * TII
IRTranslator LLVM IR MI
Module.h This file contains the declarations for the Module class.
const size_t AbstractManglingParser< Derived, Alloc >::NumOps
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
A set of register units.
Implement a low-level type suitable for MachineInstr level instruction selection.
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
static DebugLoc getDebugLoc(MachineBasicBlock::instr_iterator FirstMI, MachineBasicBlock::instr_iterator LastMI)
Return the first DebugLoc that has line number information, given a range of instructions.
const unsigned TiedMax
static void moveOperands(MachineOperand *Dst, MachineOperand *Src, unsigned NumOps, MachineRegisterInfo *MRI)
Move NumOps MachineOperands from Src to Dst, with support for overlapping ranges.
static cl::opt< bool > PrintMIAddrs("print-mi-addrs", cl::Hidden, cl::desc("Print addresses of MachineInstrs when dumping"))
static LocationSize getSpillSlotSize(const MMOList &Accesses, const MachineFrameInfo &MFI)
static const DIExpression * computeExprForSpill(const MachineInstr &MI, const SmallVectorImpl< const MachineOperand * > &SpilledOperands)
Compute the new DIExpression to use with a DBG_VALUE for a spill slot.
static bool MemOperandsHaveAlias(const MachineFrameInfo &MFI, BatchAAResults *AA, bool UseTBAA, const MachineMemOperand *MMOa, const MachineMemOperand *MMOb)
static iterator_range< filter_iterator< Operand *, std::function< bool(Operand &Op)> > > getDebugOperandsForRegHelper(Instruction *MI, Register Reg)
SmallVector< const MachineMemOperand *, 2 > MMOList
static void tryToGetTargetInfo(const MachineInstr &MI, const TargetRegisterInfo *&TRI, const MachineRegisterInfo *&MRI, const TargetInstrInfo *&TII)
static const MachineFunction * getMFIfAvailable(const MachineInstr &MI)
static bool hasIdenticalMMOs(ArrayRef< MachineMemOperand * > LHS, ArrayRef< MachineMemOperand * > RHS)
Check to see if the MMOs pointed to by the two MemRefs arrays are identical.
Register Reg
Register const TargetRegisterInfo * TRI
This file provides utility analysis objects describing memory locations.
This file contains the declarations for metadata subclasses.
static MCRegister getReg(const MCDisassembler *D, unsigned RC, unsigned RegNo)
static bool isReg(const MCInst &MI, unsigned OpNo)
if(PassOpts->AAPipeline)
static bool isValid(const char C)
Returns true if C is a valid mangled character: <0-9a-zA-Z_>.
SI Fold Operands
const char * Msg
This file contains some templates that are useful if you are working with the STL at all.
static cl::opt< bool > UseTBAA("use-tbaa-in-sched-mi", cl::Hidden, cl::init(true), cl::desc("Enable use of TBAA during MI DAG construction"))
This file implements the SmallBitVector class.
This file defines the SmallVector class.
static SymbolRef::Type getType(const Symbol *Sym)
Definition TapiFile.cpp:39
Value * RHS
Value * LHS
Capacity getNext() const
Get the next larger capacity.
size_t getSize() const
Get the number of elements in an array with this capacity.
static Capacity get(size_t N)
Get the capacity of an array that can hold at least N elements.
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
size_t size() const
Get the array size.
Definition ArrayRef.h:141
bool empty() const
Check if the array is empty.
Definition ArrayRef.h:136
ArrayRef< T > slice(size_t N, size_t M) const
slice(n, m) - Chop off the first N elements of the array, and keep M elements in the array.
Definition ArrayRef.h:185
This class is a wrapper over an AAResults, and it is intended to be used only when there are no IR ch...
ConstMIBundleOperands - Iterate over all operands in a const bundle of machine instructions.
DWARF expression.
LLVM_ABI bool isEntryValue() const
Check if the expression consists of exactly one entry value operand.
static LLVM_ABI bool isEqualExpression(const DIExpression *FirstExpr, bool FirstIndirect, const DIExpression *SecondExpr, bool SecondIndirect)
Determines whether two debug values should produce equivalent DWARF expressions, using their DIExpres...
static LLVM_ABI DIExpression * appendOpsToArg(const DIExpression *Expr, ArrayRef< uint64_t > Ops, unsigned ArgNo, bool StackValue=false)
Create a copy of Expr by appending the given list of Ops to each instance of the operand DW_OP_LLVM_a...
static LLVM_ABI DIExpression * prepend(const DIExpression *Expr, uint8_t Flags, int64_t Offset=0)
Prepend DIExpr with a deref and offset operation and optionally turn it into a stack value or/and an ...
A debug info location.
Definition DebugLoc.h:126
Diagnostic information for inline asm reporting.
Utility class for floating point operations which can have information about relaxed accuracy require...
Definition Operator.h:202
Convenience struct for specifying and reasoning about fast-math flags.
Definition FMF.h:23
LLVMContext & getContext() const
getContext - Return a reference to the LLVMContext associated with this function.
Definition Function.cpp:356
an instruction for type-safe pointer arithmetic to access elements of arrays and structs
This instruction compares its operands according to the predicate given to the constructor.
AsmDialect getDialect() const
Definition InlineAsm.h:75
static StringRef getMemConstraintName(ConstraintCode C)
Definition InlineAsm.h:475
constexpr bool isValid() const
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
LLVM_ABI void diagnose(const DiagnosticInfo &DI)
Report a message to the currently installed diagnostic handler.
A set of physical registers with utility functions to track liveness when walking backward/forward th...
LLVM_ABI bool available(const MachineRegisterInfo &MRI, MCRegister Reg) const
Returns true if register Reg and no aliasing register is in the set.
A set of register units used to track register liveness.
bool hasValue() const
static LocationSize precise(uint64_t Value)
static constexpr LocationSize beforeOrAfterPointer()
Any location before or after the base pointer (but still within the underlying object).
bool isScalable() const
TypeSize getValue() const
Describe properties that are true of each instruction in the target description file.
ArrayRef< MCOperandInfo > operands() const
MCRegAliasIterator enumerates all registers aliasing Reg.
Wrapper class representing physical registers. Should be passed by value.
Definition MCRegister.h:41
MCSymbol - Instances of this class represent a symbol name in the MC file, and MCSymbols are created ...
Definition MCSymbol.h:42
Metadata node.
Definition Metadata.h:1069
const MDOperand & getOperand(unsigned I) const
Definition Metadata.h:1426
unsigned getNumOperands() const
Return number of MDNode operands.
Definition Metadata.h:1432
bool isValid() const
isValid - Returns true until all the operands have been visited.
LLVM_ABI MachineInstr * remove_instr(MachineInstr *I)
Remove the possibly bundled instruction from the instruction list without deleting it.
LLVM_ABI instr_iterator insert(instr_iterator I, MachineInstr *M)
Insert MI into the instruction list before I, possibly inside a bundle.
instr_iterator erase_instr(MachineInstr *I)
Remove an instruction from the instruction list and delete it.
MachineInstr * remove(MachineInstr *I)
Remove the unbundled instruction from the instruction list without deleting it.
Instructions::iterator instr_iterator
Instructions::const_iterator const_instr_iterator
const MachineFunction * getParent() const
Return the MachineFunction containing this basic block.
LLVM_ABI instr_iterator erase(instr_iterator I)
Remove an instruction from the instruction list and delete it.
void splice(iterator Where, MachineBasicBlock *Other, iterator From)
Take an instruction from MBB 'Other' at the position From, and insert it into this MBB right before '...
MachineInstrBundleIterator< MachineInstr > iterator
The MachineFrameInfo class represents an abstract stack frame until prolog/epilog code is inserted.
bool isSpillSlotObjectIndex(int ObjectIdx) const
Returns true if the specified index corresponds to a spill slot.
CalledGlobalInfo tryGetCalledGlobal(const MachineInstr *MI) const
Tries to get the global and target flags for a call site, if the instruction is a call to a global.
const TargetSubtargetInfo & getSubtarget() const
getSubtarget - Return the subtarget for which this machine code is being compiled.
MachineInstr::ExtraInfo * createMIExtraInfo(ArrayRef< MachineMemOperand * > MMOs, MCSymbol *PreInstrSymbol=nullptr, MCSymbol *PostInstrSymbol=nullptr, MDNode *HeapAllocMarker=nullptr, MDNode *PCSections=nullptr, uint32_t CFIType=0, MDNode *MMRAs=nullptr, Value *DS=nullptr)
Allocate and construct an extra info structure for a MachineInstr.
MachineFrameInfo & getFrameInfo()
getFrameInfo - Return the frame info object for the current function.
void deallocateOperandArray(OperandCapacity Cap, MachineOperand *Array)
Dellocate an array of MachineOperands and recycle the memory.
MachineOperand * allocateOperandArray(OperandCapacity Cap)
Allocate an array of MachineOperands.
void handleChangeDesc(MachineInstr &MI, const MCInstrDesc &TID)
Function & getFunction()
Return the LLVM function that this machine code represents.
const MachineInstrBuilder & addReg(Register RegNo, RegState Flags={}, unsigned SubReg=0) const
Add a new virtual register operand.
const MachineInstrBuilder & addImm(int64_t Val) const
Add a new immediate operand.
const MachineInstrBuilder & add(const MachineOperand &MO) const
const MachineInstrBuilder & addMetadata(const MDNode *MD) const
const MachineInstrBuilder & addFrameIndex(int Idx) const
Representation of each machine instruction.
bool mayRaiseFPException() const
Return true if this instruction could possibly raise a floating-point exception.
unsigned getOpcode() const
Returns the opcode of this MachineInstr.
LLVM_ABI void setRegisterDefReadUndef(Register Reg, bool IsUndef=true)
Mark all subregister defs of register Reg with the undef flag.
bool isDebugValueList() const
LLVM_ABI void bundleWithPred()
Bundle this instruction with its predecessor.
bool isPosition() const
bool isTerminator(QueryType Type=AnyInBundle) const
Returns true if this instruction part of the terminator for a basic block.
LLVM_ABI std::tuple< Register, LLT, Register, LLT, Register, LLT, Register, LLT, Register, LLT > getFirst5RegLLTs() const
LLVM_ABI iterator_range< filter_iterator< const MachineOperand *, std::function< bool(const MachineOperand &Op)> > > getDebugOperandsForReg(Register Reg) const
Returns a range of all of the operands that correspond to a debug use of Reg.
mop_range debug_operands()
Returns all operands that are used to determine the variable location for this DBG_VALUE instruction.
bool mayLoadOrStore(QueryType Type=AnyInBundle) const
Return true if this instruction could possibly read or modify memory.
LLVM_ABI void setCFIType(MachineFunction &MF, uint32_t Type)
Set the CFI type for the instruction.
LLVM_ABI MachineInstr * removeFromParent()
Unlink 'this' from the containing basic block, and return it without deleting it.
const MachineBasicBlock * getParent() const
MDNode * getMMRAMetadata() const
Helper to extract mmra.op metadata.
LLVM_ABI void bundleWithSucc()
Bundle this instruction with its successor.
uint32_t getCFIType() const
Helper to extract a CFI type hash if one has been added.
bool isDebugLabel() const
LLVM_ABI void setPreInstrSymbol(MachineFunction &MF, MCSymbol *Symbol)
Set a symbol that will be emitted just prior to the instruction itself.
bool hasProperty(unsigned MCFlag, QueryType Type=AnyInBundle) const
Return true if the instruction (or in the case of a bundle, the instructions inside the bundle) has t...
LLVM_ABI bool isDereferenceableInvariantLoad() const
Return true if this load instruction never traps and points to a memory location whose value doesn't ...
void setFlags(unsigned flags)
QueryType
API for querying MachineInstr properties.
LLVM_ABI void addImplicitDefUseOperands(MachineFunction &MF)
Add all implicit def and use operands to this instruction.
filtered_mop_range all_defs()
Returns an iterator range over all operands that are (explicit or implicit) register defs.
LLVM_ABI std::tuple< LLT, LLT, LLT, LLT, LLT > getFirst5LLTs() const
bool isCall(QueryType Type=AnyInBundle) const
LLVM_ABI std::tuple< Register, LLT, Register, LLT, Register, LLT > getFirst3RegLLTs() const
bool getFlag(MIFlag Flag) const
Return whether an MI flag is set.
LLVM_ABI uint32_t mergeFlagsWith(const MachineInstr &Other) const
Return the MIFlags which represent both MachineInstrs.
LLVM_ABI const MachineOperand & getDebugExpressionOp() const
Return the operand for the complex address expression referenced by this DBG_VALUE instruction.
LLVM_ABI std::pair< bool, bool > readsWritesVirtualRegister(Register Reg, SmallVectorImpl< unsigned > *Ops=nullptr) const
Return a pair of bools (reads, writes) indicating if this instruction reads or writes Reg.
LLVM_ABI Register isConstantValuePHI() const
If the specified instruction is a PHI that always merges together the same virtual register,...
bool isRegTiedToDefOperand(unsigned UseOpIdx, unsigned *DefOpIdx=nullptr) const
Return true if the use operand of the specified index is tied to a def operand.
LLVM_ABI bool allImplicitDefsAreDead() const
Return true if all the implicit defs of this instruction are dead.
LLVM_ABI void cloneMemRefs(MachineFunction &MF, const MachineInstr &MI)
Clone another MachineInstr's memory reference descriptor list and replace ours with it.
LLVM_ABI const TargetRegisterClass * getRegClassConstraintEffectForVReg(Register Reg, const TargetRegisterClass *CurRC, const TargetInstrInfo *TII, const TargetRegisterInfo *TRI, bool ExploreBundle=false) const
Applies the constraints (def/use) implied by this MI on Reg to the given CurRC.
LLVM_ABI bool isSafeToMove(bool &SawStore) const
Return true if it is safe to move this instruction.
LLVM_ABI bool mayAlias(BatchAAResults *AA, const MachineInstr &Other, bool UseTBAA) const
Returns true if this instruction's memory access aliases the memory access of Other.
bool isBundle() const
bool isDebugInstr() const
unsigned getNumDebugOperands() const
Returns the total number of operands which are debug locations.
unsigned getNumOperands() const
Retuns the total number of operands.
LLVM_ABI void addOperand(MachineFunction &MF, const MachineOperand &Op)
Add the specified operand to the instruction.
LLVM_ABI MachineInstr * removeFromBundle()
Unlink this instruction from its basic block and return it without deleting it.
LLVM_ABI void dumpr(const MachineRegisterInfo &MRI, unsigned MaxDepth=UINT_MAX) const
Print on dbgs() the current instruction and the instructions defining its operands and so on until we...
LLVM_ABI void copyIRFlags(const Instruction &I)
Copy all flags to MachineInst MIFlags.
bool isDebugValueLike() const
bool isInlineAsm() const
bool memoperands_empty() const
Return true if we don't have any memory operands which described the memory access done by this instr...
mmo_iterator memoperands_end() const
Access to memory operands of the instruction.
bool isDebugRef() const
LLVM_ABI void collectDebugValues(SmallVectorImpl< MachineInstr * > &DbgValues)
Scan instructions immediately following MI and collect any matching DBG_VALUEs.
LLVM_ABI std::optional< LocationSize > getRestoreSize(const TargetInstrInfo *TII) const
Return a valid size if the instruction is a restore instruction.
unsigned getOperandNo(const_mop_iterator I) const
Returns the number of the operand iterator I points to.
LLVM_ABI unsigned getNumExplicitOperands() const
Returns the number of non-implicit operands.
mop_range implicit_operands()
LLVM_ABI void setMemRefs(MachineFunction &MF, ArrayRef< MachineMemOperand * > MemRefs)
Assign this MachineInstr's memory reference descriptor list.
LLVM_ABI bool wouldBeTriviallyDead() const
Return true if this instruction would be trivially dead if all of its defined registers were dead.
bool isBundledWithPred() const
Return true if this instruction is part of a bundle, and it is not the first instruction in the bundl...
LLVM_ABI std::tuple< LLT, LLT > getFirst2LLTs() const
LLVM_ABI std::optional< LocationSize > getFoldedSpillSize(const TargetInstrInfo *TII) const
Return a valid size if the instruction is a folded spill instruction.
LLVM_ABI void unbundleFromPred()
Break bundle above this instruction.
LLVM_ABI void copyImplicitOps(MachineFunction &MF, const MachineInstr &MI)
Copy implicit register operands from specified instruction to this instruction.
bool mayLoad(QueryType Type=AnyInBundle) const
Return true if this instruction could possibly read memory.
LLVM_ABI bool isStackAligningInlineAsm() const
LLVM_ABI void dropMemRefs(MachineFunction &MF)
Clear this MachineInstr's memory reference descriptor list.
LLVM_ABI int findRegisterUseOperandIdx(Register Reg, const TargetRegisterInfo *TRI, bool isKill=false) const
Returns the operand index that is a use of the specific register or -1 if it is not found.
MDNode * getPCSections() const
Helper to extract PCSections metadata target sections.
bool isCFIInstruction() const
LLVM_ABI int findFirstPredOperandIdx() const
Find the index of the first operand in the operand list that is used to represent the predicate.
const MCInstrDesc & getDesc() const
Returns the target instruction descriptor of this MachineInstr.
LLVM_ABI unsigned getBundleSize() const
Return the number of instructions inside the MI bundle, excluding the bundle header.
LLVM_ABI void cloneMergedMemRefs(MachineFunction &MF, ArrayRef< const MachineInstr * > MIs)
Clone the merge of multiple MachineInstrs' memory reference descriptors list and replace ours with it...
mop_range operands()
LLVM_ABI bool isCandidateForAdditionalCallInfo(QueryType Type=IgnoreBundle) const
Return true if this is a call instruction that may have an additional information associated with it.
LLVM_ABI std::tuple< Register, LLT, Register, LLT, Register, LLT, Register, LLT > getFirst4RegLLTs() const
LLVM_ABI std::tuple< Register, LLT, Register, LLT > getFirst2RegLLTs() const
unsigned getNumMemOperands() const
Return the number of memory operands.
void clearFlag(MIFlag Flag)
clearFlag - Clear a MI flag.
LLVM_ABI std::optional< LocationSize > getFoldedRestoreSize(const TargetInstrInfo *TII) const
Return a valid size if the instruction is a folded restore instruction.
LLVM_ABI const TargetRegisterClass * getRegClassConstraintEffect(unsigned OpIdx, const TargetRegisterClass *CurRC, const TargetInstrInfo *TII, const TargetRegisterInfo *TRI) const
Applies the constraints (def/use) implied by the OpIdx operand to the given CurRC.
bool isOperandSubregIdx(unsigned OpIdx) const
Return true if operand OpIdx is a subregister index.
LLVM_ABI InlineAsm::AsmDialect getInlineAsmDialect() const
LLVM_ABI bool hasUnmodeledSideEffects() const
Return true if this instruction has side effects that are not modeled by mayLoad / mayStore,...
LLVM_ABI bool isEquivalentDbgInstr(const MachineInstr &Other) const
Returns true if this instruction is a debug instruction that represents an identical debug value to O...
LLVM_ABI const DILabel * getDebugLabel() const
Return the debug label referenced by this DBG_LABEL instruction.
void untieRegOperand(unsigned OpIdx)
Break any tie involving OpIdx.
static LLVM_ABI uint32_t copyFlagsFromInstruction(const Instruction &I)
LLVM_ABI unsigned removePHIIncomingValueFor(const MachineBasicBlock &MBB)
Remove all incoming values of Phi instruction for the given block.
LLVM_ABI void insert(mop_iterator InsertBefore, ArrayRef< MachineOperand > Ops)
Inserts Ops BEFORE It. Can untie/retie tied operands.
LLVM_ABI void setDesc(const MCInstrDesc &TID)
Replace the instruction descriptor (thus opcode) of the current instruction with a new one.
bool isJumpTableDebugInfo() const
LLVM_ABI unsigned getNumExplicitDefs() const
Returns the number of non-implicit definitions.
LLVM_ABI void eraseFromBundle()
Unlink 'this' from its basic block and delete it.
LLVM_ABI void setHeapAllocMarker(MachineFunction &MF, MDNode *MD)
Set a marker on instructions that denotes where we should create and emit heap alloc site labels.
LLVM_ABI const DILocalVariable * getDebugVariable() const
Return the debug variable referenced by this DBG_VALUE instruction.
LLVM_ABI bool hasComplexRegisterTies() const
Return true when an instruction has tied register that can't be determined by the instruction's descr...
LLVM_ABI LLT getTypeToPrint(unsigned OpIdx, SmallBitVector &PrintedTypes, const MachineRegisterInfo &MRI) const
Debugging supportDetermine the generic type to be printed (if needed) on uses and defs.
bool isLifetimeMarker() const
LLVM_ABI void substituteRegister(Register FromReg, Register ToReg, unsigned SubIdx, const TargetRegisterInfo &RegInfo)
Replace all occurrences of FromReg with ToReg:SubIdx, properly composing subreg indices where necessa...
LLVM_ABI unsigned findTiedOperandIdx(unsigned OpIdx) const
Given the index of a tied register operand, find the operand it is tied to.
LLVM_ABI void tieOperands(unsigned DefIdx, unsigned UseIdx)
Add a tie between the register operands at DefIdx and UseIdx.
mmo_iterator memoperands_begin() const
Access to memory operands of the instruction.
LLVM_ABI void cloneInstrSymbols(MachineFunction &MF, const MachineInstr &MI)
Clone another MachineInstr's pre- and post- instruction symbols and replace ours with it.
LLVM_ABI void changeDebugValuesDefReg(Register Reg)
Find all DBG_VALUEs that point to the register def in this instruction and point them to Reg instead.
LLVM_ABI bool isIdenticalTo(const MachineInstr &Other, MICheckType Check=CheckDefs) const
Return true if this instruction is identical to Other.
LLVM_ABI bool hasOrderedMemoryRef() const
Return true if this instruction may have an ordered or volatile memory reference, or if the informati...
LLVM_ABI void emitGenericError(const Twine &ErrMsg) const
LLVM_ABI const MachineFunction * getMF() const
Return the function that contains the basic block that this instruction belongs to.
LLVM_ABI const DIExpression * getDebugExpression() const
Return the complex address expression referenced by this DBG_VALUE instruction.
ArrayRef< MachineMemOperand * > memoperands() const
Access to memory operands of the instruction.
LLVM_ABI void print(raw_ostream &OS, bool IsStandalone=true, bool SkipOpers=false, bool SkipDebugLoc=false, bool AddNewLine=true, const TargetInstrInfo *TII=nullptr) const
Print this MI to OS.
bool isNonListDebugValue() const
MachineOperand * mop_iterator
iterator/begin/end - Iterate over all operands of a machine instruction.
LLVM_ABI bool isLoadFoldBarrier() const
Returns true if it is illegal to fold a load across this instruction.
bool mayStore(QueryType Type=AnyInBundle) const
Return true if this instruction could possibly modify memory.
void setFlag(MIFlag Flag)
Set a MI flag.
const DebugLoc & getDebugLoc() const
Returns the debug location id of this MachineInstr.
LLVM_ABI bool isDead(const MachineRegisterInfo &MRI, LiveRegUnits *LivePhysRegs=nullptr) const
Check whether an MI is dead.
LLVM_ABI std::tuple< LLT, LLT, LLT > getFirst3LLTs() const
LLVM_ABI const MachineOperand & getDebugVariableOp() const
Return the operand for the debug variable referenced by this DBG_VALUE instruction.
LLVM_ABI void setPhysRegsDeadExcept(ArrayRef< Register > UsedRegs, const TargetRegisterInfo &TRI)
Mark every physreg used by this instruction as dead except those in the UsedRegs list.
LLVM_ABI void removeOperand(unsigned OpNo)
Erase an operand from an instruction, leaving it with one fewer operand than it started with.
friend class MachineFunction
MCSymbol * getPreInstrSymbol() const
Helper to extract a pre-instruction symbol if one has been added.
LLVM_ABI bool addRegisterKilled(Register IncomingReg, const TargetRegisterInfo *RegInfo, bool AddIfNotFound=false)
We have determined MI kills a register.
LLVM_ABI void setPostInstrSymbol(MachineFunction &MF, MCSymbol *Symbol)
Set a symbol that will be emitted just after the instruction itself.
bool isDebugValue() const
LLVM_ABI void dump() const
const MachineOperand & getDebugOffset() const
Return the operand containing the offset to be used if this DBG_VALUE instruction is indirect; will b...
MachineOperand & getDebugOperand(unsigned Index)
LLVM_ABI std::optional< LocationSize > getSpillSize(const TargetInstrInfo *TII) const
Return a valid size if the instruction is a spill instruction.
bool isBundledWithSucc() const
Return true if this instruction is part of a bundle, and it is not the last instruction in the bundle...
LLVM_ABI void addRegisterDefined(Register Reg, const TargetRegisterInfo *RegInfo=nullptr)
We have determined MI defines a register.
MDNode * getHeapAllocMarker() const
Helper to extract a heap alloc marker if one has been added.
LLVM_ABI unsigned getDebugInstrNum()
Fetch the instruction number of this MachineInstr.
LLVM_ABI std::tuple< LLT, LLT, LLT, LLT > getFirst4LLTs() const
LLVM_ABI void clearRegisterDeads(Register Reg)
Clear all dead flags on operands defining register Reg.
LLVM_ABI void clearRegisterKills(Register Reg, const TargetRegisterInfo *RegInfo)
Clear all kill flags affecting Reg.
const MachineOperand & getOperand(unsigned i) const
LLVM_ABI void emitInlineAsmError(const Twine &ErrMsg) const
Emit an error referring to the source location of this instruction.
uint32_t getFlags() const
Return the MI flags bitvector.
bool isPseudoProbe() const
LLVM_ABI bool hasRegisterImplicitUseOperand(Register Reg) const
Returns true if the MachineInstr has an implicit-use operand of exactly the given register (not consi...
LLVM_ABI bool shouldUpdateAdditionalCallInfo() const
Return true if copying, moving, or erasing this instruction requires updating additional call info (s...
LLVM_ABI void setDeactivationSymbol(MachineFunction &MF, Value *DS)
Value * getDeactivationSymbol() const
MCSymbol * getPostInstrSymbol() const
Helper to extract a post-instruction symbol if one has been added.
LLVM_ABI void unbundleFromSucc()
Break bundle below this instruction.
LLVM_ABI void clearKillInfo()
Clears kill flags on all operands.
LLVM_ABI bool isDebugEntryValue() const
A DBG_VALUE is an entry value iff its debug expression contains the DW_OP_LLVM_entry_value operation.
bool isIndirectDebugValue() const
A DBG_VALUE is indirect iff the location operand is a register and the offset operand is an immediate...
unsigned getNumDefs() const
Returns the total number of definitions.
LLVM_ABI void setPCSections(MachineFunction &MF, MDNode *MD)
bool isKill() const
LLVM_ABI const MDNode * getLocCookieMD() const
For inline asm, get the !srcloc metadata node if we have it, and decode the loc cookie from it.
LLVM_ABI int findRegisterDefOperandIdx(Register Reg, const TargetRegisterInfo *TRI, bool isDead=false, bool Overlap=false) const
Returns the operand index that is a def of the specified register or -1 if it is not found.
LLVM_ABI MachineInstrBundleIterator< MachineInstr > eraseFromParent()
Unlink 'this' from the containing basic block and delete it.
bool isFakeUse() const
bool isVariadic(QueryType Type=IgnoreBundle) const
Return true if this instruction can have a variable number of operands.
LLVM_ABI int findInlineAsmFlagIdx(unsigned OpIdx, unsigned *GroupNo=nullptr) const
Find the index of the flag word operand that corresponds to operand OpIdx on an inline asm instructio...
LLVM_ABI bool allDefsAreDead() const
Return true if all the defs of this instruction are dead.
LLVM_ABI void setMMRAMetadata(MachineFunction &MF, MDNode *MMRAs)
LLVM_ABI const TargetRegisterClass * getRegClassConstraint(unsigned OpIdx, const TargetInstrInfo *TII, const TargetRegisterInfo *TRI) const
Compute the static register class constraint for operand OpIdx.
LLVM_ABI void moveBefore(MachineInstr *MovePos)
Move the instruction before MovePos.
MachineOperand * findRegisterDefOperand(Register Reg, const TargetRegisterInfo *TRI, bool isDead=false, bool Overlap=false)
Wrapper for findRegisterDefOperandIdx, it returns a pointer to the MachineOperand rather than an inde...
LLVM_ABI void addMemOperand(MachineFunction &MF, MachineMemOperand *MO)
Add a MachineMemOperand to the machine instruction.
LLVM_ABI bool addRegisterDead(Register Reg, const TargetRegisterInfo *RegInfo, bool AddIfNotFound=false)
We have determined MI defined a register without a use.
LLVM_ABI bool mayFoldInlineAsmRegOp(unsigned OpId) const
Returns true if the register operand can be folded with a load or store into a frame index.
A description of a memory reference used in the backend.
LocationSize getSize() const
Return the size in bytes of the memory reference.
const PseudoSourceValue * getPseudoValue() const
bool isUnordered() const
Returns true if this memory operation doesn't have any ordering constraints other than normal aliasin...
AAMDNodes getAAInfo() const
Return the AA tags for the memory reference.
const Value * getValue() const
Return the base address of the memory access.
int64_t getOffset() const
For normal values, this is a byte offset added to the base address.
MachineOperand class - Representation of each machine instruction operand.
unsigned getSubReg() const
LLVM_ABI void substVirtReg(Register Reg, unsigned SubIdx, const TargetRegisterInfo &)
substVirtReg - Substitute the current register with the virtual subregister Reg:SubReg.
static LLVM_ABI void printSubRegIdx(raw_ostream &OS, uint64_t Index, const TargetRegisterInfo *TRI)
Print a subreg index operand.
int64_t getImm() const
bool isReg() const
isReg - Tests if this is a MO_Register operand.
bool isRegMask() const
isRegMask - Tests if this is a MO_RegisterMask operand.
const MDNode * getMetadata() const
void setIsDead(bool Val=true)
void setMetadata(const MDNode *MD)
bool isImm() const
isImm - Tests if this is a MO_Immediate operand.
LLVM_ABI void ChangeToImmediate(int64_t ImmVal, unsigned TargetFlags=0)
ChangeToImmediate - Replace this operand with a new immediate operand of the specified value.
bool isMetadata() const
isMetadata - Tests if this is a MO_Metadata operand.
LLVM_ABI void print(raw_ostream &os, const TargetRegisterInfo *TRI=nullptr) const
Print the MachineOperand to os.
void setIsKill(bool Val=true)
MachineInstr * getParent()
getParent - Return the instruction that this operand belongs to.
LLVM_ABI void substPhysReg(MCRegister Reg, const TargetRegisterInfo &)
substPhysReg - Substitute the current register with the physical register Reg, taking any existing Su...
void setIsEarlyClobber(bool Val=true)
void setIsUndef(bool Val=true)
void setIsDebug(bool Val=true)
Register getReg() const
getReg - Returns the register number.
LLVM_ABI bool isIdenticalTo(const MachineOperand &Other) const
Returns true if this operand is identical to the specified operand except for liveness related flags ...
static bool clobbersPhysReg(const uint32_t *RegMask, MCRegister PhysReg)
clobbersPhysReg - Returns true if this RegMask clobbers PhysReg.
static LLVM_ABI void printSymbol(raw_ostream &OS, MCSymbol &Sym)
Print a MCSymbol as an operand.
static MachineOperand CreateReg(Register Reg, bool isDef, bool isImp=false, bool isKill=false, bool isDead=false, bool isUndef=false, bool isEarlyClobber=false, unsigned SubReg=0, bool isDebug=false, bool isInternalRead=false, bool isRenamable=false)
MachineRegisterInfo - Keep track of information for virtual and physical registers,...
bool isReserved(MCRegister PhysReg) const
isReserved - Returns true when PhysReg is a reserved register.
LLVM_ABI void moveOperands(MachineOperand *Dst, MachineOperand *Src, unsigned NumOps)
Move NumOps operands from Src to Dst, updating use-def lists as needed.
LLT getType(Register Reg) const
Get the low-level type of Reg or LLT{} if Reg is not a generic (target independent) virtual register.
iterator_range< use_instr_nodbg_iterator > use_nodbg_instructions(Register Reg) const
iterator_range< use_instr_iterator > use_instructions(Register Reg) const
LLVM_ABI void removeRegOperandFromUseList(MachineOperand *MO)
Remove MO from its use-def list.
LLVM_ABI void addRegOperandToUseList(MachineOperand *MO)
Add MO to the linked list of operands for its register.
LLVM_ABI LLVM_READONLY MachineInstr * getUniqueVRegDef(Register Reg) const
getUniqueVRegDef - Return the unique machine instr that defines the specified virtual register or nul...
Representation for a specific memory location.
LLVM_ABI void printAsOperand(raw_ostream &OS, const Module *M=nullptr) const
Print as operand.
Manage lifetime of a slot tracker for printing IR.
void incorporateFunction(const Function &F)
Incorporate the given function.
A Module instance is used to store all the information related to an LLVM module.
Definition Module.h:68
Utility class for integer operators which may exhibit overflow - Add, Sub, Mul, and Shl.
Definition Operator.h:78
An or instruction, which can be marked as "disjoint", indicating that the inputs don't have a 1 in th...
Definition InstrTypes.h:439
A udiv, sdiv, lshr, or ashr instruction, which can be marked as "exact", indicating that no bits are ...
Definition Operator.h:156
Instruction that can have a nneg flag (zext/uitofp).
Definition InstrTypes.h:703
Special value supplied for machine level alias analysis.
virtual bool mayAlias(const MachineFrameInfo *) const
Return true if the memory pointed to by this PseudoSourceValue can ever alias an LLVM IR Value.
Wrapper class representing virtual and physical registers.
Definition Register.h:20
constexpr bool isVirtual() const
Return true if the specified register number is in the virtual register namespace.
Definition Register.h:79
constexpr bool isPhysical() const
Return true if the specified register number is in the physical register namespace.
Definition Register.h:83
This is a 'bitvector' (really, a variable-sized bit array), optimized for the case when the array is ...
SmallBitVector & set()
A templated base class for SmallPtrSet which provides the typesafe interface that is common across al...
std::pair< iterator, bool > insert(PtrType Ptr)
Inserts Ptr if and only if there is no element in the container equal to Ptr.
SmallPtrSet - This class implements a set which is optimized for holding SmallSize or less elements.
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
reference emplace_back(ArgTypes &&... Args)
void reserve(size_type N)
void append(ItTy in_start, ItTy in_end)
Add the specified range to the end of the SmallVector.
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
static LLVM_ABI unsigned getNextMetaArgIdx(const MachineInstr *MI, unsigned CurIdx)
Get index of next meta operand.
MI-level Statepoint operands.
Definition StackMaps.h:159
LLVM_ABI int getFirstGCPtrIdx()
Get index of first GC pointer operand of -1 if there are none.
TargetInstrInfo - Interface to description of machine instruction set.
TargetRegisterInfo base class - We assume that the target defines a static array of TargetRegisterDes...
virtual const TargetInstrInfo * getInstrInfo() const
This class represents a truncation of integer types.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
Definition Twine.h:82
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
LLVM Value Representation.
Definition Value.h:75
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:319
constexpr ScalarTy getKnownMinValue() const
Returns the minimum value this quantity can represent.
Definition TypeSize.h:165
formatted_raw_ostream & PadToColumn(unsigned NewCol)
PadToColumn - Align the output to some column number.
A range adaptor for a pair of iterators.
This class implements an extremely fast bulk output stream that can only output to a stream.
Definition raw_ostream.h:53
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
Abstract Attribute helper functions.
Definition Attributor.h:165
@ UnmodeledSideEffects
std::enable_if_t< detail::IsValidPointer< X, Y >::value, bool > hasa(Y &&MD)
Check whether Metadata has a Value.
Definition Metadata.h:651
std::enable_if_t< detail::IsValidPointer< X, Y >::value, X * > extract(Y &&MD)
Extract a Value from Metadata.
Definition Metadata.h:668
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
Definition STLExtras.h:315
hash_code hash_value(const FixedPointSemantics &Val)
LLVM_ABI formatted_raw_ostream & fdbgs()
fdbgs() - This returns a reference to a formatted_raw_ostream for debug output.
MachineInstrBuilder BuildMI(MachineFunction &MF, const MIMetadata &MIMD, const MCInstrDesc &MCID)
Builder interface. Specify how to create the initial instruction itself.
LLVM_ABI void updateDbgValueForSpill(MachineInstr &Orig, int FrameIndex, Register Reg)
Update a DBG_VALUE whose value has been spilled to FrameIndex.
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1746
iterator_range< pointee_iterator< WrappedIteratorT > > make_pointee_range(RangeT &&Range)
Definition iterator.h:341
MachineInstr * getImm(const MachineOperand &MO, const MachineRegisterInfo *MRI)
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
Definition Debug.cpp:209
bool none_of(R &&Range, UnaryPredicate P)
Provide wrappers to std::none_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1753
constexpr bool isUInt(uint64_t x)
Checks if an unsigned integer fits into the given bit width.
Definition MathExtras.h:190
iterator_range< filter_iterator< detail::IterOfRange< RangeT >, PredicateT > > make_filter_range(RangeT &&Range, PredicateT Pred)
Convenience function that takes a range of elements and a predicate, and return a new filter_iterator...
Definition STLExtras.h:551
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
Definition Casting.h:547
@ Other
Any other memory.
Definition ModRef.h:68
uint16_t MCPhysReg
An unsigned integer type large enough to represent all physical registers, but not necessarily virtua...
Definition MCRegister.h:21
DWARFExpression::Operation Op
OutputIt move(R &&Range, OutputIt Out)
Provide wrappers to std::move which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1917
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
LLVM_ABI MachineInstr * buildDbgValueForSpill(MachineBasicBlock &BB, MachineBasicBlock::iterator I, const MachineInstr &Orig, int FrameIndex, Register SpillReg)
Clone a DBG_VALUE whose value has been spilled to FrameIndex.
iterator_range< pointer_iterator< WrappedIteratorT > > make_pointer_range(RangeT &&Range)
Definition iterator.h:368
bool is_contained(R &&Range, const E &Element)
Returns true if Element is found in Range.
Definition STLExtras.h:1947
filter_iterator_impl< WrappedIteratorT, PredicateT, detail::fwd_or_bidi_tag< WrappedIteratorT > > filter_iterator
Defines filter_iterator to a suitable specialization of filter_iterator_impl, based on the underlying...
Definition STLExtras.h:538
hash_code hash_combine_range(InputIteratorT first, InputIteratorT last)
Compute a hash_code for a sequence of values.
Definition Hashing.h:287
MCRegisterClass TargetRegisterClass
Definition FastISel.h:58
Implement std::hash so that hash_code can be used in STL containers.
Definition BitVector.h:878
#define N
A collection of metadata nodes that might be associated with a memory access used by the alias-analys...
Definition Metadata.h:763
static LLVM_ABI unsigned getHashValue(const MachineInstr *const &MI)