1 //===- AArch64InstrInfo.cpp - AArch64 Instruction Information -------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file contains the AArch64 implementation of the TargetInstrInfo class.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "AArch64InstrInfo.h"
14 #include "AArch64MachineFunctionInfo.h"
15 #include "AArch64Subtarget.h"
16 #include "MCTargetDesc/AArch64AddressingModes.h"
17 #include "Utils/AArch64BaseInfo.h"
18 #include "llvm/ADT/ArrayRef.h"
19 #include "llvm/ADT/STLExtras.h"
20 #include "llvm/ADT/SmallVector.h"
21 #include "llvm/CodeGen/MachineBasicBlock.h"
22 #include "llvm/CodeGen/MachineFrameInfo.h"
23 #include "llvm/CodeGen/MachineFunction.h"
24 #include "llvm/CodeGen/MachineInstr.h"
25 #include "llvm/CodeGen/MachineInstrBuilder.h"
26 #include "llvm/CodeGen/MachineMemOperand.h"
27 #include "llvm/CodeGen/MachineModuleInfo.h"
28 #include "llvm/CodeGen/MachineOperand.h"
29 #include "llvm/CodeGen/MachineRegisterInfo.h"
30 #include "llvm/CodeGen/StackMaps.h"
31 #include "llvm/CodeGen/TargetRegisterInfo.h"
32 #include "llvm/CodeGen/TargetSubtargetInfo.h"
33 #include "llvm/IR/DebugInfoMetadata.h"
34 #include "llvm/IR/DebugLoc.h"
35 #include "llvm/IR/GlobalValue.h"
36 #include "llvm/MC/MCAsmInfo.h"
37 #include "llvm/MC/MCInst.h"
38 #include "llvm/MC/MCInstBuilder.h"
39 #include "llvm/MC/MCInstrDesc.h"
40 #include "llvm/Support/Casting.h"
41 #include "llvm/Support/CodeGen.h"
42 #include "llvm/Support/CommandLine.h"
43 #include "llvm/Support/Compiler.h"
44 #include "llvm/Support/ErrorHandling.h"
45 #include "llvm/Support/LEB128.h"
46 #include "llvm/Support/MathExtras.h"
47 #include "llvm/Target/TargetMachine.h"
48 #include "llvm/Target/TargetOptions.h"
49 #include <cassert>
50 #include <cstdint>
51 #include <iterator>
52 #include <utility>
53 
54 using namespace llvm;
55 
56 #define GET_INSTRINFO_CTOR_DTOR
57 #include "AArch64GenInstrInfo.inc"
58 
59 static cl::opt<unsigned> TBZDisplacementBits(
60     "aarch64-tbz-offset-bits", cl::Hidden, cl::init(14),
61     cl::desc("Restrict range of TB[N]Z instructions (DEBUG)"));
62 
63 static cl::opt<unsigned> CBZDisplacementBits(
64     "aarch64-cbz-offset-bits", cl::Hidden, cl::init(19),
65     cl::desc("Restrict range of CB[N]Z instructions (DEBUG)"));
66 
67 static cl::opt<unsigned>
68     BCCDisplacementBits("aarch64-bcc-offset-bits", cl::Hidden, cl::init(19),
69                         cl::desc("Restrict range of Bcc instructions (DEBUG)"));
70 
71 AArch64InstrInfo::AArch64InstrInfo(const AArch64Subtarget &STI)
72     : AArch64GenInstrInfo(AArch64::ADJCALLSTACKDOWN, AArch64::ADJCALLSTACKUP,
73                           AArch64::CATCHRET),
74       RI(STI.getTargetTriple()), Subtarget(STI) {}
75 
76 /// GetInstSize - Return the number of bytes of code the specified
77 /// instruction may be.  This returns the maximum number of bytes.
78 unsigned AArch64InstrInfo::getInstSizeInBytes(const MachineInstr &MI) const {
79   const MachineBasicBlock &MBB = *MI.getParent();
80   const MachineFunction *MF = MBB.getParent();
81   const MCAsmInfo *MAI = MF->getTarget().getMCAsmInfo();
82 
83   {
84     auto Op = MI.getOpcode();
85     if (Op == AArch64::INLINEASM || Op == AArch64::INLINEASM_BR)
86       return getInlineAsmLength(MI.getOperand(0).getSymbolName(), *MAI);
87   }
88 
89   // Meta-instructions emit no code.
90   if (MI.isMetaInstruction())
91     return 0;
92 
93   // FIXME: We currently only handle pseudoinstructions that don't get expanded
94   //        before the assembly printer.
95   unsigned NumBytes = 0;
96   const MCInstrDesc &Desc = MI.getDesc();
97 
98   // Size should be preferably set in
99   // llvm/lib/Target/AArch64/AArch64InstrInfo.td (default case).
100   // Specific cases handle instructions of variable sizes
101   switch (Desc.getOpcode()) {
102   default:
103     if (Desc.getSize())
104       return Desc.getSize();
105 
106     // Anything not explicitly designated otherwise (i.e. pseudo-instructions
107     // with fixed constant size but not specified in .td file) is a normal
108     // 4-byte insn.
109     NumBytes = 4;
110     break;
111   case TargetOpcode::STACKMAP:
112     // The upper bound for a stackmap intrinsic is the full length of its shadow
113     NumBytes = StackMapOpers(&MI).getNumPatchBytes();
114     assert(NumBytes % 4 == 0 && "Invalid number of NOP bytes requested!");
115     break;
116   case TargetOpcode::PATCHPOINT:
117     // The size of the patchpoint intrinsic is the number of bytes requested
118     NumBytes = PatchPointOpers(&MI).getNumPatchBytes();
119     assert(NumBytes % 4 == 0 && "Invalid number of NOP bytes requested!");
120     break;
121   case TargetOpcode::STATEPOINT:
122     NumBytes = StatepointOpers(&MI).getNumPatchBytes();
123     assert(NumBytes % 4 == 0 && "Invalid number of NOP bytes requested!");
124     // No patch bytes means a normal call inst is emitted
125     if (NumBytes == 0)
126       NumBytes = 4;
127     break;
128   case AArch64::SPACE:
129     NumBytes = MI.getOperand(1).getImm();
130     break;
131   case TargetOpcode::BUNDLE:
132     NumBytes = getInstBundleLength(MI);
133     break;
134   }
135 
136   return NumBytes;
137 }
138 
139 unsigned AArch64InstrInfo::getInstBundleLength(const MachineInstr &MI) const {
140   unsigned Size = 0;
141   MachineBasicBlock::const_instr_iterator I = MI.getIterator();
142   MachineBasicBlock::const_instr_iterator E = MI.getParent()->instr_end();
143   while (++I != E && I->isInsideBundle()) {
144     assert(!I->isBundle() && "No nested bundle!");
145     Size += getInstSizeInBytes(*I);
146   }
147   return Size;
148 }
149 
150 static void parseCondBranch(MachineInstr *LastInst, MachineBasicBlock *&Target,
151                             SmallVectorImpl<MachineOperand> &Cond) {
152   // Block ends with fall-through condbranch.
153   switch (LastInst->getOpcode()) {
154   default:
155     llvm_unreachable("Unknown branch instruction?");
156   case AArch64::Bcc:
157     Target = LastInst->getOperand(1).getMBB();
158     Cond.push_back(LastInst->getOperand(0));
159     break;
160   case AArch64::CBZW:
161   case AArch64::CBZX:
162   case AArch64::CBNZW:
163   case AArch64::CBNZX:
164     Target = LastInst->getOperand(1).getMBB();
165     Cond.push_back(MachineOperand::CreateImm(-1));
166     Cond.push_back(MachineOperand::CreateImm(LastInst->getOpcode()));
167     Cond.push_back(LastInst->getOperand(0));
168     break;
169   case AArch64::TBZW:
170   case AArch64::TBZX:
171   case AArch64::TBNZW:
172   case AArch64::TBNZX:
173     Target = LastInst->getOperand(2).getMBB();
174     Cond.push_back(MachineOperand::CreateImm(-1));
175     Cond.push_back(MachineOperand::CreateImm(LastInst->getOpcode()));
176     Cond.push_back(LastInst->getOperand(0));
177     Cond.push_back(LastInst->getOperand(1));
178   }
179 }
180 
181 static unsigned getBranchDisplacementBits(unsigned Opc) {
182   switch (Opc) {
183   default:
184     llvm_unreachable("unexpected opcode!");
185   case AArch64::B:
186     return 64;
187   case AArch64::TBNZW:
188   case AArch64::TBZW:
189   case AArch64::TBNZX:
190   case AArch64::TBZX:
191     return TBZDisplacementBits;
192   case AArch64::CBNZW:
193   case AArch64::CBZW:
194   case AArch64::CBNZX:
195   case AArch64::CBZX:
196     return CBZDisplacementBits;
197   case AArch64::Bcc:
198     return BCCDisplacementBits;
199   }
200 }
201 
202 bool AArch64InstrInfo::isBranchOffsetInRange(unsigned BranchOp,
203                                              int64_t BrOffset) const {
204   unsigned Bits = getBranchDisplacementBits(BranchOp);
205   assert(Bits >= 3 && "max branch displacement must be enough to jump"
206                       "over conditional branch expansion");
207   return isIntN(Bits, BrOffset / 4);
208 }
209 
210 MachineBasicBlock *
211 AArch64InstrInfo::getBranchDestBlock(const MachineInstr &MI) const {
212   switch (MI.getOpcode()) {
213   default:
214     llvm_unreachable("unexpected opcode!");
215   case AArch64::B:
216     return MI.getOperand(0).getMBB();
217   case AArch64::TBZW:
218   case AArch64::TBNZW:
219   case AArch64::TBZX:
220   case AArch64::TBNZX:
221     return MI.getOperand(2).getMBB();
222   case AArch64::CBZW:
223   case AArch64::CBNZW:
224   case AArch64::CBZX:
225   case AArch64::CBNZX:
226   case AArch64::Bcc:
227     return MI.getOperand(1).getMBB();
228   }
229 }
230 
231 // Branch analysis.
232 bool AArch64InstrInfo::analyzeBranch(MachineBasicBlock &MBB,
233                                      MachineBasicBlock *&TBB,
234                                      MachineBasicBlock *&FBB,
235                                      SmallVectorImpl<MachineOperand> &Cond,
236                                      bool AllowModify) const {
237   // If the block has no terminators, it just falls into the block after it.
238   MachineBasicBlock::iterator I = MBB.getLastNonDebugInstr();
239   if (I == MBB.end())
240     return false;
241 
242   // Skip over SpeculationBarrierEndBB terminators
243   if (I->getOpcode() == AArch64::SpeculationBarrierISBDSBEndBB ||
244       I->getOpcode() == AArch64::SpeculationBarrierSBEndBB) {
245     --I;
246   }
247 
248   if (!isUnpredicatedTerminator(*I))
249     return false;
250 
251   // Get the last instruction in the block.
252   MachineInstr *LastInst = &*I;
253 
254   // If there is only one terminator instruction, process it.
255   unsigned LastOpc = LastInst->getOpcode();
256   if (I == MBB.begin() || !isUnpredicatedTerminator(*--I)) {
257     if (isUncondBranchOpcode(LastOpc)) {
258       TBB = LastInst->getOperand(0).getMBB();
259       return false;
260     }
261     if (isCondBranchOpcode(LastOpc)) {
262       // Block ends with fall-through condbranch.
263       parseCondBranch(LastInst, TBB, Cond);
264       return false;
265     }
266     return true; // Can't handle indirect branch.
267   }
268 
269   // Get the instruction before it if it is a terminator.
270   MachineInstr *SecondLastInst = &*I;
271   unsigned SecondLastOpc = SecondLastInst->getOpcode();
272 
273   // If AllowModify is true and the block ends with two or more unconditional
274   // branches, delete all but the first unconditional branch.
275   if (AllowModify && isUncondBranchOpcode(LastOpc)) {
276     while (isUncondBranchOpcode(SecondLastOpc)) {
277       LastInst->eraseFromParent();
278       LastInst = SecondLastInst;
279       LastOpc = LastInst->getOpcode();
280       if (I == MBB.begin() || !isUnpredicatedTerminator(*--I)) {
281         // Return now the only terminator is an unconditional branch.
282         TBB = LastInst->getOperand(0).getMBB();
283         return false;
284       } else {
285         SecondLastInst = &*I;
286         SecondLastOpc = SecondLastInst->getOpcode();
287       }
288     }
289   }
290 
291   // If we're allowed to modify and the block ends in a unconditional branch
292   // which could simply fallthrough, remove the branch.  (Note: This case only
293   // matters when we can't understand the whole sequence, otherwise it's also
294   // handled by BranchFolding.cpp.)
295   if (AllowModify && isUncondBranchOpcode(LastOpc) &&
296       MBB.isLayoutSuccessor(getBranchDestBlock(*LastInst))) {
297     LastInst->eraseFromParent();
298     LastInst = SecondLastInst;
299     LastOpc = LastInst->getOpcode();
300     if (I == MBB.begin() || !isUnpredicatedTerminator(*--I)) {
301       assert(!isUncondBranchOpcode(LastOpc) &&
302              "unreachable unconditional branches removed above");
303 
304       if (isCondBranchOpcode(LastOpc)) {
305         // Block ends with fall-through condbranch.
306         parseCondBranch(LastInst, TBB, Cond);
307         return false;
308       }
309       return true; // Can't handle indirect branch.
310     } else {
311       SecondLastInst = &*I;
312       SecondLastOpc = SecondLastInst->getOpcode();
313     }
314   }
315 
316   // If there are three terminators, we don't know what sort of block this is.
317   if (SecondLastInst && I != MBB.begin() && isUnpredicatedTerminator(*--I))
318     return true;
319 
320   // If the block ends with a B and a Bcc, handle it.
321   if (isCondBranchOpcode(SecondLastOpc) && isUncondBranchOpcode(LastOpc)) {
322     parseCondBranch(SecondLastInst, TBB, Cond);
323     FBB = LastInst->getOperand(0).getMBB();
324     return false;
325   }
326 
327   // If the block ends with two unconditional branches, handle it.  The second
328   // one is not executed, so remove it.
329   if (isUncondBranchOpcode(SecondLastOpc) && isUncondBranchOpcode(LastOpc)) {
330     TBB = SecondLastInst->getOperand(0).getMBB();
331     I = LastInst;
332     if (AllowModify)
333       I->eraseFromParent();
334     return false;
335   }
336 
337   // ...likewise if it ends with an indirect branch followed by an unconditional
338   // branch.
339   if (isIndirectBranchOpcode(SecondLastOpc) && isUncondBranchOpcode(LastOpc)) {
340     I = LastInst;
341     if (AllowModify)
342       I->eraseFromParent();
343     return true;
344   }
345 
346   // Otherwise, can't handle this.
347   return true;
348 }
349 
350 bool AArch64InstrInfo::analyzeBranchPredicate(MachineBasicBlock &MBB,
351                                               MachineBranchPredicate &MBP,
352                                               bool AllowModify) const {
353   // For the moment, handle only a block which ends with a cb(n)zx followed by
354   // a fallthrough.  Why this?  Because it is a common form.
355   // TODO: Should we handle b.cc?
356 
357   MachineBasicBlock::iterator I = MBB.getLastNonDebugInstr();
358   if (I == MBB.end())
359     return true;
360 
361   // Skip over SpeculationBarrierEndBB terminators
362   if (I->getOpcode() == AArch64::SpeculationBarrierISBDSBEndBB ||
363       I->getOpcode() == AArch64::SpeculationBarrierSBEndBB) {
364     --I;
365   }
366 
367   if (!isUnpredicatedTerminator(*I))
368     return true;
369 
370   // Get the last instruction in the block.
371   MachineInstr *LastInst = &*I;
372   unsigned LastOpc = LastInst->getOpcode();
373   if (!isCondBranchOpcode(LastOpc))
374     return true;
375 
376   switch (LastOpc) {
377   default:
378     return true;
379   case AArch64::CBZW:
380   case AArch64::CBZX:
381   case AArch64::CBNZW:
382   case AArch64::CBNZX:
383     break;
384   };
385 
386   MBP.TrueDest = LastInst->getOperand(1).getMBB();
387   assert(MBP.TrueDest && "expected!");
388   MBP.FalseDest = MBB.getNextNode();
389 
390   MBP.ConditionDef = nullptr;
391   MBP.SingleUseCondition = false;
392 
393   MBP.LHS = LastInst->getOperand(0);
394   MBP.RHS = MachineOperand::CreateImm(0);
395   MBP.Predicate = LastOpc == AArch64::CBNZX ? MachineBranchPredicate::PRED_NE
396                                             : MachineBranchPredicate::PRED_EQ;
397   return false;
398 }
399 
400 bool AArch64InstrInfo::reverseBranchCondition(
401     SmallVectorImpl<MachineOperand> &Cond) const {
402   if (Cond[0].getImm() != -1) {
403     // Regular Bcc
404     AArch64CC::CondCode CC = (AArch64CC::CondCode)(int)Cond[0].getImm();
405     Cond[0].setImm(AArch64CC::getInvertedCondCode(CC));
406   } else {
407     // Folded compare-and-branch
408     switch (Cond[1].getImm()) {
409     default:
410       llvm_unreachable("Unknown conditional branch!");
411     case AArch64::CBZW:
412       Cond[1].setImm(AArch64::CBNZW);
413       break;
414     case AArch64::CBNZW:
415       Cond[1].setImm(AArch64::CBZW);
416       break;
417     case AArch64::CBZX:
418       Cond[1].setImm(AArch64::CBNZX);
419       break;
420     case AArch64::CBNZX:
421       Cond[1].setImm(AArch64::CBZX);
422       break;
423     case AArch64::TBZW:
424       Cond[1].setImm(AArch64::TBNZW);
425       break;
426     case AArch64::TBNZW:
427       Cond[1].setImm(AArch64::TBZW);
428       break;
429     case AArch64::TBZX:
430       Cond[1].setImm(AArch64::TBNZX);
431       break;
432     case AArch64::TBNZX:
433       Cond[1].setImm(AArch64::TBZX);
434       break;
435     }
436   }
437 
438   return false;
439 }
440 
441 unsigned AArch64InstrInfo::removeBranch(MachineBasicBlock &MBB,
442                                         int *BytesRemoved) const {
443   MachineBasicBlock::iterator I = MBB.getLastNonDebugInstr();
444   if (I == MBB.end())
445     return 0;
446 
447   if (!isUncondBranchOpcode(I->getOpcode()) &&
448       !isCondBranchOpcode(I->getOpcode()))
449     return 0;
450 
451   // Remove the branch.
452   I->eraseFromParent();
453 
454   I = MBB.end();
455 
456   if (I == MBB.begin()) {
457     if (BytesRemoved)
458       *BytesRemoved = 4;
459     return 1;
460   }
461   --I;
462   if (!isCondBranchOpcode(I->getOpcode())) {
463     if (BytesRemoved)
464       *BytesRemoved = 4;
465     return 1;
466   }
467 
468   // Remove the branch.
469   I->eraseFromParent();
470   if (BytesRemoved)
471     *BytesRemoved = 8;
472 
473   return 2;
474 }
475 
476 void AArch64InstrInfo::instantiateCondBranch(
477     MachineBasicBlock &MBB, const DebugLoc &DL, MachineBasicBlock *TBB,
478     ArrayRef<MachineOperand> Cond) const {
479   if (Cond[0].getImm() != -1) {
480     // Regular Bcc
481     BuildMI(&MBB, DL, get(AArch64::Bcc)).addImm(Cond[0].getImm()).addMBB(TBB);
482   } else {
483     // Folded compare-and-branch
484     // Note that we use addOperand instead of addReg to keep the flags.
485     const MachineInstrBuilder MIB =
486         BuildMI(&MBB, DL, get(Cond[1].getImm())).add(Cond[2]);
487     if (Cond.size() > 3)
488       MIB.addImm(Cond[3].getImm());
489     MIB.addMBB(TBB);
490   }
491 }
492 
493 unsigned AArch64InstrInfo::insertBranch(
494     MachineBasicBlock &MBB, MachineBasicBlock *TBB, MachineBasicBlock *FBB,
495     ArrayRef<MachineOperand> Cond, const DebugLoc &DL, int *BytesAdded) const {
496   // Shouldn't be a fall through.
497   assert(TBB && "insertBranch must not be told to insert a fallthrough");
498 
499   if (!FBB) {
500     if (Cond.empty()) // Unconditional branch?
501       BuildMI(&MBB, DL, get(AArch64::B)).addMBB(TBB);
502     else
503       instantiateCondBranch(MBB, DL, TBB, Cond);
504 
505     if (BytesAdded)
506       *BytesAdded = 4;
507 
508     return 1;
509   }
510 
511   // Two-way conditional branch.
512   instantiateCondBranch(MBB, DL, TBB, Cond);
513   BuildMI(&MBB, DL, get(AArch64::B)).addMBB(FBB);
514 
515   if (BytesAdded)
516     *BytesAdded = 8;
517 
518   return 2;
519 }
520 
521 // Find the original register that VReg is copied from.
522 static unsigned removeCopies(const MachineRegisterInfo &MRI, unsigned VReg) {
523   while (Register::isVirtualRegister(VReg)) {
524     const MachineInstr *DefMI = MRI.getVRegDef(VReg);
525     if (!DefMI->isFullCopy())
526       return VReg;
527     VReg = DefMI->getOperand(1).getReg();
528   }
529   return VReg;
530 }
531 
532 // Determine if VReg is defined by an instruction that can be folded into a
533 // csel instruction. If so, return the folded opcode, and the replacement
534 // register.
535 static unsigned canFoldIntoCSel(const MachineRegisterInfo &MRI, unsigned VReg,
536                                 unsigned *NewVReg = nullptr) {
537   VReg = removeCopies(MRI, VReg);
538   if (!Register::isVirtualRegister(VReg))
539     return 0;
540 
541   bool Is64Bit = AArch64::GPR64allRegClass.hasSubClassEq(MRI.getRegClass(VReg));
542   const MachineInstr *DefMI = MRI.getVRegDef(VReg);
543   unsigned Opc = 0;
544   unsigned SrcOpNum = 0;
545   switch (DefMI->getOpcode()) {
546   case AArch64::ADDSXri:
547   case AArch64::ADDSWri:
548     // if NZCV is used, do not fold.
549     if (DefMI->findRegisterDefOperandIdx(AArch64::NZCV, true) == -1)
550       return 0;
551     // fall-through to ADDXri and ADDWri.
552     LLVM_FALLTHROUGH;
553   case AArch64::ADDXri:
554   case AArch64::ADDWri:
555     // add x, 1 -> csinc.
556     if (!DefMI->getOperand(2).isImm() || DefMI->getOperand(2).getImm() != 1 ||
557         DefMI->getOperand(3).getImm() != 0)
558       return 0;
559     SrcOpNum = 1;
560     Opc = Is64Bit ? AArch64::CSINCXr : AArch64::CSINCWr;
561     break;
562 
563   case AArch64::ORNXrr:
564   case AArch64::ORNWrr: {
565     // not x -> csinv, represented as orn dst, xzr, src.
566     unsigned ZReg = removeCopies(MRI, DefMI->getOperand(1).getReg());
567     if (ZReg != AArch64::XZR && ZReg != AArch64::WZR)
568       return 0;
569     SrcOpNum = 2;
570     Opc = Is64Bit ? AArch64::CSINVXr : AArch64::CSINVWr;
571     break;
572   }
573 
574   case AArch64::SUBSXrr:
575   case AArch64::SUBSWrr:
576     // if NZCV is used, do not fold.
577     if (DefMI->findRegisterDefOperandIdx(AArch64::NZCV, true) == -1)
578       return 0;
579     // fall-through to SUBXrr and SUBWrr.
580     LLVM_FALLTHROUGH;
581   case AArch64::SUBXrr:
582   case AArch64::SUBWrr: {
583     // neg x -> csneg, represented as sub dst, xzr, src.
584     unsigned ZReg = removeCopies(MRI, DefMI->getOperand(1).getReg());
585     if (ZReg != AArch64::XZR && ZReg != AArch64::WZR)
586       return 0;
587     SrcOpNum = 2;
588     Opc = Is64Bit ? AArch64::CSNEGXr : AArch64::CSNEGWr;
589     break;
590   }
591   default:
592     return 0;
593   }
594   assert(Opc && SrcOpNum && "Missing parameters");
595 
596   if (NewVReg)
597     *NewVReg = DefMI->getOperand(SrcOpNum).getReg();
598   return Opc;
599 }
600 
601 bool AArch64InstrInfo::canInsertSelect(const MachineBasicBlock &MBB,
602                                        ArrayRef<MachineOperand> Cond,
603                                        Register DstReg, Register TrueReg,
604                                        Register FalseReg, int &CondCycles,
605                                        int &TrueCycles,
606                                        int &FalseCycles) const {
607   // Check register classes.
608   const MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo();
609   const TargetRegisterClass *RC =
610       RI.getCommonSubClass(MRI.getRegClass(TrueReg), MRI.getRegClass(FalseReg));
611   if (!RC)
612     return false;
613 
614   // Also need to check the dest regclass, in case we're trying to optimize
615   // something like:
616   // %1(gpr) = PHI %2(fpr), bb1, %(fpr), bb2
617   if (!RI.getCommonSubClass(RC, MRI.getRegClass(DstReg)))
618     return false;
619 
620   // Expanding cbz/tbz requires an extra cycle of latency on the condition.
621   unsigned ExtraCondLat = Cond.size() != 1;
622 
623   // GPRs are handled by csel.
624   // FIXME: Fold in x+1, -x, and ~x when applicable.
625   if (AArch64::GPR64allRegClass.hasSubClassEq(RC) ||
626       AArch64::GPR32allRegClass.hasSubClassEq(RC)) {
627     // Single-cycle csel, csinc, csinv, and csneg.
628     CondCycles = 1 + ExtraCondLat;
629     TrueCycles = FalseCycles = 1;
630     if (canFoldIntoCSel(MRI, TrueReg))
631       TrueCycles = 0;
632     else if (canFoldIntoCSel(MRI, FalseReg))
633       FalseCycles = 0;
634     return true;
635   }
636 
637   // Scalar floating point is handled by fcsel.
638   // FIXME: Form fabs, fmin, and fmax when applicable.
639   if (AArch64::FPR64RegClass.hasSubClassEq(RC) ||
640       AArch64::FPR32RegClass.hasSubClassEq(RC)) {
641     CondCycles = 5 + ExtraCondLat;
642     TrueCycles = FalseCycles = 2;
643     return true;
644   }
645 
646   // Can't do vectors.
647   return false;
648 }
649 
650 void AArch64InstrInfo::insertSelect(MachineBasicBlock &MBB,
651                                     MachineBasicBlock::iterator I,
652                                     const DebugLoc &DL, Register DstReg,
653                                     ArrayRef<MachineOperand> Cond,
654                                     Register TrueReg, Register FalseReg) const {
655   MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo();
656 
657   // Parse the condition code, see parseCondBranch() above.
658   AArch64CC::CondCode CC;
659   switch (Cond.size()) {
660   default:
661     llvm_unreachable("Unknown condition opcode in Cond");
662   case 1: // b.cc
663     CC = AArch64CC::CondCode(Cond[0].getImm());
664     break;
665   case 3: { // cbz/cbnz
666     // We must insert a compare against 0.
667     bool Is64Bit;
668     switch (Cond[1].getImm()) {
669     default:
670       llvm_unreachable("Unknown branch opcode in Cond");
671     case AArch64::CBZW:
672       Is64Bit = false;
673       CC = AArch64CC::EQ;
674       break;
675     case AArch64::CBZX:
676       Is64Bit = true;
677       CC = AArch64CC::EQ;
678       break;
679     case AArch64::CBNZW:
680       Is64Bit = false;
681       CC = AArch64CC::NE;
682       break;
683     case AArch64::CBNZX:
684       Is64Bit = true;
685       CC = AArch64CC::NE;
686       break;
687     }
688     Register SrcReg = Cond[2].getReg();
689     if (Is64Bit) {
690       // cmp reg, #0 is actually subs xzr, reg, #0.
691       MRI.constrainRegClass(SrcReg, &AArch64::GPR64spRegClass);
692       BuildMI(MBB, I, DL, get(AArch64::SUBSXri), AArch64::XZR)
693           .addReg(SrcReg)
694           .addImm(0)
695           .addImm(0);
696     } else {
697       MRI.constrainRegClass(SrcReg, &AArch64::GPR32spRegClass);
698       BuildMI(MBB, I, DL, get(AArch64::SUBSWri), AArch64::WZR)
699           .addReg(SrcReg)
700           .addImm(0)
701           .addImm(0);
702     }
703     break;
704   }
705   case 4: { // tbz/tbnz
706     // We must insert a tst instruction.
707     switch (Cond[1].getImm()) {
708     default:
709       llvm_unreachable("Unknown branch opcode in Cond");
710     case AArch64::TBZW:
711     case AArch64::TBZX:
712       CC = AArch64CC::EQ;
713       break;
714     case AArch64::TBNZW:
715     case AArch64::TBNZX:
716       CC = AArch64CC::NE;
717       break;
718     }
719     // cmp reg, #foo is actually ands xzr, reg, #1<<foo.
720     if (Cond[1].getImm() == AArch64::TBZW || Cond[1].getImm() == AArch64::TBNZW)
721       BuildMI(MBB, I, DL, get(AArch64::ANDSWri), AArch64::WZR)
722           .addReg(Cond[2].getReg())
723           .addImm(
724               AArch64_AM::encodeLogicalImmediate(1ull << Cond[3].getImm(), 32));
725     else
726       BuildMI(MBB, I, DL, get(AArch64::ANDSXri), AArch64::XZR)
727           .addReg(Cond[2].getReg())
728           .addImm(
729               AArch64_AM::encodeLogicalImmediate(1ull << Cond[3].getImm(), 64));
730     break;
731   }
732   }
733 
734   unsigned Opc = 0;
735   const TargetRegisterClass *RC = nullptr;
736   bool TryFold = false;
737   if (MRI.constrainRegClass(DstReg, &AArch64::GPR64RegClass)) {
738     RC = &AArch64::GPR64RegClass;
739     Opc = AArch64::CSELXr;
740     TryFold = true;
741   } else if (MRI.constrainRegClass(DstReg, &AArch64::GPR32RegClass)) {
742     RC = &AArch64::GPR32RegClass;
743     Opc = AArch64::CSELWr;
744     TryFold = true;
745   } else if (MRI.constrainRegClass(DstReg, &AArch64::FPR64RegClass)) {
746     RC = &AArch64::FPR64RegClass;
747     Opc = AArch64::FCSELDrrr;
748   } else if (MRI.constrainRegClass(DstReg, &AArch64::FPR32RegClass)) {
749     RC = &AArch64::FPR32RegClass;
750     Opc = AArch64::FCSELSrrr;
751   }
752   assert(RC && "Unsupported regclass");
753 
754   // Try folding simple instructions into the csel.
755   if (TryFold) {
756     unsigned NewVReg = 0;
757     unsigned FoldedOpc = canFoldIntoCSel(MRI, TrueReg, &NewVReg);
758     if (FoldedOpc) {
759       // The folded opcodes csinc, csinc and csneg apply the operation to
760       // FalseReg, so we need to invert the condition.
761       CC = AArch64CC::getInvertedCondCode(CC);
762       TrueReg = FalseReg;
763     } else
764       FoldedOpc = canFoldIntoCSel(MRI, FalseReg, &NewVReg);
765 
766     // Fold the operation. Leave any dead instructions for DCE to clean up.
767     if (FoldedOpc) {
768       FalseReg = NewVReg;
769       Opc = FoldedOpc;
770       // The extends the live range of NewVReg.
771       MRI.clearKillFlags(NewVReg);
772     }
773   }
774 
775   // Pull all virtual register into the appropriate class.
776   MRI.constrainRegClass(TrueReg, RC);
777   MRI.constrainRegClass(FalseReg, RC);
778 
779   // Insert the csel.
780   BuildMI(MBB, I, DL, get(Opc), DstReg)
781       .addReg(TrueReg)
782       .addReg(FalseReg)
783       .addImm(CC);
784 }
785 
786 /// Returns true if a MOVi32imm or MOVi64imm can be expanded to an  ORRxx.
787 static bool canBeExpandedToORR(const MachineInstr &MI, unsigned BitSize) {
788   uint64_t Imm = MI.getOperand(1).getImm();
789   uint64_t UImm = Imm << (64 - BitSize) >> (64 - BitSize);
790   uint64_t Encoding;
791   return AArch64_AM::processLogicalImmediate(UImm, BitSize, Encoding);
792 }
793 
794 // FIXME: this implementation should be micro-architecture dependent, so a
795 // micro-architecture target hook should be introduced here in future.
796 bool AArch64InstrInfo::isAsCheapAsAMove(const MachineInstr &MI) const {
797   if (!Subtarget.hasCustomCheapAsMoveHandling())
798     return MI.isAsCheapAsAMove();
799 
800   const unsigned Opcode = MI.getOpcode();
801 
802   // Firstly, check cases gated by features.
803 
804   if (Subtarget.hasZeroCycleZeroingFP()) {
805     if (Opcode == AArch64::FMOVH0 ||
806         Opcode == AArch64::FMOVS0 ||
807         Opcode == AArch64::FMOVD0)
808       return true;
809   }
810 
811   if (Subtarget.hasZeroCycleZeroingGP()) {
812     if (Opcode == TargetOpcode::COPY &&
813         (MI.getOperand(1).getReg() == AArch64::WZR ||
814          MI.getOperand(1).getReg() == AArch64::XZR))
815       return true;
816   }
817 
818   // Secondly, check cases specific to sub-targets.
819 
820   if (Subtarget.hasExynosCheapAsMoveHandling()) {
821     if (isExynosCheapAsMove(MI))
822       return true;
823 
824     return MI.isAsCheapAsAMove();
825   }
826 
827   // Finally, check generic cases.
828 
829   switch (Opcode) {
830   default:
831     return false;
832 
833   // add/sub on register without shift
834   case AArch64::ADDWri:
835   case AArch64::ADDXri:
836   case AArch64::SUBWri:
837   case AArch64::SUBXri:
838     return (MI.getOperand(3).getImm() == 0);
839 
840   // logical ops on immediate
841   case AArch64::ANDWri:
842   case AArch64::ANDXri:
843   case AArch64::EORWri:
844   case AArch64::EORXri:
845   case AArch64::ORRWri:
846   case AArch64::ORRXri:
847     return true;
848 
849   // logical ops on register without shift
850   case AArch64::ANDWrr:
851   case AArch64::ANDXrr:
852   case AArch64::BICWrr:
853   case AArch64::BICXrr:
854   case AArch64::EONWrr:
855   case AArch64::EONXrr:
856   case AArch64::EORWrr:
857   case AArch64::EORXrr:
858   case AArch64::ORNWrr:
859   case AArch64::ORNXrr:
860   case AArch64::ORRWrr:
861   case AArch64::ORRXrr:
862     return true;
863 
864   // If MOVi32imm or MOVi64imm can be expanded into ORRWri or
865   // ORRXri, it is as cheap as MOV
866   case AArch64::MOVi32imm:
867     return canBeExpandedToORR(MI, 32);
868   case AArch64::MOVi64imm:
869     return canBeExpandedToORR(MI, 64);
870   }
871 
872   llvm_unreachable("Unknown opcode to check as cheap as a move!");
873 }
874 
875 bool AArch64InstrInfo::isFalkorShiftExtFast(const MachineInstr &MI) {
876   switch (MI.getOpcode()) {
877   default:
878     return false;
879 
880   case AArch64::ADDWrs:
881   case AArch64::ADDXrs:
882   case AArch64::ADDSWrs:
883   case AArch64::ADDSXrs: {
884     unsigned Imm = MI.getOperand(3).getImm();
885     unsigned ShiftVal = AArch64_AM::getShiftValue(Imm);
886     if (ShiftVal == 0)
887       return true;
888     return AArch64_AM::getShiftType(Imm) == AArch64_AM::LSL && ShiftVal <= 5;
889   }
890 
891   case AArch64::ADDWrx:
892   case AArch64::ADDXrx:
893   case AArch64::ADDXrx64:
894   case AArch64::ADDSWrx:
895   case AArch64::ADDSXrx:
896   case AArch64::ADDSXrx64: {
897     unsigned Imm = MI.getOperand(3).getImm();
898     switch (AArch64_AM::getArithExtendType(Imm)) {
899     default:
900       return false;
901     case AArch64_AM::UXTB:
902     case AArch64_AM::UXTH:
903     case AArch64_AM::UXTW:
904     case AArch64_AM::UXTX:
905       return AArch64_AM::getArithShiftValue(Imm) <= 4;
906     }
907   }
908 
909   case AArch64::SUBWrs:
910   case AArch64::SUBSWrs: {
911     unsigned Imm = MI.getOperand(3).getImm();
912     unsigned ShiftVal = AArch64_AM::getShiftValue(Imm);
913     return ShiftVal == 0 ||
914            (AArch64_AM::getShiftType(Imm) == AArch64_AM::ASR && ShiftVal == 31);
915   }
916 
917   case AArch64::SUBXrs:
918   case AArch64::SUBSXrs: {
919     unsigned Imm = MI.getOperand(3).getImm();
920     unsigned ShiftVal = AArch64_AM::getShiftValue(Imm);
921     return ShiftVal == 0 ||
922            (AArch64_AM::getShiftType(Imm) == AArch64_AM::ASR && ShiftVal == 63);
923   }
924 
925   case AArch64::SUBWrx:
926   case AArch64::SUBXrx:
927   case AArch64::SUBXrx64:
928   case AArch64::SUBSWrx:
929   case AArch64::SUBSXrx:
930   case AArch64::SUBSXrx64: {
931     unsigned Imm = MI.getOperand(3).getImm();
932     switch (AArch64_AM::getArithExtendType(Imm)) {
933     default:
934       return false;
935     case AArch64_AM::UXTB:
936     case AArch64_AM::UXTH:
937     case AArch64_AM::UXTW:
938     case AArch64_AM::UXTX:
939       return AArch64_AM::getArithShiftValue(Imm) == 0;
940     }
941   }
942 
943   case AArch64::LDRBBroW:
944   case AArch64::LDRBBroX:
945   case AArch64::LDRBroW:
946   case AArch64::LDRBroX:
947   case AArch64::LDRDroW:
948   case AArch64::LDRDroX:
949   case AArch64::LDRHHroW:
950   case AArch64::LDRHHroX:
951   case AArch64::LDRHroW:
952   case AArch64::LDRHroX:
953   case AArch64::LDRQroW:
954   case AArch64::LDRQroX:
955   case AArch64::LDRSBWroW:
956   case AArch64::LDRSBWroX:
957   case AArch64::LDRSBXroW:
958   case AArch64::LDRSBXroX:
959   case AArch64::LDRSHWroW:
960   case AArch64::LDRSHWroX:
961   case AArch64::LDRSHXroW:
962   case AArch64::LDRSHXroX:
963   case AArch64::LDRSWroW:
964   case AArch64::LDRSWroX:
965   case AArch64::LDRSroW:
966   case AArch64::LDRSroX:
967   case AArch64::LDRWroW:
968   case AArch64::LDRWroX:
969   case AArch64::LDRXroW:
970   case AArch64::LDRXroX:
971   case AArch64::PRFMroW:
972   case AArch64::PRFMroX:
973   case AArch64::STRBBroW:
974   case AArch64::STRBBroX:
975   case AArch64::STRBroW:
976   case AArch64::STRBroX:
977   case AArch64::STRDroW:
978   case AArch64::STRDroX:
979   case AArch64::STRHHroW:
980   case AArch64::STRHHroX:
981   case AArch64::STRHroW:
982   case AArch64::STRHroX:
983   case AArch64::STRQroW:
984   case AArch64::STRQroX:
985   case AArch64::STRSroW:
986   case AArch64::STRSroX:
987   case AArch64::STRWroW:
988   case AArch64::STRWroX:
989   case AArch64::STRXroW:
990   case AArch64::STRXroX: {
991     unsigned IsSigned = MI.getOperand(3).getImm();
992     return !IsSigned;
993   }
994   }
995 }
996 
997 bool AArch64InstrInfo::isSEHInstruction(const MachineInstr &MI) {
998   unsigned Opc = MI.getOpcode();
999   switch (Opc) {
1000     default:
1001       return false;
1002     case AArch64::SEH_StackAlloc:
1003     case AArch64::SEH_SaveFPLR:
1004     case AArch64::SEH_SaveFPLR_X:
1005     case AArch64::SEH_SaveReg:
1006     case AArch64::SEH_SaveReg_X:
1007     case AArch64::SEH_SaveRegP:
1008     case AArch64::SEH_SaveRegP_X:
1009     case AArch64::SEH_SaveFReg:
1010     case AArch64::SEH_SaveFReg_X:
1011     case AArch64::SEH_SaveFRegP:
1012     case AArch64::SEH_SaveFRegP_X:
1013     case AArch64::SEH_SetFP:
1014     case AArch64::SEH_AddFP:
1015     case AArch64::SEH_Nop:
1016     case AArch64::SEH_PrologEnd:
1017     case AArch64::SEH_EpilogStart:
1018     case AArch64::SEH_EpilogEnd:
1019       return true;
1020   }
1021 }
1022 
1023 bool AArch64InstrInfo::isCoalescableExtInstr(const MachineInstr &MI,
1024                                              Register &SrcReg, Register &DstReg,
1025                                              unsigned &SubIdx) const {
1026   switch (MI.getOpcode()) {
1027   default:
1028     return false;
1029   case AArch64::SBFMXri: // aka sxtw
1030   case AArch64::UBFMXri: // aka uxtw
1031     // Check for the 32 -> 64 bit extension case, these instructions can do
1032     // much more.
1033     if (MI.getOperand(2).getImm() != 0 || MI.getOperand(3).getImm() != 31)
1034       return false;
1035     // This is a signed or unsigned 32 -> 64 bit extension.
1036     SrcReg = MI.getOperand(1).getReg();
1037     DstReg = MI.getOperand(0).getReg();
1038     SubIdx = AArch64::sub_32;
1039     return true;
1040   }
1041 }
1042 
1043 bool AArch64InstrInfo::areMemAccessesTriviallyDisjoint(
1044     const MachineInstr &MIa, const MachineInstr &MIb) const {
1045   const TargetRegisterInfo *TRI = &getRegisterInfo();
1046   const MachineOperand *BaseOpA = nullptr, *BaseOpB = nullptr;
1047   int64_t OffsetA = 0, OffsetB = 0;
1048   unsigned WidthA = 0, WidthB = 0;
1049   bool OffsetAIsScalable = false, OffsetBIsScalable = false;
1050 
1051   assert(MIa.mayLoadOrStore() && "MIa must be a load or store.");
1052   assert(MIb.mayLoadOrStore() && "MIb must be a load or store.");
1053 
1054   if (MIa.hasUnmodeledSideEffects() || MIb.hasUnmodeledSideEffects() ||
1055       MIa.hasOrderedMemoryRef() || MIb.hasOrderedMemoryRef())
1056     return false;
1057 
1058   // Retrieve the base, offset from the base and width. Width
1059   // is the size of memory that is being loaded/stored (e.g. 1, 2, 4, 8).  If
1060   // base are identical, and the offset of a lower memory access +
1061   // the width doesn't overlap the offset of a higher memory access,
1062   // then the memory accesses are different.
1063   // If OffsetAIsScalable and OffsetBIsScalable are both true, they
1064   // are assumed to have the same scale (vscale).
1065   if (getMemOperandWithOffsetWidth(MIa, BaseOpA, OffsetA, OffsetAIsScalable,
1066                                    WidthA, TRI) &&
1067       getMemOperandWithOffsetWidth(MIb, BaseOpB, OffsetB, OffsetBIsScalable,
1068                                    WidthB, TRI)) {
1069     if (BaseOpA->isIdenticalTo(*BaseOpB) &&
1070         OffsetAIsScalable == OffsetBIsScalable) {
1071       int LowOffset = OffsetA < OffsetB ? OffsetA : OffsetB;
1072       int HighOffset = OffsetA < OffsetB ? OffsetB : OffsetA;
1073       int LowWidth = (LowOffset == OffsetA) ? WidthA : WidthB;
1074       if (LowOffset + LowWidth <= HighOffset)
1075         return true;
1076     }
1077   }
1078   return false;
1079 }
1080 
1081 bool AArch64InstrInfo::isSchedulingBoundary(const MachineInstr &MI,
1082                                             const MachineBasicBlock *MBB,
1083                                             const MachineFunction &MF) const {
1084   if (TargetInstrInfo::isSchedulingBoundary(MI, MBB, MF))
1085     return true;
1086   switch (MI.getOpcode()) {
1087   case AArch64::HINT:
1088     // CSDB hints are scheduling barriers.
1089     if (MI.getOperand(0).getImm() == 0x14)
1090       return true;
1091     break;
1092   case AArch64::DSB:
1093   case AArch64::ISB:
1094     // DSB and ISB also are scheduling barriers.
1095     return true;
1096   default:;
1097   }
1098   if (isSEHInstruction(MI))
1099     return true;
1100   auto Next = std::next(MI.getIterator());
1101   return Next != MBB->end() && Next->isCFIInstruction();
1102 }
1103 
1104 /// analyzeCompare - For a comparison instruction, return the source registers
1105 /// in SrcReg and SrcReg2, and the value it compares against in CmpValue.
1106 /// Return true if the comparison instruction can be analyzed.
1107 bool AArch64InstrInfo::analyzeCompare(const MachineInstr &MI, Register &SrcReg,
1108                                       Register &SrcReg2, int64_t &CmpMask,
1109                                       int64_t &CmpValue) const {
1110   // The first operand can be a frame index where we'd normally expect a
1111   // register.
1112   assert(MI.getNumOperands() >= 2 && "All AArch64 cmps should have 2 operands");
1113   if (!MI.getOperand(1).isReg())
1114     return false;
1115 
1116   switch (MI.getOpcode()) {
1117   default:
1118     break;
1119   case AArch64::PTEST_PP:
1120     SrcReg = MI.getOperand(0).getReg();
1121     SrcReg2 = MI.getOperand(1).getReg();
1122     // Not sure about the mask and value for now...
1123     CmpMask = ~0;
1124     CmpValue = 0;
1125     return true;
1126   case AArch64::SUBSWrr:
1127   case AArch64::SUBSWrs:
1128   case AArch64::SUBSWrx:
1129   case AArch64::SUBSXrr:
1130   case AArch64::SUBSXrs:
1131   case AArch64::SUBSXrx:
1132   case AArch64::ADDSWrr:
1133   case AArch64::ADDSWrs:
1134   case AArch64::ADDSWrx:
1135   case AArch64::ADDSXrr:
1136   case AArch64::ADDSXrs:
1137   case AArch64::ADDSXrx:
1138     // Replace SUBSWrr with SUBWrr if NZCV is not used.
1139     SrcReg = MI.getOperand(1).getReg();
1140     SrcReg2 = MI.getOperand(2).getReg();
1141     CmpMask = ~0;
1142     CmpValue = 0;
1143     return true;
1144   case AArch64::SUBSWri:
1145   case AArch64::ADDSWri:
1146   case AArch64::SUBSXri:
1147   case AArch64::ADDSXri:
1148     SrcReg = MI.getOperand(1).getReg();
1149     SrcReg2 = 0;
1150     CmpMask = ~0;
1151     CmpValue = MI.getOperand(2).getImm();
1152     return true;
1153   case AArch64::ANDSWri:
1154   case AArch64::ANDSXri:
1155     // ANDS does not use the same encoding scheme as the others xxxS
1156     // instructions.
1157     SrcReg = MI.getOperand(1).getReg();
1158     SrcReg2 = 0;
1159     CmpMask = ~0;
1160     CmpValue = AArch64_AM::decodeLogicalImmediate(
1161                    MI.getOperand(2).getImm(),
1162                    MI.getOpcode() == AArch64::ANDSWri ? 32 : 64);
1163     return true;
1164   }
1165 
1166   return false;
1167 }
1168 
1169 static bool UpdateOperandRegClass(MachineInstr &Instr) {
1170   MachineBasicBlock *MBB = Instr.getParent();
1171   assert(MBB && "Can't get MachineBasicBlock here");
1172   MachineFunction *MF = MBB->getParent();
1173   assert(MF && "Can't get MachineFunction here");
1174   const TargetInstrInfo *TII = MF->getSubtarget().getInstrInfo();
1175   const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo();
1176   MachineRegisterInfo *MRI = &MF->getRegInfo();
1177 
1178   for (unsigned OpIdx = 0, EndIdx = Instr.getNumOperands(); OpIdx < EndIdx;
1179        ++OpIdx) {
1180     MachineOperand &MO = Instr.getOperand(OpIdx);
1181     const TargetRegisterClass *OpRegCstraints =
1182         Instr.getRegClassConstraint(OpIdx, TII, TRI);
1183 
1184     // If there's no constraint, there's nothing to do.
1185     if (!OpRegCstraints)
1186       continue;
1187     // If the operand is a frame index, there's nothing to do here.
1188     // A frame index operand will resolve correctly during PEI.
1189     if (MO.isFI())
1190       continue;
1191 
1192     assert(MO.isReg() &&
1193            "Operand has register constraints without being a register!");
1194 
1195     Register Reg = MO.getReg();
1196     if (Register::isPhysicalRegister(Reg)) {
1197       if (!OpRegCstraints->contains(Reg))
1198         return false;
1199     } else if (!OpRegCstraints->hasSubClassEq(MRI->getRegClass(Reg)) &&
1200                !MRI->constrainRegClass(Reg, OpRegCstraints))
1201       return false;
1202   }
1203 
1204   return true;
1205 }
1206 
1207 /// Return the opcode that does not set flags when possible - otherwise
1208 /// return the original opcode. The caller is responsible to do the actual
1209 /// substitution and legality checking.
1210 static unsigned convertToNonFlagSettingOpc(const MachineInstr &MI) {
1211   // Don't convert all compare instructions, because for some the zero register
1212   // encoding becomes the sp register.
1213   bool MIDefinesZeroReg = false;
1214   if (MI.definesRegister(AArch64::WZR) || MI.definesRegister(AArch64::XZR))
1215     MIDefinesZeroReg = true;
1216 
1217   switch (MI.getOpcode()) {
1218   default:
1219     return MI.getOpcode();
1220   case AArch64::ADDSWrr:
1221     return AArch64::ADDWrr;
1222   case AArch64::ADDSWri:
1223     return MIDefinesZeroReg ? AArch64::ADDSWri : AArch64::ADDWri;
1224   case AArch64::ADDSWrs:
1225     return MIDefinesZeroReg ? AArch64::ADDSWrs : AArch64::ADDWrs;
1226   case AArch64::ADDSWrx:
1227     return AArch64::ADDWrx;
1228   case AArch64::ADDSXrr:
1229     return AArch64::ADDXrr;
1230   case AArch64::ADDSXri:
1231     return MIDefinesZeroReg ? AArch64::ADDSXri : AArch64::ADDXri;
1232   case AArch64::ADDSXrs:
1233     return MIDefinesZeroReg ? AArch64::ADDSXrs : AArch64::ADDXrs;
1234   case AArch64::ADDSXrx:
1235     return AArch64::ADDXrx;
1236   case AArch64::SUBSWrr:
1237     return AArch64::SUBWrr;
1238   case AArch64::SUBSWri:
1239     return MIDefinesZeroReg ? AArch64::SUBSWri : AArch64::SUBWri;
1240   case AArch64::SUBSWrs:
1241     return MIDefinesZeroReg ? AArch64::SUBSWrs : AArch64::SUBWrs;
1242   case AArch64::SUBSWrx:
1243     return AArch64::SUBWrx;
1244   case AArch64::SUBSXrr:
1245     return AArch64::SUBXrr;
1246   case AArch64::SUBSXri:
1247     return MIDefinesZeroReg ? AArch64::SUBSXri : AArch64::SUBXri;
1248   case AArch64::SUBSXrs:
1249     return MIDefinesZeroReg ? AArch64::SUBSXrs : AArch64::SUBXrs;
1250   case AArch64::SUBSXrx:
1251     return AArch64::SUBXrx;
1252   }
1253 }
1254 
1255 enum AccessKind { AK_Write = 0x01, AK_Read = 0x10, AK_All = 0x11 };
1256 
1257 /// True when condition flags are accessed (either by writing or reading)
1258 /// on the instruction trace starting at From and ending at To.
1259 ///
1260 /// Note: If From and To are from different blocks it's assumed CC are accessed
1261 ///       on the path.
1262 static bool areCFlagsAccessedBetweenInstrs(
1263     MachineBasicBlock::iterator From, MachineBasicBlock::iterator To,
1264     const TargetRegisterInfo *TRI, const AccessKind AccessToCheck = AK_All) {
1265   // Early exit if To is at the beginning of the BB.
1266   if (To == To->getParent()->begin())
1267     return true;
1268 
1269   // Check whether the instructions are in the same basic block
1270   // If not, assume the condition flags might get modified somewhere.
1271   if (To->getParent() != From->getParent())
1272     return true;
1273 
1274   // From must be above To.
1275   assert(std::any_of(
1276       ++To.getReverse(), To->getParent()->rend(),
1277       [From](MachineInstr &MI) { return MI.getIterator() == From; }));
1278 
1279   // We iterate backward starting at \p To until we hit \p From.
1280   for (const MachineInstr &Instr :
1281        instructionsWithoutDebug(++To.getReverse(), From.getReverse())) {
1282     if (((AccessToCheck & AK_Write) &&
1283          Instr.modifiesRegister(AArch64::NZCV, TRI)) ||
1284         ((AccessToCheck & AK_Read) && Instr.readsRegister(AArch64::NZCV, TRI)))
1285       return true;
1286   }
1287   return false;
1288 }
1289 
1290 /// optimizePTestInstr - Attempt to remove a ptest of a predicate-generating
1291 /// operation which could set the flags in an identical manner
1292 bool AArch64InstrInfo::optimizePTestInstr(
1293     MachineInstr *PTest, unsigned MaskReg, unsigned PredReg,
1294     const MachineRegisterInfo *MRI) const {
1295   auto *Mask = MRI->getUniqueVRegDef(MaskReg);
1296   auto *Pred = MRI->getUniqueVRegDef(PredReg);
1297   auto NewOp = Pred->getOpcode();
1298   bool OpChanged = false;
1299 
1300   unsigned MaskOpcode = Mask->getOpcode();
1301   unsigned PredOpcode = Pred->getOpcode();
1302   bool PredIsPTestLike = isPTestLikeOpcode(PredOpcode);
1303   bool PredIsWhileLike = isWhileOpcode(PredOpcode);
1304 
1305   if (isPTrueOpcode(MaskOpcode) && (PredIsPTestLike || PredIsWhileLike)) {
1306     // For PTEST(PTRUE, OTHER_INST), PTEST is redundant when PTRUE doesn't
1307     // deactivate any lanes OTHER_INST might set.
1308     uint64_t MaskElementSize = getElementSizeForOpcode(MaskOpcode);
1309     uint64_t PredElementSize = getElementSizeForOpcode(PredOpcode);
1310 
1311     // Must be an all active predicate of matching element size.
1312     if ((PredElementSize != MaskElementSize) ||
1313         (Mask->getOperand(1).getImm() != 31))
1314       return false;
1315 
1316     // Fallthough to simply remove the PTEST.
1317   } else if ((Mask == Pred) && (PredIsPTestLike || PredIsWhileLike)) {
1318     // For PTEST(PG, PG), PTEST is redundant when PG is the result of an
1319     // instruction that sets the flags as PTEST would.
1320 
1321     // Fallthough to simply remove the PTEST.
1322   } else if (PredIsPTestLike) {
1323     // For PTEST(PG_1, PTEST_LIKE(PG2, ...)), PTEST is redundant when both
1324     // instructions use the same predicate.
1325     auto PTestLikeMask = MRI->getUniqueVRegDef(Pred->getOperand(1).getReg());
1326     if (Mask != PTestLikeMask)
1327       return false;
1328 
1329     // Fallthough to simply remove the PTEST.
1330   } else {
1331     switch (Pred->getOpcode()) {
1332     case AArch64::BRKB_PPzP:
1333     case AArch64::BRKPB_PPzPP: {
1334       // Op 0 is chain, 1 is the mask, 2 the previous predicate to
1335       // propagate, 3 the new predicate.
1336 
1337       // Check to see if our mask is the same as the brkpb's. If
1338       // not the resulting flag bits may be different and we
1339       // can't remove the ptest.
1340       auto *PredMask = MRI->getUniqueVRegDef(Pred->getOperand(1).getReg());
1341       if (Mask != PredMask)
1342         return false;
1343 
1344       // Switch to the new opcode
1345       NewOp = Pred->getOpcode() == AArch64::BRKB_PPzP ? AArch64::BRKBS_PPzP
1346                                                       : AArch64::BRKPBS_PPzPP;
1347       OpChanged = true;
1348       break;
1349     }
1350     case AArch64::BRKN_PPzP: {
1351       auto *PredMask = MRI->getUniqueVRegDef(Pred->getOperand(1).getReg());
1352       if (Mask != PredMask)
1353         return false;
1354 
1355       NewOp = AArch64::BRKNS_PPzP;
1356       OpChanged = true;
1357       break;
1358     }
1359     case AArch64::RDFFR_PPz: {
1360       // rdffr   p1.b, PredMask=p0/z <--- Definition of Pred
1361       // ptest   Mask=p0, Pred=p1.b  <--- If equal masks, remove this and use
1362       //                                  `rdffrs p1.b, p0/z` above.
1363       auto *PredMask = MRI->getUniqueVRegDef(Pred->getOperand(1).getReg());
1364       if (Mask != PredMask)
1365         return false;
1366 
1367       NewOp = AArch64::RDFFRS_PPz;
1368       OpChanged = true;
1369       break;
1370     }
1371     default:
1372       // Bail out if we don't recognize the input
1373       return false;
1374     }
1375   }
1376 
1377   const TargetRegisterInfo *TRI = &getRegisterInfo();
1378 
1379   // If another instruction between Pred and PTest accesses flags, don't remove
1380   // the ptest or update the earlier instruction to modify them.
1381   if (areCFlagsAccessedBetweenInstrs(Pred, PTest, TRI))
1382     return false;
1383 
1384   // If we pass all the checks, it's safe to remove the PTEST and use the flags
1385   // as they are prior to PTEST. Sometimes this requires the tested PTEST
1386   // operand to be replaced with an equivalent instruction that also sets the
1387   // flags.
1388   Pred->setDesc(get(NewOp));
1389   PTest->eraseFromParent();
1390   if (OpChanged) {
1391     bool succeeded = UpdateOperandRegClass(*Pred);
1392     (void)succeeded;
1393     assert(succeeded && "Operands have incompatible register classes!");
1394     Pred->addRegisterDefined(AArch64::NZCV, TRI);
1395   }
1396 
1397   // Ensure that the flags def is live.
1398   if (Pred->registerDefIsDead(AArch64::NZCV, TRI)) {
1399     unsigned i = 0, e = Pred->getNumOperands();
1400     for (; i != e; ++i) {
1401       MachineOperand &MO = Pred->getOperand(i);
1402       if (MO.isReg() && MO.isDef() && MO.getReg() == AArch64::NZCV) {
1403         MO.setIsDead(false);
1404         break;
1405       }
1406     }
1407   }
1408   return true;
1409 }
1410 
1411 /// Try to optimize a compare instruction. A compare instruction is an
1412 /// instruction which produces AArch64::NZCV. It can be truly compare
1413 /// instruction
1414 /// when there are no uses of its destination register.
1415 ///
1416 /// The following steps are tried in order:
1417 /// 1. Convert CmpInstr into an unconditional version.
1418 /// 2. Remove CmpInstr if above there is an instruction producing a needed
1419 ///    condition code or an instruction which can be converted into such an
1420 ///    instruction.
1421 ///    Only comparison with zero is supported.
1422 bool AArch64InstrInfo::optimizeCompareInstr(
1423     MachineInstr &CmpInstr, Register SrcReg, Register SrcReg2, int64_t CmpMask,
1424     int64_t CmpValue, const MachineRegisterInfo *MRI) const {
1425   assert(CmpInstr.getParent());
1426   assert(MRI);
1427 
1428   // Replace SUBSWrr with SUBWrr if NZCV is not used.
1429   int DeadNZCVIdx = CmpInstr.findRegisterDefOperandIdx(AArch64::NZCV, true);
1430   if (DeadNZCVIdx != -1) {
1431     if (CmpInstr.definesRegister(AArch64::WZR) ||
1432         CmpInstr.definesRegister(AArch64::XZR)) {
1433       CmpInstr.eraseFromParent();
1434       return true;
1435     }
1436     unsigned Opc = CmpInstr.getOpcode();
1437     unsigned NewOpc = convertToNonFlagSettingOpc(CmpInstr);
1438     if (NewOpc == Opc)
1439       return false;
1440     const MCInstrDesc &MCID = get(NewOpc);
1441     CmpInstr.setDesc(MCID);
1442     CmpInstr.removeOperand(DeadNZCVIdx);
1443     bool succeeded = UpdateOperandRegClass(CmpInstr);
1444     (void)succeeded;
1445     assert(succeeded && "Some operands reg class are incompatible!");
1446     return true;
1447   }
1448 
1449   if (CmpInstr.getOpcode() == AArch64::PTEST_PP)
1450     return optimizePTestInstr(&CmpInstr, SrcReg, SrcReg2, MRI);
1451 
1452   if (SrcReg2 != 0)
1453     return false;
1454 
1455   // CmpInstr is a Compare instruction if destination register is not used.
1456   if (!MRI->use_nodbg_empty(CmpInstr.getOperand(0).getReg()))
1457     return false;
1458 
1459   if (CmpValue == 0 && substituteCmpToZero(CmpInstr, SrcReg, *MRI))
1460     return true;
1461   return (CmpValue == 0 || CmpValue == 1) &&
1462          removeCmpToZeroOrOne(CmpInstr, SrcReg, CmpValue, *MRI);
1463 }
1464 
1465 /// Get opcode of S version of Instr.
1466 /// If Instr is S version its opcode is returned.
1467 /// AArch64::INSTRUCTION_LIST_END is returned if Instr does not have S version
1468 /// or we are not interested in it.
1469 static unsigned sForm(MachineInstr &Instr) {
1470   switch (Instr.getOpcode()) {
1471   default:
1472     return AArch64::INSTRUCTION_LIST_END;
1473 
1474   case AArch64::ADDSWrr:
1475   case AArch64::ADDSWri:
1476   case AArch64::ADDSXrr:
1477   case AArch64::ADDSXri:
1478   case AArch64::SUBSWrr:
1479   case AArch64::SUBSWri:
1480   case AArch64::SUBSXrr:
1481   case AArch64::SUBSXri:
1482     return Instr.getOpcode();
1483 
1484   case AArch64::ADDWrr:
1485     return AArch64::ADDSWrr;
1486   case AArch64::ADDWri:
1487     return AArch64::ADDSWri;
1488   case AArch64::ADDXrr:
1489     return AArch64::ADDSXrr;
1490   case AArch64::ADDXri:
1491     return AArch64::ADDSXri;
1492   case AArch64::ADCWr:
1493     return AArch64::ADCSWr;
1494   case AArch64::ADCXr:
1495     return AArch64::ADCSXr;
1496   case AArch64::SUBWrr:
1497     return AArch64::SUBSWrr;
1498   case AArch64::SUBWri:
1499     return AArch64::SUBSWri;
1500   case AArch64::SUBXrr:
1501     return AArch64::SUBSXrr;
1502   case AArch64::SUBXri:
1503     return AArch64::SUBSXri;
1504   case AArch64::SBCWr:
1505     return AArch64::SBCSWr;
1506   case AArch64::SBCXr:
1507     return AArch64::SBCSXr;
1508   case AArch64::ANDWri:
1509     return AArch64::ANDSWri;
1510   case AArch64::ANDXri:
1511     return AArch64::ANDSXri;
1512   }
1513 }
1514 
1515 /// Check if AArch64::NZCV should be alive in successors of MBB.
1516 static bool areCFlagsAliveInSuccessors(const MachineBasicBlock *MBB) {
1517   for (auto *BB : MBB->successors())
1518     if (BB->isLiveIn(AArch64::NZCV))
1519       return true;
1520   return false;
1521 }
1522 
1523 /// \returns The condition code operand index for \p Instr if it is a branch
1524 /// or select and -1 otherwise.
1525 static int
1526 findCondCodeUseOperandIdxForBranchOrSelect(const MachineInstr &Instr) {
1527   switch (Instr.getOpcode()) {
1528   default:
1529     return -1;
1530 
1531   case AArch64::Bcc: {
1532     int Idx = Instr.findRegisterUseOperandIdx(AArch64::NZCV);
1533     assert(Idx >= 2);
1534     return Idx - 2;
1535   }
1536 
1537   case AArch64::CSINVWr:
1538   case AArch64::CSINVXr:
1539   case AArch64::CSINCWr:
1540   case AArch64::CSINCXr:
1541   case AArch64::CSELWr:
1542   case AArch64::CSELXr:
1543   case AArch64::CSNEGWr:
1544   case AArch64::CSNEGXr:
1545   case AArch64::FCSELSrrr:
1546   case AArch64::FCSELDrrr: {
1547     int Idx = Instr.findRegisterUseOperandIdx(AArch64::NZCV);
1548     assert(Idx >= 1);
1549     return Idx - 1;
1550   }
1551   }
1552 }
1553 
1554 /// Find a condition code used by the instruction.
1555 /// Returns AArch64CC::Invalid if either the instruction does not use condition
1556 /// codes or we don't optimize CmpInstr in the presence of such instructions.
1557 static AArch64CC::CondCode findCondCodeUsedByInstr(const MachineInstr &Instr) {
1558   int CCIdx = findCondCodeUseOperandIdxForBranchOrSelect(Instr);
1559   return CCIdx >= 0 ? static_cast<AArch64CC::CondCode>(
1560                           Instr.getOperand(CCIdx).getImm())
1561                     : AArch64CC::Invalid;
1562 }
1563 
1564 static UsedNZCV getUsedNZCV(AArch64CC::CondCode CC) {
1565   assert(CC != AArch64CC::Invalid);
1566   UsedNZCV UsedFlags;
1567   switch (CC) {
1568   default:
1569     break;
1570 
1571   case AArch64CC::EQ: // Z set
1572   case AArch64CC::NE: // Z clear
1573     UsedFlags.Z = true;
1574     break;
1575 
1576   case AArch64CC::HI: // Z clear and C set
1577   case AArch64CC::LS: // Z set   or  C clear
1578     UsedFlags.Z = true;
1579     LLVM_FALLTHROUGH;
1580   case AArch64CC::HS: // C set
1581   case AArch64CC::LO: // C clear
1582     UsedFlags.C = true;
1583     break;
1584 
1585   case AArch64CC::MI: // N set
1586   case AArch64CC::PL: // N clear
1587     UsedFlags.N = true;
1588     break;
1589 
1590   case AArch64CC::VS: // V set
1591   case AArch64CC::VC: // V clear
1592     UsedFlags.V = true;
1593     break;
1594 
1595   case AArch64CC::GT: // Z clear, N and V the same
1596   case AArch64CC::LE: // Z set,   N and V differ
1597     UsedFlags.Z = true;
1598     LLVM_FALLTHROUGH;
1599   case AArch64CC::GE: // N and V the same
1600   case AArch64CC::LT: // N and V differ
1601     UsedFlags.N = true;
1602     UsedFlags.V = true;
1603     break;
1604   }
1605   return UsedFlags;
1606 }
1607 
1608 /// \returns Conditions flags used after \p CmpInstr in its MachineBB if NZCV
1609 /// flags are not alive in successors of the same \p CmpInstr and \p MI parent.
1610 /// \returns None otherwise.
1611 ///
1612 /// Collect instructions using that flags in \p CCUseInstrs if provided.
1613 Optional<UsedNZCV>
1614 llvm::examineCFlagsUse(MachineInstr &MI, MachineInstr &CmpInstr,
1615                        const TargetRegisterInfo &TRI,
1616                        SmallVectorImpl<MachineInstr *> *CCUseInstrs) {
1617   MachineBasicBlock *CmpParent = CmpInstr.getParent();
1618   if (MI.getParent() != CmpParent)
1619     return None;
1620 
1621   if (areCFlagsAliveInSuccessors(CmpParent))
1622     return None;
1623 
1624   UsedNZCV NZCVUsedAfterCmp;
1625   for (MachineInstr &Instr : instructionsWithoutDebug(
1626            std::next(CmpInstr.getIterator()), CmpParent->instr_end())) {
1627     if (Instr.readsRegister(AArch64::NZCV, &TRI)) {
1628       AArch64CC::CondCode CC = findCondCodeUsedByInstr(Instr);
1629       if (CC == AArch64CC::Invalid) // Unsupported conditional instruction
1630         return None;
1631       NZCVUsedAfterCmp |= getUsedNZCV(CC);
1632       if (CCUseInstrs)
1633         CCUseInstrs->push_back(&Instr);
1634     }
1635     if (Instr.modifiesRegister(AArch64::NZCV, &TRI))
1636       break;
1637   }
1638   return NZCVUsedAfterCmp;
1639 }
1640 
1641 static bool isADDSRegImm(unsigned Opcode) {
1642   return Opcode == AArch64::ADDSWri || Opcode == AArch64::ADDSXri;
1643 }
1644 
1645 static bool isSUBSRegImm(unsigned Opcode) {
1646   return Opcode == AArch64::SUBSWri || Opcode == AArch64::SUBSXri;
1647 }
1648 
1649 /// Check if CmpInstr can be substituted by MI.
1650 ///
1651 /// CmpInstr can be substituted:
1652 /// - CmpInstr is either 'ADDS %vreg, 0' or 'SUBS %vreg, 0'
1653 /// - and, MI and CmpInstr are from the same MachineBB
1654 /// - and, condition flags are not alive in successors of the CmpInstr parent
1655 /// - and, if MI opcode is the S form there must be no defs of flags between
1656 ///        MI and CmpInstr
1657 ///        or if MI opcode is not the S form there must be neither defs of flags
1658 ///        nor uses of flags between MI and CmpInstr.
1659 /// - and  C/V flags are not used after CmpInstr
1660 static bool canInstrSubstituteCmpInstr(MachineInstr &MI, MachineInstr &CmpInstr,
1661                                        const TargetRegisterInfo &TRI) {
1662   assert(sForm(MI) != AArch64::INSTRUCTION_LIST_END);
1663 
1664   const unsigned CmpOpcode = CmpInstr.getOpcode();
1665   if (!isADDSRegImm(CmpOpcode) && !isSUBSRegImm(CmpOpcode))
1666     return false;
1667 
1668   Optional<UsedNZCV> NZVCUsed = examineCFlagsUse(MI, CmpInstr, TRI);
1669   if (!NZVCUsed || NZVCUsed->C || NZVCUsed->V)
1670     return false;
1671 
1672   AccessKind AccessToCheck = AK_Write;
1673   if (sForm(MI) != MI.getOpcode())
1674     AccessToCheck = AK_All;
1675   return !areCFlagsAccessedBetweenInstrs(&MI, &CmpInstr, &TRI, AccessToCheck);
1676 }
1677 
1678 /// Substitute an instruction comparing to zero with another instruction
1679 /// which produces needed condition flags.
1680 ///
1681 /// Return true on success.
1682 bool AArch64InstrInfo::substituteCmpToZero(
1683     MachineInstr &CmpInstr, unsigned SrcReg,
1684     const MachineRegisterInfo &MRI) const {
1685   // Get the unique definition of SrcReg.
1686   MachineInstr *MI = MRI.getUniqueVRegDef(SrcReg);
1687   if (!MI)
1688     return false;
1689 
1690   const TargetRegisterInfo &TRI = getRegisterInfo();
1691 
1692   unsigned NewOpc = sForm(*MI);
1693   if (NewOpc == AArch64::INSTRUCTION_LIST_END)
1694     return false;
1695 
1696   if (!canInstrSubstituteCmpInstr(*MI, CmpInstr, TRI))
1697     return false;
1698 
1699   // Update the instruction to set NZCV.
1700   MI->setDesc(get(NewOpc));
1701   CmpInstr.eraseFromParent();
1702   bool succeeded = UpdateOperandRegClass(*MI);
1703   (void)succeeded;
1704   assert(succeeded && "Some operands reg class are incompatible!");
1705   MI->addRegisterDefined(AArch64::NZCV, &TRI);
1706   return true;
1707 }
1708 
1709 /// \returns True if \p CmpInstr can be removed.
1710 ///
1711 /// \p IsInvertCC is true if, after removing \p CmpInstr, condition
1712 /// codes used in \p CCUseInstrs must be inverted.
1713 static bool canCmpInstrBeRemoved(MachineInstr &MI, MachineInstr &CmpInstr,
1714                                  int CmpValue, const TargetRegisterInfo &TRI,
1715                                  SmallVectorImpl<MachineInstr *> &CCUseInstrs,
1716                                  bool &IsInvertCC) {
1717   assert((CmpValue == 0 || CmpValue == 1) &&
1718          "Only comparisons to 0 or 1 considered for removal!");
1719 
1720   // MI is 'CSINCWr %vreg, wzr, wzr, <cc>' or 'CSINCXr %vreg, xzr, xzr, <cc>'
1721   unsigned MIOpc = MI.getOpcode();
1722   if (MIOpc == AArch64::CSINCWr) {
1723     if (MI.getOperand(1).getReg() != AArch64::WZR ||
1724         MI.getOperand(2).getReg() != AArch64::WZR)
1725       return false;
1726   } else if (MIOpc == AArch64::CSINCXr) {
1727     if (MI.getOperand(1).getReg() != AArch64::XZR ||
1728         MI.getOperand(2).getReg() != AArch64::XZR)
1729       return false;
1730   } else {
1731     return false;
1732   }
1733   AArch64CC::CondCode MICC = findCondCodeUsedByInstr(MI);
1734   if (MICC == AArch64CC::Invalid)
1735     return false;
1736 
1737   // NZCV needs to be defined
1738   if (MI.findRegisterDefOperandIdx(AArch64::NZCV, true) != -1)
1739     return false;
1740 
1741   // CmpInstr is 'ADDS %vreg, 0' or 'SUBS %vreg, 0' or 'SUBS %vreg, 1'
1742   const unsigned CmpOpcode = CmpInstr.getOpcode();
1743   bool IsSubsRegImm = isSUBSRegImm(CmpOpcode);
1744   if (CmpValue && !IsSubsRegImm)
1745     return false;
1746   if (!CmpValue && !IsSubsRegImm && !isADDSRegImm(CmpOpcode))
1747     return false;
1748 
1749   // MI conditions allowed: eq, ne, mi, pl
1750   UsedNZCV MIUsedNZCV = getUsedNZCV(MICC);
1751   if (MIUsedNZCV.C || MIUsedNZCV.V)
1752     return false;
1753 
1754   Optional<UsedNZCV> NZCVUsedAfterCmp =
1755       examineCFlagsUse(MI, CmpInstr, TRI, &CCUseInstrs);
1756   // Condition flags are not used in CmpInstr basic block successors and only
1757   // Z or N flags allowed to be used after CmpInstr within its basic block
1758   if (!NZCVUsedAfterCmp || NZCVUsedAfterCmp->C || NZCVUsedAfterCmp->V)
1759     return false;
1760   // Z or N flag used after CmpInstr must correspond to the flag used in MI
1761   if ((MIUsedNZCV.Z && NZCVUsedAfterCmp->N) ||
1762       (MIUsedNZCV.N && NZCVUsedAfterCmp->Z))
1763     return false;
1764   // If CmpInstr is comparison to zero MI conditions are limited to eq, ne
1765   if (MIUsedNZCV.N && !CmpValue)
1766     return false;
1767 
1768   // There must be no defs of flags between MI and CmpInstr
1769   if (areCFlagsAccessedBetweenInstrs(&MI, &CmpInstr, &TRI, AK_Write))
1770     return false;
1771 
1772   // Condition code is inverted in the following cases:
1773   // 1. MI condition is ne; CmpInstr is 'ADDS %vreg, 0' or 'SUBS %vreg, 0'
1774   // 2. MI condition is eq, pl; CmpInstr is 'SUBS %vreg, 1'
1775   IsInvertCC = (CmpValue && (MICC == AArch64CC::EQ || MICC == AArch64CC::PL)) ||
1776                (!CmpValue && MICC == AArch64CC::NE);
1777   return true;
1778 }
1779 
1780 /// Remove comparision in csinc-cmp sequence
1781 ///
1782 /// Examples:
1783 /// 1. \code
1784 ///   csinc w9, wzr, wzr, ne
1785 ///   cmp   w9, #0
1786 ///   b.eq
1787 ///    \endcode
1788 /// to
1789 ///    \code
1790 ///   csinc w9, wzr, wzr, ne
1791 ///   b.ne
1792 ///    \endcode
1793 ///
1794 /// 2. \code
1795 ///   csinc x2, xzr, xzr, mi
1796 ///   cmp   x2, #1
1797 ///   b.pl
1798 ///    \endcode
1799 /// to
1800 ///    \code
1801 ///   csinc x2, xzr, xzr, mi
1802 ///   b.pl
1803 ///    \endcode
1804 ///
1805 /// \param  CmpInstr comparison instruction
1806 /// \return True when comparison removed
1807 bool AArch64InstrInfo::removeCmpToZeroOrOne(
1808     MachineInstr &CmpInstr, unsigned SrcReg, int CmpValue,
1809     const MachineRegisterInfo &MRI) const {
1810   MachineInstr *MI = MRI.getUniqueVRegDef(SrcReg);
1811   if (!MI)
1812     return false;
1813   const TargetRegisterInfo &TRI = getRegisterInfo();
1814   SmallVector<MachineInstr *, 4> CCUseInstrs;
1815   bool IsInvertCC = false;
1816   if (!canCmpInstrBeRemoved(*MI, CmpInstr, CmpValue, TRI, CCUseInstrs,
1817                             IsInvertCC))
1818     return false;
1819   // Make transformation
1820   CmpInstr.eraseFromParent();
1821   if (IsInvertCC) {
1822     // Invert condition codes in CmpInstr CC users
1823     for (MachineInstr *CCUseInstr : CCUseInstrs) {
1824       int Idx = findCondCodeUseOperandIdxForBranchOrSelect(*CCUseInstr);
1825       assert(Idx >= 0 && "Unexpected instruction using CC.");
1826       MachineOperand &CCOperand = CCUseInstr->getOperand(Idx);
1827       AArch64CC::CondCode CCUse = AArch64CC::getInvertedCondCode(
1828           static_cast<AArch64CC::CondCode>(CCOperand.getImm()));
1829       CCOperand.setImm(CCUse);
1830     }
1831   }
1832   return true;
1833 }
1834 
1835 bool AArch64InstrInfo::expandPostRAPseudo(MachineInstr &MI) const {
1836   if (MI.getOpcode() != TargetOpcode::LOAD_STACK_GUARD &&
1837       MI.getOpcode() != AArch64::CATCHRET)
1838     return false;
1839 
1840   MachineBasicBlock &MBB = *MI.getParent();
1841   auto &Subtarget = MBB.getParent()->getSubtarget<AArch64Subtarget>();
1842   auto TRI = Subtarget.getRegisterInfo();
1843   DebugLoc DL = MI.getDebugLoc();
1844 
1845   if (MI.getOpcode() == AArch64::CATCHRET) {
1846     // Skip to the first instruction before the epilog.
1847     const TargetInstrInfo *TII =
1848       MBB.getParent()->getSubtarget().getInstrInfo();
1849     MachineBasicBlock *TargetMBB = MI.getOperand(0).getMBB();
1850     auto MBBI = MachineBasicBlock::iterator(MI);
1851     MachineBasicBlock::iterator FirstEpilogSEH = std::prev(MBBI);
1852     while (FirstEpilogSEH->getFlag(MachineInstr::FrameDestroy) &&
1853            FirstEpilogSEH != MBB.begin())
1854       FirstEpilogSEH = std::prev(FirstEpilogSEH);
1855     if (FirstEpilogSEH != MBB.begin())
1856       FirstEpilogSEH = std::next(FirstEpilogSEH);
1857     BuildMI(MBB, FirstEpilogSEH, DL, TII->get(AArch64::ADRP))
1858         .addReg(AArch64::X0, RegState::Define)
1859         .addMBB(TargetMBB);
1860     BuildMI(MBB, FirstEpilogSEH, DL, TII->get(AArch64::ADDXri))
1861         .addReg(AArch64::X0, RegState::Define)
1862         .addReg(AArch64::X0)
1863         .addMBB(TargetMBB)
1864         .addImm(0);
1865     return true;
1866   }
1867 
1868   Register Reg = MI.getOperand(0).getReg();
1869   Module &M = *MBB.getParent()->getFunction().getParent();
1870   if (M.getStackProtectorGuard() == "sysreg") {
1871     const AArch64SysReg::SysReg *SrcReg =
1872         AArch64SysReg::lookupSysRegByName(M.getStackProtectorGuardReg());
1873     if (!SrcReg)
1874       report_fatal_error("Unknown SysReg for Stack Protector Guard Register");
1875 
1876     // mrs xN, sysreg
1877     BuildMI(MBB, MI, DL, get(AArch64::MRS))
1878         .addDef(Reg, RegState::Renamable)
1879         .addImm(SrcReg->Encoding);
1880     int Offset = M.getStackProtectorGuardOffset();
1881     if (Offset >= 0 && Offset <= 32760 && Offset % 8 == 0) {
1882       // ldr xN, [xN, #offset]
1883       BuildMI(MBB, MI, DL, get(AArch64::LDRXui))
1884           .addDef(Reg)
1885           .addUse(Reg, RegState::Kill)
1886           .addImm(Offset / 8);
1887     } else if (Offset >= -256 && Offset <= 255) {
1888       // ldur xN, [xN, #offset]
1889       BuildMI(MBB, MI, DL, get(AArch64::LDURXi))
1890           .addDef(Reg)
1891           .addUse(Reg, RegState::Kill)
1892           .addImm(Offset);
1893     } else if (Offset >= -4095 && Offset <= 4095) {
1894       if (Offset > 0) {
1895         // add xN, xN, #offset
1896         BuildMI(MBB, MI, DL, get(AArch64::ADDXri))
1897             .addDef(Reg)
1898             .addUse(Reg, RegState::Kill)
1899             .addImm(Offset)
1900             .addImm(0);
1901       } else {
1902         // sub xN, xN, #offset
1903         BuildMI(MBB, MI, DL, get(AArch64::SUBXri))
1904             .addDef(Reg)
1905             .addUse(Reg, RegState::Kill)
1906             .addImm(-Offset)
1907             .addImm(0);
1908       }
1909       // ldr xN, [xN]
1910       BuildMI(MBB, MI, DL, get(AArch64::LDRXui))
1911           .addDef(Reg)
1912           .addUse(Reg, RegState::Kill)
1913           .addImm(0);
1914     } else {
1915       // Cases that are larger than +/- 4095 and not a multiple of 8, or larger
1916       // than 23760.
1917       // It might be nice to use AArch64::MOVi32imm here, which would get
1918       // expanded in PreSched2 after PostRA, but our lone scratch Reg already
1919       // contains the MRS result. findScratchNonCalleeSaveRegister() in
1920       // AArch64FrameLowering might help us find such a scratch register
1921       // though. If we failed to find a scratch register, we could emit a
1922       // stream of add instructions to build up the immediate. Or, we could try
1923       // to insert a AArch64::MOVi32imm before register allocation so that we
1924       // didn't need to scavenge for a scratch register.
1925       report_fatal_error("Unable to encode Stack Protector Guard Offset");
1926     }
1927     MBB.erase(MI);
1928     return true;
1929   }
1930 
1931   const GlobalValue *GV =
1932       cast<GlobalValue>((*MI.memoperands_begin())->getValue());
1933   const TargetMachine &TM = MBB.getParent()->getTarget();
1934   unsigned OpFlags = Subtarget.ClassifyGlobalReference(GV, TM);
1935   const unsigned char MO_NC = AArch64II::MO_NC;
1936 
1937   if ((OpFlags & AArch64II::MO_GOT) != 0) {
1938     BuildMI(MBB, MI, DL, get(AArch64::LOADgot), Reg)
1939         .addGlobalAddress(GV, 0, OpFlags);
1940     if (Subtarget.isTargetILP32()) {
1941       unsigned Reg32 = TRI->getSubReg(Reg, AArch64::sub_32);
1942       BuildMI(MBB, MI, DL, get(AArch64::LDRWui))
1943           .addDef(Reg32, RegState::Dead)
1944           .addUse(Reg, RegState::Kill)
1945           .addImm(0)
1946           .addMemOperand(*MI.memoperands_begin())
1947           .addDef(Reg, RegState::Implicit);
1948     } else {
1949       BuildMI(MBB, MI, DL, get(AArch64::LDRXui), Reg)
1950           .addReg(Reg, RegState::Kill)
1951           .addImm(0)
1952           .addMemOperand(*MI.memoperands_begin());
1953     }
1954   } else if (TM.getCodeModel() == CodeModel::Large) {
1955     assert(!Subtarget.isTargetILP32() && "how can large exist in ILP32?");
1956     BuildMI(MBB, MI, DL, get(AArch64::MOVZXi), Reg)
1957         .addGlobalAddress(GV, 0, AArch64II::MO_G0 | MO_NC)
1958         .addImm(0);
1959     BuildMI(MBB, MI, DL, get(AArch64::MOVKXi), Reg)
1960         .addReg(Reg, RegState::Kill)
1961         .addGlobalAddress(GV, 0, AArch64II::MO_G1 | MO_NC)
1962         .addImm(16);
1963     BuildMI(MBB, MI, DL, get(AArch64::MOVKXi), Reg)
1964         .addReg(Reg, RegState::Kill)
1965         .addGlobalAddress(GV, 0, AArch64II::MO_G2 | MO_NC)
1966         .addImm(32);
1967     BuildMI(MBB, MI, DL, get(AArch64::MOVKXi), Reg)
1968         .addReg(Reg, RegState::Kill)
1969         .addGlobalAddress(GV, 0, AArch64II::MO_G3)
1970         .addImm(48);
1971     BuildMI(MBB, MI, DL, get(AArch64::LDRXui), Reg)
1972         .addReg(Reg, RegState::Kill)
1973         .addImm(0)
1974         .addMemOperand(*MI.memoperands_begin());
1975   } else if (TM.getCodeModel() == CodeModel::Tiny) {
1976     BuildMI(MBB, MI, DL, get(AArch64::ADR), Reg)
1977         .addGlobalAddress(GV, 0, OpFlags);
1978   } else {
1979     BuildMI(MBB, MI, DL, get(AArch64::ADRP), Reg)
1980         .addGlobalAddress(GV, 0, OpFlags | AArch64II::MO_PAGE);
1981     unsigned char LoFlags = OpFlags | AArch64II::MO_PAGEOFF | MO_NC;
1982     if (Subtarget.isTargetILP32()) {
1983       unsigned Reg32 = TRI->getSubReg(Reg, AArch64::sub_32);
1984       BuildMI(MBB, MI, DL, get(AArch64::LDRWui))
1985           .addDef(Reg32, RegState::Dead)
1986           .addUse(Reg, RegState::Kill)
1987           .addGlobalAddress(GV, 0, LoFlags)
1988           .addMemOperand(*MI.memoperands_begin())
1989           .addDef(Reg, RegState::Implicit);
1990     } else {
1991       BuildMI(MBB, MI, DL, get(AArch64::LDRXui), Reg)
1992           .addReg(Reg, RegState::Kill)
1993           .addGlobalAddress(GV, 0, LoFlags)
1994           .addMemOperand(*MI.memoperands_begin());
1995     }
1996   }
1997 
1998   MBB.erase(MI);
1999 
2000   return true;
2001 }
2002 
2003 // Return true if this instruction simply sets its single destination register
2004 // to zero. This is equivalent to a register rename of the zero-register.
2005 bool AArch64InstrInfo::isGPRZero(const MachineInstr &MI) {
2006   switch (MI.getOpcode()) {
2007   default:
2008     break;
2009   case AArch64::MOVZWi:
2010   case AArch64::MOVZXi: // movz Rd, #0 (LSL #0)
2011     if (MI.getOperand(1).isImm() && MI.getOperand(1).getImm() == 0) {
2012       assert(MI.getDesc().getNumOperands() == 3 &&
2013              MI.getOperand(2).getImm() == 0 && "invalid MOVZi operands");
2014       return true;
2015     }
2016     break;
2017   case AArch64::ANDWri: // and Rd, Rzr, #imm
2018     return MI.getOperand(1).getReg() == AArch64::WZR;
2019   case AArch64::ANDXri:
2020     return MI.getOperand(1).getReg() == AArch64::XZR;
2021   case TargetOpcode::COPY:
2022     return MI.getOperand(1).getReg() == AArch64::WZR;
2023   }
2024   return false;
2025 }
2026 
2027 // Return true if this instruction simply renames a general register without
2028 // modifying bits.
2029 bool AArch64InstrInfo::isGPRCopy(const MachineInstr &MI) {
2030   switch (MI.getOpcode()) {
2031   default:
2032     break;
2033   case TargetOpcode::COPY: {
2034     // GPR32 copies will by lowered to ORRXrs
2035     Register DstReg = MI.getOperand(0).getReg();
2036     return (AArch64::GPR32RegClass.contains(DstReg) ||
2037             AArch64::GPR64RegClass.contains(DstReg));
2038   }
2039   case AArch64::ORRXrs: // orr Xd, Xzr, Xm (LSL #0)
2040     if (MI.getOperand(1).getReg() == AArch64::XZR) {
2041       assert(MI.getDesc().getNumOperands() == 4 &&
2042              MI.getOperand(3).getImm() == 0 && "invalid ORRrs operands");
2043       return true;
2044     }
2045     break;
2046   case AArch64::ADDXri: // add Xd, Xn, #0 (LSL #0)
2047     if (MI.getOperand(2).getImm() == 0) {
2048       assert(MI.getDesc().getNumOperands() == 4 &&
2049              MI.getOperand(3).getImm() == 0 && "invalid ADDXri operands");
2050       return true;
2051     }
2052     break;
2053   }
2054   return false;
2055 }
2056 
2057 // Return true if this instruction simply renames a general register without
2058 // modifying bits.
2059 bool AArch64InstrInfo::isFPRCopy(const MachineInstr &MI) {
2060   switch (MI.getOpcode()) {
2061   default:
2062     break;
2063   case TargetOpcode::COPY: {
2064     Register DstReg = MI.getOperand(0).getReg();
2065     return AArch64::FPR128RegClass.contains(DstReg);
2066   }
2067   case AArch64::ORRv16i8:
2068     if (MI.getOperand(1).getReg() == MI.getOperand(2).getReg()) {
2069       assert(MI.getDesc().getNumOperands() == 3 && MI.getOperand(0).isReg() &&
2070              "invalid ORRv16i8 operands");
2071       return true;
2072     }
2073     break;
2074   }
2075   return false;
2076 }
2077 
2078 unsigned AArch64InstrInfo::isLoadFromStackSlot(const MachineInstr &MI,
2079                                                int &FrameIndex) const {
2080   switch (MI.getOpcode()) {
2081   default:
2082     break;
2083   case AArch64::LDRWui:
2084   case AArch64::LDRXui:
2085   case AArch64::LDRBui:
2086   case AArch64::LDRHui:
2087   case AArch64::LDRSui:
2088   case AArch64::LDRDui:
2089   case AArch64::LDRQui:
2090     if (MI.getOperand(0).getSubReg() == 0 && MI.getOperand(1).isFI() &&
2091         MI.getOperand(2).isImm() && MI.getOperand(2).getImm() == 0) {
2092       FrameIndex = MI.getOperand(1).getIndex();
2093       return MI.getOperand(0).getReg();
2094     }
2095     break;
2096   }
2097 
2098   return 0;
2099 }
2100 
2101 unsigned AArch64InstrInfo::isStoreToStackSlot(const MachineInstr &MI,
2102                                               int &FrameIndex) const {
2103   switch (MI.getOpcode()) {
2104   default:
2105     break;
2106   case AArch64::STRWui:
2107   case AArch64::STRXui:
2108   case AArch64::STRBui:
2109   case AArch64::STRHui:
2110   case AArch64::STRSui:
2111   case AArch64::STRDui:
2112   case AArch64::STRQui:
2113   case AArch64::LDR_PXI:
2114   case AArch64::STR_PXI:
2115     if (MI.getOperand(0).getSubReg() == 0 && MI.getOperand(1).isFI() &&
2116         MI.getOperand(2).isImm() && MI.getOperand(2).getImm() == 0) {
2117       FrameIndex = MI.getOperand(1).getIndex();
2118       return MI.getOperand(0).getReg();
2119     }
2120     break;
2121   }
2122   return 0;
2123 }
2124 
2125 /// Check all MachineMemOperands for a hint to suppress pairing.
2126 bool AArch64InstrInfo::isLdStPairSuppressed(const MachineInstr &MI) {
2127   return llvm::any_of(MI.memoperands(), [](MachineMemOperand *MMO) {
2128     return MMO->getFlags() & MOSuppressPair;
2129   });
2130 }
2131 
2132 /// Set a flag on the first MachineMemOperand to suppress pairing.
2133 void AArch64InstrInfo::suppressLdStPair(MachineInstr &MI) {
2134   if (MI.memoperands_empty())
2135     return;
2136   (*MI.memoperands_begin())->setFlags(MOSuppressPair);
2137 }
2138 
2139 /// Check all MachineMemOperands for a hint that the load/store is strided.
2140 bool AArch64InstrInfo::isStridedAccess(const MachineInstr &MI) {
2141   return llvm::any_of(MI.memoperands(), [](MachineMemOperand *MMO) {
2142     return MMO->getFlags() & MOStridedAccess;
2143   });
2144 }
2145 
2146 bool AArch64InstrInfo::hasUnscaledLdStOffset(unsigned Opc) {
2147   switch (Opc) {
2148   default:
2149     return false;
2150   case AArch64::STURSi:
2151   case AArch64::STRSpre:
2152   case AArch64::STURDi:
2153   case AArch64::STRDpre:
2154   case AArch64::STURQi:
2155   case AArch64::STRQpre:
2156   case AArch64::STURBBi:
2157   case AArch64::STURHHi:
2158   case AArch64::STURWi:
2159   case AArch64::STRWpre:
2160   case AArch64::STURXi:
2161   case AArch64::STRXpre:
2162   case AArch64::LDURSi:
2163   case AArch64::LDRSpre:
2164   case AArch64::LDURDi:
2165   case AArch64::LDRDpre:
2166   case AArch64::LDURQi:
2167   case AArch64::LDRQpre:
2168   case AArch64::LDURWi:
2169   case AArch64::LDRWpre:
2170   case AArch64::LDURXi:
2171   case AArch64::LDRXpre:
2172   case AArch64::LDURSWi:
2173   case AArch64::LDURHHi:
2174   case AArch64::LDURBBi:
2175   case AArch64::LDURSBWi:
2176   case AArch64::LDURSHWi:
2177     return true;
2178   }
2179 }
2180 
2181 Optional<unsigned> AArch64InstrInfo::getUnscaledLdSt(unsigned Opc) {
2182   switch (Opc) {
2183   default: return {};
2184   case AArch64::PRFMui: return AArch64::PRFUMi;
2185   case AArch64::LDRXui: return AArch64::LDURXi;
2186   case AArch64::LDRWui: return AArch64::LDURWi;
2187   case AArch64::LDRBui: return AArch64::LDURBi;
2188   case AArch64::LDRHui: return AArch64::LDURHi;
2189   case AArch64::LDRSui: return AArch64::LDURSi;
2190   case AArch64::LDRDui: return AArch64::LDURDi;
2191   case AArch64::LDRQui: return AArch64::LDURQi;
2192   case AArch64::LDRBBui: return AArch64::LDURBBi;
2193   case AArch64::LDRHHui: return AArch64::LDURHHi;
2194   case AArch64::LDRSBXui: return AArch64::LDURSBXi;
2195   case AArch64::LDRSBWui: return AArch64::LDURSBWi;
2196   case AArch64::LDRSHXui: return AArch64::LDURSHXi;
2197   case AArch64::LDRSHWui: return AArch64::LDURSHWi;
2198   case AArch64::LDRSWui: return AArch64::LDURSWi;
2199   case AArch64::STRXui: return AArch64::STURXi;
2200   case AArch64::STRWui: return AArch64::STURWi;
2201   case AArch64::STRBui: return AArch64::STURBi;
2202   case AArch64::STRHui: return AArch64::STURHi;
2203   case AArch64::STRSui: return AArch64::STURSi;
2204   case AArch64::STRDui: return AArch64::STURDi;
2205   case AArch64::STRQui: return AArch64::STURQi;
2206   case AArch64::STRBBui: return AArch64::STURBBi;
2207   case AArch64::STRHHui: return AArch64::STURHHi;
2208   }
2209 }
2210 
2211 unsigned AArch64InstrInfo::getLoadStoreImmIdx(unsigned Opc) {
2212   switch (Opc) {
2213   default:
2214     return 2;
2215   case AArch64::LDPXi:
2216   case AArch64::LDPDi:
2217   case AArch64::STPXi:
2218   case AArch64::STPDi:
2219   case AArch64::LDNPXi:
2220   case AArch64::LDNPDi:
2221   case AArch64::STNPXi:
2222   case AArch64::STNPDi:
2223   case AArch64::LDPQi:
2224   case AArch64::STPQi:
2225   case AArch64::LDNPQi:
2226   case AArch64::STNPQi:
2227   case AArch64::LDPWi:
2228   case AArch64::LDPSi:
2229   case AArch64::STPWi:
2230   case AArch64::STPSi:
2231   case AArch64::LDNPWi:
2232   case AArch64::LDNPSi:
2233   case AArch64::STNPWi:
2234   case AArch64::STNPSi:
2235   case AArch64::LDG:
2236   case AArch64::STGPi:
2237 
2238   case AArch64::LD1B_IMM:
2239   case AArch64::LD1B_H_IMM:
2240   case AArch64::LD1B_S_IMM:
2241   case AArch64::LD1B_D_IMM:
2242   case AArch64::LD1SB_H_IMM:
2243   case AArch64::LD1SB_S_IMM:
2244   case AArch64::LD1SB_D_IMM:
2245   case AArch64::LD1H_IMM:
2246   case AArch64::LD1H_S_IMM:
2247   case AArch64::LD1H_D_IMM:
2248   case AArch64::LD1SH_S_IMM:
2249   case AArch64::LD1SH_D_IMM:
2250   case AArch64::LD1W_IMM:
2251   case AArch64::LD1W_D_IMM:
2252   case AArch64::LD1SW_D_IMM:
2253   case AArch64::LD1D_IMM:
2254 
2255   case AArch64::LD2B_IMM:
2256   case AArch64::LD2H_IMM:
2257   case AArch64::LD2W_IMM:
2258   case AArch64::LD2D_IMM:
2259   case AArch64::LD3B_IMM:
2260   case AArch64::LD3H_IMM:
2261   case AArch64::LD3W_IMM:
2262   case AArch64::LD3D_IMM:
2263   case AArch64::LD4B_IMM:
2264   case AArch64::LD4H_IMM:
2265   case AArch64::LD4W_IMM:
2266   case AArch64::LD4D_IMM:
2267 
2268   case AArch64::ST1B_IMM:
2269   case AArch64::ST1B_H_IMM:
2270   case AArch64::ST1B_S_IMM:
2271   case AArch64::ST1B_D_IMM:
2272   case AArch64::ST1H_IMM:
2273   case AArch64::ST1H_S_IMM:
2274   case AArch64::ST1H_D_IMM:
2275   case AArch64::ST1W_IMM:
2276   case AArch64::ST1W_D_IMM:
2277   case AArch64::ST1D_IMM:
2278 
2279   case AArch64::ST2B_IMM:
2280   case AArch64::ST2H_IMM:
2281   case AArch64::ST2W_IMM:
2282   case AArch64::ST2D_IMM:
2283   case AArch64::ST3B_IMM:
2284   case AArch64::ST3H_IMM:
2285   case AArch64::ST3W_IMM:
2286   case AArch64::ST3D_IMM:
2287   case AArch64::ST4B_IMM:
2288   case AArch64::ST4H_IMM:
2289   case AArch64::ST4W_IMM:
2290   case AArch64::ST4D_IMM:
2291 
2292   case AArch64::LD1RB_IMM:
2293   case AArch64::LD1RB_H_IMM:
2294   case AArch64::LD1RB_S_IMM:
2295   case AArch64::LD1RB_D_IMM:
2296   case AArch64::LD1RSB_H_IMM:
2297   case AArch64::LD1RSB_S_IMM:
2298   case AArch64::LD1RSB_D_IMM:
2299   case AArch64::LD1RH_IMM:
2300   case AArch64::LD1RH_S_IMM:
2301   case AArch64::LD1RH_D_IMM:
2302   case AArch64::LD1RSH_S_IMM:
2303   case AArch64::LD1RSH_D_IMM:
2304   case AArch64::LD1RW_IMM:
2305   case AArch64::LD1RW_D_IMM:
2306   case AArch64::LD1RSW_IMM:
2307   case AArch64::LD1RD_IMM:
2308 
2309   case AArch64::LDNT1B_ZRI:
2310   case AArch64::LDNT1H_ZRI:
2311   case AArch64::LDNT1W_ZRI:
2312   case AArch64::LDNT1D_ZRI:
2313   case AArch64::STNT1B_ZRI:
2314   case AArch64::STNT1H_ZRI:
2315   case AArch64::STNT1W_ZRI:
2316   case AArch64::STNT1D_ZRI:
2317 
2318   case AArch64::LDNF1B_IMM:
2319   case AArch64::LDNF1B_H_IMM:
2320   case AArch64::LDNF1B_S_IMM:
2321   case AArch64::LDNF1B_D_IMM:
2322   case AArch64::LDNF1SB_H_IMM:
2323   case AArch64::LDNF1SB_S_IMM:
2324   case AArch64::LDNF1SB_D_IMM:
2325   case AArch64::LDNF1H_IMM:
2326   case AArch64::LDNF1H_S_IMM:
2327   case AArch64::LDNF1H_D_IMM:
2328   case AArch64::LDNF1SH_S_IMM:
2329   case AArch64::LDNF1SH_D_IMM:
2330   case AArch64::LDNF1W_IMM:
2331   case AArch64::LDNF1W_D_IMM:
2332   case AArch64::LDNF1SW_D_IMM:
2333   case AArch64::LDNF1D_IMM:
2334     return 3;
2335   case AArch64::ADDG:
2336   case AArch64::STGOffset:
2337   case AArch64::LDR_PXI:
2338   case AArch64::STR_PXI:
2339     return 2;
2340   }
2341 }
2342 
2343 bool AArch64InstrInfo::isPairableLdStInst(const MachineInstr &MI) {
2344   switch (MI.getOpcode()) {
2345   default:
2346     return false;
2347   // Scaled instructions.
2348   case AArch64::STRSui:
2349   case AArch64::STRDui:
2350   case AArch64::STRQui:
2351   case AArch64::STRXui:
2352   case AArch64::STRWui:
2353   case AArch64::LDRSui:
2354   case AArch64::LDRDui:
2355   case AArch64::LDRQui:
2356   case AArch64::LDRXui:
2357   case AArch64::LDRWui:
2358   case AArch64::LDRSWui:
2359   // Unscaled instructions.
2360   case AArch64::STURSi:
2361   case AArch64::STRSpre:
2362   case AArch64::STURDi:
2363   case AArch64::STRDpre:
2364   case AArch64::STURQi:
2365   case AArch64::STRQpre:
2366   case AArch64::STURWi:
2367   case AArch64::STRWpre:
2368   case AArch64::STURXi:
2369   case AArch64::STRXpre:
2370   case AArch64::LDURSi:
2371   case AArch64::LDRSpre:
2372   case AArch64::LDURDi:
2373   case AArch64::LDRDpre:
2374   case AArch64::LDURQi:
2375   case AArch64::LDRQpre:
2376   case AArch64::LDURWi:
2377   case AArch64::LDRWpre:
2378   case AArch64::LDURXi:
2379   case AArch64::LDRXpre:
2380   case AArch64::LDURSWi:
2381     return true;
2382   }
2383 }
2384 
2385 unsigned AArch64InstrInfo::convertToFlagSettingOpc(unsigned Opc,
2386                                                    bool &Is64Bit) {
2387   switch (Opc) {
2388   default:
2389     llvm_unreachable("Opcode has no flag setting equivalent!");
2390   // 32-bit cases:
2391   case AArch64::ADDWri:
2392     Is64Bit = false;
2393     return AArch64::ADDSWri;
2394   case AArch64::ADDWrr:
2395     Is64Bit = false;
2396     return AArch64::ADDSWrr;
2397   case AArch64::ADDWrs:
2398     Is64Bit = false;
2399     return AArch64::ADDSWrs;
2400   case AArch64::ADDWrx:
2401     Is64Bit = false;
2402     return AArch64::ADDSWrx;
2403   case AArch64::ANDWri:
2404     Is64Bit = false;
2405     return AArch64::ANDSWri;
2406   case AArch64::ANDWrr:
2407     Is64Bit = false;
2408     return AArch64::ANDSWrr;
2409   case AArch64::ANDWrs:
2410     Is64Bit = false;
2411     return AArch64::ANDSWrs;
2412   case AArch64::BICWrr:
2413     Is64Bit = false;
2414     return AArch64::BICSWrr;
2415   case AArch64::BICWrs:
2416     Is64Bit = false;
2417     return AArch64::BICSWrs;
2418   case AArch64::SUBWri:
2419     Is64Bit = false;
2420     return AArch64::SUBSWri;
2421   case AArch64::SUBWrr:
2422     Is64Bit = false;
2423     return AArch64::SUBSWrr;
2424   case AArch64::SUBWrs:
2425     Is64Bit = false;
2426     return AArch64::SUBSWrs;
2427   case AArch64::SUBWrx:
2428     Is64Bit = false;
2429     return AArch64::SUBSWrx;
2430   // 64-bit cases:
2431   case AArch64::ADDXri:
2432     Is64Bit = true;
2433     return AArch64::ADDSXri;
2434   case AArch64::ADDXrr:
2435     Is64Bit = true;
2436     return AArch64::ADDSXrr;
2437   case AArch64::ADDXrs:
2438     Is64Bit = true;
2439     return AArch64::ADDSXrs;
2440   case AArch64::ADDXrx:
2441     Is64Bit = true;
2442     return AArch64::ADDSXrx;
2443   case AArch64::ANDXri:
2444     Is64Bit = true;
2445     return AArch64::ANDSXri;
2446   case AArch64::ANDXrr:
2447     Is64Bit = true;
2448     return AArch64::ANDSXrr;
2449   case AArch64::ANDXrs:
2450     Is64Bit = true;
2451     return AArch64::ANDSXrs;
2452   case AArch64::BICXrr:
2453     Is64Bit = true;
2454     return AArch64::BICSXrr;
2455   case AArch64::BICXrs:
2456     Is64Bit = true;
2457     return AArch64::BICSXrs;
2458   case AArch64::SUBXri:
2459     Is64Bit = true;
2460     return AArch64::SUBSXri;
2461   case AArch64::SUBXrr:
2462     Is64Bit = true;
2463     return AArch64::SUBSXrr;
2464   case AArch64::SUBXrs:
2465     Is64Bit = true;
2466     return AArch64::SUBSXrs;
2467   case AArch64::SUBXrx:
2468     Is64Bit = true;
2469     return AArch64::SUBSXrx;
2470   }
2471 }
2472 
2473 // Is this a candidate for ld/st merging or pairing?  For example, we don't
2474 // touch volatiles or load/stores that have a hint to avoid pair formation.
2475 bool AArch64InstrInfo::isCandidateToMergeOrPair(const MachineInstr &MI) const {
2476 
2477   bool IsPreLdSt = isPreLdSt(MI);
2478 
2479   // If this is a volatile load/store, don't mess with it.
2480   if (MI.hasOrderedMemoryRef())
2481     return false;
2482 
2483   // Make sure this is a reg/fi+imm (as opposed to an address reloc).
2484   // For Pre-inc LD/ST, the operand is shifted by one.
2485   assert((MI.getOperand(IsPreLdSt ? 2 : 1).isReg() ||
2486           MI.getOperand(IsPreLdSt ? 2 : 1).isFI()) &&
2487          "Expected a reg or frame index operand.");
2488 
2489   // For Pre-indexed addressing quadword instructions, the third operand is the
2490   // immediate value.
2491   bool IsImmPreLdSt = IsPreLdSt && MI.getOperand(3).isImm();
2492 
2493   if (!MI.getOperand(2).isImm() && !IsImmPreLdSt)
2494     return false;
2495 
2496   // Can't merge/pair if the instruction modifies the base register.
2497   // e.g., ldr x0, [x0]
2498   // This case will never occur with an FI base.
2499   // However, if the instruction is an LDR/STR<S,D,Q,W,X>pre, it can be merged.
2500   // For example:
2501   //   ldr q0, [x11, #32]!
2502   //   ldr q1, [x11, #16]
2503   //   to
2504   //   ldp q0, q1, [x11, #32]!
2505   if (MI.getOperand(1).isReg() && !IsPreLdSt) {
2506     Register BaseReg = MI.getOperand(1).getReg();
2507     const TargetRegisterInfo *TRI = &getRegisterInfo();
2508     if (MI.modifiesRegister(BaseReg, TRI))
2509       return false;
2510   }
2511 
2512   // Check if this load/store has a hint to avoid pair formation.
2513   // MachineMemOperands hints are set by the AArch64StorePairSuppress pass.
2514   if (isLdStPairSuppressed(MI))
2515     return false;
2516 
2517   // Do not pair any callee-save store/reload instructions in the
2518   // prologue/epilogue if the CFI information encoded the operations as separate
2519   // instructions, as that will cause the size of the actual prologue to mismatch
2520   // with the prologue size recorded in the Windows CFI.
2521   const MCAsmInfo *MAI = MI.getMF()->getTarget().getMCAsmInfo();
2522   bool NeedsWinCFI = MAI->usesWindowsCFI() &&
2523                      MI.getMF()->getFunction().needsUnwindTableEntry();
2524   if (NeedsWinCFI && (MI.getFlag(MachineInstr::FrameSetup) ||
2525                       MI.getFlag(MachineInstr::FrameDestroy)))
2526     return false;
2527 
2528   // On some CPUs quad load/store pairs are slower than two single load/stores.
2529   if (Subtarget.isPaired128Slow()) {
2530     switch (MI.getOpcode()) {
2531     default:
2532       break;
2533     case AArch64::LDURQi:
2534     case AArch64::STURQi:
2535     case AArch64::LDRQui:
2536     case AArch64::STRQui:
2537       return false;
2538     }
2539   }
2540 
2541   return true;
2542 }
2543 
2544 bool AArch64InstrInfo::getMemOperandsWithOffsetWidth(
2545     const MachineInstr &LdSt, SmallVectorImpl<const MachineOperand *> &BaseOps,
2546     int64_t &Offset, bool &OffsetIsScalable, unsigned &Width,
2547     const TargetRegisterInfo *TRI) const {
2548   if (!LdSt.mayLoadOrStore())
2549     return false;
2550 
2551   const MachineOperand *BaseOp;
2552   if (!getMemOperandWithOffsetWidth(LdSt, BaseOp, Offset, OffsetIsScalable,
2553                                     Width, TRI))
2554     return false;
2555   BaseOps.push_back(BaseOp);
2556   return true;
2557 }
2558 
2559 Optional<ExtAddrMode>
2560 AArch64InstrInfo::getAddrModeFromMemoryOp(const MachineInstr &MemI,
2561                                           const TargetRegisterInfo *TRI) const {
2562   const MachineOperand *Base; // Filled with the base operand of MI.
2563   int64_t Offset;             // Filled with the offset of MI.
2564   bool OffsetIsScalable;
2565   if (!getMemOperandWithOffset(MemI, Base, Offset, OffsetIsScalable, TRI))
2566     return None;
2567 
2568   if (!Base->isReg())
2569     return None;
2570   ExtAddrMode AM;
2571   AM.BaseReg = Base->getReg();
2572   AM.Displacement = Offset;
2573   AM.ScaledReg = 0;
2574   AM.Scale = 0;
2575   return AM;
2576 }
2577 
2578 bool AArch64InstrInfo::getMemOperandWithOffsetWidth(
2579     const MachineInstr &LdSt, const MachineOperand *&BaseOp, int64_t &Offset,
2580     bool &OffsetIsScalable, unsigned &Width,
2581     const TargetRegisterInfo *TRI) const {
2582   assert(LdSt.mayLoadOrStore() && "Expected a memory operation.");
2583   // Handle only loads/stores with base register followed by immediate offset.
2584   if (LdSt.getNumExplicitOperands() == 3) {
2585     // Non-paired instruction (e.g., ldr x1, [x0, #8]).
2586     if ((!LdSt.getOperand(1).isReg() && !LdSt.getOperand(1).isFI()) ||
2587         !LdSt.getOperand(2).isImm())
2588       return false;
2589   } else if (LdSt.getNumExplicitOperands() == 4) {
2590     // Paired instruction (e.g., ldp x1, x2, [x0, #8]).
2591     if (!LdSt.getOperand(1).isReg() ||
2592         (!LdSt.getOperand(2).isReg() && !LdSt.getOperand(2).isFI()) ||
2593         !LdSt.getOperand(3).isImm())
2594       return false;
2595   } else
2596     return false;
2597 
2598   // Get the scaling factor for the instruction and set the width for the
2599   // instruction.
2600   TypeSize Scale(0U, false);
2601   int64_t Dummy1, Dummy2;
2602 
2603   // If this returns false, then it's an instruction we don't want to handle.
2604   if (!getMemOpInfo(LdSt.getOpcode(), Scale, Width, Dummy1, Dummy2))
2605     return false;
2606 
2607   // Compute the offset. Offset is calculated as the immediate operand
2608   // multiplied by the scaling factor. Unscaled instructions have scaling factor
2609   // set to 1.
2610   if (LdSt.getNumExplicitOperands() == 3) {
2611     BaseOp = &LdSt.getOperand(1);
2612     Offset = LdSt.getOperand(2).getImm() * Scale.getKnownMinSize();
2613   } else {
2614     assert(LdSt.getNumExplicitOperands() == 4 && "invalid number of operands");
2615     BaseOp = &LdSt.getOperand(2);
2616     Offset = LdSt.getOperand(3).getImm() * Scale.getKnownMinSize();
2617   }
2618   OffsetIsScalable = Scale.isScalable();
2619 
2620   if (!BaseOp->isReg() && !BaseOp->isFI())
2621     return false;
2622 
2623   return true;
2624 }
2625 
2626 MachineOperand &
2627 AArch64InstrInfo::getMemOpBaseRegImmOfsOffsetOperand(MachineInstr &LdSt) const {
2628   assert(LdSt.mayLoadOrStore() && "Expected a memory operation.");
2629   MachineOperand &OfsOp = LdSt.getOperand(LdSt.getNumExplicitOperands() - 1);
2630   assert(OfsOp.isImm() && "Offset operand wasn't immediate.");
2631   return OfsOp;
2632 }
2633 
2634 bool AArch64InstrInfo::getMemOpInfo(unsigned Opcode, TypeSize &Scale,
2635                                     unsigned &Width, int64_t &MinOffset,
2636                                     int64_t &MaxOffset) {
2637   const unsigned SVEMaxBytesPerVector = AArch64::SVEMaxBitsPerVector / 8;
2638   switch (Opcode) {
2639   // Not a memory operation or something we want to handle.
2640   default:
2641     Scale = TypeSize::Fixed(0);
2642     Width = 0;
2643     MinOffset = MaxOffset = 0;
2644     return false;
2645   case AArch64::STRWpost:
2646   case AArch64::LDRWpost:
2647     Width = 32;
2648     Scale = TypeSize::Fixed(4);
2649     MinOffset = -256;
2650     MaxOffset = 255;
2651     break;
2652   case AArch64::LDURQi:
2653   case AArch64::STURQi:
2654     Width = 16;
2655     Scale = TypeSize::Fixed(1);
2656     MinOffset = -256;
2657     MaxOffset = 255;
2658     break;
2659   case AArch64::PRFUMi:
2660   case AArch64::LDURXi:
2661   case AArch64::LDURDi:
2662   case AArch64::STURXi:
2663   case AArch64::STURDi:
2664     Width = 8;
2665     Scale = TypeSize::Fixed(1);
2666     MinOffset = -256;
2667     MaxOffset = 255;
2668     break;
2669   case AArch64::LDURWi:
2670   case AArch64::LDURSi:
2671   case AArch64::LDURSWi:
2672   case AArch64::STURWi:
2673   case AArch64::STURSi:
2674     Width = 4;
2675     Scale = TypeSize::Fixed(1);
2676     MinOffset = -256;
2677     MaxOffset = 255;
2678     break;
2679   case AArch64::LDURHi:
2680   case AArch64::LDURHHi:
2681   case AArch64::LDURSHXi:
2682   case AArch64::LDURSHWi:
2683   case AArch64::STURHi:
2684   case AArch64::STURHHi:
2685     Width = 2;
2686     Scale = TypeSize::Fixed(1);
2687     MinOffset = -256;
2688     MaxOffset = 255;
2689     break;
2690   case AArch64::LDURBi:
2691   case AArch64::LDURBBi:
2692   case AArch64::LDURSBXi:
2693   case AArch64::LDURSBWi:
2694   case AArch64::STURBi:
2695   case AArch64::STURBBi:
2696     Width = 1;
2697     Scale = TypeSize::Fixed(1);
2698     MinOffset = -256;
2699     MaxOffset = 255;
2700     break;
2701   case AArch64::LDPQi:
2702   case AArch64::LDNPQi:
2703   case AArch64::STPQi:
2704   case AArch64::STNPQi:
2705     Scale = TypeSize::Fixed(16);
2706     Width = 32;
2707     MinOffset = -64;
2708     MaxOffset = 63;
2709     break;
2710   case AArch64::LDRQui:
2711   case AArch64::STRQui:
2712     Scale = TypeSize::Fixed(16);
2713     Width = 16;
2714     MinOffset = 0;
2715     MaxOffset = 4095;
2716     break;
2717   case AArch64::LDPXi:
2718   case AArch64::LDPDi:
2719   case AArch64::LDNPXi:
2720   case AArch64::LDNPDi:
2721   case AArch64::STPXi:
2722   case AArch64::STPDi:
2723   case AArch64::STNPXi:
2724   case AArch64::STNPDi:
2725     Scale = TypeSize::Fixed(8);
2726     Width = 16;
2727     MinOffset = -64;
2728     MaxOffset = 63;
2729     break;
2730   case AArch64::PRFMui:
2731   case AArch64::LDRXui:
2732   case AArch64::LDRDui:
2733   case AArch64::STRXui:
2734   case AArch64::STRDui:
2735     Scale = TypeSize::Fixed(8);
2736     Width = 8;
2737     MinOffset = 0;
2738     MaxOffset = 4095;
2739     break;
2740   case AArch64::StoreSwiftAsyncContext:
2741     // Store is an STRXui, but there might be an ADDXri in the expansion too.
2742     Scale = TypeSize::Fixed(1);
2743     Width = 8;
2744     MinOffset = 0;
2745     MaxOffset = 4095;
2746     break;
2747   case AArch64::LDPWi:
2748   case AArch64::LDPSi:
2749   case AArch64::LDNPWi:
2750   case AArch64::LDNPSi:
2751   case AArch64::STPWi:
2752   case AArch64::STPSi:
2753   case AArch64::STNPWi:
2754   case AArch64::STNPSi:
2755     Scale = TypeSize::Fixed(4);
2756     Width = 8;
2757     MinOffset = -64;
2758     MaxOffset = 63;
2759     break;
2760   case AArch64::LDRWui:
2761   case AArch64::LDRSui:
2762   case AArch64::LDRSWui:
2763   case AArch64::STRWui:
2764   case AArch64::STRSui:
2765     Scale = TypeSize::Fixed(4);
2766     Width = 4;
2767     MinOffset = 0;
2768     MaxOffset = 4095;
2769     break;
2770   case AArch64::LDRHui:
2771   case AArch64::LDRHHui:
2772   case AArch64::LDRSHWui:
2773   case AArch64::LDRSHXui:
2774   case AArch64::STRHui:
2775   case AArch64::STRHHui:
2776     Scale = TypeSize::Fixed(2);
2777     Width = 2;
2778     MinOffset = 0;
2779     MaxOffset = 4095;
2780     break;
2781   case AArch64::LDRBui:
2782   case AArch64::LDRBBui:
2783   case AArch64::LDRSBWui:
2784   case AArch64::LDRSBXui:
2785   case AArch64::STRBui:
2786   case AArch64::STRBBui:
2787     Scale = TypeSize::Fixed(1);
2788     Width = 1;
2789     MinOffset = 0;
2790     MaxOffset = 4095;
2791     break;
2792   case AArch64::STPXpre:
2793   case AArch64::LDPXpost:
2794   case AArch64::STPDpre:
2795   case AArch64::LDPDpost:
2796     Scale = TypeSize::Fixed(8);
2797     Width = 8;
2798     MinOffset = -512;
2799     MaxOffset = 504;
2800     break;
2801   case AArch64::STPQpre:
2802   case AArch64::LDPQpost:
2803     Scale = TypeSize::Fixed(16);
2804     Width = 16;
2805     MinOffset = -1024;
2806     MaxOffset = 1008;
2807     break;
2808   case AArch64::STRXpre:
2809   case AArch64::STRDpre:
2810   case AArch64::LDRXpost:
2811   case AArch64::LDRDpost:
2812     Scale = TypeSize::Fixed(1);
2813     Width = 8;
2814     MinOffset = -256;
2815     MaxOffset = 255;
2816     break;
2817   case AArch64::STRQpre:
2818   case AArch64::LDRQpost:
2819     Scale = TypeSize::Fixed(1);
2820     Width = 16;
2821     MinOffset = -256;
2822     MaxOffset = 255;
2823     break;
2824   case AArch64::ADDG:
2825     Scale = TypeSize::Fixed(16);
2826     Width = 0;
2827     MinOffset = 0;
2828     MaxOffset = 63;
2829     break;
2830   case AArch64::TAGPstack:
2831     Scale = TypeSize::Fixed(16);
2832     Width = 0;
2833     // TAGP with a negative offset turns into SUBP, which has a maximum offset
2834     // of 63 (not 64!).
2835     MinOffset = -63;
2836     MaxOffset = 63;
2837     break;
2838   case AArch64::LDG:
2839   case AArch64::STGOffset:
2840   case AArch64::STZGOffset:
2841     Scale = TypeSize::Fixed(16);
2842     Width = 16;
2843     MinOffset = -256;
2844     MaxOffset = 255;
2845     break;
2846   case AArch64::STR_ZZZZXI:
2847   case AArch64::LDR_ZZZZXI:
2848     Scale = TypeSize::Scalable(16);
2849     Width = SVEMaxBytesPerVector * 4;
2850     MinOffset = -256;
2851     MaxOffset = 252;
2852     break;
2853   case AArch64::STR_ZZZXI:
2854   case AArch64::LDR_ZZZXI:
2855     Scale = TypeSize::Scalable(16);
2856     Width = SVEMaxBytesPerVector * 3;
2857     MinOffset = -256;
2858     MaxOffset = 253;
2859     break;
2860   case AArch64::STR_ZZXI:
2861   case AArch64::LDR_ZZXI:
2862     Scale = TypeSize::Scalable(16);
2863     Width = SVEMaxBytesPerVector * 2;
2864     MinOffset = -256;
2865     MaxOffset = 254;
2866     break;
2867   case AArch64::LDR_PXI:
2868   case AArch64::STR_PXI:
2869     Scale = TypeSize::Scalable(2);
2870     Width = SVEMaxBytesPerVector / 8;
2871     MinOffset = -256;
2872     MaxOffset = 255;
2873     break;
2874   case AArch64::LDR_ZXI:
2875   case AArch64::STR_ZXI:
2876     Scale = TypeSize::Scalable(16);
2877     Width = SVEMaxBytesPerVector;
2878     MinOffset = -256;
2879     MaxOffset = 255;
2880     break;
2881   case AArch64::LD1B_IMM:
2882   case AArch64::LD1H_IMM:
2883   case AArch64::LD1W_IMM:
2884   case AArch64::LD1D_IMM:
2885   case AArch64::LDNT1B_ZRI:
2886   case AArch64::LDNT1H_ZRI:
2887   case AArch64::LDNT1W_ZRI:
2888   case AArch64::LDNT1D_ZRI:
2889   case AArch64::ST1B_IMM:
2890   case AArch64::ST1H_IMM:
2891   case AArch64::ST1W_IMM:
2892   case AArch64::ST1D_IMM:
2893   case AArch64::STNT1B_ZRI:
2894   case AArch64::STNT1H_ZRI:
2895   case AArch64::STNT1W_ZRI:
2896   case AArch64::STNT1D_ZRI:
2897   case AArch64::LDNF1B_IMM:
2898   case AArch64::LDNF1H_IMM:
2899   case AArch64::LDNF1W_IMM:
2900   case AArch64::LDNF1D_IMM:
2901     // A full vectors worth of data
2902     // Width = mbytes * elements
2903     Scale = TypeSize::Scalable(16);
2904     Width = SVEMaxBytesPerVector;
2905     MinOffset = -8;
2906     MaxOffset = 7;
2907     break;
2908   case AArch64::LD2B_IMM:
2909   case AArch64::LD2H_IMM:
2910   case AArch64::LD2W_IMM:
2911   case AArch64::LD2D_IMM:
2912   case AArch64::ST2B_IMM:
2913   case AArch64::ST2H_IMM:
2914   case AArch64::ST2W_IMM:
2915   case AArch64::ST2D_IMM:
2916     Scale = TypeSize::Scalable(32);
2917     Width = SVEMaxBytesPerVector * 2;
2918     MinOffset = -8;
2919     MaxOffset = 7;
2920     break;
2921   case AArch64::LD3B_IMM:
2922   case AArch64::LD3H_IMM:
2923   case AArch64::LD3W_IMM:
2924   case AArch64::LD3D_IMM:
2925   case AArch64::ST3B_IMM:
2926   case AArch64::ST3H_IMM:
2927   case AArch64::ST3W_IMM:
2928   case AArch64::ST3D_IMM:
2929     Scale = TypeSize::Scalable(48);
2930     Width = SVEMaxBytesPerVector * 3;
2931     MinOffset = -8;
2932     MaxOffset = 7;
2933     break;
2934   case AArch64::LD4B_IMM:
2935   case AArch64::LD4H_IMM:
2936   case AArch64::LD4W_IMM:
2937   case AArch64::LD4D_IMM:
2938   case AArch64::ST4B_IMM:
2939   case AArch64::ST4H_IMM:
2940   case AArch64::ST4W_IMM:
2941   case AArch64::ST4D_IMM:
2942     Scale = TypeSize::Scalable(64);
2943     Width = SVEMaxBytesPerVector * 4;
2944     MinOffset = -8;
2945     MaxOffset = 7;
2946     break;
2947   case AArch64::LD1B_H_IMM:
2948   case AArch64::LD1SB_H_IMM:
2949   case AArch64::LD1H_S_IMM:
2950   case AArch64::LD1SH_S_IMM:
2951   case AArch64::LD1W_D_IMM:
2952   case AArch64::LD1SW_D_IMM:
2953   case AArch64::ST1B_H_IMM:
2954   case AArch64::ST1H_S_IMM:
2955   case AArch64::ST1W_D_IMM:
2956   case AArch64::LDNF1B_H_IMM:
2957   case AArch64::LDNF1SB_H_IMM:
2958   case AArch64::LDNF1H_S_IMM:
2959   case AArch64::LDNF1SH_S_IMM:
2960   case AArch64::LDNF1W_D_IMM:
2961   case AArch64::LDNF1SW_D_IMM:
2962     // A half vector worth of data
2963     // Width = mbytes * elements
2964     Scale = TypeSize::Scalable(8);
2965     Width = SVEMaxBytesPerVector / 2;
2966     MinOffset = -8;
2967     MaxOffset = 7;
2968     break;
2969   case AArch64::LD1B_S_IMM:
2970   case AArch64::LD1SB_S_IMM:
2971   case AArch64::LD1H_D_IMM:
2972   case AArch64::LD1SH_D_IMM:
2973   case AArch64::ST1B_S_IMM:
2974   case AArch64::ST1H_D_IMM:
2975   case AArch64::LDNF1B_S_IMM:
2976   case AArch64::LDNF1SB_S_IMM:
2977   case AArch64::LDNF1H_D_IMM:
2978   case AArch64::LDNF1SH_D_IMM:
2979     // A quarter vector worth of data
2980     // Width = mbytes * elements
2981     Scale = TypeSize::Scalable(4);
2982     Width = SVEMaxBytesPerVector / 4;
2983     MinOffset = -8;
2984     MaxOffset = 7;
2985     break;
2986   case AArch64::LD1B_D_IMM:
2987   case AArch64::LD1SB_D_IMM:
2988   case AArch64::ST1B_D_IMM:
2989   case AArch64::LDNF1B_D_IMM:
2990   case AArch64::LDNF1SB_D_IMM:
2991     // A eighth vector worth of data
2992     // Width = mbytes * elements
2993     Scale = TypeSize::Scalable(2);
2994     Width = SVEMaxBytesPerVector / 8;
2995     MinOffset = -8;
2996     MaxOffset = 7;
2997     break;
2998   case AArch64::ST2GOffset:
2999   case AArch64::STZ2GOffset:
3000     Scale = TypeSize::Fixed(16);
3001     Width = 32;
3002     MinOffset = -256;
3003     MaxOffset = 255;
3004     break;
3005   case AArch64::STGPi:
3006     Scale = TypeSize::Fixed(16);
3007     Width = 16;
3008     MinOffset = -64;
3009     MaxOffset = 63;
3010     break;
3011   case AArch64::LD1RB_IMM:
3012   case AArch64::LD1RB_H_IMM:
3013   case AArch64::LD1RB_S_IMM:
3014   case AArch64::LD1RB_D_IMM:
3015   case AArch64::LD1RSB_H_IMM:
3016   case AArch64::LD1RSB_S_IMM:
3017   case AArch64::LD1RSB_D_IMM:
3018     Scale = TypeSize::Fixed(1);
3019     Width = 1;
3020     MinOffset = 0;
3021     MaxOffset = 63;
3022     break;
3023   case AArch64::LD1RH_IMM:
3024   case AArch64::LD1RH_S_IMM:
3025   case AArch64::LD1RH_D_IMM:
3026   case AArch64::LD1RSH_S_IMM:
3027   case AArch64::LD1RSH_D_IMM:
3028     Scale = TypeSize::Fixed(2);
3029     Width = 2;
3030     MinOffset = 0;
3031     MaxOffset = 63;
3032     break;
3033   case AArch64::LD1RW_IMM:
3034   case AArch64::LD1RW_D_IMM:
3035   case AArch64::LD1RSW_IMM:
3036     Scale = TypeSize::Fixed(4);
3037     Width = 4;
3038     MinOffset = 0;
3039     MaxOffset = 63;
3040     break;
3041   case AArch64::LD1RD_IMM:
3042     Scale = TypeSize::Fixed(8);
3043     Width = 8;
3044     MinOffset = 0;
3045     MaxOffset = 63;
3046     break;
3047   }
3048 
3049   return true;
3050 }
3051 
3052 // Scaling factor for unscaled load or store.
3053 int AArch64InstrInfo::getMemScale(unsigned Opc) {
3054   switch (Opc) {
3055   default:
3056     llvm_unreachable("Opcode has unknown scale!");
3057   case AArch64::LDRBBui:
3058   case AArch64::LDURBBi:
3059   case AArch64::LDRSBWui:
3060   case AArch64::LDURSBWi:
3061   case AArch64::STRBBui:
3062   case AArch64::STURBBi:
3063     return 1;
3064   case AArch64::LDRHHui:
3065   case AArch64::LDURHHi:
3066   case AArch64::LDRSHWui:
3067   case AArch64::LDURSHWi:
3068   case AArch64::STRHHui:
3069   case AArch64::STURHHi:
3070     return 2;
3071   case AArch64::LDRSui:
3072   case AArch64::LDURSi:
3073   case AArch64::LDRSpre:
3074   case AArch64::LDRSWui:
3075   case AArch64::LDURSWi:
3076   case AArch64::LDRWpre:
3077   case AArch64::LDRWui:
3078   case AArch64::LDURWi:
3079   case AArch64::STRSui:
3080   case AArch64::STURSi:
3081   case AArch64::STRSpre:
3082   case AArch64::STRWui:
3083   case AArch64::STURWi:
3084   case AArch64::STRWpre:
3085   case AArch64::LDPSi:
3086   case AArch64::LDPSWi:
3087   case AArch64::LDPWi:
3088   case AArch64::STPSi:
3089   case AArch64::STPWi:
3090     return 4;
3091   case AArch64::LDRDui:
3092   case AArch64::LDURDi:
3093   case AArch64::LDRDpre:
3094   case AArch64::LDRXui:
3095   case AArch64::LDURXi:
3096   case AArch64::LDRXpre:
3097   case AArch64::STRDui:
3098   case AArch64::STURDi:
3099   case AArch64::STRDpre:
3100   case AArch64::STRXui:
3101   case AArch64::STURXi:
3102   case AArch64::STRXpre:
3103   case AArch64::LDPDi:
3104   case AArch64::LDPXi:
3105   case AArch64::STPDi:
3106   case AArch64::STPXi:
3107     return 8;
3108   case AArch64::LDRQui:
3109   case AArch64::LDURQi:
3110   case AArch64::STRQui:
3111   case AArch64::STURQi:
3112   case AArch64::STRQpre:
3113   case AArch64::LDPQi:
3114   case AArch64::LDRQpre:
3115   case AArch64::STPQi:
3116   case AArch64::STGOffset:
3117   case AArch64::STZGOffset:
3118   case AArch64::ST2GOffset:
3119   case AArch64::STZ2GOffset:
3120   case AArch64::STGPi:
3121     return 16;
3122   }
3123 }
3124 
3125 bool AArch64InstrInfo::isPreLd(const MachineInstr &MI) {
3126   switch (MI.getOpcode()) {
3127   default:
3128     return false;
3129   case AArch64::LDRWpre:
3130   case AArch64::LDRXpre:
3131   case AArch64::LDRSpre:
3132   case AArch64::LDRDpre:
3133   case AArch64::LDRQpre:
3134     return true;
3135   }
3136 }
3137 
3138 bool AArch64InstrInfo::isPreSt(const MachineInstr &MI) {
3139   switch (MI.getOpcode()) {
3140   default:
3141     return false;
3142   case AArch64::STRWpre:
3143   case AArch64::STRXpre:
3144   case AArch64::STRSpre:
3145   case AArch64::STRDpre:
3146   case AArch64::STRQpre:
3147     return true;
3148   }
3149 }
3150 
3151 bool AArch64InstrInfo::isPreLdSt(const MachineInstr &MI) {
3152   return isPreLd(MI) || isPreSt(MI);
3153 }
3154 
3155 static const TargetRegisterClass *getRegClass(const MachineInstr &MI,
3156                                               Register Reg) {
3157   if (MI.getParent() == nullptr)
3158     return nullptr;
3159   const MachineFunction *MF = MI.getParent()->getParent();
3160   return MF ? MF->getRegInfo().getRegClassOrNull(Reg) : nullptr;
3161 }
3162 
3163 bool AArch64InstrInfo::isQForm(const MachineInstr &MI) {
3164   auto IsQFPR = [&](const MachineOperand &Op) {
3165     if (!Op.isReg())
3166       return false;
3167     auto Reg = Op.getReg();
3168     if (Reg.isPhysical())
3169       return AArch64::FPR128RegClass.contains(Reg);
3170     const TargetRegisterClass *TRC = ::getRegClass(MI, Reg);
3171     return TRC == &AArch64::FPR128RegClass ||
3172            TRC == &AArch64::FPR128_loRegClass;
3173   };
3174   return llvm::any_of(MI.operands(), IsQFPR);
3175 }
3176 
3177 bool AArch64InstrInfo::isFpOrNEON(const MachineInstr &MI) {
3178   auto IsFPR = [&](const MachineOperand &Op) {
3179     if (!Op.isReg())
3180       return false;
3181     auto Reg = Op.getReg();
3182     if (Reg.isPhysical())
3183       return AArch64::FPR128RegClass.contains(Reg) ||
3184              AArch64::FPR64RegClass.contains(Reg) ||
3185              AArch64::FPR32RegClass.contains(Reg) ||
3186              AArch64::FPR16RegClass.contains(Reg) ||
3187              AArch64::FPR8RegClass.contains(Reg);
3188 
3189     const TargetRegisterClass *TRC = ::getRegClass(MI, Reg);
3190     return TRC == &AArch64::FPR128RegClass ||
3191            TRC == &AArch64::FPR128_loRegClass ||
3192            TRC == &AArch64::FPR64RegClass ||
3193            TRC == &AArch64::FPR64_loRegClass ||
3194            TRC == &AArch64::FPR32RegClass || TRC == &AArch64::FPR16RegClass ||
3195            TRC == &AArch64::FPR8RegClass;
3196   };
3197   return llvm::any_of(MI.operands(), IsFPR);
3198 }
3199 
3200 // Scale the unscaled offsets.  Returns false if the unscaled offset can't be
3201 // scaled.
3202 static bool scaleOffset(unsigned Opc, int64_t &Offset) {
3203   int Scale = AArch64InstrInfo::getMemScale(Opc);
3204 
3205   // If the byte-offset isn't a multiple of the stride, we can't scale this
3206   // offset.
3207   if (Offset % Scale != 0)
3208     return false;
3209 
3210   // Convert the byte-offset used by unscaled into an "element" offset used
3211   // by the scaled pair load/store instructions.
3212   Offset /= Scale;
3213   return true;
3214 }
3215 
3216 static bool canPairLdStOpc(unsigned FirstOpc, unsigned SecondOpc) {
3217   if (FirstOpc == SecondOpc)
3218     return true;
3219   // We can also pair sign-ext and zero-ext instructions.
3220   switch (FirstOpc) {
3221   default:
3222     return false;
3223   case AArch64::LDRWui:
3224   case AArch64::LDURWi:
3225     return SecondOpc == AArch64::LDRSWui || SecondOpc == AArch64::LDURSWi;
3226   case AArch64::LDRSWui:
3227   case AArch64::LDURSWi:
3228     return SecondOpc == AArch64::LDRWui || SecondOpc == AArch64::LDURWi;
3229   }
3230   // These instructions can't be paired based on their opcodes.
3231   return false;
3232 }
3233 
3234 static bool shouldClusterFI(const MachineFrameInfo &MFI, int FI1,
3235                             int64_t Offset1, unsigned Opcode1, int FI2,
3236                             int64_t Offset2, unsigned Opcode2) {
3237   // Accesses through fixed stack object frame indices may access a different
3238   // fixed stack slot. Check that the object offsets + offsets match.
3239   if (MFI.isFixedObjectIndex(FI1) && MFI.isFixedObjectIndex(FI2)) {
3240     int64_t ObjectOffset1 = MFI.getObjectOffset(FI1);
3241     int64_t ObjectOffset2 = MFI.getObjectOffset(FI2);
3242     assert(ObjectOffset1 <= ObjectOffset2 && "Object offsets are not ordered.");
3243     // Convert to scaled object offsets.
3244     int Scale1 = AArch64InstrInfo::getMemScale(Opcode1);
3245     if (ObjectOffset1 % Scale1 != 0)
3246       return false;
3247     ObjectOffset1 /= Scale1;
3248     int Scale2 = AArch64InstrInfo::getMemScale(Opcode2);
3249     if (ObjectOffset2 % Scale2 != 0)
3250       return false;
3251     ObjectOffset2 /= Scale2;
3252     ObjectOffset1 += Offset1;
3253     ObjectOffset2 += Offset2;
3254     return ObjectOffset1 + 1 == ObjectOffset2;
3255   }
3256 
3257   return FI1 == FI2;
3258 }
3259 
3260 /// Detect opportunities for ldp/stp formation.
3261 ///
3262 /// Only called for LdSt for which getMemOperandWithOffset returns true.
3263 bool AArch64InstrInfo::shouldClusterMemOps(
3264     ArrayRef<const MachineOperand *> BaseOps1,
3265     ArrayRef<const MachineOperand *> BaseOps2, unsigned NumLoads,
3266     unsigned NumBytes) const {
3267   assert(BaseOps1.size() == 1 && BaseOps2.size() == 1);
3268   const MachineOperand &BaseOp1 = *BaseOps1.front();
3269   const MachineOperand &BaseOp2 = *BaseOps2.front();
3270   const MachineInstr &FirstLdSt = *BaseOp1.getParent();
3271   const MachineInstr &SecondLdSt = *BaseOp2.getParent();
3272   if (BaseOp1.getType() != BaseOp2.getType())
3273     return false;
3274 
3275   assert((BaseOp1.isReg() || BaseOp1.isFI()) &&
3276          "Only base registers and frame indices are supported.");
3277 
3278   // Check for both base regs and base FI.
3279   if (BaseOp1.isReg() && BaseOp1.getReg() != BaseOp2.getReg())
3280     return false;
3281 
3282   // Only cluster up to a single pair.
3283   if (NumLoads > 2)
3284     return false;
3285 
3286   if (!isPairableLdStInst(FirstLdSt) || !isPairableLdStInst(SecondLdSt))
3287     return false;
3288 
3289   // Can we pair these instructions based on their opcodes?
3290   unsigned FirstOpc = FirstLdSt.getOpcode();
3291   unsigned SecondOpc = SecondLdSt.getOpcode();
3292   if (!canPairLdStOpc(FirstOpc, SecondOpc))
3293     return false;
3294 
3295   // Can't merge volatiles or load/stores that have a hint to avoid pair
3296   // formation, for example.
3297   if (!isCandidateToMergeOrPair(FirstLdSt) ||
3298       !isCandidateToMergeOrPair(SecondLdSt))
3299     return false;
3300 
3301   // isCandidateToMergeOrPair guarantees that operand 2 is an immediate.
3302   int64_t Offset1 = FirstLdSt.getOperand(2).getImm();
3303   if (hasUnscaledLdStOffset(FirstOpc) && !scaleOffset(FirstOpc, Offset1))
3304     return false;
3305 
3306   int64_t Offset2 = SecondLdSt.getOperand(2).getImm();
3307   if (hasUnscaledLdStOffset(SecondOpc) && !scaleOffset(SecondOpc, Offset2))
3308     return false;
3309 
3310   // Pairwise instructions have a 7-bit signed offset field.
3311   if (Offset1 > 63 || Offset1 < -64)
3312     return false;
3313 
3314   // The caller should already have ordered First/SecondLdSt by offset.
3315   // Note: except for non-equal frame index bases
3316   if (BaseOp1.isFI()) {
3317     assert((!BaseOp1.isIdenticalTo(BaseOp2) || Offset1 <= Offset2) &&
3318            "Caller should have ordered offsets.");
3319 
3320     const MachineFrameInfo &MFI =
3321         FirstLdSt.getParent()->getParent()->getFrameInfo();
3322     return shouldClusterFI(MFI, BaseOp1.getIndex(), Offset1, FirstOpc,
3323                            BaseOp2.getIndex(), Offset2, SecondOpc);
3324   }
3325 
3326   assert(Offset1 <= Offset2 && "Caller should have ordered offsets.");
3327 
3328   return Offset1 + 1 == Offset2;
3329 }
3330 
3331 static const MachineInstrBuilder &AddSubReg(const MachineInstrBuilder &MIB,
3332                                             unsigned Reg, unsigned SubIdx,
3333                                             unsigned State,
3334                                             const TargetRegisterInfo *TRI) {
3335   if (!SubIdx)
3336     return MIB.addReg(Reg, State);
3337 
3338   if (Register::isPhysicalRegister(Reg))
3339     return MIB.addReg(TRI->getSubReg(Reg, SubIdx), State);
3340   return MIB.addReg(Reg, State, SubIdx);
3341 }
3342 
3343 static bool forwardCopyWillClobberTuple(unsigned DestReg, unsigned SrcReg,
3344                                         unsigned NumRegs) {
3345   // We really want the positive remainder mod 32 here, that happens to be
3346   // easily obtainable with a mask.
3347   return ((DestReg - SrcReg) & 0x1f) < NumRegs;
3348 }
3349 
3350 void AArch64InstrInfo::copyPhysRegTuple(MachineBasicBlock &MBB,
3351                                         MachineBasicBlock::iterator I,
3352                                         const DebugLoc &DL, MCRegister DestReg,
3353                                         MCRegister SrcReg, bool KillSrc,
3354                                         unsigned Opcode,
3355                                         ArrayRef<unsigned> Indices) const {
3356   assert(Subtarget.hasNEON() && "Unexpected register copy without NEON");
3357   const TargetRegisterInfo *TRI = &getRegisterInfo();
3358   uint16_t DestEncoding = TRI->getEncodingValue(DestReg);
3359   uint16_t SrcEncoding = TRI->getEncodingValue(SrcReg);
3360   unsigned NumRegs = Indices.size();
3361 
3362   int SubReg = 0, End = NumRegs, Incr = 1;
3363   if (forwardCopyWillClobberTuple(DestEncoding, SrcEncoding, NumRegs)) {
3364     SubReg = NumRegs - 1;
3365     End = -1;
3366     Incr = -1;
3367   }
3368 
3369   for (; SubReg != End; SubReg += Incr) {
3370     const MachineInstrBuilder MIB = BuildMI(MBB, I, DL, get(Opcode));
3371     AddSubReg(MIB, DestReg, Indices[SubReg], RegState::Define, TRI);
3372     AddSubReg(MIB, SrcReg, Indices[SubReg], 0, TRI);
3373     AddSubReg(MIB, SrcReg, Indices[SubReg], getKillRegState(KillSrc), TRI);
3374   }
3375 }
3376 
3377 void AArch64InstrInfo::copyGPRRegTuple(MachineBasicBlock &MBB,
3378                                        MachineBasicBlock::iterator I,
3379                                        DebugLoc DL, unsigned DestReg,
3380                                        unsigned SrcReg, bool KillSrc,
3381                                        unsigned Opcode, unsigned ZeroReg,
3382                                        llvm::ArrayRef<unsigned> Indices) const {
3383   const TargetRegisterInfo *TRI = &getRegisterInfo();
3384   unsigned NumRegs = Indices.size();
3385 
3386 #ifndef NDEBUG
3387   uint16_t DestEncoding = TRI->getEncodingValue(DestReg);
3388   uint16_t SrcEncoding = TRI->getEncodingValue(SrcReg);
3389   assert(DestEncoding % NumRegs == 0 && SrcEncoding % NumRegs == 0 &&
3390          "GPR reg sequences should not be able to overlap");
3391 #endif
3392 
3393   for (unsigned SubReg = 0; SubReg != NumRegs; ++SubReg) {
3394     const MachineInstrBuilder MIB = BuildMI(MBB, I, DL, get(Opcode));
3395     AddSubReg(MIB, DestReg, Indices[SubReg], RegState::Define, TRI);
3396     MIB.addReg(ZeroReg);
3397     AddSubReg(MIB, SrcReg, Indices[SubReg], getKillRegState(KillSrc), TRI);
3398     MIB.addImm(0);
3399   }
3400 }
3401 
3402 void AArch64InstrInfo::copyPhysReg(MachineBasicBlock &MBB,
3403                                    MachineBasicBlock::iterator I,
3404                                    const DebugLoc &DL, MCRegister DestReg,
3405                                    MCRegister SrcReg, bool KillSrc) const {
3406   if (AArch64::GPR32spRegClass.contains(DestReg) &&
3407       (AArch64::GPR32spRegClass.contains(SrcReg) || SrcReg == AArch64::WZR)) {
3408     const TargetRegisterInfo *TRI = &getRegisterInfo();
3409 
3410     if (DestReg == AArch64::WSP || SrcReg == AArch64::WSP) {
3411       // If either operand is WSP, expand to ADD #0.
3412       if (Subtarget.hasZeroCycleRegMove()) {
3413         // Cyclone recognizes "ADD Xd, Xn, #0" as a zero-cycle register move.
3414         MCRegister DestRegX = TRI->getMatchingSuperReg(
3415             DestReg, AArch64::sub_32, &AArch64::GPR64spRegClass);
3416         MCRegister SrcRegX = TRI->getMatchingSuperReg(
3417             SrcReg, AArch64::sub_32, &AArch64::GPR64spRegClass);
3418         // This instruction is reading and writing X registers.  This may upset
3419         // the register scavenger and machine verifier, so we need to indicate
3420         // that we are reading an undefined value from SrcRegX, but a proper
3421         // value from SrcReg.
3422         BuildMI(MBB, I, DL, get(AArch64::ADDXri), DestRegX)
3423             .addReg(SrcRegX, RegState::Undef)
3424             .addImm(0)
3425             .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSL, 0))
3426             .addReg(SrcReg, RegState::Implicit | getKillRegState(KillSrc));
3427       } else {
3428         BuildMI(MBB, I, DL, get(AArch64::ADDWri), DestReg)
3429             .addReg(SrcReg, getKillRegState(KillSrc))
3430             .addImm(0)
3431             .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSL, 0));
3432       }
3433     } else if (SrcReg == AArch64::WZR && Subtarget.hasZeroCycleZeroingGP()) {
3434       BuildMI(MBB, I, DL, get(AArch64::MOVZWi), DestReg)
3435           .addImm(0)
3436           .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSL, 0));
3437     } else {
3438       if (Subtarget.hasZeroCycleRegMove()) {
3439         // Cyclone recognizes "ORR Xd, XZR, Xm" as a zero-cycle register move.
3440         MCRegister DestRegX = TRI->getMatchingSuperReg(
3441             DestReg, AArch64::sub_32, &AArch64::GPR64spRegClass);
3442         MCRegister SrcRegX = TRI->getMatchingSuperReg(
3443             SrcReg, AArch64::sub_32, &AArch64::GPR64spRegClass);
3444         // This instruction is reading and writing X registers.  This may upset
3445         // the register scavenger and machine verifier, so we need to indicate
3446         // that we are reading an undefined value from SrcRegX, but a proper
3447         // value from SrcReg.
3448         BuildMI(MBB, I, DL, get(AArch64::ORRXrr), DestRegX)
3449             .addReg(AArch64::XZR)
3450             .addReg(SrcRegX, RegState::Undef)
3451             .addReg(SrcReg, RegState::Implicit | getKillRegState(KillSrc));
3452       } else {
3453         // Otherwise, expand to ORR WZR.
3454         BuildMI(MBB, I, DL, get(AArch64::ORRWrr), DestReg)
3455             .addReg(AArch64::WZR)
3456             .addReg(SrcReg, getKillRegState(KillSrc));
3457       }
3458     }
3459     return;
3460   }
3461 
3462   // Copy a Predicate register by ORRing with itself.
3463   if (AArch64::PPRRegClass.contains(DestReg) &&
3464       AArch64::PPRRegClass.contains(SrcReg)) {
3465     assert((Subtarget.hasSVE() || Subtarget.hasStreamingSVE()) &&
3466            "Unexpected SVE register.");
3467     BuildMI(MBB, I, DL, get(AArch64::ORR_PPzPP), DestReg)
3468       .addReg(SrcReg) // Pg
3469       .addReg(SrcReg)
3470       .addReg(SrcReg, getKillRegState(KillSrc));
3471     return;
3472   }
3473 
3474   // Copy a Z register by ORRing with itself.
3475   if (AArch64::ZPRRegClass.contains(DestReg) &&
3476       AArch64::ZPRRegClass.contains(SrcReg)) {
3477     assert((Subtarget.hasSVE() || Subtarget.hasStreamingSVE()) &&
3478            "Unexpected SVE register.");
3479     BuildMI(MBB, I, DL, get(AArch64::ORR_ZZZ), DestReg)
3480       .addReg(SrcReg)
3481       .addReg(SrcReg, getKillRegState(KillSrc));
3482     return;
3483   }
3484 
3485   // Copy a Z register pair by copying the individual sub-registers.
3486   if (AArch64::ZPR2RegClass.contains(DestReg) &&
3487       AArch64::ZPR2RegClass.contains(SrcReg)) {
3488     assert((Subtarget.hasSVE() || Subtarget.hasStreamingSVE()) &&
3489            "Unexpected SVE register.");
3490     static const unsigned Indices[] = {AArch64::zsub0, AArch64::zsub1};
3491     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORR_ZZZ,
3492                      Indices);
3493     return;
3494   }
3495 
3496   // Copy a Z register triple by copying the individual sub-registers.
3497   if (AArch64::ZPR3RegClass.contains(DestReg) &&
3498       AArch64::ZPR3RegClass.contains(SrcReg)) {
3499     assert((Subtarget.hasSVE() || Subtarget.hasStreamingSVE()) &&
3500            "Unexpected SVE register.");
3501     static const unsigned Indices[] = {AArch64::zsub0, AArch64::zsub1,
3502                                        AArch64::zsub2};
3503     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORR_ZZZ,
3504                      Indices);
3505     return;
3506   }
3507 
3508   // Copy a Z register quad by copying the individual sub-registers.
3509   if (AArch64::ZPR4RegClass.contains(DestReg) &&
3510       AArch64::ZPR4RegClass.contains(SrcReg)) {
3511     assert((Subtarget.hasSVE() || Subtarget.hasStreamingSVE()) &&
3512            "Unexpected SVE register.");
3513     static const unsigned Indices[] = {AArch64::zsub0, AArch64::zsub1,
3514                                        AArch64::zsub2, AArch64::zsub3};
3515     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORR_ZZZ,
3516                      Indices);
3517     return;
3518   }
3519 
3520   if (AArch64::GPR64spRegClass.contains(DestReg) &&
3521       (AArch64::GPR64spRegClass.contains(SrcReg) || SrcReg == AArch64::XZR)) {
3522     if (DestReg == AArch64::SP || SrcReg == AArch64::SP) {
3523       // If either operand is SP, expand to ADD #0.
3524       BuildMI(MBB, I, DL, get(AArch64::ADDXri), DestReg)
3525           .addReg(SrcReg, getKillRegState(KillSrc))
3526           .addImm(0)
3527           .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSL, 0));
3528     } else if (SrcReg == AArch64::XZR && Subtarget.hasZeroCycleZeroingGP()) {
3529       BuildMI(MBB, I, DL, get(AArch64::MOVZXi), DestReg)
3530           .addImm(0)
3531           .addImm(AArch64_AM::getShifterImm(AArch64_AM::LSL, 0));
3532     } else {
3533       // Otherwise, expand to ORR XZR.
3534       BuildMI(MBB, I, DL, get(AArch64::ORRXrr), DestReg)
3535           .addReg(AArch64::XZR)
3536           .addReg(SrcReg, getKillRegState(KillSrc));
3537     }
3538     return;
3539   }
3540 
3541   // Copy a DDDD register quad by copying the individual sub-registers.
3542   if (AArch64::DDDDRegClass.contains(DestReg) &&
3543       AArch64::DDDDRegClass.contains(SrcReg)) {
3544     static const unsigned Indices[] = {AArch64::dsub0, AArch64::dsub1,
3545                                        AArch64::dsub2, AArch64::dsub3};
3546     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRv8i8,
3547                      Indices);
3548     return;
3549   }
3550 
3551   // Copy a DDD register triple by copying the individual sub-registers.
3552   if (AArch64::DDDRegClass.contains(DestReg) &&
3553       AArch64::DDDRegClass.contains(SrcReg)) {
3554     static const unsigned Indices[] = {AArch64::dsub0, AArch64::dsub1,
3555                                        AArch64::dsub2};
3556     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRv8i8,
3557                      Indices);
3558     return;
3559   }
3560 
3561   // Copy a DD register pair by copying the individual sub-registers.
3562   if (AArch64::DDRegClass.contains(DestReg) &&
3563       AArch64::DDRegClass.contains(SrcReg)) {
3564     static const unsigned Indices[] = {AArch64::dsub0, AArch64::dsub1};
3565     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRv8i8,
3566                      Indices);
3567     return;
3568   }
3569 
3570   // Copy a QQQQ register quad by copying the individual sub-registers.
3571   if (AArch64::QQQQRegClass.contains(DestReg) &&
3572       AArch64::QQQQRegClass.contains(SrcReg)) {
3573     static const unsigned Indices[] = {AArch64::qsub0, AArch64::qsub1,
3574                                        AArch64::qsub2, AArch64::qsub3};
3575     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRv16i8,
3576                      Indices);
3577     return;
3578   }
3579 
3580   // Copy a QQQ register triple by copying the individual sub-registers.
3581   if (AArch64::QQQRegClass.contains(DestReg) &&
3582       AArch64::QQQRegClass.contains(SrcReg)) {
3583     static const unsigned Indices[] = {AArch64::qsub0, AArch64::qsub1,
3584                                        AArch64::qsub2};
3585     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRv16i8,
3586                      Indices);
3587     return;
3588   }
3589 
3590   // Copy a QQ register pair by copying the individual sub-registers.
3591   if (AArch64::QQRegClass.contains(DestReg) &&
3592       AArch64::QQRegClass.contains(SrcReg)) {
3593     static const unsigned Indices[] = {AArch64::qsub0, AArch64::qsub1};
3594     copyPhysRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRv16i8,
3595                      Indices);
3596     return;
3597   }
3598 
3599   if (AArch64::XSeqPairsClassRegClass.contains(DestReg) &&
3600       AArch64::XSeqPairsClassRegClass.contains(SrcReg)) {
3601     static const unsigned Indices[] = {AArch64::sube64, AArch64::subo64};
3602     copyGPRRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRXrs,
3603                     AArch64::XZR, Indices);
3604     return;
3605   }
3606 
3607   if (AArch64::WSeqPairsClassRegClass.contains(DestReg) &&
3608       AArch64::WSeqPairsClassRegClass.contains(SrcReg)) {
3609     static const unsigned Indices[] = {AArch64::sube32, AArch64::subo32};
3610     copyGPRRegTuple(MBB, I, DL, DestReg, SrcReg, KillSrc, AArch64::ORRWrs,
3611                     AArch64::WZR, Indices);
3612     return;
3613   }
3614 
3615   if (AArch64::FPR128RegClass.contains(DestReg) &&
3616       AArch64::FPR128RegClass.contains(SrcReg)) {
3617     if (Subtarget.hasNEON()) {
3618       BuildMI(MBB, I, DL, get(AArch64::ORRv16i8), DestReg)
3619           .addReg(SrcReg)
3620           .addReg(SrcReg, getKillRegState(KillSrc));
3621     } else {
3622       BuildMI(MBB, I, DL, get(AArch64::STRQpre))
3623           .addReg(AArch64::SP, RegState::Define)
3624           .addReg(SrcReg, getKillRegState(KillSrc))
3625           .addReg(AArch64::SP)
3626           .addImm(-16);
3627       BuildMI(MBB, I, DL, get(AArch64::LDRQpre))
3628           .addReg(AArch64::SP, RegState::Define)
3629           .addReg(DestReg, RegState::Define)
3630           .addReg(AArch64::SP)
3631           .addImm(16);
3632     }
3633     return;
3634   }
3635 
3636   if (AArch64::FPR64RegClass.contains(DestReg) &&
3637       AArch64::FPR64RegClass.contains(SrcReg)) {
3638     BuildMI(MBB, I, DL, get(AArch64::FMOVDr), DestReg)
3639         .addReg(SrcReg, getKillRegState(KillSrc));
3640     return;
3641   }
3642 
3643   if (AArch64::FPR32RegClass.contains(DestReg) &&
3644       AArch64::FPR32RegClass.contains(SrcReg)) {
3645     BuildMI(MBB, I, DL, get(AArch64::FMOVSr), DestReg)
3646         .addReg(SrcReg, getKillRegState(KillSrc));
3647     return;
3648   }
3649 
3650   if (AArch64::FPR16RegClass.contains(DestReg) &&
3651       AArch64::FPR16RegClass.contains(SrcReg)) {
3652     DestReg =
3653         RI.getMatchingSuperReg(DestReg, AArch64::hsub, &AArch64::FPR32RegClass);
3654     SrcReg =
3655         RI.getMatchingSuperReg(SrcReg, AArch64::hsub, &AArch64::FPR32RegClass);
3656     BuildMI(MBB, I, DL, get(AArch64::FMOVSr), DestReg)
3657         .addReg(SrcReg, getKillRegState(KillSrc));
3658     return;
3659   }
3660 
3661   if (AArch64::FPR8RegClass.contains(DestReg) &&
3662       AArch64::FPR8RegClass.contains(SrcReg)) {
3663     DestReg =
3664         RI.getMatchingSuperReg(DestReg, AArch64::bsub, &AArch64::FPR32RegClass);
3665     SrcReg =
3666         RI.getMatchingSuperReg(SrcReg, AArch64::bsub, &AArch64::FPR32RegClass);
3667     BuildMI(MBB, I, DL, get(AArch64::FMOVSr), DestReg)
3668         .addReg(SrcReg, getKillRegState(KillSrc));
3669     return;
3670   }
3671 
3672   // Copies between GPR64 and FPR64.
3673   if (AArch64::FPR64RegClass.contains(DestReg) &&
3674       AArch64::GPR64RegClass.contains(SrcReg)) {
3675     BuildMI(MBB, I, DL, get(AArch64::FMOVXDr), DestReg)
3676         .addReg(SrcReg, getKillRegState(KillSrc));
3677     return;
3678   }
3679   if (AArch64::GPR64RegClass.contains(DestReg) &&
3680       AArch64::FPR64RegClass.contains(SrcReg)) {
3681     BuildMI(MBB, I, DL, get(AArch64::FMOVDXr), DestReg)
3682         .addReg(SrcReg, getKillRegState(KillSrc));
3683     return;
3684   }
3685   // Copies between GPR32 and FPR32.
3686   if (AArch64::FPR32RegClass.contains(DestReg) &&
3687       AArch64::GPR32RegClass.contains(SrcReg)) {
3688     BuildMI(MBB, I, DL, get(AArch64::FMOVWSr), DestReg)
3689         .addReg(SrcReg, getKillRegState(KillSrc));
3690     return;
3691   }
3692   if (AArch64::GPR32RegClass.contains(DestReg) &&
3693       AArch64::FPR32RegClass.contains(SrcReg)) {
3694     BuildMI(MBB, I, DL, get(AArch64::FMOVSWr), DestReg)
3695         .addReg(SrcReg, getKillRegState(KillSrc));
3696     return;
3697   }
3698 
3699   if (DestReg == AArch64::NZCV) {
3700     assert(AArch64::GPR64RegClass.contains(SrcReg) && "Invalid NZCV copy");
3701     BuildMI(MBB, I, DL, get(AArch64::MSR))
3702         .addImm(AArch64SysReg::NZCV)
3703         .addReg(SrcReg, getKillRegState(KillSrc))
3704         .addReg(AArch64::NZCV, RegState::Implicit | RegState::Define);
3705     return;
3706   }
3707 
3708   if (SrcReg == AArch64::NZCV) {
3709     assert(AArch64::GPR64RegClass.contains(DestReg) && "Invalid NZCV copy");
3710     BuildMI(MBB, I, DL, get(AArch64::MRS), DestReg)
3711         .addImm(AArch64SysReg::NZCV)
3712         .addReg(AArch64::NZCV, RegState::Implicit | getKillRegState(KillSrc));
3713     return;
3714   }
3715 
3716 #ifndef NDEBUG
3717   const TargetRegisterInfo &TRI = getRegisterInfo();
3718   errs() << TRI.getRegAsmName(DestReg) << " = COPY "
3719          << TRI.getRegAsmName(SrcReg) << "\n";
3720 #endif
3721   llvm_unreachable("unimplemented reg-to-reg copy");
3722 }
3723 
3724 static void storeRegPairToStackSlot(const TargetRegisterInfo &TRI,
3725                                     MachineBasicBlock &MBB,
3726                                     MachineBasicBlock::iterator InsertBefore,
3727                                     const MCInstrDesc &MCID,
3728                                     Register SrcReg, bool IsKill,
3729                                     unsigned SubIdx0, unsigned SubIdx1, int FI,
3730                                     MachineMemOperand *MMO) {
3731   Register SrcReg0 = SrcReg;
3732   Register SrcReg1 = SrcReg;
3733   if (Register::isPhysicalRegister(SrcReg)) {
3734     SrcReg0 = TRI.getSubReg(SrcReg, SubIdx0);
3735     SubIdx0 = 0;
3736     SrcReg1 = TRI.getSubReg(SrcReg, SubIdx1);
3737     SubIdx1 = 0;
3738   }
3739   BuildMI(MBB, InsertBefore, DebugLoc(), MCID)
3740       .addReg(SrcReg0, getKillRegState(IsKill), SubIdx0)
3741       .addReg(SrcReg1, getKillRegState(IsKill), SubIdx1)
3742       .addFrameIndex(FI)
3743       .addImm(0)
3744       .addMemOperand(MMO);
3745 }
3746 
3747 void AArch64InstrInfo::storeRegToStackSlot(
3748     MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI, Register SrcReg,
3749     bool isKill, int FI, const TargetRegisterClass *RC,
3750     const TargetRegisterInfo *TRI) const {
3751   MachineFunction &MF = *MBB.getParent();
3752   MachineFrameInfo &MFI = MF.getFrameInfo();
3753 
3754   MachinePointerInfo PtrInfo = MachinePointerInfo::getFixedStack(MF, FI);
3755   MachineMemOperand *MMO =
3756       MF.getMachineMemOperand(PtrInfo, MachineMemOperand::MOStore,
3757                               MFI.getObjectSize(FI), MFI.getObjectAlign(FI));
3758   unsigned Opc = 0;
3759   bool Offset = true;
3760   unsigned StackID = TargetStackID::Default;
3761   switch (TRI->getSpillSize(*RC)) {
3762   case 1:
3763     if (AArch64::FPR8RegClass.hasSubClassEq(RC))
3764       Opc = AArch64::STRBui;
3765     break;
3766   case 2:
3767     if (AArch64::FPR16RegClass.hasSubClassEq(RC))
3768       Opc = AArch64::STRHui;
3769     else if (AArch64::PPRRegClass.hasSubClassEq(RC)) {
3770       assert(Subtarget.hasSVE() && "Unexpected register store without SVE");
3771       Opc = AArch64::STR_PXI;
3772       StackID = TargetStackID::ScalableVector;
3773     }
3774     break;
3775   case 4:
3776     if (AArch64::GPR32allRegClass.hasSubClassEq(RC)) {
3777       Opc = AArch64::STRWui;
3778       if (Register::isVirtualRegister(SrcReg))
3779         MF.getRegInfo().constrainRegClass(SrcReg, &AArch64::GPR32RegClass);
3780       else
3781         assert(SrcReg != AArch64::WSP);
3782     } else if (AArch64::FPR32RegClass.hasSubClassEq(RC))
3783       Opc = AArch64::STRSui;
3784     break;
3785   case 8:
3786     if (AArch64::GPR64allRegClass.hasSubClassEq(RC)) {
3787       Opc = AArch64::STRXui;
3788       if (Register::isVirtualRegister(SrcReg))
3789         MF.getRegInfo().constrainRegClass(SrcReg, &AArch64::GPR64RegClass);
3790       else
3791         assert(SrcReg != AArch64::SP);
3792     } else if (AArch64::FPR64RegClass.hasSubClassEq(RC)) {
3793       Opc = AArch64::STRDui;
3794     } else if (AArch64::WSeqPairsClassRegClass.hasSubClassEq(RC)) {
3795       storeRegPairToStackSlot(getRegisterInfo(), MBB, MBBI,
3796                               get(AArch64::STPWi), SrcReg, isKill,
3797                               AArch64::sube32, AArch64::subo32, FI, MMO);
3798       return;
3799     }
3800     break;
3801   case 16:
3802     if (AArch64::FPR128RegClass.hasSubClassEq(RC))
3803       Opc = AArch64::STRQui;
3804     else if (AArch64::DDRegClass.hasSubClassEq(RC)) {
3805       assert(Subtarget.hasNEON() && "Unexpected register store without NEON");
3806       Opc = AArch64::ST1Twov1d;
3807       Offset = false;
3808     } else if (AArch64::XSeqPairsClassRegClass.hasSubClassEq(RC)) {
3809       storeRegPairToStackSlot(getRegisterInfo(), MBB, MBBI,
3810                               get(AArch64::STPXi), SrcReg, isKill,
3811                               AArch64::sube64, AArch64::subo64, FI, MMO);
3812       return;
3813     } else if (AArch64::ZPRRegClass.hasSubClassEq(RC)) {
3814       assert(Subtarget.hasSVE() && "Unexpected register store without SVE");
3815       Opc = AArch64::STR_ZXI;
3816       StackID = TargetStackID::ScalableVector;
3817     }
3818     break;
3819   case 24:
3820     if (AArch64::DDDRegClass.hasSubClassEq(RC)) {
3821       assert(Subtarget.hasNEON() && "Unexpected register store without NEON");
3822       Opc = AArch64::ST1Threev1d;
3823       Offset = false;
3824     }
3825     break;
3826   case 32:
3827     if (AArch64::DDDDRegClass.hasSubClassEq(RC)) {
3828       assert(Subtarget.hasNEON() && "Unexpected register store without NEON");
3829       Opc = AArch64::ST1Fourv1d;
3830       Offset = false;
3831     } else if (AArch64::QQRegClass.hasSubClassEq(RC)) {
3832       assert(Subtarget.hasNEON() && "Unexpected register store without NEON");
3833       Opc = AArch64::ST1Twov2d;
3834       Offset = false;
3835     } else if (AArch64::ZPR2RegClass.hasSubClassEq(RC)) {
3836       assert(Subtarget.hasSVE() && "Unexpected register store without SVE");
3837       Opc = AArch64::STR_ZZXI;
3838       StackID = TargetStackID::ScalableVector;
3839     }
3840     break;
3841   case 48:
3842     if (AArch64::QQQRegClass.hasSubClassEq(RC)) {
3843       assert(Subtarget.hasNEON() && "Unexpected register store without NEON");
3844       Opc = AArch64::ST1Threev2d;
3845       Offset = false;
3846     } else if (AArch64::ZPR3RegClass.hasSubClassEq(RC)) {
3847       assert(Subtarget.hasSVE() && "Unexpected register store without SVE");
3848       Opc = AArch64::STR_ZZZXI;
3849       StackID = TargetStackID::ScalableVector;
3850     }
3851     break;
3852   case 64:
3853     if (AArch64::QQQQRegClass.hasSubClassEq(RC)) {
3854       assert(Subtarget.hasNEON() && "Unexpected register store without NEON");
3855       Opc = AArch64::ST1Fourv2d;
3856       Offset = false;
3857     } else if (AArch64::ZPR4RegClass.hasSubClassEq(RC)) {
3858       assert(Subtarget.hasSVE() && "Unexpected register store without SVE");
3859       Opc = AArch64::STR_ZZZZXI;
3860       StackID = TargetStackID::ScalableVector;
3861     }
3862     break;
3863   }
3864   assert(Opc && "Unknown register class");
3865   MFI.setStackID(FI, StackID);
3866 
3867   const MachineInstrBuilder MI = BuildMI(MBB, MBBI, DebugLoc(), get(Opc))
3868                                      .addReg(SrcReg, getKillRegState(isKill))
3869                                      .addFrameIndex(FI);
3870 
3871   if (Offset)
3872     MI.addImm(0);
3873   MI.addMemOperand(MMO);
3874 }
3875 
3876 static void loadRegPairFromStackSlot(const TargetRegisterInfo &TRI,
3877                                      MachineBasicBlock &MBB,
3878                                      MachineBasicBlock::iterator InsertBefore,
3879                                      const MCInstrDesc &MCID,
3880                                      Register DestReg, unsigned SubIdx0,
3881                                      unsigned SubIdx1, int FI,
3882                                      MachineMemOperand *MMO) {
3883   Register DestReg0 = DestReg;
3884   Register DestReg1 = DestReg;
3885   bool IsUndef = true;
3886   if (Register::isPhysicalRegister(DestReg)) {
3887     DestReg0 = TRI.getSubReg(DestReg, SubIdx0);
3888     SubIdx0 = 0;
3889     DestReg1 = TRI.getSubReg(DestReg, SubIdx1);
3890     SubIdx1 = 0;
3891     IsUndef = false;
3892   }
3893   BuildMI(MBB, InsertBefore, DebugLoc(), MCID)
3894       .addReg(DestReg0, RegState::Define | getUndefRegState(IsUndef), SubIdx0)
3895       .addReg(DestReg1, RegState::Define | getUndefRegState(IsUndef), SubIdx1)
3896       .addFrameIndex(FI)
3897       .addImm(0)
3898       .addMemOperand(MMO);
3899 }
3900 
3901 void AArch64InstrInfo::loadRegFromStackSlot(
3902     MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI, Register DestReg,
3903     int FI, const TargetRegisterClass *RC,
3904     const TargetRegisterInfo *TRI) const {
3905   MachineFunction &MF = *MBB.getParent();
3906   MachineFrameInfo &MFI = MF.getFrameInfo();
3907   MachinePointerInfo PtrInfo = MachinePointerInfo::getFixedStack(MF, FI);
3908   MachineMemOperand *MMO =
3909       MF.getMachineMemOperand(PtrInfo, MachineMemOperand::MOLoad,
3910                               MFI.getObjectSize(FI), MFI.getObjectAlign(FI));
3911 
3912   unsigned Opc = 0;
3913   bool Offset = true;
3914   unsigned StackID = TargetStackID::Default;
3915   switch (TRI->getSpillSize(*RC)) {
3916   case 1:
3917     if (AArch64::FPR8RegClass.hasSubClassEq(RC))
3918       Opc = AArch64::LDRBui;
3919     break;
3920   case 2:
3921     if (AArch64::FPR16RegClass.hasSubClassEq(RC))
3922       Opc = AArch64::LDRHui;
3923     else if (AArch64::PPRRegClass.hasSubClassEq(RC)) {
3924       assert(Subtarget.hasSVE() && "Unexpected register load without SVE");
3925       Opc = AArch64::LDR_PXI;
3926       StackID = TargetStackID::ScalableVector;
3927     }
3928     break;
3929   case 4:
3930     if (AArch64::GPR32allRegClass.hasSubClassEq(RC)) {
3931       Opc = AArch64::LDRWui;
3932       if (Register::isVirtualRegister(DestReg))
3933         MF.getRegInfo().constrainRegClass(DestReg, &AArch64::GPR32RegClass);
3934       else
3935         assert(DestReg != AArch64::WSP);
3936     } else if (AArch64::FPR32RegClass.hasSubClassEq(RC))
3937       Opc = AArch64::LDRSui;
3938     break;
3939   case 8:
3940     if (AArch64::GPR64allRegClass.hasSubClassEq(RC)) {
3941       Opc = AArch64::LDRXui;
3942       if (Register::isVirtualRegister(DestReg))
3943         MF.getRegInfo().constrainRegClass(DestReg, &AArch64::GPR64RegClass);
3944       else
3945         assert(DestReg != AArch64::SP);
3946     } else if (AArch64::FPR64RegClass.hasSubClassEq(RC)) {
3947       Opc = AArch64::LDRDui;
3948     } else if (AArch64::WSeqPairsClassRegClass.hasSubClassEq(RC)) {
3949       loadRegPairFromStackSlot(getRegisterInfo(), MBB, MBBI,
3950                                get(AArch64::LDPWi), DestReg, AArch64::sube32,
3951                                AArch64::subo32, FI, MMO);
3952       return;
3953     }
3954     break;
3955   case 16:
3956     if (AArch64::FPR128RegClass.hasSubClassEq(RC))
3957       Opc = AArch64::LDRQui;
3958     else if (AArch64::DDRegClass.hasSubClassEq(RC)) {
3959       assert(Subtarget.hasNEON() && "Unexpected register load without NEON");
3960       Opc = AArch64::LD1Twov1d;
3961       Offset = false;
3962     } else if (AArch64::XSeqPairsClassRegClass.hasSubClassEq(RC)) {
3963       loadRegPairFromStackSlot(getRegisterInfo(), MBB, MBBI,
3964                                get(AArch64::LDPXi), DestReg, AArch64::sube64,
3965                                AArch64::subo64, FI, MMO);
3966       return;
3967     } else if (AArch64::ZPRRegClass.hasSubClassEq(RC)) {
3968       assert(Subtarget.hasSVE() && "Unexpected register load without SVE");
3969       Opc = AArch64::LDR_ZXI;
3970       StackID = TargetStackID::ScalableVector;
3971     }
3972     break;
3973   case 24:
3974     if (AArch64::DDDRegClass.hasSubClassEq(RC)) {
3975       assert(Subtarget.hasNEON() && "Unexpected register load without NEON");
3976       Opc = AArch64::LD1Threev1d;
3977       Offset = false;
3978     }
3979     break;
3980   case 32:
3981     if (AArch64::DDDDRegClass.hasSubClassEq(RC)) {
3982       assert(Subtarget.hasNEON() && "Unexpected register load without NEON");
3983       Opc = AArch64::LD1Fourv1d;
3984       Offset = false;
3985     } else if (AArch64::QQRegClass.hasSubClassEq(RC)) {
3986       assert(Subtarget.hasNEON() && "Unexpected register load without NEON");
3987       Opc = AArch64::LD1Twov2d;
3988       Offset = false;
3989     } else if (AArch64::ZPR2RegClass.hasSubClassEq(RC)) {
3990       assert(Subtarget.hasSVE() && "Unexpected register load without SVE");
3991       Opc = AArch64::LDR_ZZXI;
3992       StackID = TargetStackID::ScalableVector;
3993     }
3994     break;
3995   case 48:
3996     if (AArch64::QQQRegClass.hasSubClassEq(RC)) {
3997       assert(Subtarget.hasNEON() && "Unexpected register load without NEON");
3998       Opc = AArch64::LD1Threev2d;
3999       Offset = false;
4000     } else if (AArch64::ZPR3RegClass.hasSubClassEq(RC)) {
4001       assert(Subtarget.hasSVE() && "Unexpected register load without SVE");
4002       Opc = AArch64::LDR_ZZZXI;
4003       StackID = TargetStackID::ScalableVector;
4004     }
4005     break;
4006   case 64:
4007     if (AArch64::QQQQRegClass.hasSubClassEq(RC)) {
4008       assert(Subtarget.hasNEON() && "Unexpected register load without NEON");
4009       Opc = AArch64::LD1Fourv2d;
4010       Offset = false;
4011     } else if (AArch64::ZPR4RegClass.hasSubClassEq(RC)) {
4012       assert(Subtarget.hasSVE() && "Unexpected register load without SVE");
4013       Opc = AArch64::LDR_ZZZZXI;
4014       StackID = TargetStackID::ScalableVector;
4015     }
4016     break;
4017   }
4018 
4019   assert(Opc && "Unknown register class");
4020   MFI.setStackID(FI, StackID);
4021 
4022   const MachineInstrBuilder MI = BuildMI(MBB, MBBI, DebugLoc(), get(Opc))
4023                                      .addReg(DestReg, getDefRegState(true))
4024                                      .addFrameIndex(FI);
4025   if (Offset)
4026     MI.addImm(0);
4027   MI.addMemOperand(MMO);
4028 }
4029 
4030 bool llvm::isNZCVTouchedInInstructionRange(const MachineInstr &DefMI,
4031                                            const MachineInstr &UseMI,
4032                                            const TargetRegisterInfo *TRI) {
4033   return any_of(instructionsWithoutDebug(std::next(DefMI.getIterator()),
4034                                          UseMI.getIterator()),
4035                 [TRI](const MachineInstr &I) {
4036                   return I.modifiesRegister(AArch64::NZCV, TRI) ||
4037                          I.readsRegister(AArch64::NZCV, TRI);
4038                 });
4039 }
4040 
4041 void AArch64InstrInfo::decomposeStackOffsetForDwarfOffsets(
4042     const StackOffset &Offset, int64_t &ByteSized, int64_t &VGSized) {
4043   // The smallest scalable element supported by scaled SVE addressing
4044   // modes are predicates, which are 2 scalable bytes in size. So the scalable
4045   // byte offset must always be a multiple of 2.
4046   assert(Offset.getScalable() % 2 == 0 && "Invalid frame offset");
4047 
4048   // VGSized offsets are divided by '2', because the VG register is the
4049   // the number of 64bit granules as opposed to 128bit vector chunks,
4050   // which is how the 'n' in e.g. MVT::nxv1i8 is modelled.
4051   // So, for a stack offset of 16 MVT::nxv1i8's, the size is n x 16 bytes.
4052   // VG = n * 2 and the dwarf offset must be VG * 8 bytes.
4053   ByteSized = Offset.getFixed();
4054   VGSized = Offset.getScalable() / 2;
4055 }
4056 
4057 /// Returns the offset in parts to which this frame offset can be
4058 /// decomposed for the purpose of describing a frame offset.
4059 /// For non-scalable offsets this is simply its byte size.
4060 void AArch64InstrInfo::decomposeStackOffsetForFrameOffsets(
4061     const StackOffset &Offset, int64_t &NumBytes, int64_t &NumPredicateVectors,
4062     int64_t &NumDataVectors) {
4063   // The smallest scalable element supported by scaled SVE addressing
4064   // modes are predicates, which are 2 scalable bytes in size. So the scalable
4065   // byte offset must always be a multiple of 2.
4066   assert(Offset.getScalable() % 2 == 0 && "Invalid frame offset");
4067 
4068   NumBytes = Offset.getFixed();
4069   NumDataVectors = 0;
4070   NumPredicateVectors = Offset.getScalable() / 2;
4071   // This method is used to get the offsets to adjust the frame offset.
4072   // If the function requires ADDPL to be used and needs more than two ADDPL
4073   // instructions, part of the offset is folded into NumDataVectors so that it
4074   // uses ADDVL for part of it, reducing the number of ADDPL instructions.
4075   if (NumPredicateVectors % 8 == 0 || NumPredicateVectors < -64 ||
4076       NumPredicateVectors > 62) {
4077     NumDataVectors = NumPredicateVectors / 8;
4078     NumPredicateVectors -= NumDataVectors * 8;
4079   }
4080 }
4081 
4082 // Convenience function to create a DWARF expression for
4083 //   Expr + NumBytes + NumVGScaledBytes * AArch64::VG
4084 static void appendVGScaledOffsetExpr(SmallVectorImpl<char> &Expr, int NumBytes,
4085                                      int NumVGScaledBytes, unsigned VG,
4086                                      llvm::raw_string_ostream &Comment) {
4087   uint8_t buffer[16];
4088 
4089   if (NumBytes) {
4090     Expr.push_back(dwarf::DW_OP_consts);
4091     Expr.append(buffer, buffer + encodeSLEB128(NumBytes, buffer));
4092     Expr.push_back((uint8_t)dwarf::DW_OP_plus);
4093     Comment << (NumBytes < 0 ? " - " : " + ") << std::abs(NumBytes);
4094   }
4095 
4096   if (NumVGScaledBytes) {
4097     Expr.push_back((uint8_t)dwarf::DW_OP_consts);
4098     Expr.append(buffer, buffer + encodeSLEB128(NumVGScaledBytes, buffer));
4099 
4100     Expr.push_back((uint8_t)dwarf::DW_OP_bregx);
4101     Expr.append(buffer, buffer + encodeULEB128(VG, buffer));
4102     Expr.push_back(0);
4103 
4104     Expr.push_back((uint8_t)dwarf::DW_OP_mul);
4105     Expr.push_back((uint8_t)dwarf::DW_OP_plus);
4106 
4107     Comment << (NumVGScaledBytes < 0 ? " - " : " + ")
4108             << std::abs(NumVGScaledBytes) << " * VG";
4109   }
4110 }
4111 
4112 // Creates an MCCFIInstruction:
4113 //    { DW_CFA_def_cfa_expression, ULEB128 (sizeof expr), expr }
4114 static MCCFIInstruction createDefCFAExpression(const TargetRegisterInfo &TRI,
4115                                                unsigned Reg,
4116                                                const StackOffset &Offset) {
4117   int64_t NumBytes, NumVGScaledBytes;
4118   AArch64InstrInfo::decomposeStackOffsetForDwarfOffsets(Offset, NumBytes,
4119                                                         NumVGScaledBytes);
4120   std::string CommentBuffer;
4121   llvm::raw_string_ostream Comment(CommentBuffer);
4122 
4123   if (Reg == AArch64::SP)
4124     Comment << "sp";
4125   else if (Reg == AArch64::FP)
4126     Comment << "fp";
4127   else
4128     Comment << printReg(Reg, &TRI);
4129 
4130   // Build up the expression (Reg + NumBytes + NumVGScaledBytes * AArch64::VG)
4131   SmallString<64> Expr;
4132   unsigned DwarfReg = TRI.getDwarfRegNum(Reg, true);
4133   Expr.push_back((uint8_t)(dwarf::DW_OP_breg0 + DwarfReg));
4134   Expr.push_back(0);
4135   appendVGScaledOffsetExpr(Expr, NumBytes, NumVGScaledBytes,
4136                            TRI.getDwarfRegNum(AArch64::VG, true), Comment);
4137 
4138   // Wrap this into DW_CFA_def_cfa.
4139   SmallString<64> DefCfaExpr;
4140   DefCfaExpr.push_back(dwarf::DW_CFA_def_cfa_expression);
4141   uint8_t buffer[16];
4142   DefCfaExpr.append(buffer, buffer + encodeULEB128(Expr.size(), buffer));
4143   DefCfaExpr.append(Expr.str());
4144   return MCCFIInstruction::createEscape(nullptr, DefCfaExpr.str(),
4145                                         Comment.str());
4146 }
4147 
4148 MCCFIInstruction llvm::createDefCFA(const TargetRegisterInfo &TRI,
4149                                     unsigned FrameReg, unsigned Reg,
4150                                     const StackOffset &Offset) {
4151   if (Offset.getScalable())
4152     return createDefCFAExpression(TRI, Reg, Offset);
4153 
4154   if (FrameReg == Reg)
4155     return MCCFIInstruction::cfiDefCfaOffset(nullptr, int(Offset.getFixed()));
4156 
4157   unsigned DwarfReg = TRI.getDwarfRegNum(Reg, true);
4158   return MCCFIInstruction::cfiDefCfa(nullptr, DwarfReg, (int)Offset.getFixed());
4159 }
4160 
4161 MCCFIInstruction llvm::createCFAOffset(const TargetRegisterInfo &TRI,
4162                                        unsigned Reg,
4163                                        const StackOffset &OffsetFromDefCFA) {
4164   int64_t NumBytes, NumVGScaledBytes;
4165   AArch64InstrInfo::decomposeStackOffsetForDwarfOffsets(
4166       OffsetFromDefCFA, NumBytes, NumVGScaledBytes);
4167 
4168   unsigned DwarfReg = TRI.getDwarfRegNum(Reg, true);
4169 
4170   // Non-scalable offsets can use DW_CFA_offset directly.
4171   if (!NumVGScaledBytes)
4172     return MCCFIInstruction::createOffset(nullptr, DwarfReg, NumBytes);
4173 
4174   std::string CommentBuffer;
4175   llvm::raw_string_ostream Comment(CommentBuffer);
4176   Comment << printReg(Reg, &TRI) << "  @ cfa";
4177 
4178   // Build up expression (NumBytes + NumVGScaledBytes * AArch64::VG)
4179   SmallString<64> OffsetExpr;
4180   appendVGScaledOffsetExpr(OffsetExpr, NumBytes, NumVGScaledBytes,
4181                            TRI.getDwarfRegNum(AArch64::VG, true), Comment);
4182 
4183   // Wrap this into DW_CFA_expression
4184   SmallString<64> CfaExpr;
4185   CfaExpr.push_back(dwarf::DW_CFA_expression);
4186   uint8_t buffer[16];
4187   CfaExpr.append(buffer, buffer + encodeULEB128(DwarfReg, buffer));
4188   CfaExpr.append(buffer, buffer + encodeULEB128(OffsetExpr.size(), buffer));
4189   CfaExpr.append(OffsetExpr.str());
4190 
4191   return MCCFIInstruction::createEscape(nullptr, CfaExpr.str(), Comment.str());
4192 }
4193 
4194 // Helper function to emit a frame offset adjustment from a given
4195 // pointer (SrcReg), stored into DestReg. This function is explicit
4196 // in that it requires the opcode.
4197 static void emitFrameOffsetAdj(MachineBasicBlock &MBB,
4198                                MachineBasicBlock::iterator MBBI,
4199                                const DebugLoc &DL, unsigned DestReg,
4200                                unsigned SrcReg, int64_t Offset, unsigned Opc,
4201                                const TargetInstrInfo *TII,
4202                                MachineInstr::MIFlag Flag, bool NeedsWinCFI,
4203                                bool *HasWinCFI, bool EmitCFAOffset,
4204                                StackOffset CFAOffset, unsigned FrameReg) {
4205   int Sign = 1;
4206   unsigned MaxEncoding, ShiftSize;
4207   switch (Opc) {
4208   case AArch64::ADDXri:
4209   case AArch64::ADDSXri:
4210   case AArch64::SUBXri:
4211   case AArch64::SUBSXri:
4212     MaxEncoding = 0xfff;
4213     ShiftSize = 12;
4214     break;
4215   case AArch64::ADDVL_XXI:
4216   case AArch64::ADDPL_XXI:
4217     MaxEncoding = 31;
4218     ShiftSize = 0;
4219     if (Offset < 0) {
4220       MaxEncoding = 32;
4221       Sign = -1;
4222       Offset = -Offset;
4223     }
4224     break;
4225   default:
4226     llvm_unreachable("Unsupported opcode");
4227   }
4228 
4229   // `Offset` can be in bytes or in "scalable bytes".
4230   int VScale = 1;
4231   if (Opc == AArch64::ADDVL_XXI)
4232     VScale = 16;
4233   else if (Opc == AArch64::ADDPL_XXI)
4234     VScale = 2;
4235 
4236   // FIXME: If the offset won't fit in 24-bits, compute the offset into a
4237   // scratch register.  If DestReg is a virtual register, use it as the
4238   // scratch register; otherwise, create a new virtual register (to be
4239   // replaced by the scavenger at the end of PEI).  That case can be optimized
4240   // slightly if DestReg is SP which is always 16-byte aligned, so the scratch
4241   // register can be loaded with offset%8 and the add/sub can use an extending
4242   // instruction with LSL#3.
4243   // Currently the function handles any offsets but generates a poor sequence
4244   // of code.
4245   //  assert(Offset < (1 << 24) && "unimplemented reg plus immediate");
4246 
4247   const unsigned MaxEncodableValue = MaxEncoding << ShiftSize;
4248   Register TmpReg = DestReg;
4249   if (TmpReg == AArch64::XZR)
4250     TmpReg = MBB.getParent()->getRegInfo().createVirtualRegister(
4251         &AArch64::GPR64RegClass);
4252   do {
4253     uint64_t ThisVal = std::min<uint64_t>(Offset, MaxEncodableValue);
4254     unsigned LocalShiftSize = 0;
4255     if (ThisVal > MaxEncoding) {
4256       ThisVal = ThisVal >> ShiftSize;
4257       LocalShiftSize = ShiftSize;
4258     }
4259     assert((ThisVal >> ShiftSize) <= MaxEncoding &&
4260            "Encoding cannot handle value that big");
4261 
4262     Offset -= ThisVal << LocalShiftSize;
4263     if (Offset == 0)
4264       TmpReg = DestReg;
4265     auto MBI = BuildMI(MBB, MBBI, DL, TII->get(Opc), TmpReg)
4266                    .addReg(SrcReg)
4267                    .addImm(Sign * (int)ThisVal);
4268     if (ShiftSize)
4269       MBI = MBI.addImm(
4270           AArch64_AM::getShifterImm(AArch64_AM::LSL, LocalShiftSize));
4271     MBI = MBI.setMIFlag(Flag);
4272 
4273     auto Change =
4274         VScale == 1
4275             ? StackOffset::getFixed(ThisVal << LocalShiftSize)
4276             : StackOffset::getScalable(VScale * (ThisVal << LocalShiftSize));
4277     if (Sign == -1 || Opc == AArch64::SUBXri || Opc == AArch64::SUBSXri)
4278       CFAOffset += Change;
4279     else
4280       CFAOffset -= Change;
4281     if (EmitCFAOffset && DestReg == TmpReg) {
4282       MachineFunction &MF = *MBB.getParent();
4283       const TargetSubtargetInfo &STI = MF.getSubtarget();
4284       const TargetRegisterInfo &TRI = *STI.getRegisterInfo();
4285 
4286       unsigned CFIIndex =
4287           MF.addFrameInst(createDefCFA(TRI, FrameReg, DestReg, CFAOffset));
4288       BuildMI(MBB, MBBI, DL, TII->get(TargetOpcode::CFI_INSTRUCTION))
4289           .addCFIIndex(CFIIndex)
4290           .setMIFlags(Flag);
4291     }
4292 
4293     if (NeedsWinCFI) {
4294       assert(Sign == 1 && "SEH directives should always have a positive sign");
4295       int Imm = (int)(ThisVal << LocalShiftSize);
4296       if ((DestReg == AArch64::FP && SrcReg == AArch64::SP) ||
4297           (SrcReg == AArch64::FP && DestReg == AArch64::SP)) {
4298         if (HasWinCFI)
4299           *HasWinCFI = true;
4300         if (Imm == 0)
4301           BuildMI(MBB, MBBI, DL, TII->get(AArch64::SEH_SetFP)).setMIFlag(Flag);
4302         else
4303           BuildMI(MBB, MBBI, DL, TII->get(AArch64::SEH_AddFP))
4304               .addImm(Imm)
4305               .setMIFlag(Flag);
4306         assert(Offset == 0 && "Expected remaining offset to be zero to "
4307                               "emit a single SEH directive");
4308       } else if (DestReg == AArch64::SP) {
4309         if (HasWinCFI)
4310           *HasWinCFI = true;
4311         assert(SrcReg == AArch64::SP && "Unexpected SrcReg for SEH_StackAlloc");
4312         BuildMI(MBB, MBBI, DL, TII->get(AArch64::SEH_StackAlloc))
4313             .addImm(Imm)
4314             .setMIFlag(Flag);
4315       }
4316       if (HasWinCFI)
4317         *HasWinCFI = true;
4318     }
4319 
4320     SrcReg = TmpReg;
4321   } while (Offset);
4322 }
4323 
4324 void llvm::emitFrameOffset(MachineBasicBlock &MBB,
4325                            MachineBasicBlock::iterator MBBI, const DebugLoc &DL,
4326                            unsigned DestReg, unsigned SrcReg,
4327                            StackOffset Offset, const TargetInstrInfo *TII,
4328                            MachineInstr::MIFlag Flag, bool SetNZCV,
4329                            bool NeedsWinCFI, bool *HasWinCFI,
4330                            bool EmitCFAOffset, StackOffset CFAOffset,
4331                            unsigned FrameReg) {
4332   int64_t Bytes, NumPredicateVectors, NumDataVectors;
4333   AArch64InstrInfo::decomposeStackOffsetForFrameOffsets(
4334       Offset, Bytes, NumPredicateVectors, NumDataVectors);
4335 
4336   // First emit non-scalable frame offsets, or a simple 'mov'.
4337   if (Bytes || (!Offset && SrcReg != DestReg)) {
4338     assert((DestReg != AArch64::SP || Bytes % 8 == 0) &&
4339            "SP increment/decrement not 8-byte aligned");
4340     unsigned Opc = SetNZCV ? AArch64::ADDSXri : AArch64::ADDXri;
4341     if (Bytes < 0) {
4342       Bytes = -Bytes;
4343       Opc = SetNZCV ? AArch64::SUBSXri : AArch64::SUBXri;
4344     }
4345     emitFrameOffsetAdj(MBB, MBBI, DL, DestReg, SrcReg, Bytes, Opc, TII, Flag,
4346                        NeedsWinCFI, HasWinCFI, EmitCFAOffset, CFAOffset,
4347                        FrameReg);
4348     CFAOffset += (Opc == AArch64::ADDXri || Opc == AArch64::ADDSXri)
4349                      ? StackOffset::getFixed(-Bytes)
4350                      : StackOffset::getFixed(Bytes);
4351     SrcReg = DestReg;
4352     FrameReg = DestReg;
4353   }
4354 
4355   assert(!(SetNZCV && (NumPredicateVectors || NumDataVectors)) &&
4356          "SetNZCV not supported with SVE vectors");
4357   assert(!(NeedsWinCFI && (NumPredicateVectors || NumDataVectors)) &&
4358          "WinCFI not supported with SVE vectors");
4359 
4360   if (NumDataVectors) {
4361     emitFrameOffsetAdj(MBB, MBBI, DL, DestReg, SrcReg, NumDataVectors,
4362                        AArch64::ADDVL_XXI, TII, Flag, NeedsWinCFI, nullptr,
4363                        EmitCFAOffset, CFAOffset, FrameReg);
4364     CFAOffset += StackOffset::getScalable(-NumDataVectors * 16);
4365     SrcReg = DestReg;
4366   }
4367 
4368   if (NumPredicateVectors) {
4369     assert(DestReg != AArch64::SP && "Unaligned access to SP");
4370     emitFrameOffsetAdj(MBB, MBBI, DL, DestReg, SrcReg, NumPredicateVectors,
4371                        AArch64::ADDPL_XXI, TII, Flag, NeedsWinCFI, nullptr,
4372                        EmitCFAOffset, CFAOffset, FrameReg);
4373   }
4374 }
4375 
4376 MachineInstr *AArch64InstrInfo::foldMemoryOperandImpl(
4377     MachineFunction &MF, MachineInstr &MI, ArrayRef<unsigned> Ops,
4378     MachineBasicBlock::iterator InsertPt, int FrameIndex,
4379     LiveIntervals *LIS, VirtRegMap *VRM) const {
4380   // This is a bit of a hack. Consider this instruction:
4381   //
4382   //   %0 = COPY %sp; GPR64all:%0
4383   //
4384   // We explicitly chose GPR64all for the virtual register so such a copy might
4385   // be eliminated by RegisterCoalescer. However, that may not be possible, and
4386   // %0 may even spill. We can't spill %sp, and since it is in the GPR64all
4387   // register class, TargetInstrInfo::foldMemoryOperand() is going to try.
4388   //
4389   // To prevent that, we are going to constrain the %0 register class here.
4390   //
4391   // <rdar://problem/11522048>
4392   //
4393   if (MI.isFullCopy()) {
4394     Register DstReg = MI.getOperand(0).getReg();
4395     Register SrcReg = MI.getOperand(1).getReg();
4396     if (SrcReg == AArch64::SP && Register::isVirtualRegister(DstReg)) {
4397       MF.getRegInfo().constrainRegClass(DstReg, &AArch64::GPR64RegClass);
4398       return nullptr;
4399     }
4400     if (DstReg == AArch64::SP && Register::isVirtualRegister(SrcReg)) {
4401       MF.getRegInfo().constrainRegClass(SrcReg, &AArch64::GPR64RegClass);
4402       return nullptr;
4403     }
4404   }
4405 
4406   // Handle the case where a copy is being spilled or filled but the source
4407   // and destination register class don't match.  For example:
4408   //
4409   //   %0 = COPY %xzr; GPR64common:%0
4410   //
4411   // In this case we can still safely fold away the COPY and generate the
4412   // following spill code:
4413   //
4414   //   STRXui %xzr, %stack.0
4415   //
4416   // This also eliminates spilled cross register class COPYs (e.g. between x and
4417   // d regs) of the same size.  For example:
4418   //
4419   //   %0 = COPY %1; GPR64:%0, FPR64:%1
4420   //
4421   // will be filled as
4422   //
4423   //   LDRDui %0, fi<#0>
4424   //
4425   // instead of
4426   //
4427   //   LDRXui %Temp, fi<#0>
4428   //   %0 = FMOV %Temp
4429   //
4430   if (MI.isCopy() && Ops.size() == 1 &&
4431       // Make sure we're only folding the explicit COPY defs/uses.
4432       (Ops[0] == 0 || Ops[0] == 1)) {
4433     bool IsSpill = Ops[0] == 0;
4434     bool IsFill = !IsSpill;
4435     const TargetRegisterInfo &TRI = *MF.getSubtarget().getRegisterInfo();
4436     const MachineRegisterInfo &MRI = MF.getRegInfo();
4437     MachineBasicBlock &MBB = *MI.getParent();
4438     const MachineOperand &DstMO = MI.getOperand(0);
4439     const MachineOperand &SrcMO = MI.getOperand(1);
4440     Register DstReg = DstMO.getReg();
4441     Register SrcReg = SrcMO.getReg();
4442     // This is slightly expensive to compute for physical regs since
4443     // getMinimalPhysRegClass is slow.
4444     auto getRegClass = [&](unsigned Reg) {
4445       return Register::isVirtualRegister(Reg) ? MRI.getRegClass(Reg)
4446                                               : TRI.getMinimalPhysRegClass(Reg);
4447     };
4448 
4449     if (DstMO.getSubReg() == 0 && SrcMO.getSubReg() == 0) {
4450       assert(TRI.getRegSizeInBits(*getRegClass(DstReg)) ==
4451                  TRI.getRegSizeInBits(*getRegClass(SrcReg)) &&
4452              "Mismatched register size in non subreg COPY");
4453       if (IsSpill)
4454         storeRegToStackSlot(MBB, InsertPt, SrcReg, SrcMO.isKill(), FrameIndex,
4455                             getRegClass(SrcReg), &TRI);
4456       else
4457         loadRegFromStackSlot(MBB, InsertPt, DstReg, FrameIndex,
4458                              getRegClass(DstReg), &TRI);
4459       return &*--InsertPt;
4460     }
4461 
4462     // Handle cases like spilling def of:
4463     //
4464     //   %0:sub_32<def,read-undef> = COPY %wzr; GPR64common:%0
4465     //
4466     // where the physical register source can be widened and stored to the full
4467     // virtual reg destination stack slot, in this case producing:
4468     //
4469     //   STRXui %xzr, %stack.0
4470     //
4471     if (IsSpill && DstMO.isUndef() && Register::isPhysicalRegister(SrcReg)) {
4472       assert(SrcMO.getSubReg() == 0 &&
4473              "Unexpected subreg on physical register");
4474       const TargetRegisterClass *SpillRC;
4475       unsigned SpillSubreg;
4476       switch (DstMO.getSubReg()) {
4477       default:
4478         SpillRC = nullptr;
4479         break;
4480       case AArch64::sub_32:
4481       case AArch64::ssub:
4482         if (AArch64::GPR32RegClass.contains(SrcReg)) {
4483           SpillRC = &AArch64::GPR64RegClass;
4484           SpillSubreg = AArch64::sub_32;
4485         } else if (AArch64::FPR32RegClass.contains(SrcReg)) {
4486           SpillRC = &AArch64::FPR64RegClass;
4487           SpillSubreg = AArch64::ssub;
4488         } else
4489           SpillRC = nullptr;
4490         break;
4491       case AArch64::dsub:
4492         if (AArch64::FPR64RegClass.contains(SrcReg)) {
4493           SpillRC = &AArch64::FPR128RegClass;
4494           SpillSubreg = AArch64::dsub;
4495         } else
4496           SpillRC = nullptr;
4497         break;
4498       }
4499 
4500       if (SpillRC)
4501         if (unsigned WidenedSrcReg =
4502                 TRI.getMatchingSuperReg(SrcReg, SpillSubreg, SpillRC)) {
4503           storeRegToStackSlot(MBB, InsertPt, WidenedSrcReg, SrcMO.isKill(),
4504                               FrameIndex, SpillRC, &TRI);
4505           return &*--InsertPt;
4506         }
4507     }
4508 
4509     // Handle cases like filling use of:
4510     //
4511     //   %0:sub_32<def,read-undef> = COPY %1; GPR64:%0, GPR32:%1
4512     //
4513     // where we can load the full virtual reg source stack slot, into the subreg
4514     // destination, in this case producing:
4515     //
4516     //   LDRWui %0:sub_32<def,read-undef>, %stack.0
4517     //
4518     if (IsFill && SrcMO.getSubReg() == 0 && DstMO.isUndef()) {
4519       const TargetRegisterClass *FillRC;
4520       switch (DstMO.getSubReg()) {
4521       default:
4522         FillRC = nullptr;
4523         break;
4524       case AArch64::sub_32:
4525         FillRC = &AArch64::GPR32RegClass;
4526         break;
4527       case AArch64::ssub:
4528         FillRC = &AArch64::FPR32RegClass;
4529         break;
4530       case AArch64::dsub:
4531         FillRC = &AArch64::FPR64RegClass;
4532         break;
4533       }
4534 
4535       if (FillRC) {
4536         assert(TRI.getRegSizeInBits(*getRegClass(SrcReg)) ==
4537                    TRI.getRegSizeInBits(*FillRC) &&
4538                "Mismatched regclass size on folded subreg COPY");
4539         loadRegFromStackSlot(MBB, InsertPt, DstReg, FrameIndex, FillRC, &TRI);
4540         MachineInstr &LoadMI = *--InsertPt;
4541         MachineOperand &LoadDst = LoadMI.getOperand(0);
4542         assert(LoadDst.getSubReg() == 0 && "unexpected subreg on fill load");
4543         LoadDst.setSubReg(DstMO.getSubReg());
4544         LoadDst.setIsUndef();
4545         return &LoadMI;
4546       }
4547     }
4548   }
4549 
4550   // Cannot fold.
4551   return nullptr;
4552 }
4553 
4554 int llvm::isAArch64FrameOffsetLegal(const MachineInstr &MI,
4555                                     StackOffset &SOffset,
4556                                     bool *OutUseUnscaledOp,
4557                                     unsigned *OutUnscaledOp,
4558                                     int64_t *EmittableOffset) {
4559   // Set output values in case of early exit.
4560   if (EmittableOffset)
4561     *EmittableOffset = 0;
4562   if (OutUseUnscaledOp)
4563     *OutUseUnscaledOp = false;
4564   if (OutUnscaledOp)
4565     *OutUnscaledOp = 0;
4566 
4567   // Exit early for structured vector spills/fills as they can't take an
4568   // immediate offset.
4569   switch (MI.getOpcode()) {
4570   default:
4571     break;
4572   case AArch64::LD1Twov2d:
4573   case AArch64::LD1Threev2d:
4574   case AArch64::LD1Fourv2d:
4575   case AArch64::LD1Twov1d:
4576   case AArch64::LD1Threev1d:
4577   case AArch64::LD1Fourv1d:
4578   case AArch64::ST1Twov2d:
4579   case AArch64::ST1Threev2d:
4580   case AArch64::ST1Fourv2d:
4581   case AArch64::ST1Twov1d:
4582   case AArch64::ST1Threev1d:
4583   case AArch64::ST1Fourv1d:
4584   case AArch64::ST1i8:
4585   case AArch64::ST1i16:
4586   case AArch64::ST1i32:
4587   case AArch64::ST1i64:
4588   case AArch64::IRG:
4589   case AArch64::IRGstack:
4590   case AArch64::STGloop:
4591   case AArch64::STZGloop:
4592     return AArch64FrameOffsetCannotUpdate;
4593   }
4594 
4595   // Get the min/max offset and the scale.
4596   TypeSize ScaleValue(0U, false);
4597   unsigned Width;
4598   int64_t MinOff, MaxOff;
4599   if (!AArch64InstrInfo::getMemOpInfo(MI.getOpcode(), ScaleValue, Width, MinOff,
4600                                       MaxOff))
4601     llvm_unreachable("unhandled opcode in isAArch64FrameOffsetLegal");
4602 
4603   // Construct the complete offset.
4604   bool IsMulVL = ScaleValue.isScalable();
4605   unsigned Scale = ScaleValue.getKnownMinSize();
4606   int64_t Offset = IsMulVL ? SOffset.getScalable() : SOffset.getFixed();
4607 
4608   const MachineOperand &ImmOpnd =
4609       MI.getOperand(AArch64InstrInfo::getLoadStoreImmIdx(MI.getOpcode()));
4610   Offset += ImmOpnd.getImm() * Scale;
4611 
4612   // If the offset doesn't match the scale, we rewrite the instruction to
4613   // use the unscaled instruction instead. Likewise, if we have a negative
4614   // offset and there is an unscaled op to use.
4615   Optional<unsigned> UnscaledOp =
4616       AArch64InstrInfo::getUnscaledLdSt(MI.getOpcode());
4617   bool useUnscaledOp = UnscaledOp && (Offset % Scale || Offset < 0);
4618   if (useUnscaledOp &&
4619       !AArch64InstrInfo::getMemOpInfo(*UnscaledOp, ScaleValue, Width, MinOff,
4620                                       MaxOff))
4621     llvm_unreachable("unhandled opcode in isAArch64FrameOffsetLegal");
4622 
4623   Scale = ScaleValue.getKnownMinSize();
4624   assert(IsMulVL == ScaleValue.isScalable() &&
4625          "Unscaled opcode has different value for scalable");
4626 
4627   int64_t Remainder = Offset % Scale;
4628   assert(!(Remainder && useUnscaledOp) &&
4629          "Cannot have remainder when using unscaled op");
4630 
4631   assert(MinOff < MaxOff && "Unexpected Min/Max offsets");
4632   int64_t NewOffset = Offset / Scale;
4633   if (MinOff <= NewOffset && NewOffset <= MaxOff)
4634     Offset = Remainder;
4635   else {
4636     NewOffset = NewOffset < 0 ? MinOff : MaxOff;
4637     Offset = Offset - NewOffset * Scale + Remainder;
4638   }
4639 
4640   if (EmittableOffset)
4641     *EmittableOffset = NewOffset;
4642   if (OutUseUnscaledOp)
4643     *OutUseUnscaledOp = useUnscaledOp;
4644   if (OutUnscaledOp && UnscaledOp)
4645     *OutUnscaledOp = *UnscaledOp;
4646 
4647   if (IsMulVL)
4648     SOffset = StackOffset::get(SOffset.getFixed(), Offset);
4649   else
4650     SOffset = StackOffset::get(Offset, SOffset.getScalable());
4651   return AArch64FrameOffsetCanUpdate |
4652          (SOffset ? 0 : AArch64FrameOffsetIsLegal);
4653 }
4654 
4655 bool llvm::rewriteAArch64FrameIndex(MachineInstr &MI, unsigned FrameRegIdx,
4656                                     unsigned FrameReg, StackOffset &Offset,
4657                                     const AArch64InstrInfo *TII) {
4658   unsigned Opcode = MI.getOpcode();
4659   unsigned ImmIdx = FrameRegIdx + 1;
4660 
4661   if (Opcode == AArch64::ADDSXri || Opcode == AArch64::ADDXri) {
4662     Offset += StackOffset::getFixed(MI.getOperand(ImmIdx).getImm());
4663     emitFrameOffset(*MI.getParent(), MI, MI.getDebugLoc(),
4664                     MI.getOperand(0).getReg(), FrameReg, Offset, TII,
4665                     MachineInstr::NoFlags, (Opcode == AArch64::ADDSXri));
4666     MI.eraseFromParent();
4667     Offset = StackOffset();
4668     return true;
4669   }
4670 
4671   int64_t NewOffset;
4672   unsigned UnscaledOp;
4673   bool UseUnscaledOp;
4674   int Status = isAArch64FrameOffsetLegal(MI, Offset, &UseUnscaledOp,
4675                                          &UnscaledOp, &NewOffset);
4676   if (Status & AArch64FrameOffsetCanUpdate) {
4677     if (Status & AArch64FrameOffsetIsLegal)
4678       // Replace the FrameIndex with FrameReg.
4679       MI.getOperand(FrameRegIdx).ChangeToRegister(FrameReg, false);
4680     if (UseUnscaledOp)
4681       MI.setDesc(TII->get(UnscaledOp));
4682 
4683     MI.getOperand(ImmIdx).ChangeToImmediate(NewOffset);
4684     return !Offset;
4685   }
4686 
4687   return false;
4688 }
4689 
4690 MCInst AArch64InstrInfo::getNop() const {
4691   return MCInstBuilder(AArch64::HINT).addImm(0);
4692 }
4693 
4694 // AArch64 supports MachineCombiner.
4695 bool AArch64InstrInfo::useMachineCombiner() const { return true; }
4696 
4697 // True when Opc sets flag
4698 static bool isCombineInstrSettingFlag(unsigned Opc) {
4699   switch (Opc) {
4700   case AArch64::ADDSWrr:
4701   case AArch64::ADDSWri:
4702   case AArch64::ADDSXrr:
4703   case AArch64::ADDSXri:
4704   case AArch64::SUBSWrr:
4705   case AArch64::SUBSXrr:
4706   // Note: MSUB Wd,Wn,Wm,Wi -> Wd = Wi - WnxWm, not Wd=WnxWm - Wi.
4707   case AArch64::SUBSWri:
4708   case AArch64::SUBSXri:
4709     return true;
4710   default:
4711     break;
4712   }
4713   return false;
4714 }
4715 
4716 // 32b Opcodes that can be combined with a MUL
4717 static bool isCombineInstrCandidate32(unsigned Opc) {
4718   switch (Opc) {
4719   case AArch64::ADDWrr:
4720   case AArch64::ADDWri:
4721   case AArch64::SUBWrr:
4722   case AArch64::ADDSWrr:
4723   case AArch64::ADDSWri:
4724   case AArch64::SUBSWrr:
4725   // Note: MSUB Wd,Wn,Wm,Wi -> Wd = Wi - WnxWm, not Wd=WnxWm - Wi.
4726   case AArch64::SUBWri:
4727   case AArch64::SUBSWri:
4728     return true;
4729   default:
4730     break;
4731   }
4732   return false;
4733 }
4734 
4735 // 64b Opcodes that can be combined with a MUL
4736 static bool isCombineInstrCandidate64(unsigned Opc) {
4737   switch (Opc) {
4738   case AArch64::ADDXrr:
4739   case AArch64::ADDXri:
4740   case AArch64::SUBXrr:
4741   case AArch64::ADDSXrr:
4742   case AArch64::ADDSXri:
4743   case AArch64::SUBSXrr:
4744   // Note: MSUB Wd,Wn,Wm,Wi -> Wd = Wi - WnxWm, not Wd=WnxWm - Wi.
4745   case AArch64::SUBXri:
4746   case AArch64::SUBSXri:
4747   case AArch64::ADDv8i8:
4748   case AArch64::ADDv16i8:
4749   case AArch64::ADDv4i16:
4750   case AArch64::ADDv8i16:
4751   case AArch64::ADDv2i32:
4752   case AArch64::ADDv4i32:
4753   case AArch64::SUBv8i8:
4754   case AArch64::SUBv16i8:
4755   case AArch64::SUBv4i16:
4756   case AArch64::SUBv8i16:
4757   case AArch64::SUBv2i32:
4758   case AArch64::SUBv4i32:
4759     return true;
4760   default:
4761     break;
4762   }
4763   return false;
4764 }
4765 
4766 // FP Opcodes that can be combined with a FMUL.
4767 static bool isCombineInstrCandidateFP(const MachineInstr &Inst) {
4768   switch (Inst.getOpcode()) {
4769   default:
4770     break;
4771   case AArch64::FADDHrr:
4772   case AArch64::FADDSrr:
4773   case AArch64::FADDDrr:
4774   case AArch64::FADDv4f16:
4775   case AArch64::FADDv8f16:
4776   case AArch64::FADDv2f32:
4777   case AArch64::FADDv2f64:
4778   case AArch64::FADDv4f32:
4779   case AArch64::FSUBHrr:
4780   case AArch64::FSUBSrr:
4781   case AArch64::FSUBDrr:
4782   case AArch64::FSUBv4f16:
4783   case AArch64::FSUBv8f16:
4784   case AArch64::FSUBv2f32:
4785   case AArch64::FSUBv2f64:
4786   case AArch64::FSUBv4f32:
4787     TargetOptions Options = Inst.getParent()->getParent()->getTarget().Options;
4788     // We can fuse FADD/FSUB with FMUL, if fusion is either allowed globally by
4789     // the target options or if FADD/FSUB has the contract fast-math flag.
4790     return Options.UnsafeFPMath ||
4791            Options.AllowFPOpFusion == FPOpFusion::Fast ||
4792            Inst.getFlag(MachineInstr::FmContract);
4793     return true;
4794   }
4795   return false;
4796 }
4797 
4798 // Opcodes that can be combined with a MUL
4799 static bool isCombineInstrCandidate(unsigned Opc) {
4800   return (isCombineInstrCandidate32(Opc) || isCombineInstrCandidate64(Opc));
4801 }
4802 
4803 //
4804 // Utility routine that checks if \param MO is defined by an
4805 // \param CombineOpc instruction in the basic block \param MBB
4806 static bool canCombine(MachineBasicBlock &MBB, MachineOperand &MO,
4807                        unsigned CombineOpc, unsigned ZeroReg = 0,
4808                        bool CheckZeroReg = false) {
4809   MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo();
4810   MachineInstr *MI = nullptr;
4811 
4812   if (MO.isReg() && Register::isVirtualRegister(MO.getReg()))
4813     MI = MRI.getUniqueVRegDef(MO.getReg());
4814   // And it needs to be in the trace (otherwise, it won't have a depth).
4815   if (!MI || MI->getParent() != &MBB || (unsigned)MI->getOpcode() != CombineOpc)
4816     return false;
4817   // Must only used by the user we combine with.
4818   if (!MRI.hasOneNonDBGUse(MI->getOperand(0).getReg()))
4819     return false;
4820 
4821   if (CheckZeroReg) {
4822     assert(MI->getNumOperands() >= 4 && MI->getOperand(0).isReg() &&
4823            MI->getOperand(1).isReg() && MI->getOperand(2).isReg() &&
4824            MI->getOperand(3).isReg() && "MAdd/MSub must have a least 4 regs");
4825     // The third input reg must be zero.
4826     if (MI->getOperand(3).getReg() != ZeroReg)
4827       return false;
4828   }
4829 
4830   return true;
4831 }
4832 
4833 //
4834 // Is \param MO defined by an integer multiply and can be combined?
4835 static bool canCombineWithMUL(MachineBasicBlock &MBB, MachineOperand &MO,
4836                               unsigned MulOpc, unsigned ZeroReg) {
4837   return canCombine(MBB, MO, MulOpc, ZeroReg, true);
4838 }
4839 
4840 //
4841 // Is \param MO defined by a floating-point multiply and can be combined?
4842 static bool canCombineWithFMUL(MachineBasicBlock &MBB, MachineOperand &MO,
4843                                unsigned MulOpc) {
4844   return canCombine(MBB, MO, MulOpc);
4845 }
4846 
4847 // TODO: There are many more machine instruction opcodes to match:
4848 //       1. Other data types (integer, vectors)
4849 //       2. Other math / logic operations (xor, or)
4850 //       3. Other forms of the same operation (intrinsics and other variants)
4851 bool AArch64InstrInfo::isAssociativeAndCommutative(
4852     const MachineInstr &Inst) const {
4853   switch (Inst.getOpcode()) {
4854   case AArch64::FADDDrr:
4855   case AArch64::FADDSrr:
4856   case AArch64::FADDv2f32:
4857   case AArch64::FADDv2f64:
4858   case AArch64::FADDv4f32:
4859   case AArch64::FMULDrr:
4860   case AArch64::FMULSrr:
4861   case AArch64::FMULX32:
4862   case AArch64::FMULX64:
4863   case AArch64::FMULXv2f32:
4864   case AArch64::FMULXv2f64:
4865   case AArch64::FMULXv4f32:
4866   case AArch64::FMULv2f32:
4867   case AArch64::FMULv2f64:
4868   case AArch64::FMULv4f32:
4869     return Inst.getParent()->getParent()->getTarget().Options.UnsafeFPMath;
4870   default:
4871     return false;
4872   }
4873 }
4874 
4875 /// Find instructions that can be turned into madd.
4876 static bool getMaddPatterns(MachineInstr &Root,
4877                             SmallVectorImpl<MachineCombinerPattern> &Patterns) {
4878   unsigned Opc = Root.getOpcode();
4879   MachineBasicBlock &MBB = *Root.getParent();
4880   bool Found = false;
4881 
4882   if (!isCombineInstrCandidate(Opc))
4883     return false;
4884   if (isCombineInstrSettingFlag(Opc)) {
4885     int Cmp_NZCV = Root.findRegisterDefOperandIdx(AArch64::NZCV, true);
4886     // When NZCV is live bail out.
4887     if (Cmp_NZCV == -1)
4888       return false;
4889     unsigned NewOpc = convertToNonFlagSettingOpc(Root);
4890     // When opcode can't change bail out.
4891     // CHECKME: do we miss any cases for opcode conversion?
4892     if (NewOpc == Opc)
4893       return false;
4894     Opc = NewOpc;
4895   }
4896 
4897   auto setFound = [&](int Opcode, int Operand, unsigned ZeroReg,
4898                       MachineCombinerPattern Pattern) {
4899     if (canCombineWithMUL(MBB, Root.getOperand(Operand), Opcode, ZeroReg)) {
4900       Patterns.push_back(Pattern);
4901       Found = true;
4902     }
4903   };
4904 
4905   auto setVFound = [&](int Opcode, int Operand, MachineCombinerPattern Pattern) {
4906     if (canCombine(MBB, Root.getOperand(Operand), Opcode)) {
4907       Patterns.push_back(Pattern);
4908       Found = true;
4909     }
4910   };
4911 
4912   typedef MachineCombinerPattern MCP;
4913 
4914   switch (Opc) {
4915   default:
4916     break;
4917   case AArch64::ADDWrr:
4918     assert(Root.getOperand(1).isReg() && Root.getOperand(2).isReg() &&
4919            "ADDWrr does not have register operands");
4920     setFound(AArch64::MADDWrrr, 1, AArch64::WZR, MCP::MULADDW_OP1);
4921     setFound(AArch64::MADDWrrr, 2, AArch64::WZR, MCP::MULADDW_OP2);
4922     break;
4923   case AArch64::ADDXrr:
4924     setFound(AArch64::MADDXrrr, 1, AArch64::XZR, MCP::MULADDX_OP1);
4925     setFound(AArch64::MADDXrrr, 2, AArch64::XZR, MCP::MULADDX_OP2);
4926     break;
4927   case AArch64::SUBWrr:
4928     setFound(AArch64::MADDWrrr, 1, AArch64::WZR, MCP::MULSUBW_OP1);
4929     setFound(AArch64::MADDWrrr, 2, AArch64::WZR, MCP::MULSUBW_OP2);
4930     break;
4931   case AArch64::SUBXrr:
4932     setFound(AArch64::MADDXrrr, 1, AArch64::XZR, MCP::MULSUBX_OP1);
4933     setFound(AArch64::MADDXrrr, 2, AArch64::XZR, MCP::MULSUBX_OP2);
4934     break;
4935   case AArch64::ADDWri:
4936     setFound(AArch64::MADDWrrr, 1, AArch64::WZR, MCP::MULADDWI_OP1);
4937     break;
4938   case AArch64::ADDXri:
4939     setFound(AArch64::MADDXrrr, 1, AArch64::XZR, MCP::MULADDXI_OP1);
4940     break;
4941   case AArch64::SUBWri:
4942     setFound(AArch64::MADDWrrr, 1, AArch64::WZR, MCP::MULSUBWI_OP1);
4943     break;
4944   case AArch64::SUBXri:
4945     setFound(AArch64::MADDXrrr, 1, AArch64::XZR, MCP::MULSUBXI_OP1);
4946     break;
4947   case AArch64::ADDv8i8:
4948     setVFound(AArch64::MULv8i8, 1, MCP::MULADDv8i8_OP1);
4949     setVFound(AArch64::MULv8i8, 2, MCP::MULADDv8i8_OP2);
4950     break;
4951   case AArch64::ADDv16i8:
4952     setVFound(AArch64::MULv16i8, 1, MCP::MULADDv16i8_OP1);
4953     setVFound(AArch64::MULv16i8, 2, MCP::MULADDv16i8_OP2);
4954     break;
4955   case AArch64::ADDv4i16:
4956     setVFound(AArch64::MULv4i16, 1, MCP::MULADDv4i16_OP1);
4957     setVFound(AArch64::MULv4i16, 2, MCP::MULADDv4i16_OP2);
4958     setVFound(AArch64::MULv4i16_indexed, 1, MCP::MULADDv4i16_indexed_OP1);
4959     setVFound(AArch64::MULv4i16_indexed, 2, MCP::MULADDv4i16_indexed_OP2);
4960     break;
4961   case AArch64::ADDv8i16:
4962     setVFound(AArch64::MULv8i16, 1, MCP::MULADDv8i16_OP1);
4963     setVFound(AArch64::MULv8i16, 2, MCP::MULADDv8i16_OP2);
4964     setVFound(AArch64::MULv8i16_indexed, 1, MCP::MULADDv8i16_indexed_OP1);
4965     setVFound(AArch64::MULv8i16_indexed, 2, MCP::MULADDv8i16_indexed_OP2);
4966     break;
4967   case AArch64::ADDv2i32:
4968     setVFound(AArch64::MULv2i32, 1, MCP::MULADDv2i32_OP1);
4969     setVFound(AArch64::MULv2i32, 2, MCP::MULADDv2i32_OP2);
4970     setVFound(AArch64::MULv2i32_indexed, 1, MCP::MULADDv2i32_indexed_OP1);
4971     setVFound(AArch64::MULv2i32_indexed, 2, MCP::MULADDv2i32_indexed_OP2);
4972     break;
4973   case AArch64::ADDv4i32:
4974     setVFound(AArch64::MULv4i32, 1, MCP::MULADDv4i32_OP1);
4975     setVFound(AArch64::MULv4i32, 2, MCP::MULADDv4i32_OP2);
4976     setVFound(AArch64::MULv4i32_indexed, 1, MCP::MULADDv4i32_indexed_OP1);
4977     setVFound(AArch64::MULv4i32_indexed, 2, MCP::MULADDv4i32_indexed_OP2);
4978     break;
4979   case AArch64::SUBv8i8:
4980     setVFound(AArch64::MULv8i8, 1, MCP::MULSUBv8i8_OP1);
4981     setVFound(AArch64::MULv8i8, 2, MCP::MULSUBv8i8_OP2);
4982     break;
4983   case AArch64::SUBv16i8:
4984     setVFound(AArch64::MULv16i8, 1, MCP::MULSUBv16i8_OP1);
4985     setVFound(AArch64::MULv16i8, 2, MCP::MULSUBv16i8_OP2);
4986     break;
4987   case AArch64::SUBv4i16:
4988     setVFound(AArch64::MULv4i16, 1, MCP::MULSUBv4i16_OP1);
4989     setVFound(AArch64::MULv4i16, 2, MCP::MULSUBv4i16_OP2);
4990     setVFound(AArch64::MULv4i16_indexed, 1, MCP::MULSUBv4i16_indexed_OP1);
4991     setVFound(AArch64::MULv4i16_indexed, 2, MCP::MULSUBv4i16_indexed_OP2);
4992     break;
4993   case AArch64::SUBv8i16:
4994     setVFound(AArch64::MULv8i16, 1, MCP::MULSUBv8i16_OP1);
4995     setVFound(AArch64::MULv8i16, 2, MCP::MULSUBv8i16_OP2);
4996     setVFound(AArch64::MULv8i16_indexed, 1, MCP::MULSUBv8i16_indexed_OP1);
4997     setVFound(AArch64::MULv8i16_indexed, 2, MCP::MULSUBv8i16_indexed_OP2);
4998     break;
4999   case AArch64::SUBv2i32:
5000     setVFound(AArch64::MULv2i32, 1, MCP::MULSUBv2i32_OP1);
5001     setVFound(AArch64::MULv2i32, 2, MCP::MULSUBv2i32_OP2);
5002     setVFound(AArch64::MULv2i32_indexed, 1, MCP::MULSUBv2i32_indexed_OP1);
5003     setVFound(AArch64::MULv2i32_indexed, 2, MCP::MULSUBv2i32_indexed_OP2);
5004     break;
5005   case AArch64::SUBv4i32:
5006     setVFound(AArch64::MULv4i32, 1, MCP::MULSUBv4i32_OP1);
5007     setVFound(AArch64::MULv4i32, 2, MCP::MULSUBv4i32_OP2);
5008     setVFound(AArch64::MULv4i32_indexed, 1, MCP::MULSUBv4i32_indexed_OP1);
5009     setVFound(AArch64::MULv4i32_indexed, 2, MCP::MULSUBv4i32_indexed_OP2);
5010     break;
5011   }
5012   return Found;
5013 }
5014 /// Floating-Point Support
5015 
5016 /// Find instructions that can be turned into madd.
5017 static bool getFMAPatterns(MachineInstr &Root,
5018                            SmallVectorImpl<MachineCombinerPattern> &Patterns) {
5019 
5020   if (!isCombineInstrCandidateFP(Root))
5021     return false;
5022 
5023   MachineBasicBlock &MBB = *Root.getParent();
5024   bool Found = false;
5025 
5026   auto Match = [&](int Opcode, int Operand,
5027                    MachineCombinerPattern Pattern) -> bool {
5028     if (canCombineWithFMUL(MBB, Root.getOperand(Operand), Opcode)) {
5029       Patterns.push_back(Pattern);
5030       return true;
5031     }
5032     return false;
5033   };
5034 
5035   typedef MachineCombinerPattern MCP;
5036 
5037   switch (Root.getOpcode()) {
5038   default:
5039     assert(false && "Unsupported FP instruction in combiner\n");
5040     break;
5041   case AArch64::FADDHrr:
5042     assert(Root.getOperand(1).isReg() && Root.getOperand(2).isReg() &&
5043            "FADDHrr does not have register operands");
5044 
5045     Found  = Match(AArch64::FMULHrr, 1, MCP::FMULADDH_OP1);
5046     Found |= Match(AArch64::FMULHrr, 2, MCP::FMULADDH_OP2);
5047     break;
5048   case AArch64::FADDSrr:
5049     assert(Root.getOperand(1).isReg() && Root.getOperand(2).isReg() &&
5050            "FADDSrr does not have register operands");
5051 
5052     Found |= Match(AArch64::FMULSrr, 1, MCP::FMULADDS_OP1) ||
5053              Match(AArch64::FMULv1i32_indexed, 1, MCP::FMLAv1i32_indexed_OP1);
5054 
5055     Found |= Match(AArch64::FMULSrr, 2, MCP::FMULADDS_OP2) ||
5056              Match(AArch64::FMULv1i32_indexed, 2, MCP::FMLAv1i32_indexed_OP2);
5057     break;
5058   case AArch64::FADDDrr:
5059     Found |= Match(AArch64::FMULDrr, 1, MCP::FMULADDD_OP1) ||
5060              Match(AArch64::FMULv1i64_indexed, 1, MCP::FMLAv1i64_indexed_OP1);
5061 
5062     Found |= Match(AArch64::FMULDrr, 2, MCP::FMULADDD_OP2) ||
5063              Match(AArch64::FMULv1i64_indexed, 2, MCP::FMLAv1i64_indexed_OP2);
5064     break;
5065   case AArch64::FADDv4f16:
5066     Found |= Match(AArch64::FMULv4i16_indexed, 1, MCP::FMLAv4i16_indexed_OP1) ||
5067              Match(AArch64::FMULv4f16, 1, MCP::FMLAv4f16_OP1);
5068 
5069     Found |= Match(AArch64::FMULv4i16_indexed, 2, MCP::FMLAv4i16_indexed_OP2) ||
5070              Match(AArch64::FMULv4f16, 2, MCP::FMLAv4f16_OP2);
5071     break;
5072   case AArch64::FADDv8f16:
5073     Found |= Match(AArch64::FMULv8i16_indexed, 1, MCP::FMLAv8i16_indexed_OP1) ||
5074              Match(AArch64::FMULv8f16, 1, MCP::FMLAv8f16_OP1);
5075 
5076     Found |= Match(AArch64::FMULv8i16_indexed, 2, MCP::FMLAv8i16_indexed_OP2) ||
5077              Match(AArch64::FMULv8f16, 2, MCP::FMLAv8f16_OP2);
5078     break;
5079   case AArch64::FADDv2f32:
5080     Found |= Match(AArch64::FMULv2i32_indexed, 1, MCP::FMLAv2i32_indexed_OP1) ||
5081              Match(AArch64::FMULv2f32, 1, MCP::FMLAv2f32_OP1);
5082 
5083     Found |= Match(AArch64::FMULv2i32_indexed, 2, MCP::FMLAv2i32_indexed_OP2) ||
5084              Match(AArch64::FMULv2f32, 2, MCP::FMLAv2f32_OP2);
5085     break;
5086   case AArch64::FADDv2f64:
5087     Found |= Match(AArch64::FMULv2i64_indexed, 1, MCP::FMLAv2i64_indexed_OP1) ||
5088              Match(AArch64::FMULv2f64, 1, MCP::FMLAv2f64_OP1);
5089 
5090     Found |= Match(AArch64::FMULv2i64_indexed, 2, MCP::FMLAv2i64_indexed_OP2) ||
5091              Match(AArch64::FMULv2f64, 2, MCP::FMLAv2f64_OP2);
5092     break;
5093   case AArch64::FADDv4f32:
5094     Found |= Match(AArch64::FMULv4i32_indexed, 1, MCP::FMLAv4i32_indexed_OP1) ||
5095              Match(AArch64::FMULv4f32, 1, MCP::FMLAv4f32_OP1);
5096 
5097     Found |= Match(AArch64::FMULv4i32_indexed, 2, MCP::FMLAv4i32_indexed_OP2) ||
5098              Match(AArch64::FMULv4f32, 2, MCP::FMLAv4f32_OP2);
5099     break;
5100   case AArch64::FSUBHrr:
5101     Found  = Match(AArch64::FMULHrr, 1, MCP::FMULSUBH_OP1);
5102     Found |= Match(AArch64::FMULHrr, 2, MCP::FMULSUBH_OP2);
5103     Found |= Match(AArch64::FNMULHrr, 1, MCP::FNMULSUBH_OP1);
5104     break;
5105   case AArch64::FSUBSrr:
5106     Found = Match(AArch64::FMULSrr, 1, MCP::FMULSUBS_OP1);
5107 
5108     Found |= Match(AArch64::FMULSrr, 2, MCP::FMULSUBS_OP2) ||
5109              Match(AArch64::FMULv1i32_indexed, 2, MCP::FMLSv1i32_indexed_OP2);
5110 
5111     Found |= Match(AArch64::FNMULSrr, 1, MCP::FNMULSUBS_OP1);
5112     break;
5113   case AArch64::FSUBDrr:
5114     Found = Match(AArch64::FMULDrr, 1, MCP::FMULSUBD_OP1);
5115 
5116     Found |= Match(AArch64::FMULDrr, 2, MCP::FMULSUBD_OP2) ||
5117              Match(AArch64::FMULv1i64_indexed, 2, MCP::FMLSv1i64_indexed_OP2);
5118 
5119     Found |= Match(AArch64::FNMULDrr, 1, MCP::FNMULSUBD_OP1);
5120     break;
5121   case AArch64::FSUBv4f16:
5122     Found |= Match(AArch64::FMULv4i16_indexed, 2, MCP::FMLSv4i16_indexed_OP2) ||
5123              Match(AArch64::FMULv4f16, 2, MCP::FMLSv4f16_OP2);
5124 
5125     Found |= Match(AArch64::FMULv4i16_indexed, 1, MCP::FMLSv4i16_indexed_OP1) ||
5126              Match(AArch64::FMULv4f16, 1, MCP::FMLSv4f16_OP1);
5127     break;
5128   case AArch64::FSUBv8f16:
5129     Found |= Match(AArch64::FMULv8i16_indexed, 2, MCP::FMLSv8i16_indexed_OP2) ||
5130              Match(AArch64::FMULv8f16, 2, MCP::FMLSv8f16_OP2);
5131 
5132     Found |= Match(AArch64::FMULv8i16_indexed, 1, MCP::FMLSv8i16_indexed_OP1) ||
5133              Match(AArch64::FMULv8f16, 1, MCP::FMLSv8f16_OP1);
5134     break;
5135   case AArch64::FSUBv2f32:
5136     Found |= Match(AArch64::FMULv2i32_indexed, 2, MCP::FMLSv2i32_indexed_OP2) ||
5137              Match(AArch64::FMULv2f32, 2, MCP::FMLSv2f32_OP2);
5138 
5139     Found |= Match(AArch64::FMULv2i32_indexed, 1, MCP::FMLSv2i32_indexed_OP1) ||
5140              Match(AArch64::FMULv2f32, 1, MCP::FMLSv2f32_OP1);
5141     break;
5142   case AArch64::FSUBv2f64:
5143     Found |= Match(AArch64::FMULv2i64_indexed, 2, MCP::FMLSv2i64_indexed_OP2) ||
5144              Match(AArch64::FMULv2f64, 2, MCP::FMLSv2f64_OP2);
5145 
5146     Found |= Match(AArch64::FMULv2i64_indexed, 1, MCP::FMLSv2i64_indexed_OP1) ||
5147              Match(AArch64::FMULv2f64, 1, MCP::FMLSv2f64_OP1);
5148     break;
5149   case AArch64::FSUBv4f32:
5150     Found |= Match(AArch64::FMULv4i32_indexed, 2, MCP::FMLSv4i32_indexed_OP2) ||
5151              Match(AArch64::FMULv4f32, 2, MCP::FMLSv4f32_OP2);
5152 
5153     Found |= Match(AArch64::FMULv4i32_indexed, 1, MCP::FMLSv4i32_indexed_OP1) ||
5154              Match(AArch64::FMULv4f32, 1, MCP::FMLSv4f32_OP1);
5155     break;
5156   }
5157   return Found;
5158 }
5159 
5160 static bool getFMULPatterns(MachineInstr &Root,
5161                             SmallVectorImpl<MachineCombinerPattern> &Patterns) {
5162   MachineBasicBlock &MBB = *Root.getParent();
5163   bool Found = false;
5164 
5165   auto Match = [&](unsigned Opcode, int Operand,
5166                    MachineCombinerPattern Pattern) -> bool {
5167     MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo();
5168     MachineOperand &MO = Root.getOperand(Operand);
5169     MachineInstr *MI = nullptr;
5170     if (MO.isReg() && Register::isVirtualRegister(MO.getReg()))
5171       MI = MRI.getUniqueVRegDef(MO.getReg());
5172     if (MI && MI->getOpcode() == Opcode) {
5173       Patterns.push_back(Pattern);
5174       return true;
5175     }
5176     return false;
5177   };
5178 
5179   typedef MachineCombinerPattern MCP;
5180 
5181   switch (Root.getOpcode()) {
5182   default:
5183     return false;
5184   case AArch64::FMULv2f32:
5185     Found = Match(AArch64::DUPv2i32lane, 1, MCP::FMULv2i32_indexed_OP1);
5186     Found |= Match(AArch64::DUPv2i32lane, 2, MCP::FMULv2i32_indexed_OP2);
5187     break;
5188   case AArch64::FMULv2f64:
5189     Found = Match(AArch64::DUPv2i64lane, 1, MCP::FMULv2i64_indexed_OP1);
5190     Found |= Match(AArch64::DUPv2i64lane, 2, MCP::FMULv2i64_indexed_OP2);
5191     break;
5192   case AArch64::FMULv4f16:
5193     Found = Match(AArch64::DUPv4i16lane, 1, MCP::FMULv4i16_indexed_OP1);
5194     Found |= Match(AArch64::DUPv4i16lane, 2, MCP::FMULv4i16_indexed_OP2);
5195     break;
5196   case AArch64::FMULv4f32:
5197     Found = Match(AArch64::DUPv4i32lane, 1, MCP::FMULv4i32_indexed_OP1);
5198     Found |= Match(AArch64::DUPv4i32lane, 2, MCP::FMULv4i32_indexed_OP2);
5199     break;
5200   case AArch64::FMULv8f16:
5201     Found = Match(AArch64::DUPv8i16lane, 1, MCP::FMULv8i16_indexed_OP1);
5202     Found |= Match(AArch64::DUPv8i16lane, 2, MCP::FMULv8i16_indexed_OP2);
5203     break;
5204   }
5205 
5206   return Found;
5207 }
5208 
5209 /// Return true when a code sequence can improve throughput. It
5210 /// should be called only for instructions in loops.
5211 /// \param Pattern - combiner pattern
5212 bool AArch64InstrInfo::isThroughputPattern(
5213     MachineCombinerPattern Pattern) const {
5214   switch (Pattern) {
5215   default:
5216     break;
5217   case MachineCombinerPattern::FMULADDH_OP1:
5218   case MachineCombinerPattern::FMULADDH_OP2:
5219   case MachineCombinerPattern::FMULSUBH_OP1:
5220   case MachineCombinerPattern::FMULSUBH_OP2:
5221   case MachineCombinerPattern::FMULADDS_OP1:
5222   case MachineCombinerPattern::FMULADDS_OP2:
5223   case MachineCombinerPattern::FMULSUBS_OP1:
5224   case MachineCombinerPattern::FMULSUBS_OP2:
5225   case MachineCombinerPattern::FMULADDD_OP1:
5226   case MachineCombinerPattern::FMULADDD_OP2:
5227   case MachineCombinerPattern::FMULSUBD_OP1:
5228   case MachineCombinerPattern::FMULSUBD_OP2:
5229   case MachineCombinerPattern::FNMULSUBH_OP1:
5230   case MachineCombinerPattern::FNMULSUBS_OP1:
5231   case MachineCombinerPattern::FNMULSUBD_OP1:
5232   case MachineCombinerPattern::FMLAv4i16_indexed_OP1:
5233   case MachineCombinerPattern::FMLAv4i16_indexed_OP2:
5234   case MachineCombinerPattern::FMLAv8i16_indexed_OP1:
5235   case MachineCombinerPattern::FMLAv8i16_indexed_OP2:
5236   case MachineCombinerPattern::FMLAv1i32_indexed_OP1:
5237   case MachineCombinerPattern::FMLAv1i32_indexed_OP2:
5238   case MachineCombinerPattern::FMLAv1i64_indexed_OP1:
5239   case MachineCombinerPattern::FMLAv1i64_indexed_OP2:
5240   case MachineCombinerPattern::FMLAv4f16_OP2:
5241   case MachineCombinerPattern::FMLAv4f16_OP1:
5242   case MachineCombinerPattern::FMLAv8f16_OP1:
5243   case MachineCombinerPattern::FMLAv8f16_OP2:
5244   case MachineCombinerPattern::FMLAv2f32_OP2:
5245   case MachineCombinerPattern::FMLAv2f32_OP1:
5246   case MachineCombinerPattern::FMLAv2f64_OP1:
5247   case MachineCombinerPattern::FMLAv2f64_OP2:
5248   case MachineCombinerPattern::FMLAv2i32_indexed_OP1:
5249   case MachineCombinerPattern::FMLAv2i32_indexed_OP2:
5250   case MachineCombinerPattern::FMLAv2i64_indexed_OP1:
5251   case MachineCombinerPattern::FMLAv2i64_indexed_OP2:
5252   case MachineCombinerPattern::FMLAv4f32_OP1:
5253   case MachineCombinerPattern::FMLAv4f32_OP2:
5254   case MachineCombinerPattern::FMLAv4i32_indexed_OP1:
5255   case MachineCombinerPattern::FMLAv4i32_indexed_OP2:
5256   case MachineCombinerPattern::FMLSv4i16_indexed_OP1:
5257   case MachineCombinerPattern::FMLSv4i16_indexed_OP2:
5258   case MachineCombinerPattern::FMLSv8i16_indexed_OP1:
5259   case MachineCombinerPattern::FMLSv8i16_indexed_OP2:
5260   case MachineCombinerPattern::FMLSv1i32_indexed_OP2:
5261   case MachineCombinerPattern::FMLSv1i64_indexed_OP2:
5262   case MachineCombinerPattern::FMLSv2i32_indexed_OP2:
5263   case MachineCombinerPattern::FMLSv2i64_indexed_OP2:
5264   case MachineCombinerPattern::FMLSv4f16_OP1:
5265   case MachineCombinerPattern::FMLSv4f16_OP2:
5266   case MachineCombinerPattern::FMLSv8f16_OP1:
5267   case MachineCombinerPattern::FMLSv8f16_OP2:
5268   case MachineCombinerPattern::FMLSv2f32_OP2:
5269   case MachineCombinerPattern::FMLSv2f64_OP2:
5270   case MachineCombinerPattern::FMLSv4i32_indexed_OP2:
5271   case MachineCombinerPattern::FMLSv4f32_OP2:
5272   case MachineCombinerPattern::FMULv2i32_indexed_OP1:
5273   case MachineCombinerPattern::FMULv2i32_indexed_OP2:
5274   case MachineCombinerPattern::FMULv2i64_indexed_OP1:
5275   case MachineCombinerPattern::FMULv2i64_indexed_OP2:
5276   case MachineCombinerPattern::FMULv4i16_indexed_OP1:
5277   case MachineCombinerPattern::FMULv4i16_indexed_OP2:
5278   case MachineCombinerPattern::FMULv4i32_indexed_OP1:
5279   case MachineCombinerPattern::FMULv4i32_indexed_OP2:
5280   case MachineCombinerPattern::FMULv8i16_indexed_OP1:
5281   case MachineCombinerPattern::FMULv8i16_indexed_OP2:
5282   case MachineCombinerPattern::MULADDv8i8_OP1:
5283   case MachineCombinerPattern::MULADDv8i8_OP2:
5284   case MachineCombinerPattern::MULADDv16i8_OP1:
5285   case MachineCombinerPattern::MULADDv16i8_OP2:
5286   case MachineCombinerPattern::MULADDv4i16_OP1:
5287   case MachineCombinerPattern::MULADDv4i16_OP2:
5288   case MachineCombinerPattern::MULADDv8i16_OP1:
5289   case MachineCombinerPattern::MULADDv8i16_OP2:
5290   case MachineCombinerPattern::MULADDv2i32_OP1:
5291   case MachineCombinerPattern::MULADDv2i32_OP2:
5292   case MachineCombinerPattern::MULADDv4i32_OP1:
5293   case MachineCombinerPattern::MULADDv4i32_OP2:
5294   case MachineCombinerPattern::MULSUBv8i8_OP1:
5295   case MachineCombinerPattern::MULSUBv8i8_OP2:
5296   case MachineCombinerPattern::MULSUBv16i8_OP1:
5297   case MachineCombinerPattern::MULSUBv16i8_OP2:
5298   case MachineCombinerPattern::MULSUBv4i16_OP1:
5299   case MachineCombinerPattern::MULSUBv4i16_OP2:
5300   case MachineCombinerPattern::MULSUBv8i16_OP1:
5301   case MachineCombinerPattern::MULSUBv8i16_OP2:
5302   case MachineCombinerPattern::MULSUBv2i32_OP1:
5303   case MachineCombinerPattern::MULSUBv2i32_OP2:
5304   case MachineCombinerPattern::MULSUBv4i32_OP1:
5305   case MachineCombinerPattern::MULSUBv4i32_OP2:
5306   case MachineCombinerPattern::MULADDv4i16_indexed_OP1:
5307   case MachineCombinerPattern::MULADDv4i16_indexed_OP2:
5308   case MachineCombinerPattern::MULADDv8i16_indexed_OP1:
5309   case MachineCombinerPattern::MULADDv8i16_indexed_OP2:
5310   case MachineCombinerPattern::MULADDv2i32_indexed_OP1:
5311   case MachineCombinerPattern::MULADDv2i32_indexed_OP2:
5312   case MachineCombinerPattern::MULADDv4i32_indexed_OP1:
5313   case MachineCombinerPattern::MULADDv4i32_indexed_OP2:
5314   case MachineCombinerPattern::MULSUBv4i16_indexed_OP1:
5315   case MachineCombinerPattern::MULSUBv4i16_indexed_OP2:
5316   case MachineCombinerPattern::MULSUBv8i16_indexed_OP1:
5317   case MachineCombinerPattern::MULSUBv8i16_indexed_OP2:
5318   case MachineCombinerPattern::MULSUBv2i32_indexed_OP1:
5319   case MachineCombinerPattern::MULSUBv2i32_indexed_OP2:
5320   case MachineCombinerPattern::MULSUBv4i32_indexed_OP1:
5321   case MachineCombinerPattern::MULSUBv4i32_indexed_OP2:
5322     return true;
5323   } // end switch (Pattern)
5324   return false;
5325 }
5326 /// Return true when there is potentially a faster code sequence for an
5327 /// instruction chain ending in \p Root. All potential patterns are listed in
5328 /// the \p Pattern vector. Pattern should be sorted in priority order since the
5329 /// pattern evaluator stops checking as soon as it finds a faster sequence.
5330 
5331 bool AArch64InstrInfo::getMachineCombinerPatterns(
5332     MachineInstr &Root, SmallVectorImpl<MachineCombinerPattern> &Patterns,
5333     bool DoRegPressureReduce) const {
5334   // Integer patterns
5335   if (getMaddPatterns(Root, Patterns))
5336     return true;
5337   // Floating point patterns
5338   if (getFMULPatterns(Root, Patterns))
5339     return true;
5340   if (getFMAPatterns(Root, Patterns))
5341     return true;
5342 
5343   return TargetInstrInfo::getMachineCombinerPatterns(Root, Patterns,
5344                                                      DoRegPressureReduce);
5345 }
5346 
5347 enum class FMAInstKind { Default, Indexed, Accumulator };
5348 /// genFusedMultiply - Generate fused multiply instructions.
5349 /// This function supports both integer and floating point instructions.
5350 /// A typical example:
5351 ///  F|MUL I=A,B,0
5352 ///  F|ADD R,I,C
5353 ///  ==> F|MADD R,A,B,C
5354 /// \param MF Containing MachineFunction
5355 /// \param MRI Register information
5356 /// \param TII Target information
5357 /// \param Root is the F|ADD instruction
5358 /// \param [out] InsInstrs is a vector of machine instructions and will
5359 /// contain the generated madd instruction
5360 /// \param IdxMulOpd is index of operand in Root that is the result of
5361 /// the F|MUL. In the example above IdxMulOpd is 1.
5362 /// \param MaddOpc the opcode fo the f|madd instruction
5363 /// \param RC Register class of operands
5364 /// \param kind of fma instruction (addressing mode) to be generated
5365 /// \param ReplacedAddend is the result register from the instruction
5366 /// replacing the non-combined operand, if any.
5367 static MachineInstr *
5368 genFusedMultiply(MachineFunction &MF, MachineRegisterInfo &MRI,
5369                  const TargetInstrInfo *TII, MachineInstr &Root,
5370                  SmallVectorImpl<MachineInstr *> &InsInstrs, unsigned IdxMulOpd,
5371                  unsigned MaddOpc, const TargetRegisterClass *RC,
5372                  FMAInstKind kind = FMAInstKind::Default,
5373                  const Register *ReplacedAddend = nullptr) {
5374   assert(IdxMulOpd == 1 || IdxMulOpd == 2);
5375 
5376   unsigned IdxOtherOpd = IdxMulOpd == 1 ? 2 : 1;
5377   MachineInstr *MUL = MRI.getUniqueVRegDef(Root.getOperand(IdxMulOpd).getReg());
5378   Register ResultReg = Root.getOperand(0).getReg();
5379   Register SrcReg0 = MUL->getOperand(1).getReg();
5380   bool Src0IsKill = MUL->getOperand(1).isKill();
5381   Register SrcReg1 = MUL->getOperand(2).getReg();
5382   bool Src1IsKill = MUL->getOperand(2).isKill();
5383 
5384   unsigned SrcReg2;
5385   bool Src2IsKill;
5386   if (ReplacedAddend) {
5387     // If we just generated a new addend, we must be it's only use.
5388     SrcReg2 = *ReplacedAddend;
5389     Src2IsKill = true;
5390   } else {
5391     SrcReg2 = Root.getOperand(IdxOtherOpd).getReg();
5392     Src2IsKill = Root.getOperand(IdxOtherOpd).isKill();
5393   }
5394 
5395   if (Register::isVirtualRegister(ResultReg))
5396     MRI.constrainRegClass(ResultReg, RC);
5397   if (Register::isVirtualRegister(SrcReg0))
5398     MRI.constrainRegClass(SrcReg0, RC);
5399   if (Register::isVirtualRegister(SrcReg1))
5400     MRI.constrainRegClass(SrcReg1, RC);
5401   if (Register::isVirtualRegister(SrcReg2))
5402     MRI.constrainRegClass(SrcReg2, RC);
5403 
5404   MachineInstrBuilder MIB;
5405   if (kind == FMAInstKind::Default)
5406     MIB = BuildMI(MF, Root.getDebugLoc(), TII->get(MaddOpc), ResultReg)
5407               .addReg(SrcReg0, getKillRegState(Src0IsKill))
5408               .addReg(SrcReg1, getKillRegState(Src1IsKill))
5409               .addReg(SrcReg2, getKillRegState(Src2IsKill));
5410   else if (kind == FMAInstKind::Indexed)
5411     MIB = BuildMI(MF, Root.getDebugLoc(), TII->get(MaddOpc), ResultReg)
5412               .addReg(SrcReg2, getKillRegState(Src2IsKill))
5413               .addReg(SrcReg0, getKillRegState(Src0IsKill))
5414               .addReg(SrcReg1, getKillRegState(Src1IsKill))
5415               .addImm(MUL->getOperand(3).getImm());
5416   else if (kind == FMAInstKind::Accumulator)
5417     MIB = BuildMI(MF, Root.getDebugLoc(), TII->get(MaddOpc), ResultReg)
5418               .addReg(SrcReg2, getKillRegState(Src2IsKill))
5419               .addReg(SrcReg0, getKillRegState(Src0IsKill))
5420               .addReg(SrcReg1, getKillRegState(Src1IsKill));
5421   else
5422     assert(false && "Invalid FMA instruction kind \n");
5423   // Insert the MADD (MADD, FMA, FMS, FMLA, FMSL)
5424   InsInstrs.push_back(MIB);
5425   return MUL;
5426 }
5427 
5428 /// Fold (FMUL x (DUP y lane)) into (FMUL_indexed x y lane)
5429 static MachineInstr *
5430 genIndexedMultiply(MachineInstr &Root,
5431                    SmallVectorImpl<MachineInstr *> &InsInstrs,
5432                    unsigned IdxDupOp, unsigned MulOpc,
5433                    const TargetRegisterClass *RC, MachineRegisterInfo &MRI) {
5434   assert(((IdxDupOp == 1) || (IdxDupOp == 2)) &&
5435          "Invalid index of FMUL operand");
5436 
5437   MachineFunction &MF = *Root.getMF();
5438   const TargetInstrInfo *TII = MF.getSubtarget().getInstrInfo();
5439 
5440   MachineInstr *Dup =
5441       MF.getRegInfo().getUniqueVRegDef(Root.getOperand(IdxDupOp).getReg());
5442 
5443   Register DupSrcReg = Dup->getOperand(1).getReg();
5444   MRI.clearKillFlags(DupSrcReg);
5445   MRI.constrainRegClass(DupSrcReg, RC);
5446 
5447   unsigned DupSrcLane = Dup->getOperand(2).getImm();
5448 
5449   unsigned IdxMulOp = IdxDupOp == 1 ? 2 : 1;
5450   MachineOperand &MulOp = Root.getOperand(IdxMulOp);
5451 
5452   Register ResultReg = Root.getOperand(0).getReg();
5453 
5454   MachineInstrBuilder MIB;
5455   MIB = BuildMI(MF, Root.getDebugLoc(), TII->get(MulOpc), ResultReg)
5456             .add(MulOp)
5457             .addReg(DupSrcReg)
5458             .addImm(DupSrcLane);
5459 
5460   InsInstrs.push_back(MIB);
5461   return &Root;
5462 }
5463 
5464 /// genFusedMultiplyAcc - Helper to generate fused multiply accumulate
5465 /// instructions.
5466 ///
5467 /// \see genFusedMultiply
5468 static MachineInstr *genFusedMultiplyAcc(
5469     MachineFunction &MF, MachineRegisterInfo &MRI, const TargetInstrInfo *TII,
5470     MachineInstr &Root, SmallVectorImpl<MachineInstr *> &InsInstrs,
5471     unsigned IdxMulOpd, unsigned MaddOpc, const TargetRegisterClass *RC) {
5472   return genFusedMultiply(MF, MRI, TII, Root, InsInstrs, IdxMulOpd, MaddOpc, RC,
5473                           FMAInstKind::Accumulator);
5474 }
5475 
5476 /// genNeg - Helper to generate an intermediate negation of the second operand
5477 /// of Root
5478 static Register genNeg(MachineFunction &MF, MachineRegisterInfo &MRI,
5479                        const TargetInstrInfo *TII, MachineInstr &Root,
5480                        SmallVectorImpl<MachineInstr *> &InsInstrs,
5481                        DenseMap<unsigned, unsigned> &InstrIdxForVirtReg,
5482                        unsigned MnegOpc, const TargetRegisterClass *RC) {
5483   Register NewVR = MRI.createVirtualRegister(RC);
5484   MachineInstrBuilder MIB =
5485       BuildMI(MF, Root.getDebugLoc(), TII->get(MnegOpc), NewVR)
5486           .add(Root.getOperand(2));
5487   InsInstrs.push_back(MIB);
5488 
5489   assert(InstrIdxForVirtReg.empty());
5490   InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
5491 
5492   return NewVR;
5493 }
5494 
5495 /// genFusedMultiplyAccNeg - Helper to generate fused multiply accumulate
5496 /// instructions with an additional negation of the accumulator
5497 static MachineInstr *genFusedMultiplyAccNeg(
5498     MachineFunction &MF, MachineRegisterInfo &MRI, const TargetInstrInfo *TII,
5499     MachineInstr &Root, SmallVectorImpl<MachineInstr *> &InsInstrs,
5500     DenseMap<unsigned, unsigned> &InstrIdxForVirtReg, unsigned IdxMulOpd,
5501     unsigned MaddOpc, unsigned MnegOpc, const TargetRegisterClass *RC) {
5502   assert(IdxMulOpd == 1);
5503 
5504   Register NewVR =
5505       genNeg(MF, MRI, TII, Root, InsInstrs, InstrIdxForVirtReg, MnegOpc, RC);
5506   return genFusedMultiply(MF, MRI, TII, Root, InsInstrs, IdxMulOpd, MaddOpc, RC,
5507                           FMAInstKind::Accumulator, &NewVR);
5508 }
5509 
5510 /// genFusedMultiplyIdx - Helper to generate fused multiply accumulate
5511 /// instructions.
5512 ///
5513 /// \see genFusedMultiply
5514 static MachineInstr *genFusedMultiplyIdx(
5515     MachineFunction &MF, MachineRegisterInfo &MRI, const TargetInstrInfo *TII,
5516     MachineInstr &Root, SmallVectorImpl<MachineInstr *> &InsInstrs,
5517     unsigned IdxMulOpd, unsigned MaddOpc, const TargetRegisterClass *RC) {
5518   return genFusedMultiply(MF, MRI, TII, Root, InsInstrs, IdxMulOpd, MaddOpc, RC,
5519                           FMAInstKind::Indexed);
5520 }
5521 
5522 /// genFusedMultiplyAccNeg - Helper to generate fused multiply accumulate
5523 /// instructions with an additional negation of the accumulator
5524 static MachineInstr *genFusedMultiplyIdxNeg(
5525     MachineFunction &MF, MachineRegisterInfo &MRI, const TargetInstrInfo *TII,
5526     MachineInstr &Root, SmallVectorImpl<MachineInstr *> &InsInstrs,
5527     DenseMap<unsigned, unsigned> &InstrIdxForVirtReg, unsigned IdxMulOpd,
5528     unsigned MaddOpc, unsigned MnegOpc, const TargetRegisterClass *RC) {
5529   assert(IdxMulOpd == 1);
5530 
5531   Register NewVR =
5532       genNeg(MF, MRI, TII, Root, InsInstrs, InstrIdxForVirtReg, MnegOpc, RC);
5533 
5534   return genFusedMultiply(MF, MRI, TII, Root, InsInstrs, IdxMulOpd, MaddOpc, RC,
5535                           FMAInstKind::Indexed, &NewVR);
5536 }
5537 
5538 /// genMaddR - Generate madd instruction and combine mul and add using
5539 /// an extra virtual register
5540 /// Example - an ADD intermediate needs to be stored in a register:
5541 ///   MUL I=A,B,0
5542 ///   ADD R,I,Imm
5543 ///   ==> ORR  V, ZR, Imm
5544 ///   ==> MADD R,A,B,V
5545 /// \param MF Containing MachineFunction
5546 /// \param MRI Register information
5547 /// \param TII Target information
5548 /// \param Root is the ADD instruction
5549 /// \param [out] InsInstrs is a vector of machine instructions and will
5550 /// contain the generated madd instruction
5551 /// \param IdxMulOpd is index of operand in Root that is the result of
5552 /// the MUL. In the example above IdxMulOpd is 1.
5553 /// \param MaddOpc the opcode fo the madd instruction
5554 /// \param VR is a virtual register that holds the value of an ADD operand
5555 /// (V in the example above).
5556 /// \param RC Register class of operands
5557 static MachineInstr *genMaddR(MachineFunction &MF, MachineRegisterInfo &MRI,
5558                               const TargetInstrInfo *TII, MachineInstr &Root,
5559                               SmallVectorImpl<MachineInstr *> &InsInstrs,
5560                               unsigned IdxMulOpd, unsigned MaddOpc, unsigned VR,
5561                               const TargetRegisterClass *RC) {
5562   assert(IdxMulOpd == 1 || IdxMulOpd == 2);
5563 
5564   MachineInstr *MUL = MRI.getUniqueVRegDef(Root.getOperand(IdxMulOpd).getReg());
5565   Register ResultReg = Root.getOperand(0).getReg();
5566   Register SrcReg0 = MUL->getOperand(1).getReg();
5567   bool Src0IsKill = MUL->getOperand(1).isKill();
5568   Register SrcReg1 = MUL->getOperand(2).getReg();
5569   bool Src1IsKill = MUL->getOperand(2).isKill();
5570 
5571   if (Register::isVirtualRegister(ResultReg))
5572     MRI.constrainRegClass(ResultReg, RC);
5573   if (Register::isVirtualRegister(SrcReg0))
5574     MRI.constrainRegClass(SrcReg0, RC);
5575   if (Register::isVirtualRegister(SrcReg1))
5576     MRI.constrainRegClass(SrcReg1, RC);
5577   if (Register::isVirtualRegister(VR))
5578     MRI.constrainRegClass(VR, RC);
5579 
5580   MachineInstrBuilder MIB =
5581       BuildMI(MF, Root.getDebugLoc(), TII->get(MaddOpc), ResultReg)
5582           .addReg(SrcReg0, getKillRegState(Src0IsKill))
5583           .addReg(SrcReg1, getKillRegState(Src1IsKill))
5584           .addReg(VR);
5585   // Insert the MADD
5586   InsInstrs.push_back(MIB);
5587   return MUL;
5588 }
5589 
5590 /// When getMachineCombinerPatterns() finds potential patterns,
5591 /// this function generates the instructions that could replace the
5592 /// original code sequence
5593 void AArch64InstrInfo::genAlternativeCodeSequence(
5594     MachineInstr &Root, MachineCombinerPattern Pattern,
5595     SmallVectorImpl<MachineInstr *> &InsInstrs,
5596     SmallVectorImpl<MachineInstr *> &DelInstrs,
5597     DenseMap<unsigned, unsigned> &InstrIdxForVirtReg) const {
5598   MachineBasicBlock &MBB = *Root.getParent();
5599   MachineRegisterInfo &MRI = MBB.getParent()->getRegInfo();
5600   MachineFunction &MF = *MBB.getParent();
5601   const TargetInstrInfo *TII = MF.getSubtarget().getInstrInfo();
5602 
5603   MachineInstr *MUL = nullptr;
5604   const TargetRegisterClass *RC;
5605   unsigned Opc;
5606   switch (Pattern) {
5607   default:
5608     // Reassociate instructions.
5609     TargetInstrInfo::genAlternativeCodeSequence(Root, Pattern, InsInstrs,
5610                                                 DelInstrs, InstrIdxForVirtReg);
5611     return;
5612   case MachineCombinerPattern::MULADDW_OP1:
5613   case MachineCombinerPattern::MULADDX_OP1:
5614     // MUL I=A,B,0
5615     // ADD R,I,C
5616     // ==> MADD R,A,B,C
5617     // --- Create(MADD);
5618     if (Pattern == MachineCombinerPattern::MULADDW_OP1) {
5619       Opc = AArch64::MADDWrrr;
5620       RC = &AArch64::GPR32RegClass;
5621     } else {
5622       Opc = AArch64::MADDXrrr;
5623       RC = &AArch64::GPR64RegClass;
5624     }
5625     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5626     break;
5627   case MachineCombinerPattern::MULADDW_OP2:
5628   case MachineCombinerPattern::MULADDX_OP2:
5629     // MUL I=A,B,0
5630     // ADD R,C,I
5631     // ==> MADD R,A,B,C
5632     // --- Create(MADD);
5633     if (Pattern == MachineCombinerPattern::MULADDW_OP2) {
5634       Opc = AArch64::MADDWrrr;
5635       RC = &AArch64::GPR32RegClass;
5636     } else {
5637       Opc = AArch64::MADDXrrr;
5638       RC = &AArch64::GPR64RegClass;
5639     }
5640     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5641     break;
5642   case MachineCombinerPattern::MULADDWI_OP1:
5643   case MachineCombinerPattern::MULADDXI_OP1: {
5644     // MUL I=A,B,0
5645     // ADD R,I,Imm
5646     // ==> ORR  V, ZR, Imm
5647     // ==> MADD R,A,B,V
5648     // --- Create(MADD);
5649     const TargetRegisterClass *OrrRC;
5650     unsigned BitSize, OrrOpc, ZeroReg;
5651     if (Pattern == MachineCombinerPattern::MULADDWI_OP1) {
5652       OrrOpc = AArch64::ORRWri;
5653       OrrRC = &AArch64::GPR32spRegClass;
5654       BitSize = 32;
5655       ZeroReg = AArch64::WZR;
5656       Opc = AArch64::MADDWrrr;
5657       RC = &AArch64::GPR32RegClass;
5658     } else {
5659       OrrOpc = AArch64::ORRXri;
5660       OrrRC = &AArch64::GPR64spRegClass;
5661       BitSize = 64;
5662       ZeroReg = AArch64::XZR;
5663       Opc = AArch64::MADDXrrr;
5664       RC = &AArch64::GPR64RegClass;
5665     }
5666     Register NewVR = MRI.createVirtualRegister(OrrRC);
5667     uint64_t Imm = Root.getOperand(2).getImm();
5668 
5669     if (Root.getOperand(3).isImm()) {
5670       unsigned Val = Root.getOperand(3).getImm();
5671       Imm = Imm << Val;
5672     }
5673     uint64_t UImm = SignExtend64(Imm, BitSize);
5674     uint64_t Encoding;
5675     if (!AArch64_AM::processLogicalImmediate(UImm, BitSize, Encoding))
5676       return;
5677     MachineInstrBuilder MIB1 =
5678         BuildMI(MF, Root.getDebugLoc(), TII->get(OrrOpc), NewVR)
5679             .addReg(ZeroReg)
5680             .addImm(Encoding);
5681     InsInstrs.push_back(MIB1);
5682     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
5683     MUL = genMaddR(MF, MRI, TII, Root, InsInstrs, 1, Opc, NewVR, RC);
5684     break;
5685   }
5686   case MachineCombinerPattern::MULSUBW_OP1:
5687   case MachineCombinerPattern::MULSUBX_OP1: {
5688     // MUL I=A,B,0
5689     // SUB R,I, C
5690     // ==> SUB  V, 0, C
5691     // ==> MADD R,A,B,V // = -C + A*B
5692     // --- Create(MADD);
5693     const TargetRegisterClass *SubRC;
5694     unsigned SubOpc, ZeroReg;
5695     if (Pattern == MachineCombinerPattern::MULSUBW_OP1) {
5696       SubOpc = AArch64::SUBWrr;
5697       SubRC = &AArch64::GPR32spRegClass;
5698       ZeroReg = AArch64::WZR;
5699       Opc = AArch64::MADDWrrr;
5700       RC = &AArch64::GPR32RegClass;
5701     } else {
5702       SubOpc = AArch64::SUBXrr;
5703       SubRC = &AArch64::GPR64spRegClass;
5704       ZeroReg = AArch64::XZR;
5705       Opc = AArch64::MADDXrrr;
5706       RC = &AArch64::GPR64RegClass;
5707     }
5708     Register NewVR = MRI.createVirtualRegister(SubRC);
5709     // SUB NewVR, 0, C
5710     MachineInstrBuilder MIB1 =
5711         BuildMI(MF, Root.getDebugLoc(), TII->get(SubOpc), NewVR)
5712             .addReg(ZeroReg)
5713             .add(Root.getOperand(2));
5714     InsInstrs.push_back(MIB1);
5715     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
5716     MUL = genMaddR(MF, MRI, TII, Root, InsInstrs, 1, Opc, NewVR, RC);
5717     break;
5718   }
5719   case MachineCombinerPattern::MULSUBW_OP2:
5720   case MachineCombinerPattern::MULSUBX_OP2:
5721     // MUL I=A,B,0
5722     // SUB R,C,I
5723     // ==> MSUB R,A,B,C (computes C - A*B)
5724     // --- Create(MSUB);
5725     if (Pattern == MachineCombinerPattern::MULSUBW_OP2) {
5726       Opc = AArch64::MSUBWrrr;
5727       RC = &AArch64::GPR32RegClass;
5728     } else {
5729       Opc = AArch64::MSUBXrrr;
5730       RC = &AArch64::GPR64RegClass;
5731     }
5732     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5733     break;
5734   case MachineCombinerPattern::MULSUBWI_OP1:
5735   case MachineCombinerPattern::MULSUBXI_OP1: {
5736     // MUL I=A,B,0
5737     // SUB R,I, Imm
5738     // ==> ORR  V, ZR, -Imm
5739     // ==> MADD R,A,B,V // = -Imm + A*B
5740     // --- Create(MADD);
5741     const TargetRegisterClass *OrrRC;
5742     unsigned BitSize, OrrOpc, ZeroReg;
5743     if (Pattern == MachineCombinerPattern::MULSUBWI_OP1) {
5744       OrrOpc = AArch64::ORRWri;
5745       OrrRC = &AArch64::GPR32spRegClass;
5746       BitSize = 32;
5747       ZeroReg = AArch64::WZR;
5748       Opc = AArch64::MADDWrrr;
5749       RC = &AArch64::GPR32RegClass;
5750     } else {
5751       OrrOpc = AArch64::ORRXri;
5752       OrrRC = &AArch64::GPR64spRegClass;
5753       BitSize = 64;
5754       ZeroReg = AArch64::XZR;
5755       Opc = AArch64::MADDXrrr;
5756       RC = &AArch64::GPR64RegClass;
5757     }
5758     Register NewVR = MRI.createVirtualRegister(OrrRC);
5759     uint64_t Imm = Root.getOperand(2).getImm();
5760     if (Root.getOperand(3).isImm()) {
5761       unsigned Val = Root.getOperand(3).getImm();
5762       Imm = Imm << Val;
5763     }
5764     uint64_t UImm = SignExtend64(-Imm, BitSize);
5765     uint64_t Encoding;
5766     if (!AArch64_AM::processLogicalImmediate(UImm, BitSize, Encoding))
5767       return;
5768     MachineInstrBuilder MIB1 =
5769         BuildMI(MF, Root.getDebugLoc(), TII->get(OrrOpc), NewVR)
5770             .addReg(ZeroReg)
5771             .addImm(Encoding);
5772     InsInstrs.push_back(MIB1);
5773     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
5774     MUL = genMaddR(MF, MRI, TII, Root, InsInstrs, 1, Opc, NewVR, RC);
5775     break;
5776   }
5777 
5778   case MachineCombinerPattern::MULADDv8i8_OP1:
5779     Opc = AArch64::MLAv8i8;
5780     RC = &AArch64::FPR64RegClass;
5781     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5782     break;
5783   case MachineCombinerPattern::MULADDv8i8_OP2:
5784     Opc = AArch64::MLAv8i8;
5785     RC = &AArch64::FPR64RegClass;
5786     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5787     break;
5788   case MachineCombinerPattern::MULADDv16i8_OP1:
5789     Opc = AArch64::MLAv16i8;
5790     RC = &AArch64::FPR128RegClass;
5791     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5792     break;
5793   case MachineCombinerPattern::MULADDv16i8_OP2:
5794     Opc = AArch64::MLAv16i8;
5795     RC = &AArch64::FPR128RegClass;
5796     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5797     break;
5798   case MachineCombinerPattern::MULADDv4i16_OP1:
5799     Opc = AArch64::MLAv4i16;
5800     RC = &AArch64::FPR64RegClass;
5801     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5802     break;
5803   case MachineCombinerPattern::MULADDv4i16_OP2:
5804     Opc = AArch64::MLAv4i16;
5805     RC = &AArch64::FPR64RegClass;
5806     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5807     break;
5808   case MachineCombinerPattern::MULADDv8i16_OP1:
5809     Opc = AArch64::MLAv8i16;
5810     RC = &AArch64::FPR128RegClass;
5811     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5812     break;
5813   case MachineCombinerPattern::MULADDv8i16_OP2:
5814     Opc = AArch64::MLAv8i16;
5815     RC = &AArch64::FPR128RegClass;
5816     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5817     break;
5818   case MachineCombinerPattern::MULADDv2i32_OP1:
5819     Opc = AArch64::MLAv2i32;
5820     RC = &AArch64::FPR64RegClass;
5821     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5822     break;
5823   case MachineCombinerPattern::MULADDv2i32_OP2:
5824     Opc = AArch64::MLAv2i32;
5825     RC = &AArch64::FPR64RegClass;
5826     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5827     break;
5828   case MachineCombinerPattern::MULADDv4i32_OP1:
5829     Opc = AArch64::MLAv4i32;
5830     RC = &AArch64::FPR128RegClass;
5831     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5832     break;
5833   case MachineCombinerPattern::MULADDv4i32_OP2:
5834     Opc = AArch64::MLAv4i32;
5835     RC = &AArch64::FPR128RegClass;
5836     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5837     break;
5838 
5839   case MachineCombinerPattern::MULSUBv8i8_OP1:
5840     Opc = AArch64::MLAv8i8;
5841     RC = &AArch64::FPR64RegClass;
5842     MUL = genFusedMultiplyAccNeg(MF, MRI, TII, Root, InsInstrs,
5843                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv8i8,
5844                                  RC);
5845     break;
5846   case MachineCombinerPattern::MULSUBv8i8_OP2:
5847     Opc = AArch64::MLSv8i8;
5848     RC = &AArch64::FPR64RegClass;
5849     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5850     break;
5851   case MachineCombinerPattern::MULSUBv16i8_OP1:
5852     Opc = AArch64::MLAv16i8;
5853     RC = &AArch64::FPR128RegClass;
5854     MUL = genFusedMultiplyAccNeg(MF, MRI, TII, Root, InsInstrs,
5855                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv16i8,
5856                                  RC);
5857     break;
5858   case MachineCombinerPattern::MULSUBv16i8_OP2:
5859     Opc = AArch64::MLSv16i8;
5860     RC = &AArch64::FPR128RegClass;
5861     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5862     break;
5863   case MachineCombinerPattern::MULSUBv4i16_OP1:
5864     Opc = AArch64::MLAv4i16;
5865     RC = &AArch64::FPR64RegClass;
5866     MUL = genFusedMultiplyAccNeg(MF, MRI, TII, Root, InsInstrs,
5867                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv4i16,
5868                                  RC);
5869     break;
5870   case MachineCombinerPattern::MULSUBv4i16_OP2:
5871     Opc = AArch64::MLSv4i16;
5872     RC = &AArch64::FPR64RegClass;
5873     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5874     break;
5875   case MachineCombinerPattern::MULSUBv8i16_OP1:
5876     Opc = AArch64::MLAv8i16;
5877     RC = &AArch64::FPR128RegClass;
5878     MUL = genFusedMultiplyAccNeg(MF, MRI, TII, Root, InsInstrs,
5879                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv8i16,
5880                                  RC);
5881     break;
5882   case MachineCombinerPattern::MULSUBv8i16_OP2:
5883     Opc = AArch64::MLSv8i16;
5884     RC = &AArch64::FPR128RegClass;
5885     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5886     break;
5887   case MachineCombinerPattern::MULSUBv2i32_OP1:
5888     Opc = AArch64::MLAv2i32;
5889     RC = &AArch64::FPR64RegClass;
5890     MUL = genFusedMultiplyAccNeg(MF, MRI, TII, Root, InsInstrs,
5891                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv2i32,
5892                                  RC);
5893     break;
5894   case MachineCombinerPattern::MULSUBv2i32_OP2:
5895     Opc = AArch64::MLSv2i32;
5896     RC = &AArch64::FPR64RegClass;
5897     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5898     break;
5899   case MachineCombinerPattern::MULSUBv4i32_OP1:
5900     Opc = AArch64::MLAv4i32;
5901     RC = &AArch64::FPR128RegClass;
5902     MUL = genFusedMultiplyAccNeg(MF, MRI, TII, Root, InsInstrs,
5903                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv4i32,
5904                                  RC);
5905     break;
5906   case MachineCombinerPattern::MULSUBv4i32_OP2:
5907     Opc = AArch64::MLSv4i32;
5908     RC = &AArch64::FPR128RegClass;
5909     MUL = genFusedMultiplyAcc(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5910     break;
5911 
5912   case MachineCombinerPattern::MULADDv4i16_indexed_OP1:
5913     Opc = AArch64::MLAv4i16_indexed;
5914     RC = &AArch64::FPR64RegClass;
5915     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5916     break;
5917   case MachineCombinerPattern::MULADDv4i16_indexed_OP2:
5918     Opc = AArch64::MLAv4i16_indexed;
5919     RC = &AArch64::FPR64RegClass;
5920     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5921     break;
5922   case MachineCombinerPattern::MULADDv8i16_indexed_OP1:
5923     Opc = AArch64::MLAv8i16_indexed;
5924     RC = &AArch64::FPR128RegClass;
5925     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5926     break;
5927   case MachineCombinerPattern::MULADDv8i16_indexed_OP2:
5928     Opc = AArch64::MLAv8i16_indexed;
5929     RC = &AArch64::FPR128RegClass;
5930     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5931     break;
5932   case MachineCombinerPattern::MULADDv2i32_indexed_OP1:
5933     Opc = AArch64::MLAv2i32_indexed;
5934     RC = &AArch64::FPR64RegClass;
5935     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5936     break;
5937   case MachineCombinerPattern::MULADDv2i32_indexed_OP2:
5938     Opc = AArch64::MLAv2i32_indexed;
5939     RC = &AArch64::FPR64RegClass;
5940     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5941     break;
5942   case MachineCombinerPattern::MULADDv4i32_indexed_OP1:
5943     Opc = AArch64::MLAv4i32_indexed;
5944     RC = &AArch64::FPR128RegClass;
5945     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
5946     break;
5947   case MachineCombinerPattern::MULADDv4i32_indexed_OP2:
5948     Opc = AArch64::MLAv4i32_indexed;
5949     RC = &AArch64::FPR128RegClass;
5950     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5951     break;
5952 
5953   case MachineCombinerPattern::MULSUBv4i16_indexed_OP1:
5954     Opc = AArch64::MLAv4i16_indexed;
5955     RC = &AArch64::FPR64RegClass;
5956     MUL = genFusedMultiplyIdxNeg(MF, MRI, TII, Root, InsInstrs,
5957                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv4i16,
5958                                  RC);
5959     break;
5960   case MachineCombinerPattern::MULSUBv4i16_indexed_OP2:
5961     Opc = AArch64::MLSv4i16_indexed;
5962     RC = &AArch64::FPR64RegClass;
5963     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5964     break;
5965   case MachineCombinerPattern::MULSUBv8i16_indexed_OP1:
5966     Opc = AArch64::MLAv8i16_indexed;
5967     RC = &AArch64::FPR128RegClass;
5968     MUL = genFusedMultiplyIdxNeg(MF, MRI, TII, Root, InsInstrs,
5969                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv8i16,
5970                                  RC);
5971     break;
5972   case MachineCombinerPattern::MULSUBv8i16_indexed_OP2:
5973     Opc = AArch64::MLSv8i16_indexed;
5974     RC = &AArch64::FPR128RegClass;
5975     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5976     break;
5977   case MachineCombinerPattern::MULSUBv2i32_indexed_OP1:
5978     Opc = AArch64::MLAv2i32_indexed;
5979     RC = &AArch64::FPR64RegClass;
5980     MUL = genFusedMultiplyIdxNeg(MF, MRI, TII, Root, InsInstrs,
5981                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv2i32,
5982                                  RC);
5983     break;
5984   case MachineCombinerPattern::MULSUBv2i32_indexed_OP2:
5985     Opc = AArch64::MLSv2i32_indexed;
5986     RC = &AArch64::FPR64RegClass;
5987     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
5988     break;
5989   case MachineCombinerPattern::MULSUBv4i32_indexed_OP1:
5990     Opc = AArch64::MLAv4i32_indexed;
5991     RC = &AArch64::FPR128RegClass;
5992     MUL = genFusedMultiplyIdxNeg(MF, MRI, TII, Root, InsInstrs,
5993                                  InstrIdxForVirtReg, 1, Opc, AArch64::NEGv4i32,
5994                                  RC);
5995     break;
5996   case MachineCombinerPattern::MULSUBv4i32_indexed_OP2:
5997     Opc = AArch64::MLSv4i32_indexed;
5998     RC = &AArch64::FPR128RegClass;
5999     MUL = genFusedMultiplyIdx(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6000     break;
6001 
6002   // Floating Point Support
6003   case MachineCombinerPattern::FMULADDH_OP1:
6004     Opc = AArch64::FMADDHrrr;
6005     RC = &AArch64::FPR16RegClass;
6006     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6007     break;
6008   case MachineCombinerPattern::FMULADDS_OP1:
6009     Opc = AArch64::FMADDSrrr;
6010     RC = &AArch64::FPR32RegClass;
6011     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6012     break;
6013   case MachineCombinerPattern::FMULADDD_OP1:
6014     Opc = AArch64::FMADDDrrr;
6015     RC = &AArch64::FPR64RegClass;
6016     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6017     break;
6018 
6019   case MachineCombinerPattern::FMULADDH_OP2:
6020     Opc = AArch64::FMADDHrrr;
6021     RC = &AArch64::FPR16RegClass;
6022     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6023     break;
6024   case MachineCombinerPattern::FMULADDS_OP2:
6025     Opc = AArch64::FMADDSrrr;
6026     RC = &AArch64::FPR32RegClass;
6027     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6028     break;
6029   case MachineCombinerPattern::FMULADDD_OP2:
6030     Opc = AArch64::FMADDDrrr;
6031     RC = &AArch64::FPR64RegClass;
6032     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6033     break;
6034 
6035   case MachineCombinerPattern::FMLAv1i32_indexed_OP1:
6036     Opc = AArch64::FMLAv1i32_indexed;
6037     RC = &AArch64::FPR32RegClass;
6038     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6039                            FMAInstKind::Indexed);
6040     break;
6041   case MachineCombinerPattern::FMLAv1i32_indexed_OP2:
6042     Opc = AArch64::FMLAv1i32_indexed;
6043     RC = &AArch64::FPR32RegClass;
6044     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6045                            FMAInstKind::Indexed);
6046     break;
6047 
6048   case MachineCombinerPattern::FMLAv1i64_indexed_OP1:
6049     Opc = AArch64::FMLAv1i64_indexed;
6050     RC = &AArch64::FPR64RegClass;
6051     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6052                            FMAInstKind::Indexed);
6053     break;
6054   case MachineCombinerPattern::FMLAv1i64_indexed_OP2:
6055     Opc = AArch64::FMLAv1i64_indexed;
6056     RC = &AArch64::FPR64RegClass;
6057     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6058                            FMAInstKind::Indexed);
6059     break;
6060 
6061   case MachineCombinerPattern::FMLAv4i16_indexed_OP1:
6062     RC = &AArch64::FPR64RegClass;
6063     Opc = AArch64::FMLAv4i16_indexed;
6064     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6065                            FMAInstKind::Indexed);
6066     break;
6067   case MachineCombinerPattern::FMLAv4f16_OP1:
6068     RC = &AArch64::FPR64RegClass;
6069     Opc = AArch64::FMLAv4f16;
6070     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6071                            FMAInstKind::Accumulator);
6072     break;
6073   case MachineCombinerPattern::FMLAv4i16_indexed_OP2:
6074     RC = &AArch64::FPR64RegClass;
6075     Opc = AArch64::FMLAv4i16_indexed;
6076     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6077                            FMAInstKind::Indexed);
6078     break;
6079   case MachineCombinerPattern::FMLAv4f16_OP2:
6080     RC = &AArch64::FPR64RegClass;
6081     Opc = AArch64::FMLAv4f16;
6082     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6083                            FMAInstKind::Accumulator);
6084     break;
6085 
6086   case MachineCombinerPattern::FMLAv2i32_indexed_OP1:
6087   case MachineCombinerPattern::FMLAv2f32_OP1:
6088     RC = &AArch64::FPR64RegClass;
6089     if (Pattern == MachineCombinerPattern::FMLAv2i32_indexed_OP1) {
6090       Opc = AArch64::FMLAv2i32_indexed;
6091       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6092                              FMAInstKind::Indexed);
6093     } else {
6094       Opc = AArch64::FMLAv2f32;
6095       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6096                              FMAInstKind::Accumulator);
6097     }
6098     break;
6099   case MachineCombinerPattern::FMLAv2i32_indexed_OP2:
6100   case MachineCombinerPattern::FMLAv2f32_OP2:
6101     RC = &AArch64::FPR64RegClass;
6102     if (Pattern == MachineCombinerPattern::FMLAv2i32_indexed_OP2) {
6103       Opc = AArch64::FMLAv2i32_indexed;
6104       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6105                              FMAInstKind::Indexed);
6106     } else {
6107       Opc = AArch64::FMLAv2f32;
6108       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6109                              FMAInstKind::Accumulator);
6110     }
6111     break;
6112 
6113   case MachineCombinerPattern::FMLAv8i16_indexed_OP1:
6114     RC = &AArch64::FPR128RegClass;
6115     Opc = AArch64::FMLAv8i16_indexed;
6116     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6117                            FMAInstKind::Indexed);
6118     break;
6119   case MachineCombinerPattern::FMLAv8f16_OP1:
6120     RC = &AArch64::FPR128RegClass;
6121     Opc = AArch64::FMLAv8f16;
6122     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6123                            FMAInstKind::Accumulator);
6124     break;
6125   case MachineCombinerPattern::FMLAv8i16_indexed_OP2:
6126     RC = &AArch64::FPR128RegClass;
6127     Opc = AArch64::FMLAv8i16_indexed;
6128     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6129                            FMAInstKind::Indexed);
6130     break;
6131   case MachineCombinerPattern::FMLAv8f16_OP2:
6132     RC = &AArch64::FPR128RegClass;
6133     Opc = AArch64::FMLAv8f16;
6134     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6135                            FMAInstKind::Accumulator);
6136     break;
6137 
6138   case MachineCombinerPattern::FMLAv2i64_indexed_OP1:
6139   case MachineCombinerPattern::FMLAv2f64_OP1:
6140     RC = &AArch64::FPR128RegClass;
6141     if (Pattern == MachineCombinerPattern::FMLAv2i64_indexed_OP1) {
6142       Opc = AArch64::FMLAv2i64_indexed;
6143       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6144                              FMAInstKind::Indexed);
6145     } else {
6146       Opc = AArch64::FMLAv2f64;
6147       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6148                              FMAInstKind::Accumulator);
6149     }
6150     break;
6151   case MachineCombinerPattern::FMLAv2i64_indexed_OP2:
6152   case MachineCombinerPattern::FMLAv2f64_OP2:
6153     RC = &AArch64::FPR128RegClass;
6154     if (Pattern == MachineCombinerPattern::FMLAv2i64_indexed_OP2) {
6155       Opc = AArch64::FMLAv2i64_indexed;
6156       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6157                              FMAInstKind::Indexed);
6158     } else {
6159       Opc = AArch64::FMLAv2f64;
6160       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6161                              FMAInstKind::Accumulator);
6162     }
6163     break;
6164 
6165   case MachineCombinerPattern::FMLAv4i32_indexed_OP1:
6166   case MachineCombinerPattern::FMLAv4f32_OP1:
6167     RC = &AArch64::FPR128RegClass;
6168     if (Pattern == MachineCombinerPattern::FMLAv4i32_indexed_OP1) {
6169       Opc = AArch64::FMLAv4i32_indexed;
6170       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6171                              FMAInstKind::Indexed);
6172     } else {
6173       Opc = AArch64::FMLAv4f32;
6174       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6175                              FMAInstKind::Accumulator);
6176     }
6177     break;
6178 
6179   case MachineCombinerPattern::FMLAv4i32_indexed_OP2:
6180   case MachineCombinerPattern::FMLAv4f32_OP2:
6181     RC = &AArch64::FPR128RegClass;
6182     if (Pattern == MachineCombinerPattern::FMLAv4i32_indexed_OP2) {
6183       Opc = AArch64::FMLAv4i32_indexed;
6184       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6185                              FMAInstKind::Indexed);
6186     } else {
6187       Opc = AArch64::FMLAv4f32;
6188       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6189                              FMAInstKind::Accumulator);
6190     }
6191     break;
6192 
6193   case MachineCombinerPattern::FMULSUBH_OP1:
6194     Opc = AArch64::FNMSUBHrrr;
6195     RC = &AArch64::FPR16RegClass;
6196     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6197     break;
6198   case MachineCombinerPattern::FMULSUBS_OP1:
6199     Opc = AArch64::FNMSUBSrrr;
6200     RC = &AArch64::FPR32RegClass;
6201     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6202     break;
6203   case MachineCombinerPattern::FMULSUBD_OP1:
6204     Opc = AArch64::FNMSUBDrrr;
6205     RC = &AArch64::FPR64RegClass;
6206     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6207     break;
6208 
6209   case MachineCombinerPattern::FNMULSUBH_OP1:
6210     Opc = AArch64::FNMADDHrrr;
6211     RC = &AArch64::FPR16RegClass;
6212     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6213     break;
6214   case MachineCombinerPattern::FNMULSUBS_OP1:
6215     Opc = AArch64::FNMADDSrrr;
6216     RC = &AArch64::FPR32RegClass;
6217     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6218     break;
6219   case MachineCombinerPattern::FNMULSUBD_OP1:
6220     Opc = AArch64::FNMADDDrrr;
6221     RC = &AArch64::FPR64RegClass;
6222     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC);
6223     break;
6224 
6225   case MachineCombinerPattern::FMULSUBH_OP2:
6226     Opc = AArch64::FMSUBHrrr;
6227     RC = &AArch64::FPR16RegClass;
6228     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6229     break;
6230   case MachineCombinerPattern::FMULSUBS_OP2:
6231     Opc = AArch64::FMSUBSrrr;
6232     RC = &AArch64::FPR32RegClass;
6233     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6234     break;
6235   case MachineCombinerPattern::FMULSUBD_OP2:
6236     Opc = AArch64::FMSUBDrrr;
6237     RC = &AArch64::FPR64RegClass;
6238     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC);
6239     break;
6240 
6241   case MachineCombinerPattern::FMLSv1i32_indexed_OP2:
6242     Opc = AArch64::FMLSv1i32_indexed;
6243     RC = &AArch64::FPR32RegClass;
6244     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6245                            FMAInstKind::Indexed);
6246     break;
6247 
6248   case MachineCombinerPattern::FMLSv1i64_indexed_OP2:
6249     Opc = AArch64::FMLSv1i64_indexed;
6250     RC = &AArch64::FPR64RegClass;
6251     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6252                            FMAInstKind::Indexed);
6253     break;
6254 
6255   case MachineCombinerPattern::FMLSv4f16_OP1:
6256   case MachineCombinerPattern::FMLSv4i16_indexed_OP1: {
6257     RC = &AArch64::FPR64RegClass;
6258     Register NewVR = MRI.createVirtualRegister(RC);
6259     MachineInstrBuilder MIB1 =
6260         BuildMI(MF, Root.getDebugLoc(), TII->get(AArch64::FNEGv4f16), NewVR)
6261             .add(Root.getOperand(2));
6262     InsInstrs.push_back(MIB1);
6263     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
6264     if (Pattern == MachineCombinerPattern::FMLSv4f16_OP1) {
6265       Opc = AArch64::FMLAv4f16;
6266       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6267                              FMAInstKind::Accumulator, &NewVR);
6268     } else {
6269       Opc = AArch64::FMLAv4i16_indexed;
6270       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6271                              FMAInstKind::Indexed, &NewVR);
6272     }
6273     break;
6274   }
6275   case MachineCombinerPattern::FMLSv4f16_OP2:
6276     RC = &AArch64::FPR64RegClass;
6277     Opc = AArch64::FMLSv4f16;
6278     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6279                            FMAInstKind::Accumulator);
6280     break;
6281   case MachineCombinerPattern::FMLSv4i16_indexed_OP2:
6282     RC = &AArch64::FPR64RegClass;
6283     Opc = AArch64::FMLSv4i16_indexed;
6284     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6285                            FMAInstKind::Indexed);
6286     break;
6287 
6288   case MachineCombinerPattern::FMLSv2f32_OP2:
6289   case MachineCombinerPattern::FMLSv2i32_indexed_OP2:
6290     RC = &AArch64::FPR64RegClass;
6291     if (Pattern == MachineCombinerPattern::FMLSv2i32_indexed_OP2) {
6292       Opc = AArch64::FMLSv2i32_indexed;
6293       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6294                              FMAInstKind::Indexed);
6295     } else {
6296       Opc = AArch64::FMLSv2f32;
6297       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6298                              FMAInstKind::Accumulator);
6299     }
6300     break;
6301 
6302   case MachineCombinerPattern::FMLSv8f16_OP1:
6303   case MachineCombinerPattern::FMLSv8i16_indexed_OP1: {
6304     RC = &AArch64::FPR128RegClass;
6305     Register NewVR = MRI.createVirtualRegister(RC);
6306     MachineInstrBuilder MIB1 =
6307         BuildMI(MF, Root.getDebugLoc(), TII->get(AArch64::FNEGv8f16), NewVR)
6308             .add(Root.getOperand(2));
6309     InsInstrs.push_back(MIB1);
6310     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
6311     if (Pattern == MachineCombinerPattern::FMLSv8f16_OP1) {
6312       Opc = AArch64::FMLAv8f16;
6313       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6314                              FMAInstKind::Accumulator, &NewVR);
6315     } else {
6316       Opc = AArch64::FMLAv8i16_indexed;
6317       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6318                              FMAInstKind::Indexed, &NewVR);
6319     }
6320     break;
6321   }
6322   case MachineCombinerPattern::FMLSv8f16_OP2:
6323     RC = &AArch64::FPR128RegClass;
6324     Opc = AArch64::FMLSv8f16;
6325     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6326                            FMAInstKind::Accumulator);
6327     break;
6328   case MachineCombinerPattern::FMLSv8i16_indexed_OP2:
6329     RC = &AArch64::FPR128RegClass;
6330     Opc = AArch64::FMLSv8i16_indexed;
6331     MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6332                            FMAInstKind::Indexed);
6333     break;
6334 
6335   case MachineCombinerPattern::FMLSv2f64_OP2:
6336   case MachineCombinerPattern::FMLSv2i64_indexed_OP2:
6337     RC = &AArch64::FPR128RegClass;
6338     if (Pattern == MachineCombinerPattern::FMLSv2i64_indexed_OP2) {
6339       Opc = AArch64::FMLSv2i64_indexed;
6340       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6341                              FMAInstKind::Indexed);
6342     } else {
6343       Opc = AArch64::FMLSv2f64;
6344       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6345                              FMAInstKind::Accumulator);
6346     }
6347     break;
6348 
6349   case MachineCombinerPattern::FMLSv4f32_OP2:
6350   case MachineCombinerPattern::FMLSv4i32_indexed_OP2:
6351     RC = &AArch64::FPR128RegClass;
6352     if (Pattern == MachineCombinerPattern::FMLSv4i32_indexed_OP2) {
6353       Opc = AArch64::FMLSv4i32_indexed;
6354       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6355                              FMAInstKind::Indexed);
6356     } else {
6357       Opc = AArch64::FMLSv4f32;
6358       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 2, Opc, RC,
6359                              FMAInstKind::Accumulator);
6360     }
6361     break;
6362   case MachineCombinerPattern::FMLSv2f32_OP1:
6363   case MachineCombinerPattern::FMLSv2i32_indexed_OP1: {
6364     RC = &AArch64::FPR64RegClass;
6365     Register NewVR = MRI.createVirtualRegister(RC);
6366     MachineInstrBuilder MIB1 =
6367         BuildMI(MF, Root.getDebugLoc(), TII->get(AArch64::FNEGv2f32), NewVR)
6368             .add(Root.getOperand(2));
6369     InsInstrs.push_back(MIB1);
6370     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
6371     if (Pattern == MachineCombinerPattern::FMLSv2i32_indexed_OP1) {
6372       Opc = AArch64::FMLAv2i32_indexed;
6373       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6374                              FMAInstKind::Indexed, &NewVR);
6375     } else {
6376       Opc = AArch64::FMLAv2f32;
6377       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6378                              FMAInstKind::Accumulator, &NewVR);
6379     }
6380     break;
6381   }
6382   case MachineCombinerPattern::FMLSv4f32_OP1:
6383   case MachineCombinerPattern::FMLSv4i32_indexed_OP1: {
6384     RC = &AArch64::FPR128RegClass;
6385     Register NewVR = MRI.createVirtualRegister(RC);
6386     MachineInstrBuilder MIB1 =
6387         BuildMI(MF, Root.getDebugLoc(), TII->get(AArch64::FNEGv4f32), NewVR)
6388             .add(Root.getOperand(2));
6389     InsInstrs.push_back(MIB1);
6390     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
6391     if (Pattern == MachineCombinerPattern::FMLSv4i32_indexed_OP1) {
6392       Opc = AArch64::FMLAv4i32_indexed;
6393       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6394                              FMAInstKind::Indexed, &NewVR);
6395     } else {
6396       Opc = AArch64::FMLAv4f32;
6397       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6398                              FMAInstKind::Accumulator, &NewVR);
6399     }
6400     break;
6401   }
6402   case MachineCombinerPattern::FMLSv2f64_OP1:
6403   case MachineCombinerPattern::FMLSv2i64_indexed_OP1: {
6404     RC = &AArch64::FPR128RegClass;
6405     Register NewVR = MRI.createVirtualRegister(RC);
6406     MachineInstrBuilder MIB1 =
6407         BuildMI(MF, Root.getDebugLoc(), TII->get(AArch64::FNEGv2f64), NewVR)
6408             .add(Root.getOperand(2));
6409     InsInstrs.push_back(MIB1);
6410     InstrIdxForVirtReg.insert(std::make_pair(NewVR, 0));
6411     if (Pattern == MachineCombinerPattern::FMLSv2i64_indexed_OP1) {
6412       Opc = AArch64::FMLAv2i64_indexed;
6413       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6414                              FMAInstKind::Indexed, &NewVR);
6415     } else {
6416       Opc = AArch64::FMLAv2f64;
6417       MUL = genFusedMultiply(MF, MRI, TII, Root, InsInstrs, 1, Opc, RC,
6418                              FMAInstKind::Accumulator, &NewVR);
6419     }
6420     break;
6421   }
6422   case MachineCombinerPattern::FMULv2i32_indexed_OP1:
6423   case MachineCombinerPattern::FMULv2i32_indexed_OP2: {
6424     unsigned IdxDupOp =
6425         (Pattern == MachineCombinerPattern::FMULv2i32_indexed_OP1) ? 1 : 2;
6426     genIndexedMultiply(Root, InsInstrs, IdxDupOp, AArch64::FMULv2i32_indexed,
6427                        &AArch64::FPR128RegClass, MRI);
6428     break;
6429   }
6430   case MachineCombinerPattern::FMULv2i64_indexed_OP1:
6431   case MachineCombinerPattern::FMULv2i64_indexed_OP2: {
6432     unsigned IdxDupOp =
6433         (Pattern == MachineCombinerPattern::FMULv2i64_indexed_OP1) ? 1 : 2;
6434     genIndexedMultiply(Root, InsInstrs, IdxDupOp, AArch64::FMULv2i64_indexed,
6435                        &AArch64::FPR128RegClass, MRI);
6436     break;
6437   }
6438   case MachineCombinerPattern::FMULv4i16_indexed_OP1:
6439   case MachineCombinerPattern::FMULv4i16_indexed_OP2: {
6440     unsigned IdxDupOp =
6441         (Pattern == MachineCombinerPattern::FMULv4i16_indexed_OP1) ? 1 : 2;
6442     genIndexedMultiply(Root, InsInstrs, IdxDupOp, AArch64::FMULv4i16_indexed,
6443                        &AArch64::FPR128_loRegClass, MRI);
6444     break;
6445   }
6446   case MachineCombinerPattern::FMULv4i32_indexed_OP1:
6447   case MachineCombinerPattern::FMULv4i32_indexed_OP2: {
6448     unsigned IdxDupOp =
6449         (Pattern == MachineCombinerPattern::FMULv4i32_indexed_OP1) ? 1 : 2;
6450     genIndexedMultiply(Root, InsInstrs, IdxDupOp, AArch64::FMULv4i32_indexed,
6451                        &AArch64::FPR128RegClass, MRI);
6452     break;
6453   }
6454   case MachineCombinerPattern::FMULv8i16_indexed_OP1:
6455   case MachineCombinerPattern::FMULv8i16_indexed_OP2: {
6456     unsigned IdxDupOp =
6457         (Pattern == MachineCombinerPattern::FMULv8i16_indexed_OP1) ? 1 : 2;
6458     genIndexedMultiply(Root, InsInstrs, IdxDupOp, AArch64::FMULv8i16_indexed,
6459                        &AArch64::FPR128_loRegClass, MRI);
6460     break;
6461   }
6462   } // end switch (Pattern)
6463   // Record MUL and ADD/SUB for deletion
6464   if (MUL)
6465     DelInstrs.push_back(MUL);
6466   DelInstrs.push_back(&Root);
6467 
6468   // Set the flags on the inserted instructions to be the merged flags of the
6469   // instructions that we have combined.
6470   uint16_t Flags = Root.getFlags();
6471   if (MUL)
6472     Flags = Root.mergeFlagsWith(*MUL);
6473   for (auto *MI : InsInstrs)
6474     MI->setFlags(Flags);
6475 }
6476 
6477 /// Replace csincr-branch sequence by simple conditional branch
6478 ///
6479 /// Examples:
6480 /// 1. \code
6481 ///   csinc  w9, wzr, wzr, <condition code>
6482 ///   tbnz   w9, #0, 0x44
6483 ///    \endcode
6484 /// to
6485 ///    \code
6486 ///   b.<inverted condition code>
6487 ///    \endcode
6488 ///
6489 /// 2. \code
6490 ///   csinc w9, wzr, wzr, <condition code>
6491 ///   tbz   w9, #0, 0x44
6492 ///    \endcode
6493 /// to
6494 ///    \code
6495 ///   b.<condition code>
6496 ///    \endcode
6497 ///
6498 /// Replace compare and branch sequence by TBZ/TBNZ instruction when the
6499 /// compare's constant operand is power of 2.
6500 ///
6501 /// Examples:
6502 ///    \code
6503 ///   and  w8, w8, #0x400
6504 ///   cbnz w8, L1
6505 ///    \endcode
6506 /// to
6507 ///    \code
6508 ///   tbnz w8, #10, L1
6509 ///    \endcode
6510 ///
6511 /// \param  MI Conditional Branch
6512 /// \return True when the simple conditional branch is generated
6513 ///
6514 bool AArch64InstrInfo::optimizeCondBranch(MachineInstr &MI) const {
6515   bool IsNegativeBranch = false;
6516   bool IsTestAndBranch = false;
6517   unsigned TargetBBInMI = 0;
6518   switch (MI.getOpcode()) {
6519   default:
6520     llvm_unreachable("Unknown branch instruction?");
6521   case AArch64::Bcc:
6522     return false;
6523   case AArch64::CBZW:
6524   case AArch64::CBZX:
6525     TargetBBInMI = 1;
6526     break;
6527   case AArch64::CBNZW:
6528   case AArch64::CBNZX:
6529     TargetBBInMI = 1;
6530     IsNegativeBranch = true;
6531     break;
6532   case AArch64::TBZW:
6533   case AArch64::TBZX:
6534     TargetBBInMI = 2;
6535     IsTestAndBranch = true;
6536     break;
6537   case AArch64::TBNZW:
6538   case AArch64::TBNZX:
6539     TargetBBInMI = 2;
6540     IsNegativeBranch = true;
6541     IsTestAndBranch = true;
6542     break;
6543   }
6544   // So we increment a zero register and test for bits other
6545   // than bit 0? Conservatively bail out in case the verifier
6546   // missed this case.
6547   if (IsTestAndBranch && MI.getOperand(1).getImm())
6548     return false;
6549 
6550   // Find Definition.
6551   assert(MI.getParent() && "Incomplete machine instruciton\n");
6552   MachineBasicBlock *MBB = MI.getParent();
6553   MachineFunction *MF = MBB->getParent();
6554   MachineRegisterInfo *MRI = &MF->getRegInfo();
6555   Register VReg = MI.getOperand(0).getReg();
6556   if (!Register::isVirtualRegister(VReg))
6557     return false;
6558 
6559   MachineInstr *DefMI = MRI->getVRegDef(VReg);
6560 
6561   // Look through COPY instructions to find definition.
6562   while (DefMI->isCopy()) {
6563     Register CopyVReg = DefMI->getOperand(1).getReg();
6564     if (!MRI->hasOneNonDBGUse(CopyVReg))
6565       return false;
6566     if (!MRI->hasOneDef(CopyVReg))
6567       return false;
6568     DefMI = MRI->getVRegDef(CopyVReg);
6569   }
6570 
6571   switch (DefMI->getOpcode()) {
6572   default:
6573     return false;
6574   // Fold AND into a TBZ/TBNZ if constant operand is power of 2.
6575   case AArch64::ANDWri:
6576   case AArch64::ANDXri: {
6577     if (IsTestAndBranch)
6578       return false;
6579     if (DefMI->getParent() != MBB)
6580       return false;
6581     if (!MRI->hasOneNonDBGUse(VReg))
6582       return false;
6583 
6584     bool Is32Bit = (DefMI->getOpcode() == AArch64::ANDWri);
6585     uint64_t Mask = AArch64_AM::decodeLogicalImmediate(
6586         DefMI->getOperand(2).getImm(), Is32Bit ? 32 : 64);
6587     if (!isPowerOf2_64(Mask))
6588       return false;
6589 
6590     MachineOperand &MO = DefMI->getOperand(1);
6591     Register NewReg = MO.getReg();
6592     if (!Register::isVirtualRegister(NewReg))
6593       return false;
6594 
6595     assert(!MRI->def_empty(NewReg) && "Register must be defined.");
6596 
6597     MachineBasicBlock &RefToMBB = *MBB;
6598     MachineBasicBlock *TBB = MI.getOperand(1).getMBB();
6599     DebugLoc DL = MI.getDebugLoc();
6600     unsigned Imm = Log2_64(Mask);
6601     unsigned Opc = (Imm < 32)
6602                        ? (IsNegativeBranch ? AArch64::TBNZW : AArch64::TBZW)
6603                        : (IsNegativeBranch ? AArch64::TBNZX : AArch64::TBZX);
6604     MachineInstr *NewMI = BuildMI(RefToMBB, MI, DL, get(Opc))
6605                               .addReg(NewReg)
6606                               .addImm(Imm)
6607                               .addMBB(TBB);
6608     // Register lives on to the CBZ now.
6609     MO.setIsKill(false);
6610 
6611     // For immediate smaller than 32, we need to use the 32-bit
6612     // variant (W) in all cases. Indeed the 64-bit variant does not
6613     // allow to encode them.
6614     // Therefore, if the input register is 64-bit, we need to take the
6615     // 32-bit sub-part.
6616     if (!Is32Bit && Imm < 32)
6617       NewMI->getOperand(0).setSubReg(AArch64::sub_32);
6618     MI.eraseFromParent();
6619     return true;
6620   }
6621   // Look for CSINC
6622   case AArch64::CSINCWr:
6623   case AArch64::CSINCXr: {
6624     if (!(DefMI->getOperand(1).getReg() == AArch64::WZR &&
6625           DefMI->getOperand(2).getReg() == AArch64::WZR) &&
6626         !(DefMI->getOperand(1).getReg() == AArch64::XZR &&
6627           DefMI->getOperand(2).getReg() == AArch64::XZR))
6628       return false;
6629 
6630     if (DefMI->findRegisterDefOperandIdx(AArch64::NZCV, true) != -1)
6631       return false;
6632 
6633     AArch64CC::CondCode CC = (AArch64CC::CondCode)DefMI->getOperand(3).getImm();
6634     // Convert only when the condition code is not modified between
6635     // the CSINC and the branch. The CC may be used by other
6636     // instructions in between.
6637     if (areCFlagsAccessedBetweenInstrs(DefMI, MI, &getRegisterInfo(), AK_Write))
6638       return false;
6639     MachineBasicBlock &RefToMBB = *MBB;
6640     MachineBasicBlock *TBB = MI.getOperand(TargetBBInMI).getMBB();
6641     DebugLoc DL = MI.getDebugLoc();
6642     if (IsNegativeBranch)
6643       CC = AArch64CC::getInvertedCondCode(CC);
6644     BuildMI(RefToMBB, MI, DL, get(AArch64::Bcc)).addImm(CC).addMBB(TBB);
6645     MI.eraseFromParent();
6646     return true;
6647   }
6648   }
6649 }
6650 
6651 std::pair<unsigned, unsigned>
6652 AArch64InstrInfo::decomposeMachineOperandsTargetFlags(unsigned TF) const {
6653   const unsigned Mask = AArch64II::MO_FRAGMENT;
6654   return std::make_pair(TF & Mask, TF & ~Mask);
6655 }
6656 
6657 ArrayRef<std::pair<unsigned, const char *>>
6658 AArch64InstrInfo::getSerializableDirectMachineOperandTargetFlags() const {
6659   using namespace AArch64II;
6660 
6661   static const std::pair<unsigned, const char *> TargetFlags[] = {
6662       {MO_PAGE, "aarch64-page"}, {MO_PAGEOFF, "aarch64-pageoff"},
6663       {MO_G3, "aarch64-g3"},     {MO_G2, "aarch64-g2"},
6664       {MO_G1, "aarch64-g1"},     {MO_G0, "aarch64-g0"},
6665       {MO_HI12, "aarch64-hi12"}};
6666   return makeArrayRef(TargetFlags);
6667 }
6668 
6669 ArrayRef<std::pair<unsigned, const char *>>
6670 AArch64InstrInfo::getSerializableBitmaskMachineOperandTargetFlags() const {
6671   using namespace AArch64II;
6672 
6673   static const std::pair<unsigned, const char *> TargetFlags[] = {
6674       {MO_COFFSTUB, "aarch64-coffstub"},
6675       {MO_GOT, "aarch64-got"},
6676       {MO_NC, "aarch64-nc"},
6677       {MO_S, "aarch64-s"},
6678       {MO_TLS, "aarch64-tls"},
6679       {MO_DLLIMPORT, "aarch64-dllimport"},
6680       {MO_PREL, "aarch64-prel"},
6681       {MO_TAGGED, "aarch64-tagged"}};
6682   return makeArrayRef(TargetFlags);
6683 }
6684 
6685 ArrayRef<std::pair<MachineMemOperand::Flags, const char *>>
6686 AArch64InstrInfo::getSerializableMachineMemOperandTargetFlags() const {
6687   static const std::pair<MachineMemOperand::Flags, const char *> TargetFlags[] =
6688       {{MOSuppressPair, "aarch64-suppress-pair"},
6689        {MOStridedAccess, "aarch64-strided-access"}};
6690   return makeArrayRef(TargetFlags);
6691 }
6692 
6693 /// Constants defining how certain sequences should be outlined.
6694 /// This encompasses how an outlined function should be called, and what kind of
6695 /// frame should be emitted for that outlined function.
6696 ///
6697 /// \p MachineOutlinerDefault implies that the function should be called with
6698 /// a save and restore of LR to the stack.
6699 ///
6700 /// That is,
6701 ///
6702 /// I1     Save LR                    OUTLINED_FUNCTION:
6703 /// I2 --> BL OUTLINED_FUNCTION       I1
6704 /// I3     Restore LR                 I2
6705 ///                                   I3
6706 ///                                   RET
6707 ///
6708 /// * Call construction overhead: 3 (save + BL + restore)
6709 /// * Frame construction overhead: 1 (ret)
6710 /// * Requires stack fixups? Yes
6711 ///
6712 /// \p MachineOutlinerTailCall implies that the function is being created from
6713 /// a sequence of instructions ending in a return.
6714 ///
6715 /// That is,
6716 ///
6717 /// I1                             OUTLINED_FUNCTION:
6718 /// I2 --> B OUTLINED_FUNCTION     I1
6719 /// RET                            I2
6720 ///                                RET
6721 ///
6722 /// * Call construction overhead: 1 (B)
6723 /// * Frame construction overhead: 0 (Return included in sequence)
6724 /// * Requires stack fixups? No
6725 ///
6726 /// \p MachineOutlinerNoLRSave implies that the function should be called using
6727 /// a BL instruction, but doesn't require LR to be saved and restored. This
6728 /// happens when LR is known to be dead.
6729 ///
6730 /// That is,
6731 ///
6732 /// I1                                OUTLINED_FUNCTION:
6733 /// I2 --> BL OUTLINED_FUNCTION       I1
6734 /// I3                                I2
6735 ///                                   I3
6736 ///                                   RET
6737 ///
6738 /// * Call construction overhead: 1 (BL)
6739 /// * Frame construction overhead: 1 (RET)
6740 /// * Requires stack fixups? No
6741 ///
6742 /// \p MachineOutlinerThunk implies that the function is being created from
6743 /// a sequence of instructions ending in a call. The outlined function is
6744 /// called with a BL instruction, and the outlined function tail-calls the
6745 /// original call destination.
6746 ///
6747 /// That is,
6748 ///
6749 /// I1                                OUTLINED_FUNCTION:
6750 /// I2 --> BL OUTLINED_FUNCTION       I1
6751 /// BL f                              I2
6752 ///                                   B f
6753 /// * Call construction overhead: 1 (BL)
6754 /// * Frame construction overhead: 0
6755 /// * Requires stack fixups? No
6756 ///
6757 /// \p MachineOutlinerRegSave implies that the function should be called with a
6758 /// save and restore of LR to an available register. This allows us to avoid
6759 /// stack fixups. Note that this outlining variant is compatible with the
6760 /// NoLRSave case.
6761 ///
6762 /// That is,
6763 ///
6764 /// I1     Save LR                    OUTLINED_FUNCTION:
6765 /// I2 --> BL OUTLINED_FUNCTION       I1
6766 /// I3     Restore LR                 I2
6767 ///                                   I3
6768 ///                                   RET
6769 ///
6770 /// * Call construction overhead: 3 (save + BL + restore)
6771 /// * Frame construction overhead: 1 (ret)
6772 /// * Requires stack fixups? No
6773 enum MachineOutlinerClass {
6774   MachineOutlinerDefault,  /// Emit a save, restore, call, and return.
6775   MachineOutlinerTailCall, /// Only emit a branch.
6776   MachineOutlinerNoLRSave, /// Emit a call and return.
6777   MachineOutlinerThunk,    /// Emit a call and tail-call.
6778   MachineOutlinerRegSave   /// Same as default, but save to a register.
6779 };
6780 
6781 enum MachineOutlinerMBBFlags {
6782   LRUnavailableSomewhere = 0x2,
6783   HasCalls = 0x4,
6784   UnsafeRegsDead = 0x8
6785 };
6786 
6787 Register
6788 AArch64InstrInfo::findRegisterToSaveLRTo(outliner::Candidate &C) const {
6789   MachineFunction *MF = C.getMF();
6790   const TargetRegisterInfo &TRI = *MF->getSubtarget().getRegisterInfo();
6791   const AArch64RegisterInfo *ARI =
6792       static_cast<const AArch64RegisterInfo *>(&TRI);
6793   // Check if there is an available register across the sequence that we can
6794   // use.
6795   for (unsigned Reg : AArch64::GPR64RegClass) {
6796     if (!ARI->isReservedReg(*MF, Reg) &&
6797         Reg != AArch64::LR &&  // LR is not reserved, but don't use it.
6798         Reg != AArch64::X16 && // X16 is not guaranteed to be preserved.
6799         Reg != AArch64::X17 && // Ditto for X17.
6800         C.isAvailableAcrossAndOutOfSeq(Reg, TRI) &&
6801         C.isAvailableInsideSeq(Reg, TRI))
6802       return Reg;
6803   }
6804   return Register();
6805 }
6806 
6807 static bool
6808 outliningCandidatesSigningScopeConsensus(const outliner::Candidate &a,
6809                                          const outliner::Candidate &b) {
6810   const auto &MFIa = a.getMF()->getInfo<AArch64FunctionInfo>();
6811   const auto &MFIb = b.getMF()->getInfo<AArch64FunctionInfo>();
6812 
6813   return MFIa->shouldSignReturnAddress(false) == MFIb->shouldSignReturnAddress(false) &&
6814          MFIa->shouldSignReturnAddress(true) == MFIb->shouldSignReturnAddress(true);
6815 }
6816 
6817 static bool
6818 outliningCandidatesSigningKeyConsensus(const outliner::Candidate &a,
6819                                        const outliner::Candidate &b) {
6820   const auto &MFIa = a.getMF()->getInfo<AArch64FunctionInfo>();
6821   const auto &MFIb = b.getMF()->getInfo<AArch64FunctionInfo>();
6822 
6823   return MFIa->shouldSignWithBKey() == MFIb->shouldSignWithBKey();
6824 }
6825 
6826 static bool outliningCandidatesV8_3OpsConsensus(const outliner::Candidate &a,
6827                                                 const outliner::Candidate &b) {
6828   const AArch64Subtarget &SubtargetA =
6829       a.getMF()->getSubtarget<AArch64Subtarget>();
6830   const AArch64Subtarget &SubtargetB =
6831       b.getMF()->getSubtarget<AArch64Subtarget>();
6832   return SubtargetA.hasV8_3aOps() == SubtargetB.hasV8_3aOps();
6833 }
6834 
6835 outliner::OutlinedFunction AArch64InstrInfo::getOutliningCandidateInfo(
6836     std::vector<outliner::Candidate> &RepeatedSequenceLocs) const {
6837   outliner::Candidate &FirstCand = RepeatedSequenceLocs[0];
6838   unsigned SequenceSize =
6839       std::accumulate(FirstCand.front(), std::next(FirstCand.back()), 0,
6840                       [this](unsigned Sum, const MachineInstr &MI) {
6841                         return Sum + getInstSizeInBytes(MI);
6842                       });
6843   unsigned NumBytesToCreateFrame = 0;
6844 
6845   // We only allow outlining for functions having exactly matching return
6846   // address signing attributes, i.e., all share the same value for the
6847   // attribute "sign-return-address" and all share the same type of key they
6848   // are signed with.
6849   // Additionally we require all functions to simultaniously either support
6850   // v8.3a features or not. Otherwise an outlined function could get signed
6851   // using dedicated v8.3 instructions and a call from a function that doesn't
6852   // support v8.3 instructions would therefore be invalid.
6853   if (std::adjacent_find(
6854           RepeatedSequenceLocs.begin(), RepeatedSequenceLocs.end(),
6855           [](const outliner::Candidate &a, const outliner::Candidate &b) {
6856             // Return true if a and b are non-equal w.r.t. return address
6857             // signing or support of v8.3a features
6858             if (outliningCandidatesSigningScopeConsensus(a, b) &&
6859                 outliningCandidatesSigningKeyConsensus(a, b) &&
6860                 outliningCandidatesV8_3OpsConsensus(a, b)) {
6861               return false;
6862             }
6863             return true;
6864           }) != RepeatedSequenceLocs.end()) {
6865     return outliner::OutlinedFunction();
6866   }
6867 
6868   // Since at this point all candidates agree on their return address signing
6869   // picking just one is fine. If the candidate functions potentially sign their
6870   // return addresses, the outlined function should do the same. Note that in
6871   // the case of "sign-return-address"="non-leaf" this is an assumption: It is
6872   // not certainly true that the outlined function will have to sign its return
6873   // address but this decision is made later, when the decision to outline
6874   // has already been made.
6875   // The same holds for the number of additional instructions we need: On
6876   // v8.3a RET can be replaced by RETAA/RETAB and no AUT instruction is
6877   // necessary. However, at this point we don't know if the outlined function
6878   // will have a RET instruction so we assume the worst.
6879   const TargetRegisterInfo &TRI = getRegisterInfo();
6880   if (FirstCand.getMF()
6881           ->getInfo<AArch64FunctionInfo>()
6882           ->shouldSignReturnAddress(true)) {
6883     // One PAC and one AUT instructions
6884     NumBytesToCreateFrame += 8;
6885 
6886     // We have to check if sp modifying instructions would get outlined.
6887     // If so we only allow outlining if sp is unchanged overall, so matching
6888     // sub and add instructions are okay to outline, all other sp modifications
6889     // are not
6890     auto hasIllegalSPModification = [&TRI](outliner::Candidate &C) {
6891       int SPValue = 0;
6892       MachineBasicBlock::iterator MBBI = C.front();
6893       for (;;) {
6894         if (MBBI->modifiesRegister(AArch64::SP, &TRI)) {
6895           switch (MBBI->getOpcode()) {
6896           case AArch64::ADDXri:
6897           case AArch64::ADDWri:
6898             assert(MBBI->getNumOperands() == 4 && "Wrong number of operands");
6899             assert(MBBI->getOperand(2).isImm() &&
6900                    "Expected operand to be immediate");
6901             assert(MBBI->getOperand(1).isReg() &&
6902                    "Expected operand to be a register");
6903             // Check if the add just increments sp. If so, we search for
6904             // matching sub instructions that decrement sp. If not, the
6905             // modification is illegal
6906             if (MBBI->getOperand(1).getReg() == AArch64::SP)
6907               SPValue += MBBI->getOperand(2).getImm();
6908             else
6909               return true;
6910             break;
6911           case AArch64::SUBXri:
6912           case AArch64::SUBWri:
6913             assert(MBBI->getNumOperands() == 4 && "Wrong number of operands");
6914             assert(MBBI->getOperand(2).isImm() &&
6915                    "Expected operand to be immediate");
6916             assert(MBBI->getOperand(1).isReg() &&
6917                    "Expected operand to be a register");
6918             // Check if the sub just decrements sp. If so, we search for
6919             // matching add instructions that increment sp. If not, the
6920             // modification is illegal
6921             if (MBBI->getOperand(1).getReg() == AArch64::SP)
6922               SPValue -= MBBI->getOperand(2).getImm();
6923             else
6924               return true;
6925             break;
6926           default:
6927             return true;
6928           }
6929         }
6930         if (MBBI == C.back())
6931           break;
6932         ++MBBI;
6933       }
6934       if (SPValue)
6935         return true;
6936       return false;
6937     };
6938     // Remove candidates with illegal stack modifying instructions
6939     llvm::erase_if(RepeatedSequenceLocs, hasIllegalSPModification);
6940 
6941     // If the sequence doesn't have enough candidates left, then we're done.
6942     if (RepeatedSequenceLocs.size() < 2)
6943       return outliner::OutlinedFunction();
6944   }
6945 
6946   // Properties about candidate MBBs that hold for all of them.
6947   unsigned FlagsSetInAll = 0xF;
6948 
6949   // Compute liveness information for each candidate, and set FlagsSetInAll.
6950   std::for_each(RepeatedSequenceLocs.begin(), RepeatedSequenceLocs.end(),
6951                 [&FlagsSetInAll](outliner::Candidate &C) {
6952                   FlagsSetInAll &= C.Flags;
6953                 });
6954 
6955   // According to the AArch64 Procedure Call Standard, the following are
6956   // undefined on entry/exit from a function call:
6957   //
6958   // * Registers x16, x17, (and thus w16, w17)
6959   // * Condition codes (and thus the NZCV register)
6960   //
6961   // Because if this, we can't outline any sequence of instructions where
6962   // one
6963   // of these registers is live into/across it. Thus, we need to delete
6964   // those
6965   // candidates.
6966   auto CantGuaranteeValueAcrossCall = [&TRI](outliner::Candidate &C) {
6967     // If the unsafe registers in this block are all dead, then we don't need
6968     // to compute liveness here.
6969     if (C.Flags & UnsafeRegsDead)
6970       return false;
6971     return C.isAnyUnavailableAcrossOrOutOfSeq(
6972         {AArch64::W16, AArch64::W17, AArch64::NZCV}, TRI);
6973   };
6974 
6975   // Are there any candidates where those registers are live?
6976   if (!(FlagsSetInAll & UnsafeRegsDead)) {
6977     // Erase every candidate that violates the restrictions above. (It could be
6978     // true that we have viable candidates, so it's not worth bailing out in
6979     // the case that, say, 1 out of 20 candidates violate the restructions.)
6980     llvm::erase_if(RepeatedSequenceLocs, CantGuaranteeValueAcrossCall);
6981 
6982     // If the sequence doesn't have enough candidates left, then we're done.
6983     if (RepeatedSequenceLocs.size() < 2)
6984       return outliner::OutlinedFunction();
6985   }
6986 
6987   // At this point, we have only "safe" candidates to outline. Figure out
6988   // frame + call instruction information.
6989 
6990   unsigned LastInstrOpcode = RepeatedSequenceLocs[0].back()->getOpcode();
6991 
6992   // Helper lambda which sets call information for every candidate.
6993   auto SetCandidateCallInfo =
6994       [&RepeatedSequenceLocs](unsigned CallID, unsigned NumBytesForCall) {
6995         for (outliner::Candidate &C : RepeatedSequenceLocs)
6996           C.setCallInfo(CallID, NumBytesForCall);
6997       };
6998 
6999   unsigned FrameID = MachineOutlinerDefault;
7000   NumBytesToCreateFrame += 4;
7001 
7002   bool HasBTI = any_of(RepeatedSequenceLocs, [](outliner::Candidate &C) {
7003     return C.getMF()->getInfo<AArch64FunctionInfo>()->branchTargetEnforcement();
7004   });
7005 
7006   // We check to see if CFI Instructions are present, and if they are
7007   // we find the number of CFI Instructions in the candidates.
7008   unsigned CFICount = 0;
7009   MachineBasicBlock::iterator MBBI = RepeatedSequenceLocs[0].front();
7010   for (unsigned Loc = RepeatedSequenceLocs[0].getStartIdx();
7011        Loc < RepeatedSequenceLocs[0].getEndIdx() + 1; Loc++) {
7012     if (MBBI->isCFIInstruction())
7013       CFICount++;
7014     MBBI++;
7015   }
7016 
7017   // We compare the number of found CFI Instructions to  the number of CFI
7018   // instructions in the parent function for each candidate.  We must check this
7019   // since if we outline one of the CFI instructions in a function, we have to
7020   // outline them all for correctness. If we do not, the address offsets will be
7021   // incorrect between the two sections of the program.
7022   for (outliner::Candidate &C : RepeatedSequenceLocs) {
7023     std::vector<MCCFIInstruction> CFIInstructions =
7024         C.getMF()->getFrameInstructions();
7025 
7026     if (CFICount > 0 && CFICount != CFIInstructions.size())
7027       return outliner::OutlinedFunction();
7028   }
7029 
7030   // Returns true if an instructions is safe to fix up, false otherwise.
7031   auto IsSafeToFixup = [this, &TRI](MachineInstr &MI) {
7032     if (MI.isCall())
7033       return true;
7034 
7035     if (!MI.modifiesRegister(AArch64::SP, &TRI) &&
7036         !MI.readsRegister(AArch64::SP, &TRI))
7037       return true;
7038 
7039     // Any modification of SP will break our code to save/restore LR.
7040     // FIXME: We could handle some instructions which add a constant
7041     // offset to SP, with a bit more work.
7042     if (MI.modifiesRegister(AArch64::SP, &TRI))
7043       return false;
7044 
7045     // At this point, we have a stack instruction that we might need to
7046     // fix up. We'll handle it if it's a load or store.
7047     if (MI.mayLoadOrStore()) {
7048       const MachineOperand *Base; // Filled with the base operand of MI.
7049       int64_t Offset;             // Filled with the offset of MI.
7050       bool OffsetIsScalable;
7051 
7052       // Does it allow us to offset the base operand and is the base the
7053       // register SP?
7054       if (!getMemOperandWithOffset(MI, Base, Offset, OffsetIsScalable, &TRI) ||
7055           !Base->isReg() || Base->getReg() != AArch64::SP)
7056         return false;
7057 
7058       // Fixe-up code below assumes bytes.
7059       if (OffsetIsScalable)
7060         return false;
7061 
7062       // Find the minimum/maximum offset for this instruction and check
7063       // if fixing it up would be in range.
7064       int64_t MinOffset,
7065           MaxOffset;  // Unscaled offsets for the instruction.
7066       TypeSize Scale(0U, false); // The scale to multiply the offsets by.
7067       unsigned DummyWidth;
7068       getMemOpInfo(MI.getOpcode(), Scale, DummyWidth, MinOffset, MaxOffset);
7069 
7070       Offset += 16; // Update the offset to what it would be if we outlined.
7071       if (Offset < MinOffset * (int64_t)Scale.getFixedSize() ||
7072           Offset > MaxOffset * (int64_t)Scale.getFixedSize())
7073         return false;
7074 
7075       // It's in range, so we can outline it.
7076       return true;
7077     }
7078 
7079     // FIXME: Add handling for instructions like "add x0, sp, #8".
7080 
7081     // We can't fix it up, so don't outline it.
7082     return false;
7083   };
7084 
7085   // True if it's possible to fix up each stack instruction in this sequence.
7086   // Important for frames/call variants that modify the stack.
7087   bool AllStackInstrsSafe = std::all_of(
7088       FirstCand.front(), std::next(FirstCand.back()), IsSafeToFixup);
7089 
7090   // If the last instruction in any candidate is a terminator, then we should
7091   // tail call all of the candidates.
7092   if (RepeatedSequenceLocs[0].back()->isTerminator()) {
7093     FrameID = MachineOutlinerTailCall;
7094     NumBytesToCreateFrame = 0;
7095     SetCandidateCallInfo(MachineOutlinerTailCall, 4);
7096   }
7097 
7098   else if (LastInstrOpcode == AArch64::BL ||
7099            ((LastInstrOpcode == AArch64::BLR ||
7100              LastInstrOpcode == AArch64::BLRNoIP) &&
7101             !HasBTI)) {
7102     // FIXME: Do we need to check if the code after this uses the value of LR?
7103     FrameID = MachineOutlinerThunk;
7104     NumBytesToCreateFrame = 0;
7105     SetCandidateCallInfo(MachineOutlinerThunk, 4);
7106   }
7107 
7108   else {
7109     // We need to decide how to emit calls + frames. We can always emit the same
7110     // frame if we don't need to save to the stack. If we have to save to the
7111     // stack, then we need a different frame.
7112     unsigned NumBytesNoStackCalls = 0;
7113     std::vector<outliner::Candidate> CandidatesWithoutStackFixups;
7114 
7115     // Check if we have to save LR.
7116     for (outliner::Candidate &C : RepeatedSequenceLocs) {
7117       // If we have a noreturn caller, then we're going to be conservative and
7118       // say that we have to save LR. If we don't have a ret at the end of the
7119       // block, then we can't reason about liveness accurately.
7120       //
7121       // FIXME: We can probably do better than always disabling this in
7122       // noreturn functions by fixing up the liveness info.
7123       bool IsNoReturn =
7124           C.getMF()->getFunction().hasFnAttribute(Attribute::NoReturn);
7125 
7126       // Is LR available? If so, we don't need a save.
7127       if (C.isAvailableAcrossAndOutOfSeq(AArch64::LR, TRI) && !IsNoReturn) {
7128         NumBytesNoStackCalls += 4;
7129         C.setCallInfo(MachineOutlinerNoLRSave, 4);
7130         CandidatesWithoutStackFixups.push_back(C);
7131       }
7132 
7133       // Is an unused register available? If so, we won't modify the stack, so
7134       // we can outline with the same frame type as those that don't save LR.
7135       else if (findRegisterToSaveLRTo(C)) {
7136         NumBytesNoStackCalls += 12;
7137         C.setCallInfo(MachineOutlinerRegSave, 12);
7138         CandidatesWithoutStackFixups.push_back(C);
7139       }
7140 
7141       // Is SP used in the sequence at all? If not, we don't have to modify
7142       // the stack, so we are guaranteed to get the same frame.
7143       else if (C.isAvailableInsideSeq(AArch64::SP, TRI)) {
7144         NumBytesNoStackCalls += 12;
7145         C.setCallInfo(MachineOutlinerDefault, 12);
7146         CandidatesWithoutStackFixups.push_back(C);
7147       }
7148 
7149       // If we outline this, we need to modify the stack. Pretend we don't
7150       // outline this by saving all of its bytes.
7151       else {
7152         NumBytesNoStackCalls += SequenceSize;
7153       }
7154     }
7155 
7156     // If there are no places where we have to save LR, then note that we
7157     // don't have to update the stack. Otherwise, give every candidate the
7158     // default call type, as long as it's safe to do so.
7159     if (!AllStackInstrsSafe ||
7160         NumBytesNoStackCalls <= RepeatedSequenceLocs.size() * 12) {
7161       RepeatedSequenceLocs = CandidatesWithoutStackFixups;
7162       FrameID = MachineOutlinerNoLRSave;
7163     } else {
7164       SetCandidateCallInfo(MachineOutlinerDefault, 12);
7165 
7166       // Bugzilla ID: 46767
7167       // TODO: Check if fixing up the stack more than once is safe so we can
7168       // outline these.
7169       //
7170       // An outline resulting in a caller that requires stack fixups at the
7171       // callsite to a callee that also requires stack fixups can happen when
7172       // there are no available registers at the candidate callsite for a
7173       // candidate that itself also has calls.
7174       //
7175       // In other words if function_containing_sequence in the following pseudo
7176       // assembly requires that we save LR at the point of the call, but there
7177       // are no available registers: in this case we save using SP and as a
7178       // result the SP offsets requires stack fixups by multiples of 16.
7179       //
7180       // function_containing_sequence:
7181       //   ...
7182       //   save LR to SP <- Requires stack instr fixups in OUTLINED_FUNCTION_N
7183       //   call OUTLINED_FUNCTION_N
7184       //   restore LR from SP
7185       //   ...
7186       //
7187       // OUTLINED_FUNCTION_N:
7188       //   save LR to SP <- Requires stack instr fixups in OUTLINED_FUNCTION_N
7189       //   ...
7190       //   bl foo
7191       //   restore LR from SP
7192       //   ret
7193       //
7194       // Because the code to handle more than one stack fixup does not
7195       // currently have the proper checks for legality, these cases will assert
7196       // in the AArch64 MachineOutliner. This is because the code to do this
7197       // needs more hardening, testing, better checks that generated code is
7198       // legal, etc and because it is only verified to handle a single pass of
7199       // stack fixup.
7200       //
7201       // The assert happens in AArch64InstrInfo::buildOutlinedFrame to catch
7202       // these cases until they are known to be handled. Bugzilla 46767 is
7203       // referenced in comments at the assert site.
7204       //
7205       // To avoid asserting (or generating non-legal code on noassert builds)
7206       // we remove all candidates which would need more than one stack fixup by
7207       // pruning the cases where the candidate has calls while also having no
7208       // available LR and having no available general purpose registers to copy
7209       // LR to (ie one extra stack save/restore).
7210       //
7211       if (FlagsSetInAll & MachineOutlinerMBBFlags::HasCalls) {
7212         erase_if(RepeatedSequenceLocs, [this, &TRI](outliner::Candidate &C) {
7213           return (std::any_of(
7214                      C.front(), std::next(C.back()),
7215                      [](const MachineInstr &MI) { return MI.isCall(); })) &&
7216                  (!C.isAvailableAcrossAndOutOfSeq(AArch64::LR, TRI) ||
7217                   !findRegisterToSaveLRTo(C));
7218         });
7219       }
7220     }
7221 
7222     // If we dropped all of the candidates, bail out here.
7223     if (RepeatedSequenceLocs.size() < 2) {
7224       RepeatedSequenceLocs.clear();
7225       return outliner::OutlinedFunction();
7226     }
7227   }
7228 
7229   // Does every candidate's MBB contain a call? If so, then we might have a call
7230   // in the range.
7231   if (FlagsSetInAll & MachineOutlinerMBBFlags::HasCalls) {
7232     // Check if the range contains a call. These require a save + restore of the
7233     // link register.
7234     bool ModStackToSaveLR = false;
7235     if (std::any_of(FirstCand.front(), FirstCand.back(),
7236                     [](const MachineInstr &MI) { return MI.isCall(); }))
7237       ModStackToSaveLR = true;
7238 
7239     // Handle the last instruction separately. If this is a tail call, then the
7240     // last instruction is a call. We don't want to save + restore in this case.
7241     // However, it could be possible that the last instruction is a call without
7242     // it being valid to tail call this sequence. We should consider this as
7243     // well.
7244     else if (FrameID != MachineOutlinerThunk &&
7245              FrameID != MachineOutlinerTailCall && FirstCand.back()->isCall())
7246       ModStackToSaveLR = true;
7247 
7248     if (ModStackToSaveLR) {
7249       // We can't fix up the stack. Bail out.
7250       if (!AllStackInstrsSafe) {
7251         RepeatedSequenceLocs.clear();
7252         return outliner::OutlinedFunction();
7253       }
7254 
7255       // Save + restore LR.
7256       NumBytesToCreateFrame += 8;
7257     }
7258   }
7259 
7260   // If we have CFI instructions, we can only outline if the outlined section
7261   // can be a tail call
7262   if (FrameID != MachineOutlinerTailCall && CFICount > 0)
7263     return outliner::OutlinedFunction();
7264 
7265   return outliner::OutlinedFunction(RepeatedSequenceLocs, SequenceSize,
7266                                     NumBytesToCreateFrame, FrameID);
7267 }
7268 
7269 bool AArch64InstrInfo::isFunctionSafeToOutlineFrom(
7270     MachineFunction &MF, bool OutlineFromLinkOnceODRs) const {
7271   const Function &F = MF.getFunction();
7272 
7273   // Can F be deduplicated by the linker? If it can, don't outline from it.
7274   if (!OutlineFromLinkOnceODRs && F.hasLinkOnceODRLinkage())
7275     return false;
7276 
7277   // Don't outline from functions with section markings; the program could
7278   // expect that all the code is in the named section.
7279   // FIXME: Allow outlining from multiple functions with the same section
7280   // marking.
7281   if (F.hasSection())
7282     return false;
7283 
7284   // Outlining from functions with redzones is unsafe since the outliner may
7285   // modify the stack. Check if hasRedZone is true or unknown; if yes, don't
7286   // outline from it.
7287   AArch64FunctionInfo *AFI = MF.getInfo<AArch64FunctionInfo>();
7288   if (!AFI || AFI->hasRedZone().getValueOr(true))
7289     return false;
7290 
7291   // FIXME: Teach the outliner to generate/handle Windows unwind info.
7292   if (MF.getTarget().getMCAsmInfo()->usesWindowsCFI())
7293     return false;
7294 
7295   // It's safe to outline from MF.
7296   return true;
7297 }
7298 
7299 bool AArch64InstrInfo::isMBBSafeToOutlineFrom(MachineBasicBlock &MBB,
7300                                               unsigned &Flags) const {
7301   if (!TargetInstrInfo::isMBBSafeToOutlineFrom(MBB, Flags))
7302     return false;
7303   // Check if LR is available through all of the MBB. If it's not, then set
7304   // a flag.
7305   assert(MBB.getParent()->getRegInfo().tracksLiveness() &&
7306          "Suitable Machine Function for outlining must track liveness");
7307   LiveRegUnits LRU(getRegisterInfo());
7308 
7309   std::for_each(MBB.rbegin(), MBB.rend(),
7310                 [&LRU](MachineInstr &MI) { LRU.accumulate(MI); });
7311 
7312   // Check if each of the unsafe registers are available...
7313   bool W16AvailableInBlock = LRU.available(AArch64::W16);
7314   bool W17AvailableInBlock = LRU.available(AArch64::W17);
7315   bool NZCVAvailableInBlock = LRU.available(AArch64::NZCV);
7316 
7317   // If all of these are dead (and not live out), we know we don't have to check
7318   // them later.
7319   if (W16AvailableInBlock && W17AvailableInBlock && NZCVAvailableInBlock)
7320     Flags |= MachineOutlinerMBBFlags::UnsafeRegsDead;
7321 
7322   // Now, add the live outs to the set.
7323   LRU.addLiveOuts(MBB);
7324 
7325   // If any of these registers is available in the MBB, but also a live out of
7326   // the block, then we know outlining is unsafe.
7327   if (W16AvailableInBlock && !LRU.available(AArch64::W16))
7328     return false;
7329   if (W17AvailableInBlock && !LRU.available(AArch64::W17))
7330     return false;
7331   if (NZCVAvailableInBlock && !LRU.available(AArch64::NZCV))
7332     return false;
7333 
7334   // Check if there's a call inside this MachineBasicBlock. If there is, then
7335   // set a flag.
7336   if (any_of(MBB, [](MachineInstr &MI) { return MI.isCall(); }))
7337     Flags |= MachineOutlinerMBBFlags::HasCalls;
7338 
7339   MachineFunction *MF = MBB.getParent();
7340 
7341   // In the event that we outline, we may have to save LR. If there is an
7342   // available register in the MBB, then we'll always save LR there. Check if
7343   // this is true.
7344   bool CanSaveLR = false;
7345   const AArch64RegisterInfo *ARI = static_cast<const AArch64RegisterInfo *>(
7346       MF->getSubtarget().getRegisterInfo());
7347 
7348   // Check if there is an available register across the sequence that we can
7349   // use.
7350   for (unsigned Reg : AArch64::GPR64RegClass) {
7351     if (!ARI->isReservedReg(*MF, Reg) && Reg != AArch64::LR &&
7352         Reg != AArch64::X16 && Reg != AArch64::X17 && LRU.available(Reg)) {
7353       CanSaveLR = true;
7354       break;
7355     }
7356   }
7357 
7358   // Check if we have a register we can save LR to, and if LR was used
7359   // somewhere. If both of those things are true, then we need to evaluate the
7360   // safety of outlining stack instructions later.
7361   if (!CanSaveLR && !LRU.available(AArch64::LR))
7362     Flags |= MachineOutlinerMBBFlags::LRUnavailableSomewhere;
7363 
7364   return true;
7365 }
7366 
7367 outliner::InstrType
7368 AArch64InstrInfo::getOutliningType(MachineBasicBlock::iterator &MIT,
7369                                    unsigned Flags) const {
7370   MachineInstr &MI = *MIT;
7371   MachineBasicBlock *MBB = MI.getParent();
7372   MachineFunction *MF = MBB->getParent();
7373   AArch64FunctionInfo *FuncInfo = MF->getInfo<AArch64FunctionInfo>();
7374 
7375   // Don't outline anything used for return address signing. The outlined
7376   // function will get signed later if needed
7377   switch (MI.getOpcode()) {
7378   case AArch64::PACIASP:
7379   case AArch64::PACIBSP:
7380   case AArch64::AUTIASP:
7381   case AArch64::AUTIBSP:
7382   case AArch64::RETAA:
7383   case AArch64::RETAB:
7384   case AArch64::EMITBKEY:
7385     return outliner::InstrType::Illegal;
7386   }
7387 
7388   // Don't outline LOHs.
7389   if (FuncInfo->getLOHRelated().count(&MI))
7390     return outliner::InstrType::Illegal;
7391 
7392   // We can only outline these if we will tail call the outlined function, or
7393   // fix up the CFI offsets. Currently, CFI instructions are outlined only if
7394   // in a tail call.
7395   //
7396   // FIXME: If the proper fixups for the offset are implemented, this should be
7397   // possible.
7398   if (MI.isCFIInstruction())
7399     return outliner::InstrType::Legal;
7400 
7401   // Don't allow debug values to impact outlining type.
7402   if (MI.isDebugInstr() || MI.isIndirectDebugValue())
7403     return outliner::InstrType::Invisible;
7404 
7405   // At this point, KILL instructions don't really tell us much so we can go
7406   // ahead and skip over them.
7407   if (MI.isKill())
7408     return outliner::InstrType::Invisible;
7409 
7410   // Is this a terminator for a basic block?
7411   if (MI.isTerminator()) {
7412 
7413     // Is this the end of a function?
7414     if (MI.getParent()->succ_empty())
7415       return outliner::InstrType::Legal;
7416 
7417     // It's not, so don't outline it.
7418     return outliner::InstrType::Illegal;
7419   }
7420 
7421   // Make sure none of the operands are un-outlinable.
7422   for (const MachineOperand &MOP : MI.operands()) {
7423     if (MOP.isCPI() || MOP.isJTI() || MOP.isCFIIndex() || MOP.isFI() ||
7424         MOP.isTargetIndex())
7425       return outliner::InstrType::Illegal;
7426 
7427     // If it uses LR or W30 explicitly, then don't touch it.
7428     if (MOP.isReg() && !MOP.isImplicit() &&
7429         (MOP.getReg() == AArch64::LR || MOP.getReg() == AArch64::W30))
7430       return outliner::InstrType::Illegal;
7431   }
7432 
7433   // Special cases for instructions that can always be outlined, but will fail
7434   // the later tests. e.g, ADRPs, which are PC-relative use LR, but can always
7435   // be outlined because they don't require a *specific* value to be in LR.
7436   if (MI.getOpcode() == AArch64::ADRP)
7437     return outliner::InstrType::Legal;
7438 
7439   // If MI is a call we might be able to outline it. We don't want to outline
7440   // any calls that rely on the position of items on the stack. When we outline
7441   // something containing a call, we have to emit a save and restore of LR in
7442   // the outlined function. Currently, this always happens by saving LR to the
7443   // stack. Thus, if we outline, say, half the parameters for a function call
7444   // plus the call, then we'll break the callee's expectations for the layout
7445   // of the stack.
7446   //
7447   // FIXME: Allow calls to functions which construct a stack frame, as long
7448   // as they don't access arguments on the stack.
7449   // FIXME: Figure out some way to analyze functions defined in other modules.
7450   // We should be able to compute the memory usage based on the IR calling
7451   // convention, even if we can't see the definition.
7452   if (MI.isCall()) {
7453     // Get the function associated with the call. Look at each operand and find
7454     // the one that represents the callee and get its name.
7455     const Function *Callee = nullptr;
7456     for (const MachineOperand &MOP : MI.operands()) {
7457       if (MOP.isGlobal()) {
7458         Callee = dyn_cast<Function>(MOP.getGlobal());
7459         break;
7460       }
7461     }
7462 
7463     // Never outline calls to mcount.  There isn't any rule that would require
7464     // this, but the Linux kernel's "ftrace" feature depends on it.
7465     if (Callee && Callee->getName() == "\01_mcount")
7466       return outliner::InstrType::Illegal;
7467 
7468     // If we don't know anything about the callee, assume it depends on the
7469     // stack layout of the caller. In that case, it's only legal to outline
7470     // as a tail-call. Explicitly list the call instructions we know about so we
7471     // don't get unexpected results with call pseudo-instructions.
7472     auto UnknownCallOutlineType = outliner::InstrType::Illegal;
7473     if (MI.getOpcode() == AArch64::BLR ||
7474         MI.getOpcode() == AArch64::BLRNoIP || MI.getOpcode() == AArch64::BL)
7475       UnknownCallOutlineType = outliner::InstrType::LegalTerminator;
7476 
7477     if (!Callee)
7478       return UnknownCallOutlineType;
7479 
7480     // We have a function we have information about. Check it if it's something
7481     // can safely outline.
7482     MachineFunction *CalleeMF = MF->getMMI().getMachineFunction(*Callee);
7483 
7484     // We don't know what's going on with the callee at all. Don't touch it.
7485     if (!CalleeMF)
7486       return UnknownCallOutlineType;
7487 
7488     // Check if we know anything about the callee saves on the function. If we
7489     // don't, then don't touch it, since that implies that we haven't
7490     // computed anything about its stack frame yet.
7491     MachineFrameInfo &MFI = CalleeMF->getFrameInfo();
7492     if (!MFI.isCalleeSavedInfoValid() || MFI.getStackSize() > 0 ||
7493         MFI.getNumObjects() > 0)
7494       return UnknownCallOutlineType;
7495 
7496     // At this point, we can say that CalleeMF ought to not pass anything on the
7497     // stack. Therefore, we can outline it.
7498     return outliner::InstrType::Legal;
7499   }
7500 
7501   // Don't outline positions.
7502   if (MI.isPosition())
7503     return outliner::InstrType::Illegal;
7504 
7505   // Don't touch the link register or W30.
7506   if (MI.readsRegister(AArch64::W30, &getRegisterInfo()) ||
7507       MI.modifiesRegister(AArch64::W30, &getRegisterInfo()))
7508     return outliner::InstrType::Illegal;
7509 
7510   // Don't outline BTI instructions, because that will prevent the outlining
7511   // site from being indirectly callable.
7512   if (MI.getOpcode() == AArch64::HINT) {
7513     int64_t Imm = MI.getOperand(0).getImm();
7514     if (Imm == 32 || Imm == 34 || Imm == 36 || Imm == 38)
7515       return outliner::InstrType::Illegal;
7516   }
7517 
7518   return outliner::InstrType::Legal;
7519 }
7520 
7521 void AArch64InstrInfo::fixupPostOutline(MachineBasicBlock &MBB) const {
7522   for (MachineInstr &MI : MBB) {
7523     const MachineOperand *Base;
7524     unsigned Width;
7525     int64_t Offset;
7526     bool OffsetIsScalable;
7527 
7528     // Is this a load or store with an immediate offset with SP as the base?
7529     if (!MI.mayLoadOrStore() ||
7530         !getMemOperandWithOffsetWidth(MI, Base, Offset, OffsetIsScalable, Width,
7531                                       &RI) ||
7532         (Base->isReg() && Base->getReg() != AArch64::SP))
7533       continue;
7534 
7535     // It is, so we have to fix it up.
7536     TypeSize Scale(0U, false);
7537     int64_t Dummy1, Dummy2;
7538 
7539     MachineOperand &StackOffsetOperand = getMemOpBaseRegImmOfsOffsetOperand(MI);
7540     assert(StackOffsetOperand.isImm() && "Stack offset wasn't immediate!");
7541     getMemOpInfo(MI.getOpcode(), Scale, Width, Dummy1, Dummy2);
7542     assert(Scale != 0 && "Unexpected opcode!");
7543     assert(!OffsetIsScalable && "Expected offset to be a byte offset");
7544 
7545     // We've pushed the return address to the stack, so add 16 to the offset.
7546     // This is safe, since we already checked if it would overflow when we
7547     // checked if this instruction was legal to outline.
7548     int64_t NewImm = (Offset + 16) / (int64_t)Scale.getFixedSize();
7549     StackOffsetOperand.setImm(NewImm);
7550   }
7551 }
7552 
7553 static void signOutlinedFunction(MachineFunction &MF, MachineBasicBlock &MBB,
7554                                  bool ShouldSignReturnAddr,
7555                                  bool ShouldSignReturnAddrWithAKey) {
7556   if (ShouldSignReturnAddr) {
7557     MachineBasicBlock::iterator MBBPAC = MBB.begin();
7558     MachineBasicBlock::iterator MBBAUT = MBB.getFirstTerminator();
7559     const AArch64Subtarget &Subtarget = MF.getSubtarget<AArch64Subtarget>();
7560     const TargetInstrInfo *TII = Subtarget.getInstrInfo();
7561     DebugLoc DL;
7562 
7563     if (MBBAUT != MBB.end())
7564       DL = MBBAUT->getDebugLoc();
7565 
7566     // At the very beginning of the basic block we insert the following
7567     // depending on the key type
7568     //
7569     // a_key:                   b_key:
7570     //    PACIASP                   EMITBKEY
7571     //    CFI_INSTRUCTION           PACIBSP
7572     //                              CFI_INSTRUCTION
7573     unsigned PACI;
7574     if (ShouldSignReturnAddrWithAKey) {
7575       PACI = Subtarget.hasPAuth() ? AArch64::PACIA : AArch64::PACIASP;
7576     } else {
7577       BuildMI(MBB, MBBPAC, DebugLoc(), TII->get(AArch64::EMITBKEY))
7578           .setMIFlag(MachineInstr::FrameSetup);
7579       PACI = Subtarget.hasPAuth() ? AArch64::PACIB : AArch64::PACIBSP;
7580     }
7581 
7582     auto MI = BuildMI(MBB, MBBPAC, DebugLoc(), TII->get(PACI));
7583     if (Subtarget.hasPAuth())
7584       MI.addReg(AArch64::LR, RegState::Define)
7585           .addReg(AArch64::LR)
7586           .addReg(AArch64::SP, RegState::InternalRead);
7587     MI.setMIFlag(MachineInstr::FrameSetup);
7588 
7589     if (MF.getInfo<AArch64FunctionInfo>()->needsDwarfUnwindInfo()) {
7590       unsigned CFIIndex =
7591           MF.addFrameInst(MCCFIInstruction::createNegateRAState(nullptr));
7592       BuildMI(MBB, MBBPAC, DebugLoc(), TII->get(AArch64::CFI_INSTRUCTION))
7593           .addCFIIndex(CFIIndex)
7594           .setMIFlags(MachineInstr::FrameSetup);
7595     }
7596 
7597     // If v8.3a features are available we can replace a RET instruction by
7598     // RETAA or RETAB and omit the AUT instructions
7599     if (Subtarget.hasPAuth() && MBBAUT != MBB.end() &&
7600         MBBAUT->getOpcode() == AArch64::RET) {
7601       BuildMI(MBB, MBBAUT, DL,
7602               TII->get(ShouldSignReturnAddrWithAKey ? AArch64::RETAA
7603                                                     : AArch64::RETAB))
7604           .copyImplicitOps(*MBBAUT);
7605       MBB.erase(MBBAUT);
7606     } else {
7607       BuildMI(MBB, MBBAUT, DL,
7608               TII->get(ShouldSignReturnAddrWithAKey ? AArch64::AUTIASP
7609                                                     : AArch64::AUTIBSP))
7610           .setMIFlag(MachineInstr::FrameDestroy);
7611     }
7612   }
7613 }
7614 
7615 void AArch64InstrInfo::buildOutlinedFrame(
7616     MachineBasicBlock &MBB, MachineFunction &MF,
7617     const outliner::OutlinedFunction &OF) const {
7618 
7619   AArch64FunctionInfo *FI = MF.getInfo<AArch64FunctionInfo>();
7620 
7621   if (OF.FrameConstructionID == MachineOutlinerTailCall)
7622     FI->setOutliningStyle("Tail Call");
7623   else if (OF.FrameConstructionID == MachineOutlinerThunk) {
7624     // For thunk outlining, rewrite the last instruction from a call to a
7625     // tail-call.
7626     MachineInstr *Call = &*--MBB.instr_end();
7627     unsigned TailOpcode;
7628     if (Call->getOpcode() == AArch64::BL) {
7629       TailOpcode = AArch64::TCRETURNdi;
7630     } else {
7631       assert(Call->getOpcode() == AArch64::BLR ||
7632              Call->getOpcode() == AArch64::BLRNoIP);
7633       TailOpcode = AArch64::TCRETURNriALL;
7634     }
7635     MachineInstr *TC = BuildMI(MF, DebugLoc(), get(TailOpcode))
7636                            .add(Call->getOperand(0))
7637                            .addImm(0);
7638     MBB.insert(MBB.end(), TC);
7639     Call->eraseFromParent();
7640 
7641     FI->setOutliningStyle("Thunk");
7642   }
7643 
7644   bool IsLeafFunction = true;
7645 
7646   // Is there a call in the outlined range?
7647   auto IsNonTailCall = [](const MachineInstr &MI) {
7648     return MI.isCall() && !MI.isReturn();
7649   };
7650 
7651   if (llvm::any_of(MBB.instrs(), IsNonTailCall)) {
7652     // Fix up the instructions in the range, since we're going to modify the
7653     // stack.
7654 
7655     // Bugzilla ID: 46767
7656     // TODO: Check if fixing up twice is safe so we can outline these.
7657     assert(OF.FrameConstructionID != MachineOutlinerDefault &&
7658            "Can only fix up stack references once");
7659     fixupPostOutline(MBB);
7660 
7661     IsLeafFunction = false;
7662 
7663     // LR has to be a live in so that we can save it.
7664     if (!MBB.isLiveIn(AArch64::LR))
7665       MBB.addLiveIn(AArch64::LR);
7666 
7667     MachineBasicBlock::iterator It = MBB.begin();
7668     MachineBasicBlock::iterator Et = MBB.end();
7669 
7670     if (OF.FrameConstructionID == MachineOutlinerTailCall ||
7671         OF.FrameConstructionID == MachineOutlinerThunk)
7672       Et = std::prev(MBB.end());
7673 
7674     // Insert a save before the outlined region
7675     MachineInstr *STRXpre = BuildMI(MF, DebugLoc(), get(AArch64::STRXpre))
7676                                 .addReg(AArch64::SP, RegState::Define)
7677                                 .addReg(AArch64::LR)
7678                                 .addReg(AArch64::SP)
7679                                 .addImm(-16);
7680     It = MBB.insert(It, STRXpre);
7681 
7682     if (MF.getInfo<AArch64FunctionInfo>()->needsDwarfUnwindInfo()) {
7683       const TargetSubtargetInfo &STI = MF.getSubtarget();
7684       const MCRegisterInfo *MRI = STI.getRegisterInfo();
7685       unsigned DwarfReg = MRI->getDwarfRegNum(AArch64::LR, true);
7686 
7687       // Add a CFI saying the stack was moved 16 B down.
7688       int64_t StackPosEntry =
7689           MF.addFrameInst(MCCFIInstruction::cfiDefCfaOffset(nullptr, 16));
7690       BuildMI(MBB, It, DebugLoc(), get(AArch64::CFI_INSTRUCTION))
7691           .addCFIIndex(StackPosEntry)
7692           .setMIFlags(MachineInstr::FrameSetup);
7693 
7694       // Add a CFI saying that the LR that we want to find is now 16 B higher
7695       // than before.
7696       int64_t LRPosEntry = MF.addFrameInst(
7697           MCCFIInstruction::createOffset(nullptr, DwarfReg, -16));
7698       BuildMI(MBB, It, DebugLoc(), get(AArch64::CFI_INSTRUCTION))
7699           .addCFIIndex(LRPosEntry)
7700           .setMIFlags(MachineInstr::FrameSetup);
7701     }
7702 
7703     // Insert a restore before the terminator for the function.
7704     MachineInstr *LDRXpost = BuildMI(MF, DebugLoc(), get(AArch64::LDRXpost))
7705                                  .addReg(AArch64::SP, RegState::Define)
7706                                  .addReg(AArch64::LR, RegState::Define)
7707                                  .addReg(AArch64::SP)
7708                                  .addImm(16);
7709     Et = MBB.insert(Et, LDRXpost);
7710   }
7711 
7712   // If a bunch of candidates reach this point they must agree on their return
7713   // address signing. It is therefore enough to just consider the signing
7714   // behaviour of one of them
7715   const auto &MFI = *OF.Candidates.front().getMF()->getInfo<AArch64FunctionInfo>();
7716   bool ShouldSignReturnAddr = MFI.shouldSignReturnAddress(!IsLeafFunction);
7717 
7718   // a_key is the default
7719   bool ShouldSignReturnAddrWithAKey = !MFI.shouldSignWithBKey();
7720 
7721   // If this is a tail call outlined function, then there's already a return.
7722   if (OF.FrameConstructionID == MachineOutlinerTailCall ||
7723       OF.FrameConstructionID == MachineOutlinerThunk) {
7724     signOutlinedFunction(MF, MBB, ShouldSignReturnAddr,
7725                          ShouldSignReturnAddrWithAKey);
7726     return;
7727   }
7728 
7729   // It's not a tail call, so we have to insert the return ourselves.
7730 
7731   // LR has to be a live in so that we can return to it.
7732   if (!MBB.isLiveIn(AArch64::LR))
7733     MBB.addLiveIn(AArch64::LR);
7734 
7735   MachineInstr *ret = BuildMI(MF, DebugLoc(), get(AArch64::RET))
7736                           .addReg(AArch64::LR);
7737   MBB.insert(MBB.end(), ret);
7738 
7739   signOutlinedFunction(MF, MBB, ShouldSignReturnAddr,
7740                        ShouldSignReturnAddrWithAKey);
7741 
7742   FI->setOutliningStyle("Function");
7743 
7744   // Did we have to modify the stack by saving the link register?
7745   if (OF.FrameConstructionID != MachineOutlinerDefault)
7746     return;
7747 
7748   // We modified the stack.
7749   // Walk over the basic block and fix up all the stack accesses.
7750   fixupPostOutline(MBB);
7751 }
7752 
7753 MachineBasicBlock::iterator AArch64InstrInfo::insertOutlinedCall(
7754     Module &M, MachineBasicBlock &MBB, MachineBasicBlock::iterator &It,
7755     MachineFunction &MF, outliner::Candidate &C) const {
7756 
7757   // Are we tail calling?
7758   if (C.CallConstructionID == MachineOutlinerTailCall) {
7759     // If yes, then we can just branch to the label.
7760     It = MBB.insert(It, BuildMI(MF, DebugLoc(), get(AArch64::TCRETURNdi))
7761                             .addGlobalAddress(M.getNamedValue(MF.getName()))
7762                             .addImm(0));
7763     return It;
7764   }
7765 
7766   // Are we saving the link register?
7767   if (C.CallConstructionID == MachineOutlinerNoLRSave ||
7768       C.CallConstructionID == MachineOutlinerThunk) {
7769     // No, so just insert the call.
7770     It = MBB.insert(It, BuildMI(MF, DebugLoc(), get(AArch64::BL))
7771                             .addGlobalAddress(M.getNamedValue(MF.getName())));
7772     return It;
7773   }
7774 
7775   // We want to return the spot where we inserted the call.
7776   MachineBasicBlock::iterator CallPt;
7777 
7778   // Instructions for saving and restoring LR around the call instruction we're
7779   // going to insert.
7780   MachineInstr *Save;
7781   MachineInstr *Restore;
7782   // Can we save to a register?
7783   if (C.CallConstructionID == MachineOutlinerRegSave) {
7784     // FIXME: This logic should be sunk into a target-specific interface so that
7785     // we don't have to recompute the register.
7786     Register Reg = findRegisterToSaveLRTo(C);
7787     assert(Reg && "No callee-saved register available?");
7788 
7789     // LR has to be a live in so that we can save it.
7790     if (!MBB.isLiveIn(AArch64::LR))
7791       MBB.addLiveIn(AArch64::LR);
7792 
7793     // Save and restore LR from Reg.
7794     Save = BuildMI(MF, DebugLoc(), get(AArch64::ORRXrs), Reg)
7795                .addReg(AArch64::XZR)
7796                .addReg(AArch64::LR)
7797                .addImm(0);
7798     Restore = BuildMI(MF, DebugLoc(), get(AArch64::ORRXrs), AArch64::LR)
7799                 .addReg(AArch64::XZR)
7800                 .addReg(Reg)
7801                 .addImm(0);
7802   } else {
7803     // We have the default case. Save and restore from SP.
7804     Save = BuildMI(MF, DebugLoc(), get(AArch64::STRXpre))
7805                .addReg(AArch64::SP, RegState::Define)
7806                .addReg(AArch64::LR)
7807                .addReg(AArch64::SP)
7808                .addImm(-16);
7809     Restore = BuildMI(MF, DebugLoc(), get(AArch64::LDRXpost))
7810                   .addReg(AArch64::SP, RegState::Define)
7811                   .addReg(AArch64::LR, RegState::Define)
7812                   .addReg(AArch64::SP)
7813                   .addImm(16);
7814   }
7815 
7816   It = MBB.insert(It, Save);
7817   It++;
7818 
7819   // Insert the call.
7820   It = MBB.insert(It, BuildMI(MF, DebugLoc(), get(AArch64::BL))
7821                           .addGlobalAddress(M.getNamedValue(MF.getName())));
7822   CallPt = It;
7823   It++;
7824 
7825   It = MBB.insert(It, Restore);
7826   return CallPt;
7827 }
7828 
7829 bool AArch64InstrInfo::shouldOutlineFromFunctionByDefault(
7830   MachineFunction &MF) const {
7831   return MF.getFunction().hasMinSize();
7832 }
7833 
7834 Optional<DestSourcePair>
7835 AArch64InstrInfo::isCopyInstrImpl(const MachineInstr &MI) const {
7836 
7837   // AArch64::ORRWrs and AArch64::ORRXrs with WZR/XZR reg
7838   // and zero immediate operands used as an alias for mov instruction.
7839   if (MI.getOpcode() == AArch64::ORRWrs &&
7840       MI.getOperand(1).getReg() == AArch64::WZR &&
7841       MI.getOperand(3).getImm() == 0x0) {
7842     return DestSourcePair{MI.getOperand(0), MI.getOperand(2)};
7843   }
7844 
7845   if (MI.getOpcode() == AArch64::ORRXrs &&
7846       MI.getOperand(1).getReg() == AArch64::XZR &&
7847       MI.getOperand(3).getImm() == 0x0) {
7848     return DestSourcePair{MI.getOperand(0), MI.getOperand(2)};
7849   }
7850 
7851   return None;
7852 }
7853 
7854 Optional<RegImmPair> AArch64InstrInfo::isAddImmediate(const MachineInstr &MI,
7855                                                       Register Reg) const {
7856   int Sign = 1;
7857   int64_t Offset = 0;
7858 
7859   // TODO: Handle cases where Reg is a super- or sub-register of the
7860   // destination register.
7861   const MachineOperand &Op0 = MI.getOperand(0);
7862   if (!Op0.isReg() || Reg != Op0.getReg())
7863     return None;
7864 
7865   switch (MI.getOpcode()) {
7866   default:
7867     return None;
7868   case AArch64::SUBWri:
7869   case AArch64::SUBXri:
7870   case AArch64::SUBSWri:
7871   case AArch64::SUBSXri:
7872     Sign *= -1;
7873     LLVM_FALLTHROUGH;
7874   case AArch64::ADDSWri:
7875   case AArch64::ADDSXri:
7876   case AArch64::ADDWri:
7877   case AArch64::ADDXri: {
7878     // TODO: Third operand can be global address (usually some string).
7879     if (!MI.getOperand(0).isReg() || !MI.getOperand(1).isReg() ||
7880         !MI.getOperand(2).isImm())
7881       return None;
7882     int Shift = MI.getOperand(3).getImm();
7883     assert((Shift == 0 || Shift == 12) && "Shift can be either 0 or 12");
7884     Offset = Sign * (MI.getOperand(2).getImm() << Shift);
7885   }
7886   }
7887   return RegImmPair{MI.getOperand(1).getReg(), Offset};
7888 }
7889 
7890 /// If the given ORR instruction is a copy, and \p DescribedReg overlaps with
7891 /// the destination register then, if possible, describe the value in terms of
7892 /// the source register.
7893 static Optional<ParamLoadedValue>
7894 describeORRLoadedValue(const MachineInstr &MI, Register DescribedReg,
7895                        const TargetInstrInfo *TII,
7896                        const TargetRegisterInfo *TRI) {
7897   auto DestSrc = TII->isCopyInstr(MI);
7898   if (!DestSrc)
7899     return None;
7900 
7901   Register DestReg = DestSrc->Destination->getReg();
7902   Register SrcReg = DestSrc->Source->getReg();
7903 
7904   auto Expr = DIExpression::get(MI.getMF()->getFunction().getContext(), {});
7905 
7906   // If the described register is the destination, just return the source.
7907   if (DestReg == DescribedReg)
7908     return ParamLoadedValue(MachineOperand::CreateReg(SrcReg, false), Expr);
7909 
7910   // ORRWrs zero-extends to 64-bits, so we need to consider such cases.
7911   if (MI.getOpcode() == AArch64::ORRWrs &&
7912       TRI->isSuperRegister(DestReg, DescribedReg))
7913     return ParamLoadedValue(MachineOperand::CreateReg(SrcReg, false), Expr);
7914 
7915   // We may need to describe the lower part of a ORRXrs move.
7916   if (MI.getOpcode() == AArch64::ORRXrs &&
7917       TRI->isSubRegister(DestReg, DescribedReg)) {
7918     Register SrcSubReg = TRI->getSubReg(SrcReg, AArch64::sub_32);
7919     return ParamLoadedValue(MachineOperand::CreateReg(SrcSubReg, false), Expr);
7920   }
7921 
7922   assert(!TRI->isSuperOrSubRegisterEq(DestReg, DescribedReg) &&
7923          "Unhandled ORR[XW]rs copy case");
7924 
7925   return None;
7926 }
7927 
7928 Optional<ParamLoadedValue>
7929 AArch64InstrInfo::describeLoadedValue(const MachineInstr &MI,
7930                                       Register Reg) const {
7931   const MachineFunction *MF = MI.getMF();
7932   const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo();
7933   switch (MI.getOpcode()) {
7934   case AArch64::MOVZWi:
7935   case AArch64::MOVZXi: {
7936     // MOVZWi may be used for producing zero-extended 32-bit immediates in
7937     // 64-bit parameters, so we need to consider super-registers.
7938     if (!TRI->isSuperRegisterEq(MI.getOperand(0).getReg(), Reg))
7939       return None;
7940 
7941     if (!MI.getOperand(1).isImm())
7942       return None;
7943     int64_t Immediate = MI.getOperand(1).getImm();
7944     int Shift = MI.getOperand(2).getImm();
7945     return ParamLoadedValue(MachineOperand::CreateImm(Immediate << Shift),
7946                             nullptr);
7947   }
7948   case AArch64::ORRWrs:
7949   case AArch64::ORRXrs:
7950     return describeORRLoadedValue(MI, Reg, this, TRI);
7951   }
7952 
7953   return TargetInstrInfo::describeLoadedValue(MI, Reg);
7954 }
7955 
7956 bool AArch64InstrInfo::isExtendLikelyToBeFolded(
7957     MachineInstr &ExtMI, MachineRegisterInfo &MRI) const {
7958   assert(ExtMI.getOpcode() == TargetOpcode::G_SEXT ||
7959          ExtMI.getOpcode() == TargetOpcode::G_ZEXT ||
7960          ExtMI.getOpcode() == TargetOpcode::G_ANYEXT);
7961 
7962   // Anyexts are nops.
7963   if (ExtMI.getOpcode() == TargetOpcode::G_ANYEXT)
7964     return true;
7965 
7966   Register DefReg = ExtMI.getOperand(0).getReg();
7967   if (!MRI.hasOneNonDBGUse(DefReg))
7968     return false;
7969 
7970   // It's likely that a sext/zext as a G_PTR_ADD offset will be folded into an
7971   // addressing mode.
7972   auto *UserMI = &*MRI.use_instr_nodbg_begin(DefReg);
7973   return UserMI->getOpcode() == TargetOpcode::G_PTR_ADD;
7974 }
7975 
7976 uint64_t AArch64InstrInfo::getElementSizeForOpcode(unsigned Opc) const {
7977   return get(Opc).TSFlags & AArch64::ElementSizeMask;
7978 }
7979 
7980 bool AArch64InstrInfo::isPTestLikeOpcode(unsigned Opc) const {
7981   return get(Opc).TSFlags & AArch64::InstrFlagIsPTestLike;
7982 }
7983 
7984 bool AArch64InstrInfo::isWhileOpcode(unsigned Opc) const {
7985   return get(Opc).TSFlags & AArch64::InstrFlagIsWhile;
7986 }
7987 
7988 unsigned int
7989 AArch64InstrInfo::getTailDuplicateSize(CodeGenOpt::Level OptLevel) const {
7990   return OptLevel >= CodeGenOpt::Aggressive ? 6 : 2;
7991 }
7992 
7993 unsigned llvm::getBLRCallOpcode(const MachineFunction &MF) {
7994   if (MF.getSubtarget<AArch64Subtarget>().hardenSlsBlr())
7995     return AArch64::BLRNoIP;
7996   else
7997     return AArch64::BLR;
7998 }
7999 
8000 #define GET_INSTRINFO_HELPERS
8001 #define GET_INSTRMAP_INFO
8002 #include "AArch64GenInstrInfo.inc"
8003