LLVM 24.0.0git
LegalizerHelper.cpp
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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
36#include "llvm/Support/Debug.h"
40#include <cassert>
41#include <numeric>
42#include <optional>
43
44#define DEBUG_TYPE "legalizer"
45
46using namespace llvm;
47using namespace LegalizeActions;
48using namespace MIPatternMatch;
49
50/// Try to break down \p OrigTy into \p NarrowTy sized pieces.
51///
52/// Returns the number of \p NarrowTy elements needed to reconstruct \p OrigTy,
53/// with any leftover piece as type \p LeftoverTy
54///
55/// Returns -1 in the first element of the pair if the breakdown is not
56/// satisfiable.
57static std::pair<int, int>
58getNarrowTypeBreakDown(LLT OrigTy, LLT NarrowTy, LLT &LeftoverTy) {
59 assert(!LeftoverTy.isValid() && "this is an out argument");
60
61 unsigned Size = OrigTy.getSizeInBits();
62 unsigned NarrowSize = NarrowTy.getSizeInBits();
63 unsigned NumParts = Size / NarrowSize;
64 unsigned LeftoverSize = Size - NumParts * NarrowSize;
65 assert(Size > NarrowSize);
66
67 if (LeftoverSize == 0)
68 return {NumParts, 0};
69
70 if (NarrowTy.isVector()) {
71 unsigned EltSize = OrigTy.getScalarSizeInBits();
72 if (LeftoverSize % EltSize != 0)
73 return {-1, -1};
74 LeftoverTy = OrigTy.changeElementCount(
75 ElementCount::getFixed(LeftoverSize / EltSize));
76 } else {
77 LeftoverTy = LLT::integer(LeftoverSize);
78 }
79
80 int NumLeftover = LeftoverSize / LeftoverTy.getSizeInBits();
81 return std::make_pair(NumParts, NumLeftover);
82}
83
85
86 if (!Ty.isScalar())
87 return nullptr;
88
89 switch (Ty.getSizeInBits()) {
90 case 16:
91 return Type::getHalfTy(Ctx);
92 case 32:
93 return Type::getFloatTy(Ctx);
94 case 64:
95 return Type::getDoubleTy(Ctx);
96 case 80:
97 return Type::getX86_FP80Ty(Ctx);
98 case 128:
99 return Type::getFP128Ty(Ctx);
100 default:
101 return nullptr;
102 }
103}
104
107 MachineIRBuilder &Builder,
108 const LibcallLoweringInfo *Libcalls)
109 : MIRBuilder(Builder), Observer(Observer), MRI(MF.getRegInfo()),
110 LI(*MF.getSubtarget().getLegalizerInfo()),
111 TLI(*MF.getSubtarget().getTargetLowering()), Libcalls(Libcalls) {}
112
116 const LibcallLoweringInfo *Libcalls,
118 : MIRBuilder(B), Observer(Observer), MRI(MF.getRegInfo()), LI(LI),
119 TLI(*MF.getSubtarget().getTargetLowering()), Libcalls(Libcalls), VT(VT) {}
120
123 LostDebugLocObserver &LocObserver) {
124 LLVM_DEBUG(dbgs() << "\nLegalizing: " << MI);
125
126 MIRBuilder.setInstrAndDebugLoc(MI);
127
128 if (isa<GIntrinsic>(MI))
129 return LI.legalizeIntrinsic(*this, MI) ? Legalized : UnableToLegalize;
130 auto Step = LI.getAction(MI, MRI);
131 switch (Step.Action) {
132 case Legal:
133 LLVM_DEBUG(dbgs() << ".. Already legal\n");
134 return AlreadyLegal;
135 case Libcall:
136 LLVM_DEBUG(dbgs() << ".. Convert to libcall\n");
137 return libcall(MI, LocObserver);
138 case NarrowScalar:
139 LLVM_DEBUG(dbgs() << ".. Narrow scalar\n");
140 return narrowScalar(MI, Step.TypeIdx, Step.NewType);
141 case WidenScalar:
142 LLVM_DEBUG(dbgs() << ".. Widen scalar\n");
143 return widenScalar(MI, Step.TypeIdx, Step.NewType);
144 case Bitcast:
145 LLVM_DEBUG(dbgs() << ".. Bitcast type\n");
146 return bitcast(MI, Step.TypeIdx, Step.NewType);
147 case Lower:
148 LLVM_DEBUG(dbgs() << ".. Lower\n");
149 return lower(MI, Step.TypeIdx, Step.NewType);
150 case FewerElements:
151 LLVM_DEBUG(dbgs() << ".. Reduce number of elements\n");
152 return fewerElementsVector(MI, Step.TypeIdx, Step.NewType);
153 case MoreElements:
154 LLVM_DEBUG(dbgs() << ".. Increase number of elements\n");
155 return moreElementsVector(MI, Step.TypeIdx, Step.NewType);
156 case Custom:
157 LLVM_DEBUG(dbgs() << ".. Custom legalization\n");
158 return LI.legalizeCustom(*this, MI, LocObserver) ? Legalized
160 default:
161 LLVM_DEBUG(dbgs() << ".. Unable to legalize\n");
162 return UnableToLegalize;
163 }
164}
165
166void LegalizerHelper::insertParts(Register DstReg,
167 LLT ResultTy, LLT PartTy,
168 ArrayRef<Register> PartRegs,
169 LLT LeftoverTy,
170 ArrayRef<Register> LeftoverRegs) {
171 if (!LeftoverTy.isValid()) {
172 assert(LeftoverRegs.empty());
173
174 if (!ResultTy.isVector()) {
175 MIRBuilder.buildMergeLikeInstr(DstReg, PartRegs);
176 return;
177 }
178
179 if (PartTy.isVector())
180 MIRBuilder.buildConcatVectors(DstReg, PartRegs);
181 else
182 MIRBuilder.buildBuildVector(DstReg, PartRegs);
183 return;
184 }
185
186 // Merge sub-vectors with different number of elements and insert into DstReg.
187 if (ResultTy.isVector()) {
188 assert(LeftoverRegs.size() == 1 && "Expected one leftover register");
189 SmallVector<Register, 8> AllRegs(PartRegs);
190 AllRegs.append(LeftoverRegs.begin(), LeftoverRegs.end());
191 return mergeMixedSubvectors(DstReg, AllRegs);
192 }
193
194 SmallVector<Register> GCDRegs;
195 LLT GCDTy = getGCDType(getGCDType(ResultTy, LeftoverTy), PartTy);
196 for (auto PartReg : concat<const Register>(PartRegs, LeftoverRegs))
197 extractGCDType(GCDRegs, GCDTy, PartReg);
198 LLT ResultLCMTy = buildLCMMergePieces(ResultTy, LeftoverTy, GCDTy, GCDRegs);
199 buildWidenedRemergeToDst(DstReg, ResultLCMTy, GCDRegs);
200}
201
202void LegalizerHelper::appendVectorElts(SmallVectorImpl<Register> &Elts,
203 Register Reg) {
204 LLT Ty = MRI.getType(Reg);
206 extractParts(Reg, Ty.getScalarType(), Ty.getNumElements(), RegElts,
207 MIRBuilder, MRI);
208 Elts.append(RegElts);
209}
210
211/// Merge \p PartRegs with different types into \p DstReg.
212void LegalizerHelper::mergeMixedSubvectors(Register DstReg,
213 ArrayRef<Register> PartRegs) {
215 for (unsigned i = 0; i < PartRegs.size() - 1; ++i)
216 appendVectorElts(AllElts, PartRegs[i]);
217
218 Register Leftover = PartRegs[PartRegs.size() - 1];
219 if (!MRI.getType(Leftover).isVector())
220 AllElts.push_back(Leftover);
221 else
222 appendVectorElts(AllElts, Leftover);
223
224 MIRBuilder.buildMergeLikeInstr(DstReg, AllElts);
225}
226
227/// Append the result registers of G_UNMERGE_VALUES \p MI to \p Regs.
229 const MachineInstr &MI) {
230 assert(MI.getOpcode() == TargetOpcode::G_UNMERGE_VALUES);
231
232 const int StartIdx = Regs.size();
233 const int NumResults = MI.getNumOperands() - 1;
234 Regs.resize(Regs.size() + NumResults);
235 for (int I = 0; I != NumResults; ++I)
236 Regs[StartIdx + I] = MI.getOperand(I).getReg();
237}
238
239void LegalizerHelper::extractGCDType(SmallVectorImpl<Register> &Parts,
240 LLT GCDTy, Register SrcReg) {
241 LLT SrcTy = MRI.getType(SrcReg);
242 if (SrcTy == GCDTy) {
243 // If the source already evenly divides the result type, we don't need to do
244 // anything.
245 Parts.push_back(SrcReg);
246 } else {
247 // Need to split into common type sized pieces.
248 auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg);
249 getUnmergeResults(Parts, *Unmerge);
250 }
251}
252
253LLT LegalizerHelper::extractGCDType(SmallVectorImpl<Register> &Parts, LLT DstTy,
254 LLT NarrowTy, Register SrcReg) {
255 LLT SrcTy = MRI.getType(SrcReg);
256 LLT GCDTy = getGCDType(getGCDType(SrcTy, NarrowTy), DstTy);
257 extractGCDType(Parts, GCDTy, SrcReg);
258 return GCDTy;
259}
260
261LLT LegalizerHelper::buildLCMMergePieces(LLT DstTy, LLT NarrowTy, LLT GCDTy,
263 unsigned PadStrategy) {
264 LLT LCMTy = getLCMType(DstTy, NarrowTy);
265
266 int NumParts = LCMTy.getSizeInBits() / NarrowTy.getSizeInBits();
267 int NumSubParts = NarrowTy.getSizeInBits() / GCDTy.getSizeInBits();
268 int NumOrigSrc = VRegs.size();
269
270 Register PadReg;
271
272 // Get a value we can use to pad the source value if the sources won't evenly
273 // cover the result type.
274 if (NumOrigSrc < NumParts * NumSubParts) {
275 if (PadStrategy == TargetOpcode::G_ZEXT)
276 PadReg = MIRBuilder.buildConstant(GCDTy, 0).getReg(0);
277 else if (PadStrategy == TargetOpcode::G_ANYEXT)
278 PadReg = MIRBuilder.buildUndef(GCDTy).getReg(0);
279 else {
280 assert(PadStrategy == TargetOpcode::G_SEXT);
281
282 // Shift the sign bit of the low register through the high register.
283 auto ShiftAmt =
284 MIRBuilder.buildConstant(LLT::integer(64), GCDTy.getSizeInBits() - 1);
285 PadReg = MIRBuilder.buildAShr(GCDTy, VRegs.back(), ShiftAmt).getReg(0);
286 }
287 }
288
289 // Registers for the final merge to be produced.
290 SmallVector<Register, 4> Remerge(NumParts);
291
292 // Registers needed for intermediate merges, which will be merged into a
293 // source for Remerge.
294 SmallVector<Register, 4> SubMerge(NumSubParts);
295
296 // Once we've fully read off the end of the original source bits, we can reuse
297 // the same high bits for remaining padding elements.
298 Register AllPadReg;
299
300 // Build merges to the LCM type to cover the original result type.
301 for (int I = 0; I != NumParts; ++I) {
302 bool AllMergePartsArePadding = true;
303
304 // Build the requested merges to the requested type.
305 for (int J = 0; J != NumSubParts; ++J) {
306 int Idx = I * NumSubParts + J;
307 if (Idx >= NumOrigSrc) {
308 SubMerge[J] = PadReg;
309 continue;
310 }
311
312 SubMerge[J] = VRegs[Idx];
313
314 // There are meaningful bits here we can't reuse later.
315 AllMergePartsArePadding = false;
316 }
317
318 // If we've filled up a complete piece with padding bits, we can directly
319 // emit the natural sized constant if applicable, rather than a merge of
320 // smaller constants.
321 if (AllMergePartsArePadding && !AllPadReg) {
322 if (PadStrategy == TargetOpcode::G_ANYEXT)
323 AllPadReg = MIRBuilder.buildUndef(NarrowTy).getReg(0);
324 else if (PadStrategy == TargetOpcode::G_ZEXT)
325 AllPadReg = MIRBuilder.buildConstant(NarrowTy, 0).getReg(0);
326
327 // If this is a sign extension, we can't materialize a trivial constant
328 // with the right type and have to produce a merge.
329 }
330
331 if (AllPadReg) {
332 // Avoid creating additional instructions if we're just adding additional
333 // copies of padding bits.
334 Remerge[I] = AllPadReg;
335 continue;
336 }
337
338 if (NumSubParts == 1)
339 Remerge[I] = SubMerge[0];
340 else
341 Remerge[I] = MIRBuilder.buildMergeLikeInstr(NarrowTy, SubMerge).getReg(0);
342
343 // In the sign extend padding case, re-use the first all-signbit merge.
344 if (AllMergePartsArePadding && !AllPadReg)
345 AllPadReg = Remerge[I];
346 }
347
348 VRegs = std::move(Remerge);
349 return LCMTy;
350}
351
352void LegalizerHelper::buildWidenedRemergeToDst(Register DstReg, LLT LCMTy,
353 ArrayRef<Register> RemergeRegs) {
354 LLT DstTy = MRI.getType(DstReg);
355
356 // Create the merge to the widened source, and extract the relevant bits into
357 // the result.
358
359 if (DstTy == LCMTy) {
360 MIRBuilder.buildMergeLikeInstr(DstReg, RemergeRegs);
361 return;
362 }
363
364 auto Remerge = MIRBuilder.buildMergeLikeInstr(LCMTy, RemergeRegs);
365 if (DstTy.isScalar() && LCMTy.isScalar()) {
366 MIRBuilder.buildTrunc(DstReg, Remerge);
367 return;
368 }
369
370 if (LCMTy.isVector()) {
371 unsigned NumDefs = LCMTy.getSizeInBits() / DstTy.getSizeInBits();
372 SmallVector<Register, 8> UnmergeDefs(NumDefs);
373 UnmergeDefs[0] = DstReg;
374 for (unsigned I = 1; I != NumDefs; ++I)
375 UnmergeDefs[I] = MRI.createGenericVirtualRegister(DstTy);
376
377 MIRBuilder.buildUnmerge(UnmergeDefs,
378 MIRBuilder.buildMergeLikeInstr(LCMTy, RemergeRegs));
379 return;
380 }
381
382 llvm_unreachable("unhandled case");
383}
384
385static RTLIB::Libcall getRTLibDesc(unsigned Opcode, unsigned Size) {
386#define RTLIBCASE_INT(LibcallPrefix) \
387 do { \
388 switch (Size) { \
389 case 32: \
390 return RTLIB::LibcallPrefix##32; \
391 case 64: \
392 return RTLIB::LibcallPrefix##64; \
393 case 128: \
394 return RTLIB::LibcallPrefix##128; \
395 default: \
396 llvm_unreachable("unexpected size"); \
397 } \
398 } while (0)
399
400#define RTLIBCASE(LibcallPrefix) \
401 do { \
402 switch (Size) { \
403 case 32: \
404 return RTLIB::LibcallPrefix##32; \
405 case 64: \
406 return RTLIB::LibcallPrefix##64; \
407 case 80: \
408 return RTLIB::LibcallPrefix##80; \
409 case 128: \
410 return RTLIB::LibcallPrefix##128; \
411 default: \
412 llvm_unreachable("unexpected size"); \
413 } \
414 } while (0)
415
416 switch (Opcode) {
417 case TargetOpcode::G_LROUND:
418 RTLIBCASE(LROUND_F);
419 case TargetOpcode::G_LLROUND:
420 RTLIBCASE(LLROUND_F);
421 case TargetOpcode::G_MUL:
422 RTLIBCASE_INT(MUL_I);
423 case TargetOpcode::G_SDIV:
424 RTLIBCASE_INT(SDIV_I);
425 case TargetOpcode::G_UDIV:
426 RTLIBCASE_INT(UDIV_I);
427 case TargetOpcode::G_SREM:
428 RTLIBCASE_INT(SREM_I);
429 case TargetOpcode::G_UREM:
430 RTLIBCASE_INT(UREM_I);
431 case TargetOpcode::G_CTLZ_ZERO_POISON:
432 RTLIBCASE_INT(CTLZ_I);
433 case TargetOpcode::G_FADD:
434 RTLIBCASE(ADD_F);
435 case TargetOpcode::G_FSUB:
436 RTLIBCASE(SUB_F);
437 case TargetOpcode::G_FMUL:
438 RTLIBCASE(MUL_F);
439 case TargetOpcode::G_FDIV:
440 RTLIBCASE(DIV_F);
441 case TargetOpcode::G_FEXP:
442 RTLIBCASE(EXP_F);
443 case TargetOpcode::G_FEXP2:
444 RTLIBCASE(EXP2_F);
445 case TargetOpcode::G_FEXP10:
446 RTLIBCASE(EXP10_F);
447 case TargetOpcode::G_FREM:
448 RTLIBCASE(REM_F);
449 case TargetOpcode::G_FPOW:
450 RTLIBCASE(POW_F);
451 case TargetOpcode::G_FPOWI:
452 RTLIBCASE(POWI_F);
453 case TargetOpcode::G_FMA:
454 RTLIBCASE(FMA_F);
455 case TargetOpcode::G_FSIN:
456 RTLIBCASE(SIN_F);
457 case TargetOpcode::G_FCOS:
458 RTLIBCASE(COS_F);
459 case TargetOpcode::G_FTAN:
460 RTLIBCASE(TAN_F);
461 case TargetOpcode::G_FASIN:
462 RTLIBCASE(ASIN_F);
463 case TargetOpcode::G_FACOS:
464 RTLIBCASE(ACOS_F);
465 case TargetOpcode::G_FATAN:
466 RTLIBCASE(ATAN_F);
467 case TargetOpcode::G_FATAN2:
468 RTLIBCASE(ATAN2_F);
469 case TargetOpcode::G_FSINH:
470 RTLIBCASE(SINH_F);
471 case TargetOpcode::G_FCOSH:
472 RTLIBCASE(COSH_F);
473 case TargetOpcode::G_FTANH:
474 RTLIBCASE(TANH_F);
475 case TargetOpcode::G_FSINCOS:
476 RTLIBCASE(SINCOS_F);
477 case TargetOpcode::G_FMODF:
478 RTLIBCASE(MODF_F);
479 case TargetOpcode::G_FLOG10:
480 RTLIBCASE(LOG10_F);
481 case TargetOpcode::G_FLOG:
482 RTLIBCASE(LOG_F);
483 case TargetOpcode::G_FLOG2:
484 RTLIBCASE(LOG2_F);
485 case TargetOpcode::G_FLDEXP:
486 RTLIBCASE(LDEXP_F);
487 case TargetOpcode::G_FCEIL:
488 RTLIBCASE(CEIL_F);
489 case TargetOpcode::G_FFLOOR:
490 RTLIBCASE(FLOOR_F);
491 case TargetOpcode::G_FMINNUM:
492 RTLIBCASE(FMIN_F);
493 case TargetOpcode::G_FMAXNUM:
494 RTLIBCASE(FMAX_F);
495 case TargetOpcode::G_FMINIMUMNUM:
496 RTLIBCASE(FMINIMUM_NUM_F);
497 case TargetOpcode::G_FMAXIMUMNUM:
498 RTLIBCASE(FMAXIMUM_NUM_F);
499 case TargetOpcode::G_FSQRT:
500 RTLIBCASE(SQRT_F);
501 case TargetOpcode::G_FRINT:
502 RTLIBCASE(RINT_F);
503 case TargetOpcode::G_FNEARBYINT:
504 RTLIBCASE(NEARBYINT_F);
505 case TargetOpcode::G_INTRINSIC_TRUNC:
506 RTLIBCASE(TRUNC_F);
507 case TargetOpcode::G_INTRINSIC_ROUND:
508 RTLIBCASE(ROUND_F);
509 case TargetOpcode::G_INTRINSIC_ROUNDEVEN:
510 RTLIBCASE(ROUNDEVEN_F);
511 case TargetOpcode::G_INTRINSIC_LRINT:
512 RTLIBCASE(LRINT_F);
513 case TargetOpcode::G_INTRINSIC_LLRINT:
514 RTLIBCASE(LLRINT_F);
515 }
516 llvm_unreachable("Unknown libcall function");
517#undef RTLIBCASE_INT
518#undef RTLIBCASE
519}
520
522 const TargetLowering &TLI = *MF.getSubtarget().getTargetLowering();
523 return TLI.supportSwiftError() &&
524 MF.getFunction().getAttributes().hasAttrSomewhere(
525 Attribute::SwiftError);
526}
527
528/// True if an instruction is in tail position in its caller. Intended for
529/// legalizing libcalls as tail calls when possible.
532 const TargetInstrInfo &TII,
533 MachineRegisterInfo &MRI) {
534 MachineBasicBlock &MBB = *MI.getParent();
535 const Function &F = MBB.getParent()->getFunction();
536
537 // Conservatively require the attributes of the call to match those of
538 // the return. Ignore NoAlias and NonNull because they don't affect the
539 // call sequence.
540 AttributeList CallerAttrs = F.getAttributes();
541 if (AttrBuilder(F.getContext(), CallerAttrs.getRetAttrs())
542 .removeAttribute(Attribute::NoAlias)
543 .removeAttribute(Attribute::NonNull)
544 .hasAttributes())
545 return false;
546
547 // It's not safe to eliminate the sign / zero extension of the return value.
548 if (CallerAttrs.hasRetAttr(Attribute::ZExt) ||
549 CallerAttrs.hasRetAttr(Attribute::SExt))
550 return false;
551
552 // Only tail call if the following instruction is a standard return or if we
553 // have a `thisreturn` callee, and a sequence like:
554 //
555 // G_MEMCPY %0, %1, %2
556 // $x0 = COPY %0
557 // RET_ReallyLR implicit $x0
558 auto Next = next_nodbg(MI.getIterator(), MBB.instr_end());
559 if (Next != MBB.instr_end() && Next->isCopy()) {
560 if (MI.getOpcode() == TargetOpcode::G_BZERO)
561 return false;
562
563 // For MEMCPY/MOMMOVE/MEMSET these will be the first use (the dst), as the
564 // mempy/etc routines return the same parameter. For other it will be the
565 // returned value.
566 Register VReg = MI.getOperand(0).getReg();
567 if (!VReg.isVirtual() || VReg != Next->getOperand(1).getReg())
568 return false;
569
570 Register PReg = Next->getOperand(0).getReg();
571 if (!PReg.isPhysical())
572 return false;
573
574 auto Ret = next_nodbg(Next, MBB.instr_end());
575 if (Ret == MBB.instr_end() || !Ret->isReturn())
576 return false;
577
578 if (Ret->getNumImplicitOperands() != 1)
579 return false;
580
581 if (!Ret->getOperand(0).isReg() || PReg != Ret->getOperand(0).getReg())
582 return false;
583
584 // Skip over the COPY that we just validated.
585 Next = Ret;
586 }
587
588 if (Next == MBB.instr_end() || TII.isTailCall(*Next) || !Next->isReturn())
589 return false;
590
591 return true;
592}
593
595 const char *Name, const CallLowering::ArgInfo &Result,
597 LostDebugLocObserver &LocObserver, MachineInstr *MI) const {
598 auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering();
599
601 Info.CallConv = CC;
602 Info.Callee = MachineOperand::CreateES(Name);
603 Info.OrigRet = Result;
604 if (MI)
605 Info.IsTailCall =
606 (Result.Ty->isVoidTy() ||
607 Result.Ty == MIRBuilder.getMF().getFunction().getReturnType()) &&
608 isLibCallInTailPosition(Result, *MI, MIRBuilder.getTII(),
609 *MIRBuilder.getMRI()) &&
610 // Lowering doesn't support tail calling inside a function with
611 // a swifterror argument yet.
613
614 llvm::append_range(Info.OrigArgs, Args);
615 if (!CLI.lowerCall(MIRBuilder, Info))
617
618 if (MI && Info.LoweredTailCall) {
619 assert(Info.IsTailCall && "Lowered tail call when it wasn't a tail call?");
620
621 // Check debug locations before removing the return.
622 LocObserver.checkpoint(true);
623
624 // We must have a return following the call (or debug insts) to get past
625 // isLibCallInTailPosition.
626 do {
627 MachineInstr *Next = MI->getNextNode();
628 assert(Next &&
629 (Next->isCopy() || Next->isReturn() || Next->isDebugInstr()) &&
630 "Expected instr following MI to be return or debug inst?");
631 // We lowered a tail call, so the call is now the return from the block.
632 // Delete the old return.
633 Next->eraseFromParent();
634 } while (MI->getNextNode());
635
636 // We expect to lose the debug location from the return.
637 LocObserver.checkpoint(false);
638 }
640}
641
643 RTLIB::Libcall Libcall, const CallLowering::ArgInfo &Result,
645 MachineInstr *MI) const {
646 if (!Libcalls)
648
649 RTLIB::LibcallImpl LibcallImpl = Libcalls->getLibcallImpl(Libcall);
650 if (LibcallImpl == RTLIB::Unsupported)
652
654 const CallingConv::ID CC = Libcalls->getLibcallImplCallingConv(LibcallImpl);
655 return createLibcall(Name.data(), Result, Args, CC, LocObserver, MI);
656}
657
658// Useful for libcalls where all operands have the same type.
661 unsigned Size, Type *OpType,
662 LostDebugLocObserver &LocObserver) const {
663 auto Libcall = getRTLibDesc(MI.getOpcode(), Size);
664
665 // FIXME: What does the original arg index mean here?
667 for (const MachineOperand &MO : llvm::drop_begin(MI.operands()))
668 Args.push_back({MO.getReg(), OpType, 0});
669 return createLibcall(Libcall, {MI.getOperand(0).getReg(), OpType, 0}, Args,
670 LocObserver, &MI);
671}
672
673LegalizerHelper::LegalizeResult LegalizerHelper::emitSincosLibcall(
674 MachineInstr &MI, MachineIRBuilder &MIRBuilder, unsigned Size, Type *OpType,
675 LostDebugLocObserver &LocObserver) {
676 MachineFunction &MF = *MI.getMF();
678
679 Register DstSin = MI.getOperand(0).getReg();
680 Register DstCos = MI.getOperand(1).getReg();
681 Register Src = MI.getOperand(2).getReg();
682 LLT DstTy = MRI.getType(DstSin);
683
684 int MemSize = DstTy.getSizeInBytes();
685 Align Alignment = getStackTemporaryAlignment(DstTy);
687 unsigned AddrSpace = DL.getAllocaAddrSpace();
688 MachinePointerInfo PtrInfo;
689
690 Register StackPtrSin =
691 createStackTemporary(TypeSize::getFixed(MemSize), Alignment, PtrInfo)
692 .getReg(0);
693 Register StackPtrCos =
694 createStackTemporary(TypeSize::getFixed(MemSize), Alignment, PtrInfo)
695 .getReg(0);
696
697 auto &Ctx = MF.getFunction().getContext();
698 auto LibcallResult = createLibcall(
699 getRTLibDesc(MI.getOpcode(), Size), {{0}, Type::getVoidTy(Ctx), 0},
700 {{Src, OpType, 0},
701 {StackPtrSin, PointerType::get(Ctx, AddrSpace), 1},
702 {StackPtrCos, PointerType::get(Ctx, AddrSpace), 2}},
703 LocObserver, &MI);
704
705 if (LibcallResult != LegalizeResult::Legalized)
707
709 PtrInfo, MachineMemOperand::MOLoad, MemSize, Alignment);
711 PtrInfo, MachineMemOperand::MOLoad, MemSize, Alignment);
712
713 MIRBuilder.buildLoad(DstSin, StackPtrSin, *LoadMMOSin);
714 MIRBuilder.buildLoad(DstCos, StackPtrCos, *LoadMMOCos);
715 MI.eraseFromParent();
716
718}
719
721LegalizerHelper::emitModfLibcall(MachineInstr &MI, MachineIRBuilder &MIRBuilder,
722 unsigned Size, Type *OpType,
723 LostDebugLocObserver &LocObserver) {
724 MachineFunction &MF = MIRBuilder.getMF();
725 MachineRegisterInfo &MRI = MF.getRegInfo();
726
727 Register DstFrac = MI.getOperand(0).getReg();
728 Register DstInt = MI.getOperand(1).getReg();
729 Register Src = MI.getOperand(2).getReg();
730 LLT DstTy = MRI.getType(DstFrac);
731
732 int MemSize = DstTy.getSizeInBytes();
734 const DataLayout &DL = MIRBuilder.getDataLayout();
735 unsigned AddrSpace = DL.getAllocaAddrSpace();
736 MachinePointerInfo PtrInfo;
737
738 Register StackPtrInt =
739 createStackTemporary(TypeSize::getFixed(MemSize), Alignment, PtrInfo)
740 .getReg(0);
741
742 auto &Ctx = MF.getFunction().getContext();
743 auto LibcallResult = createLibcall(
744 getRTLibDesc(MI.getOpcode(), Size), {DstFrac, OpType, 0},
745 {{Src, OpType, 0}, {StackPtrInt, PointerType::get(Ctx, AddrSpace), 1}},
746 LocObserver, &MI);
747
748 if (LibcallResult != LegalizeResult::Legalized)
750
752 PtrInfo, MachineMemOperand::MOLoad, MemSize, Alignment);
753
754 MIRBuilder.buildLoad(DstInt, StackPtrInt, *LoadMMOInt);
755 MI.eraseFromParent();
756
758}
759
760static RTLIB::Libcall getConvRTLibDesc(unsigned Opcode, Type *ToType,
761 Type *FromType) {
762 auto ToMVT = MVT::getVT(ToType);
763 auto FromMVT = MVT::getVT(FromType);
764
765 switch (Opcode) {
766 case TargetOpcode::G_FPEXT:
767 return RTLIB::getFPEXT(FromMVT, ToMVT);
768 case TargetOpcode::G_FPTRUNC:
769 return RTLIB::getFPROUND(FromMVT, ToMVT);
770 case TargetOpcode::G_FPTOSI:
771 return RTLIB::getFPTOSINT(FromMVT, ToMVT);
772 case TargetOpcode::G_FPTOUI:
773 return RTLIB::getFPTOUINT(FromMVT, ToMVT);
774 case TargetOpcode::G_SITOFP:
775 return RTLIB::getSINTTOFP(FromMVT, ToMVT);
776 case TargetOpcode::G_UITOFP:
777 return RTLIB::getUINTTOFP(FromMVT, ToMVT);
778 }
779 llvm_unreachable("Unsupported libcall function");
780}
781
783 MachineInstr &MI, Type *ToType, Type *FromType,
784 LostDebugLocObserver &LocObserver, bool IsSigned) const {
785 CallLowering::ArgInfo Arg = {MI.getOperand(1).getReg(), FromType, 0};
786 if (FromType->isIntegerTy()) {
787 if (TLI.shouldSignExtendTypeInLibCall(FromType, IsSigned))
788 Arg.Flags[0].setSExt();
789 else
790 Arg.Flags[0].setZExt();
791 }
792
793 RTLIB::Libcall Libcall = getConvRTLibDesc(MI.getOpcode(), ToType, FromType);
794 return createLibcall(Libcall, {MI.getOperand(0).getReg(), ToType, 0}, Arg,
795 LocObserver, &MI);
796}
797
800 LostDebugLocObserver &LocObserver) const {
801 auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
802
804 // Add all the args, except for the last which is an imm denoting 'tail'.
805 for (unsigned i = 0; i < MI.getNumOperands() - 1; ++i) {
806 Register Reg = MI.getOperand(i).getReg();
807
808 // Need derive an IR type for call lowering.
809 LLT OpLLT = MRI.getType(Reg);
810 Type *OpTy = nullptr;
811 if (OpLLT.isPointer())
812 OpTy = PointerType::get(Ctx, OpLLT.getAddressSpace());
813 else
814 OpTy = IntegerType::get(Ctx, OpLLT.getSizeInBits());
815 Args.push_back({Reg, OpTy, 0});
816 }
817
818 auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering();
819 RTLIB::Libcall RTLibcall;
820 unsigned Opc = MI.getOpcode();
821 switch (Opc) {
822 case TargetOpcode::G_BZERO:
823 RTLibcall = RTLIB::BZERO;
824 break;
825 case TargetOpcode::G_MEMCPY:
826 RTLibcall = RTLIB::MEMCPY;
827 Args[0].Flags[0].setReturned();
828 break;
829 case TargetOpcode::G_MEMMOVE:
830 RTLibcall = RTLIB::MEMMOVE;
831 Args[0].Flags[0].setReturned();
832 break;
833 case TargetOpcode::G_MEMSET:
834 RTLibcall = RTLIB::MEMSET;
835 Args[0].Flags[0].setReturned();
836 break;
837 default:
838 llvm_unreachable("unsupported opcode");
839 }
840
841 if (!Libcalls) // FIXME: Should be mandatory
843
844 RTLIB::LibcallImpl RTLibcallImpl = Libcalls->getLibcallImpl(RTLibcall);
845
846 // Unsupported libcall on the target.
847 if (RTLibcallImpl == RTLIB::Unsupported) {
848 LLVM_DEBUG(dbgs() << ".. .. Could not find libcall name for "
849 << MIRBuilder.getTII().getName(Opc) << "\n");
851 }
852
854 Info.CallConv = Libcalls->getLibcallImplCallingConv(RTLibcallImpl);
855
856 StringRef LibcallName =
858 Info.Callee = MachineOperand::CreateES(LibcallName.data());
859 Info.OrigRet = CallLowering::ArgInfo({0}, Type::getVoidTy(Ctx), 0);
860 Info.IsTailCall =
861 MI.getOperand(MI.getNumOperands() - 1).getImm() &&
862 isLibCallInTailPosition(Info.OrigRet, MI, MIRBuilder.getTII(), MRI) &&
863 // Lowering doesn't support tail calling inside a function with
864 // a swifterror argument yet.
866
867 llvm::append_range(Info.OrigArgs, Args);
868 if (!CLI.lowerCall(MIRBuilder, Info))
870
871 if (Info.LoweredTailCall) {
872 assert(Info.IsTailCall && "Lowered tail call when it wasn't a tail call?");
873
874 // Check debug locations before removing the return.
875 LocObserver.checkpoint(true);
876
877 // We must have a return following the call (or debug insts) to get past
878 // isLibCallInTailPosition.
879 do {
880 MachineInstr *Next = MI.getNextNode();
881 assert(Next &&
882 (Next->isCopy() || Next->isReturn() || Next->isDebugInstr()) &&
883 "Expected instr following MI to be return or debug inst?");
884 // We lowered a tail call, so the call is now the return from the block.
885 // Delete the old return.
886 Next->eraseFromParent();
887 } while (MI.getNextNode());
888
889 // We expect to lose the debug location from the return.
890 LocObserver.checkpoint(false);
891 }
892
894}
895
896static RTLIB::Libcall getOutlineAtomicLibcall(MachineInstr &MI) {
897 unsigned Opc = MI.getOpcode();
898 auto &AtomicMI = cast<GMemOperation>(MI);
899 auto &MMO = AtomicMI.getMMO();
900 auto Ordering = MMO.getMergedOrdering();
901 LLT MemType = MMO.getMemoryType();
902 uint64_t MemSize = MemType.getSizeInBytes();
903 if (MemType.isVector())
904 return RTLIB::UNKNOWN_LIBCALL;
905
906#define LCALLS(A, B) {A##B##_RELAX, A##B##_ACQ, A##B##_REL, A##B##_ACQ_REL}
907#define LCALL5(A) \
908 LCALLS(A, 1), LCALLS(A, 2), LCALLS(A, 4), LCALLS(A, 8), LCALLS(A, 16)
909 switch (Opc) {
910 case TargetOpcode::G_ATOMIC_CMPXCHG:
911 case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS: {
912 const RTLIB::Libcall LC[5][4] = {LCALL5(RTLIB::OUTLINE_ATOMIC_CAS)};
913 return getOutlineAtomicHelper(LC, Ordering, MemSize);
914 }
915 case TargetOpcode::G_ATOMICRMW_XCHG: {
916 const RTLIB::Libcall LC[5][4] = {LCALL5(RTLIB::OUTLINE_ATOMIC_SWP)};
917 return getOutlineAtomicHelper(LC, Ordering, MemSize);
918 }
919 case TargetOpcode::G_ATOMICRMW_ADD:
920 case TargetOpcode::G_ATOMICRMW_SUB: {
921 const RTLIB::Libcall LC[5][4] = {LCALL5(RTLIB::OUTLINE_ATOMIC_LDADD)};
922 return getOutlineAtomicHelper(LC, Ordering, MemSize);
923 }
924 case TargetOpcode::G_ATOMICRMW_AND: {
925 const RTLIB::Libcall LC[5][4] = {LCALL5(RTLIB::OUTLINE_ATOMIC_LDCLR)};
926 return getOutlineAtomicHelper(LC, Ordering, MemSize);
927 }
928 case TargetOpcode::G_ATOMICRMW_OR: {
929 const RTLIB::Libcall LC[5][4] = {LCALL5(RTLIB::OUTLINE_ATOMIC_LDSET)};
930 return getOutlineAtomicHelper(LC, Ordering, MemSize);
931 }
932 case TargetOpcode::G_ATOMICRMW_XOR: {
933 const RTLIB::Libcall LC[5][4] = {LCALL5(RTLIB::OUTLINE_ATOMIC_LDEOR)};
934 return getOutlineAtomicHelper(LC, Ordering, MemSize);
935 }
936 default:
937 return RTLIB::UNKNOWN_LIBCALL;
938 }
939#undef LCALLS
940#undef LCALL5
941}
942
945 auto &Ctx = MIRBuilder.getContext();
946
947 Type *RetTy;
948 SmallVector<Register> RetRegs;
950 unsigned Opc = MI.getOpcode();
951 switch (Opc) {
952 case TargetOpcode::G_ATOMIC_CMPXCHG:
953 case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS: {
955 LLT SuccessLLT;
956 auto [Ret, RetLLT, Mem, MemLLT, Cmp, CmpLLT, New, NewLLT] =
957 MI.getFirst4RegLLTs();
958 RetRegs.push_back(Ret);
959 RetTy = IntegerType::get(Ctx, RetLLT.getSizeInBits());
960 if (Opc == TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS) {
961 std::tie(Ret, RetLLT, Success, SuccessLLT, Mem, MemLLT, Cmp, CmpLLT, New,
962 NewLLT) = MI.getFirst5RegLLTs();
963 RetRegs.push_back(Success);
964 RetTy = StructType::get(
965 Ctx, {RetTy, IntegerType::get(Ctx, SuccessLLT.getSizeInBits())});
966 }
967 Args.push_back({Cmp, IntegerType::get(Ctx, CmpLLT.getSizeInBits()), 0});
968 Args.push_back({New, IntegerType::get(Ctx, NewLLT.getSizeInBits()), 0});
969 Args.push_back({Mem, PointerType::get(Ctx, MemLLT.getAddressSpace()), 0});
970 break;
971 }
972 case TargetOpcode::G_ATOMICRMW_XCHG:
973 case TargetOpcode::G_ATOMICRMW_ADD:
974 case TargetOpcode::G_ATOMICRMW_SUB:
975 case TargetOpcode::G_ATOMICRMW_AND:
976 case TargetOpcode::G_ATOMICRMW_OR:
977 case TargetOpcode::G_ATOMICRMW_XOR: {
978 auto [Ret, RetLLT, Mem, MemLLT, Val, ValLLT] = MI.getFirst3RegLLTs();
979 RetRegs.push_back(Ret);
980 RetTy = IntegerType::get(Ctx, RetLLT.getSizeInBits());
981 if (Opc == TargetOpcode::G_ATOMICRMW_AND)
982 Val =
983 MIRBuilder.buildXor(ValLLT, MIRBuilder.buildConstant(ValLLT, -1), Val)
984 .getReg(0);
985 else if (Opc == TargetOpcode::G_ATOMICRMW_SUB)
986 Val =
987 MIRBuilder.buildSub(ValLLT, MIRBuilder.buildConstant(ValLLT, 0), Val)
988 .getReg(0);
989 Args.push_back({Val, IntegerType::get(Ctx, ValLLT.getSizeInBits()), 0});
990 Args.push_back({Mem, PointerType::get(Ctx, MemLLT.getAddressSpace()), 0});
991 break;
992 }
993 default:
994 llvm_unreachable("unsupported opcode");
995 }
996
997 if (!Libcalls) // FIXME: Should be mandatory
999
1000 auto &CLI = *MIRBuilder.getMF().getSubtarget().getCallLowering();
1001 RTLIB::Libcall RTLibcall = getOutlineAtomicLibcall(MI);
1002 RTLIB::LibcallImpl RTLibcallImpl = Libcalls->getLibcallImpl(RTLibcall);
1003
1004 // Unsupported libcall on the target.
1005 if (RTLibcallImpl == RTLIB::Unsupported) {
1006 LLVM_DEBUG(dbgs() << ".. .. Could not find libcall name for "
1007 << MIRBuilder.getTII().getName(Opc) << "\n");
1009 }
1010
1012 Info.CallConv = Libcalls->getLibcallImplCallingConv(RTLibcallImpl);
1013
1014 StringRef LibcallName =
1016 Info.Callee = MachineOperand::CreateES(LibcallName.data());
1017 Info.OrigRet = CallLowering::ArgInfo(RetRegs, RetTy, 0);
1018
1019 llvm::append_range(Info.OrigArgs, Args);
1020 if (!CLI.lowerCall(MIRBuilder, Info))
1022
1024}
1025
1026static RTLIB::Libcall
1028 RTLIB::Libcall RTLibcall;
1029 switch (MI.getOpcode()) {
1030 case TargetOpcode::G_GET_FPENV:
1031 RTLibcall = RTLIB::FEGETENV;
1032 break;
1033 case TargetOpcode::G_SET_FPENV:
1034 case TargetOpcode::G_RESET_FPENV:
1035 RTLibcall = RTLIB::FESETENV;
1036 break;
1037 case TargetOpcode::G_GET_FPMODE:
1038 RTLibcall = RTLIB::FEGETMODE;
1039 break;
1040 case TargetOpcode::G_SET_FPMODE:
1041 case TargetOpcode::G_RESET_FPMODE:
1042 RTLibcall = RTLIB::FESETMODE;
1043 break;
1044 default:
1045 llvm_unreachable("Unexpected opcode");
1046 }
1047 return RTLibcall;
1048}
1049
1050// Some library functions that read FP state (fegetmode, fegetenv) write the
1051// state into a region in memory. IR intrinsics that do the same operations
1052// (get_fpmode, get_fpenv) return the state as integer value. To implement these
1053// intrinsics via the library functions, we need to use temporary variable,
1054// for example:
1055//
1056// %0:_(s32) = G_GET_FPMODE
1057//
1058// is transformed to:
1059//
1060// %1:_(p0) = G_FRAME_INDEX %stack.0
1061// BL &fegetmode
1062// %0:_(s32) = G_LOAD % 1
1063//
1065LegalizerHelper::createGetStateLibcall(MachineInstr &MI,
1066 LostDebugLocObserver &LocObserver) {
1067 const DataLayout &DL = MIRBuilder.getDataLayout();
1068 auto &MF = MIRBuilder.getMF();
1069 auto &MRI = *MIRBuilder.getMRI();
1070 auto &Ctx = MF.getFunction().getContext();
1071
1072 // Create temporary, where library function will put the read state.
1073 Register Dst = MI.getOperand(0).getReg();
1074 LLT StateTy = MRI.getType(Dst);
1075 TypeSize StateSize = StateTy.getSizeInBytes();
1076 Align TempAlign = getStackTemporaryAlignment(StateTy);
1077 MachinePointerInfo TempPtrInfo;
1078 auto Temp = createStackTemporary(StateSize, TempAlign, TempPtrInfo);
1079
1080 // Create a call to library function, with the temporary as an argument.
1081 unsigned TempAddrSpace = DL.getAllocaAddrSpace();
1082 Type *StatePtrTy = PointerType::get(Ctx, TempAddrSpace);
1083 RTLIB::Libcall RTLibcall = getStateLibraryFunctionFor(MI, TLI);
1084 auto Res = createLibcall(
1085 RTLibcall, CallLowering::ArgInfo({0}, Type::getVoidTy(Ctx), 0),
1086 CallLowering::ArgInfo({Temp.getReg(0), StatePtrTy, 0}), LocObserver,
1087 nullptr);
1088 if (Res != LegalizerHelper::Legalized)
1089 return Res;
1090
1091 // Create a load from the temporary.
1092 MachineMemOperand *MMO = MF.getMachineMemOperand(
1093 TempPtrInfo, MachineMemOperand::MOLoad, StateTy, TempAlign);
1094 MIRBuilder.buildLoadInstr(TargetOpcode::G_LOAD, Dst, Temp, *MMO);
1095
1097}
1098
1099// Similar to `createGetStateLibcall` the function calls a library function
1100// using transient space in stack. In this case the library function reads
1101// content of memory region.
1103LegalizerHelper::createSetStateLibcall(MachineInstr &MI,
1104 LostDebugLocObserver &LocObserver) {
1105 const DataLayout &DL = MIRBuilder.getDataLayout();
1106 auto &MF = MIRBuilder.getMF();
1107 auto &MRI = *MIRBuilder.getMRI();
1108 auto &Ctx = MF.getFunction().getContext();
1109
1110 // Create temporary, where library function will get the new state.
1111 Register Src = MI.getOperand(0).getReg();
1112 LLT StateTy = MRI.getType(Src);
1113 TypeSize StateSize = StateTy.getSizeInBytes();
1114 Align TempAlign = getStackTemporaryAlignment(StateTy);
1115 MachinePointerInfo TempPtrInfo;
1116 auto Temp = createStackTemporary(StateSize, TempAlign, TempPtrInfo);
1117
1118 // Put the new state into the temporary.
1119 MachineMemOperand *MMO = MF.getMachineMemOperand(
1120 TempPtrInfo, MachineMemOperand::MOStore, StateTy, TempAlign);
1121 MIRBuilder.buildStore(Src, Temp, *MMO);
1122
1123 // Create a call to library function, with the temporary as an argument.
1124 unsigned TempAddrSpace = DL.getAllocaAddrSpace();
1125 Type *StatePtrTy = PointerType::get(Ctx, TempAddrSpace);
1126 RTLIB::Libcall RTLibcall = getStateLibraryFunctionFor(MI, TLI);
1127 return createLibcall(RTLibcall,
1128 CallLowering::ArgInfo({0}, Type::getVoidTy(Ctx), 0),
1129 CallLowering::ArgInfo({Temp.getReg(0), StatePtrTy, 0}),
1130 LocObserver, nullptr);
1131}
1132
1133/// Returns the corresponding libcall for the given Pred and
1134/// the ICMP predicate that should be generated to compare with #0
1135/// after the libcall.
1136static std::pair<RTLIB::Libcall, CmpInst::Predicate>
1138#define RTLIBCASE_CMP(LibcallPrefix, ICmpPred) \
1139 do { \
1140 switch (Size) { \
1141 case 32: \
1142 return {RTLIB::LibcallPrefix##32, ICmpPred}; \
1143 case 64: \
1144 return {RTLIB::LibcallPrefix##64, ICmpPred}; \
1145 case 128: \
1146 return {RTLIB::LibcallPrefix##128, ICmpPred}; \
1147 default: \
1148 llvm_unreachable("unexpected size"); \
1149 } \
1150 } while (0)
1151
1152 // These use the three-way (-1/0/1) compare libcalls, whose result is tested
1153 // against 0 with a signed integer predicate. Unordered (UO) is a boolean.
1154 switch (Pred) {
1155 case CmpInst::FCMP_OEQ:
1156 RTLIBCASE_CMP(FCMP3_PRED_OEQ_F, CmpInst::ICMP_EQ);
1157 case CmpInst::FCMP_UNE:
1158 RTLIBCASE_CMP(FCMP3_PRED_UNE_F, CmpInst::ICMP_NE);
1159 case CmpInst::FCMP_OGE:
1160 RTLIBCASE_CMP(FCMP3_PRED_OGE_F, CmpInst::ICMP_SGE);
1161 case CmpInst::FCMP_OLT:
1162 RTLIBCASE_CMP(FCMP3_PRED_OLT_F, CmpInst::ICMP_SLT);
1163 case CmpInst::FCMP_OLE:
1164 RTLIBCASE_CMP(FCMP3_PRED_OLE_F, CmpInst::ICMP_SLE);
1165 case CmpInst::FCMP_OGT:
1166 RTLIBCASE_CMP(FCMP3_PRED_OGT_F, CmpInst::ICMP_SGT);
1167 case CmpInst::FCMP_UNO:
1169 default:
1170 return {RTLIB::UNKNOWN_LIBCALL, CmpInst::BAD_ICMP_PREDICATE};
1171 }
1172}
1173
1175LegalizerHelper::createFCMPLibcall(MachineInstr &MI,
1176 LostDebugLocObserver &LocObserver) {
1177 auto &MF = MIRBuilder.getMF();
1178 auto &Ctx = MF.getFunction().getContext();
1179 const GFCmp *Cmp = cast<GFCmp>(&MI);
1180
1181 LLT OpLLT = MRI.getType(Cmp->getLHSReg());
1182 unsigned Size = OpLLT.getSizeInBits();
1183 if ((Size != 32 && Size != 64 && Size != 128) ||
1184 OpLLT != MRI.getType(Cmp->getRHSReg()))
1185 return UnableToLegalize;
1186
1187 Type *OpType = getFloatTypeForLLT(Ctx, OpLLT);
1188
1189 // DstReg type is s32
1190 const Register DstReg = Cmp->getReg(0);
1191 LLT DstTy = MRI.getType(DstReg);
1192 const auto Cond = Cmp->getCond();
1193
1194 // Reference:
1195 // https://gcc.gnu.org/onlinedocs/gccint/Soft-float-library-routines.html#Comparison-functions-1
1196 // Generates a libcall followed by ICMP.
1197 const auto BuildLibcall = [&](const RTLIB::Libcall Libcall,
1198 const CmpInst::Predicate ICmpPred,
1199 const DstOp &Res) -> Register {
1200 // FCMP libcall always returns an i32, and needs an ICMP with #0.
1201 LLT TempLLT = LLT::integer(32);
1202 Register Temp = MRI.createGenericVirtualRegister(TempLLT);
1203 // Generate libcall, holding result in Temp
1204 const auto Status = createLibcall(
1205 Libcall, {Temp, Type::getInt32Ty(Ctx), 0},
1206 {{Cmp->getLHSReg(), OpType, 0}, {Cmp->getRHSReg(), OpType, 1}},
1207 LocObserver, &MI);
1208 if (Status != Legalized)
1209 return {};
1210
1211 // Compare temp with #0 to get the final result.
1212 return MIRBuilder
1213 .buildICmp(ICmpPred, Res, Temp, MIRBuilder.buildConstant(TempLLT, 0))
1214 .getReg(0);
1215 };
1216
1217 // Simple case if we have a direct mapping from predicate to libcall
1218 if (const auto [Libcall, ICmpPred] = getFCMPLibcallDesc(Cond, Size);
1219 Libcall != RTLIB::UNKNOWN_LIBCALL &&
1220 ICmpPred != CmpInst::BAD_ICMP_PREDICATE) {
1221 if (BuildLibcall(Libcall, ICmpPred, DstReg)) {
1222 return Legalized;
1223 }
1224 return UnableToLegalize;
1225 }
1226
1227 // No direct mapping found, should be generated as combination of libcalls.
1228
1229 switch (Cond) {
1230 case CmpInst::FCMP_UEQ: {
1231 // FCMP_UEQ: unordered or equal
1232 // Convert into (FCMP_OEQ || FCMP_UNO).
1233
1234 const auto [OeqLibcall, OeqPred] =
1236 const auto Oeq = BuildLibcall(OeqLibcall, OeqPred, DstTy);
1237
1238 const auto [UnoLibcall, UnoPred] =
1240 const auto Uno = BuildLibcall(UnoLibcall, UnoPred, DstTy);
1241 if (Oeq && Uno)
1242 MIRBuilder.buildOr(DstReg, Oeq, Uno);
1243 else
1244 return UnableToLegalize;
1245
1246 break;
1247 }
1248 case CmpInst::FCMP_ONE: {
1249 // FCMP_ONE: ordered and operands are unequal
1250 // Convert into (!FCMP_OEQ && !FCMP_UNO).
1251
1252 // We inverse the predicate instead of generating a NOT
1253 // to save one instruction.
1254 // On AArch64 isel can even select two cmp into a single ccmp.
1255 const auto [OeqLibcall, OeqPred] =
1257 const auto NotOeq =
1258 BuildLibcall(OeqLibcall, CmpInst::getInversePredicate(OeqPred), DstTy);
1259
1260 const auto [UnoLibcall, UnoPred] =
1262 const auto NotUno =
1263 BuildLibcall(UnoLibcall, CmpInst::getInversePredicate(UnoPred), DstTy);
1264
1265 if (NotOeq && NotUno)
1266 MIRBuilder.buildAnd(DstReg, NotOeq, NotUno);
1267 else
1268 return UnableToLegalize;
1269
1270 break;
1271 }
1272 case CmpInst::FCMP_ULT:
1273 case CmpInst::FCMP_UGE:
1274 case CmpInst::FCMP_UGT:
1275 case CmpInst::FCMP_ULE:
1276 case CmpInst::FCMP_ORD: {
1277 // Convert into: !(inverse(Pred))
1278 // E.g. FCMP_ULT becomes !FCMP_OGE
1279 // This is equivalent to the following, but saves some instructions.
1280 // MIRBuilder.buildNot(
1281 // PredTy,
1282 // MIRBuilder.buildFCmp(CmpInst::getInversePredicate(Pred), PredTy,
1283 // Op1, Op2));
1284 const auto [InversedLibcall, InversedPred] =
1286 if (!BuildLibcall(InversedLibcall,
1287 CmpInst::getInversePredicate(InversedPred), DstReg))
1288 return UnableToLegalize;
1289 break;
1290 }
1291 default:
1292 return UnableToLegalize;
1293 }
1294
1295 return Legalized;
1296}
1297
1298// The function is used to legalize operations that set default environment
1299// state. In C library a call like `fesetmode(FE_DFL_MODE)` is used for that.
1300// On most targets supported in glibc FE_DFL_MODE is defined as
1301// `((const femode_t *) -1)`. Such assumption is used here. If for some target
1302// it is not true, the target must provide custom lowering.
1304LegalizerHelper::createResetStateLibcall(MachineInstr &MI,
1305 LostDebugLocObserver &LocObserver) {
1306 const DataLayout &DL = MIRBuilder.getDataLayout();
1307 auto &MF = MIRBuilder.getMF();
1308 auto &Ctx = MF.getFunction().getContext();
1309
1310 // Create an argument for the library function.
1311 unsigned AddrSpace = DL.getDefaultGlobalsAddressSpace();
1312 Type *StatePtrTy = PointerType::get(Ctx, AddrSpace);
1313 unsigned PtrSize = DL.getPointerSizeInBits(AddrSpace);
1314 LLT MemTy = LLT::pointer(AddrSpace, PtrSize);
1315 auto DefValue = MIRBuilder.buildConstant(LLT::integer(PtrSize), -1LL);
1316 DstOp Dest(MRI.createGenericVirtualRegister(MemTy));
1317 MIRBuilder.buildIntToPtr(Dest, DefValue);
1318
1319 RTLIB::Libcall RTLibcall = getStateLibraryFunctionFor(MI, TLI);
1320 return createLibcall(
1321 RTLibcall, CallLowering::ArgInfo({0}, Type::getVoidTy(Ctx), 0),
1322 CallLowering::ArgInfo({Dest.getReg(), StatePtrTy, 0}), LocObserver, &MI);
1323}
1324
1327 auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
1328
1329 switch (MI.getOpcode()) {
1330 default:
1331 return UnableToLegalize;
1332 case TargetOpcode::G_MUL:
1333 case TargetOpcode::G_SDIV:
1334 case TargetOpcode::G_UDIV:
1335 case TargetOpcode::G_SREM:
1336 case TargetOpcode::G_UREM:
1337 case TargetOpcode::G_CTLZ_ZERO_POISON: {
1338 LLT LLTy = MRI.getType(MI.getOperand(0).getReg());
1339 unsigned Size = LLTy.getSizeInBits();
1340 Type *HLTy = IntegerType::get(Ctx, Size);
1341 auto Status = simpleLibcall(MI, MIRBuilder, Size, HLTy, LocObserver);
1342 if (Status != Legalized)
1343 return Status;
1344 break;
1345 }
1346 case TargetOpcode::G_FADD:
1347 case TargetOpcode::G_FSUB:
1348 case TargetOpcode::G_FMUL:
1349 case TargetOpcode::G_FDIV:
1350 case TargetOpcode::G_FMA:
1351 case TargetOpcode::G_FPOW:
1352 case TargetOpcode::G_FREM:
1353 case TargetOpcode::G_FCOS:
1354 case TargetOpcode::G_FSIN:
1355 case TargetOpcode::G_FTAN:
1356 case TargetOpcode::G_FACOS:
1357 case TargetOpcode::G_FASIN:
1358 case TargetOpcode::G_FATAN:
1359 case TargetOpcode::G_FATAN2:
1360 case TargetOpcode::G_FCOSH:
1361 case TargetOpcode::G_FSINH:
1362 case TargetOpcode::G_FTANH:
1363 case TargetOpcode::G_FLOG10:
1364 case TargetOpcode::G_FLOG:
1365 case TargetOpcode::G_FLOG2:
1366 case TargetOpcode::G_FEXP:
1367 case TargetOpcode::G_FEXP2:
1368 case TargetOpcode::G_FEXP10:
1369 case TargetOpcode::G_FCEIL:
1370 case TargetOpcode::G_FFLOOR:
1371 case TargetOpcode::G_FMINNUM:
1372 case TargetOpcode::G_FMAXNUM:
1373 case TargetOpcode::G_FMINIMUMNUM:
1374 case TargetOpcode::G_FMAXIMUMNUM:
1375 case TargetOpcode::G_FSQRT:
1376 case TargetOpcode::G_FRINT:
1377 case TargetOpcode::G_FNEARBYINT:
1378 case TargetOpcode::G_INTRINSIC_TRUNC:
1379 case TargetOpcode::G_INTRINSIC_ROUND:
1380 case TargetOpcode::G_INTRINSIC_ROUNDEVEN: {
1381 LLT LLTy = MRI.getType(MI.getOperand(0).getReg());
1382 unsigned Size = LLTy.getSizeInBits();
1383 Type *HLTy = getFloatTypeForLLT(Ctx, LLTy);
1384 if (!HLTy || (Size != 32 && Size != 64 && Size != 80 && Size != 128)) {
1385 LLVM_DEBUG(dbgs() << "No libcall available for type " << LLTy << ".\n");
1386 return UnableToLegalize;
1387 }
1388 auto Status = simpleLibcall(MI, MIRBuilder, Size, HLTy, LocObserver);
1389 if (Status != Legalized)
1390 return Status;
1391 break;
1392 }
1393 case TargetOpcode::G_FSINCOS: {
1394 LLT LLTy = MRI.getType(MI.getOperand(0).getReg());
1395 unsigned Size = LLTy.getSizeInBits();
1396 Type *HLTy = getFloatTypeForLLT(Ctx, LLTy);
1397 if (!HLTy || (Size != 32 && Size != 64 && Size != 80 && Size != 128)) {
1398 LLVM_DEBUG(dbgs() << "No libcall available for type " << LLTy << ".\n");
1399 return UnableToLegalize;
1400 }
1401 return emitSincosLibcall(MI, MIRBuilder, Size, HLTy, LocObserver);
1402 }
1403 case TargetOpcode::G_FMODF: {
1404 LLT LLTy = MRI.getType(MI.getOperand(0).getReg());
1405 unsigned Size = LLTy.getSizeInBits();
1406 Type *HLTy = getFloatTypeForLLT(Ctx, LLTy);
1407 if (!HLTy || (Size != 32 && Size != 64 && Size != 80 && Size != 128)) {
1408 LLVM_DEBUG(dbgs() << "No libcall available for type " << LLTy << ".\n");
1409 return UnableToLegalize;
1410 }
1411 return emitModfLibcall(MI, MIRBuilder, Size, HLTy, LocObserver);
1412 }
1413 case TargetOpcode::G_LROUND:
1414 case TargetOpcode::G_LLROUND:
1415 case TargetOpcode::G_INTRINSIC_LRINT:
1416 case TargetOpcode::G_INTRINSIC_LLRINT: {
1417 LLT LLTy = MRI.getType(MI.getOperand(1).getReg());
1418 unsigned Size = LLTy.getSizeInBits();
1419 Type *HLTy = getFloatTypeForLLT(Ctx, LLTy);
1420 Type *ITy = IntegerType::get(
1421 Ctx, MRI.getType(MI.getOperand(0).getReg()).getSizeInBits());
1422 if (!HLTy || (Size != 32 && Size != 64 && Size != 80 && Size != 128)) {
1423 LLVM_DEBUG(dbgs() << "No libcall available for type " << LLTy << ".\n");
1424 return UnableToLegalize;
1425 }
1426 auto Libcall = getRTLibDesc(MI.getOpcode(), Size);
1428 createLibcall(Libcall, {MI.getOperand(0).getReg(), ITy, 0},
1429 {{MI.getOperand(1).getReg(), HLTy, 0}}, LocObserver, &MI);
1430 if (Status != Legalized)
1431 return Status;
1432 MI.eraseFromParent();
1433 return Legalized;
1434 }
1435 case TargetOpcode::G_FPOWI:
1436 case TargetOpcode::G_FLDEXP: {
1437 LLT LLTy = MRI.getType(MI.getOperand(0).getReg());
1438 unsigned Size = LLTy.getSizeInBits();
1439 Type *HLTy = getFloatTypeForLLT(Ctx, LLTy);
1440 Type *ITy = IntegerType::get(
1441 Ctx, MRI.getType(MI.getOperand(2).getReg()).getSizeInBits());
1442 if (!HLTy || (Size != 32 && Size != 64 && Size != 80 && Size != 128)) {
1443 LLVM_DEBUG(dbgs() << "No libcall available for type " << LLTy << ".\n");
1444 return UnableToLegalize;
1445 }
1446 auto Libcall = getRTLibDesc(MI.getOpcode(), Size);
1448 {MI.getOperand(1).getReg(), HLTy, 0},
1449 {MI.getOperand(2).getReg(), ITy, 1}};
1450 Args[1].Flags[0].setSExt();
1452 Libcall, {MI.getOperand(0).getReg(), HLTy, 0}, Args, LocObserver, &MI);
1453 if (Status != Legalized)
1454 return Status;
1455 break;
1456 }
1457 case TargetOpcode::G_FPEXT:
1458 case TargetOpcode::G_FPTRUNC: {
1459 Type *FromTy = getFloatTypeForLLT(Ctx, MRI.getType(MI.getOperand(1).getReg()));
1460 Type *ToTy = getFloatTypeForLLT(Ctx, MRI.getType(MI.getOperand(0).getReg()));
1461 if (!FromTy || !ToTy)
1462 return UnableToLegalize;
1463 LegalizeResult Status = conversionLibcall(MI, ToTy, FromTy, LocObserver);
1464 if (Status != Legalized)
1465 return Status;
1466 break;
1467 }
1468 case TargetOpcode::G_FCMP: {
1469 LegalizeResult Status = createFCMPLibcall(MI, LocObserver);
1470 if (Status != Legalized)
1471 return Status;
1472 MI.eraseFromParent();
1473 return Status;
1474 }
1475 case TargetOpcode::G_FPTOSI:
1476 case TargetOpcode::G_FPTOUI: {
1477 // FIXME: Support other types
1478 Type *FromTy =
1479 getFloatTypeForLLT(Ctx, MRI.getType(MI.getOperand(1).getReg()));
1480 unsigned ToSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
1481 if ((ToSize != 32 && ToSize != 64 && ToSize != 128) || !FromTy)
1482 return UnableToLegalize;
1484 FromTy, LocObserver);
1485 if (Status != Legalized)
1486 return Status;
1487 break;
1488 }
1489 case TargetOpcode::G_SITOFP:
1490 case TargetOpcode::G_UITOFP: {
1491 unsigned FromSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
1492 Type *ToTy =
1493 getFloatTypeForLLT(Ctx, MRI.getType(MI.getOperand(0).getReg()));
1494 if ((FromSize != 32 && FromSize != 64 && FromSize != 128) || !ToTy)
1495 return UnableToLegalize;
1496 bool IsSigned = MI.getOpcode() == TargetOpcode::G_SITOFP;
1498 MI, ToTy, Type::getIntNTy(Ctx, FromSize), LocObserver, IsSigned);
1499 if (Status != Legalized)
1500 return Status;
1501 break;
1502 }
1503 case TargetOpcode::G_ATOMICRMW_XCHG:
1504 case TargetOpcode::G_ATOMICRMW_ADD:
1505 case TargetOpcode::G_ATOMICRMW_SUB:
1506 case TargetOpcode::G_ATOMICRMW_AND:
1507 case TargetOpcode::G_ATOMICRMW_OR:
1508 case TargetOpcode::G_ATOMICRMW_XOR:
1509 case TargetOpcode::G_ATOMIC_CMPXCHG:
1510 case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS: {
1512 if (Status != Legalized)
1513 return Status;
1514 break;
1515 }
1516 case TargetOpcode::G_BZERO:
1517 case TargetOpcode::G_MEMCPY:
1518 case TargetOpcode::G_MEMMOVE:
1519 case TargetOpcode::G_MEMSET: {
1520 LegalizeResult Result =
1521 createMemLibcall(*MIRBuilder.getMRI(), MI, LocObserver);
1522 if (Result != Legalized)
1523 return Result;
1524 MI.eraseFromParent();
1525 return Result;
1526 }
1527 case TargetOpcode::G_GET_FPENV:
1528 case TargetOpcode::G_GET_FPMODE: {
1529 LegalizeResult Result = createGetStateLibcall(MI, LocObserver);
1530 if (Result != Legalized)
1531 return Result;
1532 break;
1533 }
1534 case TargetOpcode::G_SET_FPENV:
1535 case TargetOpcode::G_SET_FPMODE: {
1536 LegalizeResult Result = createSetStateLibcall(MI, LocObserver);
1537 if (Result != Legalized)
1538 return Result;
1539 break;
1540 }
1541 case TargetOpcode::G_RESET_FPENV:
1542 case TargetOpcode::G_RESET_FPMODE: {
1543 LegalizeResult Result = createResetStateLibcall(MI, LocObserver);
1544 if (Result != Legalized)
1545 return Result;
1546 break;
1547 }
1548 }
1549
1550 MI.eraseFromParent();
1551 return Legalized;
1552}
1553
1555 unsigned TypeIdx,
1556 LLT NarrowTy) {
1557 uint64_t SizeOp0 = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits();
1558 uint64_t NarrowSize = NarrowTy.getSizeInBits();
1559
1560 switch (MI.getOpcode()) {
1561 default:
1562 return UnableToLegalize;
1563 case TargetOpcode::G_IMPLICIT_DEF: {
1564 Register DstReg = MI.getOperand(0).getReg();
1565 LLT DstTy = MRI.getType(DstReg);
1566
1567 // If SizeOp0 is not an exact multiple of NarrowSize, emit
1568 // G_ANYEXT(G_IMPLICIT_DEF). Cast result to vector if needed.
1569 // FIXME: Although this would also be legal for the general case, it causes
1570 // a lot of regressions in the emitted code (superfluous COPYs, artifact
1571 // combines not being hit). This seems to be a problem related to the
1572 // artifact combiner.
1573 if (SizeOp0 % NarrowSize != 0) {
1574 LLT ImplicitTy = DstTy.changeElementType(NarrowTy);
1575 Register ImplicitReg = MIRBuilder.buildUndef(ImplicitTy).getReg(0);
1576 MIRBuilder.buildAnyExt(DstReg, ImplicitReg);
1577
1578 MI.eraseFromParent();
1579 return Legalized;
1580 }
1581
1582 int NumParts = SizeOp0 / NarrowSize;
1583
1585 for (int i = 0; i < NumParts; ++i)
1586 DstRegs.push_back(MIRBuilder.buildUndef(NarrowTy).getReg(0));
1587
1588 if (DstTy.isVector())
1589 MIRBuilder.buildBuildVector(DstReg, DstRegs);
1590 else
1591 MIRBuilder.buildMergeLikeInstr(DstReg, DstRegs);
1592 MI.eraseFromParent();
1593 return Legalized;
1594 }
1595 case TargetOpcode::G_CONSTANT: {
1596 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
1597 const APInt &Val = MI.getOperand(1).getCImm()->getValue();
1598 unsigned TotalSize = Ty.getSizeInBits();
1599 unsigned NarrowSize = NarrowTy.getSizeInBits();
1600 int NumParts = TotalSize / NarrowSize;
1601
1602 SmallVector<Register, 4> PartRegs;
1603 for (int I = 0; I != NumParts; ++I) {
1604 unsigned Offset = I * NarrowSize;
1605 auto K = MIRBuilder.buildConstant(NarrowTy,
1606 Val.lshr(Offset).trunc(NarrowSize));
1607 PartRegs.push_back(K.getReg(0));
1608 }
1609
1610 LLT LeftoverTy;
1611 unsigned LeftoverBits = TotalSize - NumParts * NarrowSize;
1612 SmallVector<Register, 1> LeftoverRegs;
1613 if (LeftoverBits != 0) {
1614 LeftoverTy = LLT::scalar(LeftoverBits);
1615 auto K = MIRBuilder.buildConstant(
1616 LeftoverTy,
1617 Val.lshr(NumParts * NarrowSize).trunc(LeftoverBits));
1618 LeftoverRegs.push_back(K.getReg(0));
1619 }
1620
1621 insertParts(MI.getOperand(0).getReg(),
1622 Ty, NarrowTy, PartRegs, LeftoverTy, LeftoverRegs);
1623
1624 MI.eraseFromParent();
1625 return Legalized;
1626 }
1627 case TargetOpcode::G_SEXT:
1628 case TargetOpcode::G_ZEXT:
1629 case TargetOpcode::G_ANYEXT:
1630 return narrowScalarExt(MI, TypeIdx, NarrowTy);
1631 case TargetOpcode::G_TRUNC: {
1632 if (TypeIdx != 1)
1633 return UnableToLegalize;
1634
1635 uint64_t SizeOp1 = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
1636 if (NarrowTy.getSizeInBits() * 2 != SizeOp1) {
1637 LLVM_DEBUG(dbgs() << "Can't narrow trunc to type " << NarrowTy << "\n");
1638 return UnableToLegalize;
1639 }
1640
1641 auto Unmerge = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1));
1642 MIRBuilder.buildCopy(MI.getOperand(0), Unmerge.getReg(0));
1643 MI.eraseFromParent();
1644 return Legalized;
1645 }
1646 case TargetOpcode::G_CONSTANT_FOLD_BARRIER:
1647 case TargetOpcode::G_FREEZE: {
1648 if (TypeIdx != 0)
1649 return UnableToLegalize;
1650
1651 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
1652 // Should widen scalar first
1653 if (Ty.getSizeInBits() % NarrowTy.getSizeInBits() != 0)
1654 return UnableToLegalize;
1655
1656 auto Unmerge = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1).getReg());
1658 for (unsigned i = 0; i < Unmerge->getNumDefs(); ++i) {
1659 Parts.push_back(
1660 MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy}, {Unmerge.getReg(i)})
1661 .getReg(0));
1662 }
1663
1664 MIRBuilder.buildMergeLikeInstr(MI.getOperand(0).getReg(), Parts);
1665 MI.eraseFromParent();
1666 return Legalized;
1667 }
1668 case TargetOpcode::G_ADD:
1669 case TargetOpcode::G_SUB:
1670 case TargetOpcode::G_SADDO:
1671 case TargetOpcode::G_SSUBO:
1672 case TargetOpcode::G_SADDE:
1673 case TargetOpcode::G_SSUBE:
1674 case TargetOpcode::G_UADDO:
1675 case TargetOpcode::G_USUBO:
1676 case TargetOpcode::G_UADDE:
1677 case TargetOpcode::G_USUBE:
1678 return narrowScalarAddSub(MI, TypeIdx, NarrowTy);
1679 case TargetOpcode::G_MUL:
1680 case TargetOpcode::G_UMULH:
1681 return narrowScalarMul(MI, NarrowTy);
1682 case TargetOpcode::G_EXTRACT:
1683 return narrowScalarExtract(MI, TypeIdx, NarrowTy);
1684 case TargetOpcode::G_INSERT:
1685 return narrowScalarInsert(MI, TypeIdx, NarrowTy);
1686 case TargetOpcode::G_LOAD: {
1687 auto &LoadMI = cast<GLoad>(MI);
1688 Register DstReg = LoadMI.getDstReg();
1689 LLT DstTy = MRI.getType(DstReg);
1690 if (DstTy.isVector())
1691 return UnableToLegalize;
1692
1693 if (8 * LoadMI.getMemSize().getValue() != DstTy.getSizeInBits()) {
1694 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
1695 MIRBuilder.buildLoad(TmpReg, LoadMI.getPointerReg(), LoadMI.getMMO());
1696 MIRBuilder.buildAnyExt(DstReg, TmpReg);
1697 LoadMI.eraseFromParent();
1698 return Legalized;
1699 }
1700
1701 return reduceLoadStoreWidth(LoadMI, TypeIdx, NarrowTy);
1702 }
1703 case TargetOpcode::G_ZEXTLOAD:
1704 case TargetOpcode::G_SEXTLOAD:
1705 case TargetOpcode::G_FPEXTLOAD: {
1706 auto &LoadMI = cast<GExtLoad>(MI);
1707 Register DstReg = LoadMI.getDstReg();
1708 Register PtrReg = LoadMI.getPointerReg();
1709
1710 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
1711 auto &MMO = LoadMI.getMMO();
1712 unsigned MemSize = MMO.getSizeInBits().getValue();
1713
1714 if (MemSize == NarrowSize) {
1715 MIRBuilder.buildLoad(TmpReg, PtrReg, MMO);
1716 } else if (MemSize < NarrowSize) {
1717 MIRBuilder.buildLoadInstr(LoadMI.getOpcode(), TmpReg, PtrReg, MMO);
1718 } else if (MemSize > NarrowSize) {
1719 // FIXME: Need to split the load.
1720 return UnableToLegalize;
1721 }
1722
1723 if (isa<GZExtLoad>(LoadMI))
1724 MIRBuilder.buildZExt(DstReg, TmpReg);
1725 else if (isa<GSExtLoad>(LoadMI))
1726 MIRBuilder.buildSExt(DstReg, TmpReg);
1727 else
1728 MIRBuilder.buildFPExt(DstReg, TmpReg);
1729
1730 LoadMI.eraseFromParent();
1731 return Legalized;
1732 }
1733 case TargetOpcode::G_STORE: {
1734 auto &StoreMI = cast<GStore>(MI);
1735
1736 Register SrcReg = StoreMI.getValueReg();
1737 LLT SrcTy = MRI.getType(SrcReg);
1738 if (SrcTy.isVector())
1739 return UnableToLegalize;
1740
1741 int NumParts = SizeOp0 / NarrowSize;
1742 unsigned HandledSize = NumParts * NarrowTy.getSizeInBits();
1743 unsigned LeftoverBits = SrcTy.getSizeInBits() - HandledSize;
1744 if (SrcTy.isVector() && LeftoverBits != 0)
1745 return UnableToLegalize;
1746
1747 if (8 * StoreMI.getMemSize().getValue() != SrcTy.getSizeInBits()) {
1748 Register TmpReg = MRI.createGenericVirtualRegister(NarrowTy);
1749 MIRBuilder.buildTrunc(TmpReg, SrcReg);
1750 MIRBuilder.buildStore(TmpReg, StoreMI.getPointerReg(), StoreMI.getMMO());
1751 StoreMI.eraseFromParent();
1752 return Legalized;
1753 }
1754
1755 return reduceLoadStoreWidth(StoreMI, 0, NarrowTy);
1756 }
1757 case TargetOpcode::G_FPTRUNCSTORE: {
1758 auto &StoreMI = cast<GFPTruncStore>(MI);
1759 Register SrcReg = StoreMI.getValueReg();
1760 Register PtrReg = StoreMI.getPointerReg();
1761
1762 auto &MMO = StoreMI.getMMO();
1763 unsigned MemSize = MMO.getSizeInBits().getValue();
1764 if (MemSize > NarrowSize) {
1765 return UnableToLegalize;
1766 }
1767
1768 auto TmpReg = MIRBuilder.buildFPTrunc(NarrowTy, SrcReg);
1769 if (MemSize == NarrowSize) {
1770 MIRBuilder.buildStore(TmpReg, PtrReg, MMO);
1771 } else if (MemSize < NarrowSize) {
1772 MIRBuilder.buildStoreInstr(TargetOpcode::G_FPTRUNCSTORE, TmpReg, PtrReg,
1773 MMO);
1774 }
1775
1776 StoreMI.eraseFromParent();
1777 return Legalized;
1778 }
1779 case TargetOpcode::G_SELECT:
1780 return narrowScalarSelect(MI, TypeIdx, NarrowTy);
1781 case TargetOpcode::G_AND:
1782 case TargetOpcode::G_OR:
1783 case TargetOpcode::G_XOR: {
1784 // Legalize bitwise operation:
1785 // A = BinOp<Ty> B, C
1786 // into:
1787 // B1, ..., BN = G_UNMERGE_VALUES B
1788 // C1, ..., CN = G_UNMERGE_VALUES C
1789 // A1 = BinOp<Ty/N> B1, C2
1790 // ...
1791 // AN = BinOp<Ty/N> BN, CN
1792 // A = G_MERGE_VALUES A1, ..., AN
1793 return narrowScalarBasic(MI, TypeIdx, NarrowTy);
1794 }
1795 case TargetOpcode::G_SHL:
1796 case TargetOpcode::G_LSHR:
1797 case TargetOpcode::G_ASHR:
1798 return narrowScalarShift(MI, TypeIdx, NarrowTy);
1799 case TargetOpcode::G_CTLZ:
1800 case TargetOpcode::G_CTLZ_ZERO_POISON:
1801 case TargetOpcode::G_CTTZ:
1802 case TargetOpcode::G_CTTZ_ZERO_POISON:
1803 case TargetOpcode::G_CTLS:
1804 case TargetOpcode::G_CTPOP:
1805 if (TypeIdx == 1)
1806 switch (MI.getOpcode()) {
1807 case TargetOpcode::G_CTLZ:
1808 case TargetOpcode::G_CTLZ_ZERO_POISON:
1809 return narrowScalarCTLZ(MI, TypeIdx, NarrowTy);
1810 case TargetOpcode::G_CTTZ:
1811 case TargetOpcode::G_CTTZ_ZERO_POISON:
1812 return narrowScalarCTTZ(MI, TypeIdx, NarrowTy);
1813 case TargetOpcode::G_CTPOP:
1814 return narrowScalarCTPOP(MI, TypeIdx, NarrowTy);
1815 case TargetOpcode::G_CTLS:
1816 return narrowScalarCTLS(MI, TypeIdx, NarrowTy);
1817 default:
1818 return UnableToLegalize;
1819 }
1820
1821 Observer.changingInstr(MI);
1822 narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT);
1823 Observer.changedInstr(MI);
1824 return Legalized;
1825 case TargetOpcode::G_INTTOPTR:
1826 if (TypeIdx != 1)
1827 return UnableToLegalize;
1828
1829 Observer.changingInstr(MI);
1830 narrowScalarSrc(MI, NarrowTy, 1);
1831 Observer.changedInstr(MI);
1832 return Legalized;
1833 case TargetOpcode::G_PTRTOINT:
1834 if (TypeIdx != 0)
1835 return UnableToLegalize;
1836
1837 Observer.changingInstr(MI);
1838 narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT);
1839 Observer.changedInstr(MI);
1840 return Legalized;
1841 case TargetOpcode::G_PHI: {
1842 // FIXME: add support for when SizeOp0 isn't an exact multiple of
1843 // NarrowSize.
1844 if (SizeOp0 % NarrowSize != 0)
1845 return UnableToLegalize;
1846
1847 unsigned NumParts = SizeOp0 / NarrowSize;
1848 SmallVector<Register, 2> DstRegs(NumParts);
1849 SmallVector<SmallVector<Register, 2>, 2> SrcRegs(MI.getNumOperands() / 2);
1850 Observer.changingInstr(MI);
1851 for (unsigned i = 1; i < MI.getNumOperands(); i += 2) {
1852 MachineBasicBlock &OpMBB = *MI.getOperand(i + 1).getMBB();
1853 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminatorForward());
1854 extractParts(MI.getOperand(i).getReg(), NarrowTy, NumParts,
1855 SrcRegs[i / 2], MIRBuilder, MRI);
1856 }
1857 MachineBasicBlock &MBB = *MI.getParent();
1858 MIRBuilder.setInsertPt(MBB, MI);
1859 for (unsigned i = 0; i < NumParts; ++i) {
1860 DstRegs[i] = MRI.createGenericVirtualRegister(NarrowTy);
1862 MIRBuilder.buildInstr(TargetOpcode::G_PHI).addDef(DstRegs[i]);
1863 for (unsigned j = 1; j < MI.getNumOperands(); j += 2)
1864 MIB.addUse(SrcRegs[j / 2][i]).add(MI.getOperand(j + 1));
1865 }
1866 MIRBuilder.setInsertPt(MBB, MBB.getFirstNonPHI());
1867 MIRBuilder.buildMergeLikeInstr(MI.getOperand(0), DstRegs);
1868 Observer.changedInstr(MI);
1869 MI.eraseFromParent();
1870 return Legalized;
1871 }
1872 case TargetOpcode::G_EXTRACT_VECTOR_ELT:
1873 case TargetOpcode::G_INSERT_VECTOR_ELT: {
1874 if (TypeIdx != 2)
1875 return UnableToLegalize;
1876
1877 int OpIdx = MI.getOpcode() == TargetOpcode::G_EXTRACT_VECTOR_ELT ? 2 : 3;
1878 Observer.changingInstr(MI);
1879 narrowScalarSrc(MI, NarrowTy, OpIdx);
1880 Observer.changedInstr(MI);
1881 return Legalized;
1882 }
1883 case TargetOpcode::G_ICMP: {
1884 Register LHS = MI.getOperand(2).getReg();
1885 LLT SrcTy = MRI.getType(LHS);
1886 CmpInst::Predicate Pred =
1887 static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate());
1888
1889 LLT LeftoverTy; // Example: s88 -> s64 (NarrowTy) + s24 (leftover)
1890 SmallVector<Register, 4> LHSPartRegs, LHSLeftoverRegs;
1891 if (!extractParts(LHS, SrcTy, NarrowTy, LeftoverTy, LHSPartRegs,
1892 LHSLeftoverRegs, MIRBuilder, MRI))
1893 return UnableToLegalize;
1894
1895 LLT Unused; // Matches LeftoverTy; G_ICMP LHS and RHS are the same type.
1896 SmallVector<Register, 4> RHSPartRegs, RHSLeftoverRegs;
1897 if (!extractParts(MI.getOperand(3).getReg(), SrcTy, NarrowTy, Unused,
1898 RHSPartRegs, RHSLeftoverRegs, MIRBuilder, MRI))
1899 return UnableToLegalize;
1900
1901 // We now have the LHS and RHS of the compare split into narrow-type
1902 // registers, plus potentially some leftover type.
1903 Register Dst = MI.getOperand(0).getReg();
1904 LLT ResTy = MRI.getType(Dst);
1905 if (ICmpInst::isEquality(Pred)) {
1906 // For each part on the LHS and RHS, keep track of the result of XOR-ing
1907 // them together. For each equal part, the result should be all 0s. For
1908 // each non-equal part, we'll get at least one 1.
1909 auto Zero = MIRBuilder.buildConstant(NarrowTy, 0);
1911 for (auto LHSAndRHS : zip(LHSPartRegs, RHSPartRegs)) {
1912 auto LHS = std::get<0>(LHSAndRHS);
1913 auto RHS = std::get<1>(LHSAndRHS);
1914 auto Xor = MIRBuilder.buildXor(NarrowTy, LHS, RHS).getReg(0);
1915 Xors.push_back(Xor);
1916 }
1917
1918 // Build a G_XOR for each leftover register. Each G_XOR must be widened
1919 // to the desired narrow type so that we can OR them together later.
1920 SmallVector<Register, 4> WidenedXors;
1921 for (auto LHSAndRHS : zip(LHSLeftoverRegs, RHSLeftoverRegs)) {
1922 auto LHS = std::get<0>(LHSAndRHS);
1923 auto RHS = std::get<1>(LHSAndRHS);
1924 auto Xor = MIRBuilder.buildXor(LeftoverTy, LHS, RHS).getReg(0);
1925 LLT GCDTy = extractGCDType(WidenedXors, NarrowTy, LeftoverTy, Xor);
1926 buildLCMMergePieces(LeftoverTy, NarrowTy, GCDTy, WidenedXors,
1927 /* PadStrategy = */ TargetOpcode::G_ZEXT);
1928 llvm::append_range(Xors, WidenedXors);
1929 }
1930
1931 // Now, for each part we broke up, we know if they are equal/not equal
1932 // based off the G_XOR. We can OR these all together and compare against
1933 // 0 to get the result.
1934 assert(Xors.size() >= 2 && "Should have gotten at least two Xors?");
1935 auto Or = MIRBuilder.buildOr(NarrowTy, Xors[0], Xors[1]);
1936 for (unsigned I = 2, E = Xors.size(); I < E; ++I)
1937 Or = MIRBuilder.buildOr(NarrowTy, Or, Xors[I]);
1938 MIRBuilder.buildICmp(Pred, Dst, Or, Zero);
1939 } else {
1940 Register CmpIn;
1941 for (unsigned I = 0, E = LHSPartRegs.size(); I != E; ++I) {
1942 Register CmpOut;
1943 CmpInst::Predicate PartPred;
1944
1945 if (I == E - 1 && LHSLeftoverRegs.empty()) {
1946 PartPred = Pred;
1947 CmpOut = Dst;
1948 } else {
1949 PartPred = ICmpInst::getUnsignedPredicate(Pred);
1950 CmpOut = MRI.createGenericVirtualRegister(ResTy);
1951 }
1952
1953 if (!CmpIn) {
1954 MIRBuilder.buildICmp(PartPred, CmpOut, LHSPartRegs[I],
1955 RHSPartRegs[I]);
1956 } else {
1957 auto Cmp = MIRBuilder.buildICmp(PartPred, ResTy, LHSPartRegs[I],
1958 RHSPartRegs[I]);
1959 auto CmpEq = MIRBuilder.buildICmp(CmpInst::Predicate::ICMP_EQ, ResTy,
1960 LHSPartRegs[I], RHSPartRegs[I]);
1961 MIRBuilder.buildSelect(CmpOut, CmpEq, CmpIn, Cmp);
1962 }
1963
1964 CmpIn = CmpOut;
1965 }
1966
1967 for (unsigned I = 0, E = LHSLeftoverRegs.size(); I != E; ++I) {
1968 Register CmpOut;
1969 CmpInst::Predicate PartPred;
1970
1971 if (I == E - 1) {
1972 PartPred = Pred;
1973 CmpOut = Dst;
1974 } else {
1975 PartPred = ICmpInst::getUnsignedPredicate(Pred);
1976 CmpOut = MRI.createGenericVirtualRegister(ResTy);
1977 }
1978
1979 if (!CmpIn) {
1980 MIRBuilder.buildICmp(PartPred, CmpOut, LHSLeftoverRegs[I],
1981 RHSLeftoverRegs[I]);
1982 } else {
1983 auto Cmp = MIRBuilder.buildICmp(PartPred, ResTy, LHSLeftoverRegs[I],
1984 RHSLeftoverRegs[I]);
1985 auto CmpEq =
1986 MIRBuilder.buildICmp(CmpInst::Predicate::ICMP_EQ, ResTy,
1987 LHSLeftoverRegs[I], RHSLeftoverRegs[I]);
1988 MIRBuilder.buildSelect(CmpOut, CmpEq, CmpIn, Cmp);
1989 }
1990
1991 CmpIn = CmpOut;
1992 }
1993 }
1994 MI.eraseFromParent();
1995 return Legalized;
1996 }
1997 case TargetOpcode::G_FCMP:
1998 if (TypeIdx != 0)
1999 return UnableToLegalize;
2000
2001 Observer.changingInstr(MI);
2002 narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_ZEXT);
2003 Observer.changedInstr(MI);
2004 return Legalized;
2005
2006 case TargetOpcode::G_SEXT_INREG: {
2007 if (TypeIdx != 0)
2008 return UnableToLegalize;
2009
2010 int64_t SizeInBits = MI.getOperand(2).getImm();
2011
2012 // So long as the new type has more bits than the bits we're extending we
2013 // don't need to break it apart.
2014 if (NarrowTy.getScalarSizeInBits() > SizeInBits) {
2015 Observer.changingInstr(MI);
2016 // We don't lose any non-extension bits by truncating the src and
2017 // sign-extending the dst.
2018 MachineOperand &MO1 = MI.getOperand(1);
2019 auto TruncMIB = MIRBuilder.buildTrunc(NarrowTy, MO1);
2020 MO1.setReg(TruncMIB.getReg(0));
2021
2022 MachineOperand &MO2 = MI.getOperand(0);
2023 Register DstExt = MRI.createGenericVirtualRegister(NarrowTy);
2024 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2025 MIRBuilder.buildSExt(MO2, DstExt);
2026 MO2.setReg(DstExt);
2027 Observer.changedInstr(MI);
2028 return Legalized;
2029 }
2030
2031 // Break it apart. Components below the extension point are unmodified. The
2032 // component containing the extension point becomes a narrower SEXT_INREG.
2033 // Components above it are ashr'd from the component containing the
2034 // extension point.
2035 if (SizeOp0 % NarrowSize != 0)
2036 return UnableToLegalize;
2037 int NumParts = SizeOp0 / NarrowSize;
2038
2039 // List the registers where the destination will be scattered.
2041 // List the registers where the source will be split.
2043
2044 // Create all the temporary registers.
2045 for (int i = 0; i < NumParts; ++i) {
2046 Register SrcReg = MRI.createGenericVirtualRegister(NarrowTy);
2047
2048 SrcRegs.push_back(SrcReg);
2049 }
2050
2051 // Explode the big arguments into smaller chunks.
2052 MIRBuilder.buildUnmerge(SrcRegs, MI.getOperand(1));
2053
2054 Register AshrCstReg =
2055 MIRBuilder.buildConstant(NarrowTy, NarrowTy.getScalarSizeInBits() - 1)
2056 .getReg(0);
2057 Register FullExtensionReg;
2058 Register PartialExtensionReg;
2059
2060 // Do the operation on each small part.
2061 for (int i = 0; i < NumParts; ++i) {
2062 if ((i + 1) * NarrowTy.getScalarSizeInBits() <= SizeInBits) {
2063 DstRegs.push_back(SrcRegs[i]);
2064 PartialExtensionReg = DstRegs.back();
2065 } else if (i * NarrowTy.getScalarSizeInBits() >= SizeInBits) {
2066 assert(PartialExtensionReg &&
2067 "Expected to visit partial extension before full");
2068 if (FullExtensionReg) {
2069 DstRegs.push_back(FullExtensionReg);
2070 continue;
2071 }
2072 DstRegs.push_back(
2073 MIRBuilder.buildAShr(NarrowTy, PartialExtensionReg, AshrCstReg)
2074 .getReg(0));
2075 FullExtensionReg = DstRegs.back();
2076 } else {
2077 DstRegs.push_back(
2079 .buildInstr(
2080 TargetOpcode::G_SEXT_INREG, {NarrowTy},
2081 {SrcRegs[i], SizeInBits % NarrowTy.getScalarSizeInBits()})
2082 .getReg(0));
2083 PartialExtensionReg = DstRegs.back();
2084 }
2085 }
2086
2087 // Gather the destination registers into the final destination.
2088 Register DstReg = MI.getOperand(0).getReg();
2089 MIRBuilder.buildMergeLikeInstr(DstReg, DstRegs);
2090 MI.eraseFromParent();
2091 return Legalized;
2092 }
2093 case TargetOpcode::G_BSWAP:
2094 case TargetOpcode::G_BITREVERSE: {
2095 if (SizeOp0 % NarrowSize != 0)
2096 return UnableToLegalize;
2097
2098 Observer.changingInstr(MI);
2099 SmallVector<Register, 2> SrcRegs, DstRegs;
2100 unsigned NumParts = SizeOp0 / NarrowSize;
2101 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs,
2102 MIRBuilder, MRI);
2103
2104 for (unsigned i = 0; i < NumParts; ++i) {
2105 auto DstPart = MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy},
2106 {SrcRegs[NumParts - 1 - i]});
2107 DstRegs.push_back(DstPart.getReg(0));
2108 }
2109
2110 MIRBuilder.buildMergeLikeInstr(MI.getOperand(0), DstRegs);
2111
2112 Observer.changedInstr(MI);
2113 MI.eraseFromParent();
2114 return Legalized;
2115 }
2116 case TargetOpcode::G_PTR_ADD:
2117 case TargetOpcode::G_PTRMASK: {
2118 if (TypeIdx != 1)
2119 return UnableToLegalize;
2120 Observer.changingInstr(MI);
2121 narrowScalarSrc(MI, NarrowTy, 2);
2122 Observer.changedInstr(MI);
2123 return Legalized;
2124 }
2125 case TargetOpcode::G_FPTOUI:
2126 case TargetOpcode::G_FPTOSI:
2127 case TargetOpcode::G_FPTOUI_SAT:
2128 case TargetOpcode::G_FPTOSI_SAT:
2129 return narrowScalarFPTOI(MI, TypeIdx, NarrowTy);
2130 case TargetOpcode::G_FPEXT:
2131 if (TypeIdx != 0)
2132 return UnableToLegalize;
2133 Observer.changingInstr(MI);
2134 narrowScalarDst(MI, NarrowTy, 0, TargetOpcode::G_FPEXT);
2135 Observer.changedInstr(MI);
2136 return Legalized;
2137 case TargetOpcode::G_FLDEXP:
2138 case TargetOpcode::G_STRICT_FLDEXP:
2139 return narrowScalarFLDEXP(MI, TypeIdx, NarrowTy);
2140 case TargetOpcode::G_VSCALE: {
2141 Register Dst = MI.getOperand(0).getReg();
2142 LLT Ty = MRI.getType(Dst);
2143
2144 // Assume VSCALE(1) fits into a legal integer
2145 const APInt One(NarrowTy.getSizeInBits(), 1);
2146 auto VScaleBase = MIRBuilder.buildVScale(NarrowTy, One);
2147 auto ZExt = MIRBuilder.buildZExt(Ty, VScaleBase);
2148 auto C = MIRBuilder.buildConstant(Ty, *MI.getOperand(1).getCImm());
2149 MIRBuilder.buildMul(Dst, ZExt, C);
2150
2151 MI.eraseFromParent();
2152 return Legalized;
2153 }
2154 }
2155}
2156
2158 LLT Ty = MRI.getType(Val);
2159 if (Ty.isScalar() && !Ty.isFloat())
2160 return Val;
2161
2162 const DataLayout &DL = MIRBuilder.getDataLayout();
2163 LLT NewTy = LLT::integer(Ty.getSizeInBits());
2164
2165 if (Ty.isFloat())
2166 return MIRBuilder.buildBitcast(NewTy, Val).getReg(0);
2167
2168 if (Ty.isPointer()) {
2169 if (DL.isNonIntegralAddressSpace(Ty.getAddressSpace()))
2170 return Register();
2171 return MIRBuilder.buildPtrToInt(NewTy, Val).getReg(0);
2172 }
2173
2174 Register NewVal = Val;
2175
2176 assert(Ty.isVector());
2177 if (Ty.isPointerVector())
2178 NewVal = MIRBuilder.buildPtrToInt(NewTy, NewVal).getReg(0);
2179 return MIRBuilder.buildBitcast(NewTy, NewVal).getReg(0);
2180}
2181
2183 unsigned OpIdx, unsigned ExtOpcode) {
2184 MachineOperand &MO = MI.getOperand(OpIdx);
2185 auto ExtB = MIRBuilder.buildInstr(ExtOpcode, {WideTy}, {MO});
2186 MO.setReg(ExtB.getReg(0));
2187}
2188
2190 unsigned OpIdx) {
2191 MachineOperand &MO = MI.getOperand(OpIdx);
2192 auto ExtB = MIRBuilder.buildInstr(TargetOpcode::G_FPEXT, {WideTy}, {MO},
2193 MI.getFlags());
2194 MO.setReg(ExtB.getReg(0));
2195}
2196
2198 unsigned OpIdx) {
2199 MachineOperand &MO = MI.getOperand(OpIdx);
2200 auto ExtB = MIRBuilder.buildTrunc(NarrowTy, MO);
2201 MO.setReg(ExtB.getReg(0));
2202}
2203
2205 unsigned OpIdx, unsigned TruncOpcode) {
2206 MachineOperand &MO = MI.getOperand(OpIdx);
2207 Register DstExt = MRI.createGenericVirtualRegister(WideTy);
2208 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2209 MIRBuilder.buildInstr(TruncOpcode, {MO}, {DstExt});
2210 MO.setReg(DstExt);
2211}
2212
2214 unsigned OpIdx) {
2215 MachineOperand &MO = MI.getOperand(OpIdx);
2216 Register DstExt = MRI.createGenericVirtualRegister(WideTy);
2217 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2218 MIRBuilder.buildInstr(TargetOpcode::G_FPTRUNC, {MO}, {DstExt}, MI.getFlags());
2219 MO.setReg(DstExt);
2220}
2221
2223 unsigned OpIdx, unsigned ExtOpcode) {
2224 MachineOperand &MO = MI.getOperand(OpIdx);
2225 Register DstTrunc = MRI.createGenericVirtualRegister(NarrowTy);
2226 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2227 MIRBuilder.buildInstr(ExtOpcode, {MO}, {DstTrunc});
2228 MO.setReg(DstTrunc);
2229}
2230
2232 unsigned OpIdx) {
2233 MachineOperand &MO = MI.getOperand(OpIdx);
2234 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2235 Register Dst = MO.getReg();
2236 Register DstExt = MRI.createGenericVirtualRegister(WideTy);
2237 MO.setReg(DstExt);
2238 MIRBuilder.buildDeleteTrailingVectorElements(Dst, DstExt);
2239}
2240
2242 unsigned OpIdx) {
2243 MachineOperand &MO = MI.getOperand(OpIdx);
2244 MO.setReg(MIRBuilder.buildPadVectorWithUndefElements(MoreTy, MO).getReg(0));
2245}
2246
2247void LegalizerHelper::bitcastSrc(MachineInstr &MI, LLT CastTy, unsigned OpIdx) {
2248 MachineOperand &Op = MI.getOperand(OpIdx);
2249 Op.setReg(MIRBuilder.buildBitcast(CastTy, Op).getReg(0));
2250}
2251
2252void LegalizerHelper::bitcastDst(MachineInstr &MI, LLT CastTy, unsigned OpIdx) {
2253 MachineOperand &MO = MI.getOperand(OpIdx);
2254 Register CastDst = MRI.createGenericVirtualRegister(CastTy);
2255 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2256 MIRBuilder.buildBitcast(MO, CastDst);
2257 MO.setReg(CastDst);
2258}
2259
2261LegalizerHelper::widenScalarMergeValues(MachineInstr &MI, unsigned TypeIdx,
2262 LLT WideTy) {
2263 if (TypeIdx != 1)
2264 return UnableToLegalize;
2265
2266 auto [DstReg, DstTy, Src1Reg, Src1Ty] = MI.getFirst2RegLLTs();
2267 if (DstTy.isVector())
2268 return UnableToLegalize;
2269
2270 LLT SrcTy = MRI.getType(Src1Reg);
2271 const int DstSize = DstTy.getSizeInBits();
2272 const int SrcSize = SrcTy.getSizeInBits();
2273 const int WideSize = WideTy.getSizeInBits();
2274 const int NumMerge = (DstSize + WideSize - 1) / WideSize;
2275
2276 unsigned NumOps = MI.getNumOperands();
2277 unsigned NumSrc = MI.getNumOperands() - 1;
2278 unsigned PartSize = DstTy.getSizeInBits() / NumSrc;
2279
2280 if (WideSize >= DstSize) {
2281 // Directly pack the bits in the target type.
2282 Register ResultReg = MIRBuilder.buildZExt(WideTy, Src1Reg).getReg(0);
2283
2284 for (unsigned I = 2; I != NumOps; ++I) {
2285 const unsigned Offset = (I - 1) * PartSize;
2286
2287 Register SrcReg = MI.getOperand(I).getReg();
2288 assert(MRI.getType(SrcReg) == LLT::scalar(PartSize));
2289
2290 auto ZextInput = MIRBuilder.buildZExt(WideTy, SrcReg);
2291
2292 Register NextResult = I + 1 == NumOps && WideTy == DstTy ? DstReg :
2293 MRI.createGenericVirtualRegister(WideTy);
2294
2295 auto ShiftAmt = MIRBuilder.buildConstant(WideTy, Offset);
2296 auto Shl = MIRBuilder.buildShl(WideTy, ZextInput, ShiftAmt);
2297 MIRBuilder.buildOr(NextResult, ResultReg, Shl);
2298 ResultReg = NextResult;
2299 }
2300
2301 if (WideSize > DstSize)
2302 MIRBuilder.buildTrunc(DstReg, ResultReg);
2303 else if (DstTy.isPointer())
2304 MIRBuilder.buildIntToPtr(DstReg, ResultReg);
2305 else if (DstTy != WideTy)
2306 MIRBuilder.buildBitcast(DstReg, ResultReg);
2307
2308 MI.eraseFromParent();
2309 return Legalized;
2310 }
2311
2312 // Unmerge the original values to the GCD type, and recombine to the next
2313 // multiple greater than the original type.
2314 //
2315 // %3:_(s12) = G_MERGE_VALUES %0:_(s4), %1:_(s4), %2:_(s4) -> s6
2316 // %4:_(s2), %5:_(s2) = G_UNMERGE_VALUES %0
2317 // %6:_(s2), %7:_(s2) = G_UNMERGE_VALUES %1
2318 // %8:_(s2), %9:_(s2) = G_UNMERGE_VALUES %2
2319 // %10:_(s6) = G_MERGE_VALUES %4, %5, %6
2320 // %11:_(s6) = G_MERGE_VALUES %7, %8, %9
2321 // %12:_(s12) = G_MERGE_VALUES %10, %11
2322 //
2323 // Padding with undef if necessary:
2324 //
2325 // %2:_(s8) = G_MERGE_VALUES %0:_(s4), %1:_(s4) -> s6
2326 // %3:_(s2), %4:_(s2) = G_UNMERGE_VALUES %0
2327 // %5:_(s2), %6:_(s2) = G_UNMERGE_VALUES %1
2328 // %7:_(s2) = G_IMPLICIT_DEF
2329 // %8:_(s6) = G_MERGE_VALUES %3, %4, %5
2330 // %9:_(s6) = G_MERGE_VALUES %6, %7, %7
2331 // %10:_(s12) = G_MERGE_VALUES %8, %9
2332
2333 const int GCD = std::gcd(SrcSize, WideSize);
2334 LLT GCDTy = WideTy.changeElementSize(GCD);
2335
2336 SmallVector<Register, 8> NewMergeRegs;
2337 SmallVector<Register, 8> Unmerges;
2338 LLT WideDstTy = WideTy.changeElementSize(NumMerge * WideSize);
2339
2340 // Decompose the original operands if they don't evenly divide.
2341 for (const MachineOperand &MO : llvm::drop_begin(MI.operands())) {
2342 Register SrcReg = MO.getReg();
2343 if (GCD == SrcSize) {
2344 Unmerges.push_back(SrcReg);
2345 } else {
2346 auto Unmerge = MIRBuilder.buildUnmerge(GCDTy, SrcReg);
2347 for (int J = 0, JE = Unmerge->getNumOperands() - 1; J != JE; ++J)
2348 Unmerges.push_back(Unmerge.getReg(J));
2349 }
2350 }
2351
2352 // Pad with undef to the next size that is a multiple of the requested size.
2353 if (static_cast<int>(Unmerges.size()) != NumMerge * WideSize) {
2354 Register UndefReg = MIRBuilder.buildUndef(GCDTy).getReg(0);
2355 for (int I = Unmerges.size(); I != NumMerge * WideSize; ++I)
2356 Unmerges.push_back(UndefReg);
2357 }
2358
2359 const int PartsPerGCD = WideSize / GCD;
2360
2361 // Build merges of each piece.
2362 ArrayRef<Register> Slicer(Unmerges);
2363 for (int I = 0; I != NumMerge; ++I, Slicer = Slicer.drop_front(PartsPerGCD)) {
2364 auto Merge =
2365 MIRBuilder.buildMergeLikeInstr(WideTy, Slicer.take_front(PartsPerGCD));
2366 NewMergeRegs.push_back(Merge.getReg(0));
2367 }
2368
2369 // A truncate may be necessary if the requested type doesn't evenly divide the
2370 // original result type.
2371 if (DstTy.getSizeInBits() == WideDstTy.getSizeInBits()) {
2372 MIRBuilder.buildMergeLikeInstr(DstReg, NewMergeRegs);
2373 } else {
2374 auto FinalMerge = MIRBuilder.buildMergeLikeInstr(WideDstTy, NewMergeRegs);
2375 MIRBuilder.buildTrunc(DstReg, FinalMerge.getReg(0));
2376 }
2377
2378 MI.eraseFromParent();
2379 return Legalized;
2380}
2381
2383LegalizerHelper::widenScalarUnmergeValues(MachineInstr &MI, unsigned TypeIdx,
2384 LLT WideTy) {
2385 if (TypeIdx != 0)
2386 return UnableToLegalize;
2387
2388 int NumDst = MI.getNumOperands() - 1;
2389 Register SrcReg = MI.getOperand(NumDst).getReg();
2390 LLT SrcTy = MRI.getType(SrcReg);
2391 if (SrcTy.isVector())
2392 return UnableToLegalize;
2393
2394 Register Dst0Reg = MI.getOperand(0).getReg();
2395 LLT DstTy = MRI.getType(Dst0Reg);
2396 if (!DstTy.isScalar())
2397 return UnableToLegalize;
2398
2399 if (WideTy.getSizeInBits() >= SrcTy.getSizeInBits()) {
2400 if (SrcTy.isPointer()) {
2401 const DataLayout &DL = MIRBuilder.getDataLayout();
2402 if (DL.isNonIntegralAddressSpace(SrcTy.getAddressSpace())) {
2403 LLVM_DEBUG(
2404 dbgs() << "Not casting non-integral address space integer\n");
2405 return UnableToLegalize;
2406 }
2407
2408 SrcTy = LLT::scalar(SrcTy.getSizeInBits());
2409 SrcReg = MIRBuilder.buildPtrToInt(SrcTy, SrcReg).getReg(0);
2410 }
2411
2412 // Widen SrcTy to WideTy. This does not affect the result, but since the
2413 // user requested this size, it is probably better handled than SrcTy and
2414 // should reduce the total number of legalization artifacts.
2415 if (WideTy.getSizeInBits() > SrcTy.getSizeInBits()) {
2416 SrcTy = WideTy;
2417 SrcReg = MIRBuilder.buildAnyExt(WideTy, SrcReg).getReg(0);
2418 }
2419
2420 // Theres no unmerge type to target. Directly extract the bits from the
2421 // source type
2422 unsigned DstSize = DstTy.getSizeInBits();
2423
2424 if (SrcTy.isFloat()) {
2425 SrcReg = coerceToInteger(SrcReg);
2426 SrcTy = MRI.getType(SrcReg);
2427 }
2428
2429 MIRBuilder.buildTrunc(Dst0Reg, SrcReg);
2430 for (int I = 1; I != NumDst; ++I) {
2431 auto ShiftAmt = MIRBuilder.buildConstant(SrcTy, DstSize * I);
2432 auto Shr = MIRBuilder.buildLShr(SrcTy, SrcReg, ShiftAmt);
2433 MIRBuilder.buildTrunc(MI.getOperand(I), Shr);
2434 }
2435
2436 MI.eraseFromParent();
2437 return Legalized;
2438 }
2439
2440 // Extend the source to a wider type.
2441 LLT LCMTy = getLCMType(SrcTy, WideTy);
2442
2443 Register WideSrc = SrcReg;
2444 if (LCMTy.getSizeInBits() != SrcTy.getSizeInBits()) {
2445 // TODO: If this is an integral address space, cast to integer and anyext.
2446 if (SrcTy.isPointer()) {
2447 LLVM_DEBUG(dbgs() << "Widening pointer source types not implemented\n");
2448 return UnableToLegalize;
2449 }
2450
2451 WideSrc = MIRBuilder.buildAnyExt(LCMTy, WideSrc).getReg(0);
2452 }
2453
2454 auto Unmerge = MIRBuilder.buildUnmerge(WideTy, WideSrc);
2455
2456 // Create a sequence of unmerges and merges to the original results. Since we
2457 // may have widened the source, we will need to pad the results with dead defs
2458 // to cover the source register.
2459 // e.g. widen s48 to s64:
2460 // %1:_(s48), %2:_(s48) = G_UNMERGE_VALUES %0:_(s96)
2461 //
2462 // =>
2463 // %4:_(s192) = G_ANYEXT %0:_(s96)
2464 // %5:_(s64), %6, %7 = G_UNMERGE_VALUES %4 ; Requested unmerge
2465 // ; unpack to GCD type, with extra dead defs
2466 // %8:_(s16), %9, %10, %11 = G_UNMERGE_VALUES %5:_(s64)
2467 // %12:_(s16), %13, dead %14, dead %15 = G_UNMERGE_VALUES %6:_(s64)
2468 // dead %16:_(s16), dead %17, dead %18, dead %18 = G_UNMERGE_VALUES %7:_(s64)
2469 // %1:_(s48) = G_MERGE_VALUES %8:_(s16), %9, %10 ; Remerge to destination
2470 // %2:_(s48) = G_MERGE_VALUES %11:_(s16), %12, %13 ; Remerge to destination
2471 const LLT GCDTy = getGCDType(WideTy, DstTy);
2472 const int NumUnmerge = Unmerge->getNumOperands() - 1;
2473 const int PartsPerRemerge = DstTy.getSizeInBits() / GCDTy.getSizeInBits();
2474
2475 // Directly unmerge to the destination without going through a GCD type
2476 // if possible
2477 if (PartsPerRemerge == 1) {
2478 const int PartsPerUnmerge = WideTy.getSizeInBits() / DstTy.getSizeInBits();
2479
2480 for (int I = 0; I != NumUnmerge; ++I) {
2481 auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES);
2482
2483 for (int J = 0; J != PartsPerUnmerge; ++J) {
2484 int Idx = I * PartsPerUnmerge + J;
2485 if (Idx < NumDst)
2486 MIB.addDef(MI.getOperand(Idx).getReg());
2487 else {
2488 // Create dead def for excess components.
2489 MIB.addDef(MRI.createGenericVirtualRegister(DstTy));
2490 }
2491 }
2492
2493 MIB.addUse(Unmerge.getReg(I));
2494 }
2495 } else {
2496 SmallVector<Register, 16> Parts;
2497 for (int J = 0; J != NumUnmerge; ++J)
2498 extractGCDType(Parts, GCDTy, Unmerge.getReg(J));
2499
2500 SmallVector<Register, 8> RemergeParts;
2501 for (int I = 0; I != NumDst; ++I) {
2502 for (int J = 0; J < PartsPerRemerge; ++J) {
2503 const int Idx = I * PartsPerRemerge + J;
2504 RemergeParts.emplace_back(Parts[Idx]);
2505 }
2506
2507 MIRBuilder.buildMergeLikeInstr(MI.getOperand(I).getReg(), RemergeParts);
2508 RemergeParts.clear();
2509 }
2510 }
2511
2512 MI.eraseFromParent();
2513 return Legalized;
2514}
2515
2517LegalizerHelper::widenScalarExtract(MachineInstr &MI, unsigned TypeIdx,
2518 LLT WideTy) {
2519 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
2520 unsigned Offset = MI.getOperand(2).getImm();
2521
2522 if (TypeIdx == 0) {
2523 if (SrcTy.isVector() || DstTy.isVector())
2524 return UnableToLegalize;
2525
2526 SrcOp Src(SrcReg);
2527 if (SrcTy.isPointer()) {
2528 // Extracts from pointers can be handled only if they are really just
2529 // simple integers.
2530 const DataLayout &DL = MIRBuilder.getDataLayout();
2531 if (DL.isNonIntegralAddressSpace(SrcTy.getAddressSpace()))
2532 return UnableToLegalize;
2533
2534 LLT SrcAsIntTy = LLT::scalar(SrcTy.getSizeInBits());
2535 Src = MIRBuilder.buildPtrToInt(SrcAsIntTy, Src);
2536 SrcTy = SrcAsIntTy;
2537 }
2538
2539 if (DstTy.isPointer())
2540 return UnableToLegalize;
2541
2542 if (Offset == 0) {
2543 // Avoid a shift in the degenerate case.
2544 MIRBuilder.buildTrunc(DstReg,
2545 MIRBuilder.buildAnyExtOrTrunc(WideTy, Src));
2546 MI.eraseFromParent();
2547 return Legalized;
2548 }
2549
2550 // Do a shift in the source type.
2551 LLT ShiftTy = SrcTy;
2552 if (WideTy.getSizeInBits() > SrcTy.getSizeInBits()) {
2553 Src = MIRBuilder.buildAnyExt(WideTy, Src);
2554 ShiftTy = WideTy;
2555 }
2556
2557 auto LShr = MIRBuilder.buildLShr(
2558 ShiftTy, Src, MIRBuilder.buildConstant(ShiftTy, Offset));
2559 MIRBuilder.buildTrunc(DstReg, LShr);
2560 MI.eraseFromParent();
2561 return Legalized;
2562 }
2563
2564 if (SrcTy.isScalar()) {
2565 Observer.changingInstr(MI);
2566 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2567 Observer.changedInstr(MI);
2568 return Legalized;
2569 }
2570
2571 if (!SrcTy.isVector())
2572 return UnableToLegalize;
2573
2574 if (DstTy != SrcTy.getElementType())
2575 return UnableToLegalize;
2576
2577 if (Offset % SrcTy.getScalarSizeInBits() != 0)
2578 return UnableToLegalize;
2579
2580 Observer.changingInstr(MI);
2581 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2582
2583 MI.getOperand(2).setImm((WideTy.getSizeInBits() / SrcTy.getSizeInBits()) *
2584 Offset);
2585 widenScalarDst(MI, WideTy.getScalarType(), 0);
2586 Observer.changedInstr(MI);
2587 return Legalized;
2588}
2589
2591LegalizerHelper::widenScalarInsert(MachineInstr &MI, unsigned TypeIdx,
2592 LLT WideTy) {
2593 if (TypeIdx != 0 || WideTy.isVector())
2594 return UnableToLegalize;
2595 Observer.changingInstr(MI);
2596 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2597 widenScalarDst(MI, WideTy);
2598 Observer.changedInstr(MI);
2599 return Legalized;
2600}
2601
2603LegalizerHelper::widenScalarAddSubOverflow(MachineInstr &MI, unsigned TypeIdx,
2604 LLT WideTy) {
2605 unsigned Opcode;
2606 unsigned ExtOpcode;
2607 std::optional<Register> CarryIn;
2608 switch (MI.getOpcode()) {
2609 default:
2610 llvm_unreachable("Unexpected opcode!");
2611 case TargetOpcode::G_SADDO:
2612 Opcode = TargetOpcode::G_ADD;
2613 ExtOpcode = TargetOpcode::G_SEXT;
2614 break;
2615 case TargetOpcode::G_SSUBO:
2616 Opcode = TargetOpcode::G_SUB;
2617 ExtOpcode = TargetOpcode::G_SEXT;
2618 break;
2619 case TargetOpcode::G_UADDO:
2620 Opcode = TargetOpcode::G_ADD;
2621 ExtOpcode = TargetOpcode::G_ZEXT;
2622 break;
2623 case TargetOpcode::G_USUBO:
2624 Opcode = TargetOpcode::G_SUB;
2625 ExtOpcode = TargetOpcode::G_ZEXT;
2626 break;
2627 case TargetOpcode::G_SADDE:
2628 Opcode = TargetOpcode::G_UADDE;
2629 ExtOpcode = TargetOpcode::G_SEXT;
2630 CarryIn = MI.getOperand(4).getReg();
2631 break;
2632 case TargetOpcode::G_SSUBE:
2633 Opcode = TargetOpcode::G_USUBE;
2634 ExtOpcode = TargetOpcode::G_SEXT;
2635 CarryIn = MI.getOperand(4).getReg();
2636 break;
2637 case TargetOpcode::G_UADDE:
2638 Opcode = TargetOpcode::G_UADDE;
2639 ExtOpcode = TargetOpcode::G_ZEXT;
2640 CarryIn = MI.getOperand(4).getReg();
2641 break;
2642 case TargetOpcode::G_USUBE:
2643 Opcode = TargetOpcode::G_USUBE;
2644 ExtOpcode = TargetOpcode::G_ZEXT;
2645 CarryIn = MI.getOperand(4).getReg();
2646 break;
2647 }
2648
2649 if (TypeIdx == 1) {
2650 unsigned BoolExtOp = MIRBuilder.getBoolExtOp(WideTy.isVector(), false);
2651
2652 Observer.changingInstr(MI);
2653 if (CarryIn)
2654 widenScalarSrc(MI, WideTy, 4, BoolExtOp);
2655 widenScalarDst(MI, WideTy, 1);
2656
2657 Observer.changedInstr(MI);
2658 return Legalized;
2659 }
2660
2661 auto LHSExt = MIRBuilder.buildInstr(ExtOpcode, {WideTy}, {MI.getOperand(2)});
2662 auto RHSExt = MIRBuilder.buildInstr(ExtOpcode, {WideTy}, {MI.getOperand(3)});
2663 // Do the arithmetic in the larger type.
2664 Register NewOp;
2665 if (CarryIn) {
2666 LLT CarryOutTy = MRI.getType(MI.getOperand(1).getReg());
2667 NewOp = MIRBuilder
2668 .buildInstr(Opcode, {WideTy, CarryOutTy},
2669 {LHSExt, RHSExt, *CarryIn})
2670 .getReg(0);
2671 } else {
2672 NewOp = MIRBuilder.buildInstr(Opcode, {WideTy}, {LHSExt, RHSExt}).getReg(0);
2673 }
2674 LLT OrigTy = MRI.getType(MI.getOperand(0).getReg());
2675 auto TruncOp = MIRBuilder.buildTrunc(OrigTy, NewOp);
2676 auto ExtOp = MIRBuilder.buildInstr(ExtOpcode, {WideTy}, {TruncOp});
2677 // There is no overflow if the ExtOp is the same as NewOp.
2678 MIRBuilder.buildICmp(CmpInst::ICMP_NE, MI.getOperand(1), NewOp, ExtOp);
2679 // Now trunc the NewOp to the original result.
2680 MIRBuilder.buildTrunc(MI.getOperand(0), NewOp);
2681 MI.eraseFromParent();
2682 return Legalized;
2683}
2684
2686LegalizerHelper::widenScalarAddSubShlSat(MachineInstr &MI, unsigned TypeIdx,
2687 LLT WideTy) {
2688 bool IsSigned = MI.getOpcode() == TargetOpcode::G_SADDSAT ||
2689 MI.getOpcode() == TargetOpcode::G_SSUBSAT ||
2690 MI.getOpcode() == TargetOpcode::G_SSHLSAT;
2691 bool IsShift = MI.getOpcode() == TargetOpcode::G_SSHLSAT ||
2692 MI.getOpcode() == TargetOpcode::G_USHLSAT;
2693 // We can convert this to:
2694 // 1. Any extend iN to iM
2695 // 2. SHL by M-N
2696 // 3. [US][ADD|SUB|SHL]SAT
2697 // 4. L/ASHR by M-N
2698 //
2699 // It may be more efficient to lower this to a min and a max operation in
2700 // the higher precision arithmetic if the promoted operation isn't legal,
2701 // but this decision is up to the target's lowering request.
2702 Register DstReg = MI.getOperand(0).getReg();
2703
2704 unsigned NewBits = WideTy.getScalarSizeInBits();
2705 unsigned SHLAmount = NewBits - MRI.getType(DstReg).getScalarSizeInBits();
2706
2707 // Shifts must zero-extend the RHS to preserve the unsigned quantity, and
2708 // must not left shift the RHS to preserve the shift amount.
2709 auto LHS = MIRBuilder.buildAnyExt(WideTy, MI.getOperand(1));
2710 auto RHS = IsShift ? MIRBuilder.buildZExt(WideTy, MI.getOperand(2))
2711 : MIRBuilder.buildAnyExt(WideTy, MI.getOperand(2));
2712 auto ShiftK = MIRBuilder.buildConstant(WideTy, SHLAmount);
2713 auto ShiftL = MIRBuilder.buildShl(WideTy, LHS, ShiftK);
2714 auto ShiftR = IsShift ? RHS : MIRBuilder.buildShl(WideTy, RHS, ShiftK);
2715
2716 auto WideInst = MIRBuilder.buildInstr(MI.getOpcode(), {WideTy},
2717 {ShiftL, ShiftR}, MI.getFlags());
2718
2719 // Use a shift that will preserve the number of sign bits when the trunc is
2720 // folded away.
2721 auto Result = IsSigned ? MIRBuilder.buildAShr(WideTy, WideInst, ShiftK)
2722 : MIRBuilder.buildLShr(WideTy, WideInst, ShiftK);
2723
2724 MIRBuilder.buildTrunc(DstReg, Result);
2725 MI.eraseFromParent();
2726 return Legalized;
2727}
2728
2730LegalizerHelper::widenScalarMulo(MachineInstr &MI, unsigned TypeIdx,
2731 LLT WideTy) {
2732 if (TypeIdx == 1) {
2733 Observer.changingInstr(MI);
2734 widenScalarDst(MI, WideTy, 1);
2735 Observer.changedInstr(MI);
2736 return Legalized;
2737 }
2738
2739 bool IsSigned = MI.getOpcode() == TargetOpcode::G_SMULO;
2740 auto [Result, OriginalOverflow, LHS, RHS] = MI.getFirst4Regs();
2741 LLT SrcTy = MRI.getType(LHS);
2742 LLT OverflowTy = MRI.getType(OriginalOverflow);
2743 unsigned SrcBitWidth = SrcTy.getScalarSizeInBits();
2744
2745 // To determine if the result overflowed in the larger type, we extend the
2746 // input to the larger type, do the multiply (checking if it overflows),
2747 // then also check the high bits of the result to see if overflow happened
2748 // there.
2749 unsigned ExtOp = IsSigned ? TargetOpcode::G_SEXT : TargetOpcode::G_ZEXT;
2750 auto LeftOperand = MIRBuilder.buildInstr(ExtOp, {WideTy}, {LHS});
2751 auto RightOperand = MIRBuilder.buildInstr(ExtOp, {WideTy}, {RHS});
2752
2753 // Multiplication cannot overflow if the WideTy is >= 2 * original width,
2754 // so we don't need to check the overflow result of larger type Mulo.
2755 bool WideMulCanOverflow = WideTy.getScalarSizeInBits() < 2 * SrcBitWidth;
2756
2757 unsigned MulOpc =
2758 WideMulCanOverflow ? MI.getOpcode() : (unsigned)TargetOpcode::G_MUL;
2759
2760 MachineInstrBuilder Mulo;
2761 if (WideMulCanOverflow)
2762 Mulo = MIRBuilder.buildInstr(MulOpc, {WideTy, OverflowTy},
2763 {LeftOperand, RightOperand});
2764 else
2765 Mulo = MIRBuilder.buildInstr(MulOpc, {WideTy}, {LeftOperand, RightOperand});
2766
2767 auto Mul = Mulo->getOperand(0);
2768 MIRBuilder.buildTrunc(Result, Mul);
2769
2770 MachineInstrBuilder ExtResult;
2771 // Overflow occurred if it occurred in the larger type, or if the high part
2772 // of the result does not zero/sign-extend the low part. Check this second
2773 // possibility first.
2774 if (IsSigned) {
2775 // For signed, overflow occurred when the high part does not sign-extend
2776 // the low part.
2777 ExtResult = MIRBuilder.buildSExtInReg(WideTy, Mul, SrcBitWidth);
2778 } else {
2779 // Unsigned overflow occurred when the high part does not zero-extend the
2780 // low part.
2781 ExtResult = MIRBuilder.buildZExtInReg(WideTy, Mul, SrcBitWidth);
2782 }
2783
2784 if (WideMulCanOverflow) {
2785 auto Overflow =
2786 MIRBuilder.buildICmp(CmpInst::ICMP_NE, OverflowTy, Mul, ExtResult);
2787 // Finally check if the multiplication in the larger type itself overflowed.
2788 MIRBuilder.buildOr(OriginalOverflow, Mulo->getOperand(1), Overflow);
2789 } else {
2790 MIRBuilder.buildICmp(CmpInst::ICMP_NE, OriginalOverflow, Mul, ExtResult);
2791 }
2792 MI.eraseFromParent();
2793 return Legalized;
2794}
2795
2798 unsigned Opcode = MI.getOpcode();
2799 switch (Opcode) {
2800 default:
2801 return UnableToLegalize;
2802 case TargetOpcode::G_ATOMICRMW_XCHG:
2803 case TargetOpcode::G_ATOMICRMW_ADD:
2804 case TargetOpcode::G_ATOMICRMW_SUB:
2805 case TargetOpcode::G_ATOMICRMW_AND:
2806 case TargetOpcode::G_ATOMICRMW_OR:
2807 case TargetOpcode::G_ATOMICRMW_XOR:
2808 case TargetOpcode::G_ATOMICRMW_MIN:
2809 case TargetOpcode::G_ATOMICRMW_MAX:
2810 case TargetOpcode::G_ATOMICRMW_UMIN:
2811 case TargetOpcode::G_ATOMICRMW_UMAX:
2812 assert(TypeIdx == 0 && "atomicrmw with second scalar type");
2813 Observer.changingInstr(MI);
2814 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
2815 widenScalarDst(MI, WideTy, 0);
2816 Observer.changedInstr(MI);
2817 return Legalized;
2818 case TargetOpcode::G_ATOMIC_CMPXCHG:
2819 assert(TypeIdx == 0 && "G_ATOMIC_CMPXCHG with second scalar type");
2820 Observer.changingInstr(MI);
2821 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
2822 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ANYEXT);
2823 widenScalarDst(MI, WideTy, 0);
2824 Observer.changedInstr(MI);
2825 return Legalized;
2826 case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS:
2827 if (TypeIdx == 0) {
2828 Observer.changingInstr(MI);
2829 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ANYEXT);
2830 widenScalarSrc(MI, WideTy, 4, TargetOpcode::G_ANYEXT);
2831 widenScalarDst(MI, WideTy, 0);
2832 Observer.changedInstr(MI);
2833 return Legalized;
2834 }
2835 assert(TypeIdx == 1 &&
2836 "G_ATOMIC_CMPXCHG_WITH_SUCCESS with third scalar type");
2837 Observer.changingInstr(MI);
2838 widenScalarDst(MI, WideTy, 1);
2839 Observer.changedInstr(MI);
2840 return Legalized;
2841 case TargetOpcode::G_EXTRACT:
2842 return widenScalarExtract(MI, TypeIdx, WideTy);
2843 case TargetOpcode::G_INSERT:
2844 return widenScalarInsert(MI, TypeIdx, WideTy);
2845 case TargetOpcode::G_MERGE_VALUES:
2846 return widenScalarMergeValues(MI, TypeIdx, WideTy);
2847 case TargetOpcode::G_UNMERGE_VALUES:
2848 return widenScalarUnmergeValues(MI, TypeIdx, WideTy);
2849 case TargetOpcode::G_SADDO:
2850 case TargetOpcode::G_SSUBO:
2851 case TargetOpcode::G_UADDO:
2852 case TargetOpcode::G_USUBO:
2853 case TargetOpcode::G_SADDE:
2854 case TargetOpcode::G_SSUBE:
2855 case TargetOpcode::G_UADDE:
2856 case TargetOpcode::G_USUBE:
2857 return widenScalarAddSubOverflow(MI, TypeIdx, WideTy);
2858 case TargetOpcode::G_UMULO:
2859 case TargetOpcode::G_SMULO:
2860 return widenScalarMulo(MI, TypeIdx, WideTy);
2861 case TargetOpcode::G_SADDSAT:
2862 case TargetOpcode::G_SSUBSAT:
2863 case TargetOpcode::G_SSHLSAT:
2864 case TargetOpcode::G_UADDSAT:
2865 case TargetOpcode::G_USUBSAT:
2866 case TargetOpcode::G_USHLSAT:
2867 return widenScalarAddSubShlSat(MI, TypeIdx, WideTy);
2868 case TargetOpcode::G_CTTZ:
2869 case TargetOpcode::G_CTTZ_ZERO_POISON:
2870 case TargetOpcode::G_CTLZ:
2871 case TargetOpcode::G_CTLZ_ZERO_POISON:
2872 case TargetOpcode::G_CTLS:
2873 case TargetOpcode::G_CTPOP: {
2874 if (TypeIdx == 0) {
2875 Observer.changingInstr(MI);
2876 widenScalarDst(MI, WideTy, 0);
2877 Observer.changedInstr(MI);
2878 return Legalized;
2879 }
2880
2881 Register SrcReg = MI.getOperand(1).getReg();
2882
2883 // First extend the input.
2884 unsigned ExtOpc;
2885 switch (Opcode) {
2886 case TargetOpcode::G_CTTZ:
2887 case TargetOpcode::G_CTTZ_ZERO_POISON:
2888 case TargetOpcode::G_CTLZ_ZERO_POISON: // poison shifted out below
2889 ExtOpc = TargetOpcode::G_ANYEXT;
2890 break;
2891 case TargetOpcode::G_CTLS:
2892 ExtOpc = TargetOpcode::G_SEXT;
2893 break;
2894 default:
2895 ExtOpc = TargetOpcode::G_ZEXT;
2896 }
2897
2898 auto MIBSrc = MIRBuilder.buildInstr(ExtOpc, {WideTy}, {SrcReg});
2899 LLT CurTy = MRI.getType(SrcReg);
2900 unsigned NewOpc = Opcode;
2901 if (NewOpc == TargetOpcode::G_CTTZ) {
2902 // The count is the same in the larger type except if the original
2903 // value was zero. This can be handled by setting the bit just off
2904 // the top of the original type.
2905 auto TopBit = APInt::getOneBitSet(WideTy.getScalarSizeInBits(),
2906 CurTy.getScalarSizeInBits());
2907 MIBSrc = MIRBuilder.buildOr(
2908 WideTy, MIBSrc, MIRBuilder.buildConstant(WideTy, TopBit));
2909 // Now we know the operand is non-zero, use the more relaxed opcode.
2910 NewOpc = TargetOpcode::G_CTTZ_ZERO_POISON;
2911 }
2912
2913 unsigned SizeDiff =
2914 WideTy.getScalarSizeInBits() - CurTy.getScalarSizeInBits();
2915
2916 if (Opcode == TargetOpcode::G_CTLZ_ZERO_POISON) {
2917 // An optimization where the result is the CTLZ after the left shift by
2918 // (Difference in widety and current ty), that is,
2919 // MIBSrc = MIBSrc << (sizeinbits(WideTy) - sizeinbits(CurTy))
2920 // Result = ctlz MIBSrc
2921 MIBSrc = MIRBuilder.buildShl(WideTy, MIBSrc,
2922 MIRBuilder.buildConstant(WideTy, SizeDiff));
2923 }
2924
2925 // Perform the operation at the larger size.
2926 auto MIBNewOp = MIRBuilder.buildInstr(NewOpc, {WideTy}, {MIBSrc});
2927 // This is already the correct result for CTPOP and CTTZs
2928 if (Opcode == TargetOpcode::G_CTLZ || Opcode == TargetOpcode::G_CTLS) {
2929 // The correct result is NewOp - (Difference in widety and current ty).
2930 // At this stage SUB is guaranteed to be positive no-wrap,
2931 // that to be used in further KnownBits optimizations for CTLZ.
2932 MIBNewOp = MIRBuilder.buildSub(
2933 WideTy, MIBNewOp, MIRBuilder.buildConstant(WideTy, SizeDiff),
2934 Opcode == TargetOpcode::G_CTLZ
2935 ? std::optional<unsigned>(MachineInstr::NoUWrap)
2936 : std::nullopt);
2937 }
2938
2939 MIRBuilder.buildZExtOrTrunc(MI.getOperand(0), MIBNewOp);
2940 MI.eraseFromParent();
2941 return Legalized;
2942 }
2943 case TargetOpcode::G_BSWAP: {
2944 Observer.changingInstr(MI);
2945 Register DstReg = MI.getOperand(0).getReg();
2946
2947 Register ShrReg = MRI.createGenericVirtualRegister(WideTy);
2948 Register DstExt = MRI.createGenericVirtualRegister(WideTy);
2949 Register ShiftAmtReg = MRI.createGenericVirtualRegister(WideTy);
2950 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2951
2952 MI.getOperand(0).setReg(DstExt);
2953
2954 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2955
2956 LLT Ty = MRI.getType(DstReg);
2957 unsigned DiffBits = WideTy.getScalarSizeInBits() - Ty.getScalarSizeInBits();
2958 MIRBuilder.buildConstant(ShiftAmtReg, DiffBits);
2959 MIRBuilder.buildLShr(ShrReg, DstExt, ShiftAmtReg);
2960
2961 MIRBuilder.buildTrunc(DstReg, ShrReg);
2962 Observer.changedInstr(MI);
2963 return Legalized;
2964 }
2965 case TargetOpcode::G_BITREVERSE: {
2966 Observer.changingInstr(MI);
2967
2968 Register DstReg = MI.getOperand(0).getReg();
2969 LLT Ty = MRI.getType(DstReg);
2970 unsigned DiffBits = WideTy.getScalarSizeInBits() - Ty.getScalarSizeInBits();
2971
2972 Register DstExt = MRI.createGenericVirtualRegister(WideTy);
2973 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2974 MI.getOperand(0).setReg(DstExt);
2975 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
2976
2977 auto ShiftAmt = MIRBuilder.buildConstant(WideTy, DiffBits);
2978 auto Shift = MIRBuilder.buildLShr(WideTy, DstExt, ShiftAmt);
2979 MIRBuilder.buildTrunc(DstReg, Shift);
2980 Observer.changedInstr(MI);
2981 return Legalized;
2982 }
2983 case TargetOpcode::G_FREEZE:
2984 case TargetOpcode::G_CONSTANT_FOLD_BARRIER:
2985 Observer.changingInstr(MI);
2986 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
2987 widenScalarDst(MI, WideTy);
2988 Observer.changedInstr(MI);
2989 return Legalized;
2990
2991 case TargetOpcode::G_ABS:
2992 Observer.changingInstr(MI);
2993 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT);
2994 widenScalarDst(MI, WideTy);
2995 Observer.changedInstr(MI);
2996 return Legalized;
2997
2998 case TargetOpcode::G_ADD:
2999 case TargetOpcode::G_AND:
3000 case TargetOpcode::G_MUL:
3001 case TargetOpcode::G_OR:
3002 case TargetOpcode::G_XOR:
3003 case TargetOpcode::G_SUB:
3004 case TargetOpcode::G_SHUFFLE_VECTOR:
3005 // Perform operation at larger width (any extension is fines here, high bits
3006 // don't affect the result) and then truncate the result back to the
3007 // original type.
3008 Observer.changingInstr(MI);
3009 // The G_ANYEXTs below leave the new high bits unconstrained, so no-wrap and
3010 // disjoint claims proved at the narrow width no longer hold. Paths that
3011 // widen with value-preserving G_ZEXT/G_SEXT keep their flags.
3014 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3015 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
3016 widenScalarDst(MI, WideTy);
3017 Observer.changedInstr(MI);
3018 return Legalized;
3019
3020 case TargetOpcode::G_SBFX:
3021 case TargetOpcode::G_UBFX:
3022 Observer.changingInstr(MI);
3023
3024 if (TypeIdx == 0) {
3025 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3026 widenScalarDst(MI, WideTy);
3027 } else {
3028 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3029 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ZEXT);
3030 }
3031
3032 Observer.changedInstr(MI);
3033 return Legalized;
3034
3035 case TargetOpcode::G_SHL:
3036 Observer.changingInstr(MI);
3037
3038 if (TypeIdx == 0) {
3039 // Widening the result with G_ANYEXT invalidates the no-wrap flags, as in
3040 // the G_ADD/G_SUB/G_MUL case above. TypeIdx 1 widens only the shift
3041 // amount, which is value-preserving, so it keeps them.
3043 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3044 widenScalarDst(MI, WideTy);
3045 } else {
3046 assert(TypeIdx == 1);
3047 // The "number of bits to shift" operand must preserve its value as an
3048 // unsigned integer:
3049 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3050 }
3051
3052 Observer.changedInstr(MI);
3053 return Legalized;
3054
3055 case TargetOpcode::G_ROTR:
3056 case TargetOpcode::G_ROTL:
3057 if (TypeIdx != 1)
3058 return UnableToLegalize;
3059
3060 Observer.changingInstr(MI);
3061 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3062 Observer.changedInstr(MI);
3063 return Legalized;
3064
3065 case TargetOpcode::G_SDIV:
3066 case TargetOpcode::G_SREM:
3067 case TargetOpcode::G_SMIN:
3068 case TargetOpcode::G_SMAX:
3069 case TargetOpcode::G_ABDS:
3070 Observer.changingInstr(MI);
3071 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT);
3072 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
3073 widenScalarDst(MI, WideTy);
3074 Observer.changedInstr(MI);
3075 return Legalized;
3076
3077 case TargetOpcode::G_SDIVREM:
3078 Observer.changingInstr(MI);
3079 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
3080 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_SEXT);
3081 widenScalarDst(MI, WideTy);
3082 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), --MIRBuilder.getInsertPt());
3083 widenScalarDst(MI, WideTy, 1);
3084 Observer.changedInstr(MI);
3085 return Legalized;
3086
3087 case TargetOpcode::G_ASHR:
3088 case TargetOpcode::G_LSHR:
3089 Observer.changingInstr(MI);
3090
3091 if (TypeIdx == 0) {
3092 unsigned CvtOp = Opcode == TargetOpcode::G_ASHR ? TargetOpcode::G_SEXT
3093 : TargetOpcode::G_ZEXT;
3094
3095 widenScalarSrc(MI, WideTy, 1, CvtOp);
3096 widenScalarDst(MI, WideTy);
3097 } else {
3098 assert(TypeIdx == 1);
3099 // The "number of bits to shift" operand must preserve its value as an
3100 // unsigned integer:
3101 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3102 }
3103
3104 Observer.changedInstr(MI);
3105 return Legalized;
3106 case TargetOpcode::G_UDIV:
3107 case TargetOpcode::G_UREM:
3108 case TargetOpcode::G_ABDU:
3109 Observer.changingInstr(MI);
3110 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT);
3111 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3112 widenScalarDst(MI, WideTy);
3113 Observer.changedInstr(MI);
3114 return Legalized;
3115 case TargetOpcode::G_UDIVREM:
3116 Observer.changingInstr(MI);
3117 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3118 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ZEXT);
3119 widenScalarDst(MI, WideTy);
3120 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), --MIRBuilder.getInsertPt());
3121 widenScalarDst(MI, WideTy, 1);
3122 Observer.changedInstr(MI);
3123 return Legalized;
3124 case TargetOpcode::G_UMIN:
3125 case TargetOpcode::G_UMAX: {
3126 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
3127
3128 auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
3129 unsigned ExtOpc =
3130 TLI.isSExtCheaperThanZExt(getApproximateEVTForLLT(Ty, Ctx),
3131 getApproximateEVTForLLT(WideTy, Ctx))
3132 ? TargetOpcode::G_SEXT
3133 : TargetOpcode::G_ZEXT;
3134
3135 Observer.changingInstr(MI);
3136 widenScalarSrc(MI, WideTy, 1, ExtOpc);
3137 widenScalarSrc(MI, WideTy, 2, ExtOpc);
3138 widenScalarDst(MI, WideTy);
3139 Observer.changedInstr(MI);
3140 return Legalized;
3141 }
3142
3143 case TargetOpcode::G_SELECT:
3144 Observer.changingInstr(MI);
3145 if (TypeIdx == 0) {
3146 // Perform operation at larger width (any extension is fine here, high
3147 // bits don't affect the result) and then truncate the result back to the
3148 // original type.
3149 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
3150 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ANYEXT);
3151 widenScalarDst(MI, WideTy);
3152 } else {
3153 bool IsVec = MRI.getType(MI.getOperand(1).getReg()).isVector();
3154 // Explicit extension is required here since high bits affect the result.
3155 widenScalarSrc(MI, WideTy, 1, MIRBuilder.getBoolExtOp(IsVec, false));
3156 }
3157 Observer.changedInstr(MI);
3158 return Legalized;
3159
3160 case TargetOpcode::G_FPEXT:
3161 if (TypeIdx != 1)
3162 return UnableToLegalize;
3163
3164 Observer.changingInstr(MI);
3165 widenScalarSrcUsingFPExt(MI, WideTy, 1);
3166 Observer.changedInstr(MI);
3167 return Legalized;
3168 case TargetOpcode::G_FPTOSI:
3169 case TargetOpcode::G_FPTOUI:
3170 case TargetOpcode::G_INTRINSIC_LRINT:
3171 case TargetOpcode::G_INTRINSIC_LLRINT:
3172 case TargetOpcode::G_IS_FPCLASS:
3173 Observer.changingInstr(MI);
3174
3175 if (TypeIdx == 0)
3176 widenScalarDst(MI, WideTy);
3177 else
3178 widenScalarSrcUsingFPExt(MI, WideTy, 1);
3179
3180 Observer.changedInstr(MI);
3181 return Legalized;
3182 case TargetOpcode::G_SITOFP:
3183 Observer.changingInstr(MI);
3184
3185 if (TypeIdx == 0)
3186 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3187 else
3188 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_SEXT);
3189
3190 Observer.changedInstr(MI);
3191 return Legalized;
3192 case TargetOpcode::G_UITOFP:
3193 Observer.changingInstr(MI);
3194
3195 if (TypeIdx == 0)
3196 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3197 else
3198 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT);
3199
3200 Observer.changedInstr(MI);
3201 return Legalized;
3202 case TargetOpcode::G_FPTOSI_SAT:
3203 case TargetOpcode::G_FPTOUI_SAT:
3204 Observer.changingInstr(MI);
3205
3206 if (TypeIdx == 0) {
3207 Register OldDst = MI.getOperand(0).getReg();
3208 LLT Ty = MRI.getType(OldDst);
3209 Register ExtReg = MRI.createGenericVirtualRegister(WideTy);
3210 Register NewDst;
3211 MI.getOperand(0).setReg(ExtReg);
3212 uint64_t ShortBits = Ty.getScalarSizeInBits();
3213 uint64_t WideBits = WideTy.getScalarSizeInBits();
3214 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
3215 if (Opcode == TargetOpcode::G_FPTOSI_SAT) {
3216 // z = i16 fptosi_sat(a)
3217 // ->
3218 // x = i32 fptosi_sat(a)
3219 // y = smin(x, 32767)
3220 // z = smax(y, -32768)
3221 auto MaxVal = MIRBuilder.buildConstant(
3222 WideTy, APInt::getSignedMaxValue(ShortBits).sext(WideBits));
3223 auto MinVal = MIRBuilder.buildConstant(
3224 WideTy, APInt::getSignedMinValue(ShortBits).sext(WideBits));
3225 Register MidReg =
3226 MIRBuilder.buildSMin(WideTy, ExtReg, MaxVal).getReg(0);
3227 NewDst = MIRBuilder.buildSMax(WideTy, MidReg, MinVal).getReg(0);
3228 } else {
3229 // z = i16 fptoui_sat(a)
3230 // ->
3231 // x = i32 fptoui_sat(a)
3232 // y = smin(x, 65535)
3233 auto MaxVal = MIRBuilder.buildConstant(
3234 WideTy, APInt::getAllOnes(ShortBits).zext(WideBits));
3235 NewDst = MIRBuilder.buildUMin(WideTy, ExtReg, MaxVal).getReg(0);
3236 }
3237 MIRBuilder.buildTrunc(OldDst, NewDst);
3238 } else
3239 widenScalarSrcUsingFPExt(MI, WideTy, 1);
3240
3241 Observer.changedInstr(MI);
3242 return Legalized;
3243 case TargetOpcode::G_LOAD:
3244 case TargetOpcode::G_SEXTLOAD:
3245 case TargetOpcode::G_ZEXTLOAD:
3246 case TargetOpcode::G_FPEXTLOAD:
3247 Observer.changingInstr(MI);
3248 widenScalarDst(MI, WideTy);
3249 Observer.changedInstr(MI);
3250 return Legalized;
3251
3252 case TargetOpcode::G_STORE: {
3253 if (TypeIdx != 0)
3254 return UnableToLegalize;
3255
3256 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
3257 assert(!Ty.isPointerOrPointerVector() && "Can't widen type");
3258 if (!Ty.isScalar()) {
3259 // We need to widen the vector element type.
3260 Observer.changingInstr(MI);
3261 widenScalarSrc(MI, WideTy, 0, TargetOpcode::G_ANYEXT);
3262 // We also need to adjust the MMO to turn this into a truncating store.
3263 MachineMemOperand &MMO = **MI.memoperands_begin();
3264 MachineFunction &MF = MIRBuilder.getMF();
3265 auto *NewMMO = MF.getMachineMemOperand(&MMO, MMO.getPointerInfo(), Ty);
3266 MI.setMemRefs(MF, {NewMMO});
3267 Observer.changedInstr(MI);
3268 return Legalized;
3269 }
3270
3271 Observer.changingInstr(MI);
3272
3273 unsigned ExtType = Ty.getScalarSizeInBits() == 1 ?
3274 TargetOpcode::G_ZEXT : TargetOpcode::G_ANYEXT;
3275 widenScalarSrc(MI, WideTy, 0, ExtType);
3276
3277 Observer.changedInstr(MI);
3278 return Legalized;
3279 }
3280 case TargetOpcode::G_FPTRUNCSTORE:
3281 if (TypeIdx != 0)
3282 return UnableToLegalize;
3283 Observer.changingInstr(MI);
3284 widenScalarSrc(MI, WideTy, 0, TargetOpcode::G_FPEXT);
3285 Observer.changedInstr(MI);
3286 return Legalized;
3287 case TargetOpcode::G_CONSTANT: {
3288 MachineOperand &SrcMO = MI.getOperand(1);
3289 LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext();
3290 unsigned ExtOpc = LI.getExtOpcodeForWideningConstant(
3291 MRI.getType(MI.getOperand(0).getReg()));
3292 assert((ExtOpc == TargetOpcode::G_ZEXT || ExtOpc == TargetOpcode::G_SEXT ||
3293 ExtOpc == TargetOpcode::G_ANYEXT) &&
3294 "Illegal Extend");
3295 const APInt &SrcVal = SrcMO.getCImm()->getValue();
3296 const APInt &Val = (ExtOpc == TargetOpcode::G_SEXT)
3297 ? SrcVal.sext(WideTy.getSizeInBits())
3298 : SrcVal.zext(WideTy.getSizeInBits());
3299 Observer.changingInstr(MI);
3300 SrcMO.setCImm(ConstantInt::get(Ctx, Val));
3301
3302 widenScalarDst(MI, WideTy);
3303 Observer.changedInstr(MI);
3304 return Legalized;
3305 }
3306 case TargetOpcode::G_FCONSTANT: {
3307 // To avoid changing the bits of the constant due to extension to a larger
3308 // type and then using G_FPTRUNC, we simply convert to a G_CONSTANT.
3309 MachineOperand &SrcMO = MI.getOperand(1);
3310 APInt Val = SrcMO.getFPImm()->getValueAPF().bitcastToAPInt();
3311 MIRBuilder.setInstrAndDebugLoc(MI);
3312 auto IntCst = MIRBuilder.buildConstant(MI.getOperand(0).getReg(), Val);
3313 widenScalarDst(*IntCst, WideTy, 0, TargetOpcode::G_TRUNC);
3314 MI.eraseFromParent();
3315 return Legalized;
3316 }
3317 case TargetOpcode::G_IMPLICIT_DEF: {
3318 Observer.changingInstr(MI);
3319 widenScalarDst(MI, WideTy);
3320 Observer.changedInstr(MI);
3321 return Legalized;
3322 }
3323 case TargetOpcode::G_BRCOND:
3324 Observer.changingInstr(MI);
3325 widenScalarSrc(MI, WideTy, 0, MIRBuilder.getBoolExtOp(false, false));
3326 Observer.changedInstr(MI);
3327 return Legalized;
3328
3329 case TargetOpcode::G_FCMP:
3330 Observer.changingInstr(MI);
3331 if (TypeIdx == 0)
3332 widenScalarDst(MI, WideTy);
3333 else {
3334 widenScalarSrcUsingFPExt(MI, WideTy, 2);
3335 widenScalarSrcUsingFPExt(MI, WideTy, 3);
3336 }
3337 Observer.changedInstr(MI);
3338 return Legalized;
3339
3340 case TargetOpcode::G_ICMP:
3341 Observer.changingInstr(MI);
3342 if (TypeIdx == 0)
3343 widenScalarDst(MI, WideTy);
3344 else {
3345 LLT SrcTy = MRI.getType(MI.getOperand(2).getReg());
3346 CmpInst::Predicate Pred =
3347 static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate());
3348
3349 auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
3350 unsigned ExtOpcode =
3351 (CmpInst::isSigned(Pred) ||
3352 TLI.isSExtCheaperThanZExt(getApproximateEVTForLLT(SrcTy, Ctx),
3353 getApproximateEVTForLLT(WideTy, Ctx)))
3354 ? TargetOpcode::G_SEXT
3355 : TargetOpcode::G_ZEXT;
3356 widenScalarSrc(MI, WideTy, 2, ExtOpcode);
3357 widenScalarSrc(MI, WideTy, 3, ExtOpcode);
3358 }
3359 Observer.changedInstr(MI);
3360 return Legalized;
3361
3362 case TargetOpcode::G_PTR_ADD:
3363 assert(TypeIdx == 1 && "unable to legalize pointer of G_PTR_ADD");
3364 Observer.changingInstr(MI);
3365 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
3366 Observer.changedInstr(MI);
3367 return Legalized;
3368
3369 case TargetOpcode::G_PHI: {
3370 assert(TypeIdx == 0 && "Expecting only Idx 0");
3371
3372 Observer.changingInstr(MI);
3373 for (unsigned I = 1; I < MI.getNumOperands(); I += 2) {
3374 MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB();
3375 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminatorForward());
3376 widenScalarSrc(MI, WideTy, I, TargetOpcode::G_ANYEXT);
3377 }
3378
3379 MachineBasicBlock &MBB = *MI.getParent();
3380 MIRBuilder.setInsertPt(MBB, --MBB.getFirstNonPHI());
3381 widenScalarDst(MI, WideTy);
3382 Observer.changedInstr(MI);
3383 return Legalized;
3384 }
3385 case TargetOpcode::G_EXTRACT_VECTOR_ELT: {
3386 if (TypeIdx == 0) {
3387 Register VecReg = MI.getOperand(1).getReg();
3388 LLT VecTy = MRI.getType(VecReg);
3389 Observer.changingInstr(MI);
3390
3391 widenScalarSrc(MI, LLT::vector(VecTy.getElementCount(), WideTy), 1,
3392 TargetOpcode::G_ANYEXT);
3393
3394 widenScalarDst(MI, WideTy, 0);
3395 Observer.changedInstr(MI);
3396 return Legalized;
3397 }
3398
3399 if (TypeIdx != 2)
3400 return UnableToLegalize;
3401 Observer.changingInstr(MI);
3402 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3403 Observer.changedInstr(MI);
3404 return Legalized;
3405 }
3406 case TargetOpcode::G_INSERT_VECTOR_ELT: {
3407 if (TypeIdx == 0) {
3408 Observer.changingInstr(MI);
3409 const LLT WideEltTy = WideTy.getElementType();
3410
3411 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3412 widenScalarSrc(MI, WideEltTy, 2, TargetOpcode::G_ANYEXT);
3413 widenScalarDst(MI, WideTy, 0);
3414 Observer.changedInstr(MI);
3415 return Legalized;
3416 }
3417
3418 if (TypeIdx == 1) {
3419 Observer.changingInstr(MI);
3420
3421 Register VecReg = MI.getOperand(1).getReg();
3422 LLT VecTy = MRI.getType(VecReg);
3423 LLT WideVecTy = VecTy.changeVectorElementType(WideTy);
3424
3425 widenScalarSrc(MI, WideVecTy, 1, TargetOpcode::G_ANYEXT);
3426 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ANYEXT);
3427 widenScalarDst(MI, WideVecTy, 0);
3428 Observer.changedInstr(MI);
3429 return Legalized;
3430 }
3431
3432 if (TypeIdx == 2) {
3433 Observer.changingInstr(MI);
3434 widenScalarSrc(MI, WideTy, 3, TargetOpcode::G_ZEXT);
3435 Observer.changedInstr(MI);
3436 return Legalized;
3437 }
3438
3439 return UnableToLegalize;
3440 }
3441 case TargetOpcode::G_FADD:
3442 case TargetOpcode::G_FMUL:
3443 case TargetOpcode::G_FSUB:
3444 case TargetOpcode::G_FMA:
3445 case TargetOpcode::G_FMAD:
3446 case TargetOpcode::G_FNEG:
3447 case TargetOpcode::G_FABS:
3448 case TargetOpcode::G_FCANONICALIZE:
3449 case TargetOpcode::G_FMINNUM:
3450 case TargetOpcode::G_FMAXNUM:
3451 case TargetOpcode::G_FMINNUM_IEEE:
3452 case TargetOpcode::G_FMAXNUM_IEEE:
3453 case TargetOpcode::G_FMINIMUM:
3454 case TargetOpcode::G_FMAXIMUM:
3455 case TargetOpcode::G_FMINIMUMNUM:
3456 case TargetOpcode::G_FMAXIMUMNUM:
3457 case TargetOpcode::G_FDIV:
3458 case TargetOpcode::G_FREM:
3459 case TargetOpcode::G_FCEIL:
3460 case TargetOpcode::G_FFLOOR:
3461 case TargetOpcode::G_FCOS:
3462 case TargetOpcode::G_FSIN:
3463 case TargetOpcode::G_FTAN:
3464 case TargetOpcode::G_FACOS:
3465 case TargetOpcode::G_FASIN:
3466 case TargetOpcode::G_FATAN:
3467 case TargetOpcode::G_FATAN2:
3468 case TargetOpcode::G_FCOSH:
3469 case TargetOpcode::G_FSINH:
3470 case TargetOpcode::G_FTANH:
3471 case TargetOpcode::G_FLOG10:
3472 case TargetOpcode::G_FLOG:
3473 case TargetOpcode::G_FLOG2:
3474 case TargetOpcode::G_FRINT:
3475 case TargetOpcode::G_FNEARBYINT:
3476 case TargetOpcode::G_FSQRT:
3477 case TargetOpcode::G_FEXP:
3478 case TargetOpcode::G_FEXP2:
3479 case TargetOpcode::G_FEXP10:
3480 case TargetOpcode::G_FPOW:
3481 case TargetOpcode::G_INTRINSIC_TRUNC:
3482 case TargetOpcode::G_INTRINSIC_ROUND:
3483 case TargetOpcode::G_INTRINSIC_ROUNDEVEN:
3484 assert(TypeIdx == 0);
3485 Observer.changingInstr(MI);
3486
3487 for (unsigned I = 1, E = MI.getNumOperands(); I != E; ++I)
3488 widenScalarSrcUsingFPExt(MI, WideTy, I);
3489
3490 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3491 Observer.changedInstr(MI);
3492 return Legalized;
3493 case TargetOpcode::G_FMODF: {
3494 Observer.changingInstr(MI);
3495 widenScalarSrcUsingFPExt(MI, WideTy, 2);
3496
3497 widenScalarDstUsingFPTrunc(MI, WideTy, 1);
3498 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), --MIRBuilder.getInsertPt());
3499 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3500 Observer.changedInstr(MI);
3501 return Legalized;
3502 }
3503 case TargetOpcode::G_FPOWI:
3504 case TargetOpcode::G_FLDEXP:
3505 case TargetOpcode::G_STRICT_FLDEXP: {
3506 if (TypeIdx == 0) {
3507 if (Opcode == TargetOpcode::G_STRICT_FLDEXP)
3508 return UnableToLegalize;
3509
3510 Observer.changingInstr(MI);
3511 widenScalarSrcUsingFPExt(MI, WideTy, 1);
3512 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3513 Observer.changedInstr(MI);
3514 return Legalized;
3515 }
3516
3517 if (TypeIdx == 1) {
3518 // For some reason SelectionDAG tries to promote to a libcall without
3519 // actually changing the integer type for promotion.
3520 Observer.changingInstr(MI);
3521 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_SEXT);
3522 Observer.changedInstr(MI);
3523 return Legalized;
3524 }
3525
3526 return UnableToLegalize;
3527 }
3528 case TargetOpcode::G_FFREXP: {
3529 Observer.changingInstr(MI);
3530
3531 if (TypeIdx == 0) {
3532 widenScalarSrcUsingFPExt(MI, WideTy, 2);
3533 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3534 } else {
3535 widenScalarDst(MI, WideTy, 1);
3536 }
3537
3538 Observer.changedInstr(MI);
3539 return Legalized;
3540 }
3541 case TargetOpcode::G_LROUND:
3542 case TargetOpcode::G_LLROUND:
3543 Observer.changingInstr(MI);
3544
3545 if (TypeIdx == 0)
3546 widenScalarDst(MI, WideTy);
3547 else
3548 widenScalarSrcUsingFPExt(MI, WideTy, 1);
3549
3550 Observer.changedInstr(MI);
3551 return Legalized;
3552
3553 case TargetOpcode::G_INTTOPTR:
3554 if (TypeIdx != 1)
3555 return UnableToLegalize;
3556
3557 Observer.changingInstr(MI);
3558 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ZEXT);
3559 Observer.changedInstr(MI);
3560 return Legalized;
3561 case TargetOpcode::G_PTRTOINT:
3562 if (TypeIdx != 0)
3563 return UnableToLegalize;
3564
3565 Observer.changingInstr(MI);
3566 widenScalarDst(MI, WideTy, 0);
3567 Observer.changedInstr(MI);
3568 return Legalized;
3569 case TargetOpcode::G_BUILD_VECTOR: {
3570 Observer.changingInstr(MI);
3571
3572 const LLT WideEltTy = TypeIdx == 1 ? WideTy : WideTy.getElementType();
3573 for (int I = 1, E = MI.getNumOperands(); I != E; ++I)
3574 widenScalarSrc(MI, WideEltTy, I, TargetOpcode::G_ANYEXT);
3575
3576 // Avoid changing the result vector type if the source element type was
3577 // requested.
3578 if (TypeIdx == 1) {
3579 MI.setDesc(MIRBuilder.getTII().get(TargetOpcode::G_BUILD_VECTOR_TRUNC));
3580 } else {
3581 widenScalarDst(MI, WideTy, 0);
3582 }
3583
3584 Observer.changedInstr(MI);
3585 return Legalized;
3586 }
3587 case TargetOpcode::G_SEXT_INREG:
3588 if (TypeIdx != 0)
3589 return UnableToLegalize;
3590
3591 Observer.changingInstr(MI);
3592 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3593 widenScalarDst(MI, WideTy, 0, TargetOpcode::G_TRUNC);
3594 Observer.changedInstr(MI);
3595 return Legalized;
3596 case TargetOpcode::G_PTRMASK: {
3597 if (TypeIdx != 1)
3598 return UnableToLegalize;
3599 Observer.changingInstr(MI);
3600 widenScalarSrc(MI, WideTy, 2, TargetOpcode::G_ZEXT);
3601 Observer.changedInstr(MI);
3602 return Legalized;
3603 }
3604 case TargetOpcode::G_VECREDUCE_ADD: {
3605 if (TypeIdx != 1)
3606 return UnableToLegalize;
3607 Observer.changingInstr(MI);
3608 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3609 widenScalarDst(MI, WideTy.getScalarType(), 0, TargetOpcode::G_TRUNC);
3610 Observer.changedInstr(MI);
3611 return Legalized;
3612 }
3613 case TargetOpcode::G_VECREDUCE_FADD:
3614 case TargetOpcode::G_VECREDUCE_FMUL:
3615 case TargetOpcode::G_VECREDUCE_FMIN:
3616 case TargetOpcode::G_VECREDUCE_FMAX:
3617 case TargetOpcode::G_VECREDUCE_FMINIMUM:
3618 case TargetOpcode::G_VECREDUCE_FMAXIMUM: {
3619 if (TypeIdx != 0)
3620 return UnableToLegalize;
3621 Observer.changingInstr(MI);
3622 Register VecReg = MI.getOperand(1).getReg();
3623 LLT VecTy = MRI.getType(VecReg);
3624 LLT WideVecTy = VecTy.changeElementType(WideTy);
3625 widenScalarSrcUsingFPExt(MI, WideVecTy, 1);
3626 widenScalarDstUsingFPTrunc(MI, WideTy, 0);
3627 Observer.changedInstr(MI);
3628 return Legalized;
3629 }
3630 case TargetOpcode::G_VSCALE: {
3631 MachineOperand &SrcMO = MI.getOperand(1);
3632 LLVMContext &Ctx = MIRBuilder.getMF().getFunction().getContext();
3633 const APInt &SrcVal = SrcMO.getCImm()->getValue();
3634 // The CImm is always a signed value
3635 const APInt Val = SrcVal.sext(WideTy.getSizeInBits());
3636 Observer.changingInstr(MI);
3637 SrcMO.setCImm(ConstantInt::get(Ctx, Val));
3638 widenScalarDst(MI, WideTy);
3639 Observer.changedInstr(MI);
3640 return Legalized;
3641 }
3642 case TargetOpcode::G_SPLAT_VECTOR: {
3643 if (TypeIdx != 1)
3644 return UnableToLegalize;
3645
3646 Observer.changingInstr(MI);
3647 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3648 Observer.changedInstr(MI);
3649 return Legalized;
3650 }
3651 case TargetOpcode::G_INSERT_SUBVECTOR: {
3652 if (TypeIdx != 0)
3653 return UnableToLegalize;
3654
3656 Register BigVec = IS.getBigVec();
3657 Register SubVec = IS.getSubVec();
3658
3659 LLT SubVecTy = MRI.getType(SubVec);
3660 LLT SubVecWideTy = SubVecTy.changeElementType(WideTy.getElementType());
3661
3662 // Widen the G_INSERT_SUBVECTOR
3663 auto BigZExt = MIRBuilder.buildZExt(WideTy, BigVec);
3664 auto SubZExt = MIRBuilder.buildZExt(SubVecWideTy, SubVec);
3665 auto WideInsert = MIRBuilder.buildInsertSubvector(WideTy, BigZExt, SubZExt,
3666 IS.getIndexImm());
3667
3668 // Truncate back down
3669 auto SplatZero = MIRBuilder.buildSplatVector(
3670 WideTy, MIRBuilder.buildConstant(WideTy.getElementType(), 0));
3671 MIRBuilder.buildICmp(CmpInst::Predicate::ICMP_NE, IS.getReg(0), WideInsert,
3672 SplatZero);
3673
3674 MI.eraseFromParent();
3675
3676 return Legalized;
3677 }
3678 case TargetOpcode::G_BITCAST:
3679 if (WideTy.isVector())
3680 return UnableToLegalize;
3681 Observer.changingInstr(MI);
3682 if (TypeIdx == 0)
3683 widenScalarDst(MI, WideTy, 0, TargetOpcode::G_TRUNC);
3684 else
3685 widenScalarSrc(MI, WideTy, 1, TargetOpcode::G_ANYEXT);
3686 Observer.changedInstr(MI);
3687
3688 Register Dst = MI.getOperand(0).getReg();
3689 Register Src = MI.getOperand(1).getReg();
3690 if (MRI.getType(Dst) == MRI.getType(Src)) {
3691 Observer.changingAllUsesOfReg(MRI, Dst);
3692 MRI.replaceRegWith(Dst, Src);
3693 Observer.finishedChangingAllUsesOfReg();
3694 MI.eraseFromParent();
3695 }
3696
3697 return Legalized;
3698 }
3699}
3700
3702 MachineIRBuilder &B, Register Src, LLT Ty) {
3703 auto Unmerge = B.buildUnmerge(Ty, Src);
3704 for (int I = 0, E = Unmerge->getNumOperands() - 1; I != E; ++I)
3705 Pieces.push_back(Unmerge.getReg(I));
3706}
3707
3708static void emitLoadFromConstantPool(Register DstReg, const Constant *ConstVal,
3709 MachineIRBuilder &MIRBuilder) {
3710 MachineRegisterInfo &MRI = *MIRBuilder.getMRI();
3711 MachineFunction &MF = MIRBuilder.getMF();
3712 const DataLayout &DL = MIRBuilder.getDataLayout();
3713 unsigned AddrSpace = DL.getDefaultGlobalsAddressSpace();
3714 LLT AddrPtrTy = LLT::pointer(AddrSpace, DL.getPointerSizeInBits(AddrSpace));
3715 LLT DstLLT = MRI.getType(DstReg);
3716
3717 Align Alignment(DL.getABITypeAlign(ConstVal->getType()));
3718
3719 auto Addr = MIRBuilder.buildConstantPool(
3720 AddrPtrTy,
3721 MF.getConstantPool()->getConstantPoolIndex(ConstVal, Alignment));
3722
3723 MachineMemOperand *MMO =
3725 MachineMemOperand::MOLoad, DstLLT, Alignment);
3726
3727 MIRBuilder.buildLoadInstr(TargetOpcode::G_LOAD, DstReg, Addr, *MMO);
3728}
3729
3732 const MachineOperand &ConstOperand = MI.getOperand(1);
3733 const Constant *ConstantVal = ConstOperand.getCImm();
3734
3735 emitLoadFromConstantPool(MI.getOperand(0).getReg(), ConstantVal, MIRBuilder);
3736 MI.eraseFromParent();
3737
3738 return Legalized;
3739}
3740
3743 const MachineOperand &ConstOperand = MI.getOperand(1);
3744 const Constant *ConstantVal = ConstOperand.getFPImm();
3745
3746 emitLoadFromConstantPool(MI.getOperand(0).getReg(), ConstantVal, MIRBuilder);
3747 MI.eraseFromParent();
3748
3749 return Legalized;
3750}
3751
3754 auto [Dst, DstTy, Src, SrcTy] = MI.getFirst2RegLLTs();
3755 if (SrcTy.isVector()) {
3756 LLT SrcEltTy = SrcTy.getElementType();
3758
3759 if (DstTy.isVector()) {
3760 int NumDstElt = DstTy.getNumElements();
3761 int NumSrcElt = SrcTy.getNumElements();
3762
3763 LLT DstEltTy = DstTy.getElementType();
3764 LLT DstCastTy = DstEltTy; // Intermediate bitcast result type
3765 LLT SrcPartTy = SrcEltTy; // Original unmerge result type.
3766
3767 // If there's an element size mismatch, insert intermediate casts to match
3768 // the result element type.
3769 if (NumSrcElt < NumDstElt) { // Source element type is larger.
3770 // %1:_(<4 x s8>) = G_BITCAST %0:_(<2 x s16>)
3771 //
3772 // =>
3773 //
3774 // %2:_(s16), %3:_(s16) = G_UNMERGE_VALUES %0
3775 // %3:_(<2 x s8>) = G_BITCAST %2
3776 // %4:_(<2 x s8>) = G_BITCAST %3
3777 // %1:_(<4 x s16>) = G_CONCAT_VECTORS %3, %4
3778 DstCastTy = DstTy.changeVectorElementCount(
3779 ElementCount::getFixed(NumDstElt / NumSrcElt));
3780 SrcPartTy = SrcEltTy;
3781 } else if (NumSrcElt > NumDstElt) { // Source element type is smaller.
3782 //
3783 // %1:_(<2 x s16>) = G_BITCAST %0:_(<4 x s8>)
3784 //
3785 // =>
3786 //
3787 // %2:_(<2 x s8>), %3:_(<2 x s8>) = G_UNMERGE_VALUES %0
3788 // %3:_(s16) = G_BITCAST %2
3789 // %4:_(s16) = G_BITCAST %3
3790 // %1:_(<2 x s16>) = G_BUILD_VECTOR %3, %4
3791 SrcPartTy = SrcTy.changeVectorElementCount(
3792 ElementCount::getFixed(NumSrcElt / NumDstElt));
3793 DstCastTy = DstEltTy;
3794 }
3795
3796 getUnmergePieces(SrcRegs, MIRBuilder, Src, SrcPartTy);
3797 for (Register &SrcReg : SrcRegs)
3798 SrcReg = MIRBuilder.buildBitcast(DstCastTy, SrcReg).getReg(0);
3799 } else
3800 getUnmergePieces(SrcRegs, MIRBuilder, Src, SrcEltTy);
3801
3802 MIRBuilder.buildMergeLikeInstr(Dst, SrcRegs);
3803 MI.eraseFromParent();
3804 return Legalized;
3805 }
3806
3807 if (DstTy.isVector()) {
3809 getUnmergePieces(SrcRegs, MIRBuilder, Src, DstTy.getElementType());
3810 MIRBuilder.buildMergeLikeInstr(Dst, SrcRegs);
3811 MI.eraseFromParent();
3812 return Legalized;
3813 }
3814
3815 return UnableToLegalize;
3816}
3817
3818/// Figure out the bit offset into a register when coercing a vector index for
3819/// the wide element type. This is only for the case when promoting vector to
3820/// one with larger elements.
3821//
3822///
3823/// %offset_idx = G_AND %idx, ~(-1 << Log2(DstEltSize / SrcEltSize))
3824/// %offset_bits = G_SHL %offset_idx, Log2(SrcEltSize)
3826 Register Idx,
3827 unsigned NewEltSize,
3828 unsigned OldEltSize) {
3829 const unsigned Log2EltRatio = Log2_32(NewEltSize / OldEltSize);
3830 LLT IdxTy = B.getMRI()->getType(Idx);
3831
3832 // Now figure out the amount we need to shift to get the target bits.
3833 auto OffsetMask = B.buildConstant(
3834 IdxTy, ~(APInt::getAllOnes(IdxTy.getSizeInBits()) << Log2EltRatio));
3835 auto OffsetIdx = B.buildAnd(IdxTy, Idx, OffsetMask);
3836 return B.buildShl(IdxTy, OffsetIdx,
3837 B.buildConstant(IdxTy, Log2_32(OldEltSize))).getReg(0);
3838}
3839
3840/// Perform a G_EXTRACT_VECTOR_ELT in a different sized vector element. If this
3841/// is casting to a vector with a smaller element size, perform multiple element
3842/// extracts and merge the results. If this is coercing to a vector with larger
3843/// elements, index the bitcasted vector and extract the target element with bit
3844/// operations. This is intended to force the indexing in the native register
3845/// size for architectures that can dynamically index the register file.
3848 LLT CastTy) {
3849 if (TypeIdx != 1)
3850 return UnableToLegalize;
3851
3852 auto [Dst, DstTy, SrcVec, SrcVecTy, Idx, IdxTy] = MI.getFirst3RegLLTs();
3853
3854 LLT SrcEltTy = SrcVecTy.getElementType();
3855 unsigned NewNumElts = CastTy.isVector() ? CastTy.getNumElements() : 1;
3856 unsigned OldNumElts = SrcVecTy.getNumElements();
3857
3858 LLT NewEltTy = CastTy.getScalarType();
3859 Register CastVec = MIRBuilder.buildBitcast(CastTy, SrcVec).getReg(0);
3860
3861 const unsigned NewEltSize = NewEltTy.getSizeInBits();
3862 const unsigned OldEltSize = SrcEltTy.getSizeInBits();
3863 if (NewNumElts > OldNumElts) {
3864 // Decreasing the vector element size
3865 //
3866 // e.g. i64 = extract_vector_elt x:v2i64, y:i32
3867 // =>
3868 // v4i32:castx = bitcast x:v2i64
3869 //
3870 // i64 = bitcast
3871 // (v2i32 build_vector (i32 (extract_vector_elt castx, (2 * y))),
3872 // (i32 (extract_vector_elt castx, (2 * y + 1)))
3873 //
3874 if (NewNumElts % OldNumElts != 0)
3875 return UnableToLegalize;
3876
3877 // Type of the intermediate result vector.
3878 const unsigned NewEltsPerOldElt = NewNumElts / OldNumElts;
3879 LLT MidTy =
3880 CastTy.changeElementCount(ElementCount::getFixed(NewEltsPerOldElt));
3881
3882 auto NewEltsPerOldEltK = MIRBuilder.buildConstant(IdxTy, NewEltsPerOldElt);
3883
3884 SmallVector<Register, 8> NewOps(NewEltsPerOldElt);
3885 auto NewBaseIdx = MIRBuilder.buildMul(IdxTy, Idx, NewEltsPerOldEltK);
3886
3887 for (unsigned I = 0; I < NewEltsPerOldElt; ++I) {
3888 auto IdxOffset = MIRBuilder.buildConstant(IdxTy, I);
3889 auto TmpIdx = MIRBuilder.buildAdd(IdxTy, NewBaseIdx, IdxOffset);
3890 auto Elt = MIRBuilder.buildExtractVectorElement(NewEltTy, CastVec, TmpIdx);
3891 NewOps[I] = Elt.getReg(0);
3892 }
3893
3894 auto NewVec = MIRBuilder.buildBuildVector(MidTy, NewOps);
3895 MIRBuilder.buildBitcast(Dst, NewVec);
3896 MI.eraseFromParent();
3897 return Legalized;
3898 }
3899
3900 if (NewNumElts < OldNumElts) {
3901 if (NewEltSize % OldEltSize != 0)
3902 return UnableToLegalize;
3903
3904 // This only depends on powers of 2 because we use bit tricks to figure out
3905 // the bit offset we need to shift to get the target element. A general
3906 // expansion could emit division/multiply.
3907 if (!isPowerOf2_32(NewEltSize / OldEltSize))
3908 return UnableToLegalize;
3909
3910 // Increasing the vector element size.
3911 // %elt:_(small_elt) = G_EXTRACT_VECTOR_ELT %vec:_(<N x small_elt>), %idx
3912 //
3913 // =>
3914 //
3915 // %cast = G_BITCAST %vec
3916 // %scaled_idx = G_LSHR %idx, Log2(DstEltSize / SrcEltSize)
3917 // %wide_elt = G_EXTRACT_VECTOR_ELT %cast, %scaled_idx
3918 // %offset_idx = G_AND %idx, ~(-1 << Log2(DstEltSize / SrcEltSize))
3919 // %offset_bits = G_SHL %offset_idx, Log2(SrcEltSize)
3920 // %elt_bits = G_LSHR %wide_elt, %offset_bits
3921 // %elt = G_TRUNC %elt_bits
3922
3923 const unsigned Log2EltRatio = Log2_32(NewEltSize / OldEltSize);
3924 auto Log2Ratio = MIRBuilder.buildConstant(IdxTy, Log2EltRatio);
3925
3926 // Divide to get the index in the wider element type.
3927 auto ScaledIdx = MIRBuilder.buildLShr(IdxTy, Idx, Log2Ratio);
3928
3929 Register WideElt = CastVec;
3930 if (CastTy.isVector()) {
3931 WideElt = MIRBuilder.buildExtractVectorElement(NewEltTy, CastVec,
3932 ScaledIdx).getReg(0);
3933 }
3934
3935 // Compute the bit offset into the register of the target element.
3937 MIRBuilder, Idx, NewEltSize, OldEltSize);
3938
3939 // Shift the wide element to get the target element.
3940 auto ExtractedBits = MIRBuilder.buildLShr(NewEltTy, WideElt, OffsetBits);
3941 MIRBuilder.buildTrunc(Dst, ExtractedBits);
3942 MI.eraseFromParent();
3943 return Legalized;
3944 }
3945
3946 return UnableToLegalize;
3947}
3948
3949/// Emit code to insert \p InsertReg into \p TargetRet at \p OffsetBits in \p
3950/// TargetReg, while preserving other bits in \p TargetReg.
3951///
3952/// (InsertReg << Offset) | (TargetReg & ~(-1 >> InsertReg.size()) << Offset)
3954 Register TargetReg, Register InsertReg,
3955 Register OffsetBits) {
3956 LLT TargetTy = B.getMRI()->getType(TargetReg);
3957 LLT InsertTy = B.getMRI()->getType(InsertReg);
3958 auto ZextVal = B.buildZExt(TargetTy, InsertReg);
3959 auto ShiftedInsertVal = B.buildShl(TargetTy, ZextVal, OffsetBits);
3960
3961 // Produce a bitmask of the value to insert
3962 auto EltMask = B.buildConstant(
3963 TargetTy, APInt::getLowBitsSet(TargetTy.getSizeInBits(),
3964 InsertTy.getSizeInBits()));
3965 // Shift it into position
3966 auto ShiftedMask = B.buildShl(TargetTy, EltMask, OffsetBits);
3967 auto InvShiftedMask = B.buildNot(TargetTy, ShiftedMask);
3968
3969 // Clear out the bits in the wide element
3970 auto MaskedOldElt = B.buildAnd(TargetTy, TargetReg, InvShiftedMask);
3971
3972 // The value to insert has all zeros already, so stick it into the masked
3973 // wide element.
3974 return B.buildOr(TargetTy, MaskedOldElt, ShiftedInsertVal).getReg(0);
3975}
3976
3977/// Perform a G_INSERT_VECTOR_ELT in a different sized vector element. If this
3978/// is increasing the element size, perform the indexing in the target element
3979/// type, and use bit operations to insert at the element position. This is
3980/// intended for architectures that can dynamically index the register file and
3981/// want to force indexing in the native register size.
3984 LLT CastTy) {
3985 if (TypeIdx != 0)
3986 return UnableToLegalize;
3987
3988 auto [Dst, DstTy, SrcVec, SrcVecTy, Val, ValTy, Idx, IdxTy] =
3989 MI.getFirst4RegLLTs();
3990 LLT VecTy = DstTy;
3991
3992 LLT VecEltTy = VecTy.getElementType();
3993 LLT NewEltTy = CastTy.isVector() ? CastTy.getElementType() : CastTy;
3994 const unsigned NewEltSize = NewEltTy.getSizeInBits();
3995 const unsigned OldEltSize = VecEltTy.getSizeInBits();
3996
3997 unsigned NewNumElts = CastTy.isVector() ? CastTy.getNumElements() : 1;
3998 unsigned OldNumElts = VecTy.getNumElements();
3999
4000 Register CastVec = MIRBuilder.buildBitcast(CastTy, SrcVec).getReg(0);
4001 if (NewNumElts < OldNumElts) {
4002 if (NewEltSize % OldEltSize != 0)
4003 return UnableToLegalize;
4004
4005 // This only depends on powers of 2 because we use bit tricks to figure out
4006 // the bit offset we need to shift to get the target element. A general
4007 // expansion could emit division/multiply.
4008 if (!isPowerOf2_32(NewEltSize / OldEltSize))
4009 return UnableToLegalize;
4010
4011 const unsigned Log2EltRatio = Log2_32(NewEltSize / OldEltSize);
4012 auto Log2Ratio = MIRBuilder.buildConstant(IdxTy, Log2EltRatio);
4013
4014 // Divide to get the index in the wider element type.
4015 auto ScaledIdx = MIRBuilder.buildLShr(IdxTy, Idx, Log2Ratio);
4016
4017 Register ExtractedElt = CastVec;
4018 if (CastTy.isVector()) {
4019 ExtractedElt = MIRBuilder.buildExtractVectorElement(NewEltTy, CastVec,
4020 ScaledIdx).getReg(0);
4021 }
4022
4023 // Compute the bit offset into the register of the target element.
4025 MIRBuilder, Idx, NewEltSize, OldEltSize);
4026
4027 Register InsertedElt = buildBitFieldInsert(MIRBuilder, ExtractedElt,
4028 Val, OffsetBits);
4029 if (CastTy.isVector()) {
4030 InsertedElt = MIRBuilder.buildInsertVectorElement(
4031 CastTy, CastVec, InsertedElt, ScaledIdx).getReg(0);
4032 }
4033
4034 MIRBuilder.buildBitcast(Dst, InsertedElt);
4035 MI.eraseFromParent();
4036 return Legalized;
4037 }
4038
4039 return UnableToLegalize;
4040}
4041
4042// This attempts to handle G_CONCAT_VECTORS with illegal operands, particularly
4043// those that have smaller than legal operands.
4044//
4045// <16 x s8> = G_CONCAT_VECTORS <4 x s8>, <4 x s8>, <4 x s8>, <4 x s8>
4046//
4047// ===>
4048//
4049// s32 = G_BITCAST <4 x s8>
4050// s32 = G_BITCAST <4 x s8>
4051// s32 = G_BITCAST <4 x s8>
4052// s32 = G_BITCAST <4 x s8>
4053// <4 x s32> = G_BUILD_VECTOR s32, s32, s32, s32
4054// <16 x s8> = G_BITCAST <4 x s32>
4057 LLT CastTy) {
4058 // Convert it to CONCAT instruction
4059 auto ConcatMI = dyn_cast<GConcatVectors>(&MI);
4060 if (!ConcatMI) {
4061 return UnableToLegalize;
4062 }
4063
4064 // Check if bitcast is Legal
4065 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
4066 LLT SrcScalTy = CastTy.getScalarType();
4067
4068 // Check if the build vector is Legal
4069 if (!LI.isLegal({TargetOpcode::G_BUILD_VECTOR, {CastTy, SrcScalTy}})) {
4070 return UnableToLegalize;
4071 }
4072
4073 // Bitcast the sources
4074 SmallVector<Register> BitcastRegs;
4075 for (unsigned i = 0; i < ConcatMI->getNumSources(); i++) {
4076 BitcastRegs.push_back(
4077 MIRBuilder.buildBitcast(SrcScalTy, ConcatMI->getSourceReg(i))
4078 .getReg(0));
4079 }
4080
4081 // Build the scalar values into a vector
4082 Register BuildReg =
4083 MIRBuilder.buildBuildVector(CastTy, BitcastRegs).getReg(0);
4084 MIRBuilder.buildBitcast(DstReg, BuildReg);
4085
4086 MI.eraseFromParent();
4087 return Legalized;
4088}
4089
4090// This bitcasts a shuffle vector to a different type currently of the same
4091// element size. Mostly used to legalize ptr vectors, where ptrtoint/inttoptr
4092// will be used instead.
4093//
4094// <16 x p0> = G_CONCAT_VECTORS <4 x p0>, <4 x p0>, mask
4095// ===>
4096// <4 x s64> = G_PTRTOINT <4 x p0>
4097// <4 x s64> = G_PTRTOINT <4 x p0>
4098// <16 x s64> = G_CONCAT_VECTORS <4 x s64>, <4 x s64>, mask
4099// <16 x p0> = G_INTTOPTR <16 x s64>
4102 LLT CastTy) {
4103 auto ShuffleMI = cast<GShuffleVector>(&MI);
4104 LLT DstTy = MRI.getType(ShuffleMI->getReg(0));
4105 LLT SrcTy = MRI.getType(ShuffleMI->getReg(1));
4106
4107 // We currently only handle vectors of the same size.
4108 if (TypeIdx != 0 ||
4109 CastTy.getScalarSizeInBits() != DstTy.getScalarSizeInBits() ||
4110 CastTy.getElementCount() != DstTy.getElementCount())
4111 return UnableToLegalize;
4112
4113 LLT NewSrcTy = SrcTy.changeElementType(CastTy.getScalarType());
4114
4115 auto Inp1 = MIRBuilder.buildCast(NewSrcTy, ShuffleMI->getReg(1));
4116 auto Inp2 = MIRBuilder.buildCast(NewSrcTy, ShuffleMI->getReg(2));
4117 auto Shuf =
4118 MIRBuilder.buildShuffleVector(CastTy, Inp1, Inp2, ShuffleMI->getMask());
4119 MIRBuilder.buildCast(ShuffleMI->getReg(0), Shuf);
4120
4121 MI.eraseFromParent();
4122 return Legalized;
4123}
4124
4125/// This attempts to bitcast G_EXTRACT_SUBVECTOR to CastTy.
4126///
4127/// <vscale x 8 x i1> = G_EXTRACT_SUBVECTOR <vscale x 16 x i1>, N
4128///
4129/// ===>
4130///
4131/// <vscale x 2 x i1> = G_BITCAST <vscale x 16 x i1>
4132/// <vscale x 1 x i8> = G_EXTRACT_SUBVECTOR <vscale x 2 x i1>, N / 8
4133/// <vscale x 8 x i1> = G_BITCAST <vscale x 1 x i8>
4136 LLT CastTy) {
4137 auto ES = cast<GExtractSubvector>(&MI);
4138
4139 if (!CastTy.isVector())
4140 return UnableToLegalize;
4141
4142 if (TypeIdx != 0)
4143 return UnableToLegalize;
4144
4145 Register Dst = ES->getReg(0);
4146 Register Src = ES->getSrcVec();
4147 uint64_t Idx = ES->getIndexImm();
4148
4149 MachineRegisterInfo &MRI = *MIRBuilder.getMRI();
4150
4151 LLT DstTy = MRI.getType(Dst);
4152 LLT SrcTy = MRI.getType(Src);
4153 ElementCount DstTyEC = DstTy.getElementCount();
4154 ElementCount SrcTyEC = SrcTy.getElementCount();
4155 auto DstTyMinElts = DstTyEC.getKnownMinValue();
4156 auto SrcTyMinElts = SrcTyEC.getKnownMinValue();
4157
4158 if (DstTy == CastTy)
4159 return Legalized;
4160
4161 if (DstTy.getSizeInBits() != CastTy.getSizeInBits())
4162 return UnableToLegalize;
4163
4164 unsigned CastEltSize = CastTy.getElementType().getSizeInBits();
4165 unsigned DstEltSize = DstTy.getElementType().getSizeInBits();
4166 if (CastEltSize < DstEltSize)
4167 return UnableToLegalize;
4168
4169 auto AdjustAmt = CastEltSize / DstEltSize;
4170 if (Idx % AdjustAmt != 0 || DstTyMinElts % AdjustAmt != 0 ||
4171 SrcTyMinElts % AdjustAmt != 0)
4172 return UnableToLegalize;
4173
4174 Idx /= AdjustAmt;
4175 SrcTy = LLT::vector(SrcTyEC.divideCoefficientBy(AdjustAmt), AdjustAmt);
4176 auto CastVec = MIRBuilder.buildBitcast(SrcTy, Src);
4177 auto PromotedES = MIRBuilder.buildExtractSubvector(CastTy, CastVec, Idx);
4178 MIRBuilder.buildBitcast(Dst, PromotedES);
4179
4180 ES->eraseFromParent();
4181 return Legalized;
4182}
4183
4184/// This attempts to bitcast G_INSERT_SUBVECTOR to CastTy.
4185///
4186/// <vscale x 16 x i1> = G_INSERT_SUBVECTOR <vscale x 16 x i1>,
4187/// <vscale x 8 x i1>,
4188/// N
4189///
4190/// ===>
4191///
4192/// <vscale x 2 x i8> = G_BITCAST <vscale x 16 x i1>
4193/// <vscale x 1 x i8> = G_BITCAST <vscale x 8 x i1>
4194/// <vscale x 2 x i8> = G_INSERT_SUBVECTOR <vscale x 2 x i8>,
4195/// <vscale x 1 x i8>, N / 8
4196/// <vscale x 16 x i1> = G_BITCAST <vscale x 2 x i8>
4199 LLT CastTy) {
4200 auto ES = cast<GInsertSubvector>(&MI);
4201
4202 if (!CastTy.isVector())
4203 return UnableToLegalize;
4204
4205 if (TypeIdx != 0)
4206 return UnableToLegalize;
4207
4208 Register Dst = ES->getReg(0);
4209 Register BigVec = ES->getBigVec();
4210 Register SubVec = ES->getSubVec();
4211 uint64_t Idx = ES->getIndexImm();
4212
4213 MachineRegisterInfo &MRI = *MIRBuilder.getMRI();
4214
4215 LLT DstTy = MRI.getType(Dst);
4216 LLT BigVecTy = MRI.getType(BigVec);
4217 LLT SubVecTy = MRI.getType(SubVec);
4218
4219 if (DstTy == CastTy)
4220 return Legalized;
4221
4222 if (DstTy.getSizeInBits() != CastTy.getSizeInBits())
4223 return UnableToLegalize;
4224
4225 ElementCount DstTyEC = DstTy.getElementCount();
4226 ElementCount BigVecTyEC = BigVecTy.getElementCount();
4227 ElementCount SubVecTyEC = SubVecTy.getElementCount();
4228 auto DstTyMinElts = DstTyEC.getKnownMinValue();
4229 auto BigVecTyMinElts = BigVecTyEC.getKnownMinValue();
4230 auto SubVecTyMinElts = SubVecTyEC.getKnownMinValue();
4231
4232 unsigned CastEltSize = CastTy.getElementType().getSizeInBits();
4233 unsigned DstEltSize = DstTy.getElementType().getSizeInBits();
4234 if (CastEltSize < DstEltSize)
4235 return UnableToLegalize;
4236
4237 auto AdjustAmt = CastEltSize / DstEltSize;
4238 if (Idx % AdjustAmt != 0 || DstTyMinElts % AdjustAmt != 0 ||
4239 BigVecTyMinElts % AdjustAmt != 0 || SubVecTyMinElts % AdjustAmt != 0)
4240 return UnableToLegalize;
4241
4242 Idx /= AdjustAmt;
4243 BigVecTy = LLT::vector(BigVecTyEC.divideCoefficientBy(AdjustAmt), AdjustAmt);
4244 SubVecTy = LLT::vector(SubVecTyEC.divideCoefficientBy(AdjustAmt), AdjustAmt);
4245 auto CastBigVec = MIRBuilder.buildBitcast(BigVecTy, BigVec);
4246 auto CastSubVec = MIRBuilder.buildBitcast(SubVecTy, SubVec);
4247 auto PromotedIS =
4248 MIRBuilder.buildInsertSubvector(CastTy, CastBigVec, CastSubVec, Idx);
4249 MIRBuilder.buildBitcast(Dst, PromotedIS);
4250
4251 ES->eraseFromParent();
4252 return Legalized;
4253}
4254
4256 // Lower to a memory-width G_LOAD and a G_SEXT/G_ZEXT/G_ANYEXT
4257 Register DstReg = LoadMI.getDstReg();
4258 Register PtrReg = LoadMI.getPointerReg();
4259 LLT DstTy = MRI.getType(DstReg);
4260 MachineMemOperand &MMO = LoadMI.getMMO();
4261 LLT MemTy = MMO.getMemoryType();
4262 MachineFunction &MF = MIRBuilder.getMF();
4263
4264 LLT EltTy = MemTy.getScalarType();
4265
4266 unsigned MemSizeInBits = MemTy.getSizeInBits();
4267 unsigned MemStoreSizeInBits = 8 * MemTy.getSizeInBytes();
4268
4269 if (MemSizeInBits != MemStoreSizeInBits) {
4270 if (MemTy.isVector())
4271 return UnableToLegalize;
4272
4273 // Promote to a byte-sized load if not loading an integral number of
4274 // bytes. For example, promote EXTLOAD:i20 -> EXTLOAD:i24.
4275 LLT WideMemTy = EltTy.changeElementSize(MemStoreSizeInBits);
4276 MachineMemOperand *NewMMO =
4277 MF.getMachineMemOperand(&MMO, MMO.getPointerInfo(), WideMemTy);
4278
4279 Register LoadReg = DstReg;
4280 LLT LoadTy = DstTy;
4281
4282 // If this wasn't already an extending load, we need to widen the result
4283 // register to avoid creating a load with a narrower result than the source.
4284 if (MemStoreSizeInBits > DstTy.getSizeInBits()) {
4285 LoadTy = WideMemTy;
4286 LoadReg = MRI.createGenericVirtualRegister(WideMemTy);
4287 }
4288
4289 if (isa<GSExtLoad>(LoadMI)) {
4290 auto NewLoad = MIRBuilder.buildLoad(LoadTy, PtrReg, *NewMMO);
4291 MIRBuilder.buildSExtInReg(LoadReg, NewLoad, MemSizeInBits);
4292 } else if (isa<GZExtLoad>(LoadMI) || WideMemTy == LoadTy) {
4293 auto NewLoad = MIRBuilder.buildLoad(LoadTy, PtrReg, *NewMMO);
4294 // The extra bits are guaranteed to be zero, since we stored them that
4295 // way. A zext load from Wide thus automatically gives zext from MemVT.
4296 MIRBuilder.buildAssertZExt(LoadReg, NewLoad, MemSizeInBits);
4297 } else {
4298 MIRBuilder.buildLoad(LoadReg, PtrReg, *NewMMO);
4299 }
4300
4301 if (DstTy != LoadTy)
4302 MIRBuilder.buildTrunc(DstReg, LoadReg);
4303
4304 LoadMI.eraseFromParent();
4305 return Legalized;
4306 }
4307
4308 // Big endian lowering not implemented.
4309 if (MIRBuilder.getDataLayout().isBigEndian())
4310 return UnableToLegalize;
4311
4312 // This load needs splitting into power of 2 sized loads.
4313 //
4314 // Our strategy here is to generate anyextending loads for the smaller
4315 // types up to next power-2 result type, and then combine the two larger
4316 // result values together, before truncating back down to the non-pow-2
4317 // type.
4318 // E.g. v1 = i24 load =>
4319 // v2 = i32 zextload (2 byte)
4320 // v3 = i32 load (1 byte)
4321 // v4 = i32 shl v3, 16
4322 // v5 = i32 or v4, v2
4323 // v1 = i24 trunc v5
4324 // By doing this we generate the correct truncate which should get
4325 // combined away as an artifact with a matching extend.
4326
4327 uint64_t LargeSplitSize, SmallSplitSize;
4328
4329 if (!isPowerOf2_32(MemSizeInBits)) {
4330 // This load needs splitting into power of 2 sized loads.
4331 LargeSplitSize = llvm::bit_floor(MemSizeInBits);
4332 SmallSplitSize = MemSizeInBits - LargeSplitSize;
4333 } else {
4334 // This is already a power of 2, but we still need to split this in half.
4335 //
4336 // Assume we're being asked to decompose an unaligned load.
4337 // TODO: If this requires multiple splits, handle them all at once.
4338 auto &Ctx = MF.getFunction().getContext();
4339 if (TLI.allowsMemoryAccess(Ctx, MIRBuilder.getDataLayout(), MemTy, MMO))
4340 return UnableToLegalize;
4341
4342 SmallSplitSize = LargeSplitSize = MemSizeInBits / 2;
4343 }
4344
4345 if (MemTy.isVector()) {
4346 // TODO: Handle vector extloads
4347 if (MemTy != DstTy)
4348 return UnableToLegalize;
4349
4350 Align Alignment = LoadMI.getAlign();
4351 // Given an alignment larger than the size of the memory, we can increase
4352 // the size of the load without needing to scalarize it.
4353 if (Alignment.value() * 8 > MemSizeInBits &&
4355 LLT MoreTy = DstTy.changeVectorElementCount(
4357 MachineMemOperand *NewMMO = MF.getMachineMemOperand(&MMO, 0, MoreTy);
4358 auto NewLoad = MIRBuilder.buildLoad(MoreTy, PtrReg, *NewMMO);
4359 MIRBuilder.buildDeleteTrailingVectorElements(LoadMI.getReg(0),
4360 NewLoad.getReg(0));
4361 LoadMI.eraseFromParent();
4362 return Legalized;
4363 }
4364
4365 // TODO: We can do better than scalarizing the vector and at least split it
4366 // in half.
4367 return reduceLoadStoreWidth(LoadMI, 0, DstTy.getElementType());
4368 }
4369
4370 MachineMemOperand *LargeMMO =
4371 MF.getMachineMemOperand(&MMO, 0, LargeSplitSize / 8);
4372 MachineMemOperand *SmallMMO =
4373 MF.getMachineMemOperand(&MMO, LargeSplitSize / 8, SmallSplitSize / 8);
4374
4375 LLT PtrTy = MRI.getType(PtrReg);
4376 unsigned AnyExtSize = PowerOf2Ceil(DstTy.getSizeInBits());
4377
4378 LLT AnyExtTy;
4379 LLT OffsetCstRes;
4380 if (EltTy.isPointer()) {
4381 AnyExtTy = LLT::scalar(AnyExtSize);
4382 OffsetCstRes = LLT::scalar(PtrTy.getSizeInBits());
4383 } else {
4384 AnyExtTy = DstTy.changeElementSize(AnyExtSize);
4385 OffsetCstRes = DstTy.changeElementSize(PtrTy.getSizeInBits());
4386 }
4387
4388 auto LargeLoad = MIRBuilder.buildLoadInstr(TargetOpcode::G_ZEXTLOAD, AnyExtTy,
4389 PtrReg, *LargeMMO);
4390
4391 auto OffsetCst = MIRBuilder.buildConstant(OffsetCstRes, LargeSplitSize / 8);
4392 Register PtrAddReg = MRI.createGenericVirtualRegister(PtrTy);
4393 auto SmallPtr = MIRBuilder.buildObjectPtrOffset(PtrAddReg, PtrReg, OffsetCst);
4394 auto SmallLoad = MIRBuilder.buildLoadInstr(LoadMI.getOpcode(), AnyExtTy,
4395 SmallPtr, *SmallMMO);
4396
4397 auto ShiftAmt = MIRBuilder.buildConstant(AnyExtTy, LargeSplitSize);
4398 auto Shift = MIRBuilder.buildShl(AnyExtTy, SmallLoad, ShiftAmt);
4399
4400 if (AnyExtTy == DstTy)
4401 MIRBuilder.buildOr(DstReg, Shift, LargeLoad);
4402 else if (AnyExtTy.getSizeInBits() != DstTy.getSizeInBits()) {
4403 auto Or = MIRBuilder.buildOr(AnyExtTy, Shift, LargeLoad);
4404 MIRBuilder.buildTrunc(DstReg, {Or});
4405 } else {
4406 assert(DstTy.isPointer() && "expected pointer");
4407 auto Or = MIRBuilder.buildOr(AnyExtTy, Shift, LargeLoad);
4408
4409 // FIXME: We currently consider this to be illegal for non-integral address
4410 // spaces, but we need still need a way to reinterpret the bits.
4411 MIRBuilder.buildIntToPtr(DstReg, Or);
4412 }
4413
4414 LoadMI.eraseFromParent();
4415 return Legalized;
4416}
4417
4419 // Lower a non-power of 2 store into multiple pow-2 stores.
4420 // E.g. split an i24 store into an i16 store + i8 store.
4421 // We do this by first extending the stored value to the next largest power
4422 // of 2 type, and then using truncating stores to store the components.
4423 // By doing this, likewise with G_LOAD, generate an extend that can be
4424 // artifact-combined away instead of leaving behind extracts.
4425 Register SrcReg = StoreMI.getValueReg();
4426 Register PtrReg = StoreMI.getPointerReg();
4427 LLT SrcTy = MRI.getType(SrcReg);
4428 MachineFunction &MF = MIRBuilder.getMF();
4429 MachineMemOperand &MMO = **StoreMI.memoperands_begin();
4430 LLT MemTy = MMO.getMemoryType();
4431
4432 unsigned StoreWidth = MemTy.getSizeInBits();
4433 unsigned StoreSizeInBits = 8 * MemTy.getSizeInBytes();
4434
4435 if (StoreWidth != StoreSizeInBits && !SrcTy.isVector()) {
4436 // Promote to a byte-sized store with upper bits zero if not
4437 // storing an integral number of bytes. For example, promote
4438 // TRUNCSTORE:i1 X -> TRUNCSTORE:i8 (and X, 1)
4439 LLT WideTy = LLT::integer(StoreSizeInBits);
4440
4441 if (StoreSizeInBits > SrcTy.getSizeInBits()) {
4442 // Avoid creating a store with a narrower source than result.
4443 SrcReg = MIRBuilder.buildAnyExt(WideTy, SrcReg).getReg(0);
4444 SrcTy = WideTy;
4445 }
4446
4447 auto ZextInReg = MIRBuilder.buildZExtInReg(SrcTy, SrcReg, StoreWidth);
4448
4449 MachineMemOperand *NewMMO =
4450 MF.getMachineMemOperand(&MMO, MMO.getPointerInfo(), WideTy);
4451 MIRBuilder.buildStore(ZextInReg, PtrReg, *NewMMO);
4452 StoreMI.eraseFromParent();
4453 return Legalized;
4454 }
4455
4456 if (MemTy.isVector()) {
4457 if (MemTy != SrcTy)
4458 return scalarizeVectorBooleanStore(StoreMI);
4459
4460 // TODO: We can do better than scalarizing the vector and at least split it
4461 // in half.
4462 return reduceLoadStoreWidth(StoreMI, 0, SrcTy.getElementType());
4463 }
4464
4465 unsigned MemSizeInBits = MemTy.getSizeInBits();
4466 uint64_t LargeSplitSize, SmallSplitSize;
4467
4468 if (!isPowerOf2_32(MemSizeInBits)) {
4469 LargeSplitSize = llvm::bit_floor<uint64_t>(MemTy.getSizeInBits());
4470 SmallSplitSize = MemTy.getSizeInBits() - LargeSplitSize;
4471 } else {
4472 auto &Ctx = MF.getFunction().getContext();
4473 if (TLI.allowsMemoryAccess(Ctx, MIRBuilder.getDataLayout(), MemTy, MMO))
4474 return UnableToLegalize; // Don't know what we're being asked to do.
4475
4476 SmallSplitSize = LargeSplitSize = MemSizeInBits / 2;
4477 }
4478
4479 // Extend to the next pow-2. If this store was itself the result of lowering,
4480 // e.g. an s56 store being broken into s32 + s24, we might have a stored type
4481 // that's wider than the stored size.
4482 unsigned AnyExtSize = PowerOf2Ceil(MemTy.getSizeInBits());
4483 const LLT NewSrcTy = LLT::integer(AnyExtSize);
4484
4485 if (SrcTy.isPointer()) {
4486 const LLT IntPtrTy = LLT::integer(SrcTy.getSizeInBits());
4487 SrcReg = MIRBuilder.buildPtrToInt(IntPtrTy, SrcReg).getReg(0);
4488 }
4489
4490 auto ExtVal = MIRBuilder.buildAnyExtOrTrunc(NewSrcTy, SrcReg);
4491
4492 // Obtain the smaller value by shifting away the larger value.
4493 auto ShiftAmt = MIRBuilder.buildConstant(NewSrcTy, LargeSplitSize);
4494 auto SmallVal = MIRBuilder.buildLShr(NewSrcTy, ExtVal, ShiftAmt);
4495
4496 // Generate the PtrAdd and truncating stores.
4497 LLT PtrTy = MRI.getType(PtrReg);
4498 auto OffsetCst = MIRBuilder.buildConstant(LLT::integer(PtrTy.getSizeInBits()),
4499 LargeSplitSize / 8);
4500 auto SmallPtr = MIRBuilder.buildObjectPtrOffset(PtrTy, PtrReg, OffsetCst);
4501
4502 MachineMemOperand *LargeMMO =
4503 MF.getMachineMemOperand(&MMO, 0, LargeSplitSize / 8);
4504 MachineMemOperand *SmallMMO =
4505 MF.getMachineMemOperand(&MMO, LargeSplitSize / 8, SmallSplitSize / 8);
4506 MIRBuilder.buildStore(ExtVal, PtrReg, *LargeMMO);
4507 MIRBuilder.buildStore(SmallVal, SmallPtr, *SmallMMO);
4508 StoreMI.eraseFromParent();
4509 return Legalized;
4510}
4511
4514 Register SrcReg = StoreMI.getValueReg();
4515 Register PtrReg = StoreMI.getPointerReg();
4516 LLT SrcTy = MRI.getType(SrcReg);
4517 MachineMemOperand &MMO = **StoreMI.memoperands_begin();
4518 LLT MemTy = MMO.getMemoryType();
4519 LLT MemScalarTy = MemTy.getElementType();
4520 MachineFunction &MF = MIRBuilder.getMF();
4521
4522 assert(SrcTy.isVector() && "Expect a vector store type");
4523
4524 if (!MemScalarTy.isByteSized()) {
4525 // We need to build an integer scalar of the vector bit pattern.
4526 // It's not legal for us to add padding when storing a vector.
4527 unsigned NumBits = MemTy.getSizeInBits();
4528 LLT IntTy = LLT::integer(NumBits);
4529 auto CurrVal = MIRBuilder.buildConstant(IntTy, 0);
4530 LLT IdxTy = TLI.getVectorIdxLLT(MF.getDataLayout());
4531
4532 for (unsigned I = 0, E = MemTy.getNumElements(); I < E; ++I) {
4533 auto Elt = MIRBuilder.buildExtractVectorElement(
4534 SrcTy.getElementType(), SrcReg, MIRBuilder.buildConstant(IdxTy, I));
4535 auto Trunc = MIRBuilder.buildTrunc(MemScalarTy, Elt);
4536 auto ZExt = MIRBuilder.buildZExt(IntTy, Trunc);
4537 unsigned ShiftIntoIdx = MF.getDataLayout().isBigEndian()
4538 ? (MemTy.getNumElements() - 1) - I
4539 : I;
4540 auto ShiftAmt = MIRBuilder.buildConstant(
4541 IntTy, ShiftIntoIdx * MemScalarTy.getSizeInBits());
4542 auto Shifted = MIRBuilder.buildShl(IntTy, ZExt, ShiftAmt);
4543 CurrVal = MIRBuilder.buildOr(IntTy, CurrVal, Shifted);
4544 }
4545 auto PtrInfo = MMO.getPointerInfo();
4546 auto *NewMMO = MF.getMachineMemOperand(&MMO, PtrInfo, IntTy);
4547 MIRBuilder.buildStore(CurrVal, PtrReg, *NewMMO);
4548 StoreMI.eraseFromParent();
4549 return Legalized;
4550 }
4551
4552 // TODO: implement simple scalarization.
4553 return UnableToLegalize;
4554}
4555
4557LegalizerHelper::bitcast(MachineInstr &MI, unsigned TypeIdx, LLT CastTy) {
4558 switch (MI.getOpcode()) {
4559 case TargetOpcode::G_LOAD: {
4560 if (TypeIdx != 0)
4561 return UnableToLegalize;
4562 MachineMemOperand &MMO = **MI.memoperands_begin();
4563
4564 // Not sure how to interpret a bitcast of an extending load.
4565 if (MMO.getMemoryType().getSizeInBits() != CastTy.getSizeInBits())
4566 return UnableToLegalize;
4567
4568 Observer.changingInstr(MI);
4569 bitcastDst(MI, CastTy, 0);
4570 MMO.setType(CastTy);
4571 // The range metadata is no longer valid when reinterpreted as a different
4572 // type.
4573 MMO.clearRanges();
4574 Observer.changedInstr(MI);
4575 return Legalized;
4576 }
4577 case TargetOpcode::G_STORE: {
4578 if (TypeIdx != 0)
4579 return UnableToLegalize;
4580
4581 MachineMemOperand &MMO = **MI.memoperands_begin();
4582
4583 // Not sure how to interpret a bitcast of a truncating store.
4584 if (MMO.getMemoryType().getSizeInBits() != CastTy.getSizeInBits())
4585 return UnableToLegalize;
4586
4587 Observer.changingInstr(MI);
4588 bitcastSrc(MI, CastTy, 0);
4589 MMO.setType(CastTy);
4590 Observer.changedInstr(MI);
4591 return Legalized;
4592 }
4593 case TargetOpcode::G_SELECT: {
4594 if (TypeIdx != 0)
4595 return UnableToLegalize;
4596
4597 if (MRI.getType(MI.getOperand(1).getReg()).isVector()) {
4598 LLVM_DEBUG(
4599 dbgs() << "bitcast action not implemented for vector select\n");
4600 return UnableToLegalize;
4601 }
4602
4603 Observer.changingInstr(MI);
4604 bitcastSrc(MI, CastTy, 2);
4605 bitcastSrc(MI, CastTy, 3);
4606 bitcastDst(MI, CastTy, 0);
4607 Observer.changedInstr(MI);
4608 return Legalized;
4609 }
4610 case TargetOpcode::G_AND:
4611 case TargetOpcode::G_OR:
4612 case TargetOpcode::G_XOR: {
4613 Observer.changingInstr(MI);
4614 bitcastSrc(MI, CastTy, 1);
4615 bitcastSrc(MI, CastTy, 2);
4616 bitcastDst(MI, CastTy, 0);
4617 Observer.changedInstr(MI);
4618 return Legalized;
4619 }
4620 case TargetOpcode::G_EXTRACT_VECTOR_ELT:
4621 return bitcastExtractVectorElt(MI, TypeIdx, CastTy);
4622 case TargetOpcode::G_INSERT_VECTOR_ELT:
4623 return bitcastInsertVectorElt(MI, TypeIdx, CastTy);
4624 case TargetOpcode::G_CONCAT_VECTORS:
4625 return bitcastConcatVector(MI, TypeIdx, CastTy);
4626 case TargetOpcode::G_SHUFFLE_VECTOR:
4627 return bitcastShuffleVector(MI, TypeIdx, CastTy);
4628 case TargetOpcode::G_EXTRACT_SUBVECTOR:
4629 return bitcastExtractSubvector(MI, TypeIdx, CastTy);
4630 case TargetOpcode::G_INSERT_SUBVECTOR:
4631 return bitcastInsertSubvector(MI, TypeIdx, CastTy);
4632 default:
4633 return UnableToLegalize;
4634 }
4635}
4636
4637// Legalize an instruction by changing the opcode in place.
4638void LegalizerHelper::changeOpcode(MachineInstr &MI, unsigned NewOpcode) {
4640 MI.setDesc(MIRBuilder.getTII().get(NewOpcode));
4642}
4643
4645LegalizerHelper::lower(MachineInstr &MI, unsigned TypeIdx, LLT LowerHintTy) {
4646 using namespace TargetOpcode;
4647 switch(MI.getOpcode()) {
4648 default:
4649 return UnableToLegalize;
4650 case TargetOpcode::G_FCONSTANT:
4651 return lowerFConstant(MI);
4652 case TargetOpcode::G_BITCAST:
4653 return lowerBitcast(MI);
4654 case TargetOpcode::G_SREM:
4655 case TargetOpcode::G_UREM: {
4656 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
4657 auto Quot =
4658 MIRBuilder.buildInstr(MI.getOpcode() == G_SREM ? G_SDIV : G_UDIV, {Ty},
4659 {MI.getOperand(1), MI.getOperand(2)});
4660
4661 auto Prod = MIRBuilder.buildMul(Ty, Quot, MI.getOperand(2));
4662 MIRBuilder.buildSub(MI.getOperand(0), MI.getOperand(1), Prod);
4663 MI.eraseFromParent();
4664 return Legalized;
4665 }
4666 case TargetOpcode::G_SADDO:
4667 case TargetOpcode::G_SSUBO:
4668 return lowerSADDO_SSUBO(MI);
4669 case TargetOpcode::G_SADDE:
4670 return lowerSADDE(MI);
4671 case TargetOpcode::G_SSUBE:
4672 return lowerSSUBE(MI);
4673 case TargetOpcode::G_UMULH:
4674 case TargetOpcode::G_SMULH:
4675 return lowerSMULH_UMULH(MI);
4676 case TargetOpcode::G_SMULO:
4677 case TargetOpcode::G_UMULO: {
4678 // Generate G_UMULH/G_SMULH to check for overflow and a normal G_MUL for the
4679 // result.
4680 auto [Res, Overflow, LHS, RHS] = MI.getFirst4Regs();
4681 LLT Ty = MRI.getType(Res);
4682
4683 unsigned Opcode = MI.getOpcode() == TargetOpcode::G_SMULO
4684 ? TargetOpcode::G_SMULH
4685 : TargetOpcode::G_UMULH;
4686
4687 Observer.changingInstr(MI);
4688 const auto &TII = MIRBuilder.getTII();
4689 MI.setDesc(TII.get(TargetOpcode::G_MUL));
4690 MI.removeOperand(1);
4691 Observer.changedInstr(MI);
4692
4693 auto HiPart = MIRBuilder.buildInstr(Opcode, {Ty}, {LHS, RHS});
4694 auto Zero = MIRBuilder.buildConstant(Ty, 0);
4695
4696 // Move insert point forward so we can use the Res register if needed.
4697 MIRBuilder.setInsertPt(MIRBuilder.getMBB(), ++MIRBuilder.getInsertPt());
4698
4699 // For *signed* multiply, overflow is detected by checking:
4700 // (hi != (lo >> bitwidth-1))
4701 if (Opcode == TargetOpcode::G_SMULH) {
4702 auto ShiftAmt = MIRBuilder.buildConstant(Ty, Ty.getSizeInBits() - 1);
4703 auto Shifted = MIRBuilder.buildAShr(Ty, Res, ShiftAmt);
4704 MIRBuilder.buildICmp(CmpInst::ICMP_NE, Overflow, HiPart, Shifted);
4705 } else {
4706 MIRBuilder.buildICmp(CmpInst::ICMP_NE, Overflow, HiPart, Zero);
4707 }
4708 return Legalized;
4709 }
4710 case TargetOpcode::G_FNEG: {
4711 auto [Res, ResTy, SubByReg, SubByRegTy] = MI.getFirst2RegLLTs();
4712 LLT TyInt =
4713 ResTy.changeElementType(LLT::integer(ResTy.getScalarSizeInBits()));
4714 Register CastedSubByReg = SubByReg;
4715
4716 if (!SubByRegTy.getScalarType().isAnyScalar() &&
4717 !SubByRegTy.getScalarType().isInteger()) {
4718 auto BitcastDst = SubByRegTy.changeElementType(
4719 LLT::integer(SubByRegTy.getScalarSizeInBits()));
4720 CastedSubByReg = MIRBuilder.buildBitcast(BitcastDst, SubByReg).getReg(0);
4721 }
4722
4723 auto SignMask = MIRBuilder.buildConstant(
4724 TyInt, APInt::getSignMask(TyInt.getScalarSizeInBits()));
4725
4726 if (ResTy != TyInt) {
4727 Register NewDst =
4728 MIRBuilder.buildXor(TyInt, CastedSubByReg, SignMask).getReg(0);
4729 MIRBuilder.buildBitcast(Res, NewDst);
4730 } else
4731 MIRBuilder.buildXor(Res, CastedSubByReg, SignMask).getReg(0);
4732
4733 MI.eraseFromParent();
4734 return Legalized;
4735 }
4736 case TargetOpcode::G_FSUB:
4737 case TargetOpcode::G_STRICT_FSUB: {
4738 auto [Res, LHS, RHS] = MI.getFirst3Regs();
4739 LLT Ty = MRI.getType(Res);
4740
4741 // Lower (G_FSUB LHS, RHS) to (G_FADD LHS, (G_FNEG RHS)).
4742 auto Neg = MIRBuilder.buildFNeg(Ty, RHS);
4743
4744 if (MI.getOpcode() == TargetOpcode::G_STRICT_FSUB)
4745 MIRBuilder.buildStrictFAdd(Res, LHS, Neg, MI.getFlags());
4746 else
4747 MIRBuilder.buildFAdd(Res, LHS, Neg, MI.getFlags());
4748
4749 MI.eraseFromParent();
4750 return Legalized;
4751 }
4752 case TargetOpcode::G_FMAD:
4753 return lowerFMad(MI);
4754 case TargetOpcode::G_FFLOOR:
4755 return lowerFFloor(MI);
4756 case TargetOpcode::G_LROUND:
4757 case TargetOpcode::G_LLROUND: {
4758 Register DstReg = MI.getOperand(0).getReg();
4759 Register SrcReg = MI.getOperand(1).getReg();
4760 LLT SrcTy = MRI.getType(SrcReg);
4761 auto Round = MIRBuilder.buildInstr(TargetOpcode::G_INTRINSIC_ROUND, {SrcTy},
4762 {SrcReg});
4763 MIRBuilder.buildFPTOSI(DstReg, Round);
4764 MI.eraseFromParent();
4765 return Legalized;
4766 }
4767 case TargetOpcode::G_INTRINSIC_ROUND:
4768 return lowerIntrinsicRound(MI);
4769 case TargetOpcode::G_FRINT: {
4770 // Since round even is the assumed rounding mode for unconstrained FP
4771 // operations, rint and roundeven are the same operation.
4772 changeOpcode(MI, TargetOpcode::G_INTRINSIC_ROUNDEVEN);
4773 return Legalized;
4774 }
4775 case TargetOpcode::G_INTRINSIC_LRINT:
4776 case TargetOpcode::G_INTRINSIC_LLRINT: {
4777 Register DstReg = MI.getOperand(0).getReg();
4778 Register SrcReg = MI.getOperand(1).getReg();
4779 LLT SrcTy = MRI.getType(SrcReg);
4780 auto Round =
4781 MIRBuilder.buildInstr(TargetOpcode::G_FRINT, {SrcTy}, {SrcReg});
4782 MIRBuilder.buildFPTOSI(DstReg, Round);
4783 MI.eraseFromParent();
4784 return Legalized;
4785 }
4786 case TargetOpcode::G_ATOMIC_CMPXCHG_WITH_SUCCESS: {
4787 auto [OldValRes, SuccessRes, Addr, CmpVal, NewVal] = MI.getFirst5Regs();
4788 Register NewOldValRes = MRI.cloneVirtualRegister(OldValRes);
4789 MIRBuilder.buildAtomicCmpXchg(NewOldValRes, Addr, CmpVal, NewVal,
4790 **MI.memoperands_begin());
4791 MIRBuilder.buildICmp(CmpInst::ICMP_EQ, SuccessRes, NewOldValRes, CmpVal);
4792 MIRBuilder.buildCopy(OldValRes, NewOldValRes);
4793 MI.eraseFromParent();
4794 return Legalized;
4795 }
4796 case TargetOpcode::G_LOAD:
4797 case TargetOpcode::G_SEXTLOAD:
4798 case TargetOpcode::G_ZEXTLOAD:
4799 return lowerLoad(cast<GAnyLoad>(MI));
4800 case TargetOpcode::G_STORE:
4801 return lowerStore(cast<GStore>(MI));
4802 case TargetOpcode::G_CTLZ_ZERO_POISON:
4803 case TargetOpcode::G_CTTZ_ZERO_POISON:
4804 case TargetOpcode::G_CTLZ:
4805 case TargetOpcode::G_CTTZ:
4806 case TargetOpcode::G_CTPOP:
4807 case TargetOpcode::G_CTLS:
4808 return lowerBitCount(MI);
4809 case G_UADDO: {
4810 auto [Res, CarryOut, LHS, RHS] = MI.getFirst4Regs();
4811
4812 Register NewRes = MRI.cloneVirtualRegister(Res);
4813
4814 MIRBuilder.buildAdd(NewRes, LHS, RHS);
4815 MIRBuilder.buildICmp(CmpInst::ICMP_ULT, CarryOut, NewRes, RHS);
4816
4817 MIRBuilder.buildCopy(Res, NewRes);
4818
4819 MI.eraseFromParent();
4820 return Legalized;
4821 }
4822 case G_UADDE: {
4823 auto [Res, CarryOut, LHS, RHS, CarryIn] = MI.getFirst5Regs();
4824 const LLT CondTy = MRI.getType(CarryOut);
4825 const LLT Ty = MRI.getType(Res);
4826
4827 Register NewRes = MRI.cloneVirtualRegister(Res);
4828
4829 // Initial add of the two operands.
4830 auto TmpRes = MIRBuilder.buildAdd(Ty, LHS, RHS);
4831
4832 // Initial check for carry.
4833 auto Carry = MIRBuilder.buildICmp(CmpInst::ICMP_ULT, CondTy, TmpRes, LHS);
4834
4835 // Add the sum and the carry.
4836 auto ZExtCarryIn = MIRBuilder.buildZExt(Ty, CarryIn);
4837 MIRBuilder.buildAdd(NewRes, TmpRes, ZExtCarryIn);
4838
4839 // Second check for carry. We can only carry if the initial sum is all 1s
4840 // and the carry is set, resulting in a new sum of 0.
4841 auto Zero = MIRBuilder.buildConstant(Ty, 0);
4842 auto ResEqZero =
4843 MIRBuilder.buildICmp(CmpInst::ICMP_EQ, CondTy, NewRes, Zero);
4844 auto Carry2 = MIRBuilder.buildAnd(CondTy, ResEqZero, CarryIn);
4845 MIRBuilder.buildOr(CarryOut, Carry, Carry2);
4846
4847 MIRBuilder.buildCopy(Res, NewRes);
4848
4849 MI.eraseFromParent();
4850 return Legalized;
4851 }
4852 case G_USUBO: {
4853 auto [Res, BorrowOut, LHS, RHS] = MI.getFirst4Regs();
4854
4855 MIRBuilder.buildSub(Res, LHS, RHS);
4856 MIRBuilder.buildICmp(CmpInst::ICMP_ULT, BorrowOut, LHS, RHS);
4857
4858 MI.eraseFromParent();
4859 return Legalized;
4860 }
4861 case G_USUBE: {
4862 auto [Res, BorrowOut, LHS, RHS, BorrowIn] = MI.getFirst5Regs();
4863 const LLT CondTy = MRI.getType(BorrowOut);
4864 const LLT Ty = MRI.getType(Res);
4865
4866 // Initial subtract of the two operands.
4867 auto TmpRes = MIRBuilder.buildSub(Ty, LHS, RHS);
4868
4869 // Initial check for borrow.
4870 auto Borrow = MIRBuilder.buildICmp(CmpInst::ICMP_UGT, CondTy, TmpRes, LHS);
4871
4872 // Subtract the borrow from the first subtract.
4873 auto ZExtBorrowIn = MIRBuilder.buildZExt(Ty, BorrowIn);
4874 MIRBuilder.buildSub(Res, TmpRes, ZExtBorrowIn);
4875
4876 // Second check for borrow. We can only borrow if the initial difference is
4877 // 0 and the borrow is set, resulting in a new difference of all 1s.
4878 auto Zero = MIRBuilder.buildConstant(Ty, 0);
4879 auto TmpResEqZero =
4880 MIRBuilder.buildICmp(CmpInst::ICMP_EQ, CondTy, TmpRes, Zero);
4881 auto Borrow2 = MIRBuilder.buildAnd(CondTy, TmpResEqZero, BorrowIn);
4882 MIRBuilder.buildOr(BorrowOut, Borrow, Borrow2);
4883
4884 MI.eraseFromParent();
4885 return Legalized;
4886 }
4887 case G_UITOFP:
4888 return lowerUITOFP(MI);
4889 case G_SITOFP:
4890 return lowerSITOFP(MI);
4891 case G_FPTOUI:
4892 return lowerFPTOUI(MI);
4893 case G_FPTOSI:
4894 return lowerFPTOSI(MI);
4895 case G_FPTOUI_SAT:
4896 case G_FPTOSI_SAT:
4897 return lowerFPTOINT_SAT(MI);
4898 case G_FPEXT:
4899 return lowerFPEXT(MI);
4900 case G_FPTRUNC:
4901 return lowerFPTRUNC(MI);
4902 case G_FPOWI:
4903 return lowerFPOWI(MI);
4904 case G_FMODF:
4905 return lowerFMODF(MI);
4906 case G_SMIN:
4907 case G_SMAX:
4908 case G_UMIN:
4909 case G_UMAX:
4910 return lowerMinMax(MI);
4911 case G_SCMP:
4912 case G_UCMP:
4913 return lowerThreewayCompare(MI);
4914 case G_FCOPYSIGN:
4915 return lowerFCopySign(MI);
4916 case G_FMINNUM:
4917 case G_FMAXNUM:
4918 case G_FMINIMUMNUM:
4919 case G_FMAXIMUMNUM:
4920 return lowerFMinNumMaxNum(MI);
4921 case G_FMINIMUM:
4922 case G_FMAXIMUM:
4923 return lowerFMinimumMaximum(MI);
4924 case G_MERGE_VALUES:
4925 return lowerMergeValues(MI);
4926 case G_UNMERGE_VALUES:
4927 return lowerUnmergeValues(MI);
4928 case TargetOpcode::G_SEXT_INREG: {
4929 assert(MI.getOperand(2).isImm() && "Expected immediate");
4930 int64_t SizeInBits = MI.getOperand(2).getImm();
4931
4932 auto [DstReg, SrcReg] = MI.getFirst2Regs();
4933 LLT DstTy = MRI.getType(DstReg);
4934 Register TmpRes = MRI.createGenericVirtualRegister(DstTy);
4935
4936 auto MIBSz = MIRBuilder.buildConstant(DstTy, DstTy.getScalarSizeInBits() - SizeInBits);
4937 MIRBuilder.buildShl(TmpRes, SrcReg, MIBSz->getOperand(0));
4938 MIRBuilder.buildAShr(DstReg, TmpRes, MIBSz->getOperand(0));
4939 MI.eraseFromParent();
4940 return Legalized;
4941 }
4942 case G_EXTRACT_VECTOR_ELT:
4943 case G_INSERT_VECTOR_ELT:
4945 case G_SHUFFLE_VECTOR:
4946 return lowerShuffleVector(MI);
4947 case G_VECTOR_COMPRESS:
4948 return lowerVECTOR_COMPRESS(MI);
4949 case G_DYN_STACKALLOC:
4950 return lowerDynStackAlloc(MI);
4951 case G_INSERT_SUBVECTOR: {
4952 if (MRI.getType(MI.getOperand(1).getReg()).isScalable() ||
4953 MRI.getType(MI.getOperand(2).getReg()).isScalable())
4954 return UnableToLegalize;
4955
4956 // Check that subvector is half size of main vector
4957 Register Vector = MI.getOperand(1).getReg();
4958 Register Subvector = MI.getOperand(2).getReg();
4959 auto InsertionPointImm = MI.getOperand(3).getImm();
4960
4961 LLT VectorTy = MRI.getType(Vector);
4962 LLT DstTy = MRI.getType(Subvector);
4963 // If so, -> concat(subvector, extract(half of vector))
4964 // (Operands can be either way round depending on insertion point
4965 if (VectorTy.getSizeInBits() == DstTy.getSizeInBits() * 2) {
4966 bool InsertInLowHalf = InsertionPointImm == 0;
4967 auto Extract = MIRBuilder.buildExtractSubvector(
4968 DstTy, Vector,
4969 (uint64_t)(InsertInLowHalf ? VectorTy.getNumElements() / 2 : 0));
4970
4971 auto LowHalf = InsertInLowHalf ? Subvector : Extract.getReg(0);
4972 auto HighHalf = InsertInLowHalf ? Extract.getReg(0) : Subvector;
4973
4974 MIRBuilder.buildInstr(TargetOpcode::G_CONCAT_VECTORS, {MI.getOperand(0)},
4975 {LowHalf, HighHalf});
4976 MI.eraseFromParent();
4977 return Legalized;
4978 }
4979 // Else -> shuffle(vector, extend(subvector, size(vector)), mask)
4980 else {
4981 // Extend subvector to same size as vector
4982 Register ExtendedSubvector = MRI.createGenericVirtualRegister(VectorTy);
4983 MIRBuilder.buildPadVectorWithUndefElements(ExtendedSubvector, Subvector);
4984
4985 // Calculate mask required for this shuffle
4986 SmallVector<int> Mask;
4987 for (int i = 0; i < VectorTy.getNumElements(); i++) {
4988 // If this index is within bounds, put subvector's index into mask
4989 if (i >= InsertionPointImm &&
4990 i < InsertionPointImm + DstTy.getNumElements())
4991 Mask.push_back(VectorTy.getNumElements() + i - InsertionPointImm);
4992 else
4993 Mask.push_back(i);
4994 }
4995
4996 // Build shuffle
4997 MIRBuilder.buildShuffleVector(MI.getOperand(0), Vector, ExtendedSubvector,
4998 Mask);
4999 MI.eraseFromParent();
5000 return Legalized;
5001 }
5002 }
5003 case G_EXTRACT_SUBVECTOR: {
5004 Register DstReg = MI.getOperand(0).getReg();
5005 Register SrcReg = MI.getOperand(1).getReg();
5006 uint64_t ExtractionPointImm = MI.getOperand(2).getImm();
5007
5008 LLT SrcTy = MRI.getType(SrcReg);
5009 LLT DstTy = MRI.getType(DstReg);
5010
5011 if (SrcTy.isScalable() || DstTy.isScalable())
5012 return UnableToLegalize;
5013
5014 if (SrcTy.getScalarType() != DstTy.getScalarType())
5015 return UnableToLegalize;
5016
5017 // extract_subvector = build_vector(extract_element, extract_element, ...)
5018 SmallVector<Register> ExtractedElements;
5019 for (uint64_t i = 0; i < DstTy.getNumElements(); i++) {
5020 ExtractedElements.push_back(
5022 .buildExtractVectorElementConstant(SrcTy.getScalarType(), SrcReg,
5023 ExtractionPointImm + i)
5024 .getReg(0));
5025 }
5026
5027 MIRBuilder.buildBuildVector(DstReg, ExtractedElements);
5028 MI.eraseFromParent();
5029 return Legalized;
5030 }
5031 case G_STACKSAVE:
5032 return lowerStackSave(MI);
5033 case G_STACKRESTORE:
5034 return lowerStackRestore(MI);
5035 case G_EXTRACT:
5036 return lowerExtract(MI);
5037 case G_INSERT:
5038 return lowerInsert(MI);
5039 case G_BSWAP:
5040 return lowerBswap(MI);
5041 case G_BITREVERSE:
5042 return lowerBitreverse(MI);
5043 case G_READ_REGISTER:
5044 case G_WRITE_REGISTER:
5045 return lowerReadWriteRegister(MI);
5046 case G_UADDSAT:
5047 case G_USUBSAT: {
5048 // Try to make a reasonable guess about which lowering strategy to use. The
5049 // target can override this with custom lowering and calling the
5050 // implementation functions.
5051 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
5052 if (LI.isLegalOrCustom({G_UMIN, Ty}))
5053 return lowerAddSubSatToMinMax(MI);
5055 }
5056 case G_SADDSAT:
5057 case G_SSUBSAT: {
5058 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
5059
5060 // FIXME: It would probably make more sense to see if G_SADDO is preferred,
5061 // since it's a shorter expansion. However, we would need to figure out the
5062 // preferred boolean type for the carry out for the query.
5063 if (LI.isLegalOrCustom({G_SMIN, Ty}) && LI.isLegalOrCustom({G_SMAX, Ty}))
5064 return lowerAddSubSatToMinMax(MI);
5066 }
5067 case G_SSHLSAT:
5068 case G_USHLSAT:
5069 return lowerShlSat(MI);
5070 case G_TRUNC_SSAT_S:
5071 case G_TRUNC_USAT_U:
5072 case G_TRUNC_SSAT_U:
5073 return lowerTruncSat(MI);
5074 case G_ABS:
5075 return lowerAbsToAddXor(MI);
5076 case G_ABDS:
5077 case G_ABDU: {
5078 bool IsSigned = MI.getOpcode() == G_ABDS;
5079 LLT Ty = MRI.getType(MI.getOperand(0).getReg());
5080 if ((IsSigned && LI.isLegal({G_SMIN, Ty}) && LI.isLegal({G_SMAX, Ty})) ||
5081 (!IsSigned && LI.isLegal({G_UMIN, Ty}) && LI.isLegal({G_UMAX, Ty}))) {
5082 return lowerAbsDiffToMinMax(MI);
5083 }
5084 return lowerAbsDiffToSelect(MI);
5085 }
5086 case G_FABS:
5087 return lowerFAbs(MI);
5088 case G_SELECT:
5089 return lowerSelect(MI);
5090 case G_IS_FPCLASS:
5091 return lowerISFPCLASS(MI);
5092 case G_SDIVREM:
5093 case G_UDIVREM:
5094 return lowerDIVREM(MI);
5095 case G_FSHL:
5096 case G_FSHR:
5097 return lowerFunnelShift(MI);
5098 case G_ROTL:
5099 case G_ROTR:
5100 return lowerRotate(MI);
5101 case G_MEMSET:
5102 case G_MEMCPY:
5103 case G_MEMMOVE:
5104 case G_MEMCPY_INLINE:
5105 case G_MEMSET_INLINE:
5106 return lowerMemCpyFamily(MI);
5107 case G_ZEXT:
5108 case G_SEXT:
5109 case G_ANYEXT:
5110 return lowerEXT(MI);
5111 case G_TRUNC:
5112 return lowerTRUNC(MI);
5114 return lowerVectorReduction(MI);
5115 case G_VAARG:
5116 return lowerVAArg(MI);
5117 case G_ATOMICRMW_SUB: {
5118 auto [Ret, Mem, Val] = MI.getFirst3Regs();
5119 const LLT ValTy = MRI.getType(Val);
5120 MachineMemOperand *MMO = *MI.memoperands_begin();
5121
5122 auto VNeg = MIRBuilder.buildNeg(ValTy, Val);
5123 MIRBuilder.buildAtomicRMW(G_ATOMICRMW_ADD, Ret, Mem, VNeg, *MMO);
5124 MI.eraseFromParent();
5125 return Legalized;
5126 }
5127 case G_SMULFIX:
5128 case G_UMULFIX:
5129 case G_SMULFIXSAT:
5130 case G_UMULFIXSAT:
5131 return lowerMulfix(MI);
5132 }
5133}
5134
5136 Align MinAlign) const {
5137 // FIXME: We're missing a way to go back from LLT to llvm::Type to query the
5138 // datalayout for the preferred alignment. Also there should be a target hook
5139 // for this to allow targets to reduce the alignment and ignore the
5140 // datalayout. e.g. AMDGPU should always use a 4-byte alignment, regardless of
5141 // the type.
5142 return std::max(Align(PowerOf2Ceil(Ty.getSizeInBytes())), MinAlign);
5143}
5144
5147 MachinePointerInfo &PtrInfo) {
5148 MachineFunction &MF = MIRBuilder.getMF();
5149 const DataLayout &DL = MIRBuilder.getDataLayout();
5150 int FrameIdx = MF.getFrameInfo().CreateStackObject(Bytes, Alignment, false);
5151
5152 unsigned AddrSpace = DL.getAllocaAddrSpace();
5153 LLT FramePtrTy = LLT::pointer(AddrSpace, DL.getPointerSizeInBits(AddrSpace));
5154
5155 PtrInfo = MachinePointerInfo::getFixedStack(MF, FrameIdx);
5156 return MIRBuilder.buildFrameIndex(FramePtrTy, FrameIdx);
5157}
5158
5160 const SrcOp &Val) {
5161 LLT SrcTy = Val.getLLTTy(MRI);
5162 Align StackTypeAlign =
5163 std::max(getStackTemporaryAlignment(SrcTy),
5165 MachinePointerInfo PtrInfo;
5166 auto StackTemp =
5167 createStackTemporary(SrcTy.getSizeInBytes(), StackTypeAlign, PtrInfo);
5168
5169 MIRBuilder.buildStore(Val, StackTemp, PtrInfo, StackTypeAlign);
5170 return MIRBuilder.buildLoad(Res, StackTemp, PtrInfo, StackTypeAlign);
5171}
5172
5174 LLT VecTy) {
5175 LLT IdxTy = B.getMRI()->getType(IdxReg);
5176 unsigned NElts = VecTy.getNumElements();
5177
5178 int64_t IdxVal;
5179 if (mi_match(IdxReg, *B.getMRI(), m_ICst(IdxVal))) {
5180 if (IdxVal < VecTy.getNumElements())
5181 return IdxReg;
5182 // If a constant index would be out of bounds, clamp it as well.
5183 }
5184
5185 if (isPowerOf2_32(NElts)) {
5187 return B.buildAnd(IdxTy, IdxReg, B.buildConstant(IdxTy, Imm)).getReg(0);
5188 }
5189
5190 return B.buildUMin(IdxTy, IdxReg, B.buildConstant(IdxTy, NElts - 1))
5191 .getReg(0);
5192}
5193
5195 Register Index) {
5196 LLT EltTy = VecTy.getElementType();
5197
5198 // Calculate the element offset and add it to the pointer.
5199 unsigned EltSize = EltTy.getSizeInBits() / 8; // FIXME: should be ABI size.
5200 assert(EltSize * 8 == EltTy.getSizeInBits() &&
5201 "Converting bits to bytes lost precision");
5202
5203 Index = clampVectorIndex(MIRBuilder, Index, VecTy);
5204
5205 // Convert index to the correct size for the address space.
5206 const DataLayout &DL = MIRBuilder.getDataLayout();
5207 unsigned AS = MRI.getType(VecPtr).getAddressSpace();
5208 unsigned IndexSizeInBits = DL.getIndexSize(AS) * 8;
5209 LLT IdxTy = MRI.getType(Index).changeElementSize(IndexSizeInBits);
5210 if (IdxTy != MRI.getType(Index))
5211 Index = MIRBuilder.buildSExtOrTrunc(IdxTy, Index).getReg(0);
5212
5213 auto Mul = MIRBuilder.buildMul(IdxTy, Index,
5214 MIRBuilder.buildConstant(IdxTy, EltSize));
5215
5216 LLT PtrTy = MRI.getType(VecPtr);
5217 return MIRBuilder.buildPtrAdd(PtrTy, VecPtr, Mul).getReg(0);
5218}
5219
5220#ifndef NDEBUG
5221/// Check that all vector operands have same number of elements. Other operands
5222/// should be listed in NonVecOp.
5225 std::initializer_list<unsigned> NonVecOpIndices) {
5226 if (MI.getNumMemOperands() != 0)
5227 return false;
5228
5229 LLT VecTy = MRI.getType(MI.getReg(0));
5230 if (!VecTy.isVector())
5231 return false;
5232 unsigned NumElts = VecTy.getNumElements();
5233
5234 for (unsigned OpIdx = 1; OpIdx < MI.getNumOperands(); ++OpIdx) {
5235 MachineOperand &Op = MI.getOperand(OpIdx);
5236 if (!Op.isReg()) {
5237 if (!is_contained(NonVecOpIndices, OpIdx))
5238 return false;
5239 continue;
5240 }
5241
5242 LLT Ty = MRI.getType(Op.getReg());
5243 if (!Ty.isVector()) {
5244 if (!is_contained(NonVecOpIndices, OpIdx))
5245 return false;
5246 continue;
5247 }
5248
5249 if (Ty.getNumElements() != NumElts)
5250 return false;
5251 }
5252
5253 return true;
5254}
5255#endif
5256
5257/// Fill \p DstOps with DstOps that have same number of elements combined as
5258/// the Ty. These DstOps have either scalar type when \p NumElts = 1 or are
5259/// vectors with \p NumElts elements. When Ty.getNumElements() is not multiple
5260/// of \p NumElts last DstOp (leftover) has fewer then \p NumElts elements.
5261static void makeDstOps(SmallVectorImpl<DstOp> &DstOps, LLT Ty,
5262 unsigned NumElts) {
5263 LLT LeftoverTy;
5264 assert(Ty.isVector() && "Expected vector type");
5265 LLT NarrowTy = Ty.changeElementCount(ElementCount::getFixed(NumElts));
5266 int NumParts, NumLeftover;
5267 std::tie(NumParts, NumLeftover) =
5268 getNarrowTypeBreakDown(Ty, NarrowTy, LeftoverTy);
5269
5270 assert(NumParts > 0 && "Error in getNarrowTypeBreakDown");
5271 for (int i = 0; i < NumParts; ++i) {
5272 DstOps.push_back(NarrowTy);
5273 }
5274
5275 if (LeftoverTy.isValid()) {
5276 assert(NumLeftover == 1 && "expected exactly one leftover");
5277 DstOps.push_back(LeftoverTy);
5278 }
5279}
5280
5281/// Operand \p Op is used on \p N sub-instructions. Fill \p Ops with \p N SrcOps
5282/// made from \p Op depending on operand type.
5284 MachineOperand &Op) {
5285 for (unsigned i = 0; i < N; ++i) {
5286 if (Op.isReg())
5287 Ops.push_back(Op.getReg());
5288 else if (Op.isImm())
5289 Ops.push_back(Op.getImm());
5290 else if (Op.isPredicate())
5291 Ops.push_back(static_cast<CmpInst::Predicate>(Op.getPredicate()));
5292 else
5293 llvm_unreachable("Unsupported type");
5294 }
5295}
5296
5297// Handle splitting vector operations which need to have the same number of
5298// elements in each type index, but each type index may have a different element
5299// type.
5300//
5301// e.g. <4 x s64> = G_SHL <4 x s64>, <4 x s32> ->
5302// <2 x s64> = G_SHL <2 x s64>, <2 x s32>
5303// <2 x s64> = G_SHL <2 x s64>, <2 x s32>
5304//
5305// Also handles some irregular breakdown cases, e.g.
5306// e.g. <3 x s64> = G_SHL <3 x s64>, <3 x s32> ->
5307// <2 x s64> = G_SHL <2 x s64>, <2 x s32>
5308// s64 = G_SHL s64, s32
5311 GenericMachineInstr &MI, unsigned NumElts,
5312 std::initializer_list<unsigned> NonVecOpIndices) {
5313 assert(hasSameNumEltsOnAllVectorOperands(MI, MRI, NonVecOpIndices) &&
5314 "Non-compatible opcode or not specified non-vector operands");
5315 unsigned OrigNumElts = MRI.getType(MI.getReg(0)).getNumElements();
5316
5317 unsigned NumInputs = MI.getNumOperands() - MI.getNumDefs();
5318 unsigned NumDefs = MI.getNumDefs();
5319
5320 // Create DstOps (sub-vectors with NumElts elts + Leftover) for each output.
5321 // Build instructions with DstOps to use instruction found by CSE directly.
5322 // CSE copies found instruction into given vreg when building with vreg dest.
5323 SmallVector<SmallVector<DstOp, 8>, 2> OutputOpsPieces(NumDefs);
5324 // Output registers will be taken from created instructions.
5325 SmallVector<SmallVector<Register, 8>, 2> OutputRegs(NumDefs);
5326 for (unsigned i = 0; i < NumDefs; ++i) {
5327 makeDstOps(OutputOpsPieces[i], MRI.getType(MI.getReg(i)), NumElts);
5328 }
5329
5330 // Split vector input operands into sub-vectors with NumElts elts + Leftover.
5331 // Operands listed in NonVecOpIndices will be used as is without splitting;
5332 // examples: compare predicate in icmp and fcmp (op 1), vector select with i1
5333 // scalar condition (op 1), immediate in sext_inreg (op 2).
5334 SmallVector<SmallVector<SrcOp, 8>, 3> InputOpsPieces(NumInputs);
5335 for (unsigned UseIdx = NumDefs, UseNo = 0; UseIdx < MI.getNumOperands();
5336 ++UseIdx, ++UseNo) {
5337 if (is_contained(NonVecOpIndices, UseIdx)) {
5338 broadcastSrcOp(InputOpsPieces[UseNo], OutputOpsPieces[0].size(),
5339 MI.getOperand(UseIdx));
5340 } else {
5341 SmallVector<Register, 8> SplitPieces;
5342 extractVectorParts(MI.getReg(UseIdx), NumElts, SplitPieces, MIRBuilder,
5343 MRI);
5344 llvm::append_range(InputOpsPieces[UseNo], SplitPieces);
5345 }
5346 }
5347
5348 unsigned NumLeftovers = OrigNumElts % NumElts ? 1 : 0;
5349
5350 // Take i-th piece of each input operand split and build sub-vector/scalar
5351 // instruction. Set i-th DstOp(s) from OutputOpsPieces as destination(s).
5352 for (unsigned i = 0; i < OrigNumElts / NumElts + NumLeftovers; ++i) {
5354 for (unsigned DstNo = 0; DstNo < NumDefs; ++DstNo)
5355 Defs.push_back(OutputOpsPieces[DstNo][i]);
5356
5358 for (unsigned InputNo = 0; InputNo < NumInputs; ++InputNo)
5359 Uses.push_back(InputOpsPieces[InputNo][i]);
5360
5361 auto I = MIRBuilder.buildInstr(MI.getOpcode(), Defs, Uses, MI.getFlags());
5362 for (unsigned DstNo = 0; DstNo < NumDefs; ++DstNo)
5363 OutputRegs[DstNo].push_back(I.getReg(DstNo));
5364 }
5365
5366 // Merge small outputs into MI's output for each def operand.
5367 if (NumLeftovers) {
5368 for (unsigned i = 0; i < NumDefs; ++i)
5369 mergeMixedSubvectors(MI.getReg(i), OutputRegs[i]);
5370 } else {
5371 for (unsigned i = 0; i < NumDefs; ++i)
5372 MIRBuilder.buildMergeLikeInstr(MI.getReg(i), OutputRegs[i]);
5373 }
5374
5375 MI.eraseFromParent();
5376 return Legalized;
5377}
5378
5381 unsigned NumElts) {
5382 unsigned OrigNumElts = MRI.getType(MI.getReg(0)).getNumElements();
5383
5384 unsigned NumInputs = MI.getNumOperands() - MI.getNumDefs();
5385 unsigned NumDefs = MI.getNumDefs();
5386
5387 SmallVector<DstOp, 8> OutputOpsPieces;
5388 SmallVector<Register, 8> OutputRegs;
5389 makeDstOps(OutputOpsPieces, MRI.getType(MI.getReg(0)), NumElts);
5390
5391 // Instructions that perform register split will be inserted in basic block
5392 // where register is defined (basic block is in the next operand).
5393 SmallVector<SmallVector<Register, 8>, 3> InputOpsPieces(NumInputs / 2);
5394 for (unsigned UseIdx = NumDefs, UseNo = 0; UseIdx < MI.getNumOperands();
5395 UseIdx += 2, ++UseNo) {
5396 MachineBasicBlock &OpMBB = *MI.getOperand(UseIdx + 1).getMBB();
5397 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminatorForward());
5398 extractVectorParts(MI.getReg(UseIdx), NumElts, InputOpsPieces[UseNo],
5399 MIRBuilder, MRI);
5400 }
5401
5402 // Build PHIs with fewer elements.
5403 unsigned NumLeftovers = OrigNumElts % NumElts ? 1 : 0;
5404 MIRBuilder.setInsertPt(*MI.getParent(), MI);
5405 for (unsigned i = 0; i < OrigNumElts / NumElts + NumLeftovers; ++i) {
5406 auto Phi = MIRBuilder.buildInstr(TargetOpcode::G_PHI);
5407 Phi.addDef(
5408 MRI.createGenericVirtualRegister(OutputOpsPieces[i].getLLTTy(MRI)));
5409 OutputRegs.push_back(Phi.getReg(0));
5410
5411 for (unsigned j = 0; j < NumInputs / 2; ++j) {
5412 Phi.addUse(InputOpsPieces[j][i]);
5413 Phi.add(MI.getOperand(1 + j * 2 + 1));
5414 }
5415 }
5416
5417 // Set the insert point after the existing PHIs
5418 MachineBasicBlock &MBB = *MI.getParent();
5419 MIRBuilder.setInsertPt(MBB, MBB.getFirstNonPHI());
5420
5421 // Merge small outputs into MI's def.
5422 if (NumLeftovers) {
5423 mergeMixedSubvectors(MI.getReg(0), OutputRegs);
5424 } else {
5425 MIRBuilder.buildMergeLikeInstr(MI.getReg(0), OutputRegs);
5426 }
5427
5428 MI.eraseFromParent();
5429 return Legalized;
5430}
5431
5434 unsigned TypeIdx,
5435 LLT NarrowTy) {
5436 const int NumDst = MI.getNumOperands() - 1;
5437 const Register SrcReg = MI.getOperand(NumDst).getReg();
5438 LLT DstTy = MRI.getType(MI.getOperand(0).getReg());
5439 LLT SrcTy = MRI.getType(SrcReg);
5440
5441 if (TypeIdx != 1 || NarrowTy == DstTy)
5442 return UnableToLegalize;
5443
5444 // Requires compatible types. Otherwise SrcReg should have been defined by
5445 // merge-like instruction that would get artifact combined. Most likely
5446 // instruction that defines SrcReg has to perform more/fewer elements
5447 // legalization compatible with NarrowTy.
5448 assert(SrcTy.isVector() && NarrowTy.isVector() && "Expected vector types");
5449 assert((SrcTy.getScalarType() == NarrowTy.getScalarType()) && "bad type");
5450
5451 if ((SrcTy.getSizeInBits() % NarrowTy.getSizeInBits() != 0) ||
5452 (NarrowTy.getSizeInBits() % DstTy.getSizeInBits() != 0))
5453 return UnableToLegalize;
5454
5455 // This is most likely DstTy (smaller then register size) packed in SrcTy
5456 // (larger then register size) and since unmerge was not combined it will be
5457 // lowered to bit sequence extracts from register. Unpack SrcTy to NarrowTy
5458 // (register size) pieces first. Then unpack each of NarrowTy pieces to DstTy.
5459
5460 // %1:_(DstTy), %2, %3, %4 = G_UNMERGE_VALUES %0:_(SrcTy)
5461 //
5462 // %5:_(NarrowTy), %6 = G_UNMERGE_VALUES %0:_(SrcTy) - reg sequence
5463 // %1:_(DstTy), %2 = G_UNMERGE_VALUES %5:_(NarrowTy) - sequence of bits in reg
5464 // %3:_(DstTy), %4 = G_UNMERGE_VALUES %6:_(NarrowTy)
5465 auto Unmerge = MIRBuilder.buildUnmerge(NarrowTy, SrcReg);
5466 const int NumUnmerge = Unmerge->getNumOperands() - 1;
5467 const int PartsPerUnmerge = NumDst / NumUnmerge;
5468
5469 for (int I = 0; I != NumUnmerge; ++I) {
5470 auto MIB = MIRBuilder.buildInstr(TargetOpcode::G_UNMERGE_VALUES);
5471
5472 for (int J = 0; J != PartsPerUnmerge; ++J)
5473 MIB.addDef(MI.getOperand(I * PartsPerUnmerge + J).getReg());
5474 MIB.addUse(Unmerge.getReg(I));
5475 }
5476
5477 MI.eraseFromParent();
5478 return Legalized;
5479}
5480
5483 LLT NarrowTy) {
5484 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
5485 // Requires compatible types. Otherwise user of DstReg did not perform unmerge
5486 // that should have been artifact combined. Most likely instruction that uses
5487 // DstReg has to do more/fewer elements legalization compatible with NarrowTy.
5488 assert(DstTy.isVector() && NarrowTy.isVector() && "Expected vector types");
5489 assert((DstTy.getScalarType() == NarrowTy.getScalarType()) && "bad type");
5490 if (NarrowTy == SrcTy)
5491 return UnableToLegalize;
5492
5493 // This attempts to lower part of LCMTy merge/unmerge sequence. Intended use
5494 // is for old mir tests. Since the changes to more/fewer elements it should no
5495 // longer be possible to generate MIR like this when starting from llvm-ir
5496 // because LCMTy approach was replaced with merge/unmerge to vector elements.
5497 if (TypeIdx == 1) {
5498 assert(SrcTy.isVector() && "Expected vector types");
5499 assert((SrcTy.getScalarType() == NarrowTy.getScalarType()) && "bad type");
5500 if ((DstTy.getSizeInBits() % NarrowTy.getSizeInBits() != 0) ||
5501 (NarrowTy.getNumElements() >= SrcTy.getNumElements()))
5502 return UnableToLegalize;
5503 // %2:_(DstTy) = G_CONCAT_VECTORS %0:_(SrcTy), %1:_(SrcTy)
5504 //
5505 // %3:_(EltTy), %4, %5 = G_UNMERGE_VALUES %0:_(SrcTy)
5506 // %6:_(EltTy), %7, %8 = G_UNMERGE_VALUES %1:_(SrcTy)
5507 // %9:_(NarrowTy) = G_BUILD_VECTOR %3:_(EltTy), %4
5508 // %10:_(NarrowTy) = G_BUILD_VECTOR %5:_(EltTy), %6
5509 // %11:_(NarrowTy) = G_BUILD_VECTOR %7:_(EltTy), %8
5510 // %2:_(DstTy) = G_CONCAT_VECTORS %9:_(NarrowTy), %10, %11
5511
5513 LLT EltTy = MRI.getType(MI.getOperand(1).getReg()).getScalarType();
5514 for (unsigned i = 1; i < MI.getNumOperands(); ++i) {
5515 auto Unmerge = MIRBuilder.buildUnmerge(EltTy, MI.getOperand(i).getReg());
5516 for (unsigned j = 0; j < Unmerge->getNumDefs(); ++j)
5517 Elts.push_back(Unmerge.getReg(j));
5518 }
5519
5520 SmallVector<Register, 8> NarrowTyElts;
5521 unsigned NumNarrowTyElts = NarrowTy.getNumElements();
5522 unsigned NumNarrowTyPieces = DstTy.getNumElements() / NumNarrowTyElts;
5523 for (unsigned i = 0, Offset = 0; i < NumNarrowTyPieces;
5524 ++i, Offset += NumNarrowTyElts) {
5525 ArrayRef<Register> Pieces(&Elts[Offset], NumNarrowTyElts);
5526 NarrowTyElts.push_back(
5527 MIRBuilder.buildMergeLikeInstr(NarrowTy, Pieces).getReg(0));
5528 }
5529
5530 MIRBuilder.buildMergeLikeInstr(DstReg, NarrowTyElts);
5531 MI.eraseFromParent();
5532 return Legalized;
5533 }
5534
5535 assert(TypeIdx == 0 && "Bad type index");
5536 if ((NarrowTy.getSizeInBits() % SrcTy.getSizeInBits() != 0) ||
5537 (DstTy.getSizeInBits() % NarrowTy.getSizeInBits() != 0))
5538 return UnableToLegalize;
5539
5540 // This is most likely SrcTy (smaller then register size) packed in DstTy
5541 // (larger then register size) and since merge was not combined it will be
5542 // lowered to bit sequence packing into register. Merge SrcTy to NarrowTy
5543 // (register size) pieces first. Then merge each of NarrowTy pieces to DstTy.
5544
5545 // %0:_(DstTy) = G_MERGE_VALUES %1:_(SrcTy), %2, %3, %4
5546 //
5547 // %5:_(NarrowTy) = G_MERGE_VALUES %1:_(SrcTy), %2 - sequence of bits in reg
5548 // %6:_(NarrowTy) = G_MERGE_VALUES %3:_(SrcTy), %4
5549 // %0:_(DstTy) = G_MERGE_VALUES %5:_(NarrowTy), %6 - reg sequence
5550 SmallVector<Register, 8> NarrowTyElts;
5551 unsigned NumParts = DstTy.getNumElements() / NarrowTy.getNumElements();
5552 unsigned NumSrcElts = SrcTy.isVector() ? SrcTy.getNumElements() : 1;
5553 unsigned NumElts = NarrowTy.getNumElements() / NumSrcElts;
5554 for (unsigned i = 0; i < NumParts; ++i) {
5556 for (unsigned j = 0; j < NumElts; ++j)
5557 Sources.push_back(MI.getOperand(1 + i * NumElts + j).getReg());
5558 NarrowTyElts.push_back(
5559 MIRBuilder.buildMergeLikeInstr(NarrowTy, Sources).getReg(0));
5560 }
5561
5562 MIRBuilder.buildMergeLikeInstr(DstReg, NarrowTyElts);
5563 MI.eraseFromParent();
5564 return Legalized;
5565}
5566
5569 unsigned TypeIdx,
5570 LLT NarrowVecTy) {
5571 auto [DstReg, SrcVec] = MI.getFirst2Regs();
5572 Register InsertVal;
5573 bool IsInsert = MI.getOpcode() == TargetOpcode::G_INSERT_VECTOR_ELT;
5574
5575 assert((IsInsert ? TypeIdx == 0 : TypeIdx == 1) && "not a vector type index");
5576 if (IsInsert)
5577 InsertVal = MI.getOperand(2).getReg();
5578
5579 Register Idx = MI.getOperand(MI.getNumOperands() - 1).getReg();
5580 LLT VecTy = MRI.getType(SrcVec);
5581
5582 // If the index is a constant, we can really break this down as you would
5583 // expect, and index into the target size pieces.
5584 auto MaybeCst = getIConstantVRegValWithLookThrough(Idx, MRI);
5585 if (MaybeCst) {
5586 uint64_t IdxVal = MaybeCst->Value.getZExtValue();
5587 // Avoid out of bounds indexing the pieces.
5588 if (IdxVal >= VecTy.getNumElements()) {
5589 MIRBuilder.buildUndef(DstReg);
5590 MI.eraseFromParent();
5591 return Legalized;
5592 }
5593
5594 if (!NarrowVecTy.isVector()) {
5595 SmallVector<Register, 8> SplitPieces;
5596 extractParts(MI.getOperand(1).getReg(), NarrowVecTy,
5597 VecTy.getNumElements(), SplitPieces, MIRBuilder, MRI);
5598 if (IsInsert) {
5599 SplitPieces[IdxVal] = InsertVal;
5600 MIRBuilder.buildMergeLikeInstr(MI.getOperand(0).getReg(), SplitPieces);
5601 } else {
5602 MIRBuilder.buildCopy(MI.getOperand(0).getReg(), SplitPieces[IdxVal]);
5603 }
5604 } else {
5605 SmallVector<Register, 8> VecParts;
5606 LLT GCDTy = extractGCDType(VecParts, VecTy, NarrowVecTy, SrcVec);
5607
5608 // Build a sequence of NarrowTy pieces in VecParts for this operand.
5609 LLT LCMTy = buildLCMMergePieces(VecTy, NarrowVecTy, GCDTy, VecParts,
5610 TargetOpcode::G_ANYEXT);
5611
5612 unsigned NewNumElts = NarrowVecTy.getNumElements();
5613
5614 LLT IdxTy = MRI.getType(Idx);
5615 int64_t PartIdx = IdxVal / NewNumElts;
5616 auto NewIdx =
5617 MIRBuilder.buildConstant(IdxTy, IdxVal - NewNumElts * PartIdx);
5618
5619 if (IsInsert) {
5620 LLT PartTy = MRI.getType(VecParts[PartIdx]);
5621
5622 // Use the adjusted index to insert into one of the subvectors.
5623 auto InsertPart = MIRBuilder.buildInsertVectorElement(
5624 PartTy, VecParts[PartIdx], InsertVal, NewIdx);
5625 VecParts[PartIdx] = InsertPart.getReg(0);
5626
5627 // Recombine the inserted subvector with the others to reform the result
5628 // vector.
5629 buildWidenedRemergeToDst(DstReg, LCMTy, VecParts);
5630 } else {
5631 MIRBuilder.buildExtractVectorElement(DstReg, VecParts[PartIdx], NewIdx);
5632 }
5633 }
5634
5635 MI.eraseFromParent();
5636 return Legalized;
5637 }
5638
5639 // With a variable index, we can't perform the operation in a smaller type, so
5640 // we're forced to expand this.
5641 //
5642 // TODO: We could emit a chain of compare/select to figure out which piece to
5643 // index.
5645}
5646
5649 LLT NarrowTy) {
5650 // FIXME: Don't know how to handle secondary types yet.
5651 if (TypeIdx != 0)
5652 return UnableToLegalize;
5653
5654 if (!NarrowTy.isByteSized()) {
5655 LLVM_DEBUG(dbgs() << "Can't narrow load/store to non-byte-sized type\n");
5656 return UnableToLegalize;
5657 }
5658
5659 // This implementation doesn't work for atomics. Give up instead of doing
5660 // something invalid.
5661 if (LdStMI.isAtomic())
5662 return UnableToLegalize;
5663
5664 bool IsLoad = isa<GLoad>(LdStMI);
5665 Register ValReg = LdStMI.getReg(0);
5666 Register AddrReg = LdStMI.getPointerReg();
5667 LLT ValTy = MRI.getType(ValReg);
5668
5669 // FIXME: Do we need a distinct NarrowMemory legalize action?
5670 if (ValTy.getSizeInBits() != 8 * LdStMI.getMemSize().getValue()) {
5671 LLVM_DEBUG(dbgs() << "Can't narrow extload/truncstore\n");
5672 return UnableToLegalize;
5673 }
5674
5675 int NumParts = -1;
5676 int NumLeftover = -1;
5677 LLT LeftoverTy;
5678 SmallVector<Register, 8> NarrowRegs, NarrowLeftoverRegs;
5679 if (IsLoad) {
5680 std::tie(NumParts, NumLeftover) = getNarrowTypeBreakDown(ValTy, NarrowTy, LeftoverTy);
5681 } else {
5682 if (extractParts(ValReg, ValTy, NarrowTy, LeftoverTy, NarrowRegs,
5683 NarrowLeftoverRegs, MIRBuilder, MRI)) {
5684 NumParts = NarrowRegs.size();
5685 NumLeftover = NarrowLeftoverRegs.size();
5686 }
5687 }
5688
5689 if (NumParts == -1)
5690 return UnableToLegalize;
5691
5692 LLT PtrTy = MRI.getType(AddrReg);
5693 const LLT OffsetTy = LLT::integer(PtrTy.getSizeInBits());
5694
5695 unsigned TotalSize = ValTy.getSizeInBits();
5696
5697 // Split the load/store into PartTy sized pieces starting at Offset. If this
5698 // is a load, return the new registers in ValRegs. For a store, each elements
5699 // of ValRegs should be PartTy. Returns the next offset that needs to be
5700 // handled.
5701 bool isBigEndian = MIRBuilder.getDataLayout().isBigEndian();
5702 auto MMO = LdStMI.getMMO();
5703 auto splitTypePieces = [=](LLT PartTy, SmallVectorImpl<Register> &ValRegs,
5704 unsigned NumParts, unsigned Offset) -> unsigned {
5705 MachineFunction &MF = MIRBuilder.getMF();
5706 unsigned PartSize = PartTy.getSizeInBits();
5707 for (unsigned Idx = 0, E = NumParts; Idx != E && Offset < TotalSize;
5708 ++Idx) {
5709 unsigned ByteOffset = Offset / 8;
5710 Register NewAddrReg;
5711
5712 MIRBuilder.materializeObjectPtrOffset(NewAddrReg, AddrReg, OffsetTy,
5713 ByteOffset);
5714
5715 MachineMemOperand *NewMMO =
5716 MF.getMachineMemOperand(&MMO, ByteOffset, PartTy);
5717
5718 if (IsLoad) {
5719 Register Dst = MRI.createGenericVirtualRegister(PartTy);
5720 ValRegs.push_back(Dst);
5721 MIRBuilder.buildLoad(Dst, NewAddrReg, *NewMMO);
5722 } else {
5723 MIRBuilder.buildStore(ValRegs[Idx], NewAddrReg, *NewMMO);
5724 }
5725 Offset = isBigEndian ? Offset - PartSize : Offset + PartSize;
5726 }
5727
5728 return Offset;
5729 };
5730
5731 unsigned Offset = isBigEndian ? TotalSize - NarrowTy.getSizeInBits() : 0;
5732 unsigned HandledOffset =
5733 splitTypePieces(NarrowTy, NarrowRegs, NumParts, Offset);
5734
5735 // Handle the rest of the register if this isn't an even type breakdown.
5736 if (LeftoverTy.isValid())
5737 splitTypePieces(LeftoverTy, NarrowLeftoverRegs, NumLeftover, HandledOffset);
5738
5739 if (IsLoad) {
5740 insertParts(ValReg, ValTy, NarrowTy, NarrowRegs,
5741 LeftoverTy, NarrowLeftoverRegs);
5742 }
5743
5744 LdStMI.eraseFromParent();
5745 return Legalized;
5746}
5747
5750 LLT NarrowTy) {
5751 using namespace TargetOpcode;
5753 unsigned NumElts = NarrowTy.isVector() ? NarrowTy.getNumElements() : 1;
5754
5755 switch (MI.getOpcode()) {
5756 case G_IMPLICIT_DEF:
5757 case G_TRUNC:
5758 case G_AND:
5759 case G_OR:
5760 case G_XOR:
5761 case G_ADD:
5762 case G_SUB:
5763 case G_MUL:
5764 case G_PTR_ADD:
5765 case G_SMULH:
5766 case G_UMULH:
5767 case G_FADD:
5768 case G_FMUL:
5769 case G_FSUB:
5770 case G_FNEG:
5771 case G_FABS:
5772 case G_FCANONICALIZE:
5773 case G_FDIV:
5774 case G_FREM:
5775 case G_FMA:
5776 case G_FMAD:
5777 case G_FPOW:
5778 case G_FEXP:
5779 case G_FEXP2:
5780 case G_FEXP10:
5781 case G_FLOG:
5782 case G_FLOG2:
5783 case G_FLOG10:
5784 case G_FLDEXP:
5785 case G_FNEARBYINT:
5786 case G_FCEIL:
5787 case G_FFLOOR:
5788 case G_FRINT:
5789 case G_INTRINSIC_LRINT:
5790 case G_INTRINSIC_LLRINT:
5791 case G_INTRINSIC_ROUND:
5792 case G_INTRINSIC_ROUNDEVEN:
5793 case G_LROUND:
5794 case G_LLROUND:
5795 case G_INTRINSIC_TRUNC:
5796 case G_FMODF:
5797 case G_FCOS:
5798 case G_FSIN:
5799 case G_FTAN:
5800 case G_FACOS:
5801 case G_FASIN:
5802 case G_FATAN:
5803 case G_FATAN2:
5804 case G_FCOSH:
5805 case G_FSINH:
5806 case G_FTANH:
5807 case G_FSQRT:
5808 case G_BSWAP:
5809 case G_BITREVERSE:
5810 case G_SDIV:
5811 case G_UDIV:
5812 case G_SREM:
5813 case G_UREM:
5814 case G_SDIVREM:
5815 case G_UDIVREM:
5816 case G_SMIN:
5817 case G_SMAX:
5818 case G_UMIN:
5819 case G_UMAX:
5820 case G_ABS:
5821 case G_FMINNUM:
5822 case G_FMAXNUM:
5823 case G_FMINNUM_IEEE:
5824 case G_FMAXNUM_IEEE:
5825 case G_FMINIMUM:
5826 case G_FMAXIMUM:
5827 case G_FMINIMUMNUM:
5828 case G_FMAXIMUMNUM:
5829 case G_FSHL:
5830 case G_FSHR:
5831 case G_ROTL:
5832 case G_ROTR:
5833 case G_FREEZE:
5834 case G_SADDSAT:
5835 case G_SSUBSAT:
5836 case G_UADDSAT:
5837 case G_USUBSAT:
5838 case G_UMULO:
5839 case G_SMULO:
5840 case G_SHL:
5841 case G_LSHR:
5842 case G_ASHR:
5843 case G_SSHLSAT:
5844 case G_USHLSAT:
5845 case G_CTLZ:
5846 case G_CTLZ_ZERO_POISON:
5847 case G_CTTZ:
5848 case G_CTTZ_ZERO_POISON:
5849 case G_CTPOP:
5850 case G_CTLS:
5851 case G_FCOPYSIGN:
5852 case G_ZEXT:
5853 case G_SEXT:
5854 case G_ANYEXT:
5855 case G_FPEXT:
5856 case G_FPTRUNC:
5857 case G_SITOFP:
5858 case G_UITOFP:
5859 case G_FPTOSI:
5860 case G_FPTOUI:
5861 case G_FPTOSI_SAT:
5862 case G_FPTOUI_SAT:
5863 case G_INTTOPTR:
5864 case G_PTRTOINT:
5865 case G_ADDRSPACE_CAST:
5866 case G_UADDO:
5867 case G_USUBO:
5868 case G_UADDE:
5869 case G_USUBE:
5870 case G_SADDO:
5871 case G_SSUBO:
5872 case G_SADDE:
5873 case G_SSUBE:
5874 case G_STRICT_FADD:
5875 case G_STRICT_FSUB:
5876 case G_STRICT_FMUL:
5877 case G_STRICT_FMA:
5878 case G_STRICT_FLDEXP:
5879 case G_FFREXP:
5880 case G_TRUNC_SSAT_S:
5881 case G_TRUNC_SSAT_U:
5882 case G_TRUNC_USAT_U:
5883 return fewerElementsVectorMultiEltType(GMI, NumElts);
5884 case G_ICMP:
5885 case G_FCMP:
5886 return fewerElementsVectorMultiEltType(GMI, NumElts, {1 /*cpm predicate*/});
5887 case G_IS_FPCLASS:
5888 return fewerElementsVectorMultiEltType(GMI, NumElts, {2, 3 /*mask,fpsem*/});
5889 case G_SELECT:
5890 if (MRI.getType(MI.getOperand(1).getReg()).isVector())
5891 return fewerElementsVectorMultiEltType(GMI, NumElts);
5892 return fewerElementsVectorMultiEltType(GMI, NumElts, {1 /*scalar cond*/});
5893 case G_PHI:
5894 return fewerElementsVectorPhi(GMI, NumElts);
5895 case G_UNMERGE_VALUES:
5896 return fewerElementsVectorUnmergeValues(MI, TypeIdx, NarrowTy);
5897 case G_BUILD_VECTOR:
5898 assert(TypeIdx == 0 && "not a vector type index");
5899 return fewerElementsVectorMerge(MI, TypeIdx, NarrowTy);
5900 case G_CONCAT_VECTORS:
5901 if (TypeIdx != 1) // TODO: This probably does work as expected already.
5902 return UnableToLegalize;
5903 return fewerElementsVectorMerge(MI, TypeIdx, NarrowTy);
5904 case G_EXTRACT_SUBVECTOR: {
5905 Register DstReg = MI.getOperand(0).getReg();
5906 LLT DstTy = MRI.getType(DstReg);
5907 Register SrcReg = MI.getOperand(1).getReg();
5908 uint64_t InsertionPointImm = MI.getOperand(2).getImm();
5909
5910 // If Dst > NarrowTy bits, then cannot legalize
5911 if (DstTy.getSizeInBits() > NarrowTy.getSizeInBits())
5912 return UnableToLegalize;
5913
5914 // If DstTy's size is not a multiple of NarrowTy's, then cannot legalize
5915 if (!DstTy.getElementCount().isKnownMultipleOf(NarrowTy.getElementCount()))
5916 return UnableToLegalize;
5917
5918 auto Unmerge = MIRBuilder.buildUnmerge(NarrowTy, SrcReg);
5919 uint64_t RequiredSubvectorIndex =
5920 InsertionPointImm / NarrowTy.getNumElements();
5921 // If Dst and Narrow are both same size, convert to a copy
5922 if (DstTy.getNumElements() == NarrowTy.getNumElements())
5923 MIRBuilder.buildCopy(DstReg, Unmerge.getReg(RequiredSubvectorIndex));
5924 else
5925 MIRBuilder.buildExtractSubvector(
5926 DstReg, Unmerge.getReg(RequiredSubvectorIndex),
5927 InsertionPointImm % NarrowTy.getNumElements());
5928
5929 MI.eraseFromParent();
5930 return Legalized;
5931 }
5932 case G_EXTRACT_VECTOR_ELT:
5933 case G_INSERT_VECTOR_ELT:
5934 return fewerElementsVectorExtractInsertVectorElt(MI, TypeIdx, NarrowTy);
5935 case G_LOAD:
5936 case G_STORE:
5937 return reduceLoadStoreWidth(cast<GLoadStore>(MI), TypeIdx, NarrowTy);
5938 case G_SEXT_INREG:
5939 return fewerElementsVectorMultiEltType(GMI, NumElts, {2 /*imm*/});
5941 return fewerElementsVectorReductions(MI, TypeIdx, NarrowTy);
5942 case TargetOpcode::G_VECREDUCE_SEQ_FADD:
5943 case TargetOpcode::G_VECREDUCE_SEQ_FMUL:
5944 return fewerElementsVectorSeqReductions(MI, TypeIdx, NarrowTy);
5945 case G_SHUFFLE_VECTOR:
5946 return fewerElementsVectorShuffle(MI, TypeIdx, NarrowTy);
5947 case G_FPOWI:
5948 return fewerElementsVectorMultiEltType(GMI, NumElts, {2 /*pow*/});
5949 case G_BITCAST:
5950 return fewerElementsBitcast(MI, TypeIdx, NarrowTy);
5951 case G_INTRINSIC_FPTRUNC_ROUND:
5952 return fewerElementsVectorMultiEltType(GMI, NumElts, {2});
5953 default:
5954 return UnableToLegalize;
5955 }
5956}
5957
5960 LLT NarrowTy) {
5961 assert(MI.getOpcode() == TargetOpcode::G_BITCAST &&
5962 "Not a bitcast operation");
5963
5964 if (TypeIdx != 0)
5965 return UnableToLegalize;
5966
5967 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
5968
5969 unsigned NewElemCount =
5970 NarrowTy.getSizeInBits() / SrcTy.getScalarSizeInBits();
5971 SmallVector<Register> SrcVRegs, BitcastVRegs;
5972 if (NewElemCount == 1) {
5973 LLT SrcNarrowTy = SrcTy.getElementType();
5974
5975 auto Unmerge = MIRBuilder.buildUnmerge(SrcNarrowTy, SrcReg);
5976 getUnmergeResults(SrcVRegs, *Unmerge);
5977 } else {
5978 LLT SrcNarrowTy =
5980
5981 // Split the Src and Dst Reg into smaller registers
5982 if (extractGCDType(SrcVRegs, DstTy, SrcNarrowTy, SrcReg) != SrcNarrowTy)
5983 return UnableToLegalize;
5984 }
5985
5986 // Build new smaller bitcast instructions
5987 // Not supporting Leftover types for now but will have to
5988 for (Register Reg : SrcVRegs)
5989 BitcastVRegs.push_back(MIRBuilder.buildBitcast(NarrowTy, Reg).getReg(0));
5990
5991 MIRBuilder.buildMergeLikeInstr(DstReg, BitcastVRegs);
5992 MI.eraseFromParent();
5993 return Legalized;
5994}
5995
5997 MachineInstr &MI, unsigned int TypeIdx, LLT NarrowTy) {
5998 assert(MI.getOpcode() == TargetOpcode::G_SHUFFLE_VECTOR);
5999 if (TypeIdx != 0)
6000 return UnableToLegalize;
6001
6002 auto [DstReg, DstTy, Src1Reg, Src1Ty, Src2Reg, Src2Ty] =
6003 MI.getFirst3RegLLTs();
6004 ArrayRef<int> Mask = MI.getOperand(3).getShuffleMask();
6005 // The shuffle should be canonicalized by now.
6006 if (DstTy != Src1Ty)
6007 return UnableToLegalize;
6008 if (DstTy != Src2Ty)
6009 return UnableToLegalize;
6010
6011 if (!isPowerOf2_32(DstTy.getNumElements()))
6012 return UnableToLegalize;
6013
6014 // We only support splitting a shuffle into 2, so adjust NarrowTy accordingly.
6015 // Further legalization attempts will be needed to do split further.
6016 NarrowTy =
6017 DstTy.changeElementCount(DstTy.getElementCount().divideCoefficientBy(2));
6018 unsigned NewElts = NarrowTy.isVector() ? NarrowTy.getNumElements() : 1;
6019
6020 SmallVector<Register> SplitSrc1Regs, SplitSrc2Regs;
6021 extractParts(Src1Reg, NarrowTy, 2, SplitSrc1Regs, MIRBuilder, MRI);
6022 extractParts(Src2Reg, NarrowTy, 2, SplitSrc2Regs, MIRBuilder, MRI);
6023 Register Inputs[4] = {SplitSrc1Regs[0], SplitSrc1Regs[1], SplitSrc2Regs[0],
6024 SplitSrc2Regs[1]};
6025
6026 Register Hi, Lo;
6027
6028 // If Lo or Hi uses elements from at most two of the four input vectors, then
6029 // express it as a vector shuffle of those two inputs. Otherwise extract the
6030 // input elements by hand and construct the Lo/Hi output using a BUILD_VECTOR.
6032 for (unsigned High = 0; High < 2; ++High) {
6033 Register &Output = High ? Hi : Lo;
6034
6035 // Build a shuffle mask for the output, discovering on the fly which
6036 // input vectors to use as shuffle operands (recorded in InputUsed).
6037 // If building a suitable shuffle vector proves too hard, then bail
6038 // out with useBuildVector set.
6039 unsigned InputUsed[2] = {-1U, -1U}; // Not yet discovered.
6040 unsigned FirstMaskIdx = High * NewElts;
6041 bool UseBuildVector = false;
6042 for (unsigned MaskOffset = 0; MaskOffset < NewElts; ++MaskOffset) {
6043 // The mask element. This indexes into the input.
6044 int Idx = Mask[FirstMaskIdx + MaskOffset];
6045
6046 // The input vector this mask element indexes into.
6047 unsigned Input = (unsigned)Idx / NewElts;
6048
6049 if (Input >= std::size(Inputs)) {
6050 // The mask element does not index into any input vector.
6051 Ops.push_back(-1);
6052 continue;
6053 }
6054
6055 // Turn the index into an offset from the start of the input vector.
6056 Idx -= Input * NewElts;
6057
6058 // Find or create a shuffle vector operand to hold this input.
6059 unsigned OpNo;
6060 for (OpNo = 0; OpNo < std::size(InputUsed); ++OpNo) {
6061 if (InputUsed[OpNo] == Input) {
6062 // This input vector is already an operand.
6063 break;
6064 } else if (InputUsed[OpNo] == -1U) {
6065 // Create a new operand for this input vector.
6066 InputUsed[OpNo] = Input;
6067 break;
6068 }
6069 }
6070
6071 if (OpNo >= std::size(InputUsed)) {
6072 // More than two input vectors used! Give up on trying to create a
6073 // shuffle vector. Insert all elements into a BUILD_VECTOR instead.
6074 UseBuildVector = true;
6075 break;
6076 }
6077
6078 // Add the mask index for the new shuffle vector.
6079 Ops.push_back(Idx + OpNo * NewElts);
6080 }
6081
6082 if (UseBuildVector) {
6083 LLT EltTy = NarrowTy.getElementType();
6085
6086 // Extract the input elements by hand.
6087 for (unsigned MaskOffset = 0; MaskOffset < NewElts; ++MaskOffset) {
6088 // The mask element. This indexes into the input.
6089 int Idx = Mask[FirstMaskIdx + MaskOffset];
6090
6091 // The input vector this mask element indexes into.
6092 unsigned Input = (unsigned)Idx / NewElts;
6093
6094 if (Input >= std::size(Inputs)) {
6095 // The mask element is "undef" or indexes off the end of the input.
6096 SVOps.push_back(MIRBuilder.buildUndef(EltTy).getReg(0));
6097 continue;
6098 }
6099
6100 // Turn the index into an offset from the start of the input vector.
6101 Idx -= Input * NewElts;
6102
6103 // Extract the vector element by hand.
6104 SVOps.push_back(MIRBuilder
6105 .buildExtractVectorElement(
6106 EltTy, Inputs[Input],
6107 MIRBuilder.buildConstant(LLT::integer(32), Idx))
6108 .getReg(0));
6109 }
6110
6111 // Construct the Lo/Hi output using a G_BUILD_VECTOR.
6112 Output = MIRBuilder.buildBuildVector(NarrowTy, SVOps).getReg(0);
6113 } else if (InputUsed[0] == -1U) {
6114 // No input vectors were used! The result is undefined.
6115 Output = MIRBuilder.buildUndef(NarrowTy).getReg(0);
6116 } else if (NewElts == 1) {
6117 Output = MIRBuilder.buildCopy(NarrowTy, Inputs[InputUsed[0]]).getReg(0);
6118 } else {
6119 Register Op0 = Inputs[InputUsed[0]];
6120 // If only one input was used, use an undefined vector for the other.
6121 Register Op1 = InputUsed[1] == -1U
6122 ? MIRBuilder.buildUndef(NarrowTy).getReg(0)
6123 : Inputs[InputUsed[1]];
6124 // At least one input vector was used. Create a new shuffle vector.
6125 Output = MIRBuilder.buildShuffleVector(NarrowTy, Op0, Op1, Ops).getReg(0);
6126 }
6127
6128 Ops.clear();
6129 }
6130
6131 MIRBuilder.buildMergeLikeInstr(DstReg, {Lo, Hi});
6132 MI.eraseFromParent();
6133 return Legalized;
6134}
6135
6137 MachineInstr &MI, unsigned int TypeIdx, LLT NarrowTy) {
6138 auto &RdxMI = cast<GVecReduce>(MI);
6139
6140 if (TypeIdx != 1)
6141 return UnableToLegalize;
6142
6143 // The semantics of the normal non-sequential reductions allow us to freely
6144 // re-associate the operation.
6145 auto [DstReg, DstTy, SrcReg, SrcTy] = RdxMI.getFirst2RegLLTs();
6146
6147 if (NarrowTy.isVector() &&
6148 (SrcTy.getNumElements() % NarrowTy.getNumElements() != 0))
6149 return UnableToLegalize;
6150
6151 unsigned ScalarOpc = RdxMI.getScalarOpcForReduction();
6152 SmallVector<Register> SplitSrcs;
6153 // If NarrowTy is a scalar then we're being asked to scalarize.
6154 const unsigned NumParts =
6155 NarrowTy.isVector() ? SrcTy.getNumElements() / NarrowTy.getNumElements()
6156 : SrcTy.getNumElements();
6157
6158 extractParts(SrcReg, NarrowTy, NumParts, SplitSrcs, MIRBuilder, MRI);
6159 if (NarrowTy.isScalar()) {
6160 if (DstTy != NarrowTy)
6161 return UnableToLegalize; // FIXME: handle implicit extensions.
6162
6163 if (isPowerOf2_32(NumParts)) {
6164 // Generate a tree of scalar operations to reduce the critical path.
6165 SmallVector<Register> PartialResults;
6166 unsigned NumPartsLeft = NumParts;
6167 while (NumPartsLeft > 1) {
6168 for (unsigned Idx = 0; Idx < NumPartsLeft - 1; Idx += 2) {
6169 PartialResults.emplace_back(
6171 .buildInstr(ScalarOpc, {NarrowTy},
6172 {SplitSrcs[Idx], SplitSrcs[Idx + 1]})
6173 .getReg(0));
6174 }
6175 SplitSrcs = PartialResults;
6176 PartialResults.clear();
6177 NumPartsLeft = SplitSrcs.size();
6178 }
6179 assert(SplitSrcs.size() == 1);
6180 MIRBuilder.buildCopy(DstReg, SplitSrcs[0]);
6181 MI.eraseFromParent();
6182 return Legalized;
6183 }
6184 // If we can't generate a tree, then just do sequential operations.
6185 Register Acc = SplitSrcs[0];
6186 for (unsigned Idx = 1; Idx < NumParts; ++Idx)
6187 Acc = MIRBuilder.buildInstr(ScalarOpc, {NarrowTy}, {Acc, SplitSrcs[Idx]})
6188 .getReg(0);
6189 MIRBuilder.buildCopy(DstReg, Acc);
6190 MI.eraseFromParent();
6191 return Legalized;
6192 }
6193 SmallVector<Register> PartialReductions;
6194 for (unsigned Part = 0; Part < NumParts; ++Part) {
6195 PartialReductions.push_back(
6196 MIRBuilder.buildInstr(RdxMI.getOpcode(), {DstTy}, {SplitSrcs[Part]})
6197 .getReg(0));
6198 }
6199
6200 // If the types involved are powers of 2, we can generate intermediate vector
6201 // ops, before generating a final reduction operation.
6202 if (isPowerOf2_32(SrcTy.getNumElements()) &&
6203 isPowerOf2_32(NarrowTy.getNumElements())) {
6204 return tryNarrowPow2Reduction(MI, SrcReg, SrcTy, NarrowTy, ScalarOpc);
6205 }
6206
6207 Register Acc = PartialReductions[0];
6208 for (unsigned Part = 1; Part < NumParts; ++Part) {
6209 if (Part == NumParts - 1) {
6210 MIRBuilder.buildInstr(ScalarOpc, {DstReg},
6211 {Acc, PartialReductions[Part]});
6212 } else {
6213 Acc = MIRBuilder
6214 .buildInstr(ScalarOpc, {DstTy}, {Acc, PartialReductions[Part]})
6215 .getReg(0);
6216 }
6217 }
6218 MI.eraseFromParent();
6219 return Legalized;
6220}
6221
6224 unsigned int TypeIdx,
6225 LLT NarrowTy) {
6226 auto [DstReg, DstTy, ScalarReg, ScalarTy, SrcReg, SrcTy] =
6227 MI.getFirst3RegLLTs();
6228 if (!NarrowTy.isScalar() || TypeIdx != 2 || DstTy != ScalarTy ||
6229 DstTy != NarrowTy)
6230 return UnableToLegalize;
6231
6232 assert((MI.getOpcode() == TargetOpcode::G_VECREDUCE_SEQ_FADD ||
6233 MI.getOpcode() == TargetOpcode::G_VECREDUCE_SEQ_FMUL) &&
6234 "Unexpected vecreduce opcode");
6235 unsigned ScalarOpc = MI.getOpcode() == TargetOpcode::G_VECREDUCE_SEQ_FADD
6236 ? TargetOpcode::G_FADD
6237 : TargetOpcode::G_FMUL;
6238
6239 SmallVector<Register> SplitSrcs;
6240 unsigned NumParts = SrcTy.getNumElements();
6241 extractParts(SrcReg, NarrowTy, NumParts, SplitSrcs, MIRBuilder, MRI);
6242 Register Acc = ScalarReg;
6243 for (unsigned i = 0; i < NumParts; i++)
6244 Acc = MIRBuilder.buildInstr(ScalarOpc, {NarrowTy}, {Acc, SplitSrcs[i]})
6245 .getReg(0);
6246
6247 MIRBuilder.buildCopy(DstReg, Acc);
6248 MI.eraseFromParent();
6249 return Legalized;
6250}
6251
6253LegalizerHelper::tryNarrowPow2Reduction(MachineInstr &MI, Register SrcReg,
6254 LLT SrcTy, LLT NarrowTy,
6255 unsigned ScalarOpc) {
6256 SmallVector<Register> SplitSrcs;
6257 // Split the sources into NarrowTy size pieces.
6258 extractParts(SrcReg, NarrowTy,
6259 SrcTy.getNumElements() / NarrowTy.getNumElements(), SplitSrcs,
6260 MIRBuilder, MRI);
6261 // We're going to do a tree reduction using vector operations until we have
6262 // one NarrowTy size value left.
6263 while (SplitSrcs.size() > 1) {
6264 SmallVector<Register> PartialRdxs;
6265 for (unsigned Idx = 0; Idx < SplitSrcs.size()-1; Idx += 2) {
6266 Register LHS = SplitSrcs[Idx];
6267 Register RHS = SplitSrcs[Idx + 1];
6268 // Create the intermediate vector op.
6269 Register Res =
6270 MIRBuilder.buildInstr(ScalarOpc, {NarrowTy}, {LHS, RHS}).getReg(0);
6271 PartialRdxs.push_back(Res);
6272 }
6273 SplitSrcs = std::move(PartialRdxs);
6274 }
6275 // Finally generate the requested NarrowTy based reduction.
6276 Observer.changingInstr(MI);
6277 MI.getOperand(1).setReg(SplitSrcs[0]);
6278 Observer.changedInstr(MI);
6279 return Legalized;
6280}
6281
6284 const LLT HalfTy, const LLT AmtTy) {
6285
6286 Register InL = MRI.createGenericVirtualRegister(HalfTy);
6287 Register InH = MRI.createGenericVirtualRegister(HalfTy);
6288 MIRBuilder.buildUnmerge({InL, InH}, MI.getOperand(1));
6289
6290 if (Amt.isZero()) {
6291 MIRBuilder.buildMergeLikeInstr(MI.getOperand(0), {InL, InH});
6292 MI.eraseFromParent();
6293 return Legalized;
6294 }
6295
6296 LLT NVT = HalfTy;
6297 unsigned NVTBits = HalfTy.getSizeInBits();
6298 unsigned VTBits = 2 * NVTBits;
6299
6300 SrcOp Lo(Register(0)), Hi(Register(0));
6301 if (MI.getOpcode() == TargetOpcode::G_SHL) {
6302 if (Amt.ugt(VTBits)) {
6303 Lo = Hi = MIRBuilder.buildConstant(NVT, 0);
6304 } else if (Amt.ugt(NVTBits)) {
6305 Lo = MIRBuilder.buildConstant(NVT, 0);
6306 Hi = MIRBuilder.buildShl(NVT, InL,
6307 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits));
6308 } else if (Amt == NVTBits) {
6309 Lo = MIRBuilder.buildConstant(NVT, 0);
6310 Hi = InL;
6311 } else {
6312 Lo = MIRBuilder.buildShl(NVT, InL, MIRBuilder.buildConstant(AmtTy, Amt));
6313 auto OrLHS =
6314 MIRBuilder.buildShl(NVT, InH, MIRBuilder.buildConstant(AmtTy, Amt));
6315 auto OrRHS = MIRBuilder.buildLShr(
6316 NVT, InL, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits));
6317 Hi = MIRBuilder.buildOr(NVT, OrLHS, OrRHS);
6318 }
6319 } else if (MI.getOpcode() == TargetOpcode::G_LSHR) {
6320 if (Amt.ugt(VTBits)) {
6321 Lo = Hi = MIRBuilder.buildConstant(NVT, 0);
6322 } else if (Amt.ugt(NVTBits)) {
6323 Lo = MIRBuilder.buildLShr(NVT, InH,
6324 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits));
6325 Hi = MIRBuilder.buildConstant(NVT, 0);
6326 } else if (Amt == NVTBits) {
6327 Lo = InH;
6328 Hi = MIRBuilder.buildConstant(NVT, 0);
6329 } else {
6330 auto ShiftAmtConst = MIRBuilder.buildConstant(AmtTy, Amt);
6331
6332 auto OrLHS = MIRBuilder.buildLShr(NVT, InL, ShiftAmtConst);
6333 auto OrRHS = MIRBuilder.buildShl(
6334 NVT, InH, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits));
6335
6336 Lo = MIRBuilder.buildOr(NVT, OrLHS, OrRHS);
6337 Hi = MIRBuilder.buildLShr(NVT, InH, ShiftAmtConst);
6338 }
6339 } else {
6340 if (Amt.ugt(VTBits)) {
6341 Hi = Lo = MIRBuilder.buildAShr(
6342 NVT, InH, MIRBuilder.buildConstant(AmtTy, NVTBits - 1));
6343 } else if (Amt.ugt(NVTBits)) {
6344 Lo = MIRBuilder.buildAShr(NVT, InH,
6345 MIRBuilder.buildConstant(AmtTy, Amt - NVTBits));
6346 Hi = MIRBuilder.buildAShr(NVT, InH,
6347 MIRBuilder.buildConstant(AmtTy, NVTBits - 1));
6348 } else if (Amt == NVTBits) {
6349 Lo = InH;
6350 Hi = MIRBuilder.buildAShr(NVT, InH,
6351 MIRBuilder.buildConstant(AmtTy, NVTBits - 1));
6352 } else {
6353 auto ShiftAmtConst = MIRBuilder.buildConstant(AmtTy, Amt);
6354
6355 auto OrLHS = MIRBuilder.buildLShr(NVT, InL, ShiftAmtConst);
6356 auto OrRHS = MIRBuilder.buildShl(
6357 NVT, InH, MIRBuilder.buildConstant(AmtTy, -Amt + NVTBits));
6358
6359 Lo = MIRBuilder.buildOr(NVT, OrLHS, OrRHS);
6360 Hi = MIRBuilder.buildAShr(NVT, InH, ShiftAmtConst);
6361 }
6362 }
6363
6364 MIRBuilder.buildMergeLikeInstr(MI.getOperand(0), {Lo, Hi});
6365 MI.eraseFromParent();
6366
6367 return Legalized;
6368}
6369
6372 LLT RequestedTy) {
6373 if (TypeIdx == 1) {
6374 Observer.changingInstr(MI);
6375 narrowScalarSrc(MI, RequestedTy, 2);
6376 Observer.changedInstr(MI);
6377 return Legalized;
6378 }
6379
6380 Register DstReg = MI.getOperand(0).getReg();
6381 LLT DstTy = MRI.getType(DstReg);
6382 if (DstTy.isVector())
6383 return UnableToLegalize;
6384
6385 Register Amt = MI.getOperand(2).getReg();
6386 LLT ShiftAmtTy = MRI.getType(Amt);
6387 const unsigned DstEltSize = DstTy.getScalarSizeInBits();
6388 if (DstEltSize % 2 != 0)
6389 return UnableToLegalize;
6390
6391 // Check if we should use multi-way splitting instead of recursive binary
6392 // splitting.
6393 //
6394 // Multi-way splitting directly decomposes wide shifts (e.g., 128-bit ->
6395 // 4×32-bit) in a single legalization step, avoiding the recursive overhead
6396 // and dependency chains created by usual binary splitting approach
6397 // (128->64->32).
6398 //
6399 // The >= 8 parts threshold ensures we only use this optimization when binary
6400 // splitting would require multiple recursive passes, avoiding overhead for
6401 // simple 2-way splits where binary approach is sufficient.
6402 if (RequestedTy.isValid() && RequestedTy.isScalar() &&
6403 DstEltSize % RequestedTy.getSizeInBits() == 0) {
6404 const unsigned NumParts = DstEltSize / RequestedTy.getSizeInBits();
6405 // Use multiway if we have 8 or more parts (i.e., would need 3+ recursive
6406 // steps).
6407 if (NumParts >= 8)
6408 return narrowScalarShiftMultiway(MI, RequestedTy);
6409 }
6410
6411 // Fall back to binary splitting:
6412 // Ignore the input type. We can only go to exactly half the size of the
6413 // input. If that isn't small enough, the resulting pieces will be further
6414 // legalized.
6415 const unsigned NewBitSize = DstEltSize / 2;
6416 const LLT HalfTy = DstTy.getScalarType().changeElementSize(NewBitSize);
6417 const LLT CondTy = LLT::integer(1);
6418
6419 if (auto VRegAndVal = getIConstantVRegValWithLookThrough(Amt, MRI)) {
6420 return narrowScalarShiftByConstant(MI, VRegAndVal->Value, HalfTy,
6421 ShiftAmtTy);
6422 }
6423
6424 // TODO: Expand with known bits.
6425
6426 // Handle the fully general expansion by an unknown amount.
6427 auto NewBits = MIRBuilder.buildConstant(ShiftAmtTy, NewBitSize);
6428
6429 Register InL = MRI.createGenericVirtualRegister(HalfTy);
6430 Register InH = MRI.createGenericVirtualRegister(HalfTy);
6431 MIRBuilder.buildUnmerge({InL, InH}, MI.getOperand(1));
6432
6433 auto AmtExcess = MIRBuilder.buildSub(ShiftAmtTy, Amt, NewBits);
6434 auto AmtLack = MIRBuilder.buildSub(ShiftAmtTy, NewBits, Amt);
6435
6436 auto Zero = MIRBuilder.buildConstant(ShiftAmtTy, 0);
6437 auto IsShort = MIRBuilder.buildICmp(ICmpInst::ICMP_ULT, CondTy, Amt, NewBits);
6438 auto IsZero = MIRBuilder.buildICmp(ICmpInst::ICMP_EQ, CondTy, Amt, Zero);
6439
6440 Register ResultRegs[2];
6441 switch (MI.getOpcode()) {
6442 case TargetOpcode::G_SHL: {
6443 // Short: ShAmt < NewBitSize
6444 auto LoS = MIRBuilder.buildShl(HalfTy, InL, Amt);
6445
6446 auto LoOr = MIRBuilder.buildLShr(HalfTy, InL, AmtLack);
6447 auto HiOr = MIRBuilder.buildShl(HalfTy, InH, Amt);
6448 auto HiS = MIRBuilder.buildOr(HalfTy, LoOr, HiOr);
6449
6450 // Long: ShAmt >= NewBitSize
6451 auto LoL = MIRBuilder.buildConstant(HalfTy, 0); // Lo part is zero.
6452 auto HiL = MIRBuilder.buildShl(HalfTy, InL, AmtExcess); // Hi from Lo part.
6453
6454 auto Lo = MIRBuilder.buildSelect(HalfTy, IsShort, LoS, LoL);
6455 auto Hi = MIRBuilder.buildSelect(
6456 HalfTy, IsZero, InH, MIRBuilder.buildSelect(HalfTy, IsShort, HiS, HiL));
6457
6458 ResultRegs[0] = Lo.getReg(0);
6459 ResultRegs[1] = Hi.getReg(0);
6460 break;
6461 }
6462 case TargetOpcode::G_LSHR:
6463 case TargetOpcode::G_ASHR: {
6464 // Short: ShAmt < NewBitSize
6465 auto HiS = MIRBuilder.buildInstr(MI.getOpcode(), {HalfTy}, {InH, Amt});
6466
6467 auto LoOr = MIRBuilder.buildLShr(HalfTy, InL, Amt);
6468 auto HiOr = MIRBuilder.buildShl(HalfTy, InH, AmtLack);
6469 auto LoS = MIRBuilder.buildOr(HalfTy, LoOr, HiOr);
6470
6471 // Long: ShAmt >= NewBitSize
6473 if (MI.getOpcode() == TargetOpcode::G_LSHR) {
6474 HiL = MIRBuilder.buildConstant(HalfTy, 0); // Hi part is zero.
6475 } else {
6476 auto ShiftAmt = MIRBuilder.buildConstant(ShiftAmtTy, NewBitSize - 1);
6477 HiL = MIRBuilder.buildAShr(HalfTy, InH, ShiftAmt); // Sign of Hi part.
6478 }
6479 auto LoL = MIRBuilder.buildInstr(MI.getOpcode(), {HalfTy},
6480 {InH, AmtExcess}); // Lo from Hi part.
6481
6482 auto Lo = MIRBuilder.buildSelect(
6483 HalfTy, IsZero, InL, MIRBuilder.buildSelect(HalfTy, IsShort, LoS, LoL));
6484
6485 auto Hi = MIRBuilder.buildSelect(HalfTy, IsShort, HiS, HiL);
6486
6487 ResultRegs[0] = Lo.getReg(0);
6488 ResultRegs[1] = Hi.getReg(0);
6489 break;
6490 }
6491 default:
6492 llvm_unreachable("not a shift");
6493 }
6494
6495 MIRBuilder.buildMergeLikeInstr(DstReg, ResultRegs);
6496 MI.eraseFromParent();
6497 return Legalized;
6498}
6499
6501 unsigned PartIdx,
6502 unsigned NumParts,
6503 ArrayRef<Register> SrcParts,
6504 const ShiftParams &Params,
6505 LLT TargetTy, LLT ShiftAmtTy) {
6506 auto WordShiftConst = getIConstantVRegVal(Params.WordShift, MRI);
6507 auto BitShiftConst = getIConstantVRegVal(Params.BitShift, MRI);
6508 assert(WordShiftConst && BitShiftConst && "Expected constants");
6509
6510 const unsigned ShiftWords = WordShiftConst->getZExtValue();
6511 const unsigned ShiftBits = BitShiftConst->getZExtValue();
6512 const bool NeedsInterWordShift = ShiftBits != 0;
6513
6514 switch (Opcode) {
6515 case TargetOpcode::G_SHL: {
6516 // Data moves from lower indices to higher indices
6517 // If this part would come from a source beyond our range, it's zero
6518 if (PartIdx < ShiftWords)
6519 return Params.Zero;
6520
6521 unsigned SrcIdx = PartIdx - ShiftWords;
6522 if (!NeedsInterWordShift)
6523 return SrcParts[SrcIdx];
6524
6525 // Combine shifted main part with carry from previous part
6526 auto Hi = MIRBuilder.buildShl(TargetTy, SrcParts[SrcIdx], Params.BitShift);
6527 if (SrcIdx > 0) {
6528 auto Lo = MIRBuilder.buildLShr(TargetTy, SrcParts[SrcIdx - 1],
6529 Params.InvBitShift);
6530 return MIRBuilder.buildOr(TargetTy, Hi, Lo).getReg(0);
6531 }
6532 return Hi.getReg(0);
6533 }
6534
6535 case TargetOpcode::G_LSHR: {
6536 unsigned SrcIdx = PartIdx + ShiftWords;
6537 if (SrcIdx >= NumParts)
6538 return Params.Zero;
6539 if (!NeedsInterWordShift)
6540 return SrcParts[SrcIdx];
6541
6542 // Combine shifted main part with carry from next part
6543 auto Lo = MIRBuilder.buildLShr(TargetTy, SrcParts[SrcIdx], Params.BitShift);
6544 if (SrcIdx + 1 < NumParts) {
6545 auto Hi = MIRBuilder.buildShl(TargetTy, SrcParts[SrcIdx + 1],
6546 Params.InvBitShift);
6547 return MIRBuilder.buildOr(TargetTy, Lo, Hi).getReg(0);
6548 }
6549 return Lo.getReg(0);
6550 }
6551
6552 case TargetOpcode::G_ASHR: {
6553 // Like LSHR but preserves sign bit
6554 unsigned SrcIdx = PartIdx + ShiftWords;
6555 if (SrcIdx >= NumParts)
6556 return Params.SignBit;
6557 if (!NeedsInterWordShift)
6558 return SrcParts[SrcIdx];
6559
6560 // Only the original MSB part uses arithmetic shift to preserve sign. All
6561 // other parts use logical shift since they're just moving data bits.
6562 auto Lo =
6563 (SrcIdx == NumParts - 1)
6564 ? MIRBuilder.buildAShr(TargetTy, SrcParts[SrcIdx], Params.BitShift)
6565 : MIRBuilder.buildLShr(TargetTy, SrcParts[SrcIdx], Params.BitShift);
6566 Register HiSrc =
6567 (SrcIdx + 1 < NumParts) ? SrcParts[SrcIdx + 1] : Params.SignBit;
6568 auto Hi = MIRBuilder.buildShl(TargetTy, HiSrc, Params.InvBitShift);
6569 return MIRBuilder.buildOr(TargetTy, Lo, Hi).getReg(0);
6570 }
6571
6572 default:
6573 llvm_unreachable("not a shift");
6574 }
6575}
6576
6578 Register MainOperand,
6579 Register ShiftAmt,
6580 LLT TargetTy,
6581 Register CarryOperand) {
6582 // This helper generates a single output part for variable shifts by combining
6583 // the main operand (shifted by BitShift) with carry bits from an adjacent
6584 // part.
6585
6586 // For G_ASHR, individual parts don't have their own sign bit, only the
6587 // complete value does. So we use LSHR for the main operand shift in ASHR
6588 // context.
6589 unsigned MainOpcode = (Opcode == TargetOpcode::G_ASHR)
6590 ? static_cast<unsigned>(TargetOpcode::G_LSHR)
6591 : Opcode;
6592
6593 // Perform the primary shift on the main operand
6594 Register MainShifted =
6595 MIRBuilder.buildInstr(MainOpcode, {TargetTy}, {MainOperand, ShiftAmt})
6596 .getReg(0);
6597
6598 // No carry operand available
6599 if (!CarryOperand.isValid())
6600 return MainShifted;
6601
6602 // If BitShift is 0 (word-aligned shift), no inter-word bit movement occurs,
6603 // so carry bits aren't needed.
6604 LLT ShiftAmtTy = MRI.getType(ShiftAmt);
6605 auto ZeroConst = MIRBuilder.buildConstant(ShiftAmtTy, 0);
6606 LLT BoolTy = LLT::scalar(1);
6607 auto IsZeroBitShift =
6608 MIRBuilder.buildICmp(ICmpInst::ICMP_EQ, BoolTy, ShiftAmt, ZeroConst);
6609
6610 // Extract bits from the adjacent part that will "carry over" into this part.
6611 // The carry direction is opposite to the main shift direction, so we can
6612 // align the two shifted values before combining them with OR.
6613
6614 // Determine the carry shift opcode (opposite direction)
6615 unsigned CarryOpcode = (Opcode == TargetOpcode::G_SHL) ? TargetOpcode::G_LSHR
6616 : TargetOpcode::G_SHL;
6617
6618 // Calculate inverse shift amount: BitWidth - ShiftAmt
6619 auto TargetBitsConst =
6620 MIRBuilder.buildConstant(ShiftAmtTy, TargetTy.getScalarSizeInBits());
6621 auto InvShiftAmt = MIRBuilder.buildSub(ShiftAmtTy, TargetBitsConst, ShiftAmt);
6622
6623 // Shift the carry operand
6624 Register CarryBits =
6626 .buildInstr(CarryOpcode, {TargetTy}, {CarryOperand, InvShiftAmt})
6627 .getReg(0);
6628
6629 // If BitShift is 0, don't include carry bits (InvShiftAmt would equal
6630 // TargetBits which would be poison for the individual carry shift operation).
6631 auto ZeroReg = MIRBuilder.buildConstant(TargetTy, 0);
6632 Register SafeCarryBits =
6633 MIRBuilder.buildSelect(TargetTy, IsZeroBitShift, ZeroReg, CarryBits)
6634 .getReg(0);
6635
6636 // Combine the main shifted part with the carry bits
6637 return MIRBuilder.buildOr(TargetTy, MainShifted, SafeCarryBits).getReg(0);
6638}
6639
6642 const APInt &Amt,
6643 LLT TargetTy,
6644 LLT ShiftAmtTy) {
6645 // Any wide shift can be decomposed into WordShift + BitShift components.
6646 // When shift amount is known constant, directly compute the decomposition
6647 // values and generate constant registers.
6648 Register DstReg = MI.getOperand(0).getReg();
6649 Register SrcReg = MI.getOperand(1).getReg();
6650 LLT DstTy = MRI.getType(DstReg);
6651
6652 const unsigned DstBits = DstTy.getScalarSizeInBits();
6653 const unsigned TargetBits = TargetTy.getScalarSizeInBits();
6654 const unsigned NumParts = DstBits / TargetBits;
6655
6656 assert(DstBits % TargetBits == 0 && "Target type must evenly divide source");
6657
6658 // When the shift amount is known at compile time, we just calculate which
6659 // source parts contribute to each output part.
6660
6661 SmallVector<Register, 8> SrcParts;
6662 extractParts(SrcReg, TargetTy, NumParts, SrcParts, MIRBuilder, MRI);
6663
6664 if (Amt.isZero()) {
6665 // No shift needed, just copy
6666 MIRBuilder.buildMergeLikeInstr(DstReg, SrcParts);
6667 MI.eraseFromParent();
6668 return Legalized;
6669 }
6670
6671 ShiftParams Params;
6672 const unsigned ShiftWords = Amt.getZExtValue() / TargetBits;
6673 const unsigned ShiftBits = Amt.getZExtValue() % TargetBits;
6674
6675 // Generate constants and values needed by all shift types
6676 Params.WordShift = MIRBuilder.buildConstant(ShiftAmtTy, ShiftWords).getReg(0);
6677 Params.BitShift = MIRBuilder.buildConstant(ShiftAmtTy, ShiftBits).getReg(0);
6678 Params.InvBitShift =
6679 MIRBuilder.buildConstant(ShiftAmtTy, TargetBits - ShiftBits).getReg(0);
6680 Params.Zero = MIRBuilder.buildConstant(TargetTy, 0).getReg(0);
6681
6682 // For ASHR, we need the sign-extended value to fill shifted-out positions
6683 if (MI.getOpcode() == TargetOpcode::G_ASHR)
6684 Params.SignBit =
6686 .buildAShr(TargetTy, SrcParts[SrcParts.size() - 1],
6687 MIRBuilder.buildConstant(ShiftAmtTy, TargetBits - 1))
6688 .getReg(0);
6689
6690 SmallVector<Register, 8> DstParts(NumParts);
6691 for (unsigned I = 0; I < NumParts; ++I)
6692 DstParts[I] = buildConstantShiftPart(MI.getOpcode(), I, NumParts, SrcParts,
6693 Params, TargetTy, ShiftAmtTy);
6694
6695 MIRBuilder.buildMergeLikeInstr(DstReg, DstParts);
6696 MI.eraseFromParent();
6697 return Legalized;
6698}
6699
6702 Register DstReg = MI.getOperand(0).getReg();
6703 Register SrcReg = MI.getOperand(1).getReg();
6704 Register AmtReg = MI.getOperand(2).getReg();
6705 LLT DstTy = MRI.getType(DstReg);
6706 LLT ShiftAmtTy = MRI.getType(AmtReg);
6707
6708 const unsigned DstBits = DstTy.getScalarSizeInBits();
6709 const unsigned TargetBits = TargetTy.getScalarSizeInBits();
6710 const unsigned NumParts = DstBits / TargetBits;
6711
6712 assert(DstBits % TargetBits == 0 && "Target type must evenly divide source");
6713 assert(isPowerOf2_32(TargetBits) && "Target bit width must be power of 2");
6714
6715 // If the shift amount is known at compile time, we can use direct indexing
6716 // instead of generating select chains in the general case.
6717 if (auto VRegAndVal = getIConstantVRegValWithLookThrough(AmtReg, MRI))
6718 return narrowScalarShiftByConstantMultiway(MI, VRegAndVal->Value, TargetTy,
6719 ShiftAmtTy);
6720
6721 // For runtime-variable shift amounts, we must generate a more complex
6722 // sequence that handles all possible shift values using select chains.
6723
6724 // Split the input into target-sized pieces
6725 SmallVector<Register, 8> SrcParts;
6726 extractParts(SrcReg, TargetTy, NumParts, SrcParts, MIRBuilder, MRI);
6727
6728 // Shifting by zero should be a no-op.
6729 auto ZeroAmtConst = MIRBuilder.buildConstant(ShiftAmtTy, 0);
6730 LLT BoolTy = LLT::scalar(1);
6731 auto IsZeroShift =
6732 MIRBuilder.buildICmp(ICmpInst::ICMP_EQ, BoolTy, AmtReg, ZeroAmtConst);
6733
6734 // Any wide shift can be decomposed into two components:
6735 // 1. WordShift: number of complete target-sized words to shift
6736 // 2. BitShift: number of bits to shift within each word
6737 //
6738 // Example: 128-bit >> 50 with 32-bit target:
6739 // WordShift = 50 / 32 = 1 (shift right by 1 complete word)
6740 // BitShift = 50 % 32 = 18 (shift each word right by 18 bits)
6741 unsigned TargetBitsLog2 = Log2_32(TargetBits);
6742 auto TargetBitsLog2Const =
6743 MIRBuilder.buildConstant(ShiftAmtTy, TargetBitsLog2);
6744 auto TargetBitsMask = MIRBuilder.buildConstant(ShiftAmtTy, TargetBits - 1);
6745
6746 Register WordShift =
6747 MIRBuilder.buildLShr(ShiftAmtTy, AmtReg, TargetBitsLog2Const).getReg(0);
6748 Register BitShift =
6749 MIRBuilder.buildAnd(ShiftAmtTy, AmtReg, TargetBitsMask).getReg(0);
6750
6751 // Fill values:
6752 // - SHL/LSHR: fill with zeros
6753 // - ASHR: fill with sign-extended MSB
6754 Register ZeroReg = MIRBuilder.buildConstant(TargetTy, 0).getReg(0);
6755
6756 Register FillValue;
6757 if (MI.getOpcode() == TargetOpcode::G_ASHR) {
6758 auto TargetBitsMinusOneConst =
6759 MIRBuilder.buildConstant(ShiftAmtTy, TargetBits - 1);
6760 FillValue = MIRBuilder
6761 .buildAShr(TargetTy, SrcParts[NumParts - 1],
6762 TargetBitsMinusOneConst)
6763 .getReg(0);
6764 } else {
6765 FillValue = ZeroReg;
6766 }
6767
6768 SmallVector<Register, 8> DstParts(NumParts);
6769
6770 // For each output part, generate a select chain that chooses the correct
6771 // result based on the runtime WordShift value. This handles all possible
6772 // word shift amounts by pre-calculating what each would produce.
6773 for (unsigned I = 0; I < NumParts; ++I) {
6774 // Initialize with appropriate default value for this shift type
6775 Register InBoundsResult = FillValue;
6776
6777 // clang-format off
6778 // Build a branchless select chain by pre-computing results for all possible
6779 // WordShift values (0 to NumParts-1). Each iteration nests a new select:
6780 //
6781 // K=0: select(WordShift==0, result0, FillValue)
6782 // K=1: select(WordShift==1, result1, select(WordShift==0, result0, FillValue))
6783 // K=2: select(WordShift==2, result2, select(WordShift==1, result1, select(...)))
6784 // clang-format on
6785 for (unsigned K = 0; K < NumParts; ++K) {
6786 auto WordShiftKConst = MIRBuilder.buildConstant(ShiftAmtTy, K);
6787 auto IsWordShiftK = MIRBuilder.buildICmp(ICmpInst::ICMP_EQ, BoolTy,
6788 WordShift, WordShiftKConst);
6789
6790 // Calculate source indices for this word shift
6791 //
6792 // For 4-part 128-bit value with K=1 word shift:
6793 // SHL: [3][2][1][0] << K => [2][1][0][Z]
6794 // -> (MainIdx = I-K, CarryIdx = I-K-1)
6795 // LSHR: [3][2][1][0] >> K => [Z][3][2][1]
6796 // -> (MainIdx = I+K, CarryIdx = I+K+1)
6797 int MainSrcIdx;
6798 int CarrySrcIdx; // Index for the word that provides the carried-in bits.
6799
6800 switch (MI.getOpcode()) {
6801 case TargetOpcode::G_SHL:
6802 MainSrcIdx = (int)I - (int)K;
6803 CarrySrcIdx = MainSrcIdx - 1;
6804 break;
6805 case TargetOpcode::G_LSHR:
6806 case TargetOpcode::G_ASHR:
6807 MainSrcIdx = (int)I + (int)K;
6808 CarrySrcIdx = MainSrcIdx + 1;
6809 break;
6810 default:
6811 llvm_unreachable("Not a shift");
6812 }
6813
6814 // Check bounds and build the result for this word shift
6815 Register ResultForK;
6816 if (MainSrcIdx >= 0 && MainSrcIdx < (int)NumParts) {
6817 Register MainOp = SrcParts[MainSrcIdx];
6818 Register CarryOp;
6819
6820 // Determine carry operand with bounds checking
6821 if (CarrySrcIdx >= 0 && CarrySrcIdx < (int)NumParts)
6822 CarryOp = SrcParts[CarrySrcIdx];
6823 else if (MI.getOpcode() == TargetOpcode::G_ASHR &&
6824 CarrySrcIdx >= (int)NumParts)
6825 CarryOp = FillValue; // Use sign extension
6826
6827 ResultForK = buildVariableShiftPart(MI.getOpcode(), MainOp, BitShift,
6828 TargetTy, CarryOp);
6829 } else {
6830 // Out of bounds - use fill value for this k
6831 ResultForK = FillValue;
6832 }
6833
6834 // Select this result if WordShift equals k
6835 InBoundsResult =
6837 .buildSelect(TargetTy, IsWordShiftK, ResultForK, InBoundsResult)
6838 .getReg(0);
6839 }
6840
6841 // Handle zero-shift special case: if shift is 0, use original input
6842 DstParts[I] =
6844 .buildSelect(TargetTy, IsZeroShift, SrcParts[I], InBoundsResult)
6845 .getReg(0);
6846 }
6847
6848 MIRBuilder.buildMergeLikeInstr(DstReg, DstParts);
6849 MI.eraseFromParent();
6850 return Legalized;
6851}
6852
6855 LLT MoreTy) {
6856 assert(TypeIdx == 0 && "Expecting only Idx 0");
6857
6858 Observer.changingInstr(MI);
6859 for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) {
6860 MachineBasicBlock &OpMBB = *MI.getOperand(I + 1).getMBB();
6861 MIRBuilder.setInsertPt(OpMBB, OpMBB.getFirstTerminator());
6862 moreElementsVectorSrc(MI, MoreTy, I);
6863 }
6864
6865 MachineBasicBlock &MBB = *MI.getParent();
6866 MIRBuilder.setInsertPt(MBB, --MBB.getFirstNonPHI());
6867 moreElementsVectorDst(MI, MoreTy, 0);
6868 Observer.changedInstr(MI);
6869 return Legalized;
6870}
6871
6872MachineInstrBuilder LegalizerHelper::getNeutralElementForVecReduce(
6873 unsigned Opcode, MachineIRBuilder &MIRBuilder, LLT Ty) {
6874 assert(Ty.isScalar() && "Expected scalar type to make neutral element for");
6875
6876 switch (Opcode) {
6877 default:
6879 "getNeutralElementForVecReduce called with invalid opcode!");
6880 case TargetOpcode::G_VECREDUCE_ADD:
6881 case TargetOpcode::G_VECREDUCE_OR:
6882 case TargetOpcode::G_VECREDUCE_XOR:
6883 case TargetOpcode::G_VECREDUCE_UMAX:
6884 return MIRBuilder.buildConstant(Ty, 0);
6885 case TargetOpcode::G_VECREDUCE_MUL:
6886 return MIRBuilder.buildConstant(Ty, 1);
6887 case TargetOpcode::G_VECREDUCE_AND:
6888 case TargetOpcode::G_VECREDUCE_UMIN:
6890 Ty, APInt::getAllOnes(Ty.getScalarSizeInBits()));
6891 case TargetOpcode::G_VECREDUCE_SMAX:
6893 Ty, APInt::getSignedMinValue(Ty.getSizeInBits()));
6894 case TargetOpcode::G_VECREDUCE_SMIN:
6896 Ty, APInt::getSignedMaxValue(Ty.getSizeInBits()));
6897 case TargetOpcode::G_VECREDUCE_FADD:
6898 return MIRBuilder.buildFConstant(Ty, -0.0);
6899 case TargetOpcode::G_VECREDUCE_FMUL:
6900 return MIRBuilder.buildFConstant(Ty, 1.0);
6901 case TargetOpcode::G_VECREDUCE_FMINIMUM:
6902 case TargetOpcode::G_VECREDUCE_FMAXIMUM:
6903 assert(false && "getNeutralElementForVecReduce unimplemented for "
6904 "G_VECREDUCE_FMINIMUM and G_VECREDUCE_FMAXIMUM!");
6905 }
6906 llvm_unreachable("switch expected to return!");
6907}
6908
6911 LLT MoreTy) {
6912 unsigned Opc = MI.getOpcode();
6913 switch (Opc) {
6914 case TargetOpcode::G_IMPLICIT_DEF:
6915 case TargetOpcode::G_LOAD: {
6916 if (TypeIdx != 0)
6917 return UnableToLegalize;
6918 Observer.changingInstr(MI);
6919 moreElementsVectorDst(MI, MoreTy, 0);
6920 Observer.changedInstr(MI);
6921 return Legalized;
6922 }
6923 case TargetOpcode::G_STORE:
6924 if (TypeIdx != 0)
6925 return UnableToLegalize;
6926 Observer.changingInstr(MI);
6927 moreElementsVectorSrc(MI, MoreTy, 0);
6928 Observer.changedInstr(MI);
6929 return Legalized;
6930 case TargetOpcode::G_AND:
6931 case TargetOpcode::G_OR:
6932 case TargetOpcode::G_XOR:
6933 case TargetOpcode::G_ADD:
6934 case TargetOpcode::G_SUB:
6935 case TargetOpcode::G_MUL:
6936 case TargetOpcode::G_FADD:
6937 case TargetOpcode::G_FSUB:
6938 case TargetOpcode::G_FMUL:
6939 case TargetOpcode::G_FDIV:
6940 case TargetOpcode::G_FCOPYSIGN:
6941 case TargetOpcode::G_UADDSAT:
6942 case TargetOpcode::G_USUBSAT:
6943 case TargetOpcode::G_SADDSAT:
6944 case TargetOpcode::G_SSUBSAT:
6945 case TargetOpcode::G_SMIN:
6946 case TargetOpcode::G_SMAX:
6947 case TargetOpcode::G_UMIN:
6948 case TargetOpcode::G_UMAX:
6949 case TargetOpcode::G_FMINNUM:
6950 case TargetOpcode::G_FMAXNUM:
6951 case TargetOpcode::G_FMINNUM_IEEE:
6952 case TargetOpcode::G_FMAXNUM_IEEE:
6953 case TargetOpcode::G_FMINIMUM:
6954 case TargetOpcode::G_FMAXIMUM:
6955 case TargetOpcode::G_FMINIMUMNUM:
6956 case TargetOpcode::G_FMAXIMUMNUM:
6957 case TargetOpcode::G_STRICT_FADD:
6958 case TargetOpcode::G_STRICT_FSUB:
6959 case TargetOpcode::G_STRICT_FMUL: {
6960 Observer.changingInstr(MI);
6961 moreElementsVectorSrc(MI, MoreTy, 1);
6962 moreElementsVectorSrc(MI, MoreTy, 2);
6963 moreElementsVectorDst(MI, MoreTy, 0);
6964 Observer.changedInstr(MI);
6965 return Legalized;
6966 }
6967 case TargetOpcode::G_SHL:
6968 case TargetOpcode::G_ASHR:
6969 case TargetOpcode::G_LSHR: {
6970 Observer.changingInstr(MI);
6971 moreElementsVectorSrc(MI, MoreTy, 1);
6972 // The shift operand may have a different scalar type from the source and
6973 // destination operands.
6974 LLT ShiftMoreTy = MoreTy.changeElementType(
6975 MRI.getType(MI.getOperand(2).getReg()).getElementType());
6976 moreElementsVectorSrc(MI, ShiftMoreTy, 2);
6977 moreElementsVectorDst(MI, MoreTy, 0);
6978 Observer.changedInstr(MI);
6979 return Legalized;
6980 }
6981 case TargetOpcode::G_FMA:
6982 case TargetOpcode::G_STRICT_FMA:
6983 case TargetOpcode::G_FSHR:
6984 case TargetOpcode::G_FSHL: {
6985 Observer.changingInstr(MI);
6986 moreElementsVectorSrc(MI, MoreTy, 1);
6987 moreElementsVectorSrc(MI, MoreTy, 2);
6988 moreElementsVectorSrc(MI, MoreTy, 3);
6989 moreElementsVectorDst(MI, MoreTy, 0);
6990 Observer.changedInstr(MI);
6991 return Legalized;
6992 }
6993 case TargetOpcode::G_EXTRACT_VECTOR_ELT:
6994 case TargetOpcode::G_EXTRACT:
6995 if (TypeIdx != 1)
6996 return UnableToLegalize;
6997 Observer.changingInstr(MI);
6998 moreElementsVectorSrc(MI, MoreTy, 1);
6999 Observer.changedInstr(MI);
7000 return Legalized;
7001 case TargetOpcode::G_INSERT:
7002 case TargetOpcode::G_INSERT_VECTOR_ELT:
7003 case TargetOpcode::G_FREEZE:
7004 case TargetOpcode::G_FNEG:
7005 case TargetOpcode::G_FABS:
7006 case TargetOpcode::G_FSQRT:
7007 case TargetOpcode::G_FCEIL:
7008 case TargetOpcode::G_FFLOOR:
7009 case TargetOpcode::G_FNEARBYINT:
7010 case TargetOpcode::G_FRINT:
7011 case TargetOpcode::G_INTRINSIC_ROUND:
7012 case TargetOpcode::G_INTRINSIC_ROUNDEVEN:
7013 case TargetOpcode::G_INTRINSIC_TRUNC:
7014 case TargetOpcode::G_BITREVERSE:
7015 case TargetOpcode::G_BSWAP:
7016 case TargetOpcode::G_FCANONICALIZE:
7017 case TargetOpcode::G_SEXT_INREG:
7018 case TargetOpcode::G_ABS:
7019 case TargetOpcode::G_CTLZ:
7020 case TargetOpcode::G_CTPOP:
7021 if (TypeIdx != 0)
7022 return UnableToLegalize;
7023 Observer.changingInstr(MI);
7024 moreElementsVectorSrc(MI, MoreTy, 1);
7025 moreElementsVectorDst(MI, MoreTy, 0);
7026 Observer.changedInstr(MI);
7027 return Legalized;
7028 case TargetOpcode::G_SELECT: {
7029 auto [DstReg, DstTy, CondReg, CondTy] = MI.getFirst2RegLLTs();
7030 if (TypeIdx == 1) {
7031 if (!CondTy.isScalar() ||
7032 DstTy.getElementCount() != MoreTy.getElementCount())
7033 return UnableToLegalize;
7034
7035 // This is turning a scalar select of vectors into a vector
7036 // select. Broadcast the select condition.
7037 auto ShufSplat = MIRBuilder.buildShuffleSplat(MoreTy, CondReg);
7038 Observer.changingInstr(MI);
7039 MI.getOperand(1).setReg(ShufSplat.getReg(0));
7040 Observer.changedInstr(MI);
7041 return Legalized;
7042 }
7043
7044 if (CondTy.isVector())
7045 return UnableToLegalize;
7046
7047 Observer.changingInstr(MI);
7048 moreElementsVectorSrc(MI, MoreTy, 2);
7049 moreElementsVectorSrc(MI, MoreTy, 3);
7050 moreElementsVectorDst(MI, MoreTy, 0);
7051 Observer.changedInstr(MI);
7052 return Legalized;
7053 }
7054 case TargetOpcode::G_UNMERGE_VALUES:
7055 return UnableToLegalize;
7056 case TargetOpcode::G_PHI:
7057 return moreElementsVectorPhi(MI, TypeIdx, MoreTy);
7058 case TargetOpcode::G_SHUFFLE_VECTOR:
7059 return moreElementsVectorShuffle(MI, TypeIdx, MoreTy);
7060 case TargetOpcode::G_BUILD_VECTOR: {
7062 for (auto Op : MI.uses()) {
7063 Elts.push_back(Op.getReg());
7064 }
7065
7066 for (unsigned i = Elts.size(); i < MoreTy.getNumElements(); ++i) {
7067 Elts.push_back(MIRBuilder.buildUndef(MoreTy.getScalarType()));
7068 }
7069
7070 MIRBuilder.buildDeleteTrailingVectorElements(
7071 MI.getOperand(0).getReg(), MIRBuilder.buildInstr(Opc, {MoreTy}, Elts));
7072 MI.eraseFromParent();
7073 return Legalized;
7074 }
7075 case TargetOpcode::G_SEXT:
7076 case TargetOpcode::G_ZEXT:
7077 case TargetOpcode::G_ANYEXT:
7078 case TargetOpcode::G_TRUNC:
7079 case TargetOpcode::G_FPTRUNC:
7080 case TargetOpcode::G_FPEXT:
7081 case TargetOpcode::G_FPTOSI:
7082 case TargetOpcode::G_FPTOUI:
7083 case TargetOpcode::G_FPTOSI_SAT:
7084 case TargetOpcode::G_FPTOUI_SAT:
7085 case TargetOpcode::G_SITOFP:
7086 case TargetOpcode::G_UITOFP:
7087 case TargetOpcode::G_TRUNC_SSAT_S:
7088 case TargetOpcode::G_TRUNC_SSAT_U:
7089 case TargetOpcode::G_TRUNC_USAT_U: {
7090 Observer.changingInstr(MI);
7091 LLT SrcExtTy;
7092 LLT DstExtTy;
7093 if (TypeIdx == 0) {
7094 DstExtTy = MoreTy;
7095 SrcExtTy = MoreTy.changeElementType(
7096 MRI.getType(MI.getOperand(1).getReg()).getElementType());
7097 } else {
7098 DstExtTy = MoreTy.changeElementType(
7099 MRI.getType(MI.getOperand(0).getReg()).getElementType());
7100 SrcExtTy = MoreTy;
7101 }
7102 moreElementsVectorSrc(MI, SrcExtTy, 1);
7103 moreElementsVectorDst(MI, DstExtTy, 0);
7104 Observer.changedInstr(MI);
7105 return Legalized;
7106 }
7107 case TargetOpcode::G_ICMP:
7108 case TargetOpcode::G_FCMP: {
7109 if (TypeIdx != 1)
7110 return UnableToLegalize;
7111
7112 Observer.changingInstr(MI);
7113 moreElementsVectorSrc(MI, MoreTy, 2);
7114 moreElementsVectorSrc(MI, MoreTy, 3);
7115 LLT CondTy = MoreTy.changeVectorElementType(
7116 MRI.getType(MI.getOperand(0).getReg()).getElementType());
7117 moreElementsVectorDst(MI, CondTy, 0);
7118 Observer.changedInstr(MI);
7119 return Legalized;
7120 }
7121 case TargetOpcode::G_BITCAST: {
7122 if (TypeIdx != 0)
7123 return UnableToLegalize;
7124
7125 LLT SrcTy = MRI.getType(MI.getOperand(1).getReg());
7126 LLT DstTy = MRI.getType(MI.getOperand(0).getReg());
7127
7128 unsigned coefficient = SrcTy.getNumElements() * MoreTy.getNumElements();
7129 if (coefficient % DstTy.getNumElements() != 0)
7130 return UnableToLegalize;
7131
7132 coefficient = coefficient / DstTy.getNumElements();
7133
7134 LLT NewTy = SrcTy.changeElementCount(
7135 ElementCount::get(coefficient, MoreTy.isScalable()));
7136 Observer.changingInstr(MI);
7137 moreElementsVectorSrc(MI, NewTy, 1);
7138 moreElementsVectorDst(MI, MoreTy, 0);
7139 Observer.changedInstr(MI);
7140 return Legalized;
7141 }
7142 case TargetOpcode::G_VECREDUCE_FADD:
7143 case TargetOpcode::G_VECREDUCE_FMUL:
7144 case TargetOpcode::G_VECREDUCE_ADD:
7145 case TargetOpcode::G_VECREDUCE_MUL:
7146 case TargetOpcode::G_VECREDUCE_AND:
7147 case TargetOpcode::G_VECREDUCE_OR:
7148 case TargetOpcode::G_VECREDUCE_XOR:
7149 case TargetOpcode::G_VECREDUCE_SMAX:
7150 case TargetOpcode::G_VECREDUCE_SMIN:
7151 case TargetOpcode::G_VECREDUCE_UMAX:
7152 case TargetOpcode::G_VECREDUCE_UMIN: {
7153 LLT OrigTy = MRI.getType(MI.getOperand(1).getReg());
7154 MachineOperand &MO = MI.getOperand(1);
7155 auto NewVec = MIRBuilder.buildPadVectorWithUndefElements(MoreTy, MO);
7156 auto NeutralElement = getNeutralElementForVecReduce(
7157 MI.getOpcode(), MIRBuilder, MoreTy.getElementType());
7158
7159 LLT IdxTy(TLI.getVectorIdxLLT(MIRBuilder.getDataLayout()));
7160 for (size_t i = OrigTy.getNumElements(), e = MoreTy.getNumElements();
7161 i != e; i++) {
7162 auto Idx = MIRBuilder.buildConstant(IdxTy, i);
7163 NewVec = MIRBuilder.buildInsertVectorElement(MoreTy, NewVec,
7164 NeutralElement, Idx);
7165 }
7166
7167 Observer.changingInstr(MI);
7168 MO.setReg(NewVec.getReg(0));
7169 Observer.changedInstr(MI);
7170 return Legalized;
7171 }
7172
7173 default:
7174 return UnableToLegalize;
7175 }
7176}
7177
7180 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7181 ArrayRef<int> Mask = MI.getOperand(3).getShuffleMask();
7182 unsigned MaskNumElts = Mask.size();
7183 unsigned SrcNumElts = SrcTy.getNumElements();
7184 LLT DestEltTy = DstTy.getElementType();
7185
7186 if (MaskNumElts == SrcNumElts)
7187 return Legalized;
7188
7189 if (MaskNumElts < SrcNumElts) {
7190 // Extend mask to match new destination vector size with
7191 // undef values.
7192 SmallVector<int, 16> NewMask(SrcNumElts, -1);
7193 llvm::copy(Mask, NewMask.begin());
7194
7195 moreElementsVectorDst(MI, SrcTy, 0);
7196 MIRBuilder.setInstrAndDebugLoc(MI);
7197 MIRBuilder.buildShuffleVector(MI.getOperand(0).getReg(),
7198 MI.getOperand(1).getReg(),
7199 MI.getOperand(2).getReg(), NewMask);
7200 MI.eraseFromParent();
7201
7202 return Legalized;
7203 }
7204
7205 unsigned PaddedMaskNumElts = alignTo(MaskNumElts, SrcNumElts);
7206 unsigned NumConcat = PaddedMaskNumElts / SrcNumElts;
7207 LLT PaddedTy =
7208 DstTy.changeVectorElementCount(ElementCount::getFixed(PaddedMaskNumElts));
7209
7210 // Create new source vectors by concatenating the initial
7211 // source vectors with undefined vectors of the same size.
7212 auto Undef = MIRBuilder.buildUndef(SrcTy);
7213 SmallVector<Register, 8> MOps1(NumConcat, Undef.getReg(0));
7214 SmallVector<Register, 8> MOps2(NumConcat, Undef.getReg(0));
7215 MOps1[0] = MI.getOperand(1).getReg();
7216 MOps2[0] = MI.getOperand(2).getReg();
7217
7218 auto Src1 = MIRBuilder.buildConcatVectors(PaddedTy, MOps1);
7219 auto Src2 = MIRBuilder.buildConcatVectors(PaddedTy, MOps2);
7220
7221 // Readjust mask for new input vector length.
7222 SmallVector<int, 8> MappedOps(PaddedMaskNumElts, -1);
7223 for (unsigned I = 0; I != MaskNumElts; ++I) {
7224 int Idx = Mask[I];
7225 if (Idx >= static_cast<int>(SrcNumElts))
7226 Idx += PaddedMaskNumElts - SrcNumElts;
7227 MappedOps[I] = Idx;
7228 }
7229
7230 // If we got more elements than required, extract subvector.
7231 if (MaskNumElts != PaddedMaskNumElts) {
7232 auto Shuffle =
7233 MIRBuilder.buildShuffleVector(PaddedTy, Src1, Src2, MappedOps);
7234
7235 SmallVector<Register, 16> Elts(MaskNumElts);
7236 for (unsigned I = 0; I < MaskNumElts; ++I) {
7237 Elts[I] =
7238 MIRBuilder.buildExtractVectorElementConstant(DestEltTy, Shuffle, I)
7239 .getReg(0);
7240 }
7241 MIRBuilder.buildBuildVector(DstReg, Elts);
7242 } else {
7243 MIRBuilder.buildShuffleVector(DstReg, Src1, Src2, MappedOps);
7244 }
7245
7246 MI.eraseFromParent();
7248}
7249
7252 unsigned int TypeIdx, LLT MoreTy) {
7253 auto [DstTy, Src1Ty, Src2Ty] = MI.getFirst3LLTs();
7254 ArrayRef<int> Mask = MI.getOperand(3).getShuffleMask();
7255 unsigned NumElts = DstTy.getNumElements();
7256 unsigned WidenNumElts = MoreTy.getNumElements();
7257
7258 if (DstTy.isVector() && Src1Ty.isVector() &&
7259 DstTy.getNumElements() != Src1Ty.getNumElements()) {
7261 }
7262
7263 if (TypeIdx != 0)
7264 return UnableToLegalize;
7265
7266 // Expect a canonicalized shuffle.
7267 if (DstTy != Src1Ty || DstTy != Src2Ty)
7268 return UnableToLegalize;
7269
7270 moreElementsVectorSrc(MI, MoreTy, 1);
7271 moreElementsVectorSrc(MI, MoreTy, 2);
7272
7273 // Adjust mask based on new input vector length.
7274 SmallVector<int, 16> NewMask(WidenNumElts, -1);
7275 for (unsigned I = 0; I != NumElts; ++I) {
7276 int Idx = Mask[I];
7277 if (Idx < static_cast<int>(NumElts))
7278 NewMask[I] = Idx;
7279 else
7280 NewMask[I] = Idx - NumElts + WidenNumElts;
7281 }
7282 moreElementsVectorDst(MI, MoreTy, 0);
7283 MIRBuilder.setInstrAndDebugLoc(MI);
7284 MIRBuilder.buildShuffleVector(MI.getOperand(0).getReg(),
7285 MI.getOperand(1).getReg(),
7286 MI.getOperand(2).getReg(), NewMask);
7287 MI.eraseFromParent();
7288 return Legalized;
7289}
7290
7291void LegalizerHelper::multiplyRegisters(SmallVectorImpl<Register> &DstRegs,
7292 ArrayRef<Register> Src1Regs,
7293 ArrayRef<Register> Src2Regs,
7294 LLT NarrowTy) {
7296 unsigned SrcParts = Src1Regs.size();
7297 unsigned DstParts = DstRegs.size();
7298
7299 unsigned DstIdx = 0; // Low bits of the result.
7300 Register FactorSum =
7301 B.buildMul(NarrowTy, Src1Regs[DstIdx], Src2Regs[DstIdx]).getReg(0);
7302 DstRegs[DstIdx] = FactorSum;
7303
7304 Register CarrySumPrevDstIdx;
7306
7307 for (DstIdx = 1; DstIdx < DstParts; DstIdx++) {
7308 // Collect high parts of muls from previous DstIdx.
7309 for (unsigned i = DstIdx < SrcParts ? 0 : DstIdx - SrcParts;
7310 i <= std::min(DstIdx - 1, SrcParts - 1); ++i) {
7311 MachineInstrBuilder Umulh =
7312 B.buildUMulH(NarrowTy, Src1Regs[DstIdx - 1 - i], Src2Regs[i]);
7313 Factors.push_back(Umulh.getReg(0));
7314 }
7315 // Collect low parts of muls for DstIdx. Visit the diagonal starting with
7316 // the low Src1 part, so multiply-add selectors can use it as the first
7317 // accumulated cross product.
7318 unsigned LowStart = DstIdx + 1 < SrcParts ? 0 : DstIdx - SrcParts + 1;
7319 unsigned LowEnd = std::min(DstIdx, SrcParts - 1);
7320 for (unsigned RevI = LowEnd + 1; RevI != LowStart; --RevI) {
7321 unsigned i = RevI - 1;
7323 B.buildMul(NarrowTy, Src1Regs[DstIdx - i], Src2Regs[i]);
7324 Factors.push_back(Mul.getReg(0));
7325 }
7326 // Add CarrySum from additions calculated for previous DstIdx.
7327 if (DstIdx != 1) {
7328 Factors.push_back(CarrySumPrevDstIdx);
7329 }
7330
7331 Register CarrySum;
7332 // Add all factors and accumulate all carries into CarrySum.
7333 if (DstIdx != DstParts - 1) {
7334 MachineInstrBuilder Uaddo =
7335 B.buildUAddo(NarrowTy, LLT::integer(1), Factors[0], Factors[1]);
7336 FactorSum = Uaddo.getReg(0);
7337 CarrySum = B.buildZExt(NarrowTy, Uaddo.getReg(1)).getReg(0);
7338 for (unsigned i = 2; i < Factors.size(); ++i) {
7339 MachineInstrBuilder Uaddo =
7340 B.buildUAddo(NarrowTy, LLT::integer(1), FactorSum, Factors[i]);
7341 FactorSum = Uaddo.getReg(0);
7342 MachineInstrBuilder Carry = B.buildZExt(NarrowTy, Uaddo.getReg(1));
7343 CarrySum = B.buildAdd(NarrowTy, CarrySum, Carry).getReg(0);
7344 }
7345 } else {
7346 // Since value for the next index is not calculated, neither is CarrySum.
7347 FactorSum = B.buildAdd(NarrowTy, Factors[0], Factors[1]).getReg(0);
7348 for (unsigned i = 2; i < Factors.size(); ++i)
7349 FactorSum = B.buildAdd(NarrowTy, FactorSum, Factors[i]).getReg(0);
7350 }
7351
7352 CarrySumPrevDstIdx = CarrySum;
7353 DstRegs[DstIdx] = FactorSum;
7354 Factors.clear();
7355 }
7356}
7357
7360 LLT NarrowTy) {
7361 if (TypeIdx != 0)
7362 return UnableToLegalize;
7363
7364 Register DstReg = MI.getOperand(0).getReg();
7365 LLT DstType = MRI.getType(DstReg);
7366 // FIXME: add support for vector types
7367 if (DstType.isVector())
7368 return UnableToLegalize;
7369
7370 unsigned Opcode = MI.getOpcode();
7371 unsigned OpO, OpE, OpF;
7372 switch (Opcode) {
7373 case TargetOpcode::G_SADDO:
7374 case TargetOpcode::G_SADDE:
7375 case TargetOpcode::G_UADDO:
7376 case TargetOpcode::G_UADDE:
7377 case TargetOpcode::G_ADD:
7378 OpO = TargetOpcode::G_UADDO;
7379 OpE = TargetOpcode::G_UADDE;
7380 OpF = TargetOpcode::G_UADDE;
7381 if (Opcode == TargetOpcode::G_SADDO || Opcode == TargetOpcode::G_SADDE)
7382 OpF = TargetOpcode::G_SADDE;
7383 break;
7384 case TargetOpcode::G_SSUBO:
7385 case TargetOpcode::G_SSUBE:
7386 case TargetOpcode::G_USUBO:
7387 case TargetOpcode::G_USUBE:
7388 case TargetOpcode::G_SUB:
7389 OpO = TargetOpcode::G_USUBO;
7390 OpE = TargetOpcode::G_USUBE;
7391 OpF = TargetOpcode::G_USUBE;
7392 if (Opcode == TargetOpcode::G_SSUBO || Opcode == TargetOpcode::G_SSUBE)
7393 OpF = TargetOpcode::G_SSUBE;
7394 break;
7395 default:
7396 llvm_unreachable("Unexpected add/sub opcode!");
7397 }
7398
7399 // 1 for a plain add/sub, 2 if this is an operation with a carry-out.
7400 unsigned NumDefs = MI.getNumExplicitDefs();
7401 Register Src1 = MI.getOperand(NumDefs).getReg();
7402 Register Src2 = MI.getOperand(NumDefs + 1).getReg();
7403 Register CarryDst, CarryIn;
7404 if (NumDefs == 2)
7405 CarryDst = MI.getOperand(1).getReg();
7406 if (MI.getNumOperands() == NumDefs + 3)
7407 CarryIn = MI.getOperand(NumDefs + 2).getReg();
7408
7409 LLT RegTy = MRI.getType(MI.getOperand(0).getReg());
7410 LLT LeftoverTy, DummyTy;
7411 SmallVector<Register, 2> Src1Regs, Src2Regs, Src1Left, Src2Left, DstRegs;
7412 extractParts(Src1, RegTy, NarrowTy, LeftoverTy, Src1Regs, Src1Left,
7413 MIRBuilder, MRI);
7414 extractParts(Src2, RegTy, NarrowTy, DummyTy, Src2Regs, Src2Left, MIRBuilder,
7415 MRI);
7416
7417 int NarrowParts = Src1Regs.size();
7418 Src1Regs.append(Src1Left);
7419 Src2Regs.append(Src2Left);
7420 DstRegs.reserve(Src1Regs.size());
7421
7422 for (int i = 0, e = Src1Regs.size(); i != e; ++i) {
7423 Register DstReg =
7424 MRI.createGenericVirtualRegister(MRI.getType(Src1Regs[i]));
7425 Register CarryOut;
7426 // Forward the final carry-out to the destination register
7427 if (i == e - 1 && CarryDst)
7428 CarryOut = CarryDst;
7429 else
7430 CarryOut = MRI.createGenericVirtualRegister(LLT::integer(1));
7431
7432 if (!CarryIn) {
7433 MIRBuilder.buildInstr(OpO, {DstReg, CarryOut},
7434 {Src1Regs[i], Src2Regs[i]});
7435 } else if (i == e - 1) {
7436 MIRBuilder.buildInstr(OpF, {DstReg, CarryOut},
7437 {Src1Regs[i], Src2Regs[i], CarryIn});
7438 } else {
7439 MIRBuilder.buildInstr(OpE, {DstReg, CarryOut},
7440 {Src1Regs[i], Src2Regs[i], CarryIn});
7441 }
7442
7443 DstRegs.push_back(DstReg);
7444 CarryIn = CarryOut;
7445 }
7446 insertParts(MI.getOperand(0).getReg(), RegTy, NarrowTy,
7447 ArrayRef(DstRegs).take_front(NarrowParts), LeftoverTy,
7448 ArrayRef(DstRegs).drop_front(NarrowParts));
7449
7450 MI.eraseFromParent();
7451 return Legalized;
7452}
7453
7456 auto [DstReg, Src1, Src2] = MI.getFirst3Regs();
7457
7458 LLT Ty = MRI.getType(DstReg);
7459 if (Ty.isVector())
7460 return UnableToLegalize;
7461
7462 unsigned Size = Ty.getSizeInBits();
7463 unsigned NarrowSize = NarrowTy.getSizeInBits();
7464 if (Size % NarrowSize != 0)
7465 return UnableToLegalize;
7466
7467 unsigned NumParts = Size / NarrowSize;
7468 bool IsMulHigh = MI.getOpcode() == TargetOpcode::G_UMULH;
7469 unsigned DstTmpParts = NumParts * (IsMulHigh ? 2 : 1);
7470
7471 SmallVector<Register, 2> Src1Parts, Src2Parts;
7472 SmallVector<Register, 2> DstTmpRegs(DstTmpParts);
7473 extractParts(Src1, NarrowTy, NumParts, Src1Parts, MIRBuilder, MRI);
7474 extractParts(Src2, NarrowTy, NumParts, Src2Parts, MIRBuilder, MRI);
7475 multiplyRegisters(DstTmpRegs, Src1Parts, Src2Parts, NarrowTy);
7476
7477 // Take only high half of registers if this is high mul.
7478 ArrayRef<Register> DstRegs(&DstTmpRegs[DstTmpParts - NumParts], NumParts);
7479 MIRBuilder.buildMergeLikeInstr(DstReg, DstRegs);
7480 MI.eraseFromParent();
7481 return Legalized;
7482}
7483
7486 LLT NarrowTy) {
7487 if (TypeIdx != 0)
7488 return UnableToLegalize;
7489
7490 bool IsSigned = MI.getOpcode() == TargetOpcode::G_FPTOSI;
7491
7492 Register Src = MI.getOperand(1).getReg();
7493 LLT SrcTy = MRI.getType(Src);
7494
7495 // If all finite floats fit into the narrowed integer type, we can just swap
7496 // out the result type. This is practically only useful for conversions from
7497 // half to at least 16-bits, so just handle the one case.
7498 if (SrcTy.getScalarType() != LLT::scalar(16) ||
7499 NarrowTy.getScalarSizeInBits() < (IsSigned ? 17u : 16u))
7500 return UnableToLegalize;
7501
7502 Observer.changingInstr(MI);
7503 narrowScalarDst(MI, NarrowTy, 0,
7504 IsSigned ? TargetOpcode::G_SEXT : TargetOpcode::G_ZEXT);
7505 Observer.changedInstr(MI);
7506 return Legalized;
7507}
7508
7511 LLT NarrowTy) {
7512 if (TypeIdx != 1)
7513 return UnableToLegalize;
7514
7515 uint64_t NarrowSize = NarrowTy.getSizeInBits();
7516
7517 int64_t SizeOp1 = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits();
7518 // FIXME: add support for when SizeOp1 isn't an exact multiple of
7519 // NarrowSize.
7520 if (SizeOp1 % NarrowSize != 0)
7521 return UnableToLegalize;
7522 int NumParts = SizeOp1 / NarrowSize;
7523
7524 SmallVector<Register, 2> SrcRegs, DstRegs;
7525 extractParts(MI.getOperand(1).getReg(), NarrowTy, NumParts, SrcRegs,
7526 MIRBuilder, MRI);
7527
7528 Register OpReg = MI.getOperand(0).getReg();
7529 uint64_t OpStart = MI.getOperand(2).getImm();
7530 uint64_t OpSize = MRI.getType(OpReg).getSizeInBits();
7531 for (int i = 0; i < NumParts; ++i) {
7532 unsigned SrcStart = i * NarrowSize;
7533
7534 if (SrcStart + NarrowSize <= OpStart || SrcStart >= OpStart + OpSize) {
7535 // No part of the extract uses this subregister, ignore it.
7536 continue;
7537 } else if (SrcStart == OpStart && NarrowTy == MRI.getType(OpReg)) {
7538 // The entire subregister is extracted, forward the value.
7539 DstRegs.push_back(SrcRegs[i]);
7540 continue;
7541 }
7542
7543 // OpSegStart is where this destination segment would start in OpReg if it
7544 // extended infinitely in both directions.
7545 int64_t ExtractOffset;
7546 uint64_t SegSize;
7547 if (OpStart < SrcStart) {
7548 ExtractOffset = 0;
7549 SegSize = std::min(NarrowSize, OpStart + OpSize - SrcStart);
7550 } else {
7551 ExtractOffset = OpStart - SrcStart;
7552 SegSize = std::min(SrcStart + NarrowSize - OpStart, OpSize);
7553 }
7554
7555 Register SegReg = SrcRegs[i];
7556 if (ExtractOffset != 0 || SegSize != NarrowSize) {
7557 // A genuine extract is needed.
7558 SegReg = MRI.createGenericVirtualRegister(LLT::integer(SegSize));
7559 MIRBuilder.buildExtract(SegReg, SrcRegs[i], ExtractOffset);
7560 }
7561
7562 DstRegs.push_back(SegReg);
7563 }
7564
7565 Register DstReg = MI.getOperand(0).getReg();
7566 if (MRI.getType(DstReg).isVector())
7567 MIRBuilder.buildBuildVector(DstReg, DstRegs);
7568 else if (DstRegs.size() > 1)
7569 MIRBuilder.buildMergeLikeInstr(DstReg, DstRegs);
7570 else
7571 MIRBuilder.buildCopy(DstReg, DstRegs[0]);
7572 MI.eraseFromParent();
7573 return Legalized;
7574}
7575
7578 LLT NarrowTy) {
7579 // FIXME: Don't know how to handle secondary types yet.
7580 if (TypeIdx != 0)
7581 return UnableToLegalize;
7582
7583 SmallVector<Register, 2> SrcRegs, LeftoverRegs, DstRegs;
7584 LLT RegTy = MRI.getType(MI.getOperand(0).getReg());
7585 LLT LeftoverTy;
7586 extractParts(MI.getOperand(1).getReg(), RegTy, NarrowTy, LeftoverTy, SrcRegs,
7587 LeftoverRegs, MIRBuilder, MRI);
7588
7589 SrcRegs.append(LeftoverRegs);
7590
7591 uint64_t NarrowSize = NarrowTy.getSizeInBits();
7592 Register OpReg = MI.getOperand(2).getReg();
7593 uint64_t OpStart = MI.getOperand(3).getImm();
7594 uint64_t OpSize = MRI.getType(OpReg).getSizeInBits();
7595 for (int I = 0, E = SrcRegs.size(); I != E; ++I) {
7596 unsigned DstStart = I * NarrowSize;
7597
7598 if (DstStart == OpStart && NarrowTy == MRI.getType(OpReg)) {
7599 // The entire subregister is defined by this insert, forward the new
7600 // value.
7601 DstRegs.push_back(OpReg);
7602 continue;
7603 }
7604
7605 Register SrcReg = SrcRegs[I];
7606 if (MRI.getType(SrcRegs[I]) == LeftoverTy) {
7607 // The leftover reg is smaller than NarrowTy, so we need to extend it.
7608 SrcReg = MRI.createGenericVirtualRegister(NarrowTy);
7609 MIRBuilder.buildAnyExt(SrcReg, SrcRegs[I]);
7610 }
7611
7612 if (DstStart + NarrowSize <= OpStart || DstStart >= OpStart + OpSize) {
7613 // No part of the insert affects this subregister, forward the original.
7614 DstRegs.push_back(SrcReg);
7615 continue;
7616 }
7617
7618 // OpSegStart is where this destination segment would start in OpReg if it
7619 // extended infinitely in both directions.
7620 int64_t ExtractOffset, InsertOffset;
7621 uint64_t SegSize;
7622 if (OpStart < DstStart) {
7623 InsertOffset = 0;
7624 ExtractOffset = DstStart - OpStart;
7625 SegSize = std::min(NarrowSize, OpStart + OpSize - DstStart);
7626 } else {
7627 InsertOffset = OpStart - DstStart;
7628 ExtractOffset = 0;
7629 SegSize =
7630 std::min(NarrowSize - InsertOffset, OpStart + OpSize - DstStart);
7631 }
7632
7633 Register SegReg = OpReg;
7634 if (ExtractOffset != 0 || SegSize != OpSize) {
7635 // A genuine extract is needed.
7636 SegReg = MRI.createGenericVirtualRegister(LLT::scalar(SegSize));
7637 MIRBuilder.buildExtract(SegReg, OpReg, ExtractOffset);
7638 }
7639
7640 Register DstReg = MRI.createGenericVirtualRegister(NarrowTy);
7641 MIRBuilder.buildInsert(DstReg, SrcReg, SegReg, InsertOffset);
7642 DstRegs.push_back(DstReg);
7643 }
7644
7645 uint64_t WideSize = DstRegs.size() * NarrowSize;
7646 Register DstReg = MI.getOperand(0).getReg();
7647 if (WideSize > RegTy.getSizeInBits()) {
7648 Register MergeReg = MRI.createGenericVirtualRegister(LLT::scalar(WideSize));
7649 MIRBuilder.buildMergeLikeInstr(MergeReg, DstRegs);
7650 MIRBuilder.buildTrunc(DstReg, MergeReg);
7651 } else
7652 MIRBuilder.buildMergeLikeInstr(DstReg, DstRegs);
7653
7654 MI.eraseFromParent();
7655 return Legalized;
7656}
7657
7660 LLT NarrowTy) {
7661 Register DstReg = MI.getOperand(0).getReg();
7662 LLT DstTy = MRI.getType(DstReg);
7663
7664 assert(MI.getNumOperands() == 3 && TypeIdx == 0);
7665
7666 SmallVector<Register, 4> DstRegs, DstLeftoverRegs;
7667 SmallVector<Register, 4> Src0Regs, Src0LeftoverRegs;
7668 SmallVector<Register, 4> Src1Regs, Src1LeftoverRegs;
7669 LLT LeftoverTy;
7670 if (!extractParts(MI.getOperand(1).getReg(), DstTy, NarrowTy, LeftoverTy,
7671 Src0Regs, Src0LeftoverRegs, MIRBuilder, MRI))
7672 return UnableToLegalize;
7673
7674 LLT Unused;
7675 if (!extractParts(MI.getOperand(2).getReg(), DstTy, NarrowTy, Unused,
7676 Src1Regs, Src1LeftoverRegs, MIRBuilder, MRI))
7677 llvm_unreachable("inconsistent extractParts result");
7678
7679 for (unsigned I = 0, E = Src1Regs.size(); I != E; ++I) {
7680 auto Inst = MIRBuilder.buildInstr(MI.getOpcode(), {NarrowTy},
7681 {Src0Regs[I], Src1Regs[I]});
7682 DstRegs.push_back(Inst.getReg(0));
7683 }
7684
7685 for (unsigned I = 0, E = Src1LeftoverRegs.size(); I != E; ++I) {
7686 auto Inst = MIRBuilder.buildInstr(
7687 MI.getOpcode(),
7688 {LeftoverTy}, {Src0LeftoverRegs[I], Src1LeftoverRegs[I]});
7689 DstLeftoverRegs.push_back(Inst.getReg(0));
7690 }
7691
7692 insertParts(DstReg, DstTy, NarrowTy, DstRegs,
7693 LeftoverTy, DstLeftoverRegs);
7694
7695 MI.eraseFromParent();
7696 return Legalized;
7697}
7698
7701 LLT NarrowTy) {
7702 if (TypeIdx != 0)
7703 return UnableToLegalize;
7704
7705 auto [DstReg, SrcReg] = MI.getFirst2Regs();
7706
7707 LLT DstTy = MRI.getType(DstReg);
7708 if (DstTy.isVector())
7709 return UnableToLegalize;
7710
7712 LLT GCDTy = extractGCDType(Parts, DstTy, NarrowTy, SrcReg);
7713 LLT LCMTy = buildLCMMergePieces(DstTy, NarrowTy, GCDTy, Parts, MI.getOpcode());
7714 buildWidenedRemergeToDst(DstReg, LCMTy, Parts);
7715
7716 MI.eraseFromParent();
7717 return Legalized;
7718}
7719
7722 LLT NarrowTy) {
7723 if (TypeIdx != 0)
7724 return UnableToLegalize;
7725
7726 Register CondReg = MI.getOperand(1).getReg();
7727 LLT CondTy = MRI.getType(CondReg);
7728 if (CondTy.isVector()) // TODO: Handle vselect
7729 return UnableToLegalize;
7730
7731 Register DstReg = MI.getOperand(0).getReg();
7732 LLT DstTy = MRI.getType(DstReg);
7733
7734 SmallVector<Register, 4> DstRegs, DstLeftoverRegs;
7735 SmallVector<Register, 4> Src1Regs, Src1LeftoverRegs;
7736 SmallVector<Register, 4> Src2Regs, Src2LeftoverRegs;
7737 LLT LeftoverTy;
7738 if (!extractParts(MI.getOperand(2).getReg(), DstTy, NarrowTy, LeftoverTy,
7739 Src1Regs, Src1LeftoverRegs, MIRBuilder, MRI))
7740 return UnableToLegalize;
7741
7742 LLT Unused;
7743 if (!extractParts(MI.getOperand(3).getReg(), DstTy, NarrowTy, Unused,
7744 Src2Regs, Src2LeftoverRegs, MIRBuilder, MRI))
7745 llvm_unreachable("inconsistent extractParts result");
7746
7747 for (unsigned I = 0, E = Src1Regs.size(); I != E; ++I) {
7748 auto Select = MIRBuilder.buildSelect(NarrowTy,
7749 CondReg, Src1Regs[I], Src2Regs[I]);
7750 DstRegs.push_back(Select.getReg(0));
7751 }
7752
7753 for (unsigned I = 0, E = Src1LeftoverRegs.size(); I != E; ++I) {
7754 auto Select = MIRBuilder.buildSelect(
7755 LeftoverTy, CondReg, Src1LeftoverRegs[I], Src2LeftoverRegs[I]);
7756 DstLeftoverRegs.push_back(Select.getReg(0));
7757 }
7758
7759 insertParts(DstReg, DstTy, NarrowTy, DstRegs,
7760 LeftoverTy, DstLeftoverRegs);
7761
7762 MI.eraseFromParent();
7763 return Legalized;
7764}
7765
7768 LLT NarrowTy) {
7769 if (TypeIdx != 1)
7770 return UnableToLegalize;
7771
7772 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7773 unsigned NarrowSize = NarrowTy.getSizeInBits();
7774
7775 if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) {
7776 const bool IsUndef = MI.getOpcode() == TargetOpcode::G_CTLZ_ZERO_POISON;
7777
7779 auto UnmergeSrc = B.buildUnmerge(NarrowTy, SrcReg);
7780 // ctlz(Hi:Lo) -> Hi == 0 ? (NarrowSize + ctlz(Lo)) : ctlz(Hi)
7781 auto C_0 = B.buildConstant(NarrowTy, 0);
7782 auto HiIsZero = B.buildICmp(CmpInst::ICMP_EQ, LLT::integer(1),
7783 UnmergeSrc.getReg(1), C_0);
7784 auto LoCTLZ = IsUndef ? B.buildCTLZ_ZERO_POISON(DstTy, UnmergeSrc.getReg(0))
7785 : B.buildCTLZ(DstTy, UnmergeSrc.getReg(0));
7786 auto C_NarrowSize = B.buildConstant(DstTy, NarrowSize);
7787 auto HiIsZeroCTLZ = B.buildAdd(DstTy, LoCTLZ, C_NarrowSize);
7788 auto HiCTLZ = B.buildCTLZ_ZERO_POISON(DstTy, UnmergeSrc.getReg(1));
7789 B.buildSelect(DstReg, HiIsZero, HiIsZeroCTLZ, HiCTLZ);
7790
7791 MI.eraseFromParent();
7792 return Legalized;
7793 }
7794
7795 return UnableToLegalize;
7796}
7797
7800 LLT NarrowTy) {
7801 if (TypeIdx != 1)
7802 return UnableToLegalize;
7803
7804 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7805 unsigned NarrowSize = NarrowTy.getSizeInBits();
7806
7807 if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) {
7808 const bool IsUndef = MI.getOpcode() == TargetOpcode::G_CTTZ_ZERO_POISON;
7809
7811 auto UnmergeSrc = B.buildUnmerge(NarrowTy, SrcReg);
7812 // cttz(Hi:Lo) -> Lo == 0 ? (cttz(Hi) + NarrowSize) : cttz(Lo)
7813 auto C_0 = B.buildConstant(NarrowTy, 0);
7814 auto LoIsZero = B.buildICmp(CmpInst::ICMP_EQ, LLT::integer(1),
7815 UnmergeSrc.getReg(0), C_0);
7816 auto HiCTTZ = IsUndef ? B.buildCTTZ_ZERO_POISON(DstTy, UnmergeSrc.getReg(1))
7817 : B.buildCTTZ(DstTy, UnmergeSrc.getReg(1));
7818 auto C_NarrowSize = B.buildConstant(DstTy, NarrowSize);
7819 auto LoIsZeroCTTZ = B.buildAdd(DstTy, HiCTTZ, C_NarrowSize);
7820 auto LoCTTZ = B.buildCTTZ_ZERO_POISON(DstTy, UnmergeSrc.getReg(0));
7821 B.buildSelect(DstReg, LoIsZero, LoIsZeroCTTZ, LoCTTZ);
7822
7823 MI.eraseFromParent();
7824 return Legalized;
7825 }
7826
7827 return UnableToLegalize;
7828}
7829
7832 LLT NarrowTy) {
7833 if (TypeIdx != 1)
7834 return UnableToLegalize;
7835
7836 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7837 unsigned NarrowSize = NarrowTy.getSizeInBits();
7838
7839 if (!SrcTy.isScalar() || SrcTy.getSizeInBits() != 2 * NarrowSize)
7840 return UnableToLegalize;
7841
7843
7844 auto UnmergeSrc = B.buildUnmerge(NarrowTy, SrcReg);
7845 Register Lo = UnmergeSrc.getReg(0);
7846 Register Hi = UnmergeSrc.getReg(1);
7847
7848 auto ShAmt = B.buildConstant(NarrowTy, NarrowSize - 1);
7849 auto Sign = B.buildAShr(NarrowTy, Hi, ShAmt);
7850
7851 auto HiIsSign = B.buildICmp(CmpInst::ICMP_EQ, LLT::scalar(1), Hi, Sign);
7852
7853 // Invert Lo if Hi is negative. Then count the leading zeros. If there are no
7854 // leading zeros, then the MSB of Lo is different than the MSB of Hi.
7855 // Otherwise the leading zeros represent additional sign bits of the original
7856 // value.
7857 auto LoInv = B.buildXor(DstTy, Lo, Sign);
7858 auto LoCTLZ = B.buildCTLZ(DstTy, LoInv);
7859
7860 // Add NarrowSize-1 to LoCTLZ. This is the full CTLS if Hi is all sign bits.
7861 auto C_NarrowSizeM1 = B.buildConstant(DstTy, NarrowSize - 1);
7862 auto HiIsSignCTLS = B.buildAdd(DstTy, LoCTLZ, C_NarrowSizeM1);
7863
7864 auto HiCTLS = B.buildCTLS(DstTy, Hi);
7865
7866 B.buildSelect(DstReg, HiIsSign, HiIsSignCTLS, HiCTLS);
7867
7868 MI.eraseFromParent();
7869 return Legalized;
7870}
7871
7874 LLT NarrowTy) {
7875 if (TypeIdx != 1)
7876 return UnableToLegalize;
7877
7878 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7879 unsigned NarrowSize = NarrowTy.getSizeInBits();
7880
7881 if (SrcTy.isScalar() && SrcTy.getSizeInBits() == 2 * NarrowSize) {
7882 auto UnmergeSrc = MIRBuilder.buildUnmerge(NarrowTy, MI.getOperand(1));
7883
7884 auto LoCTPOP = MIRBuilder.buildCTPOP(DstTy, UnmergeSrc.getReg(0));
7885 auto HiCTPOP = MIRBuilder.buildCTPOP(DstTy, UnmergeSrc.getReg(1));
7886 MIRBuilder.buildAdd(DstReg, HiCTPOP, LoCTPOP);
7887
7888 MI.eraseFromParent();
7889 return Legalized;
7890 }
7891
7892 return UnableToLegalize;
7893}
7894
7897 LLT NarrowTy) {
7898 if (TypeIdx != 1)
7899 return UnableToLegalize;
7900
7902 Register ExpReg = MI.getOperand(2).getReg();
7903 LLT ExpTy = MRI.getType(ExpReg);
7904
7905 unsigned ClampSize = NarrowTy.getScalarSizeInBits();
7906
7907 // Clamp the exponent to the range of the target type.
7908 auto MinExp = B.buildConstant(ExpTy, minIntN(ClampSize));
7909 auto ClampMin = B.buildSMax(ExpTy, ExpReg, MinExp);
7910 auto MaxExp = B.buildConstant(ExpTy, maxIntN(ClampSize));
7911 auto Clamp = B.buildSMin(ExpTy, ClampMin, MaxExp);
7912
7913 auto Trunc = B.buildTrunc(NarrowTy, Clamp);
7914 Observer.changingInstr(MI);
7915 MI.getOperand(2).setReg(Trunc.getReg(0));
7916 Observer.changedInstr(MI);
7917 return Legalized;
7918}
7919
7922 unsigned Opc = MI.getOpcode();
7923 const auto &TII = MIRBuilder.getTII();
7924 auto isSupported = [this](const LegalityQuery &Q) {
7925 auto QAction = LI.getAction(Q).Action;
7926 return QAction == Legal || QAction == Libcall || QAction == Custom;
7927 };
7928 switch (Opc) {
7929 default:
7930 return UnableToLegalize;
7931 case TargetOpcode::G_CTLZ_ZERO_POISON: {
7932 // This trivially expands to CTLZ.
7933 Observer.changingInstr(MI);
7934 MI.setDesc(TII.get(TargetOpcode::G_CTLZ));
7935 Observer.changedInstr(MI);
7936 return Legalized;
7937 }
7938 case TargetOpcode::G_CTLZ: {
7939 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7940 unsigned Len = SrcTy.getScalarSizeInBits();
7941
7942 if (isSupported({TargetOpcode::G_CTLZ_ZERO_POISON, {DstTy, SrcTy}})) {
7943 // If CTLZ_ZERO_POISON is supported, emit that and a select for zero.
7944 auto CtlzZU = MIRBuilder.buildCTLZ_ZERO_POISON(DstTy, SrcReg);
7945 auto ZeroSrc = MIRBuilder.buildConstant(SrcTy, 0);
7946 auto ICmp = MIRBuilder.buildICmp(
7947 CmpInst::ICMP_EQ, SrcTy.changeElementSize(1), SrcReg, ZeroSrc);
7948 auto LenConst = MIRBuilder.buildConstant(DstTy, Len);
7949 MIRBuilder.buildSelect(DstReg, ICmp, LenConst, CtlzZU);
7950 MI.eraseFromParent();
7951 return Legalized;
7952 }
7953 // for now, we do this:
7954 // NewLen = NextPowerOf2(Len);
7955 // x = x | (x >> 1);
7956 // x = x | (x >> 2);
7957 // ...
7958 // x = x | (x >>16);
7959 // x = x | (x >>32); // for 64-bit input
7960 // Upto NewLen/2
7961 // return Len - popcount(x);
7962 //
7963 // Ref: "Hacker's Delight" by Henry Warren
7964 Register Op = SrcReg;
7965 unsigned NewLen = PowerOf2Ceil(Len);
7966 for (unsigned i = 0; (1U << i) <= (NewLen / 2); ++i) {
7967 auto MIBShiftAmt = MIRBuilder.buildConstant(SrcTy, 1ULL << i);
7968 auto MIBOp = MIRBuilder.buildOr(
7969 SrcTy, Op, MIRBuilder.buildLShr(SrcTy, Op, MIBShiftAmt));
7970 Op = MIBOp.getReg(0);
7971 }
7972 auto MIBPop = MIRBuilder.buildCTPOP(DstTy, Op);
7973 MIRBuilder.buildSub(MI.getOperand(0), MIRBuilder.buildConstant(DstTy, Len),
7974 MIBPop);
7975 MI.eraseFromParent();
7976 return Legalized;
7977 }
7978 case TargetOpcode::G_CTTZ_ZERO_POISON: {
7979 // This trivially expands to CTTZ.
7980 Observer.changingInstr(MI);
7981 MI.setDesc(TII.get(TargetOpcode::G_CTTZ));
7982 Observer.changedInstr(MI);
7983 return Legalized;
7984 }
7985 case TargetOpcode::G_CTTZ: {
7986 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
7987
7988 unsigned Len = SrcTy.getScalarSizeInBits();
7989 if (isSupported({TargetOpcode::G_CTTZ_ZERO_POISON, {DstTy, SrcTy}})) {
7990 // If CTTZ_ZERO_POISON is legal or custom, emit that and a select with
7991 // zero.
7992 auto CttzZU = MIRBuilder.buildCTTZ_ZERO_POISON(DstTy, SrcReg);
7993 auto Zero = MIRBuilder.buildConstant(SrcTy, 0);
7994 auto ICmp = MIRBuilder.buildICmp(
7995 CmpInst::ICMP_EQ, DstTy.changeElementSize(1), SrcReg, Zero);
7996 auto LenConst = MIRBuilder.buildConstant(DstTy, Len);
7997 MIRBuilder.buildSelect(DstReg, ICmp, LenConst, CttzZU);
7998 MI.eraseFromParent();
7999 return Legalized;
8000 }
8001 // for now, we use: { return popcount(~x & (x - 1)); }
8002 // unless the target has ctlz but not ctpop, in which case we use:
8003 // { return 32 - nlz(~x & (x-1)); }
8004 // Ref: "Hacker's Delight" by Henry Warren
8005 auto MIBCstNeg1 = MIRBuilder.buildConstant(SrcTy, -1);
8006 auto MIBNot = MIRBuilder.buildXor(SrcTy, SrcReg, MIBCstNeg1);
8007 auto MIBTmp = MIRBuilder.buildAnd(
8008 SrcTy, MIBNot, MIRBuilder.buildAdd(SrcTy, SrcReg, MIBCstNeg1));
8009 if (!isSupported({TargetOpcode::G_CTPOP, {SrcTy, SrcTy}}) &&
8010 isSupported({TargetOpcode::G_CTLZ, {SrcTy, SrcTy}})) {
8011 auto MIBCstLen = MIRBuilder.buildConstant(SrcTy, Len);
8012 MIRBuilder.buildSub(MI.getOperand(0), MIBCstLen,
8013 MIRBuilder.buildCTLZ(SrcTy, MIBTmp));
8014 MI.eraseFromParent();
8015 return Legalized;
8016 }
8017 Observer.changingInstr(MI);
8018 MI.setDesc(TII.get(TargetOpcode::G_CTPOP));
8019 MI.getOperand(1).setReg(MIBTmp.getReg(0));
8020 Observer.changedInstr(MI);
8021 return Legalized;
8022 }
8023 case TargetOpcode::G_CTPOP: {
8024 Register SrcReg = MI.getOperand(1).getReg();
8025 LLT Ty = MRI.getType(SrcReg);
8026 unsigned Size = Ty.getScalarSizeInBits();
8028
8029 // Bail out on irregular type lengths.
8030 if (Size > 128 || Size % 8 != 0)
8031 return UnableToLegalize;
8032
8033 // Count set bits in blocks of 2 bits. Default approach would be
8034 // B2Count = { val & 0x55555555 } + { (val >> 1) & 0x55555555 }
8035 // We use following formula instead:
8036 // B2Count = val - { (val >> 1) & 0x55555555 }
8037 // since it gives same result in blocks of 2 with one instruction less.
8038 auto C_1 = B.buildConstant(Ty, 1);
8039 auto B2Set1LoTo1Hi = B.buildLShr(Ty, SrcReg, C_1);
8040 APInt B2Mask1HiTo0 = APInt::getSplat(Size, APInt(8, 0x55));
8041 auto C_B2Mask1HiTo0 = B.buildConstant(Ty, B2Mask1HiTo0);
8042 auto B2Count1Hi = B.buildAnd(Ty, B2Set1LoTo1Hi, C_B2Mask1HiTo0);
8043 auto B2Count = B.buildSub(Ty, SrcReg, B2Count1Hi);
8044
8045 // In order to get count in blocks of 4 add values from adjacent block of 2.
8046 // B4Count = { B2Count & 0x33333333 } + { (B2Count >> 2) & 0x33333333 }
8047 auto C_2 = B.buildConstant(Ty, 2);
8048 auto B4Set2LoTo2Hi = B.buildLShr(Ty, B2Count, C_2);
8049 APInt B4Mask2HiTo0 = APInt::getSplat(Size, APInt(8, 0x33));
8050 auto C_B4Mask2HiTo0 = B.buildConstant(Ty, B4Mask2HiTo0);
8051 auto B4HiB2Count = B.buildAnd(Ty, B4Set2LoTo2Hi, C_B4Mask2HiTo0);
8052 auto B4LoB2Count = B.buildAnd(Ty, B2Count, C_B4Mask2HiTo0);
8053 auto B4Count = B.buildAdd(Ty, B4HiB2Count, B4LoB2Count);
8054
8055 // For count in blocks of 8 bits we don't have to mask high 4 bits before
8056 // addition since count value sits in range {0,...,8} and 4 bits are enough
8057 // to hold such binary values. After addition high 4 bits still hold count
8058 // of set bits in high 4 bit block, set them to zero and get 8 bit result.
8059 // B8Count = { B4Count + (B4Count >> 4) } & 0x0F0F0F0F
8060 auto C_4 = B.buildConstant(Ty, 4);
8061 auto B8HiB4Count = B.buildLShr(Ty, B4Count, C_4);
8062 auto B8CountDirty4Hi = B.buildAdd(Ty, B8HiB4Count, B4Count);
8063 APInt B8Mask4HiTo0 = APInt::getSplat(Size, APInt(8, 0x0F));
8064 auto C_B8Mask4HiTo0 = B.buildConstant(Ty, B8Mask4HiTo0);
8065 auto B8Count = B.buildAnd(Ty, B8CountDirty4Hi, C_B8Mask4HiTo0);
8066
8067 assert(Size <= 128 && "Scalar size is too large for CTPOP lower algorithm");
8068
8069 // Avoid the multiply when shift-add is cheaper.
8070 if (Size == 16 && !Ty.isVector()) {
8071 // v = (v + (v >> 8)) & 0xFF;
8072 auto C_8 = B.buildConstant(Ty, 8);
8073 auto HighSum = B.buildLShr(Ty, B8Count, C_8);
8074 auto Res = B.buildAdd(Ty, B8Count, HighSum);
8075 B.buildAnd(MI.getOperand(0).getReg(), Res, B.buildConstant(Ty, 0xFF));
8076 MI.eraseFromParent();
8077 return Legalized;
8078 }
8079
8080 // 8 bits can hold CTPOP result of 128 bit int or smaller. Mul with this
8081 // bitmask will set 8 msb in ResTmp to sum of all B8Counts in 8 bit blocks.
8082 auto MulMask = B.buildConstant(Ty, APInt::getSplat(Size, APInt(8, 0x01)));
8083
8084 // Shift count result from 8 high bits to low bits.
8085 auto C_SizeM8 = B.buildConstant(Ty, Size - 8);
8086
8087 auto IsMulSupported = [this](const LLT Ty) {
8088 auto Action = LI.getAction({TargetOpcode::G_MUL, {Ty}}).Action;
8089 return Action == Legal || Action == WidenScalar || Action == Custom;
8090 };
8091 if (IsMulSupported(Ty)) {
8092 auto ResTmp = B.buildMul(Ty, B8Count, MulMask);
8093 B.buildLShr(MI.getOperand(0).getReg(), ResTmp, C_SizeM8);
8094 } else {
8095 auto ResTmp = B8Count;
8096 for (unsigned Shift = 8; Shift < Size; Shift *= 2) {
8097 auto ShiftC = B.buildConstant(Ty, Shift);
8098 auto Shl = B.buildShl(Ty, ResTmp, ShiftC);
8099 ResTmp = B.buildAdd(Ty, ResTmp, Shl);
8100 }
8101 B.buildLShr(MI.getOperand(0).getReg(), ResTmp, C_SizeM8);
8102 }
8103 MI.eraseFromParent();
8104 return Legalized;
8105 }
8106 case TargetOpcode::G_CTLS: {
8107 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
8108
8109 // ctls(x) -> ctlz(x ^ (x >> (N - 1))) - 1
8110 auto SignIdxC =
8111 MIRBuilder.buildConstant(SrcTy, SrcTy.getScalarSizeInBits() - 1);
8112 auto OneC = MIRBuilder.buildConstant(DstTy, 1);
8113
8114 auto Shr = MIRBuilder.buildAShr(SrcTy, SrcReg, SignIdxC);
8115
8116 auto Xor = MIRBuilder.buildXor(SrcTy, SrcReg, Shr);
8117 auto Ctlz = MIRBuilder.buildCTLZ(DstTy, Xor);
8118
8119 MIRBuilder.buildSub(DstReg, Ctlz, OneC);
8120 MI.eraseFromParent();
8121 return Legalized;
8122 }
8123 }
8124}
8125
8126// Check that (every element of) Reg is undef or not an exact multiple of BW.
8128 Register Reg, unsigned BW) {
8129 return matchUnaryPredicate(
8130 MRI, Reg,
8131 [=](const Constant *C) {
8132 // Null constant here means an undef.
8134 return !CI || CI->getValue().urem(BW) != 0;
8135 },
8136 /*AllowUndefs*/ true);
8137}
8138
8141 auto [Dst, X, Y, Z] = MI.getFirst4Regs();
8142 LLT Ty = MRI.getType(Dst);
8143 LLT ShTy = MRI.getType(Z);
8144
8145 unsigned BW = Ty.getScalarSizeInBits();
8146
8147 if (!isPowerOf2_32(BW))
8148 return UnableToLegalize;
8149
8150 const bool IsFSHL = MI.getOpcode() == TargetOpcode::G_FSHL;
8151 unsigned RevOpcode = IsFSHL ? TargetOpcode::G_FSHR : TargetOpcode::G_FSHL;
8152
8153 if (isNonZeroModBitWidthOrUndef(MRI, Z, BW)) {
8154 // fshl X, Y, Z -> fshr X, Y, -Z
8155 // fshr X, Y, Z -> fshl X, Y, -Z
8156 auto Zero = MIRBuilder.buildConstant(ShTy, 0);
8157 Z = MIRBuilder.buildSub(Ty, Zero, Z).getReg(0);
8158 } else {
8159 // fshl X, Y, Z -> fshr (srl X, 1), (fshr X, Y, 1), ~Z
8160 // fshr X, Y, Z -> fshl (fshl X, Y, 1), (shl Y, 1), ~Z
8161 auto One = MIRBuilder.buildConstant(ShTy, 1);
8162 if (IsFSHL) {
8163 Y = MIRBuilder.buildInstr(RevOpcode, {Ty}, {X, Y, One}).getReg(0);
8164 X = MIRBuilder.buildLShr(Ty, X, One).getReg(0);
8165 } else {
8166 X = MIRBuilder.buildInstr(RevOpcode, {Ty}, {X, Y, One}).getReg(0);
8167 Y = MIRBuilder.buildShl(Ty, Y, One).getReg(0);
8168 }
8169
8170 Z = MIRBuilder.buildNot(ShTy, Z).getReg(0);
8171 }
8172
8173 MIRBuilder.buildInstr(RevOpcode, {Dst}, {X, Y, Z});
8174 MI.eraseFromParent();
8175 return Legalized;
8176}
8177
8180 auto [Dst, X, Y, Z] = MI.getFirst4Regs();
8181 LLT Ty = MRI.getType(Dst);
8182 LLT ShTy = MRI.getType(Z);
8183
8184 const unsigned BW = Ty.getScalarSizeInBits();
8185 const bool IsFSHL = MI.getOpcode() == TargetOpcode::G_FSHL;
8186
8187 Register ShX, ShY;
8188 Register ShAmt, InvShAmt;
8189
8190 // FIXME: Emit optimized urem by constant instead of letting it expand later.
8191 if (isNonZeroModBitWidthOrUndef(MRI, Z, BW)) {
8192 // fshl: X << C | Y >> (BW - C)
8193 // fshr: X << (BW - C) | Y >> C
8194 // where C = Z % BW is not zero
8195 auto BitWidthC = MIRBuilder.buildConstant(ShTy, BW);
8196 ShAmt = MIRBuilder.buildURem(ShTy, Z, BitWidthC).getReg(0);
8197 InvShAmt = MIRBuilder.buildSub(ShTy, BitWidthC, ShAmt).getReg(0);
8198 ShX = MIRBuilder.buildShl(Ty, X, IsFSHL ? ShAmt : InvShAmt).getReg(0);
8199 ShY = MIRBuilder.buildLShr(Ty, Y, IsFSHL ? InvShAmt : ShAmt).getReg(0);
8200 } else {
8201 // fshl: X << (Z % BW) | Y >> 1 >> (BW - 1 - (Z % BW))
8202 // fshr: X << 1 << (BW - 1 - (Z % BW)) | Y >> (Z % BW)
8203 auto Mask = MIRBuilder.buildConstant(ShTy, BW - 1);
8204 if (isPowerOf2_32(BW)) {
8205 // Z % BW -> Z & (BW - 1)
8206 ShAmt = MIRBuilder.buildAnd(ShTy, Z, Mask).getReg(0);
8207 // (BW - 1) - (Z % BW) -> ~Z & (BW - 1)
8208 auto NotZ = MIRBuilder.buildNot(ShTy, Z);
8209 InvShAmt = MIRBuilder.buildAnd(ShTy, NotZ, Mask).getReg(0);
8210 } else {
8211 auto BitWidthC = MIRBuilder.buildConstant(ShTy, BW);
8212 ShAmt = MIRBuilder.buildURem(ShTy, Z, BitWidthC).getReg(0);
8213 InvShAmt = MIRBuilder.buildSub(ShTy, Mask, ShAmt).getReg(0);
8214 }
8215
8216 auto One = MIRBuilder.buildConstant(ShTy, 1);
8217 if (IsFSHL) {
8218 ShX = MIRBuilder.buildShl(Ty, X, ShAmt).getReg(0);
8219 auto ShY1 = MIRBuilder.buildLShr(Ty, Y, One);
8220 ShY = MIRBuilder.buildLShr(Ty, ShY1, InvShAmt).getReg(0);
8221 } else {
8222 auto ShX1 = MIRBuilder.buildShl(Ty, X, One);
8223 ShX = MIRBuilder.buildShl(Ty, ShX1, InvShAmt).getReg(0);
8224 ShY = MIRBuilder.buildLShr(Ty, Y, ShAmt).getReg(0);
8225 }
8226 }
8227
8228 MIRBuilder.buildOr(Dst, ShX, ShY, MachineInstr::Disjoint);
8229 MI.eraseFromParent();
8230 return Legalized;
8231}
8232
8235 // These operations approximately do the following (while avoiding undefined
8236 // shifts by BW):
8237 // G_FSHL: (X << (Z % BW)) | (Y >> (BW - (Z % BW)))
8238 // G_FSHR: (X << (BW - (Z % BW))) | (Y >> (Z % BW))
8239 Register Dst = MI.getOperand(0).getReg();
8240 LLT Ty = MRI.getType(Dst);
8241 LLT ShTy = MRI.getType(MI.getOperand(3).getReg());
8242
8243 bool IsFSHL = MI.getOpcode() == TargetOpcode::G_FSHL;
8244 unsigned RevOpcode = IsFSHL ? TargetOpcode::G_FSHR : TargetOpcode::G_FSHL;
8245
8246 // TODO: Use smarter heuristic that accounts for vector legalization.
8247 if (LI.getAction({RevOpcode, {Ty, ShTy}}).Action == Lower)
8248 return lowerFunnelShiftAsShifts(MI);
8249
8250 // This only works for powers of 2, fallback to shifts if it fails.
8251 LegalizerHelper::LegalizeResult Result = lowerFunnelShiftWithInverse(MI);
8252 if (Result == UnableToLegalize)
8253 return lowerFunnelShiftAsShifts(MI);
8254 return Result;
8255}
8256
8258 auto [Dst, Src] = MI.getFirst2Regs();
8259 LLT DstTy = MRI.getType(Dst);
8260 LLT SrcTy = MRI.getType(Src);
8261
8262 uint32_t DstTySize = DstTy.getSizeInBits();
8263 uint32_t DstTyScalarSize = DstTy.getScalarSizeInBits();
8264 uint32_t SrcTyScalarSize = SrcTy.getScalarSizeInBits();
8265
8266 if (!isPowerOf2_32(DstTySize) || !isPowerOf2_32(DstTyScalarSize) ||
8267 !isPowerOf2_32(SrcTyScalarSize))
8268 return UnableToLegalize;
8269
8270 // The step between extend is too large, split it by creating an intermediate
8271 // extend instruction
8272 if (SrcTyScalarSize * 2 < DstTyScalarSize) {
8273 LLT MidTy = SrcTy.changeElementSize(SrcTyScalarSize * 2);
8274 // If the destination type is illegal, split it into multiple statements
8275 // zext x -> zext(merge(zext(unmerge), zext(unmerge)))
8276 auto NewExt = MIRBuilder.buildInstr(MI.getOpcode(), {MidTy}, {Src});
8277 // Unmerge the vector
8278 LLT EltTy = MidTy.changeElementCount(
8280 auto UnmergeSrc = MIRBuilder.buildUnmerge(EltTy, NewExt);
8281
8282 // ZExt the vectors
8283 LLT ZExtResTy = DstTy.changeElementCount(
8285 auto ZExtRes1 = MIRBuilder.buildInstr(MI.getOpcode(), {ZExtResTy},
8286 {UnmergeSrc.getReg(0)});
8287 auto ZExtRes2 = MIRBuilder.buildInstr(MI.getOpcode(), {ZExtResTy},
8288 {UnmergeSrc.getReg(1)});
8289
8290 // Merge the ending vectors
8291 MIRBuilder.buildMergeLikeInstr(Dst, {ZExtRes1, ZExtRes2});
8292
8293 MI.eraseFromParent();
8294 return Legalized;
8295 }
8296 return UnableToLegalize;
8297}
8298
8300 // MachineIRBuilder &MIRBuilder = Helper.MIRBuilder;
8301 MachineRegisterInfo &MRI = *MIRBuilder.getMRI();
8302 // Similar to how operand splitting is done in SelectiondDAG, we can handle
8303 // %res(v8s8) = G_TRUNC %in(v8s32) by generating:
8304 // %inlo(<4x s32>), %inhi(<4 x s32>) = G_UNMERGE %in(<8 x s32>)
8305 // %lo16(<4 x s16>) = G_TRUNC %inlo
8306 // %hi16(<4 x s16>) = G_TRUNC %inhi
8307 // %in16(<8 x s16>) = G_CONCAT_VECTORS %lo16, %hi16
8308 // %res(<8 x s8>) = G_TRUNC %in16
8309
8310 assert(MI.getOpcode() == TargetOpcode::G_TRUNC);
8311
8312 Register DstReg = MI.getOperand(0).getReg();
8313 Register SrcReg = MI.getOperand(1).getReg();
8314 LLT DstTy = MRI.getType(DstReg);
8315 LLT SrcTy = MRI.getType(SrcReg);
8316
8317 if (DstTy.isVector() && isPowerOf2_32(DstTy.getNumElements()) &&
8319 isPowerOf2_32(SrcTy.getNumElements()) &&
8320 isPowerOf2_32(SrcTy.getScalarSizeInBits())) {
8321 // Split input type.
8322 LLT SplitSrcTy = SrcTy.changeElementCount(
8323 SrcTy.getElementCount().divideCoefficientBy(2));
8324
8325 // First, split the source into two smaller vectors.
8326 SmallVector<Register, 2> SplitSrcs;
8327 extractParts(SrcReg, SplitSrcTy, 2, SplitSrcs, MIRBuilder, MRI);
8328
8329 // Truncate the splits into intermediate narrower elements.
8330 LLT InterTy;
8331 if (DstTy.getScalarSizeInBits() * 2 < SrcTy.getScalarSizeInBits())
8332 InterTy = SplitSrcTy.changeElementSize(DstTy.getScalarSizeInBits() * 2);
8333 else
8334 InterTy = SplitSrcTy.changeElementSize(DstTy.getScalarSizeInBits());
8335 for (Register &Src : SplitSrcs)
8336 Src = MIRBuilder.buildTrunc(InterTy, Src).getReg(0);
8337
8338 // Combine the new truncates into one vector
8339 auto Merge = MIRBuilder.buildMergeLikeInstr(
8340 DstTy.changeElementSize(InterTy.getScalarSizeInBits()), SplitSrcs);
8341
8342 // Truncate the new vector to the final result type
8343 if (DstTy.getScalarSizeInBits() * 2 < SrcTy.getScalarSizeInBits())
8344 MIRBuilder.buildTrunc(MI.getOperand(0).getReg(), Merge.getReg(0));
8345 else
8346 MIRBuilder.buildCopy(MI.getOperand(0).getReg(), Merge.getReg(0));
8347
8348 MI.eraseFromParent();
8349
8350 return Legalized;
8351 }
8352 return UnableToLegalize;
8353}
8354
8357 auto [Dst, DstTy, Src, SrcTy, Amt, AmtTy] = MI.getFirst3RegLLTs();
8358 auto Zero = MIRBuilder.buildConstant(AmtTy, 0);
8359 bool IsLeft = MI.getOpcode() == TargetOpcode::G_ROTL;
8360 unsigned RevRot = IsLeft ? TargetOpcode::G_ROTR : TargetOpcode::G_ROTL;
8361 auto Neg = MIRBuilder.buildSub(AmtTy, Zero, Amt);
8362 MIRBuilder.buildInstr(RevRot, {Dst}, {Src, Neg});
8363 MI.eraseFromParent();
8364 return Legalized;
8365}
8366
8368 auto [Dst, DstTy, Src, SrcTy, Amt, AmtTy] = MI.getFirst3RegLLTs();
8369
8370 unsigned EltSizeInBits = DstTy.getScalarSizeInBits();
8371 bool IsLeft = MI.getOpcode() == TargetOpcode::G_ROTL;
8372
8373 MIRBuilder.setInstrAndDebugLoc(MI);
8374
8375 // If a rotate in the other direction is supported, use it.
8376 unsigned RevRot = IsLeft ? TargetOpcode::G_ROTR : TargetOpcode::G_ROTL;
8377 if (LI.isLegalOrCustom({RevRot, {DstTy, SrcTy}}) &&
8378 isPowerOf2_32(EltSizeInBits))
8379 return lowerRotateWithReverseRotate(MI);
8380
8381 // If a funnel shift is supported, use it.
8382 unsigned FShOpc = IsLeft ? TargetOpcode::G_FSHL : TargetOpcode::G_FSHR;
8383 unsigned RevFsh = !IsLeft ? TargetOpcode::G_FSHL : TargetOpcode::G_FSHR;
8384 bool IsFShLegal = false;
8385 if ((IsFShLegal = LI.isLegalOrCustom({FShOpc, {DstTy, AmtTy}})) ||
8386 LI.isLegalOrCustom({RevFsh, {DstTy, AmtTy}})) {
8387 auto buildFunnelShift = [&](unsigned Opc, Register R1, Register R2,
8388 Register R3) {
8389 MIRBuilder.buildInstr(Opc, {R1}, {R2, R2, R3});
8390 MI.eraseFromParent();
8391 return Legalized;
8392 };
8393 // If a funnel shift in the other direction is supported, use it.
8394 if (IsFShLegal) {
8395 return buildFunnelShift(FShOpc, Dst, Src, Amt);
8396 } else if (isPowerOf2_32(EltSizeInBits)) {
8397 Amt = MIRBuilder.buildNeg(DstTy, Amt).getReg(0);
8398 return buildFunnelShift(RevFsh, Dst, Src, Amt);
8399 }
8400 }
8401
8402 auto Zero = MIRBuilder.buildConstant(AmtTy, 0);
8403 unsigned ShOpc = IsLeft ? TargetOpcode::G_SHL : TargetOpcode::G_LSHR;
8404 unsigned RevShiftOpc = IsLeft ? TargetOpcode::G_LSHR : TargetOpcode::G_SHL;
8405 auto BitWidthMinusOneC = MIRBuilder.buildConstant(AmtTy, EltSizeInBits - 1);
8406 Register ShVal;
8407 Register RevShiftVal;
8408 if (isPowerOf2_32(EltSizeInBits)) {
8409 // (rotl x, c) -> x << (c & (w - 1)) | x >> (-c & (w - 1))
8410 // (rotr x, c) -> x >> (c & (w - 1)) | x << (-c & (w - 1))
8411 auto NegAmt = MIRBuilder.buildSub(AmtTy, Zero, Amt);
8412 auto ShAmt = MIRBuilder.buildAnd(AmtTy, Amt, BitWidthMinusOneC);
8413 ShVal = MIRBuilder.buildInstr(ShOpc, {DstTy}, {Src, ShAmt}).getReg(0);
8414 auto RevAmt = MIRBuilder.buildAnd(AmtTy, NegAmt, BitWidthMinusOneC);
8415 RevShiftVal =
8416 MIRBuilder.buildInstr(RevShiftOpc, {DstTy}, {Src, RevAmt}).getReg(0);
8417 } else {
8418 // (rotl x, c) -> x << (c % w) | x >> 1 >> (w - 1 - (c % w))
8419 // (rotr x, c) -> x >> (c % w) | x << 1 << (w - 1 - (c % w))
8420 auto BitWidthC = MIRBuilder.buildConstant(AmtTy, EltSizeInBits);
8421 auto ShAmt = MIRBuilder.buildURem(AmtTy, Amt, BitWidthC);
8422 ShVal = MIRBuilder.buildInstr(ShOpc, {DstTy}, {Src, ShAmt}).getReg(0);
8423 auto RevAmt = MIRBuilder.buildSub(AmtTy, BitWidthMinusOneC, ShAmt);
8424 auto One = MIRBuilder.buildConstant(AmtTy, 1);
8425 auto Inner = MIRBuilder.buildInstr(RevShiftOpc, {DstTy}, {Src, One});
8426 RevShiftVal =
8427 MIRBuilder.buildInstr(RevShiftOpc, {DstTy}, {Inner, RevAmt}).getReg(0);
8428 }
8429 MIRBuilder.buildOr(Dst, ShVal, RevShiftVal, MachineInstr::Disjoint);
8430 MI.eraseFromParent();
8431 return Legalized;
8432}
8433
8434// Expand s32 = G_UITOFP s64 using bit operations to an IEEE float
8435// representation.
8438 auto [Dst, Src] = MI.getFirst2Regs();
8439 const LLT S64 = LLT::scalar(64);
8440 const LLT S32 = LLT::scalar(32);
8441 const LLT S1 = LLT::scalar(1);
8442
8443 assert(MRI.getType(Src) == S64 && MRI.getType(Dst) == S32);
8444
8445 // unsigned cul2f(ulong u) {
8446 // uint lz = clz(u);
8447 // uint e = (u != 0) ? 127U + 63U - lz : 0;
8448 // u = (u << lz) & 0x7fffffffffffffffUL;
8449 // ulong t = u & 0xffffffffffUL;
8450 // uint v = (e << 23) | (uint)(u >> 40);
8451 // uint r = t > 0x8000000000UL ? 1U : (t == 0x8000000000UL ? v & 1U : 0U);
8452 // return as_float(v + r);
8453 // }
8454
8455 auto Zero32 = MIRBuilder.buildConstant(S32, 0);
8456 auto Zero64 = MIRBuilder.buildConstant(S64, 0);
8457
8458 auto LZ = MIRBuilder.buildCTLZ_ZERO_POISON(S32, Src);
8459
8460 auto K = MIRBuilder.buildConstant(S32, 127U + 63U);
8461 auto Sub = MIRBuilder.buildSub(S32, K, LZ);
8462
8463 auto NotZero = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, Src, Zero64);
8464 auto E = MIRBuilder.buildSelect(S32, NotZero, Sub, Zero32);
8465
8466 auto Mask0 = MIRBuilder.buildConstant(S64, (-1ULL) >> 1);
8467 auto ShlLZ = MIRBuilder.buildShl(S64, Src, LZ);
8468
8469 auto U = MIRBuilder.buildAnd(S64, ShlLZ, Mask0);
8470
8471 auto Mask1 = MIRBuilder.buildConstant(S64, 0xffffffffffULL);
8472 auto T = MIRBuilder.buildAnd(S64, U, Mask1);
8473
8474 auto UShl = MIRBuilder.buildLShr(S64, U, MIRBuilder.buildConstant(S64, 40));
8475 auto ShlE = MIRBuilder.buildShl(S32, E, MIRBuilder.buildConstant(S32, 23));
8476 auto V = MIRBuilder.buildOr(S32, ShlE, MIRBuilder.buildTrunc(S32, UShl));
8477
8478 auto C = MIRBuilder.buildConstant(S64, 0x8000000000ULL);
8479 auto RCmp = MIRBuilder.buildICmp(CmpInst::ICMP_UGT, S1, T, C);
8480 auto TCmp = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, S1, T, C);
8481 auto One = MIRBuilder.buildConstant(S32, 1);
8482
8483 auto VTrunc1 = MIRBuilder.buildAnd(S32, V, One);
8484 auto Select0 = MIRBuilder.buildSelect(S32, TCmp, VTrunc1, Zero32);
8485 auto R = MIRBuilder.buildSelect(S32, RCmp, One, Select0);
8486 MIRBuilder.buildAdd(Dst, V, R);
8487
8488 MI.eraseFromParent();
8489 return Legalized;
8490}
8491
8492// Expand s32 = G_UITOFP s64 to an IEEE float representation using bit
8493// operations and G_SITOFP
8496 auto [Dst, Src] = MI.getFirst2Regs();
8497 const LLT S64 = LLT::scalar(64);
8498 const LLT S32 = LLT::scalar(32);
8499 const LLT S1 = LLT::scalar(1);
8500
8501 assert(MRI.getType(Src) == S64 && MRI.getType(Dst) == S32);
8502
8503 // For i64 < INT_MAX we simply reuse SITOFP.
8504 // Otherwise, divide i64 by 2, round result by ORing with the lowest bit
8505 // saved before division, convert to float by SITOFP, multiply the result
8506 // by 2.
8507 auto One = MIRBuilder.buildConstant(S64, 1);
8508 auto Zero = MIRBuilder.buildConstant(S64, 0);
8509 // Result if Src < INT_MAX
8510 auto SmallResult = MIRBuilder.buildSITOFP(S32, Src);
8511 // Result if Src >= INT_MAX
8512 auto Halved = MIRBuilder.buildLShr(S64, Src, One);
8513 auto LowerBit = MIRBuilder.buildAnd(S64, Src, One);
8514 auto RoundedHalved = MIRBuilder.buildOr(S64, Halved, LowerBit);
8515 auto HalvedFP = MIRBuilder.buildSITOFP(S32, RoundedHalved);
8516 auto LargeResult = MIRBuilder.buildFAdd(S32, HalvedFP, HalvedFP);
8517 // Check if the original value is larger than INT_MAX by comparing with
8518 // zero to pick one of the two conversions.
8519 auto IsLarge =
8520 MIRBuilder.buildICmp(CmpInst::Predicate::ICMP_SLT, S1, Src, Zero);
8521 MIRBuilder.buildSelect(Dst, IsLarge, LargeResult, SmallResult);
8522
8523 MI.eraseFromParent();
8524 return Legalized;
8525}
8526
8527// Expand s64 = G_UITOFP s64 using bit and float arithmetic operations to an
8528// IEEE double representation.
8531 auto [Dst, Src] = MI.getFirst2Regs();
8532 const LLT S64 = LLT::scalar(64);
8533 const LLT S32 = LLT::scalar(32);
8534
8535 assert(MRI.getType(Src) == S64 && MRI.getType(Dst) == S64);
8536
8537 // We create double value from 32 bit parts with 32 exponent difference.
8538 // Note that + and - are float operations that adjust the implicit leading
8539 // one, the bases 2^52 and 2^84 are for illustrative purposes.
8540 //
8541 // X = 2^52 * 1.0...LowBits
8542 // Y = 2^84 * 1.0...HighBits
8543 // Scratch = 2^84 * 1.0...HighBits - 2^84 * 1.0 - 2^52 * 1.0
8544 // = - 2^52 * 1.0...HighBits
8545 // Result = - 2^52 * 1.0...HighBits + 2^52 * 1.0...LowBits
8546 auto TwoP52 = MIRBuilder.buildConstant(S64, UINT64_C(0x4330000000000000));
8547 auto TwoP84 = MIRBuilder.buildConstant(S64, UINT64_C(0x4530000000000000));
8548 auto TwoP52P84 = llvm::bit_cast<double>(UINT64_C(0x4530000000100000));
8549 auto TwoP52P84FP = MIRBuilder.buildFConstant(S64, TwoP52P84);
8550 auto HalfWidth = MIRBuilder.buildConstant(S64, 32);
8551
8552 auto LowBits = MIRBuilder.buildTrunc(S32, Src);
8553 LowBits = MIRBuilder.buildZExt(S64, LowBits);
8554 auto LowBitsFP = MIRBuilder.buildOr(S64, TwoP52, LowBits);
8555 auto HighBits = MIRBuilder.buildLShr(S64, Src, HalfWidth);
8556 auto HighBitsFP = MIRBuilder.buildOr(S64, TwoP84, HighBits);
8557 auto Scratch = MIRBuilder.buildFSub(S64, HighBitsFP, TwoP52P84FP);
8558 MIRBuilder.buildFAdd(Dst, Scratch, LowBitsFP);
8559
8560 MI.eraseFromParent();
8561 return Legalized;
8562}
8563
8564/// i64->fp16 itofp can be lowered to i64->f64,f64->f32,f32->f16. We cannot
8565/// convert fpround f64->f16 without double-rounding, so we manually perform the
8566/// lowering here where we know it is valid.
8569 LLT SrcTy, MachineIRBuilder &MIRBuilder) {
8570 auto DstFpTy =
8571 SrcTy.changeElementType(LLT::floatIEEE(SrcTy.getScalarSizeInBits()));
8572 auto M1 = MI.getOpcode() == TargetOpcode::G_UITOFP
8573 ? MIRBuilder.buildUITOFP(DstFpTy, Src)
8574 : MIRBuilder.buildSITOFP(DstFpTy, Src);
8575 LLT F32Ty = DstFpTy.changeElementSize(32);
8576 auto M2 = MIRBuilder.buildFPTrunc(F32Ty, M1);
8577 MIRBuilder.buildFPTrunc(Dst, M2);
8578 MI.eraseFromParent();
8580}
8581
8583 auto [Dst, DstTy, Src, SrcTy] = MI.getFirst2RegLLTs();
8584
8585 if (SrcTy == LLT::scalar(1)) {
8586 auto True = MIRBuilder.buildFConstant(DstTy, 1.0);
8587 auto False = MIRBuilder.buildFConstant(DstTy, 0.0);
8588 MIRBuilder.buildSelect(Dst, Src, True, False);
8589 MI.eraseFromParent();
8590 return Legalized;
8591 }
8592
8593 if (DstTy.getScalarSizeInBits() == 16 && SrcTy.getScalarSizeInBits() == 64)
8594 return loweri64tof16ITOFP(MI, Dst, DstTy, Src, SrcTy, MIRBuilder);
8595
8596 if (SrcTy != LLT::scalar(64))
8597 return UnableToLegalize;
8598
8599 if (DstTy == LLT::scalar(32))
8600 // TODO: SelectionDAG has several alternative expansions to port which may
8601 // be more reasonable depending on the available instructions. We also need
8602 // a more advanced mechanism to choose an optimal version depending on
8603 // target features such as sitofp or CTLZ availability.
8605
8606 if (DstTy == LLT::scalar(64))
8608
8609 return UnableToLegalize;
8610}
8611
8613 auto [Dst, DstTy, Src, SrcTy] = MI.getFirst2RegLLTs();
8614
8615 const LLT I64 = LLT::integer(64);
8616 const LLT I32 = LLT::integer(32);
8617 const LLT I1 = LLT::integer(1);
8618
8619 if (SrcTy == I1) {
8620 auto True = MIRBuilder.buildFConstant(DstTy, -1.0);
8621 auto False = MIRBuilder.buildFConstant(DstTy, 0.0);
8622 MIRBuilder.buildSelect(Dst, Src, True, False);
8623 MI.eraseFromParent();
8624 return Legalized;
8625 }
8626
8627 if (DstTy.getScalarSizeInBits() == 16 && SrcTy.getScalarSizeInBits() == 64)
8628 return loweri64tof16ITOFP(MI, Dst, DstTy, Src, SrcTy, MIRBuilder);
8629
8630 if (SrcTy != I64)
8631 return UnableToLegalize;
8632
8633 if (DstTy.getScalarSizeInBits() == 32) {
8634 // signed cl2f(long l) {
8635 // long s = l >> 63;
8636 // float r = cul2f((l + s) ^ s);
8637 // return s ? -r : r;
8638 // }
8639 Register L = Src;
8640 auto SignBit = MIRBuilder.buildConstant(I64, 63);
8641 auto S = MIRBuilder.buildAShr(I64, L, SignBit);
8642
8643 auto LPlusS = MIRBuilder.buildAdd(I64, L, S);
8644 auto Xor = MIRBuilder.buildXor(I64, LPlusS, S);
8645 auto R = MIRBuilder.buildUITOFP(I32, Xor);
8646
8647 auto RNeg = MIRBuilder.buildFNeg(I32, R);
8648 auto SignNotZero = MIRBuilder.buildICmp(CmpInst::ICMP_NE, I1, S,
8649 MIRBuilder.buildConstant(I64, 0));
8650 MIRBuilder.buildSelect(Dst, SignNotZero, RNeg, R);
8651 MI.eraseFromParent();
8652 return Legalized;
8653 }
8654
8655 return UnableToLegalize;
8656}
8657
8659 auto [Dst, DstTy, Src, SrcTy] = MI.getFirst2RegLLTs();
8660 const LLT S64 = LLT::scalar(64);
8661 const LLT S32 = LLT::scalar(32);
8662
8663 if (SrcTy != S64 && SrcTy != S32)
8664 return UnableToLegalize;
8665 if (DstTy != S32 && DstTy != S64)
8666 return UnableToLegalize;
8667
8668 // FPTOSI gives same result as FPTOUI for positive signed integers.
8669 // FPTOUI needs to deal with fp values that convert to unsigned integers
8670 // greater or equal to 2^31 for float or 2^63 for double. For brevity 2^Exp.
8671
8672 APInt TwoPExpInt = APInt::getSignMask(DstTy.getSizeInBits());
8673 APFloat TwoPExpFP(SrcTy.getSizeInBits() == 32 ? APFloat::IEEEsingle()
8675 APInt::getZero(SrcTy.getSizeInBits()));
8676 TwoPExpFP.convertFromAPInt(TwoPExpInt, false, APFloat::rmNearestTiesToEven);
8677
8678 MachineInstrBuilder FPTOSI = MIRBuilder.buildFPTOSI(DstTy, Src);
8679
8680 MachineInstrBuilder Threshold = MIRBuilder.buildFConstant(SrcTy, TwoPExpFP);
8681 // For fp Value greater or equal to Threshold(2^Exp), we use FPTOSI on
8682 // (Value - 2^Exp) and add 2^Exp by setting highest bit in result to 1.
8683 MachineInstrBuilder FSub = MIRBuilder.buildFSub(SrcTy, Src, Threshold);
8684 MachineInstrBuilder ResLowBits = MIRBuilder.buildFPTOSI(DstTy, FSub);
8685 MachineInstrBuilder ResHighBit = MIRBuilder.buildConstant(DstTy, TwoPExpInt);
8686 MachineInstrBuilder Res = MIRBuilder.buildXor(DstTy, ResLowBits, ResHighBit);
8687
8688 const LLT S1 = LLT::scalar(1);
8689
8690 MachineInstrBuilder FCMP =
8691 MIRBuilder.buildFCmp(CmpInst::FCMP_ULT, S1, Src, Threshold);
8692 MIRBuilder.buildSelect(Dst, FCMP, FPTOSI, Res);
8693
8694 MI.eraseFromParent();
8695 return Legalized;
8696}
8697
8699 auto [Dst, DstTy, Src, SrcTy] = MI.getFirst2RegLLTs();
8700 const LLT S64 = LLT::scalar(64);
8701 const LLT S32 = LLT::scalar(32);
8702
8703 // FIXME: Only f32 to i64 conversions are supported.
8704 if (SrcTy.getScalarType() != S32 || DstTy.getScalarType() != S64)
8705 return UnableToLegalize;
8706
8707 // Expand f32 -> i64 conversion
8708 // This algorithm comes from compiler-rt's implementation of fixsfdi:
8709 // https://github.com/llvm/llvm-project/blob/main/compiler-rt/lib/builtins/fixsfdi.c
8710
8711 unsigned SrcEltBits = SrcTy.getScalarSizeInBits();
8712
8713 auto ExponentMask = MIRBuilder.buildConstant(SrcTy, 0x7F800000);
8714 auto ExponentLoBit = MIRBuilder.buildConstant(SrcTy, 23);
8715
8716 auto AndExpMask = MIRBuilder.buildAnd(SrcTy, Src, ExponentMask);
8717 auto ExponentBits = MIRBuilder.buildLShr(SrcTy, AndExpMask, ExponentLoBit);
8718
8719 auto SignMask = MIRBuilder.buildConstant(SrcTy,
8720 APInt::getSignMask(SrcEltBits));
8721 auto AndSignMask = MIRBuilder.buildAnd(SrcTy, Src, SignMask);
8722 auto SignLowBit = MIRBuilder.buildConstant(SrcTy, SrcEltBits - 1);
8723 auto Sign = MIRBuilder.buildAShr(SrcTy, AndSignMask, SignLowBit);
8724 Sign = MIRBuilder.buildSExt(DstTy, Sign);
8725
8726 auto MantissaMask = MIRBuilder.buildConstant(SrcTy, 0x007FFFFF);
8727 auto AndMantissaMask = MIRBuilder.buildAnd(SrcTy, Src, MantissaMask);
8728 auto K = MIRBuilder.buildConstant(SrcTy, 0x00800000);
8729
8730 auto R = MIRBuilder.buildOr(SrcTy, AndMantissaMask, K);
8731 R = MIRBuilder.buildZExt(DstTy, R);
8732
8733 auto Bias = MIRBuilder.buildConstant(SrcTy, 127);
8734 auto Exponent = MIRBuilder.buildSub(SrcTy, ExponentBits, Bias);
8735 auto SubExponent = MIRBuilder.buildSub(SrcTy, Exponent, ExponentLoBit);
8736 auto ExponentSub = MIRBuilder.buildSub(SrcTy, ExponentLoBit, Exponent);
8737
8738 auto Shl = MIRBuilder.buildShl(DstTy, R, SubExponent);
8739 auto Srl = MIRBuilder.buildLShr(DstTy, R, ExponentSub);
8740
8741 const LLT S1 = LLT::scalar(1);
8742 auto CmpGt = MIRBuilder.buildICmp(CmpInst::ICMP_SGT,
8743 S1, Exponent, ExponentLoBit);
8744
8745 R = MIRBuilder.buildSelect(DstTy, CmpGt, Shl, Srl);
8746
8747 auto XorSign = MIRBuilder.buildXor(DstTy, R, Sign);
8748 auto Ret = MIRBuilder.buildSub(DstTy, XorSign, Sign);
8749
8750 auto ZeroSrcTy = MIRBuilder.buildConstant(SrcTy, 0);
8751
8752 auto ExponentLt0 = MIRBuilder.buildICmp(CmpInst::ICMP_SLT,
8753 S1, Exponent, ZeroSrcTy);
8754
8755 auto ZeroDstTy = MIRBuilder.buildConstant(DstTy, 0);
8756 MIRBuilder.buildSelect(Dst, ExponentLt0, ZeroDstTy, Ret);
8757
8758 MI.eraseFromParent();
8759 return Legalized;
8760}
8761
8764 auto [Dst, DstTy, Src, SrcTy] = MI.getFirst2RegLLTs();
8765
8766 bool IsSigned = MI.getOpcode() == TargetOpcode::G_FPTOSI_SAT;
8767 unsigned SatWidth = DstTy.getScalarSizeInBits();
8768
8769 // Determine minimum and maximum integer values and their corresponding
8770 // floating-point values.
8771 APInt MinInt, MaxInt;
8772 if (IsSigned) {
8773 MinInt = APInt::getSignedMinValue(SatWidth);
8774 MaxInt = APInt::getSignedMaxValue(SatWidth);
8775 } else {
8776 MinInt = APInt::getMinValue(SatWidth);
8777 MaxInt = APInt::getMaxValue(SatWidth);
8778 }
8779
8780 const fltSemantics &Semantics = getFltSemanticForLLT(SrcTy.getScalarType());
8781 APFloat MinFloat(Semantics);
8782 APFloat MaxFloat(Semantics);
8783
8784 APFloat::opStatus MinStatus =
8785 MinFloat.convertFromAPInt(MinInt, IsSigned, APFloat::rmTowardZero);
8786 APFloat::opStatus MaxStatus =
8787 MaxFloat.convertFromAPInt(MaxInt, IsSigned, APFloat::rmTowardZero);
8788 bool AreExactFloatBounds = !(MinStatus & APFloat::opStatus::opInexact) &&
8789 !(MaxStatus & APFloat::opStatus::opInexact);
8790
8791 // If the integer bounds are exactly representable as floats, emit a
8792 // min+max+fptoi sequence. Otherwise we have to use a sequence of comparisons
8793 // and selects.
8794 if (AreExactFloatBounds) {
8795 // Clamp Src by MinFloat from below. If Src is NaN the result is MinFloat.
8796 auto MaxC = MIRBuilder.buildFConstant(SrcTy, MinFloat);
8797 auto MaxP =
8798 MIRBuilder.buildFCmp(CmpInst::FCMP_OGT, LLT::integer(1), Src, MaxC);
8799 auto Max = MIRBuilder.buildSelect(SrcTy, MaxP, Src, MaxC);
8800 // Clamp by MaxFloat from above. NaN cannot occur.
8801 auto MinC = MIRBuilder.buildFConstant(SrcTy, MaxFloat);
8802 auto MinP = MIRBuilder.buildFCmp(CmpInst::FCMP_OLT, LLT::integer(1), Max,
8804 auto Min =
8805 MIRBuilder.buildSelect(SrcTy, MinP, Max, MinC, MachineInstr::FmNoNans);
8806 // Convert clamped value to integer. In the unsigned case we're done,
8807 // because we mapped NaN to MinFloat, which will cast to zero.
8808 if (!IsSigned) {
8809 MIRBuilder.buildFPTOUI(Dst, Min);
8810 MI.eraseFromParent();
8811 return Legalized;
8812 }
8813
8814 // Otherwise, select 0 if Src is NaN.
8815 auto FpToInt = MIRBuilder.buildFPTOSI(DstTy, Min);
8816 auto IsZero =
8817 MIRBuilder.buildFCmp(CmpInst::FCMP_UNO, LLT::integer(1), Src, Src);
8818 MIRBuilder.buildSelect(Dst, IsZero, MIRBuilder.buildConstant(DstTy, 0),
8819 FpToInt);
8820 MI.eraseFromParent();
8821 return Legalized;
8822 }
8823
8824 // Result of direct conversion. The assumption here is that the operation is
8825 // non-trapping and it's fine to apply it to an out-of-range value if we
8826 // select it away later.
8827 auto FpToInt = IsSigned ? MIRBuilder.buildFPTOSI(DstTy, Src)
8828 : MIRBuilder.buildFPTOUI(DstTy, Src);
8829
8830 // If Src ULT MinFloat, select MinInt. In particular, this also selects
8831 // MinInt if Src is NaN.
8832 auto ULT = MIRBuilder.buildFCmp(CmpInst::FCMP_ULT, LLT::integer(1), Src,
8833 MIRBuilder.buildFConstant(SrcTy, MinFloat));
8834 auto Max = MIRBuilder.buildSelect(
8835 DstTy, ULT, MIRBuilder.buildConstant(DstTy, MinInt), FpToInt);
8836 // If Src OGT MaxFloat, select MaxInt.
8837 auto OGT = MIRBuilder.buildFCmp(CmpInst::FCMP_OGT, LLT::integer(1), Src,
8838 MIRBuilder.buildFConstant(SrcTy, MaxFloat));
8839
8840 // In the unsigned case we are done, because we mapped NaN to MinInt, which
8841 // is already zero.
8842 if (!IsSigned) {
8843 MIRBuilder.buildSelect(Dst, OGT, MIRBuilder.buildConstant(DstTy, MaxInt),
8844 Max);
8845 MI.eraseFromParent();
8846 return Legalized;
8847 }
8848
8849 // Otherwise, select 0 if Src is NaN.
8850 auto Min = MIRBuilder.buildSelect(
8851 DstTy, OGT, MIRBuilder.buildConstant(DstTy, MaxInt), Max);
8852 auto IsZero =
8853 MIRBuilder.buildFCmp(CmpInst::FCMP_UNO, LLT::integer(1), Src, Src);
8854 MIRBuilder.buildSelect(Dst, IsZero, MIRBuilder.buildConstant(DstTy, 0), Min);
8855 MI.eraseFromParent();
8856 return Legalized;
8857}
8858
8859// Floating-point conversions using truncating and extending loads and stores.
8862 assert((MI.getOpcode() == TargetOpcode::G_FPEXT ||
8863 MI.getOpcode() == TargetOpcode::G_FPTRUNC) &&
8864 "Only G_FPEXT and G_FPTRUNC are expected");
8865
8866 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
8867 MachinePointerInfo PtrInfo;
8868 unsigned StoreOpc;
8869 unsigned LoadOpc;
8870 LLT StackTy;
8871 if (MI.getOpcode() == TargetOpcode::G_FPEXT) {
8872 StackTy = SrcTy;
8873 StoreOpc = TargetOpcode::G_STORE;
8874 LoadOpc = TargetOpcode::G_FPEXTLOAD;
8875 } else {
8876 StackTy = DstTy;
8877 StoreOpc = TargetOpcode::G_FPTRUNCSTORE;
8878 LoadOpc = TargetOpcode::G_LOAD;
8879 }
8880
8881 Align StackTyAlign = getStackTemporaryAlignment(StackTy);
8882 auto StackTemp =
8883 createStackTemporary(StackTy.getSizeInBytes(), StackTyAlign, PtrInfo);
8884
8885 MachineFunction &MF = MIRBuilder.getMF();
8886 auto *StoreMMO = MF.getMachineMemOperand(PtrInfo, MachineMemOperand::MOStore,
8887 StackTy, StackTyAlign);
8888 MIRBuilder.buildStoreInstr(StoreOpc, SrcReg, StackTemp, *StoreMMO);
8889
8890 auto *LoadMMO = MF.getMachineMemOperand(PtrInfo, MachineMemOperand::MOLoad,
8891 StackTy, StackTyAlign);
8892 MIRBuilder.buildLoadInstr(LoadOpc, DstReg, StackTemp, *LoadMMO);
8893
8894 MI.eraseFromParent();
8895 return Legalized;
8896}
8897
8898// Expand a bf16 -> f32/f64 fpext with a shift and bitcast. This is based on the
8899// SDAG ISD::BF16_TO_FP lowering.
8902 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
8903 assert(SrcTy.getScalarType().isBFloat16() &&
8904 "expected a bf16 source for bf16 fpext lowering");
8905
8906 LLT I16Ty = SrcTy.changeElementType(LLT::integer(16));
8907 LLT I32Ty = SrcTy.changeElementType(LLT::integer(32));
8908 LLT F32Ty = SrcTy.changeElementType(LLT::float32());
8909
8910 auto SrcI =
8911 MIRBuilder.buildAnyExt(I32Ty, MIRBuilder.buildBitcast(I16Ty, SrcReg));
8912 auto Shl =
8913 MIRBuilder.buildShl(I32Ty, SrcI, MIRBuilder.buildConstant(I32Ty, 16));
8914
8915 if (DstTy.getScalarType().isFloat32())
8916 MIRBuilder.buildBitcast(DstReg, Shl);
8917 else
8918 MIRBuilder.buildFPExt(DstReg, MIRBuilder.buildBitcast(F32Ty, Shl));
8919
8920 MI.eraseFromParent();
8921 return Legalized;
8922}
8923
8925 auto [DstTy, SrcTy] = MI.getFirst2LLTs();
8926 if (SrcTy.getScalarType().isBFloat16() &&
8927 (DstTy.getScalarType().isFloat32() || DstTy.getScalarType().isFloat64()))
8928 return lowerFPEXT_BF16(MI);
8929
8930 return lowerFPExtAndTruncMem(MI);
8931}
8932
8933// f64 -> f16 conversion using round-to-nearest-even rounding mode.
8936 const LLT S1 = LLT::scalar(1);
8937 const LLT I32 = LLT::integer(32);
8938
8939 auto [Dst, Src] = MI.getFirst2Regs();
8940 assert(MRI.getType(Dst).getScalarType() == LLT::float16() &&
8941 MRI.getType(Src).getScalarType() == LLT::float64());
8942
8943 if (MRI.getType(Src).isVector()) // TODO: Handle vectors directly.
8944 return UnableToLegalize;
8945
8946 if (MI.getFlag(MachineInstr::FmAfn)) {
8947 unsigned Flags = MI.getFlags();
8948 auto Src32 = MIRBuilder.buildFPTrunc(LLT::float32(), Src, Flags);
8949 MIRBuilder.buildFPTrunc(Dst, Src32, Flags);
8950 MI.eraseFromParent();
8951 return Legalized;
8952 }
8953
8954 const unsigned ExpMask = 0x7ff;
8955 const unsigned ExpBiasf64 = 1023;
8956 const unsigned ExpBiasf16 = 15;
8957
8958 auto Unmerge = MIRBuilder.buildUnmerge(I32, Src);
8959 Register U = Unmerge.getReg(0);
8960 Register UH = Unmerge.getReg(1);
8961
8962 auto E = MIRBuilder.buildLShr(I32, UH, MIRBuilder.buildConstant(I32, 20));
8963 E = MIRBuilder.buildAnd(I32, E, MIRBuilder.buildConstant(I32, ExpMask));
8964
8965 // Subtract the fp64 exponent bias (1023) to get the real exponent and
8966 // add the f16 bias (15) to get the biased exponent for the f16 format.
8967 E = MIRBuilder.buildAdd(
8968 I32, E, MIRBuilder.buildConstant(I32, -ExpBiasf64 + ExpBiasf16));
8969
8970 auto M = MIRBuilder.buildLShr(I32, UH, MIRBuilder.buildConstant(I32, 8));
8971 M = MIRBuilder.buildAnd(I32, M, MIRBuilder.buildConstant(I32, 0xffe));
8972
8973 auto MaskedSig =
8974 MIRBuilder.buildAnd(I32, UH, MIRBuilder.buildConstant(I32, 0x1ff));
8975 MaskedSig = MIRBuilder.buildOr(I32, MaskedSig, U);
8976
8977 auto Zero = MIRBuilder.buildConstant(I32, 0);
8978 auto SigCmpNE0 = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, MaskedSig, Zero);
8979 auto Lo40Set = MIRBuilder.buildZExt(I32, SigCmpNE0);
8980 M = MIRBuilder.buildOr(I32, M, Lo40Set);
8981
8982 // (M != 0 ? 0x0200 : 0) | 0x7c00;
8983 auto Bits0x200 = MIRBuilder.buildConstant(I32, 0x0200);
8984 auto CmpM_NE0 = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1, M, Zero);
8985 auto SelectCC = MIRBuilder.buildSelect(I32, CmpM_NE0, Bits0x200, Zero);
8986
8987 auto Bits0x7c00 = MIRBuilder.buildConstant(I32, 0x7c00);
8988 auto I = MIRBuilder.buildOr(I32, SelectCC, Bits0x7c00);
8989
8990 // N = M | (E << 12);
8991 auto EShl12 = MIRBuilder.buildShl(I32, E, MIRBuilder.buildConstant(I32, 12));
8992 auto N = MIRBuilder.buildOr(I32, M, EShl12);
8993
8994 // B = clamp(1-E, 0, 13);
8995 auto One = MIRBuilder.buildConstant(I32, 1);
8996 auto OneSubExp = MIRBuilder.buildSub(I32, One, E);
8997 auto B = MIRBuilder.buildSMax(I32, OneSubExp, Zero);
8998 B = MIRBuilder.buildSMin(I32, B, MIRBuilder.buildConstant(I32, 13));
8999
9000 auto SigSetHigh =
9001 MIRBuilder.buildOr(I32, M, MIRBuilder.buildConstant(I32, 0x1000));
9002
9003 auto D = MIRBuilder.buildLShr(I32, SigSetHigh, B);
9004 auto D0 = MIRBuilder.buildShl(I32, D, B);
9005
9006 auto D0_NE_SigSetHigh = MIRBuilder.buildICmp(CmpInst::ICMP_NE, S1,
9007 D0, SigSetHigh);
9008 auto D1 = MIRBuilder.buildZExt(I32, D0_NE_SigSetHigh);
9009 D = MIRBuilder.buildOr(I32, D, D1);
9010
9011 auto CmpELtOne = MIRBuilder.buildICmp(CmpInst::ICMP_SLT, S1, E, One);
9012 auto V = MIRBuilder.buildSelect(I32, CmpELtOne, D, N);
9013
9014 auto VLow3 = MIRBuilder.buildAnd(I32, V, MIRBuilder.buildConstant(I32, 7));
9015 V = MIRBuilder.buildLShr(I32, V, MIRBuilder.buildConstant(I32, 2));
9016
9017 auto VLow3Eq3 = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, S1, VLow3,
9018 MIRBuilder.buildConstant(I32, 3));
9019 auto V0 = MIRBuilder.buildZExt(I32, VLow3Eq3);
9020
9021 auto VLow3Gt5 = MIRBuilder.buildICmp(CmpInst::ICMP_SGT, S1, VLow3,
9022 MIRBuilder.buildConstant(I32, 5));
9023 auto V1 = MIRBuilder.buildZExt(I32, VLow3Gt5);
9024
9025 V1 = MIRBuilder.buildOr(I32, V0, V1);
9026 V = MIRBuilder.buildAdd(I32, V, V1);
9027
9028 auto CmpEGt30 = MIRBuilder.buildICmp(CmpInst::ICMP_SGT, S1, E,
9029 MIRBuilder.buildConstant(I32, 30));
9030 V = MIRBuilder.buildSelect(I32, CmpEGt30,
9031 MIRBuilder.buildConstant(I32, 0x7c00), V);
9032
9033 auto CmpEGt1039 = MIRBuilder.buildICmp(CmpInst::ICMP_EQ, S1, E,
9034 MIRBuilder.buildConstant(I32, 1039));
9035 V = MIRBuilder.buildSelect(I32, CmpEGt1039, I, V);
9036
9037 // Extract the sign bit.
9038 auto Sign = MIRBuilder.buildLShr(I32, UH, MIRBuilder.buildConstant(I32, 16));
9039 Sign = MIRBuilder.buildAnd(I32, Sign, MIRBuilder.buildConstant(I32, 0x8000));
9040
9041 // Insert the sign bit
9042 V = MIRBuilder.buildOr(I32, Sign, V);
9043
9044 MIRBuilder.buildTrunc(Dst, V);
9045 MI.eraseFromParent();
9046 return Legalized;
9047}
9048
9049// f32 -> bf16 conversion using round-to-nearest-even rounding mode.
9052 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
9053 assert(DstTy.getScalarType() == LLT::bfloat16() &&
9054 SrcTy.getScalarType() == LLT::float32());
9055
9056 LLT I1Ty = SrcTy.changeElementType(LLT::integer(1));
9057 LLT I16Ty = SrcTy.changeElementType(LLT::integer(16));
9058 LLT I32Ty = SrcTy.changeElementType(LLT::integer(32));
9059
9060 auto SrcI = MIRBuilder.buildBitcast(I32Ty, SrcReg);
9061
9062 // Conversions should set NaN's quiet bit. This also prevents NaNs from
9063 // turning into infinities.
9064 auto NaN = MIRBuilder.buildOr(I32Ty, SrcI,
9065 MIRBuilder.buildConstant(I32Ty, 0x400000));
9066
9067 // Factor in the contribution of the low 16 bits.
9068 auto Lsb =
9069 MIRBuilder.buildLShr(I32Ty, SrcI, MIRBuilder.buildConstant(I32Ty, 16));
9070 Lsb = MIRBuilder.buildAnd(I32Ty, Lsb, MIRBuilder.buildConstant(I32Ty, 1));
9071 auto RoundingBias =
9072 MIRBuilder.buildAdd(I32Ty, Lsb, MIRBuilder.buildConstant(I32Ty, 0x7fff));
9073 auto Add = MIRBuilder.buildAdd(I32Ty, SrcI, RoundingBias);
9074
9075 // Don't round if we had a NaN, we don't want to turn 0x7fffffff into
9076 // 0x80000000.
9077 if (!MI.getFlag(MachineInstr::FmNoNans)) {
9078 auto IsNaN = MIRBuilder.buildFCmp(CmpInst::FCMP_UNO, I1Ty, SrcReg,
9079 MIRBuilder.buildFConstant(SrcTy, 0));
9080 Add = MIRBuilder.buildSelect(I32Ty, IsNaN, NaN, Add);
9081 }
9082
9083 // Now that we have rounded, shift the bits into position.
9084 auto Srl =
9085 MIRBuilder.buildLShr(I32Ty, Add, MIRBuilder.buildConstant(I32Ty, 16));
9086 auto Trunc = MIRBuilder.buildTrunc(I16Ty, Srl);
9087 MIRBuilder.buildBitcast(DstReg, Trunc);
9088 MI.eraseFromParent();
9089 return Legalized;
9090}
9091
9092// Round a wide fp value to ResultTy's element size, forcing inexact
9093// results to the odd value so a subsequent narrowing round is correct. This
9094// avoids double-rounding when narrowing e.g. f64 -> f32 -> bf16. See Boldo &
9095// Melquiond, "When double rounding is odd" (2005).
9097 LLT OperandTy = MRI.getType(Op);
9098 if (OperandTy.getScalarType() == ResultTy.getScalarType())
9099 return Op;
9100
9101 LLT ResultIntTy =
9103 LLT ResultCCTy = ResultTy.changeElementType(LLT::integer(1));
9104 LLT OperandCCTy = OperandTy.changeElementType(LLT::integer(1));
9105
9106 auto Narrow = MIRBuilder.buildFPTrunc(ResultTy, Op);
9107 auto NarrowAsWide = MIRBuilder.buildFPExt(OperandTy, Narrow);
9108
9109 auto NarrowBits = MIRBuilder.buildBitcast(ResultIntTy, Narrow);
9110 auto One = MIRBuilder.buildConstant(ResultIntTy, 1);
9111 auto NegativeOne = MIRBuilder.buildConstant(ResultIntTy, -1);
9112 auto Zero = MIRBuilder.buildConstant(ResultIntTy, 0);
9113 auto And = MIRBuilder.buildAnd(ResultIntTy, NarrowBits, One);
9114 // The result is already odd so we don't need to do anything.
9115 auto AlreadyOdd =
9116 MIRBuilder.buildICmp(CmpInst::ICMP_NE, ResultCCTy, And, Zero);
9117
9118 // We keep results which are exact, odd or NaN.
9119 auto KeepNarrow =
9120 MIRBuilder.buildFCmp(CmpInst::FCMP_UEQ, OperandCCTy, Op, NarrowAsWide);
9121 KeepNarrow = MIRBuilder.buildOr(OperandCCTy, KeepNarrow, AlreadyOdd);
9122 // We morally performed a round-down if AbsNarrow is smaller than AbsWide.
9123 auto AbsWide = MIRBuilder.buildFAbs(OperandTy, Op);
9124 auto AbsNarrowAsWide = MIRBuilder.buildFAbs(OperandTy, NarrowAsWide);
9125 auto NarrowIsRd = MIRBuilder.buildFCmp(CmpInst::FCMP_OGT, OperandCCTy,
9126 AbsWide, AbsNarrowAsWide);
9127 // If narrow is the rounded-down value, pick the rounded-up value as it will
9128 // be odd; otherwise adjust down.
9129 auto Adjust =
9130 MIRBuilder.buildSelect(ResultIntTy, NarrowIsRd, One, NegativeOne);
9131 auto Adjusted = MIRBuilder.buildAdd(ResultIntTy, NarrowBits, Adjust);
9132 auto Res =
9133 MIRBuilder.buildSelect(ResultIntTy, KeepNarrow, NarrowBits, Adjusted);
9134 return MIRBuilder.buildBitcast(ResultTy, Res).getReg(0);
9135}
9136
9137// f64 -> bf16 conversion, correcting for double rounding.
9140 auto [DstReg, DstTy, SrcReg, SrcTy] = MI.getFirst2RegLLTs();
9141 assert(DstTy.getScalarType() == LLT::bfloat16() &&
9142 SrcTy.getScalarType() == LLT::float64());
9143
9144 LLT F32Ty = SrcTy.changeElementType(LLT::float32());
9145 Register OddF32 = lowerRoundInexactToOdd(F32Ty, SrcReg);
9146 MIRBuilder.buildFPTrunc(DstReg, OddF32, MI.getFlags());
9147 MI.eraseFromParent();
9148 return Legalized;
9149}
9150
9153 auto [DstTy, SrcTy] = MI.getFirst2LLTs();
9154 if (DstTy.getScalarType().isFloat16() && SrcTy.getScalarType().isFloat64())
9156
9157 if (DstTy.getScalarType().isBFloat16() && SrcTy.getScalarType().isFloat32())
9159
9160 if (DstTy.getScalarType().isBFloat16() && SrcTy.getScalarType().isFloat64())
9162
9163 return lowerFPExtAndTruncMem(MI);
9164}
9165
9167 auto [Dst, Src0, Src1] = MI.getFirst3Regs();
9168 LLT Ty = MRI.getType(Dst);
9169
9170 auto CvtSrc1 = MIRBuilder.buildSITOFP(Ty, Src1);
9171 MIRBuilder.buildFPow(Dst, Src0, CvtSrc1, MI.getFlags());
9172 MI.eraseFromParent();
9173 return Legalized;
9174}
9175
9177 auto [DstFrac, DstInt, Src] = MI.getFirst3Regs();
9178 LLT Ty = MRI.getType(Src);
9179 auto Flags = MI.getFlags();
9180 const LLT CondTy = Ty.changeElementType(LLT::integer(1));
9181
9182 auto IntPart = MIRBuilder.buildIntrinsicTrunc(Ty, Src, Flags);
9183 auto FracPart = MIRBuilder.buildFSub(Ty, Src, IntPart, Flags);
9184
9185 Register FracToUse;
9186 if (MI.getFlag(MachineInstr::FmNoInfs)) {
9187 FracToUse = FracPart.getReg(0);
9188 } else {
9189 auto Abs = MIRBuilder.buildFAbs(Ty, Src, Flags);
9190 const fltSemantics &Semantics = getFltSemanticForLLT(Ty.getScalarType());
9191 auto Inf = MIRBuilder.buildFConstant(Ty, APFloat::getInf(Semantics));
9192 auto IsInf = MIRBuilder.buildFCmp(CmpInst::FCMP_OEQ, CondTy, Abs, Inf);
9193 auto Zero = MIRBuilder.buildFConstant(Ty, 0.0);
9194 auto Select = MIRBuilder.buildSelect(Ty, IsInf, Zero, FracPart);
9195 FracToUse = Select.getReg(0);
9196 }
9197
9198 MIRBuilder.buildFCopysign(DstFrac, FracToUse, Src, Flags);
9199 MIRBuilder.buildCopy(DstInt, IntPart.getReg(0));
9200
9201 MI.eraseFromParent();
9202 return Legalized;
9203}
9204
9206 switch (Opc) {
9207 case TargetOpcode::G_SMIN:
9208 return CmpInst::ICMP_SLT;
9209 case TargetOpcode::G_SMAX:
9210 return CmpInst::ICMP_SGT;
9211 case TargetOpcode::G_UMIN:
9212 return CmpInst::ICMP_ULT;
9213 case TargetOpcode::G_UMAX:
9214 return CmpInst::ICMP_UGT;
9215 default:
9216 llvm_unreachable("not in integer min/max");
9217 }
9218}
9219
9221 auto [Dst, Src0, Src1] = MI.getFirst3Regs();
9222
9223 const CmpInst::Predicate Pred = minMaxToCompare(MI.getOpcode());
9224 LLT CmpType = MRI.getType(Dst).changeElementType(LLT::integer(1));
9225
9226 auto Cmp = MIRBuilder.buildICmp(Pred, CmpType, Src0, Src1);
9227 MIRBuilder.buildSelect(Dst, Cmp, Src0, Src1);
9228
9229 MI.eraseFromParent();
9230 return Legalized;
9231}
9232
9235 GSUCmp *Cmp = cast<GSUCmp>(&MI);
9236
9237 Register Dst = Cmp->getReg(0);
9238 LLT DstTy = MRI.getType(Dst);
9239 LLT SrcTy = MRI.getType(Cmp->getReg(1));
9240 LLT CmpTy = DstTy.changeElementSize(1);
9241
9242 CmpInst::Predicate LTPredicate = Cmp->isSigned()
9245 CmpInst::Predicate GTPredicate = Cmp->isSigned()
9248
9249 auto Zero = MIRBuilder.buildConstant(DstTy, 0);
9250 auto IsGT = MIRBuilder.buildICmp(GTPredicate, CmpTy, Cmp->getLHSReg(),
9251 Cmp->getRHSReg());
9252 auto IsLT = MIRBuilder.buildICmp(LTPredicate, CmpTy, Cmp->getLHSReg(),
9253 Cmp->getRHSReg());
9254
9255 auto &Ctx = MIRBuilder.getMF().getFunction().getContext();
9256 auto BC = TLI.getBooleanContents(DstTy.isVector(), /*isFP=*/false);
9257 if (TLI.preferSelectsOverBooleanArithmetic(
9258 getApproximateEVTForLLT(SrcTy, Ctx)) ||
9260 auto One = MIRBuilder.buildConstant(DstTy, 1);
9261 auto SelectZeroOrOne = MIRBuilder.buildSelect(DstTy, IsGT, One, Zero);
9262
9263 auto MinusOne = MIRBuilder.buildConstant(DstTy, -1);
9264 MIRBuilder.buildSelect(Dst, IsLT, MinusOne, SelectZeroOrOne);
9265 } else {
9267 std::swap(IsGT, IsLT);
9268 // Extend boolean results to DstTy, which is at least i2, before subtracting
9269 // them.
9270 unsigned BoolExtOp =
9271 MIRBuilder.getBoolExtOp(DstTy.isVector(), /*isFP=*/false);
9272 IsGT = MIRBuilder.buildInstr(BoolExtOp, {DstTy}, {IsGT});
9273 IsLT = MIRBuilder.buildInstr(BoolExtOp, {DstTy}, {IsLT});
9274 MIRBuilder.buildSub(Dst, IsGT, IsLT);
9275 }
9276
9277 MI.eraseFromParent();
9278 return Legalized;
9279}
9280
9283 auto [Dst, DstTy, Src0, Src0Ty, Src1, Src1Ty] = MI.getFirst3RegLLTs();
9284 const int Src0Size = Src0Ty.getScalarSizeInBits();
9285 const int Src1Size = Src1Ty.getScalarSizeInBits();
9286
9287 LLT DstIntTy =
9288 DstTy.changeElementType(LLT::integer(DstTy.getScalarSizeInBits()));
9289 LLT Src0IntTy = Src0Ty.changeElementType(LLT::integer(Src0Size));
9290 LLT Src1IntTy = Src1Ty.changeElementType(LLT::integer(Src1Size));
9291
9292 Register Src0Int = Src0;
9293 Register Src1Int = Src1;
9294
9295 if (!(Src0Ty.getScalarType().isAnyScalar() ||
9296 Src0Ty.getScalarType().isInteger()))
9297 Src0Int = MIRBuilder.buildBitcast(Src0IntTy, Src0).getReg(0);
9298
9299 if (!(Src1Ty.getScalarType().isAnyScalar() ||
9300 Src1Ty.getScalarType().isInteger()))
9301 Src1Int = MIRBuilder.buildBitcast(Src1IntTy, Src1).getReg(0);
9302
9303 auto SignBitMask =
9304 MIRBuilder.buildConstant(Src0IntTy, APInt::getSignMask(Src0Size));
9305
9306 auto NotSignBitMask = MIRBuilder.buildConstant(
9307 Src0IntTy, APInt::getLowBitsSet(Src0Size, Src0Size - 1));
9308
9309 Register And0 =
9310 MIRBuilder.buildAnd(Src0IntTy, Src0Int, NotSignBitMask).getReg(0);
9311 Register And1;
9312 if (Src0Ty == Src1Ty) {
9313 And1 = MIRBuilder.buildAnd(Src1IntTy, Src1Int, SignBitMask).getReg(0);
9314 } else if (Src0Size > Src1Size) {
9315 auto ShiftAmt = MIRBuilder.buildConstant(Src0IntTy, Src0Size - Src1Size);
9316 auto Zext = MIRBuilder.buildZExt(Src0IntTy, Src1Int);
9317 auto Shift = MIRBuilder.buildShl(Src0IntTy, Zext, ShiftAmt);
9318 And1 = MIRBuilder.buildAnd(Src0IntTy, Shift, SignBitMask).getReg(0);
9319 } else {
9320 auto ShiftAmt = MIRBuilder.buildConstant(Src1IntTy, Src1Size - Src0Size);
9321 auto Shift = MIRBuilder.buildLShr(Src1IntTy, Src1Int, ShiftAmt);
9322 auto Trunc = MIRBuilder.buildTrunc(Src0IntTy, Shift);
9323 And1 = MIRBuilder.buildAnd(Src0IntTy, Trunc, SignBitMask).getReg(0);
9324 }
9325
9326 // Be careful about setting nsz/nnan/ninf on every instruction, since the
9327 // constants are a nan and -0.0, but the final result should preserve
9328 // everything.
9329 unsigned Flags = MI.getFlags();
9330
9331 // We masked the sign bit and the not-sign bit, so these are disjoint.
9332 Flags |= MachineInstr::Disjoint;
9333
9334 if (DstTy == DstIntTy)
9335 MIRBuilder.buildOr(Dst, And0, And1, Flags).getReg(0);
9336 else {
9337 Register NewDst = MIRBuilder.buildOr(DstIntTy, And0, And1, Flags).getReg(0);
9338 MIRBuilder.buildBitcast(Dst, NewDst);
9339 }
9340
9341 MI.eraseFromParent();
9342 return Legalized;
9343}
9344
9347 // FIXME: fminnum/fmaxnum and fminimumnum/fmaximumnum should not have
9348 // identical handling. fminimumnum/fmaximumnum also need a path that do not
9349 // depend on fminnum/fmaxnum.
9350
9351 unsigned NewOp;
9352 switch (MI.getOpcode()) {
9353 case TargetOpcode::G_FMINNUM:
9354 NewOp = TargetOpcode::G_FMINNUM_IEEE;
9355 break;
9356 case TargetOpcode::G_FMINIMUMNUM:
9357 NewOp = TargetOpcode::G_FMINNUM;
9358 break;
9359 case TargetOpcode::G_FMAXNUM:
9360 NewOp = TargetOpcode::G_FMAXNUM_IEEE;
9361 break;
9362 case TargetOpcode::G_FMAXIMUMNUM:
9363 NewOp = TargetOpcode::G_FMAXNUM;
9364 break;
9365 default:
9366 llvm_unreachable("unexpected min/max opcode");
9367 }
9368
9369 auto [Dst, Src0, Src1] = MI.getFirst3Regs();
9370 LLT Ty = MRI.getType(Dst);
9371
9372 if (!MI.getFlag(MachineInstr::FmNoNans)) {
9373 // Insert canonicalizes if it's possible we need to quiet to get correct
9374 // sNaN behavior.
9375
9376 // Note this must be done here, and not as an optimization combine in the
9377 // absence of a dedicate quiet-snan instruction as we're using an
9378 // omni-purpose G_FCANONICALIZE.
9379 if (!VT->isKnownNeverSNaN(Src0))
9380 Src0 = MIRBuilder.buildFCanonicalize(Ty, Src0, MI.getFlags()).getReg(0);
9381
9382 if (!VT->isKnownNeverSNaN(Src1))
9383 Src1 = MIRBuilder.buildFCanonicalize(Ty, Src1, MI.getFlags()).getReg(0);
9384 }
9385
9386 // If there are no nans, it's safe to simply replace this with the non-IEEE
9387 // version.
9388 MIRBuilder.buildInstr(NewOp, {Dst}, {Src0, Src1}, MI.getFlags());
9389 MI.eraseFromParent();
9390 return Legalized;
9391}
9392
9395 unsigned Opc = MI.getOpcode();
9396 auto [Dst, Src0, Src1] = MI.getFirst3Regs();
9397 LLT Ty = MRI.getType(Dst);
9398 const LLT CmpTy = Ty.changeElementType(LLT::integer(1));
9399
9400 bool IsMax = (Opc == TargetOpcode::G_FMAXIMUM);
9401 unsigned OpcIeee =
9402 IsMax ? TargetOpcode::G_FMAXNUM_IEEE : TargetOpcode::G_FMINNUM_IEEE;
9403 unsigned OpcNonIeee =
9404 IsMax ? TargetOpcode::G_FMAXNUM : TargetOpcode::G_FMINNUM;
9405 bool MinMaxMustRespectOrderedZero = false;
9406 Register Res;
9407
9408 // IEEE variants don't need canonicalization
9409 if (LI.isLegalOrCustom({OpcIeee, Ty})) {
9410 Res = MIRBuilder.buildInstr(OpcIeee, {Ty}, {Src0, Src1}).getReg(0);
9411 MinMaxMustRespectOrderedZero = true;
9412 } else if (LI.isLegalOrCustom({OpcNonIeee, Ty})) {
9413 Res = MIRBuilder.buildInstr(OpcNonIeee, {Ty}, {Src0, Src1}).getReg(0);
9414 } else {
9415 auto Compare = MIRBuilder.buildFCmp(
9416 IsMax ? CmpInst::FCMP_OGT : CmpInst::FCMP_OLT, CmpTy, Src0, Src1);
9417 Res = MIRBuilder.buildSelect(Ty, Compare, Src0, Src1).getReg(0);
9418 }
9419
9420 // Propagate any NaN of both operands
9421 if (!MI.getFlag(MachineInstr::FmNoNans) &&
9422 (!VT->isKnownNeverNaN(Src0) || !VT->isKnownNeverNaN(Src1))) {
9423 auto IsOrdered = MIRBuilder.buildFCmp(CmpInst::FCMP_ORD, CmpTy, Src0, Src1);
9424
9425 LLT ElementTy = Ty.isScalar() ? Ty : Ty.getElementType();
9426 APFloat NaNValue = APFloat::getNaN(getFltSemanticForLLT(ElementTy));
9427 Register NaN = MIRBuilder.buildFConstant(ElementTy, NaNValue).getReg(0);
9428 if (Ty.isVector())
9429 NaN = MIRBuilder.buildSplatBuildVector(Ty, NaN).getReg(0);
9430
9431 Res = MIRBuilder.buildSelect(Ty, IsOrdered, Res, NaN).getReg(0);
9432 }
9433
9434 // fminimum/fmaximum requires -0.0 less than +0.0
9435 if (!MinMaxMustRespectOrderedZero && !MI.getFlag(MachineInstr::FmNsz)) {
9436 GISelValueTracking VT(MIRBuilder.getMF());
9437 KnownFPClass Src0Info = VT.computeKnownFPClass(Src0, fcZero);
9438 KnownFPClass Src1Info = VT.computeKnownFPClass(Src1, fcZero);
9439
9440 if (!Src0Info.isKnownNeverZero() && !Src1Info.isKnownNeverZero()) {
9441 const unsigned Flags = MI.getFlags();
9442 Register Zero = MIRBuilder.buildFConstant(Ty, 0.0).getReg(0);
9443 auto IsZero = MIRBuilder.buildFCmp(CmpInst::FCMP_OEQ, CmpTy, Res, Zero);
9444
9445 unsigned TestClass = IsMax ? fcPosZero : fcNegZero;
9446
9447 auto LHSTestZero = MIRBuilder.buildIsFPClass(CmpTy, Src0, TestClass);
9448 auto LHSSelect =
9449 MIRBuilder.buildSelect(Ty, LHSTestZero, Src0, Res, Flags);
9450
9451 auto RHSTestZero = MIRBuilder.buildIsFPClass(CmpTy, Src1, TestClass);
9452 auto RHSSelect =
9453 MIRBuilder.buildSelect(Ty, RHSTestZero, Src1, LHSSelect, Flags);
9454
9455 Res = MIRBuilder.buildSelect(Ty, IsZero, RHSSelect, Res, Flags).getReg(0);
9456 }
9457 }
9458
9459 MIRBuilder.buildCopy(Dst, Res);
9460 MI.eraseFromParent();
9461 return Legalized;
9462}
9463
9465 // Expand G_FMAD a, b, c -> G_FADD (G_FMUL a, b), c
9466 Register DstReg = MI.getOperand(0).getReg();
9467 LLT Ty = MRI.getType(DstReg);
9468 unsigned Flags = MI.getFlags();
9469
9470 auto Mul = MIRBuilder.buildFMul(Ty, MI.getOperand(1), MI.getOperand(2),
9471 Flags);
9472 MIRBuilder.buildFAdd(DstReg, Mul, MI.getOperand(3), Flags);
9473 MI.eraseFromParent();
9474 return Legalized;
9475}
9476
9479 auto [DstReg, X] = MI.getFirst2Regs();
9480 const unsigned Flags = MI.getFlags();
9481 const LLT Ty = MRI.getType(DstReg);
9482 const LLT CondTy = Ty.changeElementType(LLT::integer(1));
9483
9484 // round(x) =>
9485 // t = trunc(x);
9486 // d = fabs(x - t);
9487 // o = copysign(d >= 0.5 ? 1.0 : 0.0, x);
9488 // return t + o;
9489
9490 auto T = MIRBuilder.buildIntrinsicTrunc(Ty, X, Flags);
9491
9492 auto Diff = MIRBuilder.buildFSub(Ty, X, T, Flags);
9493 auto AbsDiff = MIRBuilder.buildFAbs(Ty, Diff, Flags);
9494
9495 auto Half = MIRBuilder.buildFConstant(Ty, 0.5);
9496 auto Cmp =
9497 MIRBuilder.buildFCmp(CmpInst::FCMP_OGE, CondTy, AbsDiff, Half, Flags);
9498
9499 // Could emit G_UITOFP instead
9500 auto One = MIRBuilder.buildFConstant(Ty, 1.0);
9501 auto Zero = MIRBuilder.buildFConstant(Ty, 0.0);
9502