llvm-project/llvm/lib/Target/AArch64/AArch64MIPeepholeOpt.cpp
David Green 6e7840dd42 [AArch64] Extend fp64 top zeroing peephole to all instructions
D147235 added a fold to remove instructions that zero the upper half of a
register if the instruction already implicitly zeros the register. As far as I
can tell this applies to all instructions that define a FPR64 register in
AArch64. This patch switches to a check for the register class. The full list
of instructions is:
  BSPv8i8
  FMOVD0
  ABSv1i64
  ABSv2i32
  ABSv4i16
  ABSv8i8
  ADDHNv2i64_v2i32
  ADDHNv4i32_v4i16
  ADDHNv8i16_v8i8
  ADDPv2i32
  ADDPv2i64p
  ADDPv4i16
  ADDPv8i8
  ADDv1i64
  ADDv2i32
  ADDv4i16
  ADDv8i8
  ANDv8i8
  BF16DOTlanev4bf16
  BFDOTv4bf16
  BICv2i32
  BICv4i16
  BICv8i8
  BIFv8i8
  BITv8i8
  BSLv8i8
  CLASTA_VPZ_D
  CLASTB_VPZ_D
  CLSv2i32
  CLSv4i16
  CLSv8i8
  CLZv2i32
  CLZv4i16
  CLZv8i8
  CMEQv1i64
  CMEQv1i64rz
  CMEQv2i32
  CMEQv2i32rz
  CMEQv4i16
  CMEQv4i16rz
  CMEQv8i8
  CMEQv8i8rz
  CMGEv1i64
  CMGEv1i64rz
  CMGEv2i32
  CMGEv2i32rz
  CMGEv4i16
  CMGEv4i16rz
  CMGEv8i8
  CMGEv8i8rz
  CMGTv1i64
  CMGTv1i64rz
  CMGTv2i32
  CMGTv2i32rz
  CMGTv4i16
  CMGTv4i16rz
  CMGTv8i8
  CMGTv8i8rz
  CMHIv1i64
  CMHIv2i32
  CMHIv4i16
  CMHIv8i8
  CMHSv1i64
  CMHSv2i32
  CMHSv4i16
  CMHSv8i8
  CMLEv1i64rz
  CMLEv2i32rz
  CMLEv4i16rz
  CMLEv8i8rz
  CMLTv1i64rz
  CMLTv2i32rz
  CMLTv4i16rz
  CMLTv8i8rz
  CMTSTv1i64
  CMTSTv2i32
  CMTSTv4i16
  CMTSTv8i8
  CNTv8i8
  DUPi64
  DUPv2i32gpr
  DUPv2i32lane
  DUPv4i16gpr
  DUPv4i16lane
  DUPv8i8gpr
  DUPv8i8lane
  EORv8i8
  EXTv8i8
  FABD64
  FABDv2f32
  FABDv4f16
  FABSDr
  FABSv2f32
  FABSv4f16
  FACGE64
  FACGEv2f32
  FACGEv4f16
  FACGT64
  FACGTv2f32
  FACGTv4f16
  FADDDrr
  FADDPv2f32
  FADDPv2i64p
  FADDPv4f16
  FADDv2f32
  FADDv4f16
  FCADDv2f32
  FCADDv4f16
  FCMEQ64
  FCMEQv1i64rz
  FCMEQv2f32
  FCMEQv2i32rz
  FCMEQv4f16
  FCMEQv4i16rz
  FCMGE64
  FCMGEv1i64rz
  FCMGEv2f32
  FCMGEv2i32rz
  FCMGEv4f16
  FCMGEv4i16rz
  FCMGT64
  FCMGTv1i64rz
  FCMGTv2f32
  FCMGTv2i32rz
  FCMGTv4f16
  FCMGTv4i16rz
  FCMLAv2f32
  FCMLAv4f16
  FCMLAv4f16_indexed
  FCMLEv1i64rz
  FCMLEv2i32rz
  FCMLEv4i16rz
  FCMLTv1i64rz
  FCMLTv2i32rz
  FCMLTv4i16rz
  FCSELDrrr
  FCVTASv1i64
  FCVTASv2f32
  FCVTASv4f16
  FCVTAUv1i64
  FCVTAUv2f32
  FCVTAUv4f16
  FCVTDHr
  FCVTDSr
  FCVTMSv1i64
  FCVTMSv2f32
  FCVTMSv4f16
  FCVTMUv1i64
  FCVTMUv2f32
  FCVTMUv4f16
  FCVTNSv1i64
  FCVTNSv2f32
  FCVTNSv4f16
  FCVTNUv1i64
  FCVTNUv2f32
  FCVTNUv4f16
  FCVTNv2i32
  FCVTNv4i16
  FCVTPSv1i64
  FCVTPSv2f32
  FCVTPSv4f16
  FCVTPUv1i64
  FCVTPUv2f32
  FCVTPUv4f16
  FCVTXNv2f32
  FCVTZSd
  FCVTZSv1i64
  FCVTZSv2f32
  FCVTZSv2i32_shift
  FCVTZSv4f16
  FCVTZSv4i16_shift
  FCVTZUd
  FCVTZUv1i64
  FCVTZUv2f32
  FCVTZUv2i32_shift
  FCVTZUv4f16
  FCVTZUv4i16_shift
  FDIVDrr
  FDIVv2f32
  FDIVv4f16
  FMADDDrrr
  FMAXDrr
  FMAXNMDrr
  FMAXNMPv2f32
  FMAXNMPv2i64p
  FMAXNMPv4f16
  FMAXNMv2f32
  FMAXNMv4f16
  FMAXPv2f32
  FMAXPv2i64p
  FMAXPv4f16
  FMAXv2f32
  FMAXv4f16
  FMINDrr
  FMINNMDrr
  FMINNMPv2f32
  FMINNMPv2i64p
  FMINNMPv4f16
  FMINNMv2f32
  FMINNMv4f16
  FMINPv2f32
  FMINPv2i64p
  FMINPv4f16
  FMINv2f32
  FMINv4f16
  FMLAL2lanev4f16
  FMLAL2v4f16
  FMLALlanev4f16
  FMLALv4f16
  FMLAv1i64_indexed
  FMLAv2f32
  FMLAv2i32_indexed
  FMLAv4f16
  FMLAv4i16_indexed
  FMLSL2lanev4f16
  FMLSL2v4f16
  FMLSLlanev4f16
  FMLSLv4f16
  FMLSv1i64_indexed
  FMLSv2f32
  FMLSv2i32_indexed
  FMLSv4f16
  FMLSv4i16_indexed
  FMOVDi
  FMOVDr
  FMOVXDr
  FMOVv2f32_ns
  FMOVv4f16_ns
  FMSUBDrrr
  FMULDrr
  FMULX64
  FMULXv1i64_indexed
  FMULXv2f32
  FMULXv2i32_indexed
  FMULXv4f16
  FMULXv4i16_indexed
  FMULv1i64_indexed
  FMULv2f32
  FMULv2i32_indexed
  FMULv4f16
  FMULv4i16_indexed
  FNEGDr
  FNEGv2f32
  FNEGv4f16
  FNMADDDrrr
  FNMSUBDrrr
  FNMULDrr
  FRECPEv1i64
  FRECPEv2f32
  FRECPEv4f16
  FRECPS64
  FRECPSv2f32
  FRECPSv4f16
  FRECPXv1i64
  FRINT32XDr
  FRINT32Xv2f32
  FRINT32ZDr
  FRINT32Zv2f32
  FRINT64XDr
  FRINT64Xv2f32
  FRINT64ZDr
  FRINT64Zv2f32
  FRINTADr
  FRINTAv2f32
  FRINTAv4f16
  FRINTIDr
  FRINTIv2f32
  FRINTIv4f16
  FRINTMDr
  FRINTMv2f32
  FRINTMv4f16
  FRINTNDr
  FRINTNv2f32
  FRINTNv4f16
  FRINTPDr
  FRINTPv2f32
  FRINTPv4f16
  FRINTXDr
  FRINTXv2f32
  FRINTXv4f16
  FRINTZDr
  FRINTZv2f32
  FRINTZv4f16
  FRSQRTEv1i64
  FRSQRTEv2f32
  FRSQRTEv4f16
  FRSQRTS64
  FRSQRTSv2f32
  FRSQRTSv4f16
  FSQRTDr
  FSQRTv2f32
  FSQRTv4f16
  FSUBDrr
  FSUBv2f32
  FSUBv4f16
  LASTA_VPZ_D
  LASTB_VPZ_D
  LD1Onev1d
  LD1Onev2s
  LD1Onev4h
  LD1Onev8b
  LD1Rv1d
  LD1Rv2s
  LD1Rv4h
  LD1Rv8b
  LDAPURdi
  LDNPDi
  LDPDi
  LDRDl
  LDRDroW
  LDRDroX
  LDRDui
  LDURDi
  MLAv2i32
  MLAv2i32_indexed
  MLAv4i16
  MLAv4i16_indexed
  MLAv8i8
  MLSv2i32
  MLSv2i32_indexed
  MLSv4i16
  MLSv4i16_indexed
  MLSv8i8
  MOVID
  MOVIv2i32
  MOVIv2s_msl
  MOVIv4i16
  MOVIv8b_ns
  MULv2i32
  MULv2i32_indexed
  MULv4i16
  MULv4i16_indexed
  MULv8i8
  MVNIv2i32
  MVNIv2s_msl
  MVNIv4i16
  NEGv1i64
  NEGv2i32
  NEGv4i16
  NEGv8i8
  NOTv8i8
  ORNv8i8
  ORRv2i32
  ORRv4i16
  ORRv8i8
  PMULv8i8
  RADDHNv2i64_v2i32
  RADDHNv4i32_v4i16
  RADDHNv8i16_v8i8
  RBITv8i8
  REV16v8i8
  REV32v4i16
  REV32v8i8
  REV64v2i32
  REV64v4i16
  REV64v8i8
  RSHRNv2i32_shift
  RSHRNv4i16_shift
  RSHRNv8i8_shift
  RSUBHNv2i64_v2i32
  RSUBHNv4i32_v4i16
  RSUBHNv8i16_v8i8
  SABAv2i32
  SABAv4i16
  SABAv8i8
  SABDv2i32
  SABDv4i16
  SABDv8i8
  SADALPv2i32_v1i64
  SADALPv4i16_v2i32
  SADALPv8i8_v4i16
  SADDLPv2i32_v1i64
  SADDLPv4i16_v2i32
  SADDLPv8i8_v4i16
  SADDLVv4i32v
  SCVTFSWDri
  SCVTFSXDri
  SCVTFUWDri
  SCVTFUXDri
  SCVTFd
  SCVTFv1i64
  SCVTFv2f32
  SCVTFv2i32_shift
  SCVTFv4f16
  SCVTFv4i16_shift
  SDOTlanev8i8
  SDOTv8i8
  SHADDv2i32
  SHADDv4i16
  SHADDv8i8
  SHLd
  SHLv2i32_shift
  SHLv4i16_shift
  SHLv8i8_shift
  SHRNv2i32_shift
  SHRNv4i16_shift
  SHRNv8i8_shift
  SHSUBv2i32
  SHSUBv4i16
  SHSUBv8i8
  SLId
  SLIv2i32_shift
  SLIv4i16_shift
  SLIv8i8_shift
  SMAXPv2i32
  SMAXPv4i16
  SMAXPv8i8
  SMAXv2i32
  SMAXv4i16
  SMAXv8i8
  SMINPv2i32
  SMINPv4i16
  SMINPv8i8
  SMINv2i32
  SMINv4i16
  SMINv8i8
  SQABSv1i64
  SQABSv2i32
  SQABSv4i16
  SQABSv8i8
  SQADDv1i64
  SQADDv2i32
  SQADDv4i16
  SQADDv8i8
  SQDMLALi32
  SQDMLALv1i64_indexed
  SQDMLSLi32
  SQDMLSLv1i64_indexed
  SQDMULHv2i32
  SQDMULHv2i32_indexed
  SQDMULHv4i16
  SQDMULHv4i16_indexed
  SQDMULLi32
  SQDMULLv1i64_indexed
  SQNEGv1i64
  SQNEGv2i32
  SQNEGv4i16
  SQNEGv8i8
  SQRDMLAHv2i32
  SQRDMLAHv2i32_indexed
  SQRDMLAHv4i16
  SQRDMLAHv4i16_indexed
  SQRDMLSHv2i32
  SQRDMLSHv2i32_indexed
  SQRDMLSHv4i16
  SQRDMLSHv4i16_indexed
  SQRDMULHv2i32
  SQRDMULHv2i32_indexed
  SQRDMULHv4i16
  SQRDMULHv4i16_indexed
  SQRSHLv1i64
  SQRSHLv2i32
  SQRSHLv4i16
  SQRSHLv8i8
  SQRSHRNv2i32_shift
  SQRSHRNv4i16_shift
  SQRSHRNv8i8_shift
  SQRSHRUNv2i32_shift
  SQRSHRUNv4i16_shift
  SQRSHRUNv8i8_shift
  SQSHLUd
  SQSHLUv2i32_shift
  SQSHLUv4i16_shift
  SQSHLUv8i8_shift
  SQSHLd
  SQSHLv1i64
  SQSHLv2i32
  SQSHLv2i32_shift
  SQSHLv4i16
  SQSHLv4i16_shift
  SQSHLv8i8
  SQSHLv8i8_shift
  SQSHRNv2i32_shift
  SQSHRNv4i16_shift
  SQSHRNv8i8_shift
  SQSHRUNv2i32_shift
  SQSHRUNv4i16_shift
  SQSHRUNv8i8_shift
  SQSUBv1i64
  SQSUBv2i32
  SQSUBv4i16
  SQSUBv8i8
  SQXTNv2i32
  SQXTNv4i16
  SQXTNv8i8
  SQXTUNv2i32
  SQXTUNv4i16
  SQXTUNv8i8
  SRHADDv2i32
  SRHADDv4i16
  SRHADDv8i8
  SRId
  SRIv2i32_shift
  SRIv4i16_shift
  SRIv8i8_shift
  SRSHLv1i64
  SRSHLv2i32
  SRSHLv4i16
  SRSHLv8i8
  SRSHRd
  SRSHRv2i32_shift
  SRSHRv4i16_shift
  SRSHRv8i8_shift
  SRSRAd
  SRSRAv2i32_shift
  SRSRAv4i16_shift
  SRSRAv8i8_shift
  SSHLv1i64
  SSHLv2i32
  SSHLv4i16
  SSHLv8i8
  SSHRd
  SSHRv2i32_shift
  SSHRv4i16_shift
  SSHRv8i8_shift
  SSRAd
  SSRAv2i32_shift
  SSRAv4i16_shift
  SSRAv8i8_shift
  SUBHNv2i64_v2i32
  SUBHNv4i32_v4i16
  SUBHNv8i16_v8i8
  SUBv1i64
  SUBv2i32
  SUBv4i16
  SUBv8i8
  SUDOTlanev8i8
  SUQADDv1i64
  SUQADDv2i32
  SUQADDv4i16
  SUQADDv8i8
  TBLv8i8Four
  TBLv8i8One
  TBLv8i8Three
  TBLv8i8Two
  TBXv8i8Four
  TBXv8i8One
  TBXv8i8Three
  TBXv8i8Two
  TRN1v2i32
  TRN1v4i16
  TRN1v8i8
  TRN2v2i32
  TRN2v4i16
  TRN2v8i8
  UABAv2i32
  UABAv4i16
  UABAv8i8
  UABDv2i32
  UABDv4i16
  UABDv8i8
  UADALPv2i32_v1i64
  UADALPv4i16_v2i32
  UADALPv8i8_v4i16
  UADDLPv2i32_v1i64
  UADDLPv4i16_v2i32
  UADDLPv8i8_v4i16
  UADDLVv4i32v
  UCVTFSWDri
  UCVTFSXDri
  UCVTFUWDri
  UCVTFUXDri
  UCVTFd
  UCVTFv1i64
  UCVTFv2f32
  UCVTFv2i32_shift
  UCVTFv4f16
  UCVTFv4i16_shift
  UDOTlanev8i8
  UDOTv8i8
  UHADDv2i32
  UHADDv4i16
  UHADDv8i8
  UHSUBv2i32
  UHSUBv4i16
  UHSUBv8i8
  UMAXPv2i32
  UMAXPv4i16
  UMAXPv8i8
  UMAXv2i32
  UMAXv4i16
  UMAXv8i8
  UMINPv2i32
  UMINPv4i16
  UMINPv8i8
  UMINv2i32
  UMINv4i16
  UMINv8i8
  UQADDv1i64
  UQADDv2i32
  UQADDv4i16
  UQADDv8i8
  UQRSHLv1i64
  UQRSHLv2i32
  UQRSHLv4i16
  UQRSHLv8i8
  UQRSHRNv2i32_shift
  UQRSHRNv4i16_shift
  UQRSHRNv8i8_shift
  UQSHLd
  UQSHLv1i64
  UQSHLv2i32
  UQSHLv2i32_shift
  UQSHLv4i16
  UQSHLv4i16_shift
  UQSHLv8i8
  UQSHLv8i8_shift
  UQSHRNv2i32_shift
  UQSHRNv4i16_shift
  UQSHRNv8i8_shift
  UQSUBv1i64
  UQSUBv2i32
  UQSUBv4i16
  UQSUBv8i8
  UQXTNv2i32
  UQXTNv4i16
  UQXTNv8i8
  URECPEv2i32
  URHADDv2i32
  URHADDv4i16
  URHADDv8i8
  URSHLv1i64
  URSHLv2i32
  URSHLv4i16
  URSHLv8i8
  URSHRd
  URSHRv2i32_shift
  URSHRv4i16_shift
  URSHRv8i8_shift
  URSQRTEv2i32
  URSRAd
  URSRAv2i32_shift
  URSRAv4i16_shift
  URSRAv8i8_shift
  USDOTlanev8i8
  USDOTv8i8
  USHLv1i64
  USHLv2i32
  USHLv4i16
  USHLv8i8
  USHRd
  USHRv2i32_shift
  USHRv4i16_shift
  USHRv8i8_shift
  USQADDv1i64
  USQADDv2i32
  USQADDv4i16
  USQADDv8i8
  USRAd
  USRAv2i32_shift
  USRAv4i16_shift
  USRAv8i8_shift
  UZP1v2i32
  UZP1v4i16
  UZP1v8i8
  UZP2v2i32
  UZP2v4i16
  UZP2v8i8
  XTNv2i32
  XTNv4i16
  XTNv8i8
  ZIP1v2i32
  ZIP1v4i16
  ZIP1v8i8
  ZIP2v2i32
  ZIP2v4i16
  ZIP2v8i8
2023-05-05 17:26:53 +01:00

760 lines
28 KiB
C++

//===- AArch64MIPeepholeOpt.cpp - AArch64 MI peephole optimization pass ---===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
//
// This pass performs below peephole optimizations on MIR level.
//
// 1. MOVi32imm + ANDWrr ==> ANDWri + ANDWri
// MOVi64imm + ANDXrr ==> ANDXri + ANDXri
//
// 2. MOVi32imm + ADDWrr ==> ADDWRi + ADDWRi
// MOVi64imm + ADDXrr ==> ANDXri + ANDXri
//
// 3. MOVi32imm + SUBWrr ==> SUBWRi + SUBWRi
// MOVi64imm + SUBXrr ==> SUBXri + SUBXri
//
// The mov pseudo instruction could be expanded to multiple mov instructions
// later. In this case, we could try to split the constant operand of mov
// instruction into two immediates which can be directly encoded into
// *Wri/*Xri instructions. It makes two AND/ADD/SUB instructions instead of
// multiple `mov` + `and/add/sub` instructions.
//
// 4. Remove redundant ORRWrs which is generated by zero-extend.
//
// %3:gpr32 = ORRWrs $wzr, %2, 0
// %4:gpr64 = SUBREG_TO_REG 0, %3, %subreg.sub_32
//
// If AArch64's 32-bit form of instruction defines the source operand of
// ORRWrs, we can remove the ORRWrs because the upper 32 bits of the source
// operand are set to zero.
//
// 5. %reg = INSERT_SUBREG %reg(tied-def 0), %subreg, subidx
// ==> %reg:subidx = SUBREG_TO_REG 0, %subreg, subidx
//
// 6. %intermediate:gpr32 = COPY %src:fpr128
// %dst:fpr128 = INSvi32gpr %dst_vec:fpr128, dst_index, %intermediate:gpr32
// ==> %dst:fpr128 = INSvi32lane %dst_vec:fpr128, dst_index, %src:fpr128, 0
//
// In cases where a source FPR is copied to a GPR in order to be copied
// to a destination FPR, we can directly copy the values between the FPRs,
// eliminating the use of the Integer unit. When we match a pattern of
// INSvi[X]gpr that is preceded by a chain of COPY instructions from a FPR
// source, we use the INSvi[X]lane to replace the COPY & INSvi[X]gpr
// instructions.
//
// 7. If MI sets zero for high 64-bits implicitly, remove `mov 0` for high
// 64-bits. For example,
//
// %1:fpr64 = nofpexcept FCVTNv4i16 %0:fpr128, implicit $fpcr
// %2:fpr64 = MOVID 0
// %4:fpr128 = IMPLICIT_DEF
// %3:fpr128 = INSERT_SUBREG %4:fpr128(tied-def 0), killed %2:fpr64, %subreg.dsub
// %6:fpr128 = IMPLICIT_DEF
// %5:fpr128 = INSERT_SUBREG %6:fpr128(tied-def 0), killed %1:fpr64, %subreg.dsub
// %7:fpr128 = INSvi64lane %5:fpr128(tied-def 0), 1, killed %3:fpr128, 0
// ==>
// %1:fpr64 = nofpexcept FCVTNv4i16 %0:fpr128, implicit $fpcr
// %6:fpr128 = IMPLICIT_DEF
// %7:fpr128 = INSERT_SUBREG %6:fpr128(tied-def 0), killed %1:fpr64, %subreg.dsub
//
//===----------------------------------------------------------------------===//
#include "AArch64ExpandImm.h"
#include "AArch64InstrInfo.h"
#include "MCTargetDesc/AArch64AddressingModes.h"
#include "llvm/CodeGen/MachineDominators.h"
#include "llvm/CodeGen/MachineLoopInfo.h"
using namespace llvm;
#define DEBUG_TYPE "aarch64-mi-peephole-opt"
namespace {
struct AArch64MIPeepholeOpt : public MachineFunctionPass {
static char ID;
AArch64MIPeepholeOpt() : MachineFunctionPass(ID) {
initializeAArch64MIPeepholeOptPass(*PassRegistry::getPassRegistry());
}
const AArch64InstrInfo *TII;
const AArch64RegisterInfo *TRI;
MachineLoopInfo *MLI;
MachineRegisterInfo *MRI;
using OpcodePair = std::pair<unsigned, unsigned>;
template <typename T>
using SplitAndOpcFunc =
std::function<std::optional<OpcodePair>(T, unsigned, T &, T &)>;
using BuildMIFunc =
std::function<void(MachineInstr &, OpcodePair, unsigned, unsigned,
Register, Register, Register)>;
/// For instructions where an immediate operand could be split into two
/// separate immediate instructions, use the splitTwoPartImm two handle the
/// optimization.
///
/// To implement, the following function types must be passed to
/// splitTwoPartImm. A SplitAndOpcFunc must be implemented that determines if
/// splitting the immediate is valid and returns the associated new opcode. A
/// BuildMIFunc must be implemented to build the two immediate instructions.
///
/// Example Pattern (where IMM would require 2+ MOV instructions):
/// %dst = <Instr>rr %src IMM [...]
/// becomes:
/// %tmp = <Instr>ri %src (encode half IMM) [...]
/// %dst = <Instr>ri %tmp (encode half IMM) [...]
template <typename T>
bool splitTwoPartImm(MachineInstr &MI,
SplitAndOpcFunc<T> SplitAndOpc, BuildMIFunc BuildInstr);
bool checkMovImmInstr(MachineInstr &MI, MachineInstr *&MovMI,
MachineInstr *&SubregToRegMI);
template <typename T>
bool visitADDSUB(unsigned PosOpc, unsigned NegOpc, MachineInstr &MI);
template <typename T>
bool visitADDSSUBS(OpcodePair PosOpcs, OpcodePair NegOpcs, MachineInstr &MI);
template <typename T>
bool visitAND(unsigned Opc, MachineInstr &MI);
bool visitORR(MachineInstr &MI);
bool visitINSERT(MachineInstr &MI);
bool visitINSviGPR(MachineInstr &MI, unsigned Opc);
bool visitINSvi64lane(MachineInstr &MI);
bool runOnMachineFunction(MachineFunction &MF) override;
StringRef getPassName() const override {
return "AArch64 MI Peephole Optimization pass";
}
void getAnalysisUsage(AnalysisUsage &AU) const override {
AU.setPreservesCFG();
AU.addRequired<MachineLoopInfo>();
MachineFunctionPass::getAnalysisUsage(AU);
}
};
char AArch64MIPeepholeOpt::ID = 0;
} // end anonymous namespace
INITIALIZE_PASS(AArch64MIPeepholeOpt, "aarch64-mi-peephole-opt",
"AArch64 MI Peephole Optimization", false, false)
template <typename T>
static bool splitBitmaskImm(T Imm, unsigned RegSize, T &Imm1Enc, T &Imm2Enc) {
T UImm = static_cast<T>(Imm);
if (AArch64_AM::isLogicalImmediate(UImm, RegSize))
return false;
// If this immediate can be handled by one instruction, do not split it.
SmallVector<AArch64_IMM::ImmInsnModel, 4> Insn;
AArch64_IMM::expandMOVImm(UImm, RegSize, Insn);
if (Insn.size() == 1)
return false;
// The bitmask immediate consists of consecutive ones. Let's say there is
// constant 0b00000000001000000000010000000000 which does not consist of
// consecutive ones. We can split it in to two bitmask immediate like
// 0b00000000001111111111110000000000 and 0b11111111111000000000011111111111.
// If we do AND with these two bitmask immediate, we can see original one.
unsigned LowestBitSet = llvm::countr_zero(UImm);
unsigned HighestBitSet = Log2_64(UImm);
// Create a mask which is filled with one from the position of lowest bit set
// to the position of highest bit set.
T NewImm1 = (static_cast<T>(2) << HighestBitSet) -
(static_cast<T>(1) << LowestBitSet);
// Create a mask which is filled with one outside the position of lowest bit
// set and the position of highest bit set.
T NewImm2 = UImm | ~NewImm1;
// If the split value is not valid bitmask immediate, do not split this
// constant.
if (!AArch64_AM::isLogicalImmediate(NewImm2, RegSize))
return false;
Imm1Enc = AArch64_AM::encodeLogicalImmediate(NewImm1, RegSize);
Imm2Enc = AArch64_AM::encodeLogicalImmediate(NewImm2, RegSize);
return true;
}
template <typename T>
bool AArch64MIPeepholeOpt::visitAND(
unsigned Opc, MachineInstr &MI) {
// Try below transformation.
//
// MOVi32imm + ANDWrr ==> ANDWri + ANDWri
// MOVi64imm + ANDXrr ==> ANDXri + ANDXri
//
// The mov pseudo instruction could be expanded to multiple mov instructions
// later. Let's try to split the constant operand of mov instruction into two
// bitmask immediates. It makes only two AND instructions intead of multiple
// mov + and instructions.
return splitTwoPartImm<T>(
MI,
[Opc](T Imm, unsigned RegSize, T &Imm0,
T &Imm1) -> std::optional<OpcodePair> {
if (splitBitmaskImm(Imm, RegSize, Imm0, Imm1))
return std::make_pair(Opc, Opc);
return std::nullopt;
},
[&TII = TII](MachineInstr &MI, OpcodePair Opcode, unsigned Imm0,
unsigned Imm1, Register SrcReg, Register NewTmpReg,
Register NewDstReg) {
DebugLoc DL = MI.getDebugLoc();
MachineBasicBlock *MBB = MI.getParent();
BuildMI(*MBB, MI, DL, TII->get(Opcode.first), NewTmpReg)
.addReg(SrcReg)
.addImm(Imm0);
BuildMI(*MBB, MI, DL, TII->get(Opcode.second), NewDstReg)
.addReg(NewTmpReg)
.addImm(Imm1);
});
}
bool AArch64MIPeepholeOpt::visitORR(MachineInstr &MI) {
// Check this ORR comes from below zero-extend pattern.
//
// def : Pat<(i64 (zext GPR32:$src)),
// (SUBREG_TO_REG (i32 0), (ORRWrs WZR, GPR32:$src, 0), sub_32)>;
if (MI.getOperand(3).getImm() != 0)
return false;
if (MI.getOperand(1).getReg() != AArch64::WZR)
return false;
MachineInstr *SrcMI = MRI->getUniqueVRegDef(MI.getOperand(2).getReg());
if (!SrcMI)
return false;
// From https://developer.arm.com/documentation/dui0801/b/BABBGCAC
//
// When you use the 32-bit form of an instruction, the upper 32 bits of the
// source registers are ignored and the upper 32 bits of the destination
// register are set to zero.
//
// If AArch64's 32-bit form of instruction defines the source operand of
// zero-extend, we do not need the zero-extend. Let's check the MI's opcode is
// real AArch64 instruction and if it is not, do not process the opcode
// conservatively.
if (SrcMI->getOpcode() == TargetOpcode::COPY &&
SrcMI->getOperand(1).getReg().isVirtual()) {
const TargetRegisterClass *RC =
MRI->getRegClass(SrcMI->getOperand(1).getReg());
// A COPY from an FPR will become a FMOVSWr, so do so now so that we know
// that the upper bits are zero.
if (RC != &AArch64::FPR32RegClass &&
((RC != &AArch64::FPR64RegClass && RC != &AArch64::FPR128RegClass) ||
SrcMI->getOperand(1).getSubReg() != AArch64::ssub))
return false;
Register CpySrc = SrcMI->getOperand(1).getReg();
if (SrcMI->getOperand(1).getSubReg() == AArch64::ssub) {
CpySrc = MRI->createVirtualRegister(&AArch64::FPR32RegClass);
BuildMI(*SrcMI->getParent(), SrcMI, SrcMI->getDebugLoc(),
TII->get(TargetOpcode::COPY), CpySrc)
.add(SrcMI->getOperand(1));
}
BuildMI(*SrcMI->getParent(), SrcMI, SrcMI->getDebugLoc(),
TII->get(AArch64::FMOVSWr), SrcMI->getOperand(0).getReg())
.addReg(CpySrc);
SrcMI->eraseFromParent();
}
else if (SrcMI->getOpcode() <= TargetOpcode::GENERIC_OP_END)
return false;
Register DefReg = MI.getOperand(0).getReg();
Register SrcReg = MI.getOperand(2).getReg();
MRI->replaceRegWith(DefReg, SrcReg);
MRI->clearKillFlags(SrcReg);
LLVM_DEBUG(dbgs() << "Removed: " << MI << "\n");
MI.eraseFromParent();
return true;
}
bool AArch64MIPeepholeOpt::visitINSERT(MachineInstr &MI) {
// Check this INSERT_SUBREG comes from below zero-extend pattern.
//
// From %reg = INSERT_SUBREG %reg(tied-def 0), %subreg, subidx
// To %reg:subidx = SUBREG_TO_REG 0, %subreg, subidx
//
// We're assuming the first operand to INSERT_SUBREG is irrelevant because a
// COPY would destroy the upper part of the register anyway
if (!MI.isRegTiedToDefOperand(1))
return false;
Register DstReg = MI.getOperand(0).getReg();
const TargetRegisterClass *RC = MRI->getRegClass(DstReg);
MachineInstr *SrcMI = MRI->getUniqueVRegDef(MI.getOperand(2).getReg());
if (!SrcMI)
return false;
// From https://developer.arm.com/documentation/dui0801/b/BABBGCAC
//
// When you use the 32-bit form of an instruction, the upper 32 bits of the
// source registers are ignored and the upper 32 bits of the destination
// register are set to zero.
//
// If AArch64's 32-bit form of instruction defines the source operand of
// zero-extend, we do not need the zero-extend. Let's check the MI's opcode is
// real AArch64 instruction and if it is not, do not process the opcode
// conservatively.
if ((SrcMI->getOpcode() <= TargetOpcode::GENERIC_OP_END) ||
!AArch64::GPR64allRegClass.hasSubClassEq(RC))
return false;
// Build a SUBREG_TO_REG instruction
MachineInstr *SubregMI =
BuildMI(*MI.getParent(), MI, MI.getDebugLoc(),
TII->get(TargetOpcode::SUBREG_TO_REG), DstReg)
.addImm(0)
.add(MI.getOperand(2))
.add(MI.getOperand(3));
LLVM_DEBUG(dbgs() << MI << " replace by:\n: " << *SubregMI << "\n");
(void)SubregMI;
MI.eraseFromParent();
return true;
}
template <typename T>
static bool splitAddSubImm(T Imm, unsigned RegSize, T &Imm0, T &Imm1) {
// The immediate must be in the form of ((imm0 << 12) + imm1), in which both
// imm0 and imm1 are non-zero 12-bit unsigned int.
if ((Imm & 0xfff000) == 0 || (Imm & 0xfff) == 0 ||
(Imm & ~static_cast<T>(0xffffff)) != 0)
return false;
// The immediate can not be composed via a single instruction.
SmallVector<AArch64_IMM::ImmInsnModel, 4> Insn;
AArch64_IMM::expandMOVImm(Imm, RegSize, Insn);
if (Insn.size() == 1)
return false;
// Split Imm into (Imm0 << 12) + Imm1;
Imm0 = (Imm >> 12) & 0xfff;
Imm1 = Imm & 0xfff;
return true;
}
template <typename T>
bool AArch64MIPeepholeOpt::visitADDSUB(
unsigned PosOpc, unsigned NegOpc, MachineInstr &MI) {
// Try below transformation.
//
// ADDWrr X, MOVi32imm ==> ADDWri + ADDWri
// ADDXrr X, MOVi64imm ==> ADDXri + ADDXri
//
// SUBWrr X, MOVi32imm ==> SUBWri + SUBWri
// SUBXrr X, MOVi64imm ==> SUBXri + SUBXri
//
// The mov pseudo instruction could be expanded to multiple mov instructions
// later. Let's try to split the constant operand of mov instruction into two
// legal add/sub immediates. It makes only two ADD/SUB instructions intead of
// multiple `mov` + `and/sub` instructions.
// We can sometimes have ADDWrr WZR, MULi32imm that have not been constant
// folded. Make sure that we don't generate invalid instructions that use XZR
// in those cases.
if (MI.getOperand(1).getReg() == AArch64::XZR ||
MI.getOperand(1).getReg() == AArch64::WZR)
return false;
return splitTwoPartImm<T>(
MI,
[PosOpc, NegOpc](T Imm, unsigned RegSize, T &Imm0,
T &Imm1) -> std::optional<OpcodePair> {
if (splitAddSubImm(Imm, RegSize, Imm0, Imm1))
return std::make_pair(PosOpc, PosOpc);
if (splitAddSubImm(-Imm, RegSize, Imm0, Imm1))
return std::make_pair(NegOpc, NegOpc);
return std::nullopt;
},
[&TII = TII](MachineInstr &MI, OpcodePair Opcode, unsigned Imm0,
unsigned Imm1, Register SrcReg, Register NewTmpReg,
Register NewDstReg) {
DebugLoc DL = MI.getDebugLoc();
MachineBasicBlock *MBB = MI.getParent();
BuildMI(*MBB, MI, DL, TII->get(Opcode.first), NewTmpReg)
.addReg(SrcReg)
.addImm(Imm0)
.addImm(12);
BuildMI(*MBB, MI, DL, TII->get(Opcode.second), NewDstReg)
.addReg(NewTmpReg)
.addImm(Imm1)
.addImm(0);
});
}
template <typename T>
bool AArch64MIPeepholeOpt::visitADDSSUBS(
OpcodePair PosOpcs, OpcodePair NegOpcs, MachineInstr &MI) {
// Try the same transformation as ADDSUB but with additional requirement
// that the condition code usages are only for Equal and Not Equal
if (MI.getOperand(1).getReg() == AArch64::XZR ||
MI.getOperand(1).getReg() == AArch64::WZR)
return false;
return splitTwoPartImm<T>(
MI,
[PosOpcs, NegOpcs, &MI, &TRI = TRI,
&MRI = MRI](T Imm, unsigned RegSize, T &Imm0,
T &Imm1) -> std::optional<OpcodePair> {
OpcodePair OP;
if (splitAddSubImm(Imm, RegSize, Imm0, Imm1))
OP = PosOpcs;
else if (splitAddSubImm(-Imm, RegSize, Imm0, Imm1))
OP = NegOpcs;
else
return std::nullopt;
// Check conditional uses last since it is expensive for scanning
// proceeding instructions
MachineInstr &SrcMI = *MRI->getUniqueVRegDef(MI.getOperand(1).getReg());
std::optional<UsedNZCV> NZCVUsed = examineCFlagsUse(SrcMI, MI, *TRI);
if (!NZCVUsed || NZCVUsed->C || NZCVUsed->V)
return std::nullopt;
return OP;
},
[&TII = TII](MachineInstr &MI, OpcodePair Opcode, unsigned Imm0,
unsigned Imm1, Register SrcReg, Register NewTmpReg,
Register NewDstReg) {
DebugLoc DL = MI.getDebugLoc();
MachineBasicBlock *MBB = MI.getParent();
BuildMI(*MBB, MI, DL, TII->get(Opcode.first), NewTmpReg)
.addReg(SrcReg)
.addImm(Imm0)
.addImm(12);
BuildMI(*MBB, MI, DL, TII->get(Opcode.second), NewDstReg)
.addReg(NewTmpReg)
.addImm(Imm1)
.addImm(0);
});
}
// Checks if the corresponding MOV immediate instruction is applicable for
// this peephole optimization.
bool AArch64MIPeepholeOpt::checkMovImmInstr(MachineInstr &MI,
MachineInstr *&MovMI,
MachineInstr *&SubregToRegMI) {
// Check whether current MBB is in loop and the AND is loop invariant.
MachineBasicBlock *MBB = MI.getParent();
MachineLoop *L = MLI->getLoopFor(MBB);
if (L && !L->isLoopInvariant(MI))
return false;
// Check whether current MI's operand is MOV with immediate.
MovMI = MRI->getUniqueVRegDef(MI.getOperand(2).getReg());
if (!MovMI)
return false;
// If it is SUBREG_TO_REG, check its operand.
SubregToRegMI = nullptr;
if (MovMI->getOpcode() == TargetOpcode::SUBREG_TO_REG) {
SubregToRegMI = MovMI;
MovMI = MRI->getUniqueVRegDef(MovMI->getOperand(2).getReg());
if (!MovMI)
return false;
}
if (MovMI->getOpcode() != AArch64::MOVi32imm &&
MovMI->getOpcode() != AArch64::MOVi64imm)
return false;
// If the MOV has multiple uses, do not split the immediate because it causes
// more instructions.
if (!MRI->hasOneUse(MovMI->getOperand(0).getReg()))
return false;
if (SubregToRegMI && !MRI->hasOneUse(SubregToRegMI->getOperand(0).getReg()))
return false;
// It is OK to perform this peephole optimization.
return true;
}
template <typename T>
bool AArch64MIPeepholeOpt::splitTwoPartImm(
MachineInstr &MI,
SplitAndOpcFunc<T> SplitAndOpc, BuildMIFunc BuildInstr) {
unsigned RegSize = sizeof(T) * 8;
assert((RegSize == 32 || RegSize == 64) &&
"Invalid RegSize for legal immediate peephole optimization");
// Perform several essential checks against current MI.
MachineInstr *MovMI, *SubregToRegMI;
if (!checkMovImmInstr(MI, MovMI, SubregToRegMI))
return false;
// Split the immediate to Imm0 and Imm1, and calculate the Opcode.
T Imm = static_cast<T>(MovMI->getOperand(1).getImm()), Imm0, Imm1;
// For the 32 bit form of instruction, the upper 32 bits of the destination
// register are set to zero. If there is SUBREG_TO_REG, set the upper 32 bits
// of Imm to zero. This is essential if the Immediate value was a negative
// number since it was sign extended when we assign to the 64-bit Imm.
if (SubregToRegMI)
Imm &= 0xFFFFFFFF;
OpcodePair Opcode;
if (auto R = SplitAndOpc(Imm, RegSize, Imm0, Imm1))
Opcode = *R;
else
return false;
// Create new MIs using the first and second opcodes. Opcodes might differ for
// flag setting operations that should only set flags on second instruction.
// NewTmpReg = Opcode.first SrcReg Imm0
// NewDstReg = Opcode.second NewTmpReg Imm1
// Determine register classes for destinations and register operands
MachineFunction *MF = MI.getMF();
const TargetRegisterClass *FirstInstrDstRC =
TII->getRegClass(TII->get(Opcode.first), 0, TRI, *MF);
const TargetRegisterClass *FirstInstrOperandRC =
TII->getRegClass(TII->get(Opcode.first), 1, TRI, *MF);
const TargetRegisterClass *SecondInstrDstRC =
(Opcode.first == Opcode.second)
? FirstInstrDstRC
: TII->getRegClass(TII->get(Opcode.second), 0, TRI, *MF);
const TargetRegisterClass *SecondInstrOperandRC =
(Opcode.first == Opcode.second)
? FirstInstrOperandRC
: TII->getRegClass(TII->get(Opcode.second), 1, TRI, *MF);
// Get old registers destinations and new register destinations
Register DstReg = MI.getOperand(0).getReg();
Register SrcReg = MI.getOperand(1).getReg();
Register NewTmpReg = MRI->createVirtualRegister(FirstInstrDstRC);
// In the situation that DstReg is not Virtual (likely WZR or XZR), we want to
// reuse that same destination register.
Register NewDstReg = DstReg.isVirtual()
? MRI->createVirtualRegister(SecondInstrDstRC)
: DstReg;
// Constrain registers based on their new uses
MRI->constrainRegClass(SrcReg, FirstInstrOperandRC);
MRI->constrainRegClass(NewTmpReg, SecondInstrOperandRC);
if (DstReg != NewDstReg)
MRI->constrainRegClass(NewDstReg, MRI->getRegClass(DstReg));
// Call the delegating operation to build the instruction
BuildInstr(MI, Opcode, Imm0, Imm1, SrcReg, NewTmpReg, NewDstReg);
// replaceRegWith changes MI's definition register. Keep it for SSA form until
// deleting MI. Only if we made a new destination register.
if (DstReg != NewDstReg) {
MRI->replaceRegWith(DstReg, NewDstReg);
MI.getOperand(0).setReg(DstReg);
}
// Record the MIs need to be removed.
MI.eraseFromParent();
if (SubregToRegMI)
SubregToRegMI->eraseFromParent();
MovMI->eraseFromParent();
return true;
}
bool AArch64MIPeepholeOpt::visitINSviGPR(MachineInstr &MI, unsigned Opc) {
// Check if this INSvi[X]gpr comes from COPY of a source FPR128
//
// From
// %intermediate1:gpr64 = COPY %src:fpr128
// %intermediate2:gpr32 = COPY %intermediate1:gpr64
// %dst:fpr128 = INSvi[X]gpr %dst_vec:fpr128, dst_index, %intermediate2:gpr32
// To
// %dst:fpr128 = INSvi[X]lane %dst_vec:fpr128, dst_index, %src:fpr128,
// src_index
// where src_index = 0, X = [8|16|32|64]
MachineInstr *SrcMI = MRI->getUniqueVRegDef(MI.getOperand(3).getReg());
// For a chain of COPY instructions, find the initial source register
// and check if it's an FPR128
while (true) {
if (!SrcMI || SrcMI->getOpcode() != TargetOpcode::COPY)
return false;
if (!SrcMI->getOperand(1).getReg().isVirtual())
return false;
if (MRI->getRegClass(SrcMI->getOperand(1).getReg()) ==
&AArch64::FPR128RegClass) {
break;
}
SrcMI = MRI->getUniqueVRegDef(SrcMI->getOperand(1).getReg());
}
Register DstReg = MI.getOperand(0).getReg();
Register SrcReg = SrcMI->getOperand(1).getReg();
MachineInstr *INSvilaneMI =
BuildMI(*MI.getParent(), MI, MI.getDebugLoc(), TII->get(Opc), DstReg)
.add(MI.getOperand(1))
.add(MI.getOperand(2))
.addUse(SrcReg, getRegState(SrcMI->getOperand(1)))
.addImm(0);
LLVM_DEBUG(dbgs() << MI << " replace by:\n: " << *INSvilaneMI << "\n");
(void)INSvilaneMI;
MI.eraseFromParent();
return true;
}
// All instructions that set a FPR64 will implicitly zero the top bits of the
// register.
static bool is64bitDefwithZeroHigh64bit(MachineInstr *MI,
MachineRegisterInfo *MRI) {
if (!MI->getOperand(0).isDef() || !MI->getOperand(0).isReg())
return false;
const TargetRegisterClass *RC = MRI->getRegClass(MI->getOperand(0).getReg());
if (RC != &AArch64::FPR64RegClass)
return false;
return MI->getOpcode() > TargetOpcode::GENERIC_OP_END;
}
bool AArch64MIPeepholeOpt::visitINSvi64lane(MachineInstr &MI) {
// Check the MI for low 64-bits sets zero for high 64-bits implicitly.
// We are expecting below case.
//
// %1:fpr64 = nofpexcept FCVTNv4i16 %0:fpr128, implicit $fpcr
// %6:fpr128 = IMPLICIT_DEF
// %5:fpr128 = INSERT_SUBREG %6:fpr128(tied-def 0), killed %1:fpr64, %subreg.dsub
// %7:fpr128 = INSvi64lane %5:fpr128(tied-def 0), 1, killed %3:fpr128, 0
MachineInstr *Low64MI = MRI->getUniqueVRegDef(MI.getOperand(1).getReg());
if (Low64MI->getOpcode() != AArch64::INSERT_SUBREG)
return false;
Low64MI = MRI->getUniqueVRegDef(Low64MI->getOperand(2).getReg());
if (!Low64MI || !is64bitDefwithZeroHigh64bit(Low64MI, MRI))
return false;
// Check there is `mov 0` MI for high 64-bits.
// We are expecting below cases.
//
// %2:fpr64 = MOVID 0
// %4:fpr128 = IMPLICIT_DEF
// %3:fpr128 = INSERT_SUBREG %4:fpr128(tied-def 0), killed %2:fpr64, %subreg.dsub
// %7:fpr128 = INSvi64lane %5:fpr128(tied-def 0), 1, killed %3:fpr128, 0
// or
// %5:fpr128 = MOVIv2d_ns 0
// %6:fpr64 = COPY %5.dsub:fpr128
// %8:fpr128 = IMPLICIT_DEF
// %7:fpr128 = INSERT_SUBREG %8:fpr128(tied-def 0), killed %6:fpr64, %subreg.dsub
// %11:fpr128 = INSvi64lane %9:fpr128(tied-def 0), 1, killed %7:fpr128, 0
MachineInstr *High64MI = MRI->getUniqueVRegDef(MI.getOperand(3).getReg());
if (!High64MI || High64MI->getOpcode() != AArch64::INSERT_SUBREG)
return false;
High64MI = MRI->getUniqueVRegDef(High64MI->getOperand(2).getReg());
if (High64MI && High64MI->getOpcode() == TargetOpcode::COPY)
High64MI = MRI->getUniqueVRegDef(High64MI->getOperand(1).getReg());
if (!High64MI || (High64MI->getOpcode() != AArch64::MOVID &&
High64MI->getOpcode() != AArch64::MOVIv2d_ns))
return false;
if (High64MI->getOperand(1).getImm() != 0)
return false;
// Let's remove MIs for high 64-bits.
Register OldDef = MI.getOperand(0).getReg();
Register NewDef = MI.getOperand(1).getReg();
MRI->replaceRegWith(OldDef, NewDef);
MI.eraseFromParent();
return true;
}
bool AArch64MIPeepholeOpt::runOnMachineFunction(MachineFunction &MF) {
if (skipFunction(MF.getFunction()))
return false;
TII = static_cast<const AArch64InstrInfo *>(MF.getSubtarget().getInstrInfo());
TRI = static_cast<const AArch64RegisterInfo *>(
MF.getSubtarget().getRegisterInfo());
MLI = &getAnalysis<MachineLoopInfo>();
MRI = &MF.getRegInfo();
assert(MRI->isSSA() && "Expected to be run on SSA form!");
bool Changed = false;
for (MachineBasicBlock &MBB : MF) {
for (MachineInstr &MI : make_early_inc_range(MBB)) {
switch (MI.getOpcode()) {
default:
break;
case AArch64::INSERT_SUBREG:
Changed = visitINSERT(MI);
break;
case AArch64::ANDWrr:
Changed = visitAND<uint32_t>(AArch64::ANDWri, MI);
break;
case AArch64::ANDXrr:
Changed = visitAND<uint64_t>(AArch64::ANDXri, MI);
break;
case AArch64::ORRWrs:
Changed = visitORR(MI);
break;
case AArch64::ADDWrr:
Changed = visitADDSUB<uint32_t>(AArch64::ADDWri, AArch64::SUBWri, MI);
break;
case AArch64::SUBWrr:
Changed = visitADDSUB<uint32_t>(AArch64::SUBWri, AArch64::ADDWri, MI);
break;
case AArch64::ADDXrr:
Changed = visitADDSUB<uint64_t>(AArch64::ADDXri, AArch64::SUBXri, MI);
break;
case AArch64::SUBXrr:
Changed = visitADDSUB<uint64_t>(AArch64::SUBXri, AArch64::ADDXri, MI);
break;
case AArch64::ADDSWrr:
Changed = visitADDSSUBS<uint32_t>({AArch64::ADDWri, AArch64::ADDSWri},
{AArch64::SUBWri, AArch64::SUBSWri},
MI);
break;
case AArch64::SUBSWrr:
Changed = visitADDSSUBS<uint32_t>({AArch64::SUBWri, AArch64::SUBSWri},
{AArch64::ADDWri, AArch64::ADDSWri},
MI);
break;
case AArch64::ADDSXrr:
Changed = visitADDSSUBS<uint64_t>({AArch64::ADDXri, AArch64::ADDSXri},
{AArch64::SUBXri, AArch64::SUBSXri},
MI);
break;
case AArch64::SUBSXrr:
Changed = visitADDSSUBS<uint64_t>({AArch64::SUBXri, AArch64::SUBSXri},
{AArch64::ADDXri, AArch64::ADDSXri},
MI);
break;
case AArch64::INSvi64gpr:
Changed = visitINSviGPR(MI, AArch64::INSvi64lane);
break;
case AArch64::INSvi32gpr:
Changed = visitINSviGPR(MI, AArch64::INSvi32lane);
break;
case AArch64::INSvi16gpr:
Changed = visitINSviGPR(MI, AArch64::INSvi16lane);
break;
case AArch64::INSvi8gpr:
Changed = visitINSviGPR(MI, AArch64::INSvi8lane);
break;
case AArch64::INSvi64lane:
Changed = visitINSvi64lane(MI);
break;
}
}
}
return Changed;
}
FunctionPass *llvm::createAArch64MIPeepholeOptPass() {
return new AArch64MIPeepholeOpt();
}