1 //===-- llvm/CodeGen/GlobalISel/LegalizerHelper.cpp -----------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 /// \file This file implements the LegalizerHelper class to legalize
10 /// individual instructions and the LegalizeMachineIR wrapper pass for the
11 /// primary legalization.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "llvm/CodeGen/GlobalISel/LegalizerHelper.h"
16 #include "llvm/CodeGen/GlobalISel/CallLowering.h"
17 #include "llvm/CodeGen/GlobalISel/GISelChangeObserver.h"
18 #include "llvm/CodeGen/GlobalISel/LegalizerInfo.h"
19 #include "llvm/CodeGen/MachineRegisterInfo.h"
20 #include "llvm/CodeGen/TargetFrameLowering.h"
21 #include "llvm/CodeGen/TargetInstrInfo.h"
22 #include "llvm/CodeGen/TargetLowering.h"
23 #include "llvm/CodeGen/TargetSubtargetInfo.h"
24 #include "llvm/Support/Debug.h"
25 #include "llvm/Support/MathExtras.h"
26 #include "llvm/Support/raw_ostream.h"
27 
28 #define DEBUG_TYPE "legalizer"
29 
30 using namespace llvm;
31 using namespace LegalizeActions;
32 
33 /// Try to break down \p OrigTy into \p NarrowTy sized pieces.
34 ///
35 /// Returns the number of \p NarrowTy elements needed to reconstruct \p OrigTy,
36 /// with any leftover piece as type \p LeftoverTy
37 ///
38 /// Returns -1 in the first element of the pair if the breakdown is not
39 /// satisfiable.
40 static std::pair<int, int>
41 getNarrowTypeBreakDown(LLT OrigTy, LLT NarrowTy, LLT &LeftoverTy) {
42   assert(!LeftoverTy.isValid() && "this is an out argument");
43 
44   unsigned Size = OrigTy.getSizeInBits();
45   unsigned NarrowSize = NarrowTy.getSizeInBits();
46   unsigned NumParts = Size / NarrowSize;
47   unsigned LeftoverSize = Size - NumParts * NarrowSize;
48   assert(Size > NarrowSize);
49 
50   if (LeftoverSize == 0)
51     return {NumParts, 0};
52 
53   if (NarrowTy.isVector()) {
54     unsigned EltSize = OrigTy.getScalarSizeInBits();
55     if (LeftoverSize % EltSize != 0)
56       return {-1, -1};
57     LeftoverTy = LLT::scalarOrVector(LeftoverSize / EltSize, EltSize);
58   } else {
59     LeftoverTy = LLT::scalar(LeftoverSize);
60   }
61 
62   int NumLeftover = LeftoverSize / LeftoverTy.getSizeInBits();
63   return std::make_pair(NumParts, NumLeftover);
64 }
65 
66 static LLT getGCDType(LLT OrigTy, LLT TargetTy) {
67   if (OrigTy.isVector() && TargetTy.isVector()) {
68     assert(OrigTy.getElementType() == TargetTy.getElementType());
69     int GCD = greatestCommonDivisor(OrigTy.getNumElements(),
70                                     TargetTy.getNumElements());
71     return LLT::scalarOrVector(GCD, OrigTy.getElementType());
72   }
73 
74   if (OrigTy.isVector() && !TargetTy.isVector()) {
75     assert(OrigTy.getElementType() == TargetTy);
76     return TargetTy;
77   }
78 
79   assert(!OrigTy.isVector() && !TargetTy.isVector() &&
80          "GCD type of vector and scalar not implemented");
81 
82   int GCD = greatestCommonDivisor(OrigTy.getSizeInBits(),
83                                   TargetTy.getSizeInBits());
84   return LLT::scalar(GCD);
85 }
86 
87 static LLT getLCMType(LLT Ty0, LLT Ty1) {
88   if (!Ty0.isVector() && !Ty1.isVector()) {
89     unsigned Mul = Ty0.getSizeInBits() * Ty1.getSizeInBits();
90     int GCDSize = greatestCommonDivisor(Ty0.getSizeInBits(),
91                                         Ty1.getSizeInBits());
92     return LLT::scalar(Mul / GCDSize);
93   }
94 
95   if (Ty0.isVector() && !Ty1.isVector()) {
96     assert(Ty0.getElementType() == Ty1 && "not yet handled");
97     return Ty0;
98   }
99 
100   if (Ty1.isVector() && !Ty0.isVector()) {
101     assert(Ty1.getElementType() == Ty0 && "not yet handled");
102     return Ty1;
103   }
104 
105   if (Ty0.isVector() && Ty1.isVector()) {
106     assert(Ty0.getElementType() == Ty1.getElementType() && "not yet handled");
107 
108     int GCDElts = greatestCommonDivisor(Ty0.getNumElements(),
109                                         Ty1.getNumElements());
110 
111     int Mul = Ty0.getNumElements() * Ty1.getNumElements();
112     return LLT::vector(Mul / GCDElts, Ty0.getElementType());
113   }
114 
115   llvm_unreachable("not yet handled");
116 }
117 
118 LegalizerHelper::LegalizerHelper(MachineFunction &MF,
119                                  GISelChangeObserver &Observer,
120                                  MachineIRBuilder &Builder)
121     : MIRBuilder(Builder), MRI(MF.getRegInfo()),
122       LI(*MF.getSubtarget().getLegalizerInfo()), Observer(Observer) {
123   MIRBuilder.setMF(MF);
124   MIRBuilder.setChangeObserver(Observer);
125 }
126 
127 LegalizerHelper::LegalizerHelper(MachineFunction &MF, const LegalizerInfo &LI,
128                                  GISelChangeObserver &Observer,
129                                  MachineIRBuilder &B)
130     : MIRBuilder(B), MRI(MF.getRegInfo()), LI(LI), Observer(Observer) {
131   MIRBuilder.setMF(MF);
132   MIRBuilder.setChangeObserver(Observer);
133 }
134 LegalizerHelper::LegalizeResult
135 LegalizerHelper::legalizeInstrStep(MachineInstr &MI) {
136   LLVM_DEBUG(dbgs() << "Legalizing: "; MI.print(dbgs()));
137 
138   if (MI.getOpcode() == TargetOpcode::G_INTRINSIC ||
139       MI.getOpcode() == TargetOpcode::G_INTRINSIC_W_SIDE_EFFECTS)
140     return LI.legalizeIntrinsic(MI, MIRBuilder, Observer) ? Legalized
141                                                           : UnableToLegalize;
142   auto Step = LI.getAction(MI, MRI);
143   switch (Step.Action) {
144   case Legal:
145     LLVM_DEBUG(dbgs() << ".. Already legal\n");
146     return AlreadyLegal;
147   case Libcall:
148     LLVM_DEBUG(dbgs() << ".. Convert to libcall\n");
149     return libcall(MI);
150   case NarrowScalar:
151     LLVM_DEBUG(dbgs() << ".. Narrow scalar\n");
152     return narrowScalar(MI, Step.TypeIdx, Step.NewType);
153   case WidenScalar:
154     LLVM_DEBUG(dbgs() << ".. Widen scalar\n");
155     return widenScalar(MI, Step.TypeIdx, Step.NewType);
156   case Lower:
157     LLVM_DEBUG(dbgs() << ".. Lower\n");
158     return lower(MI, Step.TypeIdx, Step.NewType);
159   case FewerElements:
160     LLVM_DEBUG(dbgs() << ".. Reduce number of elements\n");
161     return fewerElementsVector(MI, Step.TypeIdx, Step.NewType);
162   case MoreElements:
163     LLVM_DEBUG(dbgs() << ".. Increase number of elements\n");
164     return moreElementsVector(MI, Step.TypeIdx, Step.NewType);
165   case Custom:
166     LLVM_DEBUG(dbgs() << ".. Custom legalization\n");
167     return LI.legalizeCustom(MI, MRI, MIRBuilder, Observer) ? Legalized
168                                                             : UnableToLegalize;
169   default:
170     LLVM_DEBUG(dbgs() << ".. Unable to legalize\n");
171     return UnableToLegalize;
172   }
173 }
174 
175 void LegalizerHelper::extractParts(Register Reg, LLT Ty, int NumParts,
176                                    SmallVectorImpl<Register> &VRegs) {
177   for (int i = 0; i < NumParts; ++i)
178     VRegs.push_back(MRI.createGenericVirtualRegister(Ty));
179   MIRBuilder.buildUnmerge(VRegs, Reg);
180 }
181 
182 bool LegalizerHelper::extractParts(Register Reg, LLT RegTy,
183                                    LLT MainTy, LLT &LeftoverTy,
184                                    SmallVectorImpl<Register> &VRegs,
185                                    SmallVectorImpl<Register> &LeftoverRegs) {
186   assert(!LeftoverTy.isValid() && "this is an out argument");
187 
188   unsigned RegSize = RegTy.getSizeInBits();
189   unsigned MainSize = MainTy.getSizeInBits();
190   unsigned NumParts = RegSize / MainSize;
191   unsigned LeftoverSize = RegSize - NumParts * MainSize;
192 
193   // Use an unmerge when possible.
194   if (LeftoverSize == 0) {
195     for (unsigned I = 0; I < NumParts; ++I)
196       VRegs.push_back(MRI.createGenericVirtualRegister(MainTy));
197     MIRBuilder.buildUnmerge(VRegs, Reg);
198     return true;
199   }
200 
201   if (MainTy.isVector()) {
202     unsigned EltSize = MainTy.getScalarSizeInBits();
203     if (LeftoverSize % EltSize != 0)
204       return false;
205     LeftoverTy = LLT::scalarOrVector(LeftoverSize / EltSize, EltSize);
206   } else {
207     LeftoverTy = LLT::scalar(LeftoverSize);
208   }
209 
210   // For irregular sizes, extract the individual parts.
211   for (unsigned I = 0; I != NumParts; ++I) {
212     Register NewReg = MRI.createGenericVirtualRegister(MainTy);
213     VRegs.push_back(NewReg);
214     MIRBuilder.buildExtract(NewReg, Reg, MainSize * I);
215   }
216 
217   for (unsigned Offset = MainSize * NumParts; Offset < RegSize;
218        Offset += LeftoverSize) {
219     Register NewReg = MRI.createGenericVirtualRegister(LeftoverTy);
220     LeftoverRegs.push_back(NewReg);
221     MIRBuilder.buildExtract(NewReg, Reg, Offset);
222   }
223 
224   return true;
225 }
226 
227 void LegalizerHelper::insertParts(Register DstReg,
228                                   LLT ResultTy, LLT PartTy,
229                                   ArrayRef<Register> PartRegs,
230                                   LLT LeftoverTy,
231                                   ArrayRef<Register> LeftoverRegs) {
232   if (!LeftoverTy.isValid()) {
233     assert(LeftoverRegs.empty());
234 
235     if (!ResultTy.isVector()) {
236       MIRBuilder.buildMerge(DstReg, PartRegs);
237       return;
238     }
239 
240     if (PartTy.isVector())
241       MIRBuilder.buildConcatVectors(DstReg, PartRegs);
242     else
243       MIRBuilder.buildBuildVector(DstReg, PartRegs);
244     return;
245   }
246 
247   unsigned PartSize = PartTy.getSizeInBits();
248   unsigned LeftoverPartSize = LeftoverTy.getSizeInBits();
249 
250   Register CurResultReg = MRI.createGenericVirtualRegister(ResultTy);
251   MIRBuilder.buildUndef(CurResultReg);
252 
253   unsigned Offset = 0;
254   for (Register PartReg : PartRegs) {
255     Register NewResultReg = MRI.createGenericVirtualRegister(ResultTy);
256     MIRBuilder.buildInsert(NewResultReg, CurResultReg, PartReg, Offset);
257     CurResultReg = NewResultReg;
258     Offset += PartSize;
259   }
260 
261   for (unsigned I = 0, E = LeftoverRegs.size(); I != E; ++I) {
262     // Use the original output register for the final insert to avoid a copy.
263     Register NewResultReg = (I + 1 == E) ?
264       DstReg : MRI.createGenericVirtualRegister(ResultTy);
265 
266     MIRBuilder.buildInsert(NewResultReg, CurResultReg, LeftoverRegs[I], Offset);
267     CurResultReg = NewResultReg;
268     Offset += LeftoverPartSize;
269   }
270 }
271 
272 /// Return the result registers of G_UNMERGE_VALUES \p MI in \p Regs
273 static void getUnmergeResults(SmallVectorImpl<Register> &Regs,
274                               const MachineInstr &MI) {
275   assert(MI.getOpcode() == TargetOpcode::G_UNMERGE_VALUES);
276 
277   const int NumResults = MI.getNumOperands() - 1;
278   Regs.resize(NumResults);
279   for (int I = 0; I != NumResults; ++I)
280     Regs[I] = MI.getOperand(I).getReg();
281 }
282 
283 LLT LegalizerHelper::extractGCDType(SmallVectorImpl<Register> &Parts, LLT DstTy,
284                                     LLT NarrowTy, Register SrcReg) {
285   LLT SrcTy = MRI.getType(SrcReg);
286 
287   LLT GCDTy = getGCDType(DstTy, getGCDType(SrcTy, NarrowTy));
288   if (SrcTy == GCDTy) {
289     // If the source already evenly divides the result type, we don't need to do
290     // anything.
291     Parts.push_back(SrcReg);
292   } else {
293     // Need to split into common type sized pieces.
294     auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg);
295     getUnmergeResults(Parts, *Unmerge);
296   }
297 
298   return GCDTy;
299 }
300 
301 LLT LegalizerHelper::buildLCMMergePieces(LLT DstTy, LLT NarrowTy, LLT GCDTy,
302                                          SmallVectorImpl<Register> &VRegs,
303                                          unsigned PadStrategy) {
304   LLT LCMTy = getLCMType(DstTy, NarrowTy);
305 
306   int NumParts = LCMTy.getSizeInBits() / NarrowTy.getSizeInBits();
307   int NumSubParts = NarrowTy.getSizeInBits() / GCDTy.getSizeInBits();
308   int NumOrigSrc = VRegs.size();
309 
310   Register PadReg;
311 
312   // Get a value we can use to pad the source value if the sources won't evenly
313   // cover the result type.
314   if (NumOrigSrc < NumParts * NumSubParts) {
315     if (PadStrategy == TargetOpcode::G_ZEXT)
316       PadReg = MIRBuilder.buildConstant(GCDTy, 0).getReg(0);
317     else if (PadStrategy == TargetOpcode::G_ANYEXT)
318       PadReg = MIRBuilder.buildUndef(GCDTy).getReg(0);
319     else {
320       assert(PadStrategy == TargetOpcode::G_SEXT);
321 
322       // Shift the sign bit of the low register through the high register.
323       auto ShiftAmt =
324         MIRBuilder.buildConstant(LLT::scalar(64), GCDTy.getSizeInBits() - 1);
325       PadReg = MIRBuilder.buildAShr(GCDTy, VRegs.back(), ShiftAmt).getReg(0);
326     }
327   }
328 
329   // Registers for the final merge to be produced.
330   SmallVector<Register, 4> Remerge;
331   Remerge.resize(NumParts);
332 
333   // Registers needed for intermediate merges, which will be merged into a
334   // source for Remerge.
335   SmallVector<Register, 4> SubMerge;
336   SubMerge.resize(NumSubParts);
337 
338   // Once we've fully read off the end of the original source bits, we can reuse
339   // the same high bits for remaining padding elements.
340   Register AllPadReg;
341 
342   // Build merges to the LCM type to cover the original result type.
343   for (int I = 0; I != NumParts; ++I) {
344     bool AllMergePartsArePadding = true;
345 
346     // Build the requested merges to the requested type.
347     for (int J = 0; J != NumSubParts; ++J) {
348       int Idx = I * NumSubParts + J;
349       if (Idx >= NumOrigSrc) {
350         SubMerge[J] = PadReg;
351         continue;
352       }
353 
354       SubMerge[J] = VRegs[Idx];
355 
356       // There are meaningful bits here we can't reuse later.
357       AllMergePartsArePadding = false;
358     }
359 
360     // If we've filled up a complete piece with padding bits, we can directly
361     // emit the natural sized constant if applicable, rather than a merge of
362     // smaller constants.
363     if (AllMergePartsArePadding && !AllPadReg) {
364       if (PadStrategy == TargetOpcode::G_ANYEXT)
365         AllPadReg = MIRBuilder.buildUndef(NarrowTy).getReg(0);
366       else if (PadStrategy == TargetOpcode::G_ZEXT)
367         AllPadReg = MIRBuilder.buildConstant(NarrowTy, 0).getReg(0);
368 
369       // If this is a sign extension, we can't materialize a trivial constant
370       // with the right type and have to produce a merge.
371     }
372 
373     if (AllPadReg) {
374       // Avoid creating additional instructions if we're just adding additional
375       // copies of padding bits.
376       Remerge[I] = AllPadReg;
377       continue;
378     }
379 
380     if (NumSubParts == 1)
381       Remerge[I] = SubMerge[0];
382     else
383       Remerge[I] = MIRBuilder.buildMerge(NarrowTy, SubMerge).getReg(0);
384 
385     // In the sign extend padding case, re-use the first all-signbit merge.
386     if (AllMergePartsArePadding && !AllPadReg)
387       AllPadReg = Remerge[I];
388   }
389 
390   VRegs = std::move(Remerge);
391   return LCMTy;
392 }
393 
394 void LegalizerHelper::buildWidenedRemergeToDst(Register DstReg, LLT LCMTy,
395                                                ArrayRef<Register> RemergeRegs) {
396   LLT DstTy = MRI.getType(DstReg);
397 
398   // Create the merge to the widened source, and extract the relevant bits into
399   // the result.
400 
401   if (DstTy == LCMTy) {
402     MIRBuilder.buildMerge(DstReg, RemergeRegs);
403     return;
404   }
405 
406   auto Remerge = MIRBuilder.buildMerge(LCMTy, RemergeRegs);
407   if (DstTy.isScalar() && LCMTy.isScalar()) {
408     MIRBuilder.buildTrunc(DstReg, Remerge);
409     return;
410   }
411 
412   if (LCMTy.isVector()) {
413     MIRBuilder.buildExtract(DstReg, Remerge, 0);
414     return;
415   }
416 
417   llvm_unreachable("unhandled case");
418 }
419 
420 static RTLIB::Libcall getRTLibDesc(unsigned Opcode, unsigned Size) {
421   switch (Opcode) {
422   case TargetOpcode::G_SDIV:
423     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
424     switch (Size) {
425     case 32:
426       return RTLIB::SDIV_I32;
427     case 64:
428       return RTLIB::SDIV_I64;
429     case 128:
430       return RTLIB::SDIV_I128;
431     default:
432       llvm_unreachable("unexpected size");
433     }
434   case TargetOpcode::G_UDIV:
435     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
436     switch (Size) {
437     case 32:
438       return RTLIB::UDIV_I32;
439     case 64:
440       return RTLIB::UDIV_I64;
441     case 128:
442       return RTLIB::UDIV_I128;
443     default:
444       llvm_unreachable("unexpected size");
445     }
446   case TargetOpcode::G_SREM:
447     assert((Size == 32 || Size == 64) && "Unsupported size");
448     return Size == 64 ? RTLIB::SREM_I64 : RTLIB::SREM_I32;
449   case TargetOpcode::G_UREM:
450     assert((Size == 32 || Size == 64) && "Unsupported size");
451     return Size == 64 ? RTLIB::UREM_I64 : RTLIB::UREM_I32;
452   case TargetOpcode::G_CTLZ_ZERO_UNDEF:
453     assert(Size == 32 && "Unsupported size");
454     return RTLIB::CTLZ_I32;
455   case TargetOpcode::G_FADD:
456     assert((Size == 32 || Size == 64) && "Unsupported size");
457     return Size == 64 ? RTLIB::ADD_F64 : RTLIB::ADD_F32;
458   case TargetOpcode::G_FSUB:
459     assert((Size == 32 || Size == 64) && "Unsupported size");
460     return Size == 64 ? RTLIB::SUB_F64 : RTLIB::SUB_F32;
461   case TargetOpcode::G_FMUL:
462     assert((Size == 32 || Size == 64) && "Unsupported size");
463     return Size == 64 ? RTLIB::MUL_F64 : RTLIB::MUL_F32;
464   case TargetOpcode::G_FDIV:
465     assert((Size == 32 || Size == 64) && "Unsupported size");
466     return Size == 64 ? RTLIB::DIV_F64 : RTLIB::DIV_F32;
467   case TargetOpcode::G_FEXP:
468     assert((Size == 32 || Size == 64) && "Unsupported size");
469     return Size == 64 ? RTLIB::EXP_F64 : RTLIB::EXP_F32;
470   case TargetOpcode::G_FEXP2:
471     assert((Size == 32 || Size == 64) && "Unsupported size");
472     return Size == 64 ? RTLIB::EXP2_F64 : RTLIB::EXP2_F32;
473   case TargetOpcode::G_FREM:
474     return Size == 64 ? RTLIB::REM_F64 : RTLIB::REM_F32;
475   case TargetOpcode::G_FPOW:
476     return Size == 64 ? RTLIB::POW_F64 : RTLIB::POW_F32;
477   case TargetOpcode::G_FMA:
478     assert((Size == 32 || Size == 64) && "Unsupported size");
479     return Size == 64 ? RTLIB::FMA_F64 : RTLIB::FMA_F32;
480   case TargetOpcode::G_FSIN:
481     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
482     return Size == 128 ? RTLIB::SIN_F128
483                        : Size == 64 ? RTLIB::SIN_F64 : RTLIB::SIN_F32;
484   case TargetOpcode::G_FCOS:
485     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
486     return Size == 128 ? RTLIB::COS_F128
487                        : Size == 64 ? RTLIB::COS_F64 : RTLIB::COS_F32;
488   case TargetOpcode::G_FLOG10:
489     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
490     return Size == 128 ? RTLIB::LOG10_F128
491                        : Size == 64 ? RTLIB::LOG10_F64 : RTLIB::LOG10_F32;
492   case TargetOpcode::G_FLOG:
493     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
494     return Size == 128 ? RTLIB::LOG_F128
495                        : Size == 64 ? RTLIB::LOG_F64 : RTLIB::LOG_F32;
496   case TargetOpcode::G_FLOG2:
497     assert((Size == 32 || Size == 64 || Size == 128) && "Unsupported size");
498     return Size == 128 ? RTLIB::LOG2_F128
499                        : Size == 64 ? RTLIB::LOG2_F64 : RTLIB::LOG2_F32;
500   case TargetOpcode::G_FCEIL:
501     assert((Size == 32 || Size == 64) && "Unsupported size");
502     return Size == 64 ? RTLIB::CEIL_F64 : RTLIB::CEIL_F32;
503   case TargetOpcode::G_FFLOOR:
504     assert((Size == 32 || Size == 64) && "Unsupported size");
505     return Size == 64 ? RTLIB::FLOOR_F64 : RTLIB::FLOOR_F32;
506   }
507   llvm_unreachable("Unknown libcall function");
508 }
509 
510 /// True if an instruction is in tail position in its caller. Intended for
511 /// legalizing libcalls as tail calls when possible.
512 static bool isLibCallInTailPosition(MachineInstr &MI) {
513   const Function &F = MI.getParent()->getParent()->getFunction();
514 
515   // Conservatively require the attributes of the call to match those of
516   // the return. Ignore NoAlias and NonNull because they don't affect the
517   // call sequence.
518   AttributeList CallerAttrs = F.getAttributes();
519   if (AttrBuilder(CallerAttrs, AttributeList::ReturnIndex)
520           .removeAttribute(Attribute::NoAlias)
521           .removeAttribute(Attribute::NonNull)
522           .hasAttributes())
523     return false;
524 
525   // It's not safe to eliminate the sign / zero extension of the return value.
526   if (CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::ZExt) ||
527       CallerAttrs.hasAttribute(AttributeList::ReturnIndex, Attribute::SExt))
528     return false;
529 
530   // Only tail call if the following instruction is a standard return.
531   auto &TII = *MI.getMF()->getSubtarget().getInstrInfo();
532   MachineInstr *Next = MI.getNextNode();
533   if (!Next || TII.isTailCall(*Next) || !Next->isReturn())
534     return false;
535 
536   return true;
537 }
538 
539 LegalizerHelper::LegalizeResult
540 llvm::createLibcall(MachineIRBuilder &MIRBuilder, RTLIB::Libcall Libcall,
541                     const CallLowering::ArgInfo &Result,
542                     ArrayRef<CallLowering::ArgInfo> Args) {
543   auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering();
544   auto &TLI = *MIRBuilder.getMF().getSubtarget().getTargetLowering();
545   const char *Name = TLI.getLibcallName(Libcall);
546 
547   CallLowering::CallLoweringInfo Info;
548   Info.CallConv = TLI.getLibcallCallingConv(Libcall);
549   Info.Callee = MachineOperand::CreateES(Name);
550   Info.OrigRet = Result;
551   std::copy(Args.begin(), Args.end(), std::back_inserter(Info.OrigArgs));
552   if (!CLI.lowerCall(MIRBuilder, Info))
553     return LegalizerHelper::UnableToLegalize;
554 
555   return LegalizerHelper::Legalized;
556 }
557 
558 // Useful for libcalls where all operands have the same type.
559 static LegalizerHelper::LegalizeResult
560 simpleLibcall(MachineInstr &MI, MachineIRBuilder &MIRBuilder, unsigned Size,
561               Type *OpType) {
562   auto Libcall = getRTLibDesc(MI.getOpcode(), Size);
563 
564   SmallVector<CallLowering::ArgInfo, 3> Args;
565   for (unsigned i = 1; i < MI.getNumOperands(); i++)
566     Args.push_back({MI.getOperand(i).getReg(), OpType});
567   return createLibcall(MIRBuilder, Libcall, {MI.getOperand(0).getReg(), OpType},
568                        Args);
569 }
570 
571 LegalizerHelper::LegalizeResult
572 llvm::createMemLibcall(MachineIRBuilder &MIRBuilder, MachineRegisterInfo &MRI,
573                        MachineInstr &MI) {
574   assert(MI.getOpcode() == TargetOpcode::G_INTRINSIC_W_SIDE_EFFECTS);
575   auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
576 
577   SmallVector<CallLowering::ArgInfo, 3> Args;
578   // Add all the args, except for the last which is an imm denoting 'tail'.
579   for (unsigned i = 1; i < MI.getNumOperands() - 1; i++) {
580     Register Reg = MI.getOperand(i).getReg();
581 
582     // Need derive an IR type for call lowering.
583     LLT OpLLT = MRI.getType(Reg);
584     Type *OpTy = nullptr;
585     if (OpLLT.isPointer())
586       OpTy = Type::getInt8PtrTy(Ctx, OpLLT.getAddressSpace());
587     else
588       OpTy = IntegerType::get(Ctx, OpLLT.getSizeInBits());
589     Args.push_back({Reg, OpTy});
590   }
591 
592   auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering();
593   auto &TLI = *MIRBuilder.getMF().getSubtarget().getTargetLowering();
594   Intrinsic::ID ID = MI.getOperand(0).getIntrinsicID();
595   RTLIB::Libcall RTLibcall;
596   switch (ID) {
597   case Intrinsic::memcpy:
598     RTLibcall = RTLIB::MEMCPY;
599     break;
600   case Intrinsic::memset:
601     RTLibcall = RTLIB::MEMSET;
602     break;
603   case Intrinsic::memmove:
604     RTLibcall = RTLIB::MEMMOVE;
605     break;
606   default:
607     return LegalizerHelper::UnableToLegalize;
608   }
609   const char *Name = TLI.getLibcallName(RTLibcall);
610 
611   MIRBuilder.setInstr(MI);
612 
613   CallLowering::CallLoweringInfo Info;
614   Info.CallConv = TLI.getLibcallCallingConv(RTLibcall);
615   Info.Callee = MachineOperand::CreateES(Name);
616   Info.OrigRet = CallLowering::ArgInfo({0}, Type::getVoidTy(Ctx));
617   Info.IsTailCall = MI.getOperand(MI.getNumOperands() - 1).getImm() == 1 &&
618                     isLibCallInTailPosition(MI);
619 
620   std::copy(Args.begin(), Args.end(), std::back_inserter(Info.OrigArgs));
621   if (!CLI.lowerCall(MIRBuilder, Info))
622     return LegalizerHelper::UnableToLegalize;
623 
624   if (Info.LoweredTailCall) {
625     assert(Info.IsTailCall && "Lowered tail call when it wasn't a tail call?");
626     // We must have a return following the call to get past
627     // isLibCallInTailPosition.
628     assert(MI.getNextNode() && MI.getNextNode()->isReturn() &&
629            "Expected instr following MI to be a return?");
630 
631     // We lowered a tail call, so the call is now the return from the block.
632     // Delete the old return.
633     MI.getNextNode()->eraseFromParent();
634   }
635 
636   return LegalizerHelper::Legalized;
637 }
638 
639 static RTLIB::Libcall getConvRTLibDesc(unsigned Opcode, Type *ToType,
640                                        Type *FromType) {
641   auto ToMVT = MVT::getVT(ToType);
642   auto FromMVT = MVT::getVT(FromType);
643 
644   switch (Opcode) {
645   case TargetOpcode::G_FPEXT:
646     return RTLIB::getFPEXT(FromMVT, ToMVT);
647   case TargetOpcode::G_FPTRUNC:
648     return RTLIB::getFPROUND(FromMVT, ToMVT);
649   case TargetOpcode::G_FPTOSI:
650     return RTLIB::getFPTOSINT(FromMVT, ToMVT);
651   case TargetOpcode::G_FPTOUI:
652     return RTLIB::getFPTOUINT(FromMVT, ToMVT);
653   case TargetOpcode::G_SITOFP:
654     return RTLIB::getSINTTOFP(FromMVT, ToMVT);
655   case TargetOpcode::G_UITOFP:
656     return RTLIB::getUINTTOFP(FromMVT, ToMVT);
657   }
658   llvm_unreachable("Unsupported libcall function");
659 }
660 
661 static LegalizerHelper::LegalizeResult
662 conversionLibcall(MachineInstr &MI, MachineIRBuilder &MIRBuilder, Type *ToType,
663                   Type *FromType) {
664   RTLIB::Libcall Libcall = getConvRTLibDesc(MI.getOpcode(), ToType, FromType);
665   return createLibcall(MIRBuilder, Libcall, {MI.getOperand(0).getReg(), ToType},
666                        {{MI.getOperand(1).getReg(), FromType}});
667 }
668 
669 LegalizerHelper::LegalizeResult
670 LegalizerHelper::libcall(MachineInstr &MI) {
671   LLT LLTy = MRI.getType(MI.getOperand(0).getReg());
672   unsigned Size = LLTy.getSizeInBits();
673   auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
674 
675   MIRBuilder.setInstr(MI);
676 
677   switch (MI.getOpcode()) {
678   default:
679     return UnableToLegalize;
680   case TargetOpcode::G_SDIV:
681   case TargetOpcode::G_UDIV:
682   case TargetOpcode::G_SREM:
683   case TargetOpcode::G_UREM:
684   case TargetOpcode::G_CTLZ_ZERO_UNDEF: {
685     Type *HLTy = IntegerType::get(Ctx, Size);
686     auto Status = simpleLibcall(MI, MIRBuilder, Size, HLTy);
687     if (Status != Legalized)
688       return Status;
689     break;
690   }
691   case TargetOpcode::G_FADD:
692   case TargetOpcode::G_FSUB:
693   case TargetOpcode::G_FMUL:
694   case TargetOpcode::G_FDIV:
695   case TargetOpcode::G_FMA:
696   case TargetOpcode::G_FPOW:
697   case TargetOpcode::G_FREM:
698   case TargetOpcode::G_FCOS:
699   case TargetOpcode::G_FSIN:
700   case TargetOpcode::G_FLOG10:
701   case TargetOpcode::G_FLOG:
702   case TargetOpcode::G_FLOG2:
703   case TargetOpcode::G_FEXP:
704   case TargetOpcode::G_FEXP2:
705   case TargetOpcode::G_FCEIL:
706   case TargetOpcode::G_FFLOOR: {
707     if (Size > 64) {
708       LLVM_DEBUG(dbgs() << "Size " << Size << " too large to legalize.\n");
709       return UnableToLegalize;
710     }
711     Type *HLTy = Size == 64 ? Type::getDoubleTy(Ctx) : Type::getFloatTy(Ctx);
712     auto Status = simpleLibcall(MI, MIRBuilder, Size, HLTy);
713     if (Status != Legalized)
714       return Status;
715     break;
716   }
717   case TargetOpcode::G_FPEXT: {
718     // FIXME: Support other floating point types (half, fp128 etc)
719     unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
720     unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
721     if (ToSize != 64 || FromSize != 32)
722       return UnableToLegalize;
723     LegalizeResult Status = conversionLibcall(
724         MI, MIRBuilder, Type::getDoubleTy(Ctx), Type::getFloatTy(Ctx));
725     if (Status != Legalized)
726       return Status;
727     break;
728   }
729   case TargetOpcode::G_FPTRUNC: {
730     // FIXME: Support other floating point types (half, fp128 etc)
731     unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
732     unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
733     if (ToSize != 32 || FromSize != 64)
734       return UnableToLegalize;
735     LegalizeResult Status = conversionLibcall(
736         MI, MIRBuilder, Type::getFloatTy(Ctx), Type::getDoubleTy(Ctx));
737     if (Status != Legalized)
738       return Status;
739     break;
740   }
741   case TargetOpcode::G_FPTOSI:
742   case TargetOpcode::G_FPTOUI: {
743     // FIXME: Support other types
744     unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
745     unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
746     if ((ToSize != 32 && ToSize != 64) || (FromSize != 32 && FromSize != 64))
747       return UnableToLegalize;
748     LegalizeResult Status = conversionLibcall(
749         MI, MIRBuilder,
750         ToSize == 32 ? Type::getInt32Ty(Ctx) : Type::getInt64Ty(Ctx),
751         FromSize == 64 ? Type::getDoubleTy(Ctx) : Type::getFloatTy(Ctx));
752     if (Status != Legalized)
753       return Status;
754     break;
755   }
756   case TargetOpcode::G_SITOFP:
757   case TargetOpcode::G_UITOFP: {
758     // FIXME: Support other types
759     unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
760     unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
761     if ((FromSize != 32 && FromSize != 64) || (ToSize != 32 && ToSize != 64))
762       return UnableToLegalize;
763     LegalizeResult Status = conversionLibcall(
764         MI, MIRBuilder,
765         ToSize == 64 ? Type::getDoubleTy(Ctx) : Type::getFloatTy(Ctx),
766         FromSize == 32 ? Type::getInt32Ty(Ctx) : Type::getInt64Ty(Ctx));
767     if (Status != Legalized)
768       return Status;
769     break;
770   }
771   }
772 
773   MI.eraseFromParent();
774   return Legalized;
775 }
776 
777 LegalizerHelper::LegalizeResult LegalizerHelper::narrowScalar(MachineInstr &MI,
778                                                               unsigned TypeIdx,
779                                                               LLT NarrowTy) {
780   MIRBuilder.setInstr(MI);
781 
782   uint64_t SizeOp0 = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
783   uint64_t NarrowSize = NarrowTy.getSizeInBits();
784 
785   switch (MI.getOpcode()) {
786   default:
787     return UnableToLegalize;
788   case TargetOpcode::G_IMPLICIT_DEF: {
789     // FIXME: add support for when SizeOp0 isn't an exact multiple of
790     // NarrowSize.
791     if (SizeOp0 % NarrowSize != 0)
792       return UnableToLegalize;
793     int NumParts = SizeOp0 / NarrowSize;
794 
795     SmallVector<Register, 2> DstRegs;
796     for (int i = 0; i < NumParts; ++i)
797       DstRegs.push_back(
798           MIRBuilder.buildUndef(NarrowTy).getReg(0));
799 
800     Register DstReg = MI.getOperand(0).getReg();
801     if(MRI.getType(DstReg).isVector())
802       MIRBuilder.buildBuildVector(DstReg, DstRegs);
803     else
804       MIRBuilder.buildMerge(DstReg, DstRegs);
805     MI.eraseFromParent();
806     return Legalized;
807   }
808   case TargetOpcode::G_CONSTANT: {
809     LLT Ty = MRI.getType(MI.getOperand(0).getReg());
810     const APInt &Val = MI.getOperand(1).getCImm()->getValue();
811     unsigned TotalSize = Ty.getSizeInBits();
812     unsigned NarrowSize = NarrowTy.getSizeInBits();
813     int NumParts = TotalSize / NarrowSize;
814 
815     SmallVector<Register, 4> PartRegs;
816     for (int I = 0; I != NumParts; ++I) {
817       unsigned Offset = I * NarrowSize;
818       auto K = MIRBuilder.buildConstant(NarrowTy,
819                                         Val.lshr(Offset).trunc(NarrowSize));
820       PartRegs.push_back(K.getReg(0));
821     }
822 
823     LLT LeftoverTy;
824     unsigned LeftoverBits = TotalSize - NumParts * NarrowSize;
825     SmallVector<Register, 1> LeftoverRegs;
826     if (LeftoverBits != 0) {
827       LeftoverTy = LLT::scalar(LeftoverBits);
828       auto K = MIRBuilder.buildConstant(
829         LeftoverTy,
830         Val.lshr(NumParts * NarrowSize).trunc(LeftoverBits));
831       LeftoverRegs.push_back(K.getReg(0));
832     }
833 
834     insertParts(MI.getOperand(0).getReg(),
835                 Ty, NarrowTy, PartRegs, LeftoverTy, LeftoverRegs);
836 
837     MI.eraseFromParent();
838     return Legalized;
839   }
840   case TargetOpcode::G_SEXT:
841   case TargetOpcode::G_ZEXT:
842   case TargetOpcode::G_ANYEXT:
843     return narrowScalarExt(MI, TypeIdx, NarrowTy);
844   case TargetOpcode::G_TRUNC: {
845     if (TypeIdx != 1)
846       return UnableToLegalize;
847 
848     uint64_t SizeOp1 = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
849     if (NarrowTy.getSizeInBits() * 2 != SizeOp1) {
850       LLVM_DEBUG(dbgs() << "Can't narrow trunc to type " << NarrowTy << "\n");
851       return UnableToLegalize;
852     }
853 
854     auto Unmerge = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1));
855     MIRBuilder.buildCopy(MI.getOperand(0), Unmerge.getReg(0));
856     MI.eraseFromParent();
857     return Legalized;
858   }
859 
860   case TargetOpcode::G_ADD: {
861     // FIXME: add support for when SizeOp0 isn't an exact multiple of
862     // NarrowSize.
863     if (SizeOp0 % NarrowSize != 0)
864       return UnableToLegalize;
865     // Expand in terms of carry-setting/consuming G_ADDE instructions.
866     int NumParts = SizeOp0 / NarrowTy.getSizeInBits();
867 
868     SmallVector<Register, 2> Src1Regs, Src2Regs, DstRegs;
869     extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, Src1Regs);
870     extractParts(MI.getOperand(2).getReg(), NarrowTy, NumParts, Src2Regs);
871 
872     Register CarryIn;
873     for (int i = 0; i < NumParts; ++i) {
874       Register DstReg = MRI.createGenericVirtualRegister(NarrowTy);
875       Register CarryOut = MRI.createGenericVirtualRegister(LLT::scalar(1));
876 
877       if (i == 0)
878         MIRBuilder.buildUAddo(DstReg, CarryOut, Src1Regs[i], Src2Regs[i]);
879       else {
880         MIRBuilder.buildUAdde(DstReg, CarryOut, Src1Regs[i],
881                               Src2Regs[i], CarryIn);
882       }
883 
884       DstRegs.push_back(DstReg);
885       CarryIn = CarryOut;
886     }
887     Register DstReg = MI.getOperand(0).getReg();
888     if(MRI.getType(DstReg).isVector())
889       MIRBuilder.buildBuildVector(DstReg, DstRegs);
890     else
891       MIRBuilder.buildMerge(DstReg, DstRegs);
892     MI.eraseFromParent();
893     return Legalized;
894   }
895   case TargetOpcode::G_SUB: {
896     // FIXME: add support for when SizeOp0 isn't an exact multiple of
897     // NarrowSize.
898     if (SizeOp0 % NarrowSize != 0)
899       return UnableToLegalize;
900 
901     int NumParts = SizeOp0 / NarrowTy.getSizeInBits();
902 
903     SmallVector<Register, 2> Src1Regs, Src2Regs, DstRegs;
904     extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, Src1Regs);
905     extractParts(MI.getOperand(2).getReg(), NarrowTy, NumParts, Src2Regs);
906 
907     Register DstReg = MRI.createGenericVirtualRegister(NarrowTy);
908     Register BorrowOut = MRI.createGenericVirtualRegister(LLT::scalar(1));
909     MIRBuilder.buildInstr(TargetOpcode::G_USUBO, {DstReg, BorrowOut},
910                           {Src1Regs[0], Src2Regs[0]});
911     DstRegs.push_back(DstReg);
912     Register BorrowIn = BorrowOut;
913     for (int i = 1; i < NumParts; ++i) {
914       DstReg = MRI.createGenericVirtualRegister(NarrowTy);
915       BorrowOut = MRI.createGenericVirtualRegister(LLT::scalar(1));
916 
917       MIRBuilder.buildInstr(TargetOpcode::G_USUBE, {DstReg, BorrowOut},
918                             {Src1Regs[i], Src2Regs[i], BorrowIn});
919 
920       DstRegs.push_back(DstReg);
921       BorrowIn = BorrowOut;
922     }
923     MIRBuilder.buildMerge(MI.getOperand(0), DstRegs);
924     MI.eraseFromParent();
925     return Legalized;
926   }
927   case TargetOpcode::G_MUL:
928   case TargetOpcode::G_UMULH:
929     return narrowScalarMul(MI, NarrowTy);
930   case TargetOpcode::G_EXTRACT:
931     return narrowScalarExtract(MI, TypeIdx, NarrowTy);
932   case TargetOpcode::G_INSERT:
933     return narrowScalarInsert(MI, TypeIdx, NarrowTy);
934   case TargetOpcode::G_LOAD: {
935     const auto &MMO = **MI.memoperands_begin();
936     Register DstReg = MI.getOperand(0).getReg();
937     LLT DstTy = MRI.getType(DstReg);
938     if (DstTy.isVector())
939       return UnableToLegalize;
940 
941     if (8 * MMO.getSize() != DstTy.getSizeInBits()) {
942       Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
943       auto &MMO = **MI.memoperands_begin();
944       MIRBuilder.buildLoad(TmpReg, MI.getOperand(1), MMO);
945       MIRBuilder.buildAnyExt(DstReg, TmpReg);
946       MI.eraseFromParent();
947       return Legalized;
948     }
949 
950     return reduceLoadStoreWidth(MI, TypeIdx, NarrowTy);
951   }
952   case TargetOpcode::G_ZEXTLOAD:
953   case TargetOpcode::G_SEXTLOAD: {
954     bool ZExt = MI.getOpcode() == TargetOpcode::G_ZEXTLOAD;
955     Register DstReg = MI.getOperand(0).getReg();
956     Register PtrReg = MI.getOperand(1).getReg();
957 
958     Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
959     auto &MMO = **MI.memoperands_begin();
960     if (MMO.getSizeInBits() == NarrowSize) {
961       MIRBuilder.buildLoad(TmpReg, PtrReg, MMO);
962     } else {
963       MIRBuilder.buildLoadInstr(MI.getOpcode(), TmpReg, PtrReg, MMO);
964     }
965 
966     if (ZExt)
967       MIRBuilder.buildZExt(DstReg, TmpReg);
968     else
969       MIRBuilder.buildSExt(DstReg, TmpReg);
970 
971     MI.eraseFromParent();
972     return Legalized;
973   }
974   case TargetOpcode::G_STORE: {
975     const auto &MMO = **MI.memoperands_begin();
976 
977     Register SrcReg = MI.getOperand(0).getReg();
978     LLT SrcTy = MRI.getType(SrcReg);
979     if (SrcTy.isVector())
980       return UnableToLegalize;
981 
982     int NumParts = SizeOp0 / NarrowSize;
983     unsigned HandledSize = NumParts * NarrowTy.getSizeInBits();
984     unsigned LeftoverBits = SrcTy.getSizeInBits() - HandledSize;
985     if (SrcTy.isVector() && LeftoverBits != 0)
986       return UnableToLegalize;
987 
988     if (8 * MMO.getSize() != SrcTy.getSizeInBits()) {
989       Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
990       auto &MMO = **MI.memoperands_begin();
991       MIRBuilder.buildTrunc(TmpReg, SrcReg);
992       MIRBuilder.buildStore(TmpReg, MI.getOperand(1), MMO);
993       MI.eraseFromParent();
994       return Legalized;
995     }
996 
997     return reduceLoadStoreWidth(MI, 0, NarrowTy);
998   }
999   case TargetOpcode::G_SELECT:
1000     return narrowScalarSelect(MI, TypeIdx, NarrowTy);
1001   case TargetOpcode::G_AND:
1002   case TargetOpcode::G_OR:
1003   case TargetOpcode::G_XOR: {
1004     // Legalize bitwise operation:
1005     // A = BinOp<Ty> B, C
1006     // into:
1007     // B1, ..., BN = G_UNMERGE_VALUES B
1008     // C1, ..., CN = G_UNMERGE_VALUES C
1009     // A1 = BinOp<Ty/N> B1, C2
1010     // ...
1011     // AN = BinOp<Ty/N> BN, CN
1012     // A = G_MERGE_VALUES A1, ..., AN
1013     return narrowScalarBasic(MI, TypeIdx, NarrowTy);
1014   }
1015   case TargetOpcode::G_SHL:
1016   case TargetOpcode::G_LSHR:
1017   case TargetOpcode::G_ASHR:
1018     return narrowScalarShift(MI, TypeIdx, NarrowTy);
1019   case TargetOpcode::G_CTLZ:
1020   case TargetOpcode::G_CTLZ_ZERO_UNDEF:
1021   case TargetOpcode::G_CTTZ:
1022   case TargetOpcode::G_CTTZ_ZERO_UNDEF:
1023   case TargetOpcode::G_CTPOP:
1024     if (TypeIdx == 1)
1025       switch (MI.getOpcode()) {
1026       case TargetOpcode::G_CTLZ:
1027         return narrowScalarCTLZ(MI, TypeIdx, NarrowTy);
1028       case TargetOpcode::G_CTTZ:
1029         return narrowScalarCTTZ(MI, TypeIdx, NarrowTy);
1030       case TargetOpcode::G_CTPOP:
1031         return narrowScalarCTPOP(MI, TypeIdx, NarrowTy);
1032       default:
1033         return UnableToLegalize;
1034       }
1035 
1036     Observer.changingInstr(MI);
1037     narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT);
1038     Observer.changedInstr(MI);
1039     return Legalized;
1040   case TargetOpcode::G_INTTOPTR:
1041     if (TypeIdx != 1)
1042       return UnableToLegalize;
1043 
1044     Observer.changingInstr(MI);
1045     narrowScalarSrc(MI, NarrowTy, 1);
1046     Observer.changedInstr(MI);
1047     return Legalized;
1048   case TargetOpcode::G_PTRTOINT:
1049     if (TypeIdx != 0)
1050       return UnableToLegalize;
1051 
1052     Observer.changingInstr(MI);
1053     narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT);
1054     Observer.changedInstr(MI);
1055     return Legalized;
1056   case TargetOpcode::G_PHI: {
1057     unsigned NumParts = SizeOp0 / NarrowSize;
1058     SmallVector<Register, 2> DstRegs;
1059     SmallVector<SmallVector<Register, 2>, 2> SrcRegs;
1060     DstRegs.resize(NumParts);
1061     SrcRegs.resize(MI.getNumOperands() / 2);
1062     Observer.changingInstr(MI);
1063     for (unsigned i = 1; i < MI.getNumOperands(); i += 2) {
1064       MachineBasicBlock &OpMBB = *MI.getOperand(i + 1).getMBB();
1065       MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator());
1066       extractParts(MI.getOperand(i).getReg(), NarrowTy, NumParts,
1067                    SrcRegs[i / 2]);
1068     }
1069     MachineBasicBlock &MBB = *MI.getParent();
1070     MIRBuilder.setInsertPt(MBB, MI);
1071     for (unsigned i = 0; i < NumParts; ++i) {
1072       DstRegs[i] = MRI.createGenericVirtualRegister(NarrowTy);
1073       MachineInstrBuilder MIB =
1074           MIRBuilder.buildInstr(TargetOpcode::G_PHI).addDef(DstRegs[i]);
1075       for (unsigned j = 1; j < MI.getNumOperands(); j += 2)
1076         MIB.addUse(SrcRegs[j / 2][i]).add(MI.getOperand(j + 1));
1077     }
1078     MIRBuilder.setInsertPt(MBB, MBB.getFirstNonPHI());
1079     MIRBuilder.buildMerge(MI.getOperand(0), DstRegs);
1080     Observer.changedInstr(MI);
1081     MI.eraseFromParent();
1082     return Legalized;
1083   }
1084   case TargetOpcode::G_EXTRACT_VECTOR_ELT:
1085   case TargetOpcode::G_INSERT_VECTOR_ELT: {
1086     if (TypeIdx != 2)
1087       return UnableToLegalize;
1088 
1089     int OpIdx = MI.getOpcode() == TargetOpcode::G_EXTRACT_VECTOR_ELT ? 2 : 3;
1090     Observer.changingInstr(MI);
1091     narrowScalarSrc(MI, NarrowTy, OpIdx);
1092     Observer.changedInstr(MI);
1093     return Legalized;
1094   }
1095   case TargetOpcode::G_ICMP: {
1096     uint64_t SrcSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits();
1097     if (NarrowSize * 2 != SrcSize)
1098       return UnableToLegalize;
1099 
1100     Observer.changingInstr(MI);
1101     Register LHSL = MRI.createGenericVirtualRegister(NarrowTy);
1102     Register LHSH = MRI.createGenericVirtualRegister(NarrowTy);
1103     MIRBuilder.buildUnmerge({LHSL, LHSH}, MI.getOperand(2));
1104 
1105     Register RHSL = MRI.createGenericVirtualRegister(NarrowTy);
1106     Register RHSH = MRI.createGenericVirtualRegister(NarrowTy);
1107     MIRBuilder.buildUnmerge({RHSL, RHSH}, MI.getOperand(3));
1108 
1109     CmpInst::Predicate Pred =
1110         static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate());
1111     LLT ResTy = MRI.getType(MI.getOperand(0).getReg());
1112 
1113     if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE) {
1114       MachineInstrBuilder XorL = MIRBuilder.buildXor(NarrowTy, LHSL, RHSL);
1115       MachineInstrBuilder XorH = MIRBuilder.buildXor(NarrowTy, LHSH, RHSH);
1116       MachineInstrBuilder Or = MIRBuilder.buildOr(NarrowTy, XorL, XorH);
1117       MachineInstrBuilder Zero = MIRBuilder.buildConstant(NarrowTy, 0);
1118       MIRBuilder.buildICmp(Pred, MI.getOperand(0), Or, Zero);
1119     } else {
1120       MachineInstrBuilder CmpH = MIRBuilder.buildICmp(Pred, ResTy, LHSH, RHSH);
1121       MachineInstrBuilder CmpHEQ =
1122           MIRBuilder.buildICmp(CmpInst::Predicate::ICMP_EQ, ResTy, LHSH, RHSH);
1123       MachineInstrBuilder CmpLU = MIRBuilder.buildICmp(
1124           ICmpInst::getUnsignedPredicate(Pred), ResTy, LHSL, RHSL);
1125       MIRBuilder.buildSelect(MI.getOperand(0), CmpHEQ, CmpLU, CmpH);
1126     }
1127     Observer.changedInstr(MI);
1128     MI.eraseFromParent();
1129     return Legalized;
1130   }
1131   case TargetOpcode::G_SEXT_INREG: {
1132     if (TypeIdx != 0)
1133       return UnableToLegalize;
1134 
1135     if (!MI.getOperand(2).isImm())
1136       return UnableToLegalize;
1137     int64_t SizeInBits = MI.getOperand(2).getImm();
1138 
1139     // So long as the new type has more bits than the bits we're extending we
1140     // don't need to break it apart.
1141     if (NarrowTy.getScalarSizeInBits() >= SizeInBits) {
1142       Observer.changingInstr(MI);
1143       // We don't lose any non-extension bits by truncating the src and
1144       // sign-extending the dst.
1145       MachineOperand &MO1 = MI.getOperand(1);
1146       auto TruncMIB = MIRBuilder.buildTrunc(NarrowTy, MO1);
1147       MO1.setReg(TruncMIB.getReg(0));
1148 
1149       MachineOperand &MO2 = MI.getOperand(0);
1150       Register DstExt = MRI.createGenericVirtualRegister(NarrowTy);
1151       MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
1152       MIRBuilder.buildSExt(MO2, DstExt);
1153       MO2.setReg(DstExt);
1154       Observer.changedInstr(MI);
1155       return Legalized;
1156     }
1157 
1158     // Break it apart. Components below the extension point are unmodified. The
1159     // component containing the extension point becomes a narrower SEXT_INREG.
1160     // Components above it are ashr'd from the component containing the
1161     // extension point.
1162     if (SizeOp0 % NarrowSize != 0)
1163       return UnableToLegalize;
1164     int NumParts = SizeOp0 / NarrowSize;
1165 
1166     // List the registers where the destination will be scattered.
1167     SmallVector<Register, 2> DstRegs;
1168     // List the registers where the source will be split.
1169     SmallVector<Register, 2> SrcRegs;
1170 
1171     // Create all the temporary registers.
1172     for (int i = 0; i < NumParts; ++i) {
1173       Register SrcReg = MRI.createGenericVirtualRegister(NarrowTy);
1174 
1175       SrcRegs.push_back(SrcReg);
1176     }
1177 
1178     // Explode the big arguments into smaller chunks.
1179     MIRBuilder.buildUnmerge(SrcRegs, MI.getOperand(1));
1180 
1181     Register AshrCstReg =
1182         MIRBuilder.buildConstant(NarrowTy, NarrowTy.getScalarSizeInBits() - 1)
1183             .getReg(0);
1184     Register FullExtensionReg = 0;
1185     Register PartialExtensionReg = 0;
1186 
1187     // Do the operation on each small part.
1188     for (int i = 0; i < NumParts; ++i) {
1189       if ((i + 1) * NarrowTy.getScalarSizeInBits() < SizeInBits)
1190         DstRegs.push_back(SrcRegs[i]);
1191       else if (i * NarrowTy.getScalarSizeInBits() > SizeInBits) {
1192         assert(PartialExtensionReg &&
1193                "Expected to visit partial extension before full");
1194         if (FullExtensionReg) {
1195           DstRegs.push_back(FullExtensionReg);
1196           continue;
1197         }
1198         DstRegs.push_back(
1199             MIRBuilder.buildAShr(NarrowTy, PartialExtensionReg, AshrCstReg)
1200                 .getReg(0));
1201         FullExtensionReg = DstRegs.back();
1202       } else {
1203         DstRegs.push_back(
1204             MIRBuilder
1205                 .buildInstr(
1206                     TargetOpcode::G_SEXT_INREG, {NarrowTy},
1207                     {SrcRegs[i], SizeInBits % NarrowTy.getScalarSizeInBits()})
1208                 .getReg(0));
1209         PartialExtensionReg = DstRegs.back();
1210       }
1211     }
1212 
1213     // Gather the destination registers into the final destination.
1214     Register DstReg = MI.getOperand(0).getReg();
1215     MIRBuilder.buildMerge(DstReg, DstRegs);
1216     MI.eraseFromParent();
1217     return Legalized;
1218   }
1219   case TargetOpcode::G_BSWAP:
1220   case TargetOpcode::G_BITREVERSE: {
1221     if (SizeOp0 % NarrowSize != 0)
1222       return UnableToLegalize;
1223 
1224     Observer.changingInstr(MI);
1225     SmallVector<Register, 2> SrcRegs, DstRegs;
1226     unsigned NumParts = SizeOp0 / NarrowSize;
1227     extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs);
1228 
1229     for (unsigned i = 0; i < NumParts; ++i) {
1230       auto DstPart = MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy},
1231                                            {SrcRegs[NumParts - 1 - i]});
1232       DstRegs.push_back(DstPart.getReg(0));
1233     }
1234 
1235     MIRBuilder.buildMerge(MI.getOperand(0), DstRegs);
1236 
1237     Observer.changedInstr(MI);
1238     MI.eraseFromParent();
1239     return Legalized;
1240   }
1241   }
1242 }
1243 
1244 void LegalizerHelper::widenScalarSrc(MachineInstr &MI, LLT WideTy,
1245                                      unsigned OpIdx, unsigned ExtOpcode) {
1246   MachineOperand &MO = MI.getOperand(OpIdx);
1247   auto ExtB = MIRBuilder.buildInstr(ExtOpcode, {WideTy}, {MO});
1248   MO.setReg(ExtB.getReg(0));
1249 }
1250 
1251 void LegalizerHelper::narrowScalarSrc(MachineInstr &MI, LLT NarrowTy,
1252                                       unsigned OpIdx) {
1253   MachineOperand &MO = MI.getOperand(OpIdx);
1254   auto ExtB = MIRBuilder.buildTrunc(NarrowTy, MO);
1255   MO.setReg(ExtB.getReg(0));
1256 }
1257 
1258 void LegalizerHelper::widenScalarDst(MachineInstr &MI, LLT WideTy,
1259                                      unsigned OpIdx, unsigned TruncOpcode) {
1260   MachineOperand &MO = MI.getOperand(OpIdx);
1261   Register DstExt = MRI.createGenericVirtualRegister(WideTy);
1262   MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
1263   MIRBuilder.buildInstr(TruncOpcode, {MO}, {DstExt});
1264   MO.setReg(DstExt);
1265 }
1266 
1267 void LegalizerHelper::narrowScalarDst(MachineInstr &MI, LLT NarrowTy,
1268                                       unsigned OpIdx, unsigned ExtOpcode) {
1269   MachineOperand &MO = MI.getOperand(OpIdx);
1270   Register DstTrunc = MRI.createGenericVirtualRegister(NarrowTy);
1271   MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
1272   MIRBuilder.buildInstr(ExtOpcode, {MO}, {DstTrunc});
1273   MO.setReg(DstTrunc);
1274 }
1275 
1276 void LegalizerHelper::moreElementsVectorDst(MachineInstr &MI, LLT WideTy,
1277                                             unsigned OpIdx) {
1278   MachineOperand &MO = MI.getOperand(OpIdx);
1279   Register DstExt = MRI.createGenericVirtualRegister(WideTy);
1280   MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
1281   MIRBuilder.buildExtract(MO, DstExt, 0);
1282   MO.setReg(DstExt);
1283 }
1284 
1285 void LegalizerHelper::moreElementsVectorSrc(MachineInstr &MI, LLT MoreTy,
1286                                             unsigned OpIdx) {
1287   MachineOperand &MO = MI.getOperand(OpIdx);
1288 
1289   LLT OldTy = MRI.getType(MO.getReg());
1290   unsigned OldElts = OldTy.getNumElements();
1291   unsigned NewElts = MoreTy.getNumElements();
1292 
1293   unsigned NumParts = NewElts / OldElts;
1294 
1295   // Use concat_vectors if the result is a multiple of the number of elements.
1296   if (NumParts * OldElts == NewElts) {
1297     SmallVector<Register, 8> Parts;
1298     Parts.push_back(MO.getReg());
1299 
1300     Register ImpDef = MIRBuilder.buildUndef(OldTy).getReg(0);
1301     for (unsigned I = 1; I != NumParts; ++I)
1302       Parts.push_back(ImpDef);
1303 
1304     auto Concat = MIRBuilder.buildConcatVectors(MoreTy, Parts);
1305     MO.setReg(Concat.getReg(0));
1306     return;
1307   }
1308 
1309   Register MoreReg = MRI.createGenericVirtualRegister(MoreTy);
1310   Register ImpDef = MIRBuilder.buildUndef(MoreTy).getReg(0);
1311   MIRBuilder.buildInsert(MoreReg, ImpDef, MO.getReg(), 0);
1312   MO.setReg(MoreReg);
1313 }
1314 
1315 LegalizerHelper::LegalizeResult
1316 LegalizerHelper::widenScalarMergeValues(MachineInstr &MI, unsigned TypeIdx,
1317                                         LLT WideTy) {
1318   if (TypeIdx != 1)
1319     return UnableToLegalize;
1320 
1321   Register DstReg = MI.getOperand(0).getReg();
1322   LLT DstTy = MRI.getType(DstReg);
1323   if (DstTy.isVector())
1324     return UnableToLegalize;
1325 
1326   Register Src1 = MI.getOperand(1).getReg();
1327   LLT SrcTy = MRI.getType(Src1);
1328   const int DstSize = DstTy.getSizeInBits();
1329   const int SrcSize = SrcTy.getSizeInBits();
1330   const int WideSize = WideTy.getSizeInBits();
1331   const int NumMerge = (DstSize + WideSize - 1) / WideSize;
1332 
1333   unsigned NumOps = MI.getNumOperands();
1334   unsigned NumSrc = MI.getNumOperands() - 1;
1335   unsigned PartSize = DstTy.getSizeInBits() / NumSrc;
1336 
1337   if (WideSize >= DstSize) {
1338     // Directly pack the bits in the target type.
1339     Register ResultReg = MIRBuilder.buildZExt(WideTy, Src1).getReg(0);
1340 
1341     for (unsigned I = 2; I != NumOps; ++I) {
1342       const unsigned Offset = (I - 1) * PartSize;
1343 
1344       Register SrcReg = MI.getOperand(I).getReg();
1345       assert(MRI.getType(SrcReg) == LLT::scalar(PartSize));
1346 
1347       auto ZextInput = MIRBuilder.buildZExt(WideTy, SrcReg);
1348 
1349       Register NextResult = I + 1 == NumOps && WideTy == DstTy ? DstReg :
1350         MRI.createGenericVirtualRegister(WideTy);
1351 
1352       auto ShiftAmt = MIRBuilder.buildConstant(WideTy, Offset);
1353       auto Shl = MIRBuilder.buildShl(WideTy, ZextInput, ShiftAmt);
1354       MIRBuilder.buildOr(NextResult, ResultReg, Shl);
1355       ResultReg = NextResult;
1356     }
1357 
1358     if (WideSize > DstSize)
1359       MIRBuilder.buildTrunc(DstReg, ResultReg);
1360     else if (DstTy.isPointer())
1361       MIRBuilder.buildIntToPtr(DstReg, ResultReg);
1362 
1363     MI.eraseFromParent();
1364     return Legalized;
1365   }
1366 
1367   // Unmerge the original values to the GCD type, and recombine to the next
1368   // multiple greater than the original type.
1369   //
1370   // %3:_(s12) = G_MERGE_VALUES %0:_(s4), %1:_(s4), %2:_(s4) -> s6
1371   // %4:_(s2), %5:_(s2) = G_UNMERGE_VALUES %0
1372   // %6:_(s2), %7:_(s2) = G_UNMERGE_VALUES %1
1373   // %8:_(s2), %9:_(s2) = G_UNMERGE_VALUES %2
1374   // %10:_(s6) = G_MERGE_VALUES %4, %5, %6
1375   // %11:_(s6) = G_MERGE_VALUES %7, %8, %9
1376   // %12:_(s12) = G_MERGE_VALUES %10, %11
1377   //
1378   // Padding with undef if necessary:
1379   //
1380   // %2:_(s8) = G_MERGE_VALUES %0:_(s4), %1:_(s4) -> s6
1381   // %3:_(s2), %4:_(s2) = G_UNMERGE_VALUES %0
1382   // %5:_(s2), %6:_(s2) = G_UNMERGE_VALUES %1
1383   // %7:_(s2) = G_IMPLICIT_DEF
1384   // %8:_(s6) = G_MERGE_VALUES %3, %4, %5
1385   // %9:_(s6) = G_MERGE_VALUES %6, %7, %7
1386   // %10:_(s12) = G_MERGE_VALUES %8, %9
1387 
1388   const int GCD = greatestCommonDivisor(SrcSize, WideSize);
1389   LLT GCDTy = LLT::scalar(GCD);
1390 
1391   SmallVector<Register, 8> Parts;
1392   SmallVector<Register, 8> NewMergeRegs;
1393   SmallVector<Register, 8> Unmerges;
1394   LLT WideDstTy = LLT::scalar(NumMerge * WideSize);
1395 
1396   // Decompose the original operands if they don't evenly divide.
1397   for (int I = 1, E = MI.getNumOperands(); I != E; ++I) {
1398     Register SrcReg = MI.getOperand(I).getReg();
1399     if (GCD == SrcSize) {
1400       Unmerges.push_back(SrcReg);
1401     } else {
1402       auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg);
1403       for (int J = 0, JE = Unmerge->getNumOperands() - 1; J != JE; ++J)
1404         Unmerges.push_back(Unmerge.getReg(J));
1405     }
1406   }
1407 
1408   // Pad with undef to the next size that is a multiple of the requested size.
1409   if (static_cast<int>(Unmerges.size()) != NumMerge * WideSize) {
1410     Register UndefReg = MIRBuilder.buildUndef(GCDTy).getReg(0);
1411     for (int I = Unmerges.size(); I != NumMerge * WideSize; ++I)
1412       Unmerges.push_back(UndefReg);
1413   }
1414 
1415   const int PartsPerGCD = WideSize / GCD;
1416 
1417   // Build merges of each piece.
1418   ArrayRef<Register> Slicer(Unmerges);
1419   for (int I = 0; I != NumMerge; ++I, Slicer = Slicer.drop_front(PartsPerGCD)) {
1420     auto Merge = MIRBuilder.buildMerge(WideTy, Slicer.take_front(PartsPerGCD));
1421     NewMergeRegs.push_back(Merge.getReg(0));
1422   }
1423 
1424   // A truncate may be necessary if the requested type doesn't evenly divide the
1425   // original result type.
1426   if (DstTy.getSizeInBits() == WideDstTy.getSizeInBits()) {
1427     MIRBuilder.buildMerge(DstReg, NewMergeRegs);
1428   } else {
1429     auto FinalMerge = MIRBuilder.buildMerge(WideDstTy, NewMergeRegs);
1430     MIRBuilder.buildTrunc(DstReg, FinalMerge.getReg(0));
1431   }
1432 
1433   MI.eraseFromParent();
1434   return Legalized;
1435 }
1436 
1437 LegalizerHelper::LegalizeResult
1438 LegalizerHelper::widenScalarUnmergeValues(MachineInstr &MI, unsigned TypeIdx,
1439                                           LLT WideTy) {
1440   if (TypeIdx != 0)
1441     return UnableToLegalize;
1442 
1443   int NumDst = MI.getNumOperands() - 1;
1444   Register SrcReg = MI.getOperand(NumDst).getReg();
1445   LLT SrcTy = MRI.getType(SrcReg);
1446   if (SrcTy.isVector())
1447     return UnableToLegalize;
1448 
1449   Register Dst0Reg = MI.getOperand(0).getReg();
1450   LLT DstTy = MRI.getType(Dst0Reg);
1451   if (!DstTy.isScalar())
1452     return UnableToLegalize;
1453 
1454   if (WideTy.getSizeInBits() == SrcTy.getSizeInBits()) {
1455     if (SrcTy.isPointer()) {
1456       const DataLayout &DL = MIRBuilder.getDataLayout();
1457       if (DL.isNonIntegralAddressSpace(SrcTy.getAddressSpace())) {
1458         LLVM_DEBUG(dbgs() << "Not casting non-integral address space integer\n");
1459         return UnableToLegalize;
1460       }
1461 
1462       SrcTy = LLT::scalar(SrcTy.getSizeInBits());
1463       SrcReg = MIRBuilder.buildPtrToInt(SrcTy, SrcReg).getReg(0);
1464     }
1465 
1466     // Theres no unmerge type to target. Directly extract the bits from the
1467     // source type
1468     unsigned DstSize = DstTy.getSizeInBits();
1469 
1470     MIRBuilder.buildTrunc(Dst0Reg, SrcReg);
1471     for (int I = 1; I != NumDst; ++I) {
1472       auto ShiftAmt = MIRBuilder.buildConstant(SrcTy, DstSize * I);
1473       auto Shr = MIRBuilder.buildLShr(SrcTy, SrcReg, ShiftAmt);
1474       MIRBuilder.buildTrunc(MI.getOperand(I), Shr);
1475     }
1476 
1477     MI.eraseFromParent();
1478     return Legalized;
1479   }
1480 
1481   // TODO
1482   if (WideTy.getSizeInBits() > SrcTy.getSizeInBits())
1483     return UnableToLegalize;
1484 
1485   // Extend the source to a wider type.
1486   LLT LCMTy = getLCMType(SrcTy, WideTy);
1487 
1488   Register WideSrc = SrcReg;
1489   if (LCMTy.getSizeInBits() != SrcTy.getSizeInBits()) {
1490     // TODO: If this is an integral address space, cast to integer and anyext.
1491     if (SrcTy.isPointer()) {
1492       LLVM_DEBUG(dbgs() << "Widening pointer source types not implemented\n");
1493       return UnableToLegalize;
1494     }
1495 
1496     WideSrc = MIRBuilder.buildAnyExt(LCMTy, WideSrc).getReg(0);
1497   }
1498 
1499   auto Unmerge = MIRBuilder.buildUnmerge(WideTy, WideSrc);
1500 
1501   // Create a sequence of unmerges to the original results. since we may have
1502   // widened the source, we will need to pad the results with dead defs to cover
1503   // the source register.
1504   // e.g. widen s16 to s32:
1505   // %1:_(s16), %2:_(s16), %3:_(s16) = G_UNMERGE_VALUES %0:_(s48)
1506   //
1507   // =>
1508   //  %4:_(s64) = G_ANYEXT %0:_(s48)
1509   //  %5:_(s32), %6:_(s32) = G_UNMERGE_VALUES %4 ; Requested unmerge
1510   //  %1:_(s16), %2:_(s16) = G_UNMERGE_VALUES %5 ; unpack to original regs
1511   //  %3:_(s16), dead %7 = G_UNMERGE_VALUES %6 ; original reg + extra dead def
1512 
1513   const int NumUnmerge = Unmerge->getNumOperands() - 1;
1514   const int PartsPerUnmerge = WideTy.getSizeInBits() / DstTy.getSizeInBits();
1515 
1516   for (int I = 0; I != NumUnmerge; ++I) {
1517     auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES);
1518 
1519     for (int J = 0; J != PartsPerUnmerge; ++J) {
1520       int Idx = I * PartsPerUnmerge + J;
1521       if (Idx < NumDst)
1522         MIB.addDef(MI.getOperand(Idx).getReg());
1523       else {
1524         // Create dead def for excess components.
1525         MIB.addDef(MRI.createGenericVirtualRegister(DstTy));
1526       }
1527     }
1528 
1529     MIB.addUse(Unmerge.getReg(I));
1530   }
1531 
1532   MI.eraseFromParent();
1533   return Legalized;
1534 }
1535 
1536 LegalizerHelper::LegalizeResult
1537 LegalizerHelper::widenScalarExtract(MachineInstr &MI, unsigned TypeIdx,
1538                                     LLT WideTy) {
1539   Register DstReg = MI.getOperand(0).getReg();
1540   Register SrcReg = MI.getOperand(1).getReg();
1541   LLT SrcTy = MRI.getType(SrcReg);
1542 
1543   LLT DstTy = MRI.getType(DstReg);
1544   unsigned Offset = MI.getOperand(2).getImm();
1545 
1546   if (TypeIdx == 0) {
1547     if (SrcTy.isVector() || DstTy.isVector())
1548       return UnableToLegalize;
1549 
1550     SrcOp Src(SrcReg);
1551     if (SrcTy.isPointer()) {
1552       // Extracts from pointers can be handled only if they are really just
1553       // simple integers.
1554       const DataLayout &DL = MIRBuilder.getDataLayout();
1555       if (DL.isNonIntegralAddressSpace(SrcTy.getAddressSpace()))
1556         return UnableToLegalize;
1557 
1558       LLT SrcAsIntTy = LLT::scalar(SrcTy.getSizeInBits());
1559       Src = MIRBuilder.buildPtrToInt(SrcAsIntTy, Src);
1560       SrcTy = SrcAsIntTy;
1561     }
1562 
1563     if (DstTy.isPointer())
1564       return UnableToLegalize;
1565 
1566     if (Offset == 0) {
1567       // Avoid a shift in the degenerate case.
1568       MIRBuilder.buildTrunc(DstReg,
1569                             MIRBuilder.buildAnyExtOrTrunc(WideTy, Src));
1570       MI.eraseFromParent();
1571       return Legalized;
1572     }
1573 
1574     // Do a shift in the source type.
1575     LLT ShiftTy = SrcTy;
1576     if (WideTy.getSizeInBits() > SrcTy.getSizeInBits()) {
1577       Src = MIRBuilder.buildAnyExt(WideTy, Src);
1578       ShiftTy = WideTy;
1579     } else if (WideTy.getSizeInBits() > SrcTy.getSizeInBits())
1580       return UnableToLegalize;
1581 
1582     auto LShr = MIRBuilder.buildLShr(
1583       ShiftTy, Src, MIRBuilder.buildConstant(ShiftTy, Offset));
1584     MIRBuilder.buildTrunc(DstReg, LShr);
1585     MI.eraseFromParent();
1586     return Legalized;
1587   }
1588 
1589   if (SrcTy.isScalar()) {
1590     Observer.changingInstr(MI);
1591     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1592     Observer.changedInstr(MI);
1593     return Legalized;
1594   }
1595 
1596   if (!SrcTy.isVector())
1597     return UnableToLegalize;
1598 
1599   if (DstTy != SrcTy.getElementType())
1600     return UnableToLegalize;
1601 
1602   if (Offset % SrcTy.getScalarSizeInBits() != 0)
1603     return UnableToLegalize;
1604 
1605   Observer.changingInstr(MI);
1606   widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1607 
1608   MI.getOperand(2).setImm((WideTy.getSizeInBits() / SrcTy.getSizeInBits()) *
1609                           Offset);
1610   widenScalarDst(MI, WideTy.getScalarType(), 0);
1611   Observer.changedInstr(MI);
1612   return Legalized;
1613 }
1614 
1615 LegalizerHelper::LegalizeResult
1616 LegalizerHelper::widenScalarInsert(MachineInstr &MI, unsigned TypeIdx,
1617                                    LLT WideTy) {
1618   if (TypeIdx != 0)
1619     return UnableToLegalize;
1620   Observer.changingInstr(MI);
1621   widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1622   widenScalarDst(MI, WideTy);
1623   Observer.changedInstr(MI);
1624   return Legalized;
1625 }
1626 
1627 LegalizerHelper::LegalizeResult
1628 LegalizerHelper::widenScalar(MachineInstr &MI, unsigned TypeIdx, LLT WideTy) {
1629   MIRBuilder.setInstr(MI);
1630 
1631   switch (MI.getOpcode()) {
1632   default:
1633     return UnableToLegalize;
1634   case TargetOpcode::G_EXTRACT:
1635     return widenScalarExtract(MI, TypeIdx, WideTy);
1636   case TargetOpcode::G_INSERT:
1637     return widenScalarInsert(MI, TypeIdx, WideTy);
1638   case TargetOpcode::G_MERGE_VALUES:
1639     return widenScalarMergeValues(MI, TypeIdx, WideTy);
1640   case TargetOpcode::G_UNMERGE_VALUES:
1641     return widenScalarUnmergeValues(MI, TypeIdx, WideTy);
1642   case TargetOpcode::G_UADDO:
1643   case TargetOpcode::G_USUBO: {
1644     if (TypeIdx == 1)
1645       return UnableToLegalize; // TODO
1646     auto LHSZext = MIRBuilder.buildZExt(WideTy, MI.getOperand(2));
1647     auto RHSZext = MIRBuilder.buildZExt(WideTy, MI.getOperand(3));
1648     unsigned Opcode = MI.getOpcode() == TargetOpcode::G_UADDO
1649                           ? TargetOpcode::G_ADD
1650                           : TargetOpcode::G_SUB;
1651     // Do the arithmetic in the larger type.
1652     auto NewOp = MIRBuilder.buildInstr(Opcode, {WideTy}, {LHSZext, RHSZext});
1653     LLT OrigTy = MRI.getType(MI.getOperand(0).getReg());
1654     APInt Mask =
1655         APInt::getLowBitsSet(WideTy.getSizeInBits(), OrigTy.getSizeInBits());
1656     auto AndOp = MIRBuilder.buildAnd(
1657         WideTy, NewOp, MIRBuilder.buildConstant(WideTy, Mask));
1658     // There is no overflow if the AndOp is the same as NewOp.
1659     MIRBuilder.buildICmp(CmpInst::ICMP_NE, MI.getOperand(1), NewOp, AndOp);
1660     // Now trunc the NewOp to the original result.
1661     MIRBuilder.buildTrunc(MI.getOperand(0), NewOp);
1662     MI.eraseFromParent();
1663     return Legalized;
1664   }
1665   case TargetOpcode::G_CTTZ:
1666   case TargetOpcode::G_CTTZ_ZERO_UNDEF:
1667   case TargetOpcode::G_CTLZ:
1668   case TargetOpcode::G_CTLZ_ZERO_UNDEF:
1669   case TargetOpcode::G_CTPOP: {
1670     if (TypeIdx == 0) {
1671       Observer.changingInstr(MI);
1672       widenScalarDst(MI, WideTy, 0);
1673       Observer.changedInstr(MI);
1674       return Legalized;
1675     }
1676 
1677     Register SrcReg = MI.getOperand(1).getReg();
1678 
1679     // First ZEXT the input.
1680     auto MIBSrc = MIRBuilder.buildZExt(WideTy, SrcReg);
1681     LLT CurTy = MRI.getType(SrcReg);
1682     if (MI.getOpcode() == TargetOpcode::G_CTTZ) {
1683       // The count is the same in the larger type except if the original
1684       // value was zero.  This can be handled by setting the bit just off
1685       // the top of the original type.
1686       auto TopBit =
1687           APInt::getOneBitSet(WideTy.getSizeInBits(), CurTy.getSizeInBits());
1688       MIBSrc = MIRBuilder.buildOr(
1689         WideTy, MIBSrc, MIRBuilder.buildConstant(WideTy, TopBit));
1690     }
1691 
1692     // Perform the operation at the larger size.
1693     auto MIBNewOp = MIRBuilder.buildInstr(MI.getOpcode(), {WideTy}, {MIBSrc});
1694     // This is already the correct result for CTPOP and CTTZs
1695     if (MI.getOpcode() == TargetOpcode::G_CTLZ ||
1696         MI.getOpcode() == TargetOpcode::G_CTLZ_ZERO_UNDEF) {
1697       // The correct result is NewOp - (Difference in widety and current ty).
1698       unsigned SizeDiff = WideTy.getSizeInBits() - CurTy.getSizeInBits();
1699       MIBNewOp = MIRBuilder.buildSub(
1700           WideTy, MIBNewOp, MIRBuilder.buildConstant(WideTy, SizeDiff));
1701     }
1702 
1703     MIRBuilder.buildZExtOrTrunc(MI.getOperand(0), MIBNewOp);
1704     MI.eraseFromParent();
1705     return Legalized;
1706   }
1707   case TargetOpcode::G_BSWAP: {
1708     Observer.changingInstr(MI);
1709     Register DstReg = MI.getOperand(0).getReg();
1710 
1711     Register ShrReg = MRI.createGenericVirtualRegister(WideTy);
1712     Register DstExt = MRI.createGenericVirtualRegister(WideTy);
1713     Register ShiftAmtReg = MRI.createGenericVirtualRegister(WideTy);
1714     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1715 
1716     MI.getOperand(0).setReg(DstExt);
1717 
1718     MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
1719 
1720     LLT Ty = MRI.getType(DstReg);
1721     unsigned DiffBits = WideTy.getScalarSizeInBits() - Ty.getScalarSizeInBits();
1722     MIRBuilder.buildConstant(ShiftAmtReg, DiffBits);
1723     MIRBuilder.buildLShr(ShrReg, DstExt, ShiftAmtReg);
1724 
1725     MIRBuilder.buildTrunc(DstReg, ShrReg);
1726     Observer.changedInstr(MI);
1727     return Legalized;
1728   }
1729   case TargetOpcode::G_BITREVERSE: {
1730     Observer.changingInstr(MI);
1731 
1732     Register DstReg = MI.getOperand(0).getReg();
1733     LLT Ty = MRI.getType(DstReg);
1734     unsigned DiffBits = WideTy.getScalarSizeInBits() - Ty.getScalarSizeInBits();
1735 
1736     Register DstExt = MRI.createGenericVirtualRegister(WideTy);
1737     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1738     MI.getOperand(0).setReg(DstExt);
1739     MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
1740 
1741     auto ShiftAmt = MIRBuilder.buildConstant(WideTy, DiffBits);
1742     auto Shift = MIRBuilder.buildLShr(WideTy, DstExt, ShiftAmt);
1743     MIRBuilder.buildTrunc(DstReg, Shift);
1744     Observer.changedInstr(MI);
1745     return Legalized;
1746   }
1747   case TargetOpcode::G_ADD:
1748   case TargetOpcode::G_AND:
1749   case TargetOpcode::G_MUL:
1750   case TargetOpcode::G_OR:
1751   case TargetOpcode::G_XOR:
1752   case TargetOpcode::G_SUB:
1753     // Perform operation at larger width (any extension is fines here, high bits
1754     // don't affect the result) and then truncate the result back to the
1755     // original type.
1756     Observer.changingInstr(MI);
1757     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1758     widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
1759     widenScalarDst(MI, WideTy);
1760     Observer.changedInstr(MI);
1761     return Legalized;
1762 
1763   case TargetOpcode::G_SHL:
1764     Observer.changingInstr(MI);
1765 
1766     if (TypeIdx == 0) {
1767       widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
1768       widenScalarDst(MI, WideTy);
1769     } else {
1770       assert(TypeIdx == 1);
1771       // The "number of bits to shift" operand must preserve its value as an
1772       // unsigned integer:
1773       widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
1774     }
1775 
1776     Observer.changedInstr(MI);
1777     return Legalized;
1778 
1779   case TargetOpcode::G_SDIV:
1780   case TargetOpcode::G_SREM:
1781   case TargetOpcode::G_SMIN:
1782   case TargetOpcode::G_SMAX:
1783     Observer.changingInstr(MI);
1784     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT);
1785     widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
1786     widenScalarDst(MI, WideTy);
1787     Observer.changedInstr(MI);
1788     return Legalized;
1789 
1790   case TargetOpcode::G_ASHR:
1791   case TargetOpcode::G_LSHR:
1792     Observer.changingInstr(MI);
1793 
1794     if (TypeIdx == 0) {
1795       unsigned CvtOp = MI.getOpcode() == TargetOpcode::G_ASHR ?
1796         TargetOpcode::G_SEXT : TargetOpcode::G_ZEXT;
1797 
1798       widenScalarSrc(MI, WideTy, 1, CvtOp);
1799       widenScalarDst(MI, WideTy);
1800     } else {
1801       assert(TypeIdx == 1);
1802       // The "number of bits to shift" operand must preserve its value as an
1803       // unsigned integer:
1804       widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
1805     }
1806 
1807     Observer.changedInstr(MI);
1808     return Legalized;
1809   case TargetOpcode::G_UDIV:
1810   case TargetOpcode::G_UREM:
1811   case TargetOpcode::G_UMIN:
1812   case TargetOpcode::G_UMAX:
1813     Observer.changingInstr(MI);
1814     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT);
1815     widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
1816     widenScalarDst(MI, WideTy);
1817     Observer.changedInstr(MI);
1818     return Legalized;
1819 
1820   case TargetOpcode::G_SELECT:
1821     Observer.changingInstr(MI);
1822     if (TypeIdx == 0) {
1823       // Perform operation at larger width (any extension is fine here, high
1824       // bits don't affect the result) and then truncate the result back to the
1825       // original type.
1826       widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
1827       widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ANYEXT);
1828       widenScalarDst(MI, WideTy);
1829     } else {
1830       bool IsVec = MRI.getType(MI.getOperand(1).getReg()).isVector();
1831       // Explicit extension is required here since high bits affect the result.
1832       widenScalarSrc(MI, WideTy, 1, MIRBuilder.getBoolExtOp(IsVec, false));
1833     }
1834     Observer.changedInstr(MI);
1835     return Legalized;
1836 
1837   case TargetOpcode::G_FPTOSI:
1838   case TargetOpcode::G_FPTOUI:
1839     Observer.changingInstr(MI);
1840 
1841     if (TypeIdx == 0)
1842       widenScalarDst(MI, WideTy);
1843     else
1844       widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_FPEXT);
1845 
1846     Observer.changedInstr(MI);
1847     return Legalized;
1848   case TargetOpcode::G_SITOFP:
1849     if (TypeIdx != 1)
1850       return UnableToLegalize;
1851     Observer.changingInstr(MI);
1852     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT);
1853     Observer.changedInstr(MI);
1854     return Legalized;
1855 
1856   case TargetOpcode::G_UITOFP:
1857     if (TypeIdx != 1)
1858       return UnableToLegalize;
1859     Observer.changingInstr(MI);
1860     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT);
1861     Observer.changedInstr(MI);
1862     return Legalized;
1863 
1864   case TargetOpcode::G_LOAD:
1865   case TargetOpcode::G_SEXTLOAD:
1866   case TargetOpcode::G_ZEXTLOAD:
1867     Observer.changingInstr(MI);
1868     widenScalarDst(MI, WideTy);
1869     Observer.changedInstr(MI);
1870     return Legalized;
1871 
1872   case TargetOpcode::G_STORE: {
1873     if (TypeIdx != 0)
1874       return UnableToLegalize;
1875 
1876     LLT Ty = MRI.getType(MI.getOperand(0).getReg());
1877     if (!isPowerOf2_32(Ty.getSizeInBits()))
1878       return UnableToLegalize;
1879 
1880     Observer.changingInstr(MI);
1881 
1882     unsigned ExtType = Ty.getScalarSizeInBits() == 1 ?
1883       TargetOpcode::G_ZEXT : TargetOpcode::G_ANYEXT;
1884     widenScalarSrc(MI, WideTy, 0, ExtType);
1885 
1886     Observer.changedInstr(MI);
1887     return Legalized;
1888   }
1889   case TargetOpcode::G_CONSTANT: {
1890     MachineOperand &SrcMO = MI.getOperand(1);
1891     LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext();
1892     unsigned ExtOpc = LI.getExtOpcodeForWideningConstant(
1893         MRI.getType(MI.getOperand(0).getReg()));
1894     assert((ExtOpc == TargetOpcode::G_ZEXT || ExtOpc == TargetOpcode::G_SEXT ||
1895             ExtOpc == TargetOpcode::G_ANYEXT) &&
1896            "Illegal Extend");
1897     const APInt &SrcVal = SrcMO.getCImm()->getValue();
1898     const APInt &Val = (ExtOpc == TargetOpcode::G_SEXT)
1899                            ? SrcVal.sext(WideTy.getSizeInBits())
1900                            : SrcVal.zext(WideTy.getSizeInBits());
1901     Observer.changingInstr(MI);
1902     SrcMO.setCImm(ConstantInt::get(Ctx, Val));
1903 
1904     widenScalarDst(MI, WideTy);
1905     Observer.changedInstr(MI);
1906     return Legalized;
1907   }
1908   case TargetOpcode::G_FCONSTANT: {
1909     MachineOperand &SrcMO = MI.getOperand(1);
1910     LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext();
1911     APFloat Val = SrcMO.getFPImm()->getValueAPF();
1912     bool LosesInfo;
1913     switch (WideTy.getSizeInBits()) {
1914     case 32:
1915       Val.convert(APFloat::IEEEsingle(), APFloat::rmNearestTiesToEven,
1916                   &LosesInfo);
1917       break;
1918     case 64:
1919       Val.convert(APFloat::IEEEdouble(), APFloat::rmNearestTiesToEven,
1920                   &LosesInfo);
1921       break;
1922     default:
1923       return UnableToLegalize;
1924     }
1925 
1926     assert(!LosesInfo && "extend should always be lossless");
1927 
1928     Observer.changingInstr(MI);
1929     SrcMO.setFPImm(ConstantFP::get(Ctx, Val));
1930 
1931     widenScalarDst(MI, WideTy, 0, TargetOpcode::G_FPTRUNC);
1932     Observer.changedInstr(MI);
1933     return Legalized;
1934   }
1935   case TargetOpcode::G_IMPLICIT_DEF: {
1936     Observer.changingInstr(MI);
1937     widenScalarDst(MI, WideTy);
1938     Observer.changedInstr(MI);
1939     return Legalized;
1940   }
1941   case TargetOpcode::G_BRCOND:
1942     Observer.changingInstr(MI);
1943     widenScalarSrc(MI, WideTy, 0, MIRBuilder.getBoolExtOp(false, false));
1944     Observer.changedInstr(MI);
1945     return Legalized;
1946 
1947   case TargetOpcode::G_FCMP:
1948     Observer.changingInstr(MI);
1949     if (TypeIdx == 0)
1950       widenScalarDst(MI, WideTy);
1951     else {
1952       widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_FPEXT);
1953       widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_FPEXT);
1954     }
1955     Observer.changedInstr(MI);
1956     return Legalized;
1957 
1958   case TargetOpcode::G_ICMP:
1959     Observer.changingInstr(MI);
1960     if (TypeIdx == 0)
1961       widenScalarDst(MI, WideTy);
1962     else {
1963       unsigned ExtOpcode = CmpInst::isSigned(static_cast<CmpInst::Predicate>(
1964                                MI.getOperand(1).getPredicate()))
1965                                ? TargetOpcode::G_SEXT
1966                                : TargetOpcode::G_ZEXT;
1967       widenScalarSrc(MI, WideTy, 2, ExtOpcode);
1968       widenScalarSrc(MI, WideTy, 3, ExtOpcode);
1969     }
1970     Observer.changedInstr(MI);
1971     return Legalized;
1972 
1973   case TargetOpcode::G_PTR_ADD:
1974     assert(TypeIdx == 1 && "unable to legalize pointer of G_PTR_ADD");
1975     Observer.changingInstr(MI);
1976     widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
1977     Observer.changedInstr(MI);
1978     return Legalized;
1979 
1980   case TargetOpcode::G_PHI: {
1981     assert(TypeIdx == 0 && "Expecting only Idx 0");
1982 
1983     Observer.changingInstr(MI);
1984     for (unsigned I = 1; I < MI.getNumOperands(); I += 2) {
1985       MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB();
1986       MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator());
1987       widenScalarSrc(MI, WideTy, I, TargetOpcode::G_ANYEXT);
1988     }
1989 
1990     MachineBasicBlock &MBB = *MI.getParent();
1991     MIRBuilder.setInsertPt(MBB, --MBB.getFirstNonPHI());
1992     widenScalarDst(MI, WideTy);
1993     Observer.changedInstr(MI);
1994     return Legalized;
1995   }
1996   case TargetOpcode::G_EXTRACT_VECTOR_ELT: {
1997     if (TypeIdx == 0) {
1998       Register VecReg = MI.getOperand(1).getReg();
1999       LLT VecTy = MRI.getType(VecReg);
2000       Observer.changingInstr(MI);
2001 
2002       widenScalarSrc(MI, LLT::vector(VecTy.getNumElements(),
2003                                      WideTy.getSizeInBits()),
2004                      1, TargetOpcode::G_SEXT);
2005 
2006       widenScalarDst(MI, WideTy, 0);
2007       Observer.changedInstr(MI);
2008       return Legalized;
2009     }
2010 
2011     if (TypeIdx != 2)
2012       return UnableToLegalize;
2013     Observer.changingInstr(MI);
2014     // TODO: Probably should be zext
2015     widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
2016     Observer.changedInstr(MI);
2017     return Legalized;
2018   }
2019   case TargetOpcode::G_INSERT_VECTOR_ELT: {
2020     if (TypeIdx == 1) {
2021       Observer.changingInstr(MI);
2022 
2023       Register VecReg = MI.getOperand(1).getReg();
2024       LLT VecTy = MRI.getType(VecReg);
2025       LLT WideVecTy = LLT::vector(VecTy.getNumElements(), WideTy);
2026 
2027       widenScalarSrc(MI, WideVecTy, 1, TargetOpcode::G_ANYEXT);
2028       widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
2029       widenScalarDst(MI, WideVecTy, 0);
2030       Observer.changedInstr(MI);
2031       return Legalized;
2032     }
2033 
2034     if (TypeIdx == 2) {
2035       Observer.changingInstr(MI);
2036       // TODO: Probably should be zext
2037       widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_SEXT);
2038       Observer.changedInstr(MI);
2039     }
2040 
2041     return Legalized;
2042   }
2043   case TargetOpcode::G_FADD:
2044   case TargetOpcode::G_FMUL:
2045   case TargetOpcode::G_FSUB:
2046   case TargetOpcode::G_FMA:
2047   case TargetOpcode::G_FMAD:
2048   case TargetOpcode::G_FNEG:
2049   case TargetOpcode::G_FABS:
2050   case TargetOpcode::G_FCANONICALIZE:
2051   case TargetOpcode::G_FMINNUM:
2052   case TargetOpcode::G_FMAXNUM:
2053   case TargetOpcode::G_FMINNUM_IEEE:
2054   case TargetOpcode::G_FMAXNUM_IEEE:
2055   case TargetOpcode::G_FMINIMUM:
2056   case TargetOpcode::G_FMAXIMUM:
2057   case TargetOpcode::G_FDIV:
2058   case TargetOpcode::G_FREM:
2059   case TargetOpcode::G_FCEIL:
2060   case TargetOpcode::G_FFLOOR:
2061   case TargetOpcode::G_FCOS:
2062   case TargetOpcode::G_FSIN:
2063   case TargetOpcode::G_FLOG10:
2064   case TargetOpcode::G_FLOG:
2065   case TargetOpcode::G_FLOG2:
2066   case TargetOpcode::G_FRINT:
2067   case TargetOpcode::G_FNEARBYINT:
2068   case TargetOpcode::G_FSQRT:
2069   case TargetOpcode::G_FEXP:
2070   case TargetOpcode::G_FEXP2:
2071   case TargetOpcode::G_FPOW:
2072   case TargetOpcode::G_INTRINSIC_TRUNC:
2073   case TargetOpcode::G_INTRINSIC_ROUND:
2074     assert(TypeIdx == 0);
2075     Observer.changingInstr(MI);
2076 
2077     for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I)
2078       widenScalarSrc(MI, WideTy, I, TargetOpcode::G_FPEXT);
2079 
2080     widenScalarDst(MI, WideTy, 0, TargetOpcode::G_FPTRUNC);
2081     Observer.changedInstr(MI);
2082     return Legalized;
2083   case TargetOpcode::G_INTTOPTR:
2084     if (TypeIdx != 1)
2085       return UnableToLegalize;
2086 
2087     Observer.changingInstr(MI);
2088     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT);
2089     Observer.changedInstr(MI);
2090     return Legalized;
2091   case TargetOpcode::G_PTRTOINT:
2092     if (TypeIdx != 0)
2093       return UnableToLegalize;
2094 
2095     Observer.changingInstr(MI);
2096     widenScalarDst(MI, WideTy, 0);
2097     Observer.changedInstr(MI);
2098     return Legalized;
2099   case TargetOpcode::G_BUILD_VECTOR: {
2100     Observer.changingInstr(MI);
2101 
2102     const LLT WideEltTy = TypeIdx == 1 ? WideTy : WideTy.getElementType();
2103     for (int I = 1, E = MI.getNumOperands(); I != E; ++I)
2104       widenScalarSrc(MI, WideEltTy, I, TargetOpcode::G_ANYEXT);
2105 
2106     // Avoid changing the result vector type if the source element type was
2107     // requested.
2108     if (TypeIdx == 1) {
2109       auto &TII = *MI.getMF()->getSubtarget().getInstrInfo();
2110       MI.setDesc(TII.get(TargetOpcode::G_BUILD_VECTOR_TRUNC));
2111     } else {
2112       widenScalarDst(MI, WideTy, 0);
2113     }
2114 
2115     Observer.changedInstr(MI);
2116     return Legalized;
2117   }
2118   case TargetOpcode::G_SEXT_INREG:
2119     if (TypeIdx != 0)
2120       return UnableToLegalize;
2121 
2122     Observer.changingInstr(MI);
2123     widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2124     widenScalarDst(MI, WideTy, 0, TargetOpcode::G_TRUNC);
2125     Observer.changedInstr(MI);
2126     return Legalized;
2127   }
2128 }
2129 
2130 static void getUnmergePieces(SmallVectorImpl<Register> &Pieces,
2131                              MachineIRBuilder &B, Register Src, LLT Ty) {
2132   auto Unmerge = B.buildUnmerge(Ty, Src);
2133   for (int I = 0, E = Unmerge->getNumOperands() - 1; I != E; ++I)
2134     Pieces.push_back(Unmerge.getReg(I));
2135 }
2136 
2137 LegalizerHelper::LegalizeResult
2138 LegalizerHelper::lowerBitcast(MachineInstr &MI) {
2139   Register Dst = MI.getOperand(0).getReg();
2140   Register Src = MI.getOperand(1).getReg();
2141   LLT DstTy = MRI.getType(Dst);
2142   LLT SrcTy = MRI.getType(Src);
2143 
2144   if (SrcTy.isVector() && !DstTy.isVector()) {
2145     SmallVector<Register, 8> SrcRegs;
2146     getUnmergePieces(SrcRegs, MIRBuilder, Src, SrcTy.getElementType());
2147     MIRBuilder.buildMerge(Dst, SrcRegs);
2148     MI.eraseFromParent();
2149     return Legalized;
2150   }
2151 
2152   if (DstTy.isVector() && !SrcTy.isVector()) {
2153     SmallVector<Register, 8> SrcRegs;
2154     getUnmergePieces(SrcRegs, MIRBuilder, Src, DstTy.getElementType());
2155     MIRBuilder.buildMerge(Dst, SrcRegs);
2156     MI.eraseFromParent();
2157     return Legalized;
2158   }
2159 
2160   return UnableToLegalize;
2161 }
2162 
2163 LegalizerHelper::LegalizeResult
2164 LegalizerHelper::lower(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
2165   using namespace TargetOpcode;
2166   MIRBuilder.setInstr(MI);
2167 
2168   switch(MI.getOpcode()) {
2169   default:
2170     return UnableToLegalize;
2171   case TargetOpcode::G_BITCAST:
2172     return lowerBitcast(MI);
2173   case TargetOpcode::G_SREM:
2174   case TargetOpcode::G_UREM: {
2175     Register QuotReg = MRI.createGenericVirtualRegister(Ty);
2176     MIRBuilder.buildInstr(MI.getOpcode() == G_SREM ? G_SDIV : G_UDIV, {QuotReg},
2177                           {MI.getOperand(1), MI.getOperand(2)});
2178 
2179     Register ProdReg = MRI.createGenericVirtualRegister(Ty);
2180     MIRBuilder.buildMul(ProdReg, QuotReg, MI.getOperand(2));
2181     MIRBuilder.buildSub(MI.getOperand(0), MI.getOperand(1), ProdReg);
2182     MI.eraseFromParent();
2183     return Legalized;
2184   }
2185   case TargetOpcode::G_SADDO:
2186   case TargetOpcode::G_SSUBO:
2187     return lowerSADDO_SSUBO(MI);
2188   case TargetOpcode::G_SMULO:
2189   case TargetOpcode::G_UMULO: {
2190     // Generate G_UMULH/G_SMULH to check for overflow and a normal G_MUL for the
2191     // result.
2192     Register Res = MI.getOperand(0).getReg();
2193     Register Overflow = MI.getOperand(1).getReg();
2194     Register LHS = MI.getOperand(2).getReg();
2195     Register RHS = MI.getOperand(3).getReg();
2196 
2197     unsigned Opcode = MI.getOpcode() == TargetOpcode::G_SMULO
2198                           ? TargetOpcode::G_SMULH
2199                           : TargetOpcode::G_UMULH;
2200 
2201     Observer.changingInstr(MI);
2202     const auto &TII = MIRBuilder.getTII();
2203     MI.setDesc(TII.get(TargetOpcode::G_MUL));
2204     MI.RemoveOperand(1);
2205     Observer.changedInstr(MI);
2206 
2207     MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2208 
2209     auto HiPart = MIRBuilder.buildInstr(Opcode, {Ty}, {LHS, RHS});
2210 
2211     Register Zero = MRI.createGenericVirtualRegister(Ty);
2212     MIRBuilder.buildConstant(Zero, 0);
2213 
2214     // For *signed* multiply, overflow is detected by checking:
2215     // (hi != (lo >> bitwidth-1))
2216     if (Opcode == TargetOpcode::G_SMULH) {
2217       auto ShiftAmt = MIRBuilder.buildConstant(Ty, Ty.getSizeInBits() - 1);
2218       auto Shifted = MIRBuilder.buildAShr(Ty, Res, ShiftAmt);
2219       MIRBuilder.buildICmp(CmpInst::ICMP_NE, Overflow, HiPart, Shifted);
2220     } else {
2221       MIRBuilder.buildICmp(CmpInst::ICMP_NE, Overflow, HiPart, Zero);
2222     }
2223     return Legalized;
2224   }
2225   case TargetOpcode::G_FNEG: {
2226     // TODO: Handle vector types once we are able to
2227     // represent them.
2228     if (Ty.isVector())
2229       return UnableToLegalize;
2230     Register Res = MI.getOperand(0).getReg();
2231     Type *ZeroTy;
2232     LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext();
2233     switch (Ty.getSizeInBits()) {
2234     case 16:
2235       ZeroTy = Type::getHalfTy(Ctx);
2236       break;
2237     case 32:
2238       ZeroTy = Type::getFloatTy(Ctx);
2239       break;
2240     case 64:
2241       ZeroTy = Type::getDoubleTy(Ctx);
2242       break;
2243     case 128:
2244       ZeroTy = Type::getFP128Ty(Ctx);
2245       break;
2246     default:
2247       llvm_unreachable("unexpected floating-point type");
2248     }
2249     ConstantFP &ZeroForNegation =
2250         *cast<ConstantFP>(ConstantFP::getZeroValueForNegation(ZeroTy));
2251     auto Zero = MIRBuilder.buildFConstant(Ty, ZeroForNegation);
2252     Register SubByReg = MI.getOperand(1).getReg();
2253     Register ZeroReg = Zero.getReg(0);
2254     MIRBuilder.buildFSub(Res, ZeroReg, SubByReg, MI.getFlags());
2255     MI.eraseFromParent();
2256     return Legalized;
2257   }
2258   case TargetOpcode::G_FSUB: {
2259     // Lower (G_FSUB LHS, RHS) to (G_FADD LHS, (G_FNEG RHS)).
2260     // First, check if G_FNEG is marked as Lower. If so, we may
2261     // end up with an infinite loop as G_FSUB is used to legalize G_FNEG.
2262     if (LI.getAction({G_FNEG, {Ty}}).Action == Lower)
2263       return UnableToLegalize;
2264     Register Res = MI.getOperand(0).getReg();
2265     Register LHS = MI.getOperand(1).getReg();
2266     Register RHS = MI.getOperand(2).getReg();
2267     Register Neg = MRI.createGenericVirtualRegister(Ty);
2268     MIRBuilder.buildFNeg(Neg, RHS);
2269     MIRBuilder.buildFAdd(Res, LHS, Neg, MI.getFlags());
2270     MI.eraseFromParent();
2271     return Legalized;
2272   }
2273   case TargetOpcode::G_FMAD:
2274     return lowerFMad(MI);
2275   case TargetOpcode::G_INTRINSIC_ROUND:
2276     return lowerIntrinsicRound(MI);
2277   case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS: {
2278     Register OldValRes = MI.getOperand(0).getReg();
2279     Register SuccessRes = MI.getOperand(1).getReg();
2280     Register Addr = MI.getOperand(2).getReg();
2281     Register CmpVal = MI.getOperand(3).getReg();
2282     Register NewVal = MI.getOperand(4).getReg();
2283     MIRBuilder.buildAtomicCmpXchg(OldValRes, Addr, CmpVal, NewVal,
2284                                   **MI.memoperands_begin());
2285     MIRBuilder.buildICmp(CmpInst::ICMP_EQ, SuccessRes, OldValRes, CmpVal);
2286     MI.eraseFromParent();
2287     return Legalized;
2288   }
2289   case TargetOpcode::G_LOAD:
2290   case TargetOpcode::G_SEXTLOAD:
2291   case TargetOpcode::G_ZEXTLOAD: {
2292     // Lower to a memory-width G_LOAD and a G_SEXT/G_ZEXT/G_ANYEXT
2293     Register DstReg = MI.getOperand(0).getReg();
2294     Register PtrReg = MI.getOperand(1).getReg();
2295     LLT DstTy = MRI.getType(DstReg);
2296     auto &MMO = **MI.memoperands_begin();
2297 
2298     if (DstTy.getSizeInBits() == MMO.getSizeInBits()) {
2299       if (MI.getOpcode() == TargetOpcode::G_LOAD) {
2300         // This load needs splitting into power of 2 sized loads.
2301         if (DstTy.isVector())
2302           return UnableToLegalize;
2303         if (isPowerOf2_32(DstTy.getSizeInBits()))
2304           return UnableToLegalize; // Don't know what we're being asked to do.
2305 
2306         // Our strategy here is to generate anyextending loads for the smaller
2307         // types up to next power-2 result type, and then combine the two larger
2308         // result values together, before truncating back down to the non-pow-2
2309         // type.
2310         // E.g. v1 = i24 load =>
2311         // v2 = i32 load (2 byte)
2312         // v3 = i32 load (1 byte)
2313         // v4 = i32 shl v3, 16
2314         // v5 = i32 or v4, v2
2315         // v1 = i24 trunc v5
2316         // By doing this we generate the correct truncate which should get
2317         // combined away as an artifact with a matching extend.
2318         uint64_t LargeSplitSize = PowerOf2Floor(DstTy.getSizeInBits());
2319         uint64_t SmallSplitSize = DstTy.getSizeInBits() - LargeSplitSize;
2320 
2321         MachineFunction &MF = MIRBuilder.getMF();
2322         MachineMemOperand *LargeMMO =
2323             MF.getMachineMemOperand(&MMO, 0, LargeSplitSize / 8);
2324         MachineMemOperand *SmallMMO = MF.getMachineMemOperand(
2325             &MMO, LargeSplitSize / 8, SmallSplitSize / 8);
2326 
2327         LLT PtrTy = MRI.getType(PtrReg);
2328         unsigned AnyExtSize = NextPowerOf2(DstTy.getSizeInBits());
2329         LLT AnyExtTy = LLT::scalar(AnyExtSize);
2330         Register LargeLdReg = MRI.createGenericVirtualRegister(AnyExtTy);
2331         Register SmallLdReg = MRI.createGenericVirtualRegister(AnyExtTy);
2332         auto LargeLoad =
2333             MIRBuilder.buildLoad(LargeLdReg, PtrReg, *LargeMMO);
2334 
2335         auto OffsetCst = MIRBuilder.buildConstant(
2336             LLT::scalar(PtrTy.getSizeInBits()), LargeSplitSize / 8);
2337         Register PtrAddReg = MRI.createGenericVirtualRegister(PtrTy);
2338         auto SmallPtr =
2339             MIRBuilder.buildPtrAdd(PtrAddReg, PtrReg, OffsetCst.getReg(0));
2340         auto SmallLoad = MIRBuilder.buildLoad(SmallLdReg, SmallPtr.getReg(0),
2341                                               *SmallMMO);
2342 
2343         auto ShiftAmt = MIRBuilder.buildConstant(AnyExtTy, LargeSplitSize);
2344         auto Shift = MIRBuilder.buildShl(AnyExtTy, SmallLoad, ShiftAmt);
2345         auto Or = MIRBuilder.buildOr(AnyExtTy, Shift, LargeLoad);
2346         MIRBuilder.buildTrunc(DstReg, {Or.getReg(0)});
2347         MI.eraseFromParent();
2348         return Legalized;
2349       }
2350       MIRBuilder.buildLoad(DstReg, PtrReg, MMO);
2351       MI.eraseFromParent();
2352       return Legalized;
2353     }
2354 
2355     if (DstTy.isScalar()) {
2356       Register TmpReg =
2357           MRI.createGenericVirtualRegister(LLT::scalar(MMO.getSizeInBits()));
2358       MIRBuilder.buildLoad(TmpReg, PtrReg, MMO);
2359       switch (MI.getOpcode()) {
2360       default:
2361         llvm_unreachable("Unexpected opcode");
2362       case TargetOpcode::G_LOAD:
2363         MIRBuilder.buildExtOrTrunc(TargetOpcode::G_ANYEXT, DstReg, TmpReg);
2364         break;
2365       case TargetOpcode::G_SEXTLOAD:
2366         MIRBuilder.buildSExt(DstReg, TmpReg);
2367         break;
2368       case TargetOpcode::G_ZEXTLOAD:
2369         MIRBuilder.buildZExt(DstReg, TmpReg);
2370         break;
2371       }
2372       MI.eraseFromParent();
2373       return Legalized;
2374     }
2375 
2376     return UnableToLegalize;
2377   }
2378   case TargetOpcode::G_STORE: {
2379     // Lower a non-power of 2 store into multiple pow-2 stores.
2380     // E.g. split an i24 store into an i16 store + i8 store.
2381     // We do this by first extending the stored value to the next largest power
2382     // of 2 type, and then using truncating stores to store the components.
2383     // By doing this, likewise with G_LOAD, generate an extend that can be
2384     // artifact-combined away instead of leaving behind extracts.
2385     Register SrcReg = MI.getOperand(0).getReg();
2386     Register PtrReg = MI.getOperand(1).getReg();
2387     LLT SrcTy = MRI.getType(SrcReg);
2388     MachineMemOperand &MMO = **MI.memoperands_begin();
2389     if (SrcTy.getSizeInBits() != MMO.getSizeInBits())
2390       return UnableToLegalize;
2391     if (SrcTy.isVector())
2392       return UnableToLegalize;
2393     if (isPowerOf2_32(SrcTy.getSizeInBits()))
2394       return UnableToLegalize; // Don't know what we're being asked to do.
2395 
2396     // Extend to the next pow-2.
2397     const LLT ExtendTy = LLT::scalar(NextPowerOf2(SrcTy.getSizeInBits()));
2398     auto ExtVal = MIRBuilder.buildAnyExt(ExtendTy, SrcReg);
2399 
2400     // Obtain the smaller value by shifting away the larger value.
2401     uint64_t LargeSplitSize = PowerOf2Floor(SrcTy.getSizeInBits());
2402     uint64_t SmallSplitSize = SrcTy.getSizeInBits() - LargeSplitSize;
2403     auto ShiftAmt = MIRBuilder.buildConstant(ExtendTy, LargeSplitSize);
2404     auto SmallVal = MIRBuilder.buildLShr(ExtendTy, ExtVal, ShiftAmt);
2405 
2406     // Generate the PtrAdd and truncating stores.
2407     LLT PtrTy = MRI.getType(PtrReg);
2408     auto OffsetCst = MIRBuilder.buildConstant(
2409             LLT::scalar(PtrTy.getSizeInBits()), LargeSplitSize / 8);
2410     Register PtrAddReg = MRI.createGenericVirtualRegister(PtrTy);
2411     auto SmallPtr =
2412         MIRBuilder.buildPtrAdd(PtrAddReg, PtrReg, OffsetCst.getReg(0));
2413 
2414     MachineFunction &MF = MIRBuilder.getMF();
2415     MachineMemOperand *LargeMMO =
2416         MF.getMachineMemOperand(&MMO, 0, LargeSplitSize / 8);
2417     MachineMemOperand *SmallMMO =
2418         MF.getMachineMemOperand(&MMO, LargeSplitSize / 8, SmallSplitSize / 8);
2419     MIRBuilder.buildStore(ExtVal.getReg(0), PtrReg, *LargeMMO);
2420     MIRBuilder.buildStore(SmallVal.getReg(0), SmallPtr.getReg(0), *SmallMMO);
2421     MI.eraseFromParent();
2422     return Legalized;
2423   }
2424   case TargetOpcode::G_CTLZ_ZERO_UNDEF:
2425   case TargetOpcode::G_CTTZ_ZERO_UNDEF:
2426   case TargetOpcode::G_CTLZ:
2427   case TargetOpcode::G_CTTZ:
2428   case TargetOpcode::G_CTPOP:
2429     return lowerBitCount(MI, TypeIdx, Ty);
2430   case G_UADDO: {
2431     Register Res = MI.getOperand(0).getReg();
2432     Register CarryOut = MI.getOperand(1).getReg();
2433     Register LHS = MI.getOperand(2).getReg();
2434     Register RHS = MI.getOperand(3).getReg();
2435 
2436     MIRBuilder.buildAdd(Res, LHS, RHS);
2437     MIRBuilder.buildICmp(CmpInst::ICMP_ULT, CarryOut, Res, RHS);
2438 
2439     MI.eraseFromParent();
2440     return Legalized;
2441   }
2442   case G_UADDE: {
2443     Register Res = MI.getOperand(0).getReg();
2444     Register CarryOut = MI.getOperand(1).getReg();
2445     Register LHS = MI.getOperand(2).getReg();
2446     Register RHS = MI.getOperand(3).getReg();
2447     Register CarryIn = MI.getOperand(4).getReg();
2448 
2449     Register TmpRes = MRI.createGenericVirtualRegister(Ty);
2450     Register ZExtCarryIn = MRI.createGenericVirtualRegister(Ty);
2451 
2452     MIRBuilder.buildAdd(TmpRes, LHS, RHS);
2453     MIRBuilder.buildZExt(ZExtCarryIn, CarryIn);
2454     MIRBuilder.buildAdd(Res, TmpRes, ZExtCarryIn);
2455     MIRBuilder.buildICmp(CmpInst::ICMP_ULT, CarryOut, Res, LHS);
2456 
2457     MI.eraseFromParent();
2458     return Legalized;
2459   }
2460   case G_USUBO: {
2461     Register Res = MI.getOperand(0).getReg();
2462     Register BorrowOut = MI.getOperand(1).getReg();
2463     Register LHS = MI.getOperand(2).getReg();
2464     Register RHS = MI.getOperand(3).getReg();
2465 
2466     MIRBuilder.buildSub(Res, LHS, RHS);
2467     MIRBuilder.buildICmp(CmpInst::ICMP_ULT, BorrowOut, LHS, RHS);
2468 
2469     MI.eraseFromParent();
2470     return Legalized;
2471   }
2472   case G_USUBE: {
2473     Register Res = MI.getOperand(0).getReg();
2474     Register BorrowOut = MI.getOperand(1).getReg();
2475     Register LHS = MI.getOperand(2).getReg();
2476     Register RHS = MI.getOperand(3).getReg();
2477     Register BorrowIn = MI.getOperand(4).getReg();
2478 
2479     Register TmpRes = MRI.createGenericVirtualRegister(Ty);
2480     Register ZExtBorrowIn = MRI.createGenericVirtualRegister(Ty);
2481     Register LHS_EQ_RHS = MRI.createGenericVirtualRegister(LLT::scalar(1));
2482     Register LHS_ULT_RHS = MRI.createGenericVirtualRegister(LLT::scalar(1));
2483 
2484     MIRBuilder.buildSub(TmpRes, LHS, RHS);
2485     MIRBuilder.buildZExt(ZExtBorrowIn, BorrowIn);
2486     MIRBuilder.buildSub(Res, TmpRes, ZExtBorrowIn);
2487     MIRBuilder.buildICmp(CmpInst::ICMP_EQ, LHS_EQ_RHS, LHS, RHS);
2488     MIRBuilder.buildICmp(CmpInst::ICMP_ULT, LHS_ULT_RHS, LHS, RHS);
2489     MIRBuilder.buildSelect(BorrowOut, LHS_EQ_RHS, BorrowIn, LHS_ULT_RHS);
2490 
2491     MI.eraseFromParent();
2492     return Legalized;
2493   }
2494   case G_UITOFP:
2495     return lowerUITOFP(MI, TypeIdx, Ty);
2496   case G_SITOFP:
2497     return lowerSITOFP(MI, TypeIdx, Ty);
2498   case G_FPTOUI:
2499     return lowerFPTOUI(MI, TypeIdx, Ty);
2500   case G_FPTOSI:
2501     return lowerFPTOSI(MI);
2502   case G_SMIN:
2503   case G_SMAX:
2504   case G_UMIN:
2505   case G_UMAX:
2506     return lowerMinMax(MI, TypeIdx, Ty);
2507   case G_FCOPYSIGN:
2508     return lowerFCopySign(MI, TypeIdx, Ty);
2509   case G_FMINNUM:
2510   case G_FMAXNUM:
2511     return lowerFMinNumMaxNum(MI);
2512   case G_UNMERGE_VALUES:
2513     return lowerUnmergeValues(MI);
2514   case TargetOpcode::G_SEXT_INREG: {
2515     assert(MI.getOperand(2).isImm() && "Expected immediate");
2516     int64_t SizeInBits = MI.getOperand(2).getImm();
2517 
2518     Register DstReg = MI.getOperand(0).getReg();
2519     Register SrcReg = MI.getOperand(1).getReg();
2520     LLT DstTy = MRI.getType(DstReg);
2521     Register TmpRes = MRI.createGenericVirtualRegister(DstTy);
2522 
2523     auto MIBSz = MIRBuilder.buildConstant(DstTy, DstTy.getScalarSizeInBits() - SizeInBits);
2524     MIRBuilder.buildShl(TmpRes, SrcReg, MIBSz->getOperand(0));
2525     MIRBuilder.buildAShr(DstReg, TmpRes, MIBSz->getOperand(0));
2526     MI.eraseFromParent();
2527     return Legalized;
2528   }
2529   case G_SHUFFLE_VECTOR:
2530     return lowerShuffleVector(MI);
2531   case G_DYN_STACKALLOC:
2532     return lowerDynStackAlloc(MI);
2533   case G_EXTRACT:
2534     return lowerExtract(MI);
2535   case G_INSERT:
2536     return lowerInsert(MI);
2537   case G_BSWAP:
2538     return lowerBswap(MI);
2539   case G_BITREVERSE:
2540     return lowerBitreverse(MI);
2541   case G_READ_REGISTER:
2542   case G_WRITE_REGISTER:
2543     return lowerReadWriteRegister(MI);
2544   }
2545 }
2546 
2547 LegalizerHelper::LegalizeResult LegalizerHelper::fewerElementsVectorImplicitDef(
2548     MachineInstr &MI, unsigned TypeIdx, LLT NarrowTy) {
2549   SmallVector<Register, 2> DstRegs;
2550 
2551   unsigned NarrowSize = NarrowTy.getSizeInBits();
2552   Register DstReg = MI.getOperand(0).getReg();
2553   unsigned Size = MRI.getType(DstReg).getSizeInBits();
2554   int NumParts = Size / NarrowSize;
2555   // FIXME: Don't know how to handle the situation where the small vectors
2556   // aren't all the same size yet.
2557   if (Size % NarrowSize != 0)
2558     return UnableToLegalize;
2559 
2560   for (int i = 0; i < NumParts; ++i) {
2561     Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
2562     MIRBuilder.buildUndef(TmpReg);
2563     DstRegs.push_back(TmpReg);
2564   }
2565 
2566   if (NarrowTy.isVector())
2567     MIRBuilder.buildConcatVectors(DstReg, DstRegs);
2568   else
2569     MIRBuilder.buildBuildVector(DstReg, DstRegs);
2570 
2571   MI.eraseFromParent();
2572   return Legalized;
2573 }
2574 
2575 LegalizerHelper::LegalizeResult
2576 LegalizerHelper::fewerElementsVectorBasic(MachineInstr &MI, unsigned TypeIdx,
2577                                           LLT NarrowTy) {
2578   const unsigned Opc = MI.getOpcode();
2579   const unsigned NumOps = MI.getNumOperands() - 1;
2580   const unsigned NarrowSize = NarrowTy.getSizeInBits();
2581   const Register DstReg = MI.getOperand(0).getReg();
2582   const unsigned Flags = MI.getFlags();
2583   const LLT DstTy = MRI.getType(DstReg);
2584   const unsigned Size = DstTy.getSizeInBits();
2585   const int NumParts = Size / NarrowSize;
2586   const LLT EltTy = DstTy.getElementType();
2587   const unsigned EltSize = EltTy.getSizeInBits();
2588   const unsigned BitsForNumParts = NarrowSize * NumParts;
2589 
2590   // Check if we have any leftovers. If we do, then only handle the case where
2591   // the leftover is one element.
2592   if (BitsForNumParts != Size && BitsForNumParts + EltSize != Size)
2593     return UnableToLegalize;
2594 
2595   if (BitsForNumParts != Size) {
2596     Register AccumDstReg = MRI.createGenericVirtualRegister(DstTy);
2597     MIRBuilder.buildUndef(AccumDstReg);
2598 
2599     // Handle the pieces which evenly divide into the requested type with
2600     // extract/op/insert sequence.
2601     for (unsigned Offset = 0; Offset < BitsForNumParts; Offset += NarrowSize) {
2602       SmallVector<SrcOp, 4> SrcOps;
2603       for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) {
2604         Register PartOpReg = MRI.createGenericVirtualRegister(NarrowTy);
2605         MIRBuilder.buildExtract(PartOpReg, MI.getOperand(I), Offset);
2606         SrcOps.push_back(PartOpReg);
2607       }
2608 
2609       Register PartDstReg = MRI.createGenericVirtualRegister(NarrowTy);
2610       MIRBuilder.buildInstr(Opc, {PartDstReg}, SrcOps, Flags);
2611 
2612       Register PartInsertReg = MRI.createGenericVirtualRegister(DstTy);
2613       MIRBuilder.buildInsert(PartInsertReg, AccumDstReg, PartDstReg, Offset);
2614       AccumDstReg = PartInsertReg;
2615     }
2616 
2617     // Handle the remaining element sized leftover piece.
2618     SmallVector<SrcOp, 4> SrcOps;
2619     for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) {
2620       Register PartOpReg = MRI.createGenericVirtualRegister(EltTy);
2621       MIRBuilder.buildExtract(PartOpReg, MI.getOperand(I), BitsForNumParts);
2622       SrcOps.push_back(PartOpReg);
2623     }
2624 
2625     Register PartDstReg = MRI.createGenericVirtualRegister(EltTy);
2626     MIRBuilder.buildInstr(Opc, {PartDstReg}, SrcOps, Flags);
2627     MIRBuilder.buildInsert(DstReg, AccumDstReg, PartDstReg, BitsForNumParts);
2628     MI.eraseFromParent();
2629 
2630     return Legalized;
2631   }
2632 
2633   SmallVector<Register, 2> DstRegs, Src0Regs, Src1Regs, Src2Regs;
2634 
2635   extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, Src0Regs);
2636 
2637   if (NumOps >= 2)
2638     extractParts(MI.getOperand(2).getReg(), NarrowTy, NumParts, Src1Regs);
2639 
2640   if (NumOps >= 3)
2641     extractParts(MI.getOperand(3).getReg(), NarrowTy, NumParts, Src2Regs);
2642 
2643   for (int i = 0; i < NumParts; ++i) {
2644     Register DstReg = MRI.createGenericVirtualRegister(NarrowTy);
2645 
2646     if (NumOps == 1)
2647       MIRBuilder.buildInstr(Opc, {DstReg}, {Src0Regs[i]}, Flags);
2648     else if (NumOps == 2) {
2649       MIRBuilder.buildInstr(Opc, {DstReg}, {Src0Regs[i], Src1Regs[i]}, Flags);
2650     } else if (NumOps == 3) {
2651       MIRBuilder.buildInstr(Opc, {DstReg},
2652                             {Src0Regs[i], Src1Regs[i], Src2Regs[i]}, Flags);
2653     }
2654 
2655     DstRegs.push_back(DstReg);
2656   }
2657 
2658   if (NarrowTy.isVector())
2659     MIRBuilder.buildConcatVectors(DstReg, DstRegs);
2660   else
2661     MIRBuilder.buildBuildVector(DstReg, DstRegs);
2662 
2663   MI.eraseFromParent();
2664   return Legalized;
2665 }
2666 
2667 // Handle splitting vector operations which need to have the same number of
2668 // elements in each type index, but each type index may have a different element
2669 // type.
2670 //
2671 // e.g.  <4 x s64> = G_SHL <4 x s64>, <4 x s32> ->
2672 //       <2 x s64> = G_SHL <2 x s64>, <2 x s32>
2673 //       <2 x s64> = G_SHL <2 x s64>, <2 x s32>
2674 //
2675 // Also handles some irregular breakdown cases, e.g.
2676 // e.g.  <3 x s64> = G_SHL <3 x s64>, <3 x s32> ->
2677 //       <2 x s64> = G_SHL <2 x s64>, <2 x s32>
2678 //             s64 = G_SHL s64, s32
2679 LegalizerHelper::LegalizeResult
2680 LegalizerHelper::fewerElementsVectorMultiEltType(
2681   MachineInstr &MI, unsigned TypeIdx, LLT NarrowTyArg) {
2682   if (TypeIdx != 0)
2683     return UnableToLegalize;
2684 
2685   const LLT NarrowTy0 = NarrowTyArg;
2686   const unsigned NewNumElts =
2687       NarrowTy0.isVector() ? NarrowTy0.getNumElements() : 1;
2688 
2689   const Register DstReg = MI.getOperand(0).getReg();
2690   LLT DstTy = MRI.getType(DstReg);
2691   LLT LeftoverTy0;
2692 
2693   // All of the operands need to have the same number of elements, so if we can
2694   // determine a type breakdown for the result type, we can for all of the
2695   // source types.
2696   int NumParts = getNarrowTypeBreakDown(DstTy, NarrowTy0, LeftoverTy0).first;
2697   if (NumParts < 0)
2698     return UnableToLegalize;
2699 
2700   SmallVector<MachineInstrBuilder, 4> NewInsts;
2701 
2702   SmallVector<Register, 4> DstRegs, LeftoverDstRegs;
2703   SmallVector<Register, 4> PartRegs, LeftoverRegs;
2704 
2705   for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I) {
2706     LLT LeftoverTy;
2707     Register SrcReg = MI.getOperand(I).getReg();
2708     LLT SrcTyI = MRI.getType(SrcReg);
2709     LLT NarrowTyI = LLT::scalarOrVector(NewNumElts, SrcTyI.getScalarType());
2710     LLT LeftoverTyI;
2711 
2712     // Split this operand into the requested typed registers, and any leftover
2713     // required to reproduce the original type.
2714     if (!extractParts(SrcReg, SrcTyI, NarrowTyI, LeftoverTyI, PartRegs,
2715                       LeftoverRegs))
2716       return UnableToLegalize;
2717 
2718     if (I == 1) {
2719       // For the first operand, create an instruction for each part and setup
2720       // the result.
2721       for (Register PartReg : PartRegs) {
2722         Register PartDstReg = MRI.createGenericVirtualRegister(NarrowTy0);
2723         NewInsts.push_back(MIRBuilder.buildInstrNoInsert(MI.getOpcode())
2724                                .addDef(PartDstReg)
2725                                .addUse(PartReg));
2726         DstRegs.push_back(PartDstReg);
2727       }
2728 
2729       for (Register LeftoverReg : LeftoverRegs) {
2730         Register PartDstReg = MRI.createGenericVirtualRegister(LeftoverTy0);
2731         NewInsts.push_back(MIRBuilder.buildInstrNoInsert(MI.getOpcode())
2732                                .addDef(PartDstReg)
2733                                .addUse(LeftoverReg));
2734         LeftoverDstRegs.push_back(PartDstReg);
2735       }
2736     } else {
2737       assert(NewInsts.size() == PartRegs.size() + LeftoverRegs.size());
2738 
2739       // Add the newly created operand splits to the existing instructions. The
2740       // odd-sized pieces are ordered after the requested NarrowTyArg sized
2741       // pieces.
2742       unsigned InstCount = 0;
2743       for (unsigned J = 0, JE = PartRegs.size(); J != JE; ++J)
2744         NewInsts[InstCount++].addUse(PartRegs[J]);
2745       for (unsigned J = 0, JE = LeftoverRegs.size(); J != JE; ++J)
2746         NewInsts[InstCount++].addUse(LeftoverRegs[J]);
2747     }
2748 
2749     PartRegs.clear();
2750     LeftoverRegs.clear();
2751   }
2752 
2753   // Insert the newly built operations and rebuild the result register.
2754   for (auto &MIB : NewInsts)
2755     MIRBuilder.insertInstr(MIB);
2756 
2757   insertParts(DstReg, DstTy, NarrowTy0, DstRegs, LeftoverTy0, LeftoverDstRegs);
2758 
2759   MI.eraseFromParent();
2760   return Legalized;
2761 }
2762 
2763 LegalizerHelper::LegalizeResult
2764 LegalizerHelper::fewerElementsVectorCasts(MachineInstr &MI, unsigned TypeIdx,
2765                                           LLT NarrowTy) {
2766   if (TypeIdx != 0)
2767     return UnableToLegalize;
2768 
2769   Register DstReg = MI.getOperand(0).getReg();
2770   Register SrcReg = MI.getOperand(1).getReg();
2771   LLT DstTy = MRI.getType(DstReg);
2772   LLT SrcTy = MRI.getType(SrcReg);
2773 
2774   LLT NarrowTy0 = NarrowTy;
2775   LLT NarrowTy1;
2776   unsigned NumParts;
2777 
2778   if (NarrowTy.isVector()) {
2779     // Uneven breakdown not handled.
2780     NumParts = DstTy.getNumElements() / NarrowTy.getNumElements();
2781     if (NumParts * NarrowTy.getNumElements() != DstTy.getNumElements())
2782       return UnableToLegalize;
2783 
2784     NarrowTy1 = LLT::vector(NumParts, SrcTy.getElementType().getSizeInBits());
2785   } else {
2786     NumParts = DstTy.getNumElements();
2787     NarrowTy1 = SrcTy.getElementType();
2788   }
2789 
2790   SmallVector<Register, 4> SrcRegs, DstRegs;
2791   extractParts(SrcReg, NarrowTy1, NumParts, SrcRegs);
2792 
2793   for (unsigned I = 0; I < NumParts; ++I) {
2794     Register DstReg = MRI.createGenericVirtualRegister(NarrowTy0);
2795     MachineInstr *NewInst =
2796         MIRBuilder.buildInstr(MI.getOpcode(), {DstReg}, {SrcRegs[I]});
2797 
2798     NewInst->setFlags(MI.getFlags());
2799     DstRegs.push_back(DstReg);
2800   }
2801 
2802   if (NarrowTy.isVector())
2803     MIRBuilder.buildConcatVectors(DstReg, DstRegs);
2804   else
2805     MIRBuilder.buildBuildVector(DstReg, DstRegs);
2806 
2807   MI.eraseFromParent();
2808   return Legalized;
2809 }
2810 
2811 LegalizerHelper::LegalizeResult
2812 LegalizerHelper::fewerElementsVectorCmp(MachineInstr &MI, unsigned TypeIdx,
2813                                         LLT NarrowTy) {
2814   Register DstReg = MI.getOperand(0).getReg();
2815   Register Src0Reg = MI.getOperand(2).getReg();
2816   LLT DstTy = MRI.getType(DstReg);
2817   LLT SrcTy = MRI.getType(Src0Reg);
2818 
2819   unsigned NumParts;
2820   LLT NarrowTy0, NarrowTy1;
2821 
2822   if (TypeIdx == 0) {
2823     unsigned NewElts = NarrowTy.isVector() ? NarrowTy.getNumElements() : 1;
2824     unsigned OldElts = DstTy.getNumElements();
2825 
2826     NarrowTy0 = NarrowTy;
2827     NumParts = NarrowTy.isVector() ? (OldElts / NewElts) : DstTy.getNumElements();
2828     NarrowTy1 = NarrowTy.isVector() ?
2829       LLT::vector(NarrowTy.getNumElements(), SrcTy.getScalarSizeInBits()) :
2830       SrcTy.getElementType();
2831 
2832   } else {
2833     unsigned NewElts = NarrowTy.isVector() ? NarrowTy.getNumElements() : 1;
2834     unsigned OldElts = SrcTy.getNumElements();
2835 
2836     NumParts = NarrowTy.isVector() ? (OldElts / NewElts) :
2837       NarrowTy.getNumElements();
2838     NarrowTy0 = LLT::vector(NarrowTy.getNumElements(),
2839                             DstTy.getScalarSizeInBits());
2840     NarrowTy1 = NarrowTy;
2841   }
2842 
2843   // FIXME: Don't know how to handle the situation where the small vectors
2844   // aren't all the same size yet.
2845   if (NarrowTy1.isVector() &&
2846       NarrowTy1.getNumElements() * NumParts != DstTy.getNumElements())
2847     return UnableToLegalize;
2848 
2849   CmpInst::Predicate Pred
2850     = static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate());
2851 
2852   SmallVector<Register, 2> Src1Regs, Src2Regs, DstRegs;
2853   extractParts(MI.getOperand(2).getReg(), NarrowTy1, NumParts, Src1Regs);
2854   extractParts(MI.getOperand(3).getReg(), NarrowTy1, NumParts, Src2Regs);
2855 
2856   for (unsigned I = 0; I < NumParts; ++I) {
2857     Register DstReg = MRI.createGenericVirtualRegister(NarrowTy0);
2858     DstRegs.push_back(DstReg);
2859 
2860     if (MI.getOpcode() == TargetOpcode::G_ICMP)
2861       MIRBuilder.buildICmp(Pred, DstReg, Src1Regs[I], Src2Regs[I]);
2862     else {
2863       MachineInstr *NewCmp
2864         = MIRBuilder.buildFCmp(Pred, DstReg, Src1Regs[I], Src2Regs[I]);
2865       NewCmp->setFlags(MI.getFlags());
2866     }
2867   }
2868 
2869   if (NarrowTy1.isVector())
2870     MIRBuilder.buildConcatVectors(DstReg, DstRegs);
2871   else
2872     MIRBuilder.buildBuildVector(DstReg, DstRegs);
2873 
2874   MI.eraseFromParent();
2875   return Legalized;
2876 }
2877 
2878 LegalizerHelper::LegalizeResult
2879 LegalizerHelper::fewerElementsVectorSelect(MachineInstr &MI, unsigned TypeIdx,
2880                                            LLT NarrowTy) {
2881   Register DstReg = MI.getOperand(0).getReg();
2882   Register CondReg = MI.getOperand(1).getReg();
2883 
2884   unsigned NumParts = 0;
2885   LLT NarrowTy0, NarrowTy1;
2886 
2887   LLT DstTy = MRI.getType(DstReg);
2888   LLT CondTy = MRI.getType(CondReg);
2889   unsigned Size = DstTy.getSizeInBits();
2890 
2891   assert(TypeIdx == 0 || CondTy.isVector());
2892 
2893   if (TypeIdx == 0) {
2894     NarrowTy0 = NarrowTy;
2895     NarrowTy1 = CondTy;
2896 
2897     unsigned NarrowSize = NarrowTy0.getSizeInBits();
2898     // FIXME: Don't know how to handle the situation where the small vectors
2899     // aren't all the same size yet.
2900     if (Size % NarrowSize != 0)
2901       return UnableToLegalize;
2902 
2903     NumParts = Size / NarrowSize;
2904 
2905     // Need to break down the condition type
2906     if (CondTy.isVector()) {
2907       if (CondTy.getNumElements() == NumParts)
2908         NarrowTy1 = CondTy.getElementType();
2909       else
2910         NarrowTy1 = LLT::vector(CondTy.getNumElements() / NumParts,
2911                                 CondTy.getScalarSizeInBits());
2912     }
2913   } else {
2914     NumParts = CondTy.getNumElements();
2915     if (NarrowTy.isVector()) {
2916       // TODO: Handle uneven breakdown.
2917       if (NumParts * NarrowTy.getNumElements() != CondTy.getNumElements())
2918         return UnableToLegalize;
2919 
2920       return UnableToLegalize;
2921     } else {
2922       NarrowTy0 = DstTy.getElementType();
2923       NarrowTy1 = NarrowTy;
2924     }
2925   }
2926 
2927   SmallVector<Register, 2> DstRegs, Src0Regs, Src1Regs, Src2Regs;
2928   if (CondTy.isVector())
2929     extractParts(MI.getOperand(1).getReg(), NarrowTy1, NumParts, Src0Regs);
2930 
2931   extractParts(MI.getOperand(2).getReg(), NarrowTy0, NumParts, Src1Regs);
2932   extractParts(MI.getOperand(3).getReg(), NarrowTy0, NumParts, Src2Regs);
2933 
2934   for (unsigned i = 0; i < NumParts; ++i) {
2935     Register DstReg = MRI.createGenericVirtualRegister(NarrowTy0);
2936     MIRBuilder.buildSelect(DstReg, CondTy.isVector() ? Src0Regs[i] : CondReg,
2937                            Src1Regs[i], Src2Regs[i]);
2938     DstRegs.push_back(DstReg);
2939   }
2940 
2941   if (NarrowTy0.isVector())
2942     MIRBuilder.buildConcatVectors(DstReg, DstRegs);
2943   else
2944     MIRBuilder.buildBuildVector(DstReg, DstRegs);
2945 
2946   MI.eraseFromParent();
2947   return Legalized;
2948 }
2949 
2950 LegalizerHelper::LegalizeResult
2951 LegalizerHelper::fewerElementsVectorPhi(MachineInstr &MI, unsigned TypeIdx,
2952                                         LLT NarrowTy) {
2953   const Register DstReg = MI.getOperand(0).getReg();
2954   LLT PhiTy = MRI.getType(DstReg);
2955   LLT LeftoverTy;
2956 
2957   // All of the operands need to have the same number of elements, so if we can
2958   // determine a type breakdown for the result type, we can for all of the
2959   // source types.
2960   int NumParts, NumLeftover;
2961   std::tie(NumParts, NumLeftover)
2962     = getNarrowTypeBreakDown(PhiTy, NarrowTy, LeftoverTy);
2963   if (NumParts < 0)
2964     return UnableToLegalize;
2965 
2966   SmallVector<Register, 4> DstRegs, LeftoverDstRegs;
2967   SmallVector<MachineInstrBuilder, 4> NewInsts;
2968 
2969   const int TotalNumParts = NumParts + NumLeftover;
2970 
2971   // Insert the new phis in the result block first.
2972   for (int I = 0; I != TotalNumParts; ++I) {
2973     LLT Ty = I < NumParts ? NarrowTy : LeftoverTy;
2974     Register PartDstReg = MRI.createGenericVirtualRegister(Ty);
2975     NewInsts.push_back(MIRBuilder.buildInstr(TargetOpcode::G_PHI)
2976                        .addDef(PartDstReg));
2977     if (I < NumParts)
2978       DstRegs.push_back(PartDstReg);
2979     else
2980       LeftoverDstRegs.push_back(PartDstReg);
2981   }
2982 
2983   MachineBasicBlock *MBB = MI.getParent();
2984   MIRBuilder.setInsertPt(*MBB, MBB->getFirstNonPHI());
2985   insertParts(DstReg, PhiTy, NarrowTy, DstRegs, LeftoverTy, LeftoverDstRegs);
2986 
2987   SmallVector<Register, 4> PartRegs, LeftoverRegs;
2988 
2989   // Insert code to extract the incoming values in each predecessor block.
2990   for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) {
2991     PartRegs.clear();
2992     LeftoverRegs.clear();
2993 
2994     Register SrcReg = MI.getOperand(I).getReg();
2995     MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB();
2996     MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator());
2997 
2998     LLT Unused;
2999     if (!extractParts(SrcReg, PhiTy, NarrowTy, Unused, PartRegs,
3000                       LeftoverRegs))
3001       return UnableToLegalize;
3002 
3003     // Add the newly created operand splits to the existing instructions. The
3004     // odd-sized pieces are ordered after the requested NarrowTyArg sized
3005     // pieces.
3006     for (int J = 0; J != TotalNumParts; ++J) {
3007       MachineInstrBuilder MIB = NewInsts[J];
3008       MIB.addUse(J < NumParts ? PartRegs[J] : LeftoverRegs[J - NumParts]);
3009       MIB.addMBB(&OpMBB);
3010     }
3011   }
3012 
3013   MI.eraseFromParent();
3014   return Legalized;
3015 }
3016 
3017 LegalizerHelper::LegalizeResult
3018 LegalizerHelper::fewerElementsVectorUnmergeValues(MachineInstr &MI,
3019                                                   unsigned TypeIdx,
3020                                                   LLT NarrowTy) {
3021   if (TypeIdx != 1)
3022     return UnableToLegalize;
3023 
3024   const int NumDst = MI.getNumOperands() - 1;
3025   const Register SrcReg = MI.getOperand(NumDst).getReg();
3026   LLT SrcTy = MRI.getType(SrcReg);
3027 
3028   LLT DstTy = MRI.getType(MI.getOperand(0).getReg());
3029 
3030   // TODO: Create sequence of extracts.
3031   if (DstTy == NarrowTy)
3032     return UnableToLegalize;
3033 
3034   LLT GCDTy = getGCDType(SrcTy, NarrowTy);
3035   if (DstTy == GCDTy) {
3036     // This would just be a copy of the same unmerge.
3037     // TODO: Create extracts, pad with undef and create intermediate merges.
3038     return UnableToLegalize;
3039   }
3040 
3041   auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg);
3042   const int NumUnmerge = Unmerge->getNumOperands() - 1;
3043   const int PartsPerUnmerge = NumDst / NumUnmerge;
3044 
3045   for (int I = 0; I != NumUnmerge; ++I) {
3046     auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES);
3047 
3048     for (int J = 0; J != PartsPerUnmerge; ++J)
3049       MIB.addDef(MI.getOperand(I * PartsPerUnmerge + J).getReg());
3050     MIB.addUse(Unmerge.getReg(I));
3051   }
3052 
3053   MI.eraseFromParent();
3054   return Legalized;
3055 }
3056 
3057 LegalizerHelper::LegalizeResult
3058 LegalizerHelper::fewerElementsVectorBuildVector(MachineInstr &MI,
3059                                                 unsigned TypeIdx,
3060                                                 LLT NarrowTy) {
3061   assert(TypeIdx == 0 && "not a vector type index");
3062   Register DstReg = MI.getOperand(0).getReg();
3063   LLT DstTy = MRI.getType(DstReg);
3064   LLT SrcTy = DstTy.getElementType();
3065 
3066   int DstNumElts = DstTy.getNumElements();
3067   int NarrowNumElts = NarrowTy.getNumElements();
3068   int NumConcat = (DstNumElts + NarrowNumElts - 1) / NarrowNumElts;
3069   LLT WidenedDstTy = LLT::vector(NarrowNumElts * NumConcat, SrcTy);
3070 
3071   SmallVector<Register, 8> ConcatOps;
3072   SmallVector<Register, 8> SubBuildVector;
3073 
3074   Register UndefReg;
3075   if (WidenedDstTy != DstTy)
3076     UndefReg = MIRBuilder.buildUndef(SrcTy).getReg(0);
3077 
3078   // Create a G_CONCAT_VECTORS of NarrowTy pieces, padding with undef as
3079   // necessary.
3080   //
3081   // %3:_(<3 x s16>) = G_BUILD_VECTOR %0, %1, %2
3082   //   -> <2 x s16>
3083   //
3084   // %4:_(s16) = G_IMPLICIT_DEF
3085   // %5:_(<2 x s16>) = G_BUILD_VECTOR %0, %1
3086   // %6:_(<2 x s16>) = G_BUILD_VECTOR %2, %4
3087   // %7:_(<4 x s16>) = G_CONCAT_VECTORS %5, %6
3088   // %3:_(<3 x s16>) = G_EXTRACT %7, 0
3089   for (int I = 0; I != NumConcat; ++I) {
3090     for (int J = 0; J != NarrowNumElts; ++J) {
3091       int SrcIdx = NarrowNumElts * I + J;
3092 
3093       if (SrcIdx < DstNumElts) {
3094         Register SrcReg = MI.getOperand(SrcIdx + 1).getReg();
3095         SubBuildVector.push_back(SrcReg);
3096       } else
3097         SubBuildVector.push_back(UndefReg);
3098     }
3099 
3100     auto BuildVec = MIRBuilder.buildBuildVector(NarrowTy, SubBuildVector);
3101     ConcatOps.push_back(BuildVec.getReg(0));
3102     SubBuildVector.clear();
3103   }
3104 
3105   if (DstTy == WidenedDstTy)
3106     MIRBuilder.buildConcatVectors(DstReg, ConcatOps);
3107   else {
3108     auto Concat = MIRBuilder.buildConcatVectors(WidenedDstTy, ConcatOps);
3109     MIRBuilder.buildExtract(DstReg, Concat, 0);
3110   }
3111 
3112   MI.eraseFromParent();
3113   return Legalized;
3114 }
3115 
3116 LegalizerHelper::LegalizeResult
3117 LegalizerHelper::reduceLoadStoreWidth(MachineInstr &MI, unsigned TypeIdx,
3118                                       LLT NarrowTy) {
3119   // FIXME: Don't know how to handle secondary types yet.
3120   if (TypeIdx != 0)
3121     return UnableToLegalize;
3122 
3123   MachineMemOperand *MMO = *MI.memoperands_begin();
3124 
3125   // This implementation doesn't work for atomics. Give up instead of doing
3126   // something invalid.
3127   if (MMO->getOrdering() != AtomicOrdering::NotAtomic ||
3128       MMO->getFailureOrdering() != AtomicOrdering::NotAtomic)
3129     return UnableToLegalize;
3130 
3131   bool IsLoad = MI.getOpcode() == TargetOpcode::G_LOAD;
3132   Register ValReg = MI.getOperand(0).getReg();
3133   Register AddrReg = MI.getOperand(1).getReg();
3134   LLT ValTy = MRI.getType(ValReg);
3135 
3136   int NumParts = -1;
3137   int NumLeftover = -1;
3138   LLT LeftoverTy;
3139   SmallVector<Register, 8> NarrowRegs, NarrowLeftoverRegs;
3140   if (IsLoad) {
3141     std::tie(NumParts, NumLeftover) = getNarrowTypeBreakDown(ValTy, NarrowTy, LeftoverTy);
3142   } else {
3143     if (extractParts(ValReg, ValTy, NarrowTy, LeftoverTy, NarrowRegs,
3144                      NarrowLeftoverRegs)) {
3145       NumParts = NarrowRegs.size();
3146       NumLeftover = NarrowLeftoverRegs.size();
3147     }
3148   }
3149 
3150   if (NumParts == -1)
3151     return UnableToLegalize;
3152 
3153   const LLT OffsetTy = LLT::scalar(MRI.getType(AddrReg).getScalarSizeInBits());
3154 
3155   unsigned TotalSize = ValTy.getSizeInBits();
3156 
3157   // Split the load/store into PartTy sized pieces starting at Offset. If this
3158   // is a load, return the new registers in ValRegs. For a store, each elements
3159   // of ValRegs should be PartTy. Returns the next offset that needs to be
3160   // handled.
3161   auto splitTypePieces = [=](LLT PartTy, SmallVectorImpl<Register> &ValRegs,
3162                              unsigned Offset) -> unsigned {
3163     MachineFunction &MF = MIRBuilder.getMF();
3164     unsigned PartSize = PartTy.getSizeInBits();
3165     for (unsigned Idx = 0, E = NumParts; Idx != E && Offset < TotalSize;
3166          Offset += PartSize, ++Idx) {
3167       unsigned ByteSize = PartSize / 8;
3168       unsigned ByteOffset = Offset / 8;
3169       Register NewAddrReg;
3170 
3171       MIRBuilder.materializePtrAdd(NewAddrReg, AddrReg, OffsetTy, ByteOffset);
3172 
3173       MachineMemOperand *NewMMO =
3174         MF.getMachineMemOperand(MMO, ByteOffset, ByteSize);
3175 
3176       if (IsLoad) {
3177         Register Dst = MRI.createGenericVirtualRegister(PartTy);
3178         ValRegs.push_back(Dst);
3179         MIRBuilder.buildLoad(Dst, NewAddrReg, *NewMMO);
3180       } else {
3181         MIRBuilder.buildStore(ValRegs[Idx], NewAddrReg, *NewMMO);
3182       }
3183     }
3184 
3185     return Offset;
3186   };
3187 
3188   unsigned HandledOffset = splitTypePieces(NarrowTy, NarrowRegs, 0);
3189 
3190   // Handle the rest of the register if this isn't an even type breakdown.
3191   if (LeftoverTy.isValid())
3192     splitTypePieces(LeftoverTy, NarrowLeftoverRegs, HandledOffset);
3193 
3194   if (IsLoad) {
3195     insertParts(ValReg, ValTy, NarrowTy, NarrowRegs,
3196                 LeftoverTy, NarrowLeftoverRegs);
3197   }
3198 
3199   MI.eraseFromParent();
3200   return Legalized;
3201 }
3202 
3203 LegalizerHelper::LegalizeResult
3204 LegalizerHelper::fewerElementsVectorSextInReg(MachineInstr &MI, unsigned TypeIdx,
3205                                               LLT NarrowTy) {
3206   Register DstReg = MI.getOperand(0).getReg();
3207   Register SrcReg = MI.getOperand(1).getReg();
3208   int64_t Imm = MI.getOperand(2).getImm();
3209 
3210   LLT DstTy = MRI.getType(DstReg);
3211 
3212   SmallVector<Register, 8> Parts;
3213   LLT GCDTy = extractGCDType(Parts, DstTy, NarrowTy, SrcReg);
3214   LLT LCMTy = buildLCMMergePieces(DstTy, NarrowTy, GCDTy, Parts);
3215 
3216   for (Register &R : Parts)
3217     R = MIRBuilder.buildSExtInReg(NarrowTy, R, Imm).getReg(0);
3218 
3219   buildWidenedRemergeToDst(DstReg, LCMTy, Parts);
3220 
3221   MI.eraseFromParent();
3222   return Legalized;
3223 }
3224 
3225 LegalizerHelper::LegalizeResult
3226 LegalizerHelper::fewerElementsVector(MachineInstr &MI, unsigned TypeIdx,
3227                                      LLT NarrowTy) {
3228   using namespace TargetOpcode;
3229 
3230   MIRBuilder.setInstr(MI);
3231   switch (MI.getOpcode()) {
3232   case G_IMPLICIT_DEF:
3233     return fewerElementsVectorImplicitDef(MI, TypeIdx, NarrowTy);
3234   case G_AND:
3235   case G_OR:
3236   case G_XOR:
3237   case G_ADD:
3238   case G_SUB:
3239   case G_MUL:
3240   case G_SMULH:
3241   case G_UMULH:
3242   case G_FADD:
3243   case G_FMUL:
3244   case G_FSUB:
3245   case G_FNEG:
3246   case G_FABS:
3247   case G_FCANONICALIZE:
3248   case G_FDIV:
3249   case G_FREM:
3250   case G_FMA:
3251   case G_FMAD:
3252   case G_FPOW:
3253   case G_FEXP:
3254   case G_FEXP2:
3255   case G_FLOG:
3256   case G_FLOG2:
3257   case G_FLOG10:
3258   case G_FNEARBYINT:
3259   case G_FCEIL:
3260   case G_FFLOOR:
3261   case G_FRINT:
3262   case G_INTRINSIC_ROUND:
3263   case G_INTRINSIC_TRUNC:
3264   case G_FCOS:
3265   case G_FSIN:
3266   case G_FSQRT:
3267   case G_BSWAP:
3268   case G_BITREVERSE:
3269   case G_SDIV:
3270   case G_UDIV:
3271   case G_SREM:
3272   case G_UREM:
3273   case G_SMIN:
3274   case G_SMAX:
3275   case G_UMIN:
3276   case G_UMAX:
3277   case G_FMINNUM:
3278   case G_FMAXNUM:
3279   case G_FMINNUM_IEEE:
3280   case G_FMAXNUM_IEEE:
3281   case G_FMINIMUM:
3282   case G_FMAXIMUM:
3283     return fewerElementsVectorBasic(MI, TypeIdx, NarrowTy);
3284   case G_SHL:
3285   case G_LSHR:
3286   case G_ASHR:
3287   case G_CTLZ:
3288   case G_CTLZ_ZERO_UNDEF:
3289   case G_CTTZ:
3290   case G_CTTZ_ZERO_UNDEF:
3291   case G_CTPOP:
3292   case G_FCOPYSIGN:
3293     return fewerElementsVectorMultiEltType(MI, TypeIdx, NarrowTy);
3294   case G_ZEXT:
3295   case G_SEXT:
3296   case G_ANYEXT:
3297   case G_FPEXT:
3298   case G_FPTRUNC:
3299   case G_SITOFP:
3300   case G_UITOFP:
3301   case G_FPTOSI:
3302   case G_FPTOUI:
3303   case G_INTTOPTR:
3304   case G_PTRTOINT:
3305   case G_ADDRSPACE_CAST:
3306     return fewerElementsVectorCasts(MI, TypeIdx, NarrowTy);
3307   case G_ICMP:
3308   case G_FCMP:
3309     return fewerElementsVectorCmp(MI, TypeIdx, NarrowTy);
3310   case G_SELECT:
3311     return fewerElementsVectorSelect(MI, TypeIdx, NarrowTy);
3312   case G_PHI:
3313     return fewerElementsVectorPhi(MI, TypeIdx, NarrowTy);
3314   case G_UNMERGE_VALUES:
3315     return fewerElementsVectorUnmergeValues(MI, TypeIdx, NarrowTy);
3316   case G_BUILD_VECTOR:
3317     return fewerElementsVectorBuildVector(MI, TypeIdx, NarrowTy);
3318   case G_LOAD:
3319   case G_STORE:
3320     return reduceLoadStoreWidth(MI, TypeIdx, NarrowTy);
3321   case G_SEXT_INREG:
3322     return fewerElementsVectorSextInReg(MI, TypeIdx, NarrowTy);
3323   default:
3324     return UnableToLegalize;
3325   }
3326 }
3327 
3328 LegalizerHelper::LegalizeResult
3329 LegalizerHelper::narrowScalarShiftByConstant(MachineInstr &MI, const APInt &Amt,
3330                                              const LLT HalfTy, const LLT AmtTy) {
3331 
3332   Register InL = MRI.createGenericVirtualRegister(HalfTy);
3333   Register InH = MRI.createGenericVirtualRegister(HalfTy);
3334   MIRBuilder.buildUnmerge({InL, InH}, MI.getOperand(1));
3335 
3336   if (Amt.isNullValue()) {
3337     MIRBuilder.buildMerge(MI.getOperand(0), {InL, InH});
3338     MI.eraseFromParent();
3339     return Legalized;
3340   }
3341 
3342   LLT NVT = HalfTy;
3343   unsigned NVTBits = HalfTy.getSizeInBits();
3344   unsigned VTBits = 2 * NVTBits;
3345 
3346   SrcOp Lo(Register(0)), Hi(Register(0));
3347   if (MI.getOpcode() == TargetOpcode::G_SHL) {
3348     if (Amt.ugt(VTBits)) {
3349       Lo = Hi = MIRBuilder.buildConstant(NVT, 0);
3350     } else if (Amt.ugt(NVTBits)) {
3351       Lo = MIRBuilder.buildConstant(NVT, 0);
3352       Hi = MIRBuilder.buildShl(NVT, InL,
3353                                MIRBuilder.buildConstant(AmtTy, Amt - NVTBits));
3354     } else if (Amt == NVTBits) {
3355       Lo = MIRBuilder.buildConstant(NVT, 0);
3356       Hi = InL;
3357     } else {
3358       Lo = MIRBuilder.buildShl(NVT, InL, MIRBuilder.buildConstant(AmtTy, Amt));
3359       auto OrLHS =
3360           MIRBuilder.buildShl(NVT, InH, MIRBuilder.buildConstant(AmtTy, Amt));
3361       auto OrRHS = MIRBuilder.buildLShr(
3362           NVT, InL, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits));
3363       Hi = MIRBuilder.buildOr(NVT, OrLHS, OrRHS);
3364     }
3365   } else if (MI.getOpcode() == TargetOpcode::G_LSHR) {
3366     if (Amt.ugt(VTBits)) {
3367       Lo = Hi = MIRBuilder.buildConstant(NVT, 0);
3368     } else if (Amt.ugt(NVTBits)) {
3369       Lo = MIRBuilder.buildLShr(NVT, InH,
3370                                 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits));
3371       Hi = MIRBuilder.buildConstant(NVT, 0);
3372     } else if (Amt == NVTBits) {
3373       Lo = InH;
3374       Hi = MIRBuilder.buildConstant(NVT, 0);
3375     } else {
3376       auto ShiftAmtConst = MIRBuilder.buildConstant(AmtTy, Amt);
3377 
3378       auto OrLHS = MIRBuilder.buildLShr(NVT, InL, ShiftAmtConst);
3379       auto OrRHS = MIRBuilder.buildShl(
3380           NVT, InH, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits));
3381 
3382       Lo = MIRBuilder.buildOr(NVT, OrLHS, OrRHS);
3383       Hi = MIRBuilder.buildLShr(NVT, InH, ShiftAmtConst);
3384     }
3385   } else {
3386     if (Amt.ugt(VTBits)) {
3387       Hi = Lo = MIRBuilder.buildAShr(
3388           NVT, InH, MIRBuilder.buildConstant(AmtTy, NVTBits - 1));
3389     } else if (Amt.ugt(NVTBits)) {
3390       Lo = MIRBuilder.buildAShr(NVT, InH,
3391                                 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits));
3392       Hi = MIRBuilder.buildAShr(NVT, InH,
3393                                 MIRBuilder.buildConstant(AmtTy, NVTBits - 1));
3394     } else if (Amt == NVTBits) {
3395       Lo = InH;
3396       Hi = MIRBuilder.buildAShr(NVT, InH,
3397                                 MIRBuilder.buildConstant(AmtTy, NVTBits - 1));
3398     } else {
3399       auto ShiftAmtConst = MIRBuilder.buildConstant(AmtTy, Amt);
3400 
3401       auto OrLHS = MIRBuilder.buildLShr(NVT, InL, ShiftAmtConst);
3402       auto OrRHS = MIRBuilder.buildShl(
3403           NVT, InH, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits));
3404 
3405       Lo = MIRBuilder.buildOr(NVT, OrLHS, OrRHS);
3406       Hi = MIRBuilder.buildAShr(NVT, InH, ShiftAmtConst);
3407     }
3408   }
3409 
3410   MIRBuilder.buildMerge(MI.getOperand(0), {Lo.getReg(), Hi.getReg()});
3411   MI.eraseFromParent();
3412 
3413   return Legalized;
3414 }
3415 
3416 // TODO: Optimize if constant shift amount.
3417 LegalizerHelper::LegalizeResult
3418 LegalizerHelper::narrowScalarShift(MachineInstr &MI, unsigned TypeIdx,
3419                                    LLT RequestedTy) {
3420   if (TypeIdx == 1) {
3421     Observer.changingInstr(MI);
3422     narrowScalarSrc(MI, RequestedTy, 2);
3423     Observer.changedInstr(MI);
3424     return Legalized;
3425   }
3426 
3427   Register DstReg = MI.getOperand(0).getReg();
3428   LLT DstTy = MRI.getType(DstReg);
3429   if (DstTy.isVector())
3430     return UnableToLegalize;
3431 
3432   Register Amt = MI.getOperand(2).getReg();
3433   LLT ShiftAmtTy = MRI.getType(Amt);
3434   const unsigned DstEltSize = DstTy.getScalarSizeInBits();
3435   if (DstEltSize % 2 != 0)
3436     return UnableToLegalize;
3437 
3438   // Ignore the input type. We can only go to exactly half the size of the
3439   // input. If that isn't small enough, the resulting pieces will be further
3440   // legalized.
3441   const unsigned NewBitSize = DstEltSize / 2;
3442   const LLT HalfTy = LLT::scalar(NewBitSize);
3443   const LLT CondTy = LLT::scalar(1);
3444 
3445   if (const MachineInstr *KShiftAmt =
3446           getOpcodeDef(TargetOpcode::G_CONSTANT, Amt, MRI)) {
3447     return narrowScalarShiftByConstant(
3448         MI, KShiftAmt->getOperand(1).getCImm()->getValue(), HalfTy, ShiftAmtTy);
3449   }
3450 
3451   // TODO: Expand with known bits.
3452 
3453   // Handle the fully general expansion by an unknown amount.
3454   auto NewBits = MIRBuilder.buildConstant(ShiftAmtTy, NewBitSize);
3455 
3456   Register InL = MRI.createGenericVirtualRegister(HalfTy);
3457   Register InH = MRI.createGenericVirtualRegister(HalfTy);
3458   MIRBuilder.buildUnmerge({InL, InH}, MI.getOperand(1));
3459 
3460   auto AmtExcess = MIRBuilder.buildSub(ShiftAmtTy, Amt, NewBits);
3461   auto AmtLack = MIRBuilder.buildSub(ShiftAmtTy, NewBits, Amt);
3462 
3463   auto Zero = MIRBuilder.buildConstant(ShiftAmtTy, 0);
3464   auto IsShort = MIRBuilder.buildICmp(ICmpInst::ICMP_ULT, CondTy, Amt, NewBits);
3465   auto IsZero = MIRBuilder.buildICmp(ICmpInst::ICMP_EQ, CondTy, Amt, Zero);
3466 
3467   Register ResultRegs[2];
3468   switch (MI.getOpcode()) {
3469   case TargetOpcode::G_SHL: {
3470     // Short: ShAmt < NewBitSize
3471     auto LoS = MIRBuilder.buildShl(HalfTy, InL, Amt);
3472 
3473     auto LoOr = MIRBuilder.buildLShr(HalfTy, InL, AmtLack);
3474     auto HiOr = MIRBuilder.buildShl(HalfTy, InH, Amt);
3475     auto HiS = MIRBuilder.buildOr(HalfTy, LoOr, HiOr);
3476 
3477     // Long: ShAmt >= NewBitSize
3478     auto LoL = MIRBuilder.buildConstant(HalfTy, 0);         // Lo part is zero.
3479     auto HiL = MIRBuilder.buildShl(HalfTy, InL, AmtExcess); // Hi from Lo part.
3480 
3481     auto Lo = MIRBuilder.buildSelect(HalfTy, IsShort, LoS, LoL);
3482     auto Hi = MIRBuilder.buildSelect(
3483         HalfTy, IsZero, InH, MIRBuilder.buildSelect(HalfTy, IsShort, HiS, HiL));
3484 
3485     ResultRegs[0] = Lo.getReg(0);
3486     ResultRegs[1] = Hi.getReg(0);
3487     break;
3488   }
3489   case TargetOpcode::G_LSHR:
3490   case TargetOpcode::G_ASHR: {
3491     // Short: ShAmt < NewBitSize
3492     auto HiS = MIRBuilder.buildInstr(MI.getOpcode(), {HalfTy}, {InH, Amt});
3493 
3494     auto LoOr = MIRBuilder.buildLShr(HalfTy, InL, Amt);
3495     auto HiOr = MIRBuilder.buildShl(HalfTy, InH, AmtLack);
3496     auto LoS = MIRBuilder.buildOr(HalfTy, LoOr, HiOr);
3497 
3498     // Long: ShAmt >= NewBitSize
3499     MachineInstrBuilder HiL;
3500     if (MI.getOpcode() == TargetOpcode::G_LSHR) {
3501       HiL = MIRBuilder.buildConstant(HalfTy, 0);            // Hi part is zero.
3502     } else {
3503       auto ShiftAmt = MIRBuilder.buildConstant(ShiftAmtTy, NewBitSize - 1);
3504       HiL = MIRBuilder.buildAShr(HalfTy, InH, ShiftAmt);    // Sign of Hi part.
3505     }
3506     auto LoL = MIRBuilder.buildInstr(MI.getOpcode(), {HalfTy},
3507                                      {InH, AmtExcess});     // Lo from Hi part.
3508 
3509     auto Lo = MIRBuilder.buildSelect(
3510         HalfTy, IsZero, InL, MIRBuilder.buildSelect(HalfTy, IsShort, LoS, LoL));
3511 
3512     auto Hi = MIRBuilder.buildSelect(HalfTy, IsShort, HiS, HiL);
3513 
3514     ResultRegs[0] = Lo.getReg(0);
3515     ResultRegs[1] = Hi.getReg(0);
3516     break;
3517   }
3518   default:
3519     llvm_unreachable("not a shift");
3520   }
3521 
3522   MIRBuilder.buildMerge(DstReg, ResultRegs);
3523   MI.eraseFromParent();
3524   return Legalized;
3525 }
3526 
3527 LegalizerHelper::LegalizeResult
3528 LegalizerHelper::moreElementsVectorPhi(MachineInstr &MI, unsigned TypeIdx,
3529                                        LLT MoreTy) {
3530   assert(TypeIdx == 0 && "Expecting only Idx 0");
3531 
3532   Observer.changingInstr(MI);
3533   for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) {
3534     MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB();
3535     MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator());
3536     moreElementsVectorSrc(MI, MoreTy, I);
3537   }
3538 
3539   MachineBasicBlock &MBB = *MI.getParent();
3540   MIRBuilder.setInsertPt(MBB, --MBB.getFirstNonPHI());
3541   moreElementsVectorDst(MI, MoreTy, 0);
3542   Observer.changedInstr(MI);
3543   return Legalized;
3544 }
3545 
3546 LegalizerHelper::LegalizeResult
3547 LegalizerHelper::moreElementsVector(MachineInstr &MI, unsigned TypeIdx,
3548                                     LLT MoreTy) {
3549   MIRBuilder.setInstr(MI);
3550   unsigned Opc = MI.getOpcode();
3551   switch (Opc) {
3552   case TargetOpcode::G_IMPLICIT_DEF:
3553   case TargetOpcode::G_LOAD: {
3554     if (TypeIdx != 0)
3555       return UnableToLegalize;
3556     Observer.changingInstr(MI);
3557     moreElementsVectorDst(MI, MoreTy, 0);
3558     Observer.changedInstr(MI);
3559     return Legalized;
3560   }
3561   case TargetOpcode::G_STORE:
3562     if (TypeIdx != 0)
3563       return UnableToLegalize;
3564     Observer.changingInstr(MI);
3565     moreElementsVectorSrc(MI, MoreTy, 0);
3566     Observer.changedInstr(MI);
3567     return Legalized;
3568   case TargetOpcode::G_AND:
3569   case TargetOpcode::G_OR:
3570   case TargetOpcode::G_XOR:
3571   case TargetOpcode::G_SMIN:
3572   case TargetOpcode::G_SMAX:
3573   case TargetOpcode::G_UMIN:
3574   case TargetOpcode::G_UMAX:
3575   case TargetOpcode::G_FMINNUM:
3576   case TargetOpcode::G_FMAXNUM:
3577   case TargetOpcode::G_FMINNUM_IEEE:
3578   case TargetOpcode::G_FMAXNUM_IEEE:
3579   case TargetOpcode::G_FMINIMUM:
3580   case TargetOpcode::G_FMAXIMUM: {
3581     Observer.changingInstr(MI);
3582     moreElementsVectorSrc(MI, MoreTy, 1);
3583     moreElementsVectorSrc(MI, MoreTy, 2);
3584     moreElementsVectorDst(MI, MoreTy, 0);
3585     Observer.changedInstr(MI);
3586     return Legalized;
3587   }
3588   case TargetOpcode::G_EXTRACT:
3589     if (TypeIdx != 1)
3590       return UnableToLegalize;
3591     Observer.changingInstr(MI);
3592     moreElementsVectorSrc(MI, MoreTy, 1);
3593     Observer.changedInstr(MI);
3594     return Legalized;
3595   case TargetOpcode::G_INSERT:
3596     if (TypeIdx != 0)
3597       return UnableToLegalize;
3598     Observer.changingInstr(MI);
3599     moreElementsVectorSrc(MI, MoreTy, 1);
3600     moreElementsVectorDst(MI, MoreTy, 0);
3601     Observer.changedInstr(MI);
3602     return Legalized;
3603   case TargetOpcode::G_SELECT:
3604     if (TypeIdx != 0)
3605       return UnableToLegalize;
3606     if (MRI.getType(MI.getOperand(1).getReg()).isVector())
3607       return UnableToLegalize;
3608 
3609     Observer.changingInstr(MI);
3610     moreElementsVectorSrc(MI, MoreTy, 2);
3611     moreElementsVectorSrc(MI, MoreTy, 3);
3612     moreElementsVectorDst(MI, MoreTy, 0);
3613     Observer.changedInstr(MI);
3614     return Legalized;
3615   case TargetOpcode::G_UNMERGE_VALUES: {
3616     if (TypeIdx != 1)
3617       return UnableToLegalize;
3618 
3619     LLT DstTy = MRI.getType(MI.getOperand(0).getReg());
3620     int NumDst = MI.getNumOperands() - 1;
3621     moreElementsVectorSrc(MI, MoreTy, NumDst);
3622 
3623     auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES);
3624     for (int I = 0; I != NumDst; ++I)
3625       MIB.addDef(MI.getOperand(I).getReg());
3626 
3627     int NewNumDst = MoreTy.getSizeInBits() / DstTy.getSizeInBits();
3628     for (int I = NumDst; I != NewNumDst; ++I)
3629       MIB.addDef(MRI.createGenericVirtualRegister(DstTy));
3630 
3631     MIB.addUse(MI.getOperand(NumDst).getReg());
3632     MI.eraseFromParent();
3633     return Legalized;
3634   }
3635   case TargetOpcode::G_PHI:
3636     return moreElementsVectorPhi(MI, TypeIdx, MoreTy);
3637   default:
3638     return UnableToLegalize;
3639   }
3640 }
3641 
3642 void LegalizerHelper::multiplyRegisters(SmallVectorImpl<Register> &DstRegs,
3643                                         ArrayRef<Register> Src1Regs,
3644                                         ArrayRef<Register> Src2Regs,
3645                                         LLT NarrowTy) {
3646   MachineIRBuilder &B = MIRBuilder;
3647   unsigned SrcParts = Src1Regs.size();
3648   unsigned DstParts = DstRegs.size();
3649 
3650   unsigned DstIdx = 0; // Low bits of the result.
3651   Register FactorSum =
3652       B.buildMul(NarrowTy, Src1Regs[DstIdx], Src2Regs[DstIdx]).getReg(0);
3653   DstRegs[DstIdx] = FactorSum;
3654 
3655   unsigned CarrySumPrevDstIdx;
3656   SmallVector<Register, 4> Factors;
3657 
3658   for (DstIdx = 1; DstIdx < DstParts; DstIdx++) {
3659     // Collect low parts of muls for DstIdx.
3660     for (unsigned i = DstIdx + 1 < SrcParts ? 0 : DstIdx - SrcParts + 1;
3661          i <= std::min(DstIdx, SrcParts - 1); ++i) {
3662       MachineInstrBuilder Mul =
3663           B.buildMul(NarrowTy, Src1Regs[DstIdx - i], Src2Regs[i]);
3664       Factors.push_back(Mul.getReg(0));
3665     }
3666     // Collect high parts of muls from previous DstIdx.
3667     for (unsigned i = DstIdx < SrcParts ? 0 : DstIdx - SrcParts;
3668          i <= std::min(DstIdx - 1, SrcParts - 1); ++i) {
3669       MachineInstrBuilder Umulh =
3670           B.buildUMulH(NarrowTy, Src1Regs[DstIdx - 1 - i], Src2Regs[i]);
3671       Factors.push_back(Umulh.getReg(0));
3672     }
3673     // Add CarrySum from additions calculated for previous DstIdx.
3674     if (DstIdx != 1) {
3675       Factors.push_back(CarrySumPrevDstIdx);
3676     }
3677 
3678     Register CarrySum;
3679     // Add all factors and accumulate all carries into CarrySum.
3680     if (DstIdx != DstParts - 1) {
3681       MachineInstrBuilder Uaddo =
3682           B.buildUAddo(NarrowTy, LLT::scalar(1), Factors[0], Factors[1]);
3683       FactorSum = Uaddo.getReg(0);
3684       CarrySum = B.buildZExt(NarrowTy, Uaddo.getReg(1)).getReg(0);
3685       for (unsigned i = 2; i < Factors.size(); ++i) {
3686         MachineInstrBuilder Uaddo =
3687             B.buildUAddo(NarrowTy, LLT::scalar(1), FactorSum, Factors[i]);
3688         FactorSum = Uaddo.getReg(0);
3689         MachineInstrBuilder Carry = B.buildZExt(NarrowTy, Uaddo.getReg(1));
3690         CarrySum = B.buildAdd(NarrowTy, CarrySum, Carry).getReg(0);
3691       }
3692     } else {
3693       // Since value for the next index is not calculated, neither is CarrySum.
3694       FactorSum = B.buildAdd(NarrowTy, Factors[0], Factors[1]).getReg(0);
3695       for (unsigned i = 2; i < Factors.size(); ++i)
3696         FactorSum = B.buildAdd(NarrowTy, FactorSum, Factors[i]).getReg(0);
3697     }
3698 
3699     CarrySumPrevDstIdx = CarrySum;
3700     DstRegs[DstIdx] = FactorSum;
3701     Factors.clear();
3702   }
3703 }
3704 
3705 LegalizerHelper::LegalizeResult
3706 LegalizerHelper::narrowScalarMul(MachineInstr &MI, LLT NarrowTy) {
3707   Register DstReg = MI.getOperand(0).getReg();
3708   Register Src1 = MI.getOperand(1).getReg();
3709   Register Src2 = MI.getOperand(2).getReg();
3710 
3711   LLT Ty = MRI.getType(DstReg);
3712   if (Ty.isVector())
3713     return UnableToLegalize;
3714 
3715   unsigned SrcSize = MRI.getType(Src1).getSizeInBits();
3716   unsigned DstSize = Ty.getSizeInBits();
3717   unsigned NarrowSize = NarrowTy.getSizeInBits();
3718   if (DstSize % NarrowSize != 0 || SrcSize % NarrowSize != 0)
3719     return UnableToLegalize;
3720 
3721   unsigned NumDstParts = DstSize / NarrowSize;
3722   unsigned NumSrcParts = SrcSize / NarrowSize;
3723   bool IsMulHigh = MI.getOpcode() == TargetOpcode::G_UMULH;
3724   unsigned DstTmpParts = NumDstParts * (IsMulHigh ? 2 : 1);
3725 
3726   SmallVector<Register, 2> Src1Parts, Src2Parts, DstTmpRegs;
3727   extractParts(Src1, NarrowTy, NumSrcParts, Src1Parts);
3728   extractParts(Src2, NarrowTy, NumSrcParts, Src2Parts);
3729   DstTmpRegs.resize(DstTmpParts);
3730   multiplyRegisters(DstTmpRegs, Src1Parts, Src2Parts, NarrowTy);
3731 
3732   // Take only high half of registers if this is high mul.
3733   ArrayRef<Register> DstRegs(
3734       IsMulHigh ? &DstTmpRegs[DstTmpParts / 2] : &DstTmpRegs[0], NumDstParts);
3735   MIRBuilder.buildMerge(DstReg, DstRegs);
3736   MI.eraseFromParent();
3737   return Legalized;
3738 }
3739 
3740 LegalizerHelper::LegalizeResult
3741 LegalizerHelper::narrowScalarExtract(MachineInstr &MI, unsigned TypeIdx,
3742                                      LLT NarrowTy) {
3743   if (TypeIdx != 1)
3744     return UnableToLegalize;
3745 
3746   uint64_t NarrowSize = NarrowTy.getSizeInBits();
3747 
3748   int64_t SizeOp1 = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
3749   // FIXME: add support for when SizeOp1 isn't an exact multiple of
3750   // NarrowSize.
3751   if (SizeOp1 % NarrowSize != 0)
3752     return UnableToLegalize;
3753   int NumParts = SizeOp1 / NarrowSize;
3754 
3755   SmallVector<Register, 2> SrcRegs, DstRegs;
3756   SmallVector<uint64_t, 2> Indexes;
3757   extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs);
3758 
3759   Register OpReg = MI.getOperand(0).getReg();
3760   uint64_t OpStart = MI.getOperand(2).getImm();
3761   uint64_t OpSize = MRI.getType(OpReg).getSizeInBits();
3762   for (int i = 0; i < NumParts; ++i) {
3763     unsigned SrcStart = i * NarrowSize;
3764 
3765     if (SrcStart + NarrowSize <= OpStart || SrcStart >= OpStart + OpSize) {
3766       // No part of the extract uses this subregister, ignore it.
3767       continue;
3768     } else if (SrcStart == OpStart && NarrowTy == MRI.getType(OpReg)) {
3769       // The entire subregister is extracted, forward the value.
3770       DstRegs.push_back(SrcRegs[i]);
3771       continue;
3772     }
3773 
3774     // OpSegStart is where this destination segment would start in OpReg if it
3775     // extended infinitely in both directions.
3776     int64_t ExtractOffset;
3777     uint64_t SegSize;
3778     if (OpStart < SrcStart) {
3779       ExtractOffset = 0;
3780       SegSize = std::min(NarrowSize, OpStart + OpSize - SrcStart);
3781     } else {
3782       ExtractOffset = OpStart - SrcStart;
3783       SegSize = std::min(SrcStart + NarrowSize - OpStart, OpSize);
3784     }
3785 
3786     Register SegReg = SrcRegs[i];
3787     if (ExtractOffset != 0 || SegSize != NarrowSize) {
3788       // A genuine extract is needed.
3789       SegReg = MRI.createGenericVirtualRegister(LLT::scalar(SegSize));
3790       MIRBuilder.buildExtract(SegReg, SrcRegs[i], ExtractOffset);
3791     }
3792 
3793     DstRegs.push_back(SegReg);
3794   }
3795 
3796   Register DstReg = MI.getOperand(0).getReg();
3797   if(MRI.getType(DstReg).isVector())
3798     MIRBuilder.buildBuildVector(DstReg, DstRegs);
3799   else
3800     MIRBuilder.buildMerge(DstReg, DstRegs);
3801   MI.eraseFromParent();
3802   return Legalized;
3803 }
3804 
3805 LegalizerHelper::LegalizeResult
3806 LegalizerHelper::narrowScalarInsert(MachineInstr &MI, unsigned TypeIdx,
3807                                     LLT NarrowTy) {
3808   // FIXME: Don't know how to handle secondary types yet.
3809   if (TypeIdx != 0)
3810     return UnableToLegalize;
3811 
3812   uint64_t SizeOp0 = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
3813   uint64_t NarrowSize = NarrowTy.getSizeInBits();
3814 
3815   // FIXME: add support for when SizeOp0 isn't an exact multiple of
3816   // NarrowSize.
3817   if (SizeOp0 % NarrowSize != 0)
3818     return UnableToLegalize;
3819 
3820   int NumParts = SizeOp0 / NarrowSize;
3821 
3822   SmallVector<Register, 2> SrcRegs, DstRegs;
3823   SmallVector<uint64_t, 2> Indexes;
3824   extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs);
3825 
3826   Register OpReg = MI.getOperand(2).getReg();
3827   uint64_t OpStart = MI.getOperand(3).getImm();
3828   uint64_t OpSize = MRI.getType(OpReg).getSizeInBits();
3829   for (int i = 0; i < NumParts; ++i) {
3830     unsigned DstStart = i * NarrowSize;
3831 
3832     if (DstStart + NarrowSize <= OpStart || DstStart >= OpStart + OpSize) {
3833       // No part of the insert affects this subregister, forward the original.
3834       DstRegs.push_back(SrcRegs[i]);
3835       continue;
3836     } else if (DstStart == OpStart && NarrowTy == MRI.getType(OpReg)) {
3837       // The entire subregister is defined by this insert, forward the new
3838       // value.
3839       DstRegs.push_back(OpReg);
3840       continue;
3841     }
3842 
3843     // OpSegStart is where this destination segment would start in OpReg if it
3844     // extended infinitely in both directions.
3845     int64_t ExtractOffset, InsertOffset;
3846     uint64_t SegSize;
3847     if (OpStart < DstStart) {
3848       InsertOffset = 0;
3849       ExtractOffset = DstStart - OpStart;
3850       SegSize = std::min(NarrowSize, OpStart + OpSize - DstStart);
3851     } else {
3852       InsertOffset = OpStart - DstStart;
3853       ExtractOffset = 0;
3854       SegSize =
3855         std::min(NarrowSize - InsertOffset, OpStart + OpSize - DstStart);
3856     }
3857 
3858     Register SegReg = OpReg;
3859     if (ExtractOffset != 0 || SegSize != OpSize) {
3860       // A genuine extract is needed.
3861       SegReg = MRI.createGenericVirtualRegister(LLT::scalar(SegSize));
3862       MIRBuilder.buildExtract(SegReg, OpReg, ExtractOffset);
3863     }
3864 
3865     Register DstReg = MRI.createGenericVirtualRegister(NarrowTy);
3866     MIRBuilder.buildInsert(DstReg, SrcRegs[i], SegReg, InsertOffset);
3867     DstRegs.push_back(DstReg);
3868   }
3869 
3870   assert(DstRegs.size() == (unsigned)NumParts && "not all parts covered");
3871   Register DstReg = MI.getOperand(0).getReg();
3872   if(MRI.getType(DstReg).isVector())
3873     MIRBuilder.buildBuildVector(DstReg, DstRegs);
3874   else
3875     MIRBuilder.buildMerge(DstReg, DstRegs);
3876   MI.eraseFromParent();
3877   return Legalized;
3878 }
3879 
3880 LegalizerHelper::LegalizeResult
3881 LegalizerHelper::narrowScalarBasic(MachineInstr &MI, unsigned TypeIdx,
3882                                    LLT NarrowTy) {
3883   Register DstReg = MI.getOperand(0).getReg();
3884   LLT DstTy = MRI.getType(DstReg);
3885 
3886   assert(MI.getNumOperands() == 3 && TypeIdx == 0);
3887 
3888   SmallVector<Register, 4> DstRegs, DstLeftoverRegs;
3889   SmallVector<Register, 4> Src0Regs, Src0LeftoverRegs;
3890   SmallVector<Register, 4> Src1Regs, Src1LeftoverRegs;
3891   LLT LeftoverTy;
3892   if (!extractParts(MI.getOperand(1).getReg(), DstTy, NarrowTy, LeftoverTy,
3893                     Src0Regs, Src0LeftoverRegs))
3894     return UnableToLegalize;
3895 
3896   LLT Unused;
3897   if (!extractParts(MI.getOperand(2).getReg(), DstTy, NarrowTy, Unused,
3898                     Src1Regs, Src1LeftoverRegs))
3899     llvm_unreachable("inconsistent extractParts result");
3900 
3901   for (unsigned I = 0, E = Src1Regs.size(); I != E; ++I) {
3902     auto Inst = MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy},
3903                                         {Src0Regs[I], Src1Regs[I]});
3904     DstRegs.push_back(Inst.getReg(0));
3905   }
3906 
3907   for (unsigned I = 0, E = Src1LeftoverRegs.size(); I != E; ++I) {
3908     auto Inst = MIRBuilder.buildInstr(
3909       MI.getOpcode(),
3910       {LeftoverTy}, {Src0LeftoverRegs[I], Src1LeftoverRegs[I]});
3911     DstLeftoverRegs.push_back(Inst.getReg(0));
3912   }
3913 
3914   insertParts(DstReg, DstTy, NarrowTy, DstRegs,
3915               LeftoverTy, DstLeftoverRegs);
3916 
3917   MI.eraseFromParent();
3918   return Legalized;
3919 }
3920 
3921 LegalizerHelper::LegalizeResult
3922 LegalizerHelper::narrowScalarExt(MachineInstr &MI, unsigned TypeIdx,
3923                                  LLT NarrowTy) {
3924   if (TypeIdx != 0)
3925     return UnableToLegalize;
3926 
3927   Register DstReg = MI.getOperand(0).getReg();
3928   Register SrcReg = MI.getOperand(1).getReg();
3929 
3930   LLT DstTy = MRI.getType(DstReg);
3931   if (DstTy.isVector())
3932     return UnableToLegalize;
3933 
3934   SmallVector<Register, 8> Parts;
3935   LLT GCDTy = extractGCDType(Parts, DstTy, NarrowTy, SrcReg);
3936   LLT LCMTy = buildLCMMergePieces(DstTy, NarrowTy, GCDTy, Parts, MI.getOpcode());
3937   buildWidenedRemergeToDst(DstReg, LCMTy, Parts);
3938 
3939   MI.eraseFromParent();
3940   return Legalized;
3941 }
3942 
3943 LegalizerHelper::LegalizeResult
3944 LegalizerHelper::narrowScalarSelect(MachineInstr &MI, unsigned TypeIdx,
3945                                     LLT NarrowTy) {
3946   if (TypeIdx != 0)
3947     return UnableToLegalize;
3948 
3949   Register CondReg = MI.getOperand(1).getReg();
3950   LLT CondTy = MRI.getType(CondReg);
3951   if (CondTy.isVector()) // TODO: Handle vselect
3952     return UnableToLegalize;
3953 
3954   Register DstReg = MI.getOperand(0).getReg();
3955   LLT DstTy = MRI.getType(DstReg);
3956 
3957   SmallVector<Register, 4> DstRegs, DstLeftoverRegs;
3958   SmallVector<Register, 4> Src1Regs, Src1LeftoverRegs;
3959   SmallVector<Register, 4> Src2Regs, Src2LeftoverRegs;
3960   LLT LeftoverTy;
3961   if (!extractParts(MI.getOperand(2).getReg(), DstTy, NarrowTy, LeftoverTy,
3962                     Src1Regs, Src1LeftoverRegs))
3963     return UnableToLegalize;
3964 
3965   LLT Unused;
3966   if (!extractParts(MI.getOperand(3).getReg(), DstTy, NarrowTy, Unused,
3967                     Src2Regs, Src2LeftoverRegs))
3968     llvm_unreachable("inconsistent extractParts result");
3969 
3970   for (unsigned I = 0, E = Src1Regs.size(); I != E; ++I) {
3971     auto Select = MIRBuilder.buildSelect(NarrowTy,
3972                                          CondReg, Src1Regs[I], Src2Regs[I]);
3973     DstRegs.push_back(Select.getReg(0));
3974   }
3975 
3976   for (unsigned I = 0, E = Src1LeftoverRegs.size(); I != E; ++I) {
3977     auto Select = MIRBuilder.buildSelect(
3978       LeftoverTy, CondReg, Src1LeftoverRegs[I], Src2LeftoverRegs[I]);
3979     DstLeftoverRegs.push_back(Select.getReg(0));
3980   }
3981 
3982   insertParts(DstReg, DstTy, NarrowTy, DstRegs,
3983               LeftoverTy, DstLeftoverRegs);
3984 
3985   MI.eraseFromParent();
3986   return Legalized;
3987 }
3988 
3989 LegalizerHelper::LegalizeResult
3990 LegalizerHelper::narrowScalarCTLZ(MachineInstr &MI, unsigned TypeIdx,
3991                                   LLT NarrowTy) {
3992   if (TypeIdx != 1)
3993     return UnableToLegalize;
3994 
3995   LLT SrcTy = MRI.getType(MI.getOperand(1).getReg());
3996   unsigned NarrowSize = NarrowTy.getSizeInBits();
3997 
3998   if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) {
3999     MachineIRBuilder &B = MIRBuilder;
4000     auto UnmergeSrc = B.buildUnmerge(NarrowTy, MI.getOperand(1));
4001     // ctlz(Hi:Lo) -> Hi == 0 ? (NarrowSize + ctlz(Lo)) : ctlz(Hi)
4002     auto C_0 = B.buildConstant(NarrowTy, 0);
4003     auto HiIsZero = B.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1),
4004                                 UnmergeSrc.getReg(1), C_0);
4005     auto LoCTLZ = B.buildCTLZ(NarrowTy, UnmergeSrc.getReg(0));
4006     auto C_NarrowSize = B.buildConstant(NarrowTy, NarrowSize);
4007     auto HiIsZeroCTLZ = B.buildAdd(NarrowTy, LoCTLZ, C_NarrowSize);
4008     auto HiCTLZ = B.buildCTLZ_ZERO_UNDEF(NarrowTy, UnmergeSrc.getReg(1));
4009     auto LoOut = B.buildSelect(NarrowTy, HiIsZero, HiIsZeroCTLZ, HiCTLZ);
4010 
4011     B.buildMerge(MI.getOperand(0), {LoOut.getReg(0), C_0.getReg(0)});
4012 
4013     MI.eraseFromParent();
4014     return Legalized;
4015   }
4016 
4017   return UnableToLegalize;
4018 }
4019 
4020 LegalizerHelper::LegalizeResult
4021 LegalizerHelper::narrowScalarCTTZ(MachineInstr &MI, unsigned TypeIdx,
4022                                   LLT NarrowTy) {
4023   if (TypeIdx != 1)
4024     return UnableToLegalize;
4025 
4026   LLT SrcTy = MRI.getType(MI.getOperand(1).getReg());
4027   unsigned NarrowSize = NarrowTy.getSizeInBits();
4028 
4029   if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) {
4030     MachineIRBuilder &B = MIRBuilder;
4031     auto UnmergeSrc = B.buildUnmerge(NarrowTy, MI.getOperand(1));
4032     // cttz(Hi:Lo) -> Lo == 0 ? (cttz(Hi) + NarrowSize) : cttz(Lo)
4033     auto C_0 = B.buildConstant(NarrowTy, 0);
4034     auto LoIsZero = B.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1),
4035                                 UnmergeSrc.getReg(0), C_0);
4036     auto HiCTTZ = B.buildCTTZ(NarrowTy, UnmergeSrc.getReg(1));
4037     auto C_NarrowSize = B.buildConstant(NarrowTy, NarrowSize);
4038     auto LoIsZeroCTTZ = B.buildAdd(NarrowTy, HiCTTZ, C_NarrowSize);
4039     auto LoCTTZ = B.buildCTTZ_ZERO_UNDEF(NarrowTy, UnmergeSrc.getReg(0));
4040     auto LoOut = B.buildSelect(NarrowTy, LoIsZero, LoIsZeroCTTZ, LoCTTZ);
4041 
4042     B.buildMerge(MI.getOperand(0), {LoOut.getReg(0), C_0.getReg(0)});
4043 
4044     MI.eraseFromParent();
4045     return Legalized;
4046   }
4047 
4048   return UnableToLegalize;
4049 }
4050 
4051 LegalizerHelper::LegalizeResult
4052 LegalizerHelper::narrowScalarCTPOP(MachineInstr &MI, unsigned TypeIdx,
4053                                    LLT NarrowTy) {
4054   if (TypeIdx != 1)
4055     return UnableToLegalize;
4056 
4057   LLT SrcTy = MRI.getType(MI.getOperand(1).getReg());
4058   unsigned NarrowSize = NarrowTy.getSizeInBits();
4059 
4060   if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) {
4061     auto UnmergeSrc = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1));
4062 
4063     auto LoCTPOP = MIRBuilder.buildCTPOP(NarrowTy, UnmergeSrc.getReg(0));
4064     auto HiCTPOP = MIRBuilder.buildCTPOP(NarrowTy, UnmergeSrc.getReg(1));
4065     auto Out = MIRBuilder.buildAdd(NarrowTy, HiCTPOP, LoCTPOP);
4066     MIRBuilder.buildZExt(MI.getOperand(0), Out);
4067 
4068     MI.eraseFromParent();
4069     return Legalized;
4070   }
4071 
4072   return UnableToLegalize;
4073 }
4074 
4075 LegalizerHelper::LegalizeResult
4076 LegalizerHelper::lowerBitCount(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
4077   unsigned Opc = MI.getOpcode();
4078   auto &TII = *MI.getMF()->getSubtarget().getInstrInfo();
4079   auto isSupported = [this](const LegalityQuery &Q) {
4080     auto QAction = LI.getAction(Q).Action;
4081     return QAction == Legal || QAction == Libcall || QAction == Custom;
4082   };
4083   switch (Opc) {
4084   default:
4085     return UnableToLegalize;
4086   case TargetOpcode::G_CTLZ_ZERO_UNDEF: {
4087     // This trivially expands to CTLZ.
4088     Observer.changingInstr(MI);
4089     MI.setDesc(TII.get(TargetOpcode::G_CTLZ));
4090     Observer.changedInstr(MI);
4091     return Legalized;
4092   }
4093   case TargetOpcode::G_CTLZ: {
4094     Register SrcReg = MI.getOperand(1).getReg();
4095     unsigned Len = Ty.getSizeInBits();
4096     if (isSupported({TargetOpcode::G_CTLZ_ZERO_UNDEF, {Ty, Ty}})) {
4097       // If CTLZ_ZERO_UNDEF is supported, emit that and a select for zero.
4098       auto MIBCtlzZU = MIRBuilder.buildCTLZ_ZERO_UNDEF(Ty, SrcReg);
4099       auto MIBZero = MIRBuilder.buildConstant(Ty, 0);
4100       auto MIBLen = MIRBuilder.buildConstant(Ty, Len);
4101       auto MIBICmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1),
4102                                           SrcReg, MIBZero);
4103       MIRBuilder.buildSelect(MI.getOperand(0), MIBICmp, MIBLen, MIBCtlzZU);
4104       MI.eraseFromParent();
4105       return Legalized;
4106     }
4107     // for now, we do this:
4108     // NewLen = NextPowerOf2(Len);
4109     // x = x | (x >> 1);
4110     // x = x | (x >> 2);
4111     // ...
4112     // x = x | (x >>16);
4113     // x = x | (x >>32); // for 64-bit input
4114     // Upto NewLen/2
4115     // return Len - popcount(x);
4116     //
4117     // Ref: "Hacker's Delight" by Henry Warren
4118     Register Op = SrcReg;
4119     unsigned NewLen = PowerOf2Ceil(Len);
4120     for (unsigned i = 0; (1U << i) <= (NewLen / 2); ++i) {
4121       auto MIBShiftAmt = MIRBuilder.buildConstant(Ty, 1ULL << i);
4122       auto MIBOp =
4123           MIRBuilder.buildOr(Ty, Op, MIRBuilder.buildLShr(Ty, Op, MIBShiftAmt));
4124       Op = MIBOp.getReg(0);
4125     }
4126     auto MIBPop = MIRBuilder.buildCTPOP(Ty, Op);
4127     MIRBuilder.buildSub(MI.getOperand(0), MIRBuilder.buildConstant(Ty, Len),
4128                         MIBPop);
4129     MI.eraseFromParent();
4130     return Legalized;
4131   }
4132   case TargetOpcode::G_CTTZ_ZERO_UNDEF: {
4133     // This trivially expands to CTTZ.
4134     Observer.changingInstr(MI);
4135     MI.setDesc(TII.get(TargetOpcode::G_CTTZ));
4136     Observer.changedInstr(MI);
4137     return Legalized;
4138   }
4139   case TargetOpcode::G_CTTZ: {
4140     Register SrcReg = MI.getOperand(1).getReg();
4141     unsigned Len = Ty.getSizeInBits();
4142     if (isSupported({TargetOpcode::G_CTTZ_ZERO_UNDEF, {Ty, Ty}})) {
4143       // If CTTZ_ZERO_UNDEF is legal or custom, emit that and a select with
4144       // zero.
4145       auto MIBCttzZU = MIRBuilder.buildCTTZ_ZERO_UNDEF(Ty, SrcReg);
4146       auto MIBZero = MIRBuilder.buildConstant(Ty, 0);
4147       auto MIBLen = MIRBuilder.buildConstant(Ty, Len);
4148       auto MIBICmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1),
4149                                           SrcReg, MIBZero);
4150       MIRBuilder.buildSelect(MI.getOperand(0), MIBICmp, MIBLen, MIBCttzZU);
4151       MI.eraseFromParent();
4152       return Legalized;
4153     }
4154     // for now, we use: { return popcount(~x & (x - 1)); }
4155     // unless the target has ctlz but not ctpop, in which case we use:
4156     // { return 32 - nlz(~x & (x-1)); }
4157     // Ref: "Hacker's Delight" by Henry Warren
4158     auto MIBCstNeg1 = MIRBuilder.buildConstant(Ty, -1);
4159     auto MIBNot = MIRBuilder.buildXor(Ty, SrcReg, MIBCstNeg1);
4160     auto MIBTmp = MIRBuilder.buildAnd(
4161         Ty, MIBNot, MIRBuilder.buildAdd(Ty, SrcReg, MIBCstNeg1));
4162     if (!isSupported({TargetOpcode::G_CTPOP, {Ty, Ty}}) &&
4163         isSupported({TargetOpcode::G_CTLZ, {Ty, Ty}})) {
4164       auto MIBCstLen = MIRBuilder.buildConstant(Ty, Len);
4165       MIRBuilder.buildSub(MI.getOperand(0), MIBCstLen,
4166                           MIRBuilder.buildCTLZ(Ty, MIBTmp));
4167       MI.eraseFromParent();
4168       return Legalized;
4169     }
4170     MI.setDesc(TII.get(TargetOpcode::G_CTPOP));
4171     MI.getOperand(1).setReg(MIBTmp.getReg(0));
4172     return Legalized;
4173   }
4174   case TargetOpcode::G_CTPOP: {
4175     unsigned Size = Ty.getSizeInBits();
4176     MachineIRBuilder &B = MIRBuilder;
4177 
4178     // Count set bits in blocks of 2 bits. Default approach would be
4179     // B2Count = { val & 0x55555555 } + { (val >> 1) & 0x55555555 }
4180     // We use following formula instead:
4181     // B2Count = val - { (val >> 1) & 0x55555555 }
4182     // since it gives same result in blocks of 2 with one instruction less.
4183     auto C_1 = B.buildConstant(Ty, 1);
4184     auto B2Set1LoTo1Hi = B.buildLShr(Ty, MI.getOperand(1).getReg(), C_1);
4185     APInt B2Mask1HiTo0 = APInt::getSplat(Size, APInt(8, 0x55));
4186     auto C_B2Mask1HiTo0 = B.buildConstant(Ty, B2Mask1HiTo0);
4187     auto B2Count1Hi = B.buildAnd(Ty, B2Set1LoTo1Hi, C_B2Mask1HiTo0);
4188     auto B2Count = B.buildSub(Ty, MI.getOperand(1).getReg(), B2Count1Hi);
4189 
4190     // In order to get count in blocks of 4 add values from adjacent block of 2.
4191     // B4Count = { B2Count & 0x33333333 } + { (B2Count >> 2) & 0x33333333 }
4192     auto C_2 = B.buildConstant(Ty, 2);
4193     auto B4Set2LoTo2Hi = B.buildLShr(Ty, B2Count, C_2);
4194     APInt B4Mask2HiTo0 = APInt::getSplat(Size, APInt(8, 0x33));
4195     auto C_B4Mask2HiTo0 = B.buildConstant(Ty, B4Mask2HiTo0);
4196     auto B4HiB2Count = B.buildAnd(Ty, B4Set2LoTo2Hi, C_B4Mask2HiTo0);
4197     auto B4LoB2Count = B.buildAnd(Ty, B2Count, C_B4Mask2HiTo0);
4198     auto B4Count = B.buildAdd(Ty, B4HiB2Count, B4LoB2Count);
4199 
4200     // For count in blocks of 8 bits we don't have to mask high 4 bits before
4201     // addition since count value sits in range {0,...,8} and 4 bits are enough
4202     // to hold such binary values. After addition high 4 bits still hold count
4203     // of set bits in high 4 bit block, set them to zero and get 8 bit result.
4204     // B8Count = { B4Count + (B4Count >> 4) } & 0x0F0F0F0F
4205     auto C_4 = B.buildConstant(Ty, 4);
4206     auto B8HiB4Count = B.buildLShr(Ty, B4Count, C_4);
4207     auto B8CountDirty4Hi = B.buildAdd(Ty, B8HiB4Count, B4Count);
4208     APInt B8Mask4HiTo0 = APInt::getSplat(Size, APInt(8, 0x0F));
4209     auto C_B8Mask4HiTo0 = B.buildConstant(Ty, B8Mask4HiTo0);
4210     auto B8Count = B.buildAnd(Ty, B8CountDirty4Hi, C_B8Mask4HiTo0);
4211 
4212     assert(Size<=128 && "Scalar size is too large for CTPOP lower algorithm");
4213     // 8 bits can hold CTPOP result of 128 bit int or smaller. Mul with this
4214     // bitmask will set 8 msb in ResTmp to sum of all B8Counts in 8 bit blocks.
4215     auto MulMask = B.buildConstant(Ty, APInt::getSplat(Size, APInt(8, 0x01)));
4216     auto ResTmp = B.buildMul(Ty, B8Count, MulMask);
4217 
4218     // Shift count result from 8 high bits to low bits.
4219     auto C_SizeM8 = B.buildConstant(Ty, Size - 8);
4220     B.buildLShr(MI.getOperand(0).getReg(), ResTmp, C_SizeM8);
4221 
4222     MI.eraseFromParent();
4223     return Legalized;
4224   }
4225   }
4226 }
4227 
4228 // Expand s32 = G_UITOFP s64 using bit operations to an IEEE float
4229 // representation.
4230 LegalizerHelper::LegalizeResult
4231 LegalizerHelper::lowerU64ToF32BitOps(MachineInstr &MI) {
4232   Register Dst = MI.getOperand(0).getReg();
4233   Register Src = MI.getOperand(1).getReg();
4234   const LLT S64 = LLT::scalar(64);
4235   const LLT S32 = LLT::scalar(32);
4236   const LLT S1 = LLT::scalar(1);
4237 
4238   assert(MRI.getType(Src) == S64 && MRI.getType(Dst) == S32);
4239 
4240   // unsigned cul2f(ulong u) {
4241   //   uint lz = clz(u);
4242   //   uint e = (u != 0) ? 127U + 63U - lz : 0;
4243   //   u = (u << lz) & 0x7fffffffffffffffUL;
4244   //   ulong t = u & 0xffffffffffUL;
4245   //   uint v = (e << 23) | (uint)(u >> 40);
4246   //   uint r = t > 0x8000000000UL ? 1U : (t == 0x8000000000UL ? v & 1U : 0U);
4247   //   return as_float(v + r);
4248   // }
4249 
4250   auto Zero32 = MIRBuilder.buildConstant(S32, 0);
4251   auto Zero64 = MIRBuilder.buildConstant(S64, 0);
4252 
4253   auto LZ = MIRBuilder.buildCTLZ_ZERO_UNDEF(S32, Src);
4254 
4255   auto K = MIRBuilder.buildConstant(S32, 127U + 63U);
4256   auto Sub = MIRBuilder.buildSub(S32, K, LZ);
4257 
4258   auto NotZero = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, Src, Zero64);
4259   auto E = MIRBuilder.buildSelect(S32, NotZero, Sub, Zero32);
4260 
4261   auto Mask0 = MIRBuilder.buildConstant(S64, (-1ULL) >> 1);
4262   auto ShlLZ = MIRBuilder.buildShl(S64, Src, LZ);
4263 
4264   auto U = MIRBuilder.buildAnd(S64, ShlLZ, Mask0);
4265 
4266   auto Mask1 = MIRBuilder.buildConstant(S64, 0xffffffffffULL);
4267   auto T = MIRBuilder.buildAnd(S64, U, Mask1);
4268 
4269   auto UShl = MIRBuilder.buildLShr(S64, U, MIRBuilder.buildConstant(S64, 40));
4270   auto ShlE = MIRBuilder.buildShl(S32, E, MIRBuilder.buildConstant(S32, 23));
4271   auto V = MIRBuilder.buildOr(S32, ShlE, MIRBuilder.buildTrunc(S32, UShl));
4272 
4273   auto C = MIRBuilder.buildConstant(S64, 0x8000000000ULL);
4274   auto RCmp = MIRBuilder.buildICmp(CmpInst::ICMP_UGT, S1, T, C);
4275   auto TCmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, S1, T, C);
4276   auto One = MIRBuilder.buildConstant(S32, 1);
4277 
4278   auto VTrunc1 = MIRBuilder.buildAnd(S32, V, One);
4279   auto Select0 = MIRBuilder.buildSelect(S32, TCmp, VTrunc1, Zero32);
4280   auto R = MIRBuilder.buildSelect(S32, RCmp, One, Select0);
4281   MIRBuilder.buildAdd(Dst, V, R);
4282 
4283   return Legalized;
4284 }
4285 
4286 LegalizerHelper::LegalizeResult
4287 LegalizerHelper::lowerUITOFP(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
4288   Register Dst = MI.getOperand(0).getReg();
4289   Register Src = MI.getOperand(1).getReg();
4290   LLT DstTy = MRI.getType(Dst);
4291   LLT SrcTy = MRI.getType(Src);
4292 
4293   if (SrcTy == LLT::scalar(1)) {
4294     auto True = MIRBuilder.buildFConstant(DstTy, 1.0);
4295     auto False = MIRBuilder.buildFConstant(DstTy, 0.0);
4296     MIRBuilder.buildSelect(Dst, Src, True, False);
4297     MI.eraseFromParent();
4298     return Legalized;
4299   }
4300 
4301   if (SrcTy != LLT::scalar(64))
4302     return UnableToLegalize;
4303 
4304   if (DstTy == LLT::scalar(32)) {
4305     // TODO: SelectionDAG has several alternative expansions to port which may
4306     // be more reasonble depending on the available instructions. If a target
4307     // has sitofp, does not have CTLZ, or can efficiently use f64 as an
4308     // intermediate type, this is probably worse.
4309     return lowerU64ToF32BitOps(MI);
4310   }
4311 
4312   return UnableToLegalize;
4313 }
4314 
4315 LegalizerHelper::LegalizeResult
4316 LegalizerHelper::lowerSITOFP(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
4317   Register Dst = MI.getOperand(0).getReg();
4318   Register Src = MI.getOperand(1).getReg();
4319   LLT DstTy = MRI.getType(Dst);
4320   LLT SrcTy = MRI.getType(Src);
4321 
4322   const LLT S64 = LLT::scalar(64);
4323   const LLT S32 = LLT::scalar(32);
4324   const LLT S1 = LLT::scalar(1);
4325 
4326   if (SrcTy == S1) {
4327     auto True = MIRBuilder.buildFConstant(DstTy, -1.0);
4328     auto False = MIRBuilder.buildFConstant(DstTy, 0.0);
4329     MIRBuilder.buildSelect(Dst, Src, True, False);
4330     MI.eraseFromParent();
4331     return Legalized;
4332   }
4333 
4334   if (SrcTy != S64)
4335     return UnableToLegalize;
4336 
4337   if (DstTy == S32) {
4338     // signed cl2f(long l) {
4339     //   long s = l >> 63;
4340     //   float r = cul2f((l + s) ^ s);
4341     //   return s ? -r : r;
4342     // }
4343     Register L = Src;
4344     auto SignBit = MIRBuilder.buildConstant(S64, 63);
4345     auto S = MIRBuilder.buildAShr(S64, L, SignBit);
4346 
4347     auto LPlusS = MIRBuilder.buildAdd(S64, L, S);
4348     auto Xor = MIRBuilder.buildXor(S64, LPlusS, S);
4349     auto R = MIRBuilder.buildUITOFP(S32, Xor);
4350 
4351     auto RNeg = MIRBuilder.buildFNeg(S32, R);
4352     auto SignNotZero = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, S,
4353                                             MIRBuilder.buildConstant(S64, 0));
4354     MIRBuilder.buildSelect(Dst, SignNotZero, RNeg, R);
4355     return Legalized;
4356   }
4357 
4358   return UnableToLegalize;
4359 }
4360 
4361 LegalizerHelper::LegalizeResult
4362 LegalizerHelper::lowerFPTOUI(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
4363   Register Dst = MI.getOperand(0).getReg();
4364   Register Src = MI.getOperand(1).getReg();
4365   LLT DstTy = MRI.getType(Dst);
4366   LLT SrcTy = MRI.getType(Src);
4367   const LLT S64 = LLT::scalar(64);
4368   const LLT S32 = LLT::scalar(32);
4369 
4370   if (SrcTy != S64 && SrcTy != S32)
4371     return UnableToLegalize;
4372   if (DstTy != S32 && DstTy != S64)
4373     return UnableToLegalize;
4374 
4375   // FPTOSI gives same result as FPTOUI for positive signed integers.
4376   // FPTOUI needs to deal with fp values that convert to unsigned integers
4377   // greater or equal to 2^31 for float or 2^63 for double. For brevity 2^Exp.
4378 
4379   APInt TwoPExpInt = APInt::getSignMask(DstTy.getSizeInBits());
4380   APFloat TwoPExpFP(SrcTy.getSizeInBits() == 32 ? APFloat::IEEEsingle()
4381                                                 : APFloat::IEEEdouble(),
4382                     APInt::getNullValue(SrcTy.getSizeInBits()));
4383   TwoPExpFP.convertFromAPInt(TwoPExpInt, false, APFloat::rmNearestTiesToEven);
4384 
4385   MachineInstrBuilder FPTOSI = MIRBuilder.buildFPTOSI(DstTy, Src);
4386 
4387   MachineInstrBuilder Threshold = MIRBuilder.buildFConstant(SrcTy, TwoPExpFP);
4388   // For fp Value greater or equal to Threshold(2^Exp), we use FPTOSI on
4389   // (Value - 2^Exp) and add 2^Exp by setting highest bit in result to 1.
4390   MachineInstrBuilder FSub = MIRBuilder.buildFSub(SrcTy, Src, Threshold);
4391   MachineInstrBuilder ResLowBits = MIRBuilder.buildFPTOSI(DstTy, FSub);
4392   MachineInstrBuilder ResHighBit = MIRBuilder.buildConstant(DstTy, TwoPExpInt);
4393   MachineInstrBuilder Res = MIRBuilder.buildXor(DstTy, ResLowBits, ResHighBit);
4394 
4395   const LLT S1 = LLT::scalar(1);
4396 
4397   MachineInstrBuilder FCMP =
4398       MIRBuilder.buildFCmp(CmpInst::FCMP_ULT, S1, Src, Threshold);
4399   MIRBuilder.buildSelect(Dst, FCMP, FPTOSI, Res);
4400 
4401   MI.eraseFromParent();
4402   return Legalized;
4403 }
4404 
4405 LegalizerHelper::LegalizeResult LegalizerHelper::lowerFPTOSI(MachineInstr &MI) {
4406   Register Dst = MI.getOperand(0).getReg();
4407   Register Src = MI.getOperand(1).getReg();
4408   LLT DstTy = MRI.getType(Dst);
4409   LLT SrcTy = MRI.getType(Src);
4410   const LLT S64 = LLT::scalar(64);
4411   const LLT S32 = LLT::scalar(32);
4412 
4413   // FIXME: Only f32 to i64 conversions are supported.
4414   if (SrcTy.getScalarType() != S32 || DstTy.getScalarType() != S64)
4415     return UnableToLegalize;
4416 
4417   // Expand f32 -> i64 conversion
4418   // This algorithm comes from compiler-rt's implementation of fixsfdi:
4419   // https://github.com/llvm/llvm-project/blob/master/compiler-rt/lib/builtins/fixsfdi.c
4420 
4421   unsigned SrcEltBits = SrcTy.getScalarSizeInBits();
4422 
4423   auto ExponentMask = MIRBuilder.buildConstant(SrcTy, 0x7F800000);
4424   auto ExponentLoBit = MIRBuilder.buildConstant(SrcTy, 23);
4425 
4426   auto AndExpMask = MIRBuilder.buildAnd(SrcTy, Src, ExponentMask);
4427   auto ExponentBits = MIRBuilder.buildLShr(SrcTy, AndExpMask, ExponentLoBit);
4428 
4429   auto SignMask = MIRBuilder.buildConstant(SrcTy,
4430                                            APInt::getSignMask(SrcEltBits));
4431   auto AndSignMask = MIRBuilder.buildAnd(SrcTy, Src, SignMask);
4432   auto SignLowBit = MIRBuilder.buildConstant(SrcTy, SrcEltBits - 1);
4433   auto Sign = MIRBuilder.buildAShr(SrcTy, AndSignMask, SignLowBit);
4434   Sign = MIRBuilder.buildSExt(DstTy, Sign);
4435 
4436   auto MantissaMask = MIRBuilder.buildConstant(SrcTy, 0x007FFFFF);
4437   auto AndMantissaMask = MIRBuilder.buildAnd(SrcTy, Src, MantissaMask);
4438   auto K = MIRBuilder.buildConstant(SrcTy, 0x00800000);
4439 
4440   auto R = MIRBuilder.buildOr(SrcTy, AndMantissaMask, K);
4441   R = MIRBuilder.buildZExt(DstTy, R);
4442 
4443   auto Bias = MIRBuilder.buildConstant(SrcTy, 127);
4444   auto Exponent = MIRBuilder.buildSub(SrcTy, ExponentBits, Bias);
4445   auto SubExponent = MIRBuilder.buildSub(SrcTy, Exponent, ExponentLoBit);
4446   auto ExponentSub = MIRBuilder.buildSub(SrcTy, ExponentLoBit, Exponent);
4447 
4448   auto Shl = MIRBuilder.buildShl(DstTy, R, SubExponent);
4449   auto Srl = MIRBuilder.buildLShr(DstTy, R, ExponentSub);
4450 
4451   const LLT S1 = LLT::scalar(1);
4452   auto CmpGt = MIRBuilder.buildICmp(CmpInst::ICMP_SGT,
4453                                     S1, Exponent, ExponentLoBit);
4454 
4455   R = MIRBuilder.buildSelect(DstTy, CmpGt, Shl, Srl);
4456 
4457   auto XorSign = MIRBuilder.buildXor(DstTy, R, Sign);
4458   auto Ret = MIRBuilder.buildSub(DstTy, XorSign, Sign);
4459 
4460   auto ZeroSrcTy = MIRBuilder.buildConstant(SrcTy, 0);
4461 
4462   auto ExponentLt0 = MIRBuilder.buildICmp(CmpInst::ICMP_SLT,
4463                                           S1, Exponent, ZeroSrcTy);
4464 
4465   auto ZeroDstTy = MIRBuilder.buildConstant(DstTy, 0);
4466   MIRBuilder.buildSelect(Dst, ExponentLt0, ZeroDstTy, Ret);
4467 
4468   MI.eraseFromParent();
4469   return Legalized;
4470 }
4471 
4472 static CmpInst::Predicate minMaxToCompare(unsigned Opc) {
4473   switch (Opc) {
4474   case TargetOpcode::G_SMIN:
4475     return CmpInst::ICMP_SLT;
4476   case TargetOpcode::G_SMAX:
4477     return CmpInst::ICMP_SGT;
4478   case TargetOpcode::G_UMIN:
4479     return CmpInst::ICMP_ULT;
4480   case TargetOpcode::G_UMAX:
4481     return CmpInst::ICMP_UGT;
4482   default:
4483     llvm_unreachable("not in integer min/max");
4484   }
4485 }
4486 
4487 LegalizerHelper::LegalizeResult
4488 LegalizerHelper::lowerMinMax(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
4489   Register Dst = MI.getOperand(0).getReg();
4490   Register Src0 = MI.getOperand(1).getReg();
4491   Register Src1 = MI.getOperand(2).getReg();
4492 
4493   const CmpInst::Predicate Pred = minMaxToCompare(MI.getOpcode());
4494   LLT CmpType = MRI.getType(Dst).changeElementSize(1);
4495 
4496   auto Cmp = MIRBuilder.buildICmp(Pred, CmpType, Src0, Src1);
4497   MIRBuilder.buildSelect(Dst, Cmp, Src0, Src1);
4498 
4499   MI.eraseFromParent();
4500   return Legalized;
4501 }
4502 
4503 LegalizerHelper::LegalizeResult
4504 LegalizerHelper::lowerFCopySign(MachineInstr &MI, unsigned TypeIdx, LLT Ty) {
4505   Register Dst = MI.getOperand(0).getReg();
4506   Register Src0 = MI.getOperand(1).getReg();
4507   Register Src1 = MI.getOperand(2).getReg();
4508 
4509   const LLT Src0Ty = MRI.getType(Src0);
4510   const LLT Src1Ty = MRI.getType(Src1);
4511 
4512   const int Src0Size = Src0Ty.getScalarSizeInBits();
4513   const int Src1Size = Src1Ty.getScalarSizeInBits();
4514 
4515   auto SignBitMask = MIRBuilder.buildConstant(
4516     Src0Ty, APInt::getSignMask(Src0Size));
4517 
4518   auto NotSignBitMask = MIRBuilder.buildConstant(
4519     Src0Ty, APInt::getLowBitsSet(Src0Size, Src0Size - 1));
4520 
4521   auto And0 = MIRBuilder.buildAnd(Src0Ty, Src0, NotSignBitMask);
4522   MachineInstr *Or;
4523 
4524   if (Src0Ty == Src1Ty) {
4525     auto And1 = MIRBuilder.buildAnd(Src1Ty, Src0, SignBitMask);
4526     Or = MIRBuilder.buildOr(Dst, And0, And1);
4527   } else if (Src0Size > Src1Size) {
4528     auto ShiftAmt = MIRBuilder.buildConstant(Src0Ty, Src0Size - Src1Size);
4529     auto Zext = MIRBuilder.buildZExt(Src0Ty, Src1);
4530     auto Shift = MIRBuilder.buildShl(Src0Ty, Zext, ShiftAmt);
4531     auto And1 = MIRBuilder.buildAnd(Src0Ty, Shift, SignBitMask);
4532     Or = MIRBuilder.buildOr(Dst, And0, And1);
4533   } else {
4534     auto ShiftAmt = MIRBuilder.buildConstant(Src1Ty, Src1Size - Src0Size);
4535     auto Shift = MIRBuilder.buildLShr(Src1Ty, Src1, ShiftAmt);
4536     auto Trunc = MIRBuilder.buildTrunc(Src0Ty, Shift);
4537     auto And1 = MIRBuilder.buildAnd(Src0Ty, Trunc, SignBitMask);
4538     Or = MIRBuilder.buildOr(Dst, And0, And1);
4539   }
4540 
4541   // Be careful about setting nsz/nnan/ninf on every instruction, since the
4542   // constants are a nan and -0.0, but the final result should preserve
4543   // everything.
4544   if (unsigned Flags = MI.getFlags())
4545     Or->setFlags(Flags);
4546 
4547   MI.eraseFromParent();
4548   return Legalized;
4549 }
4550 
4551 LegalizerHelper::LegalizeResult
4552 LegalizerHelper::lowerFMinNumMaxNum(MachineInstr &MI) {
4553   unsigned NewOp = MI.getOpcode() == TargetOpcode::G_FMINNUM ?
4554     TargetOpcode::G_FMINNUM_IEEE : TargetOpcode::G_FMAXNUM_IEEE;
4555 
4556   Register Dst = MI.getOperand(0).getReg();
4557   Register Src0 = MI.getOperand(1).getReg();
4558   Register Src1 = MI.getOperand(2).getReg();
4559   LLT Ty = MRI.getType(Dst);
4560 
4561   if (!MI.getFlag(MachineInstr::FmNoNans)) {
4562     // Insert canonicalizes if it's possible we need to quiet to get correct
4563     // sNaN behavior.
4564 
4565     // Note this must be done here, and not as an optimization combine in the
4566     // absence of a dedicate quiet-snan instruction as we're using an
4567     // omni-purpose G_FCANONICALIZE.
4568     if (!isKnownNeverSNaN(Src0, MRI))
4569       Src0 = MIRBuilder.buildFCanonicalize(Ty, Src0, MI.getFlags()).getReg(0);
4570 
4571     if (!isKnownNeverSNaN(Src1, MRI))
4572       Src1 = MIRBuilder.buildFCanonicalize(Ty, Src1, MI.getFlags()).getReg(0);
4573   }
4574 
4575   // If there are no nans, it's safe to simply replace this with the non-IEEE
4576   // version.
4577   MIRBuilder.buildInstr(NewOp, {Dst}, {Src0, Src1}, MI.getFlags());
4578   MI.eraseFromParent();
4579   return Legalized;
4580 }
4581 
4582 LegalizerHelper::LegalizeResult LegalizerHelper::lowerFMad(MachineInstr &MI) {
4583   // Expand G_FMAD a, b, c -> G_FADD (G_FMUL a, b), c
4584   Register DstReg = MI.getOperand(0).getReg();
4585   LLT Ty = MRI.getType(DstReg);
4586   unsigned Flags = MI.getFlags();
4587 
4588   auto Mul = MIRBuilder.buildFMul(Ty, MI.getOperand(1), MI.getOperand(2),
4589                                   Flags);
4590   MIRBuilder.buildFAdd(DstReg, Mul, MI.getOperand(3), Flags);
4591   MI.eraseFromParent();
4592   return Legalized;
4593 }
4594 
4595 LegalizerHelper::LegalizeResult
4596 LegalizerHelper::lowerIntrinsicRound(MachineInstr &MI) {
4597   Register DstReg = MI.getOperand(0).getReg();
4598   Register SrcReg = MI.getOperand(1).getReg();
4599   unsigned Flags = MI.getFlags();
4600   LLT Ty = MRI.getType(DstReg);
4601   const LLT CondTy = Ty.changeElementSize(1);
4602 
4603   // result = trunc(src);
4604   // if (src < 0.0 && src != result)
4605   //   result += -1.0.
4606 
4607   auto Zero = MIRBuilder.buildFConstant(Ty, 0.0);
4608   auto Trunc = MIRBuilder.buildIntrinsicTrunc(Ty, SrcReg, Flags);
4609 
4610   auto Lt0 = MIRBuilder.buildFCmp(CmpInst::FCMP_OLT, CondTy,
4611                                   SrcReg, Zero, Flags);
4612   auto NeTrunc = MIRBuilder.buildFCmp(CmpInst::FCMP_ONE, CondTy,
4613                                       SrcReg, Trunc, Flags);
4614   auto And = MIRBuilder.buildAnd(CondTy, Lt0, NeTrunc);
4615   auto AddVal = MIRBuilder.buildSITOFP(Ty, And);
4616 
4617   MIRBuilder.buildFAdd(DstReg, Trunc, AddVal);
4618   MI.eraseFromParent();
4619   return Legalized;
4620 }
4621 
4622 LegalizerHelper::LegalizeResult
4623 LegalizerHelper::lowerUnmergeValues(MachineInstr &MI) {
4624   const unsigned NumDst = MI.getNumOperands() - 1;
4625   const Register SrcReg = MI.getOperand(NumDst).getReg();
4626   LLT SrcTy = MRI.getType(SrcReg);
4627 
4628   Register Dst0Reg = MI.getOperand(0).getReg();
4629   LLT DstTy = MRI.getType(Dst0Reg);
4630 
4631 
4632   // Expand scalarizing unmerge as bitcast to integer and shift.
4633   if (!DstTy.isVector() && SrcTy.isVector() &&
4634       SrcTy.getElementType() == DstTy) {
4635     LLT IntTy = LLT::scalar(SrcTy.getSizeInBits());
4636     Register Cast = MIRBuilder.buildBitcast(IntTy, SrcReg).getReg(0);
4637 
4638     MIRBuilder.buildTrunc(Dst0Reg, Cast);
4639 
4640     const unsigned DstSize = DstTy.getSizeInBits();
4641     unsigned Offset = DstSize;
4642     for (unsigned I = 1; I != NumDst; ++I, Offset += DstSize) {
4643       auto ShiftAmt = MIRBuilder.buildConstant(IntTy, Offset);
4644       auto Shift = MIRBuilder.buildLShr(IntTy, Cast, ShiftAmt);
4645       MIRBuilder.buildTrunc(MI.getOperand(I), Shift);
4646     }
4647 
4648     MI.eraseFromParent();
4649     return Legalized;
4650   }
4651 
4652   return UnableToLegalize;
4653 }
4654 
4655 LegalizerHelper::LegalizeResult
4656 LegalizerHelper::lowerShuffleVector(MachineInstr &MI) {
4657   Register DstReg = MI.getOperand(0).getReg();
4658   Register Src0Reg = MI.getOperand(1).getReg();
4659   Register Src1Reg = MI.getOperand(2).getReg();
4660   LLT Src0Ty = MRI.getType(Src0Reg);
4661   LLT DstTy = MRI.getType(DstReg);
4662   LLT IdxTy = LLT::scalar(32);
4663 
4664   ArrayRef<int> Mask = MI.getOperand(3).getShuffleMask();
4665 
4666   if (DstTy.isScalar()) {
4667     if (Src0Ty.isVector())
4668       return UnableToLegalize;
4669 
4670     // This is just a SELECT.
4671     assert(Mask.size() == 1 && "Expected a single mask element");
4672     Register Val;
4673     if (Mask[0] < 0 || Mask[0] > 1)
4674       Val = MIRBuilder.buildUndef(DstTy).getReg(0);
4675     else
4676       Val = Mask[0] == 0 ? Src0Reg : Src1Reg;
4677     MIRBuilder.buildCopy(DstReg, Val);
4678     MI.eraseFromParent();
4679     return Legalized;
4680   }
4681 
4682   Register Undef;
4683   SmallVector<Register, 32> BuildVec;
4684   LLT EltTy = DstTy.getElementType();
4685 
4686   for (int Idx : Mask) {
4687     if (Idx < 0) {
4688       if (!Undef.isValid())
4689         Undef = MIRBuilder.buildUndef(EltTy).getReg(0);
4690       BuildVec.push_back(Undef);
4691       continue;
4692     }
4693 
4694     if (Src0Ty.isScalar()) {
4695       BuildVec.push_back(Idx == 0 ? Src0Reg : Src1Reg);
4696     } else {
4697       int NumElts = Src0Ty.getNumElements();
4698       Register SrcVec = Idx < NumElts ? Src0Reg : Src1Reg;
4699       int ExtractIdx = Idx < NumElts ? Idx : Idx - NumElts;
4700       auto IdxK = MIRBuilder.buildConstant(IdxTy, ExtractIdx);
4701       auto Extract = MIRBuilder.buildExtractVectorElement(EltTy, SrcVec, IdxK);
4702       BuildVec.push_back(Extract.getReg(0));
4703     }
4704   }
4705 
4706   MIRBuilder.buildBuildVector(DstReg, BuildVec);
4707   MI.eraseFromParent();
4708   return Legalized;
4709 }
4710 
4711 LegalizerHelper::LegalizeResult
4712 LegalizerHelper::lowerDynStackAlloc(MachineInstr &MI) {
4713   Register Dst = MI.getOperand(0).getReg();
4714   Register AllocSize = MI.getOperand(1).getReg();
4715   unsigned Align = MI.getOperand(2).getImm();
4716 
4717   const auto &MF = *MI.getMF();
4718   const auto &TLI = *MF.getSubtarget().getTargetLowering();
4719 
4720   LLT PtrTy = MRI.getType(Dst);
4721   LLT IntPtrTy = LLT::scalar(PtrTy.getSizeInBits());
4722 
4723   Register SPReg = TLI.getStackPointerRegisterToSaveRestore();
4724   auto SPTmp = MIRBuilder.buildCopy(PtrTy, SPReg);
4725   SPTmp = MIRBuilder.buildCast(IntPtrTy, SPTmp);
4726 
4727   // Subtract the final alloc from the SP. We use G_PTRTOINT here so we don't
4728   // have to generate an extra instruction to negate the alloc and then use
4729   // G_PTR_ADD to add the negative offset.
4730   auto Alloc = MIRBuilder.buildSub(IntPtrTy, SPTmp, AllocSize);
4731   if (Align) {
4732     APInt AlignMask(IntPtrTy.getSizeInBits(), Align, true);
4733     AlignMask.negate();
4734     auto AlignCst = MIRBuilder.buildConstant(IntPtrTy, AlignMask);
4735     Alloc = MIRBuilder.buildAnd(IntPtrTy, Alloc, AlignCst);
4736   }
4737 
4738   SPTmp = MIRBuilder.buildCast(PtrTy, Alloc);
4739   MIRBuilder.buildCopy(SPReg, SPTmp);
4740   MIRBuilder.buildCopy(Dst, SPTmp);
4741 
4742   MI.eraseFromParent();
4743   return Legalized;
4744 }
4745 
4746 LegalizerHelper::LegalizeResult
4747 LegalizerHelper::lowerExtract(MachineInstr &MI) {
4748   Register Dst = MI.getOperand(0).getReg();
4749   Register Src = MI.getOperand(1).getReg();
4750   unsigned Offset = MI.getOperand(2).getImm();
4751 
4752   LLT DstTy = MRI.getType(Dst);
4753   LLT SrcTy = MRI.getType(Src);
4754 
4755   if (DstTy.isScalar() &&
4756       (SrcTy.isScalar() ||
4757        (SrcTy.isVector() && DstTy == SrcTy.getElementType()))) {
4758     LLT SrcIntTy = SrcTy;
4759     if (!SrcTy.isScalar()) {
4760       SrcIntTy = LLT::scalar(SrcTy.getSizeInBits());
4761       Src = MIRBuilder.buildBitcast(SrcIntTy, Src).getReg(0);
4762     }
4763 
4764     if (Offset == 0)
4765       MIRBuilder.buildTrunc(Dst, Src);
4766     else {
4767       auto ShiftAmt = MIRBuilder.buildConstant(SrcIntTy, Offset);
4768       auto Shr = MIRBuilder.buildLShr(SrcIntTy, Src, ShiftAmt);
4769       MIRBuilder.buildTrunc(Dst, Shr);
4770     }
4771 
4772     MI.eraseFromParent();
4773     return Legalized;
4774   }
4775 
4776   return UnableToLegalize;
4777 }
4778 
4779 LegalizerHelper::LegalizeResult LegalizerHelper::lowerInsert(MachineInstr &MI) {
4780   Register Dst = MI.getOperand(0).getReg();
4781   Register Src = MI.getOperand(1).getReg();
4782   Register InsertSrc = MI.getOperand(2).getReg();
4783   uint64_t Offset = MI.getOperand(3).getImm();
4784 
4785   LLT DstTy = MRI.getType(Src);
4786   LLT InsertTy = MRI.getType(InsertSrc);
4787 
4788   if (InsertTy.isScalar() &&
4789       (DstTy.isScalar() ||
4790        (DstTy.isVector() && DstTy.getElementType() == InsertTy))) {
4791     LLT IntDstTy = DstTy;
4792     if (!DstTy.isScalar()) {
4793       IntDstTy = LLT::scalar(DstTy.getSizeInBits());
4794       Src = MIRBuilder.buildBitcast(IntDstTy, Src).getReg(0);
4795     }
4796 
4797     Register ExtInsSrc = MIRBuilder.buildZExt(IntDstTy, InsertSrc).getReg(0);
4798     if (Offset != 0) {
4799       auto ShiftAmt = MIRBuilder.buildConstant(IntDstTy, Offset);
4800       ExtInsSrc = MIRBuilder.buildShl(IntDstTy, ExtInsSrc, ShiftAmt).getReg(0);
4801     }
4802 
4803     APInt MaskVal = APInt::getBitsSetWithWrap(DstTy.getSizeInBits(),
4804                                               Offset + InsertTy.getSizeInBits(),
4805                                               Offset);
4806 
4807     auto Mask = MIRBuilder.buildConstant(IntDstTy, MaskVal);
4808     auto MaskedSrc = MIRBuilder.buildAnd(IntDstTy, Src, Mask);
4809     auto Or = MIRBuilder.buildOr(IntDstTy, MaskedSrc, ExtInsSrc);
4810 
4811     MIRBuilder.buildBitcast(Dst, Or);
4812     MI.eraseFromParent();
4813     return Legalized;
4814   }
4815 
4816   return UnableToLegalize;
4817 }
4818 
4819 LegalizerHelper::LegalizeResult
4820 LegalizerHelper::lowerSADDO_SSUBO(MachineInstr &MI) {
4821   Register Dst0 = MI.getOperand(0).getReg();
4822   Register Dst1 = MI.getOperand(1).getReg();
4823   Register LHS = MI.getOperand(2).getReg();
4824   Register RHS = MI.getOperand(3).getReg();
4825   const bool IsAdd = MI.getOpcode() == TargetOpcode::G_SADDO;
4826 
4827   LLT Ty = MRI.getType(Dst0);
4828   LLT BoolTy = MRI.getType(Dst1);
4829 
4830   if (IsAdd)
4831     MIRBuilder.buildAdd(Dst0, LHS, RHS);
4832   else
4833     MIRBuilder.buildSub(Dst0, LHS, RHS);
4834 
4835   // TODO: If SADDSAT/SSUBSAT is legal, compare results to detect overflow.
4836 
4837   auto Zero = MIRBuilder.buildConstant(Ty, 0);
4838 
4839   // For an addition, the result should be less than one of the operands (LHS)
4840   // if and only if the other operand (RHS) is negative, otherwise there will
4841   // be overflow.
4842   // For a subtraction, the result should be less than one of the operands
4843   // (LHS) if and only if the other operand (RHS) is (non-zero) positive,
4844   // otherwise there will be overflow.
4845   auto ResultLowerThanLHS =
4846       MIRBuilder.buildICmp(CmpInst::ICMP_SLT, BoolTy, Dst0, LHS);
4847   auto ConditionRHS = MIRBuilder.buildICmp(
4848       IsAdd ? CmpInst::ICMP_SLT : CmpInst::ICMP_SGT, BoolTy, RHS, Zero);
4849 
4850   MIRBuilder.buildXor(Dst1, ConditionRHS, ResultLowerThanLHS);
4851   MI.eraseFromParent();
4852   return Legalized;
4853 }
4854 
4855 LegalizerHelper::LegalizeResult
4856 LegalizerHelper::lowerBswap(MachineInstr &MI) {
4857   Register Dst = MI.getOperand(0).getReg();
4858   Register Src = MI.getOperand(1).getReg();
4859   const LLT Ty = MRI.getType(Src);
4860   unsigned SizeInBytes = Ty.getSizeInBytes();
4861   unsigned BaseShiftAmt = (SizeInBytes - 1) * 8;
4862 
4863   // Swap most and least significant byte, set remaining bytes in Res to zero.
4864   auto ShiftAmt = MIRBuilder.buildConstant(Ty, BaseShiftAmt);
4865   auto LSByteShiftedLeft = MIRBuilder.buildShl(Ty, Src, ShiftAmt);
4866   auto MSByteShiftedRight = MIRBuilder.buildLShr(Ty, Src, ShiftAmt);
4867   auto Res = MIRBuilder.buildOr(Ty, MSByteShiftedRight, LSByteShiftedLeft);
4868 
4869   // Set i-th high/low byte in Res to i-th low/high byte from Src.
4870   for (unsigned i = 1; i < SizeInBytes / 2; ++i) {
4871     // AND with Mask leaves byte i unchanged and sets remaining bytes to 0.
4872     APInt APMask(SizeInBytes * 8, 0xFF << (i * 8));
4873     auto Mask = MIRBuilder.buildConstant(Ty, APMask);
4874     auto ShiftAmt = MIRBuilder.buildConstant(Ty, BaseShiftAmt - 16 * i);
4875     // Low byte shifted left to place of high byte: (Src & Mask) << ShiftAmt.
4876     auto LoByte = MIRBuilder.buildAnd(Ty, Src, Mask);
4877     auto LoShiftedLeft = MIRBuilder.buildShl(Ty, LoByte, ShiftAmt);
4878     Res = MIRBuilder.buildOr(Ty, Res, LoShiftedLeft);
4879     // High byte shifted right to place of low byte: (Src >> ShiftAmt) & Mask.
4880     auto SrcShiftedRight = MIRBuilder.buildLShr(Ty, Src, ShiftAmt);
4881     auto HiShiftedRight = MIRBuilder.buildAnd(Ty, SrcShiftedRight, Mask);
4882     Res = MIRBuilder.buildOr(Ty, Res, HiShiftedRight);
4883   }
4884   Res.getInstr()->getOperand(0).setReg(Dst);
4885 
4886   MI.eraseFromParent();
4887   return Legalized;
4888 }
4889 
4890 //{ (Src & Mask) >> N } | { (Src << N) & Mask }
4891 static MachineInstrBuilder SwapN(unsigned N, DstOp Dst, MachineIRBuilder &B,
4892                                  MachineInstrBuilder Src, APInt Mask) {
4893   const LLT Ty = Dst.getLLTTy(*B.getMRI());
4894   MachineInstrBuilder C_N = B.buildConstant(Ty, N);
4895   MachineInstrBuilder MaskLoNTo0 = B.buildConstant(Ty, Mask);
4896   auto LHS = B.buildLShr(Ty, B.buildAnd(Ty, Src, MaskLoNTo0), C_N);
4897   auto RHS = B.buildAnd(Ty, B.buildShl(Ty, Src, C_N), MaskLoNTo0);
4898   return B.buildOr(Dst, LHS, RHS);
4899 }
4900 
4901 LegalizerHelper::LegalizeResult
4902 LegalizerHelper::lowerBitreverse(MachineInstr &MI) {
4903   Register Dst = MI.getOperand(0).getReg();
4904   Register Src = MI.getOperand(1).getReg();
4905   const LLT Ty = MRI.getType(Src);
4906   unsigned Size = Ty.getSizeInBits();
4907 
4908   MachineInstrBuilder BSWAP =
4909       MIRBuilder.buildInstr(TargetOpcode::G_BSWAP, {Ty}, {Src});
4910 
4911   // swap high and low 4 bits in 8 bit blocks 7654|3210 -> 3210|7654
4912   //    [(val & 0xF0F0F0F0) >> 4] | [(val & 0x0F0F0F0F) << 4]
4913   // -> [(val & 0xF0F0F0F0) >> 4] | [(val << 4) & 0xF0F0F0F0]
4914   MachineInstrBuilder Swap4 =
4915       SwapN(4, Ty, MIRBuilder, BSWAP, APInt::getSplat(Size, APInt(8, 0xF0)));
4916 
4917   // swap high and low 2 bits in 4 bit blocks 32|10 76|54 -> 10|32 54|76
4918   //    [(val & 0xCCCCCCCC) >> 2] & [(val & 0x33333333) << 2]
4919   // -> [(val & 0xCCCCCCCC) >> 2] & [(val << 2) & 0xCCCCCCCC]
4920   MachineInstrBuilder Swap2 =
4921       SwapN(2, Ty, MIRBuilder, Swap4, APInt::getSplat(Size, APInt(8, 0xCC)));
4922 
4923   // swap high and low 1 bit in 2 bit blocks 1|0 3|2 5|4 7|6 -> 0|1 2|3 4|5 6|7
4924   //    [(val & 0xAAAAAAAA) >> 1] & [(val & 0x55555555) << 1]
4925   // -> [(val & 0xAAAAAAAA) >> 1] & [(val << 1) & 0xAAAAAAAA]
4926   SwapN(1, Dst, MIRBuilder, Swap2, APInt::getSplat(Size, APInt(8, 0xAA)));
4927 
4928   MI.eraseFromParent();
4929   return Legalized;
4930 }
4931 
4932 LegalizerHelper::LegalizeResult
4933 LegalizerHelper::lowerReadWriteRegister(MachineInstr &MI) {
4934   MachineFunction &MF = MIRBuilder.getMF();
4935   const TargetSubtargetInfo &STI = MF.getSubtarget();
4936   const TargetLowering *TLI = STI.getTargetLowering();
4937 
4938   bool IsRead = MI.getOpcode() == TargetOpcode::G_READ_REGISTER;
4939   int NameOpIdx = IsRead ? 1 : 0;
4940   int ValRegIndex = IsRead ? 0 : 1;
4941 
4942   Register ValReg = MI.getOperand(ValRegIndex).getReg();
4943   const LLT Ty = MRI.getType(ValReg);
4944   const MDString *RegStr = cast<MDString>(
4945     cast<MDNode>(MI.getOperand(NameOpIdx).getMetadata())->getOperand(0));
4946 
4947   Register PhysReg = TLI->getRegisterByName(RegStr->getString().data(), Ty, MF);
4948   if (!PhysReg.isValid())
4949     return UnableToLegalize;
4950 
4951   if (IsRead)
4952     MIRBuilder.buildCopy(ValReg, PhysReg);
4953   else
4954     MIRBuilder.buildCopy(PhysReg, ValReg);
4955 
4956   MI.eraseFromParent();
4957   return Legalized;
4958 }
4959